wmi.c 60 KB

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  1. /*
  2. * Copyright (c) 2005-2011 Atheros Communications Inc.
  3. * Copyright (c) 2011-2013 Qualcomm Atheros, Inc.
  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. *
  9. * THE SOFTWARE IS PROVIDED "AS IS" AND THE AUTHOR DISCLAIMS ALL WARRANTIES
  10. * WITH REGARD TO THIS SOFTWARE INCLUDING ALL IMPLIED WARRANTIES OF
  11. * MERCHANTABILITY AND FITNESS. IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR
  12. * ANY SPECIAL, DIRECT, INDIRECT, OR CONSEQUENTIAL DAMAGES OR ANY DAMAGES
  13. * WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR PROFITS, WHETHER IN AN
  14. * ACTION OF CONTRACT, NEGLIGENCE OR OTHER TORTIOUS ACTION, ARISING OUT OF
  15. * OR IN CONNECTION WITH THE USE OR PERFORMANCE OF THIS SOFTWARE.
  16. */
  17. #include <linux/skbuff.h>
  18. #include "core.h"
  19. #include "htc.h"
  20. #include "debug.h"
  21. #include "wmi.h"
  22. #include "mac.h"
  23. void ath10k_wmi_flush_tx(struct ath10k *ar)
  24. {
  25. int ret;
  26. lockdep_assert_held(&ar->conf_mutex);
  27. if (ar->state == ATH10K_STATE_WEDGED) {
  28. ath10k_warn("wmi flush skipped - device is wedged anyway\n");
  29. return;
  30. }
  31. ret = wait_event_timeout(ar->wmi.wq,
  32. atomic_read(&ar->wmi.pending_tx_count) == 0,
  33. 5*HZ);
  34. if (atomic_read(&ar->wmi.pending_tx_count) == 0)
  35. return;
  36. if (ret == 0)
  37. ret = -ETIMEDOUT;
  38. if (ret < 0)
  39. ath10k_warn("wmi flush failed (%d)\n", ret);
  40. }
  41. int ath10k_wmi_wait_for_service_ready(struct ath10k *ar)
  42. {
  43. int ret;
  44. ret = wait_for_completion_timeout(&ar->wmi.service_ready,
  45. WMI_SERVICE_READY_TIMEOUT_HZ);
  46. return ret;
  47. }
  48. int ath10k_wmi_wait_for_unified_ready(struct ath10k *ar)
  49. {
  50. int ret;
  51. ret = wait_for_completion_timeout(&ar->wmi.unified_ready,
  52. WMI_UNIFIED_READY_TIMEOUT_HZ);
  53. return ret;
  54. }
  55. static struct sk_buff *ath10k_wmi_alloc_skb(u32 len)
  56. {
  57. struct sk_buff *skb;
  58. u32 round_len = roundup(len, 4);
  59. skb = ath10k_htc_alloc_skb(WMI_SKB_HEADROOM + round_len);
  60. if (!skb)
  61. return NULL;
  62. skb_reserve(skb, WMI_SKB_HEADROOM);
  63. if (!IS_ALIGNED((unsigned long)skb->data, 4))
  64. ath10k_warn("Unaligned WMI skb\n");
  65. skb_put(skb, round_len);
  66. memset(skb->data, 0, round_len);
  67. return skb;
  68. }
  69. static void ath10k_wmi_htc_tx_complete(struct ath10k *ar, struct sk_buff *skb)
  70. {
  71. dev_kfree_skb(skb);
  72. if (atomic_sub_return(1, &ar->wmi.pending_tx_count) == 0)
  73. wake_up(&ar->wmi.wq);
  74. }
  75. /* WMI command API */
  76. static int ath10k_wmi_cmd_send(struct ath10k *ar, struct sk_buff *skb,
  77. enum wmi_cmd_id cmd_id)
  78. {
  79. struct ath10k_skb_cb *skb_cb = ATH10K_SKB_CB(skb);
  80. struct wmi_cmd_hdr *cmd_hdr;
  81. int status;
  82. u32 cmd = 0;
  83. if (skb_push(skb, sizeof(struct wmi_cmd_hdr)) == NULL)
  84. return -ENOMEM;
  85. cmd |= SM(cmd_id, WMI_CMD_HDR_CMD_ID);
  86. cmd_hdr = (struct wmi_cmd_hdr *)skb->data;
  87. cmd_hdr->cmd_id = __cpu_to_le32(cmd);
  88. if (atomic_add_return(1, &ar->wmi.pending_tx_count) >
  89. WMI_MAX_PENDING_TX_COUNT) {
  90. /* avoid using up memory when FW hangs */
  91. atomic_dec(&ar->wmi.pending_tx_count);
  92. return -EBUSY;
  93. }
  94. memset(skb_cb, 0, sizeof(*skb_cb));
  95. trace_ath10k_wmi_cmd(cmd_id, skb->data, skb->len);
  96. status = ath10k_htc_send(&ar->htc, ar->wmi.eid, skb);
  97. if (status) {
  98. dev_kfree_skb_any(skb);
  99. atomic_dec(&ar->wmi.pending_tx_count);
  100. return status;
  101. }
  102. return 0;
  103. }
  104. static int ath10k_wmi_event_scan(struct ath10k *ar, struct sk_buff *skb)
  105. {
  106. struct wmi_scan_event *event = (struct wmi_scan_event *)skb->data;
  107. enum wmi_scan_event_type event_type;
  108. enum wmi_scan_completion_reason reason;
  109. u32 freq;
  110. u32 req_id;
  111. u32 scan_id;
  112. u32 vdev_id;
  113. event_type = __le32_to_cpu(event->event_type);
  114. reason = __le32_to_cpu(event->reason);
  115. freq = __le32_to_cpu(event->channel_freq);
  116. req_id = __le32_to_cpu(event->scan_req_id);
  117. scan_id = __le32_to_cpu(event->scan_id);
  118. vdev_id = __le32_to_cpu(event->vdev_id);
  119. ath10k_dbg(ATH10K_DBG_WMI, "WMI_SCAN_EVENTID\n");
  120. ath10k_dbg(ATH10K_DBG_WMI,
  121. "scan event type %d reason %d freq %d req_id %d "
  122. "scan_id %d vdev_id %d\n",
  123. event_type, reason, freq, req_id, scan_id, vdev_id);
  124. spin_lock_bh(&ar->data_lock);
  125. switch (event_type) {
  126. case WMI_SCAN_EVENT_STARTED:
  127. ath10k_dbg(ATH10K_DBG_WMI, "SCAN_EVENT_STARTED\n");
  128. if (ar->scan.in_progress && ar->scan.is_roc)
  129. ieee80211_ready_on_channel(ar->hw);
  130. complete(&ar->scan.started);
  131. break;
  132. case WMI_SCAN_EVENT_COMPLETED:
  133. ath10k_dbg(ATH10K_DBG_WMI, "SCAN_EVENT_COMPLETED\n");
  134. switch (reason) {
  135. case WMI_SCAN_REASON_COMPLETED:
  136. ath10k_dbg(ATH10K_DBG_WMI, "SCAN_REASON_COMPLETED\n");
  137. break;
  138. case WMI_SCAN_REASON_CANCELLED:
  139. ath10k_dbg(ATH10K_DBG_WMI, "SCAN_REASON_CANCELED\n");
  140. break;
  141. case WMI_SCAN_REASON_PREEMPTED:
  142. ath10k_dbg(ATH10K_DBG_WMI, "SCAN_REASON_PREEMPTED\n");
  143. break;
  144. case WMI_SCAN_REASON_TIMEDOUT:
  145. ath10k_dbg(ATH10K_DBG_WMI, "SCAN_REASON_TIMEDOUT\n");
  146. break;
  147. default:
  148. break;
  149. }
  150. ar->scan_channel = NULL;
  151. if (!ar->scan.in_progress) {
  152. ath10k_warn("no scan requested, ignoring\n");
  153. break;
  154. }
  155. if (ar->scan.is_roc) {
  156. ath10k_offchan_tx_purge(ar);
  157. if (!ar->scan.aborting)
  158. ieee80211_remain_on_channel_expired(ar->hw);
  159. } else {
  160. ieee80211_scan_completed(ar->hw, ar->scan.aborting);
  161. }
  162. del_timer(&ar->scan.timeout);
  163. complete_all(&ar->scan.completed);
  164. ar->scan.in_progress = false;
  165. break;
  166. case WMI_SCAN_EVENT_BSS_CHANNEL:
  167. ath10k_dbg(ATH10K_DBG_WMI, "SCAN_EVENT_BSS_CHANNEL\n");
  168. ar->scan_channel = NULL;
  169. break;
  170. case WMI_SCAN_EVENT_FOREIGN_CHANNEL:
  171. ath10k_dbg(ATH10K_DBG_WMI, "SCAN_EVENT_FOREIGN_CHANNEL\n");
  172. ar->scan_channel = ieee80211_get_channel(ar->hw->wiphy, freq);
  173. if (ar->scan.in_progress && ar->scan.is_roc &&
  174. ar->scan.roc_freq == freq) {
  175. complete(&ar->scan.on_channel);
  176. }
  177. break;
  178. case WMI_SCAN_EVENT_DEQUEUED:
  179. ath10k_dbg(ATH10K_DBG_WMI, "SCAN_EVENT_DEQUEUED\n");
  180. break;
  181. case WMI_SCAN_EVENT_PREEMPTED:
  182. ath10k_dbg(ATH10K_DBG_WMI, "WMI_SCAN_EVENT_PREEMPTED\n");
  183. break;
  184. case WMI_SCAN_EVENT_START_FAILED:
  185. ath10k_dbg(ATH10K_DBG_WMI, "WMI_SCAN_EVENT_START_FAILED\n");
  186. break;
  187. default:
  188. break;
  189. }
  190. spin_unlock_bh(&ar->data_lock);
  191. return 0;
  192. }
  193. static inline enum ieee80211_band phy_mode_to_band(u32 phy_mode)
  194. {
  195. enum ieee80211_band band;
  196. switch (phy_mode) {
  197. case MODE_11A:
  198. case MODE_11NA_HT20:
  199. case MODE_11NA_HT40:
  200. case MODE_11AC_VHT20:
  201. case MODE_11AC_VHT40:
  202. case MODE_11AC_VHT80:
  203. band = IEEE80211_BAND_5GHZ;
  204. break;
  205. case MODE_11G:
  206. case MODE_11B:
  207. case MODE_11GONLY:
  208. case MODE_11NG_HT20:
  209. case MODE_11NG_HT40:
  210. case MODE_11AC_VHT20_2G:
  211. case MODE_11AC_VHT40_2G:
  212. case MODE_11AC_VHT80_2G:
  213. default:
  214. band = IEEE80211_BAND_2GHZ;
  215. }
  216. return band;
  217. }
  218. static inline u8 get_rate_idx(u32 rate, enum ieee80211_band band)
  219. {
  220. u8 rate_idx = 0;
  221. /* rate in Kbps */
  222. switch (rate) {
  223. case 1000:
  224. rate_idx = 0;
  225. break;
  226. case 2000:
  227. rate_idx = 1;
  228. break;
  229. case 5500:
  230. rate_idx = 2;
  231. break;
  232. case 11000:
  233. rate_idx = 3;
  234. break;
  235. case 6000:
  236. rate_idx = 4;
  237. break;
  238. case 9000:
