dbglog_host.c 119 KB

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  1. /*
  2. * Copyright (c) 2013-2018 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. /* Host Debug log implementation */
  19. #include "athdefs.h"
  20. #include "a_types.h"
  21. #include "dbglog_host.h"
  22. #include "wmi.h"
  23. #include "wmi_unified_api.h"
  24. #include "wma.h"
  25. #include "ol_defines.h"
  26. #include <wlan_nlink_srv.h>
  27. #include "host_diag_core_event.h"
  28. #include "qwlan_version.h"
  29. #include <net/sock.h>
  30. #include <linux/netlink.h>
  31. #include <linux/vmalloc.h>
  32. #ifdef WLAN_OPEN_SOURCE
  33. #include <linux/debugfs.h>
  34. #endif /* WLAN_OPEN_SOURCE */
  35. #include "wmi_unified_priv.h"
  36. #ifdef CNSS_GENL
  37. #include <net/cnss_nl.h>
  38. #include "wlan_cfg80211.h"
  39. #endif
  40. #ifdef MULTI_IF_NAME
  41. #define CLD_DEBUGFS_DIR "cld" MULTI_IF_NAME
  42. #else
  43. #define CLD_DEBUGFS_DIR "cld"
  44. #endif
  45. #define DEBUGFS_BLOCK_NAME "dbglog_block"
  46. #define ATH_MODULE_NAME fwlog
  47. #include <a_debug.h>
  48. #define FWLOG_DEBUG ATH_DEBUG_MAKE_MODULE_MASK(0)
  49. #ifdef WLAN_DEBUG
  50. static int get_version;
  51. static int gprint_limiter;
  52. static bool tgt_assert_enable;
  53. static ATH_DEBUG_MASK_DESCRIPTION g_fwlog_debug_description[] = {
  54. {FWLOG_DEBUG, "fwlog"},
  55. };
  56. ATH_DEBUG_INSTANTIATE_MODULE_VAR(fwlog,
  57. "fwlog",
  58. "Firmware Debug Log",
  59. ATH_DEBUG_MASK_DEFAULTS | ATH_DEBUG_INFO |
  60. ATH_DEBUG_ERR,
  61. ATH_DEBUG_DESCRIPTION_COUNT
  62. (g_fwlog_debug_description),
  63. g_fwlog_debug_description);
  64. #endif
  65. module_dbg_print mod_print[WLAN_MODULE_ID_MAX];
  66. uint32_t dbglog_process_type = DBGLOG_PROCESS_NET_RAW;
  67. static const char *dbglog_get_module_str(uint32_t module_id)
  68. {
  69. switch (module_id) {
  70. case WLAN_MODULE_INF:
  71. return "INF";
  72. case WLAN_MODULE_WMI:
  73. return "WMI";
  74. case WLAN_MODULE_STA_PWRSAVE:
  75. return "STA PS";
  76. case WLAN_MODULE_WHAL:
  77. return "WHAL";
  78. case WLAN_MODULE_COEX:
  79. return "COEX";
  80. case WLAN_MODULE_ROAM:
  81. return "ROAM";
  82. case WLAN_MODULE_RESMGR_CHAN_MANAGER:
  83. return "CHANMGR";
  84. case WLAN_MODULE_RESMGR:
  85. return "RESMGR";
  86. case WLAN_MODULE_VDEV_MGR:
  87. return "VDEV";
  88. case WLAN_MODULE_SCAN:
  89. return "SCAN";
  90. case WLAN_MODULE_RATECTRL:
  91. return "RC";
  92. case WLAN_MODULE_AP_PWRSAVE:
  93. return "AP PS";
  94. case WLAN_MODULE_BLOCKACK:
  95. return "BA";
  96. case WLAN_MODULE_MGMT_TXRX:
  97. return "MGMT";
  98. case WLAN_MODULE_DATA_TXRX:
  99. return "DATA";
  100. case WLAN_MODULE_HTT:
  101. return "HTT";
  102. case WLAN_MODULE_HOST:
  103. return "HOST";
  104. case WLAN_MODULE_BEACON:
  105. return "BEACON";
  106. case WLAN_MODULE_OFFLOAD:
  107. return "OFFLOAD";
  108. case WLAN_MODULE_WAL:
  109. return "WAL";
  110. case WAL_MODULE_DE:
  111. return "DE";
  112. case WLAN_MODULE_PCIELP:
  113. return "PCIELP";
  114. case WLAN_MODULE_RTT:
  115. return "RTT";
  116. case WLAN_MODULE_DCS:
  117. return "DCS";
  118. case WLAN_MODULE_CACHEMGR:
  119. return "CACHEMGR";
  120. case WLAN_MODULE_ANI:
  121. return "ANI";
  122. case WLAN_MODULE_TEST:
  123. return "TESTPOINT";
  124. case WLAN_MODULE_STA_SMPS:
  125. return "STA_SMPS";
  126. case WLAN_MODULE_TDLS:
  127. return "TDLS";
  128. case WLAN_MODULE_P2P:
  129. return "P2P";
  130. case WLAN_MODULE_WOW:
  131. return "WoW";
  132. case WLAN_MODULE_IBSS_PWRSAVE:
  133. return "IBSS PS";
  134. case WLAN_MODULE_EXTSCAN:
  135. return "ExtScan";
  136. case WLAN_MODULE_UNIT_TEST:
  137. return "UNIT_TEST";
  138. case WLAN_MODULE_MLME:
  139. return "MLME";
  140. case WLAN_MODULE_SUPPL:
  141. return "SUPPLICANT";
  142. default:
  143. return "UNKNOWN";
  144. }
  145. }
  146. char *DBG_MSG_ARR[WLAN_MODULE_ID_MAX][MAX_DBG_MSGS] = {
  147. {
  148. "INF_MSG_START",
  149. "INF_ASSERTION_FAILED",
  150. "INF_TARGET_ID",
  151. "INF_MSG_END"
  152. },
  153. {
  154. "WMI_DBGID_DEFINITION_START",
  155. "WMI_CMD_RX_XTND_PKT_TOO_SHORT",
  156. "WMI_EXTENDED_CMD_NOT_HANDLED",
  157. "WMI_CMD_RX_PKT_TOO_SHORT",
  158. "WMI_CALLING_WMI_EXTENSION_FN",
  159. "WMI_CMD_NOT_HANDLED",
  160. "WMI_IN_SYNC",
  161. "WMI_TARGET_WMI_SYNC_CMD",
  162. "WMI_SET_SNR_THRESHOLD_PARAMS",
  163. "WMI_SET_RSSI_THRESHOLD_PARAMS",
  164. "WMI_SET_LQ_TRESHOLD_PARAMS",
  165. "WMI_TARGET_CREATE_PSTREAM_CMD",
  166. "WMI_WI_DTM_INUSE",
  167. "WMI_TARGET_DELETE_PSTREAM_CMD",
  168. "WMI_TARGET_IMPLICIT_DELETE_PSTREAM_CMD",
  169. "WMI_TARGET_GET_BIT_RATE_CMD",
  170. "WMI_GET_RATE_MASK_CMD_FIX_RATE_MASK_IS",
  171. "WMI_TARGET_GET_AVAILABLE_CHANNELS_CMD",
  172. "WMI_TARGET_GET_TX_PWR_CMD",
  173. "WMI_FREE_EVBUF_WMIBUF",
  174. "WMI_FREE_EVBUF_DATABUF",
  175. "WMI_FREE_EVBUF_BADFLAG",
  176. "WMI_HTC_RX_ERROR_DATA_PACKET",
  177. "WMI_HTC_RX_SYNC_PAUSING_FOR_MBOX",
  178. "WMI_INCORRECT_WMI_DATA_HDR_DROPPING_PKT",
  179. "WMI_SENDING_READY_EVENT",
  180. "WMI_SETPOWER_MDOE_TO_MAXPERF",
  181. "WMI_SETPOWER_MDOE_TO_REC",
  182. "WMI_BSSINFO_EVENT_FROM",
  183. "WMI_TARGET_GET_STATS_CMD",
  184. "WMI_SENDING_SCAN_COMPLETE_EVENT",
  185. "WMI_SENDING_RSSI_INDB_THRESHOLD_EVENT ",
  186. "WMI_SENDING_RSSI_INDBM_THRESHOLD_EVENT",
  187. "WMI_SENDING_LINK_QUALITY_THRESHOLD_EVENT",
  188. "WMI_SENDING_ERROR_REPORT_EVENT",
  189. "WMI_SENDING_CAC_EVENT",
  190. "WMI_TARGET_GET_ROAM_TABLE_CMD",
  191. "WMI_TARGET_GET_ROAM_DATA_CMD",
  192. "WMI_SENDING_GPIO_INTR_EVENT",
  193. "WMI_SENDING_GPIO_ACK_EVENT",
  194. "WMI_SENDING_GPIO_DATA_EVENT",
  195. "WMI_CMD_RX",
  196. "WMI_CMD_RX_XTND",
  197. "WMI_EVENT_SEND",
  198. "WMI_EVENT_SEND_XTND",
  199. "WMI_CMD_PARAMS_DUMP_START",
  200. "WMI_CMD_PARAMS_DUMP_END",
  201. "WMI_CMD_PARAMS",
  202. "WMI_EVENT_ALLOC_FAILURE",
  203. "WMI_DBGID_DCS_PARAM_CMD",
  204. "WMI_SEND_EVENT_WRONG_TLV",
  205. "WMI_SEND_EVENT_NO_TLV_DEF",
  206. "WMI_DBGID_DEFNITION_END",
  207. },
  208. {
  209. "PS_STA_DEFINITION_START",
  210. "PS_STA_PM_ARB_REQUEST",
  211. "PS_STA_DELIVER_EVENT",
  212. "PS_STA_PSPOLL_SEQ_DONE",
  213. "PS_STA_COEX_MODE",
  214. "PS_STA_PSPOLL_ALLOW",
  215. "PS_STA_SET_PARAM",
  216. "PS_STA_SPECPOLL_TIMER_STARTED",
  217. "PS_STA_SPECPOLL_TIMER_STOPPED",
  218. },
  219. {
  220. "WHAL_DBGID_DEFINITION_START",
  221. "WHAL_ERROR_ANI_CONTROL",
  222. "WHAL_ERROR_CHIP_TEST1",
  223. "WHAL_ERROR_CHIP_TEST2",
  224. "WHAL_ERROR_EEPROM_CHECKSUM",
  225. "WHAL_ERROR_EEPROM_MACADDR",
  226. "WHAL_ERROR_INTERRUPT_HIU",
  227. "WHAL_ERROR_KEYCACHE_RESET",
  228. "WHAL_ERROR_KEYCACHE_SET",
  229. "WHAL_ERROR_KEYCACHE_TYPE",
  230. "WHAL_ERROR_KEYCACHE_TKIPENTRY",
  231. "WHAL_ERROR_KEYCACHE_WEPLENGTH",
  232. "WHAL_ERROR_PHY_INVALID_CHANNEL",
  233. "WHAL_ERROR_POWER_AWAKE",
  234. "WHAL_ERROR_POWER_SET",
  235. "WHAL_ERROR_RECV_STOPDMA",
  236. "WHAL_ERROR_RECV_STOPPCU",
  237. "WHAL_ERROR_RESET_CHANNF1",
  238. "WHAL_ERROR_RESET_CHANNF2",
  239. "WHAL_ERROR_RESET_PM",
  240. "WHAL_ERROR_RESET_OFFSETCAL",
  241. "WHAL_ERROR_RESET_RFGRANT",
  242. "WHAL_ERROR_RESET_RXFRAME",
  243. "WHAL_ERROR_RESET_STOPDMA",
  244. "WHAL_ERROR_RESET_ERRID",
  245. "WHAL_ERROR_RESET_ADCDCCAL1",
  246. "WHAL_ERROR_RESET_ADCDCCAL2",
  247. "WHAL_ERROR_RESET_TXIQCAL",
  248. "WHAL_ERROR_RESET_RXIQCAL",
  249. "WHAL_ERROR_RESET_CARRIERLEAK",
  250. "WHAL_ERROR_XMIT_COMPUTE",
  251. "WHAL_ERROR_XMIT_NOQUEUE",
  252. "WHAL_ERROR_XMIT_ACTIVEQUEUE",
  253. "WHAL_ERROR_XMIT_BADTYPE",
  254. "WHAL_ERROR_XMIT_STOPDMA",
  255. "WHAL_ERROR_INTERRUPT_BB_PANIC",
  256. "WHAL_ERROR_PAPRD_MAXGAIN_ABOVE_WINDOW",
  257. "WHAL_ERROR_QCU_HW_PAUSE_MISMATCH",
  258. "WHAL_DBGID_DEFINITION_END",
  259. },
  260. {
  261. "COEX_DEBUGID_START",
  262. "BTCOEX_DBG_MCI_1",
  263. "BTCOEX_DBG_MCI_2",
  264. "BTCOEX_DBG_MCI_3",
  265. "BTCOEX_DBG_MCI_4",
  266. "BTCOEX_DBG_MCI_5",
  267. "BTCOEX_DBG_MCI_6",
  268. "BTCOEX_DBG_MCI_7",
  269. "BTCOEX_DBG_MCI_8",
  270. "BTCOEX_DBG_MCI_9",
  271. "BTCOEX_DBG_MCI_10",
  272. "COEX_WAL_BTCOEX_INIT",
  273. "COEX_WAL_PAUSE",
  274. "COEX_WAL_RESUME",
  275. "COEX_UPDATE_AFH",
  276. "COEX_HWQ_EMPTY_CB",
  277. "COEX_MCI_TIMER_HANDLER",
  278. "COEX_MCI_RECOVER",
  279. "ERROR_COEX_MCI_ISR",
  280. "ERROR_COEX_MCI_GPM",
  281. "COEX_ProfileType",
  282. "COEX_LinkID",
  283. "COEX_LinkState",
  284. "COEX_LinkRole",
  285. "COEX_LinkRate",
  286. "COEX_VoiceType",
  287. "COEX_TInterval",
  288. "COEX_WRetrx",
  289. "COEX_Attempts",
  290. "COEX_PerformanceState",
  291. "COEX_LinkType",
  292. "COEX_RX_MCI_GPM_VERSION_QUERY",
  293. "COEX_RX_MCI_GPM_VERSION_RESPONSE",
  294. "COEX_RX_MCI_GPM_STATUS_QUERY",
  295. "COEX_STATE_WLAN_VDEV_DOWN",
  296. "COEX_STATE_WLAN_VDEV_START",
  297. "COEX_STATE_WLAN_VDEV_CONNECTED",
  298. "COEX_STATE_WLAN_VDEV_SCAN_STARTED",
  299. "COEX_STATE_WLAN_VDEV_SCAN_END",
  300. "COEX_STATE_WLAN_DEFAULT",
  301. "COEX_CHANNEL_CHANGE",
  302. "COEX_POWER_CHANGE",
  303. "COEX_CONFIG_MGR",
  304. "COEX_TX_MCI_GPM_BT_CAL_REQ",
  305. "COEX_TX_MCI_GPM_BT_CAL_GRANT",
  306. "COEX_TX_MCI_GPM_BT_CAL_DONE",
  307. "COEX_TX_MCI_GPM_WLAN_CAL_REQ",
  308. "COEX_TX_MCI_GPM_WLAN_CAL_GRANT",
  309. "COEX_TX_MCI_GPM_WLAN_CAL_DONE",
  310. "COEX_TX_MCI_GPM_BT_DEBUG",
  311. "COEX_TX_MCI_GPM_VERSION_QUERY",
  312. "COEX_TX_MCI_GPM_VERSION_RESPONSE",
  313. "COEX_TX_MCI_GPM_STATUS_QUERY",
  314. "COEX_TX_MCI_GPM_HALT_BT_GPM",
  315. "COEX_TX_MCI_GPM_WLAN_CHANNELS",
  316. "COEX_TX_MCI_GPM_BT_PROFILE_INFO",
  317. "COEX_TX_MCI_GPM_BT_STATUS_UPDATE",
  318. "COEX_TX_MCI_GPM_BT_UPDATE_FLAGS",
  319. "COEX_TX_MCI_GPM_UNKNOWN",
  320. "COEX_TX_MCI_SYS_WAKING",
  321. "COEX_TX_MCI_LNA_TAKE",
  322. "COEX_TX_MCI_LNA_TRANS",
  323. "COEX_TX_MCI_SYS_SLEEPING",
  324. "COEX_TX_MCI_REQ_WAKE",
  325. "COEX_TX_MCI_REMOTE_RESET",
  326. "COEX_TX_MCI_TYPE_UNKNOWN",
  327. "COEX_WHAL_MCI_RESET",
  328. "COEX_POLL_BT_CAL_DONE_TIMEOUT",
  329. "COEX_WHAL_PAUSE",
  330. "COEX_RX_MCI_GPM_BT_CAL_REQ",
  331. "COEX_RX_MCI_GPM_BT_CAL_DONE",
  332. "COEX_RX_MCI_GPM_BT_CAL_GRANT",
  333. "COEX_WLAN_CAL_START",
  334. "COEX_WLAN_CAL_RESULT",
  335. "COEX_BtMciState",
  336. "COEX_BtCalState",
  337. "COEX_WlanCalState",
  338. "COEX_RxReqWakeCount",
  339. "COEX_RxRemoteResetCount",
  340. "COEX_RESTART_CAL",
  341. "COEX_SENDMSG_QUEUE",
  342. "COEX_RESETSEQ_LNAINFO_TIMEOUT",
  343. "COEX_MCI_ISR_IntRaw",
  344. "COEX_MCI_ISR_Int1Raw",
  345. "COEX_MCI_ISR_RxMsgRaw",
  346. "COEX_WHAL_COEX_RESET",
  347. "COEX_WAL_COEX_INIT",
  348. "COEX_TXRX_CNT_LIMIT_ISR",
  349. "COEX_CH_BUSY",
  350. "COEX_REASSESS_WLAN_STATE",
  351. "COEX_BTCOEX_WLAN_STATE_UPDATE",
  352. "COEX_BT_NUM_OF_PROFILES",
  353. "COEX_BT_NUM_OF_HID_PROFILES",
  354. "COEX_BT_NUM_OF_ACL_PROFILES",
  355. "COEX_BT_NUM_OF_HI_ACL_PROFILES",
  356. "COEX_BT_NUM_OF_VOICE_PROFILES",
  357. "COEX_WLAN_AGGR_LIMIT",
  358. "COEX_BT_LOW_PRIO_BUDGET",
  359. "COEX_BT_HI_PRIO_BUDGET",
  360. "COEX_BT_IDLE_TIME",
  361. "COEX_SET_COEX_WEIGHT",
  362. "COEX_WLAN_WEIGHT_GROUP",
  363. "COEX_BT_WEIGHT_GROUP",
  364. "COEX_BT_INTERVAL_ALLOC",
  365. "COEX_BT_SCHEME",
  366. "COEX_BT_MGR",
  367. "COEX_BT_SM_ERROR",
  368. "COEX_SYSTEM_UPDATE",
  369. "COEX_LOW_PRIO_LIMIT",
  370. "COEX_HI_PRIO_LIMIT",
  371. "COEX_BT_INTERVAL_START",
  372. "COEX_WLAN_INTERVAL_START",
  373. "COEX_NON_LINK_BUDGET",
  374. "COEX_CONTENTION_MSG",
  375. "COEX_SET_NSS",
  376. "COEX_SELF_GEN_MASK",
  377. "COEX_PROFILE_ERROR",
  378. "COEX_WLAN_INIT",
  379. "COEX_BEACON_MISS",
  380. "COEX_BEACON_OK",
  381. "COEX_BTCOEX_SCAN_ACTIVITY",
  382. "COEX_SCAN_ACTIVITY",
  383. "COEX_FORCE_QUIETTIME",
  384. "COEX_BT_MGR_QUIETTIME",
  385. "COEX_BT_INACTIVITY_TRIGGER",
  386. "COEX_BT_INACTIVITY_REPORTED",
  387. "COEX_TX_MCI_GPM_WLAN_PRIO",
  388. "COEX_TX_MCI_GPM_BT_PAUSE_PROFILE",
  389. "COEX_TX_MCI_GPM_WLAN_SET_ACL_INACTIVITY",
  390. "COEX_RX_MCI_GPM_BT_ACL_INACTIVITY_REPORT",
  391. "COEX_GENERIC_ERROR",
  392. "COEX_RX_RATE_THRESHOLD",
  393. "COEX_RSSI",
  394. "COEX_WLAN_VDEV_NOTIF_START", /* 133 */
  395. "COEX_WLAN_VDEV_NOTIF_UP", /* 134 */
  396. "COEX_WLAN_VDEV_NOTIF_DOWN", /* 135 */
  397. "COEX_WLAN_VDEV_NOTIF_STOP", /* 136 */
  398. "COEX_WLAN_VDEV_NOTIF_ADD_PEER", /* 137 */
  399. "COEX_WLAN_VDEV_NOTIF_DELETE_PEER", /* 138 */
  400. "COEX_WLAN_VDEV_NOTIF_CONNECTED_PEER", /* 139 */
  401. "COEX_WLAN_VDEV_NOTIF_PAUSE", /* 140 */
  402. "COEX_WLAN_VDEV_NOTIF_UNPAUSED", /* 141 */
  403. "COEX_STATE_WLAN_VDEV_PEER_ADD", /* 142 */
  404. "COEX_STATE_WLAN_VDEV_CONNECTED_PEER", /* 143 */
  405. "COEX_STATE_WLAN_VDEV_DELETE_PEER", /* 144 */
  406. "COEX_STATE_WLAN_VDEV_PAUSE", /* 145 */
  407. "COEX_STATE_WLAN_VDEV_UNPAUSED", /* 146 */
  408. "COEX_SCAN_CALLBACK", /* 147 */
  409. "COEX_RC_SET_CHAINMASK", /* 148 */
  410. "COEX_TX_MCI_GPM_WLAN_SET_BT_RXSS_THRES", /* 149 */
  411. "COEX_TX_MCI_GPM_BT_RXSS_THRES_QUERY", /* 150 */
  412. "COEX_BT_RXSS_THRES", /* 151 */
  413. "COEX_BT_PROFILE_ADD_RMV", /* 152 */
  414. "COEX_BT_SCHED_INFO", /* 153 */
  415. "COEX_TRF_MGMT", /* 154 */
  416. "COEX_SCHED_START", /* 155 */
  417. "COEX_SCHED_RESULT", /* 156 */
  418. "COEX_SCHED_ERROR", /* 157 */
  419. "COEX_SCHED_PRE_OP", /* 158 */
  420. "COEX_SCHED_POST_OP", /* 159 */
  421. "COEX_RX_RATE", /* 160 */
  422. "COEX_ACK_PRIORITY", /* 161 */
  423. "COEX_STATE_WLAN_VDEV_UP", /* 162 */
  424. "COEX_STATE_WLAN_VDEV_PEER_UPDATE", /* 163 */
  425. "COEX_STATE_WLAN_VDEV_STOP", /* 164 */
  426. "COEX_WLAN_PAUSE_PEER", /* 165 */
  427. "COEX_WLAN_UNPAUSE_PEER", /* 166 */
  428. "COEX_WLAN_PAUSE_INTERVAL_START", /* 167 */
  429. "COEX_WLAN_POSTPAUSE_INTERVAL_START", /* 168 */
  430. "COEX_TRF_FREERUN", /* 169 */
  431. "COEX_TRF_SHAPE_PM", /* 170 */
  432. "COEX_TRF_SHAPE_PSP", /* 171 */
  433. "COEX_TRF_SHAPE_S_CTS", /* 172 */
  434. "COEX_CHAIN_CONFIG", /* 173 */
  435. "COEX_SYSTEM_MONITOR", /* 174 */
  436. "COEX_SINGLECHAIN_INIT", /* 175 */
  437. "COEX_MULTICHAIN_INIT", /* 176 */
  438. "COEX_SINGLECHAIN_DBG_1", /* 177 */
  439. "COEX_SINGLECHAIN_DBG_2", /* 178 */
  440. "COEX_SINGLECHAIN_DBG_3", /* 179 */
  441. "COEX_MULTICHAIN_DBG_1", /* 180 */
  442. "COEX_MULTICHAIN_DBG_2", /* 181 */
  443. "COEX_MULTICHAIN_DBG_3", /* 182 */
  444. "COEX_PSP_TX_CB", /* 183 */
  445. "COEX_PSP_RX_CB", /* 184 */
  446. "COEX_PSP_STAT_1", /* 185 */
  447. "COEX_PSP_SPEC_POLL", /* 186 */
  448. "COEX_PSP_READY_STATE", /* 187 */
  449. "COEX_PSP_TX_STATUS_STATE", /* 188 */
  450. "COEX_PSP_RX_STATUS_STATE_1", /* 189 */
  451. "COEX_PSP_NOT_READY_STATE", /* 190 */
  452. "COEX_PSP_DISABLED_STATE", /* 191 */
  453. "COEX_PSP_ENABLED_STATE", /* 192 */
  454. "COEX_PSP_SEND_PSPOLL", /* 193 */
  455. "COEX_PSP_MGR_ENTER", /* 194 */
  456. "COEX_PSP_MGR_RESULT", /* 195 */
  457. "COEX_PSP_NONWLAN_INTERVAL", /* 196 */
  458. "COEX_PSP_STAT_2", /* 197 */
  459. "COEX_PSP_RX_STATUS_STATE_2", /* 198 */
  460. "COEX_PSP_ERROR", /* 199 */
  461. "COEX_T2BT", /* 200 */
  462. "COEX_BT_DURATION", /* 201 */
  463. "COEX_TX_MCI_GPM_WLAN_SCHED_INFO_TRIG", /* 202 */
  464. "COEX_TX_MCI_GPM_WLAN_SCHED_INFO_TRIG_RSP", /* 203 */
