dp_main.c 410 KB

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  1. /*
  2. * Copyright (c) 2016-2021 The Linux Foundation. All rights reserved.
  3. *
  4. * Permission to use, copy, modify, and/or distribute this software for
  5. * any purpose with or without fee is hereby granted, provided that the
  6. * above copyright notice and this permission notice appear in all
  7. * copies.
  8. *
  9. * THE SOFTWARE IS PROVIDED "AS IS" AND THE AUTHOR DISCLAIMS ALL
  10. * WARRANTIES WITH REGARD TO THIS SOFTWARE INCLUDING ALL IMPLIED
  11. * WARRANTIES OF MERCHANTABILITY AND FITNESS. IN NO EVENT SHALL THE
  12. * AUTHOR BE LIABLE FOR ANY SPECIAL, DIRECT, INDIRECT, OR CONSEQUENTIAL
  13. * DAMAGES OR ANY DAMAGES WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR
  14. * PROFITS, WHETHER IN AN ACTION OF CONTRACT, NEGLIGENCE OR OTHER
  15. * TORTIOUS ACTION, ARISING OUT OF OR IN CONNECTION WITH THE USE OR
  16. * PERFORMANCE OF THIS SOFTWARE.
  17. */
  18. #include <qdf_types.h>
  19. #include <qdf_lock.h>
  20. #include <qdf_net_types.h>
  21. #include <qdf_lro.h>
  22. #include <qdf_module.h>
  23. #include <hal_hw_headers.h>
  24. #include <hal_api.h>
  25. #include <hif.h>
  26. #include <htt.h>
  27. #include <wdi_event.h>
  28. #include <queue.h>
  29. #include "dp_types.h"
  30. #include "dp_internal.h"
  31. #include "dp_tx.h"
  32. #include "dp_tx_desc.h"
  33. #include "dp_rx.h"
  34. #include "dp_rx_mon.h"
  35. #ifdef DP_RATETABLE_SUPPORT
  36. #include "dp_ratetable.h"
  37. #endif
  38. #include <cdp_txrx_handle.h>
  39. #include <wlan_cfg.h>
  40. #include <wlan_utility.h>
  41. #include "cdp_txrx_cmn_struct.h"
  42. #include "cdp_txrx_stats_struct.h"
  43. #include "cdp_txrx_cmn_reg.h"
  44. #include <qdf_util.h>
  45. #include "dp_peer.h"
  46. #include "dp_rx_mon.h"
  47. #include "htt_stats.h"
  48. #include "dp_htt.h"
  49. #ifdef WLAN_SUPPORT_RX_FISA
  50. #include <dp_fisa_rx.h>
  51. #endif
  52. #include "htt_ppdu_stats.h"
  53. #include "qdf_mem.h" /* qdf_mem_malloc,free */
  54. #include "cfg_ucfg_api.h"
  55. #include "dp_mon_filter.h"
  56. #ifdef QCA_LL_TX_FLOW_CONTROL_V2
  57. #include "cdp_txrx_flow_ctrl_v2.h"
  58. #else
  59. static inline void
  60. cdp_dump_flow_pool_info(struct cdp_soc_t *soc)
  61. {
  62. return;
  63. }
  64. #endif
  65. #include "dp_ipa.h"
  66. #include "dp_cal_client_api.h"
  67. #ifdef FEATURE_WDS
  68. #include "dp_txrx_wds.h"
  69. #endif
  70. #ifdef WLAN_SUPPORT_MSCS
  71. #include "dp_mscs.h"
  72. #endif
  73. #ifdef WLAN_SUPPORT_MESH_LATENCY
  74. #include "dp_mesh_latency.h"
  75. #endif
  76. #ifdef ATH_SUPPORT_IQUE
  77. #include "dp_txrx_me.h"
  78. #endif
  79. #if defined(DP_CON_MON)
  80. #ifndef REMOVE_PKT_LOG
  81. #include <pktlog_ac_api.h>
  82. #include <pktlog_ac.h>
  83. #endif
  84. #endif
  85. #ifdef WLAN_DP_FEATURE_SW_LATENCY_MGR
  86. #include <dp_swlm.h>
  87. #endif
  88. #ifdef WLAN_FEATURE_STATS_EXT
  89. #define INIT_RX_HW_STATS_LOCK(_soc) \
  90. qdf_spinlock_create(&(_soc)->rx_hw_stats_lock)
  91. #define DEINIT_RX_HW_STATS_LOCK(_soc) \
  92. qdf_spinlock_destroy(&(_soc)->rx_hw_stats_lock)
  93. #else
  94. #define INIT_RX_HW_STATS_LOCK(_soc) /* no op */
  95. #define DEINIT_RX_HW_STATS_LOCK(_soc) /* no op */
  96. #endif
  97. #if defined(DP_PEER_EXTENDED_API) || defined(WLAN_DP_PENDING_MEM_FLUSH)
  98. #define SET_PEER_REF_CNT_ONE(_peer) \
  99. qdf_atomic_set(&(_peer)->ref_cnt, 1)
  100. #else
  101. #define SET_PEER_REF_CNT_ONE(_peer)
  102. #endif
  103. QDF_COMPILE_TIME_ASSERT(max_rx_rings_check,
  104. MAX_REO_DEST_RINGS == CDP_MAX_RX_RINGS);
  105. QDF_COMPILE_TIME_ASSERT(max_tx_rings_check,
  106. MAX_TCL_DATA_RINGS == CDP_MAX_TX_COMP_RINGS);
  107. #define dp_init_alert(params...) QDF_TRACE_FATAL(QDF_MODULE_ID_DP_INIT, params)
  108. #define dp_init_err(params...) QDF_TRACE_ERROR(QDF_MODULE_ID_DP_INIT, params)
  109. #define dp_init_warn(params...) QDF_TRACE_WARN(QDF_MODULE_ID_DP_INIT, params)
  110. #define dp_init_info(params...) \
  111. __QDF_TRACE_FL(QDF_TRACE_LEVEL_INFO_HIGH, QDF_MODULE_ID_DP_INIT, ## params)
  112. #define dp_init_debug(params...) QDF_TRACE_DEBUG(QDF_MODULE_ID_DP_INIT, params)
  113. #define dp_vdev_alert(params...) QDF_TRACE_FATAL(QDF_MODULE_ID_DP_VDEV, params)
  114. #define dp_vdev_err(params...) QDF_TRACE_ERROR(QDF_MODULE_ID_DP_VDEV, params)
  115. #define dp_vdev_warn(params...) QDF_TRACE_WARN(QDF_MODULE_ID_DP_VDEV, params)
  116. #define dp_vdev_info(params...) \
  117. __QDF_TRACE_FL(QDF_TRACE_LEVEL_INFO_HIGH, QDF_MODULE_ID_DP_VDEV, ## params)
  118. #define dp_vdev_debug(params...) QDF_TRACE_DEBUG(QDF_MODULE_ID_DP_VDEV, params)
  119. void dp_configure_arch_ops(struct dp_soc *soc);
  120. qdf_size_t dp_get_soc_context_size(uint16_t device_id);
  121. /*
  122. * The max size of cdp_peer_stats_param_t is limited to 16 bytes.
  123. * If the buffer size is exceeding this size limit,
  124. * dp_txrx_get_peer_stats is to be used instead.
  125. */
  126. QDF_COMPILE_TIME_ASSERT(cdp_peer_stats_param_t_max_size,
  127. (sizeof(cdp_peer_stats_param_t) <= 16));
  128. #ifdef WLAN_FEATURE_DP_EVENT_HISTORY
  129. /*
  130. * If WLAN_CFG_INT_NUM_CONTEXTS is changed, HIF_NUM_INT_CONTEXTS
  131. * also should be updated accordingly
  132. */
  133. QDF_COMPILE_TIME_ASSERT(num_intr_grps,
  134. HIF_NUM_INT_CONTEXTS == WLAN_CFG_INT_NUM_CONTEXTS);
  135. /*
  136. * HIF_EVENT_HIST_MAX should always be power of 2
  137. */
  138. QDF_COMPILE_TIME_ASSERT(hif_event_history_size,
  139. (HIF_EVENT_HIST_MAX & (HIF_EVENT_HIST_MAX - 1)) == 0);
  140. #endif /* WLAN_FEATURE_DP_EVENT_HISTORY */
  141. /*
  142. * If WLAN_CFG_INT_NUM_CONTEXTS is changed,
  143. * WLAN_CFG_INT_NUM_CONTEXTS_MAX should also be updated
  144. */
  145. QDF_COMPILE_TIME_ASSERT(wlan_cfg_num_int_ctxs,
  146. WLAN_CFG_INT_NUM_CONTEXTS_MAX >=
  147. WLAN_CFG_INT_NUM_CONTEXTS);
  148. #ifdef WLAN_RX_PKT_CAPTURE_ENH
  149. #include "dp_rx_mon_feature.h"
  150. #else
  151. /*
  152. * dp_config_enh_rx_capture()- API to enable/disable enhanced rx capture
  153. * @pdev_handle: DP_PDEV handle
  154. * @val: user provided value
  155. *
  156. * Return: QDF_STATUS
  157. */
  158. static QDF_STATUS
  159. dp_config_enh_rx_capture(struct dp_pdev *pdev_handle, uint8_t val)
  160. {
  161. return QDF_STATUS_E_INVAL;
  162. }
  163. #endif /* WLAN_RX_PKT_CAPTURE_ENH */
  164. #ifdef WLAN_TX_PKT_CAPTURE_ENH
  165. #include "dp_tx_capture.h"
  166. #else
  167. /*
  168. * dp_config_enh_tx_capture()- API to enable/disable enhanced tx capture
  169. * @pdev_handle: DP_PDEV handle
  170. * @val: user provided value
  171. *
  172. * Return: QDF_STATUS
  173. */
  174. static QDF_STATUS
  175. dp_config_enh_tx_capture(struct dp_pdev *pdev_handle, uint8_t val)
  176. {
  177. return QDF_STATUS_E_INVAL;
  178. }
  179. #endif
  180. static void dp_pdev_srng_deinit(struct dp_pdev *pdev);
  181. static QDF_STATUS dp_pdev_srng_init(struct dp_pdev *pdev);
  182. static void dp_pdev_srng_free(struct dp_pdev *pdev);
  183. static QDF_STATUS dp_pdev_srng_alloc(struct dp_pdev *pdev);
  184. static void dp_soc_srng_deinit(struct dp_soc *soc);
  185. static QDF_STATUS dp_soc_srng_init(struct dp_soc *soc);
  186. static void dp_soc_srng_free(struct dp_soc *soc);
  187. static QDF_STATUS dp_soc_srng_alloc(struct dp_soc *soc);
  188. static void dp_soc_cfg_init(struct dp_soc *soc);
  189. static void dp_soc_cfg_attach(struct dp_soc *soc);
  190. static inline
  191. QDF_STATUS dp_pdev_attach_wifi3(struct cdp_soc_t *txrx_soc,
  192. HTC_HANDLE htc_handle,
  193. qdf_device_t qdf_osdev,
  194. uint8_t pdev_id);
  195. static int dp_pdev_post_attach_wifi3(struct cdp_soc_t *psoc, uint8_t pdev_id);
  196. static QDF_STATUS
  197. dp_pdev_init_wifi3(struct cdp_soc_t *txrx_soc,
  198. HTC_HANDLE htc_handle,
  199. qdf_device_t qdf_osdev,
  200. uint8_t pdev_id);
  201. static QDF_STATUS
  202. dp_pdev_deinit_wifi3(struct cdp_soc_t *psoc, uint8_t pdev_id, int force);
  203. static void dp_soc_detach_wifi3(struct cdp_soc_t *txrx_soc);
  204. static void dp_soc_deinit_wifi3(struct cdp_soc_t *txrx_soc);
  205. void *dp_soc_init(struct dp_soc *soc, HTC_HANDLE htc_handle,
  206. struct hif_opaque_softc *hif_handle);
  207. static void dp_pdev_detach(struct cdp_pdev *txrx_pdev, int force);
  208. static QDF_STATUS dp_pdev_detach_wifi3(struct cdp_soc_t *psoc,
  209. uint8_t pdev_id,
  210. int force);
  211. static struct dp_soc *
  212. dp_soc_attach(struct cdp_ctrl_objmgr_psoc *ctrl_psoc,
  213. struct hif_opaque_softc *hif_handle,
  214. HTC_HANDLE htc_handle,
  215. qdf_device_t qdf_osdev,
  216. struct ol_if_ops *ol_ops, uint16_t device_id);
  217. static void dp_pktlogmod_exit(struct dp_pdev *handle);
  218. static inline QDF_STATUS dp_peer_create_wifi3(struct cdp_soc_t *soc_hdl,
  219. uint8_t vdev_id,
  220. uint8_t *peer_mac_addr);
  221. static QDF_STATUS dp_peer_delete_wifi3(struct cdp_soc_t *soc_hdl,
  222. uint8_t vdev_id,
  223. uint8_t *peer_mac, uint32_t bitmap);
  224. static void dp_vdev_flush_peers(struct cdp_vdev *vdev_handle,
  225. bool unmap_only);
  226. #ifdef ENABLE_VERBOSE_DEBUG
  227. bool is_dp_verbose_debug_enabled;
  228. #endif
  229. #if defined(WLAN_CFR_ENABLE) && defined(WLAN_ENH_CFR_ENABLE)
  230. static void dp_cfr_filter(struct cdp_soc_t *soc_hdl,
  231. uint8_t pdev_id,
  232. bool enable,
  233. struct cdp_monitor_filter *filter_val);
  234. static bool dp_get_cfr_rcc(struct cdp_soc_t *soc_hdl, uint8_t pdev_id);
  235. static void dp_set_cfr_rcc(struct cdp_soc_t *soc_hdl, uint8_t pdev_id,
  236. bool enable);
  237. static inline void
  238. dp_get_cfr_dbg_stats(struct cdp_soc_t *soc_hdl, uint8_t pdev_id,
  239. struct cdp_cfr_rcc_stats *cfr_rcc_stats);
  240. static inline void
  241. dp_clear_cfr_dbg_stats(struct cdp_soc_t *soc_hdl, uint8_t pdev_id);
  242. static inline void
  243. dp_enable_mon_reap_timer(struct cdp_soc_t *soc_hdl, uint8_t pdev_id,
  244. bool enable);
  245. #endif
  246. static QDF_STATUS dp_init_tx_ring_pair_by_index(struct dp_soc *soc,
  247. uint8_t index);
  248. static void dp_deinit_tx_pair_by_index(struct dp_soc *soc, int index);
  249. static void dp_free_tx_ring_pair_by_index(struct dp_soc *soc, uint8_t index);
  250. static QDF_STATUS dp_alloc_tx_ring_pair_by_index(struct dp_soc *soc,
  251. uint8_t index);
  252. static inline bool
  253. dp_is_enable_reap_timer_non_pkt(struct dp_pdev *pdev);
  254. static uint8_t dp_soc_ring_if_nss_offloaded(struct dp_soc *soc,
  255. enum hal_ring_type ring_type,
  256. int ring_num);
  257. static QDF_STATUS dp_vdev_set_monitor_mode_rings(struct dp_pdev *pdev,
  258. uint8_t delayed_replenish);
  259. static void dp_vdev_set_monitor_mode_buf_rings(struct dp_pdev *pdev);
  260. #define DP_INTR_POLL_TIMER_MS 5
  261. #define MON_VDEV_TIMER_INIT 0x1
  262. #define MON_VDEV_TIMER_RUNNING 0x2
  263. /* Generic AST entry aging timer value */
  264. #define DP_AST_AGING_TIMER_DEFAULT_MS 1000
  265. #define DP_MCS_LENGTH (6*MAX_MCS)
  266. #define DP_CURR_FW_STATS_AVAIL 19
  267. #define DP_HTT_DBG_EXT_STATS_MAX 256
  268. #define DP_MAX_SLEEP_TIME 100
  269. #ifndef QCA_WIFI_3_0_EMU
  270. #define SUSPEND_DRAIN_WAIT 500
  271. #else
  272. #define SUSPEND_DRAIN_WAIT 3000
  273. #endif
  274. #ifdef IPA_OFFLOAD
  275. /* Exclude IPA rings from the interrupt context */
  276. #define TX_RING_MASK_VAL 0xb
  277. #define RX_RING_MASK_VAL 0x7
  278. #else
  279. #define TX_RING_MASK_VAL 0xF
  280. #define RX_RING_MASK_VAL 0xF
  281. #endif
  282. #define STR_MAXLEN 64
  283. #define RNG_ERR "SRNG setup failed for"
  284. /* Threshold for peer's cached buf queue beyond which frames are dropped */
  285. #define DP_RX_CACHED_BUFQ_THRESH 64
  286. /* Budget to reap monitor status ring */
  287. #define DP_MON_REAP_BUDGET 1024
  288. /**
  289. * default_dscp_tid_map - Default DSCP-TID mapping
  290. *
  291. * DSCP TID
  292. * 000000 0
  293. * 001000 1
  294. * 010000 2
  295. * 011000 3
  296. * 100000 4
  297. * 101000 5
  298. * 110000 6
  299. * 111000 7
  300. */
  301. static uint8_t default_dscp_tid_map[DSCP_TID_MAP_MAX] = {
  302. 0, 0, 0, 0, 0, 0, 0, 0,
  303. 1, 1, 1, 1, 1, 1, 1, 1,
  304. 2, 2, 2, 2, 2, 2, 2, 2,
  305. 3, 3, 3, 3, 3, 3, 3, 3,
  306. 4, 4, 4, 4, 4, 4, 4, 4,
  307. 5, 5, 5, 5, 5, 5, 5, 5,
  308. 6, 6, 6, 6, 6, 6, 6, 6,
  309. 7, 7, 7, 7, 7, 7, 7, 7,
  310. };
  311. /**
  312. * default_pcp_tid_map - Default PCP-TID mapping
  313. *
  314. * PCP TID
  315. * 000 0
  316. * 001 1
  317. * 010 2
  318. * 011 3
  319. * 100 4
  320. * 101 5
  321. * 110 6
  322. * 111 7
  323. */
  324. static uint8_t default_pcp_tid_map[PCP_TID_MAP_MAX] = {
  325. 0, 1, 2, 3, 4, 5, 6, 7,
  326. };
  327. /**
  328. * @brief Cpu to tx ring map
  329. */
  330. uint8_t
  331. dp_cpu_ring_map[DP_NSS_CPU_RING_MAP_MAX][WLAN_CFG_INT_NUM_CONTEXTS_MAX] = {
  332. {0x0, 0x1, 0x2, 0x0, 0x0, 0x1, 0x2, 0x0, 0x0, 0x1, 0x2},
  333. {0x1, 0x2, 0x1, 0x2, 0x1, 0x2, 0x1, 0x2, 0x1, 0x2, 0x1},
  334. {0x0, 0x2, 0x0, 0x2, 0x0, 0x2, 0x0, 0x2, 0x0, 0x2, 0x0},
  335. {0x2, 0x2, 0x2, 0x2, 0x2, 0x2, 0x2, 0x2, 0x2, 0x2, 0x2},
  336. {0x3, 0x3, 0x3, 0x3, 0x3, 0x3, 0x3, 0x3, 0x3, 0x3, 0x3},
  337. #ifdef WLAN_TX_PKT_CAPTURE_ENH
  338. {0x1, 0x1, 0x1, 0x1, 0x1, 0x1, 0x1, 0x1, 0x1, 0x1, 0x1}
  339. #endif
  340. };
  341. /**
  342. * @brief Select the type of statistics
  343. */
  344. enum dp_stats_type {
  345. STATS_FW = 0,
  346. STATS_HOST = 1,
  347. STATS_TYPE_MAX = 2,
  348. };
  349. /**
  350. * @brief General Firmware statistics options
  351. *
  352. */
  353. enum dp_fw_stats {
  354. TXRX_FW_STATS_INVALID = -1,
  355. };
  356. /**
  357. * dp_stats_mapping_table - Firmware and Host statistics
  358. * currently supported
  359. */
  360. const int dp_stats_mapping_table[][STATS_TYPE_MAX] = {
  361. {HTT_DBG_EXT_STATS_RESET, TXRX_HOST_STATS_INVALID},
  362. {HTT_DBG_EXT_STATS_PDEV_TX, TXRX_HOST_STATS_INVALID},
  363. {HTT_DBG_EXT_STATS_PDEV_RX, TXRX_HOST_STATS_INVALID},
  364. {HTT_DBG_EXT_STATS_PDEV_TX_HWQ, TXRX_HOST_STATS_INVALID},
  365. {HTT_DBG_EXT_STATS_PDEV_TX_SCHED, TXRX_HOST_STATS_INVALID},
  366. {HTT_DBG_EXT_STATS_PDEV_ERROR, TXRX_HOST_STATS_INVALID},
  367. {HTT_DBG_EXT_STATS_PDEV_TQM, TXRX_HOST_STATS_INVALID},
  368. {HTT_DBG_EXT_STATS_TQM_CMDQ, TXRX_HOST_STATS_INVALID},
  369. {HTT_DBG_EXT_STATS_TX_DE_INFO, TXRX_HOST_STATS_INVALID},
  370. {HTT_DBG_EXT_STATS_PDEV_TX_RATE, TXRX_HOST_STATS_INVALID},
  371. {HTT_DBG_EXT_STATS_PDEV_RX_RATE, TXRX_HOST_STATS_INVALID},
  372. {TXRX_FW_STATS_INVALID, TXRX_HOST_STATS_INVALID},
  373. {HTT_DBG_EXT_STATS_TX_SELFGEN_INFO, TXRX_HOST_STATS_INVALID},
  374. {HTT_DBG_EXT_STATS_TX_MU_HWQ, TXRX_HOST_STATS_INVALID},
  375. {HTT_DBG_EXT_STATS_RING_IF_INFO, TXRX_HOST_STATS_INVALID},
  376. {HTT_DBG_EXT_STATS_SRNG_INFO, TXRX_HOST_STATS_INVALID},
  377. {HTT_DBG_EXT_STATS_SFM_INFO, TXRX_HOST_STATS_INVALID},
  378. {HTT_DBG_EXT_STATS_PDEV_TX_MU, TXRX_HOST_STATS_INVALID},
  379. {HTT_DBG_EXT_STATS_ACTIVE_PEERS_LIST, TXRX_HOST_STATS_INVALID},
  380. /* Last ENUM for HTT FW STATS */
  381. {DP_HTT_DBG_EXT_STATS_MAX, TXRX_HOST_STATS_INVALID},
  382. {TXRX_FW_STATS_INVALID, TXRX_CLEAR_STATS},
  383. {TXRX_FW_STATS_INVALID, TXRX_RX_RATE_STATS},
  384. {TXRX_FW_STATS_INVALID, TXRX_TX_RATE_STATS},
  385. {TXRX_FW_STATS_INVALID, TXRX_TX_HOST_STATS},
  386. {TXRX_FW_STATS_INVALID, TXRX_RX_HOST_STATS},
  387. {TXRX_FW_STATS_INVALID, TXRX_AST_STATS},
  388. {TXRX_FW_STATS_INVALID, TXRX_SRNG_PTR_STATS},
  389. {TXRX_FW_STATS_INVALID, TXRX_RX_MON_STATS},
  390. {TXRX_FW_STATS_INVALID, TXRX_REO_QUEUE_STATS},
  391. {TXRX_FW_STATS_INVALID, TXRX_SOC_CFG_PARAMS},
  392. {TXRX_FW_STATS_INVALID, TXRX_PDEV_CFG_PARAMS},
  393. {TXRX_FW_STATS_INVALID, TXRX_SOC_INTERRUPT_STATS},
  394. {TXRX_FW_STATS_INVALID, TXRX_SOC_FSE_STATS},
  395. {TXRX_FW_STATS_INVALID, TXRX_HAL_REG_WRITE_STATS},
  396. {TXRX_FW_STATS_INVALID, TXRX_SOC_REO_HW_DESC_DUMP},
  397. {HTT_DBG_EXT_STATS_PDEV_RX_RATE_EXT, TXRX_HOST_STATS_INVALID}
  398. };
  399. /* MCL specific functions */
  400. #if defined(DP_CON_MON)
  401. /**
  402. * dp_soc_get_mon_mask_for_interrupt_mode() - get mon mode mask for intr mode
  403. * @soc: pointer to dp_soc handle
  404. * @intr_ctx_num: interrupt context number for which mon mask is needed
  405. *
  406. * For MCL, monitor mode rings are being processed in timer contexts (polled).
  407. * This function is returning 0, since in interrupt mode(softirq based RX),
  408. * we donot want to process monitor mode rings in a softirq.
  409. *
  410. * So, in case packet log is enabled for SAP/STA/P2P modes,
  411. * regular interrupt processing will not process monitor mode rings. It would be
  412. * done in a separate timer context.
  413. *
  414. * Return: 0
  415. */
  416. static inline
  417. uint32_t dp_soc_get_mon_mask_for_interrupt_mode(struct dp_soc *soc, int intr_ctx_num)
  418. {
  419. return 0;
  420. }
  421. /*
  422. * dp_service_mon_rings()- service monitor rings
  423. * @soc: soc dp handle
  424. * @quota: number of ring entry that can be serviced
  425. *
  426. * Return: None
  427. *
  428. */
  429. static void dp_service_mon_rings(struct dp_soc *soc, uint32_t quota)
  430. {
  431. int ring = 0, work_done;
  432. struct dp_pdev *pdev = NULL;
  433. for (ring = 0 ; ring < MAX_NUM_LMAC_HW; ring++) {
  434. pdev = dp_get_pdev_for_lmac_id(soc, ring);
  435. if (!pdev)
  436. continue;
  437. work_done = dp_mon_process(soc, NULL, ring, quota);
  438. dp_rx_mon_dest_debug("Reaped %d descs from Monitor rings",
  439. work_done);
  440. }
  441. }
  442. /*
  443. * dp_mon_reap_timer_handler()- timer to reap monitor rings
  444. * reqd as we are not getting ppdu end interrupts
  445. * @arg: SoC Handle
  446. *
  447. * Return:
  448. *
  449. */
  450. static void dp_mon_reap_timer_handler(void *arg)
  451. {
  452. struct dp_soc *soc = (struct dp_soc *)arg;
  453. dp_service_mon_rings(soc, QCA_NAPI_BUDGET);
  454. qdf_timer_mod(&soc->mon_reap_timer, DP_INTR_POLL_TIMER_MS);
  455. }
  456. #ifndef REMOVE_PKT_LOG
  457. /**
  458. * dp_pkt_log_init() - API to initialize packet log
  459. * @soc_hdl: Datapath soc handle
  460. * @pdev_id: id of data path pdev handle
  461. * @scn: HIF context
  462. *
  463. * Return: none
  464. */
  465. void dp_pkt_log_init(struct cdp_soc_t *soc_hdl, uint8_t pdev_id, void *scn)
  466. {
  467. struct dp_soc *soc = cdp_soc_t_to_dp_soc(soc_hdl);
  468. struct dp_pdev *handle =
  469. dp_get_pdev_from_soc_pdev_id_wifi3(soc, pdev_id);
  470. if (!handle) {
  471. dp_err("pdev handle is NULL");
  472. return;
  473. }
  474. if (handle->pkt_log_init) {
  475. dp_init_err("%pK: Packet log not initialized", soc);
  476. return;
  477. }
  478. pktlog_sethandle(&handle->pl_dev, scn);
  479. pktlog_set_pdev_id(handle->pl_dev, pdev_id);
  480. pktlog_set_callback_regtype(PKTLOG_DEFAULT_CALLBACK_REGISTRATION);
  481. if (pktlogmod_init(scn)) {
  482. QDF_TRACE(QDF_MODULE_ID_DP, QDF_TRACE_LEVEL_ERROR,
  483. "%s: pktlogmod_init failed", __func__);
  484. handle->pkt_log_init = false;
  485. } else {
  486. handle->pkt_log_init = true;
  487. }
  488. }
  489. /**
  490. * dp_pkt_log_con_service() - connect packet log service
  491. * @soc_hdl: Datapath soc handle
  492. * @pdev_id: id of data path pdev handle
  493. * @scn: device context
  494. *
  495. * Return: none
  496. */
  497. static void dp_pkt_log_con_service(struct cdp_soc_t *soc_hdl,
  498. uint8_t pdev_id, void *scn)
  499. {
  500. dp_pkt_log_init(soc_hdl, pdev_id, scn);
  501. pktlog_htc_attach();
  502. }
  503. /**
  504. * dp_pktlogmod_exit() - API to cleanup pktlog info
  505. * @pdev: Pdev handle
  506. *
  507. * Return: none
  508. */
  509. static void dp_pktlogmod_exit(struct dp_pdev *pdev)
  510. {
  511. struct dp_soc *soc = pdev->soc;
  512. struct hif_opaque_softc *scn = soc->hif_handle;
  513. if (!scn) {
  514. dp_err("Invalid hif(scn) handle");
  515. return;
  516. }
  517. /* stop mon_reap_timer if it has been started */
  518. if (pdev->rx_pktlog_mode != DP_RX_PKTLOG_DISABLED &&
  519. soc->reap_timer_init && (!dp_is_enable_reap_timer_non_pkt(pdev)))
  520. qdf_timer_sync_cancel(&soc->mon_reap_timer);
  521. pktlogmod_exit(scn);
  522. pdev->pkt_log_init = false;
  523. }
  524. #else
  525. static void dp_pkt_log_con_service(struct cdp_soc_t *soc_hdl,
  526. uint8_t pdev_id, void *scn)
  527. {
  528. }
  529. static void dp_pktlogmod_exit(struct dp_pdev *handle) { }
  530. #endif
  531. /**
  532. * dp_get_num_rx_contexts() - get number of RX contexts
  533. * @soc_hdl: cdp opaque soc handle
  534. *
  535. * Return: number of RX contexts
  536. */
  537. static int dp_get_num_rx_contexts(struct cdp_soc_t *soc_hdl)
  538. {
  539. int i;
  540. int num_rx_contexts = 0;
  541. struct dp_soc *soc = (struct dp_soc *)soc_hdl;
  542. for (i = 0; i < wlan_cfg_get_num_contexts(soc->wlan_cfg_ctx); i++)
  543. if (wlan_cfg_get_rx_ring_mask(soc->wlan_cfg_ctx, i))
  544. num_rx_contexts++;
  545. return num_rx_contexts;
  546. }
  547. #else
  548. static void dp_pktlogmod_exit(struct dp_pdev *handle) { }
  549. /**
  550. * dp_soc_get_mon_mask_for_interrupt_mode() - get mon mode mask for intr mode
  551. * @soc: pointer to dp_soc handle
  552. * @intr_ctx_num: interrupt context number for which mon mask is needed
  553. *
  554. * Return: mon mask value
  555. */
  556. static inline
  557. uint32_t dp_soc_get_mon_mask_for_interrupt_mode(struct dp_soc *soc, int intr_ctx_num)
  558. {
  559. return wlan_cfg_get_rx_mon_ring_mask(soc->wlan_cfg_ctx, intr_ctx_num);
  560. }
  561. /*
  562. * dp_service_lmac_rings()- timer to reap lmac rings
  563. * @arg: SoC Handle
  564. *
  565. * Return:
  566. *
  567. */
  568. static void dp_service_lmac_rings(void *arg)
  569. {
  570. struct dp_soc *soc = (struct dp_soc *)arg;
  571. int ring = 0, i;
  572. struct dp_pdev *pdev = NULL;
  573. union dp_rx_desc_list_elem_t *desc_list = NULL;
  574. union dp_rx_desc_list_elem_t *tail = NULL;
  575. /* Process LMAC interrupts */
  576. for (ring = 0 ; ring < MAX_NUM_LMAC_HW; ring++) {
  577. int mac_for_pdev = ring;
  578. struct dp_srng *rx_refill_buf_ring;
  579. pdev = dp_get_pdev_for_lmac_id(soc, mac_for_pdev);
  580. if (!pdev)
  581. continue;
  582. rx_refill_buf_ring = &soc->rx_refill_buf_ring[mac_for_pdev];
  583. dp_mon_process(soc, NULL, mac_for_pdev,
  584. QCA_NAPI_BUDGET);
  585. for (i = 0;
  586. i < wlan_cfg_get_num_contexts(soc->wlan_cfg_ctx); i++)
  587. dp_rxdma_err_process(&soc->intr_ctx[i], soc,
  588. mac_for_pdev,
  589. QCA_NAPI_BUDGET);
  590. if (!dp_soc_ring_if_nss_offloaded(soc, RXDMA_BUF,
  591. mac_for_pdev))
  592. dp_rx_buffers_replenish(soc, mac_for_pdev,
  593. rx_refill_buf_ring,
  594. &soc->rx_desc_buf[mac_for_pdev],
  595. 0, &desc_list, &tail);
  596. }
  597. qdf_timer_mod(&soc->lmac_reap_timer, DP_INTR_POLL_TIMER_MS);
  598. }
  599. #endif
  600. #ifdef FEATURE_MEC
  601. void dp_peer_mec_flush_entries(struct dp_soc *soc)
  602. {
  603. unsigned int index;
  604. struct dp_mec_entry *mecentry, *mecentry_next;
  605. TAILQ_HEAD(, dp_mec_entry) free_list;
  606. TAILQ_INIT(&free_list);
  607. if (!soc->mec_hash.mask)
  608. return;
  609. if (!soc->mec_hash.bins)
  610. return;
  611. if (!qdf_atomic_read(&soc->mec_cnt))
  612. return;
  613. qdf_spin_lock_bh(&soc->mec_lock);
  614. for (index = 0; index <= soc->mec_hash.mask; index++) {
  615. if (!TAILQ_EMPTY(&soc->mec_hash.bins[index])) {
  616. TAILQ_FOREACH_SAFE(mecentry, &soc->mec_hash.bins[index],
  617. hash_list_elem, mecentry_next) {
  618. dp_peer_mec_detach_entry(soc, mecentry, &free_list);
  619. }
  620. }
  621. }
  622. qdf_spin_unlock_bh(&soc->mec_lock);
  623. dp_peer_mec_free_list(soc, &free_list);
  624. }
  625. /**
  626. * dp_print_mec_entries() - Dump MEC entries in table
  627. * @soc: Datapath soc handle
  628. *
  629. * Return: none
  630. */
  631. static void dp_print_mec_stats(struct dp_soc *soc)
  632. {
  633. int i;
  634. uint32_t index;
  635. struct dp_mec_entry *mecentry = NULL, *mec_list;
  636. uint32_t num_entries = 0;
  637. DP_PRINT_STATS("MEC Stats:");
  638. DP_PRINT_STATS(" Entries Added = %d", soc->stats.mec.added);
  639. DP_PRINT_STATS(" Entries Deleted = %d", soc->stats.mec.deleted);
  640. if (!qdf_atomic_read(&soc->mec_cnt))
  641. return;
  642. mec_list = qdf_mem_malloc(sizeof(*mecentry) * DP_PEER_MAX_MEC_ENTRY);
  643. if (!mec_list) {
  644. dp_peer_warn("%pK: failed to allocate mec_list", soc);
  645. return;
  646. }
  647. DP_PRINT_STATS("MEC Table:");
  648. for (index = 0; index <= soc->mec_hash.mask; index++) {
  649. qdf_spin_lock_bh(&soc->mec_lock);
  650. if (TAILQ_EMPTY(&soc->mec_hash.bins[index])) {
  651. qdf_spin_unlock_bh(&soc->mec_lock);
  652. continue;
  653. }
  654. TAILQ_FOREACH(mecentry, &soc->mec_hash.bins[index],
  655. hash_list_elem) {
  656. qdf_mem_copy(&mec_list[num_entries], mecentry,
  657. sizeof(*mecentry));
  658. num_entries++;
  659. }
  660. qdf_spin_unlock_bh(&soc->mec_lock);
  661. }
  662. if (!num_entries) {
  663. qdf_mem_free(mec_list);
  664. return;
  665. }
  666. for (i = 0; i < num_entries; i++) {
  667. DP_PRINT_STATS("%6d mac_addr = " QDF_MAC_ADDR_FMT
  668. " is_active = %d pdev_id = %d vdev_id = %d",
  669. i,
  670. QDF_MAC_ADDR_REF(mec_list[i].mac_addr.raw),
  671. mec_list[i].is_active,
  672. mec_list[i].pdev_id,
  673. mec_list[i].vdev_id);
  674. }
  675. qdf_mem_free(mec_list);
  676. }
  677. #else
  678. static void dp_print_mec_stats(struct dp_soc *soc)
  679. {
  680. }
  681. #endif
  682. static int dp_peer_add_ast_wifi3(struct cdp_soc_t *soc_hdl,
  683. uint8_t vdev_id,
  684. uint8_t *peer_mac,
  685. uint8_t *mac_addr,
  686. enum cdp_txrx_ast_entry_type type,
  687. uint32_t flags)
  688. {
  689. int ret = -1;
  690. QDF_STATUS status = QDF_STATUS_SUCCESS;
  691. struct dp_peer *peer = dp_peer_find_hash_find((struct dp_soc *)soc_hdl,
  692. peer_mac, 0, vdev_id,
  693. DP_MOD_ID_CDP);
  694. if (!peer) {
  695. dp_peer_debug("Peer is NULL!");
  696. return ret;
  697. }
  698. status = dp_peer_add_ast((struct dp_soc *)soc_hdl,
  699. peer,
  700. mac_addr,
  701. type,
  702. flags);
  703. if ((status == QDF_STATUS_SUCCESS) ||
  704. (status == QDF_STATUS_E_ALREADY) ||
  705. (status == QDF_STATUS_E_AGAIN))
  706. ret = 0;
  707. dp_hmwds_ast_add_notify(peer, mac_addr,
  708. type, status, false);
  709. dp_peer_unref_delete(peer, DP_MOD_ID_CDP);
  710. return ret;
  711. }
  712. static int dp_peer_update_ast_wifi3(struct cdp_soc_t *soc_hdl,
  713. uint8_t vdev_id,
  714. uint8_t *peer_mac,
  715. uint8_t *wds_macaddr,
  716. uint32_t flags)
  717. {
  718. int status = -1;
  719. struct dp_soc *soc = (struct dp_soc *)soc_hdl;
  720. struct dp_ast_entry *ast_entry = NULL;
  721. struct dp_peer *peer = dp_peer_find_hash_find((struct dp_soc *)soc_hdl,
  722. peer_mac, 0, vdev_id,
  723. DP_MOD_ID_CDP);
  724. if (!peer) {
  725. dp_peer_debug("Peer is NULL!");
  726. return status;
  727. }
  728. qdf_spin_lock_bh(&soc->ast_lock);
  729. ast_entry = dp_peer_ast_hash_find_by_pdevid(soc, wds_macaddr,
  730. peer->vdev->pdev->pdev_id);
  731. if (ast_entry) {
  732. status = dp_peer_update_ast(soc,
  733. peer,
  734. ast_entry, flags);
  735. }
  736. qdf_spin_unlock_bh(&soc->ast_lock);
  737. dp_peer_unref_delete(peer, DP_MOD_ID_CDP);
  738. return status;
  739. }
  740. /*
  741. * dp_peer_reset_ast_entries() - Deletes all HMWDS entries for a peer
  742. * @soc_handle: Datapath SOC handle
  743. * @peer: DP peer
  744. * @arg: callback argument
  745. *
  746. * Return: None
  747. */
  748. static void
  749. dp_peer_reset_ast_entries(struct dp_soc *soc, struct dp_peer *peer, void *arg)
  750. {
  751. struct dp_ast_entry *ast_entry = NULL;
  752. struct dp_ast_entry *tmp_ast_entry;
  753. DP_PEER_ITERATE_ASE_LIST(peer, ast_entry, tmp_ast_entry) {
  754. if ((ast_entry->type == CDP_TXRX_AST_TYPE_WDS_HM) ||
  755. (ast_entry->type == CDP_TXRX_AST_TYPE_WDS_HM_SEC))
  756. dp_peer_del_ast(soc, ast_entry);
  757. }
  758. }
  759. /*
  760. * dp_wds_reset_ast_wifi3() - Reset the is_active param for ast entry
  761. * @soc_handle: Datapath SOC handle
  762. * @wds_macaddr: WDS entry MAC Address
  763. * @peer_macaddr: WDS entry MAC Address
  764. * @vdev_id: id of vdev handle
  765. * Return: QDF_STATUS
  766. */
  767. static QDF_STATUS dp_wds_reset_ast_wifi3(struct cdp_soc_t *soc_hdl,
  768. uint8_t *wds_macaddr,
  769. uint8_t *peer_mac_addr,
  770. uint8_t vdev_id)
  771. {
  772. struct dp_soc *soc = (struct dp_soc *)soc_hdl;
  773. struct dp_ast_entry *ast_entry = NULL;
  774. struct dp_peer *peer;
  775. struct dp_pdev *pdev;
  776. struct dp_vdev *vdev = dp_vdev_get_ref_by_id(soc, vdev_id,
  777. DP_MOD_ID_CDP);
  778. if (!vdev)
  779. return QDF_STATUS_E_FAILURE;
  780. pdev = vdev->pdev;
  781. if (peer_mac_addr) {
  782. peer = dp_peer_find_hash_find(soc, peer_mac_addr,
  783. 0, vdev->vdev_id,
  784. DP_MOD_ID_CDP);
  785. if (!peer) {
  786. dp_vdev_unref_delete(soc, vdev, DP_MOD_ID_CDP);
  787. return QDF_STATUS_E_FAILURE;
  788. }
  789. qdf_spin_lock_bh(&soc->ast_lock);
  790. dp_peer_reset_ast_entries(soc, peer, NULL);
  791. qdf_spin_unlock_bh(&soc->ast_lock);
  792. dp_peer_unref_delete(peer, DP_MOD_ID_CDP);
  793. } else if (wds_macaddr) {
  794. qdf_spin_lock_bh(&soc->ast_lock);
  795. ast_entry = dp_peer_ast_hash_find_by_pdevid(soc, wds_macaddr,
  796. pdev->pdev_id);
  797. if (ast_entry) {
  798. if ((ast_entry->type == CDP_TXRX_AST_TYPE_WDS_HM) ||
  799. (ast_entry->type == CDP_TXRX_AST_TYPE_WDS_HM_SEC))
  800. dp_peer_del_ast(soc, ast_entry);
  801. }
  802. qdf_spin_unlock_bh(&soc->ast_lock);
  803. }
  804. dp_vdev_unref_delete(soc, vdev, DP_MOD_ID_CDP);
  805. return QDF_STATUS_SUCCESS;
  806. }
  807. /*
  808. * dp_wds_reset_ast_table_wifi3() - Reset the is_active param for all ast entry
  809. * @soc: Datapath SOC handle
  810. * @vdev_id: id of vdev object
  811. *
  812. * Return: QDF_STATUS
  813. */
  814. static QDF_STATUS
  815. dp_wds_reset_ast_table_wifi3(struct cdp_soc_t *soc_hdl,
  816. uint8_t vdev_id)
  817. {
  818. struct dp_soc *soc = (struct dp_soc *) soc_hdl;
  819. qdf_spin_lock_bh(&soc->ast_lock);
  820. dp_soc_iterate_peer(soc, dp_peer_reset_ast_entries, NULL,
  821. DP_MOD_ID_CDP);
  822. qdf_spin_unlock_bh(&soc->ast_lock);
  823. return QDF_STATUS_SUCCESS;
  824. }
  825. /*
  826. * dp_peer_flush_ast_entries() - Delete all wds and hmwds ast entries of a peer
  827. * @soc: Datapath SOC
  828. * @peer: Datapath peer
  829. * @arg: arg to callback
  830. *
  831. * Return: None
  832. */
  833. static void
  834. dp_peer_flush_ast_entries(struct dp_soc *soc, struct dp_peer *peer, void *arg)
  835. {
  836. struct dp_ast_entry *ase = NULL;
  837. struct dp_ast_entry *temp_ase;
  838. DP_PEER_ITERATE_ASE_LIST(peer, ase, temp_ase) {
  839. if ((ase->type ==
  840. CDP_TXRX_AST_TYPE_STATIC) ||
  841. (ase->type ==
  842. CDP_TXRX_AST_TYPE_SELF) ||
  843. (ase->type ==
  844. CDP_TXRX_AST_TYPE_STA_BSS))
  845. continue;
  846. dp_peer_del_ast(soc, ase);
  847. }
  848. }
  849. /*
  850. * dp_wds_flush_ast_table_wifi3() - Delete all wds and hmwds ast entry
  851. * @soc: Datapath SOC handle
  852. *
  853. * Return: None
  854. */
  855. static void dp_wds_flush_ast_table_wifi3(struct cdp_soc_t *soc_hdl)
  856. {
  857. struct dp_soc *soc = (struct dp_soc *) soc_hdl;
  858. qdf_spin_lock_bh(&soc->ast_lock);
  859. dp_soc_iterate_peer(soc, dp_peer_flush_ast_entries, NULL,
  860. DP_MOD_ID_CDP);
  861. qdf_spin_unlock_bh(&soc->ast_lock);
  862. dp_peer_mec_flush_entries(soc);
  863. }
  864. /**
  865. * dp_peer_get_ast_info_by_soc_wifi3() - search the soc AST hash table
  866. * and return ast entry information
  867. * of first ast entry found in the
  868. * table with given mac address
  869. *
  870. * @soc : data path soc handle
  871. * @ast_mac_addr : AST entry mac address
  872. * @ast_entry_info : ast entry information
  873. *
  874. * return : true if ast entry found with ast_mac_addr
  875. * false if ast entry not found
  876. */
  877. static bool dp_peer_get_ast_info_by_soc_wifi3
  878. (struct cdp_soc_t *soc_hdl,
  879. uint8_t *ast_mac_addr,
  880. struct cdp_ast_entry_info *ast_entry_info)
  881. {
  882. struct dp_ast_entry *ast_entry = NULL;
  883. struct dp_soc *soc = (struct dp_soc *)soc_hdl;
  884. struct dp_peer *peer = NULL;
  885. qdf_spin_lock_bh(&soc->ast_lock);
  886. ast_entry = dp_peer_ast_hash_find_soc(soc, ast_mac_addr);
  887. if ((!ast_entry) ||
  888. (ast_entry->delete_in_progress && !ast_entry->callback)) {
  889. qdf_spin_unlock_bh(&soc->ast_lock);
  890. return false;
  891. }
  892. peer = dp_peer_get_ref_by_id(soc, ast_entry->peer_id,
  893. DP_MOD_ID_AST);
  894. if (!peer) {
  895. qdf_spin_unlock_bh(&soc->ast_lock);
  896. return false;
  897. }
  898. ast_entry_info->type = ast_entry->type;
  899. ast_entry_info->pdev_id = ast_entry->pdev_id;
  900. ast_entry_info->vdev_id = ast_entry->vdev_id;
  901. ast_entry_info->peer_id = ast_entry->peer_id;
  902. qdf_mem_copy(&ast_entry_info->peer_mac_addr[0],
  903. &peer->mac_addr.raw[0],
  904. QDF_MAC_ADDR_SIZE);
  905. dp_peer_unref_delete(peer, DP_MOD_ID_AST);
  906. qdf_spin_unlock_bh(&soc->ast_lock);
  907. return true;
  908. }
  909. /**
  910. * dp_peer_get_ast_info_by_pdevid_wifi3() - search the soc AST hash table
  911. * and return ast entry information
  912. * if mac address and pdev_id matches
  913. *
  914. * @soc : data path soc handle
  915. * @ast_mac_addr : AST entry mac address
  916. * @pdev_id : pdev_id
  917. * @ast_entry_info : ast entry information
  918. *
  919. * return : true if ast entry found with ast_mac_addr
  920. * false if ast entry not found
  921. */
  922. static bool dp_peer_get_ast_info_by_pdevid_wifi3
  923. (struct cdp_soc_t *soc_hdl,
  924. uint8_t *ast_mac_addr,
  925. uint8_t pdev_id,
  926. struct cdp_ast_entry_info *ast_entry_info)
  927. {
  928. struct dp_ast_entry *ast_entry;
  929. struct dp_soc *soc = (struct dp_soc *)soc_hdl;
  930. struct dp_peer *peer = NULL;
  931. qdf_spin_lock_bh(&soc->ast_lock);
  932. ast_entry = dp_peer_ast_hash_find_by_pdevid(soc, ast_mac_addr,
  933. pdev_id);
  934. if ((!ast_entry) ||
  935. (ast_entry->delete_in_progress && !ast_entry->callback)) {
  936. qdf_spin_unlock_bh(&soc->ast_lock);
  937. return false;
  938. }
  939. peer = dp_peer_get_ref_by_id(soc, ast_entry->peer_id,
  940. DP_MOD_ID_AST);
  941. if (!peer) {
  942. qdf_spin_unlock_bh(&soc->ast_lock);
  943. return false;
  944. }
  945. ast_entry_info->type = ast_entry->type;
  946. ast_entry_info->pdev_id = ast_entry->pdev_id;
  947. ast_entry_info->vdev_id = ast_entry->vdev_id;
  948. ast_entry_info->peer_id = ast_entry->peer_id;
  949. qdf_mem_copy(&ast_entry_info->peer_mac_addr[0],
  950. &peer->mac_addr.raw[0],
  951. QDF_MAC_ADDR_SIZE);
  952. dp_peer_unref_delete(peer, DP_MOD_ID_AST);
  953. qdf_spin_unlock_bh(&soc->ast_lock);
  954. return true;
  955. }
  956. /**
  957. * dp_peer_ast_entry_del_by_soc() - delete the ast entry from soc AST hash table
  958. * with given mac address
  959. *
  960. * @soc : data path soc handle
  961. * @ast_mac_addr : AST entry mac address
  962. * @callback : callback function to called on ast delete response from FW
  963. * @cookie : argument to be passed to callback
  964. *
  965. * return : QDF_STATUS_SUCCESS if ast entry found with ast_mac_addr and delete
  966. * is sent
  967. * QDF_STATUS_E_INVAL false if ast entry not found
  968. */
  969. static QDF_STATUS dp_peer_ast_entry_del_by_soc(struct cdp_soc_t *soc_handle,
  970. uint8_t *mac_addr,
  971. txrx_ast_free_cb callback,
  972. void *cookie)
  973. {
  974. struct dp_soc *soc = (struct dp_soc *)soc_handle;
  975. struct dp_ast_entry *ast_entry = NULL;
  976. txrx_ast_free_cb cb = NULL;
  977. void *arg = NULL;
  978. qdf_spin_lock_bh(&soc->ast_lock);
  979. ast_entry = dp_peer_ast_hash_find_soc(soc, mac_addr);
  980. if (!ast_entry) {
  981. qdf_spin_unlock_bh(&soc->ast_lock);
  982. return -QDF_STATUS_E_INVAL;
  983. }
  984. if (ast_entry->callback) {
  985. cb = ast_entry->callback;
  986. arg = ast_entry->cookie;
  987. }
  988. ast_entry->callback = callback;
  989. ast_entry->cookie = cookie;
  990. /*
  991. * if delete_in_progress is set AST delete is sent to target
  992. * and host is waiting for response should not send delete
  993. * again
  994. */
  995. if (!ast_entry->delete_in_progress)
  996. dp_peer_del_ast(soc, ast_entry);
  997. qdf_spin_unlock_bh(&soc->ast_lock);
  998. if (cb) {
  999. cb(soc->ctrl_psoc,
  1000. dp_soc_to_cdp_soc(soc),
  1001. arg,
  1002. CDP_TXRX_AST_DELETE_IN_PROGRESS);
  1003. }
  1004. return QDF_STATUS_SUCCESS;
  1005. }
  1006. /**
  1007. * dp_peer_ast_entry_del_by_pdev() - delete the ast entry from soc AST hash
  1008. * table if mac address and pdev_id matches
  1009. *
  1010. * @soc : data path soc handle
  1011. * @ast_mac_addr : AST entry mac address
  1012. * @pdev_id : pdev id
  1013. * @callback : callback function to called on ast delete response from FW
  1014. * @cookie : argument to be passed to callback
  1015. *
  1016. * return : QDF_STATUS_SUCCESS if ast entry found with ast_mac_addr and delete
  1017. * is sent
  1018. * QDF_STATUS_E_INVAL false if ast entry not found
  1019. */
  1020. static QDF_STATUS dp_peer_ast_entry_del_by_pdev(struct cdp_soc_t *soc_handle,
  1021. uint8_t *mac_addr,
  1022. uint8_t pdev_id,
  1023. txrx_ast_free_cb callback,
  1024. void *cookie)
  1025. {
  1026. struct dp_soc *soc = (struct dp_soc *)soc_handle;
  1027. struct dp_ast_entry *ast_entry;
  1028. txrx_ast_free_cb cb = NULL;
  1029. void *arg = NULL;
  1030. qdf_spin_lock_bh(&soc->ast_lock);
  1031. ast_entry = dp_peer_ast_hash_find_by_pdevid(soc, mac_addr, pdev_id);
  1032. if (!ast_entry) {
  1033. qdf_spin_unlock_bh(&soc->ast_lock);
  1034. return -QDF_STATUS_E_INVAL;
  1035. }
  1036. if (ast_entry->callback) {
  1037. cb = ast_entry->callback;
  1038. arg = ast_entry->cookie;
  1039. }
  1040. ast_entry->callback = callback;
  1041. ast_entry->cookie = cookie;
  1042. /*
  1043. * if delete_in_progress is set AST delete is sent to target
  1044. * and host is waiting for response should not sent delete
  1045. * again
  1046. */
  1047. if (!ast_entry->delete_in_progress)
  1048. dp_peer_del_ast(soc, ast_entry);
  1049. qdf_spin_unlock_bh(&soc->ast_lock);
  1050. if (cb) {
  1051. cb(soc->ctrl_psoc,
  1052. dp_soc_to_cdp_soc(soc),
  1053. arg,
  1054. CDP_TXRX_AST_DELETE_IN_PROGRESS);
  1055. }
  1056. return QDF_STATUS_SUCCESS;
  1057. }
  1058. /**
  1059. * dp_srng_find_ring_in_mask() - find which ext_group a ring belongs
  1060. * @ring_num: ring num of the ring being queried
  1061. * @grp_mask: the grp_mask array for the ring type in question.
  1062. *
  1063. * The grp_mask array is indexed by group number and the bit fields correspond
  1064. * to ring numbers. We are finding which interrupt group a ring belongs to.
  1065. *
  1066. * Return: the index in the grp_mask array with the ring number.
  1067. * -QDF_STATUS_E_NOENT if no entry is found
  1068. */
  1069. static int dp_srng_find_ring_in_mask(int ring_num, uint8_t *grp_mask)
  1070. {
  1071. int ext_group_num;
  1072. uint8_t mask = 1 << ring_num;
  1073. for (ext_group_num = 0; ext_group_num < WLAN_CFG_INT_NUM_CONTEXTS;
  1074. ext_group_num++) {
  1075. if (mask & grp_mask[ext_group_num])
  1076. return ext_group_num;
  1077. }
  1078. return -QDF_STATUS_E_NOENT;
  1079. }
  1080. /**
  1081. * dp_is_msi_group_number_invalid() - check msi_group_number valid or not
  1082. * @msi_group_number: MSI group number.
  1083. * @msi_data_count: MSI data count.
  1084. *
  1085. * Return: true if msi_group_number is invalid.
  1086. */
  1087. #ifdef WLAN_ONE_MSI_VECTOR
  1088. static bool dp_is_msi_group_number_invalid(int msi_group_number,
  1089. int msi_data_count)
  1090. {
  1091. return false;
  1092. }
  1093. #else
  1094. static bool dp_is_msi_group_number_invalid(int msi_group_number,
  1095. int msi_data_count)
  1096. {
  1097. return msi_group_number > msi_data_count;
  1098. }
  1099. #endif
  1100. #ifdef WLAN_FEATURE_NEAR_FULL_IRQ
  1101. /**
  1102. * dp_is_reo_ring_num_in_nf_grp1() - Check if the current reo ring is part of
  1103. * rx_near_full_grp1 mask
  1104. * @soc: Datapath SoC Handle
  1105. * @ring_num: REO ring number
  1106. *
  1107. * Return: 1 if the ring_num belongs to reo_nf_grp1,
  1108. * 0, otherwise.
  1109. */
  1110. static inline int
  1111. dp_is_reo_ring_num_in_nf_grp1(struct dp_soc *soc, int ring_num)
  1112. {
  1113. return (WLAN_CFG_RX_NEAR_FULL_IRQ_MASK_1 & (1 << ring_num));
  1114. }
  1115. /**
  1116. * dp_is_reo_ring_num_in_nf_grp2() - Check if the current reo ring is part of
  1117. * rx_near_full_grp2 mask
  1118. * @soc: Datapath SoC Handle
  1119. * @ring_num: REO ring number
  1120. *
  1121. * Return: 1 if the ring_num belongs to reo_nf_grp2,
  1122. * 0, otherwise.
  1123. */
  1124. static inline int
  1125. dp_is_reo_ring_num_in_nf_grp2(struct dp_soc *soc, int ring_num)
  1126. {
  1127. return (WLAN_CFG_RX_NEAR_FULL_IRQ_MASK_2 & (1 << ring_num));
  1128. }
  1129. /**
  1130. * dp_srng_get_near_full_irq_mask() - Get near-full irq mask for a particular
  1131. * ring type and number
  1132. * @soc: Datapath SoC handle
  1133. * @ring_type: SRNG type
  1134. * @ring_num: ring num
  1135. *
  1136. * Return: near ful irq mask pointer
  1137. */
  1138. static inline
  1139. uint8_t *dp_srng_get_near_full_irq_mask(struct dp_soc *soc,
  1140. enum hal_ring_type ring_type,
  1141. int ring_num)
  1142. {
  1143. uint8_t *nf_irq_mask = NULL;
  1144. switch (ring_type) {
  1145. case WBM2SW_RELEASE:
  1146. if (ring_num != WBM2SW_REL_ERR_RING_NUM) {
  1147. nf_irq_mask = &soc->wlan_cfg_ctx->
  1148. int_tx_ring_near_full_irq_mask[0];
  1149. }
  1150. break;
  1151. case REO_DST:
  1152. if (dp_is_reo_ring_num_in_nf_grp1(soc, ring_num))
  1153. nf_irq_mask =
  1154. &soc->wlan_cfg_ctx->int_rx_ring_near_full_irq_1_mask[0];
  1155. else if (dp_is_reo_ring_num_in_nf_grp2(soc, ring_num))
  1156. nf_irq_mask =
  1157. &soc->wlan_cfg_ctx->int_rx_ring_near_full_irq_2_mask[0];
  1158. else
  1159. qdf_assert(0);
  1160. break;
  1161. default:
  1162. break;
  1163. }
  1164. return nf_irq_mask;
  1165. }
  1166. /**
  1167. * dp_srng_set_msi2_ring_params() - Set the msi2 addr/data in the ring params
  1168. * @soc: Datapath SoC handle
  1169. * @ring_params: srng params handle
  1170. * @msi2_addr: MSI2 addr to be set for the SRNG
  1171. * @msi2_data: MSI2 data to be set for the SRNG
  1172. *
  1173. * Return: None
  1174. */
  1175. static inline
  1176. void dp_srng_set_msi2_ring_params(struct dp_soc *soc,
  1177. struct hal_srng_params *ring_params,
  1178. qdf_dma_addr_t msi2_addr,
  1179. uint32_t msi2_data)
  1180. {
  1181. ring_params->msi2_addr = msi2_addr;
  1182. ring_params->msi2_data = msi2_data;
  1183. }
  1184. /**
  1185. * dp_srng_msi2_setup() - Setup MSI2 details for near full IRQ of an SRNG
  1186. * @soc: Datapath SoC handle
  1187. * @ring_params: ring_params for SRNG
  1188. * @ring_type: SENG type
  1189. * @ring_num: ring number for the SRNG
  1190. * @nf_msi_grp_num: near full msi group number
  1191. *
  1192. * Return: None
  1193. */
  1194. static inline void
  1195. dp_srng_msi2_setup(struct dp_soc *soc,
  1196. struct hal_srng_params *ring_params,
  1197. int ring_type, int ring_num, int nf_msi_grp_num)
  1198. {
  1199. uint32_t msi_data_start, msi_irq_start, addr_low, addr_high;
  1200. int msi_data_count, ret;
  1201. ret = pld_get_user_msi_assignment(soc->osdev->dev, "DP",
  1202. &msi_data_count, &msi_data_start,
  1203. &msi_irq_start);
  1204. if (ret)
  1205. return;
  1206. if (nf_msi_grp_num < 0) {
  1207. dp_init_info("%pK: ring near full IRQ not part of an ext_group; ring_type: %d,ring_num %d",
  1208. soc, ring_type, ring_num);
  1209. ring_params->msi2_addr = 0;
  1210. ring_params->msi2_data = 0;
  1211. return;
  1212. }
  1213. if (dp_is_msi_group_number_invalid(nf_msi_grp_num, msi_data_count)) {
  1214. dp_init_warn("%pK: 2 msi_groups will share an msi for near full IRQ; msi_group_num %d",
  1215. soc, nf_msi_grp_num);
  1216. QDF_ASSERT(0);
  1217. }
  1218. pld_get_msi_address(soc->osdev->dev, &addr_low, &addr_high);
  1219. ring_params->nf_irq_support = 1;
  1220. ring_params->msi2_addr = addr_low;
  1221. ring_params->msi2_addr |= (qdf_dma_addr_t)(((uint64_t)addr_high) << 32);
  1222. ring_params->msi2_data = (nf_msi_grp_num % msi_data_count)
  1223. + msi_data_start;
  1224. ring_params->flags |= HAL_SRNG_MSI_INTR;
  1225. }
  1226. /* Percentage of ring entries considered as nearly full */
  1227. #define DP_NF_HIGH_THRESH_PERCENTAGE 75
  1228. /* Percentage of ring entries considered as critically full */
  1229. #define DP_NF_CRIT_THRESH_PERCENTAGE 90
  1230. /* Percentage of ring entries considered as safe threshold */
  1231. #define DP_NF_SAFE_THRESH_PERCENTAGE 50
  1232. /**
  1233. * dp_srng_configure_nf_interrupt_thresholds() - Configure the thresholds for
  1234. * near full irq
  1235. * @soc: Datapath SoC handle
  1236. * @ring_params: ring params for SRNG
  1237. * @ring_type: ring type
  1238. */
  1239. static inline void
  1240. dp_srng_configure_nf_interrupt_thresholds(struct dp_soc *soc,
  1241. struct hal_srng_params *ring_params,
  1242. int ring_type)
  1243. {
  1244. if (ring_params->nf_irq_support) {
  1245. ring_params->high_thresh = (ring_params->num_entries *
  1246. DP_NF_HIGH_THRESH_PERCENTAGE) / 100;
  1247. ring_params->crit_thresh = (ring_params->num_entries *
  1248. DP_NF_CRIT_THRESH_PERCENTAGE) / 100;
  1249. ring_params->safe_thresh = (ring_params->num_entries *
  1250. DP_NF_SAFE_THRESH_PERCENTAGE) /100;
  1251. }
  1252. }
  1253. /**
  1254. * dp_srng_set_nf_thresholds() - Set the near full thresholds to srng data
  1255. * structure from the ring params
  1256. * @soc: Datapath SoC handle
  1257. * @srng: SRNG handle
  1258. * @ring_params: ring params for a SRNG
  1259. *
  1260. * Return: None
  1261. */
  1262. static inline void
  1263. dp_srng_set_nf_thresholds(struct dp_soc *soc, struct dp_srng *srng,
  1264. struct hal_srng_params *ring_params)
  1265. {
  1266. srng->crit_thresh = ring_params->crit_thresh;
  1267. srng->safe_thresh = ring_params->safe_thresh;
  1268. }
  1269. #else
  1270. static inline
  1271. uint8_t *dp_srng_get_near_full_irq_mask(struct dp_soc *soc,
  1272. enum hal_ring_type ring_type,
  1273. int ring_num)
  1274. {
  1275. return NULL;
  1276. }
  1277. static inline
  1278. void dp_srng_set_msi2_ring_params(struct dp_soc *soc,
  1279. struct hal_srng_params *ring_params,
  1280. qdf_dma_addr_t msi2_addr,
  1281. uint32_t msi2_data)
  1282. {
  1283. }
  1284. static inline void
  1285. dp_srng_msi2_setup(struct dp_soc *soc,
  1286. struct hal_srng_params *ring_params,
  1287. int ring_type, int ring_num, int nf_msi_grp_num)
  1288. {
  1289. }
  1290. static inline void
  1291. dp_srng_configure_nf_interrupt_thresholds(struct dp_soc *soc,
  1292. struct hal_srng_params *ring_params,
  1293. int ring_type)
  1294. {
  1295. }
  1296. static inline void
  1297. dp_srng_set_nf_thresholds(struct dp_soc *soc, struct dp_srng *srng,
  1298. struct hal_srng_params *ring_params)
  1299. {
  1300. }
  1301. #endif
  1302. static int dp_srng_calculate_msi_group(struct dp_soc *soc,
  1303. enum hal_ring_type ring_type,
  1304. int ring_num,
  1305. int *reg_msi_grp_num,
  1306. bool nf_irq_support,
  1307. int *nf_msi_grp_num)
  1308. {
  1309. struct wlan_cfg_dp_soc_ctxt *cfg_ctx = soc->wlan_cfg_ctx;
  1310. uint8_t *grp_mask, *nf_irq_mask = NULL;
  1311. bool nf_irq_enabled = false;
  1312. switch (ring_type) {
  1313. case WBM2SW_RELEASE:
  1314. if (ring_num == WBM2SW_REL_ERR_RING_NUM) {
  1315. /* dp_rx_wbm_err_process - soc->rx_rel_ring */
  1316. grp_mask = &cfg_ctx->int_rx_wbm_rel_ring_mask[0];
  1317. ring_num = 0;
  1318. } else { /* dp_tx_comp_handler - soc->tx_comp_ring */
  1319. grp_mask = &soc->wlan_cfg_ctx->int_tx_ring_mask[0];
  1320. nf_irq_mask = dp_srng_get_near_full_irq_mask(soc,
  1321. ring_type,
  1322. ring_num);
  1323. if (nf_irq_mask)
  1324. nf_irq_enabled = true;
  1325. }
  1326. break;
  1327. case REO_EXCEPTION:
  1328. /* dp_rx_err_process - &soc->reo_exception_ring */
  1329. grp_mask = &soc->wlan_cfg_ctx->int_rx_err_ring_mask[0];
  1330. break;
  1331. case REO_DST:
  1332. /* dp_rx_process - soc->reo_dest_ring */
  1333. grp_mask = &soc->wlan_cfg_ctx->int_rx_ring_mask[0];
  1334. nf_irq_mask = dp_srng_get_near_full_irq_mask(soc, ring_type,
  1335. ring_num);
  1336. if (nf_irq_mask)
  1337. nf_irq_enabled = true;
  1338. break;
  1339. case REO_STATUS:
  1340. /* dp_reo_status_ring_handler - soc->reo_status_ring */
  1341. grp_mask = &soc->wlan_cfg_ctx->int_reo_status_ring_mask[0];
  1342. break;
  1343. /* dp_rx_mon_status_srng_process - pdev->rxdma_mon_status_ring*/
  1344. case RXDMA_MONITOR_STATUS:
  1345. /* dp_rx_mon_dest_process - pdev->rxdma_mon_dst_ring */
  1346. case RXDMA_MONITOR_DST:
  1347. /* dp_mon_process */
  1348. grp_mask = &soc->wlan_cfg_ctx->int_rx_mon_ring_mask[0];
  1349. break;
  1350. case RXDMA_DST:
  1351. /* dp_rxdma_err_process */
  1352. grp_mask = &soc->wlan_cfg_ctx->int_rxdma2host_ring_mask[0];
  1353. break;
  1354. case RXDMA_BUF:
  1355. grp_mask = &soc->wlan_cfg_ctx->int_host2rxdma_ring_mask[0];
  1356. break;
  1357. case RXDMA_MONITOR_BUF:
  1358. grp_mask = &soc->wlan_cfg_ctx->int_host2rxdma_mon_ring_mask[0];
  1359. break;
  1360. case TCL_DATA:
  1361. /* CMD_CREDIT_RING is used as command in 8074 and credit in 9000 */
  1362. case TCL_CMD_CREDIT:
  1363. case REO_CMD:
  1364. case SW2WBM_RELEASE:
  1365. case WBM_IDLE_LINK:
  1366. /* normally empty SW_TO_HW rings */
  1367. return -QDF_STATUS_E_NOENT;
  1368. break;
  1369. case TCL_STATUS:
  1370. case REO_REINJECT:
  1371. /* misc unused rings */
  1372. return -QDF_STATUS_E_NOENT;
  1373. break;
  1374. case CE_SRC:
  1375. case CE_DST:
  1376. case CE_DST_STATUS:
  1377. /* CE_rings - currently handled by hif */
  1378. default:
  1379. return -QDF_STATUS_E_NOENT;
  1380. break;
  1381. }
  1382. *reg_msi_grp_num = dp_srng_find_ring_in_mask(ring_num, grp_mask);
  1383. if (nf_irq_support && nf_irq_enabled) {
  1384. *nf_msi_grp_num = dp_srng_find_ring_in_mask(ring_num,
  1385. nf_irq_mask);
  1386. }
  1387. return QDF_STATUS_SUCCESS;
  1388. }
  1389. /*
  1390. * dp_get_num_msi_available()- API to get number of MSIs available
  1391. * @dp_soc: DP soc Handle
  1392. * @interrupt_mode: Mode of interrupts
  1393. *
  1394. * Return: Number of MSIs available or 0 in case of integrated
  1395. */
  1396. #if defined(WLAN_MAX_PDEVS) && (WLAN_MAX_PDEVS == 1)
  1397. static int dp_get_num_msi_available(struct dp_soc *soc, int interrupt_mode)
  1398. {
  1399. return 0;
  1400. }
  1401. #else
  1402. /*
  1403. * dp_get_num_msi_available()- API to get number of MSIs available
  1404. * @dp_soc: DP soc Handle
  1405. * @interrupt_mode: Mode of interrupts
  1406. *
  1407. * Return: Number of MSIs available or 0 in case of integrated
  1408. */
  1409. static int dp_get_num_msi_available(struct dp_soc *soc, int interrupt_mode)
  1410. {
  1411. int msi_data_count;
  1412. int msi_data_start;
  1413. int msi_irq_start;
  1414. int ret;
  1415. if (interrupt_mode == DP_INTR_INTEGRATED) {
  1416. return 0;
  1417. } else if (interrupt_mode == DP_INTR_MSI || interrupt_mode ==
  1418. DP_INTR_POLL) {
  1419. ret = pld_get_user_msi_assignment(soc->osdev->dev, "DP",
  1420. &msi_data_count,
  1421. &msi_data_start,
  1422. &msi_irq_start);
  1423. if (ret) {
  1424. qdf_err("Unable to get DP MSI assignment %d",
  1425. interrupt_mode);
  1426. return -EINVAL;
  1427. }
  1428. return msi_data_count;
  1429. }
  1430. qdf_err("Interrupt mode invalid %d", interrupt_mode);
  1431. return -EINVAL;
  1432. }
  1433. #endif
  1434. static void dp_srng_msi_setup(struct dp_soc *soc, struct hal_srng_params
  1435. *ring_params, int ring_type, int ring_num)
  1436. {
  1437. int reg_msi_grp_num;
  1438. /*
  1439. * nf_msi_grp_num needs to be initialized with negative value,
  1440. * to avoid configuring near-full msi for WBM2SW3 ring
  1441. */
  1442. int nf_msi_grp_num = -1;
  1443. int msi_data_count;
  1444. int ret;
  1445. uint32_t msi_data_start, msi_irq_start, addr_low, addr_high;
  1446. bool nf_irq_support;
  1447. ret = pld_get_user_msi_assignment(soc->osdev->dev, "DP",
  1448. &msi_data_count, &msi_data_start,
  1449. &msi_irq_start);
  1450. if (ret)
  1451. return;
  1452. nf_irq_support = hal_srng_is_near_full_irq_supported(soc->hal_soc,
  1453. ring_type,
  1454. ring_num);
  1455. ret = dp_srng_calculate_msi_group(soc, ring_type, ring_num,
  1456. &reg_msi_grp_num,
  1457. nf_irq_support,
  1458. &nf_msi_grp_num);
  1459. if (ret < 0) {
  1460. dp_init_info("%pK: ring not part of an ext_group; ring_type: %d,ring_num %d",
  1461. soc, ring_type, ring_num);
  1462. ring_params->msi_addr = 0;
  1463. ring_params->msi_data = 0;
  1464. dp_srng_set_msi2_ring_params(soc, ring_params, 0, 0);
  1465. return;
  1466. }
  1467. if (reg_msi_grp_num < 0) {
  1468. dp_init_info("%pK: ring not part of an ext_group; ring_type: %d,ring_num %d",
  1469. soc, ring_type, ring_num);
  1470. ring_params->msi_addr = 0;
  1471. ring_params->msi_data = 0;
  1472. goto configure_msi2;
  1473. }
  1474. if (dp_is_msi_group_number_invalid(reg_msi_grp_num, msi_data_count)) {
  1475. dp_init_warn("%pK: 2 msi_groups will share an msi; msi_group_num %d",
  1476. soc, reg_msi_grp_num);
  1477. QDF_ASSERT(0);
  1478. }
  1479. pld_get_msi_address(soc->osdev->dev, &addr_low, &addr_high);
  1480. ring_params->msi_addr = addr_low;
  1481. ring_params->msi_addr |= (qdf_dma_addr_t)(((uint64_t)addr_high) << 32);
  1482. ring_params->msi_data = (reg_msi_grp_num % msi_data_count)
  1483. + msi_data_start;
  1484. ring_params->flags |= HAL_SRNG_MSI_INTR;
  1485. dp_debug("ring type %u ring_num %u msi->data %u msi_addr %llx",
  1486. ring_type, ring_num, ring_params->msi_data,
  1487. (uint64_t)ring_params->msi_addr);
  1488. configure_msi2:
  1489. if (!nf_irq_support) {
  1490. dp_srng_set_msi2_ring_params(soc, ring_params, 0, 0);
  1491. return;
  1492. }
  1493. dp_srng_msi2_setup(soc, ring_params, ring_type, ring_num,
  1494. nf_msi_grp_num);
  1495. }
  1496. #ifdef FEATURE_AST
  1497. /**
  1498. * dp_print_peer_ast_entries() - Dump AST entries of peer
  1499. * @soc: Datapath soc handle
  1500. * @peer: Datapath peer
  1501. * @arg: argument to iterate function
  1502. *
  1503. * return void
  1504. */
  1505. static void
  1506. dp_print_peer_ast_entries(struct dp_soc *soc, struct dp_peer *peer, void *arg)
  1507. {
  1508. struct dp_ast_entry *ase, *tmp_ase;
  1509. uint32_t num_entries = 0;
  1510. char type[CDP_TXRX_AST_TYPE_MAX][10] = {
  1511. "NONE", "STATIC", "SELF", "WDS", "HMWDS", "BSS",
  1512. "DA", "HMWDS_SEC"};
  1513. DP_PEER_ITERATE_ASE_LIST(peer, ase, tmp_ase) {
  1514. DP_PRINT_STATS("%6d mac_addr = "QDF_MAC_ADDR_FMT
  1515. " peer_mac_addr = "QDF_MAC_ADDR_FMT
  1516. " peer_id = %u"
  1517. " type = %s"
  1518. " next_hop = %d"
  1519. " is_active = %d"
  1520. " ast_idx = %d"
  1521. " ast_hash = %d"
  1522. " delete_in_progress = %d"
  1523. " pdev_id = %d"
  1524. " vdev_id = %d",
  1525. ++num_entries,
  1526. QDF_MAC_ADDR_REF(ase->mac_addr.raw),
  1527. QDF_MAC_ADDR_REF(peer->mac_addr.raw),
  1528. ase->peer_id,
  1529. type[ase->type],
  1530. ase->next_hop,
  1531. ase->is_active,
  1532. ase->ast_idx,
  1533. ase->ast_hash_value,
  1534. ase->delete_in_progress,
  1535. ase->pdev_id,
  1536. ase->vdev_id);
  1537. }
  1538. }
  1539. /**
  1540. * dp_print_ast_stats() - Dump AST table contents
  1541. * @soc: Datapath soc handle
  1542. *
  1543. * return void
  1544. */
  1545. void dp_print_ast_stats(struct dp_soc *soc)
  1546. {
  1547. DP_PRINT_STATS("AST Stats:");
  1548. DP_PRINT_STATS(" Entries Added = %d", soc->stats.ast.added);
  1549. DP_PRINT_STATS(" Entries Deleted = %d", soc->stats.ast.deleted);
  1550. DP_PRINT_STATS(" Entries Agedout = %d", soc->stats.ast.aged_out);
  1551. DP_PRINT_STATS(" Entries MAP ERR = %d", soc->stats.ast.map_err);
  1552. DP_PRINT_STATS(" Entries Mismatch ERR = %d",
  1553. soc->stats.ast.ast_mismatch);
  1554. DP_PRINT_STATS("AST Table:");
  1555. qdf_spin_lock_bh(&soc->ast_lock);
  1556. dp_soc_iterate_peer(soc, dp_print_peer_ast_entries, NULL,
  1557. DP_MOD_ID_GENERIC_STATS);
  1558. qdf_spin_unlock_bh(&soc->ast_lock);
  1559. }
  1560. #else
  1561. void dp_print_ast_stats(struct dp_soc *soc)
  1562. {
  1563. DP_PRINT_STATS("AST Stats not available.Enable FEATURE_AST");
  1564. return;
  1565. }
  1566. #endif
  1567. /**
  1568. * dp_print_peer_info() - Dump peer info
  1569. * @soc: Datapath soc handle
  1570. * @peer: Datapath peer handle
  1571. * @arg: argument to iter function
  1572. *
  1573. * return void
  1574. */
  1575. static void
  1576. dp_print_peer_info(struct dp_soc *soc, struct dp_peer *peer, void *arg)
  1577. {
  1578. DP_PRINT_STATS(" peer_mac_addr = "QDF_MAC_ADDR_FMT
  1579. " nawds_enabled = %d"
  1580. " bss_peer = %d"
  1581. " wds_enabled = %d"
  1582. " tx_cap_enabled = %d"
  1583. " rx_cap_enabled = %d"
  1584. " peer id = %d",
  1585. QDF_MAC_ADDR_REF(peer->mac_addr.raw),
  1586. peer->nawds_enabled,
  1587. peer->bss_peer,
  1588. peer->wds_enabled,
  1589. peer->tx_cap_enabled,
  1590. peer->rx_cap_enabled,
  1591. peer->peer_id);
  1592. }
  1593. /**
  1594. * dp_print_peer_table() - Dump all Peer stats
  1595. * @vdev: Datapath Vdev handle
  1596. *
  1597. * return void
  1598. */
  1599. static void dp_print_peer_table(struct dp_vdev *vdev)
  1600. {
  1601. DP_PRINT_STATS("Dumping Peer Table Stats:");
  1602. dp_vdev_iterate_peer(vdev, dp_print_peer_info, NULL,
  1603. DP_MOD_ID_GENERIC_STATS);
  1604. }
  1605. #ifdef WLAN_DP_PER_RING_TYPE_CONFIG
  1606. /**
  1607. * dp_srng_configure_interrupt_thresholds() - Retrieve interrupt
  1608. * threshold values from the wlan_srng_cfg table for each ring type
  1609. * @soc: device handle
  1610. * @ring_params: per ring specific parameters
  1611. * @ring_type: Ring type
  1612. * @ring_num: Ring number for a given ring type
  1613. *
  1614. * Fill the ring params with the interrupt threshold
  1615. * configuration parameters available in the per ring type wlan_srng_cfg
  1616. * table.
  1617. *
  1618. * Return: None
  1619. */
  1620. static void
  1621. dp_srng_configure_interrupt_thresholds(struct dp_soc *soc,
  1622. struct hal_srng_params *ring_params,
  1623. int ring_type, int ring_num,
  1624. int num_entries)
  1625. {
  1626. if (ring_type == REO_DST) {
  1627. ring_params->intr_timer_thres_us =
  1628. wlan_cfg_get_int_timer_threshold_rx(soc->wlan_cfg_ctx);
  1629. ring_params->intr_batch_cntr_thres_entries =
  1630. wlan_cfg_get_int_batch_threshold_rx(soc->wlan_cfg_ctx);
  1631. } else if (ring_type == WBM2SW_RELEASE && (ring_num == 3)) {
  1632. ring_params->intr_timer_thres_us =
  1633. wlan_cfg_get_int_timer_threshold_other(soc->wlan_cfg_ctx);
  1634. ring_params->intr_batch_cntr_thres_entries =
  1635. wlan_cfg_get_int_batch_threshold_other(soc->wlan_cfg_ctx);
  1636. } else {
  1637. ring_params->intr_timer_thres_us =
  1638. soc->wlan_srng_cfg[ring_type].timer_threshold;
  1639. ring_params->intr_batch_cntr_thres_entries =
  1640. soc->wlan_srng_cfg[ring_type].batch_count_threshold;
  1641. }
  1642. ring_params->low_threshold =
  1643. soc->wlan_srng_cfg[ring_type].low_threshold;
  1644. if (ring_params->low_threshold)
  1645. ring_params->flags |= HAL_SRNG_LOW_THRES_INTR_ENABLE;
  1646. dp_srng_configure_nf_interrupt_thresholds(soc, ring_params, ring_type);
  1647. }
  1648. #else
  1649. static void
  1650. dp_srng_configure_interrupt_thresholds(struct dp_soc *soc,
  1651. struct hal_srng_params *ring_params,
  1652. int ring_type, int ring_num,
  1653. int num_entries)
  1654. {
  1655. if (ring_type == REO_DST) {
  1656. ring_params->intr_timer_thres_us =
  1657. wlan_cfg_get_int_timer_threshold_rx(soc->wlan_cfg_ctx);
  1658. ring_params->intr_batch_cntr_thres_entries =
  1659. wlan_cfg_get_int_batch_threshold_rx(soc->wlan_cfg_ctx);
  1660. } else if (ring_type == WBM2SW_RELEASE && (ring_num < 3)) {
  1661. ring_params->intr_timer_thres_us =
  1662. wlan_cfg_get_int_timer_threshold_tx(soc->wlan_cfg_ctx);
  1663. ring_params->intr_batch_cntr_thres_entries =
  1664. wlan_cfg_get_int_batch_threshold_tx(soc->wlan_cfg_ctx);
  1665. } else {
  1666. ring_params->intr_timer_thres_us =
  1667. wlan_cfg_get_int_timer_threshold_other(soc->wlan_cfg_ctx);
  1668. ring_params->intr_batch_cntr_thres_entries =
  1669. wlan_cfg_get_int_batch_threshold_other(soc->wlan_cfg_ctx);
  1670. }
  1671. /* Enable low threshold interrupts for rx buffer rings (regular and
  1672. * monitor buffer rings.
  1673. * TODO: See if this is required for any other ring
  1674. */
  1675. if ((ring_type == RXDMA_BUF) || (ring_type == RXDMA_MONITOR_BUF) ||
  1676. (ring_type == RXDMA_MONITOR_STATUS)) {
  1677. /* TODO: Setting low threshold to 1/8th of ring size
  1678. * see if this needs to be configurable
  1679. */
  1680. ring_params->low_threshold = num_entries >> 3;
  1681. ring_params->intr_timer_thres_us =
  1682. wlan_cfg_get_int_timer_threshold_rx(soc->wlan_cfg_ctx);
  1683. ring_params->flags |= HAL_SRNG_LOW_THRES_INTR_ENABLE;
  1684. ring_params->intr_batch_cntr_thres_entries = 0;
  1685. }
  1686. /* During initialisation monitor rings are only filled with
  1687. * MON_BUF_MIN_ENTRIES entries. So low threshold needs to be set to
  1688. * a value less than that. Low threshold value is reconfigured again
  1689. * to 1/8th of the ring size when monitor vap is created.
  1690. */
  1691. if (ring_type == RXDMA_MONITOR_BUF)
  1692. ring_params->low_threshold = MON_BUF_MIN_ENTRIES >> 1;
  1693. /* In case of PCI chipsets, we dont have PPDU end interrupts,
  1694. * so MONITOR STATUS ring is reaped by receiving MSI from srng.