  239. rate_idx = 5;
  240. break;
  241. case 12000:
  242. rate_idx = 6;
  243. break;
  244. case 18000:
  245. rate_idx = 7;
  246. break;
  247. case 24000:
  248. rate_idx = 8;
  249. break;
  250. case 36000:
  251. rate_idx = 9;
  252. break;
  253. case 48000:
  254. rate_idx = 10;
  255. break;
  256. case 54000:
  257. rate_idx = 11;
  258. break;
  259. default:
  260. break;
  261. }
  262. if (band == IEEE80211_BAND_5GHZ) {
  263. if (rate_idx > 3)
  264. /* Omit CCK rates */
  265. rate_idx -= 4;
  266. else
  267. rate_idx = 0;
  268. }
  269. return rate_idx;
  270. }
  271. static int ath10k_wmi_event_mgmt_rx(struct ath10k *ar, struct sk_buff *skb)
  272. {
  273. struct wmi_mgmt_rx_event *event = (struct wmi_mgmt_rx_event *)skb->data;
  274. struct ieee80211_rx_status *status = IEEE80211_SKB_RXCB(skb);
  275. struct ieee80211_hdr *hdr;
  276. u32 rx_status;
  277. u32 channel;
  278. u32 phy_mode;
  279. u32 snr;
  280. u32 rate;
  281. u32 buf_len;
  282. u16 fc;
  283. channel = __le32_to_cpu(event->hdr.channel);
  284. buf_len = __le32_to_cpu(event->hdr.buf_len);
  285. rx_status = __le32_to_cpu(event->hdr.status);
  286. snr = __le32_to_cpu(event->hdr.snr);
  287. phy_mode = __le32_to_cpu(event->hdr.phy_mode);
  288. rate = __le32_to_cpu(event->hdr.rate);
  289. memset(status, 0, sizeof(*status));
  290. ath10k_dbg(ATH10K_DBG_MGMT,
  291. "event mgmt rx status %08x\n", rx_status);
  292. if (rx_status & WMI_RX_STATUS_ERR_DECRYPT) {
  293. dev_kfree_skb(skb);
  294. return 0;
  295. }
  296. if (rx_status & WMI_RX_STATUS_ERR_KEY_CACHE_MISS) {
  297. dev_kfree_skb(skb);
  298. return 0;
  299. }
  300. if (rx_status & WMI_RX_STATUS_ERR_CRC)
  301. status->flag |= RX_FLAG_FAILED_FCS_CRC;
  302. if (rx_status & WMI_RX_STATUS_ERR_MIC)
  303. status->flag |= RX_FLAG_MMIC_ERROR;
  304. status->band = phy_mode_to_band(phy_mode);
  305. status->freq = ieee80211_channel_to_frequency(channel, status->band);
  306. status->signal = snr + ATH10K_DEFAULT_NOISE_FLOOR;
  307. status->rate_idx = get_rate_idx(rate, status->band);
  308. skb_pull(skb, sizeof(event->hdr));
  309. hdr = (struct ieee80211_hdr *)skb->data;
  310. fc = le16_to_cpu(hdr->frame_control);
  311. if (fc & IEEE80211_FCTL_PROTECTED) {
  312. status->flag |= RX_FLAG_DECRYPTED | RX_FLAG_IV_STRIPPED |
  313. RX_FLAG_MMIC_STRIPPED;
  314. hdr->frame_control = __cpu_to_le16(fc &
  315. ~IEEE80211_FCTL_PROTECTED);
  316. }
  317. ath10k_dbg(ATH10K_DBG_MGMT,
  318. "event mgmt rx skb %p len %d ftype %02x stype %02x\n",
  319. skb, skb->len,
  320. fc & IEEE80211_FCTL_FTYPE, fc & IEEE80211_FCTL_STYPE);
  321. ath10k_dbg(ATH10K_DBG_MGMT,
  322. "event mgmt rx freq %d band %d snr %d, rate_idx %d\n",
  323. status->freq, status->band, status->signal,
  324. status->rate_idx);
  325. /*
  326. * packets from HTC come aligned to 4byte boundaries
  327. * because they can originally come in along with a trailer
  328. */
  329. skb_trim(skb, buf_len);
  330. ieee80211_rx(ar->hw, skb);
  331. return 0;
  332. }
  333. static int freq_to_idx(struct ath10k *ar, int freq)
  334. {
  335. struct ieee80211_supported_band *sband;
  336. int band, ch, idx = 0;
  337. for (band = IEEE80211_BAND_2GHZ; band < IEEE80211_NUM_BANDS; band++) {
  338. sband = ar->hw->wiphy->bands[band];
  339. if (!sband)
  340. continue;
  341. for (ch = 0; ch < sband->n_channels; ch++, idx++)
  342. if (sband->channels[ch].center_freq == freq)
  343. goto exit;
  344. }
  345. exit:
  346. return idx;
  347. }
  348. static void ath10k_wmi_event_chan_info(struct ath10k *ar, struct sk_buff *skb)
  349. {
  350. struct wmi_chan_info_event *ev;
  351. struct survey_info *survey;
  352. u32 err_code, freq, cmd_flags, noise_floor, rx_clear_count, cycle_count;
  353. int idx;
  354. ev = (struct wmi_chan_info_event *)skb->data;
  355. err_code = __le32_to_cpu(ev->err_code);
  356. freq = __le32_to_cpu(ev->freq);
  357. cmd_flags = __le32_to_cpu(ev->cmd_flags);
  358. noise_floor = __le32_to_cpu(ev->noise_floor);
  359. rx_clear_count = __le32_to_cpu(ev->rx_clear_count);
  360. cycle_count = __le32_to_cpu(ev->cycle_count);
  361. ath10k_dbg(ATH10K_DBG_WMI,
  362. "chan info err_code %d freq %d cmd_flags %d noise_floor %d rx_clear_count %d cycle_count %d\n",
  363. err_code, freq, cmd_flags, noise_floor, rx_clear_count,
  364. cycle_count);
  365. spin_lock_bh(&ar->data_lock);
  366. if (!ar->scan.in_progress) {
  367. ath10k_warn("chan info event without a scan request?\n");
  368. goto exit;
  369. }
  370. idx = freq_to_idx(ar, freq);
  371. if (idx >= ARRAY_SIZE(ar->survey)) {
  372. ath10k_warn("chan info: invalid frequency %d (idx %d out of bounds)\n",
  373. freq, idx);
  374. goto exit;
  375. }
  376. if (cmd_flags & WMI_CHAN_INFO_FLAG_COMPLETE) {
  377. /* During scanning chan info is reported twice for each
  378. * visited channel. The reported cycle count is global
  379. * and per-channel cycle count must be calculated */
  380. cycle_count -= ar->survey_last_cycle_count;
  381. rx_clear_count -= ar->survey_last_rx_clear_count;
  382. survey = &ar->survey[idx];
  383. survey->channel_time = WMI_CHAN_INFO_MSEC(cycle_count);
  384. survey->channel_time_rx = WMI_CHAN_INFO_MSEC(rx_clear_count);
  385. survey->noise = noise_floor;
  386. survey->filled = SURVEY_INFO_CHANNEL_TIME |
  387. SURVEY_INFO_CHANNEL_TIME_RX |
  388. SURVEY_INFO_NOISE_DBM;
  389. }
  390. ar->survey_last_rx_clear_count = rx_clear_count;
  391. ar->survey_last_cycle_count = cycle_count;
  392. exit:
  393. spin_unlock_bh(&ar->data_lock);
  394. }
  395. static void ath10k_wmi_event_echo(struct ath10k *ar, struct sk_buff *skb)
  396. {
  397. ath10k_dbg(ATH10K_DBG_WMI, "WMI_ECHO_EVENTID\n");
  398. }
  399. static void ath10k_wmi_event_debug_mesg(struct ath10k *ar, struct sk_buff *skb)
  400. {
  401. ath10k_dbg(ATH10K_DBG_WMI, "WMI_DEBUG_MESG_EVENTID\n");
  402. }
  403. static void ath10k_wmi_event_update_stats(struct ath10k *ar,
  404. struct sk_buff *skb)
  405. {
  406. struct wmi_stats_event *ev = (struct wmi_stats_event *)skb->data;
  407. ath10k_dbg(ATH10K_DBG_WMI, "WMI_UPDATE_STATS_EVENTID\n");
  408. ath10k_debug_read_target_stats(ar, ev);
  409. }
  410. static void ath10k_wmi_event_vdev_start_resp(struct ath10k *ar,
  411. struct sk_buff *skb)
  412. {
  413. struct wmi_vdev_start_response_event *ev;
  414. ath10k_dbg(ATH10K_DBG_WMI, "WMI_VDEV_START_RESP_EVENTID\n");
  415. ev = (struct wmi_vdev_start_response_event *)skb->data;
  416. if (WARN_ON(__le32_to_cpu(ev->status)))
  417. return;
  418. complete(&ar->vdev_setup_done);
  419. }
  420. static void ath10k_wmi_event_vdev_stopped(struct ath10k *ar,
  421. struct sk_buff *skb)
  422. {
  423. ath10k_dbg(ATH10K_DBG_WMI, "WMI_VDEV_STOPPED_EVENTID\n");
  424. complete(&ar->vdev_setup_done);
  425. }
  426. static void ath10k_wmi_event_peer_sta_kickout(struct ath10k *ar,
  427. struct sk_buff *skb)
  428. {
  429. ath10k_dbg(ATH10K_DBG_WMI, "WMI_PEER_STA_KICKOUT_EVENTID\n");
  430. }
  431. /*
  432. * FIXME
  433. *
  434. * We don't report to mac80211 sleep state of connected
  435. * stations. Due to this mac80211 can't fill in TIM IE
  436. * correctly.
  437. *
  438. * I know of no way of getting nullfunc frames that contain
  439. * sleep transition from connected stations - these do not
  440. * seem to be sent from the target to the host. There also
  441. * doesn't seem to be a dedicated event for that. So the
  442. * only way left to do this would be to read tim_bitmap
  443. * during SWBA.
  444. *
  445. * We could probably try using tim_bitmap from SWBA to tell
  446. * mac80211 which stations are asleep and which are not. The
  447. * problem here is calling mac80211 functions so many times
  448. * could take too long and make us miss the time to submit
  449. * the beacon to the target.
  450. *
  451. * So as a workaround we try to extend the TIM IE if there
  452. * is unicast buffered for stations with aid > 7 and fill it
  453. * in ourselves.