  465. "COEX_TX_MCI_GPM_SCAN_OP", /* 204 */
  466. "COEX_TX_MCI_GPM_BT_PAUSE_GPM_TX", /* 205 */
  467. "COEX_CTS2S_SEND", /* 206 */
  468. "COEX_CTS2S_RESULT", /* 207 */
  469. "COEX_ENTER_OCS", /* 208 */
  470. "COEX_EXIT_OCS", /* 209 */
  471. "COEX_UPDATE_OCS", /* 210 */
  472. "COEX_STATUS_OCS", /* 211 */
  473. "COEX_STATS_BT", /* 212 */
  474. "COEX_MWS_WLAN_INIT",
  475. "COEX_MWS_WBTMR_SYNC",
  476. "COEX_MWS_TYPE2_RX",
  477. "COEX_MWS_TYPE2_TX",
  478. "COEX_MWS_WLAN_CHAVD",
  479. "COEX_MWS_WLAN_CHAVD_INSERT",
  480. "COEX_MWS_WLAN_CHAVD_MERGE",
  481. "COEX_MWS_WLAN_CHAVD_RPT",
  482. "COEX_MWS_CP_MSG_SEND",
  483. "COEX_MWS_CP_ESCAPE",
  484. "COEX_MWS_CP_UNFRAME",
  485. "COEX_MWS_CP_SYNC_UPDATE",
  486. "COEX_MWS_CP_SYNC",
  487. "COEX_MWS_CP_WLAN_STATE_IND",
  488. "COEX_MWS_CP_SYNCRESP_TIMEOUT",
  489. "COEX_MWS_SCHEME_UPDATE",
  490. "COEX_MWS_WLAN_EVENT",
  491. "COEX_MWS_UART_UNESCAPE",
  492. "COEX_MWS_UART_ENCODE_SEND",
  493. "COEX_MWS_UART_RECV_DECODE",
  494. "COEX_MWS_UL_HDL",
  495. "COEX_MWS_REMOTE_EVENT",
  496. "COEX_MWS_OTHER",
  497. "COEX_MWS_ERROR",
  498. "COEX_MWS_ANT_DIVERSITY", /* 237 */
  499. "COEX_P2P_GO",
  500. "COEX_P2P_CLIENT",
  501. "COEX_SCC_1",
  502. "COEX_SCC_2",
  503. "COEX_MCC_1",
  504. "COEX_MCC_2",
  505. "COEX_TRF_SHAPE_NOA",
  506. "COEX_NOA_ONESHOT",
  507. "COEX_NOA_PERIODIC",
  508. "COEX_LE_1",
  509. "COEX_LE_2",
  510. "COEX_ANT_1",
  511. "COEX_ANT_2",
  512. "COEX_ENTER_NOA",
  513. "COEX_EXIT_NOA",
  514. "COEX_BT_SCAN_PROTECT", /* 253 */
  515. "COEX_DEBUG_ID_END" /* 254 */
  516. },
  517. {
  518. "ROAM_DBGID_DEFINITION_START",
  519. "ROAM_MODULE_INIT",
  520. "ROAM_DEV_START",
  521. "ROAM_CONFIG_RSSI_THRESH",
  522. "ROAM_CONFIG_SCAN_PERIOD",
  523. "ROAM_CONFIG_AP_PROFILE",
  524. "ROAM_CONFIG_CHAN_LIST",
  525. "ROAM_CONFIG_SCAN_PARAMS",
  526. "ROAM_CONFIG_RSSI_CHANGE",
  527. "ROAM_SCAN_TIMER_START",
  528. "ROAM_SCAN_TIMER_EXPIRE",
  529. "ROAM_SCAN_TIMER_STOP",
  530. "ROAM_SCAN_STARTED",
  531. "ROAM_SCAN_COMPLETE",
  532. "ROAM_SCAN_CANCELLED",
  533. "ROAM_CANDIDATE_FOUND",
  534. "ROAM_RSSI_ACTIVE_SCAN",
  535. "ROAM_RSSI_ACTIVE_ROAM",
  536. "ROAM_RSSI_GOOD",
  537. "ROAM_BMISS_FIRST_RECV",
  538. "ROAM_DEV_STOP",
  539. "ROAM_FW_OFFLOAD_ENABLE",
  540. "ROAM_CANDIDATE_SSID_MATCH",
  541. "ROAM_CANDIDATE_SECURITY_MATCH",
  542. "ROAM_LOW_RSSI_INTERRUPT",
  543. "ROAM_HIGH_RSSI_INTERRUPT",
  544. "ROAM_SCAN_REQUESTED",
  545. "ROAM_BETTER_CANDIDATE_FOUND",
  546. "ROAM_BETTER_AP_EVENT",
  547. "ROAM_CANCEL_LOW_PRIO_SCAN",
  548. "ROAM_FINAL_BMISS_RECVD",
  549. "ROAM_CONFIG_SCAN_MODE",
  550. "ROAM_BMISS_FINAL_SCAN_ENABLE",
  551. "ROAM_SUITABLE_AP_EVENT",
  552. "ROAM_RSN_IE_PARSE_ERROR",
  553. "ROAM_WPA_IE_PARSE_ERROR",
  554. "ROAM_SCAN_CMD_FROM_HOST",
  555. "ROAM_HO_SORT_CANDIDATE",
  556. "ROAM_HO_SAVE_CANDIDATE",
  557. "ROAM_HO_GET_CANDIDATE",
  558. "ROAM_HO_OFFLOAD_SET_PARAM",
  559. "ROAM_HO_SM",
  560. "ROAM_HO_HTT_SAVED",
  561. "ROAM_HO_SYNC_START",
  562. "ROAM_HO_START",
  563. "ROAM_HO_COMPLETE",
  564. "ROAM_HO_STOP",
  565. "ROAM_HO_HTT_FORWARD",
  566. "ROAM_DBGID_DEFINITION_END"
  567. },
  568. {
  569. "RESMGR_CHMGR_DEFINITION_START",
  570. "RESMGR_CHMGR_PAUSE_COMPLETE",
  571. "RESMGR_CHMGR_CHANNEL_CHANGE",
  572. "RESMGR_CHMGR_RESUME_COMPLETE",
  573. "RESMGR_CHMGR_VDEV_PAUSE",
  574. "RESMGR_CHMGR_VDEV_UNPAUSE",
  575. "RESMGR_CHMGR_CTS2S_TX_COMP",
  576. "RESMGR_CHMGR_CFEND_TX_COMP",
  577. "RESMGR_CHMGR_DEFINITION_END"
  578. },
  579. {
  580. "RESMGR_DEFINITION_START",
  581. "RESMGR_OCS_ALLOCRAM_SIZE",
  582. "RESMGR_OCS_RESOURCES",
  583. "RESMGR_LINK_CREATE",
  584. "RESMGR_LINK_DELETE",
  585. "RESMGR_OCS_CHREQ_CREATE",
  586. "RESMGR_OCS_CHREQ_DELETE",
  587. "RESMGR_OCS_CHREQ_START",
  588. "RESMGR_OCS_CHREQ_STOP",
  589. "RESMGR_OCS_SCHEDULER_INVOKED",
  590. "RESMGR_OCS_CHREQ_GRANT",
  591. "RESMGR_OCS_CHREQ_COMPLETE",
  592. "RESMGR_OCS_NEXT_TSFTIME",
  593. "RESMGR_OCS_TSF_TIMEOUT_US",
  594. "RESMGR_OCS_CURR_CAT_WINDOW",
  595. "RESMGR_OCS_CURR_CAT_WINDOW_REQ",
  596. "RESMGR_OCS_CURR_CAT_WINDOW_TIMESLOT",
  597. "RESMGR_OCS_CHREQ_RESTART",
  598. "RESMGR_OCS_CLEANUP_CH_ALLOCATORS",
  599. "RESMGR_OCS_PURGE_CHREQ",
  600. "RESMGR_OCS_CH_ALLOCATOR_FREE",
  601. "RESMGR_OCS_RECOMPUTE_SCHEDULE",
  602. "RESMGR_OCS_NEW_CAT_WINDOW_REQ",
  603. "RESMGR_OCS_NEW_CAT_WINDOW_TIMESLOT",
  604. "RESMGR_OCS_CUR_CH_ALLOC",
  605. "RESMGR_OCS_WIN_CH_ALLOC",
  606. "RESMGR_OCS_SCHED_CH_CHANGE",
  607. "RESMGR_OCS_CONSTRUCT_CAT_WIN",
  608. "RESMGR_OCS_CHREQ_PREEMPTED",
  609. "RESMGR_OCS_CH_SWITCH_REQ",
  610. "RESMGR_OCS_CHANNEL_SWITCHED",
  611. "RESMGR_OCS_CLEANUP_STALE_REQS",
  612. "RESMGR_OCS_CHREQ_UPDATE",
  613. "RESMGR_OCS_REG_NOA_NOTIF",
  614. "RESMGR_OCS_DEREG_NOA_NOTIF",
  615. "RESMGR_OCS_GEN_PERIODIC_NOA",
  616. "RESMGR_OCS_RECAL_QUOTAS",
  617. "RESMGR_OCS_GRANTED_QUOTA_STATS",
  618. "RESMGR_OCS_ALLOCATED_QUOTA_STATS",
  619. "RESMGR_OCS_REQ_QUOTA_STATS",
  620. "RESMGR_OCS_TRACKING_TIME_FIRED",
  621. "RESMGR_VC_ARBITRATE_ATTRIBUTES",
  622. "RESMGR_OCS_LATENCY_STRICT_TIME_SLOT",
  623. "RESMGR_OCS_CURR_TSF",
  624. "RESMGR_OCS_QUOTA_REM",
  625. "RESMGR_OCS_LATENCY_CASE_NO",
  626. "RESMGR_OCS_WIN_CAT_DUR",
  627. "RESMGR_VC_UPDATE_CUR_VC",
  628. "RESMGR_VC_REG_UNREG_LINK",
  629. "RESMGR_VC_PRINT_LINK",
  630. "RESMGR_OCS_MISS_TOLERANCE",
  631. "RESMGR_DYN_SCH_ALLOCRAM_SIZE",
  632. "RESMGR_DYN_SCH_ENABLE",
  633. "RESMGR_DYN_SCH_ACTIVE",
  634. "RESMGR_DYN_SCH_CH_STATS_START",
  635. "RESMGR_DYN_SCH_CH_SX_STATS",
  636. "RESMGR_DYN_SCH_TOT_UTIL_PER",
  637. "RESMGR_DYN_SCH_HOME_CH_QUOTA",
  638. "RESMGR_OCS_REG_RECAL_QUOTA_NOTIF",
  639. "RESMGR_OCS_DEREG_RECAL_QUOTA_NOTIF",
  640. "RESMGR_DEFINITION_END"
  641. },
  642. {
  643. "VDEV_MGR_DEBID_DEFINITION_START", /* vdev Mgr */
  644. "VDEV_MGR_FIRST_BEACON_MISS_DETECTED",
  645. "VDEV_MGR_FINAL_BEACON_MISS_DETECTED",
  646. "VDEV_MGR_BEACON_IN_SYNC",
  647. "VDEV_MGR_AP_KEEPALIVE_IDLE",
  648. "VDEV_MGR_AP_KEEPALIVE_INACTIVE",
  649. "VDEV_MGR_AP_KEEPALIVE_UNRESPONSIVE",
  650. "VDEV_MGR_AP_TBTT_CONFIG",
  651. "VDEV_MGR_FIRST_BCN_RECEIVED",
  652. "VDEV_MGR_VDEV_START",
  653. "VDEV_MGR_VDEV_UP",
  654. "VDEV_MGR_PEER_AUTHORIZED",
  655. "VDEV_MGR_OCS_HP_LP_REQ_POSTED",
  656. "VDEV_MGR_VDEV_START_OCS_HP_REQ_COMPLETE",
  657. "VDEV_MGR_VDEV_START_OCS_HP_REQ_STOP",
  658. "VDEV_MGR_HP_START_TIME",
  659. "VDEV_MGR_VDEV_PAUSE_DELAY_UPDATE",
  660. "VDEV_MGR_VDEV_PAUSE_FAIL",
  661. "VDEV_MGR_GEN_PERIODIC_NOA",
  662. "VDEV_MGR_OFF_CHAN_GO_CH_REQ_SETUP",
  663. "VDEV_MGR_DEFINITION_END",
  664. },
  665. {
  666. "SCAN_START_COMMAND_FAILED", /* scan */
  667. "SCAN_STOP_COMMAND_FAILED",
  668. "SCAN_EVENT_SEND_FAILED",
  669. "SCAN_ENGINE_START",
  670. "SCAN_ENGINE_CANCEL_COMMAND",
  671. "SCAN_ENGINE_STOP_DUE_TO_TIMEOUT",
  672. "SCAN_EVENT_SEND_TO_HOST",
  673. "SCAN_FWLOG_EVENT_ADD",
  674. "SCAN_FWLOG_EVENT_REM",
  675. "SCAN_FWLOG_EVENT_PREEMPTED",
  676. "SCAN_FWLOG_EVENT_RESTARTED",
  677. "SCAN_FWLOG_EVENT_COMPLETED",
  678. },
  679. {
  680. "RATECTRL_DBGID_DEFINITION_START", /* Rate ctrl */
  681. "RATECTRL_DBGID_ASSOC",
  682. "RATECTRL_DBGID_NSS_CHANGE",
  683. "RATECTRL_DBGID_CHAINMASK_ERR",
  684. "RATECTRL_DBGID_UNEXPECTED_FRAME",
  685. "RATECTRL_DBGID_WAL_RCQUERY",
  686. "RATECTRL_DBGID_WAL_RCUPDATE",
  687. "RATECTRL_DBGID_GTX_UPDATE",
  688. "RATECTRL_DBGID_DEFINITION_END"
  689. },
  690. {
  691. "AP_PS_DBGID_DEFINITION_START",
  692. "AP_PS_DBGID_UPDATE_TIM",
  693. "AP_PS_DBGID_PEER_STATE_CHANGE",
  694. "AP_PS_DBGID_PSPOLL",
  695. "AP_PS_DBGID_PEER_CREATE",
  696. "AP_PS_DBGID_PEER_DELETE",
  697. "AP_PS_DBGID_VDEV_CREATE",
  698. "AP_PS_DBGID_VDEV_DELETE",
  699. "AP_PS_DBGID_SYNC_TIM",
  700. "AP_PS_DBGID_NEXT_RESPONSE",
  701. "AP_PS_DBGID_START_SP",
  702. "AP_PS_DBGID_COMPLETED_EOSP",
  703. "AP_PS_DBGID_TRIGGER",
  704. "AP_PS_DBGID_DUPLICATE_TRIGGER",
  705. "AP_PS_DBGID_UAPSD_RESPONSE",
  706. "AP_PS_DBGID_SEND_COMPLETE",
  707. "AP_PS_DBGID_SEND_N_COMPLETE",
  708. "AP_PS_DBGID_DETECT_OUT_OF_SYNC_STA",
  709. "AP_PS_DBGID_DELIVER_CAB",
  710. },
  711. {
  712. "" /* Block Ack */
  713. },
  714. /* Mgmt TxRx */
  715. {
  716. "MGMT_TXRX_DBGID_DEFINITION_START",
  717. "MGMT_TXRX_FORWARD_TO_HOST",
  718. "MGMT_TXRX_DBGID_DEFINITION_END",
  719. },
  720. { /* Data TxRx */
  721. "DATA_TXRX_DBGID_DEFINITION_START",
  722. "DATA_TXRX_DBGID_RX_DATA_SEQ_LEN_INFO",
  723. "DATA_TXRX_DBGID_DEFINITION_END",
  724. },
  725. {"" /* HTT */
  726. },
  727. {"" /* HOST */
  728. },
  729. {"" /* BEACON */
  730. "BEACON_EVENT_SWBA_SEND_FAILED",
  731. "BEACON_EVENT_EARLY_RX_BMISS_STATUS",
  732. "BEACON_EVENT_EARLY_RX_SLEEP_SLOP",
  733. "BEACON_EVENT_EARLY_RX_CONT_BMISS_TIMEOUT",
  734. "BEACON_EVENT_EARLY_RX_PAUSE_SKIP_BCN_NUM",
  735. "BEACON_EVENT_EARLY_RX_CLK_DRIFT",
  736. "BEACON_EVENT_EARLY_RX_AP_DRIFT",
  737. "BEACON_EVENT_EARLY_RX_BCN_TYPE",},
  738. { /* Offload Mgr */
  739. "OFFLOAD_MGR_DBGID_DEFINITION_START",
  740. "OFFLOADMGR_REGISTER_OFFLOAD",
  741. "OFFLOADMGR_DEREGISTER_OFFLOAD",
  742. "OFFLOADMGR_NO_REG_DATA_HANDLERS",
  743. "OFFLOADMGR_NO_REG_EVENT_HANDLERS",
  744. "OFFLOADMGR_REG_OFFLOAD_FAILED",
  745. "OFFLOADMGR_DBGID_DEFINITION_END",
  746. },
  747. {
  748. "WAL_DBGID_DEFINITION_START",
  749. "WAL_DBGID_FAST_WAKE_REQUEST",
  750. "WAL_DBGID_FAST_WAKE_RELEASE",
  751. "WAL_DBGID_SET_POWER_STATE",
  752. "WAL_DBGID_MISSING",
  753. "WAL_DBGID_CHANNEL_CHANGE_FORCE_RESET",
  754. "WAL_DBGID_CHANNEL_CHANGE",
  755. "WAL_DBGID_VDEV_START",
  756. "WAL_DBGID_VDEV_STOP",
  757. "WAL_DBGID_VDEV_UP",
  758. "WAL_DBGID_VDEV_DOWN",
  759. "WAL_DBGID_SW_WDOG_RESET",
  760. "WAL_DBGID_TX_SCH_REGISTER_TIDQ",
  761. "WAL_DBGID_TX_SCH_UNREGISTER_TIDQ",
  762. "WAL_DBGID_TX_SCH_TICKLE_TIDQ",
  763. "WAL_DBGID_XCESS_FAILURES",
  764. "WAL_DBGID_AST_ADD_WDS_ENTRY",
  765. "WAL_DBGID_AST_DEL_WDS_ENTRY",
  766. "WAL_DBGID_AST_WDS_ENTRY_PEER_CHG",
  767. "WAL_DBGID_AST_WDS_SRC_LEARN_FAIL",
  768. "WAL_DBGID_STA_KICKOUT",
  769. "WAL_DBGID_BAR_TX_FAIL",
  770. "WAL_DBGID_BAR_ALLOC_FAIL",
  771. "WAL_DBGID_LOCAL_DATA_TX_FAIL",
  772. "WAL_DBGID_SECURITY_PM4_QUEUED",
  773. "WAL_DBGID_SECURITY_GM1_QUEUED",
  774. "WAL_DBGID_SECURITY_PM4_SENT",
  775. "WAL_DBGID_SECURITY_ALLOW_DATA",
  776. "WAL_DBGID_SECURITY_UCAST_KEY_SET",
  777. "WAL_DBGID_SECURITY_MCAST_KEY_SET",
  778. "WAL_DBGID_SECURITY_ENCR_EN",
  779. "WAL_DBGID_BB_WDOG_TRIGGERED",
  780. "WAL_DBGID_RX_LOCAL_BUFS_LWM",
  781. "WAL_DBGID_RX_LOCAL_DROP_LARGE_MGMT",
  782. "WAL_DBGID_VHT_ILLEGAL_RATE_PHY_ERR_DETECTED",
  783. "WAL_DBGID_DEV_RESET",
  784. "WAL_DBGID_TX_BA_SETUP",
  785. "WAL_DBGID_RX_BA_SETUP",
  786. "WAL_DBGID_DEV_TX_TIMEOUT",
  787. "WAL_DBGID_DEV_RX_TIMEOUT",
  788. "WAL_DBGID_STA_VDEV_XRETRY",
  789. "WAL_DBGID_DCS",
  790. "WAL_DBGID_MGMT_TX_FAIL",
  791. "WAL_DBGID_SET_M4_SENT_MANUALLY",
  792. "WAL_DBGID_PROCESS_4_WAY_HANDSHAKE",
  793. "WAL_DBGID_WAL_CHANNEL_CHANGE_START",
  794. "WAL_DBGID_WAL_CHANNEL_CHANGE_COMPLETE",
  795. "WAL_DBGID_WHAL_CHANNEL_CHANGE_START",
  796. "WAL_DBGID_WHAL_CHANNEL_CHANGE_COMPLETE",
  797. "WAL_DBGID_TX_MGMT_DESCID_SEQ_TYPE_LEN",
  798. "WAL_DBGID_TX_DATA_MSDUID_SEQ_TYPE_LEN",
  799. "WAL_DBGID_TX_DISCARD",
  800. "WAL_DBGID_TX_MGMT_COMP_DESCID_STATUS",
  801. "WAL_DBGID_TX_DATA_COMP_MSDUID_STATUS",
  802. "WAL_DBGID_RESET_PCU_CYCLE_CNT",
  803. "WAL_DBGID_SETUP_RSSI_INTERRUPTS",
  804. "WAL_DBGID_BRSSI_CONFIG",
  805. "WAL_DBGID_CURRENT_BRSSI_AVE",
  806. "WAL_DBGID_BCN_TX_COMP",
  807. "WAL_DBGID_SET_HW_CHAINMASK",
  808. "WAL_DBGID_SET_HW_CHAINMASK_TXRX_STOP_FAIL",
  809. "WAL_DBGID_GET_HW_CHAINMASK",
  810. "WAL_DBGID_SMPS_DISABLE",
  811. "WAL_DBGID_SMPS_ENABLE_HW_CNTRL",
  812. "WAL_DBGID_SMPS_SWSEL_CHAINMASK",
  813. "WAL_DBGID_DEFINITION_END",
  814. },
  815. {
  816. "" /* DE */
  817. },
  818. {
  819. "" /* pcie lp */
  820. },
  821. {
  822. /* RTT */
  823. "RTT_CALL_FLOW",
  824. "RTT_REQ_SUB_TYPE",
  825. "RTT_MEAS_REQ_HEAD",
  826. "RTT_MEAS_REQ_BODY",
  827. "",
  828. "",
  829. "RTT_INIT_GLOBAL_STATE",
  830. "",
  831. "RTT_REPORT",
  832. "",
  833. "RTT_ERROR_REPORT",
  834. "RTT_TIMER_STOP",
  835. "RTT_SEND_TM_FRAME",
  836. "RTT_V3_RESP_CNT",
  837. "RTT_V3_RESP_FINISH",
  838. "RTT_CHANNEL_SWITCH_REQ",
  839. "RTT_CHANNEL_SWITCH_GRANT",
  840. "RTT_CHANNEL_SWITCH_COMPLETE",
  841. "RTT_CHANNEL_SWITCH_PREEMPT",
  842. "RTT_CHANNEL_SWITCH_STOP",
  843. "RTT_TIMER_START",
  844. },
  845. { /* RESOURCE */
  846. "RESOURCE_DBGID_DEFINITION_START",
  847. "RESOURCE_PEER_ALLOC",
  848. "RESOURCE_PEER_FREE",
  849. "RESOURCE_PEER_ALLOC_WAL_PEER",
  850. "RESOURCE_PEER_NBRHOOD_MGMT_ALLOC",
  851. "RESOURCE_PEER_NBRHOOD_MGMT_INFO,RESOURCE_DBGID_DEFINITION_END",
  852. },
  853. { /* DCS */
  854. "WLAN_DCS_DBGID_INIT",
  855. "WLAN_DCS_DBGID_WMI_CWINT",
  856. "WLAN_DCS_DBGID_TIMER",
  857. "WLAN_DCS_DBGID_CMDG",
  858. "WLAN_DCS_DBGID_CMDS",
  859. "WLAN_DCS_DBGID_DINIT"
  860. },
  861. { /* CACHEMGR */
  862. ""
  863. },
  864. { /* ANI */
  865. "ANI_DBGID_POLL",
  866. "ANI_DBGID_CONTROL",
  867. "ANI_DBGID_OFDM_PARAMS",
  868. "ANI_DBGID_CCK_PARAMS",
  869. "ANI_DBGID_RESET",
  870. "ANI_DBGID_RESTART",
  871. "ANI_DBGID_OFDM_LEVEL",
  872. "ANI_DBGID_CCK_LEVEL",
  873. "ANI_DBGID_FIRSTEP",
  874. "ANI_DBGID_CYCPWR",
  875. "ANI_DBGID_MRC_CCK",
  876. "ANI_DBGID_SELF_CORR_LOW",
  877. "ANI_DBGID_ENABLE",
  878. "ANI_DBGID_CURRENT_LEVEL",
  879. "ANI_DBGID_POLL_PERIOD",
  880. "ANI_DBGID_LISTEN_PERIOD",
  881. "ANI_DBGID_OFDM_LEVEL_CFG",
  882. "ANI_DBGID_CCK_LEVEL_CFG"
  883. },
  884. {
  885. "P2P_DBGID_DEFINITION_START",
  886. "P2P_DEV_REGISTER",
  887. "P2P_HANDLE_NOA",
  888. "P2P_UPDATE_SCHEDULE_OPPS",
  889. "P2P_UPDATE_SCHEDULE",
  890. "P2P_UPDATE_START_TIME",
  891. "P2P_UPDATE_START_TIME_DIFF_TSF32",
  892. "P2P_UPDATE_START_TIME_FINAL",
  893. "P2P_SETUP_SCHEDULE_TIMER",
  894. "P2P_PROCESS_SCHEDULE_AFTER_CALC",
  895. "P2P_PROCESS_SCHEDULE_STARTED_TIMER",
  896. "P2P_CALC_SCHEDULES_FIRST_CALL_ALL_NEXT_EVENT",
  897. "P2P_CALC_SCHEDULES_FIRST_VALUE",
  898. "P2P_CALC_SCHEDULES_EARLIEST_NEXT_EVENT",
  899. "P2P_CALC_SCHEDULES_SANITY_COUNT",
  900. "P2P_CALC_SCHEDULES_CALL_ALL_NEXT_EVENT_FROM_WHILE_LOOP",
  901. "P2P_CALC_SCHEDULES_TIMEOUT_1",
  902. "P2P_CALC_SCHEDULES_TIMEOUT_2",
  903. "P2P_FIND_ALL_NEXT_EVENTS_REQ_EXPIRED",
  904. "P2P_FIND_ALL_NEXT_EVENTS_REQ_ACTIVE",
  905. "P2P_FIND_NEXT_EVENT_REQ_NOT_STARTED",
  906. "P2P_FIND_NEXT_EVENT_REQ_COMPLETE_NON_PERIODIC",
  907. "P2P_FIND_NEXT_EVENT_IN_MID_OF_NOA",
  908. "P2P_FIND_NEXT_EVENT_REQ_COMPLETE",
  909. "P2P_SCHEDULE_TIMEOUT",
  910. "P2P_CALC_SCHEDULES_ENTER",
  911. "P2P_PROCESS_SCHEDULE_ENTER",
  912. "P2P_FIND_ALL_NEXT_EVENTS_INDIVIDUAL_REQ_AFTER_CHANGE",
  913. "P2P_FIND_ALL_NEXT_EVENTS_INDIVIDUAL_REQ_BEFORE_CHANGE",
  914. "P2P_FIND_ALL_NEXT_EVENTS_ENTER",
  915. "P2P_FIND_NEXT_EVENT_ENTER",
  916. "P2P_NOA_GO_PRESENT",
  917. "P2P_NOA_GO_ABSENT",
  918. "P2P_GO_NOA_NOTIF",
  919. "P2P_GO_TBTT_OFFSET",
  920. "P2P_GO_GET_NOA_INFO",
  921. "P2P_GO_ADD_ONE_SHOT_NOA",
  922. "P2P_GO_GET_NOA_IE",
  923. "P2P_GO_BCN_TX_COMP",
  924. "P2P_DBGID_DEFINITION_END",