  1695. * Keep batch threshold as 8 so that interrupt is received for
  1696. * every 4 packets in MONITOR_STATUS ring
  1697. */
  1698. if ((ring_type == RXDMA_MONITOR_STATUS) &&
  1699. (soc->intr_mode == DP_INTR_MSI))
  1700. ring_params->intr_batch_cntr_thres_entries = 4;
  1701. }
  1702. #endif
  1703. #ifdef DP_MEM_PRE_ALLOC
  1704. void *dp_context_alloc_mem(struct dp_soc *soc, enum dp_ctxt_type ctxt_type,
  1705. size_t ctxt_size)
  1706. {
  1707. void *ctxt_mem;
  1708. if (!soc->cdp_soc.ol_ops->dp_prealloc_get_context) {
  1709. dp_warn("dp_prealloc_get_context null!");
  1710. goto dynamic_alloc;
  1711. }
  1712. ctxt_mem = soc->cdp_soc.ol_ops->dp_prealloc_get_context(ctxt_type);
  1713. if (ctxt_mem)
  1714. goto end;
  1715. dynamic_alloc:
  1716. dp_info("Pre-alloc of ctxt failed. Dynamic allocation");
  1717. ctxt_mem = qdf_mem_malloc(ctxt_size);
  1718. end:
  1719. return ctxt_mem;
  1720. }
  1721. void dp_context_free_mem(struct dp_soc *soc, enum dp_ctxt_type ctxt_type,
  1722. void *vaddr)
  1723. {
  1724. QDF_STATUS status;
  1725. if (soc->cdp_soc.ol_ops->dp_prealloc_put_context) {
  1726. status = soc->cdp_soc.ol_ops->dp_prealloc_put_context(
  1727. ctxt_type,
  1728. vaddr);
  1729. } else {
  1730. dp_warn("dp_prealloc_get_context null!");
  1731. status = QDF_STATUS_E_NOSUPPORT;
  1732. }
  1733. if (QDF_IS_STATUS_ERROR(status)) {
  1734. dp_info("Context not pre-allocated");
  1735. qdf_mem_free(vaddr);
  1736. }
  1737. }
  1738. static inline
  1739. void *dp_srng_aligned_mem_alloc_consistent(struct dp_soc *soc,
  1740. struct dp_srng *srng,
  1741. uint32_t ring_type)
  1742. {
  1743. void *mem;
  1744. qdf_assert(!srng->is_mem_prealloc);
  1745. if (!soc->cdp_soc.ol_ops->dp_prealloc_get_consistent) {
  1746. dp_warn("dp_prealloc_get_consistent is null!");
  1747. goto qdf;
  1748. }
  1749. mem =
  1750. soc->cdp_soc.ol_ops->dp_prealloc_get_consistent
  1751. (&srng->alloc_size,
  1752. &srng->base_vaddr_unaligned,
  1753. &srng->base_paddr_unaligned,
  1754. &srng->base_paddr_aligned,
  1755. DP_RING_BASE_ALIGN, ring_type);
  1756. if (mem) {
  1757. srng->is_mem_prealloc = true;
  1758. goto end;
  1759. }
  1760. qdf:
  1761. mem = qdf_aligned_mem_alloc_consistent(soc->osdev, &srng->alloc_size,
  1762. &srng->base_vaddr_unaligned,
  1763. &srng->base_paddr_unaligned,
  1764. &srng->base_paddr_aligned,
  1765. DP_RING_BASE_ALIGN);
  1766. end:
  1767. dp_info("%s memory %pK dp_srng %pK ring_type %d alloc_size %d num_entries %d",
  1768. srng->is_mem_prealloc ? "pre-alloc" : "dynamic-alloc", mem,
  1769. srng, ring_type, srng->alloc_size, srng->num_entries);
  1770. return mem;
  1771. }
  1772. static inline void dp_srng_mem_free_consistent(struct dp_soc *soc,
  1773. struct dp_srng *srng)
  1774. {
  1775. if (srng->is_mem_prealloc) {
  1776. if (!soc->cdp_soc.ol_ops->dp_prealloc_put_consistent) {
  1777. dp_warn("dp_prealloc_put_consistent is null!");
  1778. QDF_BUG(0);
  1779. return;
  1780. }
  1781. soc->cdp_soc.ol_ops->dp_prealloc_put_consistent
  1782. (srng->alloc_size,
  1783. srng->base_vaddr_unaligned,
  1784. srng->base_paddr_unaligned);
  1785. } else {
  1786. qdf_mem_free_consistent(soc->osdev, soc->osdev->dev,
  1787. srng->alloc_size,
  1788. srng->base_vaddr_unaligned,
  1789. srng->base_paddr_unaligned, 0);
  1790. }
  1791. }
  1792. void dp_desc_multi_pages_mem_alloc(struct dp_soc *soc,
  1793. enum dp_desc_type desc_type,
  1794. struct qdf_mem_multi_page_t *pages,
  1795. size_t element_size,
  1796. uint16_t element_num,
  1797. qdf_dma_context_t memctxt,
  1798. bool cacheable)
  1799. {
  1800. if (!soc->cdp_soc.ol_ops->dp_get_multi_pages) {
  1801. dp_warn("dp_get_multi_pages is null!");
  1802. goto qdf;
  1803. }
  1804. pages->num_pages = 0;
  1805. pages->is_mem_prealloc = 0;
  1806. soc->cdp_soc.ol_ops->dp_get_multi_pages(desc_type,
  1807. element_size,
  1808. element_num,
  1809. pages,
  1810. cacheable);
  1811. if (pages->num_pages)
  1812. goto end;
  1813. qdf:
  1814. qdf_mem_multi_pages_alloc(soc->osdev, pages, element_size,
  1815. element_num, memctxt, cacheable);
  1816. end:
  1817. dp_info("%s desc_type %d element_size %d element_num %d cacheable %d",
  1818. pages->is_mem_prealloc ? "pre-alloc" : "dynamic-alloc",
  1819. desc_type, (int)element_size, element_num, cacheable);
  1820. }
  1821. void dp_desc_multi_pages_mem_free(struct dp_soc *soc,
  1822. enum dp_desc_type desc_type,
  1823. struct qdf_mem_multi_page_t *pages,
  1824. qdf_dma_context_t memctxt,
  1825. bool cacheable)
  1826. {
  1827. if (pages->is_mem_prealloc) {
  1828. if (!soc->cdp_soc.ol_ops->dp_put_multi_pages) {
  1829. dp_warn("dp_put_multi_pages is null!");
  1830. QDF_BUG(0);
  1831. return;
  1832. }
  1833. soc->cdp_soc.ol_ops->dp_put_multi_pages(desc_type, pages);
  1834. qdf_mem_zero(pages, sizeof(*pages));
  1835. } else {
  1836. qdf_mem_multi_pages_free(soc->osdev, pages,
  1837. memctxt, cacheable);
  1838. }
  1839. }
  1840. #else
  1841. static inline
  1842. void *dp_srng_aligned_mem_alloc_consistent(struct dp_soc *soc,
  1843. struct dp_srng *srng,
  1844. uint32_t ring_type)
  1845. {
  1846. return qdf_aligned_mem_alloc_consistent(soc->osdev, &srng->alloc_size,
  1847. &srng->base_vaddr_unaligned,
  1848. &srng->base_paddr_unaligned,
  1849. &srng->base_paddr_aligned,
  1850. DP_RING_BASE_ALIGN);
  1851. }
  1852. static inline void dp_srng_mem_free_consistent(struct dp_soc *soc,
  1853. struct dp_srng *srng)
  1854. {
  1855. qdf_mem_free_consistent(soc->osdev, soc->osdev->dev,
  1856. srng->alloc_size,
  1857. srng->base_vaddr_unaligned,
  1858. srng->base_paddr_unaligned, 0);
  1859. }
  1860. #endif /* DP_MEM_PRE_ALLOC */
  1861. /*
  1862. * dp_srng_free() - Free SRNG memory
  1863. * @soc : Data path soc handle
  1864. * @srng : SRNG pointer
  1865. *
  1866. * return: None
  1867. */
  1868. static void dp_srng_free(struct dp_soc *soc, struct dp_srng *srng)
  1869. {
  1870. if (srng->alloc_size && srng->base_vaddr_unaligned) {
  1871. if (!srng->cached) {
  1872. dp_srng_mem_free_consistent(soc, srng);
  1873. } else {
  1874. qdf_mem_free(srng->base_vaddr_unaligned);
  1875. }
  1876. srng->alloc_size = 0;
  1877. srng->base_vaddr_unaligned = NULL;
  1878. }
  1879. srng->hal_srng = NULL;
  1880. }
  1881. /*
  1882. * dp_srng_init() - Initialize SRNG
  1883. * @soc : Data path soc handle
  1884. * @srng : SRNG pointer
  1885. * @ring_type : Ring Type
  1886. * @ring_num: Ring number
  1887. * @mac_id: mac_id
  1888. *
  1889. * return: QDF_STATUS
  1890. */
  1891. static QDF_STATUS dp_srng_init(struct dp_soc *soc, struct dp_srng *srng,
  1892. int ring_type, int ring_num, int mac_id)
  1893. {
  1894. hal_soc_handle_t hal_soc = soc->hal_soc;
  1895. struct hal_srng_params ring_params;
  1896. if (srng->hal_srng) {
  1897. dp_init_err("%pK: Ring type: %d, num:%d is already initialized",
  1898. soc, ring_type, ring_num);
  1899. return QDF_STATUS_SUCCESS;
  1900. }
  1901. /* memset the srng ring to zero */
  1902. qdf_mem_zero(srng->base_vaddr_unaligned, srng->alloc_size);
  1903. qdf_mem_zero(&ring_params, sizeof(struct hal_srng_params));
  1904. ring_params.ring_base_paddr = srng->base_paddr_aligned;
  1905. ring_params.ring_base_vaddr = srng->base_vaddr_aligned;
  1906. ring_params.num_entries = srng->num_entries;
  1907. dp_info("Ring type: %d, num:%d vaddr %pK paddr %pK entries %u",
  1908. ring_type, ring_num,
  1909. (void *)ring_params.ring_base_vaddr,
  1910. (void *)ring_params.ring_base_paddr,
  1911. ring_params.num_entries);
  1912. if (soc->intr_mode == DP_INTR_MSI) {
  1913. dp_srng_msi_setup(soc, &ring_params, ring_type, ring_num);
  1914. dp_verbose_debug("Using MSI for ring_type: %d, ring_num %d",
  1915. ring_type, ring_num);
  1916. } else {
  1917. ring_params.msi_data = 0;
  1918. ring_params.msi_addr = 0;
  1919. dp_srng_set_msi2_ring_params(soc, &ring_params, 0, 0);
  1920. dp_verbose_debug("Skipping MSI for ring_type: %d, ring_num %d",
  1921. ring_type, ring_num);
  1922. }
  1923. dp_srng_configure_interrupt_thresholds(soc, &ring_params,
  1924. ring_type, ring_num,
  1925. srng->num_entries);
  1926. dp_srng_set_nf_thresholds(soc, srng, &ring_params);
  1927. if (srng->cached)
  1928. ring_params.flags |= HAL_SRNG_CACHED_DESC;
  1929. srng->hal_srng = hal_srng_setup(hal_soc, ring_type, ring_num,
  1930. mac_id, &ring_params);
  1931. if (!srng->hal_srng) {
  1932. dp_srng_free(soc, srng);
  1933. return QDF_STATUS_E_FAILURE;
  1934. }
  1935. return QDF_STATUS_SUCCESS;
  1936. }
  1937. /*
  1938. * dp_srng_alloc() - Allocate memory for SRNG
  1939. * @soc : Data path soc handle
  1940. * @srng : SRNG pointer
  1941. * @ring_type : Ring Type
  1942. * @num_entries: Number of entries
  1943. * @cached: cached flag variable
  1944. *
  1945. * return: QDF_STATUS
  1946. */
  1947. static QDF_STATUS dp_srng_alloc(struct dp_soc *soc, struct dp_srng *srng,
  1948. int ring_type, uint32_t num_entries,
  1949. bool cached)
  1950. {
  1951. hal_soc_handle_t hal_soc = soc->hal_soc;
  1952. uint32_t entry_size = hal_srng_get_entrysize(hal_soc, ring_type);
  1953. uint32_t max_entries = hal_srng_max_entries(hal_soc, ring_type);
  1954. if (srng->base_vaddr_unaligned) {
  1955. dp_init_err("%pK: Ring type: %d, is already allocated",
  1956. soc, ring_type);
  1957. return QDF_STATUS_SUCCESS;
  1958. }
  1959. num_entries = (num_entries > max_entries) ? max_entries : num_entries;
  1960. srng->hal_srng = NULL;
  1961. srng->alloc_size = num_entries * entry_size;
  1962. srng->num_entries = num_entries;
  1963. srng->cached = cached;
  1964. if (!cached) {
  1965. srng->base_vaddr_aligned =
  1966. dp_srng_aligned_mem_alloc_consistent(soc,
  1967. srng,
  1968. ring_type);
  1969. } else {
  1970. srng->base_vaddr_aligned = qdf_aligned_malloc(
  1971. &srng->alloc_size,
  1972. &srng->base_vaddr_unaligned,
  1973. &srng->base_paddr_unaligned,
  1974. &srng->base_paddr_aligned,
  1975. DP_RING_BASE_ALIGN);
  1976. }
  1977. if (!srng->base_vaddr_aligned)
  1978. return QDF_STATUS_E_NOMEM;
  1979. return QDF_STATUS_SUCCESS;
  1980. }
  1981. /*
  1982. * dp_srng_deinit() - Internal function to deinit SRNG rings used by data path
  1983. * @soc: DP SOC handle
  1984. * @srng: source ring structure
  1985. * @ring_type: type of ring
  1986. * @ring_num: ring number
  1987. *
  1988. * Return: None
  1989. */
  1990. static void dp_srng_deinit(struct dp_soc *soc, struct dp_srng *srng,
  1991. int ring_type, int ring_num)
  1992. {
  1993. if (!srng->hal_srng) {
  1994. dp_init_err("%pK: Ring type: %d, num:%d not setup",
  1995. soc, ring_type, ring_num);
  1996. return;
  1997. }
  1998. hal_srng_cleanup(soc->hal_soc, srng->hal_srng);
  1999. srng->hal_srng = NULL;
  2000. }
  2001. /* TODO: Need this interface from HIF */
  2002. void *hif_get_hal_handle(struct hif_opaque_softc *hif_handle);
  2003. #ifdef WLAN_FEATURE_DP_EVENT_HISTORY
  2004. int dp_srng_access_start(struct dp_intr *int_ctx, struct dp_soc *dp_soc,
  2005. hal_ring_handle_t hal_ring_hdl)
  2006. {
  2007. hal_soc_handle_t hal_soc = dp_soc->hal_soc;
  2008. uint32_t hp, tp;
  2009. uint8_t ring_id;
  2010. if (!int_ctx)
  2011. return dp_hal_srng_access_start(hal_soc, hal_ring_hdl);
  2012. hal_get_sw_hptp(hal_soc, hal_ring_hdl, &tp, &hp);
  2013. ring_id = hal_srng_ring_id_get(hal_ring_hdl);
  2014. hif_record_event(dp_soc->hif_handle, int_ctx->dp_intr_id,
  2015. ring_id, hp, tp, HIF_EVENT_SRNG_ACCESS_START);
  2016. return dp_hal_srng_access_start(hal_soc, hal_ring_hdl);
  2017. }
  2018. void dp_srng_access_end(struct dp_intr *int_ctx, struct dp_soc *dp_soc,
  2019. hal_ring_handle_t hal_ring_hdl)
  2020. {
  2021. hal_soc_handle_t hal_soc = dp_soc->hal_soc;
  2022. uint32_t hp, tp;
  2023. uint8_t ring_id;
  2024. if (!int_ctx)
  2025. return dp_hal_srng_access_end(hal_soc, hal_ring_hdl);
  2026. hal_get_sw_hptp(hal_soc, hal_ring_hdl, &tp, &hp);
  2027. ring_id = hal_srng_ring_id_get(hal_ring_hdl);
  2028. hif_record_event(dp_soc->hif_handle, int_ctx->dp_intr_id,
  2029. ring_id, hp, tp, HIF_EVENT_SRNG_ACCESS_END);
  2030. return dp_hal_srng_access_end(hal_soc, hal_ring_hdl);
  2031. }
  2032. static inline void dp_srng_record_timer_entry(struct dp_soc *dp_soc,
  2033. uint8_t hist_group_id)
  2034. {
  2035. hif_record_event(dp_soc->hif_handle, hist_group_id,
  2036. 0, 0, 0, HIF_EVENT_TIMER_ENTRY);
  2037. }
  2038. static inline void dp_srng_record_timer_exit(struct dp_soc *dp_soc,
  2039. uint8_t hist_group_id)
  2040. {
  2041. hif_record_event(dp_soc->hif_handle, hist_group_id,
  2042. 0, 0, 0, HIF_EVENT_TIMER_EXIT);
  2043. }
  2044. #else
  2045. static inline void dp_srng_record_timer_entry(struct dp_soc *dp_soc,
  2046. uint8_t hist_group_id)
  2047. {
  2048. }
  2049. static inline void dp_srng_record_timer_exit(struct dp_soc *dp_soc,
  2050. uint8_t hist_group_id)
  2051. {
  2052. }
  2053. #endif /* WLAN_FEATURE_DP_EVENT_HISTORY */
  2054. /*
  2055. * dp_should_timer_irq_yield() - Decide if the bottom half should yield
  2056. * @soc: DP soc handle
  2057. * @work_done: work done in softirq context
  2058. * @start_time: start time for the softirq
  2059. *
  2060. * Return: enum with yield code
  2061. */
  2062. static enum timer_yield_status
  2063. dp_should_timer_irq_yield(struct dp_soc *soc, uint32_t work_done,
  2064. uint64_t start_time)
  2065. {
  2066. uint64_t cur_time = qdf_get_log_timestamp();
  2067. if (!work_done)
  2068. return DP_TIMER_WORK_DONE;
  2069. if (cur_time - start_time > DP_MAX_TIMER_EXEC_TIME_TICKS)
  2070. return DP_TIMER_TIME_EXHAUST;
  2071. return DP_TIMER_NO_YIELD;
  2072. }
  2073. /**
  2074. * dp_process_lmac_rings() - Process LMAC rings
  2075. * @int_ctx: interrupt context
  2076. * @total_budget: budget of work which can be done
  2077. *
  2078. * Return: work done
  2079. */
  2080. static int dp_process_lmac_rings(struct dp_intr *int_ctx, int total_budget)
  2081. {
  2082. struct dp_intr_stats *intr_stats = &int_ctx->intr_stats;
  2083. struct dp_soc *soc = int_ctx->soc;
  2084. uint32_t remaining_quota = total_budget;
  2085. struct dp_pdev *pdev = NULL;
  2086. uint32_t work_done = 0;
  2087. int budget = total_budget;
  2088. int ring = 0;
  2089. /* Process LMAC interrupts */
  2090. for (ring = 0 ; ring < MAX_NUM_LMAC_HW; ring++) {
  2091. int mac_for_pdev = ring;
  2092. pdev = dp_get_pdev_for_lmac_id(soc, mac_for_pdev);
  2093. if (!pdev)
  2094. continue;
  2095. if (int_ctx->rx_mon_ring_mask & (1 << mac_for_pdev)) {
  2096. work_done = dp_mon_process(soc, int_ctx, mac_for_pdev,
  2097. remaining_quota);
  2098. if (work_done)
  2099. intr_stats->num_rx_mon_ring_masks++;
  2100. budget -= work_done;
  2101. if (budget <= 0)
  2102. goto budget_done;
  2103. remaining_quota = budget;
  2104. }
  2105. if (int_ctx->rxdma2host_ring_mask &
  2106. (1 << mac_for_pdev)) {
  2107. work_done = dp_rxdma_err_process(int_ctx, soc,
  2108. mac_for_pdev,
  2109. remaining_quota);
  2110. if (work_done)
  2111. intr_stats->num_rxdma2host_ring_masks++;
  2112. budget -= work_done;
  2113. if (budget <= 0)
  2114. goto budget_done;
  2115. remaining_quota = budget;
  2116. }
  2117. if (int_ctx->host2rxdma_ring_mask &
  2118. (1 << mac_for_pdev)) {
  2119. union dp_rx_desc_list_elem_t *desc_list = NULL;
  2120. union dp_rx_desc_list_elem_t *tail = NULL;
  2121. struct dp_srng *rx_refill_buf_ring;
  2122. if (wlan_cfg_per_pdev_lmac_ring(soc->wlan_cfg_ctx))
  2123. rx_refill_buf_ring =
  2124. &soc->rx_refill_buf_ring[mac_for_pdev];
  2125. else
  2126. rx_refill_buf_ring =
  2127. &soc->rx_refill_buf_ring[pdev->lmac_id];
  2128. intr_stats->num_host2rxdma_ring_masks++;
  2129. DP_STATS_INC(pdev, replenish.low_thresh_intrs,
  2130. 1);
  2131. dp_rx_buffers_replenish(soc, mac_for_pdev,
  2132. rx_refill_buf_ring,
  2133. &soc->rx_desc_buf[mac_for_pdev],
  2134. 0, &desc_list, &tail);
  2135. }
  2136. }
  2137. budget_done:
  2138. return total_budget - budget;
  2139. }
  2140. #ifdef WLAN_FEATURE_NEAR_FULL_IRQ
  2141. /**
  2142. * dp_service_near_full_srngs() - Bottom half handler to process the near
  2143. * full IRQ on a SRNG
  2144. * @dp_ctx: Datapath SoC handle
  2145. * @dp_budget: Number of SRNGs which can be processed in a single attempt
  2146. * without rescheduling
  2147. *
  2148. * Return: remaining budget/quota for the soc device
  2149. */
  2150. static uint32_t dp_service_near_full_srngs(void *dp_ctx, uint32_t dp_budget)
  2151. {
  2152. struct dp_intr *int_ctx = (struct dp_intr *)dp_ctx;
  2153. struct dp_soc *soc = int_ctx->soc;
  2154. /*
  2155. * dp_service_near_full_srngs arch ops should be initialized always
  2156. * if the NEAR FULL IRQ feature is enabled.
  2157. */
  2158. return soc->arch_ops.dp_service_near_full_srngs(soc, int_ctx,
  2159. dp_budget);
  2160. }
  2161. #endif
  2162. #ifndef QCA_HOST_MODE_WIFI_DISABLED
  2163. /*
  2164. * dp_service_srngs() - Top level interrupt handler for DP Ring interrupts
  2165. * @dp_ctx: DP SOC handle
  2166. * @budget: Number of frames/descriptors that can be processed in one shot
  2167. *
  2168. * Return: remaining budget/quota for the soc device
  2169. */
  2170. static uint32_t dp_service_srngs(void *dp_ctx, uint32_t dp_budget)
  2171. {
  2172. struct dp_intr *int_ctx = (struct dp_intr *)dp_ctx;
  2173. struct dp_intr_stats *intr_stats = &int_ctx->intr_stats;
  2174. struct dp_soc *soc = int_ctx->soc;
  2175. int ring = 0;
  2176. uint32_t work_done = 0;
  2177. int budget = dp_budget;
  2178. uint8_t tx_mask = int_ctx->tx_ring_mask;
  2179. uint8_t rx_mask = int_ctx->rx_ring_mask;
  2180. uint8_t rx_err_mask = int_ctx->rx_err_ring_mask;
  2181. uint8_t rx_wbm_rel_mask = int_ctx->rx_wbm_rel_ring_mask;
  2182. uint8_t reo_status_mask = int_ctx->reo_status_ring_mask;
  2183. uint32_t remaining_quota = dp_budget;
  2184. dp_verbose_debug("tx %x rx %x rx_err %x rx_wbm_rel %x reo_status %x rx_mon_ring %x host2rxdma %x rxdma2host %x\n",
  2185. tx_mask, rx_mask, rx_err_mask, rx_wbm_rel_mask,
  2186. reo_status_mask,
  2187. int_ctx->rx_mon_ring_mask,
  2188. int_ctx->host2rxdma_ring_mask,
  2189. int_ctx->rxdma2host_ring_mask);
  2190. /* Process Tx completion interrupts first to return back buffers */
  2191. while (tx_mask) {
  2192. if (tx_mask & 0x1) {
  2193. work_done = dp_tx_comp_handler(int_ctx,
  2194. soc,
  2195. soc->tx_comp_ring[ring].hal_srng,
  2196. ring, remaining_quota);
  2197. if (work_done) {
  2198. intr_stats->num_tx_ring_masks[ring]++;
  2199. dp_verbose_debug("tx mask 0x%x ring %d, budget %d, work_done %d",
  2200. tx_mask, ring, budget,
  2201. work_done);
  2202. }
  2203. budget -= work_done;
  2204. if (budget <= 0)
  2205. goto budget_done;
  2206. remaining_quota = budget;
  2207. }
  2208. tx_mask = tx_mask >> 1;
  2209. ring++;
  2210. }
  2211. /* Process REO Exception ring interrupt */
  2212. if (rx_err_mask) {
  2213. work_done = dp_rx_err_process(int_ctx, soc,
  2214. soc->reo_exception_ring.hal_srng,
  2215. remaining_quota);
  2216. if (work_done) {
  2217. intr_stats->num_rx_err_ring_masks++;
  2218. dp_verbose_debug("REO Exception Ring: work_done %d budget %d",
  2219. work_done, budget);
  2220. }
  2221. budget -= work_done;
  2222. if (budget <= 0) {
  2223. goto budget_done;
  2224. }
  2225. remaining_quota = budget;
  2226. }
  2227. /* Process Rx WBM release ring interrupt */
  2228. if (rx_wbm_rel_mask) {
  2229. work_done = dp_rx_wbm_err_process(int_ctx, soc,
  2230. soc->rx_rel_ring.hal_srng,
  2231. remaining_quota);
  2232. if (work_done) {
  2233. intr_stats->num_rx_wbm_rel_ring_masks++;
  2234. dp_verbose_debug("WBM Release Ring: work_done %d budget %d",
  2235. work_done, budget);
  2236. }
  2237. budget -= work_done;
  2238. if (budget <= 0) {
  2239. goto budget_done;
  2240. }
  2241. remaining_quota = budget;
  2242. }
  2243. /* Process Rx interrupts */
  2244. if (rx_mask) {
  2245. for (ring = 0; ring < soc->num_reo_dest_rings; ring++) {
  2246. if (!(rx_mask & (1 << ring)))
  2247. continue;
  2248. work_done = soc->arch_ops.dp_rx_process(int_ctx,
  2249. soc->reo_dest_ring[ring].hal_srng,
  2250. ring,
  2251. remaining_quota);
  2252. if (work_done) {
  2253. intr_stats->num_rx_ring_masks[ring]++;
  2254. dp_verbose_debug("rx mask 0x%x ring %d, work_done %d budget %d",
  2255. rx_mask, ring,
  2256. work_done, budget);
  2257. budget -= work_done;
  2258. if (budget <= 0)
  2259. goto budget_done;
  2260. remaining_quota = budget;
  2261. }
  2262. }
  2263. }
  2264. if (reo_status_mask) {
  2265. if (dp_reo_status_ring_handler(int_ctx, soc))
  2266. int_ctx->intr_stats.num_reo_status_ring_masks++;
  2267. }
  2268. if (qdf_unlikely(!(soc->mon_vdev_timer_state & MON_VDEV_TIMER_RUNNING))) {
  2269. work_done = dp_process_lmac_rings(int_ctx, remaining_quota);
  2270. if (work_done) {
  2271. budget -= work_done;
  2272. if (budget <= 0)
  2273. goto budget_done;
  2274. remaining_quota = budget;
  2275. }
  2276. }
  2277. qdf_lro_flush(int_ctx->lro_ctx);
  2278. intr_stats->num_masks++;
  2279. budget_done:
  2280. return dp_budget - budget;
  2281. }
  2282. #else /* QCA_HOST_MODE_WIFI_DISABLED */
  2283. /*
  2284. * dp_service_srngs() - Top level handler for DP Monitor Ring interrupts
  2285. * @dp_ctx: DP SOC handle
  2286. * @budget: Number of frames/descriptors that can be processed in one shot
  2287. *
  2288. * Return: remaining budget/quota for the soc device
  2289. */
  2290. static uint32_t dp_service_srngs(void *dp_ctx, uint32_t dp_budget)
  2291. {
  2292. struct dp_intr *int_ctx = (struct dp_intr *)dp_ctx;
  2293. struct dp_intr_stats *intr_stats = &int_ctx->intr_stats;
  2294. struct dp_soc *soc = int_ctx->soc;
  2295. uint32_t remaining_quota = dp_budget;
  2296. uint32_t work_done = 0;
  2297. int budget = dp_budget;
  2298. uint8_t reo_status_mask = int_ctx->reo_status_ring_mask;
  2299. if (reo_status_mask) {
  2300. if (dp_reo_status_ring_handler(int_ctx, soc))
  2301. int_ctx->intr_stats.num_reo_status_ring_masks++;
  2302. }
  2303. if (qdf_unlikely(!(soc->mon_vdev_timer_state & MON_VDEV_TIMER_RUNNING))) {
  2304. work_done = dp_process_lmac_rings(int_ctx, remaining_quota);
  2305. if (work_done) {
  2306. budget -= work_done;
  2307. if (budget <= 0)
  2308. goto budget_done;
  2309. remaining_quota = budget;
  2310. }
  2311. }
  2312. qdf_lro_flush(int_ctx->lro_ctx);
  2313. intr_stats->num_masks++;
  2314. budget_done:
  2315. return dp_budget - budget;
  2316. }
  2317. #endif /* QCA_HOST_MODE_WIFI_DISABLED */
  2318. /* dp_mon_vdev_timer()- timer poll for interrupts
  2319. *
  2320. * @arg: SoC Handle
  2321. *
  2322. * Return:
  2323. *
  2324. */
  2325. static void dp_mon_vdev_timer(void *arg)
  2326. {
  2327. struct dp_soc *soc = (struct dp_soc *)arg;
  2328. struct dp_pdev *pdev = soc->pdev_list[0];
  2329. enum timer_yield_status yield = DP_TIMER_NO_YIELD;
  2330. uint32_t work_done = 0, total_work_done = 0;
  2331. int budget = 0xffff;
  2332. uint32_t remaining_quota = budget;
  2333. uint64_t start_time;
  2334. uint32_t lmac_id = DP_MON_INVALID_LMAC_ID;
  2335. uint32_t lmac_iter;
  2336. int max_mac_rings = wlan_cfg_get_num_mac_rings(pdev->wlan_cfg_ctx);
  2337. if (!qdf_atomic_read(&soc->cmn_init_done))
  2338. return;
  2339. if (pdev->mon_chan_band != REG_BAND_UNKNOWN)
  2340. lmac_id = pdev->ch_band_lmac_id_mapping[pdev->mon_chan_band];
  2341. start_time = qdf_get_log_timestamp();
  2342. dp_is_hw_dbs_enable(soc, &max_mac_rings);
  2343. while (yield == DP_TIMER_NO_YIELD) {
  2344. for (lmac_iter = 0; lmac_iter < max_mac_rings; lmac_iter++) {
  2345. if (lmac_iter == lmac_id)
  2346. work_done = dp_mon_process(
  2347. soc, NULL,
  2348. lmac_iter, remaining_quota);
  2349. else
  2350. work_done =
  2351. dp_mon_drop_packets_for_mac(pdev,
  2352. lmac_iter,
  2353. remaining_quota);
  2354. if (work_done) {
  2355. budget -= work_done;
  2356. if (budget <= 0) {
  2357. yield = DP_TIMER_WORK_EXHAUST;
  2358. goto budget_done;
  2359. }
  2360. remaining_quota = budget;
  2361. total_work_done += work_done;
  2362. }
  2363. }
  2364. yield = dp_should_timer_irq_yield(soc, total_work_done,
  2365. start_time);
  2366. total_work_done = 0;
  2367. }
  2368. budget_done:
  2369. if (yield == DP_TIMER_WORK_EXHAUST ||
  2370. yield == DP_TIMER_TIME_EXHAUST)
  2371. qdf_timer_mod(&soc->mon_vdev_timer, 1);
  2372. else
  2373. qdf_timer_mod(&soc->mon_vdev_timer, DP_INTR_POLL_TIMER_MS);
  2374. }
  2375. /* dp_interrupt_timer()- timer poll for interrupts
  2376. *
  2377. * @arg: SoC Handle
  2378. *
  2379. * Return:
  2380. *
  2381. */
  2382. static void dp_interrupt_timer(void *arg)
  2383. {
  2384. struct dp_soc *soc = (struct dp_soc *) arg;
  2385. struct dp_pdev *pdev = soc->pdev_list[0];
  2386. enum timer_yield_status yield = DP_TIMER_NO_YIELD;
  2387. uint32_t work_done = 0, total_work_done = 0;
  2388. int budget = 0xffff, i;
  2389. uint32_t remaining_quota = budget;
  2390. uint64_t start_time;
  2391. uint32_t lmac_id = DP_MON_INVALID_LMAC_ID;
  2392. uint8_t dp_intr_id = wlan_cfg_get_num_contexts(soc->wlan_cfg_ctx);
  2393. uint32_t lmac_iter;
  2394. int max_mac_rings = wlan_cfg_get_num_mac_rings(pdev->wlan_cfg_ctx);
  2395. /*
  2396. * this logic makes all data path interfacing rings (UMAC/LMAC)
  2397. * and Monitor rings polling mode when NSS offload is disabled
  2398. */
  2399. if (wlan_cfg_is_poll_mode_enabled(soc->wlan_cfg_ctx) &&
  2400. !wlan_cfg_get_dp_soc_nss_cfg(soc->wlan_cfg_ctx)) {
  2401. if (qdf_atomic_read(&soc->cmn_init_done)) {
  2402. for (i = 0; i < wlan_cfg_get_num_contexts(
  2403. soc->wlan_cfg_ctx); i++)
  2404. dp_service_srngs(&soc->intr_ctx[i], 0xffff);
  2405. qdf_timer_mod(&soc->int_timer, DP_INTR_POLL_TIMER_MS);
  2406. }
  2407. return;
  2408. }
  2409. if (!qdf_atomic_read(&soc->cmn_init_done))
  2410. return;
  2411. if (pdev->mon_chan_band != REG_BAND_UNKNOWN) {
  2412. lmac_id = pdev->ch_band_lmac_id_mapping[pdev->mon_chan_band];
  2413. if (qdf_likely(lmac_id != DP_MON_INVALID_LMAC_ID)) {
  2414. dp_intr_id = soc->mon_intr_id_lmac_map[lmac_id];
  2415. dp_srng_record_timer_entry(soc, dp_intr_id);
  2416. }
  2417. }
  2418. start_time = qdf_get_log_timestamp();
  2419. dp_is_hw_dbs_enable(soc, &max_mac_rings);
  2420. while (yield == DP_TIMER_NO_YIELD) {
  2421. for (lmac_iter = 0; lmac_iter < max_mac_rings; lmac_iter++) {
  2422. if (lmac_iter == lmac_id)
  2423. work_done = dp_mon_process(soc,
  2424. &soc->intr_ctx[dp_intr_id],
  2425. lmac_iter, remaining_quota);
  2426. else
  2427. work_done = dp_mon_drop_packets_for_mac(pdev,
  2428. lmac_iter,
  2429. remaining_quota);
  2430. if (work_done) {
  2431. budget -= work_done;
  2432. if (budget <= 0) {
  2433. yield = DP_TIMER_WORK_EXHAUST;
  2434. goto budget_done;
  2435. }
  2436. remaining_quota = budget;
  2437. total_work_done += work_done;
  2438. }
  2439. }
  2440. yield = dp_should_timer_irq_yield(soc, total_work_done,
  2441. start_time);
  2442. total_work_done = 0;
  2443. }
  2444. budget_done:
  2445. if (yield == DP_TIMER_WORK_EXHAUST ||
  2446. yield == DP_TIMER_TIME_EXHAUST)
  2447. qdf_timer_mod(&soc->int_timer, 1);
  2448. else
  2449. qdf_timer_mod(&soc->int_timer, DP_INTR_POLL_TIMER_MS);
  2450. if (lmac_id != DP_MON_INVALID_LMAC_ID)
  2451. dp_srng_record_timer_exit(soc, dp_intr_id);
  2452. }
  2453. #ifdef WLAN_FEATURE_DP_EVENT_HISTORY
  2454. static inline bool dp_is_mon_mask_valid(struct dp_soc *soc,
  2455. struct dp_intr *intr_ctx)
  2456. {
  2457. if (intr_ctx->rx_mon_ring_mask)
  2458. return true;
  2459. return false;
  2460. }
  2461. #else
  2462. static inline bool dp_is_mon_mask_valid(struct dp_soc *soc,
  2463. struct dp_intr *intr_ctx)
  2464. {
  2465. return false;
  2466. }
  2467. #endif
  2468. /*
  2469. * dp_soc_attach_poll() - Register handlers for DP interrupts
  2470. * @txrx_soc: DP SOC handle
  2471. *
  2472. * Host driver will register for “DP_NUM_INTERRUPT_CONTEXTS” number of NAPI
  2473. * contexts. Each NAPI context will have a tx_ring_mask , rx_ring_mask ,and
  2474. * rx_monitor_ring mask to indicate the rings that are processed by the handler.
  2475. *
  2476. * Return: 0 for success, nonzero for failure.
  2477. */
  2478. static QDF_STATUS dp_soc_attach_poll(struct cdp_soc_t *txrx_soc)
  2479. {
  2480. struct dp_soc *soc = (struct dp_soc *)txrx_soc;
  2481. int i;
  2482. int lmac_id = 0;
  2483. qdf_mem_set(&soc->mon_intr_id_lmac_map,
  2484. sizeof(soc->mon_intr_id_lmac_map), DP_MON_INVALID_LMAC_ID);
  2485. soc->intr_mode = DP_INTR_POLL;
  2486. for (i = 0; i < wlan_cfg_get_num_contexts(soc->wlan_cfg_ctx); i++) {
  2487. soc->intr_ctx[i].dp_intr_id = i;
  2488. soc->intr_ctx[i].tx_ring_mask =
  2489. wlan_cfg_get_tx_ring_mask(soc->wlan_cfg_ctx, i);
  2490. soc->intr_ctx[i].rx_ring_mask =
  2491. wlan_cfg_get_rx_ring_mask(soc->wlan_cfg_ctx, i);
  2492. soc->intr_ctx[i].rx_mon_ring_mask =
  2493. wlan_cfg_get_rx_mon_ring_mask(soc->wlan_cfg_ctx, i);
  2494. soc->intr_ctx[i].rx_err_ring_mask =
  2495. wlan_cfg_get_rx_err_ring_mask(soc->wlan_cfg_ctx, i);
  2496. soc->intr_ctx[i].rx_wbm_rel_ring_mask =
  2497. wlan_cfg_get_rx_wbm_rel_ring_mask(soc->wlan_cfg_ctx, i);
  2498. soc->intr_ctx[i].reo_status_ring_mask =
  2499. wlan_cfg_get_reo_status_ring_mask(soc->wlan_cfg_ctx, i);
  2500. soc->intr_ctx[i].rxdma2host_ring_mask =
  2501. wlan_cfg_get_rxdma2host_ring_mask(soc->wlan_cfg_ctx, i);
  2502. soc->intr_ctx[i].soc = soc;
  2503. soc->intr_ctx[i].lro_ctx = qdf_lro_init();
  2504. if (dp_is_mon_mask_valid(soc, &soc->intr_ctx[i])) {
  2505. hif_event_history_init(soc->hif_handle, i);
  2506. soc->mon_intr_id_lmac_map[lmac_id] = i;
  2507. lmac_id++;
  2508. }
  2509. }
  2510. qdf_timer_init(soc->osdev, &soc->int_timer,
  2511. dp_interrupt_timer, (void *)soc,
  2512. QDF_TIMER_TYPE_WAKE_APPS);
  2513. return QDF_STATUS_SUCCESS;
  2514. }
  2515. /**
  2516. * dp_soc_set_interrupt_mode() - Set the interrupt mode in soc
  2517. * soc: DP soc handle
  2518. *
  2519. * Set the appropriate interrupt mode flag in the soc
  2520. */
  2521. static void dp_soc_set_interrupt_mode(struct dp_soc *soc)
  2522. {
  2523. uint32_t msi_base_data, msi_vector_start;
  2524. int msi_vector_count, ret;
  2525. soc->intr_mode = DP_INTR_INTEGRATED;
  2526. if (!(soc->wlan_cfg_ctx->napi_enabled) ||
  2527. (soc->cdp_soc.ol_ops->get_con_mode &&
  2528. soc->cdp_soc.ol_ops->get_con_mode() == QDF_GLOBAL_MONITOR_MODE)) {
  2529. soc->intr_mode = DP_INTR_POLL;
  2530. } else {
  2531. ret = pld_get_user_msi_assignment(soc->osdev->dev, "DP",
  2532. &msi_vector_count,
  2533. &msi_base_data,
  2534. &msi_vector_start);
  2535. if (ret)
  2536. return;
  2537. soc->intr_mode = DP_INTR_MSI;
  2538. }
  2539. }
  2540. static QDF_STATUS dp_soc_interrupt_attach(struct cdp_soc_t *txrx_soc);
  2541. #if defined(DP_INTR_POLL_BOTH)
  2542. /*
  2543. * dp_soc_interrupt_attach_wrapper() - Register handlers for DP interrupts
  2544. * @txrx_soc: DP SOC handle
  2545. *
  2546. * Call the appropriate attach function based on the mode of operation.
  2547. * This is a WAR for enabling monitor mode.
  2548. *
  2549. * Return: 0 for success. nonzero for failure.
  2550. */
  2551. static QDF_STATUS dp_soc_interrupt_attach_wrapper(struct cdp_soc_t *txrx_soc)
  2552. {
  2553. struct dp_soc *soc = (struct dp_soc *)txrx_soc;
  2554. if (!(soc->wlan_cfg_ctx->napi_enabled) ||
  2555. (soc->cdp_soc.ol_ops->get_con_mode &&
  2556. soc->cdp_soc.ol_ops->get_con_mode() ==
  2557. QDF_GLOBAL_MONITOR_MODE)) {
  2558. dp_info("Poll mode");
  2559. return dp_soc_attach_poll(txrx_soc);
  2560. } else {
  2561. dp_info("Interrupt mode");
  2562. return dp_soc_interrupt_attach(txrx_soc);
  2563. }
  2564. }
  2565. #else
  2566. #if defined(DP_INTR_POLL_BASED) && DP_INTR_POLL_BASED
  2567. static QDF_STATUS dp_soc_interrupt_attach_wrapper(struct cdp_soc_t *txrx_soc)
  2568. {
  2569. return dp_soc_attach_poll(txrx_soc);
  2570. }
  2571. #else
  2572. static QDF_STATUS dp_soc_interrupt_attach_wrapper(struct cdp_soc_t *txrx_soc)
  2573. {
  2574. struct dp_soc *soc = (struct dp_soc *)txrx_soc;
  2575. if (wlan_cfg_is_poll_mode_enabled(soc->wlan_cfg_ctx))
  2576. return dp_soc_attach_poll(txrx_soc);
  2577. else
  2578. return dp_soc_interrupt_attach(txrx_soc);
  2579. }
  2580. #endif
  2581. #endif
  2582. static void dp_soc_interrupt_map_calculate_integrated(struct dp_soc *soc,
  2583. int intr_ctx_num, int *irq_id_map, int *num_irq_r)
  2584. {
  2585. int j;
  2586. int num_irq = 0;
  2587. int tx_mask =
  2588. wlan_cfg_get_tx_ring_mask(soc->wlan_cfg_ctx, intr_ctx_num);
  2589. int rx_mask =
  2590. wlan_cfg_get_rx_ring_mask(soc->wlan_cfg_ctx, intr_ctx_num);
  2591. int rx_mon_mask =
  2592. wlan_cfg_get_rx_mon_ring_mask(soc->wlan_cfg_ctx, intr_ctx_num);
  2593. int rx_err_ring_mask = wlan_cfg_get_rx_err_ring_mask(
  2594. soc->wlan_cfg_ctx, intr_ctx_num);
  2595. int rx_wbm_rel_ring_mask = wlan_cfg_get_rx_wbm_rel_ring_mask(
  2596. soc->wlan_cfg_ctx, intr_ctx_num);
  2597. int reo_status_ring_mask = wlan_cfg_get_reo_status_ring_mask(
  2598. soc->wlan_cfg_ctx, intr_ctx_num);
  2599. int rxdma2host_ring_mask = wlan_cfg_get_rxdma2host_ring_mask(
  2600. soc->wlan_cfg_ctx, intr_ctx_num);
  2601. int host2rxdma_ring_mask = wlan_cfg_get_host2rxdma_ring_mask(
  2602. soc->wlan_cfg_ctx, intr_ctx_num);
  2603. int host2rxdma_mon_ring_mask = wlan_cfg_get_host2rxdma_mon_ring_mask(
  2604. soc->wlan_cfg_ctx, intr_ctx_num);
  2605. soc->intr_mode = DP_INTR_INTEGRATED;
  2606. for (j = 0; j < HIF_MAX_GRP_IRQ; j++) {
  2607. if (tx_mask & (1 << j)) {
  2608. irq_id_map[num_irq++] =
  2609. (wbm2host_tx_completions_ring1 - j);
  2610. }
  2611. if (rx_mask & (1 << j)) {
  2612. irq_id_map[num_irq++] =
  2613. (reo2host_destination_ring1 - j);
  2614. }
  2615. if (rxdma2host_ring_mask & (1 << j)) {
  2616. irq_id_map[num_irq++] =
  2617. rxdma2host_destination_ring_mac1 - j;
  2618. }
  2619. if (host2rxdma_ring_mask & (1 << j)) {
  2620. irq_id_map[num_irq++] =
  2621. host2rxdma_host_buf_ring_mac1 - j;
  2622. }
  2623. if (host2rxdma_mon_ring_mask & (1 << j)) {
  2624. irq_id_map[num_irq++] =
  2625. host2rxdma_monitor_ring1 - j;
  2626. }
  2627. if (rx_mon_mask & (1 << j)) {
  2628. irq_id_map[num_irq++] =
  2629. ppdu_end_interrupts_mac1 - j;
  2630. irq_id_map[num_irq++] =
  2631. rxdma2host_monitor_status_ring_mac1 - j;
  2632. irq_id_map[num_irq++] =
  2633. rxdma2host_monitor_destination_mac1 - j;
  2634. }
  2635. if (rx_wbm_rel_ring_mask & (1 << j))
  2636. irq_id_map[num_irq++] = wbm2host_rx_release;
  2637. if (rx_err_ring_mask & (1 << j))
  2638. irq_id_map[num_irq++] = reo2host_exception;
  2639. if (reo_status_ring_mask & (1 << j))
  2640. irq_id_map[num_irq++] = reo2host_status;
  2641. }
  2642. *num_irq_r = num_irq;
  2643. }
  2644. static void dp_soc_interrupt_map_calculate_msi(struct dp_soc *soc,
  2645. int intr_ctx_num, int *irq_id_map, int *num_irq_r,
  2646. int msi_vector_count, int msi_vector_start)
  2647. {
  2648. int tx_mask = wlan_cfg_get_tx_ring_mask(
  2649. soc->wlan_cfg_ctx, intr_ctx_num);
  2650. int rx_mask = wlan_cfg_get_rx_ring_mask(
  2651. soc->wlan_cfg_ctx, intr_ctx_num);
  2652. int rx_mon_mask = wlan_cfg_get_rx_mon_ring_mask(
  2653. soc->wlan_cfg_ctx, intr_ctx_num);
  2654. int rx_err_ring_mask = wlan_cfg_get_rx_err_ring_mask(
  2655. soc->wlan_cfg_ctx, intr_ctx_num);
  2656. int rx_wbm_rel_ring_mask = wlan_cfg_get_rx_wbm_rel_ring_mask(
  2657. soc->wlan_cfg_ctx, intr_ctx_num);
  2658. int reo_status_ring_mask = wlan_cfg_get_reo_status_ring_mask(
  2659. soc->wlan_cfg_ctx, intr_ctx_num);
  2660. int rxdma2host_ring_mask = wlan_cfg_get_rxdma2host_ring_mask(
  2661. soc->wlan_cfg_ctx, intr_ctx_num);
  2662. int host2rxdma_ring_mask = wlan_cfg_get_host2rxdma_ring_mask(
  2663. soc->wlan_cfg_ctx, intr_ctx_num);
  2664. int host2rxdma_mon_ring_mask = wlan_cfg_get_host2rxdma_mon_ring_mask(
  2665. soc->wlan_cfg_ctx, intr_ctx_num);
  2666. int rx_near_full_grp_1_mask =
  2667. wlan_cfg_get_rx_near_full_grp_1_mask(soc->wlan_cfg_ctx,
  2668. intr_ctx_num);
  2669. int rx_near_full_grp_2_mask =
  2670. wlan_cfg_get_rx_near_full_grp_2_mask(soc->wlan_cfg_ctx,
  2671. intr_ctx_num);
  2672. int tx_ring_near_full_mask =
  2673. wlan_cfg_get_tx_ring_near_full_mask(soc->wlan_cfg_ctx,
  2674. intr_ctx_num);
  2675. unsigned int vector =
  2676. (intr_ctx_num % msi_vector_count) + msi_vector_start;
  2677. int num_irq = 0;
  2678. soc->intr_mode = DP_INTR_MSI;
  2679. if (tx_mask | rx_mask | rx_mon_mask | rx_err_ring_mask |
  2680. rx_wbm_rel_ring_mask | reo_status_ring_mask | rxdma2host_ring_mask |
  2681. host2rxdma_ring_mask | host2rxdma_mon_ring_mask |
  2682. rx_near_full_grp_1_mask | rx_near_full_grp_2_mask |
  2683. tx_ring_near_full_mask)
  2684. irq_id_map[num_irq++] =
  2685. pld_get_msi_irq(soc->osdev->dev, vector);
  2686. *num_irq_r = num_irq;
  2687. }
  2688. static void dp_soc_interrupt_map_calculate(struct dp_soc *soc, int intr_ctx_num,
  2689. int *irq_id_map, int *num_irq)
  2690. {
  2691. int msi_vector_count, ret;
  2692. uint32_t msi_base_data, msi_vector_start;
  2693. ret = pld_get_user_msi_assignment(soc->osdev->dev, "DP",
  2694. &msi_vector_count,
  2695. &msi_base_data,
  2696. &msi_vector_start);
  2697. if (ret)
  2698. return dp_soc_interrupt_map_calculate_integrated(soc,
  2699. intr_ctx_num, irq_id_map, num_irq);
  2700. else
  2701. dp_soc_interrupt_map_calculate_msi(soc,
  2702. intr_ctx_num, irq_id_map, num_irq,
  2703. msi_vector_count, msi_vector_start);
  2704. }
  2705. #ifdef WLAN_FEATURE_NEAR_FULL_IRQ
  2706. /**
  2707. * dp_soc_near_full_interrupt_attach() - Register handler for DP near fill irq
  2708. * @soc: DP soc handle
  2709. * @num_irq: IRQ number
  2710. * @irq_id_map: IRQ map
  2711. * intr_id: interrupt context ID
  2712. *
  2713. * Return: 0 for success. nonzero for failure.
  2714. */
  2715. static inline int
  2716. dp_soc_near_full_interrupt_attach(struct dp_soc *soc, int num_irq,
  2717. int irq_id_map[], int intr_id)
  2718. {
  2719. return hif_register_ext_group(soc->hif_handle,
  2720. num_irq, irq_id_map,
  2721. dp_service_near_full_srngs,
  2722. &soc->intr_ctx[intr_id], "dp_nf_intr",
  2723. HIF_EXEC_NAPI_TYPE,
  2724. QCA_NAPI_DEF_SCALE_BIN_SHIFT);
  2725. }
  2726. #else
  2727. static inline int
  2728. dp_soc_near_full_interrupt_attach(struct dp_soc *soc, int num_irq,
  2729. int *irq_id_map, int intr_id)
  2730. {
  2731. return 0;
  2732. }
  2733. #endif
  2734. /*
  2735. * dp_soc_interrupt_attach() - Register handlers for DP interrupts
  2736. * @txrx_soc: DP SOC handle
  2737. *
  2738. * Host driver will register for “DP_NUM_INTERRUPT_CONTEXTS” number of NAPI
  2739. * contexts. Each NAPI context will have a tx_ring_mask , rx_ring_mask ,and
  2740. * rx_monitor_ring mask to indicate the rings that are processed by the handler.
  2741. *
  2742. * Return: 0 for success. nonzero for failure.
  2743. */
  2744. static QDF_STATUS dp_soc_interrupt_attach(struct cdp_soc_t *txrx_soc)
  2745. {
  2746. struct dp_soc *soc = (struct dp_soc *)txrx_soc;
  2747. int i = 0;
  2748. int num_irq = 0;
  2749. qdf_mem_set(&soc->mon_intr_id_lmac_map,
  2750. sizeof(soc->mon_intr_id_lmac_map), DP_MON_INVALID_LMAC_ID);
  2751. for (i = 0; i < wlan_cfg_get_num_contexts(soc->wlan_cfg_ctx); i++) {
  2752. int ret = 0;
  2753. /* Map of IRQ ids registered with one interrupt context */
  2754. int irq_id_map[HIF_MAX_GRP_IRQ];
  2755. int tx_mask =
  2756. wlan_cfg_get_tx_ring_mask(soc->wlan_cfg_ctx, i);
  2757. int rx_mask =
  2758. wlan_cfg_get_rx_ring_mask(soc->wlan_cfg_ctx, i);
  2759. int rx_mon_mask =
  2760. dp_soc_get_mon_mask_for_interrupt_mode(soc, i);
  2761. int rx_err_ring_mask =
  2762. wlan_cfg_get_rx_err_ring_mask(soc->wlan_cfg_ctx, i);
  2763. int rx_wbm_rel_ring_mask =
  2764. wlan_cfg_get_rx_wbm_rel_ring_mask(soc->wlan_cfg_ctx, i);
  2765. int reo_status_ring_mask =
  2766. wlan_cfg_get_reo_status_ring_mask(soc->wlan_cfg_ctx, i);
  2767. int rxdma2host_ring_mask =
  2768. wlan_cfg_get_rxdma2host_ring_mask(soc->wlan_cfg_ctx, i);
  2769. int host2rxdma_ring_mask =
  2770. wlan_cfg_get_host2rxdma_ring_mask(soc->wlan_cfg_ctx, i);
  2771. int host2rxdma_mon_ring_mask =
  2772. wlan_cfg_get_host2rxdma_mon_ring_mask(
  2773. soc->wlan_cfg_ctx, i);
  2774. int rx_near_full_grp_1_mask =
  2775. wlan_cfg_get_rx_near_full_grp_1_mask(soc->wlan_cfg_ctx,
  2776. i);
  2777. int rx_near_full_grp_2_mask =
  2778. wlan_cfg_get_rx_near_full_grp_2_mask(soc->wlan_cfg_ctx,
  2779. i);
  2780. int tx_ring_near_full_mask =
  2781. wlan_cfg_get_tx_ring_near_full_mask(soc->wlan_cfg_ctx,
  2782. i);
  2783. soc->intr_ctx[i].dp_intr_id = i;
  2784. soc->intr_ctx[i].tx_ring_mask = tx_mask;
  2785. soc->intr_ctx[i].rx_ring_mask = rx_mask;
  2786. soc->intr_ctx[i].rx_mon_ring_mask = rx_mon_mask;
  2787. soc->intr_ctx[i].rx_err_ring_mask = rx_err_ring_mask;
  2788. soc->intr_ctx[i].rxdma2host_ring_mask = rxdma2host_ring_mask;
  2789. soc->intr_ctx[i].host2rxdma_ring_mask = host2rxdma_ring_mask;
  2790. soc->intr_ctx[i].rx_wbm_rel_ring_mask = rx_wbm_rel_ring_mask;
  2791. soc->intr_ctx[i].reo_status_ring_mask = reo_status_ring_mask;
  2792. soc->intr_ctx[i].host2rxdma_mon_ring_mask =
  2793. host2rxdma_mon_ring_mask;
  2794. soc->intr_ctx[i].rx_near_full_grp_1_mask =
  2795. rx_near_full_grp_1_mask;
  2796. soc->intr_ctx[i].rx_near_full_grp_2_mask =
  2797. rx_near_full_grp_2_mask;
  2798. soc->intr_ctx[i].tx_ring_near_full_mask =
  2799. tx_ring_near_full_mask;
  2800. soc->intr_ctx[i].soc = soc;
  2801. num_irq = 0;
  2802. dp_soc_interrupt_map_calculate(soc, i, &irq_id_map[0],
  2803. &num_irq);
  2804. if (rx_near_full_grp_1_mask | rx_near_full_grp_2_mask |
  2805. tx_ring_near_full_mask) {
  2806. dp_soc_near_full_interrupt_attach(soc, num_irq,
  2807. irq_id_map, i);
  2808. } else {
  2809. ret = hif_register_ext_group(soc->hif_handle,
  2810. num_irq, irq_id_map, dp_service_srngs,
  2811. &soc->intr_ctx[i], "dp_intr",
  2812. HIF_EXEC_NAPI_TYPE,
  2813. QCA_NAPI_DEF_SCALE_BIN_SHIFT);
  2814. }
  2815. dp_debug(" int ctx %u num_irq %u irq_id_map %u %u",
  2816. i, num_irq, irq_id_map[0], irq_id_map[1]);
  2817. if (ret) {
  2818. dp_init_err("%pK: failed, ret = %d", soc, ret);
  2819. return QDF_STATUS_E_FAILURE;
  2820. }
  2821. hif_event_history_init(soc->hif_handle, i);
  2822. soc->intr_ctx[i].lro_ctx = qdf_lro_init();
  2823. }
  2824. hif_configure_ext_group_interrupts(soc->hif_handle);
  2825. return QDF_STATUS_SUCCESS;
  2826. }
  2827. /*
  2828. * dp_soc_interrupt_detach() - Deregister any allocations done for interrupts
  2829. * @txrx_soc: DP SOC handle
  2830. *
  2831. * Return: none
  2832. */
  2833. static void dp_soc_interrupt_detach(struct cdp_soc_t *txrx_soc)
  2834. {
  2835. struct dp_soc *soc = (struct dp_soc *)txrx_soc;
  2836. int i;
  2837. if (soc->intr_mode == DP_INTR_POLL) {
  2838. qdf_timer_free(&soc->int_timer);
  2839. } else {
  2840. hif_deconfigure_ext_group_interrupts(soc->hif_handle);
  2841. hif_deregister_exec_group(soc->hif_handle, "dp_intr");
  2842. hif_deregister_exec_group(soc->hif_handle, "dp_nf_intr");
  2843. }
  2844. for (i = 0; i < wlan_cfg_get_num_contexts(soc->wlan_cfg_ctx); i++) {
  2845. soc->intr_ctx[i].tx_ring_mask = 0;
  2846. soc->intr_ctx[i].rx_ring_mask = 0;
  2847. soc->intr_ctx[i].rx_mon_ring_mask = 0;
  2848. soc->intr_ctx[i].rx_err_ring_mask = 0;
  2849. soc->intr_ctx[i].rx_wbm_rel_ring_mask = 0;
  2850. soc->intr_ctx[i].reo_status_ring_mask = 0;
  2851. soc->intr_ctx[i].rxdma2host_ring_mask = 0;
  2852. soc->intr_ctx[i].host2rxdma_ring_mask = 0;
  2853. soc->intr_ctx[i].host2rxdma_mon_ring_mask = 0;
  2854. soc->intr_ctx[i].rx_near_full_grp_1_mask = 0;
  2855. soc->intr_ctx[i].rx_near_full_grp_2_mask = 0;
  2856. soc->intr_ctx[i].tx_ring_near_full_mask = 0;
  2857. hif_event_history_deinit(soc->hif_handle, i);
  2858. qdf_lro_deinit(soc->intr_ctx[i].lro_ctx);
  2859. }
  2860. qdf_mem_set(&soc->mon_intr_id_lmac_map,
  2861. sizeof(soc->mon_intr_id_lmac_map),
  2862. DP_MON_INVALID_LMAC_ID);
  2863. }
  2864. #define AVG_MAX_MPDUS_PER_TID 128
  2865. #define AVG_TIDS_PER_CLIENT 2
  2866. #define AVG_FLOWS_PER_TID 2
  2867. #define AVG_MSDUS_PER_FLOW 128
  2868. #define AVG_MSDUS_PER_MPDU 4
  2869. /*
  2870. * dp_hw_link_desc_pool_banks_free() - Free h/w link desc pool banks
  2871. * @soc: DP SOC handle
  2872. * @mac_id: mac id
  2873. *
  2874. * Return: none
  2875. */
  2876. void dp_hw_link_desc_pool_banks_free(struct dp_soc *soc, uint32_t mac_id)
  2877. {
  2878. struct qdf_mem_multi_page_t *pages;
  2879. if (mac_id != WLAN_INVALID_PDEV_ID)
  2880. pages = &soc->mon_link_desc_pages[mac_id];
  2881. else
  2882. pages = &soc->link_desc_pages;
  2883. if (pages->dma_pages) {
  2884. wlan_minidump_remove((void *)
  2885. pages->dma_pages->page_v_addr_start,
  2886. pages->num_pages * pages->page_size,
  2887. soc->ctrl_psoc,
  2888. WLAN_MD_DP_SRNG_WBM_IDLE_LINK,
  2889. "hw_link_desc_bank");
  2890. dp_desc_multi_pages_mem_free(soc, DP_HW_LINK_DESC_TYPE,
  2891. pages, 0, false);
  2892. }
  2893. }
  2894. /*
  2895. * dp_hw_link_desc_pool_banks_alloc() - Allocate h/w link desc pool banks
  2896. * @soc: DP SOC handle
  2897. * @mac_id: mac id
  2898. *
  2899. * Allocates memory pages for link descriptors, the page size is 4K for
  2900. * MCL and 2MB for WIN. if the mac_id is invalid link descriptor pages are
  2901. * allocated for regular RX/TX and if the there is a proper mac_id link
  2902. * descriptors are allocated for RX monitor mode.
  2903. *
  2904. * Return: QDF_STATUS_SUCCESS: Success
  2905. * QDF_STATUS_E_FAILURE: Failure
  2906. */
  2907. QDF_STATUS dp_hw_link_desc_pool_banks_alloc(struct dp_soc *soc, uint32_t mac_id)
  2908. {
  2909. hal_soc_handle_t hal_soc = soc->hal_soc;
  2910. int link_desc_size = hal_get_link_desc_size(soc->hal_soc);
  2911. int link_desc_align = hal_get_link_desc_align(soc->hal_soc);
  2912. uint32_t max_clients = wlan_cfg_get_max_clients(soc->wlan_cfg_ctx);
  2913. uint32_t num_mpdus_per_link_desc = hal_num_mpdus_per_link_desc(hal_soc);
  2914. uint32_t num_msdus_per_link_desc = hal_num_msdus_per_link_desc(hal_soc);
  2915. uint32_t num_mpdu_links_per_queue_desc =
  2916. hal_num_mpdu_links_per_queue_desc(hal_soc);
  2917. uint32_t max_alloc_size = wlan_cfg_max_alloc_size(soc->wlan_cfg_ctx);
  2918. uint32_t *total_link_descs, total_mem_size;
  2919. uint32_t num_mpdu_link_descs, num_mpdu_queue_descs;
  2920. uint32_t num_tx_msdu_link_descs, num_rx_msdu_link_descs;
  2921. uint32_t num_entries;
  2922. struct qdf_mem_multi_page_t *pages;
  2923. struct dp_srng *dp_srng;
  2924. uint8_t minidump_str[MINIDUMP_STR_SIZE];
  2925. /* Only Tx queue descriptors are allocated from common link descriptor
  2926. * pool Rx queue descriptors are not included in this because (REO queue
  2927. * extension descriptors) they are expected to be allocated contiguously
  2928. * with REO queue descriptors
  2929. */
  2930. if (mac_id != WLAN_INVALID_PDEV_ID) {
  2931. pages = &soc->mon_link_desc_pages[mac_id];
  2932. dp_srng = &soc->rxdma_mon_desc_ring[mac_id];
  2933. num_entries = dp_srng->alloc_size /
  2934. hal_srng_get_entrysize(soc->hal_soc,
  2935. RXDMA_MONITOR_DESC);
  2936. total_link_descs = &soc->total_mon_link_descs[mac_id];
  2937. qdf_str_lcopy(minidump_str, "mon_link_desc_bank",
  2938. MINIDUMP_STR_SIZE);
  2939. } else {
  2940. num_mpdu_link_descs = (max_clients * AVG_TIDS_PER_CLIENT *
  2941. AVG_MAX_MPDUS_PER_TID) / num_mpdus_per_link_desc;
  2942. num_mpdu_queue_descs = num_mpdu_link_descs /
  2943. num_mpdu_links_per_queue_desc;
  2944. num_tx_msdu_link_descs = (max_clients * AVG_TIDS_PER_CLIENT *
  2945. AVG_FLOWS_PER_TID * AVG_MSDUS_PER_FLOW) /
  2946. num_msdus_per_link_desc;
  2947. num_rx_msdu_link_descs = (max_clients * AVG_TIDS_PER_CLIENT *
  2948. AVG_MAX_MPDUS_PER_TID * AVG_MSDUS_PER_MPDU) / 6;
  2949. num_entries = num_mpdu_link_descs + num_mpdu_queue_descs +
  2950. num_tx_msdu_link_descs + num_rx_msdu_link_descs;
  2951. pages = &soc->link_desc_pages;
  2952. total_link_descs = &soc->total_link_descs;
  2953. qdf_str_lcopy(minidump_str, "link_desc_bank",
  2954. MINIDUMP_STR_SIZE);
  2955. }
  2956. /* If link descriptor banks are allocated, return from here */
  2957. if (pages->num_pages)
  2958. return QDF_STATUS_SUCCESS;
  2959. /* Round up to power of 2 */
  2960. *total_link_descs = 1;
  2961. while (*total_link_descs < num_entries)
  2962. *total_link_descs <<= 1;
  2963. dp_init_info("%pK: total_link_descs: %u, link_desc_size: %d",
  2964. soc, *total_link_descs, link_desc_size);
  2965. total_mem_size = *total_link_descs * link_desc_size;
  2966. total_mem_size += link_desc_align;
  2967. dp_init_info("%pK: total_mem_size: %d",
  2968. soc, total_mem_size);
  2969. dp_set_max_page_size(pages, max_alloc_size);
  2970. dp_desc_multi_pages_mem_alloc(soc, DP_HW_LINK_DESC_TYPE,
  2971. pages,
  2972. link_desc_size,
  2973. *total_link_descs,
  2974. 0, false);
  2975. if (!pages->num_pages) {
  2976. dp_err("Multi page alloc fail for hw link desc pool");
  2977. return QDF_STATUS_E_FAULT;
  2978. }
  2979. wlan_minidump_log(pages->dma_pages->page_v_addr_start,
  2980. pages->num_pages * pages->page_size,
  2981. soc->ctrl_psoc,
  2982. WLAN_MD_DP_SRNG_WBM_IDLE_LINK,
  2983. "hw_link_desc_bank");
  2984. return QDF_STATUS_SUCCESS;
  2985. }
  2986. /*
  2987. * dp_hw_link_desc_ring_free() - Free h/w link desc rings
  2988. * @soc: DP SOC handle
  2989. *
  2990. * Return: none
  2991. */
  2992. static void dp_hw_link_desc_ring_free(struct dp_soc *soc)
  2993. {
  2994. uint32_t i;
  2995. uint32_t size = soc->wbm_idle_scatter_buf_size;
  2996. void *vaddr = soc->wbm_idle_link_ring.base_vaddr_unaligned;
  2997. qdf_dma_addr_t paddr;
  2998. if (soc->wbm_idle_scatter_buf_base_vaddr[0]) {
  2999. for (i = 0; i < MAX_IDLE_SCATTER_BUFS; i++) {
  3000. vaddr = soc->wbm_idle_scatter_buf_base_vaddr[i];
  3001. paddr = soc->wbm_idle_scatter_buf_base_paddr[i];
  3002. if (vaddr) {
  3003. qdf_mem_free_consistent(soc->osdev,
  3004. soc->osdev->dev,
  3005. size,
  3006. vaddr,
  3007. paddr,
  3008. 0);
  3009. vaddr = NULL;
  3010. }
  3011. }
  3012. } else {
  3013. wlan_minidump_remove(soc->wbm_idle_link_ring.base_vaddr_unaligned,
  3014. soc->wbm_idle_link_ring.alloc_size,
  3015. soc->ctrl_psoc,
  3016. WLAN_MD_DP_SRNG_WBM_IDLE_LINK,
  3017. "wbm_idle_link_ring");
  3018. dp_srng_free(soc, &soc->wbm_idle_link_ring);
  3019. }
  3020. }
  3021. /*
  3022. * dp_hw_link_desc_ring_alloc() - Allocate hw link desc rings
  3023. * @soc: DP SOC handle
  3024. *
  3025. * Allocate memory for WBM_IDLE_LINK srng ring if the number of
  3026. * link descriptors is less then the max_allocated size. else
  3027. * allocate memory for wbm_idle_scatter_buffer.
  3028. *
  3029. * Return: QDF_STATUS_SUCCESS: success
  3030. * QDF_STATUS_E_NO_MEM: No memory (Failure)
  3031. */
  3032. static QDF_STATUS dp_hw_link_desc_ring_alloc(struct dp_soc *soc)
  3033. {
  3034. uint32_t entry_size, i;
  3035. uint32_t total_mem_size;
  3036. qdf_dma_addr_t *baseaddr = NULL;
  3037. struct dp_srng *dp_srng;
  3038. uint32_t ring_type;
  3039. uint32_t max_alloc_size = wlan_cfg_max_alloc_size(soc->wlan_cfg_ctx);
  3040. uint32_t tlds;
  3041. ring_type = WBM_IDLE_LINK;
  3042. dp_srng = &soc->wbm_idle_link_ring;
  3043. tlds = soc->total_link_descs;
  3044. entry_size = hal_srng_get_entrysize(soc->hal_soc, ring_type);
  3045. total_mem_size = entry_size * tlds;
  3046. if (total_mem_size <= max_alloc_size) {
  3047. if (dp_srng_alloc(soc, dp_srng, ring_type, tlds, 0)) {
  3048. dp_init_err("%pK: Link desc idle ring setup failed",
  3049. soc);
  3050. goto fail;
  3051. }
  3052. wlan_minidump_log(soc->wbm_idle_link_ring.base_vaddr_unaligned,
  3053. soc->wbm_idle_link_ring.alloc_size,
  3054. soc->ctrl_psoc,
  3055. WLAN_MD_DP_SRNG_WBM_IDLE_LINK,
  3056. "wbm_idle_link_ring");
  3057. } else {
  3058. uint32_t num_scatter_bufs;
  3059. uint32_t num_entries_per_buf;
  3060. uint32_t buf_size = 0;
  3061. soc->wbm_idle_scatter_buf_size =
  3062. hal_idle_list_scatter_buf_size(soc->hal_soc);
  3063. num_entries_per_buf = hal_idle_scatter_buf_num_entries(
  3064. soc->hal_soc, soc->wbm_idle_scatter_buf_size);
  3065. num_scatter_bufs = hal_idle_list_num_scatter_bufs(
  3066. soc->hal_soc, total_mem_size,
  3067. soc->wbm_idle_scatter_buf_size);
  3068. if (num_scatter_bufs > MAX_IDLE_SCATTER_BUFS) {
  3069. QDF_TRACE(QDF_MODULE_ID_DP, QDF_TRACE_LEVEL_ERROR,
  3070. FL("scatter bufs size out of bounds"));
  3071. goto fail;
  3072. }
  3073. for (i = 0; i < num_scatter_bufs; i++) {
  3074. baseaddr = &soc->wbm_idle_scatter_buf_base_paddr[i];
  3075. buf_size = soc->wbm_idle_scatter_buf_size;
  3076. soc->wbm_idle_scatter_buf_base_vaddr[i] =
  3077. qdf_mem_alloc_consistent(soc->osdev,
  3078. soc->osdev->dev,
  3079. buf_size,
  3080. baseaddr);
  3081. if (!soc->wbm_idle_scatter_buf_base_vaddr[i]) {
  3082. QDF_TRACE(QDF_MODULE_ID_DP,
  3083. QDF_TRACE_LEVEL_ERROR,
  3084. FL("Scatter lst memory alloc fail"));
  3085. goto fail;
  3086. }
  3087. }
  3088. soc->num_scatter_bufs = num_scatter_bufs;
  3089. }
  3090. return QDF_STATUS_SUCCESS;
  3091. fail:
  3092. for (i = 0; i < MAX_IDLE_SCATTER_BUFS; i++) {
  3093. void *vaddr = soc->wbm_idle_scatter_buf_base_vaddr[i];
  3094. qdf_dma_addr_t paddr = soc->wbm_idle_scatter_buf_base_paddr[i];
  3095. if (vaddr) {
  3096. qdf_mem_free_consistent(soc->osdev, soc->osdev->dev,
  3097. soc->wbm_idle_scatter_buf_size,
  3098. vaddr,
  3099. paddr, 0);
  3100. vaddr = NULL;
  3101. }
  3102. }
  3103. return QDF_STATUS_E_NOMEM;
  3104. }
  3105. /*
  3106. * dp_hw_link_desc_ring_init() - Initialize hw link desc rings
  3107. * @soc: DP SOC handle
  3108. *
  3109. * Return: QDF_STATUS_SUCCESS: success
  3110. * QDF_STATUS_E_FAILURE: failure
  3111. */
  3112. static QDF_STATUS dp_hw_link_desc_ring_init(struct dp_soc *soc)
  3113. {
  3114. struct dp_srng *dp_srng = &soc->wbm_idle_link_ring;
  3115. if (dp_srng->base_vaddr_unaligned) {
  3116. if (dp_srng_init(soc, dp_srng, WBM_IDLE_LINK, 0, 0))
  3117. return QDF_STATUS_E_FAILURE;
  3118. }
  3119. return QDF_STATUS_SUCCESS;
  3120. }
  3121. /*
  3122. * dp_hw_link_desc_ring_deinit() - Reset hw link desc rings
  3123. * @soc: DP SOC handle
  3124. *
  3125. * Return: None
  3126. */
  3127. static void dp_hw_link_desc_ring_deinit(struct dp_soc *soc)
  3128. {
  3129. dp_srng_deinit(soc, &soc->wbm_idle_link_ring, WBM_IDLE_LINK, 0);
  3130. }
  3131. /*
  3132. * dp_hw_link_desc_ring_replenish() - Replenish hw link desc rings
  3133. * @soc: DP SOC handle
  3134. * @mac_id: mac id
  3135. *
  3136. * Return: None
  3137. */
  3138. void dp_link_desc_ring_replenish(struct dp_soc *soc, uint32_t mac_id)
  3139. {
  3140. uint32_t cookie = 0;
  3141. uint32_t page_idx = 0;
  3142. struct qdf_mem_multi_page_t *pages;
  3143. struct qdf_mem_dma_page_t *dma_pages;
  3144. uint32_t offset = 0;
  3145. uint32_t count = 0;
  3146. void *desc_srng;
  3147. int link_desc_size = hal_get_link_desc_size(soc->hal_soc);
  3148. uint32_t total_link_descs;
  3149. uint32_t scatter_buf_num;
  3150. uint32_t num_entries_per_buf = 0;
  3151. uint32_t rem_entries;
  3152. uint32_t num_descs_per_page;
  3153. uint32_t num_scatter_bufs = 0;
  3154. uint8_t *scatter_buf_ptr;
  3155. void *desc;
  3156. num_scatter_bufs = soc->num_scatter_bufs;
  3157. if (mac_id == WLAN_INVALID_PDEV_ID) {
  3158. pages = &soc->link_desc_pages;
  3159. total_link_descs = soc->total_link_descs;
  3160. desc_srng = soc->wbm_idle_link_ring.hal_srng;
  3161. } else {
  3162. pages = &soc->mon_link_desc_pages[mac_id];
  3163. total_link_descs = soc->total_mon_link_descs[mac_id];
  3164. desc_srng = soc->rxdma_mon_desc_ring[mac_id].hal_srng;
  3165. }
  3166. dma_pages = pages->dma_pages;
  3167. do {
  3168. qdf_mem_zero(dma_pages[page_idx].page_v_addr_start,
  3169. pages->page_size);
  3170. page_idx++;
  3171. } while (page_idx < pages->num_pages);
  3172. if (desc_srng) {
  3173. hal_srng_access_start_unlocked(soc->hal_soc, desc_srng);
  3174. page_idx = 0;
  3175. count = 0;
  3176. offset = 0;
  3177. pages = &soc->link_desc_pages;
  3178. while ((desc = hal_srng_src_get_next(soc->hal_soc,
  3179. desc_srng)) &&
  3180. (count < total_link_descs)) {
  3181. page_idx = count / pages->num_element_per_page;
  3182. offset = count % pages->num_element_per_page;
  3183. cookie = LINK_DESC_COOKIE(count, page_idx,
  3184. soc->link_desc_id_start);
  3185. hal_set_link_desc_addr(soc->hal_soc, desc, cookie,
  3186. dma_pages[page_idx].page_p_addr
  3187. + (offset * link_desc_size));
  3188. count++;
  3189. }
  3190. hal_srng_access_end_unlocked(soc->hal_soc, desc_srng);
  3191. } else {
  3192. /* Populate idle list scatter buffers with link descriptor
  3193. * pointers
  3194. */
  3195. scatter_buf_num = 0;
  3196. num_entries_per_buf = hal_idle_scatter_buf_num_entries(
  3197. soc->hal_soc,
  3198. soc->wbm_idle_scatter_buf_size);
  3199. scatter_buf_ptr = (uint8_t *)(
  3200. soc->wbm_idle_scatter_buf_base_vaddr[scatter_buf_num]);
  3201. rem_entries = num_entries_per_buf;
  3202. pages = &soc->link_desc_pages;
  3203. page_idx = 0; count = 0;
  3204. offset = 0;
  3205. num_descs_per_page = pages->num_element_per_page;
  3206. while (count < total_link_descs) {
  3207. page_idx = count / num_descs_per_page;
  3208. offset = count % num_descs_per_page;
  3209. cookie = LINK_DESC_COOKIE(count, page_idx,
  3210. soc->link_desc_id_start);
  3211. hal_set_link_desc_addr(soc->hal_soc,
  3212. (void *)scatter_buf_ptr,
  3213. cookie,
  3214. dma_pages[page_idx].page_p_addr +
  3215. (offset * link_desc_size));
  3216. rem_entries--;
  3217. if (rem_entries) {
  3218. scatter_buf_ptr += link_desc_size;
  3219. } else {
  3220. rem_entries = num_entries_per_buf;
  3221. scatter_buf_num++;
  3222. if (scatter_buf_num >= num_scatter_bufs)
  3223. break;
  3224. scatter_buf_ptr = (uint8_t *)
  3225. (soc->wbm_idle_scatter_buf_base_vaddr[
  3226. scatter_buf_num]);
  3227. }
  3228. count++;
  3229. }
  3230. /* Setup link descriptor idle list in HW */
  3231. hal_setup_link_idle_list(soc->hal_soc,
  3232. soc->wbm_idle_scatter_buf_base_paddr,
  3233. soc->wbm_idle_scatter_buf_base_vaddr,
  3234. num_scatter_bufs, soc->wbm_idle_scatter_buf_size,
  3235. (uint32_t)(scatter_buf_ptr -
  3236. (uint8_t *)(soc->wbm_idle_scatter_buf_base_vaddr[
  3237. scatter_buf_num-1])), total_link_descs);
  3238. }
  3239. }
  3240. #ifdef IPA_OFFLOAD
  3241. #define USE_1_IPA_RX_REO_RING 1
  3242. #define USE_2_IPA_RX_REO_RINGS 2
  3243. #define REO_DST_RING_SIZE_QCA6290 1023
  3244. #ifndef CONFIG_WIFI_EMULATION_WIFI_3_0
  3245. #define REO_DST_RING_SIZE_QCA8074 1023
  3246. #define REO_DST_RING_SIZE_QCN9000 2048
  3247. #else
  3248. #define REO_DST_RING_SIZE_QCA8074 8
  3249. #define REO_DST_RING_SIZE_QCN9000 8
  3250. #endif /* CONFIG_WIFI_EMULATION_WIFI_3_0 */
  3251. #ifdef IPA_WDI3_TX_TWO_PIPES
  3252. #ifdef DP_MEMORY_OPT
  3253. static int dp_ipa_init_alt_tx_ring(struct dp_soc *soc)
  3254. {
  3255. return dp_init_tx_ring_pair_by_index(soc, IPA_TX_ALT_RING_IDX);
  3256. }
  3257. static void dp_ipa_deinit_alt_tx_ring(struct dp_soc *soc)
  3258. {
  3259. dp_deinit_tx_pair_by_index(soc, IPA_TX_ALT_RING_IDX);
  3260. }
  3261. static int dp_ipa_alloc_alt_tx_ring(struct dp_soc *soc)
  3262. {
  3263. return dp_alloc_tx_ring_pair_by_index(soc, IPA_TX_ALT_RING_IDX);
  3264. }
  3265. static void dp_ipa_free_alt_tx_ring(struct dp_soc *soc)
  3266. {
  3267. dp_free_tx_ring_pair_by_index(soc, IPA_TX_ALT_RING_IDX);
  3268. }
  3269. #else /* !DP_MEMORY_OPT */
  3270. static int dp_ipa_init_alt_tx_ring(struct dp_soc *soc)
  3271. {
  3272. return 0;
  3273. }
  3274. static void dp_ipa_deinit_alt_tx_ring(struct dp_soc *soc)
  3275. {
  3276. }
  3277. static int dp_ipa_alloc_alt_tx_ring(struct dp_soc *soc)
  3278. {
  3279. return 0
  3280. }
  3281. static void dp_ipa_free_alt_tx_ring(struct dp_soc *soc)
  3282. {
  3283. }
  3284. #endif /* DP_MEMORY_OPT */
  3285. static void dp_ipa_hal_tx_init_alt_data_ring(struct dp_soc *soc)
  3286. {
  3287. hal_tx_init_data_ring(soc->hal_soc,
  3288. soc->tcl_data_ring[IPA_TX_ALT_RING_IDX].hal_srng);
  3289. }
  3290. #else /* !IPA_WDI3_TX_TWO_PIPES */
  3291. static int dp_ipa_init_alt_tx_ring(struct dp_soc *soc)
  3292. {
  3293. return 0;
  3294. }
  3295. static void dp_ipa_deinit_alt_tx_ring(struct dp_soc *soc)
  3296. {
  3297. }
  3298. static int dp_ipa_alloc_alt_tx_ring(struct dp_soc *soc)
  3299. {
  3300. return 0;
  3301. }
  3302. static void dp_ipa_free_alt_tx_ring(struct dp_soc *soc)
  3303. {
  3304. }
  3305. static void dp_ipa_hal_tx_init_alt_data_ring(struct dp_soc *soc)
  3306. {
  3307. }
  3308. #endif /* IPA_WDI3_TX_TWO_PIPES */
  3309. #else
  3310. #define REO_DST_RING_SIZE_QCA6290 1024
  3311. #ifndef CONFIG_WIFI_EMULATION_WIFI_3_0
  3312. #define REO_DST_RING_SIZE_QCA8074 2048
  3313. #define REO_DST_RING_SIZE_QCN9000 2048
  3314. #else
  3315. #define REO_DST_RING_SIZE_QCA8074 8
  3316. #define REO_DST_RING_SIZE_QCN9000 8
  3317. #endif /* CONFIG_WIFI_EMULATION_WIFI_3_0 */
  3318. static int dp_ipa_init_alt_tx_ring(struct dp_soc *soc)
  3319. {
  3320. return 0;
  3321. }
  3322. static void dp_ipa_deinit_alt_tx_ring(struct dp_soc *soc)
  3323. {
  3324. }
  3325. static int dp_ipa_alloc_alt_tx_ring(struct dp_soc *soc)
  3326. {
  3327. return 0;
  3328. }
  3329. static void dp_ipa_free_alt_tx_ring(struct dp_soc *soc)
  3330. {
  3331. }
  3332. static void dp_ipa_hal_tx_init_alt_data_ring(struct dp_soc *soc)
  3333. {
  3334. }
  3335. #endif /* IPA_OFFLOAD */
  3336. /*
  3337. * dp_soc_reset_ring_map() - Reset cpu ring map
  3338. * @soc: Datapath soc handler
  3339. *
  3340. * This api resets the default cpu ring map
  3341. */
  3342. static void dp_soc_reset_cpu_ring_map(struct dp_soc *soc)
  3343. {
  3344. uint8_t i;
  3345. int nss_config = wlan_cfg_get_dp_soc_nss_cfg(soc->wlan_cfg_ctx);
  3346. for (i = 0; i < WLAN_CFG_INT_NUM_CONTEXTS; i++) {
  3347. switch (nss_config) {
  3348. case dp_nss_cfg_first_radio:
  3349. /*
  3350. * Setting Tx ring map for one nss offloaded radio
  3351. */
  3352. soc->tx_ring_map[i] = dp_cpu_ring_map[DP_NSS_FIRST_RADIO_OFFLOADED_MAP][i];
  3353. break;
  3354. case dp_nss_cfg_second_radio:
  3355. /*
  3356. * Setting Tx ring for two nss offloaded radios
  3357. */
  3358. soc->tx_ring_map[i] = dp_cpu_ring_map[DP_NSS_SECOND_RADIO_OFFLOADED_MAP][i];
  3359. break;
  3360. case dp_nss_cfg_dbdc:
  3361. /*
  3362. * Setting Tx ring map for 2 nss offloaded radios
  3363. */
  3364. soc->tx_ring_map[i] =
  3365. dp_cpu_ring_map[DP_NSS_DBDC_OFFLOADED_MAP][i];
  3366. break;
  3367. case dp_nss_cfg_dbtc:
  3368. /*
  3369. * Setting Tx ring map for 3 nss offloaded radios
  3370. */
  3371. soc->tx_ring_map[i] =
  3372. dp_cpu_ring_map[DP_NSS_DBTC_OFFLOADED_MAP][i];
  3373. break;
  3374. default:
  3375. dp_err("tx_ring_map failed due to invalid nss cfg");
  3376. break;
  3377. }
  3378. }
  3379. }
  3380. /*
  3381. * dp_soc_ring_if_nss_offloaded() - find if ring is offloaded to NSS
  3382. * @dp_soc - DP soc handle
  3383. * @ring_type - ring type
  3384. * @ring_num - ring_num
  3385. *
  3386. * return 0 or 1
  3387. */
  3388. static uint8_t dp_soc_ring_if_nss_offloaded(struct dp_soc *soc, enum hal_ring_type ring_type, int ring_num)
  3389. {
  3390. uint8_t nss_config = wlan_cfg_get_dp_soc_nss_cfg(soc->wlan_cfg_ctx);
  3391. uint8_t status = 0;
  3392. switch (ring_type) {
  3393. case WBM2SW_RELEASE:
  3394. case REO_DST:
  3395. case RXDMA_BUF:
  3396. case REO_EXCEPTION:
  3397. status = ((nss_config) & (1 << ring_num));
  3398. break;
  3399. default:
  3400. break;
  3401. }
  3402. return status;
  3403. }
  3404. /*
  3405. * dp_soc_disable_unused_mac_intr_mask() - reset interrupt mask for
  3406. * unused WMAC hw rings
  3407. * @dp_soc - DP Soc handle
  3408. * @mac_num - wmac num
  3409. *
  3410. * Return: Return void
  3411. */
  3412. static void dp_soc_disable_unused_mac_intr_mask(struct dp_soc *soc,
  3413. int mac_num)
  3414. {
  3415. uint8_t *grp_mask = NULL;
  3416. int group_number;
  3417. grp_mask = &soc->wlan_cfg_ctx->int_host2rxdma_ring_mask[0];
  3418. group_number = dp_srng_find_ring_in_mask(mac_num, grp_mask);
  3419. wlan_cfg_set_host2rxdma_ring_mask(soc->wlan_cfg_ctx,
  3420. group_number, 0x0);
  3421. grp_mask = &soc->wlan_cfg_ctx->int_rx_mon_ring_mask[0];
  3422. group_number = dp_srng_find_ring_in_mask(mac_num, grp_mask);
  3423. wlan_cfg_set_rx_mon_ring_mask(soc->wlan_cfg_ctx,
  3424. group_number, 0x0);
  3425. grp_mask = &soc->wlan_cfg_ctx->int_rxdma2host_ring_mask[0];
  3426. group_number = dp_srng_find_ring_in_mask(mac_num, grp_mask);
  3427. wlan_cfg_set_rxdma2host_ring_mask(soc->wlan_cfg_ctx,
  3428. group_number, 0x0);
  3429. grp_mask = &soc->wlan_cfg_ctx->int_host2rxdma_mon_ring_mask[0];
  3430. group_number = dp_srng_find_ring_in_mask(mac_num, grp_mask);
  3431. wlan_cfg_set_host2rxdma_mon_ring_mask(soc->wlan_cfg_ctx,
  3432. group_number, 0x0);
  3433. }
  3434. /*
  3435. * dp_soc_reset_intr_mask() - reset interrupt mask
  3436. * @dp_soc - DP Soc handle
  3437. *
  3438. * Return: Return void
  3439. */
  3440. static void dp_soc_reset_intr_mask(struct dp_soc *soc)
  3441. {
  3442. uint8_t j;
  3443. uint8_t *grp_mask = NULL;
  3444. int group_number, mask, num_ring;
  3445. /* number of tx ring */
  3446. num_ring = soc->num_tcl_data_rings;
  3447. /*
  3448. * group mask for tx completion ring.