  454. */
  455. static void ath10k_wmi_update_tim(struct ath10k *ar,
  456. struct ath10k_vif *arvif,
  457. struct sk_buff *bcn,
  458. struct wmi_bcn_info *bcn_info)
  459. {
  460. struct ieee80211_hdr *hdr = (struct ieee80211_hdr *)bcn->data;
  461. struct ieee80211_tim_ie *tim;
  462. u8 *ies, *ie;
  463. u8 ie_len, pvm_len;
  464. /* if next SWBA has no tim_changed the tim_bitmap is garbage.
  465. * we must copy the bitmap upon change and reuse it later */
  466. if (__le32_to_cpu(bcn_info->tim_info.tim_changed)) {
  467. int i;
  468. BUILD_BUG_ON(sizeof(arvif->u.ap.tim_bitmap) !=
  469. sizeof(bcn_info->tim_info.tim_bitmap));
  470. for (i = 0; i < sizeof(arvif->u.ap.tim_bitmap); i++) {
  471. __le32 t = bcn_info->tim_info.tim_bitmap[i / 4];
  472. u32 v = __le32_to_cpu(t);
  473. arvif->u.ap.tim_bitmap[i] = (v >> ((i % 4) * 8)) & 0xFF;
  474. }
  475. /* FW reports either length 0 or 16
  476. * so we calculate this on our own */
  477. arvif->u.ap.tim_len = 0;
  478. for (i = 0; i < sizeof(arvif->u.ap.tim_bitmap); i++)
  479. if (arvif->u.ap.tim_bitmap[i])
  480. arvif->u.ap.tim_len = i;
  481. arvif->u.ap.tim_len++;
  482. }
  483. ies = bcn->data;
  484. ies += ieee80211_hdrlen(hdr->frame_control);
  485. ies += 12; /* fixed parameters */
  486. ie = (u8 *)cfg80211_find_ie(WLAN_EID_TIM, ies,
  487. (u8 *)skb_tail_pointer(bcn) - ies);
  488. if (!ie) {
  489. if (arvif->vdev_type != WMI_VDEV_TYPE_IBSS)
  490. ath10k_warn("no tim ie found;\n");
  491. return;
  492. }
  493. tim = (void *)ie + 2;
  494. ie_len = ie[1];
  495. pvm_len = ie_len - 3; /* exclude dtim count, dtim period, bmap ctl */
  496. if (pvm_len < arvif->u.ap.tim_len) {
  497. int expand_size = sizeof(arvif->u.ap.tim_bitmap) - pvm_len;
  498. int move_size = skb_tail_pointer(bcn) - (ie + 2 + ie_len);
  499. void *next_ie = ie + 2 + ie_len;
  500. if (skb_put(bcn, expand_size)) {
  501. memmove(next_ie + expand_size, next_ie, move_size);
  502. ie[1] += expand_size;
  503. ie_len += expand_size;
  504. pvm_len += expand_size;
  505. } else {
  506. ath10k_warn("tim expansion failed\n");
  507. }
  508. }
  509. if (pvm_len > sizeof(arvif->u.ap.tim_bitmap)) {
  510. ath10k_warn("tim pvm length is too great (%d)\n", pvm_len);
  511. return;
  512. }
  513. tim->bitmap_ctrl = !!__le32_to_cpu(bcn_info->tim_info.tim_mcast);
  514. memcpy(tim->virtual_map, arvif->u.ap.tim_bitmap, pvm_len);
  515. ath10k_dbg(ATH10K_DBG_MGMT, "dtim %d/%d mcast %d pvmlen %d\n",
  516. tim->dtim_count, tim->dtim_period,
  517. tim->bitmap_ctrl, pvm_len);
  518. }
  519. static void ath10k_p2p_fill_noa_ie(u8 *data, u32 len,
  520. struct wmi_p2p_noa_info *noa)
  521. {
  522. struct ieee80211_p2p_noa_attr *noa_attr;
  523. u8 ctwindow_oppps = noa->ctwindow_oppps;
  524. u8 ctwindow = ctwindow_oppps >> WMI_P2P_OPPPS_CTWINDOW_OFFSET;
  525. bool oppps = !!(ctwindow_oppps & WMI_P2P_OPPPS_ENABLE_BIT);
  526. __le16 *noa_attr_len;
  527. u16 attr_len;
  528. u8 noa_descriptors = noa->num_descriptors;
  529. int i;
  530. /* P2P IE */
  531. data[0] = WLAN_EID_VENDOR_SPECIFIC;
  532. data[1] = len - 2;
  533. data[2] = (WLAN_OUI_WFA >> 16) & 0xff;
  534. data[3] = (WLAN_OUI_WFA >> 8) & 0xff;
  535. data[4] = (WLAN_OUI_WFA >> 0) & 0xff;
  536. data[5] = WLAN_OUI_TYPE_WFA_P2P;
  537. /* NOA ATTR */
  538. data[6] = IEEE80211_P2P_ATTR_ABSENCE_NOTICE;
  539. noa_attr_len = (__le16 *)&data[7]; /* 2 bytes */
  540. noa_attr = (struct ieee80211_p2p_noa_attr *)&data[9];
  541. noa_attr->index = noa->index;
  542. noa_attr->oppps_ctwindow = ctwindow;
  543. if (oppps)
  544. noa_attr->oppps_ctwindow |= IEEE80211_P2P_OPPPS_ENABLE_BIT;
  545. for (i = 0; i < noa_descriptors; i++) {
  546. noa_attr->desc[i].count =
  547. __le32_to_cpu(noa->descriptors[i].type_count);
  548. noa_attr->desc[i].duration = noa->descriptors[i].duration;
  549. noa_attr->desc[i].interval = noa->descriptors[i].interval;
  550. noa_attr->desc[i].start_time = noa->descriptors[i].start_time;
  551. }
  552. attr_len = 2; /* index + oppps_ctwindow */
  553. attr_len += noa_descriptors * sizeof(struct ieee80211_p2p_noa_desc);
  554. *noa_attr_len = __cpu_to_le16(attr_len);
  555. }
  556. static u32 ath10k_p2p_calc_noa_ie_len(struct wmi_p2p_noa_info *noa)
  557. {
  558. u32 len = 0;
  559. u8 noa_descriptors = noa->num_descriptors;
  560. u8 opp_ps_info = noa->ctwindow_oppps;
  561. bool opps_enabled = !!(opp_ps_info & WMI_P2P_OPPPS_ENABLE_BIT);
  562. if (!noa_descriptors && !opps_enabled)
  563. return len;
  564. len += 1 + 1 + 4; /* EID + len + OUI */
  565. len += 1 + 2; /* noa attr + attr len */
  566. len += 1 + 1; /* index + oppps_ctwindow */
  567. len += noa_descriptors * sizeof(struct ieee80211_p2p_noa_desc);
  568. return len;
  569. }
  570. static void ath10k_wmi_update_noa(struct ath10k *ar, struct ath10k_vif *arvif,
  571. struct sk_buff *bcn,
  572. struct wmi_bcn_info *bcn_info)
  573. {
  574. struct wmi_p2p_noa_info *noa = &bcn_info->p2p_noa_info;
  575. u8 *new_data, *old_data = arvif->u.ap.noa_data;
  576. u32 new_len;
  577. if (arvif->vdev_subtype != WMI_VDEV_SUBTYPE_P2P_GO)
  578. return;
  579. ath10k_dbg(ATH10K_DBG_MGMT, "noa changed: %d\n", noa->changed);
  580. if (noa->changed & WMI_P2P_NOA_CHANGED_BIT) {
  581. new_len = ath10k_p2p_calc_noa_ie_len(noa);
  582. if (!new_len)
  583. goto cleanup;
  584. new_data = kmalloc(new_len, GFP_ATOMIC);
  585. if (!new_data)
  586. goto cleanup;
  587. ath10k_p2p_fill_noa_ie(new_data, new_len, noa);
  588. spin_lock_bh(&ar->data_lock);
  589. arvif->u.ap.noa_data = new_data;
  590. arvif->u.ap.noa_len = new_len;
  591. spin_unlock_bh(&ar->data_lock);
  592. kfree(old_data);
  593. }
  594. if (arvif->u.ap.noa_data)
  595. if (!pskb_expand_head(bcn, 0, arvif->u.ap.noa_len, GFP_ATOMIC))
  596. memcpy(skb_put(bcn, arvif->u.ap.noa_len),
  597. arvif->u.ap.noa_data,
  598. arvif->u.ap.noa_len);
  599. return;
  600. cleanup:
  601. spin_lock_bh(&ar->data_lock);
  602. arvif->u.ap.noa_data = NULL;
  603. arvif->u.ap.noa_len = 0;
  604. spin_unlock_bh(&ar->data_lock);
  605. kfree(old_data);
  606. }
  607. static void ath10k_wmi_event_host_swba(struct ath10k *ar, struct sk_buff *skb)
  608. {
  609. struct wmi_host_swba_event *ev;
  610. u32 map;
  611. int i = -1;
  612. struct wmi_bcn_info *bcn_info;
  613. struct ath10k_vif *arvif;
  614. struct wmi_bcn_tx_arg arg;
  615. struct sk_buff *bcn;
  616. int vdev_id = 0;
  617. int ret;
  618. ath10k_dbg(ATH10K_DBG_MGMT, "WMI_HOST_SWBA_EVENTID\n");
  619. ev = (struct wmi_host_swba_event *)skb->data;
  620. map = __le32_to_cpu(ev->vdev_map);
  621. ath10k_dbg(ATH10K_DBG_MGMT, "host swba:\n"
  622. "-vdev map 0x%x\n",
  623. ev->vdev_map);
  624. for (; map; map >>= 1, vdev_id++) {
  625. if (!(map & 0x1))
  626. continue;
  627. i++;
  628. if (i >= WMI_MAX_AP_VDEV) {
  629. ath10k_warn("swba has corrupted vdev map\n");
  630. break;
  631. }
  632. bcn_info = &ev->bcn_info[i];
  633. ath10k_dbg(ATH10K_DBG_MGMT,
  634. "-bcn_info[%d]:\n"
  635. "--tim_len %d\n"
  636. "--tim_mcast %d\n"
  637. "--tim_changed %d\n"
  638. "--tim_num_ps_pending %d\n"
  639. "--tim_bitmap 0x%08x%08x%08x%08x\n",
  640. i,
  641. __le32_to_cpu(bcn_info->tim_info.tim_len),
  642. __le32_to_cpu(bcn_info->tim_info.tim_mcast),
  643. __le32_to_cpu(bcn_info->tim_info.tim_changed),
  644. __le32_to_cpu(bcn_info->tim_info.tim_num_ps_pending),
  645. __le32_to_cpu(bcn_info->tim_info.tim_bitmap[3]),
  646. __le32_to_cpu(bcn_info->tim_info.tim_bitmap[2]),
