son_api.c 36 KB

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  1. /*
  2. * Copyright (c) 2021, The Linux Foundation. All rights reserved.
  3. * Copyright (c) 2021-2023 Qualcomm Innovation Center, Inc. All rights reserved.
  4. *
  5. * Permission to use, copy, modify, and/or distribute this software for any
  6. * purpose with or without fee is hereby granted, provided that the above
  7. * copyright notice and this permission notice appear in all copies.
  8. * THE SOFTWARE IS PROVIDED "AS IS" AND THE AUTHOR DISCLAIMS ALL WARRANTIES
  9. * WITH REGARD TO THIS SOFTWARE INCLUDING ALL IMPLIED WARRANTIES OF
  10. * MERCHANTABILITY AND FITNESS. IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR
  11. * ANY SPECIAL, DIRECT, INDIRECT, OR CONSEQUENTIAL DAMAGES OR ANY DAMAGES
  12. * WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR PROFITS, WHETHER IN AN
  13. * ACTION OF CONTRACT, NEGLIGENCE OR OTHER TORTIOUS ACTION, ARISING OUT OF
  14. * OR IN CONNECTION WITH THE USE OR PERFORMANCE OF THIS SOFTWARE.
  15. */
  16. /**
  17. * DOC: contains interface prototypes for son api
  18. */
  19. #include <son_api.h>
  20. #include <wlan_reg_services_api.h>
  21. #include <wlan_mlme_api.h>
  22. #include <ieee80211_external.h>
  23. #include <wlan_cfg80211_scan.h>
  24. #include <wlan_mlme_main.h>
  25. /**
  26. * struct son_mlme_deliver_cbs - son mlme deliver callbacks
  27. * @deliver_opmode: cb to deliver opmode
  28. * @deliver_smps: cb to deliver smps
  29. */
  30. struct son_mlme_deliver_cbs {
  31. mlme_deliver_cb deliver_opmode;
  32. mlme_deliver_cb deliver_smps;
  33. };
  34. static struct son_mlme_deliver_cbs g_son_mlme_deliver_cbs;
  35. static struct son_cbs *g_son_cbs[WLAN_MAX_VDEVS];
  36. static qdf_spinlock_t g_cbs_lock;
  37. QDF_STATUS
  38. wlan_son_register_mlme_deliver_cb(struct wlan_objmgr_psoc *psoc,
  39. mlme_deliver_cb cb,
  40. enum SON_MLME_DELIVER_CB_TYPE type)
  41. {
  42. if (!psoc) {
  43. son_err("invalid psoc");
  44. return QDF_STATUS_E_INVAL;
  45. }
  46. switch (type) {
  47. case SON_MLME_DELIVER_CB_TYPE_OPMODE:
  48. g_son_mlme_deliver_cbs.deliver_opmode = cb;
  49. break;
  50. case SON_MLME_DELIVER_CB_TYPE_SMPS:
  51. g_son_mlme_deliver_cbs.deliver_smps = cb;
  52. break;
  53. default:
  54. son_err("invalid type");
  55. break;
  56. }
  57. return QDF_STATUS_SUCCESS;
  58. }
  59. /**
  60. * wlan_son_is_he_supported() - is he supported or not
  61. * @psoc: pointer to psoc
  62. *
  63. * Return: true if supports, false otherwise
  64. */
  65. #ifdef WLAN_FEATURE_11AX
  66. static bool wlan_son_is_he_supported(struct wlan_objmgr_psoc *psoc)
  67. {
  68. tDot11fIEhe_cap he_cap = {0};
  69. mlme_cfg_get_he_caps(psoc, &he_cap);
  70. return !!he_cap.present;
  71. }
  72. #else
  73. static bool wlan_son_is_he_supported(struct wlan_objmgr_psoc *psoc)
  74. {
  75. return false;
  76. }
  77. #endif /*WLAN_FEATURE_11AX*/
  78. QDF_STATUS wlan_son_peer_ext_stat_enable(struct wlan_objmgr_pdev *pdev,
  79. uint8_t *mac_addr,
  80. struct wlan_objmgr_vdev *vdev,
  81. uint32_t stats_count,
  82. uint32_t enable)
  83. {
  84. struct wlan_lmac_if_tx_ops *tx_ops;
  85. struct wlan_objmgr_psoc *psoc;
  86. if (!pdev) {
  87. son_err("invalid pdev");
  88. return QDF_STATUS_E_NULL_VALUE;
  89. }
  90. psoc = wlan_pdev_get_psoc(pdev);
  91. if (!psoc) {
  92. son_err("invalid psoc");
  93. return QDF_STATUS_E_NULL_VALUE;
  94. }
  95. tx_ops = wlan_psoc_get_lmac_if_txops(psoc);
  96. if (!tx_ops) {
  97. son_err("invalid tx_ops");
  98. return QDF_STATUS_E_NULL_VALUE;
  99. }
  100. if (tx_ops->son_tx_ops.peer_ext_stats_enable)
  101. return tx_ops->son_tx_ops.peer_ext_stats_enable(pdev,
  102. mac_addr, vdev,
  103. stats_count,
  104. enable);
  105. return QDF_STATUS_E_NULL_VALUE;
  106. }
  107. QDF_STATUS wlan_son_peer_req_inst_stats(struct wlan_objmgr_pdev *pdev,
  108. uint8_t *mac_addr,
  109. struct wlan_objmgr_vdev *vdev)
  110. {
  111. struct wlan_lmac_if_tx_ops *tx_ops;
  112. struct wlan_objmgr_psoc *psoc;
  113. if (!pdev) {
  114. son_err("invalid pdev");
  115. return QDF_STATUS_E_NULL_VALUE;
  116. }
  117. psoc = wlan_pdev_get_psoc(pdev);
  118. if (!psoc) {
  119. son_err("invalid psoc");
  120. return QDF_STATUS_E_NULL_VALUE;
  121. }
  122. tx_ops = wlan_psoc_get_lmac_if_txops(psoc);
  123. if (!tx_ops) {
  124. son_err("invalid tx_ops");
  125. return QDF_STATUS_E_NULL_VALUE;
  126. }
  127. if (tx_ops->son_tx_ops.son_send_null)
  128. return tx_ops->son_tx_ops.son_send_null(pdev, mac_addr, vdev);
  129. return QDF_STATUS_E_NULL_VALUE;
  130. }
  131. uint32_t wlan_son_get_chan_flag(struct wlan_objmgr_pdev *pdev,
  132. qdf_freq_t freq, bool flag_160,
  133. struct ch_params *chan_params)
  134. {
  135. uint32_t flags = 0;
  136. qdf_freq_t sec_freq;
  137. struct ch_params ch_width40_ch_params;
  138. uint8_t sub_20_channel_width = 0;
  139. enum phy_ch_width bandwidth = mlme_get_vht_ch_width();
  140. struct wlan_objmgr_psoc *psoc;
  141. bool is_he_enabled;
  142. struct ch_params ch_params;
  143. if (!pdev) {
  144. son_err("invalid pdev");
  145. return flags;
  146. }
  147. psoc = wlan_pdev_get_psoc(pdev);
  148. if (!psoc) {
  149. son_err("invalid psoc");
  150. return flags;
  151. }
  152. is_he_enabled = wlan_son_is_he_supported(psoc);