  3449. */
  3450. grp_mask = &soc->wlan_cfg_ctx->int_tx_ring_mask[0];
  3451. /* loop and reset the mask for only offloaded ring */
  3452. for (j = 0; j < WLAN_CFG_NUM_TCL_DATA_RINGS; j++) {
  3453. /*
  3454. * Group number corresponding to tx offloaded ring.
  3455. */
  3456. group_number = dp_srng_find_ring_in_mask(j, grp_mask);
  3457. if (group_number < 0) {
  3458. dp_init_debug("%pK: ring not part of any group; ring_type: %d,ring_num %d",
  3459. soc, WBM2SW_RELEASE, j);
  3460. continue;
  3461. }
  3462. mask = wlan_cfg_get_tx_ring_mask(soc->wlan_cfg_ctx, group_number);
  3463. if (!dp_soc_ring_if_nss_offloaded(soc, WBM2SW_RELEASE, j) &&
  3464. (!mask)) {
  3465. continue;
  3466. }
  3467. /* reset the tx mask for offloaded ring */
  3468. mask &= (~(1 << j));
  3469. /*
  3470. * reset the interrupt mask for offloaded ring.
  3471. */
  3472. wlan_cfg_set_tx_ring_mask(soc->wlan_cfg_ctx, group_number, mask);
  3473. }
  3474. /* number of rx rings */
  3475. num_ring = soc->num_reo_dest_rings;
  3476. /*
  3477. * group mask for reo destination ring.
  3478. */
  3479. grp_mask = &soc->wlan_cfg_ctx->int_rx_ring_mask[0];
  3480. /* loop and reset the mask for only offloaded ring */
  3481. for (j = 0; j < WLAN_CFG_NUM_REO_DEST_RING; j++) {
  3482. /*
  3483. * Group number corresponding to rx offloaded ring.
  3484. */
  3485. group_number = dp_srng_find_ring_in_mask(j, grp_mask);
  3486. if (group_number < 0) {
  3487. dp_init_debug("%pK: ring not part of any group; ring_type: %d,ring_num %d",
  3488. soc, REO_DST, j);
  3489. continue;
  3490. }
  3491. mask = wlan_cfg_get_rx_ring_mask(soc->wlan_cfg_ctx, group_number);
  3492. if (!dp_soc_ring_if_nss_offloaded(soc, REO_DST, j) &&
  3493. (!mask)) {
  3494. continue;
  3495. }
  3496. /* reset the interrupt mask for offloaded ring */
  3497. mask &= (~(1 << j));
  3498. /*
  3499. * set the interrupt mask to zero for rx offloaded radio.
  3500. */
  3501. wlan_cfg_set_rx_ring_mask(soc->wlan_cfg_ctx, group_number, mask);
  3502. }
  3503. /*
  3504. * group mask for Rx buffer refill ring
  3505. */
  3506. grp_mask = &soc->wlan_cfg_ctx->int_host2rxdma_ring_mask[0];
  3507. /* loop and reset the mask for only offloaded ring */
  3508. for (j = 0; j < MAX_PDEV_CNT; j++) {
  3509. int lmac_id = wlan_cfg_get_hw_mac_idx(soc->wlan_cfg_ctx, j);
  3510. if (!dp_soc_ring_if_nss_offloaded(soc, RXDMA_BUF, j)) {
  3511. continue;
  3512. }
  3513. /*
  3514. * Group number corresponding to rx offloaded ring.
  3515. */
  3516. group_number = dp_srng_find_ring_in_mask(lmac_id, grp_mask);
  3517. if (group_number < 0) {
  3518. dp_init_debug("%pK: ring not part of any group; ring_type: %d,ring_num %d",
  3519. soc, REO_DST, lmac_id);
  3520. continue;
  3521. }
  3522. /* set the interrupt mask for offloaded ring */
  3523. mask = wlan_cfg_get_host2rxdma_ring_mask(soc->wlan_cfg_ctx,
  3524. group_number);
  3525. mask &= (~(1 << lmac_id));
  3526. /*
  3527. * set the interrupt mask to zero for rx offloaded radio.
  3528. */
  3529. wlan_cfg_set_host2rxdma_ring_mask(soc->wlan_cfg_ctx,
  3530. group_number, mask);
  3531. }
  3532. grp_mask = &soc->wlan_cfg_ctx->int_rx_err_ring_mask[0];
  3533. for (j = 0; j < num_ring; j++) {
  3534. if (!dp_soc_ring_if_nss_offloaded(soc, REO_EXCEPTION, j)) {
  3535. continue;
  3536. }
  3537. /*
  3538. * Group number corresponding to rx err ring.
  3539. */
  3540. group_number = dp_srng_find_ring_in_mask(j, grp_mask);
  3541. if (group_number < 0) {
  3542. dp_init_debug("%pK: ring not part of any group; ring_type: %d,ring_num %d",
  3543. soc, REO_EXCEPTION, j);
  3544. continue;
  3545. }
  3546. wlan_cfg_set_rx_err_ring_mask(soc->wlan_cfg_ctx,
  3547. group_number, 0);
  3548. }
  3549. }
  3550. #ifdef IPA_OFFLOAD
  3551. /**
  3552. * dp_reo_remap_config() - configure reo remap register value based
  3553. * nss configuration.
  3554. * based on offload_radio value below remap configuration
  3555. * get applied.
  3556. * 0 - both Radios handled by host (remap rings 1, 2, 3 & 4)
  3557. * 1 - 1st Radio handled by NSS (remap rings 2, 3 & 4)
  3558. * 2 - 2nd Radio handled by NSS (remap rings 1, 2 & 4)
  3559. * 3 - both Radios handled by NSS (remap not required)
  3560. * 4 - IPA OFFLOAD enabled (remap rings 1,2 & 3)
  3561. *
  3562. * @remap1: output parameter indicates reo remap 1 register value
  3563. * @remap2: output parameter indicates reo remap 2 register value
  3564. * Return: bool type, true if remap is configured else false.
  3565. */
  3566. bool dp_reo_remap_config(struct dp_soc *soc, uint32_t *remap1, uint32_t *remap2)
  3567. {
  3568. uint32_t ring[8] = {REO_REMAP_SW1, REO_REMAP_SW2, REO_REMAP_SW3};
  3569. int target_type;
  3570. target_type = hal_get_target_type(soc->hal_soc);
  3571. switch (target_type) {
  3572. case TARGET_TYPE_WCN7850:
  3573. hal_compute_reo_remap_ix2_ix3(soc->hal_soc, ring,
  3574. soc->num_reo_dest_rings -
  3575. USE_2_IPA_RX_REO_RINGS, remap1,
  3576. remap2);
  3577. break;
  3578. default:
  3579. hal_compute_reo_remap_ix2_ix3(soc->hal_soc, ring,
  3580. soc->num_reo_dest_rings -
  3581. USE_1_IPA_RX_REO_RING, remap1,
  3582. remap2);
  3583. break;
  3584. }
  3585. dp_debug("remap1 %x remap2 %x", *remap1, *remap2);
  3586. return true;
  3587. }
  3588. #ifdef IPA_WDI3_TX_TWO_PIPES
  3589. static bool dp_ipa_is_alt_tx_ring(int index)
  3590. {
  3591. return index == IPA_TX_ALT_RING_IDX;
  3592. }
  3593. static bool dp_ipa_is_alt_tx_comp_ring(int index)
  3594. {
  3595. return index == IPA_TX_ALT_COMP_RING_IDX;
  3596. }
  3597. #else /* !IPA_WDI3_TX_TWO_PIPES */
  3598. static bool dp_ipa_is_alt_tx_ring(int index)
  3599. {
  3600. return false;
  3601. }
  3602. static bool dp_ipa_is_alt_tx_comp_ring(int index)
  3603. {
  3604. return false;
  3605. }
  3606. #endif /* IPA_WDI3_TX_TWO_PIPES */
  3607. /**
  3608. * dp_ipa_get_tx_ring_size() - Get Tx ring size for IPA
  3609. *
  3610. * @tx_ring_num: Tx ring number
  3611. * @tx_ipa_ring_sz: Return param only updated for IPA.
  3612. * @soc_cfg_ctx: dp soc cfg context
  3613. *
  3614. * Return: None
  3615. */
  3616. static void dp_ipa_get_tx_ring_size(int tx_ring_num, int *tx_ipa_ring_sz,
  3617. struct wlan_cfg_dp_soc_ctxt *soc_cfg_ctx)
  3618. {
  3619. if (tx_ring_num == IPA_TCL_DATA_RING_IDX ||
  3620. dp_ipa_is_alt_tx_ring(tx_ring_num))
  3621. *tx_ipa_ring_sz = wlan_cfg_ipa_tx_ring_size(soc_cfg_ctx);
  3622. }
  3623. /**
  3624. * dp_ipa_get_tx_comp_ring_size() - Get Tx comp ring size for IPA
  3625. *
  3626. * @tx_comp_ring_num: Tx comp ring number
  3627. * @tx_comp_ipa_ring_sz: Return param only updated for IPA.
  3628. * @soc_cfg_ctx: dp soc cfg context
  3629. *
  3630. * Return: None
  3631. */
  3632. static void dp_ipa_get_tx_comp_ring_size(int tx_comp_ring_num,
  3633. int *tx_comp_ipa_ring_sz,
  3634. struct wlan_cfg_dp_soc_ctxt *soc_cfg_ctx)
  3635. {
  3636. if (tx_comp_ring_num == IPA_TCL_DATA_RING_IDX ||
  3637. dp_ipa_is_alt_tx_comp_ring(tx_comp_ring_num))
  3638. *tx_comp_ipa_ring_sz =
  3639. wlan_cfg_ipa_tx_comp_ring_size(soc_cfg_ctx);
  3640. }
  3641. #else
  3642. static uint8_t dp_reo_ring_selection(uint32_t value, uint32_t *ring)
  3643. {
  3644. uint8_t num = 0;
  3645. switch (value) {
  3646. case 0xF:
  3647. num = 4;
  3648. ring[0] = REO_REMAP_SW1;
  3649. ring[1] = REO_REMAP_SW2;
  3650. ring[2] = REO_REMAP_SW3;
  3651. ring[3] = REO_REMAP_SW4;
  3652. break;
  3653. case 0xE:
  3654. num = 3;
  3655. ring[0] = REO_REMAP_SW2;
  3656. ring[1] = REO_REMAP_SW3;
  3657. ring[2] = REO_REMAP_SW4;
  3658. break;
  3659. case 0xD:
  3660. num = 3;
  3661. ring[0] = REO_REMAP_SW1;
  3662. ring[1] = REO_REMAP_SW3;
  3663. ring[2] = REO_REMAP_SW4;
  3664. break;
  3665. case 0xC:
  3666. num = 2;
  3667. ring[0] = REO_REMAP_SW3;
  3668. ring[1] = REO_REMAP_SW4;
  3669. break;
  3670. case 0xB:
  3671. num = 3;
  3672. ring[0] = REO_REMAP_SW1;
  3673. ring[1] = REO_REMAP_SW2;
  3674. ring[2] = REO_REMAP_SW4;
  3675. break;
  3676. case 0xA:
  3677. num = 2;
  3678. ring[0] = REO_REMAP_SW2;
  3679. ring[1] = REO_REMAP_SW4;
  3680. break;
  3681. case 0x9:
  3682. num = 2;
  3683. ring[0] = REO_REMAP_SW1;
  3684. ring[1] = REO_REMAP_SW4;
  3685. break;
  3686. case 0x8:
  3687. num = 1;
  3688. ring[0] = REO_REMAP_SW4;
  3689. break;
  3690. case 0x7:
  3691. num = 3;
  3692. ring[0] = REO_REMAP_SW1;
  3693. ring[1] = REO_REMAP_SW2;
  3694. ring[2] = REO_REMAP_SW3;
  3695. break;
  3696. case 0x6:
  3697. num = 2;
  3698. ring[0] = REO_REMAP_SW2;
  3699. ring[1] = REO_REMAP_SW3;
  3700. break;
  3701. case 0x5:
  3702. num = 2;
  3703. ring[0] = REO_REMAP_SW1;
  3704. ring[1] = REO_REMAP_SW3;
  3705. break;
  3706. case 0x4:
  3707. num = 1;
  3708. ring[0] = REO_REMAP_SW3;
  3709. break;
  3710. case 0x3:
  3711. num = 2;
  3712. ring[0] = REO_REMAP_SW1;
  3713. ring[1] = REO_REMAP_SW2;
  3714. break;
  3715. case 0x2:
  3716. num = 1;
  3717. ring[0] = REO_REMAP_SW2;
  3718. break;
  3719. case 0x1:
  3720. num = 1;
  3721. ring[0] = REO_REMAP_SW1;
  3722. break;
  3723. }
  3724. return num;
  3725. }
  3726. static bool dp_reo_remap_config(struct dp_soc *soc,
  3727. uint32_t *remap1,
  3728. uint32_t *remap2)
  3729. {
  3730. uint8_t offload_radio = wlan_cfg_get_dp_soc_nss_cfg(soc->wlan_cfg_ctx);
  3731. uint32_t reo_config = wlan_cfg_get_reo_rings_mapping(soc->wlan_cfg_ctx);
  3732. uint8_t target_type, num;
  3733. uint32_t ring[4];
  3734. uint32_t value;
  3735. target_type = hal_get_target_type(soc->hal_soc);
  3736. switch (offload_radio) {
  3737. case dp_nss_cfg_default:
  3738. value = reo_config & 0xF;
  3739. num = dp_reo_ring_selection(value, ring);
  3740. hal_compute_reo_remap_ix2_ix3(soc->hal_soc, ring,
  3741. num, remap1, remap2);
  3742. break;
  3743. case dp_nss_cfg_first_radio:
  3744. value = reo_config & 0xE;
  3745. num = dp_reo_ring_selection(value, ring);
  3746. hal_compute_reo_remap_ix2_ix3(soc->hal_soc, ring,
  3747. num, remap1, remap2);
  3748. break;
  3749. case dp_nss_cfg_second_radio:
  3750. value = reo_config & 0xD;
  3751. num = dp_reo_ring_selection(value, ring);
  3752. hal_compute_reo_remap_ix2_ix3(soc->hal_soc, ring,
  3753. num, remap1, remap2);
  3754. break;
  3755. case dp_nss_cfg_dbdc:
  3756. case dp_nss_cfg_dbtc:
  3757. /* return false if both or all are offloaded to NSS */
  3758. return false;
  3759. }
  3760. dp_debug("remap1 %x remap2 %x offload_radio %u",
  3761. *remap1, *remap2, offload_radio);
  3762. return true;
  3763. }
  3764. static void dp_ipa_get_tx_ring_size(int ring_num, int *tx_ipa_ring_sz,
  3765. struct wlan_cfg_dp_soc_ctxt *soc_cfg_ctx)
  3766. {
  3767. }
  3768. static void dp_ipa_get_tx_comp_ring_size(int tx_comp_ring_num,
  3769. int *tx_comp_ipa_ring_sz,
  3770. struct wlan_cfg_dp_soc_ctxt *soc_cfg_ctx)
  3771. {
  3772. }
  3773. #endif /* IPA_OFFLOAD */
  3774. /*
  3775. * dp_reo_frag_dst_set() - configure reo register to set the
  3776. * fragment destination ring
  3777. * @soc : Datapath soc
  3778. * @frag_dst_ring : output parameter to set fragment destination ring
  3779. *
  3780. * Based on offload_radio below fragment destination rings is selected
  3781. * 0 - TCL
  3782. * 1 - SW1
  3783. * 2 - SW2
  3784. * 3 - SW3
  3785. * 4 - SW4
  3786. * 5 - Release
  3787. * 6 - FW
  3788. * 7 - alternate select
  3789. *
  3790. * return: void
  3791. */
  3792. static void dp_reo_frag_dst_set(struct dp_soc *soc, uint8_t *frag_dst_ring)
  3793. {
  3794. uint8_t offload_radio = wlan_cfg_get_dp_soc_nss_cfg(soc->wlan_cfg_ctx);
  3795. switch (offload_radio) {
  3796. case dp_nss_cfg_default:
  3797. *frag_dst_ring = REO_REMAP_TCL;
  3798. break;
  3799. case dp_nss_cfg_first_radio:
  3800. /*
  3801. * This configuration is valid for single band radio which
  3802. * is also NSS offload.
  3803. */
  3804. case dp_nss_cfg_dbdc:
  3805. case dp_nss_cfg_dbtc:
  3806. *frag_dst_ring = HAL_SRNG_REO_ALTERNATE_SELECT;
  3807. break;
  3808. default:
  3809. dp_init_err("%pK: dp_reo_frag_dst_set invalid offload radio config", soc);
  3810. break;
  3811. }
  3812. }
  3813. #ifdef ENABLE_VERBOSE_DEBUG
  3814. static void dp_enable_verbose_debug(struct dp_soc *soc)
  3815. {
  3816. struct wlan_cfg_dp_soc_ctxt *soc_cfg_ctx;
  3817. soc_cfg_ctx = soc->wlan_cfg_ctx;
  3818. if (soc_cfg_ctx->per_pkt_trace & dp_verbose_debug_mask)
  3819. is_dp_verbose_debug_enabled = true;
  3820. if (soc_cfg_ctx->per_pkt_trace & hal_verbose_debug_mask)
  3821. hal_set_verbose_debug(true);
  3822. else
  3823. hal_set_verbose_debug(false);
  3824. }
  3825. #else
  3826. static void dp_enable_verbose_debug(struct dp_soc *soc)
  3827. {
  3828. }
  3829. #endif
  3830. #ifdef WLAN_FEATURE_STATS_EXT
  3831. static inline void dp_create_ext_stats_event(struct dp_soc *soc)
  3832. {
  3833. qdf_event_create(&soc->rx_hw_stats_event);
  3834. }
  3835. #else
  3836. static inline void dp_create_ext_stats_event(struct dp_soc *soc)
  3837. {
  3838. }
  3839. #endif
  3840. static void dp_deinit_tx_pair_by_index(struct dp_soc *soc, int index)
  3841. {
  3842. int tcl_ring_num, wbm_ring_num;
  3843. wlan_cfg_get_tcl_wbm_ring_num_for_index(index,
  3844. &tcl_ring_num,
  3845. &wbm_ring_num);
  3846. if (tcl_ring_num == -1 || wbm_ring_num == -1) {
  3847. dp_err("incorrect tcl/wbm ring num for index %u", index);
  3848. return;
  3849. }
  3850. wlan_minidump_remove(soc->tcl_data_ring[index].base_vaddr_unaligned,
  3851. soc->tcl_data_ring[index].alloc_size,
  3852. soc->ctrl_psoc,
  3853. WLAN_MD_DP_SRNG_TCL_DATA,
  3854. "tcl_data_ring");
  3855. dp_info("index %u tcl %u wbm %u", index, tcl_ring_num, wbm_ring_num);
  3856. dp_srng_deinit(soc, &soc->tcl_data_ring[index], TCL_DATA,
  3857. tcl_ring_num);
  3858. wlan_minidump_remove(soc->tx_comp_ring[index].base_vaddr_unaligned,
  3859. soc->tx_comp_ring[index].alloc_size,
  3860. soc->ctrl_psoc,
  3861. WLAN_MD_DP_SRNG_TX_COMP,
  3862. "tcl_comp_ring");
  3863. dp_srng_deinit(soc, &soc->tx_comp_ring[index], WBM2SW_RELEASE,
  3864. wbm_ring_num);
  3865. }
  3866. /**
  3867. * dp_init_tx_ring_pair_by_index() - The function inits tcl data/wbm completion
  3868. * ring pair
  3869. * @soc: DP soc pointer
  3870. * @index: index of soc->tcl_data or soc->tx_comp to initialize
  3871. *
  3872. * Return: QDF_STATUS_SUCCESS on success, error code otherwise.
  3873. */
  3874. static QDF_STATUS dp_init_tx_ring_pair_by_index(struct dp_soc *soc,
  3875. uint8_t index)
  3876. {
  3877. int tcl_ring_num, wbm_ring_num;
  3878. if (index >= MAX_TCL_DATA_RINGS) {
  3879. dp_err("unexpected index!");
  3880. QDF_BUG(0);
  3881. goto fail1;
  3882. }
  3883. wlan_cfg_get_tcl_wbm_ring_num_for_index(index,
  3884. &tcl_ring_num,
  3885. &wbm_ring_num);
  3886. if (tcl_ring_num == -1 || wbm_ring_num == -1) {
  3887. dp_err("incorrect tcl/wbm ring num for index %u", index);
  3888. goto fail1;
  3889. }
  3890. dp_info("index %u tcl %u wbm %u", index, tcl_ring_num, wbm_ring_num);
  3891. if (dp_srng_init(soc, &soc->tcl_data_ring[index], TCL_DATA,
  3892. tcl_ring_num, 0)) {
  3893. dp_err("dp_srng_init failed for tcl_data_ring");
  3894. goto fail1;
  3895. }
  3896. wlan_minidump_log(soc->tcl_data_ring[index].base_vaddr_unaligned,
  3897. soc->tcl_data_ring[index].alloc_size,
  3898. soc->ctrl_psoc,
  3899. WLAN_MD_DP_SRNG_TCL_DATA,
  3900. "tcl_data_ring");
  3901. if (dp_srng_init(soc, &soc->tx_comp_ring[index], WBM2SW_RELEASE,
  3902. wbm_ring_num, 0)) {
  3903. dp_err("dp_srng_init failed for tx_comp_ring");
  3904. goto fail1;
  3905. }
  3906. wlan_minidump_log(soc->tx_comp_ring[index].base_vaddr_unaligned,
  3907. soc->tx_comp_ring[index].alloc_size,
  3908. soc->ctrl_psoc,
  3909. WLAN_MD_DP_SRNG_TX_COMP,
  3910. "tcl_comp_ring");
  3911. return QDF_STATUS_SUCCESS;
  3912. fail1:
  3913. return QDF_STATUS_E_FAILURE;
  3914. }
  3915. static void dp_free_tx_ring_pair_by_index(struct dp_soc *soc, uint8_t index)
  3916. {
  3917. dp_debug("index %u", index);
  3918. dp_srng_free(soc, &soc->tcl_data_ring[index]);
  3919. dp_srng_free(soc, &soc->tx_comp_ring[index]);
  3920. }
  3921. /**
  3922. * dp_alloc_tx_ring_pair_by_index() - The function allocs tcl data/wbm2sw
  3923. * ring pair for the given "index"
  3924. * @soc: DP soc pointer
  3925. * @index: index of soc->tcl_data or soc->tx_comp to initialize
  3926. *
  3927. * Return: QDF_STATUS_SUCCESS on success, error code otherwise.
  3928. */
  3929. static QDF_STATUS dp_alloc_tx_ring_pair_by_index(struct dp_soc *soc,
  3930. uint8_t index)
  3931. {
  3932. int tx_ring_size;
  3933. int tx_comp_ring_size;
  3934. struct wlan_cfg_dp_soc_ctxt *soc_cfg_ctx = soc->wlan_cfg_ctx;
  3935. int cached = 0;
  3936. if (index >= MAX_TCL_DATA_RINGS) {
  3937. dp_err("unexpected index!");
  3938. QDF_BUG(0);
  3939. goto fail1;
  3940. }
  3941. dp_debug("index %u", index);
  3942. tx_ring_size = wlan_cfg_tx_ring_size(soc_cfg_ctx);
  3943. dp_ipa_get_tx_ring_size(index, &tx_ring_size, soc_cfg_ctx);
  3944. if (dp_srng_alloc(soc, &soc->tcl_data_ring[index], TCL_DATA,
  3945. tx_ring_size, cached)) {
  3946. dp_err("dp_srng_alloc failed for tcl_data_ring");
  3947. goto fail1;
  3948. }
  3949. tx_comp_ring_size = wlan_cfg_tx_comp_ring_size(soc_cfg_ctx);
  3950. dp_ipa_get_tx_comp_ring_size(index, &tx_comp_ring_size, soc_cfg_ctx);
  3951. /* Enable cached TCL desc if NSS offload is disabled */
  3952. if (!wlan_cfg_get_dp_soc_nss_cfg(soc_cfg_ctx))
  3953. cached = WLAN_CFG_DST_RING_CACHED_DESC;
  3954. if (dp_srng_alloc(soc, &soc->tx_comp_ring[index], WBM2SW_RELEASE,
  3955. tx_comp_ring_size, cached)) {
  3956. dp_err("dp_srng_alloc failed for tx_comp_ring");
  3957. goto fail1;
  3958. }
  3959. return QDF_STATUS_SUCCESS;
  3960. fail1:
  3961. return QDF_STATUS_E_FAILURE;
  3962. }
  3963. static QDF_STATUS dp_lro_hash_setup(struct dp_soc *soc, struct dp_pdev *pdev)
  3964. {
  3965. struct cdp_lro_hash_config lro_hash;
  3966. QDF_STATUS status;
  3967. if (!wlan_cfg_is_lro_enabled(soc->wlan_cfg_ctx) &&
  3968. !wlan_cfg_is_gro_enabled(soc->wlan_cfg_ctx) &&
  3969. !wlan_cfg_is_rx_hash_enabled(soc->wlan_cfg_ctx)) {
  3970. dp_err("LRO, GRO and RX hash disabled");
  3971. return QDF_STATUS_E_FAILURE;
  3972. }
  3973. qdf_mem_zero(&lro_hash, sizeof(lro_hash));
  3974. if (wlan_cfg_is_lro_enabled(soc->wlan_cfg_ctx) ||
  3975. wlan_cfg_is_gro_enabled(soc->wlan_cfg_ctx)) {
  3976. lro_hash.lro_enable = 1;
  3977. lro_hash.tcp_flag = QDF_TCPHDR_ACK;
  3978. lro_hash.tcp_flag_mask = QDF_TCPHDR_FIN | QDF_TCPHDR_SYN |
  3979. QDF_TCPHDR_RST | QDF_TCPHDR_ACK | QDF_TCPHDR_URG |
  3980. QDF_TCPHDR_ECE | QDF_TCPHDR_CWR;
  3981. }
  3982. qdf_get_random_bytes(lro_hash.toeplitz_hash_ipv4,
  3983. (sizeof(lro_hash.toeplitz_hash_ipv4[0]) *
  3984. LRO_IPV4_SEED_ARR_SZ));
  3985. qdf_get_random_bytes(lro_hash.toeplitz_hash_ipv6,
  3986. (sizeof(lro_hash.toeplitz_hash_ipv6[0]) *
  3987. LRO_IPV6_SEED_ARR_SZ));
  3988. qdf_assert(soc->cdp_soc.ol_ops->lro_hash_config);
  3989. if (!soc->cdp_soc.ol_ops->lro_hash_config) {
  3990. QDF_BUG(0);
  3991. dp_err("lro_hash_config not configured");
  3992. return QDF_STATUS_E_FAILURE;
  3993. }
  3994. status = soc->cdp_soc.ol_ops->lro_hash_config(soc->ctrl_psoc,
  3995. pdev->pdev_id,
  3996. &lro_hash);
  3997. if (!QDF_IS_STATUS_SUCCESS(status)) {
  3998. dp_err("failed to send lro_hash_config to FW %u", status);
  3999. return status;
  4000. }
  4001. dp_info("LRO CMD config: lro_enable: 0x%x tcp_flag 0x%x tcp_flag_mask 0x%x",
  4002. lro_hash.lro_enable, lro_hash.tcp_flag,
  4003. lro_hash.tcp_flag_mask);
  4004. dp_info("toeplitz_hash_ipv4:");
  4005. qdf_trace_hex_dump(QDF_MODULE_ID_DP, QDF_TRACE_LEVEL_INFO,
  4006. lro_hash.toeplitz_hash_ipv4,
  4007. (sizeof(lro_hash.toeplitz_hash_ipv4[0]) *
  4008. LRO_IPV4_SEED_ARR_SZ));
  4009. dp_info("toeplitz_hash_ipv6:");
  4010. qdf_trace_hex_dump(QDF_MODULE_ID_DP, QDF_TRACE_LEVEL_INFO,
  4011. lro_hash.toeplitz_hash_ipv6,
  4012. (sizeof(lro_hash.toeplitz_hash_ipv6[0]) *
  4013. LRO_IPV6_SEED_ARR_SZ));
  4014. return status;
  4015. }
  4016. /*
  4017. * dp_rxdma_ring_setup() - configure the RX DMA rings
  4018. * @soc: data path SoC handle
  4019. * @pdev: Physical device handle
  4020. *
  4021. * Return: 0 - success, > 0 - failure
  4022. */
  4023. #ifdef QCA_HOST2FW_RXBUF_RING
  4024. static int dp_rxdma_ring_setup(struct dp_soc *soc, struct dp_pdev *pdev)
  4025. {
  4026. struct wlan_cfg_dp_pdev_ctxt *pdev_cfg_ctx;
  4027. int max_mac_rings;
  4028. int i;
  4029. int ring_size;
  4030. pdev_cfg_ctx = pdev->wlan_cfg_ctx;
  4031. max_mac_rings = wlan_cfg_get_num_mac_rings(pdev_cfg_ctx);
  4032. ring_size = wlan_cfg_get_rx_dma_buf_ring_size(pdev_cfg_ctx);
  4033. for (i = 0; i < max_mac_rings; i++) {
  4034. dp_verbose_debug("pdev_id %d mac_id %d", pdev->pdev_id, i);
  4035. if (dp_srng_alloc(soc, &pdev->rx_mac_buf_ring[i],
  4036. RXDMA_BUF, ring_size, 0)) {
  4037. dp_init_err("%pK: failed rx mac ring setup", soc);
  4038. return QDF_STATUS_E_FAILURE;
  4039. }
  4040. if (dp_srng_init(soc, &pdev->rx_mac_buf_ring[i],
  4041. RXDMA_BUF, 1, i)) {
  4042. dp_init_err("%pK: failed rx mac ring setup", soc);
  4043. dp_srng_free(soc, &pdev->rx_mac_buf_ring[i]);
  4044. return QDF_STATUS_E_FAILURE;
  4045. }
  4046. }
  4047. return QDF_STATUS_SUCCESS;
  4048. }
  4049. #else
  4050. static int dp_rxdma_ring_setup(struct dp_soc *soc, struct dp_pdev *pdev)
  4051. {
  4052. return QDF_STATUS_SUCCESS;
  4053. }
  4054. #endif
  4055. /**
  4056. * dp_dscp_tid_map_setup(): Initialize the dscp-tid maps
  4057. * @pdev - DP_PDEV handle
  4058. *
  4059. * Return: void
  4060. */
  4061. static inline void
  4062. dp_dscp_tid_map_setup(struct dp_pdev *pdev)
  4063. {
  4064. uint8_t map_id;
  4065. struct dp_soc *soc = pdev->soc;
  4066. if (!soc)
  4067. return;
  4068. for (map_id = 0; map_id < DP_MAX_TID_MAPS; map_id++) {
  4069. qdf_mem_copy(pdev->dscp_tid_map[map_id],
  4070. default_dscp_tid_map,
  4071. sizeof(default_dscp_tid_map));
  4072. }
  4073. for (map_id = 0; map_id < soc->num_hw_dscp_tid_map; map_id++) {
  4074. hal_tx_set_dscp_tid_map(soc->hal_soc,
  4075. default_dscp_tid_map,
  4076. map_id);
  4077. }
  4078. }
  4079. /**
  4080. * dp_pcp_tid_map_setup(): Initialize the pcp-tid maps
  4081. * @pdev - DP_PDEV handle
  4082. *
  4083. * Return: void
  4084. */
  4085. static inline void
  4086. dp_pcp_tid_map_setup(struct dp_pdev *pdev)
  4087. {
  4088. struct dp_soc *soc = pdev->soc;
  4089. if (!soc)
  4090. return;
  4091. qdf_mem_copy(soc->pcp_tid_map, default_pcp_tid_map,
  4092. sizeof(default_pcp_tid_map));
  4093. hal_tx_set_pcp_tid_map_default(soc->hal_soc, default_pcp_tid_map);
  4094. }
  4095. #ifdef IPA_OFFLOAD
  4096. /**
  4097. * dp_setup_ipa_rx_refill_buf_ring - Setup second Rx refill buffer ring
  4098. * @soc: data path instance
  4099. * @pdev: core txrx pdev context
  4100. *
  4101. * Return: QDF_STATUS_SUCCESS: success
  4102. * QDF_STATUS_E_RESOURCES: Error return
  4103. */
  4104. static int dp_setup_ipa_rx_refill_buf_ring(struct dp_soc *soc,
  4105. struct dp_pdev *pdev)
  4106. {
  4107. struct wlan_cfg_dp_soc_ctxt *soc_cfg_ctx;
  4108. int entries;
  4109. soc_cfg_ctx = soc->wlan_cfg_ctx;
  4110. entries = wlan_cfg_get_dp_soc_rxdma_refill_ring_size(soc_cfg_ctx);
  4111. /* Setup second Rx refill buffer ring */
  4112. if (dp_srng_alloc(soc, &pdev->rx_refill_buf_ring2, RXDMA_BUF,
  4113. entries, 0)) {
  4114. dp_init_err("%pK: dp_srng_alloc failed second rx refill ring", soc);
  4115. return QDF_STATUS_E_FAILURE;
  4116. }
  4117. if (dp_srng_init(soc, &pdev->rx_refill_buf_ring2, RXDMA_BUF,
  4118. IPA_RX_REFILL_BUF_RING_IDX, pdev->pdev_id)) {
  4119. dp_init_err("%pK: dp_srng_init failed second rx refill ring", soc);
  4120. return QDF_STATUS_E_FAILURE;
  4121. }
  4122. return QDF_STATUS_SUCCESS;
  4123. }
  4124. /**
  4125. * dp_cleanup_ipa_rx_refill_buf_ring - Cleanup second Rx refill buffer ring
  4126. * @soc: data path instance
  4127. * @pdev: core txrx pdev context
  4128. *
  4129. * Return: void
  4130. */
  4131. static void dp_cleanup_ipa_rx_refill_buf_ring(struct dp_soc *soc,
  4132. struct dp_pdev *pdev)
  4133. {
  4134. dp_srng_deinit(soc, &pdev->rx_refill_buf_ring2, RXDMA_BUF, 0);
  4135. dp_srng_free(soc, &pdev->rx_refill_buf_ring2);
  4136. }
  4137. #else
  4138. static int dp_setup_ipa_rx_refill_buf_ring(struct dp_soc *soc,
  4139. struct dp_pdev *pdev)
  4140. {
  4141. return QDF_STATUS_SUCCESS;
  4142. }
  4143. static void dp_cleanup_ipa_rx_refill_buf_ring(struct dp_soc *soc,
  4144. struct dp_pdev *pdev)
  4145. {
  4146. }
  4147. #endif
  4148. #if !defined(DISABLE_MON_CONFIG)
  4149. /**
  4150. * dp_mon_ring_deinit() - Deinitialize monitor rings
  4151. * @pdev: DP pdev handle
  4152. *
  4153. */
  4154. static void dp_mon_rings_deinit(struct dp_pdev *pdev)
  4155. {
  4156. int mac_id = 0;
  4157. struct wlan_cfg_dp_pdev_ctxt *pdev_cfg_ctx;
  4158. struct dp_soc *soc = pdev->soc;
  4159. pdev_cfg_ctx = pdev->wlan_cfg_ctx;
  4160. for (mac_id = 0; mac_id < NUM_RXDMA_RINGS_PER_PDEV; mac_id++) {
  4161. int lmac_id = dp_get_lmac_id_for_pdev_id(soc, mac_id,
  4162. pdev->pdev_id);
  4163. dp_srng_deinit(soc, &soc->rxdma_mon_status_ring[lmac_id],
  4164. RXDMA_MONITOR_STATUS, 0);
  4165. if (!soc->wlan_cfg_ctx->rxdma1_enable)
  4166. continue;
  4167. dp_srng_deinit(soc, &soc->rxdma_mon_buf_ring[lmac_id],
  4168. RXDMA_MONITOR_BUF, 0);
  4169. dp_srng_deinit(soc, &soc->rxdma_mon_dst_ring[lmac_id],
  4170. RXDMA_MONITOR_DST, 0);
  4171. dp_srng_deinit(soc, &soc->rxdma_mon_desc_ring[lmac_id],
  4172. RXDMA_MONITOR_DESC, 0);
  4173. }
  4174. }
  4175. /**
  4176. * dp_mon_rings_free() - free monitor rings
  4177. * @pdev: Datapath pdev handle
  4178. *
  4179. */
  4180. static void dp_mon_rings_free(struct dp_pdev *pdev)
  4181. {
  4182. int mac_id = 0;
  4183. struct wlan_cfg_dp_pdev_ctxt *pdev_cfg_ctx;
  4184. struct dp_soc *soc = pdev->soc;
  4185. pdev_cfg_ctx = pdev->wlan_cfg_ctx;
  4186. for (mac_id = 0; mac_id < NUM_RXDMA_RINGS_PER_PDEV; mac_id++) {
  4187. int lmac_id = dp_get_lmac_id_for_pdev_id(soc, mac_id,
  4188. pdev->pdev_id);
  4189. dp_srng_free(soc, &soc->rxdma_mon_status_ring[lmac_id]);
  4190. if (!soc->wlan_cfg_ctx->rxdma1_enable)
  4191. continue;
  4192. dp_srng_free(soc, &soc->rxdma_mon_buf_ring[lmac_id]);
  4193. dp_srng_free(soc, &soc->rxdma_mon_dst_ring[lmac_id]);
  4194. dp_srng_free(soc, &soc->rxdma_mon_desc_ring[lmac_id]);
  4195. }
  4196. }
  4197. /**
  4198. * dp_mon_rings_init() - Initialize monitor srng rings
  4199. * @pdev: Datapath pdev handle
  4200. *
  4201. * return: QDF_STATUS_SUCCESS on success
  4202. * QDF_STATUS_E_NOMEM on failure
  4203. */
  4204. static
  4205. QDF_STATUS dp_mon_rings_init(struct dp_soc *soc, struct dp_pdev *pdev)
  4206. {
  4207. int mac_id = 0;
  4208. struct wlan_cfg_dp_pdev_ctxt *pdev_cfg_ctx;
  4209. pdev_cfg_ctx = pdev->wlan_cfg_ctx;
  4210. for (mac_id = 0; mac_id < NUM_RXDMA_RINGS_PER_PDEV; mac_id++) {
  4211. int lmac_id = dp_get_lmac_id_for_pdev_id(soc, mac_id,
  4212. pdev->pdev_id);
  4213. if (dp_srng_init(soc, &soc->rxdma_mon_status_ring[lmac_id],
  4214. RXDMA_MONITOR_STATUS, 0, lmac_id)) {
  4215. dp_init_err("%pK: " RNG_ERR "rxdma_mon_status_ring", soc);
  4216. goto fail1;
  4217. }
  4218. if (!soc->wlan_cfg_ctx->rxdma1_enable)
  4219. continue;
  4220. if (dp_srng_init(soc, &soc->rxdma_mon_buf_ring[lmac_id],
  4221. RXDMA_MONITOR_BUF, 0, lmac_id)) {
  4222. dp_init_err("%pK: " RNG_ERR "rxdma_mon_buf_ring ", soc);
  4223. goto fail1;
  4224. }
  4225. if (dp_srng_init(soc, &soc->rxdma_mon_dst_ring[lmac_id],
  4226. RXDMA_MONITOR_DST, 0, lmac_id)) {
  4227. dp_init_err("%pK: " RNG_ERR "rxdma_mon_dst_ring", soc);
  4228. goto fail1;
  4229. }
  4230. if (dp_srng_init(soc, &soc->rxdma_mon_desc_ring[lmac_id],
  4231. RXDMA_MONITOR_DESC, 0, lmac_id)) {
  4232. dp_init_err("%pK: " RNG_ERR "rxdma_mon_desc_ring", soc);
  4233. goto fail1;
  4234. }
  4235. }
  4236. return QDF_STATUS_SUCCESS;
  4237. fail1:
  4238. dp_mon_rings_deinit(pdev);
  4239. return QDF_STATUS_E_NOMEM;
  4240. }
  4241. /**
  4242. * dp_mon_rings_alloc() - Allocate memory for monitor srng rings
  4243. * @soc: Datapath soc handle
  4244. * @pdev: Datapath pdev handle
  4245. *
  4246. * return: QDF_STATUS_SUCCESS on success
  4247. * QDF_STATUS_E_NOMEM on failure
  4248. */
  4249. static
  4250. QDF_STATUS dp_mon_rings_alloc(struct dp_soc *soc, struct dp_pdev *pdev)
  4251. {
  4252. int mac_id = 0;
  4253. int entries;
  4254. struct wlan_cfg_dp_pdev_ctxt *pdev_cfg_ctx;
  4255. pdev_cfg_ctx = pdev->wlan_cfg_ctx;
  4256. for (mac_id = 0; mac_id < NUM_RXDMA_RINGS_PER_PDEV; mac_id++) {
  4257. int lmac_id =
  4258. dp_get_lmac_id_for_pdev_id(soc, mac_id, pdev->pdev_id);
  4259. entries = wlan_cfg_get_dma_mon_stat_ring_size(pdev_cfg_ctx);
  4260. if (dp_srng_alloc(soc, &soc->rxdma_mon_status_ring[lmac_id],
  4261. RXDMA_MONITOR_STATUS, entries, 0)) {
  4262. dp_init_err("%pK: " RNG_ERR "rxdma_mon_status_ring", soc);
  4263. goto fail1;
  4264. }
  4265. if (!soc->wlan_cfg_ctx->rxdma1_enable)
  4266. continue;
  4267. entries = wlan_cfg_get_dma_mon_buf_ring_size(pdev_cfg_ctx);
  4268. if (dp_srng_alloc(soc, &soc->rxdma_mon_buf_ring[lmac_id],
  4269. RXDMA_MONITOR_BUF, entries, 0)) {
  4270. dp_init_err("%pK: " RNG_ERR "rxdma_mon_buf_ring ", soc);
  4271. goto fail1;
  4272. }
  4273. entries = wlan_cfg_get_dma_mon_dest_ring_size(pdev_cfg_ctx);
  4274. if (dp_srng_alloc(soc, &soc->rxdma_mon_dst_ring[lmac_id],
  4275. RXDMA_MONITOR_DST, entries, 0)) {
  4276. dp_init_err("%pK: " RNG_ERR "rxdma_mon_dst_ring", soc);
  4277. goto fail1;
  4278. }
  4279. entries = wlan_cfg_get_dma_mon_desc_ring_size(pdev_cfg_ctx);
  4280. if (dp_srng_alloc(soc, &soc->rxdma_mon_desc_ring[lmac_id],
  4281. RXDMA_MONITOR_DESC, entries, 0)) {
  4282. dp_init_err("%pK: " RNG_ERR "rxdma_mon_desc_ring", soc);
  4283. goto fail1;
  4284. }
  4285. }
  4286. return QDF_STATUS_SUCCESS;
  4287. fail1:
  4288. dp_mon_rings_free(pdev);
  4289. return QDF_STATUS_E_NOMEM;
  4290. }
  4291. #else
  4292. static void dp_mon_rings_free(struct dp_pdev *pdev)
  4293. {
  4294. }
  4295. static void dp_mon_rings_deinit(struct dp_pdev *pdev)
  4296. {
  4297. }
  4298. static
  4299. QDF_STATUS dp_mon_rings_init(struct dp_soc *soc, struct dp_pdev *pdev)
  4300. {
  4301. return QDF_STATUS_SUCCESS;
  4302. }
  4303. static
  4304. QDF_STATUS dp_mon_rings_alloc(struct dp_soc *soc, struct dp_pdev *pdev)
  4305. {
  4306. return QDF_STATUS_SUCCESS;
  4307. }
  4308. #endif
  4309. #ifdef ATH_SUPPORT_EXT_STAT
  4310. /*dp_peer_cal_clients_stats_update - update peer stats on cal client timer
  4311. * @soc : Datapath SOC
  4312. * @peer : Datapath peer
  4313. * @arg : argument to iter function
  4314. */
  4315. static void
  4316. dp_peer_cal_clients_stats_update(struct dp_soc *soc,
  4317. struct dp_peer *peer,
  4318. void *arg)
  4319. {
  4320. dp_cal_client_update_peer_stats(&peer->stats);
  4321. }
  4322. /*dp_iterate_update_peer_list - update peer stats on cal client timer
  4323. * @pdev_hdl: pdev handle
  4324. */
  4325. void dp_iterate_update_peer_list(struct cdp_pdev *pdev_hdl)
  4326. {
  4327. struct dp_pdev *pdev = (struct dp_pdev *)pdev_hdl;
  4328. dp_pdev_iterate_peer(pdev, dp_peer_cal_clients_stats_update, NULL,
  4329. DP_MOD_ID_CDP);
  4330. }
  4331. #else
  4332. void dp_iterate_update_peer_list(struct cdp_pdev *pdev_hdl)
  4333. {
  4334. }
  4335. #endif
  4336. /*
  4337. * dp_htt_ppdu_stats_attach() - attach resources for HTT PPDU stats processing
  4338. * @pdev: Datapath PDEV handle
  4339. *
  4340. * Return: QDF_STATUS_SUCCESS: Success
  4341. * QDF_STATUS_E_NOMEM: Error
  4342. */
  4343. static QDF_STATUS dp_htt_ppdu_stats_attach(struct dp_pdev *pdev)
  4344. {
  4345. pdev->ppdu_tlv_buf = qdf_mem_malloc(HTT_T2H_MAX_MSG_SIZE);
  4346. if (!pdev->ppdu_tlv_buf) {
  4347. QDF_TRACE_ERROR(QDF_MODULE_ID_DP, "ppdu_tlv_buf alloc fail");
  4348. return QDF_STATUS_E_NOMEM;
  4349. }
  4350. return QDF_STATUS_SUCCESS;
  4351. }
  4352. #ifdef DP_TX_HW_DESC_HISTORY
  4353. /**
  4354. * dp_soc_tx_hw_desc_history_attach - Attach TX HW descriptor history
  4355. *
  4356. * @soc: DP soc handle
  4357. *
  4358. * Return: None
  4359. */
  4360. static void dp_soc_tx_hw_desc_history_attach(struct dp_soc *soc)
  4361. {
  4362. soc->tx_hw_desc_history = dp_context_alloc_mem(
  4363. soc, DP_TX_HW_DESC_HIST_TYPE,
  4364. sizeof(*soc->tx_hw_desc_history));
  4365. if (soc->tx_hw_desc_history)
  4366. soc->tx_hw_desc_history->index = 0;
  4367. }
  4368. static void dp_soc_tx_hw_desc_history_detach(struct dp_soc *soc)
  4369. {
  4370. dp_context_free_mem(soc, DP_TX_HW_DESC_HIST_TYPE,
  4371. soc->tx_hw_desc_history);
  4372. }
  4373. #else /* DP_TX_HW_DESC_HISTORY */
  4374. static inline void
  4375. dp_soc_tx_hw_desc_history_attach(struct dp_soc *soc)
  4376. {
  4377. }
  4378. static inline void
  4379. dp_soc_tx_hw_desc_history_detach(struct dp_soc *soc)
  4380. {
  4381. }
  4382. #endif /* DP_TX_HW_DESC_HISTORY */
  4383. #ifdef WLAN_FEATURE_DP_RX_RING_HISTORY
  4384. #ifndef RX_DEFRAG_DO_NOT_REINJECT
  4385. /**
  4386. * dp_soc_rx_reinject_ring_history_attach - Attach the reo reinject ring
  4387. * history.
  4388. * @soc: DP soc handle
  4389. *
  4390. * Return: None
  4391. */
  4392. static void dp_soc_rx_reinject_ring_history_attach(struct dp_soc *soc)
  4393. {
  4394. soc->rx_reinject_ring_history =
  4395. dp_context_alloc_mem(soc, DP_RX_REINJECT_RING_HIST_TYPE,
  4396. sizeof(struct dp_rx_reinject_history));
  4397. if (soc->rx_reinject_ring_history)
  4398. qdf_atomic_init(&soc->rx_reinject_ring_history->index);
  4399. }
  4400. #else /* RX_DEFRAG_DO_NOT_REINJECT */
  4401. static inline void
  4402. dp_soc_rx_reinject_ring_history_attach(struct dp_soc *soc)
  4403. {
  4404. }
  4405. #endif /* RX_DEFRAG_DO_NOT_REINJECT */
  4406. /**
  4407. * dp_soc_rx_history_attach() - Attach the ring history record buffers
  4408. * @soc: DP soc structure
  4409. *
  4410. * This function allocates the memory for recording the rx ring, rx error
  4411. * ring and the reinject ring entries. There is no error returned in case
  4412. * of allocation failure since the record function checks if the history is
  4413. * initialized or not. We do not want to fail the driver load in case of
  4414. * failure to allocate memory for debug history.
  4415. *
  4416. * Returns: None
  4417. */
  4418. static void dp_soc_rx_history_attach(struct dp_soc *soc)
  4419. {
  4420. int i;
  4421. uint32_t rx_ring_hist_size;
  4422. uint32_t rx_refill_ring_hist_size;
  4423. rx_ring_hist_size = sizeof(*soc->rx_ring_history[0]);
  4424. rx_refill_ring_hist_size = sizeof(*soc->rx_refill_ring_history[0]);
  4425. for (i = 0; i < MAX_REO_DEST_RINGS; i++) {
  4426. soc->rx_ring_history[i] = dp_context_alloc_mem(
  4427. soc, DP_RX_RING_HIST_TYPE, rx_ring_hist_size);
  4428. if (soc->rx_ring_history[i])
  4429. qdf_atomic_init(&soc->rx_ring_history[i]->index);
  4430. }
  4431. soc->rx_err_ring_history = dp_context_alloc_mem(
  4432. soc, DP_RX_ERR_RING_HIST_TYPE, rx_ring_hist_size);
  4433. if (soc->rx_err_ring_history)
  4434. qdf_atomic_init(&soc->rx_err_ring_history->index);
  4435. dp_soc_rx_reinject_ring_history_attach(soc);
  4436. for (i = 0; i < MAX_PDEV_CNT; i++) {
  4437. soc->rx_refill_ring_history[i] = dp_context_alloc_mem(
  4438. soc,
  4439. DP_RX_REFILL_RING_HIST_TYPE,
  4440. rx_refill_ring_hist_size);
  4441. if (soc->rx_refill_ring_history[i])
  4442. qdf_atomic_init(&soc->rx_refill_ring_history[i]->index);
  4443. }
  4444. }
  4445. static void dp_soc_rx_history_detach(struct dp_soc *soc)
  4446. {
  4447. int i;
  4448. for (i = 0; i < MAX_REO_DEST_RINGS; i++)
  4449. dp_context_free_mem(soc, DP_RX_RING_HIST_TYPE,
  4450. soc->rx_ring_history[i]);
  4451. dp_context_free_mem(soc, DP_RX_ERR_RING_HIST_TYPE,
  4452. soc->rx_err_ring_history);
  4453. /*
  4454. * No need for a featurized detach since qdf_mem_free takes
  4455. * care of NULL pointer.
  4456. */
  4457. dp_context_free_mem(soc, DP_RX_REINJECT_RING_HIST_TYPE,
  4458. soc->rx_reinject_ring_history);
  4459. for (i = 0; i < MAX_PDEV_CNT; i++)
  4460. dp_context_free_mem(soc, DP_RX_REFILL_RING_HIST_TYPE,
  4461. soc->rx_refill_ring_history[i]);
  4462. }
  4463. #else
  4464. static inline void dp_soc_rx_history_attach(struct dp_soc *soc)
  4465. {
  4466. }
  4467. static inline void dp_soc_rx_history_detach(struct dp_soc *soc)
  4468. {
  4469. }
  4470. #endif
  4471. #ifdef WLAN_FEATURE_DP_TX_DESC_HISTORY
  4472. /**
  4473. * dp_soc_tx_history_attach() - Attach the ring history record buffers
  4474. * @soc: DP soc structure
  4475. *
  4476. * This function allocates the memory for recording the tx tcl ring and
  4477. * the tx comp ring entries. There is no error returned in case
  4478. * of allocation failure since the record function checks if the history is
  4479. * initialized or not. We do not want to fail the driver load in case of
  4480. * failure to allocate memory for debug history.
  4481. *
  4482. * Returns: None
  4483. */
  4484. static void dp_soc_tx_history_attach(struct dp_soc *soc)
  4485. {
  4486. uint32_t tx_tcl_hist_size;
  4487. uint32_t tx_comp_hist_size;
  4488. tx_tcl_hist_size = sizeof(*soc->tx_tcl_history);
  4489. soc->tx_tcl_history = dp_context_alloc_mem(soc, DP_TX_TCL_HIST_TYPE,
  4490. tx_tcl_hist_size);
  4491. if (soc->tx_tcl_history)
  4492. qdf_atomic_init(&soc->tx_tcl_history->index);
  4493. tx_comp_hist_size = sizeof(*soc->tx_comp_history);
  4494. soc->tx_comp_history = dp_context_alloc_mem(soc, DP_TX_COMP_HIST_TYPE,
  4495. tx_comp_hist_size);
  4496. if (soc->tx_comp_history)
  4497. qdf_atomic_init(&soc->tx_comp_history->index);
  4498. }
  4499. /**
  4500. * dp_soc_tx_history_detach() - Detach the ring history record buffers
  4501. * @soc: DP soc structure
  4502. *
  4503. * This function frees the memory for recording the tx tcl ring and
  4504. * the tx comp ring entries.
  4505. *
  4506. * Returns: None
  4507. */
  4508. static void dp_soc_tx_history_detach(struct dp_soc *soc)
  4509. {
  4510. dp_context_free_mem(soc, DP_TX_TCL_HIST_TYPE, soc->tx_tcl_history);
  4511. dp_context_free_mem(soc, DP_TX_COMP_HIST_TYPE, soc->tx_comp_history);
  4512. }
  4513. #else
  4514. static inline void dp_soc_tx_history_attach(struct dp_soc *soc)
  4515. {
  4516. }
  4517. static inline void dp_soc_tx_history_detach(struct dp_soc *soc)
  4518. {
  4519. }
  4520. #endif /* WLAN_FEATURE_DP_TX_DESC_HISTORY */
  4521. /*
  4522. * dp_pdev_attach_wifi3() - attach txrx pdev
  4523. * @txrx_soc: Datapath SOC handle
  4524. * @htc_handle: HTC handle for host-target interface
  4525. * @qdf_osdev: QDF OS device
  4526. * @pdev_id: PDEV ID
  4527. *
  4528. * Return: QDF_STATUS
  4529. */
  4530. static inline QDF_STATUS dp_pdev_attach_wifi3(struct cdp_soc_t *txrx_soc,
  4531. HTC_HANDLE htc_handle,
  4532. qdf_device_t qdf_osdev,
  4533. uint8_t pdev_id)
  4534. {
  4535. struct dp_soc *soc = (struct dp_soc *)txrx_soc;
  4536. struct dp_pdev *pdev = NULL;
  4537. struct wlan_cfg_dp_soc_ctxt *soc_cfg_ctx;
  4538. int nss_cfg;
  4539. pdev = dp_context_alloc_mem(soc, DP_PDEV_TYPE, sizeof(*pdev));
  4540. if (!pdev) {
  4541. dp_init_err("%pK: DP PDEV memory allocation failed",
  4542. soc);
  4543. goto fail0;
  4544. }
  4545. wlan_minidump_log(pdev, sizeof(*pdev), soc->ctrl_psoc,
  4546. WLAN_MD_DP_PDEV, "dp_pdev");
  4547. soc_cfg_ctx = soc->wlan_cfg_ctx;
  4548. pdev->wlan_cfg_ctx = wlan_cfg_pdev_attach(soc->ctrl_psoc);
  4549. if (!pdev->wlan_cfg_ctx) {
  4550. dp_init_err("%pK: pdev cfg_attach failed", soc);
  4551. goto fail1;
  4552. }
  4553. /*
  4554. * set nss pdev config based on soc config
  4555. */
  4556. nss_cfg = wlan_cfg_get_dp_soc_nss_cfg(soc_cfg_ctx);
  4557. wlan_cfg_set_dp_pdev_nss_enabled(pdev->wlan_cfg_ctx,
  4558. (nss_cfg & (1 << pdev_id)));
  4559. pdev->soc = soc;
  4560. pdev->pdev_id = pdev_id;
  4561. soc->pdev_list[pdev_id] = pdev;
  4562. pdev->lmac_id = wlan_cfg_get_hw_mac_idx(soc->wlan_cfg_ctx, pdev_id);
  4563. soc->pdev_count++;
  4564. /* Allocate memory for pdev srng rings */
  4565. if (dp_pdev_srng_alloc(pdev)) {
  4566. dp_init_err("%pK: dp_pdev_srng_alloc failed", soc);
  4567. goto fail2;
  4568. }
  4569. /* Rx specific init */
  4570. if (dp_rx_pdev_desc_pool_alloc(pdev)) {
  4571. dp_init_err("%pK: dp_rx_pdev_attach failed", soc);
  4572. goto fail3;
  4573. }
  4574. /* Rx monitor mode specific init */
  4575. if (dp_rx_pdev_mon_desc_pool_alloc(pdev)) {
  4576. dp_init_err("%pK: dp_rx_pdev_mon_attach failed", soc);
  4577. goto fail4;
  4578. }
  4579. return QDF_STATUS_SUCCESS;
  4580. fail4:
  4581. dp_rx_pdev_desc_pool_free(pdev);
  4582. fail3:
  4583. dp_pdev_srng_free(pdev);
  4584. fail2:
  4585. wlan_cfg_pdev_detach(pdev->wlan_cfg_ctx);
  4586. fail1:
  4587. soc->pdev_list[pdev_id] = NULL;
  4588. qdf_mem_free(pdev);
  4589. fail0:
  4590. return QDF_STATUS_E_FAILURE;
  4591. }
  4592. /*
  4593. * dp_rxdma_ring_cleanup() - configure the RX DMA rings
  4594. * @soc: data path SoC handle
  4595. * @pdev: Physical device handle
  4596. *
  4597. * Return: void
  4598. */
  4599. #ifdef QCA_HOST2FW_RXBUF_RING
  4600. static void dp_rxdma_ring_cleanup(struct dp_soc *soc, struct dp_pdev *pdev)
  4601. {
  4602. int i;
  4603. for (i = 0; i < MAX_RX_MAC_RINGS; i++) {
  4604. dp_srng_deinit(soc, &pdev->rx_mac_buf_ring[i], RXDMA_BUF, 1);
  4605. dp_srng_free(soc, &pdev->rx_mac_buf_ring[i]);
  4606. }
  4607. if (soc->reap_timer_init) {
  4608. qdf_timer_free(&soc->mon_reap_timer);
  4609. soc->reap_timer_init = 0;
  4610. }
  4611. }
  4612. #else
  4613. static void dp_rxdma_ring_cleanup(struct dp_soc *soc, struct dp_pdev *pdev)
  4614. {
  4615. if (soc->lmac_timer_init) {
  4616. qdf_timer_stop(&soc->lmac_reap_timer);
  4617. qdf_timer_free(&soc->lmac_reap_timer);
  4618. soc->lmac_timer_init = 0;
  4619. }
  4620. }
  4621. #endif
  4622. /*
  4623. * dp_neighbour_peers_detach() - Detach neighbour peers(nac clients)
  4624. * @pdev: device object
  4625. *
  4626. * Return: void
  4627. */
  4628. static void dp_neighbour_peers_detach(struct dp_pdev *pdev)
  4629. {
  4630. struct dp_neighbour_peer *peer = NULL;
  4631. struct dp_neighbour_peer *temp_peer = NULL;
  4632. TAILQ_FOREACH_SAFE(peer, &pdev->neighbour_peers_list,
  4633. neighbour_peer_list_elem, temp_peer) {
  4634. /* delete this peer from the list */
  4635. TAILQ_REMOVE(&pdev->neighbour_peers_list,
  4636. peer, neighbour_peer_list_elem);
  4637. qdf_mem_free(peer);
  4638. }
  4639. qdf_spinlock_destroy(&pdev->neighbour_peer_mutex);
  4640. }
  4641. /**
  4642. * dp_htt_ppdu_stats_detach() - detach stats resources
  4643. * @pdev: Datapath PDEV handle
  4644. *
  4645. * Return: void
  4646. */
  4647. static void dp_htt_ppdu_stats_detach(struct dp_pdev *pdev)
  4648. {
  4649. struct ppdu_info *ppdu_info, *ppdu_info_next;
  4650. TAILQ_FOREACH_SAFE(ppdu_info, &pdev->ppdu_info_list,
  4651. ppdu_info_list_elem, ppdu_info_next) {
  4652. if (!ppdu_info)
  4653. break;
  4654. TAILQ_REMOVE(&pdev->ppdu_info_list,
  4655. ppdu_info, ppdu_info_list_elem);
  4656. pdev->list_depth--;
  4657. qdf_assert_always(ppdu_info->nbuf);
  4658. qdf_nbuf_free(ppdu_info->nbuf);
  4659. qdf_mem_free(ppdu_info);
  4660. }
  4661. TAILQ_FOREACH_SAFE(ppdu_info, &pdev->sched_comp_ppdu_list,
  4662. ppdu_info_list_elem, ppdu_info_next) {
  4663. if (!ppdu_info)
  4664. break;
  4665. TAILQ_REMOVE(&pdev->sched_comp_ppdu_list,
  4666. ppdu_info, ppdu_info_list_elem);
  4667. pdev->sched_comp_list_depth--;
  4668. qdf_assert_always(ppdu_info->nbuf);
  4669. qdf_nbuf_free(ppdu_info->nbuf);
  4670. qdf_mem_free(ppdu_info);
  4671. }
  4672. if (pdev->ppdu_tlv_buf)
  4673. qdf_mem_free(pdev->ppdu_tlv_buf);
  4674. }
  4675. #ifdef WLAN_DP_PENDING_MEM_FLUSH
  4676. /**
  4677. * dp_pdev_flush_pending_vdevs() - Flush all delete pending vdevs in pdev
  4678. * @pdev: Datapath PDEV handle
  4679. *
  4680. * This is the last chance to flush all pending dp vdevs/peers,
  4681. * some peer/vdev leak case like Non-SSR + peer unmap missing
  4682. * will be covered here.
  4683. *
  4684. * Return: None
  4685. */
  4686. static void dp_pdev_flush_pending_vdevs(struct dp_pdev *pdev)
  4687. {
  4688. struct dp_vdev *vdev = NULL;
  4689. struct dp_soc *soc = pdev->soc;
  4690. if (TAILQ_EMPTY(&soc->inactive_vdev_list))
  4691. return;
  4692. while (true) {
  4693. qdf_spin_lock_bh(&soc->inactive_vdev_list_lock);
  4694. TAILQ_FOREACH(vdev, &soc->inactive_vdev_list,
  4695. inactive_list_elem) {
  4696. if (vdev->pdev == pdev)
  4697. break;
  4698. }
  4699. qdf_spin_unlock_bh(&soc->inactive_vdev_list_lock);
  4700. /* vdev will be freed when all peers get cleanup */
  4701. if (vdev)
  4702. dp_vdev_flush_peers((struct cdp_vdev *)vdev, 0);
  4703. else
  4704. break;
  4705. }
  4706. }
  4707. #else
  4708. static void dp_pdev_flush_pending_vdevs(struct dp_pdev *pdev)
  4709. {
  4710. }
  4711. #endif
  4712. /**
  4713. * dp_pdev_deinit() - Deinit txrx pdev
  4714. * @txrx_pdev: Datapath PDEV handle
  4715. * @force: Force deinit
  4716. *
  4717. * Return: None
  4718. */
  4719. static void dp_pdev_deinit(struct cdp_pdev *txrx_pdev, int force)
  4720. {
  4721. struct dp_pdev *pdev = (struct dp_pdev *)txrx_pdev;
  4722. qdf_nbuf_t curr_nbuf, next_nbuf;
  4723. if (pdev->pdev_deinit)
  4724. return;
  4725. dp_tx_me_exit(pdev);
  4726. dp_rx_fst_detach(pdev->soc, pdev);
  4727. dp_rx_pdev_mon_buffers_free(pdev);
  4728. dp_rx_pdev_buffers_free(pdev);
  4729. dp_rx_pdev_mon_desc_pool_deinit(pdev);
  4730. dp_rx_pdev_desc_pool_deinit(pdev);
  4731. dp_pdev_bkp_stats_detach(pdev);
  4732. dp_htt_ppdu_stats_detach(pdev);
  4733. dp_tx_ppdu_stats_detach(pdev);
  4734. qdf_event_destroy(&pdev->fw_peer_stats_event);
  4735. dp_cal_client_detach(&pdev->cal_client_ctx);
  4736. if (pdev->sojourn_buf)
  4737. qdf_nbuf_free(pdev->sojourn_buf);
  4738. dp_pdev_flush_pending_vdevs(pdev);
  4739. dp_tx_desc_flush(pdev, NULL, true);
  4740. dp_pktlogmod_exit(pdev);
  4741. dp_neighbour_peers_detach(pdev);
  4742. qdf_spinlock_destroy(&pdev->tx_mutex);
  4743. qdf_spinlock_destroy(&pdev->vdev_list_lock);
  4744. qdf_spinlock_destroy(&pdev->ppdu_stats_lock);
  4745. if (pdev->invalid_peer)
  4746. qdf_mem_free(pdev->invalid_peer);
  4747. if (pdev->filter)
  4748. dp_mon_filter_dealloc(pdev);
  4749. dp_pdev_srng_deinit(pdev);
  4750. dp_ipa_uc_detach(pdev->soc, pdev);
  4751. dp_cleanup_ipa_rx_refill_buf_ring(pdev->soc, pdev);
  4752. dp_rxdma_ring_cleanup(pdev->soc, pdev);
  4753. curr_nbuf = pdev->invalid_peer_head_msdu;
  4754. while (curr_nbuf) {
  4755. next_nbuf = qdf_nbuf_next(curr_nbuf);
  4756. qdf_nbuf_free(curr_nbuf);
  4757. curr_nbuf = next_nbuf;
  4758. }
  4759. pdev->invalid_peer_head_msdu = NULL;
  4760. pdev->invalid_peer_tail_msdu = NULL;
  4761. dp_wdi_event_detach(pdev);
  4762. pdev->pdev_deinit = 1;
  4763. }
  4764. /**
  4765. * dp_pdev_deinit_wifi3() - Deinit txrx pdev
  4766. * @psoc: Datapath psoc handle
  4767. * @pdev_id: Id of datapath PDEV handle
  4768. * @force: Force deinit
  4769. *
  4770. * Return: QDF_STATUS
  4771. */
  4772. static QDF_STATUS
  4773. dp_pdev_deinit_wifi3(struct cdp_soc_t *psoc, uint8_t pdev_id,
  4774. int force)
  4775. {
  4776. struct dp_pdev *txrx_pdev;
  4777. txrx_pdev = dp_get_pdev_from_soc_pdev_id_wifi3((struct dp_soc *)psoc,
  4778. pdev_id);
  4779. if (!txrx_pdev)
  4780. return QDF_STATUS_E_FAILURE;
  4781. dp_pdev_deinit((struct cdp_pdev *)txrx_pdev, force);
  4782. return QDF_STATUS_SUCCESS;
  4783. }
  4784. /*
  4785. * dp_pdev_post_attach() - Do post pdev attach after dev_alloc_name
  4786. * @txrx_pdev: Datapath PDEV handle
  4787. *
  4788. * Return: None
  4789. */
  4790. static void dp_pdev_post_attach(struct cdp_pdev *txrx_pdev)
  4791. {
  4792. struct dp_pdev *pdev = (struct dp_pdev *)txrx_pdev;
  4793. dp_tx_capture_debugfs_init(pdev);
  4794. if (dp_pdev_htt_stats_dbgfs_init(pdev)) {
  4795. dp_init_err("%pK: Failed to initialize pdev HTT stats debugfs", pdev->soc);
  4796. }
  4797. }
  4798. /*
  4799. * dp_pdev_post_attach_wifi3() - attach txrx pdev post
  4800. * @psoc: Datapath soc handle
  4801. * @pdev_id: pdev id of pdev
  4802. *
  4803. * Return: QDF_STATUS
  4804. */
  4805. static int dp_pdev_post_attach_wifi3(struct cdp_soc_t *soc,
  4806. uint8_t pdev_id)
  4807. {
  4808. struct dp_pdev *pdev;
  4809. pdev = dp_get_pdev_from_soc_pdev_id_wifi3((struct dp_soc *)soc,
  4810. pdev_id);
  4811. if (!pdev) {
  4812. dp_init_err("%pK: DP PDEV is Null for pdev id %d",
  4813. (struct dp_soc *)soc, pdev_id);
  4814. return QDF_STATUS_E_FAILURE;
  4815. }
  4816. dp_pdev_post_attach((struct cdp_pdev *)pdev);
  4817. return QDF_STATUS_SUCCESS;
  4818. }
  4819. /*
  4820. * dp_pdev_detach() - Complete rest of pdev detach
  4821. * @txrx_pdev: Datapath PDEV handle
  4822. * @force: Force deinit
  4823. *
  4824. * Return: None
  4825. */
  4826. static void dp_pdev_detach(struct cdp_pdev *txrx_pdev, int force)
  4827. {
  4828. struct dp_pdev *pdev = (struct dp_pdev *)txrx_pdev;
  4829. struct dp_soc *soc = pdev->soc;
  4830. dp_pdev_htt_stats_dbgfs_deinit(pdev);
  4831. dp_rx_pdev_mon_desc_pool_free(pdev);
  4832. dp_rx_pdev_desc_pool_free(pdev);
  4833. dp_pdev_srng_free(pdev);
  4834. soc->pdev_count--;
  4835. soc->pdev_list[pdev->pdev_id] = NULL;
  4836. wlan_cfg_pdev_detach(pdev->wlan_cfg_ctx);
  4837. wlan_minidump_remove(pdev, sizeof(*pdev), soc->ctrl_psoc,
  4838. WLAN_MD_DP_PDEV, "dp_pdev");
  4839. dp_context_free_mem(soc, DP_PDEV_TYPE, pdev);
  4840. }
  4841. /*
  4842. * dp_pdev_detach_wifi3() - detach txrx pdev
  4843. * @psoc: Datapath soc handle
  4844. * @pdev_id: pdev id of pdev
  4845. * @force: Force detach
  4846. *
  4847. * Return: QDF_STATUS
  4848. */
  4849. static QDF_STATUS dp_pdev_detach_wifi3(struct cdp_soc_t *psoc, uint8_t pdev_id,
  4850. int force)
  4851. {
  4852. struct dp_pdev *pdev;
  4853. pdev = dp_get_pdev_from_soc_pdev_id_wifi3((struct dp_soc *)psoc,
  4854. pdev_id);
  4855. if (!pdev) {
  4856. dp_init_err("%pK: DP PDEV is Null for pdev id %d",
  4857. (struct dp_soc *)psoc, pdev_id);
  4858. return QDF_STATUS_E_FAILURE;
  4859. }
  4860. dp_pdev_detach((struct cdp_pdev *)pdev, force);
  4861. return QDF_STATUS_SUCCESS;
  4862. }
  4863. /*
  4864. * dp_reo_desc_freelist_destroy() - Flush REO descriptors from deferred freelist
  4865. * @soc: DP SOC handle
  4866. */
  4867. static inline void dp_reo_desc_freelist_destroy(struct dp_soc *soc)
  4868. {
  4869. struct reo_desc_list_node *desc;
  4870. struct dp_rx_tid *rx_tid;
  4871. qdf_spin_lock_bh(&soc->reo_desc_freelist_lock);
  4872. while (qdf_list_remove_front(&soc->reo_desc_freelist,
  4873. (qdf_list_node_t **)&desc) == QDF_STATUS_SUCCESS) {
  4874. rx_tid = &desc->rx_tid;
  4875. qdf_mem_unmap_nbytes_single(soc->osdev,
  4876. rx_tid->hw_qdesc_paddr,
  4877. QDF_DMA_BIDIRECTIONAL,
  4878. rx_tid->hw_qdesc_alloc_size);
  4879. qdf_mem_free(rx_tid->hw_qdesc_vaddr_unaligned);
  4880. qdf_mem_free(desc);
  4881. }
  4882. qdf_spin_unlock_bh(&soc->reo_desc_freelist_lock);
  4883. qdf_list_destroy(&soc->reo_desc_freelist);
  4884. qdf_spinlock_destroy(&soc->reo_desc_freelist_lock);
  4885. }
  4886. #ifdef WLAN_DP_FEATURE_DEFERRED_REO_QDESC_DESTROY
  4887. /*
  4888. * dp_reo_desc_deferred_freelist_create() - Initialize the resources used
  4889. * for deferred reo desc list
  4890. * @psoc: Datapath soc handle
  4891. *
  4892. * Return: void
  4893. */
  4894. static void dp_reo_desc_deferred_freelist_create(struct dp_soc *soc)
  4895. {
  4896. qdf_spinlock_create(&soc->reo_desc_deferred_freelist_lock);
  4897. qdf_list_create(&soc->reo_desc_deferred_freelist,
  4898. REO_DESC_DEFERRED_FREELIST_SIZE);
  4899. soc->reo_desc_deferred_freelist_init = true;
  4900. }
  4901. /*
  4902. * dp_reo_desc_deferred_freelist_destroy() - loop the deferred free list &
  4903. * free the leftover REO QDESCs
  4904. * @psoc: Datapath soc handle
  4905. *
  4906. * Return: void
  4907. */
  4908. static void dp_reo_desc_deferred_freelist_destroy(struct dp_soc *soc)
  4909. {
  4910. struct reo_desc_deferred_freelist_node *desc;
  4911. qdf_spin_lock_bh(&soc->reo_desc_deferred_freelist_lock);
  4912. soc->reo_desc_deferred_freelist_init = false;
  4913. while (qdf_list_remove_front(&soc->reo_desc_deferred_freelist,
  4914. (qdf_list_node_t **)&desc) == QDF_STATUS_SUCCESS) {
  4915. qdf_mem_unmap_nbytes_single(soc->osdev,
  4916. desc->hw_qdesc_paddr,
  4917. QDF_DMA_BIDIRECTIONAL,
  4918. desc->hw_qdesc_alloc_size);
  4919. qdf_mem_free(desc->hw_qdesc_vaddr_unaligned);
  4920. qdf_mem_free(desc);
  4921. }
  4922. qdf_spin_unlock_bh(&soc->reo_desc_deferred_freelist_lock);
  4923. qdf_list_destroy(&soc->reo_desc_deferred_freelist);
  4924. qdf_spinlock_destroy(&soc->reo_desc_deferred_freelist_lock);
  4925. }
  4926. #else
  4927. static inline void dp_reo_desc_deferred_freelist_create(struct dp_soc *soc)
  4928. {
  4929. }
  4930. static inline void dp_reo_desc_deferred_freelist_destroy(struct dp_soc *soc)
  4931. {
  4932. }
  4933. #endif /* !WLAN_DP_FEATURE_DEFERRED_REO_QDESC_DESTROY */
  4934. /*
  4935. * dp_soc_reset_txrx_ring_map() - reset tx ring map
  4936. * @soc: DP SOC handle
  4937. *
  4938. */
  4939. static void dp_soc_reset_txrx_ring_map(struct dp_soc *soc)
  4940. {
  4941. uint32_t i;
  4942. for (i = 0; i < WLAN_CFG_INT_NUM_CONTEXTS; i++)
  4943. soc->tx_ring_map[i] = 0;
  4944. }
  4945. /*
  4946. * dp_soc_print_inactive_objects() - prints inactive peer and vdev list
  4947. * @soc: DP SOC handle
  4948. *
  4949. */
  4950. static void dp_soc_print_inactive_objects(struct dp_soc *soc)
  4951. {
  4952. struct dp_peer *peer = NULL;
  4953. struct dp_peer *tmp_peer = NULL;
  4954. struct dp_vdev *vdev = NULL;
  4955. struct dp_vdev *tmp_vdev = NULL;
  4956. int i = 0;
  4957. uint32_t count;
  4958. if (TAILQ_EMPTY(&soc->inactive_peer_list) &&
  4959. TAILQ_EMPTY(&soc->inactive_vdev_list))
  4960. return;
  4961. TAILQ_FOREACH_SAFE(peer, &soc->inactive_peer_list,
  4962. inactive_list_elem, tmp_peer) {
  4963. for (i = 0; i < DP_MOD_ID_MAX; i++) {
  4964. count = qdf_atomic_read(&peer->mod_refs[i]);
  4965. if (count)
  4966. DP_PRINT_STATS("peer %pK Module id %u ==> %u",
  4967. peer, i, count);
  4968. }
  4969. }
  4970. TAILQ_FOREACH_SAFE(vdev, &soc->inactive_vdev_list,
  4971. inactive_list_elem, tmp_vdev) {
  4972. for (i = 0; i < DP_MOD_ID_MAX; i++) {
  4973. count = qdf_atomic_read(&vdev->mod_refs[i]);
  4974. if (count)
  4975. DP_PRINT_STATS("vdev %pK Module id %u ==> %u",
  4976. vdev, i, count);
  4977. }
  4978. }
  4979. QDF_BUG(0);
  4980. }
  4981. /**
  4982. * dp_soc_deinit() - Deinitialize txrx SOC
  4983. * @txrx_soc: Opaque DP SOC handle
  4984. *
  4985. * Return: None
  4986. */
  4987. static void dp_soc_deinit(void *txrx_soc)
  4988. {
  4989. struct dp_soc *soc = (struct dp_soc *)txrx_soc;
  4990. struct htt_soc *htt_soc = soc->htt_handle;
  4991. qdf_atomic_set(&soc->cmn_init_done, 0);
  4992. soc->arch_ops.txrx_soc_deinit(soc);
  4993. /* free peer tables & AST tables allocated during peer_map_attach */
  4994. if (soc->peer_map_attach_success) {
  4995. dp_peer_find_detach(soc);
  4996. soc->peer_map_attach_success = FALSE;
  4997. }
  4998. qdf_flush_work(&soc->htt_stats.work);
  4999. qdf_disable_work(&soc->htt_stats.work);
  5000. qdf_spinlock_destroy(&soc->htt_stats.lock);
  5001. dp_soc_reset_txrx_ring_map(soc);
  5002. dp_reo_desc_freelist_destroy(soc);
  5003. dp_reo_desc_deferred_freelist_destroy(soc);
  5004. DEINIT_RX_HW_STATS_LOCK(soc);
  5005. qdf_spinlock_destroy(&soc->ast_lock);
  5006. dp_peer_mec_spinlock_destroy(soc);
  5007. qdf_nbuf_queue_free(&soc->htt_stats.msg);
  5008. qdf_nbuf_queue_free(&soc->invalid_buf_queue);
  5009. qdf_spinlock_destroy(&soc->rx.defrag.defrag_lock);
  5010. qdf_spinlock_destroy(&soc->vdev_map_lock);
  5011. dp_reo_cmdlist_destroy(soc);
  5012. qdf_spinlock_destroy(&soc->rx.reo_cmd_lock);
  5013. dp_soc_tx_desc_sw_pools_deinit(soc);
  5014. dp_soc_srng_deinit(soc);
  5015. dp_hw_link_desc_ring_deinit(soc);
  5016. dp_soc_print_inactive_objects(soc);
  5017. qdf_spinlock_destroy(&soc->inactive_peer_list_lock);
  5018. qdf_spinlock_destroy(&soc->inactive_vdev_list_lock);
  5019. htt_soc_htc_dealloc(soc->htt_handle);
  5020. htt_soc_detach(htt_soc);
  5021. /* Free wbm sg list and reset flags in down path */
  5022. dp_rx_wbm_sg_list_deinit(soc);
  5023. wlan_minidump_remove(soc, sizeof(*soc), soc->ctrl_psoc,
  5024. WLAN_MD_DP_SOC, "dp_soc");
  5025. }
  5026. /**
  5027. * dp_soc_deinit_wifi3() - Deinitialize txrx SOC
  5028. * @txrx_soc: Opaque DP SOC handle
  5029. *
  5030. * Return: None
  5031. */
  5032. static void dp_soc_deinit_wifi3(struct cdp_soc_t *txrx_soc)
  5033. {
  5034. dp_soc_deinit(txrx_soc);
  5035. }
  5036. /*
  5037. * dp_soc_detach() - Detach rest of txrx SOC
  5038. * @txrx_soc: DP SOC handle, struct cdp_soc_t is first element of struct dp_soc.
  5039. *
  5040. * Return: None
  5041. */
  5042. static void dp_soc_detach(struct cdp_soc_t *txrx_soc)
  5043. {
  5044. struct dp_soc *soc = (struct dp_soc *)txrx_soc;
  5045. soc->arch_ops.txrx_soc_detach(soc);
  5046. dp_soc_swlm_detach(soc);
  5047. dp_soc_tx_desc_sw_pools_free(soc);
  5048. dp_soc_srng_free(soc);
  5049. dp_hw_link_desc_ring_free(soc);
  5050. dp_hw_link_desc_pool_banks_free(soc, WLAN_INVALID_PDEV_ID);
  5051. wlan_cfg_soc_detach(soc->wlan_cfg_ctx);
  5052. dp_soc_tx_hw_desc_history_detach(soc);
  5053. dp_soc_tx_history_detach(soc);
  5054. dp_soc_rx_history_detach(soc);
  5055. if (soc->mon_vdev_timer_state & MON_VDEV_TIMER_INIT) {
  5056. qdf_timer_free(&soc->mon_vdev_timer);
  5057. soc->mon_vdev_timer_state = 0;
  5058. }
  5059. qdf_mem_free(soc);
  5060. }
  5061. /*
  5062. * dp_soc_detach_wifi3() - Detach txrx SOC
  5063. * @txrx_soc: DP SOC handle, struct cdp_soc_t is first element of struct dp_soc.
  5064. *
  5065. * Return: None
  5066. */
  5067. static void dp_soc_detach_wifi3(struct cdp_soc_t *txrx_soc)
  5068. {
  5069. dp_soc_detach(txrx_soc);
  5070. }
  5071. #if !defined(DISABLE_MON_CONFIG)
  5072. /**
  5073. * dp_mon_htt_srng_setup() - Prepare HTT messages for Monitor rings
  5074. * @soc: soc handle
  5075. * @pdev: physical device handle
  5076. * @mac_id: ring number
  5077. * @mac_for_pdev: mac_id
  5078. *
  5079. * Return: non-zero for failure, zero for success
  5080. */
  5081. static QDF_STATUS dp_mon_htt_srng_setup(struct dp_soc *soc,
  5082. struct dp_pdev *pdev,
  5083. int mac_id,
  5084. int mac_for_pdev)
  5085. {
  5086. QDF_STATUS status = QDF_STATUS_SUCCESS;
  5087. if (soc->wlan_cfg_ctx->rxdma1_enable) {
  5088. status = htt_srng_setup(soc->htt_handle, mac_for_pdev,
  5089. soc->rxdma_mon_buf_ring[mac_id]
  5090. .hal_srng,
  5091. RXDMA_MONITOR_BUF);
  5092. if (status != QDF_STATUS_SUCCESS) {
  5093. dp_err("Failed to send htt srng setup message for Rxdma mon buf ring");
  5094. return status;
  5095. }
  5096. status = htt_srng_setup(soc->htt_handle, mac_for_pdev,
  5097. soc->rxdma_mon_dst_ring[mac_id]
  5098. .hal_srng,
  5099. RXDMA_MONITOR_DST);
  5100. if (status != QDF_STATUS_SUCCESS) {
  5101. dp_err("Failed to send htt srng setup message for Rxdma mon dst ring");
  5102. return status;
  5103. }
  5104. status = htt_srng_setup(soc->htt_handle, mac_for_pdev,
  5105. soc->rxdma_mon_status_ring[mac_id]
  5106. .hal_srng,
  5107. RXDMA_MONITOR_STATUS);
  5108. if (status != QDF_STATUS_SUCCESS) {
  5109. dp_err("Failed to send htt srng setup message for Rxdma mon status ring");
  5110. return status;
  5111. }
  5112. status = htt_srng_setup(soc->htt_handle, mac_for_pdev,
  5113. soc->rxdma_mon_desc_ring[mac_id]
  5114. .hal_srng,
  5115. RXDMA_MONITOR_DESC);
  5116. if (status != QDF_STATUS_SUCCESS) {
  5117. dp_err("Failed to send htt srng message for Rxdma mon desc ring");
  5118. return status;
  5119. }
  5120. } else {
  5121. status = htt_srng_setup(soc->htt_handle, mac_for_pdev,
  5122. soc->rxdma_mon_status_ring[mac_id]
  5123. .hal_srng,
  5124. RXDMA_MONITOR_STATUS);
  5125. if (status != QDF_STATUS_SUCCESS) {
  5126. dp_err("Failed to send htt srng setup message for Rxdma mon status ring");
  5127. return status;
  5128. }
  5129. }
  5130. return status;
  5131. }
  5132. #else
  5133. static QDF_STATUS dp_mon_htt_srng_setup(struct dp_soc *soc,
  5134. struct dp_pdev *pdev,
  5135. int mac_id,
  5136. int mac_for_pdev)
  5137. {
  5138. return QDF_STATUS_SUCCESS;
  5139. }
  5140. #endif
  5141. /*
  5142. * dp_rxdma_ring_config() - configure the RX DMA rings
  5143. *
  5144. * This function is used to configure the MAC rings.