  647. __le32_to_cpu(bcn_info->tim_info.tim_bitmap[1]),
  648. __le32_to_cpu(bcn_info->tim_info.tim_bitmap[0]));
  649. arvif = ath10k_get_arvif(ar, vdev_id);
  650. if (arvif == NULL) {
  651. ath10k_warn("no vif for vdev_id %d found\n", vdev_id);
  652. continue;
  653. }
  654. bcn = ieee80211_beacon_get(ar->hw, arvif->vif);
  655. if (!bcn) {
  656. ath10k_warn("could not get mac80211 beacon\n");
  657. continue;
  658. }
  659. ath10k_tx_h_seq_no(bcn);
  660. ath10k_wmi_update_tim(ar, arvif, bcn, bcn_info);
  661. ath10k_wmi_update_noa(ar, arvif, bcn, bcn_info);
  662. arg.vdev_id = arvif->vdev_id;
  663. arg.tx_rate = 0;
  664. arg.tx_power = 0;
  665. arg.bcn = bcn->data;
  666. arg.bcn_len = bcn->len;
  667. ret = ath10k_wmi_beacon_send(ar, &arg);
  668. if (ret)
  669. ath10k_warn("could not send beacon (%d)\n", ret);
  670. dev_kfree_skb_any(bcn);
  671. }
  672. }
  673. static void ath10k_wmi_event_tbttoffset_update(struct ath10k *ar,
  674. struct sk_buff *skb)
  675. {
  676. ath10k_dbg(ATH10K_DBG_WMI, "WMI_TBTTOFFSET_UPDATE_EVENTID\n");
  677. }
  678. static void ath10k_wmi_event_phyerr(struct ath10k *ar, struct sk_buff *skb)
  679. {
  680. ath10k_dbg(ATH10K_DBG_WMI, "WMI_PHYERR_EVENTID\n");
  681. }
  682. static void ath10k_wmi_event_roam(struct ath10k *ar, struct sk_buff *skb)
  683. {
  684. ath10k_dbg(ATH10K_DBG_WMI, "WMI_ROAM_EVENTID\n");
  685. }
  686. static void ath10k_wmi_event_profile_match(struct ath10k *ar,
  687. struct sk_buff *skb)
  688. {
  689. ath10k_dbg(ATH10K_DBG_WMI, "WMI_PROFILE_MATCH\n");
  690. }
  691. static void ath10k_wmi_event_debug_print(struct ath10k *ar,
  692. struct sk_buff *skb)
  693. {
  694. ath10k_dbg(ATH10K_DBG_WMI, "WMI_DEBUG_PRINT_EVENTID\n");
  695. }
  696. static void ath10k_wmi_event_pdev_qvit(struct ath10k *ar, struct sk_buff *skb)
  697. {
  698. ath10k_dbg(ATH10K_DBG_WMI, "WMI_PDEV_QVIT_EVENTID\n");
  699. }
  700. static void ath10k_wmi_event_wlan_profile_data(struct ath10k *ar,
  701. struct sk_buff *skb)
  702. {
  703. ath10k_dbg(ATH10K_DBG_WMI, "WMI_WLAN_PROFILE_DATA_EVENTID\n");
  704. }
  705. static void ath10k_wmi_event_rtt_measurement_report(struct ath10k *ar,
  706. struct sk_buff *skb)
  707. {
  708. ath10k_dbg(ATH10K_DBG_WMI, "WMI_RTT_MEASUREMENT_REPORT_EVENTID\n");
  709. }
  710. static void ath10k_wmi_event_tsf_measurement_report(struct ath10k *ar,
  711. struct sk_buff *skb)
  712. {
  713. ath10k_dbg(ATH10K_DBG_WMI, "WMI_TSF_MEASUREMENT_REPORT_EVENTID\n");
  714. }
  715. static void ath10k_wmi_event_rtt_error_report(struct ath10k *ar,
  716. struct sk_buff *skb)
  717. {
  718. ath10k_dbg(ATH10K_DBG_WMI, "WMI_RTT_ERROR_REPORT_EVENTID\n");
  719. }
  720. static void ath10k_wmi_event_wow_wakeup_host(struct ath10k *ar,
  721. struct sk_buff *skb)
  722. {
  723. ath10k_dbg(ATH10K_DBG_WMI, "WMI_WOW_WAKEUP_HOST_EVENTID\n");
  724. }
  725. static void ath10k_wmi_event_dcs_interference(struct ath10k *ar,
  726. struct sk_buff *skb)
  727. {
  728. ath10k_dbg(ATH10K_DBG_WMI, "WMI_DCS_INTERFERENCE_EVENTID\n");
  729. }
  730. static void ath10k_wmi_event_pdev_tpc_config(struct ath10k *ar,
  731. struct sk_buff *skb)
  732. {
  733. ath10k_dbg(ATH10K_DBG_WMI, "WMI_PDEV_TPC_CONFIG_EVENTID\n");
  734. }
  735. static void ath10k_wmi_event_pdev_ftm_intg(struct ath10k *ar,
  736. struct sk_buff *skb)
  737. {
  738. ath10k_dbg(ATH10K_DBG_WMI, "WMI_PDEV_FTM_INTG_EVENTID\n");
  739. }
  740. static void ath10k_wmi_event_gtk_offload_status(struct ath10k *ar,
  741. struct sk_buff *skb)
  742. {
  743. ath10k_dbg(ATH10K_DBG_WMI, "WMI_GTK_OFFLOAD_STATUS_EVENTID\n");
  744. }
  745. static void ath10k_wmi_event_gtk_rekey_fail(struct ath10k *ar,
  746. struct sk_buff *skb)
  747. {
  748. ath10k_dbg(ATH10K_DBG_WMI, "WMI_GTK_REKEY_FAIL_EVENTID\n");
  749. }
  750. static void ath10k_wmi_event_delba_complete(struct ath10k *ar,
  751. struct sk_buff *skb)
  752. {
  753. ath10k_dbg(ATH10K_DBG_WMI, "WMI_TX_DELBA_COMPLETE_EVENTID\n");
  754. }
  755. static void ath10k_wmi_event_addba_complete(struct ath10k *ar,
  756. struct sk_buff *skb)
  757. {
  758. ath10k_dbg(ATH10K_DBG_WMI, "WMI_TX_ADDBA_COMPLETE_EVENTID\n");
  759. }
  760. static void ath10k_wmi_event_vdev_install_key_complete(struct ath10k *ar,
  761. struct sk_buff *skb)
  762. {
  763. ath10k_dbg(ATH10K_DBG_WMI, "WMI_VDEV_INSTALL_KEY_COMPLETE_EVENTID\n");
  764. }
  765. static void ath10k_wmi_service_ready_event_rx(struct ath10k *ar,
  766. struct sk_buff *skb)
  767. {
  768. struct wmi_service_ready_event *ev = (void *)skb->data;
  769. if (skb->len < sizeof(*ev)) {
  770. ath10k_warn("Service ready event was %d B but expected %zu B. Wrong firmware version?\n",
  771. skb->len, sizeof(*ev));
  772. return;
  773. }
  774. ar->hw_min_tx_power = __le32_to_cpu(ev->hw_min_tx_power);
  775. ar->hw_max_tx_power = __le32_to_cpu(ev->hw_max_tx_power);
  776. ar->ht_cap_info = __le32_to_cpu(ev->ht_cap_info);
  777. ar->vht_cap_info = __le32_to_cpu(ev->vht_cap_info);
  778. ar->fw_version_major =
  779. (__le32_to_cpu(ev->sw_version) & 0xff000000) >> 24;
  780. ar->fw_version_minor = (__le32_to_cpu(ev->sw_version) & 0x00ffffff);
  781. ar->fw_version_release =
  782. (__le32_to_cpu(ev->sw_version_1) & 0xffff0000) >> 16;
  783. ar->fw_version_build = (__le32_to_cpu(ev->sw_version_1) & 0x0000ffff);
  784. ar->phy_capability = __le32_to_cpu(ev->phy_capability);
  785. ar->num_rf_chains = __le32_to_cpu(ev->num_rf_chains);
  786. if (ar->num_rf_chains > WMI_MAX_SPATIAL_STREAM) {
  787. ath10k_warn("hardware advertises support for more spatial streams than it should (%d > %d)\n",
  788. ar->num_rf_chains, WMI_MAX_SPATIAL_STREAM);
  789. ar->num_rf_chains = WMI_MAX_SPATIAL_STREAM;
  790. }
  791. ar->ath_common.regulatory.current_rd =
  792. __le32_to_cpu(ev->hal_reg_capabilities.eeprom_rd);
  793. ath10k_debug_read_service_map(ar, ev->wmi_service_bitmap,
  794. sizeof(ev->wmi_service_bitmap));
  795. if (strlen(ar->hw->wiphy->fw_version) == 0) {
  796. snprintf(ar->hw->wiphy->fw_version,
  797. sizeof(ar->hw->wiphy->fw_version),
  798. "%u.%u.%u.%u",
  799. ar->fw_version_major,
  800. ar->fw_version_minor,
  801. ar->fw_version_release,
  802. ar->fw_version_build);
  803. }
  804. /* FIXME: it probably should be better to support this */
  805. if (__le32_to_cpu(ev->num_mem_reqs) > 0) {
  806. ath10k_warn("target requested %d memory chunks; ignoring\n",
  807. __le32_to_cpu(ev->num_mem_reqs));
  808. }
  809. ath10k_dbg(ATH10K_DBG_WMI,
  810. "wmi event service ready sw_ver 0x%08x sw_ver1 0x%08x abi_ver %u phy_cap 0x%08x ht_cap 0x%08x vht_cap 0x%08x vht_supp_msc 0x%08x sys_cap_info 0x%08x mem_reqs %u num_rf_chains %u\n",
  811. __le32_to_cpu(ev->sw_version),
  812. __le32_to_cpu(ev->sw_version_1),
  813. __le32_to_cpu(ev->abi_version),
  814. __le32_to_cpu(ev->phy_capability),
  815. __le32_to_cpu(ev->ht_cap_info),
  816. __le32_to_cpu(ev->vht_cap_info),
  817. __le32_to_cpu(ev->vht_supp_mcs),
  818. __le32_to_cpu(ev->sys_cap_info),
  819. __le32_to_cpu(ev->num_mem_reqs),
  820. __le32_to_cpu(ev->num_rf_chains));
  821. complete(&ar->wmi.service_ready);
  822. }
  823. static int ath10k_wmi_ready_event_rx(struct ath10k *ar, struct sk_buff *skb)
  824. {
  825. struct wmi_ready_event *ev = (struct wmi_ready_event *)skb->data;
  826. if (WARN_ON(skb->len < sizeof(*ev)))
  827. return -EINVAL;
  828. memcpy(ar->mac_addr, ev->mac_addr.addr, ETH_ALEN);
  829. ath10k_dbg(ATH10K_DBG_WMI,