  925. },
  926. {
  927. "CSA_DBGID_DEFINITION_START",
  928. "CSA_OFFLOAD_POOL_INIT",
  929. "CSA_OFFLOAD_REGISTER_VDEV",
  930. "CSA_OFFLOAD_DEREGISTER_VDEV",
  931. "CSA_DEREGISTER_VDEV_ERROR",
  932. "CSA_OFFLOAD_BEACON_RECEIVED",
  933. "CSA_OFFLOAD_BEACON_CSA_RECV",
  934. "CSA_OFFLOAD_CSA_RECV_ERROR_IE",
  935. "CSA_OFFLOAD_CSA_TIMER_ERROR",
  936. "CSA_OFFLOAD_CSA_TIMER_EXP",
  937. "CSA_OFFLOAD_WMI_EVENT_ERROR",
  938. "CSA_OFFLOAD_WMI_EVENT_SENT",
  939. "CSA_OFFLOAD_WMI_CHANSWITCH_RECV",
  940. "CSA_DBGID_DEFINITION_END",
  941. },
  942. { /* NLO offload */
  943. ""
  944. },
  945. {
  946. "WLAN_CHATTER_DBGID_DEFINITION_START",
  947. "WLAN_CHATTER_ENTER",
  948. "WLAN_CHATTER_EXIT",
  949. "WLAN_CHATTER_FILTER_HIT",
  950. "WLAN_CHATTER_FILTER_MISS",
  951. "WLAN_CHATTER_FILTER_FULL",
  952. "WLAN_CHATTER_FILTER_TM_ADJ",
  953. "WLAN_CHATTER_BUFFER_FULL",
  954. "WLAN_CHATTER_TIMEOUT",
  955. "WLAN_CHATTER_DBGID_DEFINITION_END",
  956. },
  957. {
  958. "WOW_DBGID_DEFINITION_START",
  959. "WOW_ENABLE_CMDID",
  960. "WOW_RECV_DATA_PKT",
  961. "WOW_WAKE_HOST_DATA",
  962. "WOW_RECV_MGMT",
  963. "WOW_WAKE_HOST_MGMT",
  964. "WOW_RECV_EVENT",
  965. "WOW_WAKE_HOST_EVENT",
  966. "WOW_INIT",
  967. "WOW_RECV_MAGIC_PKT",
  968. "WOW_RECV_BITMAP_PATTERN",
  969. "WOW_AP_VDEV_DISALLOW",
  970. "WOW_STA_VDEV_DISALLOW",
  971. "WOW_P2PGO_VDEV_DISALLOW",
  972. "WOW_NS_OFLD_ENABLE",
  973. "WOW_ARP_OFLD_ENABLE",
  974. "WOW_NS_ARP_OFLD_DISABLE",
  975. "WOW_NS_RECEIVED",
  976. "WOW_NS_REPLIED",
  977. "WOW_ARP_RECEIVED",
  978. "WOW_ARP_REPLIED",
  979. "WOW_DBGID_DEFINITION_END",
  980. },
  981. { /* WAL VDEV */
  982. ""
  983. },
  984. { /* WAL PDEV */
  985. ""
  986. },
  987. { /* TEST */
  988. "TP_CHANGE_CHANNEL",
  989. "TP_LOCAL_SEND",
  990. },
  991. { /* STA SMPS */
  992. "STA_SMPS_DBGID_DEFINITION_START",
  993. "STA_SMPS_DBGID_CREATE_PDEV_INSTANCE",
  994. "STA_SMPS_DBGID_CREATE_VIRTUAL_CHAN_INSTANCE",
  995. "STA_SMPS_DBGID_DELETE_VIRTUAL_CHAN_INSTANCE",
  996. "STA_SMPS_DBGID_CREATE_STA_INSTANCE",
  997. "STA_SMPS_DBGID_DELETE_STA_INSTANCE",
  998. "STA_SMPS_DBGID_VIRTUAL_CHAN_SMPS_START",
  999. "STA_SMPS_DBGID_VIRTUAL_CHAN_SMPS_STOP",
  1000. "STA_SMPS_DBGID_SEND_SMPS_ACTION_FRAME",
  1001. "STA_SMPS_DBGID_HOST_FORCED_MODE",
  1002. "STA_SMPS_DBGID_FW_FORCED_MODE",
  1003. "STA_SMPS_DBGID_RSSI_THRESHOLD_CROSSED",
  1004. "STA_SMPS_DBGID_SMPS_ACTION_FRAME_COMPLETION",
  1005. "STA_SMPS_DBGID_DTIM_EBT_EVENT_CHMASK_UPDATE",
  1006. "STA_SMPS_DBGID_DTIM_CHMASK_UPDATE",
  1007. "STA_SMPS_DBGID_DTIM_BEACON_EVENT_CHMASK_UPDATE",
  1008. "STA_SMPS_DBGID_DTIM_POWER_STATE_CHANGE",
  1009. "STA_SMPS_DBGID_DTIM_CHMASK_UPDATE_SLEEP",
  1010. "STA_SMPS_DBGID_DTIM_CHMASK_UPDATE_AWAKE",
  1011. "SMPS_DBGID_DEFINITION_END",
  1012. },
  1013. { /* SWBMISS */
  1014. "SWBMISS_DBGID_DEFINITION_START",
  1015. "SWBMISS_ENABLED",
  1016. "SWBMISS_DISABLED",
  1017. "SWBMISS_DBGID_DEFINITION_END",
  1018. },
  1019. { /* WMMAC */
  1020. ""
  1021. },
  1022. { /* TDLS */
  1023. "TDLS_DBGID_DEFINITION_START",
  1024. "TDLS_DBGID_VDEV_CREATE",
  1025. "TDLS_DBGID_VDEV_DELETE",
  1026. "TDLS_DBGID_ENABLED_PASSIVE",
  1027. "TDLS_DBGID_ENABLED_ACTIVE",
  1028. "TDLS_DBGID_DISABLED",
  1029. "TDLS_DBGID_CONNTRACK_TIMER",
  1030. "TDLS_DBGID_WAL_SET",
  1031. "TDLS_DBGID_WAL_GET",
  1032. "TDLS_DBGID_WAL_PEER_UPDATE_SET",
  1033. "TDLS_DBGID_WAL_PEER_UPDATE_EVT",
  1034. "TDLS_DBGID_WAL_VDEV_CREATE",
  1035. "TDLS_DBGID_WAL_VDEV_DELETE",
  1036. "TDLS_DBGID_WLAN_EVENT",
  1037. "TDLS_DBGID_WLAN_PEER_UPDATE_SET",
  1038. "TDLS_DBGID_PEER_EVT_DRP_THRESH",
  1039. "TDLS_DBGID_PEER_EVT_DRP_RATE",
  1040. "TDLS_DBGID_PEER_EVT_DRP_RSSI",
  1041. "TDLS_DBGID_PEER_EVT_DISCOVER",
  1042. "TDLS_DBGID_PEER_EVT_DELETE",
  1043. "TDLS_DBGID_PEER_CAP_UPDATE",
  1044. "TDLS_DBGID_UAPSD_SEND_PTI_FRAME",
  1045. "TDLS_DBGID_UAPSD_SEND_PTI_FRAME2PEER",
  1046. "TDLS_DBGID_UAPSD_START_PTR_TIMER",
  1047. "TDLS_DBGID_UAPSD_CANCEL_PTR_TIMER",
  1048. "TDLS_DBGID_UAPSD_PTR_TIMER_TIMEOUT",
  1049. "TDLS_DBGID_UAPSD_STA_PS_EVENT_HANDLER",
  1050. "TDLS_DBGID_UAPSD_PEER_EVENT_HANDLER",
  1051. "TDLS_DBGID_UAPSD_PS_DEFAULT_SETTINGS",
  1052. "TDLS_DBGID_UAPSD_GENERIC",
  1053. },
  1054. { /* HB */
  1055. "WLAN_HB_DBGID_DEFINITION_START",
  1056. "WLAN_HB_DBGID_INIT",
  1057. "WLAN_HB_DBGID_TCP_GET_TXBUF_FAIL",
  1058. "WLAN_HB_DBGID_TCP_SEND_FAIL",
  1059. "WLAN_HB_DBGID_BSS_PEER_NULL",
  1060. "WLAN_HB_DBGID_UDP_GET_TXBUF_FAIL",
  1061. "WLAN_HB_DBGID_UDP_SEND_FAIL",
  1062. "WLAN_HB_DBGID_WMI_CMD_INVALID_PARAM",
  1063. "WLAN_HB_DBGID_WMI_CMD_INVALID_OP",
  1064. "WLAN_HB_DBGID_WOW_NOT_ENTERED",
  1065. "WLAN_HB_DBGID_ALLOC_SESS_FAIL",
  1066. "WLAN_HB_DBGID_CTX_NULL",
  1067. "WLAN_HB_DBGID_CHKSUM_ERR",
  1068. "WLAN_HB_DBGID_UDP_TX",
  1069. "WLAN_HB_DBGID_TCP_TX",
  1070. "WLAN_HB_DBGID_DEFINITION_END",
  1071. },
  1072. { /* TXBF */
  1073. "TXBFEE_DBGID_START",
  1074. "TXBFEE_DBGID_NDPA_RECEIVED",
  1075. "TXBFEE_DBGID_HOST_CONFIG_TXBFEE_TYPE",
  1076. "TXBFER_DBGID_SEND_NDPA",
  1077. "TXBFER_DBGID_GET_NDPA_BUF_FAIL",
  1078. "TXBFER_DBGID_SEND_NDPA_FAIL",
  1079. "TXBFER_DBGID_GET_NDP_BUF_FAIL",
  1080. "TXBFER_DBGID_SEND_NDP_FAIL",
  1081. "TXBFER_DBGID_GET_BRPOLL_BUF_FAIL",
  1082. "TXBFER_DBGID_SEND_BRPOLL_FAIL",
  1083. "TXBFER_DBGID_HOST_CONFIG_CMDID",
  1084. "TXBFEE_DBGID_HOST_CONFIG_CMDID",
  1085. "TXBFEE_DBGID_ENABLED_ENABLED_UPLOAD_H",
  1086. "TXBFEE_DBGID_UPLOADH_CV_TAG",
  1087. "TXBFEE_DBGID_UPLOADH_H_TAG",
  1088. "TXBFEE_DBGID_CAPTUREH_RECEIVED",
  1089. "TXBFEE_DBGID_PACKET_IS_STEERED",
  1090. "TXBFEE_UPLOADH_EVENT_ALLOC_MEM_FAIL",
  1091. "TXBFEE_DBGID_END",
  1092. },
  1093. { /*BATCH SCAN */
  1094. },
  1095. { /*THERMAL MGR */
  1096. "THERMAL_MGR_DBGID_DEFINITION_START",
  1097. "THERMAL_MGR_NEW_THRESH",
  1098. "THERMAL_MGR_THRESH_CROSSED",
  1099. "THERMAL_MGR_DBGID_DEFINITION END",
  1100. },
  1101. { /* WLAN_MODULE_PHYERR_DFS */
  1102. ""
  1103. },
  1104. {
  1105. /* WLAN_MODULE_RMC */
  1106. "RMC_DBGID_DEFINITION_START",
  1107. "RMC_CREATE_INSTANCE",
  1108. "RMC_DELETE_INSTANCE",
  1109. "RMC_LDR_SEL",
  1110. "RMC_NO_LDR",
  1111. "RMC_LDR_NOT_SEL",
  1112. "RMC_LDR_INF_SENT",
  1113. "RMC_PEER_ADD",
  1114. "RMC_PEER_DELETE",
  1115. "RMC_PEER_UNKNOWN",
  1116. "RMC_SET_MODE",
  1117. "RMC_SET_ACTION_PERIOD",
  1118. "RMC_ACRION_FRAME_RX",
  1119. "RMC_DBGID_DEFINITION_END",
  1120. },
  1121. {
  1122. /* WLAN_MODULE_STATS */
  1123. "WLAN_STATS_DBGID_DEFINITION_START",
  1124. "WLAN_STATS_DBGID_EST_LINKSPEED_VDEV_EN_DIS",
  1125. "WLAN_STATS_DBGID_EST_LINKSPEED_CHAN_TIME_START",
  1126. "WLAN_STATS_DBGID_EST_LINKSPEED_CHAN_TIME_END",
  1127. "WLAN_STATS_DBGID_EST_LINKSPEED_CALC",
  1128. "WLAN_STATS_DBGID_EST_LINKSPEED_UPDATE_HOME_CHAN",
  1129. "WLAN_STATS_DBGID_DEFINITION_END",
  1130. },
  1131. {
  1132. /* WLAN_MODULE_NAN */
  1133. },
  1134. {
  1135. /* WLAN_MODULE_IBSS_PWRSAVE */
  1136. "IBSS_PS_DBGID_DEFINITION_START",
  1137. "IBSS_PS_DBGID_PEER_CREATE",
  1138. "IBSS_PS_DBGID_PEER_DELETE",
  1139. "IBSS_PS_DBGID_VDEV_CREATE",
  1140. "IBSS_PS_DBGID_VDEV_DELETE",
  1141. "IBSS_PS_DBGID_VDEV_EVENT",
  1142. "IBSS_PS_DBGID_PEER_EVENT",
  1143. "IBSS_PS_DBGID_DELIVER_CAB",
  1144. "IBSS_PS_DBGID_DELIVER_UC_DATA",
  1145. "IBSS_PS_DBGID_DELIVER_UC_DATA_ERROR",
  1146. "IBSS_PS_DBGID_UC_INACTIVITY_TMR_RESTART",
  1147. "IBSS_PS_DBGID_MC_INACTIVITY_TMR_RESTART",
  1148. "IBSS_PS_DBGID_NULL_TX_COMPLETION",
  1149. "IBSS_PS_DBGID_ATIM_TIMER_START",
  1150. "IBSS_PS_DBGID_UC_ATIM_SEND",
  1151. "IBSS_PS_DBGID_BC_ATIM_SEND",
  1152. "IBSS_PS_DBGID_UC_TIMEOUT",
  1153. "IBSS_PS_DBGID_PWR_COLLAPSE_ALLOWED",
  1154. "IBSS_PS_DBGID_PWR_COLLAPSE_NOT_ALLOWED",
  1155. "IBSS_PS_DBGID_SET_PARAM",
  1156. "IBSS_PS_DBGID_HOST_TX_PAUSE",
  1157. "IBSS_PS_DBGID_HOST_TX_UNPAUSE",
  1158. "IBSS_PS_DBGID_PS_DESC_BIN_HWM",
  1159. "IBSS_PS_DBGID_PS_DESC_BIN_LWM",
  1160. "IBSS_PS_DBGID_PS_KICKOUT_PEER",
  1161. "IBSS_PS_DBGID_SET_PEER_PARAM",
  1162. "IBSS_PS_DBGID_BCN_ATIM_WIN_MISMATCH",
  1163. "IBSS_PS_DBGID_RX_CHAINMASK_CHANGE",
  1164. },
  1165. {
  1166. /* HIF UART Interface DBGIDs */
  1167. "HIF_UART_DBGID_START",
  1168. "HIF_UART_DBGID_POWER_STATE",
  1169. "HIF_UART_DBGID_TXRX_FLOW",
  1170. "HIF_UART_DBGID_TXRX_CTRL_CHAR",
  1171. "HIF_UART_DBGID_TXRX_BUF_DUMP",
  1172. },
  1173. {
  1174. /* LPI */
  1175. ""
  1176. },
  1177. {
  1178. /* EXTSCAN DBGIDs */
  1179. "EXTSCAN_START",
  1180. "EXTSCAN_STOP",
  1181. "EXTSCAN_CLEAR_ENTRY_CONTENT",
  1182. "EXTSCAN_GET_FREE_ENTRY_SUCCESS",
  1183. "EXTSCAN_GET_FREE_ENTRY_INCONSISTENT",
  1184. "EXTSCAN_GET_FREE_ENTRY_NO_MORE_ENTRIES",
  1185. "EXTSCAN_CREATE_ENTRY_SUCCESS",
  1186. "EXTSCAN_CREATE_ENTRY_ERROR",
  1187. "EXTSCAN_SEARCH_SCAN_ENTRY_QUEUE",
  1188. "EXTSCAN_SEARCH_SCAN_ENTRY_KEY_FOUND",
  1189. "EXTSCAN_SEARCH_SCAN_ENTRY_KEY_NOT_FOUND",
  1190. "EXTSCAN_ADD_ENTRY",
  1191. "EXTSCAN_BUCKET_SEND_OPERATION_EVENT",
  1192. "EXTSCAN_BUCKET_SEND_OPERATION_EVENT_FAILED",
  1193. "EXTSCAN_BUCKET_START_SCAN_CYCLE",
  1194. "EXTSCAN_BUCKET_PERIODIC_TIMER",
  1195. "EXTSCAN_SEND_START_STOP_EVENT",
  1196. "EXTSCAN_NOTIFY_WLAN_CHANGE",
  1197. "EXTSCAN_NOTIFY_WLAN_HOTLIST_MATCH",
  1198. "EXTSCAN_MAIN_RECEIVED_FRAME",
  1199. "EXTSCAN_MAIN_NO_SSID_IE",
  1200. "EXTSCAN_MAIN_MALFORMED_FRAME",
  1201. "EXTSCAN_FIND_BSSID_BY_REFERENCE",
  1202. "EXTSCAN_FIND_BSSID_BY_REFERENCE_ERROR",
  1203. "EXTSCAN_NOTIFY_TABLE_USAGE",
  1204. "EXTSCAN_FOUND_RSSI_ENTRY",
  1205. "EXTSCAN_BSSID_FOUND_RSSI_SAMPLE",
  1206. "EXTSCAN_BSSID_ADDED_RSSI_SAMPLE",
  1207. "EXTSCAN_BSSID_REPLACED_RSSI_SAMPLE",
  1208. "EXTSCAN_BSSID_TRANSFER_CURRENT_SAMPLES",
  1209. "EXTSCAN_BUCKET_PROCESS_SCAN_EVENT",
  1210. "EXTSCAN_BUCKET_CANNOT_FIND_BUCKET",
  1211. "EXTSCAN_START_SCAN_REQUEST_FAILED",
  1212. "EXTSCAN_BUCKET_STOP_CURRENT_SCANS",
  1213. "EXTSCAN_BUCKET_SCAN_STOP_REQUEST",
  1214. "EXTSCAN_BUCKET_PERIODIC_TIMER_ERROR",
  1215. "EXTSCAN_BUCKET_START_OPERATION",
  1216. "EXTSCAN_START_INTERNAL_ERROR",
  1217. "EXTSCAN_NOTIFY_HOTLIST_MATCH",
  1218. "EXTSCAN_CONFIG_HOTLIST_TABLE",
  1219. "EXTSCAN_CONFIG_WLAN_CHANGE_TABLE",
  1220. },
  1221. { /* UNIT_TEST */
  1222. "UNIT_TEST_GEN",
  1223. },
  1224. { /* MLME */
  1225. "MLME_DEBUG_CMN",
  1226. "MLME_IF",
  1227. "MLME_AUTH",
  1228. "MLME_REASSOC",
  1229. "MLME_DEAUTH",
  1230. "MLME_DISASSOC",
  1231. "MLME_ROAM",
  1232. "MLME_RETRY",
  1233. "MLME_TIMER",
  1234. "MLME_FRMPARSE",
  1235. },
  1236. { /*SUPPLICANT */
  1237. "SUPPL_INIT",
  1238. "SUPPL_RECV_EAPOL",
  1239. "SUPPL_RECV_EAPOL_TIMEOUT",
  1240. "SUPPL_SEND_EAPOL",
  1241. "SUPPL_MIC_MISMATCH",
  1242. "SUPPL_FINISH",
  1243. },
  1244. };
  1245. int dbglog_module_log_enable(wmi_unified_t wmi_handle, uint32_t mod_id,
  1246. bool isenable)
  1247. {
  1248. uint32_t val = 0;
  1249. if (mod_id > WLAN_MODULE_ID_MAX) {
  1250. AR_DEBUG_PRINTF(ATH_DEBUG_ERR,
  1251. ("dbglog_module_log_enable: Invalid module id %d\n",
  1252. mod_id));
  1253. return -EINVAL;
  1254. }
  1255. WMI_DBGLOG_SET_MODULE_ID(val, mod_id);
  1256. if (isenable) {
  1257. /* set it to global module level */
  1258. WMI_DBGLOG_SET_LOG_LEVEL(val, DBGLOG_INFO);
  1259. } else {
  1260. /* set it to ERROR level */
  1261. WMI_DBGLOG_SET_LOG_LEVEL(val, DBGLOG_ERR);
  1262. }
  1263. wma_config_debug_module_cmd(wmi_handle, WMI_DEBUG_LOG_PARAM_LOG_LEVEL,
  1264. val, NULL, 0);
  1265. return 0;
  1266. }
  1267. int dbglog_vap_log_enable(wmi_unified_t wmi_handle, uint16_t vap_id,
  1268. bool isenable)
  1269. {
  1270. if (vap_id > DBGLOG_MAX_VDEVID) {
  1271. AR_DEBUG_PRINTF(ATH_DEBUG_ERR,
  1272. ("dbglog_vap_log_enable:Invalid vap_id %d\n",
  1273. vap_id));
  1274. return -EINVAL;
  1275. }
  1276. wma_config_debug_module_cmd(wmi_handle,
  1277. isenable ? WMI_DEBUG_LOG_PARAM_VDEV_ENABLE :
  1278. WMI_DEBUG_LOG_PARAM_VDEV_DISABLE, vap_id,
  1279. NULL, 0);
  1280. return 0;
  1281. }
  1282. int dbglog_set_log_lvl(wmi_unified_t wmi_handle, DBGLOG_LOG_LVL log_lvl)
  1283. {
  1284. uint32_t val = 0;
  1285. if (log_lvl > DBGLOG_LVL_MAX) {
  1286. AR_DEBUG_PRINTF(ATH_DEBUG_ERR,
  1287. ("dbglog_set_log_lvl:Invalid log level %d\n",
  1288. log_lvl));
  1289. return -EINVAL;
  1290. }
  1291. WMI_DBGLOG_SET_MODULE_ID(val, WMI_DEBUG_LOG_MODULE_ALL);
  1292. WMI_DBGLOG_SET_LOG_LEVEL(val, log_lvl);
  1293. wma_config_debug_module_cmd(wmi_handle, WMI_DEBUG_LOG_PARAM_LOG_LEVEL,
  1294. val, NULL, 0);
  1295. return 0;
  1296. }
  1297. int dbglog_set_mod_log_lvl(wmi_unified_t wmi_handle, uint32_t mod_log_lvl)
  1298. {
  1299. /* set the global module level to log_lvl */
  1300. wma_config_debug_module_cmd(wmi_handle, WMI_DEBUG_LOG_PARAM_LOG_LEVEL,
  1301. mod_log_lvl, NULL, 0);
  1302. return 0;
  1303. }
  1304. void
  1305. dbglog_set_vap_enable_bitmap(wmi_unified_t wmi_handle,
  1306. uint32_t vap_enable_bitmap)
  1307. {
  1308. wma_config_debug_module_cmd(wmi_handle,
  1309. WMI_DEBUG_LOG_PARAM_VDEV_ENABLE_BITMAP,
  1310. vap_enable_bitmap, NULL, 0);
  1311. }
  1312. void
  1313. dbglog_set_mod_enable_bitmap(wmi_unified_t wmi_handle, uint32_t log_level,
  1314. uint32_t *mod_enable_bitmap, uint32_t bitmap_len)
  1315. {
  1316. wma_config_debug_module_cmd(wmi_handle,
  1317. WMI_DEBUG_LOG_PARAM_MOD_ENABLE_BITMAP,
  1318. log_level, mod_enable_bitmap, bitmap_len);
  1319. }
  1320. int dbglog_report_enable(wmi_unified_t wmi_handle, bool isenable)
  1321. {
  1322. int bitmap[2] = { 0 };
  1323. if (isenable) {
  1324. /* set the vap enable bitmap */
  1325. dbglog_set_vap_enable_bitmap(wmi_handle, 0xFFFF);
  1326. bitmap[0] = 0xFFFFFFFF;
  1327. bitmap[1] = 0x1F;
  1328. /* set the module level bitmap */
  1329. dbglog_set_mod_enable_bitmap(wmi_handle, 0x0, bitmap, 2);
  1330. } else {
  1331. dbglog_set_vap_enable_bitmap(wmi_handle, bitmap[0]);
  1332. dbglog_set_mod_enable_bitmap(wmi_handle, DBGLOG_LVL_MAX, bitmap,
  1333. 2);
  1334. }
  1335. return 0;
  1336. }
  1337. static char *dbglog_get_msg(uint32_t moduleid, uint32_t debugid)
  1338. {
  1339. static char unknown_str[64];
  1340. if (moduleid < WLAN_MODULE_ID_MAX && debugid < MAX_DBG_MSGS) {
  1341. char *str = DBG_MSG_ARR[moduleid][debugid];
  1342. if (str && str[0] != '\0')
  1343. return str;
  1344. }
  1345. snprintf(unknown_str, sizeof(unknown_str),
  1346. "UNKNOWN %u:%u", moduleid, debugid);
  1347. return unknown_str;
  1348. }
  1349. static
  1350. void dbglog_printf(uint32_t timestamp, uint16_t vap_id, const char *fmt, ...)
  1351. {
  1352. char buf[128];
  1353. va_list ap;
  1354. if (vap_id < DBGLOG_MAX_VDEVID) {
  1355. AR_DEBUG_PRINTF(ATH_DEBUG_INFO,
  1356. (DBGLOG_PRINT_PREFIX "[%u] vap-%u ", timestamp,
  1357. vap_id));
  1358. } else {
  1359. AR_DEBUG_PRINTF(ATH_DEBUG_INFO,
  1360. (DBGLOG_PRINT_PREFIX "[%u] ", timestamp));
  1361. }
  1362. va_start(ap, fmt);
  1363. vsnprintf(buf, sizeof(buf), fmt, ap);
  1364. va_end(ap);
  1365. AR_DEBUG_PRINTF(ATH_DEBUG_INFO, ("%s\n", buf));
  1366. }
  1367. static void
  1368. dbglog_printf_no_line_break(uint32_t timestamp,
  1369. uint16_t vap_id, const char *fmt, ...)