  5145. * On MCL host provides buffers in Host2FW ring
  5146. * FW refills (copies) buffers to the ring and updates
  5147. * ring_idx in register
  5148. *
  5149. * @soc: data path SoC handle
  5150. *
  5151. * Return: zero on success, non-zero on failure
  5152. */
  5153. #ifdef QCA_HOST2FW_RXBUF_RING
  5154. static QDF_STATUS dp_rxdma_ring_config(struct dp_soc *soc)
  5155. {
  5156. int i;
  5157. QDF_STATUS status = QDF_STATUS_SUCCESS;
  5158. for (i = 0; i < MAX_PDEV_CNT; i++) {
  5159. struct dp_pdev *pdev = soc->pdev_list[i];
  5160. if (pdev) {
  5161. int mac_id;
  5162. bool dbs_enable = 0;
  5163. int max_mac_rings =
  5164. wlan_cfg_get_num_mac_rings
  5165. (pdev->wlan_cfg_ctx);
  5166. int lmac_id = dp_get_lmac_id_for_pdev_id(soc, 0, i);
  5167. htt_srng_setup(soc->htt_handle, 0,
  5168. soc->rx_refill_buf_ring[lmac_id]
  5169. .hal_srng,
  5170. RXDMA_BUF);
  5171. if (pdev->rx_refill_buf_ring2.hal_srng)
  5172. htt_srng_setup(soc->htt_handle, 0,
  5173. pdev->rx_refill_buf_ring2.hal_srng,
  5174. RXDMA_BUF);
  5175. if (soc->cdp_soc.ol_ops->
  5176. is_hw_dbs_2x2_capable) {
  5177. dbs_enable = soc->cdp_soc.ol_ops->
  5178. is_hw_dbs_2x2_capable(
  5179. (void *)soc->ctrl_psoc);
  5180. }
  5181. if (dbs_enable) {
  5182. QDF_TRACE(QDF_MODULE_ID_TXRX,
  5183. QDF_TRACE_LEVEL_ERROR,
  5184. FL("DBS enabled max_mac_rings %d"),
  5185. max_mac_rings);
  5186. } else {
  5187. max_mac_rings = 1;
  5188. QDF_TRACE(QDF_MODULE_ID_TXRX,
  5189. QDF_TRACE_LEVEL_ERROR,
  5190. FL("DBS disabled, max_mac_rings %d"),
  5191. max_mac_rings);
  5192. }
  5193. QDF_TRACE(QDF_MODULE_ID_TXRX, QDF_TRACE_LEVEL_ERROR,
  5194. FL("pdev_id %d max_mac_rings %d"),
  5195. pdev->pdev_id, max_mac_rings);
  5196. for (mac_id = 0; mac_id < max_mac_rings; mac_id++) {
  5197. int mac_for_pdev =
  5198. dp_get_mac_id_for_pdev(mac_id,
  5199. pdev->pdev_id);
  5200. /*
  5201. * Obtain lmac id from pdev to access the LMAC
  5202. * ring in soc context
  5203. */
  5204. lmac_id =
  5205. dp_get_lmac_id_for_pdev_id(soc,
  5206. mac_id,
  5207. pdev->pdev_id);
  5208. QDF_TRACE(QDF_MODULE_ID_TXRX,
  5209. QDF_TRACE_LEVEL_ERROR,
  5210. FL("mac_id %d"), mac_for_pdev);
  5211. htt_srng_setup(soc->htt_handle, mac_for_pdev,
  5212. pdev->rx_mac_buf_ring[mac_id]
  5213. .hal_srng,
  5214. RXDMA_BUF);
  5215. htt_srng_setup(soc->htt_handle, mac_for_pdev,
  5216. soc->rxdma_err_dst_ring[lmac_id]
  5217. .hal_srng,
  5218. RXDMA_DST);
  5219. /* Configure monitor mode rings */
  5220. status = dp_mon_htt_srng_setup(soc, pdev,
  5221. lmac_id,
  5222. mac_for_pdev);
  5223. if (status != QDF_STATUS_SUCCESS) {
  5224. dp_err("Failed to send htt monitor messages to target");
  5225. return status;
  5226. }
  5227. }
  5228. }
  5229. }
  5230. /*
  5231. * Timer to reap rxdma status rings.
  5232. * Needed until we enable ppdu end interrupts
  5233. */
  5234. qdf_timer_init(soc->osdev, &soc->mon_reap_timer,
  5235. dp_mon_reap_timer_handler, (void *)soc,
  5236. QDF_TIMER_TYPE_WAKE_APPS);
  5237. soc->reap_timer_init = 1;
  5238. qdf_timer_init(soc->osdev, &soc->mon_vdev_timer,
  5239. dp_mon_vdev_timer, (void *)soc,
  5240. QDF_TIMER_TYPE_WAKE_APPS);
  5241. soc->mon_vdev_timer_state |= MON_VDEV_TIMER_INIT;
  5242. return status;
  5243. }
  5244. #else
  5245. /* This is only for WIN */
  5246. static QDF_STATUS dp_rxdma_ring_config(struct dp_soc *soc)
  5247. {
  5248. int i;
  5249. QDF_STATUS status = QDF_STATUS_SUCCESS;
  5250. int mac_for_pdev;
  5251. int lmac_id;
  5252. for (i = 0; i < MAX_PDEV_CNT; i++) {
  5253. struct dp_pdev *pdev = soc->pdev_list[i];
  5254. if (!pdev)
  5255. continue;
  5256. mac_for_pdev = i;
  5257. lmac_id = dp_get_lmac_id_for_pdev_id(soc, 0, i);
  5258. htt_srng_setup(soc->htt_handle, mac_for_pdev,
  5259. soc->rx_refill_buf_ring[lmac_id].
  5260. hal_srng, RXDMA_BUF);
  5261. #ifndef DISABLE_MON_CONFIG
  5262. if (soc->wlan_cfg_ctx->rxdma1_enable &&
  5263. wlan_cfg_is_delay_mon_replenish(soc->wlan_cfg_ctx)) {
  5264. htt_srng_setup(soc->htt_handle, mac_for_pdev,
  5265. soc->rxdma_mon_buf_ring[lmac_id].hal_srng,
  5266. RXDMA_MONITOR_BUF);
  5267. htt_srng_setup(soc->htt_handle, mac_for_pdev,
  5268. soc->rxdma_mon_dst_ring[lmac_id].hal_srng,
  5269. RXDMA_MONITOR_DST);
  5270. htt_srng_setup(soc->htt_handle, mac_for_pdev,
  5271. soc->rxdma_mon_desc_ring[lmac_id].hal_srng,
  5272. RXDMA_MONITOR_DESC);
  5273. }
  5274. htt_srng_setup(soc->htt_handle, mac_for_pdev,
  5275. soc->rxdma_mon_status_ring[lmac_id].hal_srng,
  5276. RXDMA_MONITOR_STATUS);
  5277. #endif
  5278. htt_srng_setup(soc->htt_handle, mac_for_pdev,
  5279. soc->rxdma_err_dst_ring[lmac_id].hal_srng,
  5280. RXDMA_DST);
  5281. }
  5282. /* Configure LMAC rings in Polled mode */
  5283. if (soc->lmac_polled_mode) {
  5284. /*
  5285. * Timer to reap lmac rings.
  5286. */
  5287. qdf_timer_init(soc->osdev, &soc->lmac_reap_timer,
  5288. dp_service_lmac_rings, (void *)soc,
  5289. QDF_TIMER_TYPE_WAKE_APPS);
  5290. soc->lmac_timer_init = 1;
  5291. qdf_timer_mod(&soc->lmac_reap_timer, DP_INTR_POLL_TIMER_MS);
  5292. }
  5293. return status;
  5294. }
  5295. #endif
  5296. /*
  5297. * dp_rx_target_fst_config() - configure the RXOLE Flow Search Engine
  5298. *
  5299. * This function is used to configure the FSE HW block in RX OLE on a
  5300. * per pdev basis. Here, we will be programming parameters related to
  5301. * the Flow Search Table.
  5302. *
  5303. * @soc: data path SoC handle
  5304. *
  5305. * Return: zero on success, non-zero on failure
  5306. */
  5307. #ifdef WLAN_SUPPORT_RX_FLOW_TAG
  5308. static QDF_STATUS
  5309. dp_rx_target_fst_config(struct dp_soc *soc)
  5310. {
  5311. int i;
  5312. QDF_STATUS status = QDF_STATUS_SUCCESS;
  5313. for (i = 0; i < MAX_PDEV_CNT; i++) {
  5314. struct dp_pdev *pdev = soc->pdev_list[i];
  5315. /* Flow search is not enabled if NSS offload is enabled */
  5316. if (pdev &&
  5317. !wlan_cfg_get_dp_pdev_nss_enabled(pdev->wlan_cfg_ctx)) {
  5318. status = dp_rx_flow_send_fst_fw_setup(pdev->soc, pdev);
  5319. if (status != QDF_STATUS_SUCCESS)
  5320. break;
  5321. }
  5322. }
  5323. return status;
  5324. }
  5325. #elif defined(WLAN_SUPPORT_RX_FISA)
  5326. /**
  5327. * dp_rx_target_fst_config() - Configure RX OLE FSE engine in HW
  5328. * @soc: SoC handle
  5329. *
  5330. * Return: Success
  5331. */
  5332. static inline QDF_STATUS dp_rx_target_fst_config(struct dp_soc *soc)
  5333. {
  5334. /* Check if it is enabled in the INI */
  5335. if (!soc->fisa_enable) {
  5336. dp_err("RX FISA feature is disabled");
  5337. return QDF_STATUS_E_NOSUPPORT;
  5338. }
  5339. return dp_rx_flow_send_fst_fw_setup(soc, soc->pdev_list[0]);
  5340. }
  5341. #define FISA_MAX_TIMEOUT 0xffffffff
  5342. #define FISA_DISABLE_TIMEOUT 0
  5343. static QDF_STATUS dp_rx_fisa_config(struct dp_soc *soc)
  5344. {
  5345. struct dp_htt_rx_fisa_cfg fisa_config;
  5346. fisa_config.pdev_id = 0;
  5347. fisa_config.fisa_timeout = FISA_MAX_TIMEOUT;
  5348. return dp_htt_rx_fisa_config(soc->pdev_list[0], &fisa_config);
  5349. }
  5350. #else /* !WLAN_SUPPORT_RX_FISA */
  5351. static inline QDF_STATUS dp_rx_target_fst_config(struct dp_soc *soc)
  5352. {
  5353. return QDF_STATUS_SUCCESS;
  5354. }
  5355. #endif /* !WLAN_SUPPORT_RX_FISA */
  5356. #ifndef WLAN_SUPPORT_RX_FISA
  5357. static QDF_STATUS dp_rx_fisa_config(struct dp_soc *soc)
  5358. {
  5359. return QDF_STATUS_SUCCESS;
  5360. }
  5361. static QDF_STATUS dp_rx_dump_fisa_stats(struct dp_soc *soc)
  5362. {
  5363. return QDF_STATUS_SUCCESS;
  5364. }
  5365. static void dp_rx_dump_fisa_table(struct dp_soc *soc)
  5366. {
  5367. }
  5368. static void dp_suspend_fse_cache_flush(struct dp_soc *soc)
  5369. {
  5370. }
  5371. static void dp_resume_fse_cache_flush(struct dp_soc *soc)
  5372. {
  5373. }
  5374. #endif /* !WLAN_SUPPORT_RX_FISA */
  5375. #ifndef WLAN_DP_FEATURE_SW_LATENCY_MGR
  5376. static inline QDF_STATUS dp_print_swlm_stats(struct dp_soc *soc)
  5377. {
  5378. return QDF_STATUS_SUCCESS;
  5379. }
  5380. #endif /* !WLAN_DP_FEATURE_SW_LATENCY_MGR */
  5381. /*
  5382. * dp_soc_attach_target_wifi3() - SOC initialization in the target
  5383. * @cdp_soc: Opaque Datapath SOC handle
  5384. *
  5385. * Return: zero on success, non-zero on failure
  5386. */
  5387. static QDF_STATUS
  5388. dp_soc_attach_target_wifi3(struct cdp_soc_t *cdp_soc)
  5389. {
  5390. struct dp_soc *soc = (struct dp_soc *)cdp_soc;
  5391. QDF_STATUS status = QDF_STATUS_SUCCESS;
  5392. htt_soc_attach_target(soc->htt_handle);
  5393. status = dp_rxdma_ring_config(soc);
  5394. if (status != QDF_STATUS_SUCCESS) {
  5395. dp_err("Failed to send htt srng setup messages to target");
  5396. return status;
  5397. }
  5398. status = soc->arch_ops.dp_rxdma_ring_sel_cfg(soc);
  5399. if (status != QDF_STATUS_SUCCESS) {
  5400. dp_err("Failed to send htt ring config message to target");
  5401. return status;
  5402. }
  5403. status = dp_rx_target_fst_config(soc);
  5404. if (status != QDF_STATUS_SUCCESS &&
  5405. status != QDF_STATUS_E_NOSUPPORT) {
  5406. dp_err("Failed to send htt fst setup config message to target");
  5407. return status;
  5408. }
  5409. if (status == QDF_STATUS_SUCCESS) {
  5410. status = dp_rx_fisa_config(soc);
  5411. if (status != QDF_STATUS_SUCCESS) {
  5412. dp_err("Failed to send htt FISA config message to target");
  5413. return status;
  5414. }
  5415. }
  5416. DP_STATS_INIT(soc);
  5417. dp_runtime_init(soc);
  5418. /* initialize work queue for stats processing */
  5419. qdf_create_work(0, &soc->htt_stats.work, htt_t2h_stats_handler, soc);
  5420. return QDF_STATUS_SUCCESS;
  5421. }
  5422. #ifdef QCA_SUPPORT_FULL_MON
  5423. static inline QDF_STATUS
  5424. dp_soc_config_full_mon_mode(struct dp_pdev *pdev, enum dp_full_mon_config val)
  5425. {
  5426. struct dp_soc *soc = pdev->soc;
  5427. QDF_STATUS status = QDF_STATUS_SUCCESS;
  5428. if (!soc->full_mon_mode)
  5429. return QDF_STATUS_SUCCESS;
  5430. if ((htt_h2t_full_mon_cfg(soc->htt_handle,
  5431. pdev->pdev_id,
  5432. val)) != QDF_STATUS_SUCCESS) {
  5433. status = QDF_STATUS_E_FAILURE;
  5434. }
  5435. return status;
  5436. }
  5437. #else
  5438. static inline QDF_STATUS
  5439. dp_soc_config_full_mon_mode(struct dp_pdev *pdev, enum dp_full_mon_config val)
  5440. {
  5441. return 0;
  5442. }
  5443. #endif
  5444. /*
  5445. * dp_vdev_id_map_tbl_add() - Add vdev into vdev_id table
  5446. * @soc: SoC handle
  5447. * @vdev: vdev handle
  5448. * @vdev_id: vdev_id
  5449. *
  5450. * Return: None
  5451. */
  5452. static void dp_vdev_id_map_tbl_add(struct dp_soc *soc,
  5453. struct dp_vdev *vdev,
  5454. uint8_t vdev_id)
  5455. {
  5456. QDF_ASSERT(vdev_id <= MAX_VDEV_CNT);
  5457. qdf_spin_lock_bh(&soc->vdev_map_lock);
  5458. if (dp_vdev_get_ref(soc, vdev, DP_MOD_ID_CONFIG) !=
  5459. QDF_STATUS_SUCCESS) {
  5460. dp_vdev_info("%pK: unable to get vdev reference at MAP vdev %pK vdev_id %u",
  5461. soc, vdev, vdev_id);
  5462. qdf_spin_unlock_bh(&soc->vdev_map_lock);
  5463. return;
  5464. }
  5465. if (!soc->vdev_id_map[vdev_id])
  5466. soc->vdev_id_map[vdev_id] = vdev;
  5467. else
  5468. QDF_ASSERT(0);
  5469. qdf_spin_unlock_bh(&soc->vdev_map_lock);
  5470. }
  5471. /*
  5472. * dp_vdev_id_map_tbl_remove() - remove vdev from vdev_id table
  5473. * @soc: SoC handle
  5474. * @vdev: vdev handle
  5475. *
  5476. * Return: None
  5477. */
  5478. static void dp_vdev_id_map_tbl_remove(struct dp_soc *soc,
  5479. struct dp_vdev *vdev)
  5480. {
  5481. qdf_spin_lock_bh(&soc->vdev_map_lock);
  5482. QDF_ASSERT(soc->vdev_id_map[vdev->vdev_id] == vdev);
  5483. soc->vdev_id_map[vdev->vdev_id] = NULL;
  5484. dp_vdev_unref_delete(soc, vdev, DP_MOD_ID_CONFIG);
  5485. qdf_spin_unlock_bh(&soc->vdev_map_lock);
  5486. }
  5487. /*
  5488. * dp_vdev_pdev_list_add() - add vdev into pdev's list
  5489. * @soc: soc handle
  5490. * @pdev: pdev handle
  5491. * @vdev: vdev handle
  5492. *
  5493. * return: none
  5494. */
  5495. static void dp_vdev_pdev_list_add(struct dp_soc *soc,
  5496. struct dp_pdev *pdev,
  5497. struct dp_vdev *vdev)
  5498. {
  5499. qdf_spin_lock_bh(&pdev->vdev_list_lock);
  5500. if (dp_vdev_get_ref(soc, vdev, DP_MOD_ID_CONFIG) !=
  5501. QDF_STATUS_SUCCESS) {
  5502. dp_vdev_info("%pK: unable to get vdev reference at MAP vdev %pK",
  5503. soc, vdev);
  5504. qdf_spin_unlock_bh(&pdev->vdev_list_lock);
  5505. return;
  5506. }
  5507. /* add this vdev into the pdev's list */
  5508. TAILQ_INSERT_TAIL(&pdev->vdev_list, vdev, vdev_list_elem);
  5509. qdf_spin_unlock_bh(&pdev->vdev_list_lock);
  5510. }
  5511. /*
  5512. * dp_vdev_pdev_list_remove() - remove vdev from pdev's list
  5513. * @soc: SoC handle
  5514. * @pdev: pdev handle
  5515. * @vdev: VDEV handle
  5516. *
  5517. * Return: none
  5518. */
  5519. static void dp_vdev_pdev_list_remove(struct dp_soc *soc,
  5520. struct dp_pdev *pdev,
  5521. struct dp_vdev *vdev)
  5522. {
  5523. uint8_t found = 0;
  5524. struct dp_vdev *tmpvdev = NULL;
  5525. qdf_spin_lock_bh(&pdev->vdev_list_lock);
  5526. TAILQ_FOREACH(tmpvdev, &pdev->vdev_list, vdev_list_elem) {
  5527. if (tmpvdev == vdev) {
  5528. found = 1;
  5529. break;
  5530. }
  5531. }
  5532. if (found) {
  5533. TAILQ_REMOVE(&pdev->vdev_list, vdev, vdev_list_elem);
  5534. dp_vdev_unref_delete(soc, vdev, DP_MOD_ID_CONFIG);
  5535. } else {
  5536. dp_vdev_debug("%pK: vdev:%pK not found in pdev:%pK vdevlist:%pK",
  5537. soc, vdev, pdev, &pdev->vdev_list);
  5538. QDF_ASSERT(0);
  5539. }
  5540. qdf_spin_unlock_bh(&pdev->vdev_list_lock);
  5541. }
  5542. /*
  5543. * dp_vdev_attach_wifi3() - attach txrx vdev
  5544. * @txrx_pdev: Datapath PDEV handle
  5545. * @vdev_mac_addr: MAC address of the virtual interface
  5546. * @vdev_id: VDEV Id
  5547. * @wlan_op_mode: VDEV operating mode
  5548. * @subtype: VDEV operating subtype
  5549. *
  5550. * Return: status
  5551. */
  5552. static QDF_STATUS dp_vdev_attach_wifi3(struct cdp_soc_t *cdp_soc,
  5553. uint8_t pdev_id,
  5554. uint8_t *vdev_mac_addr,
  5555. uint8_t vdev_id,
  5556. enum wlan_op_mode op_mode,
  5557. enum wlan_op_subtype subtype)
  5558. {
  5559. int i = 0;
  5560. qdf_size_t vdev_context_size;
  5561. struct dp_soc *soc = (struct dp_soc *)cdp_soc;
  5562. struct dp_pdev *pdev =
  5563. dp_get_pdev_from_soc_pdev_id_wifi3((struct dp_soc *)soc,
  5564. pdev_id);
  5565. struct dp_vdev *vdev;
  5566. vdev_context_size =
  5567. soc->arch_ops.txrx_get_context_size(DP_CONTEXT_TYPE_VDEV);
  5568. vdev = qdf_mem_malloc(vdev_context_size);
  5569. if (!pdev) {
  5570. dp_init_err("%pK: DP PDEV is Null for pdev id %d",
  5571. cdp_soc, pdev_id);
  5572. qdf_mem_free(vdev);
  5573. goto fail0;
  5574. }
  5575. if (!vdev) {
  5576. dp_init_err("%pK: DP VDEV memory allocation failed",
  5577. cdp_soc);
  5578. goto fail0;
  5579. }
  5580. wlan_minidump_log(vdev, sizeof(*vdev), soc->ctrl_psoc,
  5581. WLAN_MD_DP_VDEV, "dp_vdev");
  5582. vdev->pdev = pdev;
  5583. vdev->vdev_id = vdev_id;
  5584. vdev->opmode = op_mode;
  5585. vdev->subtype = subtype;
  5586. vdev->osdev = soc->osdev;
  5587. vdev->osif_rx = NULL;
  5588. vdev->osif_rsim_rx_decap = NULL;
  5589. vdev->osif_get_key = NULL;
  5590. vdev->osif_rx_mon = NULL;
  5591. vdev->osif_tx_free_ext = NULL;
  5592. vdev->osif_vdev = NULL;
  5593. vdev->delete.pending = 0;
  5594. vdev->safemode = 0;
  5595. vdev->drop_unenc = 1;
  5596. vdev->sec_type = cdp_sec_type_none;
  5597. vdev->multipass_en = false;
  5598. qdf_atomic_init(&vdev->ref_cnt);
  5599. for (i = 0; i < DP_MOD_ID_MAX; i++)
  5600. qdf_atomic_init(&vdev->mod_refs[i]);
  5601. /* Take one reference for create*/
  5602. qdf_atomic_inc(&vdev->ref_cnt);
  5603. qdf_atomic_inc(&vdev->mod_refs[DP_MOD_ID_CONFIG]);
  5604. vdev->num_peers = 0;
  5605. #ifdef notyet
  5606. vdev->filters_num = 0;
  5607. #endif
  5608. vdev->lmac_id = pdev->lmac_id;
  5609. qdf_mem_copy(
  5610. &vdev->mac_addr.raw[0], vdev_mac_addr, QDF_MAC_ADDR_SIZE);
  5611. /* TODO: Initialize default HTT meta data that will be used in
  5612. * TCL descriptors for packets transmitted from this VDEV
  5613. */
  5614. qdf_spinlock_create(&vdev->peer_list_lock);
  5615. TAILQ_INIT(&vdev->peer_list);
  5616. dp_peer_multipass_list_init(vdev);
  5617. if ((soc->intr_mode == DP_INTR_POLL) &&
  5618. wlan_cfg_get_num_contexts(soc->wlan_cfg_ctx) != 0) {
  5619. if ((pdev->vdev_count == 0) ||
  5620. (wlan_op_mode_monitor == vdev->opmode))
  5621. qdf_timer_mod(&soc->int_timer, DP_INTR_POLL_TIMER_MS);
  5622. } else if (soc->intr_mode == DP_INTR_MSI &&
  5623. wlan_op_mode_monitor == vdev->opmode &&
  5624. soc->mon_vdev_timer_state & MON_VDEV_TIMER_INIT) {
  5625. qdf_timer_mod(&soc->mon_vdev_timer, DP_INTR_POLL_TIMER_MS);
  5626. soc->mon_vdev_timer_state |= MON_VDEV_TIMER_RUNNING;
  5627. }
  5628. dp_vdev_id_map_tbl_add(soc, vdev, vdev_id);
  5629. if (wlan_op_mode_monitor == vdev->opmode) {
  5630. dp_vdev_set_monitor_mode_buf_rings(pdev);
  5631. pdev->monitor_vdev = vdev;
  5632. return QDF_STATUS_SUCCESS;
  5633. }
  5634. vdev->tx_encap_type = wlan_cfg_pkt_type(soc->wlan_cfg_ctx);
  5635. vdev->rx_decap_type = wlan_cfg_pkt_type(soc->wlan_cfg_ctx);
  5636. vdev->dscp_tid_map_id = 0;
  5637. vdev->mcast_enhancement_en = 0;
  5638. vdev->igmp_mcast_enhanc_en = 0;
  5639. vdev->raw_mode_war = wlan_cfg_get_raw_mode_war(soc->wlan_cfg_ctx);
  5640. vdev->prev_tx_enq_tstamp = 0;
  5641. vdev->prev_rx_deliver_tstamp = 0;
  5642. vdev->skip_sw_tid_classification = DP_TX_HW_DSCP_TID_MAP_VALID;
  5643. dp_vdev_pdev_list_add(soc, pdev, vdev);
  5644. pdev->vdev_count++;
  5645. if (wlan_op_mode_sta != vdev->opmode)
  5646. vdev->ap_bridge_enabled = true;
  5647. else
  5648. vdev->ap_bridge_enabled = false;
  5649. dp_init_info("%pK: wlan_cfg_ap_bridge_enabled %d",
  5650. cdp_soc, vdev->ap_bridge_enabled);
  5651. dp_tx_vdev_attach(vdev);
  5652. if (!pdev->is_lro_hash_configured) {
  5653. if (QDF_IS_STATUS_SUCCESS(dp_lro_hash_setup(soc, pdev)))
  5654. pdev->is_lro_hash_configured = true;
  5655. else
  5656. dp_err("LRO hash setup failure!");
  5657. }
  5658. dp_info("Created vdev %pK ("QDF_MAC_ADDR_FMT")", vdev,
  5659. QDF_MAC_ADDR_REF(vdev->mac_addr.raw));
  5660. DP_STATS_INIT(vdev);
  5661. if (QDF_IS_STATUS_ERROR(soc->arch_ops.txrx_vdev_attach(soc, vdev)))
  5662. goto fail0;
  5663. if (wlan_op_mode_sta == vdev->opmode)
  5664. dp_peer_create_wifi3((struct cdp_soc_t *)soc, vdev_id,
  5665. vdev->mac_addr.raw);
  5666. return QDF_STATUS_SUCCESS;
  5667. fail0:
  5668. return QDF_STATUS_E_FAILURE;
  5669. }
  5670. #ifndef QCA_HOST_MODE_WIFI_DISABLED
  5671. /**
  5672. * dp_vdev_register_tx_handler() - Register Tx handler
  5673. * @vdev: struct dp_vdev *
  5674. * @soc: struct dp_soc *
  5675. * @txrx_ops: struct ol_txrx_ops *
  5676. */
  5677. static inline void dp_vdev_register_tx_handler(struct dp_vdev *vdev,
  5678. struct dp_soc *soc,
  5679. struct ol_txrx_ops *txrx_ops)
  5680. {
  5681. /* Enable vdev_id check only for ap, if flag is enabled */
  5682. if (vdev->mesh_vdev)
  5683. txrx_ops->tx.tx = dp_tx_send_mesh;
  5684. else if ((wlan_cfg_is_tx_per_pkt_vdev_id_check_enabled(soc->wlan_cfg_ctx)) &&
  5685. (vdev->opmode == wlan_op_mode_ap))
  5686. txrx_ops->tx.tx = dp_tx_send_vdev_id_check;
  5687. else
  5688. txrx_ops->tx.tx = dp_tx_send;
  5689. /* Avoid check in regular exception Path */
  5690. if ((wlan_cfg_is_tx_per_pkt_vdev_id_check_enabled(soc->wlan_cfg_ctx)) &&
  5691. (vdev->opmode == wlan_op_mode_ap))
  5692. txrx_ops->tx.tx_exception = dp_tx_send_exception_vdev_id_check;
  5693. else
  5694. txrx_ops->tx.tx_exception = dp_tx_send_exception;
  5695. dp_info("Configure tx_vdev_id_chk_handler Feature Flag: %d and mode:%d for vdev_id:%d",
  5696. wlan_cfg_is_tx_per_pkt_vdev_id_check_enabled(soc->wlan_cfg_ctx),
  5697. vdev->opmode, vdev->vdev_id);
  5698. }
  5699. #else /* QCA_HOST_MODE_WIFI_DISABLED */
  5700. static inline void dp_vdev_register_tx_handler(struct dp_vdev *vdev,
  5701. struct dp_soc *soc,
  5702. struct ol_txrx_ops *txrx_ops)
  5703. {
  5704. }
  5705. #endif /* QCA_HOST_MODE_WIFI_DISABLED */
  5706. /**
  5707. * dp_vdev_register_wifi3() - Register VDEV operations from osif layer
  5708. * @soc: Datapath soc handle
  5709. * @vdev_id: id of Datapath VDEV handle
  5710. * @osif_vdev: OSIF vdev handle
  5711. * @txrx_ops: Tx and Rx operations
  5712. *
  5713. * Return: DP VDEV handle on success, NULL on failure
  5714. */
  5715. static QDF_STATUS dp_vdev_register_wifi3(struct cdp_soc_t *soc_hdl,
  5716. uint8_t vdev_id,
  5717. ol_osif_vdev_handle osif_vdev,
  5718. struct ol_txrx_ops *txrx_ops)
  5719. {
  5720. struct dp_soc *soc = cdp_soc_t_to_dp_soc(soc_hdl);
  5721. struct dp_vdev *vdev = dp_vdev_get_ref_by_id(soc, vdev_id,
  5722. DP_MOD_ID_CDP);
  5723. if (!vdev)
  5724. return QDF_STATUS_E_FAILURE;
  5725. vdev->osif_vdev = osif_vdev;
  5726. vdev->osif_rx = txrx_ops->rx.rx;
  5727. vdev->osif_rx_stack = txrx_ops->rx.rx_stack;
  5728. vdev->osif_rx_flush = txrx_ops->rx.rx_flush;
  5729. vdev->osif_gro_flush = txrx_ops->rx.rx_gro_flush;
  5730. vdev->osif_rsim_rx_decap = txrx_ops->rx.rsim_rx_decap;
  5731. vdev->osif_fisa_rx = txrx_ops->rx.osif_fisa_rx;
  5732. vdev->osif_fisa_flush = txrx_ops->rx.osif_fisa_flush;
  5733. vdev->osif_get_key = txrx_ops->get_key;
  5734. vdev->osif_rx_mon = txrx_ops->rx.mon;
  5735. vdev->osif_tx_free_ext = txrx_ops->tx.tx_free_ext;
  5736. vdev->tx_comp = txrx_ops->tx.tx_comp;
  5737. vdev->stats_cb = txrx_ops->rx.stats_rx;
  5738. #ifdef notyet
  5739. #if ATH_SUPPORT_WAPI
  5740. vdev->osif_check_wai = txrx_ops->rx.wai_check;
  5741. #endif
  5742. #endif
  5743. #ifdef UMAC_SUPPORT_PROXY_ARP
  5744. vdev->osif_proxy_arp = txrx_ops->proxy_arp;
  5745. #endif
  5746. vdev->me_convert = txrx_ops->me_convert;
  5747. dp_vdev_register_tx_handler(vdev, soc, txrx_ops);
  5748. dp_init_info("%pK: DP Vdev Register success", soc);
  5749. dp_vdev_unref_delete(soc, vdev, DP_MOD_ID_CDP);
  5750. return QDF_STATUS_SUCCESS;
  5751. }
  5752. /**
  5753. * dp_peer_delete() - delete DP peer
  5754. *
  5755. * @soc: Datatpath soc
  5756. * @peer: Datapath peer
  5757. * @arg: argument to iter function
  5758. *
  5759. * Return: void
  5760. */
  5761. static void
  5762. dp_peer_delete(struct dp_soc *soc,
  5763. struct dp_peer *peer,
  5764. void *arg)
  5765. {
  5766. if (!peer->valid)
  5767. return;
  5768. dp_peer_delete_wifi3((struct cdp_soc_t *)soc,
  5769. peer->vdev->vdev_id,
  5770. peer->mac_addr.raw, 0);
  5771. }
  5772. /**
  5773. * dp_vdev_flush_peers() - Forcibily Flush peers of vdev
  5774. * @vdev: Datapath VDEV handle
  5775. * @unmap_only: Flag to indicate "only unmap"
  5776. *
  5777. * Return: void
  5778. */
  5779. static void dp_vdev_flush_peers(struct cdp_vdev *vdev_handle, bool unmap_only)
  5780. {
  5781. struct dp_vdev *vdev = (struct dp_vdev *)vdev_handle;
  5782. struct dp_pdev *pdev = vdev->pdev;
  5783. struct dp_soc *soc = pdev->soc;
  5784. struct dp_peer *peer;
  5785. uint32_t i = 0;
  5786. if (!unmap_only)
  5787. dp_vdev_iterate_peer_lock_safe(vdev, dp_peer_delete, NULL,
  5788. DP_MOD_ID_CDP);
  5789. for (i = 0; i < soc->max_peers ; i++) {
  5790. peer = __dp_peer_get_ref_by_id(soc, i, DP_MOD_ID_CDP);
  5791. if (!peer)
  5792. continue;
  5793. if (peer->vdev != vdev) {
  5794. dp_peer_unref_delete(peer, DP_MOD_ID_CDP);
  5795. continue;
  5796. }
  5797. dp_info("peer: "QDF_MAC_ADDR_FMT" is getting unmap",
  5798. QDF_MAC_ADDR_REF(peer->mac_addr.raw));
  5799. dp_rx_peer_unmap_handler(soc, i,
  5800. vdev->vdev_id,
  5801. peer->mac_addr.raw, 0,
  5802. DP_PEER_WDS_COUNT_INVALID);
  5803. SET_PEER_REF_CNT_ONE(peer);
  5804. dp_peer_unref_delete(peer, DP_MOD_ID_CDP);
  5805. }
  5806. }
  5807. /*
  5808. * dp_vdev_detach_wifi3() - Detach txrx vdev
  5809. * @cdp_soc: Datapath soc handle
  5810. * @vdev_id: VDEV Id
  5811. * @callback: Callback OL_IF on completion of detach
  5812. * @cb_context: Callback context
  5813. *
  5814. */
  5815. static QDF_STATUS dp_vdev_detach_wifi3(struct cdp_soc_t *cdp_soc,
  5816. uint8_t vdev_id,
  5817. ol_txrx_vdev_delete_cb callback,
  5818. void *cb_context)
  5819. {
  5820. struct dp_soc *soc = (struct dp_soc *)cdp_soc;
  5821. struct dp_pdev *pdev;
  5822. struct dp_neighbour_peer *peer = NULL;
  5823. struct dp_neighbour_peer *temp_peer = NULL;
  5824. struct dp_peer *vap_self_peer = NULL;
  5825. struct dp_vdev *vdev = dp_vdev_get_ref_by_id(soc, vdev_id,
  5826. DP_MOD_ID_CDP);
  5827. if (!vdev)
  5828. return QDF_STATUS_E_FAILURE;
  5829. soc->arch_ops.txrx_vdev_detach(soc, vdev);
  5830. pdev = vdev->pdev;
  5831. vap_self_peer = dp_sta_vdev_self_peer_ref_n_get(soc, vdev,
  5832. DP_MOD_ID_CONFIG);
  5833. if (vap_self_peer) {
  5834. qdf_spin_lock_bh(&soc->ast_lock);
  5835. if (vap_self_peer->self_ast_entry) {
  5836. dp_peer_del_ast(soc, vap_self_peer->self_ast_entry);
  5837. vap_self_peer->self_ast_entry = NULL;
  5838. }
  5839. qdf_spin_unlock_bh(&soc->ast_lock);
  5840. dp_peer_delete_wifi3((struct cdp_soc_t *)soc, vdev->vdev_id,
  5841. vap_self_peer->mac_addr.raw, 0);
  5842. dp_peer_unref_delete(vap_self_peer, DP_MOD_ID_CONFIG);
  5843. }
  5844. /*
  5845. * If Target is hung, flush all peers before detaching vdev
  5846. * this will free all references held due to missing
  5847. * unmap commands from Target
  5848. */
  5849. if (!hif_is_target_ready(HIF_GET_SOFTC(soc->hif_handle)))
  5850. dp_vdev_flush_peers((struct cdp_vdev *)vdev, false);
  5851. else if (hif_get_target_status(soc->hif_handle) == TARGET_STATUS_RESET)
  5852. dp_vdev_flush_peers((struct cdp_vdev *)vdev, true);
  5853. dp_rx_vdev_detach(vdev);
  5854. /*
  5855. * move it after dp_rx_vdev_detach(),
  5856. * as the call back done in dp_rx_vdev_detach()
  5857. * still need to get vdev pointer by vdev_id.
  5858. */
  5859. dp_vdev_id_map_tbl_remove(soc, vdev);
  5860. qdf_spin_lock_bh(&pdev->neighbour_peer_mutex);
  5861. if (!soc->hw_nac_monitor_support) {
  5862. TAILQ_FOREACH(peer, &pdev->neighbour_peers_list,
  5863. neighbour_peer_list_elem) {
  5864. QDF_ASSERT(peer->vdev != vdev);
  5865. }
  5866. } else {
  5867. TAILQ_FOREACH_SAFE(peer, &pdev->neighbour_peers_list,
  5868. neighbour_peer_list_elem, temp_peer) {
  5869. if (peer->vdev == vdev) {
  5870. TAILQ_REMOVE(&pdev->neighbour_peers_list, peer,
  5871. neighbour_peer_list_elem);
  5872. qdf_mem_free(peer);
  5873. }
  5874. }
  5875. }
  5876. qdf_spin_unlock_bh(&pdev->neighbour_peer_mutex);
  5877. dp_tx_vdev_multipass_deinit(vdev);
  5878. if (vdev->vdev_dp_ext_handle) {
  5879. qdf_mem_free(vdev->vdev_dp_ext_handle);
  5880. vdev->vdev_dp_ext_handle = NULL;
  5881. }
  5882. /* indicate that the vdev needs to be deleted */
  5883. vdev->delete.pending = 1;
  5884. vdev->delete.callback = callback;
  5885. vdev->delete.context = cb_context;
  5886. if (vdev->opmode != wlan_op_mode_monitor)
  5887. dp_vdev_pdev_list_remove(soc, pdev, vdev);
  5888. pdev->vdev_count--;
  5889. /* release reference taken above for find */
  5890. dp_vdev_unref_delete(soc, vdev, DP_MOD_ID_CDP);
  5891. qdf_spin_lock_bh(&soc->inactive_vdev_list_lock);
  5892. TAILQ_INSERT_TAIL(&soc->inactive_vdev_list, vdev, inactive_list_elem);
  5893. qdf_spin_unlock_bh(&soc->inactive_vdev_list_lock);
  5894. /* release reference taken at dp_vdev_create */
  5895. dp_vdev_unref_delete(soc, vdev, DP_MOD_ID_CONFIG);
  5896. return QDF_STATUS_SUCCESS;
  5897. }
  5898. static inline struct dp_peer *dp_peer_can_reuse(struct dp_vdev *vdev,
  5899. uint8_t *peer_mac_addr)
  5900. {
  5901. struct dp_peer *peer;
  5902. struct dp_soc *soc = vdev->pdev->soc;
  5903. qdf_spin_lock_bh(&soc->inactive_peer_list_lock);
  5904. TAILQ_FOREACH(peer, &soc->inactive_peer_list,
  5905. inactive_list_elem) {
  5906. /* reuse bss peer only when vdev matches*/
  5907. if (peer->bss_peer && (peer->vdev == vdev) &&
  5908. qdf_mem_cmp(peer_mac_addr, peer->mac_addr.raw,
  5909. QDF_MAC_ADDR_SIZE) == 0) {
  5910. /* increment ref count for cdp_peer_create*/
  5911. if (dp_peer_get_ref(soc, peer, DP_MOD_ID_CONFIG) ==
  5912. QDF_STATUS_SUCCESS) {
  5913. TAILQ_REMOVE(&soc->inactive_peer_list, peer,
  5914. inactive_list_elem);
  5915. qdf_spin_unlock_bh
  5916. (&soc->inactive_peer_list_lock);
  5917. return peer;
  5918. }
  5919. }
  5920. }
  5921. qdf_spin_unlock_bh(&soc->inactive_peer_list_lock);
  5922. return NULL;
  5923. }
  5924. #ifdef FEATURE_AST
  5925. static inline void dp_peer_ast_handle_roam_del(struct dp_soc *soc,
  5926. struct dp_pdev *pdev,
  5927. uint8_t *peer_mac_addr)
  5928. {
  5929. struct dp_ast_entry *ast_entry;
  5930. qdf_spin_lock_bh(&soc->ast_lock);
  5931. if (soc->ast_override_support)
  5932. ast_entry = dp_peer_ast_hash_find_by_pdevid(soc, peer_mac_addr,
  5933. pdev->pdev_id);
  5934. else
  5935. ast_entry = dp_peer_ast_hash_find_soc(soc, peer_mac_addr);
  5936. if (ast_entry && ast_entry->next_hop && !ast_entry->delete_in_progress)
  5937. dp_peer_del_ast(soc, ast_entry);
  5938. qdf_spin_unlock_bh(&soc->ast_lock);
  5939. }
  5940. #endif
  5941. #ifdef PEER_CACHE_RX_PKTS
  5942. static inline void dp_peer_rx_bufq_resources_init(struct dp_peer *peer)
  5943. {
  5944. qdf_spinlock_create(&peer->bufq_info.bufq_lock);
  5945. peer->bufq_info.thresh = DP_RX_CACHED_BUFQ_THRESH;
  5946. qdf_list_create(&peer->bufq_info.cached_bufq, DP_RX_CACHED_BUFQ_THRESH);
  5947. }
  5948. #else
  5949. static inline void dp_peer_rx_bufq_resources_init(struct dp_peer *peer)
  5950. {
  5951. }
  5952. #endif
  5953. /*
  5954. * dp_peer_create_wifi3() - attach txrx peer
  5955. * @soc_hdl: Datapath soc handle
  5956. * @vdev_id: id of vdev
  5957. * @peer_mac_addr: Peer MAC address
  5958. *
  5959. * Return: 0 on success, -1 on failure
  5960. */
  5961. static QDF_STATUS
  5962. dp_peer_create_wifi3(struct cdp_soc_t *soc_hdl, uint8_t vdev_id,
  5963. uint8_t *peer_mac_addr)
  5964. {
  5965. struct dp_peer *peer;
  5966. int i;
  5967. struct dp_soc *soc = (struct dp_soc *)soc_hdl;
  5968. struct dp_pdev *pdev;
  5969. struct cdp_peer_cookie peer_cookie;
  5970. enum cdp_txrx_ast_entry_type ast_type = CDP_TXRX_AST_TYPE_STATIC;
  5971. struct dp_vdev *vdev = NULL;
  5972. if (!peer_mac_addr)
  5973. return QDF_STATUS_E_FAILURE;
  5974. vdev = dp_vdev_get_ref_by_id(soc, vdev_id, DP_MOD_ID_CDP);
  5975. if (!vdev)
  5976. return QDF_STATUS_E_FAILURE;
  5977. pdev = vdev->pdev;
  5978. soc = pdev->soc;
  5979. /*
  5980. * If a peer entry with given MAC address already exists,
  5981. * reuse the peer and reset the state of peer.
  5982. */
  5983. peer = dp_peer_can_reuse(vdev, peer_mac_addr);
  5984. if (peer) {
  5985. dp_peer_vdev_list_add(soc, vdev, peer);
  5986. dp_peer_find_hash_add(soc, peer);
  5987. qdf_atomic_init(&peer->is_default_route_set);
  5988. dp_peer_cleanup(vdev, peer);
  5989. for (i = 0; i < DP_MAX_TIDS; i++)
  5990. qdf_spinlock_create(&peer->rx_tid[i].tid_lock);
  5991. qdf_spin_lock_bh(&soc->ast_lock);
  5992. dp_peer_delete_ast_entries(soc, peer);
  5993. qdf_spin_unlock_bh(&soc->ast_lock);
  5994. if ((vdev->opmode == wlan_op_mode_sta) &&
  5995. !qdf_mem_cmp(peer_mac_addr, &vdev->mac_addr.raw[0],
  5996. QDF_MAC_ADDR_SIZE)) {
  5997. ast_type = CDP_TXRX_AST_TYPE_SELF;
  5998. }
  5999. dp_peer_add_ast(soc, peer, peer_mac_addr, ast_type, 0);
  6000. peer->valid = 1;
  6001. dp_local_peer_id_alloc(pdev, peer);
  6002. qdf_spinlock_create(&peer->peer_info_lock);
  6003. dp_peer_rx_bufq_resources_init(peer);
  6004. DP_STATS_INIT(peer);
  6005. DP_STATS_UPD(peer, rx.avg_snr, CDP_INVALID_SNR);
  6006. /*
  6007. * In tx_monitor mode, filter may be set for unassociated peer
  6008. * when unassociated peer get associated peer need to
  6009. * update tx_cap_enabled flag to support peer filter.
  6010. */
  6011. dp_peer_tx_capture_filter_check(pdev, peer);
  6012. dp_set_peer_isolation(peer, false);
  6013. dp_wds_ext_peer_init(peer);
  6014. dp_peer_update_state(soc, peer, DP_PEER_STATE_INIT);
  6015. dp_vdev_unref_delete(soc, vdev, DP_MOD_ID_CDP);
  6016. return QDF_STATUS_SUCCESS;
  6017. } else {
  6018. /*
  6019. * When a STA roams from RPTR AP to ROOT AP and vice versa, we
  6020. * need to remove the AST entry which was earlier added as a WDS
  6021. * entry.
  6022. * If an AST entry exists, but no peer entry exists with a given
  6023. * MAC addresses, we could deduce it as a WDS entry
  6024. */
  6025. dp_peer_ast_handle_roam_del(soc, pdev, peer_mac_addr);
  6026. }
  6027. #ifdef notyet
  6028. peer = (struct dp_peer *)qdf_mempool_alloc(soc->osdev,
  6029. soc->mempool_ol_ath_peer);
  6030. #else
  6031. peer = (struct dp_peer *)qdf_mem_malloc(sizeof(*peer));
  6032. #endif
  6033. wlan_minidump_log(peer,
  6034. sizeof(*peer),
  6035. soc->ctrl_psoc,
  6036. WLAN_MD_DP_PEER, "dp_peer");
  6037. if (!peer) {
  6038. dp_vdev_unref_delete(soc, vdev, DP_MOD_ID_CDP);
  6039. return QDF_STATUS_E_FAILURE; /* failure */
  6040. }
  6041. qdf_mem_zero(peer, sizeof(struct dp_peer));
  6042. TAILQ_INIT(&peer->ast_entry_list);
  6043. /* store provided params */
  6044. peer->vdev = vdev;
  6045. /* get the vdev reference for new peer */
  6046. dp_vdev_get_ref(soc, vdev, DP_MOD_ID_CHILD);
  6047. if ((vdev->opmode == wlan_op_mode_sta) &&
  6048. !qdf_mem_cmp(peer_mac_addr, &vdev->mac_addr.raw[0],
  6049. QDF_MAC_ADDR_SIZE)) {
  6050. ast_type = CDP_TXRX_AST_TYPE_SELF;
  6051. }
  6052. qdf_spinlock_create(&peer->peer_state_lock);
  6053. dp_peer_add_ast(soc, peer, peer_mac_addr, ast_type, 0);
  6054. qdf_spinlock_create(&peer->peer_info_lock);
  6055. dp_wds_ext_peer_init(peer);
  6056. dp_peer_rx_bufq_resources_init(peer);
  6057. qdf_mem_copy(
  6058. &peer->mac_addr.raw[0], peer_mac_addr, QDF_MAC_ADDR_SIZE);
  6059. /* initialize the peer_id */
  6060. peer->peer_id = HTT_INVALID_PEER;
  6061. /* reset the ast index to flowid table */
  6062. dp_peer_reset_flowq_map(peer);
  6063. qdf_atomic_init(&peer->ref_cnt);
  6064. for (i = 0; i < DP_MOD_ID_MAX; i++)
  6065. qdf_atomic_init(&peer->mod_refs[i]);
  6066. /* keep one reference for attach */
  6067. qdf_atomic_inc(&peer->ref_cnt);
  6068. qdf_atomic_inc(&peer->mod_refs[DP_MOD_ID_CONFIG]);
  6069. dp_peer_vdev_list_add(soc, vdev, peer);
  6070. /* TODO: See if hash based search is required */
  6071. dp_peer_find_hash_add(soc, peer);
  6072. /* Initialize the peer state */
  6073. peer->state = OL_TXRX_PEER_STATE_DISC;
  6074. dp_info("vdev %pK created peer %pK ("QDF_MAC_ADDR_FMT") ref_cnt: %d",
  6075. vdev, peer, QDF_MAC_ADDR_REF(peer->mac_addr.raw),
  6076. qdf_atomic_read(&peer->ref_cnt));
  6077. /*
  6078. * For every peer MAp message search and set if bss_peer
  6079. */
  6080. if (qdf_mem_cmp(peer->mac_addr.raw, vdev->mac_addr.raw,
  6081. QDF_MAC_ADDR_SIZE) == 0 &&
  6082. (wlan_op_mode_sta != vdev->opmode)) {
  6083. dp_info("vdev bss_peer!!");
  6084. peer->bss_peer = 1;
  6085. }
  6086. if (wlan_op_mode_sta == vdev->opmode &&
  6087. qdf_mem_cmp(peer->mac_addr.raw, vdev->mac_addr.raw,
  6088. QDF_MAC_ADDR_SIZE) == 0) {
  6089. peer->sta_self_peer = 1;
  6090. }
  6091. for (i = 0; i < DP_MAX_TIDS; i++)
  6092. qdf_spinlock_create(&peer->rx_tid[i].tid_lock);
  6093. peer->valid = 1;
  6094. dp_local_peer_id_alloc(pdev, peer);
  6095. DP_STATS_INIT(peer);
  6096. DP_STATS_UPD(peer, rx.avg_snr, CDP_INVALID_SNR);
  6097. qdf_mem_copy(peer_cookie.mac_addr, peer->mac_addr.raw,
  6098. QDF_MAC_ADDR_SIZE);
  6099. peer_cookie.ctx = NULL;
  6100. peer_cookie.pdev_id = pdev->pdev_id;
  6101. peer_cookie.cookie = pdev->next_peer_cookie++;
  6102. #if defined(FEATURE_PERPKT_INFO) && WDI_EVENT_ENABLE
  6103. dp_wdi_event_handler(WDI_EVENT_PEER_CREATE, pdev->soc,
  6104. (void *)&peer_cookie,
  6105. peer->peer_id, WDI_NO_VAL, pdev->pdev_id);
  6106. #endif
  6107. if (soc->rdkstats_enabled) {
  6108. if (!peer_cookie.ctx) {
  6109. pdev->next_peer_cookie--;
  6110. qdf_err("Failed to initialize peer rate stats");
  6111. } else {
  6112. peer->rdkstats_ctx = (struct cdp_peer_rate_stats_ctx *)
  6113. peer_cookie.ctx;
  6114. }
  6115. }
  6116. /*
  6117. * Allocate peer extended stats context. Fall through in
  6118. * case of failure as its not an implicit requirement to have
  6119. * this object for regular statistics updates.
  6120. */
  6121. if (dp_peer_ext_stats_ctx_alloc(soc, peer) !=
  6122. QDF_STATUS_SUCCESS)
  6123. dp_warn("peer ext_stats ctx alloc failed");
  6124. /*
  6125. * In tx_monitor mode, filter may be set for unassociated peer
  6126. * when unassociated peer get associated peer need to
  6127. * update tx_cap_enabled flag to support peer filter.
  6128. */
  6129. dp_peer_tx_capture_filter_check(pdev, peer);
  6130. dp_set_peer_isolation(peer, false);
  6131. dp_peer_update_state(soc, peer, DP_PEER_STATE_INIT);
  6132. dp_vdev_unref_delete(soc, vdev, DP_MOD_ID_CDP);
  6133. return QDF_STATUS_SUCCESS;
  6134. }
  6135. /*
  6136. * dp_vdev_get_default_reo_hash() - get reo dest ring and hash values for a vdev
  6137. * @vdev: Datapath VDEV handle
  6138. * @reo_dest: pointer to default reo_dest ring for vdev to be populated
  6139. * @hash_based: pointer to hash value (enabled/disabled) to be populated
  6140. *
  6141. * Return: None
  6142. */
  6143. static
  6144. void dp_vdev_get_default_reo_hash(struct dp_vdev *vdev,
  6145. enum cdp_host_reo_dest_ring *reo_dest,
  6146. bool *hash_based)
  6147. {
  6148. struct dp_soc *soc;
  6149. struct dp_pdev *pdev;
  6150. pdev = vdev->pdev;
  6151. soc = pdev->soc;
  6152. /*
  6153. * hash based steering is disabled for Radios which are offloaded
  6154. * to NSS
  6155. */
  6156. if (!wlan_cfg_get_dp_pdev_nss_enabled(pdev->wlan_cfg_ctx))
  6157. *hash_based = wlan_cfg_is_rx_hash_enabled(soc->wlan_cfg_ctx);
  6158. /*
  6159. * Below line of code will ensure the proper reo_dest ring is chosen
  6160. * for cases where toeplitz hash cannot be generated (ex: non TCP/UDP)
  6161. */
  6162. *reo_dest = pdev->reo_dest;
  6163. }
  6164. #ifdef IPA_OFFLOAD
  6165. /**
  6166. * dp_is_vdev_subtype_p2p() - Check if the subtype for vdev is P2P
  6167. * @vdev: Virtual device
  6168. *
  6169. * Return: true if the vdev is of subtype P2P
  6170. * false if the vdev is of any other subtype
  6171. */
  6172. static inline bool dp_is_vdev_subtype_p2p(struct dp_vdev *vdev)
  6173. {
  6174. if (vdev->subtype == wlan_op_subtype_p2p_device ||
  6175. vdev->subtype == wlan_op_subtype_p2p_cli ||
  6176. vdev->subtype == wlan_op_subtype_p2p_go)
  6177. return true;
  6178. return false;
  6179. }
  6180. /*
  6181. * dp_peer_setup_get_reo_hash() - get reo dest ring and hash values for a peer
  6182. * @vdev: Datapath VDEV handle
  6183. * @reo_dest: pointer to default reo_dest ring for vdev to be populated
  6184. * @hash_based: pointer to hash value (enabled/disabled) to be populated
  6185. *
  6186. * If IPA is enabled in ini, for SAP mode, disable hash based
  6187. * steering, use default reo_dst ring for RX. Use config values for other modes.
  6188. * Return: None
  6189. */
  6190. static void dp_peer_setup_get_reo_hash(struct dp_vdev *vdev,
  6191. enum cdp_host_reo_dest_ring *reo_dest,
  6192. bool *hash_based)
  6193. {
  6194. struct dp_soc *soc;
  6195. struct dp_pdev *pdev;
  6196. pdev = vdev->pdev;
  6197. soc = pdev->soc;
  6198. dp_vdev_get_default_reo_hash(vdev, reo_dest, hash_based);
  6199. /* For P2P-GO interfaces we do not need to change the REO
  6200. * configuration even if IPA config is enabled
  6201. */
  6202. if (dp_is_vdev_subtype_p2p(vdev))
  6203. return;
  6204. /*
  6205. * If IPA is enabled, disable hash-based flow steering and set
  6206. * reo_dest_ring_4 as the REO ring to receive packets on.
  6207. * IPA is configured to reap reo_dest_ring_4.
  6208. *
  6209. * Note - REO DST indexes are from 0 - 3, while cdp_host_reo_dest_ring
  6210. * value enum value is from 1 - 4.
  6211. * Hence, *reo_dest = IPA_REO_DEST_RING_IDX + 1
  6212. */
  6213. if (wlan_cfg_is_ipa_enabled(soc->wlan_cfg_ctx)) {
  6214. if (vdev->opmode == wlan_op_mode_ap) {
  6215. *reo_dest = IPA_REO_DEST_RING_IDX + 1;
  6216. *hash_based = 0;
  6217. } else if (vdev->opmode == wlan_op_mode_sta &&
  6218. dp_ipa_is_mdm_platform()) {
  6219. *reo_dest = IPA_REO_DEST_RING_IDX + 1;
  6220. }
  6221. }
  6222. }
  6223. #else
  6224. /*
  6225. * dp_peer_setup_get_reo_hash() - get reo dest ring and hash values for a peer
  6226. * @vdev: Datapath VDEV handle
  6227. * @reo_dest: pointer to default reo_dest ring for vdev to be populated
  6228. * @hash_based: pointer to hash value (enabled/disabled) to be populated
  6229. *
  6230. * Use system config values for hash based steering.
  6231. * Return: None
  6232. */
  6233. static void dp_peer_setup_get_reo_hash(struct dp_vdev *vdev,
  6234. enum cdp_host_reo_dest_ring *reo_dest,
  6235. bool *hash_based)
  6236. {
  6237. dp_vdev_get_default_reo_hash(vdev, reo_dest, hash_based);
  6238. }
  6239. #endif /* IPA_OFFLOAD */
  6240. /*
  6241. * dp_peer_setup_wifi3() - initialize the peer
  6242. * @soc_hdl: soc handle object
  6243. * @vdev_id : vdev_id of vdev object
  6244. * @peer_mac: Peer's mac address
  6245. *
  6246. * Return: QDF_STATUS
  6247. */
  6248. static QDF_STATUS
  6249. dp_peer_setup_wifi3(struct cdp_soc_t *soc_hdl, uint8_t vdev_id,
  6250. uint8_t *peer_mac)
  6251. {
  6252. struct dp_soc *soc = (struct dp_soc *)soc_hdl;
  6253. struct dp_pdev *pdev;
  6254. bool hash_based = 0;
  6255. enum cdp_host_reo_dest_ring reo_dest;
  6256. QDF_STATUS status = QDF_STATUS_SUCCESS;
  6257. struct dp_vdev *vdev = NULL;
  6258. struct dp_peer *peer =
  6259. dp_peer_find_hash_find(soc, peer_mac, 0, vdev_id,
  6260. DP_MOD_ID_CDP);
  6261. enum wlan_op_mode vdev_opmode;
  6262. if (!peer)
  6263. return QDF_STATUS_E_FAILURE;
  6264. vdev = peer->vdev;
  6265. if (!vdev) {
  6266. status = QDF_STATUS_E_FAILURE;
  6267. goto fail;
  6268. }
  6269. /* save vdev related member in case vdev freed */
  6270. vdev_opmode = vdev->opmode;
  6271. pdev = vdev->pdev;
  6272. dp_peer_setup_get_reo_hash(vdev, &reo_dest, &hash_based);
  6273. dp_info("pdev: %d vdev :%d opmode:%u hash-based-steering:%d default-reo_dest:%u",
  6274. pdev->pdev_id, vdev->vdev_id,
  6275. vdev->opmode, hash_based, reo_dest);
  6276. /*
  6277. * There are corner cases where the AD1 = AD2 = "VAPs address"
  6278. * i.e both the devices have same MAC address. In these
  6279. * cases we want such pkts to be processed in NULL Q handler
  6280. * which is REO2TCL ring. for this reason we should
  6281. * not setup reo_queues and default route for bss_peer.
  6282. */
  6283. dp_peer_tx_init(pdev, peer);
  6284. if (peer->bss_peer && vdev->opmode == wlan_op_mode_ap) {
  6285. status = QDF_STATUS_E_FAILURE;
  6286. goto fail;
  6287. }
  6288. if (soc->cdp_soc.ol_ops->peer_set_default_routing) {
  6289. /* TODO: Check the destination ring number to be passed to FW */
  6290. soc->cdp_soc.ol_ops->peer_set_default_routing(
  6291. soc->ctrl_psoc,
  6292. peer->vdev->pdev->pdev_id,
  6293. peer->mac_addr.raw,
  6294. peer->vdev->vdev_id, hash_based, reo_dest);
  6295. }
  6296. qdf_atomic_set(&peer->is_default_route_set, 1);
  6297. if (vdev_opmode != wlan_op_mode_monitor)
  6298. dp_peer_rx_init(pdev, peer);
  6299. dp_peer_ppdu_delayed_ba_init(peer);
  6300. fail:
  6301. dp_peer_unref_delete(peer, DP_MOD_ID_CDP);
  6302. return status;
  6303. }
  6304. /*
  6305. * dp_cp_peer_del_resp_handler - Handle the peer delete response
  6306. * @soc_hdl: Datapath SOC handle
  6307. * @vdev_id: id of virtual device object
  6308. * @mac_addr: Mac address of the peer
  6309. *
  6310. * Return: QDF_STATUS
  6311. */
  6312. static QDF_STATUS dp_cp_peer_del_resp_handler(struct cdp_soc_t *soc_hdl,
  6313. uint8_t vdev_id,
  6314. uint8_t *mac_addr)
  6315. {
  6316. struct dp_soc *soc = (struct dp_soc *)soc_hdl;
  6317. struct dp_ast_entry *ast_entry = NULL;
  6318. txrx_ast_free_cb cb = NULL;
  6319. void *cookie;
  6320. qdf_spin_lock_bh(&soc->ast_lock);
  6321. ast_entry =
  6322. dp_peer_ast_hash_find_by_vdevid(soc, mac_addr,
  6323. vdev_id);
  6324. /* in case of qwrap we have multiple BSS peers
  6325. * with same mac address
  6326. *
  6327. * AST entry for this mac address will be created
  6328. * only for one peer hence it will be NULL here
  6329. */
  6330. if ((!ast_entry || !ast_entry->delete_in_progress) ||
  6331. (ast_entry->peer_id != HTT_INVALID_PEER)) {
  6332. qdf_spin_unlock_bh(&soc->ast_lock);
  6333. return QDF_STATUS_E_FAILURE;
  6334. }
  6335. if (ast_entry->is_mapped)
  6336. soc->ast_table[ast_entry->ast_idx] = NULL;
  6337. DP_STATS_INC(soc, ast.deleted, 1);
  6338. dp_peer_ast_hash_remove(soc, ast_entry);
  6339. cb = ast_entry->callback;
  6340. cookie = ast_entry->cookie;
  6341. ast_entry->callback = NULL;
  6342. ast_entry->cookie = NULL;
  6343. soc->num_ast_entries--;
  6344. qdf_spin_unlock_bh(&soc->ast_lock);
  6345. if (cb) {
  6346. cb(soc->ctrl_psoc,
  6347. dp_soc_to_cdp_soc(soc),
  6348. cookie,
  6349. CDP_TXRX_AST_DELETED);
  6350. }
  6351. qdf_mem_free(ast_entry);
  6352. return QDF_STATUS_SUCCESS;
  6353. }
  6354. /*
  6355. * dp_set_ba_aging_timeout() - set ba aging timeout per AC
  6356. * @txrx_soc: cdp soc handle
  6357. * @ac: Access category
  6358. * @value: timeout value in millisec
  6359. *
  6360. * Return: void
  6361. */
  6362. static void dp_set_ba_aging_timeout(struct cdp_soc_t *txrx_soc,
  6363. uint8_t ac, uint32_t value)
  6364. {
  6365. struct dp_soc *soc = (struct dp_soc *)txrx_soc;
  6366. hal_set_ba_aging_timeout(soc->hal_soc, ac, value);
  6367. }
  6368. /*
  6369. * dp_get_ba_aging_timeout() - get ba aging timeout per AC
  6370. * @txrx_soc: cdp soc handle
  6371. * @ac: access category
  6372. * @value: timeout value in millisec
  6373. *
  6374. * Return: void
  6375. */
  6376. static void dp_get_ba_aging_timeout(struct cdp_soc_t *txrx_soc,
  6377. uint8_t ac, uint32_t *value)
  6378. {
  6379. struct dp_soc *soc = (struct dp_soc *)txrx_soc;
  6380. hal_get_ba_aging_timeout(soc->hal_soc, ac, value);
  6381. }
  6382. /*
  6383. * dp_set_pdev_reo_dest() - set the reo destination ring for this pdev
  6384. * @txrx_soc: cdp soc handle
  6385. * @pdev_id: id of physical device object
  6386. * @val: reo destination ring index (1 - 4)
  6387. *
  6388. * Return: QDF_STATUS
  6389. */
  6390. static QDF_STATUS
  6391. dp_set_pdev_reo_dest(struct cdp_soc_t *txrx_soc, uint8_t pdev_id,
  6392. enum cdp_host_reo_dest_ring val)
  6393. {
  6394. struct dp_pdev *pdev =
  6395. dp_get_pdev_from_soc_pdev_id_wifi3((struct dp_soc *)txrx_soc,
  6396. pdev_id);
  6397. if (pdev) {
  6398. pdev->reo_dest = val;
  6399. return QDF_STATUS_SUCCESS;
  6400. }
  6401. return QDF_STATUS_E_FAILURE;
  6402. }
  6403. /*
  6404. * dp_get_pdev_reo_dest() - get the reo destination for this pdev
  6405. * @txrx_soc: cdp soc handle
  6406. * @pdev_id: id of physical device object
  6407. *
  6408. * Return: reo destination ring index
  6409. */
  6410. static enum cdp_host_reo_dest_ring
  6411. dp_get_pdev_reo_dest(struct cdp_soc_t *txrx_soc, uint8_t pdev_id)
  6412. {
  6413. struct dp_pdev *pdev =
  6414. dp_get_pdev_from_soc_pdev_id_wifi3((struct dp_soc *)txrx_soc,
  6415. pdev_id);
  6416. if (pdev)
  6417. return pdev->reo_dest;
  6418. else
  6419. return cdp_host_reo_dest_ring_unknown;
  6420. }
  6421. #ifdef ATH_SUPPORT_NAC
  6422. /*
  6423. * dp_set_filter_neigh_peers() - set filter neighbour peers for smart mesh
  6424. * @pdev_handle: device object
  6425. * @val: value to be set
  6426. *
  6427. * Return: void
  6428. */
  6429. static int dp_set_filter_neigh_peers(struct dp_pdev *pdev,
  6430. bool val)
  6431. {
  6432. /* Enable/Disable smart mesh filtering. This flag will be checked
  6433. * during rx processing to check if packets are from NAC clients.
  6434. */
  6435. pdev->filter_neighbour_peers = val;
  6436. return 0;
  6437. }
  6438. #else
  6439. static int dp_set_filter_neigh_peers(struct dp_pdev *pdev,
  6440. bool val)
  6441. {
  6442. return 0;
  6443. }
  6444. #endif /* ATH_SUPPORT_NAC */
  6445. #if defined(ATH_SUPPORT_NAC_RSSI) || defined(ATH_SUPPORT_NAC)
  6446. /*
  6447. * dp_update_filter_neighbour_peers() - set neighbour peers(nac clients)
  6448. * address for smart mesh filtering
  6449. * @txrx_soc: cdp soc handle
  6450. * @vdev_id: id of virtual device object
  6451. * @cmd: Add/Del command
  6452. * @macaddr: nac client mac address
  6453. *
  6454. * Return: success/failure
  6455. */
  6456. static int dp_update_filter_neighbour_peers(struct cdp_soc_t *soc_hdl,
  6457. uint8_t vdev_id,
  6458. uint32_t cmd, uint8_t *macaddr)
  6459. {
  6460. struct dp_soc *soc = (struct dp_soc *)soc_hdl;
  6461. struct dp_pdev *pdev;
  6462. struct dp_neighbour_peer *peer = NULL;
  6463. struct dp_vdev *vdev = dp_vdev_get_ref_by_id(soc, vdev_id,
  6464. DP_MOD_ID_CDP);
  6465. if (!vdev || !macaddr)
  6466. goto fail0;
  6467. pdev = vdev->pdev;
  6468. if (!pdev)
  6469. goto fail0;
  6470. /* Store address of NAC (neighbour peer) which will be checked
  6471. * against TA of received packets.
  6472. */
  6473. if (cmd == DP_NAC_PARAM_ADD) {
  6474. peer = (struct dp_neighbour_peer *) qdf_mem_malloc(
  6475. sizeof(*peer));
  6476. if (!peer) {
  6477. dp_cdp_err("%pK: DP neighbour peer node memory allocation failed"
  6478. , soc);
  6479. goto fail0;
  6480. }
  6481. qdf_mem_copy(&peer->neighbour_peers_macaddr.raw[0],
  6482. macaddr, QDF_MAC_ADDR_SIZE);
  6483. peer->vdev = vdev;
  6484. qdf_spin_lock_bh(&pdev->neighbour_peer_mutex);
  6485. /* add this neighbour peer into the list */
  6486. TAILQ_INSERT_TAIL(&pdev->neighbour_peers_list, peer,
  6487. neighbour_peer_list_elem);
  6488. qdf_spin_unlock_bh(&pdev->neighbour_peer_mutex);
  6489. /* first neighbour */
  6490. if (!pdev->neighbour_peers_added) {
  6491. QDF_STATUS status = QDF_STATUS_SUCCESS;
  6492. pdev->neighbour_peers_added = true;
  6493. dp_mon_filter_setup_smart_monitor(pdev);
  6494. status = dp_mon_filter_update(pdev);
  6495. if (status != QDF_STATUS_SUCCESS) {
  6496. dp_cdp_err("%pK: smart mon filter setup failed",
  6497. soc);
  6498. dp_mon_filter_reset_smart_monitor(pdev);
  6499. pdev->neighbour_peers_added = false;
  6500. }
  6501. }
  6502. } else if (cmd == DP_NAC_PARAM_DEL) {
  6503. qdf_spin_lock_bh(&pdev->neighbour_peer_mutex);
  6504. TAILQ_FOREACH(peer, &pdev->neighbour_peers_list,
  6505. neighbour_peer_list_elem) {
  6506. if (!qdf_mem_cmp(&peer->neighbour_peers_macaddr.raw[0],
  6507. macaddr, QDF_MAC_ADDR_SIZE)) {
  6508. /* delete this peer from the list */
  6509. TAILQ_REMOVE(&pdev->neighbour_peers_list,
  6510. peer, neighbour_peer_list_elem);
  6511. qdf_mem_free(peer);
  6512. break;
  6513. }
  6514. }
  6515. /* last neighbour deleted */
  6516. if (TAILQ_EMPTY(&pdev->neighbour_peers_list)) {
  6517. QDF_STATUS status = QDF_STATUS_SUCCESS;
  6518. dp_mon_filter_reset_smart_monitor(pdev);
  6519. status = dp_mon_filter_update(pdev);
  6520. if (status != QDF_STATUS_SUCCESS) {
  6521. dp_cdp_err("%pK: smart mon filter clear failed",
  6522. soc);
  6523. }
  6524. pdev->neighbour_peers_added = false;
  6525. }
  6526. qdf_spin_unlock_bh(&pdev->neighbour_peer_mutex);
  6527. }
  6528. dp_vdev_unref_delete(soc, vdev, DP_MOD_ID_CDP);
  6529. return 1;
  6530. fail0:
  6531. if (vdev)
  6532. dp_vdev_unref_delete(soc, vdev, DP_MOD_ID_CDP);
  6533. return 0;
  6534. }
  6535. #endif /* ATH_SUPPORT_NAC_RSSI || ATH_SUPPORT_NAC */
  6536. #ifdef WLAN_SUPPORT_SCS
  6537. /*
  6538. * dp_enable_scs_params - Enable/Disable SCS procedures
  6539. * @soc - Datapath soc handle
  6540. * @peer_mac - STA Mac address
  6541. * @vdev_id - ID of the vdev handle
  6542. * @active - Flag to set SCS active/inactive
  6543. * return type - QDF_STATUS - Success/Invalid
  6544. */
  6545. static QDF_STATUS
  6546. dp_enable_scs_params(struct cdp_soc_t *soc_hdl, struct qdf_mac_addr
  6547. *peer_mac,
  6548. uint8_t vdev_id,
  6549. bool is_active)
  6550. {
  6551. struct dp_peer *peer;
  6552. QDF_STATUS status = QDF_STATUS_E_INVAL;
  6553. struct dp_soc *soc = (struct dp_soc *)soc_hdl;
  6554. peer = dp_peer_find_hash_find(soc, peer_mac->bytes, 0, vdev_id,
  6555. DP_MOD_ID_CDP);
  6556. if (!peer) {
  6557. dp_err("Peer is NULL!");
  6558. goto fail;
  6559. }
  6560. peer->scs_is_active = is_active;
  6561. status = QDF_STATUS_SUCCESS;
  6562. fail:
  6563. if (peer)
  6564. dp_peer_unref_delete(peer, DP_MOD_ID_CDP);
  6565. return status;
  6566. }
  6567. /*
  6568. * @brief dp_copy_scs_params - SCS Parameters sent by STA
  6569. * is copied from the cdp layer to the dp layer
  6570. * These parameters are then used by the peer
  6571. * for traffic classification.
  6572. *
  6573. * @param peer - peer struct
  6574. * @param scs_params - cdp layer params
  6575. * @idx - SCS_entry index obtained from the
  6576. * node database with a given SCSID
  6577. * @return void
  6578. */
  6579. void
  6580. dp_copy_scs_params(struct dp_peer *peer,
  6581. struct cdp_scs_params *scs_params,
  6582. uint8_t idx)
  6583. {
  6584. uint8_t tidx = 0;
  6585. uint8_t tclas_elem;
  6586. peer->scs[idx].scsid = scs_params->scsid;
  6587. peer->scs[idx].access_priority =
  6588. scs_params->access_priority;
  6589. peer->scs[idx].tclas_elements =
  6590. scs_params->tclas_elements;
  6591. peer->scs[idx].tclas_process =
  6592. scs_params->tclas_process;
  6593. tclas_elem = peer->scs[idx].tclas_elements;
  6594. while (tidx < tclas_elem) {
  6595. qdf_mem_copy(&peer->scs[idx].tclas[tidx],
  6596. &scs_params->tclas[tidx],
  6597. sizeof(struct cdp_tclas_tuple));
  6598. tidx++;
  6599. }
  6600. }
  6601. /*
  6602. * @brief dp_record_scs_params() - Copying the SCS params to a
  6603. * peer based database.
  6604. *
  6605. * @soc - Datapath soc handle
  6606. * @peer_mac - STA Mac address
  6607. * @vdev_id - ID of the vdev handle
  6608. * @scs_params - Structure having SCS parameters obtained
  6609. * from handshake
  6610. * @idx - SCS_entry index obtained from the
  6611. * node database with a given SCSID
  6612. * @scs_sessions - Total # of SCS sessions active
  6613. *
  6614. * @details
  6615. * SCS parameters sent by the STA in
  6616. * the SCS Request to the AP. The AP makes a note of these
  6617. * parameters while sending the MSDUs to the STA, to
  6618. * send the downlink traffic with correct User priority.
  6619. *
  6620. * return type - QDF_STATUS - Success/Invalid
  6621. */
  6622. static QDF_STATUS
  6623. dp_record_scs_params(struct cdp_soc_t *soc_hdl, struct qdf_mac_addr
  6624. *peer_mac,
  6625. uint8_t vdev_id,
  6626. struct cdp_scs_params *scs_params,
  6627. uint8_t idx,
  6628. uint8_t scs_sessions)
  6629. {
  6630. struct dp_peer *peer;
  6631. QDF_STATUS status = QDF_STATUS_E_INVAL;
  6632. struct dp_soc *soc = (struct dp_soc *)soc_hdl;
  6633. peer = dp_peer_find_hash_find(soc, peer_mac->bytes, 0, vdev_id,
  6634. DP_MOD_ID_CDP);
  6635. if (!peer) {
  6636. dp_err("Peer is NULL!");
  6637. goto fail;
  6638. }
  6639. if (idx >= IEEE80211_SCS_MAX_NO_OF_ELEM)
  6640. goto fail;
  6641. /* SCS procedure for the peer is activated
  6642. * as soon as we get this information from
  6643. * the control path, unless explicitly disabled.
  6644. */
  6645. peer->scs_is_active = 1;
  6646. dp_copy_scs_params(peer, scs_params, idx);
  6647. status = QDF_STATUS_SUCCESS;
  6648. peer->no_of_scs_sessions = scs_sessions;
  6649. fail:
  6650. if (peer)
  6651. dp_peer_unref_delete(peer, DP_MOD_ID_CDP);
  6652. return status;
  6653. }
  6654. #endif
  6655. #ifdef WLAN_SUPPORT_MSCS
  6656. /*
  6657. * dp_record_mscs_params - MSCS parameters sent by the STA in
  6658. * the MSCS Request to the AP. The AP makes a note of these
  6659. * parameters while comparing the MSDUs sent by the STA, to
  6660. * send the downlink traffic with correct User priority.
  6661. * @soc - Datapath soc handle
  6662. * @peer_mac - STA Mac address
  6663. * @vdev_id - ID of the vdev handle
  6664. * @mscs_params - Structure having MSCS parameters obtained
  6665. * from handshake
  6666. * @active - Flag to set MSCS active/inactive
  6667. * return type - QDF_STATUS - Success/Invalid
  6668. */
  6669. static QDF_STATUS
  6670. dp_record_mscs_params(struct cdp_soc_t *soc_hdl, uint8_t *peer_mac,
  6671. uint8_t vdev_id, struct cdp_mscs_params *mscs_params,
  6672. bool active)
  6673. {
  6674. struct dp_peer *peer;
  6675. QDF_STATUS status = QDF_STATUS_E_INVAL;
  6676. struct dp_soc *soc = (struct dp_soc *)soc_hdl;
  6677. peer = dp_peer_find_hash_find(soc, peer_mac, 0, vdev_id,
  6678. DP_MOD_ID_CDP);
  6679. if (!peer) {
  6680. dp_err("Peer is NULL!");
  6681. goto fail;
  6682. }
  6683. if (!active) {
  6684. dp_info("MSCS Procedure is terminated");
  6685. peer->mscs_active = active;
  6686. goto fail;
  6687. }
  6688. if (mscs_params->classifier_type == IEEE80211_TCLAS_MASK_CLA_TYPE_4) {
  6689. /* Populate entries inside IPV4 database first */
  6690. peer->mscs_ipv4_parameter.user_priority_bitmap =
  6691. mscs_params->user_pri_bitmap;
  6692. peer->mscs_ipv4_parameter.user_priority_limit =
  6693. mscs_params->user_pri_limit;
  6694. peer->mscs_ipv4_parameter.classifier_mask =
  6695. mscs_params->classifier_mask;
  6696. /* Populate entries inside IPV6 database */
  6697. peer->mscs_ipv6_parameter.user_priority_bitmap =
  6698. mscs_params->user_pri_bitmap;
  6699. peer->mscs_ipv6_parameter.user_priority_limit =
  6700. mscs_params->user_pri_limit;
  6701. peer->mscs_ipv6_parameter.classifier_mask =
  6702. mscs_params->classifier_mask;
  6703. peer->mscs_active = 1;
  6704. dp_info("\n\tMSCS Procedure request based parameters for "QDF_MAC_ADDR_FMT"\n"
  6705. "\tClassifier_type = %d\tUser priority bitmap = %x\n"
  6706. "\tUser priority limit = %x\tClassifier mask = %x",
  6707. QDF_MAC_ADDR_REF(peer_mac),
  6708. mscs_params->classifier_type,
  6709. peer->mscs_ipv4_parameter.user_priority_bitmap,
  6710. peer->mscs_ipv4_parameter.user_priority_limit,
  6711. peer->mscs_ipv4_parameter.classifier_mask);
  6712. }
  6713. status = QDF_STATUS_SUCCESS;
  6714. fail:
  6715. if (peer)
  6716. dp_peer_unref_delete(peer, DP_MOD_ID_CDP);
  6717. return status;
  6718. }
  6719. #endif
  6720. /*
  6721. * dp_get_sec_type() - Get the security type
  6722. * @soc: soc handle
  6723. * @vdev_id: id of dp handle
  6724. * @peer_mac: mac of datapath PEER handle
  6725. * @sec_idx: Security id (mcast, ucast)
  6726. *
  6727. * return sec_type: Security type
  6728. */
  6729. static int dp_get_sec_type(struct cdp_soc_t *soc, uint8_t vdev_id,
  6730. uint8_t *peer_mac, uint8_t sec_idx)
  6731. {
  6732. int sec_type = 0;
  6733. struct dp_peer *peer = dp_peer_find_hash_find((struct dp_soc *)soc,
  6734. peer_mac, 0, vdev_id,
  6735. DP_MOD_ID_CDP);
  6736. if (!peer) {
  6737. dp_cdp_err("%pK: Peer is NULL!\n", (struct dp_soc *)soc);
  6738. return sec_type;
  6739. }
  6740. sec_type = peer->security[sec_idx].sec_type;
  6741. dp_peer_unref_delete(peer, DP_MOD_ID_CDP);
  6742. return sec_type;
  6743. }
  6744. /*
  6745. * dp_peer_authorize() - authorize txrx peer
  6746. * @soc: soc handle
  6747. * @vdev_id: id of dp handle
  6748. * @peer_mac: mac of datapath PEER handle
  6749. * @authorize
  6750. *
  6751. */
  6752. static QDF_STATUS
  6753. dp_peer_authorize(struct cdp_soc_t *soc_hdl, uint8_t vdev_id,
  6754. uint8_t *peer_mac, uint32_t authorize)
  6755. {
  6756. QDF_STATUS status = QDF_STATUS_SUCCESS;
  6757. struct dp_soc *soc = (struct dp_soc *)soc_hdl;
  6758. struct dp_peer *peer = dp_peer_find_hash_find(soc, peer_mac,
  6759. 0, vdev_id,
  6760. DP_MOD_ID_CDP);
  6761. if (!peer) {
  6762. dp_cdp_debug("%pK: Peer is NULL!\n", soc);
  6763. status = QDF_STATUS_E_FAILURE;
  6764. } else {
  6765. peer->authorize = authorize ? 1 : 0;
  6766. if (!peer->authorize)
  6767. dp_peer_flush_frags(soc_hdl, vdev_id, peer_mac);
  6768. dp_peer_unref_delete(peer, DP_MOD_ID_CDP);
  6769. }
  6770. return status;
  6771. }
  6772. static void dp_flush_monitor_rings(struct dp_soc *soc)
  6773. {
  6774. struct dp_pdev *pdev = soc->pdev_list[0];
  6775. hal_soc_handle_t hal_soc = soc->hal_soc;
  6776. uint32_t lmac_id;
  6777. uint32_t hp, tp;
  6778. uint8_t dp_intr_id;
  6779. int budget;
  6780. void *mon_dst_srng;
  6781. /* Reset monitor filters before reaping the ring*/
  6782. qdf_spin_lock_bh(&pdev->mon_lock);
  6783. dp_mon_filter_reset_mon_mode(pdev);
  6784. if (dp_mon_filter_update(pdev) != QDF_STATUS_SUCCESS)
  6785. dp_info("failed to reset monitor filters");
  6786. qdf_spin_unlock_bh(&pdev->mon_lock);
  6787. if (pdev->mon_chan_band == REG_BAND_UNKNOWN)
  6788. return;
  6789. lmac_id = pdev->ch_band_lmac_id_mapping[pdev->mon_chan_band];
  6790. if (qdf_unlikely(lmac_id == DP_MON_INVALID_LMAC_ID))
  6791. return;
  6792. dp_intr_id = soc->mon_intr_id_lmac_map[lmac_id];
  6793. mon_dst_srng = dp_rxdma_get_mon_dst_ring(pdev, lmac_id);
  6794. /* reap full ring */
  6795. budget = wlan_cfg_get_dma_mon_stat_ring_size(pdev->wlan_cfg_ctx);
  6796. hal_get_sw_hptp(hal_soc, mon_dst_srng, &tp, &hp);
  6797. dp_info("Before reap: Monitor DST ring HP %u TP %u", hp, tp);
  6798. dp_mon_process(soc, &soc->intr_ctx[dp_intr_id], lmac_id, budget);
  6799. hal_get_sw_hptp(hal_soc, mon_dst_srng, &tp, &hp);
  6800. dp_info("After reap: Monitor DST ring HP %u TP %u", hp, tp);
  6801. }
  6802. /**
  6803. * dp_vdev_unref_delete() - check and process vdev delete
  6804. * @soc : DP specific soc pointer
  6805. * @vdev: DP specific vdev pointer
  6806. * @mod_id: module id
  6807. *
  6808. */
  6809. void dp_vdev_unref_delete(struct dp_soc *soc, struct dp_vdev *vdev,
  6810. enum dp_mod_id mod_id)
  6811. {
  6812. ol_txrx_vdev_delete_cb vdev_delete_cb = NULL;
  6813. void *vdev_delete_context = NULL;
  6814. uint8_t vdev_id = vdev->vdev_id;
  6815. struct dp_pdev *pdev = vdev->pdev;
  6816. struct dp_vdev *tmp_vdev = NULL;
  6817. uint8_t found = 0;
  6818. QDF_ASSERT(qdf_atomic_dec_return(&vdev->mod_refs[mod_id]) >= 0);
  6819. /* Return if this is not the last reference*/
  6820. if (!qdf_atomic_dec_and_test(&vdev->ref_cnt))
  6821. return;
  6822. /*
  6823. * This should be set as last reference need to released
  6824. * after cdp_vdev_detach() is called
  6825. *
  6826. * if this assert is hit there is a ref count issue
  6827. */
  6828. QDF_ASSERT(vdev->delete.pending);
  6829. vdev_delete_cb = vdev->delete.callback;
  6830. vdev_delete_context = vdev->delete.context;
  6831. dp_info("deleting vdev object %pK ("QDF_MAC_ADDR_FMT")- its last peer is done",
  6832. vdev, QDF_MAC_ADDR_REF(vdev->mac_addr.raw));
  6833. if (wlan_op_mode_monitor == vdev->opmode) {
  6834. if (soc->intr_mode == DP_INTR_POLL) {
  6835. qdf_timer_sync_cancel(&soc->int_timer);
  6836. dp_flush_monitor_rings(soc);
  6837. } else if (soc->intr_mode == DP_INTR_MSI &&
  6838. soc->mon_vdev_timer_state & MON_VDEV_TIMER_RUNNING) {
  6839. qdf_timer_sync_cancel(&soc->mon_vdev_timer);
  6840. dp_flush_monitor_rings(soc);
  6841. soc->mon_vdev_timer_state &= ~MON_VDEV_TIMER_RUNNING;
  6842. }
  6843. pdev->monitor_vdev = NULL;
  6844. goto free_vdev;
  6845. }
  6846. /* all peers are gone, go ahead and delete it */
  6847. dp_tx_flow_pool_unmap_handler(pdev, vdev_id,
  6848. FLOW_TYPE_VDEV, vdev_id);
  6849. dp_tx_vdev_detach(vdev);
  6850. free_vdev:
  6851. qdf_spinlock_destroy(&vdev->peer_list_lock);
  6852. qdf_spin_lock_bh(&soc->inactive_vdev_list_lock);
  6853. TAILQ_FOREACH(tmp_vdev, &soc->inactive_vdev_list,
  6854. inactive_list_elem) {
  6855. if (tmp_vdev == vdev) {
  6856. found = 1;
  6857. break;
  6858. }
  6859. }
  6860. if (found)
  6861. TAILQ_REMOVE(&soc->inactive_vdev_list, vdev,
  6862. inactive_list_elem);
  6863. /* delete this peer from the list */
  6864. qdf_spin_unlock_bh(&soc->inactive_vdev_list_lock);
  6865. dp_info("deleting vdev object %pK ("QDF_MAC_ADDR_FMT")",
  6866. vdev, QDF_MAC_ADDR_REF(vdev->mac_addr.raw));
  6867. wlan_minidump_remove(vdev, sizeof(*vdev), soc->ctrl_psoc,
  6868. WLAN_MD_DP_VDEV, "dp_vdev");
  6869. qdf_mem_free(vdev);
  6870. vdev = NULL;
  6871. if (vdev_delete_cb)
  6872. vdev_delete_cb(vdev_delete_context);
  6873. }
  6874. /*
  6875. * dp_peer_unref_delete() - unref and delete peer
  6876. * @peer_handle: Datapath peer handle
  6877. * @mod_id: ID of module releasing reference
  6878. *
  6879. */
  6880. void dp_peer_unref_delete(struct dp_peer *peer, enum dp_mod_id mod_id)
  6881. {
  6882. struct dp_vdev *vdev = peer->vdev;
  6883. struct dp_pdev *pdev = vdev->pdev;
  6884. struct dp_soc *soc = pdev->soc;
  6885. uint16_t peer_id;
  6886. struct cdp_peer_cookie peer_cookie;
  6887. struct dp_peer *tmp_peer;
  6888. bool found = false;
  6889. int tid = 0;
  6890. if (mod_id > DP_MOD_ID_RX)
  6891. QDF_ASSERT(qdf_atomic_dec_return(&peer->mod_refs[mod_id]) >= 0);
  6892. /*
  6893. * Hold the lock all the way from checking if the peer ref count
  6894. * is zero until the peer references are removed from the hash
  6895. * table and vdev list (if the peer ref count is zero).