  153. wlan_mlme_get_sub_20_chan_width(wlan_pdev_get_psoc(pdev),
  154. &sub_20_channel_width);
  155. qdf_mem_zero(chan_params, sizeof(*chan_params));
  156. qdf_mem_zero(&ch_params, sizeof(ch_params));
  157. qdf_mem_zero(&ch_width40_ch_params, sizeof(ch_width40_ch_params));
  158. if (wlan_reg_is_24ghz_ch_freq(freq)) {
  159. if (bandwidth == CH_WIDTH_80P80MHZ ||
  160. bandwidth == CH_WIDTH_160MHZ ||
  161. bandwidth == CH_WIDTH_80MHZ)
  162. bandwidth = CH_WIDTH_40MHZ;
  163. }
  164. ch_params.ch_width = bandwidth;
  165. switch (bandwidth) {
  166. case CH_WIDTH_80P80MHZ:
  167. ch_params.ch_width = CH_WIDTH_80P80MHZ;
  168. if (wlan_reg_get_5g_bonded_channel_state_for_pwrmode(
  169. pdev, freq,
  170. &ch_params, REG_CURRENT_PWR_MODE) !=
  171. CHANNEL_STATE_INVALID) {
  172. if (!flag_160) {
  173. chan_params->ch_width = CH_WIDTH_80P80MHZ;
  174. wlan_reg_set_channel_params_for_pwrmode(
  175. pdev, freq, 0, chan_params,
  176. REG_CURRENT_PWR_MODE);
  177. }
  178. if (is_he_enabled)
  179. flags |= VENDOR_CHAN_FLAG2(
  180. QCA_WLAN_VENDOR_CHANNEL_PROP_FLAG_HE80_80);
  181. flags |= QCA_WLAN_VENDOR_CHANNEL_PROP_FLAG_VHT80_80;
  182. }
  183. bandwidth = CH_WIDTH_160MHZ;
  184. fallthrough;
  185. case CH_WIDTH_160MHZ:
  186. ch_params.ch_width = CH_WIDTH_160MHZ;
  187. if (wlan_reg_get_5g_bonded_channel_state_for_pwrmode(
  188. pdev, freq,
  189. &ch_params, REG_CURRENT_PWR_MODE) !=
  190. CHANNEL_STATE_INVALID) {
  191. if (flag_160) {
  192. chan_params->ch_width = CH_WIDTH_160MHZ;
  193. wlan_reg_set_channel_params_for_pwrmode(
  194. pdev, freq, 0, chan_params,
  195. REG_CURRENT_PWR_MODE);
  196. }
  197. if (is_he_enabled)
  198. flags |= VENDOR_CHAN_FLAG2(
  199. QCA_WLAN_VENDOR_CHANNEL_PROP_FLAG_HE160);
  200. flags |= QCA_WLAN_VENDOR_CHANNEL_PROP_FLAG_VHT160;
  201. }
  202. bandwidth = CH_WIDTH_80MHZ;
  203. fallthrough;
  204. case CH_WIDTH_80MHZ:
  205. ch_params.ch_width = CH_WIDTH_80MHZ;
  206. if (wlan_reg_get_5g_bonded_channel_state_for_pwrmode(
  207. pdev, freq,
  208. &ch_params, REG_CURRENT_PWR_MODE) !=
  209. CHANNEL_STATE_INVALID) {
  210. if (!flag_160 &&
  211. chan_params->ch_width != CH_WIDTH_80P80MHZ) {
  212. chan_params->ch_width = CH_WIDTH_80MHZ;
  213. wlan_reg_set_channel_params_for_pwrmode(
  214. pdev, freq, 0, chan_params,
  215. REG_CURRENT_PWR_MODE);
  216. }
  217. if (is_he_enabled)
  218. flags |= VENDOR_CHAN_FLAG2(
  219. QCA_WLAN_VENDOR_CHANNEL_PROP_FLAG_HE80);
  220. flags |= QCA_WLAN_VENDOR_CHANNEL_PROP_FLAG_VHT80;
  221. }
  222. bandwidth = CH_WIDTH_40MHZ;
  223. fallthrough;
  224. case CH_WIDTH_40MHZ:
  225. ch_width40_ch_params.ch_width = bandwidth;
  226. wlan_reg_set_channel_params_for_pwrmode(pdev, freq, 0,
  227. &ch_width40_ch_params,
  228. REG_CURRENT_PWR_MODE);
  229. if (ch_width40_ch_params.sec_ch_offset == LOW_PRIMARY_CH)
  230. sec_freq = freq + 20;
  231. else if (ch_width40_ch_params.sec_ch_offset == HIGH_PRIMARY_CH)
  232. sec_freq = freq - 20;
  233. else
  234. sec_freq = 0;
  235. if (wlan_reg_get_bonded_channel_state_for_pwrmode(
  236. pdev, freq,
  237. bandwidth, sec_freq,
  238. REG_CURRENT_PWR_MODE) !=
  239. CHANNEL_STATE_INVALID) {
  240. if (ch_width40_ch_params.sec_ch_offset ==
  241. LOW_PRIMARY_CH) {
  242. if (is_he_enabled)
  243. flags |=
  244. QCA_WLAN_VENDOR_CHANNEL_PROP_FLAG_HE40PLUS;
  245. flags |=
  246. QCA_WLAN_VENDOR_CHANNEL_PROP_FLAG_VHT40PLUS;
  247. flags |=
  248. QCA_WLAN_VENDOR_CHANNEL_PROP_FLAG_HT40PLUS;
  249. } else if (ch_width40_ch_params.sec_ch_offset ==
  250. HIGH_PRIMARY_CH) {
  251. if (is_he_enabled)
  252. flags |=
  253. QCA_WLAN_VENDOR_CHANNEL_PROP_FLAG_HE40MINUS;
  254. flags |=
  255. QCA_WLAN_VENDOR_CHANNEL_PROP_FLAG_VHT40MINUS;
  256. flags |=
  257. QCA_WLAN_VENDOR_CHANNEL_PROP_FLAG_HT40PLUS;
  258. }
  259. }
  260. bandwidth = CH_WIDTH_20MHZ;
  261. fallthrough;
  262. case CH_WIDTH_20MHZ:
  263. flags |= QCA_WLAN_VENDOR_CHANNEL_PROP_FLAG_HT20;
  264. flags |= QCA_WLAN_VENDOR_CHANNEL_PROP_FLAG_VHT20;
  265. if (is_he_enabled)
  266. flags |= QCA_WLAN_VENDOR_CHANNEL_PROP_FLAG_HE20;
  267. bandwidth = CH_WIDTH_10MHZ;
  268. fallthrough;
  269. case CH_WIDTH_10MHZ:
  270. if (wlan_reg_get_bonded_channel_state_for_pwrmode(
  271. pdev, freq,
  272. bandwidth, 0,
  273. REG_CURRENT_PWR_MODE) !=
  274. CHANNEL_STATE_INVALID &&
  275. sub_20_channel_width == WLAN_SUB_20_CH_WIDTH_10)
  276. flags |= QCA_WLAN_VENDOR_CHANNEL_PROP_FLAG_HALF;
  277. bandwidth = CH_WIDTH_5MHZ;
  278. fallthrough;
  279. case CH_WIDTH_5MHZ:
  280. if (wlan_reg_get_bonded_channel_state_for_pwrmode(
  281. pdev, freq,
  282. bandwidth, 0,
  283. REG_CURRENT_PWR_MODE) !=
  284. CHANNEL_STATE_INVALID &&
  285. sub_20_channel_width == WLAN_SUB_20_CH_WIDTH_5)
  286. flags |= QCA_WLAN_VENDOR_CHANNEL_PROP_FLAG_QUARTER;
  287. break;
  288. default:
  289. son_info("invalid channel width value %d", bandwidth);
  290. }
  291. return flags;
  292. }
  293. QDF_STATUS wlan_son_peer_set_kickout_allow(struct wlan_objmgr_vdev *vdev,
  294. struct wlan_objmgr_peer *peer,
  295. bool kickout_allow)
  296. {
  297. struct peer_mlme_priv_obj *peer_priv;
  298. if (!peer) {
  299. son_err("invalid peer");
  300. return QDF_STATUS_E_INVAL;
  301. }
  302. if (!vdev) {
  303. son_err("invalid vdev");