  830. "wmi event ready sw_version %u abi_version %u mac_addr %pM status %d\n",
  831. __le32_to_cpu(ev->sw_version),
  832. __le32_to_cpu(ev->abi_version),
  833. ev->mac_addr.addr,
  834. __le32_to_cpu(ev->status));
  835. complete(&ar->wmi.unified_ready);
  836. return 0;
  837. }
  838. static void ath10k_wmi_event_process(struct ath10k *ar, struct sk_buff *skb)
  839. {
  840. struct wmi_cmd_hdr *cmd_hdr;
  841. enum wmi_event_id id;
  842. u16 len;
  843. cmd_hdr = (struct wmi_cmd_hdr *)skb->data;
  844. id = MS(__le32_to_cpu(cmd_hdr->cmd_id), WMI_CMD_HDR_CMD_ID);
  845. if (skb_pull(skb, sizeof(struct wmi_cmd_hdr)) == NULL)
  846. return;
  847. len = skb->len;
  848. trace_ath10k_wmi_event(id, skb->data, skb->len);
  849. switch (id) {
  850. case WMI_MGMT_RX_EVENTID:
  851. ath10k_wmi_event_mgmt_rx(ar, skb);
  852. /* mgmt_rx() owns the skb now! */
  853. return;
  854. case WMI_SCAN_EVENTID:
  855. ath10k_wmi_event_scan(ar, skb);
  856. break;
  857. case WMI_CHAN_INFO_EVENTID:
  858. ath10k_wmi_event_chan_info(ar, skb);
  859. break;
  860. case WMI_ECHO_EVENTID:
  861. ath10k_wmi_event_echo(ar, skb);
  862. break;
  863. case WMI_DEBUG_MESG_EVENTID:
  864. ath10k_wmi_event_debug_mesg(ar, skb);
  865. break;
  866. case WMI_UPDATE_STATS_EVENTID:
  867. ath10k_wmi_event_update_stats(ar, skb);
  868. break;
  869. case WMI_VDEV_START_RESP_EVENTID:
  870. ath10k_wmi_event_vdev_start_resp(ar, skb);
  871. break;
  872. case WMI_VDEV_STOPPED_EVENTID:
  873. ath10k_wmi_event_vdev_stopped(ar, skb);
  874. break;
  875. case WMI_PEER_STA_KICKOUT_EVENTID:
  876. ath10k_wmi_event_peer_sta_kickout(ar, skb);
  877. break;
  878. case WMI_HOST_SWBA_EVENTID:
  879. ath10k_wmi_event_host_swba(ar, skb);
  880. break;
  881. case WMI_TBTTOFFSET_UPDATE_EVENTID:
  882. ath10k_wmi_event_tbttoffset_update(ar, skb);
  883. break;
  884. case WMI_PHYERR_EVENTID:
  885. ath10k_wmi_event_phyerr(ar, skb);
  886. break;
  887. case WMI_ROAM_EVENTID:
  888. ath10k_wmi_event_roam(ar, skb);
  889. break;
  890. case WMI_PROFILE_MATCH:
  891. ath10k_wmi_event_profile_match(ar, skb);
  892. break;
  893. case WMI_DEBUG_PRINT_EVENTID:
  894. ath10k_wmi_event_debug_print(ar, skb);
  895. break;
  896. case WMI_PDEV_QVIT_EVENTID:
  897. ath10k_wmi_event_pdev_qvit(ar, skb);
  898. break;
  899. case WMI_WLAN_PROFILE_DATA_EVENTID:
  900. ath10k_wmi_event_wlan_profile_data(ar, skb);
  901. break;
  902. case WMI_RTT_MEASUREMENT_REPORT_EVENTID:
  903. ath10k_wmi_event_rtt_measurement_report(ar, skb);
  904. break;
  905. case WMI_TSF_MEASUREMENT_REPORT_EVENTID:
  906. ath10k_wmi_event_tsf_measurement_report(ar, skb);
  907. break;
  908. case WMI_RTT_ERROR_REPORT_EVENTID:
  909. ath10k_wmi_event_rtt_error_report(ar, skb);
  910. break;
  911. case WMI_WOW_WAKEUP_HOST_EVENTID:
  912. ath10k_wmi_event_wow_wakeup_host(ar, skb);
  913. break;
  914. case WMI_DCS_INTERFERENCE_EVENTID:
  915. ath10k_wmi_event_dcs_interference(ar, skb);
  916. break;
  917. case WMI_PDEV_TPC_CONFIG_EVENTID:
  918. ath10k_wmi_event_pdev_tpc_config(ar, skb);
  919. break;
  920. case WMI_PDEV_FTM_INTG_EVENTID:
  921. ath10k_wmi_event_pdev_ftm_intg(ar, skb);
  922. break;
  923. case WMI_GTK_OFFLOAD_STATUS_EVENTID:
  924. ath10k_wmi_event_gtk_offload_status(ar, skb);
  925. break;
  926. case WMI_GTK_REKEY_FAIL_EVENTID:
  927. ath10k_wmi_event_gtk_rekey_fail(ar, skb);
  928. break;
  929. case WMI_TX_DELBA_COMPLETE_EVENTID:
  930. ath10k_wmi_event_delba_complete(ar, skb);
  931. break;
  932. case WMI_TX_ADDBA_COMPLETE_EVENTID:
  933. ath10k_wmi_event_addba_complete(ar, skb);
  934. break;
  935. case WMI_VDEV_INSTALL_KEY_COMPLETE_EVENTID:
  936. ath10k_wmi_event_vdev_install_key_complete(ar, skb);
  937. break;
  938. case WMI_SERVICE_READY_EVENTID:
  939. ath10k_wmi_service_ready_event_rx(ar, skb);
  940. break;
  941. case WMI_READY_EVENTID:
  942. ath10k_wmi_ready_event_rx(ar, skb);
  943. break;
  944. default:
  945. ath10k_warn("Unknown eventid: %d\n", id);
  946. break;
  947. }
  948. dev_kfree_skb(skb);
  949. }
  950. static void ath10k_wmi_event_work(struct work_struct *work)
  951. {
  952. struct ath10k *ar = container_of(work, struct ath10k,
  953. wmi.wmi_event_work);
  954. struct sk_buff *skb;
  955. for (;;) {
  956. skb = skb_dequeue(&ar->wmi.wmi_event_list);
  957. if (!skb)
  958. break;
  959. ath10k_wmi_event_process(ar, skb);
  960. }
  961. }
  962. static void ath10k_wmi_process_rx(struct ath10k *ar, struct sk_buff *skb)
  963. {
  964. struct wmi_cmd_hdr *cmd_hdr = (struct wmi_cmd_hdr *)skb->data;
  965. enum wmi_event_id event_id;
  966. event_id = MS(__le32_to_cpu(cmd_hdr->cmd_id), WMI_CMD_HDR_CMD_ID);
  967. /* some events require to be handled ASAP
  968. * thus can't be defered to a worker thread */
  969. switch (event_id) {
  970. case WMI_HOST_SWBA_EVENTID:
  971. case WMI_MGMT_RX_EVENTID:
  972. ath10k_wmi_event_process(ar, skb);
  973. return;
  974. default:
  975. break;
  976. }
  977. skb_queue_tail(&ar->wmi.wmi_event_list, skb);
  978. queue_work(ar->workqueue, &ar->wmi.wmi_event_work);
  979. }
  980. /* WMI Initialization functions */
  981. int ath10k_wmi_attach(struct ath10k *ar)
  982. {
  983. init_completion(&ar->wmi.service_ready);
  984. init_completion(&ar->wmi.unified_ready);
  985. init_waitqueue_head(&ar->wmi.wq);
  986. skb_queue_head_init(&ar->wmi.wmi_event_list);
  987. INIT_WORK(&ar->wmi.wmi_event_work, ath10k_wmi_event_work);
  988. return 0;
  989. }
  990. void ath10k_wmi_detach(struct ath10k *ar)
  991. {
  992. /* HTC should've drained the packets already */
  993. if (WARN_ON(atomic_read(&ar->wmi.pending_tx_count) > 0))
  994. ath10k_warn("there are still pending packets\n");
  995. cancel_work_sync(&ar->wmi.wmi_event_work);
  996. skb_queue_purge(&ar->wmi.wmi_event_list);
  997. }
  998. int ath10k_wmi_connect_htc_service(struct ath10k *ar)
  999. {
  1000. int status;
  1001. struct ath10k_htc_svc_conn_req conn_req;
  1002. struct ath10k_htc_svc_conn_resp conn_resp;
  1003. memset(&conn_req, 0, sizeof(conn_req));
  1004. memset(&conn_resp, 0, sizeof(conn_resp));
  1005. /* these fields are the same for all service endpoints */
  1006. conn_req.ep_ops.ep_tx_complete = ath10k_wmi_htc_tx_complete;
  1007. conn_req.ep_ops.ep_rx_complete = ath10k_wmi_process_rx;
  1008. /* connect to control service */
  1009. conn_req.service_id = ATH10K_HTC_SVC_ID_WMI_CONTROL;
  1010. status = ath10k_htc_connect_service(&ar->htc, &conn_req, &conn_resp);
  1011. if (status) {
  1012. ath10k_warn("failed to connect to WMI CONTROL service status: %d\n",
  1013. status);
  1014. return status;
  1015. }
  1016. ar->wmi.eid = conn_resp.eid;
  1017. return 0;
  1018. }
  1019. int ath10k_wmi_pdev_set_regdomain(struct ath10k *ar, u16 rd, u16 rd2g,
  1020. u16 rd5g, u16 ctl2g, u16 ctl5g)
  1021. {
  1022. struct wmi_pdev_set_regdomain_cmd *cmd;
  1023. struct sk_buff *skb;
  1024. skb = ath10k_wmi_alloc_skb(sizeof(*cmd));
  1025. if (!skb)
  1026. return -ENOMEM;
  1027. cmd = (struct wmi_pdev_set_regdomain_cmd *)skb->data;
  1028. cmd->reg_domain = __cpu_to_le32(rd);
  1029. cmd->reg_domain_2G = __cpu_to_le32(rd2g);
  1030. cmd->reg_domain_5G = __cpu_to_le32(rd5g);
  1031. cmd->conformance_test_limit_2G = __cpu_to_le32(ctl2g);
  1032. cmd->conformance_test_limit_5G = __cpu_to_le32(ctl5g);
  1033. ath10k_dbg(ATH10K_DBG_WMI,
  1034. "wmi pdev regdomain rd %x rd2g %x rd5g %x ctl2g %x ctl5g %x\n",
  1035. rd, rd2g, rd5g, ctl2g, ctl5g);