  6896. * This protects against a new HL tx operation starting to use the
  6897. * peer object just after this function concludes it's done being used.
  6898. * Furthermore, the lock needs to be held while checking whether the
  6899. * vdev's list of peers is empty, to make sure that list is not modified
  6900. * concurrently with the empty check.
  6901. */
  6902. if (qdf_atomic_dec_and_test(&peer->ref_cnt)) {
  6903. peer_id = peer->peer_id;
  6904. /*
  6905. * Make sure that the reference to the peer in
  6906. * peer object map is removed
  6907. */
  6908. QDF_ASSERT(peer_id == HTT_INVALID_PEER);
  6909. dp_peer_debug("Deleting peer %pK ("QDF_MAC_ADDR_FMT")", peer,
  6910. QDF_MAC_ADDR_REF(peer->mac_addr.raw));
  6911. /*
  6912. * Deallocate the extended stats contenxt
  6913. */
  6914. dp_peer_ext_stats_ctx_dealloc(soc, peer);
  6915. /* send peer destroy event to upper layer */
  6916. qdf_mem_copy(peer_cookie.mac_addr, peer->mac_addr.raw,
  6917. QDF_MAC_ADDR_SIZE);
  6918. peer_cookie.ctx = NULL;
  6919. peer_cookie.ctx = (struct cdp_stats_cookie *)
  6920. peer->rdkstats_ctx;
  6921. #if defined(FEATURE_PERPKT_INFO) && WDI_EVENT_ENABLE
  6922. dp_wdi_event_handler(WDI_EVENT_PEER_DESTROY,
  6923. soc,
  6924. (void *)&peer_cookie,
  6925. peer->peer_id,
  6926. WDI_NO_VAL,
  6927. pdev->pdev_id);
  6928. #endif
  6929. peer->rdkstats_ctx = NULL;
  6930. wlan_minidump_remove(peer, sizeof(*peer), soc->ctrl_psoc,
  6931. WLAN_MD_DP_PEER, "dp_peer");
  6932. qdf_spin_lock_bh(&soc->inactive_peer_list_lock);
  6933. TAILQ_FOREACH(tmp_peer, &soc->inactive_peer_list,
  6934. inactive_list_elem) {
  6935. if (tmp_peer == peer) {
  6936. found = 1;
  6937. break;
  6938. }
  6939. }
  6940. if (found)
  6941. TAILQ_REMOVE(&soc->inactive_peer_list, peer,
  6942. inactive_list_elem);
  6943. /* delete this peer from the list */
  6944. qdf_spin_unlock_bh(&soc->inactive_peer_list_lock);
  6945. DP_AST_ASSERT(TAILQ_EMPTY(&peer->ast_entry_list));
  6946. dp_peer_update_state(soc, peer, DP_PEER_STATE_FREED);
  6947. /* cleanup the peer data */
  6948. dp_peer_cleanup(vdev, peer);
  6949. for (tid = 0; tid < DP_MAX_TIDS; tid++)
  6950. qdf_spinlock_destroy(&peer->rx_tid[tid].tid_lock);
  6951. qdf_spinlock_destroy(&peer->peer_state_lock);
  6952. qdf_mem_free(peer);
  6953. /*
  6954. * Decrement ref count taken at peer create
  6955. */
  6956. dp_vdev_unref_delete(soc, vdev, DP_MOD_ID_CHILD);
  6957. }
  6958. }
  6959. #ifdef PEER_CACHE_RX_PKTS
  6960. static inline void dp_peer_rx_bufq_resources_deinit(struct dp_peer *peer)
  6961. {
  6962. qdf_list_destroy(&peer->bufq_info.cached_bufq);
  6963. qdf_spinlock_destroy(&peer->bufq_info.bufq_lock);
  6964. }
  6965. #else
  6966. static inline void dp_peer_rx_bufq_resources_deinit(struct dp_peer *peer)
  6967. {
  6968. }
  6969. #endif
  6970. /*
  6971. * dp_peer_detach_wifi3() – Detach txrx peer
  6972. * @soc_hdl: soc handle
  6973. * @vdev_id: id of dp handle
  6974. * @peer_mac: mac of datapath PEER handle
  6975. * @bitmap: bitmap indicating special handling of request.
  6976. *
  6977. */
  6978. static QDF_STATUS dp_peer_delete_wifi3(struct cdp_soc_t *soc_hdl,
  6979. uint8_t vdev_id,
  6980. uint8_t *peer_mac, uint32_t bitmap)
  6981. {
  6982. struct dp_soc *soc = cdp_soc_t_to_dp_soc(soc_hdl);
  6983. struct dp_peer *peer = dp_peer_find_hash_find(soc, peer_mac,
  6984. 0, vdev_id,
  6985. DP_MOD_ID_CDP);
  6986. struct dp_vdev *vdev = NULL;
  6987. /* Peer can be null for monitor vap mac address */
  6988. if (!peer) {
  6989. QDF_TRACE(QDF_MODULE_ID_TXRX, QDF_TRACE_LEVEL_DEBUG,
  6990. "%s: Invalid peer\n", __func__);
  6991. return QDF_STATUS_E_FAILURE;
  6992. }
  6993. if (!peer->valid) {
  6994. dp_peer_unref_delete(peer, DP_MOD_ID_CDP);
  6995. dp_err("Invalid peer: "QDF_MAC_ADDR_FMT,
  6996. QDF_MAC_ADDR_REF(peer_mac));
  6997. return QDF_STATUS_E_ALREADY;
  6998. }
  6999. vdev = peer->vdev;
  7000. if (!vdev)
  7001. return QDF_STATUS_E_FAILURE;
  7002. peer->valid = 0;
  7003. dp_init_info("%pK: peer %pK (" QDF_MAC_ADDR_FMT ")",
  7004. soc, peer, QDF_MAC_ADDR_REF(peer->mac_addr.raw));
  7005. dp_local_peer_id_free(peer->vdev->pdev, peer);
  7006. /* Drop all rx packets before deleting peer */
  7007. dp_clear_peer_internal(soc, peer);
  7008. dp_peer_rx_bufq_resources_deinit(peer);
  7009. qdf_spinlock_destroy(&peer->peer_info_lock);
  7010. dp_peer_multipass_list_remove(peer);
  7011. /* remove the reference to the peer from the hash table */
  7012. dp_peer_find_hash_remove(soc, peer);
  7013. dp_peer_vdev_list_remove(soc, vdev, peer);
  7014. qdf_spin_lock_bh(&soc->inactive_peer_list_lock);
  7015. TAILQ_INSERT_TAIL(&soc->inactive_peer_list, peer,
  7016. inactive_list_elem);
  7017. qdf_spin_unlock_bh(&soc->inactive_peer_list_lock);
  7018. /*
  7019. * Remove the reference added during peer_attach.
  7020. * The peer will still be left allocated until the
  7021. * PEER_UNMAP message arrives to remove the other
  7022. * reference, added by the PEER_MAP message.
  7023. */
  7024. dp_peer_unref_delete(peer, DP_MOD_ID_CONFIG);
  7025. /*
  7026. * Remove the reference taken above
  7027. */
  7028. dp_peer_unref_delete(peer, DP_MOD_ID_CDP);
  7029. return QDF_STATUS_SUCCESS;
  7030. }
  7031. /*
  7032. * dp_get_vdev_mac_addr_wifi3() – Detach txrx peer
  7033. * @soc_hdl: Datapath soc handle
  7034. * @vdev_id: virtual interface id
  7035. *
  7036. * Return: MAC address on success, NULL on failure.
  7037. *
  7038. */
  7039. static uint8_t *dp_get_vdev_mac_addr_wifi3(struct cdp_soc_t *soc_hdl,
  7040. uint8_t vdev_id)
  7041. {
  7042. struct dp_soc *soc = cdp_soc_t_to_dp_soc(soc_hdl);
  7043. struct dp_vdev *vdev = dp_vdev_get_ref_by_id(soc, vdev_id,
  7044. DP_MOD_ID_CDP);
  7045. uint8_t *mac = NULL;
  7046. if (!vdev)
  7047. return NULL;
  7048. mac = vdev->mac_addr.raw;
  7049. dp_vdev_unref_delete(soc, vdev, DP_MOD_ID_CDP);
  7050. return mac;
  7051. }
  7052. /*
  7053. * dp_vdev_set_wds() - Enable per packet stats
  7054. * @soc: DP soc handle
  7055. * @vdev_id: id of DP VDEV handle
  7056. * @val: value
  7057. *
  7058. * Return: none
  7059. */
  7060. static int dp_vdev_set_wds(struct cdp_soc_t *soc_hdl, uint8_t vdev_id,
  7061. uint32_t val)
  7062. {
  7063. struct dp_soc *soc = cdp_soc_t_to_dp_soc(soc_hdl);
  7064. struct dp_vdev *vdev =
  7065. dp_vdev_get_ref_by_id((struct dp_soc *)soc, vdev_id,
  7066. DP_MOD_ID_CDP);
  7067. if (!vdev)
  7068. return QDF_STATUS_E_FAILURE;
  7069. vdev->wds_enabled = val;
  7070. dp_vdev_unref_delete(soc, vdev, DP_MOD_ID_CDP);
  7071. return QDF_STATUS_SUCCESS;
  7072. }
  7073. /*
  7074. * dp_get_mon_vdev_from_pdev_wifi3() - Get vdev id of monitor mode
  7075. * @soc_hdl: datapath soc handle
  7076. * @pdev_id: physical device instance id
  7077. *
  7078. * Return: virtual interface id
  7079. */
  7080. static uint8_t dp_get_mon_vdev_from_pdev_wifi3(struct cdp_soc_t *soc_hdl,
  7081. uint8_t pdev_id)
  7082. {
  7083. struct dp_soc *soc = cdp_soc_t_to_dp_soc(soc_hdl);
  7084. struct dp_pdev *pdev = dp_get_pdev_from_soc_pdev_id_wifi3(soc, pdev_id);
  7085. if (qdf_unlikely(!pdev || !pdev->monitor_vdev))
  7086. return -EINVAL;
  7087. return pdev->monitor_vdev->vdev_id;
  7088. }
  7089. static int dp_get_opmode(struct cdp_soc_t *soc_hdl, uint8_t vdev_id)
  7090. {
  7091. struct dp_soc *soc = cdp_soc_t_to_dp_soc(soc_hdl);
  7092. struct dp_vdev *vdev = dp_vdev_get_ref_by_id(soc, vdev_id,
  7093. DP_MOD_ID_CDP);
  7094. int opmode;
  7095. if (!vdev) {
  7096. dp_err("vdev for id %d is NULL", vdev_id);
  7097. return -EINVAL;
  7098. }
  7099. opmode = vdev->opmode;
  7100. dp_vdev_unref_delete(soc, vdev, DP_MOD_ID_CDP);
  7101. return opmode;
  7102. }
  7103. /**
  7104. * dp_get_os_rx_handles_from_vdev_wifi3() - Get os rx handles for a vdev
  7105. * @soc_hdl: ol_txrx_soc_handle handle
  7106. * @vdev_id: vdev id for which os rx handles are needed
  7107. * @stack_fn_p: pointer to stack function pointer
  7108. * @osif_handle_p: pointer to ol_osif_vdev_handle
  7109. *
  7110. * Return: void
  7111. */
  7112. static
  7113. void dp_get_os_rx_handles_from_vdev_wifi3(struct cdp_soc_t *soc_hdl,
  7114. uint8_t vdev_id,
  7115. ol_txrx_rx_fp *stack_fn_p,
  7116. ol_osif_vdev_handle *osif_vdev_p)
  7117. {
  7118. struct dp_soc *soc = cdp_soc_t_to_dp_soc(soc_hdl);
  7119. struct dp_vdev *vdev = dp_vdev_get_ref_by_id(soc, vdev_id,
  7120. DP_MOD_ID_CDP);
  7121. if (!vdev)
  7122. return;
  7123. *stack_fn_p = vdev->osif_rx_stack;
  7124. *osif_vdev_p = vdev->osif_vdev;
  7125. dp_vdev_unref_delete(soc, vdev, DP_MOD_ID_CDP);
  7126. }
  7127. /**
  7128. * dp_get_ctrl_pdev_from_vdev() - Get control pdev of vdev
  7129. * @soc_hdl: datapath soc handle
  7130. * @vdev_id: virtual device/interface id
  7131. *
  7132. * Return: Handle to control pdev
  7133. */
  7134. static struct cdp_cfg *dp_get_ctrl_pdev_from_vdev_wifi3(
  7135. struct cdp_soc_t *soc_hdl,
  7136. uint8_t vdev_id)
  7137. {
  7138. struct dp_soc *soc = cdp_soc_t_to_dp_soc(soc_hdl);
  7139. struct dp_vdev *vdev = dp_vdev_get_ref_by_id(soc, vdev_id,
  7140. DP_MOD_ID_CDP);
  7141. struct dp_pdev *pdev;
  7142. if (!vdev)
  7143. return NULL;
  7144. pdev = vdev->pdev;
  7145. dp_vdev_unref_delete(soc, vdev, DP_MOD_ID_CDP);
  7146. return pdev ? (struct cdp_cfg *)pdev->wlan_cfg_ctx : NULL;
  7147. }
  7148. /**
  7149. * dp_monitor_mode_ring_config() - Send the tlv config to fw for monitor buffer
  7150. * ring based on target
  7151. * @soc: soc handle
  7152. * @mac_for_pdev: WIN- pdev_id, MCL- mac id
  7153. * @pdev: physical device handle
  7154. * @ring_num: mac id
  7155. * @htt_tlv_filter: tlv filter
  7156. *
  7157. * Return: zero on success, non-zero on failure
  7158. */
  7159. static inline
  7160. QDF_STATUS dp_monitor_mode_ring_config(struct dp_soc *soc, uint8_t mac_for_pdev,
  7161. struct dp_pdev *pdev, uint8_t ring_num,
  7162. struct htt_rx_ring_tlv_filter htt_tlv_filter)
  7163. {
  7164. QDF_STATUS status;
  7165. if (soc->wlan_cfg_ctx->rxdma1_enable)
  7166. status = htt_h2t_rx_ring_cfg(soc->htt_handle, mac_for_pdev,
  7167. soc->rxdma_mon_buf_ring[ring_num]
  7168. .hal_srng,
  7169. RXDMA_MONITOR_BUF,
  7170. RX_MONITOR_BUFFER_SIZE,
  7171. &htt_tlv_filter);
  7172. else
  7173. status = htt_h2t_rx_ring_cfg(soc->htt_handle, mac_for_pdev,
  7174. pdev->rx_mac_buf_ring[ring_num]
  7175. .hal_srng,
  7176. RXDMA_BUF, RX_DATA_BUFFER_SIZE,
  7177. &htt_tlv_filter);
  7178. return status;
  7179. }
  7180. static inline void
  7181. dp_pdev_disable_mcopy_code(struct dp_pdev *pdev)
  7182. {
  7183. pdev->mcopy_mode = M_COPY_DISABLED;
  7184. pdev->monitor_vdev = NULL;
  7185. }
  7186. /**
  7187. * dp_reset_monitor_mode() - Disable monitor mode
  7188. * @soc_hdl: Datapath soc handle
  7189. * @pdev_id: id of datapath PDEV handle
  7190. *
  7191. * Return: QDF_STATUS
  7192. */
  7193. QDF_STATUS dp_reset_monitor_mode(struct cdp_soc_t *soc_hdl,
  7194. uint8_t pdev_id,
  7195. uint8_t special_monitor)
  7196. {
  7197. struct dp_soc *soc = (struct dp_soc *)soc_hdl;
  7198. struct dp_pdev *pdev =
  7199. dp_get_pdev_from_soc_pdev_id_wifi3((struct dp_soc *)soc,
  7200. pdev_id);
  7201. QDF_STATUS status = QDF_STATUS_SUCCESS;
  7202. if (!pdev)
  7203. return QDF_STATUS_E_FAILURE;
  7204. qdf_spin_lock_bh(&pdev->mon_lock);
  7205. dp_soc_config_full_mon_mode(pdev, DP_FULL_MON_DISABLE);
  7206. pdev->monitor_vdev = NULL;
  7207. /*
  7208. * Lite monitor mode, smart monitor mode and monitor
  7209. * mode uses this APIs to filter reset and mode disable
  7210. */
  7211. if (pdev->mcopy_mode) {
  7212. #if defined(FEATURE_PERPKT_INFO)
  7213. dp_pdev_disable_mcopy_code(pdev);
  7214. dp_mon_filter_reset_mcopy_mode(pdev);
  7215. #endif /* FEATURE_PERPKT_INFO */
  7216. } else if (special_monitor) {
  7217. #if defined(ATH_SUPPORT_NAC)
  7218. dp_mon_filter_reset_smart_monitor(pdev);
  7219. #endif /* ATH_SUPPORT_NAC */
  7220. } else {
  7221. dp_mon_filter_reset_mon_mode(pdev);
  7222. }
  7223. status = dp_mon_filter_update(pdev);
  7224. if (status != QDF_STATUS_SUCCESS) {
  7225. dp_rx_mon_dest_err("%pK: Failed to reset monitor filters",
  7226. soc);
  7227. }
  7228. pdev->monitor_configured = false;
  7229. qdf_spin_unlock_bh(&pdev->mon_lock);
  7230. return QDF_STATUS_SUCCESS;
  7231. }
  7232. /**
  7233. * dp_get_tx_pending() - read pending tx
  7234. * @pdev_handle: Datapath PDEV handle
  7235. *
  7236. * Return: outstanding tx
  7237. */
  7238. static uint32_t dp_get_tx_pending(struct cdp_pdev *pdev_handle)
  7239. {
  7240. struct dp_pdev *pdev = (struct dp_pdev *)pdev_handle;
  7241. return qdf_atomic_read(&pdev->num_tx_outstanding);
  7242. }
  7243. /**
  7244. * dp_get_peer_mac_from_peer_id() - get peer mac
  7245. * @pdev_handle: Datapath PDEV handle
  7246. * @peer_id: Peer ID
  7247. * @peer_mac: MAC addr of PEER
  7248. *
  7249. * Return: QDF_STATUS
  7250. */
  7251. static QDF_STATUS dp_get_peer_mac_from_peer_id(struct cdp_soc_t *soc,
  7252. uint32_t peer_id,
  7253. uint8_t *peer_mac)
  7254. {
  7255. struct dp_peer *peer;
  7256. if (soc && peer_mac) {
  7257. peer = dp_peer_get_ref_by_id((struct dp_soc *)soc,
  7258. (uint16_t)peer_id,
  7259. DP_MOD_ID_CDP);
  7260. if (peer) {
  7261. qdf_mem_copy(peer_mac, peer->mac_addr.raw,
  7262. QDF_MAC_ADDR_SIZE);
  7263. dp_peer_unref_delete(peer, DP_MOD_ID_CDP);
  7264. return QDF_STATUS_SUCCESS;
  7265. }
  7266. }
  7267. return QDF_STATUS_E_FAILURE;
  7268. }
  7269. /**
  7270. * dp_vdev_set_monitor_mode_rings () - set monitor mode rings
  7271. *
  7272. * Allocate SW descriptor pool, buffers, link descriptor memory
  7273. * Initialize monitor related SRNGs
  7274. *
  7275. * @pdev: DP pdev object
  7276. *
  7277. * Return: QDF_STATUS
  7278. */
  7279. static QDF_STATUS dp_vdev_set_monitor_mode_rings(struct dp_pdev *pdev,
  7280. uint8_t delayed_replenish)
  7281. {
  7282. struct wlan_cfg_dp_pdev_ctxt *pdev_cfg_ctx;
  7283. uint32_t mac_id;
  7284. uint32_t mac_for_pdev;
  7285. struct dp_soc *soc = pdev->soc;
  7286. QDF_STATUS status = QDF_STATUS_SUCCESS;
  7287. struct dp_srng *mon_buf_ring;
  7288. uint32_t num_entries;
  7289. pdev_cfg_ctx = pdev->wlan_cfg_ctx;
  7290. /* If monitor rings are aleady initilized, return from here */
  7291. if (pdev->pdev_mon_init)
  7292. return QDF_STATUS_SUCCESS;
  7293. for (mac_id = 0; mac_id < NUM_RXDMA_RINGS_PER_PDEV; mac_id++) {
  7294. mac_for_pdev = dp_get_lmac_id_for_pdev_id(pdev->soc, mac_id,
  7295. pdev->pdev_id);
  7296. /* Allocate sw rx descriptor pool for mon RxDMA buffer ring */
  7297. status = dp_rx_pdev_mon_buf_desc_pool_alloc(pdev, mac_for_pdev);
  7298. if (!QDF_IS_STATUS_SUCCESS(status)) {
  7299. dp_err("%s: dp_rx_pdev_mon_buf_desc_pool_alloc() failed\n",
  7300. __func__);
  7301. goto fail0;
  7302. }
  7303. dp_rx_pdev_mon_buf_desc_pool_init(pdev, mac_for_pdev);
  7304. /* If monitor buffers are already allocated,
  7305. * do not allocate.
  7306. */
  7307. status = dp_rx_pdev_mon_buf_buffers_alloc(pdev, mac_for_pdev,
  7308. delayed_replenish);
  7309. mon_buf_ring = &pdev->soc->rxdma_mon_buf_ring[mac_for_pdev];
  7310. /*
  7311. * Configure low interrupt threshld when monitor mode is
  7312. * configured.
  7313. */
  7314. if (mon_buf_ring->hal_srng) {
  7315. num_entries = mon_buf_ring->num_entries;
  7316. hal_set_low_threshold(mon_buf_ring->hal_srng,
  7317. num_entries >> 3);
  7318. htt_srng_setup(pdev->soc->htt_handle,
  7319. pdev->pdev_id,
  7320. mon_buf_ring->hal_srng,
  7321. RXDMA_MONITOR_BUF);
  7322. }
  7323. /* Allocate link descriptors for the mon link descriptor ring */
  7324. status = dp_hw_link_desc_pool_banks_alloc(soc, mac_for_pdev);
  7325. if (!QDF_IS_STATUS_SUCCESS(status)) {
  7326. dp_err("%s: dp_hw_link_desc_pool_banks_alloc() failed",
  7327. __func__);
  7328. goto fail0;
  7329. }
  7330. dp_link_desc_ring_replenish(soc, mac_for_pdev);
  7331. htt_srng_setup(soc->htt_handle, pdev->pdev_id,
  7332. soc->rxdma_mon_desc_ring[mac_for_pdev].hal_srng,
  7333. RXDMA_MONITOR_DESC);
  7334. htt_srng_setup(soc->htt_handle, pdev->pdev_id,
  7335. soc->rxdma_mon_dst_ring[mac_for_pdev].hal_srng,
  7336. RXDMA_MONITOR_DST);
  7337. }
  7338. pdev->pdev_mon_init = 1;
  7339. return QDF_STATUS_SUCCESS;
  7340. fail0:
  7341. return QDF_STATUS_E_FAILURE;
  7342. }
  7343. /**
  7344. * dp_vdev_set_monitor_mode_buf_rings () - set monitor mode buf rings
  7345. *
  7346. * Allocate SW descriptor pool, buffers, link descriptor memory
  7347. * Initialize monitor related SRNGs
  7348. *
  7349. * @pdev: DP pdev object
  7350. *
  7351. * Return: void
  7352. */
  7353. static void dp_vdev_set_monitor_mode_buf_rings(struct dp_pdev *pdev)
  7354. {
  7355. uint32_t mac_id;
  7356. uint32_t mac_for_pdev;
  7357. struct dp_srng *mon_buf_ring;
  7358. uint32_t num_entries;
  7359. struct dp_soc *soc = pdev->soc;
  7360. /* If delay monitor replenish is disabled, allocate link descriptor
  7361. * monitor ring buffers of ring size.
  7362. */
  7363. if (!wlan_cfg_is_delay_mon_replenish(soc->wlan_cfg_ctx)) {
  7364. dp_vdev_set_monitor_mode_rings(pdev, false);
  7365. } else {
  7366. for (mac_id = 0; mac_id < NUM_RXDMA_RINGS_PER_PDEV; mac_id++) {
  7367. mac_for_pdev =
  7368. dp_get_lmac_id_for_pdev_id(pdev->soc,
  7369. mac_id,
  7370. pdev->pdev_id);
  7371. dp_rx_pdev_mon_buf_buffers_alloc(pdev, mac_for_pdev,
  7372. FALSE);
  7373. mon_buf_ring =
  7374. &pdev->soc->rxdma_mon_buf_ring[mac_for_pdev];
  7375. /*
  7376. * Configure low interrupt threshld when monitor mode is
  7377. * configured.
  7378. */
  7379. if (mon_buf_ring->hal_srng) {
  7380. num_entries = mon_buf_ring->num_entries;
  7381. hal_set_low_threshold(mon_buf_ring->hal_srng,
  7382. num_entries >> 3);
  7383. htt_srng_setup(pdev->soc->htt_handle,
  7384. pdev->pdev_id,
  7385. mon_buf_ring->hal_srng,
  7386. RXDMA_MONITOR_BUF);
  7387. }
  7388. }
  7389. }
  7390. }
  7391. /**
  7392. * dp_vdev_set_monitor_mode() - Set DP VDEV to monitor mode
  7393. * @vdev_handle: Datapath VDEV handle
  7394. * @smart_monitor: Flag to denote if its smart monitor mode
  7395. *
  7396. * Return: 0 on success, not 0 on failure
  7397. */
  7398. static QDF_STATUS dp_vdev_set_monitor_mode(struct cdp_soc_t *dp_soc,
  7399. uint8_t vdev_id,
  7400. uint8_t special_monitor)
  7401. {
  7402. struct dp_soc *soc = (struct dp_soc *)dp_soc;
  7403. struct dp_pdev *pdev;
  7404. struct dp_vdev *vdev = dp_vdev_get_ref_by_id(soc, vdev_id,
  7405. DP_MOD_ID_CDP);
  7406. QDF_STATUS status = QDF_STATUS_SUCCESS;
  7407. if (!vdev)
  7408. return QDF_STATUS_E_FAILURE;
  7409. pdev = vdev->pdev;
  7410. pdev->monitor_vdev = vdev;
  7411. QDF_TRACE(QDF_MODULE_ID_TXRX, QDF_TRACE_LEVEL_WARN,
  7412. "pdev=%pK, pdev_id=%d, soc=%pK vdev=%pK\n",
  7413. pdev, pdev->pdev_id, pdev->soc, vdev);
  7414. /*
  7415. * do not configure monitor buf ring and filter for smart and
  7416. * lite monitor
  7417. * for smart monitor filters are added along with first NAC
  7418. * for lite monitor required configuration done through
  7419. * dp_set_pdev_param
  7420. */
  7421. if (special_monitor) {
  7422. status = QDF_STATUS_SUCCESS;
  7423. goto fail;
  7424. }
  7425. /*Check if current pdev's monitor_vdev exists */
  7426. if (pdev->monitor_configured) {
  7427. QDF_TRACE(QDF_MODULE_ID_TXRX, QDF_TRACE_LEVEL_DEBUG,
  7428. "monitor vap already created vdev=%pK\n", vdev);
  7429. status = QDF_STATUS_E_RESOURCES;
  7430. goto fail;
  7431. }
  7432. pdev->monitor_configured = true;
  7433. dp_soc_config_full_mon_mode(pdev, DP_FULL_MON_ENABLE);
  7434. dp_mon_filter_setup_mon_mode(pdev);
  7435. status = dp_mon_filter_update(pdev);
  7436. if (status != QDF_STATUS_SUCCESS) {
  7437. dp_cdp_err("%pK: Failed to reset monitor filters", soc);
  7438. dp_mon_filter_reset_mon_mode(pdev);
  7439. pdev->monitor_configured = false;
  7440. pdev->monitor_vdev = NULL;
  7441. }
  7442. fail:
  7443. dp_vdev_unref_delete(soc, vdev, DP_MOD_ID_CDP);
  7444. return status;
  7445. }
  7446. /**
  7447. * dp_pdev_set_advance_monitor_filter() - Set DP PDEV monitor filter
  7448. * @soc: soc handle
  7449. * @pdev_id: id of Datapath PDEV handle
  7450. * @filter_val: Flag to select Filter for monitor mode
  7451. * Return: 0 on success, not 0 on failure
  7452. */
  7453. static QDF_STATUS
  7454. dp_pdev_set_advance_monitor_filter(struct cdp_soc_t *soc_hdl, uint8_t pdev_id,
  7455. struct cdp_monitor_filter *filter_val)
  7456. {
  7457. /* Many monitor VAPs can exists in a system but only one can be up at
  7458. * anytime
  7459. */
  7460. struct dp_soc *soc = (struct dp_soc *)soc_hdl;
  7461. struct dp_vdev *vdev;
  7462. struct dp_pdev *pdev =
  7463. dp_get_pdev_from_soc_pdev_id_wifi3((struct dp_soc *)soc,
  7464. pdev_id);
  7465. QDF_STATUS status = QDF_STATUS_SUCCESS;
  7466. if (!pdev)
  7467. return QDF_STATUS_E_FAILURE;
  7468. vdev = pdev->monitor_vdev;
  7469. if (!vdev)
  7470. return QDF_STATUS_E_FAILURE;
  7471. QDF_TRACE(QDF_MODULE_ID_TXRX, QDF_TRACE_LEVEL_WARN,
  7472. "pdev=%pK, pdev_id=%d, soc=%pK vdev=%pK",
  7473. pdev, pdev_id, soc, vdev);
  7474. /*Check if current pdev's monitor_vdev exists */
  7475. if (!pdev->monitor_vdev) {
  7476. QDF_TRACE(QDF_MODULE_ID_TXRX, QDF_TRACE_LEVEL_ERROR,
  7477. "vdev=%pK", vdev);
  7478. qdf_assert(vdev);
  7479. }
  7480. /* update filter mode, type in pdev structure */
  7481. pdev->mon_filter_mode = filter_val->mode;
  7482. pdev->fp_mgmt_filter = filter_val->fp_mgmt;
  7483. pdev->fp_ctrl_filter = filter_val->fp_ctrl;
  7484. pdev->fp_data_filter = filter_val->fp_data;
  7485. pdev->mo_mgmt_filter = filter_val->mo_mgmt;
  7486. pdev->mo_ctrl_filter = filter_val->mo_ctrl;
  7487. pdev->mo_data_filter = filter_val->mo_data;
  7488. dp_mon_filter_setup_mon_mode(pdev);
  7489. status = dp_mon_filter_update(pdev);
  7490. if (status != QDF_STATUS_SUCCESS) {
  7491. dp_rx_mon_dest_err("%pK: Failed to set filter for advance mon mode",
  7492. soc);
  7493. dp_mon_filter_reset_mon_mode(pdev);
  7494. }
  7495. return status;
  7496. }
  7497. /**
  7498. * dp_deliver_tx_mgmt() - Deliver mgmt frame for tx capture
  7499. * @cdp_soc : data path soc handle
  7500. * @pdev_id : pdev_id
  7501. * @nbuf: Management frame buffer
  7502. */
  7503. static QDF_STATUS
  7504. dp_deliver_tx_mgmt(struct cdp_soc_t *cdp_soc, uint8_t pdev_id, qdf_nbuf_t nbuf)
  7505. {
  7506. struct dp_pdev *pdev =
  7507. dp_get_pdev_from_soc_pdev_id_wifi3((struct dp_soc *)cdp_soc,
  7508. pdev_id);
  7509. if (!pdev)
  7510. return QDF_STATUS_E_FAILURE;
  7511. dp_deliver_mgmt_frm(pdev, nbuf);
  7512. return QDF_STATUS_SUCCESS;
  7513. }
  7514. /**
  7515. * dp_set_bsscolor() - sets bsscolor for tx capture
  7516. * @pdev: Datapath PDEV handle
  7517. * @bsscolor: new bsscolor
  7518. */
  7519. static void
  7520. dp_mon_set_bsscolor(struct dp_pdev *pdev, uint8_t bsscolor)
  7521. {
  7522. pdev->rx_mon_recv_status.bsscolor = bsscolor;
  7523. }
  7524. /**
  7525. * dp_pdev_get_filter_ucast_data() - get DP PDEV monitor ucast filter
  7526. * @soc : data path soc handle
  7527. * @pdev_id : pdev_id
  7528. * Return: true on ucast filter flag set
  7529. */
  7530. static bool dp_pdev_get_filter_ucast_data(struct cdp_pdev *pdev_handle)
  7531. {
  7532. struct dp_pdev *pdev = (struct dp_pdev *)pdev_handle;
  7533. if ((pdev->fp_data_filter & FILTER_DATA_UCAST) ||
  7534. (pdev->mo_data_filter & FILTER_DATA_UCAST))
  7535. return true;
  7536. return false;
  7537. }
  7538. /**
  7539. * dp_pdev_get_filter_mcast_data() - get DP PDEV monitor mcast filter
  7540. * @pdev_handle: Datapath PDEV handle
  7541. * Return: true on mcast filter flag set
  7542. */
  7543. static bool dp_pdev_get_filter_mcast_data(struct cdp_pdev *pdev_handle)
  7544. {
  7545. struct dp_pdev *pdev = (struct dp_pdev *)pdev_handle;
  7546. if ((pdev->fp_data_filter & FILTER_DATA_MCAST) ||
  7547. (pdev->mo_data_filter & FILTER_DATA_MCAST))
  7548. return true;
  7549. return false;
  7550. }
  7551. /**
  7552. * dp_pdev_get_filter_non_data() - get DP PDEV monitor non_data filter
  7553. * @pdev_handle: Datapath PDEV handle
  7554. * Return: true on non data filter flag set
  7555. */
  7556. static bool dp_pdev_get_filter_non_data(struct cdp_pdev *pdev_handle)
  7557. {
  7558. struct dp_pdev *pdev = (struct dp_pdev *)pdev_handle;
  7559. if ((pdev->fp_mgmt_filter & FILTER_MGMT_ALL) ||
  7560. (pdev->mo_mgmt_filter & FILTER_MGMT_ALL)) {
  7561. if ((pdev->fp_ctrl_filter & FILTER_CTRL_ALL) ||
  7562. (pdev->mo_ctrl_filter & FILTER_CTRL_ALL)) {
  7563. return true;
  7564. }
  7565. }
  7566. return false;
  7567. }
  7568. #ifdef MESH_MODE_SUPPORT
  7569. static
  7570. void dp_vdev_set_mesh_mode(struct cdp_vdev *vdev_hdl, uint32_t val)
  7571. {
  7572. struct dp_vdev *vdev = (struct dp_vdev *)vdev_hdl;
  7573. dp_cdp_info("%pK: val %d", vdev->pdev->soc, val);
  7574. vdev->mesh_vdev = val;
  7575. if (val)
  7576. vdev->skip_sw_tid_classification |=
  7577. DP_TX_MESH_ENABLED;
  7578. else
  7579. vdev->skip_sw_tid_classification &=
  7580. ~DP_TX_MESH_ENABLED;
  7581. }
  7582. /*
  7583. * dp_peer_set_mesh_rx_filter() - to set the mesh rx filter
  7584. * @vdev_hdl: virtual device object
  7585. * @val: value to be set
  7586. *
  7587. * Return: void
  7588. */
  7589. static
  7590. void dp_vdev_set_mesh_rx_filter(struct cdp_vdev *vdev_hdl, uint32_t val)
  7591. {
  7592. struct dp_vdev *vdev = (struct dp_vdev *)vdev_hdl;
  7593. dp_cdp_info("%pK: val %d", vdev->pdev->soc, val);
  7594. vdev->mesh_rx_filter = val;
  7595. }
  7596. #endif
  7597. /*
  7598. * dp_vdev_set_hlos_tid_override() - to set hlos tid override
  7599. * @vdev_hdl: virtual device object
  7600. * @val: value to be set
  7601. *
  7602. * Return: void
  7603. */
  7604. static
  7605. void dp_vdev_set_hlos_tid_override(struct dp_vdev *vdev, uint32_t val)
  7606. {
  7607. dp_cdp_info("%pK: val %d", vdev->pdev->soc, val);
  7608. if (val)
  7609. vdev->skip_sw_tid_classification |=
  7610. DP_TXRX_HLOS_TID_OVERRIDE_ENABLED;
  7611. else
  7612. vdev->skip_sw_tid_classification &=
  7613. ~DP_TXRX_HLOS_TID_OVERRIDE_ENABLED;
  7614. }
  7615. /*
  7616. * dp_vdev_get_hlos_tid_override() - to get hlos tid override flag
  7617. * @vdev_hdl: virtual device object
  7618. * @val: value to be set
  7619. *
  7620. * Return: 1 if this flag is set
  7621. */
  7622. static
  7623. uint8_t dp_vdev_get_hlos_tid_override(struct cdp_vdev *vdev_hdl)
  7624. {
  7625. struct dp_vdev *vdev = (struct dp_vdev *)vdev_hdl;
  7626. return !!(vdev->skip_sw_tid_classification &
  7627. DP_TXRX_HLOS_TID_OVERRIDE_ENABLED);
  7628. }
  7629. #ifdef VDEV_PEER_PROTOCOL_COUNT
  7630. static void dp_enable_vdev_peer_protocol_count(struct cdp_soc_t *soc_hdl,
  7631. int8_t vdev_id,
  7632. bool enable)
  7633. {
  7634. struct dp_soc *soc = cdp_soc_t_to_dp_soc(soc_hdl);
  7635. struct dp_vdev *vdev;
  7636. vdev = dp_vdev_get_ref_by_id(soc, vdev_id, DP_MOD_ID_CDP);
  7637. if (!vdev)
  7638. return;
  7639. dp_info("enable %d vdev_id %d", enable, vdev_id);
  7640. vdev->peer_protocol_count_track = enable;
  7641. dp_vdev_unref_delete(soc, vdev, DP_MOD_ID_CDP);
  7642. }
  7643. static void dp_enable_vdev_peer_protocol_drop_mask(struct cdp_soc_t *soc_hdl,
  7644. int8_t vdev_id,
  7645. int drop_mask)
  7646. {
  7647. struct dp_soc *soc = cdp_soc_t_to_dp_soc(soc_hdl);
  7648. struct dp_vdev *vdev;
  7649. vdev = dp_vdev_get_ref_by_id(soc, vdev_id, DP_MOD_ID_CDP);
  7650. if (!vdev)
  7651. return;
  7652. dp_info("drop_mask %d vdev_id %d", drop_mask, vdev_id);
  7653. vdev->peer_protocol_count_dropmask = drop_mask;
  7654. dp_vdev_unref_delete(soc, vdev, DP_MOD_ID_CDP);
  7655. }
  7656. static int dp_is_vdev_peer_protocol_count_enabled(struct cdp_soc_t *soc_hdl,
  7657. int8_t vdev_id)
  7658. {
  7659. struct dp_soc *soc = cdp_soc_t_to_dp_soc(soc_hdl);
  7660. struct dp_vdev *vdev;
  7661. int peer_protocol_count_track;
  7662. vdev = dp_vdev_get_ref_by_id(soc, vdev_id, DP_MOD_ID_CDP);
  7663. if (!vdev)
  7664. return 0;
  7665. dp_info("enable %d vdev_id %d", vdev->peer_protocol_count_track,
  7666. vdev_id);
  7667. peer_protocol_count_track =
  7668. vdev->peer_protocol_count_track;
  7669. dp_vdev_unref_delete(soc, vdev, DP_MOD_ID_CDP);
  7670. return peer_protocol_count_track;
  7671. }
  7672. static int dp_get_vdev_peer_protocol_drop_mask(struct cdp_soc_t *soc_hdl,
  7673. int8_t vdev_id)
  7674. {
  7675. struct dp_soc *soc = cdp_soc_t_to_dp_soc(soc_hdl);
  7676. struct dp_vdev *vdev;
  7677. int peer_protocol_count_dropmask;
  7678. vdev = dp_vdev_get_ref_by_id(soc, vdev_id, DP_MOD_ID_CDP);
  7679. if (!vdev)
  7680. return 0;
  7681. dp_info("drop_mask %d vdev_id %d", vdev->peer_protocol_count_dropmask,
  7682. vdev_id);
  7683. peer_protocol_count_dropmask =
  7684. vdev->peer_protocol_count_dropmask;
  7685. dp_vdev_unref_delete(soc, vdev, DP_MOD_ID_CDP);
  7686. return peer_protocol_count_dropmask;
  7687. }
  7688. #endif
  7689. bool dp_check_pdev_exists(struct dp_soc *soc, struct dp_pdev *data)
  7690. {
  7691. uint8_t pdev_count;
  7692. for (pdev_count = 0; pdev_count < MAX_PDEV_CNT; pdev_count++) {
  7693. if (soc->pdev_list[pdev_count] &&
  7694. soc->pdev_list[pdev_count] == data)
  7695. return true;
  7696. }
  7697. return false;
  7698. }
  7699. /**
  7700. * dp_rx_bar_stats_cb(): BAR received stats callback
  7701. * @soc: SOC handle
  7702. * @cb_ctxt: Call back context
  7703. * @reo_status: Reo status
  7704. *
  7705. * return: void
  7706. */
  7707. void dp_rx_bar_stats_cb(struct dp_soc *soc, void *cb_ctxt,
  7708. union hal_reo_status *reo_status)
  7709. {
  7710. struct dp_pdev *pdev = (struct dp_pdev *)cb_ctxt;
  7711. struct hal_reo_queue_status *queue_status = &(reo_status->queue_status);
  7712. if (!dp_check_pdev_exists(soc, pdev)) {
  7713. dp_err_rl("pdev doesn't exist");
  7714. return;
  7715. }
  7716. if (!qdf_atomic_read(&soc->cmn_init_done))
  7717. return;
  7718. if (queue_status->header.status != HAL_REO_CMD_SUCCESS) {
  7719. DP_PRINT_STATS("REO stats failure %d",
  7720. queue_status->header.status);
  7721. qdf_atomic_set(&(pdev->stats_cmd_complete), 1);
  7722. return;
  7723. }
  7724. pdev->stats.rx.bar_recv_cnt += queue_status->bar_rcvd_cnt;
  7725. qdf_atomic_set(&(pdev->stats_cmd_complete), 1);
  7726. }
  7727. /**
  7728. * dp_aggregate_vdev_stats(): Consolidate stats at VDEV level
  7729. * @vdev: DP VDEV handle
  7730. *
  7731. * return: void
  7732. */
  7733. void dp_aggregate_vdev_stats(struct dp_vdev *vdev,
  7734. struct cdp_vdev_stats *vdev_stats)
  7735. {
  7736. struct dp_soc *soc = NULL;
  7737. if (!vdev || !vdev->pdev)
  7738. return;
  7739. soc = vdev->pdev->soc;
  7740. qdf_mem_copy(vdev_stats, &vdev->stats, sizeof(vdev->stats));
  7741. dp_vdev_iterate_peer(vdev, dp_update_vdev_stats, vdev_stats,
  7742. DP_MOD_ID_GENERIC_STATS);
  7743. #if defined(FEATURE_PERPKT_INFO) && WDI_EVENT_ENABLE
  7744. dp_wdi_event_handler(WDI_EVENT_UPDATE_DP_STATS, vdev->pdev->soc,
  7745. vdev_stats, vdev->vdev_id,
  7746. UPDATE_VDEV_STATS, vdev->pdev->pdev_id);
  7747. #endif
  7748. }
  7749. void dp_aggregate_pdev_stats(struct dp_pdev *pdev)
  7750. {
  7751. struct dp_vdev *vdev = NULL;
  7752. struct dp_soc *soc;
  7753. struct cdp_vdev_stats *vdev_stats =
  7754. qdf_mem_malloc(sizeof(struct cdp_vdev_stats));
  7755. if (!vdev_stats) {
  7756. dp_cdp_err("%pK: DP alloc failure - unable to get alloc vdev stats",
  7757. pdev->soc);
  7758. return;
  7759. }
  7760. qdf_mem_zero(&pdev->stats.tx, sizeof(pdev->stats.tx));
  7761. qdf_mem_zero(&pdev->stats.rx, sizeof(pdev->stats.rx));
  7762. qdf_mem_zero(&pdev->stats.tx_i, sizeof(pdev->stats.tx_i));
  7763. if (pdev->mcopy_mode)
  7764. DP_UPDATE_STATS(pdev, pdev->invalid_peer);
  7765. soc = pdev->soc;
  7766. qdf_spin_lock_bh(&pdev->vdev_list_lock);
  7767. TAILQ_FOREACH(vdev, &pdev->vdev_list, vdev_list_elem) {
  7768. dp_aggregate_vdev_stats(vdev, vdev_stats);
  7769. dp_update_pdev_stats(pdev, vdev_stats);
  7770. dp_update_pdev_ingress_stats(pdev, vdev);
  7771. }
  7772. qdf_spin_unlock_bh(&pdev->vdev_list_lock);
  7773. qdf_mem_free(vdev_stats);
  7774. #if defined(FEATURE_PERPKT_INFO) && WDI_EVENT_ENABLE
  7775. dp_wdi_event_handler(WDI_EVENT_UPDATE_DP_STATS, pdev->soc, &pdev->stats,
  7776. pdev->pdev_id, UPDATE_PDEV_STATS, pdev->pdev_id);
  7777. #endif
  7778. }
  7779. /**
  7780. * dp_vdev_getstats() - get vdev packet level stats
  7781. * @vdev_handle: Datapath VDEV handle
  7782. * @stats: cdp network device stats structure
  7783. *
  7784. * Return: QDF_STATUS
  7785. */
  7786. static QDF_STATUS dp_vdev_getstats(struct cdp_vdev *vdev_handle,
  7787. struct cdp_dev_stats *stats)
  7788. {
  7789. struct dp_vdev *vdev = (struct dp_vdev *)vdev_handle;
  7790. struct dp_pdev *pdev;
  7791. struct dp_soc *soc;
  7792. struct cdp_vdev_stats *vdev_stats;
  7793. if (!vdev)
  7794. return QDF_STATUS_E_FAILURE;
  7795. pdev = vdev->pdev;
  7796. if (!pdev)
  7797. return QDF_STATUS_E_FAILURE;
  7798. soc = pdev->soc;
  7799. vdev_stats = qdf_mem_malloc(sizeof(struct cdp_vdev_stats));
  7800. if (!vdev_stats) {
  7801. dp_cdp_err("%pK: DP alloc failure - unable to get alloc vdev stats",
  7802. soc);
  7803. return QDF_STATUS_E_FAILURE;
  7804. }
  7805. dp_aggregate_vdev_stats(vdev, vdev_stats);
  7806. stats->tx_packets = vdev_stats->tx_i.rcvd.num;
  7807. stats->tx_bytes = vdev_stats->tx_i.rcvd.bytes;
  7808. stats->tx_errors = vdev_stats->tx.tx_failed +
  7809. vdev_stats->tx_i.dropped.dropped_pkt.num;
  7810. stats->tx_dropped = stats->tx_errors;
  7811. stats->rx_packets = vdev_stats->rx.unicast.num +
  7812. vdev_stats->rx.multicast.num +
  7813. vdev_stats->rx.bcast.num;
  7814. stats->rx_bytes = vdev_stats->rx.unicast.bytes +
  7815. vdev_stats->rx.multicast.bytes +
  7816. vdev_stats->rx.bcast.bytes;
  7817. qdf_mem_free(vdev_stats);
  7818. return QDF_STATUS_SUCCESS;
  7819. }
  7820. /**
  7821. * dp_pdev_getstats() - get pdev packet level stats
  7822. * @pdev_handle: Datapath PDEV handle
  7823. * @stats: cdp network device stats structure
  7824. *
  7825. * Return: QDF_STATUS
  7826. */
  7827. static void dp_pdev_getstats(struct cdp_pdev *pdev_handle,
  7828. struct cdp_dev_stats *stats)
  7829. {
  7830. struct dp_pdev *pdev = (struct dp_pdev *)pdev_handle;
  7831. dp_aggregate_pdev_stats(pdev);
  7832. stats->tx_packets = pdev->stats.tx_i.rcvd.num;
  7833. stats->tx_bytes = pdev->stats.tx_i.rcvd.bytes;
  7834. stats->tx_errors = pdev->stats.tx.tx_failed +
  7835. pdev->stats.tx_i.dropped.dropped_pkt.num;
  7836. stats->tx_dropped = stats->tx_errors;
  7837. stats->rx_packets = pdev->stats.rx.unicast.num +
  7838. pdev->stats.rx.multicast.num +
  7839. pdev->stats.rx.bcast.num;
  7840. stats->rx_bytes = pdev->stats.rx.unicast.bytes +
  7841. pdev->stats.rx.multicast.bytes +
  7842. pdev->stats.rx.bcast.bytes;
  7843. stats->rx_errors = pdev->stats.err.ip_csum_err +
  7844. pdev->stats.err.tcp_udp_csum_err +
  7845. pdev->stats.rx.err.mic_err +
  7846. pdev->stats.rx.err.decrypt_err +
  7847. pdev->stats.err.rxdma_error +
  7848. pdev->stats.err.reo_error;
  7849. stats->rx_dropped = pdev->stats.dropped.msdu_not_done +
  7850. pdev->stats.dropped.mec +
  7851. pdev->stats.dropped.mesh_filter +
  7852. pdev->stats.dropped.wifi_parse +
  7853. pdev->stats.dropped.mon_rx_drop +
  7854. pdev->stats.dropped.mon_radiotap_update_err;
  7855. }
  7856. /**
  7857. * dp_get_device_stats() - get interface level packet stats
  7858. * @soc: soc handle
  7859. * @id : vdev_id or pdev_id based on type
  7860. * @stats: cdp network device stats structure
  7861. * @type: device type pdev/vdev
  7862. *
  7863. * Return: QDF_STATUS
  7864. */
  7865. static QDF_STATUS dp_get_device_stats(struct cdp_soc_t *soc_hdl, uint8_t id,
  7866. struct cdp_dev_stats *stats,
  7867. uint8_t type)
  7868. {
  7869. struct dp_soc *soc = cdp_soc_t_to_dp_soc(soc_hdl);
  7870. QDF_STATUS status = QDF_STATUS_E_FAILURE;
  7871. struct dp_vdev *vdev;
  7872. switch (type) {
  7873. case UPDATE_VDEV_STATS:
  7874. vdev = dp_vdev_get_ref_by_id(soc, id, DP_MOD_ID_CDP);
  7875. if (vdev) {
  7876. status = dp_vdev_getstats((struct cdp_vdev *)vdev,
  7877. stats);
  7878. dp_vdev_unref_delete(soc, vdev, DP_MOD_ID_CDP);
  7879. }
  7880. return status;
  7881. case UPDATE_PDEV_STATS:
  7882. {
  7883. struct dp_pdev *pdev =
  7884. dp_get_pdev_from_soc_pdev_id_wifi3(
  7885. (struct dp_soc *)soc,
  7886. id);
  7887. if (pdev) {
  7888. dp_pdev_getstats((struct cdp_pdev *)pdev,
  7889. stats);
  7890. return QDF_STATUS_SUCCESS;
  7891. }
  7892. }
  7893. break;
  7894. default:
  7895. QDF_TRACE(QDF_MODULE_ID_TXRX, QDF_TRACE_LEVEL_ERROR,
  7896. "apstats cannot be updated for this input "
  7897. "type %d", type);
  7898. break;
  7899. }
  7900. return QDF_STATUS_E_FAILURE;
  7901. }
  7902. const
  7903. char *dp_srng_get_str_from_hal_ring_type(enum hal_ring_type ring_type)
  7904. {
  7905. switch (ring_type) {
  7906. case REO_DST:
  7907. return "Reo_dst";
  7908. case REO_EXCEPTION:
  7909. return "Reo_exception";
  7910. case REO_CMD:
  7911. return "Reo_cmd";
  7912. case REO_REINJECT:
  7913. return "Reo_reinject";
  7914. case REO_STATUS:
  7915. return "Reo_status";
  7916. case WBM2SW_RELEASE:
  7917. return "wbm2sw_release";
  7918. case TCL_DATA:
  7919. return "tcl_data";
  7920. case TCL_CMD_CREDIT:
  7921. return "tcl_cmd_credit";
  7922. case TCL_STATUS:
  7923. return "tcl_status";
  7924. case SW2WBM_RELEASE:
  7925. return "sw2wbm_release";
  7926. case RXDMA_BUF:
  7927. return "Rxdma_buf";
  7928. case RXDMA_DST:
  7929. return "Rxdma_dst";
  7930. case RXDMA_MONITOR_BUF:
  7931. return "Rxdma_monitor_buf";
  7932. case RXDMA_MONITOR_DESC:
  7933. return "Rxdma_monitor_desc";
  7934. case RXDMA_MONITOR_STATUS:
  7935. return "Rxdma_monitor_status";
  7936. case WBM_IDLE_LINK:
  7937. return "WBM_hw_idle_link";
  7938. default:
  7939. dp_err("Invalid ring type");
  7940. break;
  7941. }
  7942. return "Invalid";
  7943. }
  7944. /*
  7945. * dp_print_napi_stats(): NAPI stats
  7946. * @soc - soc handle
  7947. */
  7948. void dp_print_napi_stats(struct dp_soc *soc)
  7949. {
  7950. hif_print_napi_stats(soc->hif_handle);
  7951. }
  7952. #ifdef QCA_PEER_EXT_STATS
  7953. /**
  7954. * dp_txrx_host_peer_ext_stats_clr: Reinitialize the txrx peer ext stats
  7955. *
  7956. */
  7957. static inline void dp_txrx_host_peer_ext_stats_clr(struct dp_peer *peer)
  7958. {
  7959. if (peer->pext_stats)
  7960. qdf_mem_zero(peer->pext_stats, sizeof(*peer->pext_stats));
  7961. }
  7962. #else
  7963. static inline void dp_txrx_host_peer_ext_stats_clr(struct dp_peer *peer)
  7964. {
  7965. }
  7966. #endif
  7967. /**
  7968. * dp_txrx_host_peer_stats_clr): Reinitialize the txrx peer stats
  7969. * @soc: Datapath soc
  7970. * @peer: Datatpath peer
  7971. * @arg: argument to iter function
  7972. *
  7973. * Return: QDF_STATUS
  7974. */
  7975. static inline void
  7976. dp_txrx_host_peer_stats_clr(struct dp_soc *soc,
  7977. struct dp_peer *peer,
  7978. void *arg)
  7979. {
  7980. struct dp_rx_tid *rx_tid;
  7981. uint8_t tid;
  7982. for (tid = 0; tid < DP_MAX_TIDS; tid++) {
  7983. rx_tid = &peer->rx_tid[tid];
  7984. DP_STATS_CLR(rx_tid);
  7985. }
  7986. DP_STATS_CLR(peer);
  7987. dp_txrx_host_peer_ext_stats_clr(peer);
  7988. #if defined(FEATURE_PERPKT_INFO) && WDI_EVENT_ENABLE
  7989. dp_wdi_event_handler(WDI_EVENT_UPDATE_DP_STATS, peer->vdev->pdev->soc,
  7990. &peer->stats, peer->peer_id,
  7991. UPDATE_PEER_STATS, peer->vdev->pdev->pdev_id);
  7992. #endif
  7993. }
  7994. /**
  7995. * dp_txrx_host_stats_clr(): Reinitialize the txrx stats
  7996. * @vdev: DP_VDEV handle
  7997. * @dp_soc: DP_SOC handle
  7998. *
  7999. * Return: QDF_STATUS
  8000. */
  8001. static inline QDF_STATUS
  8002. dp_txrx_host_stats_clr(struct dp_vdev *vdev, struct dp_soc *soc)
  8003. {
  8004. if (!vdev || !vdev->pdev)
  8005. return QDF_STATUS_E_FAILURE;
  8006. /*
  8007. * if NSS offload is enabled, then send message
  8008. * to NSS FW to clear the stats. Once NSS FW clears the statistics
  8009. * then clear host statistics.
  8010. */
  8011. if (wlan_cfg_get_dp_soc_nss_cfg(soc->wlan_cfg_ctx)) {
  8012. if (soc->cdp_soc.ol_ops->nss_stats_clr)
  8013. soc->cdp_soc.ol_ops->nss_stats_clr(soc->ctrl_psoc,
  8014. vdev->vdev_id);
  8015. }
  8016. DP_STATS_CLR(vdev->pdev);
  8017. DP_STATS_CLR(vdev->pdev->soc);
  8018. DP_STATS_CLR(vdev);
  8019. hif_clear_napi_stats(vdev->pdev->soc->hif_handle);
  8020. dp_vdev_iterate_peer(vdev, dp_txrx_host_peer_stats_clr, NULL,
  8021. DP_MOD_ID_GENERIC_STATS);
  8022. #if defined(FEATURE_PERPKT_INFO) && WDI_EVENT_ENABLE
  8023. dp_wdi_event_handler(WDI_EVENT_UPDATE_DP_STATS, vdev->pdev->soc,
  8024. &vdev->stats, vdev->vdev_id,
  8025. UPDATE_VDEV_STATS, vdev->pdev->pdev_id);
  8026. #endif
  8027. return QDF_STATUS_SUCCESS;
  8028. }
  8029. /*
  8030. * dp_get_host_peer_stats()- function to print peer stats
  8031. * @soc: dp_soc handle
  8032. * @mac_addr: mac address of the peer
  8033. *
  8034. * Return: QDF_STATUS
  8035. */
  8036. static QDF_STATUS
  8037. dp_get_host_peer_stats(struct cdp_soc_t *soc, uint8_t *mac_addr)
  8038. {
  8039. struct dp_peer *peer = NULL;
  8040. if (!mac_addr) {
  8041. QDF_TRACE(QDF_MODULE_ID_TXRX, QDF_TRACE_LEVEL_ERROR,
  8042. "%s: NULL peer mac addr\n", __func__);
  8043. return QDF_STATUS_E_FAILURE;
  8044. }
  8045. peer = dp_peer_find_hash_find((struct dp_soc *)soc,
  8046. mac_addr, 0,
  8047. DP_VDEV_ALL,
  8048. DP_MOD_ID_CDP);
  8049. if (!peer) {
  8050. QDF_TRACE(QDF_MODULE_ID_TXRX, QDF_TRACE_LEVEL_ERROR,
  8051. "%s: Invalid peer\n", __func__);
  8052. return QDF_STATUS_E_FAILURE;
  8053. }
  8054. dp_print_peer_stats(peer);
  8055. dp_peer_rxtid_stats(peer, dp_rx_tid_stats_cb, NULL);
  8056. dp_peer_unref_delete(peer, DP_MOD_ID_CDP);
  8057. return QDF_STATUS_SUCCESS;
  8058. }
  8059. /**
  8060. * dp_txrx_stats_help() - Helper function for Txrx_Stats
  8061. *
  8062. * Return: None
  8063. */
  8064. static void dp_txrx_stats_help(void)
  8065. {
  8066. dp_info("Command: iwpriv wlan0 txrx_stats <stats_option> <mac_id>");
  8067. dp_info("stats_option:");
  8068. dp_info(" 1 -- HTT Tx Statistics");
  8069. dp_info(" 2 -- HTT Rx Statistics");
  8070. dp_info(" 3 -- HTT Tx HW Queue Statistics");
  8071. dp_info(" 4 -- HTT Tx HW Sched Statistics");
  8072. dp_info(" 5 -- HTT Error Statistics");
  8073. dp_info(" 6 -- HTT TQM Statistics");
  8074. dp_info(" 7 -- HTT TQM CMDQ Statistics");
  8075. dp_info(" 8 -- HTT TX_DE_CMN Statistics");
  8076. dp_info(" 9 -- HTT Tx Rate Statistics");
  8077. dp_info(" 10 -- HTT Rx Rate Statistics");
  8078. dp_info(" 11 -- HTT Peer Statistics");
  8079. dp_info(" 12 -- HTT Tx SelfGen Statistics");
  8080. dp_info(" 13 -- HTT Tx MU HWQ Statistics");
  8081. dp_info(" 14 -- HTT RING_IF_INFO Statistics");
  8082. dp_info(" 15 -- HTT SRNG Statistics");
  8083. dp_info(" 16 -- HTT SFM Info Statistics");
  8084. dp_info(" 17 -- HTT PDEV_TX_MU_MIMO_SCHED INFO Statistics");
  8085. dp_info(" 18 -- HTT Peer List Details");
  8086. dp_info(" 20 -- Clear Host Statistics");
  8087. dp_info(" 21 -- Host Rx Rate Statistics");
  8088. dp_info(" 22 -- Host Tx Rate Statistics");
  8089. dp_info(" 23 -- Host Tx Statistics");
  8090. dp_info(" 24 -- Host Rx Statistics");
  8091. dp_info(" 25 -- Host AST Statistics");
  8092. dp_info(" 26 -- Host SRNG PTR Statistics");
  8093. dp_info(" 27 -- Host Mon Statistics");
  8094. dp_info(" 28 -- Host REO Queue Statistics");
  8095. dp_info(" 29 -- Host Soc cfg param Statistics");
  8096. dp_info(" 30 -- Host pdev cfg param Statistics");
  8097. dp_info(" 31 -- Host FISA stats");
  8098. dp_info(" 32 -- Host Register Work stats");
  8099. }
  8100. /**
  8101. * dp_print_host_stats()- Function to print the stats aggregated at host
  8102. * @vdev_handle: DP_VDEV handle
  8103. * @req: host stats type
  8104. * @soc: dp soc handler
  8105. *
  8106. * Return: 0 on success, print error message in case of failure
  8107. */
  8108. static int
  8109. dp_print_host_stats(struct dp_vdev *vdev,
  8110. struct cdp_txrx_stats_req *req,
  8111. struct dp_soc *soc)
  8112. {
  8113. struct dp_pdev *pdev = (struct dp_pdev *)vdev->pdev;
  8114. enum cdp_host_txrx_stats type =
  8115. dp_stats_mapping_table[req->stats][STATS_HOST];
  8116. dp_aggregate_pdev_stats(pdev);
  8117. switch (type) {
  8118. case TXRX_CLEAR_STATS:
  8119. dp_txrx_host_stats_clr(vdev, soc);
  8120. break;
  8121. case TXRX_RX_RATE_STATS:
  8122. dp_print_rx_rates(vdev);
  8123. break;
  8124. case TXRX_TX_RATE_STATS:
  8125. dp_print_tx_rates(vdev);
  8126. break;
  8127. case TXRX_TX_HOST_STATS:
  8128. dp_print_pdev_tx_stats(pdev);
  8129. dp_print_soc_tx_stats(pdev->soc);
  8130. break;
  8131. case TXRX_RX_HOST_STATS:
  8132. dp_print_pdev_rx_stats(pdev);
  8133. dp_print_soc_rx_stats(pdev->soc);
  8134. break;
  8135. case TXRX_AST_STATS:
  8136. dp_print_ast_stats(pdev->soc);
  8137. dp_print_mec_stats(pdev->soc);
  8138. dp_print_peer_table(vdev);
  8139. break;
  8140. case TXRX_SRNG_PTR_STATS:
  8141. dp_print_ring_stats(pdev);
  8142. break;
  8143. case TXRX_RX_MON_STATS:
  8144. dp_print_pdev_rx_mon_stats(pdev);
  8145. break;
  8146. case TXRX_REO_QUEUE_STATS:
  8147. dp_get_host_peer_stats((struct cdp_soc_t *)pdev->soc,
  8148. req->peer_addr);
  8149. break;
  8150. case TXRX_SOC_CFG_PARAMS:
  8151. dp_print_soc_cfg_params(pdev->soc);
  8152. break;
  8153. case TXRX_PDEV_CFG_PARAMS:
  8154. dp_print_pdev_cfg_params(pdev);
  8155. break;
  8156. case TXRX_NAPI_STATS:
  8157. dp_print_napi_stats(pdev->soc);
  8158. break;
  8159. case TXRX_SOC_INTERRUPT_STATS:
  8160. dp_print_soc_interrupt_stats(pdev->soc);
  8161. break;
  8162. case TXRX_SOC_FSE_STATS:
  8163. dp_rx_dump_fisa_table(pdev->soc);
  8164. break;
  8165. case TXRX_HAL_REG_WRITE_STATS:
  8166. hal_dump_reg_write_stats(pdev->soc->hal_soc);
  8167. hal_dump_reg_write_srng_stats(pdev->soc->hal_soc);
  8168. break;
  8169. case TXRX_SOC_REO_HW_DESC_DUMP:
  8170. dp_get_rx_reo_queue_info((struct cdp_soc_t *)pdev->soc,
  8171. vdev->vdev_id);
  8172. break;
  8173. default:
  8174. dp_info("Wrong Input For TxRx Host Stats");
  8175. dp_txrx_stats_help();
  8176. break;
  8177. }
  8178. return 0;
  8179. }
  8180. /*
  8181. * is_ppdu_txrx_capture_enabled() - API to check both pktlog and debug_sniffer
  8182. * modes are enabled or not.
  8183. * @dp_pdev: dp pdev handle.
  8184. *
  8185. * Return: bool
  8186. */
  8187. static inline bool is_ppdu_txrx_capture_enabled(struct dp_pdev *pdev)
  8188. {
  8189. if (!pdev->pktlog_ppdu_stats && !pdev->tx_sniffer_enable &&
  8190. !pdev->mcopy_mode)
  8191. return true;
  8192. else
  8193. return false;
  8194. }
  8195. /*
  8196. *dp_set_bpr_enable() - API to enable/disable bpr feature
  8197. *@pdev_handle: DP_PDEV handle.
  8198. *@val: Provided value.
  8199. *
  8200. *Return: 0 for success. nonzero for failure.
  8201. */
  8202. static QDF_STATUS
  8203. dp_set_bpr_enable(struct dp_pdev *pdev, int val)
  8204. {
  8205. switch (val) {
  8206. case CDP_BPR_DISABLE:
  8207. pdev->bpr_enable = CDP_BPR_DISABLE;
  8208. if (!pdev->pktlog_ppdu_stats && !pdev->enhanced_stats_en &&
  8209. !pdev->tx_sniffer_enable && !pdev->mcopy_mode) {
  8210. dp_h2t_cfg_stats_msg_send(pdev, 0, pdev->pdev_id);
  8211. } else if (pdev->enhanced_stats_en &&
  8212. !pdev->tx_sniffer_enable && !pdev->mcopy_mode &&
  8213. !pdev->pktlog_ppdu_stats) {
  8214. dp_h2t_cfg_stats_msg_send(pdev,
  8215. DP_PPDU_STATS_CFG_ENH_STATS,
  8216. pdev->pdev_id);
  8217. }
  8218. break;
  8219. case CDP_BPR_ENABLE:
  8220. pdev->bpr_enable = CDP_BPR_ENABLE;
  8221. if (!pdev->enhanced_stats_en && !pdev->tx_sniffer_enable &&
  8222. !pdev->mcopy_mode && !pdev->pktlog_ppdu_stats) {
  8223. dp_h2t_cfg_stats_msg_send(pdev,
  8224. DP_PPDU_STATS_CFG_BPR,
  8225. pdev->pdev_id);
  8226. } else if (pdev->enhanced_stats_en &&
  8227. !pdev->tx_sniffer_enable && !pdev->mcopy_mode &&
  8228. !pdev->pktlog_ppdu_stats) {
  8229. dp_h2t_cfg_stats_msg_send(pdev,
  8230. DP_PPDU_STATS_CFG_BPR_ENH,
  8231. pdev->pdev_id);
  8232. } else if (pdev->pktlog_ppdu_stats) {
  8233. dp_h2t_cfg_stats_msg_send(pdev,
  8234. DP_PPDU_STATS_CFG_BPR_PKTLOG,
  8235. pdev->pdev_id);
  8236. }
  8237. break;
  8238. default:
  8239. break;
  8240. }
  8241. return QDF_STATUS_SUCCESS;
  8242. }
  8243. /*
  8244. * dp_pdev_tid_stats_ingress_inc
  8245. * @pdev: pdev handle
  8246. * @val: increase in value
  8247. *
  8248. * Return: void
  8249. */
  8250. static void
  8251. dp_pdev_tid_stats_ingress_inc(struct dp_pdev *pdev, uint32_t val)
  8252. {
  8253. pdev->stats.tid_stats.ingress_stack += val;
  8254. }
  8255. /*
  8256. * dp_pdev_tid_stats_osif_drop
  8257. * @pdev: pdev handle
  8258. * @val: increase in value
  8259. *
  8260. * Return: void
  8261. */
  8262. static void
  8263. dp_pdev_tid_stats_osif_drop(struct dp_pdev *pdev, uint32_t val)
  8264. {
  8265. pdev->stats.tid_stats.osif_drop += val;
  8266. }
  8267. /*
  8268. * dp_config_debug_sniffer()- API to enable/disable debug sniffer
  8269. * @pdev: DP_PDEV handle
  8270. * @val: user provided value
  8271. *
  8272. * Return: 0 for success. nonzero for failure.
  8273. */
  8274. static QDF_STATUS
  8275. dp_config_debug_sniffer(struct dp_pdev *pdev, int val)
  8276. {
  8277. QDF_STATUS status = QDF_STATUS_SUCCESS;
  8278. /*
  8279. * Note: The mirror copy mode cannot co-exist with any other
  8280. * monitor modes. Hence disabling the filter for this mode will
  8281. * reset the monitor destination ring filters.
  8282. */
  8283. if (pdev->mcopy_mode) {
  8284. #ifdef FEATURE_PERPKT_INFO
  8285. dp_soc_config_full_mon_mode(pdev, DP_FULL_MON_DISABLE);
  8286. dp_pdev_disable_mcopy_code(pdev);
  8287. dp_mon_filter_reset_mcopy_mode(pdev);
  8288. status = dp_mon_filter_update(pdev);
  8289. if (status != QDF_STATUS_SUCCESS) {
  8290. QDF_TRACE(QDF_MODULE_ID_DP, QDF_TRACE_LEVEL_ERROR,
  8291. FL("Failed to reset AM copy mode filters"));
  8292. }
  8293. pdev->monitor_configured = false;
  8294. #endif /* FEATURE_PERPKT_INFO */
  8295. }
  8296. switch (val) {
  8297. case 0:
  8298. pdev->tx_sniffer_enable = 0;
  8299. pdev->monitor_configured = false;
  8300. /*
  8301. * We don't need to reset the Rx monitor status ring or call
  8302. * the API dp_ppdu_ring_reset() if all debug sniffer mode is
  8303. * disabled. The Rx monitor status ring will be disabled when
  8304. * the last mode using the monitor status ring get disabled.
  8305. */
  8306. if (!pdev->pktlog_ppdu_stats && !pdev->enhanced_stats_en &&
  8307. !pdev->bpr_enable) {
  8308. dp_h2t_cfg_stats_msg_send(pdev, 0, pdev->pdev_id);
  8309. } else if (pdev->enhanced_stats_en && !pdev->bpr_enable) {
  8310. dp_h2t_cfg_stats_msg_send(pdev,
  8311. DP_PPDU_STATS_CFG_ENH_STATS, pdev->pdev_id);
  8312. } else if (!pdev->enhanced_stats_en && pdev->bpr_enable) {
  8313. dp_h2t_cfg_stats_msg_send(pdev,
  8314. DP_PPDU_STATS_CFG_BPR_ENH,
  8315. pdev->pdev_id);
  8316. } else {
  8317. dp_h2t_cfg_stats_msg_send(pdev,
  8318. DP_PPDU_STATS_CFG_BPR,
  8319. pdev->pdev_id);
  8320. }
  8321. break;
  8322. case 1:
  8323. pdev->tx_sniffer_enable = 1;
  8324. pdev->monitor_configured = false;
  8325. if (!pdev->pktlog_ppdu_stats)
  8326. dp_h2t_cfg_stats_msg_send(pdev,
  8327. DP_PPDU_STATS_CFG_SNIFFER, pdev->pdev_id);
  8328. break;
  8329. case 2:
  8330. case 4:
  8331. if (pdev->monitor_vdev) {
  8332. status = QDF_STATUS_E_RESOURCES;
  8333. break;
  8334. }
  8335. #ifdef FEATURE_PERPKT_INFO
  8336. pdev->mcopy_mode = val;
  8337. pdev->tx_sniffer_enable = 0;
  8338. pdev->monitor_configured = true;
  8339. if (!wlan_cfg_is_delay_mon_replenish(pdev->soc->wlan_cfg_ctx))
  8340. dp_vdev_set_monitor_mode_rings(pdev, true);
  8341. /*
  8342. * Setup the M copy mode filter.
  8343. */
  8344. dp_soc_config_full_mon_mode(pdev, DP_FULL_MON_ENABLE);
  8345. dp_mon_filter_setup_mcopy_mode(pdev);
  8346. status = dp_mon_filter_update(pdev);
  8347. if (status != QDF_STATUS_SUCCESS) {
  8348. QDF_TRACE(QDF_MODULE_ID_DP, QDF_TRACE_LEVEL_ERROR,
  8349. FL("Failed to set M_copy mode filters"));
  8350. dp_mon_filter_reset_mcopy_mode(pdev);
  8351. dp_pdev_disable_mcopy_code(pdev);
  8352. return status;
  8353. }
  8354. if (!pdev->pktlog_ppdu_stats)
  8355. dp_h2t_cfg_stats_msg_send(pdev,
  8356. DP_PPDU_STATS_CFG_SNIFFER, pdev->pdev_id);
  8357. #endif /* FEATURE_PERPKT_INFO */
  8358. break;
  8359. default:
  8360. QDF_TRACE(QDF_MODULE_ID_DP, QDF_TRACE_LEVEL_ERROR,
  8361. "Invalid value");
  8362. break;
  8363. }
  8364. return status;
  8365. }
  8366. #ifdef FEATURE_PERPKT_INFO
  8367. /*
  8368. * dp_enable_enhanced_stats()- API to enable enhanced statistcs
  8369. * @soc_handle: DP_SOC handle
  8370. * @pdev_id: id of DP_PDEV handle
  8371. *
  8372. * Return: QDF_STATUS
  8373. */
  8374. static QDF_STATUS
  8375. dp_enable_enhanced_stats(struct cdp_soc_t *soc, uint8_t pdev_id)
  8376. {
  8377. struct dp_pdev *pdev = NULL;
  8378. QDF_STATUS status = QDF_STATUS_SUCCESS;
  8379. pdev = dp_get_pdev_from_soc_pdev_id_wifi3((struct dp_soc *)soc,
  8380. pdev_id);
  8381. if (!pdev)
  8382. return QDF_STATUS_E_FAILURE;
  8383. if (pdev->enhanced_stats_en == 0)
  8384. dp_cal_client_timer_start(pdev->cal_client_ctx);
  8385. pdev->enhanced_stats_en = 1;
  8386. dp_mon_filter_setup_enhanced_stats(pdev);
  8387. status = dp_mon_filter_update(pdev);
  8388. if (status != QDF_STATUS_SUCCESS) {
  8389. dp_cdp_err("%pK: Failed to set enhanced mode filters", soc);
  8390. dp_mon_filter_reset_enhanced_stats(pdev);
  8391. dp_cal_client_timer_stop(pdev->cal_client_ctx);
  8392. pdev->enhanced_stats_en = 0;
  8393. return QDF_STATUS_E_FAILURE;
  8394. }
  8395. if (is_ppdu_txrx_capture_enabled(pdev) && !pdev->bpr_enable) {
  8396. dp_h2t_cfg_stats_msg_send(pdev, DP_PPDU_STATS_CFG_ENH_STATS, pdev->pdev_id);
  8397. } else if (is_ppdu_txrx_capture_enabled(pdev) && pdev->bpr_enable) {
  8398. dp_h2t_cfg_stats_msg_send(pdev,
  8399. DP_PPDU_STATS_CFG_BPR_ENH,
  8400. pdev->pdev_id);
  8401. }
  8402. return QDF_STATUS_SUCCESS;
  8403. }
  8404. /*
  8405. * dp_disable_enhanced_stats()- API to disable enhanced statistcs
  8406. *
  8407. * @param soc - the soc handle
  8408. * @param pdev_id - pdev_id of pdev
  8409. * @return - QDF_STATUS
  8410. */
  8411. static QDF_STATUS
  8412. dp_disable_enhanced_stats(struct cdp_soc_t *soc, uint8_t pdev_id)
  8413. {
  8414. struct dp_pdev *pdev =
  8415. dp_get_pdev_from_soc_pdev_id_wifi3((struct dp_soc *)soc,
  8416. pdev_id);
  8417. if (!pdev)
  8418. return QDF_STATUS_E_FAILURE;
  8419. if (pdev->enhanced_stats_en == 1)
  8420. dp_cal_client_timer_stop(pdev->cal_client_ctx);
  8421. pdev->enhanced_stats_en = 0;
  8422. if (is_ppdu_txrx_capture_enabled(pdev) && !pdev->bpr_enable) {
  8423. dp_h2t_cfg_stats_msg_send(pdev, 0, pdev->pdev_id);
  8424. } else if (is_ppdu_txrx_capture_enabled(pdev) && pdev->bpr_enable) {
  8425. dp_h2t_cfg_stats_msg_send(pdev,
  8426. DP_PPDU_STATS_CFG_BPR,
  8427. pdev->pdev_id);
  8428. }
  8429. dp_mon_filter_reset_enhanced_stats(pdev);
  8430. if (dp_mon_filter_update(pdev) != QDF_STATUS_SUCCESS) {
  8431. QDF_TRACE(QDF_MODULE_ID_DP, QDF_TRACE_LEVEL_ERROR,
  8432. FL("Failed to reset enhanced mode filters"));
  8433. }
  8434. return QDF_STATUS_SUCCESS;
  8435. }
  8436. #endif /* FEATURE_PERPKT_INFO */
  8437. /*
  8438. * dp_get_fw_peer_stats()- function to print peer stats
  8439. * @soc: soc handle
  8440. * @pdev_id : id of the pdev handle
  8441. * @mac_addr: mac address of the peer
  8442. * @cap: Type of htt stats requested
  8443. * @is_wait: if set, wait on completion from firmware response
  8444. *
  8445. * Currently Supporting only MAC ID based requests Only
  8446. * 1: HTT_PEER_STATS_REQ_MODE_NO_QUERY
  8447. * 2: HTT_PEER_STATS_REQ_MODE_QUERY_TQM
  8448. * 3: HTT_PEER_STATS_REQ_MODE_FLUSH_TQM
  8449. *
  8450. * Return: QDF_STATUS
  8451. */
  8452. static QDF_STATUS
  8453. dp_get_fw_peer_stats(struct cdp_soc_t *soc, uint8_t pdev_id,
  8454. uint8_t *mac_addr,
  8455. uint32_t cap, uint32_t is_wait)
  8456. {
  8457. int i;
  8458. uint32_t config_param0 = 0;
  8459. uint32_t config_param1 = 0;
  8460. uint32_t config_param2 = 0;
  8461. uint32_t config_param3 = 0;
  8462. struct dp_pdev *pdev =
  8463. dp_get_pdev_from_soc_pdev_id_wifi3((struct dp_soc *)soc,
  8464. pdev_id);
  8465. if (!pdev)
  8466. return QDF_STATUS_E_FAILURE;
  8467. HTT_DBG_EXT_STATS_PEER_INFO_IS_MAC_ADDR_SET(config_param0, 1);
  8468. config_param0 |= (1 << (cap + 1));
  8469. for (i = 0; i < HTT_PEER_STATS_MAX_TLV; i++) {
  8470. config_param1 |= (1 << i);
  8471. }
  8472. config_param2 |= (mac_addr[0] & 0x000000ff);
  8473. config_param2 |= ((mac_addr[1] << 8) & 0x0000ff00);
  8474. config_param2 |= ((mac_addr[2] << 16) & 0x00ff0000);
  8475. config_param2 |= ((mac_addr[3] << 24) & 0xff000000);
  8476. config_param3 |= (mac_addr[4] & 0x000000ff);
  8477. config_param3 |= ((mac_addr[5] << 8) & 0x0000ff00);
  8478. if (is_wait) {
  8479. qdf_event_reset(&pdev->fw_peer_stats_event);
  8480. dp_h2t_ext_stats_msg_send(pdev, HTT_DBG_EXT_STATS_PEER_INFO,
  8481. config_param0, config_param1,
  8482. config_param2, config_param3,
  8483. 0, DBG_STATS_COOKIE_DP_STATS, 0);
  8484. qdf_wait_single_event(&pdev->fw_peer_stats_event,
  8485. DP_FW_PEER_STATS_CMP_TIMEOUT_MSEC);
  8486. } else {
  8487. dp_h2t_ext_stats_msg_send(pdev, HTT_DBG_EXT_STATS_PEER_INFO,
  8488. config_param0, config_param1,
  8489. config_param2, config_param3,
  8490. 0, DBG_STATS_COOKIE_DEFAULT, 0);
  8491. }
  8492. return QDF_STATUS_SUCCESS;
  8493. }
  8494. /* This struct definition will be removed from here
  8495. * once it get added in FW headers*/
  8496. struct httstats_cmd_req {
  8497. uint32_t config_param0;
  8498. uint32_t config_param1;
  8499. uint32_t config_param2;
  8500. uint32_t config_param3;
  8501. int cookie;
  8502. u_int8_t stats_id;
  8503. };
  8504. /*
  8505. * dp_get_htt_stats: function to process the httstas request
  8506. * @soc: DP soc handle
  8507. * @pdev_id: id of pdev handle
  8508. * @data: pointer to request data
  8509. * @data_len: length for request data
  8510. *
  8511. * return: QDF_STATUS
  8512. */
  8513. static QDF_STATUS
  8514. dp_get_htt_stats(struct cdp_soc_t *soc, uint8_t pdev_id, void *data,
  8515. uint32_t data_len)
  8516. {
  8517. struct httstats_cmd_req *req = (struct httstats_cmd_req *)data;
  8518. struct dp_pdev *pdev =
  8519. dp_get_pdev_from_soc_pdev_id_wifi3((struct dp_soc *)soc,
  8520. pdev_id);
  8521. if (!pdev)
  8522. return QDF_STATUS_E_FAILURE;
  8523. QDF_ASSERT(data_len == sizeof(struct httstats_cmd_req));
  8524. dp_h2t_ext_stats_msg_send(pdev, req->stats_id,
  8525. req->config_param0, req->config_param1,
  8526. req->config_param2, req->config_param3,
  8527. req->cookie, DBG_STATS_COOKIE_DEFAULT, 0);
  8528. return QDF_STATUS_SUCCESS;
  8529. }
  8530. /**
  8531. * dp_set_pdev_tidmap_prty_wifi3(): update tidmap priority in pdev
  8532. * @pdev: DP_PDEV handle
  8533. * @prio: tidmap priority value passed by the user
  8534. *
  8535. * Return: QDF_STATUS_SUCCESS on success
  8536. */
  8537. static QDF_STATUS dp_set_pdev_tidmap_prty_wifi3(struct dp_pdev *pdev,
  8538. uint8_t prio)
  8539. {
  8540. struct dp_soc *soc = pdev->soc;
  8541. soc->tidmap_prty = prio;
  8542. hal_tx_set_tidmap_prty(soc->hal_soc, prio);
  8543. return QDF_STATUS_SUCCESS;
  8544. }
  8545. /*
  8546. * dp_get_peer_param: function to get parameters in peer
  8547. * @cdp_soc: DP soc handle
  8548. * @vdev_id: id of vdev handle
  8549. * @peer_mac: peer mac address
  8550. * @param: parameter type to be set
  8551. * @val : address of buffer
  8552. *
  8553. * Return: val
  8554. */
  8555. static QDF_STATUS dp_get_peer_param(struct cdp_soc_t *cdp_soc, uint8_t vdev_id,
  8556. uint8_t *peer_mac,
  8557. enum cdp_peer_param_type param,
  8558. cdp_config_param_type *val)
  8559. {
  8560. return QDF_STATUS_SUCCESS;
  8561. }
  8562. #ifdef WLAN_ATF_ENABLE
  8563. static void dp_set_atf_stats_enable(struct dp_pdev *pdev, bool value)
  8564. {
  8565. if (!pdev) {
  8566. dp_cdp_err("Invalid pdev");
  8567. return;
  8568. }
  8569. pdev->dp_atf_stats_enable = value;
  8570. }
  8571. #else
  8572. static void dp_set_atf_stats_enable(struct dp_pdev *pdev, bool value)
  8573. {
  8574. }
  8575. #endif
  8576. /*
  8577. * dp_set_peer_param: function to set parameters in peer
  8578. * @cdp_soc: DP soc handle
  8579. * @vdev_id: id of vdev handle
  8580. * @peer_mac: peer mac address
  8581. * @param: parameter type to be set
  8582. * @val: value of parameter to be set
  8583. *
  8584. * Return: 0 for success. nonzero for failure.