  304. return QDF_STATUS_E_INVAL;
  305. }
  306. peer_priv = wlan_objmgr_peer_get_comp_private_obj(peer,
  307. WLAN_UMAC_COMP_MLME);
  308. if (!peer_priv) {
  309. son_err("invalid vdev");
  310. return QDF_STATUS_E_INVAL;
  311. }
  312. peer_priv->allow_kickout = kickout_allow;
  313. return QDF_STATUS_SUCCESS;
  314. }
  315. bool wlan_son_peer_is_kickout_allow(struct wlan_objmgr_vdev *vdev,
  316. uint8_t *macaddr)
  317. {
  318. bool kickout_allow = true;
  319. struct wlan_objmgr_peer *peer;
  320. struct wlan_objmgr_psoc *psoc;
  321. struct peer_mlme_priv_obj *peer_priv;
  322. if (!vdev) {
  323. son_err("invalid vdev");
  324. return kickout_allow;
  325. }
  326. psoc = wlan_vdev_get_psoc(vdev);
  327. if (!psoc) {
  328. son_err("invalid psoc");
  329. return kickout_allow;
  330. }
  331. peer = wlan_objmgr_get_peer_by_mac(psoc, macaddr,
  332. WLAN_SON_ID);
  333. if (!peer) {
  334. son_err("peer is null");
  335. return kickout_allow;
  336. }
  337. peer_priv = wlan_objmgr_peer_get_comp_private_obj(peer,
  338. WLAN_UMAC_COMP_MLME);
  339. if (!peer_priv) {
  340. son_err("invalid vdev");
  341. wlan_objmgr_peer_release_ref(peer, WLAN_SON_ID);
  342. return kickout_allow;
  343. }
  344. kickout_allow = peer_priv->allow_kickout;
  345. wlan_objmgr_peer_release_ref(peer, WLAN_SON_ID);
  346. return kickout_allow;
  347. }
  348. void wlan_son_ind_assoc_req_frm(struct wlan_objmgr_vdev *vdev,
  349. uint8_t *macaddr, bool is_reassoc,
  350. uint8_t *frame, uint16_t frame_len,
  351. QDF_STATUS status)
  352. {
  353. struct wlan_objmgr_peer *peer;
  354. struct wlan_lmac_if_rx_ops *rx_ops;
  355. struct wlan_objmgr_psoc *psoc;
  356. uint16_t assocstatus = STATUS_UNSPECIFIED_FAILURE;
  357. uint16_t sub_type = IEEE80211_FC0_SUBTYPE_ASSOC_REQ;
  358. if (!vdev) {
  359. son_err("invalid vdev");
  360. return;
  361. }
  362. psoc = wlan_vdev_get_psoc(vdev);
  363. if (!psoc) {
  364. son_err("invalid psoc");
  365. return;
  366. }
  367. rx_ops = wlan_psoc_get_lmac_if_rxops(psoc);
  368. if (!rx_ops || !rx_ops->son_rx_ops.process_mgmt_frame) {
  369. son_err("invalid rx ops");
  370. return;
  371. }
  372. peer = wlan_objmgr_get_peer_by_mac(psoc, macaddr,
  373. WLAN_SON_ID);
  374. if (!peer) {
  375. son_err("peer is null");
  376. return;
  377. }
  378. if (is_reassoc)
  379. sub_type = IEEE80211_FC0_SUBTYPE_REASSOC_REQ;
  380. if (QDF_IS_STATUS_SUCCESS(status))
  381. assocstatus = STATUS_SUCCESS;
  382. son_debug("subtype %u frame_len %u assocstatus %u",
  383. sub_type, frame_len, assocstatus);
  384. rx_ops->son_rx_ops.process_mgmt_frame(vdev, peer, sub_type,
  385. frame, frame_len,
  386. &assocstatus);
  387. wlan_objmgr_peer_release_ref(peer, WLAN_SON_ID);
  388. }
  389. static int wlan_son_deliver_mlme_event(struct wlan_objmgr_vdev *vdev,
  390. struct wlan_objmgr_peer *peer,
  391. uint32_t event,
  392. void *event_data)
  393. {
  394. struct wlan_objmgr_psoc *psoc;
  395. struct wlan_lmac_if_rx_ops *rx_ops;
  396. int ret;
  397. if (!vdev)
  398. return -EINVAL;
  399. psoc = wlan_vdev_get_psoc(vdev);
  400. if (!psoc)
  401. return -EINVAL;
  402. rx_ops = wlan_psoc_get_lmac_if_rxops(psoc);
  403. if (rx_ops && rx_ops->son_rx_ops.deliver_event) {
  404. son_debug("deliver mlme event %d", event);
  405. ret = rx_ops->son_rx_ops.deliver_event(vdev,
  406. peer,
  407. event,
  408. event_data);
  409. } else {
  410. return -EINVAL;
  411. }
  412. return ret;
  413. }
  414. int wlan_son_deliver_tx_power(struct wlan_objmgr_vdev *vdev,
  415. int32_t max_pwr)
  416. {
  417. int ret;
  418. son_debug("tx power %d", max_pwr);
  419. ret = wlan_son_deliver_mlme_event(vdev,
  420. NULL,
  421. MLME_EVENT_TX_PWR_CHANGE,
  422. &max_pwr);
  423. return ret;
  424. }
  425. int wlan_son_deliver_vdev_stop(struct wlan_objmgr_vdev *vdev)
  426. {
  427. int ret;
  428. struct wlan_vdev_state_event event;
  429. event.state = VDEV_STATE_STOPPED;
  430. son_debug("state %d", event.state);
  431. ret = wlan_son_deliver_mlme_event(vdev,
  432. NULL,
  433. MLME_EVENT_VDEV_STATE,
  434. &event);
  435. return ret;
  436. }
  437. int wlan_son_deliver_inst_rssi(struct wlan_objmgr_vdev *vdev,
  438. struct wlan_objmgr_peer *peer,
  439. uint32_t irssi)
  440. {
  441. struct wlan_peer_inst_rssi event;
  442. int ret;
  443. if (irssi > 0 && irssi <= 127) {
  444. event.iRSSI = irssi;
  445. event.valid = true;
  446. son_debug("irssi %d", event.iRSSI);
  447. } else {
  448. event.valid = false;
  449. son_debug("irssi invalid");
  450. }
  451. ret = wlan_son_deliver_mlme_event(vdev,
  452. peer,
  453. MLME_EVENT_INST_RSSI,
  454. &event);
  455. return ret;
  456. }
  457. int wlan_son_deliver_opmode(struct wlan_objmgr_vdev *vdev,
  458. uint8_t bw,
  459. uint8_t nss,
  460. uint8_t *addr)
  461. {
  462. struct wlan_objmgr_psoc *psoc;
  463. struct ieee80211_opmode_update_data opmode;
  464. if (!vdev)
  465. return -EINVAL;
  466. psoc = wlan_vdev_get_psoc(vdev);
  467. if (!psoc)
  468. return -EINVAL;
  469. opmode.max_chwidth = bw;
  470. opmode.num_streams = nss;
  471. qdf_mem_copy(opmode.macaddr, addr, QDF_MAC_ADDR_SIZE);
  472. son_debug("bw %d, nss %d, addr " QDF_MAC_ADDR_FMT,
  473. bw, nss, QDF_MAC_ADDR_REF(addr));
  474. if (!g_son_mlme_deliver_cbs.deliver_opmode) {