  1370. {
  1371. char buf[128];
  1372. va_list ap;
  1373. if (vap_id < DBGLOG_MAX_VDEVID) {
  1374. AR_DEBUG_PRINTF(ATH_DEBUG_INFO,
  1375. (DBGLOG_PRINT_PREFIX "[%u] vap-%u ", timestamp,
  1376. vap_id));
  1377. } else {
  1378. AR_DEBUG_PRINTF(ATH_DEBUG_INFO,
  1379. (DBGLOG_PRINT_PREFIX "[%u] ", timestamp));
  1380. }
  1381. va_start(ap, fmt);
  1382. vsnprintf(buf, sizeof(buf), fmt, ap);
  1383. va_end(ap);
  1384. AR_DEBUG_PRINTF(ATH_DEBUG_INFO, ("%s", buf));
  1385. }
  1386. #define USE_NUMERIC 0
  1387. static A_BOOL
  1388. dbglog_default_print_handler(uint32_t mod_id, uint16_t vap_id, uint32_t dbg_id,
  1389. uint32_t timestamp, uint16_t numargs,
  1390. uint32_t *args)
  1391. {
  1392. int i;
  1393. if (vap_id < DBGLOG_MAX_VDEVID) {
  1394. AR_DEBUG_PRINTF(ATH_DEBUG_INFO,
  1395. (DBGLOG_PRINT_PREFIX "[%u] vap-%u %s ( ",
  1396. timestamp, vap_id, dbglog_get_msg(mod_id,
  1397. dbg_id)));
  1398. } else {
  1399. AR_DEBUG_PRINTF(ATH_DEBUG_INFO,
  1400. (DBGLOG_PRINT_PREFIX "[%u] %s ( ", timestamp,
  1401. dbglog_get_msg(mod_id, dbg_id)));
  1402. }
  1403. for (i = 0; i < numargs; i++) {
  1404. #if USE_NUMERIC
  1405. AR_DEBUG_PRINTF(ATH_DEBUG_INFO, ("%u", args[i]));
  1406. #else
  1407. AR_DEBUG_PRINTF(ATH_DEBUG_INFO, ("%#x", args[i]));
  1408. #endif
  1409. if ((i + 1) < numargs) {
  1410. AR_DEBUG_PRINTF(ATH_DEBUG_INFO, (", "));
  1411. }
  1412. }
  1413. AR_DEBUG_PRINTF(ATH_DEBUG_INFO, (" )\n"));
  1414. return true;
  1415. }
  1416. #define DBGLOG_PARSE_ARGS_STRING_LENGTH (DBGLOG_NUM_ARGS_MAX * 11 + 10)
  1417. static int dbglog_print_raw_data(uint32_t *buffer, uint32_t length)
  1418. {
  1419. uint32_t timestamp;
  1420. uint32_t debugid;
  1421. uint32_t moduleid;
  1422. uint16_t numargs, curArgs;
  1423. uint32_t count = 0, totalWriteLen, writeLen;
  1424. char parseArgsString[DBGLOG_PARSE_ARGS_STRING_LENGTH];
  1425. char *dbgidString;
  1426. while ((count + 1) < length) {
  1427. debugid = DBGLOG_GET_DBGID(buffer[count + 1]);
  1428. moduleid = DBGLOG_GET_MODULEID(buffer[count + 1]);
  1429. numargs = DBGLOG_GET_NUMARGS(buffer[count + 1]);
  1430. timestamp = DBGLOG_GET_TIME_STAMP(buffer[count]);
  1431. if (moduleid < WLAN_MODULE_ID_MAX && debugid < MAX_DBG_MSGS
  1432. && numargs <= DBGLOG_NUM_ARGS_MAX) {
  1433. OS_MEMZERO(parseArgsString, sizeof(parseArgsString));
  1434. totalWriteLen = 0;
  1435. if (!numargs || (count + numargs + 2 > length))
  1436. goto skip_args_processing;
  1437. for (curArgs = 0; curArgs < numargs; curArgs++) {
  1438. /*
  1439. * Using sprintf_s instead of sprintf,
  1440. * to avoid length overflow
  1441. */
  1442. writeLen =
  1443. snprintf(parseArgsString + totalWriteLen,
  1444. DBGLOG_PARSE_ARGS_STRING_LENGTH -
  1445. totalWriteLen, "%x ",
  1446. buffer[count + 2 + curArgs]);
  1447. totalWriteLen += writeLen;
  1448. }
  1449. skip_args_processing:
  1450. if (debugid < MAX_DBG_MSGS) {
  1451. dbgidString = DBG_MSG_ARR[moduleid][debugid];
  1452. if (dbgidString != NULL) {
  1453. AR_DEBUG_PRINTF(ATH_DEBUG_INFO,
  1454. ("fw:%s(%x %x):%s\n",
  1455. dbgidString, timestamp,
  1456. buffer[count + 1],
  1457. parseArgsString));
  1458. } else {
  1459. /* host need sync with FW id */
  1460. AR_DEBUG_PRINTF(ATH_DEBUG_INFO,
  1461. ("fw:%s:m:%x,id:%x(%x %x):%s\n",
  1462. "UNKNOWN", moduleid,
  1463. debugid, timestamp,
  1464. buffer[count + 1],
  1465. parseArgsString));
  1466. }
  1467. } else if (debugid ==
  1468. DBGLOG_DBGID_SM_FRAMEWORK_PROXY_DBGLOG_MSG) {
  1469. /* specific debugid */
  1470. AR_DEBUG_PRINTF(ATH_DEBUG_INFO,
  1471. ("fw:%s:m:%x,id:%x(%x %x):%s\n",
  1472. "DBGLOG_SM_MSG", moduleid,
  1473. debugid, timestamp,
  1474. buffer[count + 1],
  1475. parseArgsString));
  1476. } else {
  1477. AR_DEBUG_PRINTF(ATH_DEBUG_INFO,
  1478. ("fw:%s:m:%x,id:%x(%x %x):%s\n",
  1479. "UNKNOWN", moduleid, debugid,
  1480. timestamp, buffer[count + 1],
  1481. parseArgsString));
  1482. }
  1483. }
  1484. /* 32 bit Time stamp + 32 bit Dbg header */
  1485. count += numargs + 2;
  1486. }
  1487. return 0;
  1488. }
  1489. #ifdef WLAN_OPEN_SOURCE
  1490. static int
  1491. dbglog_debugfs_raw_data(wmi_unified_t wmi_handle, const uint8_t *buf,
  1492. uint32_t length, uint32_t dropped)
  1493. {
  1494. struct fwdebug *fwlog = (struct fwdebug *)&wmi_handle->dbglog;
  1495. struct dbglog_slot *slot;
  1496. struct sk_buff *skb;
  1497. size_t slot_len;
  1498. if (WARN_ON(length > ATH6KL_FWLOG_PAYLOAD_SIZE))
  1499. return -ENODEV;
  1500. slot_len = sizeof(*slot) + ATH6KL_FWLOG_PAYLOAD_SIZE;
  1501. skb = alloc_skb(slot_len, GFP_KERNEL);
  1502. if (!skb)
  1503. return -ENOMEM;
  1504. slot = (struct dbglog_slot *)skb_put(skb, slot_len);
  1505. slot->diag_type = (uint32_t) DIAG_TYPE_FW_DEBUG_MSG;
  1506. slot->timestamp = cpu_to_le32(jiffies);
  1507. slot->length = cpu_to_le32(length);
  1508. slot->dropped = cpu_to_le32(dropped);
  1509. memcpy(slot->payload, buf, length);
  1510. /* Need to pad each record to fixed length ATH6KL_FWLOG_PAYLOAD_SIZE */
  1511. memset(slot->payload + length, 0, ATH6KL_FWLOG_PAYLOAD_SIZE - length);
  1512. spin_lock(&fwlog->fwlog_queue.lock);
  1513. __skb_queue_tail(&fwlog->fwlog_queue, skb);
  1514. complete(&fwlog->fwlog_completion);
  1515. /* drop oldest entries */
  1516. while (skb_queue_len(&fwlog->fwlog_queue) > ATH6KL_FWLOG_MAX_ENTRIES) {
  1517. skb = __skb_dequeue(&fwlog->fwlog_queue);
  1518. kfree_skb(skb);
  1519. }
  1520. spin_unlock(&fwlog->fwlog_queue.lock);
  1521. return true;
  1522. }
  1523. #endif /* WLAN_OPEN_SOURCE */
  1524. /**
  1525. * nl_srv_bcast_fw_logs() - Wrapper func to send bcast msgs to FW logs mcast grp
  1526. * @skb: sk buffer pointer
  1527. *
  1528. * Sends the bcast message to FW logs multicast group with generic nl socket
  1529. * if CNSS_GENL is enabled. Else, use the legacy netlink socket to send.
  1530. *
  1531. * Return: zero on success, error code otherwise
  1532. */
  1533. static int nl_srv_bcast_fw_logs(struct sk_buff *skb)
  1534. {
  1535. #ifdef CNSS_GENL
  1536. return nl_srv_bcast(skb, CLD80211_MCGRP_FW_LOGS, WLAN_NL_MSG_CNSS_DIAG);
  1537. #else
  1538. return nl_srv_bcast(skb);
  1539. #endif
  1540. }
  1541. /**
  1542. * send_fw_diag_nl_data - pack the data from fw diag event handler
  1543. * @buffer: buffer of diag event
  1544. * @len: length of the diag event
  1545. * @event: the even type
  1546. *
  1547. * return: 0 if sent successfully, otherwise error code
  1548. */
  1549. static int send_fw_diag_nl_data(const uint8_t *buffer, uint32_t len,
  1550. uint32_t event_type)
  1551. {
  1552. struct sk_buff *skb_out;
  1553. struct nlmsghdr *nlh;
  1554. int res = 0;
  1555. tAniNlHdr *wnl;
  1556. int radio;
  1557. int msg_len;
  1558. if (WARN_ON(len > ATH6KL_FWLOG_PAYLOAD_SIZE))
  1559. return -ENODEV;
  1560. if (nl_srv_is_initialized() != 0)
  1561. return -EIO;
  1562. radio = cds_get_radio_index();
  1563. if (radio == -EINVAL)
  1564. return -EIO;
  1565. if (cds_is_multicast_logging()) {
  1566. msg_len = len + sizeof(radio);
  1567. skb_out = nlmsg_new(msg_len, GFP_KERNEL);
  1568. if (!skb_out) {
  1569. AR_DEBUG_PRINTF(ATH_DEBUG_ERR,
  1570. ("Failed to allocate new skb\n"));
  1571. return -ENOMEM;
  1572. }
  1573. nlh = nlmsg_put(skb_out, 0, 0, WLAN_NL_MSG_CNSS_DIAG, msg_len,
  1574. 0);
  1575. if (!nlh) {
  1576. kfree_skb(skb_out);
  1577. return -EMSGSIZE;
  1578. }
  1579. wnl = (tAniNlHdr *)nlh;
  1580. wnl->radio = radio;
  1581. /* data buffer offset from nlmsg_hdr + sizeof(int) radio */
  1582. memcpy(nlmsg_data(nlh) + sizeof(radio), buffer, len);
  1583. res = nl_srv_bcast_fw_logs(skb_out);
  1584. if ((res < 0) && (res != -ESRCH)) {
  1585. AR_DEBUG_PRINTF(ATH_DEBUG_RSVD1,
  1586. ("%s: nl_srv_bcast_fw_logs failed 0x%x\n",
  1587. __func__, res));
  1588. return res;
  1589. }
  1590. }
  1591. return res;
  1592. }
  1593. /**
  1594. * process_fw_diag_event_data() - process diag events and fw messages
  1595. * @datap: data to be processed
  1596. * @num_data: number of data chunks
  1597. *
  1598. * return: success
  1599. */
  1600. static int
  1601. process_fw_diag_event_data(uint8_t *datap, uint32_t num_data)
  1602. {
  1603. uint32_t diag_type;
  1604. uint32_t nl_data_len; /* diag hdr + payload */
  1605. uint32_t diag_data_len; /* each fw diag payload */
  1606. struct wlan_diag_data *diag_data;
  1607. while (num_data > 0) {
  1608. diag_data = (struct wlan_diag_data *)datap;
  1609. diag_type = WLAN_DIAG_0_TYPE_GET(diag_data->word0);
  1610. diag_data_len = WLAN_DIAG_0_LEN_GET(diag_data->word0);
  1611. /* Length of diag struct and len of payload */
  1612. nl_data_len = sizeof(struct wlan_diag_data) + diag_data_len;
  1613. if (nl_data_len > num_data) {
  1614. AR_DEBUG_PRINTF(ATH_DEBUG_INFO,
  1615. ("processed all the messages\n"));
  1616. return 0;
  1617. }
  1618. switch (diag_type) {
  1619. case DIAG_TYPE_FW_EVENT:
  1620. return send_fw_diag_nl_data(datap, nl_data_len,
  1621. diag_type);
  1622. break;
  1623. case DIAG_TYPE_FW_LOG:
  1624. return send_fw_diag_nl_data(datap, nl_data_len,
  1625. diag_type);
  1626. break;
  1627. }
  1628. /* Move to the next event and send to cnss-diag */
  1629. datap += nl_data_len;
  1630. num_data -= nl_data_len;
  1631. }
  1632. return 0;
  1633. }
  1634. static int
  1635. send_diag_netlink_data(const uint8_t *buffer, uint32_t len, uint32_t cmd)
  1636. {
  1637. struct sk_buff *skb_out;
  1638. struct nlmsghdr *nlh;
  1639. int res = 0;
  1640. struct dbglog_slot *slot;
  1641. size_t slot_len;
  1642. tAniNlHdr *wnl;
  1643. int radio;
  1644. if (WARN_ON(len > ATH6KL_FWLOG_PAYLOAD_SIZE))
  1645. return -ENODEV;
  1646. if (nl_srv_is_initialized() != 0)
  1647. return -EIO;
  1648. radio = cds_get_radio_index();
  1649. if (radio == -EINVAL)
  1650. return -EIO;
  1651. if (cds_is_multicast_logging()) {
  1652. slot_len = sizeof(*slot) + ATH6KL_FWLOG_PAYLOAD_SIZE +
  1653. sizeof(radio);
  1654. skb_out = nlmsg_new(slot_len, GFP_KERNEL);
  1655. if (!skb_out) {
  1656. AR_DEBUG_PRINTF(ATH_DEBUG_ERR,
  1657. ("Failed to allocate new skb\n"));
  1658. return A_ERROR;
  1659. }
  1660. nlh = nlmsg_put(skb_out, 0, 0, WLAN_NL_MSG_CNSS_DIAG,
  1661. slot_len, 0);
  1662. if (!nlh) {
  1663. kfree_skb(skb_out);
  1664. return -EMSGSIZE;
  1665. }
  1666. wnl = (tAniNlHdr *)nlh;
  1667. wnl->radio = radio;
  1668. /* data buffer offset from: nlmsg_hdr + sizeof(int) radio */
  1669. slot = (struct dbglog_slot *) (nlmsg_data(nlh) + sizeof(radio));
  1670. slot->diag_type = cmd;
  1671. slot->timestamp = cpu_to_le32(jiffies);
  1672. slot->length = cpu_to_le32(len);
  1673. /* Version mapped to get_version here */
  1674. slot->dropped = get_version;
  1675. memcpy(slot->payload, buffer, len);
  1676. res = nl_srv_bcast_fw_logs(skb_out);
  1677. if ((res < 0) && (res != -ESRCH)) {
  1678. AR_DEBUG_PRINTF(ATH_DEBUG_RSVD1,
  1679. ("%s: nl_srv_bcast_fw_logs failed 0x%x\n",
  1680. __func__, res));
  1681. return res;
  1682. }
  1683. }
  1684. return res;
  1685. }
  1686. static int
  1687. dbglog_process_netlink_data(wmi_unified_t wmi_handle, const uint8_t *buffer,
  1688. uint32_t len, uint32_t dropped)
  1689. {
  1690. struct sk_buff *skb_out;
  1691. struct nlmsghdr *nlh;
  1692. int res = 0;
  1693. struct dbglog_slot *slot;
  1694. size_t slot_len;
  1695. tAniNlHdr *wnl;
  1696. int radio;
  1697. if (WARN_ON(len > ATH6KL_FWLOG_PAYLOAD_SIZE))
  1698. return -ENODEV;
  1699. if (nl_srv_is_initialized() != 0)
  1700. return -EIO;
  1701. radio = cds_get_radio_index();
  1702. if (radio == -EINVAL)
  1703. return -EIO;
  1704. if (cds_is_multicast_logging()) {
  1705. slot_len = sizeof(*slot) + ATH6KL_FWLOG_PAYLOAD_SIZE +
  1706. sizeof(radio);
  1707. skb_out = nlmsg_new(slot_len, GFP_KERNEL);
  1708. if (!skb_out) {
  1709. AR_DEBUG_PRINTF(ATH_DEBUG_ERR,
  1710. ("Failed to allocate new skb\n"));
  1711. return A_ERROR;
  1712. }
  1713. nlh = nlmsg_put(skb_out, 0, 0, WLAN_NL_MSG_CNSS_DIAG,
  1714. slot_len, 0);
  1715. if (!nlh) {
  1716. kfree_skb(skb_out);
  1717. return -EMSGSIZE;
  1718. }
  1719. wnl = (tAniNlHdr *)nlh;
  1720. wnl->radio = radio;
  1721. /* data buffer offset from: nlmsg_hdr + sizeof(int) radio */
  1722. slot = (struct dbglog_slot *) (nlmsg_data(nlh) + sizeof(radio));
  1723. slot->diag_type = (uint32_t) DIAG_TYPE_FW_DEBUG_MSG;
  1724. slot->timestamp = cpu_to_le32(jiffies);
  1725. slot->length = cpu_to_le32(len);
  1726. slot->dropped = cpu_to_le32(dropped);
  1727. memcpy(slot->payload, buffer, len);
  1728. res = nl_srv_bcast_fw_logs(skb_out);
  1729. if ((res < 0) && (res != -ESRCH)) {
  1730. AR_DEBUG_PRINTF(ATH_DEBUG_RSVD1,
  1731. ("%s: nl_srv_bcast_fw_logs failed 0x%x\n",
  1732. __func__, res));
  1733. return res;
  1734. }
  1735. }
  1736. return res;
  1737. }
  1738. /*
  1739. * WMI diag data event handler, this function invoked as a CB
  1740. * when there DIAG_EVENT, DIAG_MSG, DIAG_DBG to be
  1741. * forwarded from the FW. This is the new implementation for
  1742. * replacement of fw_dbg and dbg messages
  1743. */
  1744. static int diag_fw_handler(ol_scn_t scn, uint8_t *data, uint32_t datalen)
  1745. {
  1746. tp_wma_handle wma = (tp_wma_handle) scn;
  1747. WMI_DIAG_EVENTID_param_tlvs *param_buf;
  1748. uint8_t *datap;
  1749. uint32_t len = 0;
  1750. uint32_t *buffer;
  1751. if (!wma) {
  1752. AR_DEBUG_PRINTF(ATH_DEBUG_ERR, ("NULL Pointer assigned\n"));
  1753. return A_ERROR;
  1754. }
  1755. /* when fw asser occurs,host can't use TLV format. */
  1756. if (wma->is_fw_assert) {
  1757. datap = data;
  1758. len = datalen;
  1759. wma->is_fw_assert = 0;
  1760. } else {
  1761. param_buf = (WMI_DIAG_EVENTID_param_tlvs *) data;
  1762. if (!param_buf) {
  1763. AR_DEBUG_PRINTF(ATH_DEBUG_ERR,
  1764. ("Get NULL point message from FW\n"));
  1765. return A_ERROR;
  1766. }
  1767. datap = param_buf->bufp;
  1768. len = param_buf->num_bufp;
  1769. if (!get_version) {
  1770. if (len < 2*(sizeof(uint32_t))) {
  1771. AR_DEBUG_PRINTF(ATH_DEBUG_ERR,
  1772. ("len is less than expected\n"));
  1773. return A_ERROR;
  1774. }
  1775. buffer = (uint32_t *) datap;
  1776. buffer++; /* skip offset */
  1777. if (WLAN_DIAG_TYPE_CONFIG == DIAG_GET_TYPE(*buffer)) {
  1778. if (len < 3*(sizeof(uint32_t))) {
  1779. AR_DEBUG_PRINTF(ATH_DEBUG_ERR,
  1780. ("len is less than expected\n"));
  1781. return A_ERROR;
  1782. }
  1783. buffer++; /* skip */
  1784. if (DIAG_VERSION_INFO == DIAG_GET_ID(*buffer)) {
  1785. if (len < 4*(sizeof(uint32_t))) {
  1786. AR_DEBUG_PRINTF(ATH_DEBUG_ERR,
  1787. ("len is less than expected\n"));
  1788. return A_ERROR;
  1789. }
  1790. buffer++; /* skip */
  1791. /* get payload */
  1792. get_version = *buffer;
  1793. }
  1794. }
  1795. }
  1796. }
  1797. if (dbglog_process_type == DBGLOG_PROCESS_PRINT_RAW) {
  1798. if (!gprint_limiter) {
  1799. AR_DEBUG_PRINTF(ATH_DEBUG_ERR,
  1800. ("NOT Supported only supports net link socket\n"));
  1801. gprint_limiter = true;
  1802. }
  1803. return 0;
  1804. }
  1805. if (dbglog_process_type == DBGLOG_PROCESS_NET_RAW) {
  1806. return send_diag_netlink_data((uint8_t *) datap,
  1807. len, DIAG_TYPE_FW_MSG);
  1808. }
  1809. #ifdef WLAN_OPEN_SOURCE
  1810. if (dbglog_process_type == DBGLOG_PROCESS_POOL_RAW) {
  1811. if (!gprint_limiter) {
  1812. AR_DEBUG_PRINTF(ATH_DEBUG_ERR,
  1813. ("NOT Supported only supports net link socket\n"));
  1814. gprint_limiter = true;
  1815. }
  1816. return 0;
  1817. }
  1818. #endif /* WLAN_OPEN_SOURCE */
  1819. if (!gprint_limiter) {
  1820. AR_DEBUG_PRINTF(ATH_DEBUG_ERR,
  1821. ("NOT Supported only supports net link socket\n"));
  1822. gprint_limiter = true;
  1823. }
  1824. /* Always returns zero */
  1825. return 0;
  1826. }
  1827. /*
  1828. * WMI diag data event handler, this function invoked as a CB
  1829. * when there DIAG_DATA to be forwarded from the FW.