  8585. */
  8586. static QDF_STATUS dp_set_peer_param(struct cdp_soc_t *cdp_soc, uint8_t vdev_id,
  8587. uint8_t *peer_mac,
  8588. enum cdp_peer_param_type param,
  8589. cdp_config_param_type val)
  8590. {
  8591. struct dp_peer *peer = dp_peer_find_hash_find((struct dp_soc *)cdp_soc,
  8592. peer_mac, 0, vdev_id,
  8593. DP_MOD_ID_CDP);
  8594. if (!peer)
  8595. return QDF_STATUS_E_FAILURE;
  8596. switch (param) {
  8597. case CDP_CONFIG_NAWDS:
  8598. peer->nawds_enabled = val.cdp_peer_param_nawds;
  8599. break;
  8600. case CDP_CONFIG_NAC:
  8601. peer->nac = !!(val.cdp_peer_param_nac);
  8602. break;
  8603. case CDP_CONFIG_ISOLATION:
  8604. dp_set_peer_isolation(peer, val.cdp_peer_param_isolation);
  8605. break;
  8606. case CDP_CONFIG_IN_TWT:
  8607. peer->in_twt = !!(val.cdp_peer_param_in_twt);
  8608. break;
  8609. default:
  8610. break;
  8611. }
  8612. dp_peer_unref_delete(peer, DP_MOD_ID_CDP);
  8613. return QDF_STATUS_SUCCESS;
  8614. }
  8615. /*
  8616. * dp_get_pdev_param: function to get parameters from pdev
  8617. * @cdp_soc: DP soc handle
  8618. * @pdev_id: id of pdev handle
  8619. * @param: parameter type to be get
  8620. * @value : buffer for value
  8621. *
  8622. * Return: status
  8623. */
  8624. static QDF_STATUS dp_get_pdev_param(struct cdp_soc_t *cdp_soc, uint8_t pdev_id,
  8625. enum cdp_pdev_param_type param,
  8626. cdp_config_param_type *val)
  8627. {
  8628. struct cdp_pdev *pdev = (struct cdp_pdev *)
  8629. dp_get_pdev_from_soc_pdev_id_wifi3((struct dp_soc *)cdp_soc,
  8630. pdev_id);
  8631. if (!pdev)
  8632. return QDF_STATUS_E_FAILURE;
  8633. switch (param) {
  8634. case CDP_CONFIG_VOW:
  8635. val->cdp_pdev_param_cfg_vow =
  8636. ((struct dp_pdev *)pdev)->delay_stats_flag;
  8637. break;
  8638. case CDP_TX_PENDING:
  8639. val->cdp_pdev_param_tx_pending = dp_get_tx_pending(pdev);
  8640. break;
  8641. case CDP_FILTER_MCAST_DATA:
  8642. val->cdp_pdev_param_fltr_mcast =
  8643. dp_pdev_get_filter_mcast_data(pdev);
  8644. break;
  8645. case CDP_FILTER_NO_DATA:
  8646. val->cdp_pdev_param_fltr_none =
  8647. dp_pdev_get_filter_non_data(pdev);
  8648. break;
  8649. case CDP_FILTER_UCAST_DATA:
  8650. val->cdp_pdev_param_fltr_ucast =
  8651. dp_pdev_get_filter_ucast_data(pdev);
  8652. break;
  8653. default:
  8654. return QDF_STATUS_E_FAILURE;
  8655. }
  8656. return QDF_STATUS_SUCCESS;
  8657. }
  8658. /*
  8659. * dp_set_pdev_param: function to set parameters in pdev
  8660. * @cdp_soc: DP soc handle
  8661. * @pdev_id: id of pdev handle
  8662. * @param: parameter type to be set
  8663. * @val: value of parameter to be set
  8664. *
  8665. * Return: 0 for success. nonzero for failure.
  8666. */
  8667. static QDF_STATUS dp_set_pdev_param(struct cdp_soc_t *cdp_soc, uint8_t pdev_id,
  8668. enum cdp_pdev_param_type param,
  8669. cdp_config_param_type val)
  8670. {
  8671. int target_type;
  8672. struct dp_soc *soc = (struct dp_soc *)cdp_soc;
  8673. struct dp_pdev *pdev =
  8674. dp_get_pdev_from_soc_pdev_id_wifi3((struct dp_soc *)cdp_soc,
  8675. pdev_id);
  8676. if (!pdev)
  8677. return QDF_STATUS_E_FAILURE;
  8678. target_type = hal_get_target_type(soc->hal_soc);
  8679. switch (target_type) {
  8680. case TARGET_TYPE_QCA6750:
  8681. pdev->ch_band_lmac_id_mapping[REG_BAND_2G] = DP_MON_5G_LMAC_ID;
  8682. pdev->ch_band_lmac_id_mapping[REG_BAND_5G] = DP_MON_5G_LMAC_ID;
  8683. pdev->ch_band_lmac_id_mapping[REG_BAND_6G] = DP_MON_6G_LMAC_ID;
  8684. break;
  8685. default:
  8686. pdev->ch_band_lmac_id_mapping[REG_BAND_2G] = DP_MON_2G_LMAC_ID;
  8687. pdev->ch_band_lmac_id_mapping[REG_BAND_5G] = DP_MON_5G_LMAC_ID;
  8688. pdev->ch_band_lmac_id_mapping[REG_BAND_6G] = DP_MON_6G_LMAC_ID;
  8689. break;
  8690. }
  8691. switch (param) {
  8692. case CDP_CONFIG_TX_CAPTURE:
  8693. return dp_config_debug_sniffer(pdev,
  8694. val.cdp_pdev_param_tx_capture);
  8695. case CDP_CONFIG_DEBUG_SNIFFER:
  8696. return dp_config_debug_sniffer(pdev,
  8697. val.cdp_pdev_param_dbg_snf);
  8698. case CDP_CONFIG_BPR_ENABLE:
  8699. return dp_set_bpr_enable(pdev, val.cdp_pdev_param_bpr_enable);
  8700. case CDP_CONFIG_PRIMARY_RADIO:
  8701. pdev->is_primary = val.cdp_pdev_param_primary_radio;
  8702. break;
  8703. case CDP_CONFIG_CAPTURE_LATENCY:
  8704. pdev->latency_capture_enable = val.cdp_pdev_param_cptr_latcy;
  8705. break;
  8706. case CDP_INGRESS_STATS:
  8707. dp_pdev_tid_stats_ingress_inc(pdev,
  8708. val.cdp_pdev_param_ingrs_stats);
  8709. break;
  8710. case CDP_OSIF_DROP:
  8711. dp_pdev_tid_stats_osif_drop(pdev,
  8712. val.cdp_pdev_param_osif_drop);
  8713. break;
  8714. case CDP_CONFIG_ENH_RX_CAPTURE:
  8715. return dp_config_enh_rx_capture(pdev,
  8716. val.cdp_pdev_param_en_rx_cap);
  8717. case CDP_CONFIG_ENH_TX_CAPTURE:
  8718. return dp_config_enh_tx_capture(pdev,
  8719. val.cdp_pdev_param_en_tx_cap);
  8720. case CDP_CONFIG_HMMC_TID_OVERRIDE:
  8721. pdev->hmmc_tid_override_en = val.cdp_pdev_param_hmmc_tid_ovrd;
  8722. break;
  8723. case CDP_CONFIG_HMMC_TID_VALUE:
  8724. pdev->hmmc_tid = val.cdp_pdev_param_hmmc_tid;
  8725. break;
  8726. case CDP_CHAN_NOISE_FLOOR:
  8727. pdev->chan_noise_floor = val.cdp_pdev_param_chn_noise_flr;
  8728. break;
  8729. case CDP_TIDMAP_PRTY:
  8730. dp_set_pdev_tidmap_prty_wifi3(pdev,
  8731. val.cdp_pdev_param_tidmap_prty);
  8732. break;
  8733. case CDP_FILTER_NEIGH_PEERS:
  8734. dp_set_filter_neigh_peers(pdev,
  8735. val.cdp_pdev_param_fltr_neigh_peers);
  8736. break;
  8737. case CDP_MONITOR_CHANNEL:
  8738. pdev->mon_chan_num = val.cdp_pdev_param_monitor_chan;
  8739. break;
  8740. case CDP_MONITOR_FREQUENCY:
  8741. pdev->mon_chan_freq = val.cdp_pdev_param_mon_freq;
  8742. pdev->mon_chan_band =
  8743. wlan_reg_freq_to_band(pdev->mon_chan_freq);
  8744. break;
  8745. case CDP_CONFIG_BSS_COLOR:
  8746. dp_mon_set_bsscolor(pdev, val.cdp_pdev_param_bss_color);
  8747. break;
  8748. case CDP_SET_ATF_STATS_ENABLE:
  8749. dp_set_atf_stats_enable(pdev,
  8750. val.cdp_pdev_param_atf_stats_enable);
  8751. break;
  8752. case CDP_CONFIG_SPECIAL_VAP:
  8753. dp_vdev_set_monitor_mode_buf_rings(pdev);
  8754. break;
  8755. default:
  8756. return QDF_STATUS_E_INVAL;
  8757. }
  8758. return QDF_STATUS_SUCCESS;
  8759. }
  8760. #ifdef QCA_PEER_EXT_STATS
  8761. static void dp_rx_update_peer_delay_stats(struct dp_soc *soc,
  8762. qdf_nbuf_t nbuf)
  8763. {
  8764. struct dp_peer *peer = NULL;
  8765. uint16_t peer_id, ring_id;
  8766. uint8_t tid = qdf_nbuf_get_tid_val(nbuf);
  8767. struct cdp_peer_ext_stats *pext_stats = NULL;
  8768. peer_id = QDF_NBUF_CB_RX_PEER_ID(nbuf);
  8769. if (peer_id > soc->max_peers)
  8770. return;
  8771. peer = dp_peer_get_ref_by_id(soc, peer_id, DP_MOD_ID_CDP);
  8772. if (qdf_unlikely(!peer))
  8773. return;
  8774. if (qdf_likely(peer->pext_stats)) {
  8775. pext_stats = peer->pext_stats;
  8776. ring_id = QDF_NBUF_CB_RX_CTX_ID(nbuf);
  8777. dp_rx_compute_tid_delay(&pext_stats->delay_stats[tid][ring_id],
  8778. nbuf);
  8779. }
  8780. dp_peer_unref_delete(peer, DP_MOD_ID_CDP);
  8781. }
  8782. #else
  8783. static inline void dp_rx_update_peer_delay_stats(struct dp_soc *soc,
  8784. qdf_nbuf_t nbuf)
  8785. {
  8786. }
  8787. #endif
  8788. /*
  8789. * dp_calculate_delay_stats: function to get rx delay stats
  8790. * @cdp_soc: DP soc handle
  8791. * @vdev_id: id of DP vdev handle
  8792. * @nbuf: skb
  8793. *
  8794. * Return: QDF_STATUS
  8795. */
  8796. static QDF_STATUS
  8797. dp_calculate_delay_stats(struct cdp_soc_t *cdp_soc, uint8_t vdev_id,
  8798. qdf_nbuf_t nbuf)
  8799. {
  8800. struct dp_soc *soc = cdp_soc_t_to_dp_soc(cdp_soc);
  8801. struct dp_vdev *vdev = dp_vdev_get_ref_by_id(soc, vdev_id,
  8802. DP_MOD_ID_CDP);
  8803. if (!vdev)
  8804. return QDF_STATUS_SUCCESS;
  8805. if (vdev->pdev->delay_stats_flag)
  8806. dp_rx_compute_delay(vdev, nbuf);
  8807. else
  8808. dp_rx_update_peer_delay_stats(soc, nbuf);
  8809. dp_vdev_unref_delete(soc, vdev, DP_MOD_ID_CDP);
  8810. return QDF_STATUS_SUCCESS;
  8811. }
  8812. /*
  8813. * dp_get_vdev_param: function to get parameters from vdev
  8814. * @cdp_soc : DP soc handle
  8815. * @vdev_id: id of DP vdev handle
  8816. * @param: parameter type to get value
  8817. * @val: buffer address
  8818. *
  8819. * return: status
  8820. */
  8821. static QDF_STATUS dp_get_vdev_param(struct cdp_soc_t *cdp_soc, uint8_t vdev_id,
  8822. enum cdp_vdev_param_type param,
  8823. cdp_config_param_type *val)
  8824. {
  8825. struct dp_soc *soc = cdp_soc_t_to_dp_soc(cdp_soc);
  8826. struct dp_vdev *vdev = dp_vdev_get_ref_by_id(soc, vdev_id,
  8827. DP_MOD_ID_CDP);
  8828. if (!vdev)
  8829. return QDF_STATUS_E_FAILURE;
  8830. switch (param) {
  8831. case CDP_ENABLE_WDS:
  8832. val->cdp_vdev_param_wds = vdev->wds_enabled;
  8833. break;
  8834. case CDP_ENABLE_MEC:
  8835. val->cdp_vdev_param_mec = vdev->mec_enabled;
  8836. break;
  8837. case CDP_ENABLE_DA_WAR:
  8838. val->cdp_vdev_param_da_war = vdev->pdev->soc->da_war_enabled;
  8839. break;
  8840. case CDP_ENABLE_IGMP_MCAST_EN:
  8841. val->cdp_vdev_param_igmp_mcast_en = vdev->igmp_mcast_enhanc_en;
  8842. break;
  8843. case CDP_ENABLE_MCAST_EN:
  8844. val->cdp_vdev_param_mcast_en = vdev->mcast_enhancement_en;
  8845. break;
  8846. case CDP_ENABLE_HLOS_TID_OVERRIDE:
  8847. val->cdp_vdev_param_hlos_tid_override =
  8848. dp_vdev_get_hlos_tid_override((struct cdp_vdev *)vdev);
  8849. break;
  8850. case CDP_ENABLE_PEER_AUTHORIZE:
  8851. val->cdp_vdev_param_peer_authorize =
  8852. vdev->peer_authorize;
  8853. break;
  8854. #ifdef WLAN_SUPPORT_MESH_LATENCY
  8855. case CDP_ENABLE_PEER_TID_LATENCY:
  8856. val->cdp_vdev_param_peer_tid_latency_enable =
  8857. vdev->peer_tid_latency_enabled;
  8858. break;
  8859. case CDP_SET_VAP_MESH_TID:
  8860. val->cdp_vdev_param_mesh_tid =
  8861. vdev->mesh_tid_latency_config.latency_tid;
  8862. break;
  8863. #endif
  8864. default:
  8865. dp_cdp_err("%pK: param value %d is wrong",
  8866. soc, param);
  8867. dp_vdev_unref_delete(soc, vdev, DP_MOD_ID_CDP);
  8868. return QDF_STATUS_E_FAILURE;
  8869. }
  8870. dp_vdev_unref_delete(soc, vdev, DP_MOD_ID_CDP);
  8871. return QDF_STATUS_SUCCESS;
  8872. }
  8873. /*
  8874. * dp_set_vdev_param: function to set parameters in vdev
  8875. * @cdp_soc : DP soc handle
  8876. * @vdev_id: id of DP vdev handle
  8877. * @param: parameter type to get value
  8878. * @val: value
  8879. *
  8880. * return: QDF_STATUS
  8881. */
  8882. static QDF_STATUS
  8883. dp_set_vdev_param(struct cdp_soc_t *cdp_soc, uint8_t vdev_id,
  8884. enum cdp_vdev_param_type param, cdp_config_param_type val)
  8885. {
  8886. struct dp_soc *dsoc = (struct dp_soc *)cdp_soc;
  8887. struct dp_vdev *vdev =
  8888. dp_vdev_get_ref_by_id(dsoc, vdev_id, DP_MOD_ID_CDP);
  8889. uint32_t var = 0;
  8890. if (!vdev)
  8891. return QDF_STATUS_E_FAILURE;
  8892. switch (param) {
  8893. case CDP_ENABLE_WDS:
  8894. dp_cdp_err("%pK: wds_enable %d for vdev(%pK) id(%d)\n",
  8895. dsoc, val.cdp_vdev_param_wds, vdev, vdev->vdev_id);
  8896. vdev->wds_enabled = val.cdp_vdev_param_wds;
  8897. break;
  8898. case CDP_ENABLE_MEC:
  8899. dp_cdp_err("%pK: mec_enable %d for vdev(%pK) id(%d)\n",
  8900. dsoc, val.cdp_vdev_param_mec, vdev, vdev->vdev_id);
  8901. vdev->mec_enabled = val.cdp_vdev_param_mec;
  8902. break;
  8903. case CDP_ENABLE_DA_WAR:
  8904. dp_cdp_err("%pK: da_war_enable %d for vdev(%pK) id(%d)\n",
  8905. dsoc, val.cdp_vdev_param_da_war, vdev, vdev->vdev_id);
  8906. vdev->pdev->soc->da_war_enabled = val.cdp_vdev_param_da_war;
  8907. dp_wds_flush_ast_table_wifi3(((struct cdp_soc_t *)
  8908. vdev->pdev->soc));
  8909. break;
  8910. case CDP_ENABLE_NAWDS:
  8911. vdev->nawds_enabled = val.cdp_vdev_param_nawds;
  8912. break;
  8913. case CDP_ENABLE_MCAST_EN:
  8914. vdev->mcast_enhancement_en = val.cdp_vdev_param_mcast_en;
  8915. break;
  8916. case CDP_ENABLE_IGMP_MCAST_EN:
  8917. vdev->igmp_mcast_enhanc_en = val.cdp_vdev_param_igmp_mcast_en;
  8918. break;
  8919. case CDP_ENABLE_PROXYSTA:
  8920. vdev->proxysta_vdev = val.cdp_vdev_param_proxysta;
  8921. break;
  8922. case CDP_UPDATE_TDLS_FLAGS:
  8923. vdev->tdls_link_connected = val.cdp_vdev_param_tdls_flags;
  8924. break;
  8925. case CDP_CFG_WDS_AGING_TIMER:
  8926. var = val.cdp_vdev_param_aging_tmr;
  8927. if (!var)
  8928. qdf_timer_stop(&vdev->pdev->soc->ast_aging_timer);
  8929. else if (var != vdev->wds_aging_timer_val)
  8930. qdf_timer_mod(&vdev->pdev->soc->ast_aging_timer, var);
  8931. vdev->wds_aging_timer_val = var;
  8932. break;
  8933. case CDP_ENABLE_AP_BRIDGE:
  8934. if (wlan_op_mode_sta != vdev->opmode)
  8935. vdev->ap_bridge_enabled = val.cdp_vdev_param_ap_brdg_en;
  8936. else
  8937. vdev->ap_bridge_enabled = false;
  8938. break;
  8939. case CDP_ENABLE_CIPHER:
  8940. vdev->sec_type = val.cdp_vdev_param_cipher_en;
  8941. break;
  8942. case CDP_ENABLE_QWRAP_ISOLATION:
  8943. vdev->isolation_vdev = val.cdp_vdev_param_qwrap_isolation;
  8944. break;
  8945. case CDP_UPDATE_MULTIPASS:
  8946. vdev->multipass_en = val.cdp_vdev_param_update_multipass;
  8947. break;
  8948. case CDP_TX_ENCAP_TYPE:
  8949. vdev->tx_encap_type = val.cdp_vdev_param_tx_encap;
  8950. break;
  8951. case CDP_RX_DECAP_TYPE:
  8952. vdev->rx_decap_type = val.cdp_vdev_param_rx_decap;
  8953. break;
  8954. case CDP_TID_VDEV_PRTY:
  8955. vdev->tidmap_prty = val.cdp_vdev_param_tidmap_prty;
  8956. break;
  8957. case CDP_TIDMAP_TBL_ID:
  8958. vdev->tidmap_tbl_id = val.cdp_vdev_param_tidmap_tbl_id;
  8959. break;
  8960. #ifdef MESH_MODE_SUPPORT
  8961. case CDP_MESH_RX_FILTER:
  8962. dp_vdev_set_mesh_rx_filter((struct cdp_vdev *)vdev,
  8963. val.cdp_vdev_param_mesh_rx_filter);
  8964. break;
  8965. case CDP_MESH_MODE:
  8966. dp_vdev_set_mesh_mode((struct cdp_vdev *)vdev,
  8967. val.cdp_vdev_param_mesh_mode);
  8968. break;
  8969. #endif
  8970. case CDP_ENABLE_CSUM:
  8971. dp_info("vdev_id %d enable Checksum %d", vdev_id,
  8972. val.cdp_enable_tx_checksum);
  8973. vdev->csum_enabled = val.cdp_enable_tx_checksum;
  8974. break;
  8975. case CDP_ENABLE_HLOS_TID_OVERRIDE:
  8976. dp_info("vdev_id %d enable hlod tid override %d", vdev_id,
  8977. val.cdp_vdev_param_hlos_tid_override);
  8978. dp_vdev_set_hlos_tid_override(vdev,
  8979. val.cdp_vdev_param_hlos_tid_override);
  8980. break;
  8981. #ifdef QCA_SUPPORT_WDS_EXTENDED
  8982. case CDP_CFG_WDS_EXT:
  8983. vdev->wds_ext_enabled = val.cdp_vdev_param_wds_ext;
  8984. break;
  8985. #endif
  8986. case CDP_ENABLE_PEER_AUTHORIZE:
  8987. vdev->peer_authorize = val.cdp_vdev_param_peer_authorize;
  8988. break;
  8989. #ifdef WLAN_SUPPORT_MESH_LATENCY
  8990. case CDP_ENABLE_PEER_TID_LATENCY:
  8991. dp_info("vdev_id %d enable peer tid latency %d", vdev_id,
  8992. val.cdp_vdev_param_peer_tid_latency_enable);
  8993. vdev->peer_tid_latency_enabled =
  8994. val.cdp_vdev_param_peer_tid_latency_enable;
  8995. break;
  8996. case CDP_SET_VAP_MESH_TID:
  8997. dp_info("vdev_id %d enable peer tid latency %d", vdev_id,
  8998. val.cdp_vdev_param_mesh_tid);
  8999. vdev->mesh_tid_latency_config.latency_tid
  9000. = val.cdp_vdev_param_mesh_tid;
  9001. break;
  9002. #endif
  9003. default:
  9004. break;
  9005. }
  9006. dp_tx_vdev_update_search_flags((struct dp_vdev *)vdev);
  9007. dp_vdev_unref_delete(dsoc, vdev, DP_MOD_ID_CDP);
  9008. return QDF_STATUS_SUCCESS;
  9009. }
  9010. /*
  9011. * dp_set_psoc_param: function to set parameters in psoc
  9012. * @cdp_soc : DP soc handle
  9013. * @param: parameter type to be set
  9014. * @val: value of parameter to be set
  9015. *
  9016. * return: QDF_STATUS
  9017. */
  9018. static QDF_STATUS
  9019. dp_set_psoc_param(struct cdp_soc_t *cdp_soc,
  9020. enum cdp_psoc_param_type param, cdp_config_param_type val)
  9021. {
  9022. struct dp_soc *soc = (struct dp_soc *)cdp_soc;
  9023. struct wlan_cfg_dp_soc_ctxt *wlan_cfg_ctx = soc->wlan_cfg_ctx;
  9024. switch (param) {
  9025. case CDP_ENABLE_RATE_STATS:
  9026. soc->rdkstats_enabled = val.cdp_psoc_param_en_rate_stats;
  9027. break;
  9028. case CDP_SET_NSS_CFG:
  9029. wlan_cfg_set_dp_soc_nss_cfg(wlan_cfg_ctx,
  9030. val.cdp_psoc_param_en_nss_cfg);
  9031. /*
  9032. * TODO: masked out based on the per offloaded radio
  9033. */
  9034. switch (val.cdp_psoc_param_en_nss_cfg) {
  9035. case dp_nss_cfg_default:
  9036. break;
  9037. case dp_nss_cfg_first_radio:
  9038. /*
  9039. * This configuration is valid for single band radio which
  9040. * is also NSS offload.
  9041. */
  9042. case dp_nss_cfg_dbdc:
  9043. case dp_nss_cfg_dbtc:
  9044. wlan_cfg_set_num_tx_desc_pool(wlan_cfg_ctx, 0);
  9045. wlan_cfg_set_num_tx_ext_desc_pool(wlan_cfg_ctx, 0);
  9046. wlan_cfg_set_num_tx_desc(wlan_cfg_ctx, 0);
  9047. wlan_cfg_set_num_tx_ext_desc(wlan_cfg_ctx, 0);
  9048. break;
  9049. default:
  9050. dp_cdp_err("%pK: Invalid offload config %d",
  9051. soc, val.cdp_psoc_param_en_nss_cfg);
  9052. }
  9053. dp_cdp_err("%pK: nss-wifi<0> nss config is enabled"
  9054. , soc);
  9055. break;
  9056. case CDP_SET_PREFERRED_HW_MODE:
  9057. soc->preferred_hw_mode = val.cdp_psoc_param_preferred_hw_mode;
  9058. break;
  9059. default:
  9060. break;
  9061. }
  9062. return QDF_STATUS_SUCCESS;
  9063. }
  9064. /*
  9065. * dp_get_psoc_param: function to get parameters in soc
  9066. * @cdp_soc : DP soc handle
  9067. * @param: parameter type to be set
  9068. * @val: address of buffer
  9069. *
  9070. * return: status
  9071. */
  9072. static QDF_STATUS dp_get_psoc_param(struct cdp_soc_t *cdp_soc,
  9073. enum cdp_psoc_param_type param,
  9074. cdp_config_param_type *val)
  9075. {
  9076. struct dp_soc *soc = (struct dp_soc *)cdp_soc;
  9077. if (!soc)
  9078. return QDF_STATUS_E_FAILURE;
  9079. switch (param) {
  9080. case CDP_CFG_PEER_EXT_STATS:
  9081. val->cdp_psoc_param_pext_stats =
  9082. wlan_cfg_is_peer_ext_stats_enabled(soc->wlan_cfg_ctx);
  9083. break;
  9084. default:
  9085. dp_warn("Invalid param");
  9086. break;
  9087. }
  9088. return QDF_STATUS_SUCCESS;
  9089. }
  9090. /**
  9091. * dp_peer_update_pkt_capture_params: Set Rx & Tx Capture flags for a peer
  9092. * @soc: DP_SOC handle
  9093. * @pdev_id: id of DP_PDEV handle
  9094. * @is_rx_pkt_cap_enable: enable/disable Rx packet capture in monitor mode
  9095. * @is_tx_pkt_cap_enable: enable/disable/delete/print
  9096. * Tx packet capture in monitor mode
  9097. * @peer_mac: MAC address for which the above need to be enabled/disabled
  9098. *
  9099. * Return: Success if Rx & Tx capture is enabled for peer, false otherwise
  9100. */
  9101. QDF_STATUS
  9102. dp_peer_update_pkt_capture_params(ol_txrx_soc_handle soc,
  9103. uint8_t pdev_id,
  9104. bool is_rx_pkt_cap_enable,
  9105. uint8_t is_tx_pkt_cap_enable,
  9106. uint8_t *peer_mac)
  9107. {
  9108. struct dp_peer *peer;
  9109. QDF_STATUS status;
  9110. struct dp_pdev *pdev =
  9111. dp_get_pdev_from_soc_pdev_id_wifi3((struct dp_soc *)soc,
  9112. pdev_id);
  9113. if (!pdev)
  9114. return QDF_STATUS_E_FAILURE;
  9115. peer = dp_peer_find_hash_find((struct dp_soc *)soc,
  9116. peer_mac, 0, DP_VDEV_ALL,
  9117. DP_MOD_ID_CDP);
  9118. if (!peer)
  9119. return QDF_STATUS_E_FAILURE;
  9120. /* we need to set tx pkt capture for non associated peer */
  9121. status = dp_peer_set_tx_capture_enabled(pdev, peer,
  9122. is_tx_pkt_cap_enable,
  9123. peer_mac);
  9124. status = dp_peer_set_rx_capture_enabled(pdev, peer,
  9125. is_rx_pkt_cap_enable,
  9126. peer_mac);
  9127. dp_peer_unref_delete(peer, DP_MOD_ID_CDP);
  9128. return status;
  9129. }
  9130. /*
  9131. * dp_set_vdev_dscp_tid_map_wifi3(): Update Map ID selected for particular vdev
  9132. * @soc: DP_SOC handle
  9133. * @vdev_id: id of DP_VDEV handle
  9134. * @map_id:ID of map that needs to be updated
  9135. *
  9136. * Return: QDF_STATUS
  9137. */
  9138. static QDF_STATUS dp_set_vdev_dscp_tid_map_wifi3(ol_txrx_soc_handle cdp_soc,
  9139. uint8_t vdev_id,
  9140. uint8_t map_id)
  9141. {
  9142. struct dp_soc *soc = cdp_soc_t_to_dp_soc(cdp_soc);
  9143. struct dp_vdev *vdev = dp_vdev_get_ref_by_id(soc, vdev_id,
  9144. DP_MOD_ID_CDP);
  9145. if (vdev) {
  9146. vdev->dscp_tid_map_id = map_id;
  9147. /* Updatr flag for transmit tid classification */
  9148. if (vdev->dscp_tid_map_id < soc->num_hw_dscp_tid_map)
  9149. vdev->skip_sw_tid_classification |=
  9150. DP_TX_HW_DSCP_TID_MAP_VALID;
  9151. else
  9152. vdev->skip_sw_tid_classification &=
  9153. ~DP_TX_HW_DSCP_TID_MAP_VALID;
  9154. dp_vdev_unref_delete(soc, vdev, DP_MOD_ID_CDP);
  9155. return QDF_STATUS_SUCCESS;
  9156. }
  9157. return QDF_STATUS_E_FAILURE;
  9158. }
  9159. #ifdef DP_RATETABLE_SUPPORT
  9160. static int dp_txrx_get_ratekbps(int preamb, int mcs,
  9161. int htflag, int gintval)
  9162. {
  9163. uint32_t rix;
  9164. uint16_t ratecode;
  9165. return dp_getrateindex((uint32_t)gintval, (uint16_t)mcs, 1,
  9166. (uint8_t)preamb, 1, &rix, &ratecode);
  9167. }
  9168. #else
  9169. static int dp_txrx_get_ratekbps(int preamb, int mcs,
  9170. int htflag, int gintval)
  9171. {
  9172. return 0;
  9173. }
  9174. #endif
  9175. /* dp_txrx_get_pdev_stats - Returns cdp_pdev_stats
  9176. * @soc: DP soc handle
  9177. * @pdev_id: id of DP pdev handle
  9178. * @pdev_stats: buffer to copy to
  9179. *
  9180. * return : status success/failure
  9181. */
  9182. static QDF_STATUS
  9183. dp_txrx_get_pdev_stats(struct cdp_soc_t *soc, uint8_t pdev_id,
  9184. struct cdp_pdev_stats *pdev_stats)
  9185. {
  9186. struct dp_pdev *pdev =
  9187. dp_get_pdev_from_soc_pdev_id_wifi3((struct dp_soc *)soc,
  9188. pdev_id);
  9189. if (!pdev)
  9190. return QDF_STATUS_E_FAILURE;
  9191. dp_aggregate_pdev_stats(pdev);
  9192. qdf_mem_copy(pdev_stats, &pdev->stats, sizeof(struct cdp_pdev_stats));
  9193. return QDF_STATUS_SUCCESS;
  9194. }
  9195. /* dp_txrx_update_vdev_me_stats(): Update vdev ME stats sent from CDP
  9196. * @vdev: DP vdev handle
  9197. * @buf: buffer containing specific stats structure
  9198. *
  9199. * Returns: void
  9200. */
  9201. static void dp_txrx_update_vdev_me_stats(struct dp_vdev *vdev,
  9202. void *buf)
  9203. {
  9204. struct cdp_tx_ingress_stats *host_stats = NULL;
  9205. if (!buf) {
  9206. dp_cdp_err("%pK: Invalid host stats buf", vdev->pdev->soc);
  9207. return;
  9208. }
  9209. host_stats = (struct cdp_tx_ingress_stats *)buf;
  9210. DP_STATS_INC_PKT(vdev, tx_i.mcast_en.mcast_pkt,
  9211. host_stats->mcast_en.mcast_pkt.num,
  9212. host_stats->mcast_en.mcast_pkt.bytes);
  9213. DP_STATS_INC(vdev, tx_i.mcast_en.dropped_map_error,
  9214. host_stats->mcast_en.dropped_map_error);
  9215. DP_STATS_INC(vdev, tx_i.mcast_en.dropped_self_mac,
  9216. host_stats->mcast_en.dropped_self_mac);
  9217. DP_STATS_INC(vdev, tx_i.mcast_en.dropped_send_fail,
  9218. host_stats->mcast_en.dropped_send_fail);
  9219. DP_STATS_INC(vdev, tx_i.mcast_en.ucast,
  9220. host_stats->mcast_en.ucast);
  9221. DP_STATS_INC(vdev, tx_i.mcast_en.fail_seg_alloc,
  9222. host_stats->mcast_en.fail_seg_alloc);
  9223. DP_STATS_INC(vdev, tx_i.mcast_en.clone_fail,
  9224. host_stats->mcast_en.clone_fail);
  9225. }
  9226. /* dp_txrx_update_vdev_igmp_me_stats(): Update vdev IGMP ME stats sent from CDP
  9227. * @vdev: DP vdev handle
  9228. * @buf: buffer containing specific stats structure
  9229. *
  9230. * Returns: void
  9231. */
  9232. static void dp_txrx_update_vdev_igmp_me_stats(struct dp_vdev *vdev,
  9233. void *buf)
  9234. {
  9235. struct cdp_tx_ingress_stats *host_stats = NULL;
  9236. if (!buf) {
  9237. dp_cdp_err("%pK: Invalid host stats buf", vdev->pdev->soc);
  9238. return;
  9239. }
  9240. host_stats = (struct cdp_tx_ingress_stats *)buf;
  9241. DP_STATS_INC(vdev, tx_i.igmp_mcast_en.igmp_rcvd,
  9242. host_stats->igmp_mcast_en.igmp_rcvd);
  9243. DP_STATS_INC(vdev, tx_i.igmp_mcast_en.igmp_ucast_converted,
  9244. host_stats->igmp_mcast_en.igmp_ucast_converted);
  9245. }
  9246. /* dp_txrx_update_vdev_host_stats(): Update stats sent through CDP
  9247. * @soc: DP soc handle
  9248. * @vdev_id: id of DP vdev handle
  9249. * @buf: buffer containing specific stats structure
  9250. * @stats_id: stats type
  9251. *
  9252. * Returns: QDF_STATUS
  9253. */
  9254. static QDF_STATUS dp_txrx_update_vdev_host_stats(struct cdp_soc_t *soc_hdl,
  9255. uint8_t vdev_id,
  9256. void *buf,
  9257. uint16_t stats_id)
  9258. {
  9259. struct dp_soc *soc = cdp_soc_t_to_dp_soc(soc_hdl);
  9260. struct dp_vdev *vdev = dp_vdev_get_ref_by_id(soc, vdev_id,
  9261. DP_MOD_ID_CDP);
  9262. if (!vdev) {
  9263. dp_cdp_err("%pK: Invalid vdev handle", soc);
  9264. return QDF_STATUS_E_FAILURE;
  9265. }
  9266. switch (stats_id) {
  9267. case DP_VDEV_STATS_PKT_CNT_ONLY:
  9268. break;
  9269. case DP_VDEV_STATS_TX_ME:
  9270. dp_txrx_update_vdev_me_stats(vdev, buf);
  9271. dp_txrx_update_vdev_igmp_me_stats(vdev, buf);
  9272. break;
  9273. default:
  9274. qdf_info("Invalid stats_id %d", stats_id);
  9275. break;
  9276. }
  9277. dp_vdev_unref_delete(soc, vdev, DP_MOD_ID_CDP);
  9278. return QDF_STATUS_SUCCESS;
  9279. }
  9280. /* dp_txrx_get_peer_stats - will return cdp_peer_stats
  9281. * @soc: soc handle
  9282. * @vdev_id: id of vdev handle
  9283. * @peer_mac: mac of DP_PEER handle
  9284. * @peer_stats: buffer to copy to
  9285. * return : status success/failure
  9286. */
  9287. static QDF_STATUS
  9288. dp_txrx_get_peer_stats(struct cdp_soc_t *soc, uint8_t vdev_id,
  9289. uint8_t *peer_mac, struct cdp_peer_stats *peer_stats)
  9290. {
  9291. QDF_STATUS status = QDF_STATUS_SUCCESS;
  9292. struct dp_peer *peer = dp_peer_find_hash_find((struct dp_soc *)soc,
  9293. peer_mac, 0, vdev_id,
  9294. DP_MOD_ID_CDP);
  9295. if (!peer)
  9296. return QDF_STATUS_E_FAILURE;
  9297. qdf_mem_copy(peer_stats, &peer->stats,
  9298. sizeof(struct cdp_peer_stats));
  9299. dp_peer_unref_delete(peer, DP_MOD_ID_CDP);
  9300. return status;
  9301. }
  9302. /* dp_txrx_get_peer_stats_param - will return specified cdp_peer_stats
  9303. * @param soc - soc handle
  9304. * @param vdev_id - vdev_id of vdev object
  9305. * @param peer_mac - mac address of the peer
  9306. * @param type - enum of required stats
  9307. * @param buf - buffer to hold the value
  9308. * return : status success/failure
  9309. */
  9310. static QDF_STATUS
  9311. dp_txrx_get_peer_stats_param(struct cdp_soc_t *soc, uint8_t vdev_id,
  9312. uint8_t *peer_mac, enum cdp_peer_stats_type type,
  9313. cdp_peer_stats_param_t *buf)
  9314. {
  9315. QDF_STATUS ret = QDF_STATUS_SUCCESS;
  9316. struct dp_peer *peer = dp_peer_find_hash_find((struct dp_soc *)soc,
  9317. peer_mac, 0, vdev_id,
  9318. DP_MOD_ID_CDP);
  9319. if (!peer) {
  9320. dp_peer_err("%pK: Invalid Peer for Mac " QDF_MAC_ADDR_FMT,
  9321. soc, QDF_MAC_ADDR_REF(peer_mac));
  9322. return QDF_STATUS_E_FAILURE;
  9323. } else if (type < cdp_peer_stats_max) {
  9324. switch (type) {
  9325. case cdp_peer_tx_ucast:
  9326. buf->tx_ucast = peer->stats.tx.ucast;
  9327. break;
  9328. case cdp_peer_tx_mcast:
  9329. buf->tx_mcast = peer->stats.tx.mcast;
  9330. break;
  9331. case cdp_peer_tx_rate:
  9332. buf->tx_rate = peer->stats.tx.tx_rate;
  9333. break;
  9334. case cdp_peer_tx_last_tx_rate:
  9335. buf->last_tx_rate = peer->stats.tx.last_tx_rate;
  9336. break;
  9337. case cdp_peer_tx_inactive_time:
  9338. buf->tx_inactive_time = peer->stats.tx.inactive_time;
  9339. break;
  9340. case cdp_peer_tx_ratecode:
  9341. buf->tx_ratecode = peer->stats.tx.tx_ratecode;
  9342. break;
  9343. case cdp_peer_tx_flags:
  9344. buf->tx_flags = peer->stats.tx.tx_flags;
  9345. break;
  9346. case cdp_peer_tx_power:
  9347. buf->tx_power = peer->stats.tx.tx_power;
  9348. break;
  9349. case cdp_peer_rx_rate:
  9350. buf->rx_rate = peer->stats.rx.rx_rate;
  9351. break;
  9352. case cdp_peer_rx_last_rx_rate:
  9353. buf->last_rx_rate = peer->stats.rx.last_rx_rate;
  9354. break;
  9355. case cdp_peer_rx_ratecode:
  9356. buf->rx_ratecode = peer->stats.rx.rx_ratecode;
  9357. break;
  9358. case cdp_peer_rx_ucast:
  9359. buf->rx_ucast = peer->stats.rx.unicast;
  9360. break;
  9361. case cdp_peer_rx_flags:
  9362. buf->rx_flags = peer->stats.rx.rx_flags;
  9363. break;
  9364. case cdp_peer_rx_avg_snr:
  9365. buf->rx_avg_snr = peer->stats.rx.avg_snr;
  9366. break;
  9367. default:
  9368. dp_peer_err("%pK: Invalid value", soc);
  9369. ret = QDF_STATUS_E_FAILURE;
  9370. break;
  9371. }
  9372. } else {
  9373. dp_peer_err("%pK: Invalid value", soc);
  9374. ret = QDF_STATUS_E_FAILURE;
  9375. }
  9376. dp_peer_unref_delete(peer, DP_MOD_ID_CDP);
  9377. return ret;
  9378. }
  9379. /* dp_txrx_reset_peer_stats - reset cdp_peer_stats for particular peer
  9380. * @soc: soc handle
  9381. * @vdev_id: id of vdev handle
  9382. * @peer_mac: mac of DP_PEER handle
  9383. *
  9384. * return : QDF_STATUS
  9385. */
  9386. static QDF_STATUS
  9387. dp_txrx_reset_peer_stats(struct cdp_soc_t *soc, uint8_t vdev_id,
  9388. uint8_t *peer_mac)
  9389. {
  9390. QDF_STATUS status = QDF_STATUS_SUCCESS;
  9391. struct dp_peer *peer = dp_peer_find_hash_find((struct dp_soc *)soc,
  9392. peer_mac, 0, vdev_id,
  9393. DP_MOD_ID_CDP);
  9394. if (!peer)
  9395. return QDF_STATUS_E_FAILURE;
  9396. qdf_mem_zero(&peer->stats, sizeof(peer->stats));
  9397. dp_peer_unref_delete(peer, DP_MOD_ID_CDP);
  9398. return status;
  9399. }
  9400. /* dp_txrx_get_vdev_stats - Update buffer with cdp_vdev_stats
  9401. * @vdev_handle: DP_VDEV handle
  9402. * @buf: buffer for vdev stats
  9403. *
  9404. * return : int
  9405. */
  9406. static int dp_txrx_get_vdev_stats(struct cdp_soc_t *soc_hdl, uint8_t vdev_id,
  9407. void *buf, bool is_aggregate)
  9408. {
  9409. struct dp_soc *soc = cdp_soc_t_to_dp_soc(soc_hdl);
  9410. struct cdp_vdev_stats *vdev_stats;
  9411. struct dp_vdev *vdev = dp_vdev_get_ref_by_id(soc, vdev_id,
  9412. DP_MOD_ID_CDP);
  9413. if (!vdev)
  9414. return 1;
  9415. vdev_stats = (struct cdp_vdev_stats *)buf;
  9416. if (is_aggregate) {
  9417. dp_aggregate_vdev_stats(vdev, buf);
  9418. } else {
  9419. qdf_mem_copy(vdev_stats, &vdev->stats, sizeof(vdev->stats));
  9420. }
  9421. dp_vdev_unref_delete(soc, vdev, DP_MOD_ID_CDP);
  9422. return 0;
  9423. }
  9424. /*
  9425. * dp_get_total_per(): get total per
  9426. * @soc: DP soc handle
  9427. * @pdev_id: id of DP_PDEV handle
  9428. *
  9429. * Return: % error rate using retries per packet and success packets
  9430. */
  9431. static int dp_get_total_per(struct cdp_soc_t *soc, uint8_t pdev_id)
  9432. {
  9433. struct dp_pdev *pdev =
  9434. dp_get_pdev_from_soc_pdev_id_wifi3((struct dp_soc *)soc,
  9435. pdev_id);
  9436. if (!pdev)
  9437. return 0;
  9438. dp_aggregate_pdev_stats(pdev);
  9439. if ((pdev->stats.tx.tx_success.num + pdev->stats.tx.retries) == 0)
  9440. return 0;
  9441. return ((pdev->stats.tx.retries * 100) /
  9442. ((pdev->stats.tx.tx_success.num) + (pdev->stats.tx.retries)));
  9443. }
  9444. /*
  9445. * dp_txrx_stats_publish(): publish pdev stats into a buffer
  9446. * @soc: DP soc handle
  9447. * @pdev_id: id of DP_PDEV handle
  9448. * @buf: to hold pdev_stats
  9449. *
  9450. * Return: int
  9451. */
  9452. static int
  9453. dp_txrx_stats_publish(struct cdp_soc_t *soc, uint8_t pdev_id,
  9454. struct cdp_stats_extd *buf)
  9455. {
  9456. struct cdp_txrx_stats_req req = {0,};
  9457. struct dp_pdev *pdev =
  9458. dp_get_pdev_from_soc_pdev_id_wifi3((struct dp_soc *)soc,
  9459. pdev_id);
  9460. if (!pdev)
  9461. return TXRX_STATS_LEVEL_OFF;
  9462. dp_aggregate_pdev_stats(pdev);
  9463. req.stats = (enum cdp_stats)HTT_DBG_EXT_STATS_PDEV_TX;
  9464. req.cookie_val = DBG_STATS_COOKIE_DP_STATS;
  9465. dp_h2t_ext_stats_msg_send(pdev, req.stats, req.param0,
  9466. req.param1, req.param2, req.param3, 0,
  9467. req.cookie_val, 0);
  9468. msleep(DP_MAX_SLEEP_TIME);
  9469. req.stats = (enum cdp_stats)HTT_DBG_EXT_STATS_PDEV_RX;
  9470. req.cookie_val = DBG_STATS_COOKIE_DP_STATS;
  9471. dp_h2t_ext_stats_msg_send(pdev, req.stats, req.param0,
  9472. req.param1, req.param2, req.param3, 0,
  9473. req.cookie_val, 0);
  9474. msleep(DP_MAX_SLEEP_TIME);
  9475. qdf_mem_copy(buf, &pdev->stats, sizeof(struct cdp_pdev_stats));
  9476. return TXRX_STATS_LEVEL;
  9477. }
  9478. /**
  9479. * dp_set_pdev_dscp_tid_map_wifi3(): update dscp tid map in pdev
  9480. * @soc: soc handle
  9481. * @pdev_id: id of DP_PDEV handle
  9482. * @map_id: ID of map that needs to be updated
  9483. * @tos: index value in map
  9484. * @tid: tid value passed by the user
  9485. *
  9486. * Return: QDF_STATUS
  9487. */
  9488. static QDF_STATUS
  9489. dp_set_pdev_dscp_tid_map_wifi3(struct cdp_soc_t *soc_handle,
  9490. uint8_t pdev_id,
  9491. uint8_t map_id,
  9492. uint8_t tos, uint8_t tid)
  9493. {
  9494. uint8_t dscp;
  9495. struct dp_soc *soc = (struct dp_soc *)soc_handle;
  9496. struct dp_pdev *pdev = dp_get_pdev_from_soc_pdev_id_wifi3(soc, pdev_id);
  9497. if (!pdev)
  9498. return QDF_STATUS_E_FAILURE;
  9499. dscp = (tos >> DP_IP_DSCP_SHIFT) & DP_IP_DSCP_MASK;
  9500. pdev->dscp_tid_map[map_id][dscp] = tid;
  9501. if (map_id < soc->num_hw_dscp_tid_map)
  9502. hal_tx_update_dscp_tid(soc->hal_soc, tid,
  9503. map_id, dscp);
  9504. else
  9505. return QDF_STATUS_E_FAILURE;
  9506. return QDF_STATUS_SUCCESS;
  9507. }
  9508. /**
  9509. * dp_fw_stats_process(): Process TxRX FW stats request
  9510. * @vdev_handle: DP VDEV handle
  9511. * @req: stats request
  9512. *
  9513. * return: int
  9514. */
  9515. static int dp_fw_stats_process(struct dp_vdev *vdev,
  9516. struct cdp_txrx_stats_req *req)
  9517. {
  9518. struct dp_pdev *pdev = NULL;
  9519. uint32_t stats = req->stats;
  9520. uint8_t mac_id = req->mac_id;
  9521. if (!vdev) {
  9522. DP_TRACE(NONE, "VDEV not found");
  9523. return 1;
  9524. }
  9525. pdev = vdev->pdev;
  9526. /*
  9527. * For HTT_DBG_EXT_STATS_RESET command, FW need to config
  9528. * from param0 to param3 according to below rule:
  9529. *
  9530. * PARAM:
  9531. * - config_param0 : start_offset (stats type)
  9532. * - config_param1 : stats bmask from start offset
  9533. * - config_param2 : stats bmask from start offset + 32
  9534. * - config_param3 : stats bmask from start offset + 64
  9535. */
  9536. if (req->stats == CDP_TXRX_STATS_0) {
  9537. req->param0 = HTT_DBG_EXT_STATS_PDEV_TX;
  9538. req->param1 = 0xFFFFFFFF;
  9539. req->param2 = 0xFFFFFFFF;
  9540. req->param3 = 0xFFFFFFFF;
  9541. } else if (req->stats == (uint8_t)HTT_DBG_EXT_STATS_PDEV_TX_MU) {
  9542. req->param0 = HTT_DBG_EXT_STATS_SET_VDEV_MASK(vdev->vdev_id);
  9543. }
  9544. if (req->stats == (uint8_t)HTT_DBG_EXT_STATS_PDEV_RX_RATE_EXT) {
  9545. return dp_h2t_ext_stats_msg_send(pdev,
  9546. HTT_DBG_EXT_STATS_PDEV_RX_RATE_EXT,
  9547. req->param0, req->param1, req->param2,
  9548. req->param3, 0, DBG_STATS_COOKIE_DEFAULT,
  9549. mac_id);
  9550. } else {
  9551. return dp_h2t_ext_stats_msg_send(pdev, stats, req->param0,
  9552. req->param1, req->param2, req->param3,
  9553. 0, DBG_STATS_COOKIE_DEFAULT, mac_id);
  9554. }
  9555. }
  9556. /**
  9557. * dp_txrx_stats_request - function to map to firmware and host stats
  9558. * @soc: soc handle
  9559. * @vdev_id: virtual device ID
  9560. * @req: stats request
  9561. *
  9562. * Return: QDF_STATUS
  9563. */
  9564. static
  9565. QDF_STATUS dp_txrx_stats_request(struct cdp_soc_t *soc_handle,
  9566. uint8_t vdev_id,
  9567. struct cdp_txrx_stats_req *req)
  9568. {
  9569. struct dp_soc *soc = cdp_soc_t_to_dp_soc(soc_handle);
  9570. int host_stats;
  9571. int fw_stats;
  9572. enum cdp_stats stats;
  9573. int num_stats;
  9574. struct dp_vdev *vdev = dp_vdev_get_ref_by_id(soc, vdev_id,
  9575. DP_MOD_ID_CDP);
  9576. QDF_STATUS status = QDF_STATUS_E_INVAL;
  9577. if (!vdev || !req) {
  9578. dp_cdp_err("%pK: Invalid vdev/req instance", soc);
  9579. status = QDF_STATUS_E_INVAL;
  9580. goto fail0;
  9581. }
  9582. if (req->mac_id >= WLAN_CFG_MAC_PER_TARGET) {
  9583. dp_err("Invalid mac id request");
  9584. status = QDF_STATUS_E_INVAL;
  9585. goto fail0;
  9586. }
  9587. stats = req->stats;
  9588. if (stats >= CDP_TXRX_MAX_STATS) {
  9589. status = QDF_STATUS_E_INVAL;
  9590. goto fail0;
  9591. }
  9592. /*
  9593. * DP_CURR_FW_STATS_AVAIL: no of FW stats currently available
  9594. * has to be updated if new FW HTT stats added
  9595. */
  9596. if (stats > CDP_TXRX_STATS_HTT_MAX)
  9597. stats = stats + DP_CURR_FW_STATS_AVAIL - DP_HTT_DBG_EXT_STATS_MAX;
  9598. num_stats = QDF_ARRAY_SIZE(dp_stats_mapping_table);
  9599. if (stats >= num_stats) {
  9600. dp_cdp_err("%pK : Invalid stats option: %d", soc, stats);
  9601. status = QDF_STATUS_E_INVAL;
  9602. goto fail0;
  9603. }
  9604. req->stats = stats;
  9605. fw_stats = dp_stats_mapping_table[stats][STATS_FW];
  9606. host_stats = dp_stats_mapping_table[stats][STATS_HOST];
  9607. dp_info("stats: %u fw_stats_type: %d host_stats: %d",
  9608. stats, fw_stats, host_stats);
  9609. if (fw_stats != TXRX_FW_STATS_INVALID) {
  9610. /* update request with FW stats type */
  9611. req->stats = fw_stats;
  9612. status = dp_fw_stats_process(vdev, req);
  9613. } else if ((host_stats != TXRX_HOST_STATS_INVALID) &&
  9614. (host_stats <= TXRX_HOST_STATS_MAX))
  9615. status = dp_print_host_stats(vdev, req, soc);
  9616. else
  9617. dp_cdp_info("%pK: Wrong Input for TxRx Stats", soc);
  9618. fail0:
  9619. if (vdev)
  9620. dp_vdev_unref_delete(soc, vdev, DP_MOD_ID_CDP);
  9621. return status;
  9622. }
  9623. /*
  9624. * dp_txrx_dump_stats() - Dump statistics
  9625. * @value - Statistics option
  9626. */
  9627. static QDF_STATUS dp_txrx_dump_stats(struct cdp_soc_t *psoc, uint16_t value,
  9628. enum qdf_stats_verbosity_level level)
  9629. {
  9630. struct dp_soc *soc =
  9631. (struct dp_soc *)psoc;
  9632. QDF_STATUS status = QDF_STATUS_SUCCESS;
  9633. if (!soc) {
  9634. dp_cdp_err("%pK: soc is NULL", soc);
  9635. return QDF_STATUS_E_INVAL;
  9636. }
  9637. switch (value) {
  9638. case CDP_TXRX_PATH_STATS:
  9639. dp_txrx_path_stats(soc);
  9640. dp_print_soc_interrupt_stats(soc);
  9641. hal_dump_reg_write_stats(soc->hal_soc);
  9642. break;
  9643. case CDP_RX_RING_STATS:
  9644. dp_print_per_ring_stats(soc);
  9645. break;
  9646. case CDP_TXRX_TSO_STATS:
  9647. dp_print_tso_stats(soc, level);
  9648. break;
  9649. case CDP_DUMP_TX_FLOW_POOL_INFO:
  9650. if (level == QDF_STATS_VERBOSITY_LEVEL_HIGH)
  9651. cdp_dump_flow_pool_info((struct cdp_soc_t *)soc);
  9652. break;
  9653. case CDP_DP_NAPI_STATS:
  9654. dp_print_napi_stats(soc);
  9655. break;
  9656. case CDP_TXRX_DESC_STATS:
  9657. /* TODO: NOT IMPLEMENTED */
  9658. break;
  9659. case CDP_DP_RX_FISA_STATS:
  9660. dp_rx_dump_fisa_stats(soc);
  9661. break;
  9662. case CDP_DP_SWLM_STATS:
  9663. dp_print_swlm_stats(soc);
  9664. break;
  9665. default:
  9666. status = QDF_STATUS_E_INVAL;
  9667. break;
  9668. }
  9669. return status;
  9670. }
  9671. /**
  9672. * dp_txrx_clear_dump_stats() - clear dumpStats
  9673. * @soc- soc handle
  9674. * @value - stats option
  9675. *
  9676. * Return: 0 - Success, non-zero - failure
  9677. */
  9678. static
  9679. QDF_STATUS dp_txrx_clear_dump_stats(struct cdp_soc_t *soc_hdl, uint8_t pdev_id,
  9680. uint8_t value)
  9681. {
  9682. struct dp_soc *soc = cdp_soc_t_to_dp_soc(soc_hdl);
  9683. QDF_STATUS status = QDF_STATUS_SUCCESS;
  9684. if (!soc) {
  9685. dp_err("soc is NULL");
  9686. return QDF_STATUS_E_INVAL;
  9687. }
  9688. switch (value) {
  9689. case CDP_TXRX_TSO_STATS:
  9690. dp_txrx_clear_tso_stats(soc);
  9691. break;
  9692. default:
  9693. status = QDF_STATUS_E_INVAL;
  9694. break;
  9695. }
  9696. return status;
  9697. }
  9698. #ifdef QCA_LL_TX_FLOW_CONTROL_V2
  9699. /**
  9700. * dp_update_flow_control_parameters() - API to store datapath
  9701. * config parameters
  9702. * @soc: soc handle
  9703. * @cfg: ini parameter handle
  9704. *
  9705. * Return: void
  9706. */
  9707. static inline
  9708. void dp_update_flow_control_parameters(struct dp_soc *soc,
  9709. struct cdp_config_params *params)
  9710. {
  9711. soc->wlan_cfg_ctx->tx_flow_stop_queue_threshold =
  9712. params->tx_flow_stop_queue_threshold;
  9713. soc->wlan_cfg_ctx->tx_flow_start_queue_offset =
  9714. params->tx_flow_start_queue_offset;
  9715. }
  9716. #else
  9717. static inline
  9718. void dp_update_flow_control_parameters(struct dp_soc *soc,
  9719. struct cdp_config_params *params)
  9720. {
  9721. }
  9722. #endif
  9723. #ifdef WLAN_FEATURE_RX_SOFTIRQ_TIME_LIMIT
  9724. /* Max packet limit for TX Comp packet loop (dp_tx_comp_handler) */
  9725. #define DP_TX_COMP_LOOP_PKT_LIMIT_MAX 1024
  9726. /* Max packet limit for RX REAP Loop (dp_rx_process) */
  9727. #define DP_RX_REAP_LOOP_PKT_LIMIT_MAX 1024
  9728. static
  9729. void dp_update_rx_soft_irq_limit_params(struct dp_soc *soc,
  9730. struct cdp_config_params *params)
  9731. {
  9732. soc->wlan_cfg_ctx->tx_comp_loop_pkt_limit =
  9733. params->tx_comp_loop_pkt_limit;
  9734. if (params->tx_comp_loop_pkt_limit < DP_TX_COMP_LOOP_PKT_LIMIT_MAX)
  9735. soc->wlan_cfg_ctx->tx_comp_enable_eol_data_check = true;
  9736. else
  9737. soc->wlan_cfg_ctx->tx_comp_enable_eol_data_check = false;
  9738. soc->wlan_cfg_ctx->rx_reap_loop_pkt_limit =
  9739. params->rx_reap_loop_pkt_limit;
  9740. if (params->rx_reap_loop_pkt_limit < DP_RX_REAP_LOOP_PKT_LIMIT_MAX)
  9741. soc->wlan_cfg_ctx->rx_enable_eol_data_check = true;
  9742. else
  9743. soc->wlan_cfg_ctx->rx_enable_eol_data_check = false;
  9744. soc->wlan_cfg_ctx->rx_hp_oos_update_limit =
  9745. params->rx_hp_oos_update_limit;
  9746. dp_info("tx_comp_loop_pkt_limit %u tx_comp_enable_eol_data_check %u rx_reap_loop_pkt_limit %u rx_enable_eol_data_check %u rx_hp_oos_update_limit %u",
  9747. soc->wlan_cfg_ctx->tx_comp_loop_pkt_limit,
  9748. soc->wlan_cfg_ctx->tx_comp_enable_eol_data_check,
  9749. soc->wlan_cfg_ctx->rx_reap_loop_pkt_limit,
  9750. soc->wlan_cfg_ctx->rx_enable_eol_data_check,
  9751. soc->wlan_cfg_ctx->rx_hp_oos_update_limit);
  9752. }
  9753. static void dp_update_soft_irq_limits(struct dp_soc *soc, uint32_t tx_limit,
  9754. uint32_t rx_limit)
  9755. {
  9756. soc->wlan_cfg_ctx->tx_comp_loop_pkt_limit = tx_limit;
  9757. soc->wlan_cfg_ctx->rx_reap_loop_pkt_limit = rx_limit;
  9758. }
  9759. #else
  9760. static inline
  9761. void dp_update_rx_soft_irq_limit_params(struct dp_soc *soc,
  9762. struct cdp_config_params *params)
  9763. { }
  9764. static inline
  9765. void dp_update_soft_irq_limits(struct dp_soc *soc, uint32_t tx_limit,
  9766. uint32_t rx_limit)
  9767. {
  9768. }
  9769. #endif /* WLAN_FEATURE_RX_SOFTIRQ_TIME_LIMIT */
  9770. /**
  9771. * dp_update_config_parameters() - API to store datapath
  9772. * config parameters
  9773. * @soc: soc handle
  9774. * @cfg: ini parameter handle
  9775. *
  9776. * Return: status
  9777. */
  9778. static
  9779. QDF_STATUS dp_update_config_parameters(struct cdp_soc *psoc,
  9780. struct cdp_config_params *params)
  9781. {
  9782. struct dp_soc *soc = (struct dp_soc *)psoc;
  9783. if (!(soc)) {
  9784. dp_cdp_err("%pK: Invalid handle", soc);
  9785. return QDF_STATUS_E_INVAL;
  9786. }
  9787. soc->wlan_cfg_ctx->tso_enabled = params->tso_enable;
  9788. soc->wlan_cfg_ctx->lro_enabled = params->lro_enable;
  9789. soc->wlan_cfg_ctx->rx_hash = params->flow_steering_enable;
  9790. soc->wlan_cfg_ctx->p2p_tcp_udp_checksumoffload =
  9791. params->p2p_tcp_udp_checksumoffload;
  9792. soc->wlan_cfg_ctx->nan_tcp_udp_checksumoffload =
  9793. params->nan_tcp_udp_checksumoffload;
  9794. soc->wlan_cfg_ctx->tcp_udp_checksumoffload =
  9795. params->tcp_udp_checksumoffload;
  9796. soc->wlan_cfg_ctx->napi_enabled = params->napi_enable;
  9797. soc->wlan_cfg_ctx->ipa_enabled = params->ipa_enable;
  9798. soc->wlan_cfg_ctx->gro_enabled = params->gro_enable;
  9799. dp_update_rx_soft_irq_limit_params(soc, params);
  9800. dp_update_flow_control_parameters(soc, params);
  9801. return QDF_STATUS_SUCCESS;
  9802. }
  9803. static struct cdp_wds_ops dp_ops_wds = {
  9804. .vdev_set_wds = dp_vdev_set_wds,
  9805. #ifdef WDS_VENDOR_EXTENSION
  9806. .txrx_set_wds_rx_policy = dp_txrx_set_wds_rx_policy,
  9807. .txrx_wds_peer_tx_policy_update = dp_txrx_peer_wds_tx_policy_update,
  9808. #endif
  9809. };
  9810. /*
  9811. * dp_txrx_data_tx_cb_set(): set the callback for non standard tx
  9812. * @soc_hdl - datapath soc handle
  9813. * @vdev_id - virtual interface id
  9814. * @callback - callback function
  9815. * @ctxt: callback context
  9816. *
  9817. */
  9818. static void
  9819. dp_txrx_data_tx_cb_set(struct cdp_soc_t *soc_hdl, uint8_t vdev_id,
  9820. ol_txrx_data_tx_cb callback, void *ctxt)
  9821. {
  9822. struct dp_soc *soc = cdp_soc_t_to_dp_soc(soc_hdl);
  9823. struct dp_vdev *vdev = dp_vdev_get_ref_by_id(soc, vdev_id,
  9824. DP_MOD_ID_CDP);
  9825. if (!vdev)
  9826. return;
  9827. vdev->tx_non_std_data_callback.func = callback;
  9828. vdev->tx_non_std_data_callback.ctxt = ctxt;
  9829. dp_vdev_unref_delete(soc, vdev, DP_MOD_ID_CDP);
  9830. }
  9831. /**
  9832. * dp_pdev_get_dp_txrx_handle() - get dp handle from pdev
  9833. * @soc: datapath soc handle
  9834. * @pdev_id: id of datapath pdev handle
  9835. *
  9836. * Return: opaque pointer to dp txrx handle
  9837. */
  9838. static void *dp_pdev_get_dp_txrx_handle(struct cdp_soc_t *soc, uint8_t pdev_id)
  9839. {
  9840. struct dp_pdev *pdev =
  9841. dp_get_pdev_from_soc_pdev_id_wifi3((struct dp_soc *)soc,
  9842. pdev_id);
  9843. if (qdf_unlikely(!pdev))
  9844. return NULL;
  9845. return pdev->dp_txrx_handle;
  9846. }
  9847. /**
  9848. * dp_pdev_set_dp_txrx_handle() - set dp handle in pdev
  9849. * @soc: datapath soc handle
  9850. * @pdev_id: id of datapath pdev handle
  9851. * @dp_txrx_hdl: opaque pointer for dp_txrx_handle
  9852. *
  9853. * Return: void
  9854. */
  9855. static void
  9856. dp_pdev_set_dp_txrx_handle(struct cdp_soc_t *soc, uint8_t pdev_id,
  9857. void *dp_txrx_hdl)
  9858. {
  9859. struct dp_pdev *pdev =
  9860. dp_get_pdev_from_soc_pdev_id_wifi3((struct dp_soc *)soc,
  9861. pdev_id);
  9862. if (!pdev)
  9863. return;
  9864. pdev->dp_txrx_handle = dp_txrx_hdl;
  9865. }
  9866. /**
  9867. * dp_vdev_get_dp_ext_handle() - get dp handle from vdev
  9868. * @soc: datapath soc handle
  9869. * @vdev_id: vdev id
  9870. *
  9871. * Return: opaque pointer to dp txrx handle
  9872. */
  9873. static void *dp_vdev_get_dp_ext_handle(ol_txrx_soc_handle soc_hdl,
  9874. uint8_t vdev_id)
  9875. {
  9876. struct dp_soc *soc = cdp_soc_t_to_dp_soc(soc_hdl);
  9877. struct dp_vdev *vdev = dp_vdev_get_ref_by_id(soc, vdev_id,
  9878. DP_MOD_ID_CDP);
  9879. void *dp_ext_handle;
  9880. if (!vdev)
  9881. return NULL;
  9882. dp_ext_handle = vdev->vdev_dp_ext_handle;
  9883. dp_vdev_unref_delete(soc, vdev, DP_MOD_ID_CDP);
  9884. return dp_ext_handle;
  9885. }
  9886. /**
  9887. * dp_vdev_set_dp_ext_handle() - set dp handle in vdev
  9888. * @soc: datapath soc handle
  9889. * @vdev_id: vdev id
  9890. * @size: size of advance dp handle
  9891. *
  9892. * Return: QDF_STATUS
  9893. */
  9894. static QDF_STATUS
  9895. dp_vdev_set_dp_ext_handle(ol_txrx_soc_handle soc_hdl, uint8_t vdev_id,
  9896. uint16_t size)
  9897. {
  9898. struct dp_soc *soc = cdp_soc_t_to_dp_soc(soc_hdl);
  9899. struct dp_vdev *vdev = dp_vdev_get_ref_by_id(soc, vdev_id,
  9900. DP_MOD_ID_CDP);
  9901. void *dp_ext_handle;
  9902. if (!vdev)
  9903. return QDF_STATUS_E_FAILURE;
  9904. dp_ext_handle = qdf_mem_malloc(size);
  9905. if (!dp_ext_handle) {
  9906. dp_vdev_unref_delete(soc, vdev, DP_MOD_ID_CDP);
  9907. return QDF_STATUS_E_FAILURE;
  9908. }
  9909. vdev->vdev_dp_ext_handle = dp_ext_handle;
  9910. dp_vdev_unref_delete(soc, vdev, DP_MOD_ID_CDP);
  9911. return QDF_STATUS_SUCCESS;
  9912. }
  9913. /**
  9914. * dp_vdev_inform_ll_conn() - Inform vdev to add/delete a latency critical
  9915. * connection for this vdev
  9916. * @soc_hdl: CDP soc handle
  9917. * @vdev_id: vdev ID
  9918. * @action: Add/Delete action
  9919. *
  9920. * Returns: QDF_STATUS.
  9921. */
  9922. static QDF_STATUS
  9923. dp_vdev_inform_ll_conn(struct cdp_soc_t *soc_hdl, uint8_t vdev_id,
  9924. enum vdev_ll_conn_actions action)
  9925. {
  9926. struct dp_soc *soc = cdp_soc_t_to_dp_soc(soc_hdl);
  9927. struct dp_vdev *vdev = dp_vdev_get_ref_by_id(soc, vdev_id,
  9928. DP_MOD_ID_CDP);
  9929. if (!vdev) {
  9930. dp_err("LL connection action for invalid vdev %d", vdev_id);
  9931. return QDF_STATUS_E_FAILURE;
  9932. }
  9933. switch (action) {
  9934. case CDP_VDEV_LL_CONN_ADD:
  9935. vdev->num_latency_critical_conn++;
  9936. break;
  9937. case CDP_VDEV_LL_CONN_DEL:
  9938. vdev->num_latency_critical_conn--;
  9939. break;
  9940. default:
  9941. dp_err("LL connection action invalid %d", action);
  9942. break;
  9943. }
  9944. dp_vdev_unref_delete(soc, vdev, DP_MOD_ID_CDP);
  9945. return QDF_STATUS_SUCCESS;
  9946. }
  9947. #ifdef WLAN_DP_FEATURE_SW_LATENCY_MGR
  9948. /**
  9949. * dp_soc_set_swlm_enable() - Enable/Disable SWLM if initialized.
  9950. * @soc_hdl: CDP Soc handle
  9951. * @value: Enable/Disable value
  9952. *
  9953. * Returns: QDF_STATUS
  9954. */
  9955. static QDF_STATUS dp_soc_set_swlm_enable(struct cdp_soc_t *soc_hdl,
  9956. uint8_t value)
  9957. {
  9958. struct dp_soc *soc = cdp_soc_t_to_dp_soc(soc_hdl);
  9959. if (!soc->swlm.is_init) {
  9960. dp_err("SWLM is not initialized");
  9961. return QDF_STATUS_E_FAILURE;
  9962. }
  9963. soc->swlm.is_enabled = !!value;
  9964. return QDF_STATUS_SUCCESS;
  9965. }
  9966. /**
  9967. * dp_soc_is_swlm_enabled() - Check if SWLM is enabled.
  9968. * @soc_hdl: CDP Soc handle
  9969. *
  9970. * Returns: QDF_STATUS
  9971. */
  9972. static uint8_t dp_soc_is_swlm_enabled(struct cdp_soc_t *soc_hdl)
  9973. {
  9974. struct dp_soc *soc = cdp_soc_t_to_dp_soc(soc_hdl);
  9975. return soc->swlm.is_enabled;
  9976. }
  9977. #endif
  9978. /**
  9979. * dp_display_srng_info() - Dump the srng HP TP info
  9980. * @soc_hdl: CDP Soc handle
  9981. *
  9982. * This function dumps the SW hp/tp values for the important rings.
  9983. * HW hp/tp values are not being dumped, since it can lead to
  9984. * READ NOC error when UMAC is in low power state. MCC does not have
  9985. * device force wake working yet.
  9986. *
  9987. * Return: none
  9988. */
  9989. static void dp_display_srng_info(struct cdp_soc_t *soc_hdl)
  9990. {
  9991. struct dp_soc *soc = cdp_soc_t_to_dp_soc(soc_hdl);
  9992. hal_soc_handle_t hal_soc = soc->hal_soc;
  9993. uint32_t hp, tp, i;
  9994. dp_info("SRNG HP-TP data:");
  9995. for (i = 0; i < soc->num_tcl_data_rings; i++) {
  9996. hal_get_sw_hptp(hal_soc, soc->tcl_data_ring[i].hal_srng,
  9997. &hp, &tp);
  9998. dp_info("TCL DATA ring[%d]: hp=0x%x, tp=0x%x", i, hp, tp);
  9999. hal_get_sw_hptp(hal_soc, soc->tx_comp_ring[i].hal_srng,
  10000. &hp, &tp);
  10001. dp_info("TX comp ring[%d]: hp=0x%x, tp=0x%x", i, hp, tp);
  10002. }
  10003. for (i = 0; i < soc->num_reo_dest_rings; i++) {
  10004. hal_get_sw_hptp(hal_soc, soc->reo_dest_ring[i].hal_srng,
  10005. &hp, &tp);
  10006. dp_info("REO DST ring[%d]: hp=0x%x, tp=0x%x", i, hp, tp);
  10007. }
  10008. hal_get_sw_hptp(hal_soc, soc->reo_exception_ring.hal_srng, &hp, &tp);
  10009. dp_info("REO exception ring: hp=0x%x, tp=0x%x", hp, tp);
  10010. hal_get_sw_hptp(hal_soc, soc->rx_rel_ring.hal_srng, &hp, &tp);
  10011. dp_info("WBM RX release ring: hp=0x%x, tp=0x%x", hp, tp);
  10012. hal_get_sw_hptp(hal_soc, soc->wbm_desc_rel_ring.hal_srng, &hp, &tp);
  10013. dp_info("WBM desc release ring: hp=0x%x, tp=0x%x", hp, tp);
  10014. }
  10015. /**
  10016. * dp_soc_get_dp_txrx_handle() - get context for external-dp from dp soc
  10017. * @soc_handle: datapath soc handle
  10018. *
  10019. * Return: opaque pointer to external dp (non-core DP)
  10020. */
  10021. static void *dp_soc_get_dp_txrx_handle(struct cdp_soc *soc_handle)
  10022. {
  10023. struct dp_soc *soc = (struct dp_soc *)soc_handle;
  10024. return soc->external_txrx_handle;
  10025. }
  10026. /**
  10027. * dp_soc_set_dp_txrx_handle() - set external dp handle in soc
  10028. * @soc_handle: datapath soc handle
  10029. * @txrx_handle: opaque pointer to external dp (non-core DP)
  10030. *
  10031. * Return: void
  10032. */
  10033. static void
  10034. dp_soc_set_dp_txrx_handle(struct cdp_soc *soc_handle, void *txrx_handle)
  10035. {
  10036. struct dp_soc *soc = (struct dp_soc *)soc_handle;
  10037. soc->external_txrx_handle = txrx_handle;
  10038. }
  10039. /**
  10040. * dp_soc_map_pdev_to_lmac() - Save pdev_id to lmac_id mapping
  10041. * @soc_hdl: datapath soc handle
  10042. * @pdev_id: id of the datapath pdev handle
  10043. * @lmac_id: lmac id
  10044. *
  10045. * Return: QDF_STATUS
  10046. */
  10047. static QDF_STATUS
  10048. dp_soc_map_pdev_to_lmac
  10049. (struct cdp_soc_t *soc_hdl, uint8_t pdev_id,
  10050. uint32_t lmac_id)
  10051. {
  10052. struct dp_soc *soc = (struct dp_soc *)soc_hdl;
  10053. wlan_cfg_set_hw_mac_idx(soc->wlan_cfg_ctx,
  10054. pdev_id,
  10055. lmac_id);
  10056. /*Set host PDEV ID for lmac_id*/
  10057. wlan_cfg_set_pdev_idx(soc->wlan_cfg_ctx,
  10058. pdev_id,
  10059. lmac_id);
  10060. return QDF_STATUS_SUCCESS;
  10061. }
  10062. /**
  10063. * dp_soc_handle_pdev_mode_change() - Update pdev to lmac mapping
  10064. * @soc_hdl: datapath soc handle
  10065. * @pdev_id: id of the datapath pdev handle
  10066. * @lmac_id: lmac id
  10067. *
  10068. * In the event of a dynamic mode change, update the pdev to lmac mapping
  10069. *
  10070. * Return: QDF_STATUS
  10071. */
  10072. static QDF_STATUS
  10073. dp_soc_handle_pdev_mode_change
  10074. (struct cdp_soc_t *soc_hdl, uint8_t pdev_id,
  10075. uint32_t lmac_id)
  10076. {
  10077. struct dp_soc *soc = (struct dp_soc *)soc_hdl;
  10078. struct dp_vdev *vdev = NULL;
  10079. uint8_t hw_pdev_id, mac_id;
  10080. struct dp_pdev *pdev = dp_get_pdev_from_soc_pdev_id_wifi3(soc,
  10081. pdev_id);
  10082. int nss_config = wlan_cfg_get_dp_soc_nss_cfg(soc->wlan_cfg_ctx);
  10083. if (qdf_unlikely(!pdev))
  10084. return QDF_STATUS_E_FAILURE;
  10085. pdev->lmac_id = lmac_id;
  10086. pdev->target_pdev_id =
  10087. dp_calculate_target_pdev_id_from_host_pdev_id(soc, pdev_id);
  10088. dp_info(" mode change %d %d\n", pdev->pdev_id, pdev->lmac_id);
  10089. /*Set host PDEV ID for lmac_id*/
  10090. wlan_cfg_set_pdev_idx(soc->wlan_cfg_ctx,
  10091. pdev->pdev_id,
  10092. lmac_id);
  10093. hw_pdev_id =
  10094. dp_get_target_pdev_id_for_host_pdev_id(soc,
  10095. pdev->pdev_id);
  10096. /*
  10097. * When NSS offload is enabled, send pdev_id->lmac_id
  10098. * and pdev_id to hw_pdev_id to NSS FW
  10099. */
  10100. if (nss_config) {
  10101. mac_id = pdev->lmac_id;
  10102. if (soc->cdp_soc.ol_ops->pdev_update_lmac_n_target_pdev_id)
  10103. soc->cdp_soc.ol_ops->
  10104. pdev_update_lmac_n_target_pdev_id(
  10105. soc->ctrl_psoc,
  10106. &pdev_id, &mac_id, &hw_pdev_id);
  10107. }
  10108. qdf_spin_lock_bh(&pdev->vdev_list_lock);
  10109. TAILQ_FOREACH(vdev, &pdev->vdev_list, vdev_list_elem) {
  10110. HTT_TX_TCL_METADATA_PDEV_ID_SET(vdev->htt_tcl_metadata,
  10111. hw_pdev_id);
  10112. vdev->lmac_id = pdev->lmac_id;
  10113. }
  10114. qdf_spin_unlock_bh(&pdev->vdev_list_lock);
  10115. return QDF_STATUS_SUCCESS;
  10116. }
  10117. /**
  10118. * dp_soc_set_pdev_status_down() - set pdev down/up status
  10119. * @soc: datapath soc handle
  10120. * @pdev_id: id of datapath pdev handle
  10121. * @is_pdev_down: pdev down/up status
  10122. *
  10123. * Return: QDF_STATUS
  10124. */
  10125. static QDF_STATUS
  10126. dp_soc_set_pdev_status_down(struct cdp_soc_t *soc, uint8_t pdev_id,
  10127. bool is_pdev_down)
  10128. {
  10129. struct dp_pdev *pdev =
  10130. dp_get_pdev_from_soc_pdev_id_wifi3((struct dp_soc *)soc,
  10131. pdev_id);
  10132. if (!pdev)
  10133. return QDF_STATUS_E_FAILURE;
  10134. pdev->is_pdev_down = is_pdev_down;
  10135. return QDF_STATUS_SUCCESS;
  10136. }
  10137. /**
  10138. * dp_get_cfg_capabilities() - get dp capabilities
  10139. * @soc_handle: datapath soc handle
  10140. * @dp_caps: enum for dp capabilities
  10141. *
  10142. * Return: bool to determine if dp caps is enabled
  10143. */
  10144. static bool
  10145. dp_get_cfg_capabilities(struct cdp_soc_t *soc_handle,
  10146. enum cdp_capabilities dp_caps)
  10147. {
  10148. struct dp_soc *soc = (struct dp_soc *)soc_handle;
  10149. return wlan_cfg_get_dp_caps(soc->wlan_cfg_ctx, dp_caps);
  10150. }
  10151. #ifdef FEATURE_AST
  10152. static QDF_STATUS
  10153. dp_peer_teardown_wifi3(struct cdp_soc_t *soc_hdl, uint8_t vdev_id,
  10154. uint8_t *peer_mac)
  10155. {
  10156. struct dp_soc *soc = (struct dp_soc *)soc_hdl;
  10157. QDF_STATUS status = QDF_STATUS_SUCCESS;
  10158. struct dp_peer *peer =
  10159. dp_peer_find_hash_find(soc, peer_mac, 0, vdev_id,
  10160. DP_MOD_ID_CDP);
  10161. /* Peer can be null for monitor vap mac address */
  10162. if (!peer) {
  10163. QDF_TRACE(QDF_MODULE_ID_TXRX, QDF_TRACE_LEVEL_DEBUG,
  10164. "%s: Invalid peer\n", __func__);
  10165. return QDF_STATUS_E_FAILURE;
  10166. }
  10167. dp_peer_update_state(soc, peer, DP_PEER_STATE_LOGICAL_DELETE);
  10168. qdf_spin_lock_bh(&soc->ast_lock);
  10169. dp_peer_delete_ast_entries(soc, peer);
  10170. qdf_spin_unlock_bh(&soc->ast_lock);
  10171. dp_peer_unref_delete(peer, DP_MOD_ID_CDP);
  10172. return status;
  10173. }
  10174. #endif
  10175. #ifdef ATH_SUPPORT_NAC_RSSI
  10176. /**
  10177. * dp_vdev_get_neighbour_rssi(): Store RSSI for configured NAC
  10178. * @soc_hdl: DP soc handle
  10179. * @vdev_id: id of DP vdev handle
  10180. * @mac_addr: neighbour mac
  10181. * @rssi: rssi value
  10182. *
  10183. * Return: 0 for success. nonzero for failure.
  10184. */
  10185. static QDF_STATUS dp_vdev_get_neighbour_rssi(struct cdp_soc_t *soc_hdl,
  10186. uint8_t vdev_id,
  10187. char *mac_addr,
  10188. uint8_t *rssi)
  10189. {
  10190. struct dp_soc *soc = cdp_soc_t_to_dp_soc(soc_hdl);
  10191. struct dp_vdev *vdev = dp_vdev_get_ref_by_id(soc, vdev_id,
  10192. DP_MOD_ID_CDP);
  10193. struct dp_pdev *pdev;
  10194. struct dp_neighbour_peer *peer = NULL;
  10195. QDF_STATUS status = QDF_STATUS_E_FAILURE;
  10196. if (!vdev)
  10197. return status;
  10198. pdev = vdev->pdev;
  10199. *rssi = 0;
  10200. qdf_spin_lock_bh(&pdev->neighbour_peer_mutex);
  10201. TAILQ_FOREACH(peer, &pdev->neighbour_peers_list,
  10202. neighbour_peer_list_elem) {
  10203. if (qdf_mem_cmp(&peer->neighbour_peers_macaddr.raw[0],
  10204. mac_addr, QDF_MAC_ADDR_SIZE) == 0) {
  10205. *rssi = peer->rssi;
  10206. status = QDF_STATUS_SUCCESS;
  10207. break;
  10208. }
  10209. }
  10210. qdf_spin_unlock_bh(&pdev->neighbour_peer_mutex);
  10211. dp_vdev_unref_delete(soc, vdev, DP_MOD_ID_CDP);
  10212. return status;
  10213. }
  10214. static QDF_STATUS
  10215. dp_config_for_nac_rssi(struct cdp_soc_t *cdp_soc,
  10216. uint8_t vdev_id,
  10217. enum cdp_nac_param_cmd cmd, char *bssid,
  10218. char *client_macaddr,
  10219. uint8_t chan_num)
  10220. {
  10221. struct dp_soc *soc = (struct dp_soc *)cdp_soc;
  10222. struct dp_vdev *vdev = dp_vdev_get_ref_by_id(soc, vdev_id,
  10223. DP_MOD_ID_CDP);
  10224. struct dp_pdev *pdev;
  10225. if (!vdev)
  10226. return QDF_STATUS_E_FAILURE;
  10227. pdev = (struct dp_pdev *)vdev->pdev;
  10228. pdev->nac_rssi_filtering = 1;
  10229. /* Store address of NAC (neighbour peer) which will be checked
  10230. * against TA of received packets.