  475. son_err("invalid deliver opmode cb");
  476. return -EINVAL;
  477. }
  478. g_son_mlme_deliver_cbs.deliver_opmode(vdev,
  479. sizeof(opmode),
  480. (uint8_t *)&opmode);
  481. return 0;
  482. }
  483. int wlan_son_deliver_smps(struct wlan_objmgr_vdev *vdev,
  484. uint8_t is_static,
  485. uint8_t *addr)
  486. {
  487. struct wlan_objmgr_psoc *psoc;
  488. struct ieee80211_smps_update_data smps;
  489. if (!vdev)
  490. return -EINVAL;
  491. psoc = wlan_vdev_get_psoc(vdev);
  492. if (!psoc)
  493. return -EINVAL;
  494. smps.is_static = is_static;
  495. qdf_mem_copy(smps.macaddr, addr, QDF_MAC_ADDR_SIZE);
  496. son_debug("is_static %d, addr" QDF_MAC_ADDR_FMT,
  497. is_static, QDF_MAC_ADDR_REF(addr));
  498. if (!g_son_mlme_deliver_cbs.deliver_smps) {
  499. son_err("invalid deliver smps cb");
  500. return -EINVAL;
  501. }
  502. g_son_mlme_deliver_cbs.deliver_smps(vdev,
  503. sizeof(smps),
  504. (uint8_t *)&smps);
  505. return 0;
  506. }
  507. int wlan_son_deliver_rrm_rpt(struct wlan_objmgr_vdev *vdev,
  508. uint8_t *mac_addr,
  509. uint8_t *frm,
  510. uint32_t flen)
  511. {
  512. struct wlan_act_frm_info rrm_info;
  513. struct wlan_lmac_if_rx_ops *rx_ops;
  514. struct wlan_objmgr_psoc *psoc;
  515. struct wlan_objmgr_peer *peer;
  516. uint8_t sub_type = IEEE80211_FC0_SUBTYPE_ACTION;
  517. struct ieee80211_action ia;
  518. const uint8_t *ie, *pos, *end;
  519. uint8_t total_bcnrpt_count = 0;
  520. if (!vdev) {
  521. son_err("invalid vdev");
  522. return -EINVAL;
  523. }
  524. psoc = wlan_vdev_get_psoc(vdev);
  525. if (!psoc) {
  526. son_err("invalid psoc");
  527. return -EINVAL;
  528. }
  529. rx_ops = wlan_psoc_get_lmac_if_rxops(psoc);
  530. if (!rx_ops || !rx_ops->son_rx_ops.process_mgmt_frame) {
  531. son_err("invalid rx ops");
  532. return -EINVAL;
  533. }
  534. peer = wlan_objmgr_get_peer_by_mac(psoc, mac_addr, WLAN_SON_ID);
  535. if (!peer) {
  536. son_err("peer is null");
  537. return -EINVAL;
  538. }
  539. ia.ia_category = ACTION_CATEGORY_RRM;
  540. ia.ia_action = RRM_RADIO_MEASURE_RPT;
  541. qdf_mem_zero(&rrm_info, sizeof(rrm_info));
  542. rrm_info.ia = &ia;
  543. rrm_info.ald_info = 0;
  544. qdf_mem_copy(rrm_info.data.rrm_data.macaddr,
  545. mac_addr,
  546. QDF_MAC_ADDR_SIZE);
  547. /* IEEE80211_ACTION_RM_TOKEN */
  548. rrm_info.data.rrm_data.dialog_token = *frm;
  549. /* Points to Measurement Report Element */
  550. ++frm;
  551. --flen;
  552. pos = frm;
  553. end = pos + flen;
  554. while ((ie = wlan_get_ie_ptr_from_eid(WLAN_ELEMID_MEASREP,
  555. pos, end - pos))) {
  556. if (ie[1] < 3) {
  557. son_err("Bad Measurement Report element");
  558. wlan_objmgr_peer_release_ref(peer, WLAN_SON_ID);
  559. return -EINVAL;
  560. }
  561. if (ie[4] == SIR_MAC_RRM_BEACON_TYPE)
  562. ++total_bcnrpt_count;
  563. pos = ie + ie[1] + 2;
  564. }
  565. rrm_info.data.rrm_data.num_meas_rpts = total_bcnrpt_count;
  566. son_debug("Sta: " QDF_MAC_ADDR_FMT
  567. "Category %d Action %d Num_Report %d Rptlen %d",
  568. QDF_MAC_ADDR_REF(mac_addr),
  569. ACTION_CATEGORY_RRM,
  570. RRM_RADIO_MEASURE_RPT,
  571. total_bcnrpt_count,
  572. flen);
  573. rx_ops->son_rx_ops.process_mgmt_frame(vdev, peer, sub_type,
  574. frm, flen, &rrm_info);
  575. wlan_objmgr_peer_release_ref(peer, WLAN_SON_ID);
  576. return 0;
  577. }
  578. int wlan_son_anqp_frame(struct wlan_objmgr_vdev *vdev, int subtype,
  579. uint8_t *frame, uint16_t frame_len, void *action_hdr,
  580. uint8_t *macaddr)
  581. {
  582. struct son_act_frm_info info;
  583. struct wlan_objmgr_psoc *psoc;
  584. struct wlan_lmac_if_rx_ops *rx_ops;
  585. int ret;
  586. if (!vdev)
  587. return -EINVAL;
  588. psoc = wlan_vdev_get_psoc(vdev);
  589. if (!psoc)
  590. return -EINVAL;
  591. qdf_mem_zero(&info, sizeof(info));
  592. info.ia = (struct ieee80211_action *)action_hdr;
  593. info.ald_info = 1;
  594. qdf_mem_copy(info.data.macaddr, macaddr, sizeof(tSirMacAddr));
  595. rx_ops = wlan_psoc_get_lmac_if_rxops(psoc);
  596. if (rx_ops && rx_ops->son_rx_ops.process_mgmt_frame)
  597. ret = rx_ops->son_rx_ops.process_mgmt_frame(vdev, NULL,
  598. subtype, frame,
  599. frame_len, &info);
  600. else
  601. return -EINVAL;
  602. return ret;
  603. }
  604. static int wlan_son_deliver_cbs(struct wlan_objmgr_vdev *vdev,
  605. wlan_cbs_event_type type)
  606. {
  607. int ret;
  608. ret = wlan_son_deliver_mlme_event(vdev,
  609. NULL,
  610. MLME_EVENT_CBS_STATUS,
  611. &type);
  612. return ret;
  613. }
  614. static int wlan_son_deliver_cbs_completed(struct wlan_objmgr_vdev *vdev)
  615. {
  616. return wlan_son_deliver_cbs(vdev, CBS_COMPLETE);
  617. }
  618. static int wlan_son_deliver_cbs_cancelled(struct wlan_objmgr_vdev *vdev)
  619. {
  620. return wlan_son_deliver_cbs(vdev, CBS_CANCELLED);
  621. }
  622. static void
  623. wlan_son_cbs_set_state(struct son_cbs *cbs, enum son_cbs_state state)
  624. {
  625. son_debug("Change State CBS OLD[%d] --> NEW[%d]",
  626. cbs->cbs_state, state);
  627. cbs->cbs_state = state;
  628. }
  629. static enum
  630. son_cbs_state wlan_son_cbs_get_state(struct son_cbs *cbs)
  631. {
  632. return cbs->cbs_state;
  633. }
  634. static void
  635. wlan_son_cbs_init_dwell_params(struct son_cbs *cbs,
  636. int dwell_split_time,