  1830. */
  1831. static int
  1832. fw_diag_data_event_handler(ol_scn_t scn, uint8_t *data, uint32_t datalen)
  1833. {
  1834. WMI_DIAG_DATA_CONTAINER_EVENTID_param_tlvs *param_buf;
  1835. uint8_t *datap;
  1836. uint32_t num_data; /* Total events */
  1837. param_buf = (WMI_DIAG_DATA_CONTAINER_EVENTID_param_tlvs *) data;
  1838. if (!param_buf) {
  1839. AR_DEBUG_PRINTF(ATH_DEBUG_ERR,
  1840. ("Got NULL point message from FW\n"));
  1841. return A_ERROR;
  1842. }
  1843. num_data = param_buf->num_bufp;
  1844. datap = (uint8_t *) param_buf->bufp;
  1845. return process_fw_diag_event_data(datap, num_data);
  1846. }
  1847. int dbglog_parse_debug_logs(ol_scn_t scn, uint8_t *data, uint32_t datalen)
  1848. {
  1849. tp_wma_handle wma = (tp_wma_handle) scn;
  1850. uint32_t count;
  1851. uint32_t *buffer;
  1852. uint32_t timestamp;
  1853. uint32_t debugid;
  1854. uint32_t moduleid;
  1855. uint16_t vapid;
  1856. uint16_t numargs;
  1857. qdf_size_t length;
  1858. uint32_t dropped;
  1859. WMI_DEBUG_MESG_EVENTID_param_tlvs *param_buf;
  1860. uint8_t *datap;
  1861. uint32_t len;
  1862. if (!wma) {
  1863. AR_DEBUG_PRINTF(ATH_DEBUG_ERR, ("NULL Pointer assigned\n"));
  1864. return A_ERROR;
  1865. }
  1866. /*when fw asser occurs,host can't use TLV format. */
  1867. if (wma->is_fw_assert) {
  1868. datap = data;
  1869. len = datalen;
  1870. wma->is_fw_assert = 0;
  1871. } else {
  1872. param_buf = (WMI_DEBUG_MESG_EVENTID_param_tlvs *) data;
  1873. if (!param_buf) {
  1874. AR_DEBUG_PRINTF(ATH_DEBUG_ERR,
  1875. ("Get NULL point message from FW\n"));
  1876. return A_ERROR;
  1877. }
  1878. datap = param_buf->bufp;
  1879. len = param_buf->num_bufp;
  1880. }
  1881. if (len < sizeof(dropped)) {
  1882. AR_DEBUG_PRINTF(ATH_DEBUG_ERR, ("Invalid length\n"));
  1883. return A_ERROR;
  1884. }
  1885. dropped = *((uint32_t *) datap);
  1886. if (dropped > 0) {
  1887. AR_DEBUG_PRINTF(ATH_DEBUG_TRC,
  1888. ("%d log buffers are dropped\n", dropped));
  1889. }
  1890. datap += sizeof(dropped);
  1891. len -= sizeof(dropped);
  1892. count = 0;
  1893. buffer = (uint32_t *) datap;
  1894. length = (len >> 2);
  1895. if (dbglog_process_type == DBGLOG_PROCESS_PRINT_RAW)
  1896. return dbglog_print_raw_data(buffer, length);
  1897. if (dbglog_process_type == DBGLOG_PROCESS_NET_RAW) {
  1898. return dbglog_process_netlink_data((wmi_unified_t) wma->
  1899. wmi_handle,
  1900. (uint8_t *) buffer,
  1901. len, dropped);
  1902. }
  1903. #ifdef WLAN_OPEN_SOURCE
  1904. if (dbglog_process_type == DBGLOG_PROCESS_POOL_RAW) {
  1905. return dbglog_debugfs_raw_data((wmi_unified_t) wma->wmi_handle,
  1906. (uint8_t *) buffer, len,
  1907. dropped);
  1908. }
  1909. #endif /* WLAN_OPEN_SOURCE */
  1910. while ((count + 2) < length) {
  1911. timestamp = DBGLOG_GET_TIME_STAMP(buffer[count]);
  1912. debugid = DBGLOG_GET_DBGID(buffer[count + 1]);
  1913. moduleid = DBGLOG_GET_MODULEID(buffer[count + 1]);
  1914. vapid = DBGLOG_GET_VDEVID(buffer[count + 1]);
  1915. numargs = DBGLOG_GET_NUMARGS(buffer[count + 1]);
  1916. if ((count + 2 + numargs) > length)
  1917. return A_OK;
  1918. if (moduleid >= WLAN_MODULE_ID_MAX)
  1919. return A_OK;
  1920. if (mod_print[moduleid] == NULL) {
  1921. /*
  1922. * No module specific log registered
  1923. * use the default handler
  1924. */
  1925. dbglog_default_print_handler(moduleid, vapid, debugid,
  1926. timestamp, numargs,
  1927. (((uint32_t *) buffer) +
  1928. 2 + count));
  1929. } else {
  1930. if (!(mod_print[moduleid](moduleid, vapid, debugid,
  1931. timestamp, numargs,
  1932. (((uint32_t *) buffer) +
  1933. 2 + count)))) {
  1934. /*
  1935. * The message is not handled
  1936. * by the module specific handler
  1937. */
  1938. dbglog_default_print_handler(moduleid, vapid,
  1939. debugid, timestamp,
  1940. numargs,
  1941. (((uint32_t *)
  1942. buffer) + 2 +
  1943. count));
  1944. }
  1945. }
  1946. /* 32 bit Time stamp + 32 bit Dbg header */
  1947. count += numargs + 2;
  1948. }
  1949. /* Always returns zero */
  1950. return A_OK;
  1951. }
  1952. void dbglog_reg_modprint(uint32_t mod_id, module_dbg_print printfn)
  1953. {
  1954. if (!mod_print[mod_id]) {
  1955. mod_print[mod_id] = printfn;
  1956. } else {
  1957. AR_DEBUG_PRINTF(ATH_DEBUG_INFO,
  1958. ("module print is already registered for this module %d\n",
  1959. mod_id));
  1960. }
  1961. }
  1962. static void
  1963. dbglog_sm_print(uint32_t timestamp,
  1964. uint16_t vap_id,
  1965. uint16_t numargs,
  1966. uint32_t *args,
  1967. const char *module_prefix,
  1968. const char *const states[], uint32_t num_states,
  1969. const char *const events[], uint32_t num_events)
  1970. {
  1971. uint8_t type, arg1, arg2, arg3;
  1972. uint32_t extra, extra2, extra3;
  1973. if (numargs != 4)
  1974. return;
  1975. type = (args[0] >> 24) & 0xff;
  1976. arg1 = (args[0] >> 16) & 0xff;
  1977. arg2 = (args[0] >> 8) & 0xff;
  1978. arg3 = (args[0] >> 0) & 0xff;
  1979. extra = args[1];
  1980. extra2 = args[2];
  1981. extra3 = args[3];
  1982. switch (type) {
  1983. case 0: /* state transition */
  1984. if (arg1 < num_states && arg2 < num_states) {
  1985. dbglog_printf(timestamp, vap_id,
  1986. "%s: %s => %s (%#x, %#x, %#x)",
  1987. module_prefix, states[arg1], states[arg2],
  1988. extra, extra2, extra3);
  1989. } else {
  1990. dbglog_printf(timestamp, vap_id,
  1991. "%s: %u => %u (%#x, %#x, %#x)",
  1992. module_prefix, arg1, arg2, extra, extra2,
  1993. extra3);
  1994. }
  1995. break;
  1996. case 1: /* dispatch event */
  1997. if (arg1 < num_states && arg2 < num_events) {
  1998. dbglog_printf(timestamp, vap_id,
  1999. "%s: %s < %s (%#x, %#x, %#x)",
  2000. module_prefix, states[arg1], events[arg2],
  2001. extra, extra2, extra3);
  2002. } else {
  2003. dbglog_printf(timestamp, vap_id,
  2004. "%s: %u < %u (%#x, %#x, %#x)",
  2005. module_prefix, arg1, arg2, extra, extra2,
  2006. extra3);
  2007. }
  2008. break;
  2009. case 2: /* warning */
  2010. switch (arg1) {
  2011. case 0: /* unhandled event */
  2012. if (arg2 < num_states && arg3 < num_events) {
  2013. dbglog_printf(timestamp, vap_id,
  2014. "%s: unhandled event %s in state %s (%#x, %#x, %#x)",
  2015. module_prefix, events[arg3],
  2016. states[arg2], extra, extra2,
  2017. extra3);
  2018. } else {
  2019. dbglog_printf(timestamp, vap_id,
  2020. "%s: unhandled event %u in state %u (%#x, %#x, %#x)",
  2021. module_prefix, arg3, arg2, extra,
  2022. extra2, extra3);
  2023. }
  2024. break;
  2025. default:
  2026. break;
  2027. }
  2028. break;
  2029. }
  2030. }
  2031. static A_BOOL
  2032. dbglog_sta_powersave_print_handler(uint32_t mod_id,
  2033. uint16_t vap_id,
  2034. uint32_t dbg_id,
  2035. uint32_t timestamp,
  2036. uint16_t numargs, uint32_t *args)
  2037. {
  2038. static const char *const states[] = {
  2039. "IDLE",
  2040. "ACTIVE",
  2041. "SLEEP_TXQ_FLUSH",
  2042. "SLEEP_TX_SENT",
  2043. "PAUSE",
  2044. "SLEEP_DOZE",
  2045. "SLEEP_AWAKE",
  2046. "ACTIVE_TXQ_FLUSH",
  2047. "ACTIVE_TX_SENT",
  2048. "PAUSE_TXQ_FLUSH",
  2049. "PAUSE_TX_SENT",
  2050. "IDLE_TXQ_FLUSH",
  2051. "IDLE_TX_SENT",
  2052. };
  2053. static const char *const events[] = {
  2054. "START",
  2055. "STOP",
  2056. "PAUSE",
  2057. "UNPAUSE",
  2058. "TIM",
  2059. "DTIM",
  2060. "SEND_COMPLETE",
  2061. "PRE_SEND",
  2062. "RX",
  2063. "HWQ_EMPTY",
  2064. "PAUSE_TIMEOUT",
  2065. "TXRX_INACTIVITY_TIMEOUT",
  2066. "PSPOLL_TIMEOUT",
  2067. "UAPSD_TIMEOUT",
  2068. "DELAYED_SLEEP_TIMEOUT",
  2069. "SEND_N_COMPLETE",
  2070. "TIDQ_PAUSE_COMPLETE",
  2071. "SEND_PSPOLL",
  2072. "SEND_SPEC_PSPOLL",
  2073. };
  2074. switch (dbg_id) {
  2075. case DBGLOG_DBGID_SM_FRAMEWORK_PROXY_DBGLOG_MSG:
  2076. dbglog_sm_print(timestamp, vap_id, numargs, args, "STA PS",
  2077. states, QDF_ARRAY_SIZE(states), events,
  2078. QDF_ARRAY_SIZE(events));
  2079. break;
  2080. case PS_STA_PM_ARB_REQUEST:
  2081. if (numargs == 4) {
  2082. dbglog_printf(timestamp, vap_id,
  2083. "PM ARB request flags=%x, last_time=%x %s: %s",
  2084. args[1], args[2],
  2085. dbglog_get_module_str(args[0]),
  2086. args[3] ? "SLEEP" : "WAKE");
  2087. }
  2088. break;
  2089. case PS_STA_DELIVER_EVENT:
  2090. if (numargs == 2) {
  2091. dbglog_printf(timestamp, vap_id, "STA PS: %s %s",
  2092. (args[0] == 0 ? "PAUSE_COMPLETE" :
  2093. (args[0] == 1 ? "UNPAUSE_COMPLETE" :
  2094. (args[0] == 2 ? "SLEEP" :
  2095. (args[0] ==
  2096. 3 ? "AWAKE" : "UNKNOWN")))),
  2097. (args[1] ==
  2098. 0 ? "SUCCESS" : (args[1] ==
  2099. 1 ? "TXQ_FLUSH_TIMEOUT"
  2100. : (args[1] ==
  2101. 2 ? "NO_ACK"
  2102. : (args[1] ==
  2103. 3 ?
  2104. "RX_LEAK_TIMEOUT"
  2105. : (args[1] ==
  2106. 4 ?
  2107. "PSPOLL_UAPSD_BUSY_TIMEOUT"
  2108. :
  2109. "UNKNOWN"))))));
  2110. }
  2111. break;
  2112. case PS_STA_PSPOLL_SEQ_DONE:
  2113. if (numargs == 5) {
  2114. dbglog_printf(timestamp, vap_id,
  2115. "STA PS poll: queue=%u comp=%u rsp=%u rsp_dur=%u fc=%x qos=%x %s",
  2116. args[0], args[1], args[2], args[3],
  2117. (args[4] >> 16) & 0xffff,
  2118. (args[4] >> 8) & 0xff,
  2119. (args[4] & 0xff) ==
  2120. 0 ? "SUCCESS" : (args[4] & 0xff) ==
  2121. 1 ? "NO_ACK" : (args[4] & 0xff) ==
  2122. 2 ? "DROPPED" : (args[4] & 0xff) ==
  2123. 3 ? "FILTERED" : (args[4] & 0xff) ==
  2124. 4 ? "RSP_TIMEOUT" : "UNKNOWN");
  2125. }
  2126. break;
  2127. case PS_STA_COEX_MODE:
  2128. if (numargs == 1) {
  2129. dbglog_printf(timestamp, vap_id, "STA PS COEX MODE %s",
  2130. args[0] ? "ENABLED" : "DISABLED");
  2131. }
  2132. break;
  2133. case PS_STA_PSPOLL_ALLOW:
  2134. if (numargs == 3) {
  2135. dbglog_printf(timestamp, vap_id,
  2136. "STA PS-Poll %s flags=%x time=%u",
  2137. args[0] ? "ALLOW" : "DISALLOW", args[1],
  2138. args[2]);
  2139. }
  2140. break;
  2141. case PS_STA_SET_PARAM:
  2142. if (numargs == 2) {
  2143. struct {
  2144. char *name;
  2145. int is_time_param;
  2146. } params[] = {
  2147. {
  2148. "MAX_SLEEP_ATTEMPTS", 0
  2149. }, {
  2150. "DELAYED_SLEEP", 1
  2151. }, {
  2152. "TXRX_INACTIVITY", 1
  2153. }, {
  2154. "MAX_TX_BEFORE_WAKE", 0
  2155. }, {
  2156. "UAPSD_TIMEOUT", 1
  2157. }, {
  2158. "UAPSD_CONFIG", 0
  2159. }, {
  2160. "PSPOLL_RESPONSE_TIMEOUT", 1
  2161. }, {
  2162. "MAX_PSPOLL_BEFORE_WAKE", 0
  2163. }, {
  2164. "RX_WAKE_POLICY", 0
  2165. }, {
  2166. "DELAYED_PAUSE_RX_LEAK", 1
  2167. }, {
  2168. "TXRX_INACTIVITY_BLOCKED_RETRY", 1
  2169. }, {
  2170. "SPEC_WAKE_INTERVAL", 1
  2171. }, {
  2172. "MAX_SPEC_NODATA_PSPOLL", 0
  2173. }, {
  2174. "ESTIMATED_PSPOLL_RESP_TIME", 1
  2175. }, {
  2176. "QPOWER_MAX_PSPOLL_BEFORE_WAKE", 0
  2177. }, {
  2178. "QPOWER_ENABLE", 0
  2179. },
  2180. };
  2181. uint32_t param = args[0];
  2182. uint32_t value = args[1];
  2183. if (param < QDF_ARRAY_SIZE(params)) {
  2184. if (params[param].is_time_param) {
  2185. dbglog_printf(timestamp, vap_id,
  2186. "STA PS SET_PARAM %s => %u (us)",
  2187. params[param].name,
  2188. value);
  2189. } else {
  2190. dbglog_printf(timestamp, vap_id,
  2191. "STA PS SET_PARAM %s => %#x",
  2192. params[param].name,
  2193. value);
  2194. }
  2195. } else {
  2196. dbglog_printf(timestamp, vap_id,
  2197. "STA PS SET_PARAM %x => %#x",
  2198. param, value);
  2199. }
  2200. }
  2201. break;
  2202. case PS_STA_SPECPOLL_TIMER_STARTED:
  2203. dbglog_printf(timestamp, vap_id,
  2204. "SPEC Poll Timer Started: Beacon time Remaining:%d wakeup interval:%d",
  2205. args[0], args[1]);
  2206. break;
  2207. case PS_STA_SPECPOLL_TIMER_STOPPED:
  2208. dbglog_printf(timestamp, vap_id, "SPEC Poll Timer Stopped");
  2209. break;
  2210. default:
  2211. return false;
  2212. }
  2213. return true;
  2214. }
  2215. /* IBSS PS sub modules */
  2216. enum wlan_ibss_ps_sub_module {
  2217. WLAN_IBSS_PS_SUB_MODULE_IBSS_NW_SM = 0,
  2218. WLAN_IBSS_PS_SUB_MODULE_IBSS_SELF_PS = 1,
  2219. WLAN_IBSS_PS_SUB_MODULE_IBSS_PEER_PS = 2,
  2220. WLAN_IBSS_PS_SUB_MODULE_MAX = 3,
  2221. };
  2222. #define WLAN_IBSS_PS_SUB_MODULE_OFFSET 0x1E
  2223. static A_BOOL
  2224. dbglog_ibss_powersave_print_handler(uint32_t mod_id,
  2225. uint16_t vap_id,
  2226. uint32_t dbg_id,
  2227. uint32_t timestamp,
  2228. uint16_t numargs, uint32_t *args)
  2229. {
  2230. static const char *const nw_states[] = {
  2231. "WAIT_FOR_TBTT",
  2232. "ATIM_WINDOW_PRE_BCN",
  2233. "ATIM_WINDOW_POST_BCN",
  2234. "OUT_OF_ATIM_WINDOW",
  2235. "PAUSE_PENDING",
  2236. "PAUSED",
  2237. };
  2238. static const char *const ps_states[] = {
  2239. "ACTIVE",
  2240. "SLEEP_TX_SEND",
  2241. "SLEEP_DOZE_PAUSE_PENDING",
  2242. "SLEEP_DOZE",
  2243. "SLEEP_AWAKE",
  2244. "ACTIVE_TX_SEND",
  2245. "PAUSE_TX_SEND",
  2246. "PAUSED",
  2247. };
  2248. static const char *const peer_ps_states[] = {
  2249. "ACTIVE",
  2250. "SLEEP_AWAKE",
  2251. "SLEEP_DOZE",
  2252. "PS_UNKNOWN",
  2253. };
  2254. static const char *const events[] = {
  2255. "START",
  2256. "STOP",
  2257. "SWBA",
  2258. "TBTT",
  2259. "TX_BCN_CMP",
  2260. "SEND_COMPLETE",
  2261. "SEND_N_COMPLETE",
  2262. "PRE_SEND",
  2263. "RX",
  2264. "UC_INACTIVITY_TIMEOUT",
  2265. "BC_INACTIVITY_TIMEOUT",
  2266. "ATIM_WINDOW_BEGIN",
  2267. "ATIM_WINDOW_END",
  2268. "HWQ_EMPTY",
  2269. "UC_ATIM_RCVD",
  2270. "TRAFFIC_EXCHANGE_DONE",
  2271. "POWER_SAVE_STATE_CHANGE",
  2272. "NEW_PEER_JOIN",
  2273. "IBSS_VDEV_PAUSE_REQUEST",
  2274. "IBSS_VDEV_PAUSE_RESPONSE",
  2275. "IBSS_VDEV_PAUSE_TIMEOUT",
  2276. "IBSS_VDEV_UNPAUSE_REQUEST",
  2277. "PS_STATE_CHANGE",
  2278. };
  2279. enum wlan_ibss_ps_sub_module sub_module;
  2280. switch (dbg_id) {
  2281. case DBGLOG_DBGID_SM_FRAMEWORK_PROXY_DBGLOG_MSG:
  2282. sub_module = (args[1] >> WLAN_IBSS_PS_SUB_MODULE_OFFSET) & 0x3;
  2283. switch (sub_module) {
  2284. case WLAN_IBSS_PS_SUB_MODULE_IBSS_NW_SM:
  2285. dbglog_sm_print(timestamp, vap_id, numargs, args,
  2286. "IBSS PS NW", nw_states,
  2287. QDF_ARRAY_SIZE(nw_states), events,
  2288. QDF_ARRAY_SIZE(events));
  2289. break;
  2290. case WLAN_IBSS_PS_SUB_MODULE_IBSS_SELF_PS:
  2291. dbglog_sm_print(timestamp, vap_id, numargs, args,
  2292. "IBSS PS Self", ps_states,
  2293. QDF_ARRAY_SIZE(ps_states), events,
  2294. QDF_ARRAY_SIZE(events));
  2295. break;
  2296. case WLAN_IBSS_PS_SUB_MODULE_IBSS_PEER_PS:
  2297. dbglog_sm_print(timestamp, vap_id, numargs, args,
  2298. "IBSS PS Peer", peer_ps_states,
  2299. QDF_ARRAY_SIZE(peer_ps_states), events,
  2300. QDF_ARRAY_SIZE(events));
  2301. break;
  2302. default:
  2303. break;
  2304. }
  2305. break;
  2306. case IBSS_PS_DBGID_PEER_CREATE:
  2307. if (numargs == 2) {
  2308. dbglog_printf(timestamp, vap_id,
  2309. "IBSS PS: peer alloc failed for peer ID:%u",
  2310. args[0]);
  2311. } else if (numargs == 1) {
  2312. dbglog_printf(timestamp, vap_id,
  2313. "IBSS PS: create peer ID=%u", args[0]);
  2314. }
  2315. break;
  2316. case IBSS_PS_DBGID_PEER_DELETE:
  2317. if (numargs == 4) {
  2318. dbglog_printf(timestamp, vap_id,
  2319. "IBSS PS: delete peer ID=%u num_peers:%d num_sleeping_peers:%d ps_enabled_for_this_peer:%d",
  2320. args[0], args[1], args[2], args[3]);
  2321. }
  2322. break;
  2323. case IBSS_PS_DBGID_VDEV_CREATE:
  2324. if (numargs == 1) {
  2325. dbglog_printf(timestamp, vap_id,
  2326. "IBSS PS: vdev alloc failed", args[0]);
  2327. } else if (numargs == 0) {
  2328. dbglog_printf(timestamp, vap_id,
  2329. "IBSS PS: vdev created");
  2330. }
  2331. break;
  2332. case IBSS_PS_DBGID_VDEV_DELETE:
  2333. dbglog_printf(timestamp, vap_id, "IBSS PS: vdev deleted");
  2334. break;
  2335. case IBSS_PS_DBGID_VDEV_EVENT:
  2336. if (numargs == 1) {
  2337. if (args[0] == 5) {
  2338. dbglog_printf(timestamp, vap_id,
  2339. "IBSS PS: vdev event for peer add");
  2340. } else if (args[0] == 7) {
  2341. dbglog_printf(timestamp, vap_id,
  2342. "IBSS PS: vdev event for peer delete");
  2343. } else {
  2344. dbglog_printf(timestamp, vap_id,
  2345. "IBSS PS: vdev event %u",
  2346. args[0]);
  2347. }
  2348. }
  2349. break;
  2350. case IBSS_PS_DBGID_PEER_EVENT:
  2351. if (numargs == 4) {
  2352. if (args[0] == 0xFFFF) {
  2353. dbglog_printf(timestamp, vap_id,
  2354. "IBSS PS: pre_send for peer:%u peer_type:%u sm_event_mask:%0x",
  2355. args[1], args[3], args[2]);
  2356. } else if (args[0] == 0x20000) {
  2357. dbglog_printf(timestamp, vap_id,
  2358. "IBSS PS: send_complete for peer:%u peer_type:%u sm_event_mask:%0x",
  2359. args[1], args[3], args[2]);
  2360. } else if (args[0] == 0x10) {
  2361. dbglog_printf(timestamp, vap_id,
  2362. "IBSS PS: send_n_complete for peer:%u peer_type:%u sm_event_mask:%0x",
  2363. args[1], args[3], args[2]);
  2364. } else if (args[0] == 0x40) {
  2365. dbglog_printf(timestamp, vap_id,
  2366. "IBSS PS: rx event for peer:%u peer_type:%u sm_event_mask:%0x",
  2367. args[1], args[3], args[2]);
  2368. } else if (args[0] == 0x4) {
  2369. dbglog_printf(timestamp, vap_id,
  2370. "IBSS PS: hw_q_empty for peer:%u peer_type:%u sm_event_mask:%0x",
  2371. args[1], args[3], args[2]);
  2372. }
  2373. }
  2374. break;
  2375. case IBSS_PS_DBGID_DELIVER_CAB:
  2376. if (numargs == 4) {
  2377. dbglog_printf(timestamp, vap_id,
  2378. "IBSS PS: Deliver CAB n_mpdu:%d send_flags:%0x tid_cur:%d q_depth_for_other_tid:%d",
  2379. args[0], args[1], args[2], args[3]);
  2380. }
  2381. break;
  2382. case IBSS_PS_DBGID_DELIVER_UC_DATA:
  2383. if (numargs == 4) {
  2384. dbglog_printf(timestamp, vap_id,
  2385. "IBSS PS: Deliver UC data peer:%d tid:%d n_mpdu:%d send_flags:%0x",
  2386. args[0], args[1], args[2], args[3]);
  2387. }
  2388. break;
  2389. case IBSS_PS_DBGID_DELIVER_UC_DATA_ERROR:
  2390. if (numargs == 4) {
  2391. dbglog_printf(timestamp, vap_id,
  2392. "IBSS PS: Deliver UC data error peer:%d tid:%d allowed_tidmask:%0x, pending_tidmap:%0x",
  2393. args[0], args[1], args[2], args[3]);
  2394. }
  2395. break;
  2396. case IBSS_PS_DBGID_UC_INACTIVITY_TMR_RESTART:
  2397. if (numargs == 2) {
  2398. dbglog_printf(timestamp, vap_id,
  2399. "IBSS PS: UC timer restart peer:%d timer_val:%0x",
  2400. args[0], args[1]);
  2401. }
  2402. break;
  2403. case IBSS_PS_DBGID_MC_INACTIVITY_TMR_RESTART:
  2404. if (numargs == 1) {
  2405. dbglog_printf(timestamp, vap_id,
  2406. "IBSS PS: MC timer restart timer_val:%0x",
  2407. args[0]);
  2408. }
  2409. break;
  2410. case IBSS_PS_DBGID_NULL_TX_COMPLETION:
  2411. if (numargs == 3) {
  2412. dbglog_printf(timestamp, vap_id,
  2413. "IBSS PS: null tx completion peer:%d tx_completion_status:%d flags:%0x",
  2414. args[0], args[1], args[2]);
  2415. }
  2416. break;
  2417. case IBSS_PS_DBGID_ATIM_TIMER_START:
  2418. if (numargs == 4) {
  2419. dbglog_printf(timestamp, vap_id,
  2420. "IBSS PS: ATIM timer start tsf:%0x %0x tbtt:%0x %0x",
  2421. args[0], args[1], args[2], args[3]);
  2422. }
  2423. break;
  2424. case IBSS_PS_DBGID_UC_ATIM_SEND:
  2425. if (numargs == 2) {
  2426. dbglog_printf(timestamp, vap_id,
  2427. "IBSS PS: Send ATIM to peer:%d", args[1]);
  2428. } else if (numargs == 1) {
  2429. dbglog_printf(timestamp, vap_id,
  2430. "IBSS PS: no peers to send UC ATIM",
  2431. args[1]);
  2432. }
  2433. break;
  2434. case IBSS_PS_DBGID_BC_ATIM_SEND:
  2435. if (numargs == 2) {
  2436. dbglog_printf(timestamp, vap_id,
  2437. "IBSS PS: MC Data, num_of_peers:%d bc_atim_sent:%d",
  2438. args[1], args[0]);
  2439. }
  2440. break;
  2441. case IBSS_PS_DBGID_UC_TIMEOUT:
  2442. if (numargs == 2) {
  2443. dbglog_printf(timestamp, vap_id,
  2444. "IBSS PS: UC timeout for peer:%d send_null:%d",
  2445. args[0], args[1]);
  2446. }
  2447. break;
  2448. case IBSS_PS_DBGID_PWR_COLLAPSE_ALLOWED:
  2449. dbglog_printf(timestamp, vap_id,
  2450. "IBSS PS: allow power collapse");
  2451. break;
  2452. case IBSS_PS_DBGID_PWR_COLLAPSE_NOT_ALLOWED:
  2453. if (numargs == 0) {