  10231. */
  10232. if (cmd == CDP_NAC_PARAM_ADD) {
  10233. dp_update_filter_neighbour_peers(cdp_soc, vdev->vdev_id,
  10234. DP_NAC_PARAM_ADD,
  10235. (uint8_t *)client_macaddr);
  10236. } else if (cmd == CDP_NAC_PARAM_DEL) {
  10237. dp_update_filter_neighbour_peers(cdp_soc, vdev->vdev_id,
  10238. DP_NAC_PARAM_DEL,
  10239. (uint8_t *)client_macaddr);
  10240. }
  10241. if (soc->cdp_soc.ol_ops->config_bssid_in_fw_for_nac_rssi)
  10242. soc->cdp_soc.ol_ops->config_bssid_in_fw_for_nac_rssi
  10243. (soc->ctrl_psoc, pdev->pdev_id,
  10244. vdev->vdev_id, cmd, bssid, client_macaddr);
  10245. dp_vdev_unref_delete(soc, vdev, DP_MOD_ID_CDP);
  10246. return QDF_STATUS_SUCCESS;
  10247. }
  10248. #endif
  10249. /**
  10250. * dp_enable_peer_based_pktlog() - Set Flag for peer based filtering
  10251. * for pktlog
  10252. * @soc: cdp_soc handle
  10253. * @pdev_id: id of dp pdev handle
  10254. * @mac_addr: Peer mac address
  10255. * @enb_dsb: Enable or disable peer based filtering
  10256. *
  10257. * Return: QDF_STATUS
  10258. */
  10259. static int
  10260. dp_enable_peer_based_pktlog(struct cdp_soc_t *soc, uint8_t pdev_id,
  10261. uint8_t *mac_addr, uint8_t enb_dsb)
  10262. {
  10263. struct dp_peer *peer;
  10264. struct dp_pdev *pdev =
  10265. dp_get_pdev_from_soc_pdev_id_wifi3((struct dp_soc *)soc,
  10266. pdev_id);
  10267. if (!pdev)
  10268. return QDF_STATUS_E_FAILURE;
  10269. peer = dp_peer_find_hash_find((struct dp_soc *)soc, mac_addr,
  10270. 0, DP_VDEV_ALL, DP_MOD_ID_CDP);
  10271. if (!peer) {
  10272. dp_err("Invalid Peer");
  10273. return QDF_STATUS_E_FAILURE;
  10274. }
  10275. peer->peer_based_pktlog_filter = enb_dsb;
  10276. pdev->dp_peer_based_pktlog = enb_dsb;
  10277. dp_peer_unref_delete(peer, DP_MOD_ID_CDP);
  10278. return QDF_STATUS_SUCCESS;
  10279. }
  10280. #ifndef WLAN_SUPPORT_RX_TAG_STATISTICS
  10281. /**
  10282. * dp_dump_pdev_rx_protocol_tag_stats - dump the number of packets tagged for
  10283. * given protocol type (RX_PROTOCOL_TAG_ALL indicates for all protocol)
  10284. * @soc: cdp_soc handle
  10285. * @pdev_id: id of cdp_pdev handle
  10286. * @protocol_type: protocol type for which stats should be displayed
  10287. *
  10288. * Return: none
  10289. */
  10290. static inline void
  10291. dp_dump_pdev_rx_protocol_tag_stats(struct cdp_soc_t *soc, uint8_t pdev_id,
  10292. uint16_t protocol_type)
  10293. {
  10294. }
  10295. #endif /* WLAN_SUPPORT_RX_TAG_STATISTICS */
  10296. #ifndef WLAN_SUPPORT_RX_PROTOCOL_TYPE_TAG
  10297. /**
  10298. * dp_update_pdev_rx_protocol_tag - Add/remove a protocol tag that should be
  10299. * applied to the desired protocol type packets
  10300. * @soc: soc handle
  10301. * @pdev_id: id of cdp_pdev handle
  10302. * @enable_rx_protocol_tag - bitmask that indicates what protocol types
  10303. * are enabled for tagging. zero indicates disable feature, non-zero indicates
  10304. * enable feature
  10305. * @protocol_type: new protocol type for which the tag is being added
  10306. * @tag: user configured tag for the new protocol
  10307. *
  10308. * Return: Success
  10309. */
  10310. static inline QDF_STATUS
  10311. dp_update_pdev_rx_protocol_tag(struct cdp_soc_t *soc, uint8_t pdev_id,
  10312. uint32_t enable_rx_protocol_tag,
  10313. uint16_t protocol_type,
  10314. uint16_t tag)
  10315. {
  10316. return QDF_STATUS_SUCCESS;
  10317. }
  10318. #endif /* WLAN_SUPPORT_RX_PROTOCOL_TYPE_TAG */
  10319. #ifndef WLAN_SUPPORT_RX_FLOW_TAG
  10320. /**
  10321. * dp_set_rx_flow_tag - add/delete a flow
  10322. * @soc: soc handle
  10323. * @pdev_id: id of cdp_pdev handle
  10324. * @flow_info: flow tuple that is to be added to/deleted from flow search table
  10325. *
  10326. * Return: Success
  10327. */
  10328. static inline QDF_STATUS
  10329. dp_set_rx_flow_tag(struct cdp_soc_t *cdp_soc, uint8_t pdev_id,
  10330. struct cdp_rx_flow_info *flow_info)
  10331. {
  10332. return QDF_STATUS_SUCCESS;
  10333. }
  10334. /**
  10335. * dp_dump_rx_flow_tag_stats - dump the number of packets tagged for
  10336. * given flow 5-tuple
  10337. * @cdp_soc: soc handle
  10338. * @pdev_id: id of cdp_pdev handle
  10339. * @flow_info: flow 5-tuple for which stats should be displayed
  10340. *
  10341. * Return: Success
  10342. */
  10343. static inline QDF_STATUS
  10344. dp_dump_rx_flow_tag_stats(struct cdp_soc_t *cdp_soc, uint8_t pdev_id,
  10345. struct cdp_rx_flow_info *flow_info)
  10346. {
  10347. return QDF_STATUS_SUCCESS;
  10348. }
  10349. #endif /* WLAN_SUPPORT_RX_FLOW_TAG */
  10350. static QDF_STATUS dp_peer_map_attach_wifi3(struct cdp_soc_t *soc_hdl,
  10351. uint32_t max_peers,
  10352. uint32_t max_ast_index,
  10353. bool peer_map_unmap_v2)
  10354. {
  10355. struct dp_soc *soc = (struct dp_soc *)soc_hdl;
  10356. soc->max_peers = max_peers;
  10357. qdf_print ("%s max_peers %u, max_ast_index: %u\n",
  10358. __func__, max_peers, max_ast_index);
  10359. wlan_cfg_set_max_ast_idx(soc->wlan_cfg_ctx, max_ast_index);
  10360. if (dp_peer_find_attach(soc))
  10361. return QDF_STATUS_E_FAILURE;
  10362. soc->is_peer_map_unmap_v2 = peer_map_unmap_v2;
  10363. soc->peer_map_attach_success = TRUE;
  10364. return QDF_STATUS_SUCCESS;
  10365. }
  10366. static QDF_STATUS dp_soc_set_param(struct cdp_soc_t *soc_hdl,
  10367. enum cdp_soc_param_t param,
  10368. uint32_t value)
  10369. {
  10370. struct dp_soc *soc = (struct dp_soc *)soc_hdl;
  10371. switch (param) {
  10372. case DP_SOC_PARAM_MSDU_EXCEPTION_DESC:
  10373. soc->num_msdu_exception_desc = value;
  10374. dp_info("num_msdu exception_desc %u",
  10375. value);
  10376. break;
  10377. case DP_SOC_PARAM_CMEM_FSE_SUPPORT:
  10378. if (wlan_cfg_is_fst_in_cmem_enabled(soc->wlan_cfg_ctx))
  10379. soc->fst_in_cmem = !!value;
  10380. dp_info("FW supports CMEM FSE %u", value);
  10381. break;
  10382. case DP_SOC_PARAM_MAX_AST_AGEOUT:
  10383. soc->max_ast_ageout_count = value;
  10384. dp_info("Max ast ageout count %u", soc->max_ast_ageout_count);
  10385. break;
  10386. default:
  10387. dp_info("not handled param %d ", param);
  10388. break;
  10389. }
  10390. return QDF_STATUS_SUCCESS;
  10391. }
  10392. static void dp_soc_set_rate_stats_ctx(struct cdp_soc_t *soc_handle,
  10393. void *stats_ctx)
  10394. {
  10395. struct dp_soc *soc = (struct dp_soc *)soc_handle;
  10396. soc->rate_stats_ctx = (struct cdp_soc_rate_stats_ctx *)stats_ctx;
  10397. }
  10398. #if defined(FEATURE_PERPKT_INFO) && WDI_EVENT_ENABLE
  10399. /**
  10400. * dp_peer_flush_rate_stats_req(): Flush peer rate stats
  10401. * @soc: Datapath SOC handle
  10402. * @peer: Datapath peer
  10403. * @arg: argument to iter function
  10404. *
  10405. * Return: QDF_STATUS
  10406. */
  10407. static void
  10408. dp_peer_flush_rate_stats_req(struct dp_soc *soc, struct dp_peer *peer,
  10409. void *arg)
  10410. {
  10411. if (peer->bss_peer)
  10412. return;
  10413. dp_wdi_event_handler(
  10414. WDI_EVENT_FLUSH_RATE_STATS_REQ,
  10415. soc, peer->rdkstats_ctx,
  10416. peer->peer_id,
  10417. WDI_NO_VAL, peer->vdev->pdev->pdev_id);
  10418. }
  10419. /**
  10420. * dp_flush_rate_stats_req(): Flush peer rate stats in pdev
  10421. * @soc_hdl: Datapath SOC handle
  10422. * @pdev_id: pdev_id
  10423. *
  10424. * Return: QDF_STATUS
  10425. */
  10426. static QDF_STATUS dp_flush_rate_stats_req(struct cdp_soc_t *soc_hdl,
  10427. uint8_t pdev_id)
  10428. {
  10429. struct dp_soc *soc = (struct dp_soc *)soc_hdl;
  10430. struct dp_pdev *pdev =
  10431. dp_get_pdev_from_soc_pdev_id_wifi3((struct dp_soc *)soc,
  10432. pdev_id);
  10433. if (!pdev)
  10434. return QDF_STATUS_E_FAILURE;
  10435. dp_pdev_iterate_peer(pdev, dp_peer_flush_rate_stats_req, NULL,
  10436. DP_MOD_ID_CDP);
  10437. return QDF_STATUS_SUCCESS;
  10438. }
  10439. #else
  10440. static inline QDF_STATUS
  10441. dp_flush_rate_stats_req(struct cdp_soc_t *soc_hdl,
  10442. uint8_t pdev_id)
  10443. {
  10444. return QDF_STATUS_SUCCESS;
  10445. }
  10446. #endif
  10447. static void *dp_peer_get_rdkstats_ctx(struct cdp_soc_t *soc_hdl,
  10448. uint8_t vdev_id,
  10449. uint8_t *mac_addr)
  10450. {
  10451. struct dp_soc *soc = (struct dp_soc *)soc_hdl;
  10452. struct dp_peer *peer;
  10453. void *rdkstats_ctx = NULL;
  10454. if (mac_addr) {
  10455. peer = dp_peer_find_hash_find(soc, mac_addr,
  10456. 0, vdev_id,
  10457. DP_MOD_ID_CDP);
  10458. if (!peer)
  10459. return NULL;
  10460. rdkstats_ctx = peer->rdkstats_ctx;
  10461. dp_peer_unref_delete(peer, DP_MOD_ID_CDP);
  10462. }
  10463. return rdkstats_ctx;
  10464. }
  10465. #if defined(FEATURE_PERPKT_INFO) && WDI_EVENT_ENABLE
  10466. static QDF_STATUS dp_peer_flush_rate_stats(struct cdp_soc_t *soc,
  10467. uint8_t pdev_id,
  10468. void *buf)
  10469. {
  10470. dp_wdi_event_handler(WDI_EVENT_PEER_FLUSH_RATE_STATS,
  10471. (struct dp_soc *)soc, buf, HTT_INVALID_PEER,
  10472. WDI_NO_VAL, pdev_id);
  10473. return QDF_STATUS_SUCCESS;
  10474. }
  10475. #else
  10476. static inline QDF_STATUS
  10477. dp_peer_flush_rate_stats(struct cdp_soc_t *soc,
  10478. uint8_t pdev_id,
  10479. void *buf)
  10480. {
  10481. return QDF_STATUS_SUCCESS;
  10482. }
  10483. #endif
  10484. static void *dp_soc_get_rate_stats_ctx(struct cdp_soc_t *soc_handle)
  10485. {
  10486. struct dp_soc *soc = (struct dp_soc *)soc_handle;
  10487. return soc->rate_stats_ctx;
  10488. }
  10489. /*
  10490. * dp_get_cfg() - get dp cfg
  10491. * @soc: cdp soc handle
  10492. * @cfg: cfg enum
  10493. *
  10494. * Return: cfg value
  10495. */
  10496. static uint32_t dp_get_cfg(struct cdp_soc_t *soc, enum cdp_dp_cfg cfg)
  10497. {
  10498. struct dp_soc *dpsoc = (struct dp_soc *)soc;
  10499. uint32_t value = 0;
  10500. switch (cfg) {
  10501. case cfg_dp_enable_data_stall:
  10502. value = dpsoc->wlan_cfg_ctx->enable_data_stall_detection;
  10503. break;
  10504. case cfg_dp_enable_p2p_ip_tcp_udp_checksum_offload:
  10505. value = dpsoc->wlan_cfg_ctx->p2p_tcp_udp_checksumoffload;
  10506. break;
  10507. case cfg_dp_enable_nan_ip_tcp_udp_checksum_offload:
  10508. value = dpsoc->wlan_cfg_ctx->nan_tcp_udp_checksumoffload;
  10509. break;
  10510. case cfg_dp_enable_ip_tcp_udp_checksum_offload:
  10511. value = dpsoc->wlan_cfg_ctx->tcp_udp_checksumoffload;
  10512. break;
  10513. case cfg_dp_disable_legacy_mode_csum_offload:
  10514. value = dpsoc->wlan_cfg_ctx->
  10515. legacy_mode_checksumoffload_disable;
  10516. break;
  10517. case cfg_dp_tso_enable:
  10518. value = dpsoc->wlan_cfg_ctx->tso_enabled;
  10519. break;
  10520. case cfg_dp_lro_enable:
  10521. value = dpsoc->wlan_cfg_ctx->lro_enabled;
  10522. break;
  10523. case cfg_dp_gro_enable:
  10524. value = dpsoc->wlan_cfg_ctx->gro_enabled;
  10525. break;
  10526. case cfg_dp_sg_enable:
  10527. value = dpsoc->wlan_cfg_ctx->sg_enabled;
  10528. break;
  10529. case cfg_dp_tx_flow_start_queue_offset:
  10530. value = dpsoc->wlan_cfg_ctx->tx_flow_start_queue_offset;
  10531. break;
  10532. case cfg_dp_tx_flow_stop_queue_threshold:
  10533. value = dpsoc->wlan_cfg_ctx->tx_flow_stop_queue_threshold;
  10534. break;
  10535. case cfg_dp_disable_intra_bss_fwd:
  10536. value = dpsoc->wlan_cfg_ctx->disable_intra_bss_fwd;
  10537. break;
  10538. case cfg_dp_pktlog_buffer_size:
  10539. value = dpsoc->wlan_cfg_ctx->pktlog_buffer_size;
  10540. break;
  10541. case cfg_dp_wow_check_rx_pending:
  10542. value = dpsoc->wlan_cfg_ctx->wow_check_rx_pending_enable;
  10543. break;
  10544. default:
  10545. value = 0;
  10546. }
  10547. return value;
  10548. }
  10549. #ifdef PEER_FLOW_CONTROL
  10550. /**
  10551. * dp_tx_flow_ctrl_configure_pdev() - Configure flow control params
  10552. * @soc_handle: datapath soc handle
  10553. * @pdev_id: id of datapath pdev handle
  10554. * @param: ol ath params
  10555. * @value: value of the flag
  10556. * @buff: Buffer to be passed
  10557. *
  10558. * Implemented this function same as legacy function. In legacy code, single
  10559. * function is used to display stats and update pdev params.
  10560. *
  10561. * Return: 0 for success. nonzero for failure.
  10562. */
  10563. static uint32_t dp_tx_flow_ctrl_configure_pdev(struct cdp_soc_t *soc_handle,
  10564. uint8_t pdev_id,
  10565. enum _dp_param_t param,
  10566. uint32_t value, void *buff)
  10567. {
  10568. struct dp_soc *soc = (struct dp_soc *)soc_handle;
  10569. struct dp_pdev *pdev =
  10570. dp_get_pdev_from_soc_pdev_id_wifi3((struct dp_soc *)soc,
  10571. pdev_id);
  10572. if (qdf_unlikely(!pdev))
  10573. return 1;
  10574. soc = pdev->soc;
  10575. if (!soc)
  10576. return 1;
  10577. switch (param) {
  10578. #ifdef QCA_ENH_V3_STATS_SUPPORT
  10579. case DP_PARAM_VIDEO_DELAY_STATS_FC:
  10580. if (value)
  10581. pdev->delay_stats_flag = true;
  10582. else
  10583. pdev->delay_stats_flag = false;
  10584. break;
  10585. case DP_PARAM_VIDEO_STATS_FC:
  10586. qdf_print("------- TID Stats ------\n");
  10587. dp_pdev_print_tid_stats(pdev);
  10588. qdf_print("------ Delay Stats ------\n");
  10589. dp_pdev_print_delay_stats(pdev);
  10590. break;
  10591. #endif
  10592. case DP_PARAM_TOTAL_Q_SIZE:
  10593. {
  10594. uint32_t tx_min, tx_max;
  10595. tx_min = wlan_cfg_get_min_tx_desc(soc->wlan_cfg_ctx);
  10596. tx_max = wlan_cfg_get_num_tx_desc(soc->wlan_cfg_ctx);
  10597. if (!buff) {
  10598. if ((value >= tx_min) && (value <= tx_max)) {
  10599. pdev->num_tx_allowed = value;
  10600. } else {
  10601. dp_tx_info("%pK: Failed to update num_tx_allowed, Q_min = %d Q_max = %d",
  10602. soc, tx_min, tx_max);
  10603. break;
  10604. }
  10605. } else {
  10606. *(int *)buff = pdev->num_tx_allowed;
  10607. }
  10608. }
  10609. break;
  10610. default:
  10611. dp_tx_info("%pK: not handled param %d ", soc, param);
  10612. break;
  10613. }
  10614. return 0;
  10615. }
  10616. #endif
  10617. /**
  10618. * dp_set_pdev_pcp_tid_map_wifi3(): update pcp tid map in pdev
  10619. * @psoc: dp soc handle
  10620. * @pdev_id: id of DP_PDEV handle
  10621. * @pcp: pcp value
  10622. * @tid: tid value passed by the user
  10623. *
  10624. * Return: QDF_STATUS_SUCCESS on success
  10625. */
  10626. static QDF_STATUS dp_set_pdev_pcp_tid_map_wifi3(ol_txrx_soc_handle psoc,
  10627. uint8_t pdev_id,
  10628. uint8_t pcp, uint8_t tid)
  10629. {
  10630. struct dp_soc *soc = (struct dp_soc *)psoc;
  10631. soc->pcp_tid_map[pcp] = tid;
  10632. hal_tx_update_pcp_tid_map(soc->hal_soc, pcp, tid);
  10633. return QDF_STATUS_SUCCESS;
  10634. }
  10635. /**
  10636. * dp_set_vdev_pcp_tid_map_wifi3(): update pcp tid map in vdev
  10637. * @soc: DP soc handle
  10638. * @vdev_id: id of DP_VDEV handle
  10639. * @pcp: pcp value
  10640. * @tid: tid value passed by the user
  10641. *
  10642. * Return: QDF_STATUS_SUCCESS on success
  10643. */
  10644. static QDF_STATUS dp_set_vdev_pcp_tid_map_wifi3(struct cdp_soc_t *soc_hdl,
  10645. uint8_t vdev_id,
  10646. uint8_t pcp, uint8_t tid)
  10647. {
  10648. struct dp_soc *soc = cdp_soc_t_to_dp_soc(soc_hdl);
  10649. struct dp_vdev *vdev = dp_vdev_get_ref_by_id(soc, vdev_id,
  10650. DP_MOD_ID_CDP);
  10651. if (!vdev)
  10652. return QDF_STATUS_E_FAILURE;
  10653. vdev->pcp_tid_map[pcp] = tid;
  10654. dp_vdev_unref_delete(soc, vdev, DP_MOD_ID_CDP);
  10655. return QDF_STATUS_SUCCESS;
  10656. }
  10657. #ifdef QCA_SUPPORT_FULL_MON
  10658. static inline QDF_STATUS
  10659. dp_config_full_mon_mode(struct cdp_soc_t *soc_handle,
  10660. uint8_t val)
  10661. {
  10662. struct dp_soc *soc = (struct dp_soc *)soc_handle;
  10663. soc->full_mon_mode = val;
  10664. qdf_alert("Configure full monitor mode val: %d ", val);
  10665. return QDF_STATUS_SUCCESS;
  10666. }
  10667. #else
  10668. static inline QDF_STATUS
  10669. dp_config_full_mon_mode(struct cdp_soc_t *soc_handle,
  10670. uint8_t val)
  10671. {
  10672. return 0;
  10673. }
  10674. #endif
  10675. #if defined(FEATURE_RUNTIME_PM) || defined(DP_POWER_SAVE)
  10676. static void dp_drain_txrx(struct cdp_soc_t *soc_handle)
  10677. {
  10678. struct dp_soc *soc = (struct dp_soc *)soc_handle;
  10679. uint32_t cur_tx_limit, cur_rx_limit;
  10680. uint32_t budget = 0xffff;
  10681. uint32_t val;
  10682. int i;
  10683. cur_tx_limit = soc->wlan_cfg_ctx->tx_comp_loop_pkt_limit;
  10684. cur_rx_limit = soc->wlan_cfg_ctx->rx_reap_loop_pkt_limit;
  10685. /* Temporarily increase soft irq limits when going to drain
  10686. * the UMAC/LMAC SRNGs and restore them after polling.
  10687. * Though the budget is on higher side, the TX/RX reaping loops
  10688. * will not execute longer as both TX and RX would be suspended
  10689. * by the time this API is called.
  10690. */
  10691. dp_update_soft_irq_limits(soc, budget, budget);
  10692. for (i = 0; i < wlan_cfg_get_num_contexts(soc->wlan_cfg_ctx); i++)
  10693. dp_service_srngs(&soc->intr_ctx[i], budget);
  10694. dp_update_soft_irq_limits(soc, cur_tx_limit, cur_rx_limit);
  10695. /* Do a dummy read at offset 0; this will ensure all
  10696. * pendings writes(HP/TP) are flushed before read returns.
  10697. */
  10698. val = HAL_REG_READ((struct hal_soc *)soc->hal_soc, 0);
  10699. dp_debug("Register value at offset 0: %u\n", val);
  10700. }
  10701. #endif
  10702. static struct cdp_cmn_ops dp_ops_cmn = {
  10703. .txrx_soc_attach_target = dp_soc_attach_target_wifi3,
  10704. .txrx_vdev_attach = dp_vdev_attach_wifi3,
  10705. .txrx_vdev_detach = dp_vdev_detach_wifi3,
  10706. .txrx_pdev_attach = dp_pdev_attach_wifi3,
  10707. .txrx_pdev_post_attach = dp_pdev_post_attach_wifi3,
  10708. .txrx_pdev_detach = dp_pdev_detach_wifi3,
  10709. .txrx_pdev_deinit = dp_pdev_deinit_wifi3,
  10710. .txrx_peer_create = dp_peer_create_wifi3,
  10711. .txrx_peer_setup = dp_peer_setup_wifi3,
  10712. #ifdef FEATURE_AST
  10713. .txrx_peer_teardown = dp_peer_teardown_wifi3,
  10714. #else
  10715. .txrx_peer_teardown = NULL,
  10716. #endif
  10717. .txrx_peer_add_ast = dp_peer_add_ast_wifi3,
  10718. .txrx_peer_update_ast = dp_peer_update_ast_wifi3,
  10719. .txrx_peer_get_ast_info_by_soc = dp_peer_get_ast_info_by_soc_wifi3,
  10720. .txrx_peer_get_ast_info_by_pdev =
  10721. dp_peer_get_ast_info_by_pdevid_wifi3,
  10722. .txrx_peer_ast_delete_by_soc =
  10723. dp_peer_ast_entry_del_by_soc,
  10724. .txrx_peer_ast_delete_by_pdev =
  10725. dp_peer_ast_entry_del_by_pdev,
  10726. .txrx_peer_delete = dp_peer_delete_wifi3,
  10727. .txrx_vdev_register = dp_vdev_register_wifi3,
  10728. .txrx_soc_detach = dp_soc_detach_wifi3,
  10729. .txrx_soc_deinit = dp_soc_deinit_wifi3,
  10730. .txrx_soc_init = dp_soc_init_wifi3,
  10731. #ifndef QCA_HOST_MODE_WIFI_DISABLED
  10732. .txrx_tso_soc_attach = dp_tso_soc_attach,
  10733. .txrx_tso_soc_detach = dp_tso_soc_detach,
  10734. .tx_send = dp_tx_send,
  10735. .tx_send_exc = dp_tx_send_exception,
  10736. #endif
  10737. .txrx_pdev_init = dp_pdev_init_wifi3,
  10738. .txrx_get_vdev_mac_addr = dp_get_vdev_mac_addr_wifi3,
  10739. .txrx_get_mon_vdev_from_pdev = dp_get_mon_vdev_from_pdev_wifi3,
  10740. .txrx_get_ctrl_pdev_from_vdev = dp_get_ctrl_pdev_from_vdev_wifi3,
  10741. .txrx_ath_getstats = dp_get_device_stats,
  10742. .addba_requestprocess = dp_addba_requestprocess_wifi3,
  10743. .addba_responsesetup = dp_addba_responsesetup_wifi3,
  10744. .addba_resp_tx_completion = dp_addba_resp_tx_completion_wifi3,
  10745. .delba_process = dp_delba_process_wifi3,
  10746. .set_addba_response = dp_set_addba_response,
  10747. .flush_cache_rx_queue = NULL,
  10748. /* TODO: get API's for dscp-tid need to be added*/
  10749. .set_vdev_dscp_tid_map = dp_set_vdev_dscp_tid_map_wifi3,
  10750. .set_pdev_dscp_tid_map = dp_set_pdev_dscp_tid_map_wifi3,
  10751. .txrx_get_total_per = dp_get_total_per,
  10752. .txrx_stats_request = dp_txrx_stats_request,
  10753. .txrx_set_monitor_mode = dp_vdev_set_monitor_mode,
  10754. .txrx_get_peer_mac_from_peer_id = dp_get_peer_mac_from_peer_id,
  10755. .display_stats = dp_txrx_dump_stats,
  10756. .txrx_intr_attach = dp_soc_interrupt_attach_wrapper,
  10757. .txrx_intr_detach = dp_soc_interrupt_detach,
  10758. .set_pn_check = dp_set_pn_check_wifi3,
  10759. .set_key_sec_type = dp_set_key_sec_type_wifi3,
  10760. .update_config_parameters = dp_update_config_parameters,
  10761. /* TODO: Add other functions */
  10762. .txrx_data_tx_cb_set = dp_txrx_data_tx_cb_set,
  10763. .get_dp_txrx_handle = dp_pdev_get_dp_txrx_handle,
  10764. .set_dp_txrx_handle = dp_pdev_set_dp_txrx_handle,
  10765. .get_vdev_dp_ext_txrx_handle = dp_vdev_get_dp_ext_handle,
  10766. .set_vdev_dp_ext_txrx_handle = dp_vdev_set_dp_ext_handle,
  10767. .get_soc_dp_txrx_handle = dp_soc_get_dp_txrx_handle,
  10768. .set_soc_dp_txrx_handle = dp_soc_set_dp_txrx_handle,
  10769. .map_pdev_to_lmac = dp_soc_map_pdev_to_lmac,
  10770. .handle_mode_change = dp_soc_handle_pdev_mode_change,
  10771. .set_pdev_status_down = dp_soc_set_pdev_status_down,
  10772. .txrx_set_ba_aging_timeout = dp_set_ba_aging_timeout,
  10773. .txrx_get_ba_aging_timeout = dp_get_ba_aging_timeout,
  10774. .txrx_peer_reset_ast = dp_wds_reset_ast_wifi3,
  10775. .txrx_peer_reset_ast_table = dp_wds_reset_ast_table_wifi3,
  10776. .txrx_peer_flush_ast_table = dp_wds_flush_ast_table_wifi3,
  10777. .txrx_peer_map_attach = dp_peer_map_attach_wifi3,
  10778. .set_soc_param = dp_soc_set_param,
  10779. .txrx_get_os_rx_handles_from_vdev =
  10780. dp_get_os_rx_handles_from_vdev_wifi3,
  10781. .delba_tx_completion = dp_delba_tx_completion_wifi3,
  10782. .get_dp_capabilities = dp_get_cfg_capabilities,
  10783. .txrx_get_cfg = dp_get_cfg,
  10784. .set_rate_stats_ctx = dp_soc_set_rate_stats_ctx,
  10785. .get_rate_stats_ctx = dp_soc_get_rate_stats_ctx,
  10786. .txrx_peer_flush_rate_stats = dp_peer_flush_rate_stats,
  10787. .txrx_flush_rate_stats_request = dp_flush_rate_stats_req,
  10788. .txrx_peer_get_rdkstats_ctx = dp_peer_get_rdkstats_ctx,
  10789. .set_pdev_pcp_tid_map = dp_set_pdev_pcp_tid_map_wifi3,
  10790. .set_vdev_pcp_tid_map = dp_set_vdev_pcp_tid_map_wifi3,
  10791. .txrx_cp_peer_del_response = dp_cp_peer_del_resp_handler,
  10792. #ifdef QCA_MULTIPASS_SUPPORT
  10793. .set_vlan_groupkey = dp_set_vlan_groupkey,
  10794. #endif
  10795. .get_peer_mac_list = dp_get_peer_mac_list,
  10796. #ifdef QCA_SUPPORT_WDS_EXTENDED
  10797. .get_wds_ext_peer_id = dp_wds_ext_get_peer_id,
  10798. .set_wds_ext_peer_rx = dp_wds_ext_set_peer_rx,
  10799. #endif /* QCA_SUPPORT_WDS_EXTENDED */
  10800. #if defined(FEATURE_RUNTIME_PM) || defined(DP_POWER_SAVE)
  10801. .txrx_drain = dp_drain_txrx,
  10802. #endif
  10803. };
  10804. static struct cdp_ctrl_ops dp_ops_ctrl = {
  10805. .txrx_peer_authorize = dp_peer_authorize,
  10806. #ifdef VDEV_PEER_PROTOCOL_COUNT
  10807. .txrx_enable_peer_protocol_count = dp_enable_vdev_peer_protocol_count,
  10808. .txrx_set_peer_protocol_drop_mask =
  10809. dp_enable_vdev_peer_protocol_drop_mask,
  10810. .txrx_is_peer_protocol_count_enabled =
  10811. dp_is_vdev_peer_protocol_count_enabled,
  10812. .txrx_get_peer_protocol_drop_mask = dp_get_vdev_peer_protocol_drop_mask,
  10813. #endif
  10814. .txrx_set_vdev_param = dp_set_vdev_param,
  10815. .txrx_set_psoc_param = dp_set_psoc_param,
  10816. .txrx_get_psoc_param = dp_get_psoc_param,
  10817. .txrx_set_pdev_reo_dest = dp_set_pdev_reo_dest,
  10818. .txrx_get_pdev_reo_dest = dp_get_pdev_reo_dest,
  10819. #if defined(ATH_SUPPORT_NAC_RSSI) || defined(ATH_SUPPORT_NAC)
  10820. .txrx_update_filter_neighbour_peers =
  10821. dp_update_filter_neighbour_peers,
  10822. #endif /* ATH_SUPPORT_NAC_RSSI || ATH_SUPPORT_NAC */
  10823. .txrx_get_sec_type = dp_get_sec_type,
  10824. .txrx_wdi_event_sub = dp_wdi_event_sub,
  10825. .txrx_wdi_event_unsub = dp_wdi_event_unsub,
  10826. #ifdef WDI_EVENT_ENABLE
  10827. .txrx_get_pldev = dp_get_pldev,
  10828. #endif
  10829. .txrx_set_pdev_param = dp_set_pdev_param,
  10830. .txrx_get_pdev_param = dp_get_pdev_param,
  10831. .txrx_set_peer_param = dp_set_peer_param,
  10832. .txrx_get_peer_param = dp_get_peer_param,
  10833. #ifdef VDEV_PEER_PROTOCOL_COUNT
  10834. .txrx_peer_protocol_cnt = dp_peer_stats_update_protocol_cnt,
  10835. #endif
  10836. #ifdef ATH_SUPPORT_NAC_RSSI
  10837. .txrx_vdev_config_for_nac_rssi = dp_config_for_nac_rssi,
  10838. .txrx_vdev_get_neighbour_rssi = dp_vdev_get_neighbour_rssi,
  10839. #endif
  10840. #ifdef WLAN_SUPPORT_MSCS
  10841. .txrx_record_mscs_params = dp_record_mscs_params,
  10842. #endif
  10843. #ifdef WLAN_SUPPORT_SCS
  10844. .txrx_enable_scs_params = dp_enable_scs_params,
  10845. .txrx_record_scs_params = dp_record_scs_params,
  10846. #endif
  10847. .set_key = dp_set_michael_key,
  10848. .txrx_get_vdev_param = dp_get_vdev_param,
  10849. .enable_peer_based_pktlog = dp_enable_peer_based_pktlog,
  10850. .calculate_delay_stats = dp_calculate_delay_stats,
  10851. #ifdef WLAN_SUPPORT_RX_PROTOCOL_TYPE_TAG
  10852. .txrx_update_pdev_rx_protocol_tag = dp_update_pdev_rx_protocol_tag,
  10853. #ifdef WLAN_SUPPORT_RX_TAG_STATISTICS
  10854. .txrx_dump_pdev_rx_protocol_tag_stats =
  10855. dp_dump_pdev_rx_protocol_tag_stats,
  10856. #endif /* WLAN_SUPPORT_RX_TAG_STATISTICS */
  10857. #endif /* WLAN_SUPPORT_RX_PROTOCOL_TYPE_TAG */
  10858. #ifdef WLAN_SUPPORT_RX_FLOW_TAG
  10859. .txrx_set_rx_flow_tag = dp_set_rx_flow_tag,
  10860. .txrx_dump_rx_flow_tag_stats = dp_dump_rx_flow_tag_stats,
  10861. #endif /* WLAN_SUPPORT_RX_FLOW_TAG */
  10862. #ifdef QCA_MULTIPASS_SUPPORT
  10863. .txrx_peer_set_vlan_id = dp_peer_set_vlan_id,
  10864. #endif /*QCA_MULTIPASS_SUPPORT*/
  10865. #if defined(WLAN_TX_PKT_CAPTURE_ENH) || defined(WLAN_RX_PKT_CAPTURE_ENH)
  10866. .txrx_update_peer_pkt_capture_params =
  10867. dp_peer_update_pkt_capture_params,
  10868. #endif /* WLAN_TX_PKT_CAPTURE_ENH || WLAN_RX_PKT_CAPTURE_ENH */
  10869. };
  10870. static struct cdp_me_ops dp_ops_me = {
  10871. #ifndef QCA_HOST_MODE_WIFI_DISABLED
  10872. #ifdef ATH_SUPPORT_IQUE
  10873. .tx_me_alloc_descriptor = dp_tx_me_alloc_descriptor,
  10874. .tx_me_free_descriptor = dp_tx_me_free_descriptor,
  10875. .tx_me_convert_ucast = dp_tx_me_send_convert_ucast,
  10876. #endif
  10877. #endif
  10878. };
  10879. static struct cdp_mon_ops dp_ops_mon = {
  10880. .txrx_reset_monitor_mode = dp_reset_monitor_mode,
  10881. /* Added support for HK advance filter */
  10882. .txrx_set_advance_monitor_filter = dp_pdev_set_advance_monitor_filter,
  10883. .txrx_deliver_tx_mgmt = dp_deliver_tx_mgmt,
  10884. .config_full_mon_mode = dp_config_full_mon_mode,
  10885. };
  10886. static struct cdp_host_stats_ops dp_ops_host_stats = {
  10887. .txrx_per_peer_stats = dp_get_host_peer_stats,
  10888. .get_fw_peer_stats = dp_get_fw_peer_stats,
  10889. .get_htt_stats = dp_get_htt_stats,
  10890. #ifdef FEATURE_PERPKT_INFO
  10891. .txrx_enable_enhanced_stats = dp_enable_enhanced_stats,
  10892. .txrx_disable_enhanced_stats = dp_disable_enhanced_stats,
  10893. #endif /* FEATURE_PERPKT_INFO */
  10894. .txrx_stats_publish = dp_txrx_stats_publish,
  10895. .txrx_get_vdev_stats = dp_txrx_get_vdev_stats,
  10896. .txrx_get_peer_stats = dp_txrx_get_peer_stats,
  10897. .txrx_get_peer_stats_param = dp_txrx_get_peer_stats_param,
  10898. .txrx_reset_peer_stats = dp_txrx_reset_peer_stats,
  10899. .txrx_get_pdev_stats = dp_txrx_get_pdev_stats,
  10900. .txrx_get_ratekbps = dp_txrx_get_ratekbps,
  10901. .txrx_update_vdev_stats = dp_txrx_update_vdev_host_stats,
  10902. /* TODO */
  10903. };
  10904. static struct cdp_raw_ops dp_ops_raw = {
  10905. /* TODO */
  10906. };
  10907. #ifdef PEER_FLOW_CONTROL
  10908. static struct cdp_pflow_ops dp_ops_pflow = {
  10909. dp_tx_flow_ctrl_configure_pdev,
  10910. };
  10911. #endif /* CONFIG_WIN */
  10912. #if defined(WLAN_CFR_ENABLE) && defined(WLAN_ENH_CFR_ENABLE)
  10913. static struct cdp_cfr_ops dp_ops_cfr = {
  10914. .txrx_cfr_filter = dp_cfr_filter,
  10915. .txrx_get_cfr_rcc = dp_get_cfr_rcc,
  10916. .txrx_set_cfr_rcc = dp_set_cfr_rcc,
  10917. .txrx_get_cfr_dbg_stats = dp_get_cfr_dbg_stats,
  10918. .txrx_clear_cfr_dbg_stats = dp_clear_cfr_dbg_stats,
  10919. .txrx_enable_mon_reap_timer = dp_enable_mon_reap_timer,
  10920. };
  10921. #endif
  10922. #ifdef WLAN_SUPPORT_MSCS
  10923. static struct cdp_mscs_ops dp_ops_mscs = {
  10924. .mscs_peer_lookup_n_get_priority = dp_mscs_peer_lookup_n_get_priority,
  10925. };
  10926. #endif
  10927. #ifdef WLAN_SUPPORT_MESH_LATENCY
  10928. static struct cdp_mesh_latency_ops dp_ops_mesh_latency = {
  10929. .mesh_latency_update_peer_parameter =
  10930. dp_mesh_latency_update_peer_parameter,
  10931. };
  10932. #endif
  10933. #ifdef FEATURE_RUNTIME_PM
  10934. /**
  10935. * dp_flush_ring_hptp() - Update ring shadow
  10936. * register HP/TP address when runtime
  10937. * resume
  10938. * @opaque_soc: DP soc context
  10939. *
  10940. * Return: None
  10941. */
  10942. static
  10943. void dp_flush_ring_hptp(struct dp_soc *soc, hal_ring_handle_t hal_srng)
  10944. {
  10945. if (hal_srng && hal_srng_get_clear_event(hal_srng,
  10946. HAL_SRNG_FLUSH_EVENT)) {
  10947. /* Acquire the lock */
  10948. hal_srng_access_start(soc->hal_soc, hal_srng);
  10949. hal_srng_access_end(soc->hal_soc, hal_srng);
  10950. hal_srng_set_flush_last_ts(hal_srng);
  10951. dp_debug("flushed");
  10952. }
  10953. }
  10954. /**
  10955. * dp_runtime_suspend() - ensure DP is ready to runtime suspend
  10956. * @soc_hdl: Datapath soc handle
  10957. * @pdev_id: id of data path pdev handle
  10958. *
  10959. * DP is ready to runtime suspend if there are no pending TX packets.
  10960. *
  10961. * Return: QDF_STATUS
  10962. */
  10963. static QDF_STATUS dp_runtime_suspend(struct cdp_soc_t *soc_hdl, uint8_t pdev_id)
  10964. {
  10965. struct dp_soc *soc = cdp_soc_t_to_dp_soc(soc_hdl);
  10966. struct dp_pdev *pdev;
  10967. uint8_t i;
  10968. pdev = dp_get_pdev_from_soc_pdev_id_wifi3(soc, pdev_id);
  10969. if (!pdev) {
  10970. dp_err("pdev is NULL");
  10971. return QDF_STATUS_E_INVAL;
  10972. }
  10973. /* Abort if there are any pending TX packets */
  10974. if (dp_get_tx_pending(dp_pdev_to_cdp_pdev(pdev)) > 0) {
  10975. dp_init_info("%pK: Abort suspend due to pending TX packets", soc);
  10976. /* perform a force flush if tx is pending */
  10977. for (i = 0; i < soc->num_tcl_data_rings; i++) {
  10978. hal_srng_set_event(soc->tcl_data_ring[i].hal_srng,
  10979. HAL_SRNG_FLUSH_EVENT);
  10980. dp_flush_ring_hptp(soc, soc->tcl_data_ring[i].hal_srng);
  10981. }
  10982. return QDF_STATUS_E_AGAIN;
  10983. }
  10984. if (dp_runtime_get_refcount(soc)) {
  10985. dp_init_info("refcount: %d", dp_runtime_get_refcount(soc));
  10986. return QDF_STATUS_E_AGAIN;
  10987. }
  10988. if (soc->intr_mode == DP_INTR_POLL)
  10989. qdf_timer_stop(&soc->int_timer);
  10990. dp_rx_fst_update_pm_suspend_status(soc, true);
  10991. return QDF_STATUS_SUCCESS;
  10992. }
  10993. #define DP_FLUSH_WAIT_CNT 10
  10994. #define DP_RUNTIME_SUSPEND_WAIT_MS 10
  10995. /**
  10996. * dp_runtime_resume() - ensure DP is ready to runtime resume
  10997. * @soc_hdl: Datapath soc handle
  10998. * @pdev_id: id of data path pdev handle
  10999. *
  11000. * Resume DP for runtime PM.
  11001. *
  11002. * Return: QDF_STATUS
  11003. */
  11004. static QDF_STATUS dp_runtime_resume(struct cdp_soc_t *soc_hdl, uint8_t pdev_id)
  11005. {
  11006. struct dp_soc *soc = cdp_soc_t_to_dp_soc(soc_hdl);
  11007. int i, suspend_wait = 0;
  11008. if (soc->intr_mode == DP_INTR_POLL)
  11009. qdf_timer_mod(&soc->int_timer, DP_INTR_POLL_TIMER_MS);
  11010. /*
  11011. * Wait until dp runtime refcount becomes zero or time out, then flush
  11012. * pending tx for runtime suspend.
  11013. */
  11014. while (dp_runtime_get_refcount(soc) &&
  11015. suspend_wait < DP_FLUSH_WAIT_CNT) {
  11016. qdf_sleep(DP_RUNTIME_SUSPEND_WAIT_MS);
  11017. suspend_wait++;
  11018. }
  11019. for (i = 0; i < MAX_TCL_DATA_RINGS; i++) {
  11020. dp_flush_ring_hptp(soc, soc->tcl_data_ring[i].hal_srng);
  11021. }
  11022. dp_flush_ring_hptp(soc, soc->reo_cmd_ring.hal_srng);
  11023. dp_rx_fst_update_pm_suspend_status(soc, false);
  11024. return QDF_STATUS_SUCCESS;
  11025. }
  11026. #endif /* FEATURE_RUNTIME_PM */
  11027. /**
  11028. * dp_tx_get_success_ack_stats() - get tx success completion count
  11029. * @soc_hdl: Datapath soc handle
  11030. * @vdevid: vdev identifier
  11031. *
  11032. * Return: tx success ack count
  11033. */
  11034. static uint32_t dp_tx_get_success_ack_stats(struct cdp_soc_t *soc_hdl,
  11035. uint8_t vdev_id)
  11036. {
  11037. struct dp_soc *soc = cdp_soc_t_to_dp_soc(soc_hdl);
  11038. struct cdp_vdev_stats *vdev_stats = NULL;
  11039. uint32_t tx_success;
  11040. struct dp_vdev *vdev = dp_vdev_get_ref_by_id(soc, vdev_id,
  11041. DP_MOD_ID_CDP);
  11042. if (!vdev) {
  11043. dp_cdp_err("%pK: Invalid vdev id %d", soc, vdev_id);
  11044. return 0;
  11045. }
  11046. vdev_stats = qdf_mem_malloc_atomic(sizeof(struct cdp_vdev_stats));
  11047. if (!vdev_stats) {
  11048. dp_cdp_err("%pK: DP alloc failure - unable to get alloc vdev stats", soc);
  11049. dp_vdev_unref_delete(soc, vdev, DP_MOD_ID_CDP);
  11050. return 0;
  11051. }
  11052. dp_aggregate_vdev_stats(vdev, vdev_stats);
  11053. tx_success = vdev_stats->tx.tx_success.num;
  11054. qdf_mem_free(vdev_stats);
  11055. dp_vdev_unref_delete(soc, vdev, DP_MOD_ID_CDP);
  11056. return tx_success;
  11057. }
  11058. #ifdef WLAN_SUPPORT_DATA_STALL
  11059. /**
  11060. * dp_register_data_stall_detect_cb() - register data stall callback
  11061. * @soc_hdl: Datapath soc handle
  11062. * @pdev_id: id of data path pdev handle
  11063. * @data_stall_detect_callback: data stall callback function
  11064. *
  11065. * Return: QDF_STATUS Enumeration
  11066. */
  11067. static
  11068. QDF_STATUS dp_register_data_stall_detect_cb(
  11069. struct cdp_soc_t *soc_hdl, uint8_t pdev_id,
  11070. data_stall_detect_cb data_stall_detect_callback)
  11071. {
  11072. struct dp_soc *soc = cdp_soc_t_to_dp_soc(soc_hdl);
  11073. struct dp_pdev *pdev;
  11074. pdev = dp_get_pdev_from_soc_pdev_id_wifi3(soc, pdev_id);
  11075. if (!pdev) {
  11076. dp_err("pdev NULL!");
  11077. return QDF_STATUS_E_INVAL;
  11078. }
  11079. pdev->data_stall_detect_callback = data_stall_detect_callback;
  11080. return QDF_STATUS_SUCCESS;
  11081. }
  11082. /**
  11083. * dp_deregister_data_stall_detect_cb() - de-register data stall callback
  11084. * @soc_hdl: Datapath soc handle
  11085. * @pdev_id: id of data path pdev handle
  11086. * @data_stall_detect_callback: data stall callback function
  11087. *
  11088. * Return: QDF_STATUS Enumeration
  11089. */
  11090. static
  11091. QDF_STATUS dp_deregister_data_stall_detect_cb(
  11092. struct cdp_soc_t *soc_hdl, uint8_t pdev_id,
  11093. data_stall_detect_cb data_stall_detect_callback)
  11094. {
  11095. struct dp_soc *soc = cdp_soc_t_to_dp_soc(soc_hdl);
  11096. struct dp_pdev *pdev;
  11097. pdev = dp_get_pdev_from_soc_pdev_id_wifi3(soc, pdev_id);
  11098. if (!pdev) {
  11099. dp_err("pdev NULL!");
  11100. return QDF_STATUS_E_INVAL;
  11101. }
  11102. pdev->data_stall_detect_callback = NULL;
  11103. return QDF_STATUS_SUCCESS;
  11104. }
  11105. /**
  11106. * dp_txrx_post_data_stall_event() - post data stall event
  11107. * @soc_hdl: Datapath soc handle
  11108. * @indicator: Module triggering data stall
  11109. * @data_stall_type: data stall event type
  11110. * @pdev_id: pdev id
  11111. * @vdev_id_bitmap: vdev id bitmap
  11112. * @recovery_type: data stall recovery type
  11113. *
  11114. * Return: None
  11115. */
  11116. static void
  11117. dp_txrx_post_data_stall_event(struct cdp_soc_t *soc_hdl,
  11118. enum data_stall_log_event_indicator indicator,
  11119. enum data_stall_log_event_type data_stall_type,
  11120. uint32_t pdev_id, uint32_t vdev_id_bitmap,
  11121. enum data_stall_log_recovery_type recovery_type)
  11122. {
  11123. struct dp_soc *soc = cdp_soc_t_to_dp_soc(soc_hdl);
  11124. struct data_stall_event_info data_stall_info;
  11125. struct dp_pdev *pdev;
  11126. pdev = dp_get_pdev_from_soc_pdev_id_wifi3(soc, pdev_id);
  11127. if (!pdev) {
  11128. dp_err("pdev NULL!");
  11129. return;
  11130. }
  11131. if (!pdev->data_stall_detect_callback) {
  11132. dp_err("data stall cb not registered!");
  11133. return;
  11134. }
  11135. dp_info("data_stall_type: %x pdev_id: %d",
  11136. data_stall_type, pdev_id);
  11137. data_stall_info.indicator = indicator;
  11138. data_stall_info.data_stall_type = data_stall_type;
  11139. data_stall_info.vdev_id_bitmap = vdev_id_bitmap;
  11140. data_stall_info.pdev_id = pdev_id;
  11141. data_stall_info.recovery_type = recovery_type;
  11142. pdev->data_stall_detect_callback(&data_stall_info);
  11143. }
  11144. #endif /* WLAN_SUPPORT_DATA_STALL */
  11145. #ifdef WLAN_FEATURE_STATS_EXT
  11146. /* rx hw stats event wait timeout in ms */
  11147. #define DP_REO_STATUS_STATS_TIMEOUT 1500
  11148. /**
  11149. * dp_txrx_ext_stats_request - request dp txrx extended stats request
  11150. * @soc_hdl: soc handle
  11151. * @pdev_id: pdev id
  11152. * @req: stats request
  11153. *
  11154. * Return: QDF_STATUS
  11155. */
  11156. static QDF_STATUS
  11157. dp_txrx_ext_stats_request(struct cdp_soc_t *soc_hdl, uint8_t pdev_id,
  11158. struct cdp_txrx_ext_stats *req)
  11159. {
  11160. struct dp_soc *soc = (struct dp_soc *)soc_hdl;
  11161. struct dp_pdev *pdev = dp_get_pdev_from_soc_pdev_id_wifi3(soc, pdev_id);
  11162. if (!pdev) {
  11163. dp_err("pdev is null");
  11164. return QDF_STATUS_E_INVAL;
  11165. }
  11166. dp_aggregate_pdev_stats(pdev);
  11167. req->tx_msdu_enqueue = pdev->stats.tx_i.processed.num;
  11168. req->tx_msdu_overflow = pdev->stats.tx_i.dropped.ring_full;
  11169. req->rx_mpdu_received = soc->ext_stats.rx_mpdu_received;
  11170. req->rx_mpdu_delivered = soc->ext_stats.rx_mpdu_received;
  11171. req->rx_mpdu_missed = soc->ext_stats.rx_mpdu_missed;
  11172. /* only count error source from RXDMA */
  11173. req->rx_mpdu_error = pdev->stats.err.rxdma_error;
  11174. return QDF_STATUS_SUCCESS;
  11175. }
  11176. /**
  11177. * dp_rx_hw_stats_cb - request rx hw stats response callback
  11178. * @soc: soc handle
  11179. * @cb_ctxt: callback context
  11180. * @reo_status: reo command response status
  11181. *
  11182. * Return: None
  11183. */
  11184. static void dp_rx_hw_stats_cb(struct dp_soc *soc, void *cb_ctxt,
  11185. union hal_reo_status *reo_status)
  11186. {
  11187. struct dp_req_rx_hw_stats_t *rx_hw_stats = cb_ctxt;
  11188. struct hal_reo_queue_status *queue_status = &reo_status->queue_status;
  11189. bool is_query_timeout;
  11190. qdf_spin_lock_bh(&soc->rx_hw_stats_lock);
  11191. is_query_timeout = rx_hw_stats->is_query_timeout;
  11192. /* free the cb_ctxt if all pending tid stats query is received */
  11193. if (qdf_atomic_dec_and_test(&rx_hw_stats->pending_tid_stats_cnt)) {
  11194. if (!is_query_timeout) {
  11195. qdf_event_set(&soc->rx_hw_stats_event);
  11196. soc->is_last_stats_ctx_init = false;
  11197. }
  11198. qdf_mem_free(rx_hw_stats);
  11199. }
  11200. if (queue_status->header.status != HAL_REO_CMD_SUCCESS) {
  11201. dp_info("REO stats failure %d",
  11202. queue_status->header.status);
  11203. qdf_spin_unlock_bh(&soc->rx_hw_stats_lock);
  11204. return;
  11205. }
  11206. if (!is_query_timeout) {
  11207. soc->ext_stats.rx_mpdu_received +=
  11208. queue_status->mpdu_frms_cnt;
  11209. soc->ext_stats.rx_mpdu_missed +=
  11210. queue_status->hole_cnt;
  11211. }
  11212. qdf_spin_unlock_bh(&soc->rx_hw_stats_lock);
  11213. }
  11214. /**
  11215. * dp_request_rx_hw_stats - request rx hardware stats
  11216. * @soc_hdl: soc handle
  11217. * @vdev_id: vdev id
  11218. *
  11219. * Return: None
  11220. */
  11221. static QDF_STATUS
  11222. dp_request_rx_hw_stats(struct cdp_soc_t *soc_hdl, uint8_t vdev_id)
  11223. {
  11224. struct dp_soc *soc = (struct dp_soc *)soc_hdl;
  11225. struct dp_vdev *vdev = dp_vdev_get_ref_by_id(soc, vdev_id,
  11226. DP_MOD_ID_CDP);
  11227. struct dp_peer *peer = NULL;
  11228. QDF_STATUS status;
  11229. struct dp_req_rx_hw_stats_t *rx_hw_stats;
  11230. int rx_stats_sent_cnt = 0;
  11231. uint32_t last_rx_mpdu_received;
  11232. uint32_t last_rx_mpdu_missed;
  11233. if (!vdev) {
  11234. dp_err("vdev is null for vdev_id: %u", vdev_id);
  11235. status = QDF_STATUS_E_INVAL;
  11236. goto out;
  11237. }
  11238. peer = dp_vdev_bss_peer_ref_n_get(soc, vdev, DP_MOD_ID_CDP);
  11239. if (!peer) {
  11240. dp_err("Peer is NULL");
  11241. status = QDF_STATUS_E_INVAL;
  11242. goto out;
  11243. }
  11244. rx_hw_stats = qdf_mem_malloc(sizeof(*rx_hw_stats));
  11245. if (!rx_hw_stats) {
  11246. dp_err("malloc failed for hw stats structure");
  11247. status = QDF_STATUS_E_INVAL;
  11248. goto out;
  11249. }
  11250. qdf_event_reset(&soc->rx_hw_stats_event);
  11251. qdf_spin_lock_bh(&soc->rx_hw_stats_lock);
  11252. /* save the last soc cumulative stats and reset it to 0 */
  11253. last_rx_mpdu_received = soc->ext_stats.rx_mpdu_received;
  11254. last_rx_mpdu_missed = soc->ext_stats.rx_mpdu_missed;
  11255. soc->ext_stats.rx_mpdu_received = 0;
  11256. soc->ext_stats.rx_mpdu_missed = 0;
  11257. rx_stats_sent_cnt =
  11258. dp_peer_rxtid_stats(peer, dp_rx_hw_stats_cb, rx_hw_stats);
  11259. if (!rx_stats_sent_cnt) {
  11260. dp_err("no tid stats sent successfully");
  11261. qdf_mem_free(rx_hw_stats);
  11262. qdf_spin_unlock_bh(&soc->rx_hw_stats_lock);
  11263. status = QDF_STATUS_E_INVAL;
  11264. goto out;
  11265. }
  11266. qdf_atomic_set(&rx_hw_stats->pending_tid_stats_cnt,
  11267. rx_stats_sent_cnt);
  11268. rx_hw_stats->is_query_timeout = false;
  11269. soc->is_last_stats_ctx_init = true;
  11270. qdf_spin_unlock_bh(&soc->rx_hw_stats_lock);
  11271. status = qdf_wait_single_event(&soc->rx_hw_stats_event,
  11272. DP_REO_STATUS_STATS_TIMEOUT);
  11273. qdf_spin_lock_bh(&soc->rx_hw_stats_lock);
  11274. if (status != QDF_STATUS_SUCCESS) {
  11275. dp_info("rx hw stats event timeout");
  11276. if (soc->is_last_stats_ctx_init)
  11277. rx_hw_stats->is_query_timeout = true;
  11278. /**
  11279. * If query timeout happened, use the last saved stats
  11280. * for this time query.
  11281. */
  11282. soc->ext_stats.rx_mpdu_received = last_rx_mpdu_received;
  11283. soc->ext_stats.rx_mpdu_missed = last_rx_mpdu_missed;
  11284. }
  11285. qdf_spin_unlock_bh(&soc->rx_hw_stats_lock);
  11286. out:
  11287. if (peer)
  11288. dp_peer_unref_delete(peer, DP_MOD_ID_CDP);
  11289. if (vdev)
  11290. dp_vdev_unref_delete(soc, vdev, DP_MOD_ID_CDP);
  11291. return status;
  11292. }
  11293. /**
  11294. * dp_reset_rx_hw_ext_stats - Reset rx hardware ext stats
  11295. * @soc_hdl: soc handle
  11296. *
  11297. * Return: None
  11298. */
  11299. static
  11300. void dp_reset_rx_hw_ext_stats(struct cdp_soc_t *soc_hdl)
  11301. {
  11302. struct dp_soc *soc = (struct dp_soc *)soc_hdl;
  11303. soc->ext_stats.rx_mpdu_received = 0;
  11304. soc->ext_stats.rx_mpdu_missed = 0;
  11305. }
  11306. #endif /* WLAN_FEATURE_STATS_EXT */
  11307. #ifdef DP_PEER_EXTENDED_API
  11308. static struct cdp_misc_ops dp_ops_misc = {
  11309. #ifdef FEATURE_WLAN_TDLS
  11310. .tx_non_std = dp_tx_non_std,
  11311. #endif /* FEATURE_WLAN_TDLS */
  11312. .get_opmode = dp_get_opmode,
  11313. #ifdef FEATURE_RUNTIME_PM
  11314. .runtime_suspend = dp_runtime_suspend,
  11315. .runtime_resume = dp_runtime_resume,
  11316. #endif /* FEATURE_RUNTIME_PM */
  11317. .pkt_log_init = dp_pkt_log_init,
  11318. .pkt_log_con_service = dp_pkt_log_con_service,
  11319. .get_num_rx_contexts = dp_get_num_rx_contexts,
  11320. .get_tx_ack_stats = dp_tx_get_success_ack_stats,
  11321. #ifdef WLAN_SUPPORT_DATA_STALL
  11322. .txrx_data_stall_cb_register = dp_register_data_stall_detect_cb,
  11323. .txrx_data_stall_cb_deregister = dp_deregister_data_stall_detect_cb,
  11324. .txrx_post_data_stall_event = dp_txrx_post_data_stall_event,
  11325. #endif
  11326. #ifdef WLAN_FEATURE_STATS_EXT
  11327. .txrx_ext_stats_request = dp_txrx_ext_stats_request,
  11328. .request_rx_hw_stats = dp_request_rx_hw_stats,
  11329. .reset_rx_hw_ext_stats = dp_reset_rx_hw_ext_stats,
  11330. #endif /* WLAN_FEATURE_STATS_EXT */
  11331. .vdev_inform_ll_conn = dp_vdev_inform_ll_conn,
  11332. #ifdef WLAN_DP_FEATURE_SW_LATENCY_MGR
  11333. .set_swlm_enable = dp_soc_set_swlm_enable,
  11334. .is_swlm_enabled = dp_soc_is_swlm_enabled,
  11335. #endif
  11336. .display_txrx_hw_info = dp_display_srng_info,
  11337. };
  11338. #endif
  11339. #ifdef DP_FLOW_CTL
  11340. static struct cdp_flowctl_ops dp_ops_flowctl = {
  11341. /* WIFI 3.0 DP implement as required. */
  11342. #ifdef QCA_LL_TX_FLOW_CONTROL_V2
  11343. .flow_pool_map_handler = dp_tx_flow_pool_map,
  11344. .flow_pool_unmap_handler = dp_tx_flow_pool_unmap,
  11345. .register_pause_cb = dp_txrx_register_pause_cb,
  11346. .dump_flow_pool_info = dp_tx_dump_flow_pool_info,
  11347. .tx_desc_thresh_reached = dp_tx_desc_thresh_reached,
  11348. #endif /* QCA_LL_TX_FLOW_CONTROL_V2 */
  11349. };
  11350. static struct cdp_lflowctl_ops dp_ops_l_flowctl = {
  11351. /* WIFI 3.0 DP NOT IMPLEMENTED YET */
  11352. };
  11353. #endif
  11354. #ifdef IPA_OFFLOAD
  11355. static struct cdp_ipa_ops dp_ops_ipa = {
  11356. .ipa_get_resource = dp_ipa_get_resource,
  11357. .ipa_set_doorbell_paddr = dp_ipa_set_doorbell_paddr,
  11358. .ipa_op_response = dp_ipa_op_response,
  11359. .ipa_register_op_cb = dp_ipa_register_op_cb,
  11360. .ipa_deregister_op_cb = dp_ipa_deregister_op_cb,
  11361. .ipa_get_stat = dp_ipa_get_stat,
  11362. .ipa_tx_data_frame = dp_tx_send_ipa_data_frame,
  11363. .ipa_enable_autonomy = dp_ipa_enable_autonomy,
  11364. .ipa_disable_autonomy = dp_ipa_disable_autonomy,
  11365. .ipa_setup = dp_ipa_setup,
  11366. .ipa_cleanup = dp_ipa_cleanup,
  11367. .ipa_setup_iface = dp_ipa_setup_iface,
  11368. .ipa_cleanup_iface = dp_ipa_cleanup_iface,
  11369. .ipa_enable_pipes = dp_ipa_enable_pipes,
  11370. .ipa_disable_pipes = dp_ipa_disable_pipes,
  11371. .ipa_set_perf_level = dp_ipa_set_perf_level,
  11372. .ipa_rx_intrabss_fwd = dp_ipa_rx_intrabss_fwd,
  11373. .ipa_tx_buf_smmu_mapping = dp_ipa_tx_buf_smmu_mapping,
  11374. .ipa_tx_buf_smmu_unmapping = dp_ipa_tx_buf_smmu_unmapping
  11375. };
  11376. #endif
  11377. #ifdef DP_POWER_SAVE
  11378. static QDF_STATUS dp_bus_suspend(struct cdp_soc_t *soc_hdl, uint8_t pdev_id)
  11379. {
  11380. struct dp_soc *soc = cdp_soc_t_to_dp_soc(soc_hdl);
  11381. struct dp_pdev *pdev = dp_get_pdev_from_soc_pdev_id_wifi3(soc, pdev_id);
  11382. int timeout = SUSPEND_DRAIN_WAIT;
  11383. int drain_wait_delay = 50; /* 50 ms */
  11384. if (qdf_unlikely(!pdev)) {
  11385. dp_err("pdev is NULL");
  11386. return QDF_STATUS_E_INVAL;
  11387. }
  11388. /* Abort if there are any pending TX packets */
  11389. while (dp_get_tx_pending((struct cdp_pdev *)pdev) > 0) {
  11390. qdf_sleep(drain_wait_delay);
  11391. if (timeout <= 0) {
  11392. dp_err("TX frames are pending, abort suspend");
  11393. return QDF_STATUS_E_TIMEOUT;
  11394. }
  11395. timeout = timeout - drain_wait_delay;
  11396. }
  11397. if (soc->intr_mode == DP_INTR_POLL)
  11398. qdf_timer_stop(&soc->int_timer);
  11399. /* Stop monitor reap timer and reap any pending frames in ring */
  11400. if (((pdev->rx_pktlog_mode != DP_RX_PKTLOG_DISABLED) ||
  11401. dp_is_enable_reap_timer_non_pkt(pdev)) &&
  11402. soc->reap_timer_init) {
  11403. qdf_timer_sync_cancel(&soc->mon_reap_timer);
  11404. dp_service_mon_rings(soc, DP_MON_REAP_BUDGET);
  11405. }
  11406. dp_suspend_fse_cache_flush(soc);
  11407. return QDF_STATUS_SUCCESS;
  11408. }
  11409. static QDF_STATUS dp_bus_resume(struct cdp_soc_t *soc_hdl, uint8_t pdev_id)
  11410. {
  11411. struct dp_soc *soc = cdp_soc_t_to_dp_soc(soc_hdl);
  11412. struct dp_pdev *pdev = dp_get_pdev_from_soc_pdev_id_wifi3(soc, pdev_id);
  11413. if (qdf_unlikely(!pdev)) {
  11414. dp_err("pdev is NULL");
  11415. return QDF_STATUS_E_INVAL;
  11416. }
  11417. if (soc->intr_mode == DP_INTR_POLL)
  11418. qdf_timer_mod(&soc->int_timer, DP_INTR_POLL_TIMER_MS);
  11419. /* Start monitor reap timer */
  11420. if (((pdev->rx_pktlog_mode != DP_RX_PKTLOG_DISABLED) ||
  11421. dp_is_enable_reap_timer_non_pkt(pdev)) &&
  11422. soc->reap_timer_init)
  11423. qdf_timer_mod(&soc->mon_reap_timer,
  11424. DP_INTR_POLL_TIMER_MS);
  11425. dp_resume_fse_cache_flush(soc);
  11426. return QDF_STATUS_SUCCESS;
  11427. }
  11428. /**
  11429. * dp_process_wow_ack_rsp() - process wow ack response
  11430. * @soc_hdl: datapath soc handle
  11431. * @pdev_id: data path pdev handle id
  11432. *
  11433. * Return: none
  11434. */
  11435. static void dp_process_wow_ack_rsp(struct cdp_soc_t *soc_hdl, uint8_t pdev_id)
  11436. {
  11437. struct dp_soc *soc = cdp_soc_t_to_dp_soc(soc_hdl);
  11438. struct dp_pdev *pdev = dp_get_pdev_from_soc_pdev_id_wifi3(soc, pdev_id);
  11439. if (qdf_unlikely(!pdev)) {
  11440. dp_err("pdev is NULL");
  11441. return;
  11442. }
  11443. /*
  11444. * As part of wow enable FW disables the mon status ring and in wow ack
  11445. * response from FW reap mon status ring to make sure no packets pending
  11446. * in the ring.
  11447. */
  11448. if (((pdev->rx_pktlog_mode != DP_RX_PKTLOG_DISABLED) ||
  11449. dp_is_enable_reap_timer_non_pkt(pdev)) &&
  11450. soc->reap_timer_init) {
  11451. dp_service_mon_rings(soc, DP_MON_REAP_BUDGET);
  11452. }
  11453. }
  11454. /**
  11455. * dp_process_target_suspend_req() - process target suspend request
  11456. * @soc_hdl: datapath soc handle
  11457. * @pdev_id: data path pdev handle id
  11458. *
  11459. * Return: none
  11460. */
  11461. static void dp_process_target_suspend_req(struct cdp_soc_t *soc_hdl,
  11462. uint8_t pdev_id)
  11463. {
  11464. struct dp_soc *soc = cdp_soc_t_to_dp_soc(soc_hdl);
  11465. struct dp_pdev *pdev = dp_get_pdev_from_soc_pdev_id_wifi3(soc, pdev_id);
  11466. if (qdf_unlikely(!pdev)) {
  11467. dp_err("pdev is NULL");
  11468. return;
  11469. }
  11470. /* Stop monitor reap timer and reap any pending frames in ring */
  11471. if (((pdev->rx_pktlog_mode != DP_RX_PKTLOG_DISABLED) ||
  11472. dp_is_enable_reap_timer_non_pkt(pdev)) &&
  11473. soc->reap_timer_init) {
  11474. qdf_timer_sync_cancel(&soc->mon_reap_timer);
  11475. dp_service_mon_rings(soc, DP_MON_REAP_BUDGET);
  11476. }
  11477. }
  11478. static struct cdp_bus_ops dp_ops_bus = {
  11479. .bus_suspend = dp_bus_suspend,
  11480. .bus_resume = dp_bus_resume,
  11481. .process_wow_ack_rsp = dp_process_wow_ack_rsp,
  11482. .process_target_suspend_req = dp_process_target_suspend_req
  11483. };
  11484. #endif
  11485. #ifdef DP_FLOW_CTL
  11486. static struct cdp_throttle_ops dp_ops_throttle = {
  11487. /* WIFI 3.0 DP NOT IMPLEMENTED YET */
  11488. };
  11489. static struct cdp_cfg_ops dp_ops_cfg = {
  11490. /* WIFI 3.0 DP NOT IMPLEMENTED YET */
  11491. };
  11492. #endif
  11493. #ifdef DP_PEER_EXTENDED_API
  11494. static struct cdp_ocb_ops dp_ops_ocb = {
  11495. /* WIFI 3.0 DP NOT IMPLEMENTED YET */
  11496. };
  11497. static struct cdp_mob_stats_ops dp_ops_mob_stats = {
  11498. .clear_stats = dp_txrx_clear_dump_stats,
  11499. };
  11500. static struct cdp_peer_ops dp_ops_peer = {
  11501. .register_peer = dp_register_peer,
  11502. .clear_peer = dp_clear_peer,
  11503. .find_peer_exist = dp_find_peer_exist,
  11504. .find_peer_exist_on_vdev = dp_find_peer_exist_on_vdev,
  11505. .find_peer_exist_on_other_vdev = dp_find_peer_exist_on_other_vdev,
  11506. .peer_state_update = dp_peer_state_update,
  11507. .get_vdevid = dp_get_vdevid,
  11508. .get_vdev_by_peer_addr = dp_get_vdev_by_peer_addr,
  11509. .peer_get_peer_mac_addr = dp_peer_get_peer_mac_addr,
  11510. .get_peer_state = dp_get_peer_state,
  11511. .peer_flush_frags = dp_peer_flush_frags,
  11512. };
  11513. #endif
  11514. static struct cdp_ops dp_txrx_ops = {
  11515. .cmn_drv_ops = &dp_ops_cmn,
  11516. .ctrl_ops = &dp_ops_ctrl,
  11517. .me_ops = &dp_ops_me,
  11518. .mon_ops = &dp_ops_mon,
  11519. .host_stats_ops = &dp_ops_host_stats,
  11520. .wds_ops = &dp_ops_wds,
  11521. .raw_ops = &dp_ops_raw,
  11522. #ifdef PEER_FLOW_CONTROL
  11523. .pflow_ops = &dp_ops_pflow,
  11524. #endif /* PEER_FLOW_CONTROL */
  11525. #ifdef DP_PEER_EXTENDED_API
  11526. .misc_ops = &dp_ops_misc,
  11527. .ocb_ops = &dp_ops_ocb,
  11528. .peer_ops = &dp_ops_peer,
  11529. .mob_stats_ops = &dp_ops_mob_stats,
  11530. #endif
  11531. #ifdef DP_FLOW_CTL
  11532. .cfg_ops = &dp_ops_cfg,
  11533. .flowctl_ops = &dp_ops_flowctl,
  11534. .l_flowctl_ops = &dp_ops_l_flowctl,
  11535. .throttle_ops = &dp_ops_throttle,
  11536. #endif
  11537. #ifdef IPA_OFFLOAD
  11538. .ipa_ops = &dp_ops_ipa,
  11539. #endif
  11540. #ifdef DP_POWER_SAVE
  11541. .bus_ops = &dp_ops_bus,
  11542. #endif
  11543. #if defined(WLAN_CFR_ENABLE) && defined(WLAN_ENH_CFR_ENABLE)
  11544. .cfr_ops = &dp_ops_cfr,
  11545. #endif
  11546. #ifdef WLAN_SUPPORT_MSCS
  11547. .mscs_ops = &dp_ops_mscs,
  11548. #endif
  11549. #ifdef WLAN_SUPPORT_MESH_LATENCY
  11550. .mesh_latency_ops = &dp_ops_mesh_latency,
  11551. #endif
  11552. };
  11553. /*
  11554. * dp_soc_set_txrx_ring_map()
  11555. * @dp_soc: DP handler for soc
  11556. *
  11557. * Return: Void
  11558. */
  11559. void dp_soc_set_txrx_ring_map(struct dp_soc *soc)
  11560. {
  11561. uint32_t i;
  11562. for (i = 0; i < WLAN_CFG_INT_NUM_CONTEXTS; i++) {
  11563. soc->tx_ring_map[i] = dp_cpu_ring_map[DP_NSS_DEFAULT_MAP][i];
  11564. }
  11565. }
  11566. #if defined(QCA_WIFI_QCA8074) || defined(QCA_WIFI_QCA6018) || \
  11567. defined(QCA_WIFI_QCA5018) || defined(QCA_WIFI_QCA9574)
  11568. /**
  11569. * dp_soc_attach_wifi3() - Attach txrx SOC
  11570. * @ctrl_psoc: Opaque SOC handle from control plane
  11571. * @htc_handle: Opaque HTC handle
  11572. * @hif_handle: Opaque HIF handle
  11573. * @qdf_osdev: QDF device
  11574. * @ol_ops: Offload Operations
  11575. * @device_id: Device ID
  11576. *
  11577. * Return: DP SOC handle on success, NULL on failure
  11578. */
  11579. struct cdp_soc_t *
  11580. dp_soc_attach_wifi3(struct cdp_ctrl_objmgr_psoc *ctrl_psoc,
  11581. struct hif_opaque_softc *hif_handle,
  11582. HTC_HANDLE htc_handle, qdf_device_t qdf_osdev,
  11583. struct ol_if_ops *ol_ops, uint16_t device_id)
  11584. {
  11585. struct dp_soc *dp_soc = NULL;
  11586. dp_soc = dp_soc_attach(ctrl_psoc, hif_handle, htc_handle, qdf_osdev,
  11587. ol_ops, device_id);
  11588. return dp_soc_to_cdp_soc_t(dp_soc);
  11589. }
  11590. static inline void dp_soc_set_def_pdev(struct dp_soc *soc)
  11591. {
  11592. int lmac_id;
  11593. for (lmac_id = 0; lmac_id < MAX_NUM_LMAC_HW; lmac_id++) {
  11594. /*Set default host PDEV ID for lmac_id*/
  11595. wlan_cfg_set_pdev_idx(soc->wlan_cfg_ctx,
  11596. INVALID_PDEV_ID, lmac_id);
  11597. }
  11598. }
  11599. static uint32_t
  11600. dp_get_link_desc_id_start(uint16_t arch_id)
  11601. {
  11602. switch (arch_id) {
  11603. case CDP_ARCH_TYPE_LI:
  11604. return LINK_DESC_ID_START_21_BITS_COOKIE;
  11605. case CDP_ARCH_TYPE_BE:
  11606. return LINK_DESC_ID_START_20_BITS_COOKIE;
  11607. default:
  11608. dp_err("unkonwn arch_id 0x%x", arch_id);
  11609. QDF_BUG(0);
  11610. return LINK_DESC_ID_START_21_BITS_COOKIE;
  11611. }
  11612. }
  11613. /**
  11614. * dp_soc_attach() - Attach txrx SOC
  11615. * @ctrl_psoc: Opaque SOC handle from control plane
  11616. * @hif_handle: Opaque HIF handle
  11617. * @htc_handle: Opaque HTC handle
  11618. * @qdf_osdev: QDF device
  11619. * @ol_ops: Offload Operations
  11620. * @device_id: Device ID
  11621. *
  11622. * Return: DP SOC handle on success, NULL on failure
  11623. */
  11624. static struct dp_soc *
  11625. dp_soc_attach(struct cdp_ctrl_objmgr_psoc *ctrl_psoc,
  11626. struct hif_opaque_softc *hif_handle, HTC_HANDLE htc_handle,
  11627. qdf_device_t qdf_osdev, struct ol_if_ops *ol_ops,
  11628. uint16_t device_id)
  11629. {
  11630. int int_ctx;
  11631. struct dp_soc *soc = NULL;
  11632. uint16_t arch_id;
  11633. if (!hif_handle) {
  11634. dp_err("HIF handle is NULL");
  11635. goto fail0;
  11636. }
  11637. arch_id = cdp_get_arch_type_from_devid(device_id);
  11638. soc = qdf_mem_malloc(dp_get_soc_context_size(device_id));
  11639. if (!soc) {
  11640. dp_err("DP SOC memory allocation failed");
  11641. goto fail0;
  11642. }
  11643. dp_info("soc memory allocated %pk", soc);
  11644. soc->hif_handle = hif_handle;
  11645. soc->hal_soc = hif_get_hal_handle(soc->hif_handle);
  11646. if (!soc->hal_soc)
  11647. goto fail1;
  11648. hif_get_cmem_info(soc->hif_handle,
  11649. &soc->cmem_base,
  11650. &soc->cmem_size);
  11651. int_ctx = 0;
  11652. soc->device_id = device_id;
  11653. soc->cdp_soc.ops = &dp_txrx_ops;
  11654. soc->cdp_soc.ol_ops = ol_ops;
  11655. soc->ctrl_psoc = ctrl_psoc;
  11656. soc->osdev = qdf_osdev;
  11657. soc->num_hw_dscp_tid_map = HAL_MAX_HW_DSCP_TID_MAPS;
  11658. hal_rx_get_tlv_size(soc->hal_soc, &soc->rx_pkt_tlv_size,
  11659. &soc->rx_mon_pkt_tlv_size);
  11660. soc->arch_id = arch_id;
  11661. soc->link_desc_id_start =
  11662. dp_get_link_desc_id_start(soc->arch_id);
  11663. dp_configure_arch_ops(soc);
  11664. /* Reset wbm sg list and flags */
  11665. dp_rx_wbm_sg_list_reset(soc);
  11666. dp_soc_tx_hw_desc_history_attach(soc);
  11667. dp_soc_rx_history_attach(soc);
  11668. dp_soc_tx_history_attach(soc);
  11669. wlan_set_srng_cfg(&soc->wlan_srng_cfg);
  11670. soc->wlan_cfg_ctx = wlan_cfg_soc_attach(soc->ctrl_psoc);
  11671. if (!soc->wlan_cfg_ctx) {
  11672. dp_err("wlan_cfg_ctx failed\n");
  11673. goto fail1;
  11674. }
  11675. dp_soc_cfg_attach(soc);
  11676. if (dp_hw_link_desc_pool_banks_alloc(soc, WLAN_INVALID_PDEV_ID)) {
  11677. dp_err("failed to allocate link desc pool banks");
  11678. goto fail2;
  11679. }
  11680. if (dp_hw_link_desc_ring_alloc(soc)) {
  11681. dp_err("failed to allocate link_desc_ring");
  11682. goto fail3;
  11683. }
  11684. if (dp_soc_srng_alloc(soc)) {
  11685. dp_err("failed to allocate soc srng rings");
  11686. goto fail4;
  11687. }
  11688. if (dp_soc_tx_desc_sw_pools_alloc(soc)) {
  11689. dp_err("dp_soc_tx_desc_sw_pools_alloc failed");
  11690. goto fail5;
  11691. }
  11692. if (!QDF_IS_STATUS_SUCCESS(soc->arch_ops.txrx_soc_attach(soc))) {
  11693. dp_err("unable to do target specific attach");
  11694. goto fail6;
  11695. }
  11696. dp_soc_swlm_attach(soc);
  11697. dp_soc_set_interrupt_mode(soc);
  11698. dp_soc_set_def_pdev(soc);
  11699. dp_info("Mem stats: DMA = %u HEAP = %u SKB = %u",
  11700. qdf_dma_mem_stats_read(),
  11701. qdf_heap_mem_stats_read(),
  11702. qdf_skb_total_mem_stats_read());
  11703. return soc;
  11704. fail6:
  11705. dp_soc_tx_desc_sw_pools_free(soc);
  11706. fail5:
  11707. dp_soc_srng_free(soc);
  11708. fail4:
  11709. dp_hw_link_desc_ring_free(soc);
  11710. fail3:
  11711. dp_hw_link_desc_pool_banks_free(soc, WLAN_INVALID_PDEV_ID);
  11712. fail2:
  11713. wlan_cfg_soc_detach(soc->wlan_cfg_ctx);
  11714. fail1:
  11715. qdf_mem_free(soc);
  11716. fail0:
  11717. return NULL;
  11718. }
  11719. /**
  11720. * dp_soc_init() - Initialize txrx SOC
  11721. * @dp_soc: Opaque DP SOC handle
  11722. * @htc_handle: Opaque HTC handle
  11723. * @hif_handle: Opaque HIF handle
  11724. *
  11725. * Return: DP SOC handle on success, NULL on failure
  11726. */
  11727. void *dp_soc_init(struct dp_soc *soc, HTC_HANDLE htc_handle,
  11728. struct hif_opaque_softc *hif_handle)
  11729. {
  11730. struct htt_soc *htt_soc = (struct htt_soc *)soc->htt_handle;
  11731. bool is_monitor_mode = false;
  11732. struct hal_reo_params reo_params;
  11733. uint8_t i;
  11734. int num_dp_msi;
  11735. wlan_minidump_log(soc, sizeof(*soc), soc->ctrl_psoc,
  11736. WLAN_MD_DP_SOC, "dp_soc");
  11737. if (!QDF_IS_STATUS_SUCCESS(soc->arch_ops.txrx_soc_init(soc))) {
  11738. dp_err("unable to do target specific init");
  11739. goto fail0;
  11740. }
  11741. htt_soc = htt_soc_attach(soc, htc_handle);
  11742. if (!htt_soc)
  11743. goto fail1;
  11744. soc->htt_handle = htt_soc;
  11745. if (htt_soc_htc_prealloc(htt_soc) != QDF_STATUS_SUCCESS)
  11746. goto fail2;
  11747. htt_set_htc_handle(htt_soc, htc_handle);
  11748. soc->hif_handle = hif_handle;
  11749. soc->hal_soc = hif_get_hal_handle(soc->hif_handle);
  11750. if (!soc->hal_soc)
  11751. goto fail3;
  11752. dp_soc_cfg_init(soc);
  11753. /* Reset/Initialize wbm sg list and flags */
  11754. dp_rx_wbm_sg_list_reset(soc);
  11755. /* Note: Any SRNG ring initialization should happen only after
  11756. * Interrupt mode is set and followed by filling up the
  11757. * interrupt mask. IT SHOULD ALWAYS BE IN THIS ORDER.
  11758. */
  11759. dp_soc_set_interrupt_mode(soc);
  11760. if (soc->cdp_soc.ol_ops->get_con_mode &&
  11761. soc->cdp_soc.ol_ops->get_con_mode() ==
  11762. QDF_GLOBAL_MONITOR_MODE)
  11763. is_monitor_mode = true;
  11764. num_dp_msi = dp_get_num_msi_available(soc, soc->intr_mode);
  11765. if (num_dp_msi < 0) {
  11766. dp_init_err("%pK: dp_interrupt assignment failed", soc);
  11767. goto fail4;
  11768. }
  11769. wlan_cfg_fill_interrupt_mask(soc->wlan_cfg_ctx, num_dp_msi,
  11770. soc->intr_mode, is_monitor_mode);
  11771. /* initialize WBM_IDLE_LINK ring */
  11772. if (dp_hw_link_desc_ring_init(soc)) {
  11773. dp_init_err("%pK: dp_hw_link_desc_ring_init failed", soc);
  11774. goto fail4;
  11775. }
  11776. dp_link_desc_ring_replenish(soc, WLAN_INVALID_PDEV_ID);
  11777. if (dp_soc_srng_init(soc)) {
  11778. dp_init_err("%pK: dp_soc_srng_init failed", soc);
  11779. goto fail5;
  11780. }
  11781. if (htt_soc_initialize(soc->htt_handle, soc->ctrl_psoc,
  11782. htt_get_htc_handle(htt_soc),
  11783. soc->hal_soc, soc->osdev) == NULL)
  11784. goto fail6;
  11785. /* Initialize descriptors in TCL Rings */
  11786. for (i = 0; i < soc->num_tcl_data_rings; i++) {
  11787. hal_tx_init_data_ring(soc->hal_soc,
  11788. soc->tcl_data_ring[i].hal_srng);
  11789. }
  11790. if (dp_soc_tx_desc_sw_pools_init(soc)) {
  11791. dp_init_err("%pK: dp_tx_soc_attach failed", soc);
  11792. goto fail7;
  11793. }
  11794. wlan_cfg_set_rx_hash(soc->wlan_cfg_ctx,
  11795. cfg_get(soc->ctrl_psoc, CFG_DP_RX_HASH));
  11796. soc->cce_disable = false;
  11797. soc->max_ast_ageout_count = MAX_AST_AGEOUT_COUNT;
  11798. qdf_mem_zero(&soc->vdev_id_map, sizeof(soc->vdev_id_map));
  11799. qdf_spinlock_create(&soc->vdev_map_lock);
  11800. qdf_atomic_init(&soc->num_tx_outstanding);
  11801. qdf_atomic_init(&soc->num_tx_exception);
  11802. soc->num_tx_allowed =
  11803. wlan_cfg_get_dp_soc_tx_device_limit(soc->wlan_cfg_ctx);
  11804. if (soc->cdp_soc.ol_ops->get_dp_cfg_param) {
  11805. int ret = soc->cdp_soc.ol_ops->get_dp_cfg_param(soc->ctrl_psoc,
  11806. CDP_CFG_MAX_PEER_ID);
  11807. if (ret != -EINVAL)
  11808. wlan_cfg_set_max_peer_id(soc->wlan_cfg_ctx, ret);
  11809. ret = soc->cdp_soc.ol_ops->get_dp_cfg_param(soc->ctrl_psoc,
  11810. CDP_CFG_CCE_DISABLE);
  11811. if (ret == 1)
  11812. soc->cce_disable = true;
  11813. }
  11814. /*
  11815. * Skip registering hw ring interrupts for WMAC2 on IPQ6018
  11816. * and IPQ5018 WMAC2 is not there in these platforms.
  11817. */
  11818. if (hal_get_target_type(soc->hal_soc) == TARGET_TYPE_QCA6018 ||
  11819. soc->disable_mac2_intr)
  11820. dp_soc_disable_unused_mac_intr_mask(soc, 0x2);
  11821. /*
  11822. * Skip registering hw ring interrupts for WMAC1 on IPQ5018
  11823. * WMAC1 is not there in this platform.