  637. int dwell_rest_time)
  638. {
  639. int i;
  640. if (!cbs || !cbs->vdev)
  641. return;
  642. son_debug("dwell_split_time %d, dwell_rest_time %d",
  643. dwell_split_time, dwell_rest_time);
  644. son_debug("vdev_id: %d\n", wlan_vdev_get_id(cbs->vdev));
  645. switch (dwell_split_time) {
  646. case CBS_DWELL_TIME_10MS:
  647. cbs->max_arr_size_used = 10;
  648. cbs->dwell_split_cnt = cbs->max_arr_size_used - 1;
  649. cbs->max_dwell_split_cnt = cbs->max_arr_size_used - 1;
  650. for (i = 0; i < cbs->max_arr_size_used; i++)
  651. cbs->scan_dwell_rest[i] = dwell_rest_time;
  652. for (i = 0; i < cbs->max_arr_size_used; i++)
  653. cbs->scan_offset[i] = i * dwell_split_time;
  654. break;
  655. case CBS_DWELL_TIME_25MS:
  656. cbs->max_arr_size_used = 8;
  657. cbs->dwell_split_cnt = cbs->max_arr_size_used - 1;
  658. cbs->max_dwell_split_cnt = cbs->max_arr_size_used - 1;
  659. if (dwell_rest_time % TOTAL_DWELL_TIME == 0) {
  660. cbs->scan_dwell_rest[0] = dwell_rest_time;
  661. cbs->scan_dwell_rest[1] = dwell_rest_time;
  662. cbs->scan_dwell_rest[2] = dwell_rest_time;
  663. cbs->scan_dwell_rest[3] = dwell_rest_time;
  664. cbs->scan_dwell_rest[4] = dwell_rest_time +
  665. TOTAL_DWELL_TIME -
  666. DEFAULT_BEACON_INTERVAL;
  667. cbs->scan_dwell_rest[5] = dwell_rest_time +
  668. TOTAL_DWELL_TIME -
  669. DEFAULT_BEACON_INTERVAL;
  670. cbs->scan_dwell_rest[6] = dwell_rest_time;
  671. cbs->scan_dwell_rest[7] = dwell_rest_time;
  672. cbs->scan_dwell_rest[8] = 0;
  673. cbs->scan_dwell_rest[9] = 0;
  674. cbs->scan_offset[0] = 0;
  675. cbs->scan_offset[1] = 0;
  676. cbs->scan_offset[2] = dwell_split_time;
  677. cbs->scan_offset[3] = dwell_split_time;
  678. cbs->scan_offset[4] = 2 * dwell_split_time;
  679. cbs->scan_offset[5] = 2 * dwell_split_time;
  680. cbs->scan_offset[6] = 3 * dwell_split_time;
  681. cbs->scan_offset[7] = 3 * dwell_split_time;
  682. cbs->scan_offset[8] = 0;
  683. cbs->scan_offset[9] = 0;
  684. } else {
  685. for (i = 0; i < cbs->max_arr_size_used - 1; i++)
  686. cbs->scan_dwell_rest[i] = dwell_rest_time;
  687. cbs->scan_dwell_rest[8] = 0;
  688. cbs->scan_dwell_rest[9] = 0;
  689. cbs->scan_offset[0] = 0;
  690. cbs->scan_offset[1] = dwell_split_time;
  691. cbs->scan_offset[2] = 2 * dwell_split_time;
  692. cbs->scan_offset[3] = 3 * dwell_split_time;
  693. cbs->scan_offset[4] = 0;
  694. cbs->scan_offset[5] = dwell_split_time;
  695. cbs->scan_offset[6] = 2 * dwell_split_time;
  696. cbs->scan_offset[7] = 3 * dwell_split_time;
  697. cbs->scan_offset[8] = 0;
  698. cbs->scan_offset[9] = 0;
  699. }
  700. break;
  701. case CBS_DWELL_TIME_50MS:
  702. cbs->max_arr_size_used = 4;
  703. cbs->dwell_split_cnt = cbs->max_arr_size_used - 1;
  704. cbs->max_dwell_split_cnt = cbs->max_arr_size_used - 1;
  705. if (dwell_rest_time % TOTAL_DWELL_TIME == 0) {
  706. cbs->scan_dwell_rest[0] = dwell_rest_time;
  707. cbs->scan_dwell_rest[1] = dwell_rest_time;
  708. cbs->scan_dwell_rest[2] = dwell_rest_time +
  709. TOTAL_DWELL_TIME -
  710. DEFAULT_BEACON_INTERVAL;
  711. cbs->scan_dwell_rest[3] = dwell_rest_time +
  712. TOTAL_DWELL_TIME -
  713. DEFAULT_BEACON_INTERVAL;
  714. cbs->scan_dwell_rest[4] = 0;
  715. cbs->scan_dwell_rest[5] = 0;
  716. cbs->scan_dwell_rest[6] = 0;
  717. cbs->scan_dwell_rest[7] = 0;
  718. cbs->scan_dwell_rest[8] = 0;
  719. cbs->scan_dwell_rest[9] = 0;
  720. cbs->scan_offset[0] = 0;
  721. cbs->scan_offset[1] = 0;
  722. cbs->scan_offset[2] = dwell_split_time;
  723. cbs->scan_offset[3] = dwell_split_time;
  724. cbs->scan_offset[4] = 0;
  725. cbs->scan_offset[5] = 0;
  726. cbs->scan_offset[6] = 0;
  727. cbs->scan_offset[7] = 0;
  728. cbs->scan_offset[8] = 0;
  729. cbs->scan_offset[9] = 0;
  730. } else {
  731. cbs->scan_dwell_rest[0] = dwell_rest_time;
  732. cbs->scan_dwell_rest[1] = dwell_rest_time;
  733. cbs->scan_dwell_rest[2] = dwell_rest_time;
  734. cbs->scan_dwell_rest[3] = dwell_rest_time;
  735. cbs->scan_dwell_rest[4] = 0;
  736. cbs->scan_dwell_rest[5] = 0;
  737. cbs->scan_dwell_rest[6] = 0;
  738. cbs->scan_dwell_rest[7] = 0;
  739. cbs->scan_dwell_rest[8] = 0;
  740. cbs->scan_dwell_rest[9] = 0;
  741. cbs->scan_offset[0] = 0;
  742. cbs->scan_offset[1] = dwell_split_time;
  743. cbs->scan_offset[2] = 0;
  744. cbs->scan_offset[3] = dwell_split_time;
  745. cbs->scan_offset[4] = 0;
  746. cbs->scan_offset[5] = 0;
  747. cbs->scan_offset[6] = 0;
  748. cbs->scan_offset[7] = 0;
  749. cbs->scan_offset[8] = 0;
  750. cbs->scan_offset[9] = 0;
  751. }
  752. break;
  753. case CBS_DWELL_TIME_75MS:
  754. cbs->max_arr_size_used = 4;
  755. cbs->dwell_split_cnt = cbs->max_arr_size_used - 1;
  756. cbs->max_dwell_split_cnt = cbs->max_arr_size_used - 1;
  757. if (dwell_rest_time % TOTAL_DWELL_TIME == 0) {
  758. cbs->scan_dwell_rest[0] = dwell_rest_time;
  759. cbs->scan_dwell_rest[1] = dwell_rest_time;
  760. cbs->scan_dwell_rest[2] = dwell_rest_time +
  761. TOTAL_DWELL_TIME -
  762. DEFAULT_BEACON_INTERVAL;
  763. cbs->scan_dwell_rest[3] = dwell_rest_time +
  764. TOTAL_DWELL_TIME -
  765. DEFAULT_BEACON_INTERVAL;
  766. cbs->scan_dwell_rest[4] = 0;
  767. cbs->scan_dwell_rest[5] = 0;
  768. cbs->scan_dwell_rest[6] = 0;
  769. cbs->scan_dwell_rest[7] = 0;
  770. cbs->scan_dwell_rest[8] = 0;
  771. cbs->scan_dwell_rest[9] = 0;