  1036. return ath10k_wmi_cmd_send(ar, skb, WMI_PDEV_SET_REGDOMAIN_CMDID);
  1037. }
  1038. int ath10k_wmi_pdev_set_channel(struct ath10k *ar,
  1039. const struct wmi_channel_arg *arg)
  1040. {
  1041. struct wmi_set_channel_cmd *cmd;
  1042. struct sk_buff *skb;
  1043. if (arg->passive)
  1044. return -EINVAL;
  1045. skb = ath10k_wmi_alloc_skb(sizeof(*cmd));
  1046. if (!skb)
  1047. return -ENOMEM;
  1048. cmd = (struct wmi_set_channel_cmd *)skb->data;
  1049. cmd->chan.mhz = __cpu_to_le32(arg->freq);
  1050. cmd->chan.band_center_freq1 = __cpu_to_le32(arg->freq);
  1051. cmd->chan.mode = arg->mode;
  1052. cmd->chan.min_power = arg->min_power;
  1053. cmd->chan.max_power = arg->max_power;
  1054. cmd->chan.reg_power = arg->max_reg_power;
  1055. cmd->chan.reg_classid = arg->reg_class_id;
  1056. cmd->chan.antenna_max = arg->max_antenna_gain;
  1057. ath10k_dbg(ATH10K_DBG_WMI,
  1058. "wmi set channel mode %d freq %d\n",
  1059. arg->mode, arg->freq);
  1060. return ath10k_wmi_cmd_send(ar, skb, WMI_PDEV_SET_CHANNEL_CMDID);
  1061. }
  1062. int ath10k_wmi_pdev_suspend_target(struct ath10k *ar)
  1063. {
  1064. struct wmi_pdev_suspend_cmd *cmd;
  1065. struct sk_buff *skb;
  1066. skb = ath10k_wmi_alloc_skb(sizeof(*cmd));
  1067. if (!skb)
  1068. return -ENOMEM;
  1069. cmd = (struct wmi_pdev_suspend_cmd *)skb->data;
  1070. cmd->suspend_opt = WMI_PDEV_SUSPEND;
  1071. return ath10k_wmi_cmd_send(ar, skb, WMI_PDEV_SUSPEND_CMDID);
  1072. }
  1073. int ath10k_wmi_pdev_resume_target(struct ath10k *ar)
  1074. {
  1075. struct sk_buff *skb;
  1076. skb = ath10k_wmi_alloc_skb(0);
  1077. if (skb == NULL)
  1078. return -ENOMEM;
  1079. return ath10k_wmi_cmd_send(ar, skb, WMI_PDEV_RESUME_CMDID);
  1080. }
  1081. int ath10k_wmi_pdev_set_param(struct ath10k *ar, enum wmi_pdev_param id,
  1082. u32 value)
  1083. {
  1084. struct wmi_pdev_set_param_cmd *cmd;
  1085. struct sk_buff *skb;
  1086. skb = ath10k_wmi_alloc_skb(sizeof(*cmd));
  1087. if (!skb)
  1088. return -ENOMEM;
  1089. cmd = (struct wmi_pdev_set_param_cmd *)skb->data;
  1090. cmd->param_id = __cpu_to_le32(id);
  1091. cmd->param_value = __cpu_to_le32(value);
  1092. ath10k_dbg(ATH10K_DBG_WMI, "wmi pdev set param %d value %d\n",
  1093. id, value);
  1094. return ath10k_wmi_cmd_send(ar, skb, WMI_PDEV_SET_PARAM_CMDID);
  1095. }
  1096. int ath10k_wmi_cmd_init(struct ath10k *ar)
  1097. {
  1098. struct wmi_init_cmd *cmd;
  1099. struct sk_buff *buf;
  1100. struct wmi_resource_config config = {};
  1101. u32 val;
  1102. config.num_vdevs = __cpu_to_le32(TARGET_NUM_VDEVS);
  1103. config.num_peers = __cpu_to_le32(TARGET_NUM_PEERS + TARGET_NUM_VDEVS);
  1104. config.num_offload_peers = __cpu_to_le32(TARGET_NUM_OFFLOAD_PEERS);
  1105. config.num_offload_reorder_bufs =
  1106. __cpu_to_le32(TARGET_NUM_OFFLOAD_REORDER_BUFS);
  1107. config.num_peer_keys = __cpu_to_le32(TARGET_NUM_PEER_KEYS);
  1108. config.num_tids = __cpu_to_le32(TARGET_NUM_TIDS);
  1109. config.ast_skid_limit = __cpu_to_le32(TARGET_AST_SKID_LIMIT);
  1110. config.tx_chain_mask = __cpu_to_le32(TARGET_TX_CHAIN_MASK);
  1111. config.rx_chain_mask = __cpu_to_le32(TARGET_RX_CHAIN_MASK);
  1112. config.rx_timeout_pri_vo = __cpu_to_le32(TARGET_RX_TIMEOUT_LO_PRI);
  1113. config.rx_timeout_pri_vi = __cpu_to_le32(TARGET_RX_TIMEOUT_LO_PRI);
  1114. config.rx_timeout_pri_be = __cpu_to_le32(TARGET_RX_TIMEOUT_LO_PRI);
  1115. config.rx_timeout_pri_bk = __cpu_to_le32(TARGET_RX_TIMEOUT_HI_PRI);
  1116. config.rx_decap_mode = __cpu_to_le32(TARGET_RX_DECAP_MODE);
  1117. config.scan_max_pending_reqs =
  1118. __cpu_to_le32(TARGET_SCAN_MAX_PENDING_REQS);
  1119. config.bmiss_offload_max_vdev =
  1120. __cpu_to_le32(TARGET_BMISS_OFFLOAD_MAX_VDEV);
  1121. config.roam_offload_max_vdev =
  1122. __cpu_to_le32(TARGET_ROAM_OFFLOAD_MAX_VDEV);
  1123. config.roam_offload_max_ap_profiles =
  1124. __cpu_to_le32(TARGET_ROAM_OFFLOAD_MAX_AP_PROFILES);
  1125. config.num_mcast_groups = __cpu_to_le32(TARGET_NUM_MCAST_GROUPS);
  1126. config.num_mcast_table_elems =
  1127. __cpu_to_le32(TARGET_NUM_MCAST_TABLE_ELEMS);
  1128. config.mcast2ucast_mode = __cpu_to_le32(TARGET_MCAST2UCAST_MODE);
  1129. config.tx_dbg_log_size = __cpu_to_le32(TARGET_TX_DBG_LOG_SIZE);
  1130. config.num_wds_entries = __cpu_to_le32(TARGET_NUM_WDS_ENTRIES);
  1131. config.dma_burst_size = __cpu_to_le32(TARGET_DMA_BURST_SIZE);
  1132. config.mac_aggr_delim = __cpu_to_le32(TARGET_MAC_AGGR_DELIM);
  1133. val = TARGET_RX_SKIP_DEFRAG_TIMEOUT_DUP_DETECTION_CHECK;
  1134. config.rx_skip_defrag_timeout_dup_detection_check = __cpu_to_le32(val);
  1135. config.vow_config = __cpu_to_le32(TARGET_VOW_CONFIG);
  1136. config.gtk_offload_max_vdev =
  1137. __cpu_to_le32(TARGET_GTK_OFFLOAD_MAX_VDEV);
  1138. config.num_msdu_desc = __cpu_to_le32(TARGET_NUM_MSDU_DESC);
  1139. config.max_frag_entries = __cpu_to_le32(TARGET_MAX_FRAG_ENTRIES);
  1140. buf = ath10k_wmi_alloc_skb(sizeof(*cmd));
  1141. if (!buf)
  1142. return -ENOMEM;
  1143. cmd = (struct wmi_init_cmd *)buf->data;
  1144. cmd->num_host_mem_chunks = 0;
  1145. memcpy(&cmd->resource_config, &config, sizeof(config));
  1146. ath10k_dbg(ATH10K_DBG_WMI, "wmi init\n");
  1147. return ath10k_wmi_cmd_send(ar, buf, WMI_INIT_CMDID);
  1148. }
  1149. static int ath10k_wmi_start_scan_calc_len(const struct wmi_start_scan_arg *arg)
  1150. {
  1151. int len;
  1152. len = sizeof(struct wmi_start_scan_cmd);
  1153. if (arg->ie_len) {
  1154. if (!arg->ie)
  1155. return -EINVAL;
  1156. if (arg->ie_len > WLAN_SCAN_PARAMS_MAX_IE_LEN)
  1157. return -EINVAL;
  1158. len += sizeof(struct wmi_ie_data);
  1159. len += roundup(arg->ie_len, 4);
  1160. }
  1161. if (arg->n_channels) {
  1162. if (!arg->channels)
  1163. return -EINVAL;
  1164. if (arg->n_channels > ARRAY_SIZE(arg->channels))
  1165. return -EINVAL;
  1166. len += sizeof(struct wmi_chan_list);
  1167. len += sizeof(__le32) * arg->n_channels;
  1168. }
  1169. if (arg->n_ssids) {
  1170. if (!arg->ssids)
  1171. return -EINVAL;
  1172. if (arg->n_ssids > WLAN_SCAN_PARAMS_MAX_SSID)
  1173. return -EINVAL;
  1174. len += sizeof(struct wmi_ssid_list);
  1175. len += sizeof(struct wmi_ssid) * arg->n_ssids;
  1176. }
  1177. if (arg->n_bssids) {
  1178. if (!arg->bssids)
  1179. return -EINVAL;
  1180. if (arg->n_bssids > WLAN_SCAN_PARAMS_MAX_BSSID)
  1181. return -EINVAL;
  1182. len += sizeof(struct wmi_bssid_list);
  1183. len += sizeof(struct wmi_mac_addr) * arg->n_bssids;
  1184. }
  1185. return len;
  1186. }
  1187. int ath10k_wmi_start_scan(struct ath10k *ar,
  1188. const struct wmi_start_scan_arg *arg)
  1189. {
  1190. struct wmi_start_scan_cmd *cmd;
  1191. struct sk_buff *skb;
  1192. struct wmi_ie_data *ie;
  1193. struct wmi_chan_list *channels;
  1194. struct wmi_ssid_list *ssids;
  1195. struct wmi_bssid_list *bssids;
  1196. u32 scan_id;
  1197. u32 scan_req_id;
  1198. int off;
  1199. int len = 0;
  1200. int i;
  1201. len = ath10k_wmi_start_scan_calc_len(arg);
  1202. if (len < 0)
  1203. return len; /* len contains error code here */
  1204. skb = ath10k_wmi_alloc_skb(len);
  1205. if (!skb)
  1206. return -ENOMEM;
  1207. scan_id = WMI_HOST_SCAN_REQ_ID_PREFIX;
  1208. scan_id |= arg->scan_id;
  1209. scan_req_id = WMI_HOST_SCAN_REQUESTOR_ID_PREFIX;
  1210. scan_req_id |= arg->scan_req_id;
  1211. cmd = (struct wmi_start_scan_cmd *)skb->data;
  1212. cmd->scan_id = __cpu_to_le32(scan_id);
  1213. cmd->scan_req_id = __cpu_to_le32(scan_req_id);
  1214. cmd->vdev_id = __cpu_to_le32(arg->vdev_id);