  11824. */
  11825. if (soc->disable_mac1_intr)
  11826. dp_soc_disable_unused_mac_intr_mask(soc, 0x1);
  11827. /* Setup HW REO */
  11828. qdf_mem_zero(&reo_params, sizeof(reo_params));
  11829. if (wlan_cfg_is_rx_hash_enabled(soc->wlan_cfg_ctx)) {
  11830. /*
  11831. * Reo ring remap is not required if both radios
  11832. * are offloaded to NSS
  11833. */
  11834. if (dp_reo_remap_config(soc,
  11835. &reo_params.remap1,
  11836. &reo_params.remap2))
  11837. reo_params.rx_hash_enabled = true;
  11838. else
  11839. reo_params.rx_hash_enabled = false;
  11840. }
  11841. /* setup the global rx defrag waitlist */
  11842. TAILQ_INIT(&soc->rx.defrag.waitlist);
  11843. soc->rx.defrag.timeout_ms =
  11844. wlan_cfg_get_rx_defrag_min_timeout(soc->wlan_cfg_ctx);
  11845. soc->rx.defrag.next_flush_ms = 0;
  11846. soc->rx.flags.defrag_timeout_check =
  11847. wlan_cfg_get_defrag_timeout_check(soc->wlan_cfg_ctx);
  11848. qdf_spinlock_create(&soc->rx.defrag.defrag_lock);
  11849. /*
  11850. * set the fragment destination ring
  11851. */
  11852. dp_reo_frag_dst_set(soc, &reo_params.frag_dst_ring);
  11853. if (wlan_cfg_get_dp_soc_nss_cfg(soc->wlan_cfg_ctx))
  11854. reo_params.alt_dst_ind_0 = REO_REMAP_RELEASE;
  11855. hal_reo_setup(soc->hal_soc, &reo_params);
  11856. hal_reo_set_err_dst_remap(soc->hal_soc);
  11857. soc->features.pn_in_reo_dest = hal_reo_enable_pn_in_dest(soc->hal_soc);
  11858. qdf_atomic_set(&soc->cmn_init_done, 1);
  11859. qdf_nbuf_queue_init(&soc->htt_stats.msg);
  11860. qdf_spinlock_create(&soc->ast_lock);
  11861. dp_peer_mec_spinlock_create(soc);
  11862. qdf_spinlock_create(&soc->reo_desc_freelist_lock);
  11863. qdf_list_create(&soc->reo_desc_freelist, REO_DESC_FREELIST_SIZE);
  11864. INIT_RX_HW_STATS_LOCK(soc);
  11865. qdf_nbuf_queue_init(&soc->invalid_buf_queue);
  11866. /* fill the tx/rx cpu ring map*/
  11867. dp_soc_set_txrx_ring_map(soc);
  11868. TAILQ_INIT(&soc->inactive_peer_list);
  11869. qdf_spinlock_create(&soc->inactive_peer_list_lock);
  11870. TAILQ_INIT(&soc->inactive_vdev_list);
  11871. qdf_spinlock_create(&soc->inactive_vdev_list_lock);
  11872. qdf_spinlock_create(&soc->htt_stats.lock);
  11873. /* initialize work queue for stats processing */
  11874. qdf_create_work(0, &soc->htt_stats.work, htt_t2h_stats_handler, soc);
  11875. dp_reo_desc_deferred_freelist_create(soc);
  11876. dp_info("Mem stats: DMA = %u HEAP = %u SKB = %u",
  11877. qdf_dma_mem_stats_read(),
  11878. qdf_heap_mem_stats_read(),
  11879. qdf_skb_total_mem_stats_read());
  11880. return soc;
  11881. fail7:
  11882. htt_soc_htc_dealloc(soc->htt_handle);
  11883. fail6:
  11884. dp_soc_srng_deinit(soc);
  11885. fail5:
  11886. dp_hw_link_desc_ring_deinit(soc);
  11887. fail4:
  11888. dp_hw_link_desc_ring_free(soc);
  11889. fail3:
  11890. htt_htc_pkt_pool_free(htt_soc);
  11891. fail2:
  11892. htt_soc_detach(htt_soc);
  11893. fail1:
  11894. soc->arch_ops.txrx_soc_deinit(soc);
  11895. fail0:
  11896. return NULL;
  11897. }
  11898. /**
  11899. * dp_soc_init_wifi3() - Initialize txrx SOC
  11900. * @soc: Opaque DP SOC handle
  11901. * @ctrl_psoc: Opaque SOC handle from control plane(Unused)
  11902. * @hif_handle: Opaque HIF handle
  11903. * @htc_handle: Opaque HTC handle
  11904. * @qdf_osdev: QDF device (Unused)
  11905. * @ol_ops: Offload Operations (Unused)
  11906. * @device_id: Device ID (Unused)
  11907. *
  11908. * Return: DP SOC handle on success, NULL on failure
  11909. */
  11910. void *dp_soc_init_wifi3(struct cdp_soc_t *soc,
  11911. struct cdp_ctrl_objmgr_psoc *ctrl_psoc,
  11912. struct hif_opaque_softc *hif_handle,
  11913. HTC_HANDLE htc_handle, qdf_device_t qdf_osdev,
  11914. struct ol_if_ops *ol_ops, uint16_t device_id)
  11915. {
  11916. return dp_soc_init((struct dp_soc *)soc, htc_handle, hif_handle);
  11917. }
  11918. #endif
  11919. /*
  11920. * dp_get_pdev_for_mac_id() - Return pdev for mac_id
  11921. *
  11922. * @soc: handle to DP soc
  11923. * @mac_id: MAC id
  11924. *
  11925. * Return: Return pdev corresponding to MAC
  11926. */
  11927. void *dp_get_pdev_for_mac_id(struct dp_soc *soc, uint32_t mac_id)
  11928. {
  11929. if (wlan_cfg_per_pdev_lmac_ring(soc->wlan_cfg_ctx))
  11930. return (mac_id < MAX_PDEV_CNT) ? soc->pdev_list[mac_id] : NULL;
  11931. /* Typically for MCL as there only 1 PDEV*/
  11932. return soc->pdev_list[0];
  11933. }
  11934. /*
  11935. * dp_is_hw_dbs_enable() - Procedure to check if DBS is supported
  11936. * @soc: DP SoC context
  11937. * @max_mac_rings: No of MAC rings
  11938. *
  11939. * Return: None
  11940. */
  11941. void dp_is_hw_dbs_enable(struct dp_soc *soc,
  11942. int *max_mac_rings)
  11943. {
  11944. bool dbs_enable = false;
  11945. if (soc->cdp_soc.ol_ops->is_hw_dbs_2x2_capable)
  11946. dbs_enable = soc->cdp_soc.ol_ops->
  11947. is_hw_dbs_2x2_capable((void *)soc->ctrl_psoc);
  11948. *max_mac_rings = (dbs_enable)?(*max_mac_rings):1;
  11949. }
  11950. #if defined(WLAN_CFR_ENABLE) && defined(WLAN_ENH_CFR_ENABLE)
  11951. /*
  11952. * dp_cfr_filter() - Configure HOST RX monitor status ring for CFR
  11953. * @soc_hdl: Datapath soc handle
  11954. * @pdev_id: id of data path pdev handle
  11955. * @enable: Enable/Disable CFR
  11956. * @filter_val: Flag to select Filter for monitor mode
  11957. */
  11958. static void dp_cfr_filter(struct cdp_soc_t *soc_hdl,
  11959. uint8_t pdev_id,
  11960. bool enable,
  11961. struct cdp_monitor_filter *filter_val)
  11962. {
  11963. struct dp_soc *soc = cdp_soc_t_to_dp_soc(soc_hdl);
  11964. struct dp_pdev *pdev = NULL;
  11965. struct htt_rx_ring_tlv_filter htt_tlv_filter = {0};
  11966. int max_mac_rings;
  11967. uint8_t mac_id = 0;
  11968. pdev = dp_get_pdev_from_soc_pdev_id_wifi3(soc, pdev_id);
  11969. if (!pdev) {
  11970. dp_err("pdev is NULL");
  11971. return;
  11972. }
  11973. if (pdev->monitor_vdev) {
  11974. dp_info("No action is needed since monitor mode is enabled\n");
  11975. return;
  11976. }
  11977. soc = pdev->soc;
  11978. pdev->cfr_rcc_mode = false;
  11979. max_mac_rings = wlan_cfg_get_num_mac_rings(pdev->wlan_cfg_ctx);
  11980. dp_is_hw_dbs_enable(soc, &max_mac_rings);
  11981. dp_debug("Max_mac_rings %d", max_mac_rings);
  11982. dp_info("enable : %d, mode: 0x%x", enable, filter_val->mode);
  11983. if (enable) {
  11984. pdev->cfr_rcc_mode = true;
  11985. htt_tlv_filter.ppdu_start = 1;
  11986. htt_tlv_filter.ppdu_end = 1;
  11987. htt_tlv_filter.ppdu_end_user_stats = 1;
  11988. htt_tlv_filter.ppdu_end_user_stats_ext = 1;
  11989. htt_tlv_filter.ppdu_end_status_done = 1;
  11990. htt_tlv_filter.mpdu_start = 1;
  11991. htt_tlv_filter.offset_valid = false;
  11992. htt_tlv_filter.enable_fp =
  11993. (filter_val->mode & MON_FILTER_PASS) ? 1 : 0;
  11994. htt_tlv_filter.enable_md = 0;
  11995. htt_tlv_filter.enable_mo =
  11996. (filter_val->mode & MON_FILTER_OTHER) ? 1 : 0;
  11997. htt_tlv_filter.fp_mgmt_filter = filter_val->fp_mgmt;
  11998. htt_tlv_filter.fp_ctrl_filter = filter_val->fp_ctrl;
  11999. htt_tlv_filter.fp_data_filter = filter_val->fp_data;
  12000. htt_tlv_filter.mo_mgmt_filter = filter_val->mo_mgmt;
  12001. htt_tlv_filter.mo_ctrl_filter = filter_val->mo_ctrl;
  12002. htt_tlv_filter.mo_data_filter = filter_val->mo_data;
  12003. }
  12004. for (mac_id = 0; mac_id < max_mac_rings; mac_id++) {
  12005. int mac_for_pdev =
  12006. dp_get_mac_id_for_pdev(mac_id,
  12007. pdev->pdev_id);
  12008. htt_h2t_rx_ring_cfg(soc->htt_handle,
  12009. mac_for_pdev,
  12010. soc->rxdma_mon_status_ring[mac_id]
  12011. .hal_srng,
  12012. RXDMA_MONITOR_STATUS,
  12013. RX_MON_STATUS_BUF_SIZE,
  12014. &htt_tlv_filter);
  12015. }
  12016. }
  12017. /**
  12018. * dp_get_cfr_rcc() - get cfr rcc config
  12019. * @soc_hdl: Datapath soc handle
  12020. * @pdev_id: id of objmgr pdev
  12021. *
  12022. * Return: true/false based on cfr mode setting
  12023. */
  12024. static
  12025. bool dp_get_cfr_rcc(struct cdp_soc_t *soc_hdl, uint8_t pdev_id)
  12026. {
  12027. struct dp_soc *soc = cdp_soc_t_to_dp_soc(soc_hdl);
  12028. struct dp_pdev *pdev = NULL;
  12029. pdev = dp_get_pdev_from_soc_pdev_id_wifi3(soc, pdev_id);
  12030. if (!pdev) {
  12031. dp_err("pdev is NULL");
  12032. return false;
  12033. }
  12034. return pdev->cfr_rcc_mode;
  12035. }
  12036. /**
  12037. * dp_set_cfr_rcc() - enable/disable cfr rcc config
  12038. * @soc_hdl: Datapath soc handle
  12039. * @pdev_id: id of objmgr pdev
  12040. * @enable: Enable/Disable cfr rcc mode
  12041. *
  12042. * Return: none
  12043. */
  12044. static
  12045. void dp_set_cfr_rcc(struct cdp_soc_t *soc_hdl, uint8_t pdev_id, bool enable)
  12046. {
  12047. struct dp_soc *soc = cdp_soc_t_to_dp_soc(soc_hdl);
  12048. struct dp_pdev *pdev = NULL;
  12049. pdev = dp_get_pdev_from_soc_pdev_id_wifi3(soc, pdev_id);
  12050. if (!pdev) {
  12051. dp_err("pdev is NULL");
  12052. return;
  12053. }
  12054. pdev->cfr_rcc_mode = enable;
  12055. }
  12056. /*
  12057. * dp_get_cfr_dbg_stats - Get the debug statistics for CFR
  12058. * @soc_hdl: Datapath soc handle
  12059. * @pdev_id: id of data path pdev handle
  12060. * @cfr_rcc_stats: CFR RCC debug statistics buffer
  12061. *
  12062. * Return: none
  12063. */
  12064. static inline void
  12065. dp_get_cfr_dbg_stats(struct cdp_soc_t *soc_hdl, uint8_t pdev_id,
  12066. struct cdp_cfr_rcc_stats *cfr_rcc_stats)
  12067. {
  12068. struct dp_soc *soc = cdp_soc_t_to_dp_soc(soc_hdl);
  12069. struct dp_pdev *pdev = dp_get_pdev_from_soc_pdev_id_wifi3(soc, pdev_id);
  12070. if (!pdev) {
  12071. dp_err("Invalid pdev");
  12072. return;
  12073. }
  12074. qdf_mem_copy(cfr_rcc_stats, &pdev->stats.rcc,
  12075. sizeof(struct cdp_cfr_rcc_stats));
  12076. }
  12077. /*
  12078. * dp_clear_cfr_dbg_stats - Clear debug statistics for CFR
  12079. * @soc_hdl: Datapath soc handle
  12080. * @pdev_id: id of data path pdev handle
  12081. *
  12082. * Return: none
  12083. */
  12084. static void dp_clear_cfr_dbg_stats(struct cdp_soc_t *soc_hdl,
  12085. uint8_t pdev_id)
  12086. {
  12087. struct dp_soc *soc = cdp_soc_t_to_dp_soc(soc_hdl);
  12088. struct dp_pdev *pdev = dp_get_pdev_from_soc_pdev_id_wifi3(soc, pdev_id);
  12089. if (!pdev) {
  12090. dp_err("dp pdev is NULL");
  12091. return;
  12092. }
  12093. qdf_mem_zero(&pdev->stats.rcc, sizeof(pdev->stats.rcc));
  12094. }
  12095. /*
  12096. * dp_enable_mon_reap_timer() - enable/disable reap timer
  12097. * @soc_hdl: Datapath soc handle
  12098. * @pdev_id: id of objmgr pdev
  12099. * @enable: Enable/Disable reap timer of monitor status ring
  12100. *
  12101. * Return: none
  12102. */
  12103. static void
  12104. dp_enable_mon_reap_timer(struct cdp_soc_t *soc_hdl, uint8_t pdev_id,
  12105. bool enable)
  12106. {
  12107. struct dp_soc *soc = cdp_soc_t_to_dp_soc(soc_hdl);
  12108. struct dp_pdev *pdev = NULL;
  12109. pdev = dp_get_pdev_from_soc_pdev_id_wifi3(soc, pdev_id);
  12110. if (!pdev) {
  12111. dp_err("pdev is NULL");
  12112. return;
  12113. }
  12114. pdev->enable_reap_timer_non_pkt = enable;
  12115. if (pdev->rx_pktlog_mode != DP_RX_PKTLOG_DISABLED) {
  12116. dp_debug("pktlog enabled %d", pdev->rx_pktlog_mode);
  12117. return;
  12118. }
  12119. if (!soc->reap_timer_init) {
  12120. dp_err("reap timer not init");
  12121. return;
  12122. }
  12123. if (enable)
  12124. qdf_timer_mod(&soc->mon_reap_timer,
  12125. DP_INTR_POLL_TIMER_MS);
  12126. else
  12127. qdf_timer_sync_cancel(&soc->mon_reap_timer);
  12128. }
  12129. #endif
  12130. /*
  12131. * dp_is_enable_reap_timer_non_pkt() - check if mon reap timer is
  12132. * enabled by non-pkt log or not
  12133. * @pdev: point to dp pdev
  12134. *
  12135. * Return: true if mon reap timer is enabled by non-pkt log
  12136. */
  12137. static bool dp_is_enable_reap_timer_non_pkt(struct dp_pdev *pdev)
  12138. {
  12139. if (!pdev) {
  12140. dp_err("null pdev");
  12141. return false;
  12142. }
  12143. return pdev->enable_reap_timer_non_pkt;
  12144. }
  12145. /*
  12146. * dp_set_pktlog_wifi3() - attach txrx vdev
  12147. * @pdev: Datapath PDEV handle
  12148. * @event: which event's notifications are being subscribed to
  12149. * @enable: WDI event subscribe or not. (True or False)
  12150. *
  12151. * Return: Success, NULL on failure
  12152. */
  12153. #ifdef WDI_EVENT_ENABLE
  12154. int dp_set_pktlog_wifi3(struct dp_pdev *pdev, uint32_t event,
  12155. bool enable)
  12156. {
  12157. struct dp_soc *soc = NULL;
  12158. int max_mac_rings = wlan_cfg_get_num_mac_rings
  12159. (pdev->wlan_cfg_ctx);
  12160. uint8_t mac_id = 0;
  12161. soc = pdev->soc;
  12162. dp_is_hw_dbs_enable(soc, &max_mac_rings);
  12163. QDF_TRACE(QDF_MODULE_ID_TXRX, QDF_TRACE_LEVEL_DEBUG,
  12164. FL("Max_mac_rings %d "),
  12165. max_mac_rings);
  12166. if (enable) {
  12167. switch (event) {
  12168. case WDI_EVENT_RX_DESC:
  12169. if (pdev->monitor_vdev) {
  12170. /* Nothing needs to be done if monitor mode is
  12171. * enabled
  12172. */
  12173. pdev->rx_pktlog_mode = DP_RX_PKTLOG_FULL;
  12174. return 0;
  12175. }
  12176. if (pdev->rx_pktlog_mode != DP_RX_PKTLOG_FULL) {
  12177. pdev->rx_pktlog_mode = DP_RX_PKTLOG_FULL;
  12178. dp_mon_filter_setup_rx_pkt_log_full(pdev);
  12179. if (dp_mon_filter_update(pdev) !=
  12180. QDF_STATUS_SUCCESS) {
  12181. dp_cdp_err("%pK: Pktlog full filters set failed", soc);
  12182. dp_mon_filter_reset_rx_pkt_log_full(pdev);
  12183. pdev->rx_pktlog_mode = DP_RX_PKTLOG_DISABLED;
  12184. return 0;
  12185. }
  12186. if (soc->reap_timer_init &&
  12187. (!dp_is_enable_reap_timer_non_pkt(pdev)))
  12188. qdf_timer_mod(&soc->mon_reap_timer,
  12189. DP_INTR_POLL_TIMER_MS);
  12190. }
  12191. break;
  12192. case WDI_EVENT_LITE_RX:
  12193. if (pdev->monitor_vdev) {
  12194. /* Nothing needs to be done if monitor mode is
  12195. * enabled
  12196. */
  12197. pdev->rx_pktlog_mode = DP_RX_PKTLOG_LITE;
  12198. return 0;
  12199. }
  12200. if (pdev->rx_pktlog_mode != DP_RX_PKTLOG_LITE) {
  12201. pdev->rx_pktlog_mode = DP_RX_PKTLOG_LITE;
  12202. /*
  12203. * Set the packet log lite mode filter.
  12204. */
  12205. dp_mon_filter_setup_rx_pkt_log_lite(pdev);
  12206. if (dp_mon_filter_update(pdev) != QDF_STATUS_SUCCESS) {
  12207. dp_cdp_err("%pK: Pktlog lite filters set failed", soc);
  12208. dp_mon_filter_reset_rx_pkt_log_lite(pdev);
  12209. pdev->rx_pktlog_mode =
  12210. DP_RX_PKTLOG_DISABLED;
  12211. return 0;
  12212. }
  12213. if (soc->reap_timer_init &&
  12214. (!dp_is_enable_reap_timer_non_pkt(pdev)))
  12215. qdf_timer_mod(&soc->mon_reap_timer,
  12216. DP_INTR_POLL_TIMER_MS);
  12217. }
  12218. break;
  12219. case WDI_EVENT_LITE_T2H:
  12220. for (mac_id = 0; mac_id < max_mac_rings; mac_id++) {
  12221. int mac_for_pdev = dp_get_mac_id_for_pdev(
  12222. mac_id, pdev->pdev_id);
  12223. pdev->pktlog_ppdu_stats = true;
  12224. dp_h2t_cfg_stats_msg_send(pdev,
  12225. DP_PPDU_TXLITE_STATS_BITMASK_CFG,
  12226. mac_for_pdev);
  12227. }
  12228. break;
  12229. case WDI_EVENT_RX_CBF:
  12230. if (pdev->monitor_vdev) {
  12231. /* Nothing needs to be done if monitor mode is
  12232. * enabled
  12233. */
  12234. dp_info("Monitor mode, CBF setting filters");
  12235. pdev->rx_pktlog_cbf = true;
  12236. return 0;
  12237. }
  12238. if (!pdev->rx_pktlog_cbf) {
  12239. pdev->rx_pktlog_cbf = true;
  12240. pdev->monitor_configured = true;
  12241. dp_vdev_set_monitor_mode_buf_rings(pdev);
  12242. /*
  12243. * Set the packet log lite mode filter.
  12244. */
  12245. qdf_info("Non monitor mode: Enable destination ring");
  12246. dp_mon_filter_setup_rx_pkt_log_cbf(pdev);
  12247. if (dp_mon_filter_update(pdev) !=
  12248. QDF_STATUS_SUCCESS) {
  12249. dp_err("Pktlog set CBF filters failed");
  12250. dp_mon_filter_reset_rx_pktlog_cbf(pdev);
  12251. pdev->rx_pktlog_mode =
  12252. DP_RX_PKTLOG_DISABLED;
  12253. pdev->monitor_configured = false;
  12254. return 0;
  12255. }
  12256. if (soc->reap_timer_init &&
  12257. !dp_is_enable_reap_timer_non_pkt(pdev))
  12258. qdf_timer_mod(&soc->mon_reap_timer,
  12259. DP_INTR_POLL_TIMER_MS);
  12260. }
  12261. break;
  12262. default:
  12263. /* Nothing needs to be done for other pktlog types */
  12264. break;
  12265. }
  12266. } else {
  12267. switch (event) {
  12268. case WDI_EVENT_RX_DESC:
  12269. case WDI_EVENT_LITE_RX:
  12270. if (pdev->monitor_vdev) {
  12271. /* Nothing needs to be done if monitor mode is
  12272. * enabled
  12273. */
  12274. pdev->rx_pktlog_mode = DP_RX_PKTLOG_DISABLED;
  12275. return 0;
  12276. }
  12277. if (pdev->rx_pktlog_mode != DP_RX_PKTLOG_DISABLED) {
  12278. pdev->rx_pktlog_mode = DP_RX_PKTLOG_DISABLED;
  12279. dp_mon_filter_reset_rx_pkt_log_full(pdev);
  12280. if (dp_mon_filter_update(pdev) !=
  12281. QDF_STATUS_SUCCESS) {
  12282. dp_cdp_err("%pK: Pktlog filters reset failed", soc);
  12283. return 0;
  12284. }
  12285. dp_mon_filter_reset_rx_pkt_log_lite(pdev);
  12286. if (dp_mon_filter_update(pdev) !=
  12287. QDF_STATUS_SUCCESS) {
  12288. dp_cdp_err("%pK: Pktlog filters reset failed", soc);
  12289. return 0;
  12290. }
  12291. if (soc->reap_timer_init &&
  12292. (!dp_is_enable_reap_timer_non_pkt(pdev)))
  12293. qdf_timer_stop(&soc->mon_reap_timer);
  12294. }
  12295. break;
  12296. case WDI_EVENT_LITE_T2H:
  12297. /* To disable HTT_H2T_MSG_TYPE_PPDU_STATS_CFG in FW
  12298. * passing value 0. Once these macros will define in htt
  12299. * header file will use proper macros
  12300. */
  12301. for (mac_id = 0; mac_id < max_mac_rings; mac_id++) {
  12302. int mac_for_pdev =
  12303. dp_get_mac_id_for_pdev(mac_id,
  12304. pdev->pdev_id);
  12305. pdev->pktlog_ppdu_stats = false;
  12306. if (!pdev->enhanced_stats_en && !pdev->tx_sniffer_enable && !pdev->mcopy_mode) {
  12307. dp_h2t_cfg_stats_msg_send(pdev, 0,
  12308. mac_for_pdev);
  12309. } else if (pdev->tx_sniffer_enable || pdev->mcopy_mode) {
  12310. dp_h2t_cfg_stats_msg_send(pdev, DP_PPDU_STATS_CFG_SNIFFER,
  12311. mac_for_pdev);
  12312. } else if (pdev->enhanced_stats_en) {
  12313. dp_h2t_cfg_stats_msg_send(pdev, DP_PPDU_STATS_CFG_ENH_STATS,
  12314. mac_for_pdev);
  12315. }
  12316. }
  12317. break;
  12318. case WDI_EVENT_RX_CBF:
  12319. pdev->rx_pktlog_cbf = false;
  12320. break;
  12321. default:
  12322. /* Nothing needs to be done for other pktlog types */
  12323. break;
  12324. }
  12325. }
  12326. return 0;
  12327. }
  12328. #endif
  12329. /**
  12330. * dp_bucket_index() - Return index from array
  12331. *
  12332. * @delay: delay measured
  12333. * @array: array used to index corresponding delay
  12334. *
  12335. * Return: index
  12336. */
  12337. static uint8_t dp_bucket_index(uint32_t delay, uint16_t *array)
  12338. {
  12339. uint8_t i = CDP_DELAY_BUCKET_0;
  12340. for (; i < CDP_DELAY_BUCKET_MAX - 1; i++) {
  12341. if (delay >= array[i] && delay <= array[i + 1])
  12342. return i;
  12343. }
  12344. return (CDP_DELAY_BUCKET_MAX - 1);
  12345. }
  12346. /**
  12347. * dp_fill_delay_buckets() - Fill delay statistics bucket for each
  12348. * type of delay
  12349. *
  12350. * @pdev: pdev handle
  12351. * @delay: delay in ms
  12352. * @tid: tid value
  12353. * @mode: type of tx delay mode
  12354. * @ring_id: ring number
  12355. * Return: pointer to cdp_delay_stats structure
  12356. */
  12357. static struct cdp_delay_stats *
  12358. dp_fill_delay_buckets(struct dp_pdev *pdev, uint32_t delay,
  12359. uint8_t tid, uint8_t mode, uint8_t ring_id)
  12360. {
  12361. uint8_t delay_index = 0;
  12362. struct cdp_tid_tx_stats *tstats =
  12363. &pdev->stats.tid_stats.tid_tx_stats[ring_id][tid];
  12364. struct cdp_tid_rx_stats *rstats =
  12365. &pdev->stats.tid_stats.tid_rx_stats[ring_id][tid];
  12366. /*
  12367. * cdp_fw_to_hw_delay_range
  12368. * Fw to hw delay ranges in milliseconds
  12369. */
  12370. uint16_t cdp_fw_to_hw_delay[CDP_DELAY_BUCKET_MAX] = {
  12371. 0, 10, 20, 30, 40, 50, 60, 70, 80, 90, 100, 250, 500};
  12372. /*
  12373. * cdp_sw_enq_delay_range
  12374. * Software enqueue delay ranges in milliseconds
  12375. */
  12376. uint16_t cdp_sw_enq_delay[CDP_DELAY_BUCKET_MAX] = {
  12377. 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12};
  12378. /*
  12379. * cdp_intfrm_delay_range
  12380. * Interframe delay ranges in milliseconds
  12381. */
  12382. uint16_t cdp_intfrm_delay[CDP_DELAY_BUCKET_MAX] = {
  12383. 0, 5, 10, 15, 20, 25, 30, 35, 40, 45, 50, 55, 60};
  12384. /*
  12385. * Update delay stats in proper bucket
  12386. */
  12387. switch (mode) {
  12388. /* Software Enqueue delay ranges */
  12389. case CDP_DELAY_STATS_SW_ENQ:
  12390. delay_index = dp_bucket_index(delay, cdp_sw_enq_delay);
  12391. tstats->swq_delay.delay_bucket[delay_index]++;
  12392. return &tstats->swq_delay;
  12393. /* Tx Completion delay ranges */
  12394. case CDP_DELAY_STATS_FW_HW_TRANSMIT:
  12395. delay_index = dp_bucket_index(delay, cdp_fw_to_hw_delay);
  12396. tstats->hwtx_delay.delay_bucket[delay_index]++;
  12397. return &tstats->hwtx_delay;
  12398. /* Interframe tx delay ranges */
  12399. case CDP_DELAY_STATS_TX_INTERFRAME:
  12400. delay_index = dp_bucket_index(delay, cdp_intfrm_delay);
  12401. tstats->intfrm_delay.delay_bucket[delay_index]++;
  12402. return &tstats->intfrm_delay;
  12403. /* Interframe rx delay ranges */
  12404. case CDP_DELAY_STATS_RX_INTERFRAME:
  12405. delay_index = dp_bucket_index(delay, cdp_intfrm_delay);
  12406. rstats->intfrm_delay.delay_bucket[delay_index]++;
  12407. return &rstats->intfrm_delay;
  12408. /* Ring reap to indication to network stack */
  12409. case CDP_DELAY_STATS_REAP_STACK:
  12410. delay_index = dp_bucket_index(delay, cdp_intfrm_delay);
  12411. rstats->to_stack_delay.delay_bucket[delay_index]++;
  12412. return &rstats->to_stack_delay;
  12413. default:
  12414. dp_debug("Incorrect delay mode: %d", mode);
  12415. }
  12416. return NULL;
  12417. }
  12418. /**
  12419. * dp_update_delay_stats() - Update delay statistics in structure
  12420. * and fill min, max and avg delay
  12421. *
  12422. * @pdev: pdev handle
  12423. * @delay: delay in ms
  12424. * @tid: tid value
  12425. * @mode: type of tx delay mode
  12426. * @ring id: ring number
  12427. * Return: none
  12428. */
  12429. void dp_update_delay_stats(struct dp_pdev *pdev, uint32_t delay,
  12430. uint8_t tid, uint8_t mode, uint8_t ring_id)
  12431. {
  12432. struct cdp_delay_stats *dstats = NULL;
  12433. /*
  12434. * Delay ranges are different for different delay modes
  12435. * Get the correct index to update delay bucket
  12436. */
  12437. dstats = dp_fill_delay_buckets(pdev, delay, tid, mode, ring_id);
  12438. if (qdf_unlikely(!dstats))
  12439. return;
  12440. if (delay != 0) {
  12441. /*
  12442. * Compute minimum,average and maximum
  12443. * delay
  12444. */
  12445. if (delay < dstats->min_delay)
  12446. dstats->min_delay = delay;
  12447. if (delay > dstats->max_delay)
  12448. dstats->max_delay = delay;
  12449. /*
  12450. * Average over delay measured till now
  12451. */
  12452. if (!dstats->avg_delay)
  12453. dstats->avg_delay = delay;
  12454. else
  12455. dstats->avg_delay = ((delay + dstats->avg_delay) / 2);
  12456. }
  12457. }
  12458. /**
  12459. * dp_get_peer_mac_list(): function to get peer mac list of vdev
  12460. * @soc: Datapath soc handle
  12461. * @vdev_id: vdev id
  12462. * @newmac: Table of the clients mac
  12463. * @mac_cnt: No. of MACs required
  12464. * @limit: Limit the number of clients
  12465. *
  12466. * return: no of clients
  12467. */
  12468. uint16_t dp_get_peer_mac_list(ol_txrx_soc_handle soc, uint8_t vdev_id,
  12469. u_int8_t newmac[][QDF_MAC_ADDR_SIZE],
  12470. u_int16_t mac_cnt, bool limit)
  12471. {
  12472. struct dp_soc *dp_soc = (struct dp_soc *)soc;
  12473. struct dp_vdev *vdev =
  12474. dp_vdev_get_ref_by_id(dp_soc, vdev_id, DP_MOD_ID_CDP);
  12475. struct dp_peer *peer;
  12476. uint16_t new_mac_cnt = 0;
  12477. if (!vdev)
  12478. return new_mac_cnt;
  12479. if (limit && (vdev->num_peers > mac_cnt))
  12480. return 0;
  12481. qdf_spin_lock_bh(&vdev->peer_list_lock);
  12482. TAILQ_FOREACH(peer, &vdev->peer_list, peer_list_elem) {
  12483. if (peer->bss_peer)
  12484. continue;
  12485. if (new_mac_cnt < mac_cnt) {
  12486. WLAN_ADDR_COPY(newmac[new_mac_cnt], peer->mac_addr.raw);
  12487. new_mac_cnt++;
  12488. }
  12489. }
  12490. qdf_spin_unlock_bh(&vdev->peer_list_lock);
  12491. dp_vdev_unref_delete(dp_soc, vdev, DP_MOD_ID_CDP);
  12492. return new_mac_cnt;
  12493. }
  12494. #ifdef QCA_SUPPORT_WDS_EXTENDED
  12495. uint16_t dp_wds_ext_get_peer_id(ol_txrx_soc_handle soc,
  12496. uint8_t vdev_id,
  12497. uint8_t *mac)
  12498. {
  12499. struct dp_peer *peer = dp_peer_find_hash_find((struct dp_soc *)soc,
  12500. mac, 0, vdev_id,
  12501. DP_MOD_ID_CDP);
  12502. uint16_t peer_id = HTT_INVALID_PEER;
  12503. if (!peer) {
  12504. dp_cdp_debug("%pK: Peer is NULL!\n", (struct dp_soc *)soc);
  12505. return peer_id;
  12506. }
  12507. peer_id = peer->peer_id;
  12508. dp_peer_unref_delete(peer, DP_MOD_ID_CDP);
  12509. return peer_id;
  12510. }
  12511. QDF_STATUS dp_wds_ext_set_peer_rx(ol_txrx_soc_handle soc,
  12512. uint8_t vdev_id,
  12513. uint8_t *mac,
  12514. ol_txrx_rx_fp rx,
  12515. ol_osif_peer_handle osif_peer)
  12516. {
  12517. struct dp_peer *peer = dp_peer_find_hash_find((struct dp_soc *)soc,
  12518. mac, 0, vdev_id,
  12519. DP_MOD_ID_CDP);
  12520. QDF_STATUS status = QDF_STATUS_E_INVAL;
  12521. if (!peer) {
  12522. dp_cdp_debug("%pK: Peer is NULL!\n", (struct dp_soc *)soc);
  12523. return status;
  12524. }
  12525. if (rx) {
  12526. if (peer->osif_rx) {
  12527. status = QDF_STATUS_E_ALREADY;
  12528. } else {
  12529. peer->osif_rx = rx;
  12530. status = QDF_STATUS_SUCCESS;
  12531. }
  12532. } else {
  12533. if (peer->osif_rx) {
  12534. peer->osif_rx = NULL;
  12535. status = QDF_STATUS_SUCCESS;
  12536. } else {
  12537. status = QDF_STATUS_E_ALREADY;
  12538. }
  12539. }
  12540. peer->wds_ext.osif_peer = osif_peer;
  12541. dp_peer_unref_delete(peer, DP_MOD_ID_CDP);
  12542. return status;
  12543. }
  12544. #endif /* QCA_SUPPORT_WDS_EXTENDED */
  12545. /**
  12546. * dp_pdev_srng_deinit() - de-initialize all pdev srng ring including
  12547. * monitor rings
  12548. * @pdev: Datapath pdev handle
  12549. *
  12550. */
  12551. static void dp_pdev_srng_deinit(struct dp_pdev *pdev)
  12552. {
  12553. struct dp_soc *soc = pdev->soc;
  12554. uint8_t i;
  12555. dp_srng_deinit(soc, &soc->rx_refill_buf_ring[pdev->lmac_id], RXDMA_BUF,
  12556. pdev->lmac_id);
  12557. if (wlan_cfg_is_ipa_enabled(soc->wlan_cfg_ctx)) {
  12558. dp_deinit_tx_pair_by_index(soc, IPA_TCL_DATA_RING_IDX);
  12559. dp_ipa_deinit_alt_tx_ring(soc);
  12560. }
  12561. for (i = 0; i < NUM_RXDMA_RINGS_PER_PDEV; i++) {
  12562. int lmac_id = dp_get_lmac_id_for_pdev_id(soc, i, pdev->pdev_id);
  12563. wlan_minidump_remove(soc->rxdma_err_dst_ring[lmac_id].base_vaddr_unaligned,
  12564. soc->rxdma_err_dst_ring[lmac_id].alloc_size,
  12565. soc->ctrl_psoc,
  12566. WLAN_MD_DP_SRNG_RXDMA_ERR_DST,
  12567. "rxdma_err_dst");
  12568. dp_srng_deinit(soc, &soc->rxdma_err_dst_ring[lmac_id],
  12569. RXDMA_DST, lmac_id);
  12570. }
  12571. dp_mon_rings_deinit(pdev);
  12572. }
  12573. /**
  12574. * dp_pdev_srng_init() - initialize all pdev srng rings including
  12575. * monitor rings
  12576. * @pdev: Datapath pdev handle
  12577. *
  12578. * return: QDF_STATUS_SUCCESS on success
  12579. * QDF_STATUS_E_NOMEM on failure
  12580. */
  12581. static QDF_STATUS dp_pdev_srng_init(struct dp_pdev *pdev)
  12582. {
  12583. struct dp_soc *soc = pdev->soc;
  12584. struct wlan_cfg_dp_soc_ctxt *soc_cfg_ctx;
  12585. uint32_t i;
  12586. soc_cfg_ctx = soc->wlan_cfg_ctx;
  12587. if (dp_srng_init(soc, &soc->rx_refill_buf_ring[pdev->lmac_id],
  12588. RXDMA_BUF, 0, pdev->lmac_id)) {
  12589. dp_init_err("%pK: dp_srng_init failed rx refill ring", soc);
  12590. goto fail1;
  12591. }
  12592. if (wlan_cfg_is_ipa_enabled(soc->wlan_cfg_ctx)) {
  12593. if (dp_init_tx_ring_pair_by_index(soc, IPA_TCL_DATA_RING_IDX))
  12594. goto fail1;
  12595. if (dp_ipa_init_alt_tx_ring(soc))
  12596. goto fail1;
  12597. }
  12598. if (dp_mon_rings_init(soc, pdev)) {
  12599. dp_init_err("%pK: MONITOR rings setup failed", soc);
  12600. goto fail1;
  12601. }
  12602. /* LMAC RxDMA to SW Rings configuration */
  12603. if (!wlan_cfg_per_pdev_lmac_ring(soc_cfg_ctx))
  12604. /* Only valid for MCL */
  12605. pdev = soc->pdev_list[0];
  12606. for (i = 0; i < NUM_RXDMA_RINGS_PER_PDEV; i++) {
  12607. int lmac_id = dp_get_lmac_id_for_pdev_id(soc, i, pdev->pdev_id);
  12608. struct dp_srng *srng = &soc->rxdma_err_dst_ring[lmac_id];
  12609. if (srng->hal_srng)
  12610. continue;
  12611. if (dp_srng_init(soc, srng, RXDMA_DST, 0, lmac_id)) {
  12612. dp_init_err("%pK: " RNG_ERR "rxdma_err_dst_ring", soc);
  12613. goto fail1;
  12614. }
  12615. wlan_minidump_log(soc->rxdma_err_dst_ring[lmac_id].base_vaddr_unaligned,
  12616. soc->rxdma_err_dst_ring[lmac_id].alloc_size,
  12617. soc->ctrl_psoc,
  12618. WLAN_MD_DP_SRNG_RXDMA_ERR_DST,
  12619. "rxdma_err_dst");
  12620. }
  12621. return QDF_STATUS_SUCCESS;
  12622. fail1:
  12623. dp_pdev_srng_deinit(pdev);
  12624. return QDF_STATUS_E_NOMEM;
  12625. }
  12626. /**
  12627. * dp_pdev_srng_free() - free all pdev srng rings including monitor rings
  12628. * pdev: Datapath pdev handle
  12629. *
  12630. */
  12631. static void dp_pdev_srng_free(struct dp_pdev *pdev)
  12632. {
  12633. struct dp_soc *soc = pdev->soc;
  12634. uint8_t i;
  12635. dp_srng_free(soc, &soc->rx_refill_buf_ring[pdev->lmac_id]);
  12636. dp_mon_rings_free(pdev);
  12637. if (wlan_cfg_is_ipa_enabled(soc->wlan_cfg_ctx)) {
  12638. dp_free_tx_ring_pair_by_index(soc, IPA_TCL_DATA_RING_IDX);
  12639. dp_ipa_free_alt_tx_ring(soc);
  12640. }
  12641. for (i = 0; i < NUM_RXDMA_RINGS_PER_PDEV; i++) {
  12642. int lmac_id = dp_get_lmac_id_for_pdev_id(soc, i, pdev->pdev_id);
  12643. dp_srng_free(soc, &soc->rxdma_err_dst_ring[lmac_id]);
  12644. }
  12645. }
  12646. /**
  12647. * dp_pdev_srng_alloc() - allocate memory for all pdev srng rings including
  12648. * monitor rings
  12649. * pdev: Datapath pdev handle
  12650. *
  12651. * return: QDF_STATUS_SUCCESS on success
  12652. * QDF_STATUS_E_NOMEM on failure
  12653. */
  12654. static QDF_STATUS dp_pdev_srng_alloc(struct dp_pdev *pdev)
  12655. {
  12656. struct dp_soc *soc = pdev->soc;
  12657. struct wlan_cfg_dp_soc_ctxt *soc_cfg_ctx;
  12658. uint32_t ring_size;
  12659. uint32_t i;
  12660. soc_cfg_ctx = soc->wlan_cfg_ctx;
  12661. ring_size = wlan_cfg_get_dp_soc_rxdma_refill_ring_size(soc_cfg_ctx);
  12662. if (dp_srng_alloc(soc, &soc->rx_refill_buf_ring[pdev->lmac_id],
  12663. RXDMA_BUF, ring_size, 0)) {
  12664. dp_init_err("%pK: dp_srng_alloc failed rx refill ring", soc);
  12665. goto fail1;
  12666. }
  12667. if (dp_mon_rings_alloc(soc, pdev)) {
  12668. dp_init_err("%pK: MONITOR rings setup failed", soc);
  12669. goto fail1;
  12670. }
  12671. if (wlan_cfg_is_ipa_enabled(soc->wlan_cfg_ctx)) {
  12672. if (dp_alloc_tx_ring_pair_by_index(soc, IPA_TCL_DATA_RING_IDX))
  12673. goto fail1;
  12674. if (dp_ipa_alloc_alt_tx_ring(soc))
  12675. goto fail1;
  12676. }
  12677. ring_size = wlan_cfg_get_dp_soc_rxdma_err_dst_ring_size(soc_cfg_ctx);
  12678. /* LMAC RxDMA to SW Rings configuration */
  12679. if (!wlan_cfg_per_pdev_lmac_ring(soc_cfg_ctx))
  12680. /* Only valid for MCL */
  12681. pdev = soc->pdev_list[0];
  12682. for (i = 0; i < NUM_RXDMA_RINGS_PER_PDEV; i++) {
  12683. int lmac_id = dp_get_lmac_id_for_pdev_id(soc, i, pdev->pdev_id);
  12684. struct dp_srng *srng = &soc->rxdma_err_dst_ring[lmac_id];
  12685. if (srng->base_vaddr_unaligned)
  12686. continue;
  12687. if (dp_srng_alloc(soc, srng, RXDMA_DST, ring_size, 0)) {
  12688. dp_init_err("%pK: " RNG_ERR "rxdma_err_dst_ring", soc);
  12689. goto fail1;
  12690. }
  12691. }
  12692. return QDF_STATUS_SUCCESS;
  12693. fail1:
  12694. dp_pdev_srng_free(pdev);
  12695. return QDF_STATUS_E_NOMEM;
  12696. }
  12697. /**
  12698. * dp_soc_srng_deinit() - de-initialize soc srng rings
  12699. * @soc: Datapath soc handle
  12700. *
  12701. */
  12702. static void dp_soc_srng_deinit(struct dp_soc *soc)
  12703. {
  12704. uint32_t i;
  12705. /* Free the ring memories */
  12706. /* Common rings */
  12707. wlan_minidump_remove(soc->wbm_desc_rel_ring.base_vaddr_unaligned,
  12708. soc->wbm_desc_rel_ring.alloc_size,
  12709. soc->ctrl_psoc, WLAN_MD_DP_SRNG_WBM_DESC_REL,
  12710. "wbm_desc_rel_ring");
  12711. dp_srng_deinit(soc, &soc->wbm_desc_rel_ring, SW2WBM_RELEASE, 0);
  12712. /* Tx data rings */
  12713. for (i = 0; i < soc->num_tcl_data_rings; i++)
  12714. dp_deinit_tx_pair_by_index(soc, i);
  12715. /* TCL command and status rings */
  12716. if (soc->init_tcl_cmd_cred_ring) {
  12717. wlan_minidump_remove(soc->tcl_cmd_credit_ring.base_vaddr_unaligned,
  12718. soc->tcl_cmd_credit_ring.alloc_size,
  12719. soc->ctrl_psoc, WLAN_MD_DP_SRNG_TCL_CMD,
  12720. "wbm_desc_rel_ring");
  12721. dp_srng_deinit(soc, &soc->tcl_cmd_credit_ring,
  12722. TCL_CMD_CREDIT, 0);
  12723. }
  12724. wlan_minidump_remove(soc->tcl_status_ring.base_vaddr_unaligned,
  12725. soc->tcl_status_ring.alloc_size,
  12726. soc->ctrl_psoc, WLAN_MD_DP_SRNG_TCL_STATUS,
  12727. "wbm_desc_rel_ring");
  12728. dp_srng_deinit(soc, &soc->tcl_status_ring, TCL_STATUS, 0);
  12729. for (i = 0; i < soc->num_reo_dest_rings; i++) {
  12730. /* TODO: Get number of rings and ring sizes
  12731. * from wlan_cfg
  12732. */
  12733. wlan_minidump_remove(soc->reo_dest_ring[i].base_vaddr_unaligned,
  12734. soc->reo_dest_ring[i].alloc_size,
  12735. soc->ctrl_psoc, WLAN_MD_DP_SRNG_REO_DEST,
  12736. "reo_dest_ring");
  12737. dp_srng_deinit(soc, &soc->reo_dest_ring[i], REO_DST, i);
  12738. }
  12739. /* REO reinjection ring */
  12740. wlan_minidump_remove(soc->reo_reinject_ring.base_vaddr_unaligned,
  12741. soc->reo_reinject_ring.alloc_size,
  12742. soc->ctrl_psoc, WLAN_MD_DP_SRNG_REO_REINJECT,
  12743. "reo_reinject_ring");
  12744. dp_srng_deinit(soc, &soc->reo_reinject_ring, REO_REINJECT, 0);
  12745. /* Rx release ring */
  12746. wlan_minidump_remove(soc->rx_rel_ring.base_vaddr_unaligned,
  12747. soc->rx_rel_ring.alloc_size,
  12748. soc->ctrl_psoc, WLAN_MD_DP_SRNG_RX_REL,
  12749. "reo_release_ring");
  12750. dp_srng_deinit(soc, &soc->rx_rel_ring, WBM2SW_RELEASE, 0);
  12751. /* Rx exception ring */
  12752. /* TODO: Better to store ring_type and ring_num in
  12753. * dp_srng during setup
  12754. */
  12755. wlan_minidump_remove(soc->reo_exception_ring.base_vaddr_unaligned,
  12756. soc->reo_exception_ring.alloc_size,
  12757. soc->ctrl_psoc, WLAN_MD_DP_SRNG_REO_EXCEPTION,
  12758. "reo_exception_ring");
  12759. dp_srng_deinit(soc, &soc->reo_exception_ring, REO_EXCEPTION, 0);
  12760. /* REO command and status rings */
  12761. wlan_minidump_remove(soc->reo_cmd_ring.base_vaddr_unaligned,
  12762. soc->reo_cmd_ring.alloc_size,
  12763. soc->ctrl_psoc, WLAN_MD_DP_SRNG_REO_CMD,
  12764. "reo_cmd_ring");
  12765. dp_srng_deinit(soc, &soc->reo_cmd_ring, REO_CMD, 0);
  12766. wlan_minidump_remove(soc->reo_status_ring.base_vaddr_unaligned,
  12767. soc->reo_status_ring.alloc_size,
  12768. soc->ctrl_psoc, WLAN_MD_DP_SRNG_REO_STATUS,
  12769. "reo_status_ring");
  12770. dp_srng_deinit(soc, &soc->reo_status_ring, REO_STATUS, 0);
  12771. }
  12772. /**
  12773. * dp_soc_srng_init() - Initialize soc level srng rings
  12774. * @soc: Datapath soc handle
  12775. *
  12776. * return: QDF_STATUS_SUCCESS on success
  12777. * QDF_STATUS_E_FAILURE on failure
  12778. */
  12779. static QDF_STATUS dp_soc_srng_init(struct dp_soc *soc)
  12780. {
  12781. struct wlan_cfg_dp_soc_ctxt *soc_cfg_ctx;
  12782. uint8_t i;
  12783. soc_cfg_ctx = soc->wlan_cfg_ctx;
  12784. dp_enable_verbose_debug(soc);
  12785. /* WBM descriptor release ring */
  12786. if (dp_srng_init(soc, &soc->wbm_desc_rel_ring, SW2WBM_RELEASE, 0, 0)) {
  12787. dp_init_err("%pK: dp_srng_init failed for wbm_desc_rel_ring", soc);
  12788. goto fail1;
  12789. }
  12790. wlan_minidump_log(soc->wbm_desc_rel_ring.base_vaddr_unaligned,
  12791. soc->wbm_desc_rel_ring.alloc_size,
  12792. soc->ctrl_psoc,
  12793. WLAN_MD_DP_SRNG_WBM_DESC_REL,
  12794. "wbm_desc_rel_ring");
  12795. if (soc->init_tcl_cmd_cred_ring) {
  12796. /* TCL command and status rings */
  12797. if (dp_srng_init(soc, &soc->tcl_cmd_credit_ring,
  12798. TCL_CMD_CREDIT, 0, 0)) {
  12799. dp_init_err("%pK: dp_srng_init failed for tcl_cmd_ring", soc);
  12800. goto fail1;
  12801. }
  12802. wlan_minidump_log(soc->tcl_cmd_credit_ring.base_vaddr_unaligned,
  12803. soc->tcl_cmd_credit_ring.alloc_size,
  12804. soc->ctrl_psoc,
  12805. WLAN_MD_DP_SRNG_TCL_CMD,
  12806. "wbm_desc_rel_ring");
  12807. }
  12808. if (dp_srng_init(soc, &soc->tcl_status_ring, TCL_STATUS, 0, 0)) {
  12809. dp_init_err("%pK: dp_srng_init failed for tcl_status_ring", soc);
  12810. goto fail1;
  12811. }
  12812. wlan_minidump_log(soc->tcl_status_ring.base_vaddr_unaligned,
  12813. soc->tcl_status_ring.alloc_size,
  12814. soc->ctrl_psoc,
  12815. WLAN_MD_DP_SRNG_TCL_STATUS,
  12816. "wbm_desc_rel_ring");
  12817. /* REO reinjection ring */
  12818. if (dp_srng_init(soc, &soc->reo_reinject_ring, REO_REINJECT, 0, 0)) {
  12819. dp_init_err("%pK: dp_srng_init failed for reo_reinject_ring", soc);
  12820. goto fail1;
  12821. }
  12822. wlan_minidump_log(soc->reo_reinject_ring.base_vaddr_unaligned,
  12823. soc->reo_reinject_ring.alloc_size,
  12824. soc->ctrl_psoc,
  12825. WLAN_MD_DP_SRNG_REO_REINJECT,
  12826. "reo_reinject_ring");
  12827. /* Rx release ring */
  12828. if (dp_srng_init(soc, &soc->rx_rel_ring, WBM2SW_RELEASE,
  12829. WBM2SW_REL_ERR_RING_NUM, 0)) {
  12830. dp_init_err("%pK: dp_srng_init failed for rx_rel_ring", soc);
  12831. goto fail1;
  12832. }
  12833. wlan_minidump_log(soc->rx_rel_ring.base_vaddr_unaligned,
  12834. soc->rx_rel_ring.alloc_size,
  12835. soc->ctrl_psoc,
  12836. WLAN_MD_DP_SRNG_RX_REL,
  12837. "reo_release_ring");
  12838. /* Rx exception ring */
  12839. if (dp_srng_init(soc, &soc->reo_exception_ring,
  12840. REO_EXCEPTION, 0, MAX_REO_DEST_RINGS)) {
  12841. dp_init_err("%pK: dp_srng_init failed - reo_exception", soc);
  12842. goto fail1;
  12843. }
  12844. wlan_minidump_log(soc->reo_exception_ring.base_vaddr_unaligned,
  12845. soc->reo_exception_ring.alloc_size,
  12846. soc->ctrl_psoc,
  12847. WLAN_MD_DP_SRNG_REO_EXCEPTION,
  12848. "reo_exception_ring");
  12849. /* REO command and status rings */
  12850. if (dp_srng_init(soc, &soc->reo_cmd_ring, REO_CMD, 0, 0)) {
  12851. dp_init_err("%pK: dp_srng_init failed for reo_cmd_ring", soc);
  12852. goto fail1;
  12853. }
  12854. wlan_minidump_log(soc->reo_cmd_ring.base_vaddr_unaligned,
  12855. soc->reo_cmd_ring.alloc_size,
  12856. soc->ctrl_psoc,
  12857. WLAN_MD_DP_SRNG_REO_CMD,
  12858. "reo_cmd_ring");
  12859. hal_reo_init_cmd_ring(soc->hal_soc, soc->reo_cmd_ring.hal_srng);
  12860. TAILQ_INIT(&soc->rx.reo_cmd_list);
  12861. qdf_spinlock_create(&soc->rx.reo_cmd_lock);
  12862. if (dp_srng_init(soc, &soc->reo_status_ring, REO_STATUS, 0, 0)) {
  12863. dp_init_err("%pK: dp_srng_init failed for reo_status_ring", soc);
  12864. goto fail1;
  12865. }
  12866. wlan_minidump_log(soc->reo_status_ring.base_vaddr_unaligned,
  12867. soc->reo_status_ring.alloc_size,
  12868. soc->ctrl_psoc,
  12869. WLAN_MD_DP_SRNG_REO_STATUS,
  12870. "reo_status_ring");
  12871. for (i = 0; i < soc->num_tcl_data_rings; i++) {
  12872. if (dp_init_tx_ring_pair_by_index(soc, i))
  12873. goto fail1;
  12874. }
  12875. dp_create_ext_stats_event(soc);
  12876. for (i = 0; i < soc->num_reo_dest_rings; i++) {
  12877. /* Initialize REO destination ring */
  12878. if (dp_srng_init(soc, &soc->reo_dest_ring[i], REO_DST, i, 0)) {
  12879. dp_init_err("%pK: dp_srng_init failed for reo_dest_ringn", soc);
  12880. goto fail1;
  12881. }
  12882. wlan_minidump_log(soc->reo_dest_ring[i].base_vaddr_unaligned,
  12883. soc->reo_dest_ring[i].alloc_size,
  12884. soc->ctrl_psoc,
  12885. WLAN_MD_DP_SRNG_REO_DEST,
  12886. "reo_dest_ring");
  12887. }
  12888. return QDF_STATUS_SUCCESS;
  12889. fail1:
  12890. /*
  12891. * Cleanup will be done as part of soc_detach, which will
  12892. * be called on pdev attach failure
  12893. */
  12894. dp_soc_srng_deinit(soc);
  12895. return QDF_STATUS_E_FAILURE;
  12896. }
  12897. /**
  12898. * dp_soc_srng_free() - free soc level srng rings
  12899. * @soc: Datapath soc handle
  12900. *
  12901. */
  12902. static void dp_soc_srng_free(struct dp_soc *soc)
  12903. {
  12904. uint32_t i;
  12905. dp_srng_free(soc, &soc->wbm_desc_rel_ring);
  12906. for (i = 0; i < soc->num_tcl_data_rings; i++)
  12907. dp_free_tx_ring_pair_by_index(soc, i);
  12908. if (soc->init_tcl_cmd_cred_ring)
  12909. dp_srng_free(soc, &soc->tcl_cmd_credit_ring);
  12910. dp_srng_free(soc, &soc->tcl_status_ring);
  12911. for (i = 0; i < soc->num_reo_dest_rings; i++)
  12912. dp_srng_free(soc, &soc->reo_dest_ring[i]);
  12913. dp_srng_free(soc, &soc->reo_reinject_ring);
  12914. dp_srng_free(soc, &soc->rx_rel_ring);
  12915. dp_srng_free(soc, &soc->reo_exception_ring);
  12916. dp_srng_free(soc, &soc->reo_cmd_ring);
  12917. dp_srng_free(soc, &soc->reo_status_ring);
  12918. }
  12919. /**
  12920. * dp_soc_srng_alloc() - Allocate memory for soc level srng rings
  12921. * @soc: Datapath soc handle
  12922. *
  12923. * return: QDF_STATUS_SUCCESS on success
  12924. * QDF_STATUS_E_NOMEM on failure
  12925. */
  12926. static QDF_STATUS dp_soc_srng_alloc(struct dp_soc *soc)
  12927. {
  12928. uint32_t entries;
  12929. uint32_t i;
  12930. struct wlan_cfg_dp_soc_ctxt *soc_cfg_ctx;
  12931. uint32_t cached = WLAN_CFG_DST_RING_CACHED_DESC;
  12932. uint32_t tx_comp_ring_size, tx_ring_size, reo_dst_ring_size;
  12933. soc_cfg_ctx = soc->wlan_cfg_ctx;
  12934. /* sw2wbm link descriptor release ring */
  12935. entries = wlan_cfg_get_dp_soc_wbm_release_ring_size(soc_cfg_ctx);
  12936. if (dp_srng_alloc(soc, &soc->wbm_desc_rel_ring, SW2WBM_RELEASE,
  12937. entries, 0)) {
  12938. dp_init_err("%pK: dp_srng_alloc failed for wbm_desc_rel_ring", soc);
  12939. goto fail1;
  12940. }
  12941. entries = wlan_cfg_get_dp_soc_tcl_cmd_credit_ring_size(soc_cfg_ctx);
  12942. /* TCL command and status rings */
  12943. if (soc->init_tcl_cmd_cred_ring) {
  12944. if (dp_srng_alloc(soc, &soc->tcl_cmd_credit_ring,
  12945. TCL_CMD_CREDIT, entries, 0)) {
  12946. dp_init_err("%pK: dp_srng_alloc failed for tcl_cmd_ring", soc);
  12947. goto fail1;
  12948. }
  12949. }
  12950. entries = wlan_cfg_get_dp_soc_tcl_status_ring_size(soc_cfg_ctx);
  12951. if (dp_srng_alloc(soc, &soc->tcl_status_ring, TCL_STATUS, entries,
  12952. 0)) {
  12953. dp_init_err("%pK: dp_srng_alloc failed for tcl_status_ring", soc);
  12954. goto fail1;
  12955. }
  12956. /* REO reinjection ring */
  12957. entries = wlan_cfg_get_dp_soc_reo_reinject_ring_size(soc_cfg_ctx);
  12958. if (dp_srng_alloc(soc, &soc->reo_reinject_ring, REO_REINJECT,
  12959. entries, 0)) {
  12960. dp_init_err("%pK: dp_srng_alloc failed for reo_reinject_ring", soc);
  12961. goto fail1;
  12962. }
  12963. /* Rx release ring */
  12964. entries = wlan_cfg_get_dp_soc_rx_release_ring_size(soc_cfg_ctx);
  12965. if (dp_srng_alloc(soc, &soc->rx_rel_ring, WBM2SW_RELEASE,
  12966. entries, 0)) {
  12967. dp_init_err("%pK: dp_srng_alloc failed for rx_rel_ring", soc);
  12968. goto fail1;
  12969. }
  12970. /* Rx exception ring */
  12971. entries = wlan_cfg_get_dp_soc_reo_exception_ring_size(soc_cfg_ctx);
  12972. if (dp_srng_alloc(soc, &soc->reo_exception_ring, REO_EXCEPTION,
  12973. entries, 0)) {
  12974. dp_init_err("%pK: dp_srng_alloc failed - reo_exception", soc);
  12975. goto fail1;
  12976. }
  12977. /* REO command and status rings */
  12978. entries = wlan_cfg_get_dp_soc_reo_cmd_ring_size(soc_cfg_ctx);
  12979. if (dp_srng_alloc(soc, &soc->reo_cmd_ring, REO_CMD, entries, 0)) {
  12980. dp_init_err("%pK: dp_srng_alloc failed for reo_cmd_ring", soc);
  12981. goto fail1;
  12982. }
  12983. entries = wlan_cfg_get_dp_soc_reo_status_ring_size(soc_cfg_ctx);
  12984. if (dp_srng_alloc(soc, &soc->reo_status_ring, REO_STATUS,
  12985. entries, 0)) {
  12986. dp_init_err("%pK: dp_srng_alloc failed for reo_status_ring", soc);
  12987. goto fail1;
  12988. }
  12989. tx_comp_ring_size = wlan_cfg_tx_comp_ring_size(soc_cfg_ctx);
  12990. tx_ring_size = wlan_cfg_tx_ring_size(soc_cfg_ctx);
  12991. reo_dst_ring_size = wlan_cfg_get_reo_dst_ring_size(soc_cfg_ctx);
  12992. /* Disable cached desc if NSS offload is enabled */
  12993. if (wlan_cfg_get_dp_soc_nss_cfg(soc_cfg_ctx))
  12994. cached = 0;
  12995. for (i = 0; i < soc->num_tcl_data_rings; i++) {
  12996. if (dp_alloc_tx_ring_pair_by_index(soc, i))
  12997. goto fail1;
  12998. }
  12999. for (i = 0; i < soc->num_reo_dest_rings; i++) {
  13000. /* Setup REO destination ring */
  13001. if (dp_srng_alloc(soc, &soc->reo_dest_ring[i], REO_DST,
  13002. reo_dst_ring_size, cached)) {
  13003. dp_init_err("%pK: dp_srng_alloc failed for reo_dest_ring", soc);
  13004. goto fail1;
  13005. }
  13006. }
  13007. return QDF_STATUS_SUCCESS;
  13008. fail1:
  13009. dp_soc_srng_free(soc);
  13010. return QDF_STATUS_E_NOMEM;
  13011. }
  13012. static void dp_soc_cfg_dump(struct dp_soc *soc, uint32_t target_type)
  13013. {
  13014. dp_init_info("DP soc Dump for Target = %d", target_type);
  13015. dp_init_info("ast_override_support = %d, da_war_enabled = %d,",
  13016. soc->ast_override_support, soc->da_war_enabled);
  13017. dp_init_info("hw_nac_monitor_support = %d",
  13018. soc->hw_nac_monitor_support);
  13019. wlan_cfg_dp_soc_ctx_dump(soc->wlan_cfg_ctx);
  13020. }
  13021. /**
  13022. * dp_soc_cfg_init() - initialize target specific configuration
  13023. * during dp_soc_init
  13024. * @soc: dp soc handle
  13025. */
  13026. static void dp_soc_cfg_init(struct dp_soc *soc)
  13027. {
  13028. uint32_t target_type;
  13029. target_type = hal_get_target_type(soc->hal_soc);
  13030. switch (target_type) {
  13031. case TARGET_TYPE_QCA6290:
  13032. wlan_cfg_set_reo_dst_ring_size(soc->wlan_cfg_ctx,
  13033. REO_DST_RING_SIZE_QCA6290);
  13034. soc->ast_override_support = 1;
  13035. soc->da_war_enabled = false;
  13036. break;
  13037. case TARGET_TYPE_QCA6390:
  13038. case TARGET_TYPE_QCA6490:
  13039. case TARGET_TYPE_QCA6750:
  13040. wlan_cfg_set_reo_dst_ring_size(soc->wlan_cfg_ctx,
  13041. REO_DST_RING_SIZE_QCA6290);
  13042. wlan_cfg_set_raw_mode_war(soc->wlan_cfg_ctx, true);
  13043. soc->ast_override_support = 1;
  13044. if (soc->cdp_soc.ol_ops->get_con_mode &&
  13045. soc->cdp_soc.ol_ops->get_con_mode() ==
  13046. QDF_GLOBAL_MONITOR_MODE) {
  13047. int int_ctx;
  13048. for (int_ctx = 0; int_ctx < WLAN_CFG_INT_NUM_CONTEXTS; int_ctx++) {
  13049. soc->wlan_cfg_ctx->int_rx_ring_mask[int_ctx] = 0;
  13050. soc->wlan_cfg_ctx->int_rxdma2host_ring_mask[int_ctx] = 0;
  13051. }
  13052. }
  13053. soc->wlan_cfg_ctx->rxdma1_enable = 0;
  13054. break;
  13055. case TARGET_TYPE_WCN7850:
  13056. wlan_cfg_set_reo_dst_ring_size(soc->wlan_cfg_ctx,
  13057. REO_DST_RING_SIZE_QCA6290);
  13058. soc->ast_override_support = 1;
  13059. if (soc->cdp_soc.ol_ops->get_con_mode &&
  13060. soc->cdp_soc.ol_ops->get_con_mode() ==
  13061. QDF_GLOBAL_MONITOR_MODE) {
  13062. int int_ctx;
  13063. for (int_ctx = 0; int_ctx < WLAN_CFG_INT_NUM_CONTEXTS;
  13064. int_ctx++) {
  13065. soc->wlan_cfg_ctx->int_rx_ring_mask[int_ctx] = 0;
  13066. soc->wlan_cfg_ctx->int_rxdma2host_ring_mask[int_ctx] = 0;
  13067. }
  13068. }
  13069. soc->wlan_cfg_ctx->rxdma1_enable = 0;
  13070. break;
  13071. case TARGET_TYPE_QCA8074:
  13072. wlan_cfg_set_mon_delayed_replenish_entries(soc->wlan_cfg_ctx,
  13073. MON_BUF_MIN_ENTRIES);
  13074. wlan_cfg_set_reo_dst_ring_size(soc->wlan_cfg_ctx,
  13075. REO_DST_RING_SIZE_QCA8074);
  13076. wlan_cfg_set_raw_mode_war(soc->wlan_cfg_ctx, true);
  13077. soc->da_war_enabled = true;
  13078. soc->is_rx_fse_full_cache_invalidate_war_enabled = true;
  13079. break;
  13080. case TARGET_TYPE_QCA8074V2:
  13081. case TARGET_TYPE_QCA6018:
  13082. case TARGET_TYPE_QCA9574:
  13083. wlan_cfg_set_mon_delayed_replenish_entries(soc->wlan_cfg_ctx,
  13084. MON_BUF_MIN_ENTRIES);
  13085. wlan_cfg_set_reo_dst_ring_size(soc->wlan_cfg_ctx,
  13086. REO_DST_RING_SIZE_QCA8074);
  13087. wlan_cfg_set_raw_mode_war(soc->wlan_cfg_ctx, false);
  13088. soc->hw_nac_monitor_support = 1;
  13089. soc->ast_override_support = 1;
  13090. soc->per_tid_basize_max_tid = 8;
  13091. soc->num_hw_dscp_tid_map = HAL_MAX_HW_DSCP_TID_V2_MAPS;
  13092. soc->da_war_enabled = false;
  13093. soc->is_rx_fse_full_cache_invalidate_war_enabled = true;
  13094. break;
  13095. case TARGET_TYPE_QCN9000:
  13096. wlan_cfg_set_mon_delayed_replenish_entries(soc->wlan_cfg_ctx,
  13097. MON_BUF_MIN_ENTRIES);
  13098. wlan_cfg_set_reo_dst_ring_size(soc->wlan_cfg_ctx,
  13099. REO_DST_RING_SIZE_QCN9000);
  13100. soc->ast_override_support = 1;
  13101. soc->da_war_enabled = false;
  13102. wlan_cfg_set_raw_mode_war(soc->wlan_cfg_ctx, false);
  13103. soc->hw_nac_monitor_support = 1;
  13104. soc->per_tid_basize_max_tid = 8;
  13105. soc->num_hw_dscp_tid_map = HAL_MAX_HW_DSCP_TID_V2_MAPS;
  13106. soc->lmac_polled_mode = 0;
  13107. soc->wbm_release_desc_rx_sg_support = 1;
  13108. if (cfg_get(soc->ctrl_psoc, CFG_DP_FULL_MON_MODE))
  13109. dp_config_full_mon_mode((struct cdp_soc_t *)soc, 1);
  13110. break;
  13111. case TARGET_TYPE_QCA5018:
  13112. case TARGET_TYPE_QCN6122:
  13113. wlan_cfg_set_mon_delayed_replenish_entries(soc->wlan_cfg_ctx,
  13114. MON_BUF_MIN_ENTRIES);
  13115. wlan_cfg_set_reo_dst_ring_size(soc->wlan_cfg_ctx,
  13116. REO_DST_RING_SIZE_QCA8074);
  13117. soc->ast_override_support = 1;
  13118. soc->da_war_enabled = false;
  13119. wlan_cfg_set_raw_mode_war(soc->wlan_cfg_ctx, false);
  13120. soc->hw_nac_monitor_support = 1;
  13121. soc->per_tid_basize_max_tid = 8;
  13122. soc->num_hw_dscp_tid_map = HAL_MAX_HW_DSCP_TID_MAPS_11AX;
  13123. soc->disable_mac1_intr = 1;
  13124. soc->disable_mac2_intr = 1;
  13125. soc->wbm_release_desc_rx_sg_support = 1;
  13126. break;
  13127. case TARGET_TYPE_QCN9224:
  13128. wlan_cfg_set_mon_delayed_replenish_entries(soc->wlan_cfg_ctx,
  13129. MON_BUF_MIN_ENTRIES);
  13130. wlan_cfg_set_reo_dst_ring_size(soc->wlan_cfg_ctx,
  13131. REO_DST_RING_SIZE_QCA8074);
  13132. soc->ast_override_support = 1;
  13133. soc->da_war_enabled = false;
  13134. wlan_cfg_set_raw_mode_war(soc->wlan_cfg_ctx, false);
  13135. soc->hw_nac_monitor_support = 1;
  13136. soc->per_tid_basize_max_tid = 8;
  13137. soc->wbm_release_desc_rx_sg_support = 1;
  13138. break;
  13139. default:
  13140. qdf_print("%s: Unknown tgt type %d\n", __func__, target_type);
  13141. qdf_assert_always(0);
  13142. break;
  13143. }
  13144. dp_soc_cfg_dump(soc, target_type);
  13145. }
  13146. /**
  13147. * dp_soc_cfg_attach() - set target specific configuration in
  13148. * dp soc cfg.
  13149. * @soc: dp soc handle
  13150. */
  13151. static void dp_soc_cfg_attach(struct dp_soc *soc)
  13152. {
  13153. int target_type;
  13154. int nss_cfg = 0;
  13155. target_type = hal_get_target_type(soc->hal_soc);
  13156. switch (target_type) {
  13157. case TARGET_TYPE_QCA6290:
  13158. wlan_cfg_set_reo_dst_ring_size(soc->wlan_cfg_ctx,
  13159. REO_DST_RING_SIZE_QCA6290);
  13160. break;
  13161. case TARGET_TYPE_QCA6390:
  13162. case TARGET_TYPE_QCA6490:
  13163. case TARGET_TYPE_QCA6750:
  13164. wlan_cfg_set_reo_dst_ring_size(soc->wlan_cfg_ctx,
  13165. REO_DST_RING_SIZE_QCA6290);
  13166. soc->wlan_cfg_ctx->rxdma1_enable = 0;
  13167. break;
  13168. case TARGET_TYPE_WCN7850:
  13169. wlan_cfg_set_reo_dst_ring_size(soc->wlan_cfg_ctx,
  13170. REO_DST_RING_SIZE_QCA6290);
  13171. soc->wlan_cfg_ctx->rxdma1_enable = 0;
  13172. break;
  13173. case TARGET_TYPE_QCA8074:
  13174. wlan_cfg_set_tso_desc_attach_defer(soc->wlan_cfg_ctx, 1);
  13175. wlan_cfg_set_reo_dst_ring_size(soc->wlan_cfg_ctx,
  13176. REO_DST_RING_SIZE_QCA8074);
  13177. break;
  13178. case TARGET_TYPE_QCA8074V2:
  13179. case TARGET_TYPE_QCA6018:
  13180. case TARGET_TYPE_QCA9574:
  13181. case TARGET_TYPE_QCN6122:
  13182. case TARGET_TYPE_QCA5018:
  13183. wlan_cfg_set_tso_desc_attach_defer(soc->wlan_cfg_ctx, 1);
  13184. wlan_cfg_set_reo_dst_ring_size(soc->wlan_cfg_ctx,
  13185. REO_DST_RING_SIZE_QCA8074);
  13186. wlan_cfg_set_rxdma1_enable(soc->wlan_cfg_ctx);
  13187. break;
  13188. case TARGET_TYPE_QCN9000:
  13189. wlan_cfg_set_tso_desc_attach_defer(soc->wlan_cfg_ctx, 1);
  13190. wlan_cfg_set_reo_dst_ring_size(soc->wlan_cfg_ctx,
  13191. REO_DST_RING_SIZE_QCN9000);
  13192. wlan_cfg_set_rxdma1_enable(soc->wlan_cfg_ctx);
  13193. break;
  13194. case TARGET_TYPE_QCN9224:
  13195. wlan_cfg_set_tso_desc_attach_defer(soc->wlan_cfg_ctx, 1);
  13196. wlan_cfg_set_reo_dst_ring_size(soc->wlan_cfg_ctx,
  13197. REO_DST_RING_SIZE_QCA8074);
  13198. wlan_cfg_set_rxdma1_enable(soc->wlan_cfg_ctx);
  13199. break;
  13200. default:
  13201. qdf_print("%s: Unknown tgt type %d\n", __func__, target_type);
  13202. qdf_assert_always(0);
  13203. break;
  13204. }
  13205. if (soc->cdp_soc.ol_ops->get_soc_nss_cfg)
  13206. nss_cfg = soc->cdp_soc.ol_ops->get_soc_nss_cfg(soc->ctrl_psoc);
  13207. wlan_cfg_set_dp_soc_nss_cfg(soc->wlan_cfg_ctx, nss_cfg);
  13208. if (wlan_cfg_get_dp_soc_nss_cfg(soc->wlan_cfg_ctx)) {
  13209. wlan_cfg_set_num_tx_desc_pool(soc->wlan_cfg_ctx, 0);
  13210. wlan_cfg_set_num_tx_ext_desc_pool(soc->wlan_cfg_ctx, 0);
  13211. wlan_cfg_set_num_tx_desc(soc->wlan_cfg_ctx, 0);
  13212. wlan_cfg_set_num_tx_ext_desc(soc->wlan_cfg_ctx, 0);
  13213. soc->init_tcl_cmd_cred_ring = false;
  13214. soc->num_tcl_data_rings =
  13215. wlan_cfg_num_nss_tcl_data_rings(soc->wlan_cfg_ctx);
  13216. soc->num_reo_dest_rings =
  13217. wlan_cfg_num_nss_reo_dest_rings(soc->wlan_cfg_ctx);
  13218. } else {
  13219. soc->init_tcl_cmd_cred_ring = true;
  13220. soc->num_tcl_data_rings =
  13221. wlan_cfg_num_tcl_data_rings(soc->wlan_cfg_ctx);
  13222. soc->num_reo_dest_rings =
  13223. wlan_cfg_num_reo_dest_rings(soc->wlan_cfg_ctx);
  13224. }
  13225. }
  13226. static inline void dp_pdev_set_default_reo(struct dp_pdev *pdev)
  13227. {
  13228. struct dp_soc *soc = pdev->soc;
  13229. switch (pdev->pdev_id) {
  13230. case 0:
  13231. pdev->reo_dest =
  13232. wlan_cfg_radio0_default_reo_get(soc->wlan_cfg_ctx);
  13233. break;
  13234. case 1:
  13235. pdev->reo_dest =
  13236. wlan_cfg_radio1_default_reo_get(soc->wlan_cfg_ctx);
  13237. break;
  13238. case 2:
  13239. pdev->reo_dest =
  13240. wlan_cfg_radio2_default_reo_get(soc->wlan_cfg_ctx);
  13241. break;
  13242. default:
  13243. dp_init_err("%pK: Invalid pdev_id %d for reo selection",
  13244. soc, pdev->pdev_id);
  13245. break;
  13246. }
  13247. }
  13248. static QDF_STATUS dp_pdev_init(struct cdp_soc_t *txrx_soc,
  13249. HTC_HANDLE htc_handle,
  13250. qdf_device_t qdf_osdev,
  13251. uint8_t pdev_id)
  13252. {
  13253. struct wlan_cfg_dp_soc_ctxt *soc_cfg_ctx;
  13254. int nss_cfg;
  13255. void *sojourn_buf;
  13256. QDF_STATUS ret;
  13257. struct dp_soc *soc = (struct dp_soc *)txrx_soc;
  13258. struct dp_pdev *pdev = soc->pdev_list[pdev_id];
  13259. soc_cfg_ctx = soc->wlan_cfg_ctx;
  13260. pdev->soc = soc;
  13261. pdev->pdev_id = pdev_id;
  13262. pdev->filter = dp_mon_filter_alloc(pdev);
  13263. if (!pdev->filter) {
  13264. dp_init_err("%pK: Memory allocation failed for monitor filters",
  13265. soc);
  13266. ret = QDF_STATUS_E_NOMEM;
  13267. goto fail0;
  13268. }
  13269. /*
  13270. * Variable to prevent double pdev deinitialization during
  13271. * radio detach execution .i.e. in the absence of any vdev.
  13272. */
  13273. pdev->pdev_deinit = 0;
  13274. if (dp_wdi_event_attach(pdev)) {
  13275. QDF_TRACE(QDF_MODULE_ID_TXRX, QDF_TRACE_LEVEL_ERROR,
  13276. "dp_wdi_evet_attach failed");
  13277. goto fail1;
  13278. }
  13279. if (dp_pdev_srng_init(pdev)) {
  13280. dp_init_err("%pK: Failed to initialize pdev srng rings", soc);
  13281. goto fail2;
  13282. }
  13283. /* Initialize descriptors in TCL Rings used by IPA */
  13284. if (wlan_cfg_is_ipa_enabled(soc->wlan_cfg_ctx)) {
  13285. hal_tx_init_data_ring(soc->hal_soc,
  13286. soc->tcl_data_ring[IPA_TCL_DATA_RING_IDX].hal_srng);
  13287. dp_ipa_hal_tx_init_alt_data_ring(soc);
  13288. }
  13289. /*
  13290. * Initialize command/credit ring descriptor
  13291. * Command/CREDIT ring also used for sending DATA cmds
  13292. */
  13293. if (soc->init_tcl_cmd_cred_ring)
  13294. hal_tx_init_cmd_credit_ring(soc->hal_soc,
  13295. soc->tcl_cmd_credit_ring.hal_srng);
  13296. dp_tx_pdev_init(pdev);
  13297. /*
  13298. * Variable to prevent double pdev deinitialization during
  13299. * radio detach execution .i.e. in the absence of any vdev.
  13300. */
  13301. pdev->invalid_peer = qdf_mem_malloc(sizeof(struct dp_peer));
  13302. if (!pdev->invalid_peer) {
  13303. dp_init_err("%pK: Invalid peer memory allocation failed", soc);
  13304. goto fail3;
  13305. }
  13306. /*
  13307. * set nss pdev config based on soc config
  13308. */
  13309. nss_cfg = wlan_cfg_get_dp_soc_nss_cfg(soc_cfg_ctx);
  13310. wlan_cfg_set_dp_pdev_nss_enabled(pdev->wlan_cfg_ctx,
  13311. (nss_cfg & (1 << pdev_id)));
  13312. pdev->target_pdev_id =
  13313. dp_calculate_target_pdev_id_from_host_pdev_id(soc, pdev_id);
  13314. if (soc->preferred_hw_mode == WMI_HOST_HW_MODE_2G_PHYB &&
  13315. pdev->lmac_id == PHYB_2G_LMAC_ID) {
  13316. pdev->target_pdev_id = PHYB_2G_TARGET_PDEV_ID;
  13317. }
  13318. /* Reset the cpu ring map if radio is NSS offloaded */
  13319. if (wlan_cfg_get_dp_soc_nss_cfg(soc->wlan_cfg_ctx)) {
  13320. dp_soc_reset_cpu_ring_map(soc);
  13321. dp_soc_reset_intr_mask(soc);
  13322. }
  13323. TAILQ_INIT(&pdev->vdev_list);
  13324. qdf_spinlock_create(&pdev->vdev_list_lock);
  13325. qdf_spinlock_create(&pdev->ppdu_stats_lock);
  13326. pdev->vdev_count = 0;
  13327. qdf_spinlock_create(&pdev->tx_mutex);
  13328. qdf_spinlock_create(&pdev->neighbour_peer_mutex);
  13329. TAILQ_INIT(&pdev->neighbour_peers_list);
  13330. pdev->neighbour_peers_added = false;
  13331. pdev->monitor_configured = false;
  13332. pdev->mon_chan_band = REG_BAND_UNKNOWN;
  13333. pdev->ch_band_lmac_id_mapping[REG_BAND_2G] = DP_MON_INVALID_LMAC_ID;
  13334. pdev->ch_band_lmac_id_mapping[REG_BAND_5G] = DP_MON_INVALID_LMAC_ID;
  13335. pdev->ch_band_lmac_id_mapping[REG_BAND_6G] = DP_MON_INVALID_LMAC_ID;
  13336. DP_STATS_INIT(pdev);
  13337. /* Monitor filter init */
  13338. pdev->mon_filter_mode = MON_FILTER_ALL;
  13339. pdev->fp_mgmt_filter = FILTER_MGMT_ALL;
  13340. pdev->fp_ctrl_filter = FILTER_CTRL_ALL;
  13341. pdev->fp_data_filter = FILTER_DATA_ALL;
  13342. pdev->mo_mgmt_filter = FILTER_MGMT_ALL;
  13343. pdev->mo_ctrl_filter = FILTER_CTRL_ALL;
  13344. pdev->mo_data_filter = FILTER_DATA_ALL;
  13345. dp_local_peer_id_pool_init(pdev);
  13346. dp_dscp_tid_map_setup(pdev);
  13347. dp_pcp_tid_map_setup(pdev);
  13348. /* set the reo destination during initialization */
  13349. dp_pdev_set_default_reo(pdev);
  13350. /*
  13351. * initialize ppdu tlv list
  13352. */
  13353. TAILQ_INIT(&pdev->ppdu_info_list);
  13354. TAILQ_INIT(&pdev->sched_comp_ppdu_list);
  13355. pdev->tlv_count = 0;
  13356. pdev->list_depth = 0;
  13357. qdf_mem_zero(&pdev->sojourn_stats, sizeof(struct cdp_tx_sojourn_stats));
  13358. pdev->sojourn_buf = qdf_nbuf_alloc(pdev->soc->osdev,
  13359. sizeof(struct cdp_tx_sojourn_stats), 0, 4,
  13360. TRUE);
  13361. if (!pdev->sojourn_buf) {
  13362. dp_init_err("%pK: Failed to allocate sojourn buf", soc);
  13363. goto fail4;
  13364. }
  13365. sojourn_buf = qdf_nbuf_data(pdev->sojourn_buf);
  13366. qdf_mem_zero(sojourn_buf, sizeof(struct cdp_tx_sojourn_stats));
  13367. /* initlialize cal client timer */
  13368. dp_cal_client_attach(&pdev->cal_client_ctx,
  13369. dp_pdev_to_cdp_pdev(pdev),
  13370. pdev->soc->osdev,
  13371. &dp_iterate_update_peer_list);
  13372. qdf_event_create(&pdev->fw_peer_stats_event);
  13373. pdev->num_tx_allowed = wlan_cfg_get_num_tx_desc(soc->wlan_cfg_ctx);
  13374. if (dp_htt_ppdu_stats_attach(pdev) != QDF_STATUS_SUCCESS)
  13375. goto fail5;
  13376. if (dp_rxdma_ring_setup(soc, pdev)) {
  13377. dp_init_err("%pK: RXDMA ring config failed", soc);
  13378. goto fail6;
  13379. }
  13380. if (dp_setup_ipa_rx_refill_buf_ring(soc, pdev))
  13381. goto fail7;
  13382. if (dp_ipa_ring_resource_setup(soc, pdev))
  13383. goto fail8;
  13384. if (dp_ipa_uc_attach(soc, pdev) != QDF_STATUS_SUCCESS) {
  13385. dp_init_err("%pK: dp_ipa_uc_attach failed", soc);
  13386. goto fail8;
  13387. }
  13388. ret = dp_rx_fst_attach(soc, pdev);
  13389. if ((ret != QDF_STATUS_SUCCESS) &&
  13390. (ret != QDF_STATUS_E_NOSUPPORT)) {
  13391. dp_init_err("%pK: RX Flow Search Table attach failed: pdev %d err %d",
  13392. soc, pdev_id, ret);
  13393. goto fail9;
  13394. }
  13395. if (dp_pdev_bkp_stats_attach(pdev) != QDF_STATUS_SUCCESS) {
  13396. QDF_TRACE(QDF_MODULE_ID_DP, QDF_TRACE_LEVEL_ERROR,
  13397. FL("dp_pdev_bkp_stats_attach failed"));
  13398. goto fail10;
  13399. }
  13400. /* initialize sw rx descriptors */
  13401. dp_rx_pdev_desc_pool_init(pdev);
  13402. /* initialize sw monitor rx descriptors */
  13403. dp_rx_pdev_mon_desc_pool_init(pdev);
  13404. /* allocate buffers and replenish the RxDMA ring */
  13405. dp_rx_pdev_buffers_alloc(pdev);
  13406. /* allocate buffers and replenish the monitor RxDMA ring */
  13407. dp_rx_pdev_mon_buffers_alloc(pdev);
  13408. dp_init_tso_stats(pdev);
  13409. dp_tx_ppdu_stats_attach(pdev);
  13410. dp_info("Mem stats: DMA = %u HEAP = %u SKB = %u",
  13411. qdf_dma_mem_stats_read(),
  13412. qdf_heap_mem_stats_read(),
  13413. qdf_skb_total_mem_stats_read());
  13414. return QDF_STATUS_SUCCESS;
  13415. fail10:
  13416. dp_rx_fst_detach(soc, pdev);
  13417. fail9:
  13418. dp_ipa_uc_detach(soc, pdev);
  13419. fail8:
  13420. dp_cleanup_ipa_rx_refill_buf_ring(soc, pdev);
  13421. fail7:
  13422. dp_rxdma_ring_cleanup(soc, pdev);
  13423. fail6:
  13424. dp_htt_ppdu_stats_detach(pdev);
  13425. fail5:
  13426. qdf_nbuf_free(pdev->sojourn_buf);
  13427. fail4:
  13428. qdf_spinlock_destroy(&pdev->neighbour_peer_mutex);
  13429. qdf_spinlock_destroy(&pdev->tx_mutex);
  13430. qdf_spinlock_destroy(&pdev->vdev_list_lock);
  13431. qdf_spinlock_destroy(&pdev->ppdu_stats_lock);
  13432. qdf_mem_free(pdev->invalid_peer);
  13433. fail3:
  13434. dp_pdev_srng_deinit(pdev);
  13435. fail2:
  13436. dp_wdi_event_detach(pdev);
  13437. fail1:
  13438. dp_mon_filter_dealloc(pdev);
  13439. fail0:
  13440. return QDF_STATUS_E_FAILURE;
  13441. }
  13442. /*
  13443. * dp_pdev_init_wifi3() - Init txrx pdev
  13444. * @htc_handle: HTC handle for host-target interface
  13445. * @qdf_osdev: QDF OS device
  13446. * @force: Force deinit
  13447. *
  13448. * Return: QDF_STATUS
  13449. */
  13450. static QDF_STATUS dp_pdev_init_wifi3(struct cdp_soc_t *txrx_soc,
  13451. HTC_HANDLE htc_handle,
  13452. qdf_device_t qdf_osdev,
  13453. uint8_t pdev_id)
  13454. {
  13455. return dp_pdev_init(txrx_soc, htc_handle, qdf_osdev, pdev_id);
  13456. }