  772. cbs->scan_offset[0] = 0;
  773. cbs->scan_offset[1] = 0;
  774. cbs->scan_offset[2] = DEFAULT_BEACON_INTERVAL -
  775. dwell_split_time;
  776. cbs->scan_offset[3] = DEFAULT_BEACON_INTERVAL -
  777. dwell_split_time;
  778. cbs->scan_offset[4] = 0;
  779. cbs->scan_offset[5] = 0;
  780. cbs->scan_offset[6] = 0;
  781. cbs->scan_offset[7] = 0;
  782. cbs->scan_offset[8] = 0;
  783. cbs->scan_offset[9] = 0;
  784. } else {
  785. cbs->scan_dwell_rest[0] = dwell_rest_time;
  786. cbs->scan_dwell_rest[1] = dwell_rest_time;
  787. cbs->scan_dwell_rest[2] = dwell_rest_time;
  788. cbs->scan_dwell_rest[3] = dwell_rest_time;
  789. cbs->scan_dwell_rest[4] = 0;
  790. cbs->scan_dwell_rest[5] = 0;
  791. cbs->scan_dwell_rest[6] = 0;
  792. cbs->scan_dwell_rest[7] = 0;
  793. cbs->scan_dwell_rest[8] = 0;
  794. cbs->scan_dwell_rest[9] = 0;
  795. cbs->scan_offset[0] = 0;
  796. cbs->scan_offset[1] = DEFAULT_BEACON_INTERVAL -
  797. dwell_split_time;
  798. cbs->scan_offset[2] = 0;
  799. cbs->scan_offset[3] = DEFAULT_BEACON_INTERVAL -
  800. dwell_split_time;
  801. cbs->scan_offset[4] = 0;
  802. cbs->scan_offset[5] = 0;
  803. cbs->scan_offset[6] = 0;
  804. cbs->scan_offset[7] = 0;
  805. cbs->scan_offset[8] = 0;
  806. cbs->scan_offset[9] = 0;
  807. }
  808. break;
  809. default:
  810. son_err("Dwell time not supported\n");
  811. break;
  812. }
  813. }
  814. static int wlan_son_cbs_start(struct son_cbs *cbs)
  815. {
  816. struct scan_start_request *req;
  817. struct wlan_objmgr_psoc *psoc;
  818. QDF_STATUS status;
  819. psoc = wlan_vdev_get_psoc(cbs->vdev);
  820. if (!psoc) {
  821. son_err("invalid psoc");
  822. return -EINVAL;
  823. }
  824. req = qdf_mem_malloc(sizeof(*req));
  825. if (!req) {
  826. son_err("failed to malloc");
  827. return -ENOMEM;
  828. }
  829. qdf_mem_copy(req, &cbs->scan_params, sizeof(*req));
  830. cbs->cbs_scan_id = ucfg_scan_get_scan_id(psoc);
  831. req->scan_req.scan_id = cbs->cbs_scan_id;
  832. son_debug("vdev_id: %d req->scan_req.scan_id: %u",
  833. wlan_vdev_get_id(cbs->vdev), req->scan_req.scan_id);
  834. status = ucfg_scan_start(req);
  835. if (QDF_IS_STATUS_ERROR(status)) {
  836. son_err("failed to start cbs");
  837. wlan_son_deliver_cbs_cancelled(cbs->vdev);
  838. return -EINVAL;
  839. }
  840. son_debug("cbs start");
  841. return 0;
  842. }
  843. static int wlan_son_cbs_stop(struct son_cbs *cbs)
  844. {
  845. struct wlan_objmgr_pdev *pdev;
  846. QDF_STATUS status;
  847. pdev = wlan_vdev_get_pdev(cbs->vdev);
  848. if (!pdev) {
  849. son_err("invalid pdev");
  850. return -EINVAL;
  851. }
  852. son_debug("vdev_id: %d", wlan_vdev_get_id(cbs->vdev));
  853. if (ucfg_scan_get_pdev_status(pdev) != SCAN_NOT_IN_PROGRESS) {
  854. son_info("cbs_scan_id: %u abort scan", cbs->cbs_scan_id);
  855. status = wlan_abort_scan(pdev,
  856. wlan_objmgr_pdev_get_pdev_id(pdev),
  857. cbs->vdev->vdev_objmgr.vdev_id,
  858. cbs->cbs_scan_id,
  859. true);
  860. if (QDF_IS_STATUS_ERROR(status)) {
  861. son_err("failed to abort cbs");
  862. return -EBUSY;
  863. }
  864. }
  865. return 0;
  866. }
  867. static void wlan_cbs_timer_handler(void *arg)
  868. {
  869. struct son_cbs *cbs = (struct son_cbs *)arg;
  870. enum son_cbs_state state;
  871. state = wlan_son_cbs_get_state(cbs);
  872. son_debug("state: %d", state);
  873. if (state == CBS_REST) {
  874. son_debug("vdev_id: %d dwell_split_cnt: %d",
  875. wlan_vdev_get_id(cbs->vdev),
  876. cbs->dwell_split_cnt);
  877. qdf_spin_lock_bh(&g_cbs_lock);
  878. wlan_son_cbs_set_state(cbs, CBS_SCAN);
  879. cbs->dwell_split_cnt--;
  880. wlan_son_cbs_start(cbs);
  881. qdf_spin_unlock_bh(&g_cbs_lock);
  882. } else if (state == CBS_WAIT) {
  883. wlan_son_cbs_enable(cbs->vdev);
  884. }
  885. }
  886. static int wlan_cbs_iterate(struct son_cbs *cbs)
  887. {
  888. int offset_array_idx;
  889. struct wlan_objmgr_psoc *psoc;
  890. qdf_spin_lock_bh(&g_cbs_lock);
  891. if (!cbs || !cbs->vdev) {
  892. qdf_spin_unlock_bh(&g_cbs_lock);
  893. return -EINVAL;
  894. }
  895. son_debug("dwell_split_cnt: %d", cbs->dwell_split_cnt);
  896. if (cbs->dwell_split_cnt < 0) {
  897. psoc = wlan_vdev_get_psoc(cbs->vdev);
  898. if (!psoc) {
  899. qdf_spin_unlock_bh(&g_cbs_lock);
  900. return -EINVAL;
  901. }
  902. wlan_son_deliver_cbs_completed(cbs->vdev);
  903. ucfg_scan_unregister_requester(psoc,
  904. cbs->cbs_scan_requestor);
  905. son_debug("Unregister cbs_scan_requestor: %u",
  906. cbs->cbs_scan_requestor);
  907. if (cbs->wait_time) {
  908. wlan_son_cbs_set_state(cbs, CBS_WAIT);
  909. qdf_timer_mod(&cbs->cbs_timer,
  910. cbs->wait_time);
  911. } else {
  912. wlan_son_cbs_set_state(cbs, CBS_INIT);
  913. }
  914. } else {
  915. offset_array_idx = cbs->max_arr_size_used -
  916. cbs->dwell_split_cnt - 1;
  917. if (offset_array_idx < MIN_SCAN_OFFSET_ARRAY_SIZE ||
  918. offset_array_idx > MAX_SCAN_OFFSET_ARRAY_SIZE) {
  919. qdf_spin_unlock_bh(&g_cbs_lock);
  920. return -EINVAL;
  921. }
  922. if (cbs->scan_dwell_rest[offset_array_idx] == 0) {
  923. cbs->dwell_split_cnt--;
  924. wlan_son_cbs_start(cbs);
  925. } else {
  926. wlan_son_cbs_set_state(cbs, CBS_REST);
  927. qdf_timer_mod(&cbs->cbs_timer,
  928. cbs->scan_dwell_rest[offset_array_idx]);
  929. }
  930. }