  2454. dbglog_printf(timestamp, vap_id,
  2455. "IBSS PS: power collapse not allowed by INI");
  2456. } else if (numargs == 1) {
  2457. dbglog_printf(timestamp, vap_id,
  2458. "IBSS PS: power collapse not allowed since peer id:%d is not PS capable",
  2459. args[0]);
  2460. } else if (numargs == 2) {
  2461. dbglog_printf(timestamp, vap_id,
  2462. "IBSS PS: power collapse not allowed - no peers in NW");
  2463. } else if (numargs == 3) {
  2464. if (args[0] == 2) {
  2465. dbglog_printf(timestamp, vap_id,
  2466. "IBSS PS: power collapse not allowed, non-zero qdepth %d %d",
  2467. args[1], args[2]);
  2468. } else if (args[0] == 3) {
  2469. dbglog_printf(timestamp, vap_id,
  2470. "IBSS PS: power collapse not allowed by peer:%d peer_flags:%0x",
  2471. args[1], args[2]);
  2472. }
  2473. } else if (numargs == 5) {
  2474. dbglog_printf(timestamp, vap_id,
  2475. "IBSS PS: power collapse not allowed by state m/c nw_cur_state:%d nw_next_state:%d ps_cur_state:%d flags:%0x",
  2476. args[1], args[2], args[3], args[4]);
  2477. }
  2478. break;
  2479. case IBSS_PS_DBGID_SET_PARAM:
  2480. if (numargs == 2) {
  2481. dbglog_printf(timestamp, vap_id,
  2482. "IBSS PS: Set Param ID:%0x Value:%0x",
  2483. args[0], args[1]);
  2484. }
  2485. break;
  2486. case IBSS_PS_DBGID_HOST_TX_PAUSE:
  2487. if (numargs == 1) {
  2488. dbglog_printf(timestamp, vap_id,
  2489. "IBSS PS: Pausing host, vdev_map:%0x",
  2490. args[0]);
  2491. }
  2492. break;
  2493. case IBSS_PS_DBGID_HOST_TX_UNPAUSE:
  2494. if (numargs == 1) {
  2495. dbglog_printf(timestamp, vap_id,
  2496. "IBSS PS: Unpausing host, vdev_map:%0x",
  2497. args[0]);
  2498. }
  2499. break;
  2500. case IBSS_PS_DBGID_PS_DESC_BIN_LWM:
  2501. if (numargs == 1) {
  2502. dbglog_printf(timestamp, vap_id,
  2503. "IBSS PS: LWM, vdev_map:%0x", args[0]);
  2504. }
  2505. break;
  2506. case IBSS_PS_DBGID_PS_DESC_BIN_HWM:
  2507. if (numargs == 1) {
  2508. dbglog_printf(timestamp, vap_id,
  2509. "IBSS PS: HWM, vdev_map:%0x", args[0]);
  2510. }
  2511. break;
  2512. case IBSS_PS_DBGID_PS_KICKOUT_PEER:
  2513. if (numargs == 3) {
  2514. dbglog_printf(timestamp, vap_id,
  2515. "IBSS PS: Kickout peer id:%d atim_fail_cnt:%d status:%d",
  2516. args[0], args[1], args[2]);
  2517. }
  2518. break;
  2519. case IBSS_PS_DBGID_SET_PEER_PARAM:
  2520. if (numargs == 3) {
  2521. dbglog_printf(timestamp, vap_id,
  2522. "IBSS PS: Set Peer Id:%d Param ID:%0x Value:%0x",
  2523. args[0], args[1], args[2]);
  2524. }
  2525. break;
  2526. case IBSS_PS_DBGID_BCN_ATIM_WIN_MISMATCH:
  2527. if (numargs == 4) {
  2528. if (args[0] == 0xDEAD) {
  2529. dbglog_printf(timestamp, vap_id,
  2530. "IBSS PS: ATIM window length mismatch, our's:%d, peer id:%d, peer's:%d",
  2531. args[1], args[2], args[3]);
  2532. } else if (args[0] == 0xBEEF) {
  2533. dbglog_printf(timestamp, vap_id,
  2534. "IBSS PS: Peer ATIM window length changed, peer id:%d, peer recorded atim window:%d new atim window:%d",
  2535. args[1], args[2], args[3]);
  2536. }
  2537. }
  2538. break;
  2539. case IBSS_PS_DBGID_RX_CHAINMASK_CHANGE:
  2540. if (numargs == 2) {
  2541. if (args[1] == 0x1) {
  2542. dbglog_printf(timestamp, vap_id,
  2543. "IBSS PS: Voting for low power chainmask from :%d",
  2544. args[0]);
  2545. } else {
  2546. dbglog_printf(timestamp, vap_id,
  2547. "IBSS PS: Voting for high power chainmask from :%d",
  2548. args[0]);
  2549. }
  2550. }
  2551. break;
  2552. default:
  2553. return false;
  2554. }
  2555. return true;
  2556. }
  2557. static
  2558. A_BOOL dbglog_ratectrl_print_handler(uint32_t mod_id,
  2559. uint16_t vap_id,
  2560. uint32_t dbg_id,
  2561. uint32_t timestamp,
  2562. uint16_t numargs, uint32_t *args)
  2563. {
  2564. switch (dbg_id) {
  2565. case RATECTRL_DBGID_ASSOC:
  2566. dbglog_printf(timestamp, vap_id,
  2567. "RATE: ChainMask %d, phymode %d, ni_flags 0x%08x, vht_mcs_set 0x%04x, ht_mcs_set 0x%04x",
  2568. args[0], args[1], args[2], args[3], args[4]);
  2569. break;
  2570. case RATECTRL_DBGID_NSS_CHANGE:
  2571. dbglog_printf(timestamp, vap_id, "RATE: NEW NSS %d\n", args[0]);
  2572. break;
  2573. case RATECTRL_DBGID_CHAINMASK_ERR:
  2574. dbglog_printf(timestamp, vap_id,
  2575. "RATE: Chainmask ERR %d %d %d\n", args[0],
  2576. args[1], args[2]);
  2577. break;
  2578. case RATECTRL_DBGID_UNEXPECTED_FRAME:
  2579. dbglog_printf(timestamp, vap_id,
  2580. "RATE: WARN1: rate %d flags 0x%08x\n", args[0],
  2581. args[1]);
  2582. break;
  2583. case RATECTRL_DBGID_WAL_RCQUERY:
  2584. dbglog_printf(timestamp, vap_id,
  2585. "ratectrl_dbgid_wal_rcquery [rix1 %d rix2 %d rix3 %d proberix %d ppduflag 0x%x] ",
  2586. args[0], args[1], args[2], args[3], args[4]);
  2587. break;
  2588. case RATECTRL_DBGID_WAL_RCUPDATE:
  2589. dbglog_printf(timestamp, vap_id,
  2590. "ratectrl_dbgid_wal_rcupdate [numelems %d ppduflag 0x%x] ",
  2591. args[0], args[1]);
  2592. break;
  2593. case RATECTRL_DBGID_GTX_UPDATE:
  2594. {
  2595. switch (args[0]) {
  2596. case 255:
  2597. dbglog_printf(timestamp, vap_id,
  2598. "GtxInitPwrCfg [bw[last %d|cur %d] rtcode 0x%x tpc %d tpc_init_pwr_cfg %d] ",
  2599. args[1] >> 8, args[1] & 0xff,
  2600. args[2], args[3], args[4]);
  2601. break;
  2602. case 254:
  2603. dbglog_printf(timestamp, vap_id,
  2604. "gtx_cfg_addr [RTMask0@0x%x PERThreshold@0x%x gtxTPCMin@0x%x userGtxMask@0x%x] ",
  2605. args[1], args[2], args[3],
  2606. args[4]);
  2607. break;
  2608. default:
  2609. dbglog_printf(timestamp, vap_id,
  2610. "gtx_update [act %d bw %d rix 0x%x tpc %d per %d lastrssi %d] ",
  2611. args[0], args[1], args[2],
  2612. args[3], args[4], args[5]);
  2613. }
  2614. }
  2615. break;
  2616. }
  2617. return true;
  2618. }
  2619. static
  2620. A_BOOL dbglog_ani_print_handler(uint32_t mod_id,
  2621. uint16_t vap_id,
  2622. uint32_t dbg_id,
  2623. uint32_t timestamp,
  2624. uint16_t numargs, uint32_t *args)
  2625. {
  2626. switch (dbg_id) {
  2627. case ANI_DBGID_ENABLE:
  2628. dbglog_printf(timestamp, vap_id, "ANI Enable: %d", args[0]);
  2629. break;
  2630. case ANI_DBGID_POLL:
  2631. dbglog_printf(timestamp, vap_id,
  2632. "ANI POLLING: AccumListenTime %d ListenTime %d ofdmphyerr %d cckphyerr %d",
  2633. args[0], args[1], args[2], args[3]);
  2634. break;
  2635. case ANI_DBGID_RESTART:
  2636. dbglog_printf(timestamp, vap_id, "ANI Restart");
  2637. break;
  2638. case ANI_DBGID_CURRENT_LEVEL:
  2639. dbglog_printf(timestamp, vap_id,
  2640. "ANI CURRENT LEVEL ofdm level %d cck level %d",
  2641. args[0], args[1]);
  2642. break;
  2643. case ANI_DBGID_OFDM_LEVEL:
  2644. dbglog_printf(timestamp, vap_id,
  2645. "ANI UPDATE ofdm level %d firstep %d firstep_low %d cycpwr_thr %d self_corr_low %d",
  2646. args[0], args[1], args[2], args[3], args[4]);
  2647. break;
  2648. case ANI_DBGID_CCK_LEVEL:
  2649. dbglog_printf(timestamp, vap_id,
  2650. "ANI UPDATE cck level %d firstep %d firstep_low %d mrc_cck %d",
  2651. args[0], args[1], args[2], args[3]);
  2652. break;
  2653. case ANI_DBGID_CONTROL:
  2654. dbglog_printf(timestamp, vap_id,
  2655. "ANI CONTROL ofdmlevel %d ccklevel %d\n",
  2656. args[0]);
  2657. break;
  2658. case ANI_DBGID_OFDM_PARAMS:
  2659. dbglog_printf(timestamp, vap_id,
  2660. "ANI ofdm_control firstep %d cycpwr %d\n",
  2661. args[0], args[1]);
  2662. break;
  2663. case ANI_DBGID_CCK_PARAMS:
  2664. dbglog_printf(timestamp, vap_id,
  2665. "ANI cck_control mrc_cck %d barker_threshold %d\n",
  2666. args[0], args[1]);
  2667. break;
  2668. case ANI_DBGID_RESET:
  2669. dbglog_printf(timestamp, vap_id,
  2670. "ANI resetting resetflag %d resetCause %8x channel index %d",
  2671. args[0], args[1], args[2]);
  2672. break;
  2673. case ANI_DBGID_SELF_CORR_LOW:
  2674. dbglog_printf(timestamp, vap_id, "ANI self_corr_low %d",
  2675. args[0]);
  2676. break;
  2677. case ANI_DBGID_FIRSTEP:
  2678. dbglog_printf(timestamp, vap_id,
  2679. "ANI firstep %d firstep_low %d", args[0],
  2680. args[1]);
  2681. break;
  2682. case ANI_DBGID_MRC_CCK:
  2683. dbglog_printf(timestamp, vap_id, "ANI mrc_cck %d", args[0]);
  2684. break;
  2685. case ANI_DBGID_CYCPWR:
  2686. dbglog_printf(timestamp, vap_id, "ANI cypwr_thresh %d",
  2687. args[0]);
  2688. break;
  2689. case ANI_DBGID_POLL_PERIOD:
  2690. dbglog_printf(timestamp, vap_id,
  2691. "ANI Configure poll period to %d", args[0]);
  2692. break;
  2693. case ANI_DBGID_LISTEN_PERIOD:
  2694. dbglog_printf(timestamp, vap_id,
  2695. "ANI Configure listen period to %d", args[0]);
  2696. break;
  2697. case ANI_DBGID_OFDM_LEVEL_CFG:
  2698. dbglog_printf(timestamp, vap_id,
  2699. "ANI Configure ofdm level to %d", args[0]);
  2700. break;
  2701. case ANI_DBGID_CCK_LEVEL_CFG:
  2702. dbglog_printf(timestamp, vap_id,
  2703. "ANI Configure cck level to %d", args[0]);
  2704. break;
  2705. default:
  2706. dbglog_printf(timestamp, vap_id, "ANI arg1 %d arg2 %d arg3 %d",
  2707. args[0], args[1], args[2]);
  2708. break;
  2709. }
  2710. return true;
  2711. }
  2712. static A_BOOL
  2713. dbglog_ap_powersave_print_handler(uint32_t mod_id,
  2714. uint16_t vap_id,
  2715. uint32_t dbg_id,
  2716. uint32_t timestamp,
  2717. uint16_t numargs, uint32_t *args)
  2718. {
  2719. switch (dbg_id) {
  2720. case AP_PS_DBGID_UPDATE_TIM:
  2721. if (numargs == 2) {
  2722. dbglog_printf(timestamp, vap_id,
  2723. "AP PS: TIM update AID=%u %s",
  2724. args[0], args[1] ? "set" : "clear");
  2725. }
  2726. break;
  2727. case AP_PS_DBGID_PEER_STATE_CHANGE:
  2728. if (numargs == 2) {
  2729. dbglog_printf(timestamp, vap_id,
  2730. "AP PS: AID=%u power save %s",
  2731. args[0],
  2732. args[1] ? "enabled" : "disabled");
  2733. }
  2734. break;
  2735. case AP_PS_DBGID_PSPOLL:
  2736. if (numargs == 3) {
  2737. dbglog_printf(timestamp, vap_id,
  2738. "AP PS: AID=%u pspoll response tid=%u flags=%x",
  2739. args[0], args[1], args[2]);
  2740. }
  2741. break;
  2742. case AP_PS_DBGID_PEER_CREATE:
  2743. if (numargs == 1) {
  2744. dbglog_printf(timestamp, vap_id,
  2745. "AP PS: create peer AID=%u", args[0]);
  2746. }
  2747. break;
  2748. case AP_PS_DBGID_PEER_DELETE:
  2749. if (numargs == 1) {
  2750. dbglog_printf(timestamp, vap_id,
  2751. "AP PS: delete peer AID=%u", args[0]);
  2752. }
  2753. break;
  2754. case AP_PS_DBGID_VDEV_CREATE:
  2755. dbglog_printf(timestamp, vap_id, "AP PS: vdev create");
  2756. break;
  2757. case AP_PS_DBGID_VDEV_DELETE:
  2758. dbglog_printf(timestamp, vap_id, "AP PS: vdev delete");
  2759. break;
  2760. case AP_PS_DBGID_SYNC_TIM:
  2761. if (numargs == 3) {
  2762. dbglog_printf(timestamp, vap_id,
  2763. "AP PS: AID=%u advertised=%#x buffered=%#x",
  2764. args[0], args[1], args[2]);
  2765. }
  2766. break;
  2767. case AP_PS_DBGID_NEXT_RESPONSE:
  2768. if (numargs == 4) {
  2769. dbglog_printf(timestamp, vap_id,
  2770. "AP PS: AID=%u select next response %s%s%s",
  2771. args[0], args[1] ? "(usp active) " : "",
  2772. args[2] ? "(pending usp) " : "",
  2773. args[3] ? "(pending poll response)" : "");
  2774. }
  2775. break;
  2776. case AP_PS_DBGID_START_SP:
  2777. if (numargs == 3) {
  2778. dbglog_printf(timestamp, vap_id,
  2779. "AP PS: AID=%u START SP tsf=%#x (%u)",
  2780. args[0], args[1], args[2]);
  2781. }
  2782. break;
  2783. case AP_PS_DBGID_COMPLETED_EOSP:
  2784. if (numargs == 3) {
  2785. dbglog_printf(timestamp, vap_id,
  2786. "AP PS: AID=%u EOSP eosp_tsf=%#x trigger_tsf=%#x",
  2787. args[0], args[1], args[2]);
  2788. }
  2789. break;
  2790. case AP_PS_DBGID_TRIGGER:
  2791. if (numargs == 4) {
  2792. dbglog_printf(timestamp, vap_id,
  2793. "AP PS: AID=%u TRIGGER tsf=%#x %s%s",
  2794. args[0], args[1],
  2795. args[2] ? "(usp active) " : "",
  2796. args[3] ? "(send_n in progress)" : "");
  2797. }
  2798. break;
  2799. case AP_PS_DBGID_DUPLICATE_TRIGGER:
  2800. if (numargs == 4) {
  2801. dbglog_printf(timestamp, vap_id,
  2802. "AP PS: AID=%u DUP TRIGGER tsf=%#x seq=%u ac=%u",
  2803. args[0], args[1], args[2], args[3]);
  2804. }
  2805. break;
  2806. case AP_PS_DBGID_UAPSD_RESPONSE:
  2807. if (numargs == 5) {
  2808. dbglog_printf(timestamp, vap_id,
  2809. "AP PS: AID=%u UAPSD response tid=%u, n_mpdu=%u flags=%#x max_sp=%u current_sp=%u",
  2810. args[0], args[1], args[2], args[3],
  2811. (args[4] >> 16) & 0xffff,
  2812. args[4] & 0xffff);
  2813. }
  2814. break;
  2815. case AP_PS_DBGID_SEND_COMPLETE:
  2816. if (numargs == 5) {
  2817. dbglog_printf(timestamp, vap_id,
  2818. "AP PS: AID=%u SEND_COMPLETE fc=%#x qos=%#x %s%s",
  2819. args[0], args[1], args[2],
  2820. args[3] ? "(usp active) " : "",
  2821. args[4] ? "(pending poll response)" : "");
  2822. }
  2823. break;
  2824. case AP_PS_DBGID_SEND_N_COMPLETE:
  2825. if (numargs == 3) {
  2826. dbglog_printf(timestamp, vap_id,
  2827. "AP PS: AID=%u SEND_N_COMPLETE %s%s",
  2828. args[0],
  2829. args[1] ? "(usp active) " : "",
  2830. args[2] ? "(pending poll response)" : "");
  2831. }
  2832. break;
  2833. case AP_PS_DBGID_DETECT_OUT_OF_SYNC_STA:
  2834. if (numargs == 4) {
  2835. dbglog_printf(timestamp, vap_id,
  2836. "AP PS: AID=%u detected out-of-sync now=%u tx_waiting=%u txq_depth=%u",
  2837. args[0], args[1], args[2], args[3]);
  2838. }
  2839. break;
  2840. case AP_PS_DBGID_DELIVER_CAB:
  2841. if (numargs == 4) {
  2842. dbglog_printf(timestamp, vap_id,
  2843. "AP PS: CAB %s n_mpdus=%u, flags=%x, extra=%u",
  2844. (args[0] == 17) ? "MGMT" : "DATA",
  2845. args[1], args[2], args[3]);
  2846. }
  2847. break;
  2848. default:
  2849. return false;
  2850. }
  2851. return true;
  2852. }
  2853. static A_BOOL
  2854. dbglog_wal_print_handler(uint32_t mod_id,
  2855. uint16_t vap_id,
  2856. uint32_t dbg_id,
  2857. uint32_t timestamp, uint16_t numargs, uint32_t *args)
  2858. {
  2859. static const char *const states[] = {
  2860. "ACTIVE",
  2861. "WAIT",
  2862. "WAIT_FILTER",
  2863. "PAUSE",
  2864. "PAUSE_SEND_N",
  2865. "BLOCK",
  2866. };
  2867. static const char *const events[] = {
  2868. "PAUSE",
  2869. "PAUSE_FILTER",
  2870. "UNPAUSE",
  2871. "BLOCK",
  2872. "BLOCK_FILTER",
  2873. "UNBLOCK",
  2874. "HWQ_EMPTY",
  2875. "ALLOW_N",
  2876. };
  2877. #define WAL_VDEV_TYPE(type) \
  2878. (type == 0 ? "AP" : \
  2879. (type == 1 ? "STA" : \
  2880. (type == 2 ? "IBSS" : \
  2881. (type == 2 ? "MONITOR" : \
  2882. "UNKNOWN"))))
  2883. #define WAL_SLEEP_STATE(state) \
  2884. (state == 1 ? "NETWORK SLEEP" : \
  2885. (state == 2 ? "AWAKE" : \
  2886. (state == 3 ? "SYSTEM SLEEP" : \
  2887. "UNKNOWN")))
  2888. switch (dbg_id) {
  2889. case DBGLOG_DBGID_SM_FRAMEWORK_PROXY_DBGLOG_MSG:
  2890. dbglog_sm_print(timestamp, vap_id, numargs, args, "TID PAUSE",
  2891. states, QDF_ARRAY_SIZE(states), events,
  2892. QDF_ARRAY_SIZE(events));
  2893. break;
  2894. case WAL_DBGID_SET_POWER_STATE:
  2895. if (numargs == 3) {
  2896. dbglog_printf(timestamp, vap_id,
  2897. "WAL %s => %s, req_count=%u",
  2898. WAL_SLEEP_STATE(args[0]),
  2899. WAL_SLEEP_STATE(args[1]), args[2]);
  2900. }
  2901. break;
  2902. case WAL_DBGID_CHANNEL_CHANGE_FORCE_RESET:
  2903. if (numargs == 4) {
  2904. dbglog_printf(timestamp, vap_id,
  2905. "WAL channel change (force reset) freq=%u, flags=%u mode=%u rx_ok=%u tx_ok=%u",
  2906. args[0] & 0x0000ffff,
  2907. (args[0] & 0xffff0000) >> 16, args[1],
  2908. args[2], args[3]);
  2909. }
  2910. break;
  2911. case WAL_DBGID_CHANNEL_CHANGE:
  2912. if (numargs == 2) {
  2913. dbglog_printf(timestamp, vap_id,
  2914. "WAL channel change freq=%u, mode=%u flags=%u rx_ok=1 tx_ok=1",
  2915. args[0] & 0x0000ffff,
  2916. (args[0] & 0xffff0000) >> 16, args[1]);
  2917. }
  2918. break;
  2919. case WAL_DBGID_VDEV_START:
  2920. if (numargs == 1) {
  2921. dbglog_printf(timestamp, vap_id, "WAL %s vdev started",
  2922. WAL_VDEV_TYPE(args[0]));
  2923. }
  2924. break;
  2925. case WAL_DBGID_VDEV_STOP:
  2926. dbglog_printf(timestamp, vap_id, "WAL %s vdev stopped",
  2927. WAL_VDEV_TYPE(args[0]));
  2928. break;
  2929. case WAL_DBGID_VDEV_UP:
  2930. dbglog_printf(timestamp, vap_id, "WAL %s vdev up, count=%u",
  2931. WAL_VDEV_TYPE(args[0]), args[1]);
  2932. break;
  2933. case WAL_DBGID_VDEV_DOWN:
  2934. dbglog_printf(timestamp, vap_id, "WAL %s vdev down, count=%u",
  2935. WAL_VDEV_TYPE(args[0]), args[1]);
  2936. break;
  2937. case WAL_DBGID_TX_MGMT_DESCID_SEQ_TYPE_LEN:
  2938. dbglog_printf(timestamp, vap_id,
  2939. "WAL Tx Mgmt frame desc_id=0x%x, seq=0x%x, type=0x%x, len=0x%x islocal=0x%x",
  2940. args[0], args[1], args[2],
  2941. (args[3] & 0xffff0000) >> 16,
  2942. args[3] & 0x0000ffff);
  2943. break;
  2944. case WAL_DBGID_TX_MGMT_COMP_DESCID_STATUS:
  2945. dbglog_printf(timestamp, vap_id,
  2946. "WAL Tx Mgmt frame completion desc_id=0x%x, status=0x%x, islocal=0x%x",
  2947. args[0], args[1], args[2]);
  2948. break;
  2949. case WAL_DBGID_TX_DATA_MSDUID_SEQ_TYPE_LEN:
  2950. dbglog_printf(timestamp, vap_id,
  2951. "WAL Tx Data frame msdu_id=0x%x, seq=0x%x, type=0x%x, len=0x%x",
  2952. args[0], args[1], args[2], args[3]);
  2953. break;
  2954. case WAL_DBGID_TX_DATA_COMP_MSDUID_STATUS:
  2955. dbglog_printf(timestamp, vap_id,
  2956. "WAL Tx Data frame completion desc_id=0x%x, status=0x%x, seq=0x%x",
  2957. args[0], args[1], args[2]);
  2958. break;
  2959. case WAL_DBGID_RESET_PCU_CYCLE_CNT:
  2960. dbglog_printf(timestamp, vap_id,
  2961. "WAL PCU cycle counter value at reset:%x",
  2962. args[0]);
  2963. break;
  2964. case WAL_DBGID_TX_DISCARD:
  2965. dbglog_printf(timestamp, vap_id,
  2966. "WAL Tx enqueue discard msdu_id=0x%x", args[0]);
  2967. break;
  2968. case WAL_DBGID_SET_HW_CHAINMASK:
  2969. dbglog_printf(timestamp, vap_id,
  2970. "WAL_DBGID_SET_HW_CHAINMASK pdev=%d, txchain=0x%x, rxchain=0x%x",
  2971. args[0], args[1], args[2]);
  2972. break;
  2973. case WAL_DBGID_SET_HW_CHAINMASK_TXRX_STOP_FAIL:
  2974. dbglog_printf(timestamp, vap_id,
  2975. "WAL_DBGID_SET_HW_CHAINMASK_TXRX_STOP_FAIL rxstop=%d, txstop=%d",
  2976. args[0], args[1]);
  2977. break;
  2978. case WAL_DBGID_GET_HW_CHAINMASK:
  2979. dbglog_printf(timestamp, vap_id, "WAL_DBGID_GET_HW_CHAINMASK "
  2980. "txchain=0x%x, rxchain=0x%x", args[0], args[1]);
  2981. break;
  2982. case WAL_DBGID_SMPS_DISABLE:
  2983. dbglog_printf(timestamp, vap_id, "WAL_DBGID_SMPS_DISABLE");
  2984. break;
  2985. case WAL_DBGID_SMPS_ENABLE_HW_CNTRL:
  2986. dbglog_printf(timestamp, vap_id,
  2987. "WAL_DBGID_SMPS_ENABLE_HW_CNTRL low_pwr_mask=0x%x, high_pwr_mask=0x%x",
  2988. args[0], args[1]);
  2989. break;
  2990. case WAL_DBGID_SMPS_SWSEL_CHAINMASK:
  2991. dbglog_printf(timestamp, vap_id,
  2992. "WAL_DBGID_SMPS_SWSEL_CHAINMASK low_pwr=0x%x, chain_mask=0x%x",
  2993. args[0], args[1]);
  2994. break;
  2995. default:
  2996. return false;
  2997. }
  2998. return true;
  2999. }
  3000. static A_BOOL
  3001. dbglog_scan_print_handler(uint32_t mod_id,
  3002. uint16_t vap_id,
  3003. uint32_t dbg_id,
  3004. uint32_t timestamp, uint16_t numargs, uint32_t *args)
  3005. {
  3006. static const char *const states[] = {
  3007. "IDLE",
  3008. "BSSCHAN",
  3009. "WAIT_FOREIGN_CHAN",
  3010. "FOREIGN_CHANNEL",
  3011. "TERMINATING"
  3012. };
  3013. static const char *const events[] = {
  3014. "REQ",
  3015. "STOP",
  3016. "BSSCHAN",
  3017. "FOREIGN_CHAN",
  3018. "CHECK_ACTIVITY",
  3019. "REST_TIME_EXPIRE",
  3020. "DWELL_TIME_EXPIRE",
  3021. "PROBE_TIME_EXPIRE",
  3022. };
  3023. switch (dbg_id) {
  3024. case DBGLOG_DBGID_SM_FRAMEWORK_PROXY_DBGLOG_MSG:
  3025. dbglog_sm_print(timestamp, vap_id, numargs, args, "SCAN",
  3026. states, QDF_ARRAY_SIZE(states), events,
  3027. QDF_ARRAY_SIZE(events));
  3028. break;
  3029. default:
  3030. return false;
  3031. }
  3032. return true;
  3033. }
  3034. static
  3035. A_BOOL dbglog_coex_print_handler(uint32_t mod_id,