  1215. cmd->scan_priority = __cpu_to_le32(arg->scan_priority);
  1216. cmd->notify_scan_events = __cpu_to_le32(arg->notify_scan_events);
  1217. cmd->dwell_time_active = __cpu_to_le32(arg->dwell_time_active);
  1218. cmd->dwell_time_passive = __cpu_to_le32(arg->dwell_time_passive);
  1219. cmd->min_rest_time = __cpu_to_le32(arg->min_rest_time);
  1220. cmd->max_rest_time = __cpu_to_le32(arg->max_rest_time);
  1221. cmd->repeat_probe_time = __cpu_to_le32(arg->repeat_probe_time);
  1222. cmd->probe_spacing_time = __cpu_to_le32(arg->probe_spacing_time);
  1223. cmd->idle_time = __cpu_to_le32(arg->idle_time);
  1224. cmd->max_scan_time = __cpu_to_le32(arg->max_scan_time);
  1225. cmd->probe_delay = __cpu_to_le32(arg->probe_delay);
  1226. cmd->scan_ctrl_flags = __cpu_to_le32(arg->scan_ctrl_flags);
  1227. /* TLV list starts after fields included in the struct */
  1228. off = sizeof(*cmd);
  1229. if (arg->n_channels) {
  1230. channels = (void *)skb->data + off;
  1231. channels->tag = __cpu_to_le32(WMI_CHAN_LIST_TAG);
  1232. channels->num_chan = __cpu_to_le32(arg->n_channels);
  1233. for (i = 0; i < arg->n_channels; i++)
  1234. channels->channel_list[i] =
  1235. __cpu_to_le32(arg->channels[i]);
  1236. off += sizeof(*channels);
  1237. off += sizeof(__le32) * arg->n_channels;
  1238. }
  1239. if (arg->n_ssids) {
  1240. ssids = (void *)skb->data + off;
  1241. ssids->tag = __cpu_to_le32(WMI_SSID_LIST_TAG);
  1242. ssids->num_ssids = __cpu_to_le32(arg->n_ssids);
  1243. for (i = 0; i < arg->n_ssids; i++) {
  1244. ssids->ssids[i].ssid_len =
  1245. __cpu_to_le32(arg->ssids[i].len);
  1246. memcpy(&ssids->ssids[i].ssid,
  1247. arg->ssids[i].ssid,
  1248. arg->ssids[i].len);
  1249. }
  1250. off += sizeof(*ssids);
  1251. off += sizeof(struct wmi_ssid) * arg->n_ssids;
  1252. }
  1253. if (arg->n_bssids) {
  1254. bssids = (void *)skb->data + off;
  1255. bssids->tag = __cpu_to_le32(WMI_BSSID_LIST_TAG);
  1256. bssids->num_bssid = __cpu_to_le32(arg->n_bssids);
  1257. for (i = 0; i < arg->n_bssids; i++)
  1258. memcpy(&bssids->bssid_list[i],
  1259. arg->bssids[i].bssid,
  1260. ETH_ALEN);
  1261. off += sizeof(*bssids);
  1262. off += sizeof(struct wmi_mac_addr) * arg->n_bssids;
  1263. }
  1264. if (arg->ie_len) {
  1265. ie = (void *)skb->data + off;
  1266. ie->tag = __cpu_to_le32(WMI_IE_TAG);
  1267. ie->ie_len = __cpu_to_le32(arg->ie_len);
  1268. memcpy(ie->ie_data, arg->ie, arg->ie_len);
  1269. off += sizeof(*ie);
  1270. off += roundup(arg->ie_len, 4);
  1271. }
  1272. if (off != skb->len) {
  1273. dev_kfree_skb(skb);
  1274. return -EINVAL;
  1275. }
  1276. ath10k_dbg(ATH10K_DBG_WMI, "wmi start scan\n");
  1277. return ath10k_wmi_cmd_send(ar, skb, WMI_START_SCAN_CMDID);
  1278. }
  1279. void ath10k_wmi_start_scan_init(struct ath10k *ar,
  1280. struct wmi_start_scan_arg *arg)
  1281. {
  1282. /* setup commonly used values */
  1283. arg->scan_req_id = 1;
  1284. arg->scan_priority = WMI_SCAN_PRIORITY_LOW;
  1285. arg->dwell_time_active = 50;
  1286. arg->dwell_time_passive = 150;
  1287. arg->min_rest_time = 50;
  1288. arg->max_rest_time = 500;
  1289. arg->repeat_probe_time = 0;
  1290. arg->probe_spacing_time = 0;
  1291. arg->idle_time = 0;
  1292. arg->max_scan_time = 5000;
  1293. arg->probe_delay = 5;
  1294. arg->notify_scan_events = WMI_SCAN_EVENT_STARTED
  1295. | WMI_SCAN_EVENT_COMPLETED
  1296. | WMI_SCAN_EVENT_BSS_CHANNEL
  1297. | WMI_SCAN_EVENT_FOREIGN_CHANNEL
  1298. | WMI_SCAN_EVENT_DEQUEUED;
  1299. arg->scan_ctrl_flags |= WMI_SCAN_ADD_OFDM_RATES;
  1300. arg->scan_ctrl_flags |= WMI_SCAN_CHAN_STAT_EVENT;
  1301. arg->n_bssids = 1;
  1302. arg->bssids[0].bssid = "\xFF\xFF\xFF\xFF\xFF\xFF";
  1303. }
  1304. int ath10k_wmi_stop_scan(struct ath10k *ar, const struct wmi_stop_scan_arg *arg)
  1305. {
  1306. struct wmi_stop_scan_cmd *cmd;
  1307. struct sk_buff *skb;
  1308. u32 scan_id;
  1309. u32 req_id;
  1310. if (arg->req_id > 0xFFF)
  1311. return -EINVAL;
  1312. if (arg->req_type == WMI_SCAN_STOP_ONE && arg->u.scan_id > 0xFFF)
  1313. return -EINVAL;
  1314. skb = ath10k_wmi_alloc_skb(sizeof(*cmd));
  1315. if (!skb)
  1316. return -ENOMEM;
  1317. scan_id = arg->u.scan_id;
  1318. scan_id |= WMI_HOST_SCAN_REQ_ID_PREFIX;
  1319. req_id = arg->req_id;
  1320. req_id |= WMI_HOST_SCAN_REQUESTOR_ID_PREFIX;
  1321. cmd = (struct wmi_stop_scan_cmd *)skb->data;
  1322. cmd->req_type = __cpu_to_le32(arg->req_type);
  1323. cmd->vdev_id = __cpu_to_le32(arg->u.vdev_id);
  1324. cmd->scan_id = __cpu_to_le32(scan_id);
  1325. cmd->scan_req_id = __cpu_to_le32(req_id);
  1326. ath10k_dbg(ATH10K_DBG_WMI,
  1327. "wmi stop scan reqid %d req_type %d vdev/scan_id %d\n",
  1328. arg->req_id, arg->req_type, arg->u.scan_id);
  1329. return ath10k_wmi_cmd_send(ar, skb, WMI_STOP_SCAN_CMDID);
  1330. }
  1331. int ath10k_wmi_vdev_create(struct ath10k *ar, u32 vdev_id,
  1332. enum wmi_vdev_type type,
  1333. enum wmi_vdev_subtype subtype,
  1334. const u8 macaddr[ETH_ALEN])
  1335. {
  1336. struct wmi_vdev_create_cmd *cmd;
  1337. struct sk_buff *skb;
  1338. skb = ath10k_wmi_alloc_skb(sizeof(*cmd));
  1339. if (!skb)
  1340. return -ENOMEM;
  1341. cmd = (struct wmi_vdev_create_cmd *)skb->data;
  1342. cmd->vdev_id = __cpu_to_le32(vdev_id);
  1343. cmd->vdev_type = __cpu_to_le32(type);
  1344. cmd->vdev_subtype = __cpu_to_le32(subtype);
  1345. memcpy(cmd->vdev_macaddr.addr, macaddr, ETH_ALEN);
  1346. ath10k_dbg(ATH10K_DBG_WMI,
  1347. "WMI vdev create: id %d type %d subtype %d macaddr %pM\n",
  1348. vdev_id, type, subtype, macaddr);
  1349. return ath10k_wmi_cmd_send(ar, skb, WMI_VDEV_CREATE_CMDID);
  1350. }
  1351. int ath10k_wmi_vdev_delete(struct ath10k *ar, u32 vdev_id)
  1352. {
  1353. struct wmi_vdev_delete_cmd *cmd;
  1354. struct sk_buff *skb;
  1355. skb = ath10k_wmi_alloc_skb(sizeof(*cmd));
  1356. if (!skb)
  1357. return -ENOMEM;
  1358. cmd = (struct wmi_vdev_delete_cmd *)skb->data;
  1359. cmd->vdev_id = __cpu_to_le32(vdev_id);
  1360. ath10k_dbg(ATH10K_DBG_WMI,
  1361. "WMI vdev delete id %d\n", vdev_id);
  1362. return ath10k_wmi_cmd_send(ar, skb, WMI_VDEV_DELETE_CMDID);
  1363. }
  1364. static int ath10k_wmi_vdev_start_restart(struct ath10k *ar,
  1365. const struct wmi_vdev_start_request_arg *arg,
  1366. enum wmi_cmd_id cmd_id)
  1367. {
  1368. struct wmi_vdev_start_request_cmd *cmd;
  1369. struct sk_buff *skb;
  1370. const char *cmdname;
  1371. u32 flags = 0;
  1372. if (cmd_id != WMI_VDEV_START_REQUEST_CMDID &&
  1373. cmd_id != WMI_VDEV_RESTART_REQUEST_CMDID)
  1374. return -EINVAL;
  1375. if (WARN_ON(arg->ssid && arg->ssid_len == 0))
  1376. return -EINVAL;
  1377. if (WARN_ON(arg->hidden_ssid && !arg->ssid))
  1378. return -EINVAL;
  1379. if (WARN_ON(arg->ssid_len > sizeof(cmd->ssid.ssid)))
  1380. return -EINVAL;
  1381. if (cmd_id == WMI_VDEV_START_REQUEST_CMDID)
  1382. cmdname = "start";
  1383. else if (cmd_id == WMI_VDEV_RESTART_REQUEST_CMDID)
  1384. cmdname = "restart";
  1385. else
  1386. return -EINVAL; /* should not happen, we already check cmd_id */
  1387. skb = ath10k_wmi_alloc_skb(sizeof(*cmd));
  1388. if (!skb)
  1389. return -ENOMEM;
  1390. if (arg->hidden_ssid)
  1391. flags |= WMI_VDEV_START_HIDDEN_SSID;
  1392. if (arg->pmf_enabled)
  1393. flags |= WMI_VDEV_START_PMF_ENABLED;
  1394. cmd = (struct wmi_vdev_start_request_cmd *)skb->data;
  1395. cmd->vdev_id = __cpu_to_le32(arg->vdev_id);
  1396. cmd->disable_hw_ack = __cpu_to_le32(arg->disable_hw_ack);