  931. qdf_spin_unlock_bh(&g_cbs_lock);
  932. return 0;
  933. }
  934. static void wlan_cbs_scan_event_cb(struct wlan_objmgr_vdev *vdev,
  935. struct scan_event *event,
  936. void *arg)
  937. {
  938. son_debug("event type: %d", event->type);
  939. switch (event->type) {
  940. case SCAN_EVENT_TYPE_FOREIGN_CHANNEL:
  941. case SCAN_EVENT_TYPE_FOREIGN_CHANNEL_GET_NF:
  942. break;
  943. case SCAN_EVENT_TYPE_COMPLETED:
  944. wlan_cbs_iterate(arg);
  945. break;
  946. default:
  947. break;
  948. }
  949. }
  950. int wlan_son_cbs_init(void)
  951. {
  952. int i, j;
  953. for (i = 0; i < WLAN_MAX_VDEVS; i++) {
  954. if (g_son_cbs[i]) {
  955. qdf_mem_free(g_son_cbs[i]);
  956. g_son_cbs[i] = NULL;
  957. }
  958. g_son_cbs[i] = qdf_mem_malloc(sizeof(*g_son_cbs[i]));
  959. if (!g_son_cbs[i]) {
  960. for (j = i - 1; j >= 0; j--) {
  961. qdf_mem_free(g_son_cbs[j]);
  962. g_son_cbs[i] = NULL;
  963. }
  964. return -ENOMEM;
  965. }
  966. qdf_timer_init(NULL,
  967. &g_son_cbs[i]->cbs_timer,
  968. wlan_cbs_timer_handler,
  969. g_son_cbs[i],
  970. QDF_TIMER_TYPE_WAKE_APPS);
  971. g_son_cbs[i]->rest_time = CBS_DEFAULT_RESTTIME;
  972. g_son_cbs[i]->dwell_time = CBS_DEFAULT_DWELL_TIME;
  973. g_son_cbs[i]->wait_time = CBS_DEFAULT_WAIT_TIME;
  974. g_son_cbs[i]->dwell_split_time = CBS_DEFAULT_DWELL_SPLIT_TIME;
  975. g_son_cbs[i]->min_dwell_rest_time = CBS_DEFAULT_DWELL_REST_TIME;
  976. wlan_son_cbs_set_state(g_son_cbs[i], CBS_INIT);
  977. }
  978. qdf_spinlock_create(&g_cbs_lock);
  979. son_debug("cbs init");
  980. return 0;
  981. }
  982. int wlan_son_cbs_deinit(void)
  983. {
  984. int i;
  985. qdf_spinlock_destroy(&g_cbs_lock);
  986. for (i = 0; i < WLAN_MAX_VDEVS; i++) {
  987. if (!g_son_cbs[i])
  988. return -EINVAL;
  989. if (g_son_cbs[i]->vdev) {
  990. wlan_objmgr_vdev_release_ref(g_son_cbs[i]->vdev,
  991. WLAN_SON_ID);
  992. son_debug("vdev_id: %d dereferenced",
  993. wlan_vdev_get_id(g_son_cbs[i]->vdev));
  994. }
  995. qdf_timer_free(&g_son_cbs[i]->cbs_timer);
  996. qdf_mem_free(g_son_cbs[i]);
  997. g_son_cbs[i] = NULL;
  998. }
  999. son_debug("cbs deinit");
  1000. return 0;
  1001. }
  1002. int wlan_son_cbs_enable(struct wlan_objmgr_vdev *vdev)
  1003. {
  1004. struct scan_start_request *req;
  1005. struct wlan_objmgr_psoc *psoc;
  1006. enum son_cbs_state state;
  1007. struct son_cbs *cbs;
  1008. QDF_STATUS status;
  1009. cbs = g_son_cbs[wlan_vdev_get_id(vdev)];
  1010. if (!cbs) {
  1011. son_err("invalid cbs");
  1012. return -EINVAL;
  1013. }
  1014. psoc = wlan_vdev_get_psoc(vdev);
  1015. if (!psoc) {
  1016. son_err("invalid psoc");
  1017. return -EINVAL;
  1018. }
  1019. state = wlan_son_cbs_get_state(cbs);
  1020. if (state != CBS_INIT &&
  1021. state != CBS_WAIT) {
  1022. son_err("can't start scan in state %d", state);
  1023. return -EINVAL;
  1024. }
  1025. son_debug("State: %d", state);
  1026. qdf_spin_lock_bh(&g_cbs_lock);
  1027. if (!cbs->vdev) {
  1028. cbs->vdev = vdev;
  1029. status = wlan_objmgr_vdev_try_get_ref(vdev, WLAN_SON_ID);
  1030. if (status != QDF_STATUS_SUCCESS) {
  1031. qdf_spin_unlock_bh(&g_cbs_lock);
  1032. son_err("Failed to get VDEV reference");
  1033. return -EAGAIN;
  1034. }
  1035. son_debug("vdev_id: %d referenced",
  1036. wlan_vdev_get_id(vdev));
  1037. }
  1038. cbs->cbs_scan_requestor =
  1039. ucfg_scan_register_requester(psoc,
  1040. (uint8_t *)"cbs",
  1041. wlan_cbs_scan_event_cb,
  1042. (void *)cbs);
  1043. son_debug("cbs_scan_requestor: %u vdev_id: %d",
  1044. cbs->cbs_scan_requestor, wlan_vdev_get_id(vdev));
  1045. if (!cbs->cbs_scan_requestor) {
  1046. wlan_objmgr_vdev_release_ref(vdev, WLAN_SON_ID);
  1047. qdf_spin_unlock_bh(&g_cbs_lock);
  1048. son_err("ucfg_scan_register_requestor failed");
  1049. return -EINVAL;
  1050. }
  1051. req = &cbs->scan_params;
  1052. ucfg_scan_init_default_params(vdev, req);
  1053. req->scan_req.scan_req_id = cbs->cbs_scan_requestor;
  1054. req->scan_req.vdev_id = wlan_vdev_get_id(vdev);
  1055. req->scan_req.scan_priority = SCAN_PRIORITY_HIGH;
  1056. req->scan_req.scan_f_bcast_probe = true;
  1057. req->scan_req.scan_f_passive = true;
  1058. req->scan_req.max_rest_time = DEFAULT_SCAN_MAX_REST_TIME;
  1059. req->scan_req.scan_f_forced = true;
  1060. req->scan_req.scan_flags = 0;
  1061. req->scan_req.dwell_time_active = cbs->dwell_split_time;
  1062. req->scan_req.dwell_time_passive = cbs->dwell_split_time + 5;
  1063. req->scan_req.min_rest_time = CBS_DEFAULT_MIN_REST_TIME;
  1064. req->scan_req.max_rest_time = CBS_DEFAULT_DWELL_REST_TIME;
  1065. req->scan_req.scan_f_passive = false;
  1066. req->scan_req.scan_f_2ghz = true;
  1067. req->scan_req.scan_f_5ghz = true;
  1068. req->scan_req.scan_f_offchan_mgmt_tx = true;
  1069. req->scan_req.scan_f_offchan_data_tx = true;
  1070. req->scan_req.scan_f_chan_stat_evnt = true;
  1071. if (cbs->min_dwell_rest_time % DEFAULT_BEACON_INTERVAL) {
  1072. cbs->min_dwell_rest_time =
  1073. (cbs->min_dwell_rest_time /
  1074. (2 * DEFAULT_BEACON_INTERVAL)) *
  1075. (2 * DEFAULT_BEACON_INTERVAL) +
  1076. (cbs->min_dwell_rest_time % 200 < 100) ? 100 : 200;
  1077. }
  1078. wlan_son_cbs_init_dwell_params(cbs,
  1079. cbs->dwell_split_time,
  1080. cbs->min_dwell_rest_time);
  1081. cbs->dwell_split_cnt--;