  3036. uint16_t vap_id,
  3037. uint32_t dbg_id,
  3038. uint32_t timestamp,
  3039. uint16_t numargs, uint32_t *args)
  3040. {
  3041. uint8_t i;
  3042. char *dbg_id_str;
  3043. static const char *const wlan_rx_xput_status[] = {
  3044. "WLAN_XPUT_NORMAL",
  3045. "WLAN_XPUT_UNDER_THRESH",
  3046. "WLAN_XPUT_CRITICAL",
  3047. "WLAN_XPUT_RECOVERY_TIMEOUT",
  3048. };
  3049. static const char *const coex_sched_req[] = {
  3050. "SCHED_REQ_NEXT",
  3051. "SCHED_REQ_BT",
  3052. "SCHED_REQ_WLAN",
  3053. "SCHED_REQ_POSTPAUSE",
  3054. "SCHED_REQ_UNPAUSE",
  3055. };
  3056. static const char *const coex_sched_type[] = {
  3057. "SCHED_NONE",
  3058. "SCHED_WLAN",
  3059. "SCHED_BT",
  3060. "SCHED_WLAN_PAUSE",
  3061. "SCHED_WLAN_POSTPAUSE",
  3062. "SCHED_WLAN_UNPAUSE",
  3063. "COEX_SCHED_MWS",
  3064. };
  3065. static const char *const coex_trf_mgmt_type[] = {
  3066. "TRF_MGMT_FREERUN",
  3067. "TRF_MGMT_SHAPE_PM",
  3068. "TRF_MGMT_SHAPE_PSP",
  3069. "TRF_MGMT_SHAPE_S_CTS",
  3070. "TRF_MGMT_SHAPE_OCS",
  3071. "TRF_MGMT_SHAPE_FIXED_TIME",
  3072. "TRF_MGMT_SHAPE_NOA",
  3073. "TRF_MGMT_SHAPE_OCS_CRITICAL",
  3074. "TRF_MGMT_NONE",
  3075. };
  3076. static const char *const coex_system_status[] = {
  3077. "ALL_OFF",
  3078. "BTCOEX_NOT_REQD",
  3079. "WLAN_IS_IDLE",
  3080. "EXECUTE_SCHEME",
  3081. "BT_FULL_CONCURRENCY",
  3082. "WLAN_SLEEPING",
  3083. "WLAN_IS_PAUSED",
  3084. "WAIT_FOR_NEXT_ACTION",
  3085. "SOC_WAKE",
  3086. };
  3087. static const char *const wlan_rssi_type[] = {
  3088. "LOW_RSSI",
  3089. "MID_RSSI",
  3090. "HI_RSSI",
  3091. "INVALID_RSSI",
  3092. };
  3093. static const char *const coex_bt_scheme[] = {
  3094. "IDLE_CTRL",
  3095. "ACTIVE_ASYNC_CTRL",
  3096. "PASSIVE_SYNC_CTRL",
  3097. "ACTIVE_SYNC_CTRL",
  3098. "DEFAULT_CTRL",
  3099. "CONCURRENCY_CTRL",
  3100. };
  3101. static const char *const wal_peer_rx_rate_stats_event_sent[] = {
  3102. "PR_RX_EVT_SENT_NONE",
  3103. "PR_RX_EVT_SENT_LOWER",
  3104. "PR_RX_EVT_SENT_UPPER",
  3105. };
  3106. static const char *const wlan_psp_stimulus[] = {
  3107. "ENTRY",
  3108. "EXIT",
  3109. "PS_READY",
  3110. "PS_NOT_READY",
  3111. "RX_MORE_DATA_RCVD",
  3112. "RX_NO_MORE_DATA_RCVD",
  3113. "TX_DATA_COMPLT",
  3114. "TX_COMPLT",
  3115. "TIM_SET",
  3116. "REQ",
  3117. "DONE_SUCCESS",
  3118. "DONE_NO_PS_POLL_ACK",
  3119. "DONE_RESPONSE_TMO",
  3120. "DONE_DROPPED",
  3121. "DONE_FILTERED",
  3122. "WLAN_START",
  3123. "NONWLAN_START",
  3124. "NONWLAN_INTVL_UPDATE",
  3125. "NULL_TX",
  3126. "NULL_TX_COMPLT",
  3127. "BMISS_FIRST",
  3128. "NULL_TX_FAIL",
  3129. "RX_NO_MORE_DATA_DATAFRM",
  3130. };
  3131. static const char *const coex_pspoll_state[] = {
  3132. "STATE_DISABLED",
  3133. "STATE_NOT_READY",
  3134. "STATE_ENABLED",
  3135. "STATE_READY",
  3136. "STATE_TX_STATUS",
  3137. "STATE_RX_STATUS",
  3138. };
  3139. static const char *const coex_scheduler_interval[] = {
  3140. "COEX_SCHED_NONWLAN_INT",
  3141. "COEX_SCHED_WLAN_INT",
  3142. };
  3143. static const char *const wlan_weight[] = {
  3144. "BT_COEX_BASE",
  3145. "BT_COEX_LOW",
  3146. "BT_COEX_MID",
  3147. "BT_COEX_MID_NONSYNC",
  3148. "BT_COEX_HI_NONVOICE",
  3149. "BT_COEX_HI",
  3150. "BT_COEX_CRITICAL",
  3151. };
  3152. static const char *const wlan_power_state[] = {
  3153. "SLEEP",
  3154. "AWAKE",
  3155. "FULL_SLEEP",
  3156. };
  3157. static const char *const coex_psp_error_type[] = {
  3158. "DISABLED_STATE",
  3159. "VDEV_NULL",
  3160. "COEX_PSP_ENTRY",
  3161. "ZERO_INTERVAL",
  3162. "COEX_PSP_EXIT",
  3163. "READY_DISABLED",
  3164. "READY_NOT_DISABLED",
  3165. "POLL_PKT_DROPPED",
  3166. "SET_TIMER_PARAM",
  3167. };
  3168. static const char *const wlan_phymode[] = {
  3169. "A",
  3170. "G",
  3171. "B",
  3172. "G_ONLY",
  3173. "NA_HT20",
  3174. "NG_HT20",
  3175. "NA_HT40",
  3176. "NG_HT40",
  3177. "AC_VHT20",
  3178. "AC_VHT40",
  3179. "AC_VHT80",
  3180. "AC_VHT20_2G",
  3181. "AC_VHT40_2G",
  3182. "AC_VHT80_2G",
  3183. "UNKNOWN",
  3184. };
  3185. static const char *const wlan_curr_band[] = {
  3186. "2G",
  3187. "5G",
  3188. };
  3189. dbg_id_str = dbglog_get_msg(mod_id, dbg_id);
  3190. switch (dbg_id) {
  3191. case COEX_SYSTEM_UPDATE:
  3192. if (numargs == 1 && args[0] < 9) {
  3193. dbglog_printf(timestamp, vap_id, "%s: %s", dbg_id_str,
  3194. coex_system_status[args[0]]);
  3195. } else if (numargs >= 5 && args[0] < 9 && args[2] < 9) {
  3196. dbglog_printf(timestamp, vap_id,
  3197. "%s: %s, WlanSysState(0x%x), %s, NumChains(%u), AggrLimit(%u)",
  3198. dbg_id_str, coex_system_status[args[0]],
  3199. args[1], coex_trf_mgmt_type[args[2]],
  3200. args[3], args[4]);
  3201. } else {
  3202. return false;
  3203. }
  3204. break;
  3205. case COEX_SCHED_START:
  3206. if (numargs >= 5 && args[0] < 5 && args[2] < 9 && args[3] < 4
  3207. && args[4] < 4) {
  3208. if (args[1] == 0xffffffff) {
  3209. dbglog_printf(timestamp, vap_id,
  3210. "%s: %s, DETERMINE_DURATION, %s, %s, %s",
  3211. dbg_id_str,
  3212. coex_sched_req[args[0]],
  3213. coex_trf_mgmt_type[args[2]],
  3214. wlan_rx_xput_status[args[3]],
  3215. wlan_rssi_type[args[4]]);
  3216. } else {
  3217. dbglog_printf(timestamp, vap_id,
  3218. "%s: %s, IntvlDur(%u), %s, %s, %s",
  3219. dbg_id_str,
  3220. coex_sched_req[args[0]], args[1],
  3221. coex_trf_mgmt_type[args[2]],
  3222. wlan_rx_xput_status[args[3]],
  3223. wlan_rssi_type[args[4]]);
  3224. }
  3225. } else {
  3226. return false;
  3227. }
  3228. break;
  3229. case COEX_SCHED_RESULT:
  3230. if (numargs >= 5 && args[0] < 5 && args[1] < 9 && args[2] < 9) {
  3231. dbglog_printf(timestamp, vap_id,
  3232. "%s: %s, %s, %s, CoexMgrPolicy(%u), IdleOverride(%u)",
  3233. dbg_id_str, coex_sched_req[args[0]],
  3234. coex_trf_mgmt_type[args[1]],
  3235. coex_trf_mgmt_type[args[2]], args[3],
  3236. args[4]);
  3237. } else {
  3238. return false;
  3239. }
  3240. break;
  3241. case COEX_BT_SCHEME:
  3242. if (numargs >= 1 && args[0] < 6) {
  3243. dbglog_printf(timestamp, vap_id, "%s: %s", dbg_id_str,
  3244. coex_bt_scheme[args[0]]);
  3245. } else {
  3246. return false;
  3247. }
  3248. break;
  3249. case COEX_TRF_FREERUN:
  3250. if (numargs >= 5 && args[0] < 7) {
  3251. dbglog_printf(timestamp, vap_id,
  3252. "%s: %s, AllocatedBtIntvls(%u), BtIntvlCnt(%u), AllocatedWlanIntvls(%u), WlanIntvlCnt(%u)",
  3253. dbg_id_str, coex_sched_type[args[0]],
  3254. args[1], args[2], args[3], args[4]);
  3255. } else {
  3256. return false;
  3257. }
  3258. break;
  3259. case COEX_TRF_SHAPE_PM: /* used by ocs now */
  3260. if (numargs >= 3) {
  3261. dbglog_printf(timestamp, vap_id,
  3262. "%s: IntvlLength(%u), BtDuration(%u), WlanDuration(%u)",
  3263. dbg_id_str, args[0], args[1], args[2]);
  3264. } else {
  3265. return false;
  3266. }
  3267. break;
  3268. case COEX_SYSTEM_MONITOR:
  3269. if (numargs >= 5 && args[1] < 4 && args[4] < 4) {
  3270. dbglog_printf(timestamp, vap_id,
  3271. "%s: WlanRxCritical(%u), %s, MinDirectRxRate(%u), MonitorActiveNum(%u), %s",
  3272. dbg_id_str, args[0],
  3273. wlan_rx_xput_status[args[1]], args[2],
  3274. args[3], wlan_rssi_type[args[4]]);
  3275. } else {
  3276. return false;
  3277. }
  3278. break;
  3279. case COEX_RX_RATE:
  3280. if (numargs >= 5 && args[4] < 3) {
  3281. dbglog_printf(timestamp, vap_id,
  3282. "%s: NumUnderThreshPeers(%u), MinDirectRate(%u), LastRateSample(%u), DeltaT(%u), %s",
  3283. dbg_id_str, args[0], args[1], args[2],
  3284. args[3],
  3285. wal_peer_rx_rate_stats_event_sent[args
  3286. [4]]);
  3287. } else {
  3288. return false;
  3289. }
  3290. break;
  3291. case COEX_WLAN_INTERVAL_START:
  3292. if (numargs >= 5) {
  3293. dbglog_printf(timestamp, vap_id,
  3294. "%s: WlanIntvlCnt(%u), Duration(%u), Weight(%u), BaseIdleOverride(%u), WeightMat[0](0x%x)",
  3295. dbg_id_str, args[0], args[1], args[2],
  3296. args[3], args[4]);
  3297. } else {
  3298. return false;
  3299. }
  3300. break;
  3301. case COEX_WLAN_POSTPAUSE_INTERVAL_START:
  3302. if (numargs >= 4) {
  3303. dbglog_printf(timestamp, vap_id,
  3304. "%s: WlanPostPauseIntvlCnt(%u), XputMonitorActiveNum(%u), Duration(%u), Weight(%u)",
  3305. dbg_id_str, args[0], args[1], args[2],
  3306. args[3]);
  3307. } else {
  3308. return false;
  3309. }
  3310. break;
  3311. case COEX_BT_INTERVAL_START:
  3312. if (numargs >= 5) {
  3313. dbglog_printf(timestamp, vap_id,
  3314. "%s: BtIntvlCnt(%u), Duration(%u), Weight(%u), BaseIdleOverride(%u), WeightMat[0](0x%x), ",
  3315. dbg_id_str, args[0], args[1], args[2],
  3316. args[3], args[4]);
  3317. } else {
  3318. return false;
  3319. }
  3320. break;
  3321. case COEX_POWER_CHANGE:
  3322. if (numargs >= 3 && args[1] < 3 && args[2] < 3) {
  3323. dbglog_printf(timestamp, vap_id,
  3324. "%s: Event(0x%x) %s->%s", dbg_id_str,
  3325. args[0], wlan_power_state[args[1]],
  3326. wlan_power_state[args[2]]);
  3327. } else {
  3328. return false;
  3329. }
  3330. break;
  3331. case COEX_CHANNEL_CHANGE:
  3332. if (numargs >= 5 && args[3] < 2 && args[4] < 15) {
  3333. dbglog_printf(timestamp, vap_id,
  3334. "%s: %uMhz->%uMhz, WlanSysState(0x%x), CurrBand(%s), PhyMode(%s)",
  3335. dbg_id_str, args[0], args[1], args[2],
  3336. wlan_curr_band[args[3]],
  3337. wlan_phymode[args[4]]);
  3338. } else {
  3339. return false;
  3340. }
  3341. break;
  3342. case COEX_PSP_MGR_ENTER:
  3343. if (numargs >= 5 && args[0] < 23 &&
  3344. args[1] < 6 && args[3] < 2) {
  3345. dbglog_printf(timestamp, vap_id,
  3346. "%s: %s, %s, PsPollAvg(%u), %s, CurrT(%u)",
  3347. dbg_id_str, wlan_psp_stimulus[args[0]],
  3348. coex_pspoll_state[args[1]], args[2],
  3349. coex_scheduler_interval[args[3]],
  3350. args[4]);
  3351. } else {
  3352. return false;
  3353. }
  3354. break;
  3355. /* Translate following into decimal */
  3356. case COEX_SINGLECHAIN_DBG_1:
  3357. case COEX_SINGLECHAIN_DBG_2:
  3358. case COEX_SINGLECHAIN_DBG_3:
  3359. case COEX_MULTICHAIN_DBG_1:
  3360. case COEX_MULTICHAIN_DBG_2:
  3361. case COEX_MULTICHAIN_DBG_3:
  3362. case BTCOEX_DBG_MCI_1:
  3363. case BTCOEX_DBG_MCI_2:
  3364. case BTCOEX_DBG_MCI_3:
  3365. case BTCOEX_DBG_MCI_4:
  3366. case BTCOEX_DBG_MCI_5:
  3367. case BTCOEX_DBG_MCI_6:
  3368. case BTCOEX_DBG_MCI_7:
  3369. case BTCOEX_DBG_MCI_8:
  3370. case BTCOEX_DBG_MCI_9:
  3371. case BTCOEX_DBG_MCI_10:
  3372. if (numargs > 0) {
  3373. dbglog_printf_no_line_break(timestamp, vap_id, "%s: %u",
  3374. dbg_id_str, args[0]);
  3375. for (i = 1; i < numargs; i++)
  3376. printk("%u", args[i]);
  3377. printk("\n");
  3378. } else {
  3379. return false;
  3380. }
  3381. break;
  3382. case COEX_LinkID:
  3383. if (numargs >= 4) {
  3384. if (args[0]) { /* Add profile */
  3385. dbglog_printf(timestamp, vap_id,
  3386. "%s Alloc: LocalID(%u), RemoteID(%u), MinFreeLocalID(%u)",
  3387. dbg_id_str, args[1], args[2],
  3388. args[3]);
  3389. } else { /* Remove profile */
  3390. dbglog_printf(timestamp, vap_id,
  3391. "%s Dealloc: LocalID(%u), RemoteID(%u), MinFreeLocalID(%u)",
  3392. dbg_id_str, args[1], args[2],
  3393. args[3]);
  3394. }
  3395. } else {
  3396. return false;
  3397. }
  3398. break;
  3399. case COEX_PSP_MGR_RESULT:
  3400. if (numargs >= 5 && args[0] < 6) {
  3401. dbglog_printf(timestamp, vap_id,
  3402. "%s: %s, PsPollAvg(%u), EstimationOverrun(%u), EstimationUnderun(%u), NotReadyErr(%u)",
  3403. dbg_id_str, coex_pspoll_state[args[0]],
  3404. args[1], args[2], args[3], args[4]);
  3405. } else {
  3406. return false;
  3407. }
  3408. break;
  3409. case COEX_TRF_SHAPE_PSP:
  3410. if (numargs >= 5 && args[0] < 7 && args[1] < 7) {
  3411. dbglog_printf(timestamp, vap_id,
  3412. "%s: %s, %s, Dur(%u), BtTriggerRecvd(%u), PspWlanCritical(%u)",
  3413. dbg_id_str, coex_sched_type[args[0]],
  3414. wlan_weight[args[1]], args[2], args[3],
  3415. args[4]);
  3416. } else {
  3417. return false;
  3418. }
  3419. break;
  3420. case COEX_PSP_SPEC_POLL:
  3421. if (numargs >= 5) {
  3422. dbglog_printf(timestamp, vap_id,
  3423. "%s: PsPollSpecEna(%u), Count(%u), NextTS(%u), AllowSpecPsPollTx(%u), Intvl(%u)",
  3424. dbg_id_str, args[0], args[1], args[2],
  3425. args[3], args[4]);
  3426. } else {
  3427. return false;
  3428. }
  3429. break;
  3430. case COEX_PSP_READY_STATE:
  3431. if (numargs >= 5) {
  3432. dbglog_printf(timestamp, vap_id,
  3433. "%s: T2NonWlan(%u), CoexSchedulerEndTS(%u), MoreData(%u), PSPRespExpectedTS(%u), NonWlanIdleT(%u)",
  3434. dbg_id_str, args[0], args[1], args[2],
  3435. args[3], args[4]);
  3436. } else {
  3437. return false;
  3438. }
  3439. break;
  3440. case COEX_PSP_NONWLAN_INTERVAL:
  3441. if (numargs >= 4) {
  3442. dbglog_printf(timestamp, vap_id,
  3443. "%s: NonWlanBaseIntvl(%u), NonWlanIdleT(%u), PSPSpecIntvl(%u), ApRespTimeout(%u)",
  3444. dbg_id_str, args[0], args[1], args[2],
  3445. args[3]);
  3446. } else {
  3447. return false;
  3448. }
  3449. break;
  3450. case COEX_PSP_ERROR:
  3451. if (numargs >= 1 && args[0] < 9) {
  3452. dbglog_printf_no_line_break(timestamp, vap_id, "%s: %s",
  3453. dbg_id_str,
  3454. coex_psp_error_type[args
  3455. [0]]);
  3456. for (i = 1; i < numargs; i++) {
  3457. AR_DEBUG_PRINTF(ATH_DEBUG_INFO,
  3458. (", %u", args[i]));
  3459. }
  3460. AR_DEBUG_PRINTF(ATH_DEBUG_INFO, ("\n"));
  3461. } else {
  3462. return false;
  3463. }
  3464. break;
  3465. case COEX_PSP_STAT_1:
  3466. if (numargs >= 5) {
  3467. dbglog_printf(timestamp, vap_id,
  3468. "%s: ApResp0(%u), ApResp1(%u), ApResp2(%u), ApResp3(%u), ApResp4(%u)",
  3469. dbg_id_str, args[0], args[1], args[2],
  3470. args[3], args[4]);
  3471. } else {
  3472. return false;
  3473. }
  3474. break;
  3475. case COEX_PSP_STAT_2:
  3476. if (numargs >= 5) {
  3477. dbglog_printf(timestamp, vap_id,
  3478. "%s: DataPt(%u), Max(%u), NextApRespIndex(%u), NumOfValidDataPts(%u), PsPollAvg(%u)",
  3479. dbg_id_str, args[0], args[1], args[2],
  3480. args[3], args[4]);
  3481. } else {
  3482. return false;
  3483. }
  3484. break;
  3485. case COEX_PSP_RX_STATUS_STATE_1:
  3486. if (numargs >= 5) {
  3487. if (args[2]) {
  3488. dbglog_printf(timestamp, vap_id,
  3489. "%s: RsExpectedTS(%u), RespActualTS(%u), Overrun, RsOverrunT(%u), RsRxDur(%u)",
  3490. dbg_id_str, args[0], args[1],
  3491. args[3], args[4]);
  3492. } else {
  3493. dbglog_printf(timestamp, vap_id,
  3494. "%s: RsExpectedTS(%u), RespActualTS(%u), Underrun, RsUnderrunT(%u), RsRxDur(%u)",
  3495. dbg_id_str, args[0], args[1],
  3496. args[3], args[4]);
  3497. }
  3498. } else {
  3499. return false;
  3500. }
  3501. break;
  3502. default:
  3503. return false;
  3504. }
  3505. return true;
  3506. }
  3507. static A_BOOL
  3508. dbglog_beacon_print_handler(uint32_t mod_id,
  3509. uint16_t vap_id,
  3510. uint32_t dbg_id,
  3511. uint32_t timestamp,
  3512. uint16_t numargs, uint32_t *args)
  3513. {
  3514. static const char *const states[] = {
  3515. "INIT",
  3516. "ADJUST_START",
  3517. "ADJUSTING",
  3518. "ADJUST_HOLD",
  3519. };
  3520. static const char *const events[] = {
  3521. "ADJUST_START",
  3522. "ADJUST_RESTART",
  3523. "ADJUST_STOP",
  3524. "ADJUST_PAUSE",
  3525. "ADJUST_UNPAUSE",
  3526. "ADJUST_INC_SLOP_STEP",
  3527. "ADJUST_HOLD",
  3528. "ADJUST_HOLD_TIME_OUT",
  3529. };
  3530. switch (dbg_id) {
  3531. case DBGLOG_DBGID_SM_FRAMEWORK_PROXY_DBGLOG_MSG:
  3532. dbglog_sm_print(timestamp, vap_id, numargs, args, "EARLY_RX",
  3533. states, QDF_ARRAY_SIZE(states), events,
  3534. QDF_ARRAY_SIZE(events));
  3535. break;
  3536. case BEACON_EVENT_EARLY_RX_BMISS_STATUS:
  3537. if (numargs == 3) {
  3538. dbglog_printf(timestamp, vap_id,
  3539. "early_rx bmiss status:rcv=%d total=%d miss=%d",
  3540. args[0], args[1], args[2]);
  3541. }
  3542. break;
  3543. case BEACON_EVENT_EARLY_RX_SLEEP_SLOP:
  3544. if (numargs == 1) {
  3545. dbglog_printf(timestamp, vap_id,
  3546. "early_rx update sleep_slop:%d", args[0]);
  3547. }
  3548. break;
  3549. case BEACON_EVENT_EARLY_RX_CONT_BMISS_TIMEOUT:
  3550. if (numargs == 1) {
  3551. dbglog_printf(timestamp, vap_id,
  3552. "early_rx cont bmiss timeout,update sleep_slop:%d",
  3553. args[0]);
  3554. }
  3555. break;
  3556. case BEACON_EVENT_EARLY_RX_PAUSE_SKIP_BCN_NUM:
  3557. if (numargs == 1) {
  3558. dbglog_printf(timestamp, vap_id,
  3559. "early_rx skip bcn num:%d", args[0]);
  3560. }
  3561. break;
  3562. case BEACON_EVENT_EARLY_RX_CLK_DRIFT:
  3563. if (numargs == 1) {
  3564. dbglog_printf(timestamp, vap_id,
  3565. "early_rx clk drift:%d", args[0]);
  3566. }
  3567. break;
  3568. case BEACON_EVENT_EARLY_RX_AP_DRIFT:
  3569. if (numargs == 1) {
  3570. dbglog_printf(timestamp, vap_id,
  3571. "early_rx ap drift:%d", args[0]);
  3572. }
  3573. break;
  3574. case BEACON_EVENT_EARLY_RX_BCN_TYPE:
  3575. if (numargs == 1) {
  3576. dbglog_printf(timestamp, vap_id,
  3577. "early_rx bcn type:%d", args[0]);
  3578. }
  3579. break;
  3580. default:
  3581. return false;
  3582. }
  3583. return true;
  3584. }
  3585. static A_BOOL
  3586. dbglog_data_txrx_print_handler(uint32_t mod_id,
  3587. uint16_t vap_id,
  3588. uint32_t dbg_id,
  3589. uint32_t timestamp,
  3590. uint16_t numargs, uint32_t *args)
  3591. {
  3592. switch (dbg_id) {
  3593. case DATA_TXRX_DBGID_RX_DATA_SEQ_LEN_INFO:
  3594. dbglog_printf(timestamp, vap_id,
  3595. "DATA RX seq=0x%x, len=0x%x, stored=0x%x, duperr=0x%x",
  3596. args[0], args[1], (args[2] & 0xffff0000) >> 16,
  3597. args[2] & 0x0000ffff);
  3598. break;
  3599. default:
  3600. return false;
  3601. }
  3602. return true;
  3603. }
  3604. static
  3605. A_BOOL dbglog_smps_print_handler(uint32_t mod_id,
  3606. uint16_t vap_id,
  3607. uint32_t dbg_id,
  3608. uint32_t timestamp,
  3609. uint16_t numargs, uint32_t *args)
  3610. {
  3611. static const char *const states[] = {
  3612. "S_INACTIVE",
  3613. "S_STATIC",
  3614. "S_DYNAMIC",
  3615. "S_STALLED",
  3616. "S_INACTIVE_WAIT",
  3617. "S_STATIC_WAIT",
  3618. "S_DYNAMIC_WAIT",
  3619. };
  3620. static const char *const events[] = {
  3621. "E_STOP",
  3622. "E_STOP_COMPL",
  3623. "E_START",
  3624. "E_STATIC",
  3625. "E_STATIC_COMPL",
  3626. "E_DYNAMIC",
  3627. "E_DYNAMIC_COMPL",
  3628. "E_STALL",
  3629. "E_RSSI_ABOVE_THRESH",
  3630. "E_RSSI_BELOW_THRESH",
  3631. "E_FORCED_NONE",
  3632. };
  3633. switch (dbg_id) {
  3634. case DBGLOG_DBGID_SM_FRAMEWORK_PROXY_DBGLOG_MSG:
  3635. dbglog_sm_print(timestamp, vap_id, numargs, args, "STA_SMPS SM",
  3636. states, QDF_ARRAY_SIZE(states), events,
  3637. QDF_ARRAY_SIZE(events));
  3638. break;
  3639. case STA_SMPS_DBGID_CREATE_PDEV_INSTANCE:
  3640. dbglog_printf(timestamp, vap_id, "STA_SMPS Create PDEV ctx %#x",
  3641. args[0]);
  3642. break;
  3643. case STA_SMPS_DBGID_CREATE_VIRTUAL_CHAN_INSTANCE:
  3644. dbglog_printf(timestamp, vap_id,
  3645. "STA_SMPS Create Virtual Chan ctx %#x", args[0]);
  3646. break;
  3647. case STA_SMPS_DBGID_DELETE_VIRTUAL_CHAN_INSTANCE:
  3648. dbglog_printf(timestamp, vap_id,
  3649. "STA_SMPS Delete Virtual Chan ctx %#x", args[0]);
  3650. break;
  3651. case STA_SMPS_DBGID_CREATE_STA_INSTANCE:
  3652. dbglog_printf(timestamp, vap_id, "STA_SMPS Create STA ctx %#x",
  3653. args[0]);
  3654. break;
  3655. case STA_SMPS_DBGID_DELETE_STA_INSTANCE:
  3656. dbglog_printf(timestamp, vap_id, "STA_SMPS Delete STA ctx %#x",
  3657. args[0]);
  3658. break;
  3659. case STA_SMPS_DBGID_VIRTUAL_CHAN_SMPS_START:
  3660. break;
  3661. case STA_SMPS_DBGID_VIRTUAL_CHAN_SMPS_STOP:
  3662. break;
  3663. case STA_SMPS_DBGID_SEND_SMPS_ACTION_FRAME:
  3664. dbglog_printf(timestamp, vap_id,
  3665. "STA_SMPS STA %#x Signal SMPS mode as %s; cb_flags %#x",
  3666. args[0],
  3667. (args[1] ==
  3668. 0 ? "DISABLED" : (args[1] ==
  3669. 0x1 ? "STATIC" : (args[1] ==
  3670. 0x3 ?