  1082. wlan_son_cbs_set_state(cbs, CBS_SCAN);
  1083. wlan_son_cbs_start(cbs);
  1084. qdf_spin_unlock_bh(&g_cbs_lock);
  1085. son_debug("cbs enable");
  1086. return 0;
  1087. }
  1088. int wlan_son_cbs_disable(struct wlan_objmgr_vdev *vdev)
  1089. {
  1090. struct wlan_objmgr_psoc *psoc;
  1091. struct son_cbs *cbs;
  1092. if (!vdev) {
  1093. son_err("invalid vdev");
  1094. return -EINVAL;
  1095. }
  1096. psoc = wlan_vdev_get_psoc(vdev);
  1097. if (!psoc) {
  1098. son_err("invalid psoc");
  1099. return -EINVAL;
  1100. }
  1101. cbs = g_son_cbs[wlan_vdev_get_id(vdev)];
  1102. if (!cbs || !cbs->vdev) {
  1103. son_err("vdev null");
  1104. return -EINVAL;
  1105. }
  1106. wlan_son_deliver_cbs_cancelled(vdev);
  1107. qdf_timer_sync_cancel(&cbs->cbs_timer);
  1108. wlan_son_cbs_stop(cbs);
  1109. son_debug("cbs_scan_requestor: %d vdev_id: %d",
  1110. cbs->cbs_scan_requestor, wlan_vdev_get_id(vdev));
  1111. ucfg_scan_unregister_requester(psoc, cbs->cbs_scan_requestor);
  1112. qdf_spin_lock_bh(&g_cbs_lock);
  1113. wlan_son_cbs_set_state(cbs, CBS_INIT);
  1114. if (vdev == cbs->vdev) {
  1115. wlan_objmgr_vdev_release_ref(vdev, WLAN_SON_ID);
  1116. son_debug("vdev_id: %d dereferenced",
  1117. vdev->vdev_objmgr.vdev_id);
  1118. }
  1119. cbs->vdev = NULL;
  1120. qdf_spin_unlock_bh(&g_cbs_lock);
  1121. son_debug("cbs disable");
  1122. return 0;
  1123. }
  1124. int wlan_son_set_cbs(struct wlan_objmgr_vdev *vdev,
  1125. bool enable)
  1126. {
  1127. son_debug("Enable: %u", enable);
  1128. if (!vdev || !g_son_cbs[wlan_vdev_get_id(vdev)])
  1129. return -EINVAL;
  1130. if (enable)
  1131. wlan_son_cbs_enable(vdev);
  1132. else
  1133. wlan_son_cbs_disable(vdev);
  1134. return 0;
  1135. }
  1136. int wlan_son_set_cbs_wait_time(struct wlan_objmgr_vdev *vdev,
  1137. uint32_t val)
  1138. {
  1139. if (!g_son_cbs[wlan_vdev_get_id(vdev)])
  1140. return -EINVAL;
  1141. son_debug("vdev_id: %d wait time %d", wlan_vdev_get_id(vdev), val);
  1142. wlan_son_set_cbs(vdev, false);
  1143. if (val % DEFAULT_BEACON_INTERVAL != 0) {
  1144. val = (val / (2 * DEFAULT_BEACON_INTERVAL)) *
  1145. (2 * DEFAULT_BEACON_INTERVAL) +
  1146. (val % (2 * DEFAULT_BEACON_INTERVAL) <
  1147. DEFAULT_BEACON_INTERVAL) ?
  1148. DEFAULT_BEACON_INTERVAL :
  1149. 2 * DEFAULT_BEACON_INTERVAL;
  1150. }
  1151. qdf_spin_lock_bh(&g_cbs_lock);
  1152. g_son_cbs[wlan_vdev_get_id(vdev)]->wait_time = val;
  1153. qdf_spin_unlock_bh(&g_cbs_lock);
  1154. wlan_son_set_cbs(vdev, true);
  1155. return 0;
  1156. }
  1157. int wlan_son_set_cbs_dwell_split_time(struct wlan_objmgr_vdev *vdev,
  1158. uint32_t val)
  1159. {
  1160. if (!g_son_cbs[wlan_vdev_get_id(vdev)])
  1161. return -EINVAL;
  1162. son_debug("vdev_id: %d dwell split time %d",
  1163. wlan_vdev_get_id(vdev), val);
  1164. if (val != CBS_DWELL_TIME_10MS &&
  1165. val != CBS_DWELL_TIME_25MS &&
  1166. val != CBS_DWELL_TIME_50MS &&
  1167. val != CBS_DWELL_TIME_75MS) {
  1168. son_err("dwell time not supported ");
  1169. return -EINVAL;
  1170. }
  1171. wlan_son_set_cbs(vdev, false);
  1172. qdf_spin_lock_bh(&g_cbs_lock);
  1173. g_son_cbs[wlan_vdev_get_id(vdev)]->dwell_split_time = val;
  1174. qdf_spin_unlock_bh(&g_cbs_lock);
  1175. wlan_son_set_cbs(vdev, true);
  1176. return 0;
  1177. }
  1178. uint8_t wlan_son_get_node_tx_power(struct element_info assoc_req_ies)
  1179. {
  1180. const uint8_t *power_cap_ie_data;
  1181. power_cap_ie_data = wlan_get_ie_ptr_from_eid(WLAN_ELEMID_PWRCAP,
  1182. assoc_req_ies.ptr,
  1183. assoc_req_ies.len);
  1184. if (power_cap_ie_data)
  1185. return *(power_cap_ie_data + 3);
  1186. else
  1187. return 0;
  1188. }
  1189. QDF_STATUS wlan_son_get_peer_rrm_info(struct element_info assoc_req_ies,
  1190. uint8_t *rrmcaps,
  1191. bool *is_beacon_meas_supported)
  1192. {
  1193. const uint8_t *eid;
  1194. eid = wlan_get_ie_ptr_from_eid(WLAN_ELEMID_RRM,
  1195. assoc_req_ies.ptr,
  1196. assoc_req_ies.len);
  1197. if (eid) {
  1198. qdf_mem_copy(rrmcaps, &eid[2], eid[1]);
  1199. if ((rrmcaps[0] &
  1200. IEEE80211_RRM_CAPS_BEACON_REPORT_PASSIVE) ||
  1201. (rrmcaps[0] &
  1202. IEEE80211_RRM_CAPS_BEACON_REPORT_ACTIVE))
  1203. *is_beacon_meas_supported = true;
  1204. return QDF_STATUS_SUCCESS;
  1205. }
  1206. return QDF_STATUS_E_RESOURCES;
  1207. }
  1208. QDF_STATUS
  1209. wlan_son_vdev_get_supported_txrx_streams(struct wlan_objmgr_vdev *vdev,
  1210. uint32_t *num_tx_streams,
  1211. uint32_t *num_rx_streams)
  1212. {
  1213. struct wlan_mlme_nss_chains *nss_cfg;
  1214. enum nss_chains_band_info band = NSS_CHAINS_BAND_MAX;
  1215. struct wlan_channel *chan;
  1216. qdf_freq_t chan_freq = 0;
  1217. nss_cfg = mlme_get_dynamic_vdev_config(vdev);
  1218. if (!nss_cfg)
  1219. return QDF_STATUS_NOT_INITIALIZED;
  1220. chan = wlan_vdev_get_active_channel(vdev);
  1221. if (chan)
  1222. chan_freq = chan->ch_freq;
  1223. if (WLAN_REG_IS_24GHZ_CH_FREQ(chan_freq))
  1224. band = NSS_CHAINS_BAND_2GHZ;
  1225. if (WLAN_REG_IS_5GHZ_CH_FREQ(chan_freq))
  1226. band = NSS_CHAINS_BAND_5GHZ;
  1227. if (band == NSS_CHAINS_BAND_MAX)
  1228. return QDF_STATUS_NOT_INITIALIZED;
  1229. *num_tx_streams = nss_cfg->tx_nss[band];
  1230. *num_rx_streams = nss_cfg->rx_nss[band];
  1231. return QDF_STATUS_SUCCESS;
  1232. }