  3671. "DYNAMIC" :
  3672. "UNKNOWN"))),
  3673. args[2]);
  3674. break;
  3675. case STA_SMPS_DBGID_DTIM_EBT_EVENT_CHMASK_UPDATE:
  3676. dbglog_printf(timestamp, vap_id,
  3677. "STA_SMPS_DBGID_DTIM_EBT_EVENT_CHMASK_UPDATE");
  3678. break;
  3679. case STA_SMPS_DBGID_DTIM_CHMASK_UPDATE:
  3680. dbglog_printf(timestamp, vap_id,
  3681. "STA_SMPS_DBGID_DTIM_CHMASK_UPDATE tx_mask %#x rx_mask %#x arb_dtim_mask %#x",
  3682. args[0], args[1], args[2]);
  3683. break;
  3684. case STA_SMPS_DBGID_DTIM_BEACON_EVENT_CHMASK_UPDATE:
  3685. dbglog_printf(timestamp, vap_id,
  3686. "STA_SMPS_DBGID_DTIM_BEACON_EVENT_CHMASK_UPDATE");
  3687. break;
  3688. case STA_SMPS_DBGID_DTIM_POWER_STATE_CHANGE:
  3689. dbglog_printf(timestamp, vap_id,
  3690. "STA_SMPS_DBGID_DTIM_POWER_STATE_CHANGE cur_pwr_state %s new_pwr_state %s",
  3691. (args[0] ==
  3692. 0x1 ? "SLEEP" : (args[0] ==
  3693. 0x2 ? "AWAKE" : (args[0] ==
  3694. 0x3 ?
  3695. "FULL_SLEEP" :
  3696. "UNKNOWN"))),
  3697. (args[1] ==
  3698. 0x1 ? "SLEEP" : (args[1] ==
  3699. 0x2 ? "AWAKE" : (args[1] ==
  3700. 0x3 ?
  3701. "FULL_SLEEP" :
  3702. "UNKNOWN"))));
  3703. break;
  3704. case STA_SMPS_DBGID_DTIM_CHMASK_UPDATE_SLEEP:
  3705. dbglog_printf(timestamp, vap_id,
  3706. "STA_SMPS_DBGID_DTIM_CHMASK_UPDATE_SLEEP tx_mask %#x rx_mask %#x orig_rx %#x dtim_rx %#x",
  3707. args[0], args[1], args[2], args[3]);
  3708. break;
  3709. case STA_SMPS_DBGID_DTIM_CHMASK_UPDATE_AWAKE:
  3710. dbglog_printf(timestamp, vap_id,
  3711. "STA_SMPS_DBGID_DTIM_CHMASK_UPDATE_AWAKE tx_mask %#x rx_mask %#x orig_rx %#x",
  3712. args[0], args[1], args[2]);
  3713. break;
  3714. default:
  3715. dbglog_printf(timestamp, vap_id, "STA_SMPS: UNKNOWN DBGID!");
  3716. return false;
  3717. }
  3718. return true;
  3719. }
  3720. static A_BOOL
  3721. dbglog_p2p_print_handler(uint32_t mod_id,
  3722. uint16_t vap_id,
  3723. uint32_t dbg_id,
  3724. uint32_t timestamp, uint16_t numargs, uint32_t *args)
  3725. {
  3726. static const char *const states[] = {
  3727. "ACTIVE",
  3728. "DOZE",
  3729. "TX_BCN",
  3730. "CTWIN",
  3731. "OPPPS",
  3732. };
  3733. static const char *const events[] = {
  3734. "ONESHOT_NOA",
  3735. "CTWINDOW",
  3736. "PERIODIC_NOA",
  3737. "IDLE",
  3738. "NOA_CHANGED",
  3739. "TBTT",
  3740. "TX_BCN_CMP",
  3741. "OPPPS_OK",
  3742. "OPPPS_CHANGED",
  3743. };
  3744. switch (dbg_id) {
  3745. case DBGLOG_DBGID_SM_FRAMEWORK_PROXY_DBGLOG_MSG:
  3746. dbglog_sm_print(timestamp, vap_id, numargs, args, "P2P GO PS",
  3747. states, QDF_ARRAY_SIZE(states), events,
  3748. QDF_ARRAY_SIZE(events));
  3749. break;
  3750. default:
  3751. return false;
  3752. }
  3753. return true;
  3754. }
  3755. static A_BOOL
  3756. dbglog_pcielp_print_handler(uint32_t mod_id,
  3757. uint16_t vap_id,
  3758. uint32_t dbg_id,
  3759. uint32_t timestamp,
  3760. uint16_t numargs, uint32_t *args)
  3761. {
  3762. static const char *const states[] = {
  3763. "STOP",
  3764. "TX",
  3765. "RX",
  3766. "SLEEP",
  3767. "SUSPEND",
  3768. };
  3769. static const char *const events[] = {
  3770. "VDEV_UP",
  3771. "ALL_VDEV_DOWN",
  3772. "AWAKE",
  3773. "SLEEP",
  3774. "TX_ACTIVITY",
  3775. "TX_INACTIVITY",
  3776. "TX_AC_CHANGE",
  3777. "SUSPEND",
  3778. "RESUME",
  3779. };
  3780. switch (dbg_id) {
  3781. case DBGLOG_DBGID_SM_FRAMEWORK_PROXY_DBGLOG_MSG:
  3782. dbglog_sm_print(timestamp, vap_id, numargs, args, "PCIELP",
  3783. states, QDF_ARRAY_SIZE(states), events,
  3784. QDF_ARRAY_SIZE(events));
  3785. break;
  3786. default:
  3787. return false;
  3788. }
  3789. return true;
  3790. }
  3791. #ifdef WLAN_OPEN_SOURCE
  3792. static int dbglog_block_open(struct inode *inode, struct file *file)
  3793. {
  3794. struct fwdebug *fwlog = inode->i_private;
  3795. if (fwlog->fwlog_open)
  3796. return -EBUSY;
  3797. fwlog->fwlog_open = true;
  3798. file->private_data = inode->i_private;
  3799. return 0;
  3800. }
  3801. static int dbglog_block_release(struct inode *inode, struct file *file)
  3802. {
  3803. struct fwdebug *fwlog = inode->i_private;
  3804. fwlog->fwlog_open = false;
  3805. return 0;
  3806. }
  3807. static ssize_t dbglog_block_read(struct file *file,
  3808. char __user *user_buf,
  3809. size_t count, loff_t *ppos)
  3810. {
  3811. struct fwdebug *fwlog = file->private_data;
  3812. struct sk_buff *skb;
  3813. ssize_t ret_cnt;
  3814. size_t len = 0, not_copied;
  3815. char *buf;
  3816. int ret;
  3817. buf = vmalloc(count);
  3818. if (!buf)
  3819. return -ENOMEM;
  3820. spin_lock_bh(&fwlog->fwlog_queue.lock);
  3821. if (skb_queue_len(&fwlog->fwlog_queue) == 0) {
  3822. /* we must init under queue lock */
  3823. init_completion(&fwlog->fwlog_completion);
  3824. spin_unlock_bh(&fwlog->fwlog_queue.lock);
  3825. ret =
  3826. wait_for_completion_interruptible(&fwlog->fwlog_completion);
  3827. if (ret == -ERESTARTSYS) {
  3828. vfree(buf);
  3829. return ret;
  3830. }
  3831. spin_lock_bh(&fwlog->fwlog_queue.lock);
  3832. }
  3833. while ((skb = __skb_dequeue(&fwlog->fwlog_queue))) {
  3834. if (skb->len > count - len) {
  3835. /* not enough space, put skb back and leave */
  3836. __skb_queue_head(&fwlog->fwlog_queue, skb);
  3837. break;
  3838. }
  3839. memcpy(buf + len, skb->data, skb->len);
  3840. len += skb->len;
  3841. kfree_skb(skb);
  3842. }
  3843. spin_unlock_bh(&fwlog->fwlog_queue.lock);
  3844. /* FIXME: what to do if len == 0? */
  3845. not_copied = copy_to_user(user_buf, buf, len);
  3846. if (not_copied != 0) {
  3847. ret_cnt = -EFAULT;
  3848. goto out;
  3849. }
  3850. *ppos = *ppos + len;
  3851. ret_cnt = len;
  3852. out:
  3853. vfree(buf);
  3854. return ret_cnt;
  3855. }
  3856. static const struct file_operations fops_dbglog_block = {
  3857. .open = dbglog_block_open,
  3858. .release = dbglog_block_release,
  3859. .read = dbglog_block_read,
  3860. .owner = THIS_MODULE,
  3861. .llseek = default_llseek,
  3862. };
  3863. #ifdef WLAN_DEBUGFS
  3864. static void dbglog_debugfs_init(wmi_unified_t wmi_handle)
  3865. {
  3866. wmi_handle->debugfs_phy = debugfs_create_dir(CLD_DEBUGFS_DIR, NULL);
  3867. if (!wmi_handle->debugfs_phy) {
  3868. qdf_print("Failed to create WMI debug fs");
  3869. return;
  3870. }
  3871. debugfs_create_file(DEBUGFS_BLOCK_NAME, 0400,
  3872. wmi_handle->debugfs_phy, &wmi_handle->dbglog,
  3873. &fops_dbglog_block);
  3874. return;
  3875. }
  3876. static void dbglog_debugfs_remove(wmi_unified_t wmi_handle)
  3877. {
  3878. debugfs_remove_recursive(wmi_handle->debugfs_phy);
  3879. }
  3880. #else
  3881. static void dbglog_debugfs_init(wmi_unified_t wmi_handle)
  3882. {
  3883. }
  3884. static void dbglog_debugfs_remove(wmi_unified_t wmi_handle)
  3885. {
  3886. }
  3887. #endif /* End of WLAN_DEBUGFS */
  3888. #endif /* WLAN_OPEN_SOURCE */
  3889. /**
  3890. * cnss_diag_handle_crash_inject() - API to handle crash inject command
  3891. * @slot: pointer to struct dbglog_slot
  3892. *
  3893. * API to handle CNSS diag crash inject command
  3894. *
  3895. * Return: None
  3896. */
  3897. static void cnss_diag_handle_crash_inject(struct dbglog_slot *slot)
  3898. {
  3899. switch (slot->diag_type) {
  3900. case DIAG_TYPE_CRASH_INJECT:
  3901. if (slot->length != 2) {
  3902. AR_DEBUG_PRINTF(ATH_DEBUG_ERR,
  3903. ("crash_inject cmd error\n"));
  3904. return;
  3905. }
  3906. AR_DEBUG_PRINTF(ATH_DEBUG_INFO,
  3907. ("%s : DIAG_TYPE_CRASH_INJECT: %d %d\n",
  3908. __func__, slot->payload[0],
  3909. slot->payload[1]));
  3910. if (!tgt_assert_enable) {
  3911. AR_DEBUG_PRINTF(ATH_DEBUG_INFO,
  3912. ("%s: tgt Assert Disabled\n",
  3913. __func__));
  3914. return;
  3915. }
  3916. wma_cli_set2_command(0, (int)GEN_PARAM_CRASH_INJECT,
  3917. slot->payload[0],
  3918. slot->payload[1], GEN_CMD);
  3919. break;
  3920. default:
  3921. AR_DEBUG_PRINTF(ATH_DEBUG_ERR, ("Unknown cmd[%d] error\n",
  3922. slot->diag_type));
  3923. break;
  3924. }
  3925. }
  3926. #ifdef CNSS_GENL
  3927. /**
  3928. * cnss_diag_cmd_handler() - API to handle CNSS diag command
  3929. * @data: Data received
  3930. * @data_len: length of the data received
  3931. * @ctx: Pointer to stored context
  3932. * @pid: Process ID
  3933. *
  3934. * API to handle CNSS diag commands from user space
  3935. *
  3936. * Return: None
  3937. */
  3938. static void cnss_diag_cmd_handler(const void *data, int data_len,
  3939. void *ctx, int pid)
  3940. {
  3941. struct dbglog_slot *slot = NULL;
  3942. struct nlattr *tb[QCA_WLAN_VENDOR_ATTR_MAX + 1];
  3943. /*
  3944. * audit note: it is ok to pass a NULL policy here since a
  3945. * length check on the data is added later already
  3946. */
  3947. if (wlan_cfg80211_nla_parse(tb, CLD80211_ATTR_MAX,
  3948. data, data_len, NULL)) {
  3949. AR_DEBUG_PRINTF(ATH_DEBUG_ERR, ("%s: nla parse fails\n",
  3950. __func__));
  3951. return;
  3952. }
  3953. if (!tb[CLD80211_ATTR_DATA]) {
  3954. AR_DEBUG_PRINTF(ATH_DEBUG_ERR, ("%s: attr VENDOR_DATA fails\n",
  3955. __func__));
  3956. return;
  3957. }
  3958. if (nla_len(tb[CLD80211_ATTR_DATA]) != sizeof(struct dbglog_slot)) {
  3959. AR_DEBUG_PRINTF(ATH_DEBUG_ERR, ("%s: attr length check fails\n",
  3960. __func__));
  3961. return;
  3962. }
  3963. slot = (struct dbglog_slot *)nla_data(tb[CLD80211_ATTR_DATA]);
  3964. if (!slot) {
  3965. AR_DEBUG_PRINTF(ATH_DEBUG_ERR, ("%s: data NULL\n", __func__));
  3966. return;
  3967. }
  3968. cnss_diag_handle_crash_inject(slot);
  3969. return;
  3970. }
  3971. /**
  3972. * cnss_diag_activate_service() - API to register CNSS diag cmd handler
  3973. *
  3974. * API to register the CNSS diag command handler using new genl infra.
  3975. * Return type is zero to match with legacy prototype
  3976. *
  3977. * Return: 0
  3978. */
  3979. int cnss_diag_activate_service(void)
  3980. {
  3981. register_cld_cmd_cb(WLAN_NL_MSG_CNSS_DIAG, cnss_diag_cmd_handler, NULL);
  3982. return 0;
  3983. }
  3984. #else
  3985. /**
  3986. * brief cnss_diag_msg_callback() - Call back invoked by netlink service
  3987. *
  3988. * This function gets invoked by netlink service when a message is recevied
  3989. * from the cnss-diag application in user-space.
  3990. *
  3991. * param -
  3992. * - skb - skb with netlink message
  3993. *
  3994. * return - 0 for success, non zero for failure
  3995. */
  3996. static int cnss_diag_msg_callback(struct sk_buff *skb)
  3997. {
  3998. struct nlmsghdr *nlh;
  3999. uint8_t *msg;
  4000. nlh = (struct nlmsghdr *)skb->data;
  4001. if (!nlh) {
  4002. AR_DEBUG_PRINTF(ATH_DEBUG_ERR,
  4003. ("%s: Netlink header null\n", __func__));
  4004. return A_ERROR;
  4005. }
  4006. msg = NLMSG_DATA(nlh);
  4007. cnss_diag_handle_crash_inject((struct dbglog_slot *)msg);
  4008. return 0;
  4009. }
  4010. /**
  4011. * brief cnss_diag_activate_service() - Activate cnss_diag message handler
  4012. *
  4013. * This function registers a handler to receive netlink message from
  4014. * an cnss-diag application process.
  4015. *
  4016. * param -
  4017. * - None
  4018. *
  4019. * return - 0 for success, non zero for failure
  4020. */
  4021. int cnss_diag_activate_service(void)
  4022. {
  4023. int ret = 0;
  4024. /* Register the msg handler for msgs addressed to WLAN_NL_MSG_OEM */
  4025. ret = nl_srv_register(WLAN_NL_MSG_CNSS_DIAG, cnss_diag_msg_callback);
  4026. if (ret) {
  4027. AR_DEBUG_PRINTF(ATH_DEBUG_ERR,
  4028. ("CNSS-DIAG Registration failed"));
  4029. return ret;
  4030. }
  4031. return 0;
  4032. }
  4033. #endif
  4034. static A_BOOL
  4035. dbglog_wow_print_handler(uint32_t mod_id,
  4036. uint16_t vap_id,
  4037. uint32_t dbg_id,
  4038. uint32_t timestamp, uint16_t numargs, uint32_t *args)
  4039. {
  4040. switch (dbg_id) {
  4041. case WOW_NS_OFLD_ENABLE:
  4042. if (4 == numargs) {
  4043. dbglog_printf(timestamp, vap_id,
  4044. "Enable NS offload, for sender %02x%02x:%02x%02x:%02x%02x:%02x%02x:%02x%02x:%02x%02x:%02x%02x:%02x%02x",
  4045. *(uint8_t *) &args[0],
  4046. *((uint8_t *) &args[0] + 1),
  4047. *((uint8_t *) &args[0] + 2),
  4048. *((uint8_t *) &args[0] + 3),
  4049. *(uint8_t *) &args[1],
  4050. *((uint8_t *) &args[1] + 1),
  4051. *((uint8_t *) &args[1] + 2),
  4052. *((uint8_t *) &args[1] + 3),
  4053. *(uint8_t *) &args[2],
  4054. *((uint8_t *) &args[2] + 1),
  4055. *((uint8_t *) &args[2] + 2),
  4056. *((uint8_t *) &args[2] + 3),
  4057. *(uint8_t *) &args[3],
  4058. *((uint8_t *) &args[3] + 1),
  4059. *((uint8_t *) &args[3] + 2),
  4060. *((uint8_t *) &args[3] + 3));
  4061. } else {
  4062. return false;
  4063. }
  4064. break;
  4065. case WOW_ARP_OFLD_ENABLE:
  4066. if (1 == numargs) {
  4067. dbglog_printf(timestamp, vap_id,
  4068. "Enable ARP offload, for sender %d.%d.%d.%d",
  4069. *(uint8_t *) args,
  4070. *((uint8_t *) args + 1),
  4071. *((uint8_t *) args + 2),
  4072. *((uint8_t *) args + 3));
  4073. } else {
  4074. return false;
  4075. }
  4076. break;
  4077. case WOW_NS_ARP_OFLD_DISABLE:
  4078. if (0 == numargs) {
  4079. dbglog_printf(timestamp, vap_id,
  4080. "disable NS/ARP offload");
  4081. } else {
  4082. return false;
  4083. }
  4084. break;
  4085. case WOW_NS_RECEIVED:
  4086. if (4 == numargs) {
  4087. dbglog_printf(timestamp, vap_id,
  4088. "NS requested from %02x%02x:%02x%02x:%02x%02x:%02x%02x:%02x%02x:%02x%02x:%02x%02x:%02x%02x",
  4089. *(uint8_t *) &args[0],
  4090. *((uint8_t *) &args[0] + 1),
  4091. *((uint8_t *) &args[0] + 2),
  4092. *((uint8_t *) &args[0] + 3),
  4093. *(uint8_t *) &args[1],
  4094. *((uint8_t *) &args[1] + 1),
  4095. *((uint8_t *) &args[1] + 2),
  4096. *((uint8_t *) &args[1] + 3),
  4097. *(uint8_t *) &args[2],
  4098. *((uint8_t *) &args[2] + 1),
  4099. *((uint8_t *) &args[2] + 2),
  4100. *((uint8_t *) &args[2] + 3),
  4101. *(uint8_t *) &args[3],
  4102. *((uint8_t *) &args[3] + 1),
  4103. *((uint8_t *) &args[3] + 2),
  4104. *((uint8_t *) &args[3] + 3));
  4105. } else {
  4106. return false;
  4107. }
  4108. break;
  4109. case WOW_NS_REPLIED:
  4110. if (4 == numargs) {
  4111. dbglog_printf(timestamp, vap_id,
  4112. "NS replied to %02x%02x:%02x%02x:%02x%02x:%02x%02x:%02x%02x:%02x%02x:%02x%02x:%02x%02x",
  4113. *(uint8_t *) &args[0],
  4114. *((uint8_t *) &args[0] + 1),
  4115. *((uint8_t *) &args[0] + 2),
  4116. *((uint8_t *) &args[0] + 3),
  4117. *(uint8_t *) &args[1],
  4118. *((uint8_t *) &args[1] + 1),
  4119. *((uint8_t *) &args[1] + 2),
  4120. *((uint8_t *) &args[1] + 3),
  4121. *(uint8_t *) &args[2],
  4122. *((uint8_t *) &args[2] + 1),
  4123. *((uint8_t *) &args[2] + 2),
  4124. *((uint8_t *) &args[2] + 3),
  4125. *(uint8_t *) &args[3],
  4126. *((uint8_t *) &args[3] + 1),
  4127. *((uint8_t *) &args[3] + 2),
  4128. *((uint8_t *) &args[3] + 3));
  4129. } else {
  4130. return false;
  4131. }
  4132. break;
  4133. case WOW_ARP_RECEIVED:
  4134. if (1 == numargs) {
  4135. dbglog_printf(timestamp, vap_id,
  4136. "ARP requested from %d.%d.%d.%d",
  4137. *(uint8_t *) args,
  4138. *((uint8_t *) args + 1),
  4139. *((uint8_t *) args + 2),
  4140. *((uint8_t *) args + 3));
  4141. } else {
  4142. return false;
  4143. }
  4144. break;
  4145. break;
  4146. case WOW_ARP_REPLIED:
  4147. if (1 == numargs) {
  4148. dbglog_printf(timestamp, vap_id,
  4149. "ARP replied to %d.%d.%d.%d",
  4150. *(uint8_t *) args,
  4151. *((uint8_t *) args + 1),
  4152. *((uint8_t *) args + 2),
  4153. *((uint8_t *) args + 3));
  4154. } else {
  4155. return false;
  4156. }
  4157. break;
  4158. default:
  4159. return false;
  4160. }
  4161. return true;
  4162. }
  4163. int dbglog_parser_type_init(wmi_unified_t wmi_handle, int type)
  4164. {
  4165. if (type >= DBGLOG_PROCESS_MAX)
  4166. return A_ERROR;
  4167. dbglog_process_type = type;
  4168. gprint_limiter = false;
  4169. return A_OK;
  4170. }
  4171. int dbglog_init(wmi_unified_t wmi_handle)
  4172. {
  4173. int res = 0;
  4174. OS_MEMSET(mod_print, 0, sizeof(mod_print));
  4175. dbglog_reg_modprint(WLAN_MODULE_STA_PWRSAVE,
  4176. dbglog_sta_powersave_print_handler);
  4177. dbglog_reg_modprint(WLAN_MODULE_AP_PWRSAVE,
  4178. dbglog_ap_powersave_print_handler);
  4179. dbglog_reg_modprint(WLAN_MODULE_WAL, dbglog_wal_print_handler);
  4180. dbglog_reg_modprint(WLAN_MODULE_SCAN, dbglog_scan_print_handler);
  4181. dbglog_reg_modprint(WLAN_MODULE_RATECTRL,
  4182. dbglog_ratectrl_print_handler);
  4183. dbglog_reg_modprint(WLAN_MODULE_ANI, dbglog_ani_print_handler);
  4184. dbglog_reg_modprint(WLAN_MODULE_COEX, dbglog_coex_print_handler);
  4185. dbglog_reg_modprint(WLAN_MODULE_BEACON, dbglog_beacon_print_handler);
  4186. dbglog_reg_modprint(WLAN_MODULE_WOW, dbglog_wow_print_handler);
  4187. dbglog_reg_modprint(WLAN_MODULE_DATA_TXRX,
  4188. dbglog_data_txrx_print_handler);
  4189. dbglog_reg_modprint(WLAN_MODULE_STA_SMPS, dbglog_smps_print_handler);
  4190. dbglog_reg_modprint(WLAN_MODULE_P2P, dbglog_p2p_print_handler);
  4191. dbglog_reg_modprint(WLAN_MODULE_PCIELP, dbglog_pcielp_print_handler);
  4192. dbglog_reg_modprint(WLAN_MODULE_IBSS_PWRSAVE,
  4193. dbglog_ibss_powersave_print_handler);
  4194. tgt_assert_enable = wmi_handle->tgt_force_assert_enable;
  4195. /* Register handler for F3 or debug messages */
  4196. res =
  4197. wmi_unified_register_event_handler(wmi_handle,
  4198. wmi_dbg_msg_event_id,
  4199. dbglog_parse_debug_logs,
  4200. WMA_RX_WORK_CTX);
  4201. if (res != 0)
  4202. return res;
  4203. /* Register handler for FW diag events */
  4204. res = wmi_unified_register_event_handler(wmi_handle,
  4205. wmi_diag_container_event_id,
  4206. fw_diag_data_event_handler,
  4207. WMA_RX_WORK_CTX);
  4208. if (res != 0)
  4209. return res;
  4210. /* Register handler for new FW diag Event, LOG, MSG combined */
  4211. res = wmi_unified_register_event_handler(wmi_handle, wmi_diag_event_id,
  4212. diag_fw_handler,
  4213. WMA_RX_WORK_CTX);
  4214. if (res != 0)
  4215. return res;
  4216. #ifdef WLAN_OPEN_SOURCE
  4217. /* Initialize the fw debug log queue */
  4218. skb_queue_head_init(&wmi_handle->dbglog.fwlog_queue);
  4219. init_completion(&wmi_handle->dbglog.fwlog_completion);
  4220. /* Initialize debugfs */
  4221. dbglog_debugfs_init(wmi_handle);
  4222. #endif /* WLAN_OPEN_SOURCE */
  4223. return res;
  4224. }
  4225. int dbglog_deinit(wmi_unified_t wmi_handle)
  4226. {
  4227. int res = 0;
  4228. #ifdef WLAN_OPEN_SOURCE
  4229. /* DeInitialize the fw debug log queue */
  4230. skb_queue_purge(&wmi_handle->dbglog.fwlog_queue);
  4231. complete(&wmi_handle->dbglog.fwlog_completion);
  4232. /* Deinitialize the debugfs */
  4233. dbglog_debugfs_remove(wmi_handle);
  4234. #endif /* WLAN_OPEN_SOURCE */
  4235. tgt_assert_enable = 0;
  4236. res =
  4237. wmi_unified_unregister_event_handler(wmi_handle,
  4238. wmi_dbg_msg_event_id);
  4239. if (res != 0)
  4240. return res;
  4241. return res;
  4242. }