  1397. cmd->beacon_interval = __cpu_to_le32(arg->bcn_intval);
  1398. cmd->dtim_period = __cpu_to_le32(arg->dtim_period);
  1399. cmd->flags = __cpu_to_le32(flags);
  1400. cmd->bcn_tx_rate = __cpu_to_le32(arg->bcn_tx_rate);
  1401. cmd->bcn_tx_power = __cpu_to_le32(arg->bcn_tx_power);
  1402. if (arg->ssid) {
  1403. cmd->ssid.ssid_len = __cpu_to_le32(arg->ssid_len);
  1404. memcpy(cmd->ssid.ssid, arg->ssid, arg->ssid_len);
  1405. }
  1406. cmd->chan.mhz = __cpu_to_le32(arg->channel.freq);
  1407. cmd->chan.band_center_freq1 =
  1408. __cpu_to_le32(arg->channel.band_center_freq1);
  1409. cmd->chan.mode = arg->channel.mode;
  1410. cmd->chan.min_power = arg->channel.min_power;
  1411. cmd->chan.max_power = arg->channel.max_power;
  1412. cmd->chan.reg_power = arg->channel.max_reg_power;
  1413. cmd->chan.reg_classid = arg->channel.reg_class_id;
  1414. cmd->chan.antenna_max = arg->channel.max_antenna_gain;
  1415. ath10k_dbg(ATH10K_DBG_WMI,
  1416. "wmi vdev %s id 0x%x freq %d, mode %d, ch_flags: 0x%0X,"
  1417. "max_power: %d\n", cmdname, arg->vdev_id, arg->channel.freq,
  1418. arg->channel.mode, flags, arg->channel.max_power);
  1419. return ath10k_wmi_cmd_send(ar, skb, cmd_id);
  1420. }
  1421. int ath10k_wmi_vdev_start(struct ath10k *ar,
  1422. const struct wmi_vdev_start_request_arg *arg)
  1423. {
  1424. return ath10k_wmi_vdev_start_restart(ar, arg,
  1425. WMI_VDEV_START_REQUEST_CMDID);
  1426. }
  1427. int ath10k_wmi_vdev_restart(struct ath10k *ar,
  1428. const struct wmi_vdev_start_request_arg *arg)
  1429. {
  1430. return ath10k_wmi_vdev_start_restart(ar, arg,
  1431. WMI_VDEV_RESTART_REQUEST_CMDID);
  1432. }
  1433. int ath10k_wmi_vdev_stop(struct ath10k *ar, u32 vdev_id)
  1434. {
  1435. struct wmi_vdev_stop_cmd *cmd;
  1436. struct sk_buff *skb;
  1437. skb = ath10k_wmi_alloc_skb(sizeof(*cmd));
  1438. if (!skb)
  1439. return -ENOMEM;
  1440. cmd = (struct wmi_vdev_stop_cmd *)skb->data;
  1441. cmd->vdev_id = __cpu_to_le32(vdev_id);
  1442. ath10k_dbg(ATH10K_DBG_WMI, "wmi vdev stop id 0x%x\n", vdev_id);
  1443. return ath10k_wmi_cmd_send(ar, skb, WMI_VDEV_STOP_CMDID);
  1444. }
  1445. int ath10k_wmi_vdev_up(struct ath10k *ar, u32 vdev_id, u32 aid, const u8 *bssid)
  1446. {
  1447. struct wmi_vdev_up_cmd *cmd;
  1448. struct sk_buff *skb;
  1449. skb = ath10k_wmi_alloc_skb(sizeof(*cmd));
  1450. if (!skb)
  1451. return -ENOMEM;
  1452. cmd = (struct wmi_vdev_up_cmd *)skb->data;
  1453. cmd->vdev_id = __cpu_to_le32(vdev_id);
  1454. cmd->vdev_assoc_id = __cpu_to_le32(aid);
  1455. memcpy(&cmd->vdev_bssid.addr, bssid, 6);
  1456. ath10k_dbg(ATH10K_DBG_WMI,
  1457. "wmi mgmt vdev up id 0x%x assoc id %d bssid %pM\n",
  1458. vdev_id, aid, bssid);
  1459. return ath10k_wmi_cmd_send(ar, skb, WMI_VDEV_UP_CMDID);
  1460. }
  1461. int ath10k_wmi_vdev_down(struct ath10k *ar, u32 vdev_id)
  1462. {
  1463. struct wmi_vdev_down_cmd *cmd;
  1464. struct sk_buff *skb;
  1465. skb = ath10k_wmi_alloc_skb(sizeof(*cmd));
  1466. if (!skb)
  1467. return -ENOMEM;
  1468. cmd = (struct wmi_vdev_down_cmd *)skb->data;
  1469. cmd->vdev_id = __cpu_to_le32(vdev_id);
  1470. ath10k_dbg(ATH10K_DBG_WMI,
  1471. "wmi mgmt vdev down id 0x%x\n", vdev_id);
  1472. return ath10k_wmi_cmd_send(ar, skb, WMI_VDEV_DOWN_CMDID);
  1473. }
  1474. int ath10k_wmi_vdev_set_param(struct ath10k *ar, u32 vdev_id,
  1475. enum wmi_vdev_param param_id, u32 param_value)
  1476. {
  1477. struct wmi_vdev_set_param_cmd *cmd;
  1478. struct sk_buff *skb;
  1479. skb = ath10k_wmi_alloc_skb(sizeof(*cmd));
  1480. if (!skb)
  1481. return -ENOMEM;
  1482. cmd = (struct wmi_vdev_set_param_cmd *)skb->data;
  1483. cmd->vdev_id = __cpu_to_le32(vdev_id);
  1484. cmd->param_id = __cpu_to_le32(param_id);
  1485. cmd->param_value = __cpu_to_le32(param_value);
  1486. ath10k_dbg(ATH10K_DBG_WMI,
  1487. "wmi vdev id 0x%x set param %d value %d\n",
  1488. vdev_id, param_id, param_value);
  1489. return ath10k_wmi_cmd_send(ar, skb, WMI_VDEV_SET_PARAM_CMDID);
  1490. }
  1491. int ath10k_wmi_vdev_install_key(struct ath10k *ar,
  1492. const struct wmi_vdev_install_key_arg *arg)
  1493. {
  1494. struct wmi_vdev_install_key_cmd *cmd;
  1495. struct sk_buff *skb;
  1496. if (arg->key_cipher == WMI_CIPHER_NONE && arg->key_data != NULL)
  1497. return -EINVAL;
  1498. if (arg->key_cipher != WMI_CIPHER_NONE && arg->key_data == NULL)
  1499. return -EINVAL;
  1500. skb = ath10k_wmi_alloc_skb(sizeof(*cmd) + arg->key_len);
  1501. if (!skb)
  1502. return -ENOMEM;
  1503. cmd = (struct wmi_vdev_install_key_cmd *)skb->data;
  1504. cmd->vdev_id = __cpu_to_le32(arg->vdev_id);
  1505. cmd->key_idx = __cpu_to_le32(arg->key_idx);
  1506. cmd->key_flags = __cpu_to_le32(arg->key_flags);
  1507. cmd->key_cipher = __cpu_to_le32(arg->key_cipher);
  1508. cmd->key_len = __cpu_to_le32(arg->key_len);
  1509. cmd->key_txmic_len = __cpu_to_le32(arg->key_txmic_len);
  1510. cmd->key_rxmic_len = __cpu_to_le32(arg->key_rxmic_len);
  1511. if (arg->macaddr)
  1512. memcpy(cmd->peer_macaddr.addr, arg->macaddr, ETH_ALEN);
  1513. if (arg->key_data)
  1514. memcpy(cmd->key_data, arg->key_data, arg->key_len);
  1515. ath10k_dbg(ATH10K_DBG_WMI,
  1516. "wmi vdev install key idx %d cipher %d len %d\n",
  1517. arg->key_idx, arg->key_cipher, arg->key_len);
  1518. return ath10k_wmi_cmd_send(ar, skb, WMI_VDEV_INSTALL_KEY_CMDID);
  1519. }
  1520. int ath10k_wmi_peer_create(struct ath10k *ar, u32 vdev_id,
  1521. const u8 peer_addr[ETH_ALEN])
  1522. {
  1523. struct wmi_peer_create_cmd *cmd;
  1524. struct sk_buff *skb;
  1525. skb = ath10k_wmi_alloc_skb(sizeof(*cmd));
  1526. if (!skb)
  1527. return -ENOMEM;
  1528. cmd = (struct wmi_peer_create_cmd *)skb->data;
  1529. cmd->vdev_id = __cpu_to_le32(vdev_id);
  1530. memcpy(cmd->peer_macaddr.addr, peer_addr, ETH_ALEN);
  1531. ath10k_dbg(ATH10K_DBG_WMI,
  1532. "wmi peer create vdev_id %d peer_addr %pM\n",
  1533. vdev_id, peer_addr);
  1534. return ath10k_wmi_cmd_send(ar, skb, WMI_PEER_CREATE_CMDID);
  1535. }
  1536. int ath10k_wmi_peer_delete(struct ath10k *ar, u32 vdev_id,
  1537. const u8 peer_addr[ETH_ALEN])
  1538. {
  1539. struct wmi_peer_delete_cmd *cmd;
  1540. struct sk_buff *skb;
  1541. skb = ath10k_wmi_alloc_skb(sizeof(*cmd));
  1542. if (!skb)
  1543. return -ENOMEM;
  1544. cmd = (struct wmi_peer_delete_cmd *)skb->data;
  1545. cmd->vdev_id = __cpu_to_le32(vdev_id);
  1546. memcpy(cmd->peer_macaddr.addr, peer_addr, ETH_ALEN);
  1547. ath10k_dbg(ATH10K_DBG_WMI,
  1548. "wmi peer delete vdev_id %d peer_addr %pM\n",
  1549. vdev_id, peer_addr);
  1550. return ath10k_wmi_cmd_send(ar, skb, WMI_PEER_DELETE_CMDID);
  1551. }
  1552. int ath10k_wmi_peer_flush(struct ath10k *ar, u32 vdev_id,
  1553. const u8 peer_addr[ETH_ALEN], u32 tid_bitmap)
  1554. {
  1555. struct wmi_peer_flush_tids_cmd *cmd;
  1556. struct sk_buff *skb;
  1557. skb = ath10k_wmi_alloc_skb(sizeof(*cmd));
  1558. if (!skb)
  1559. return -ENOMEM;
  1560. cmd = (struct wmi_peer_flush_tids_cmd *)skb->data;
  1561. cmd->vdev_id = __cpu_to_le32(vdev_id);
  1562. cmd->peer_tid_bitmap = __cpu_to_le32(tid_bitmap);
  1563. memcpy(cmd->peer_macaddr.addr, peer_addr, ETH_ALEN);
  1564. ath10k_dbg(ATH10K_DBG_WMI,
  1565. "wmi peer flush vdev_id %d peer_addr %pM tids %08x\n",
  1566. vdev_id, peer_addr, tid_bitmap);
  1567. return ath10k_wmi_cmd_send(ar, skb, WMI_PEER_FLUSH_TIDS_CMDID);
  1568. }
  1569. int ath10k_wmi_peer_set_param(struct ath10k *ar, u32 vdev_id,
  1570. const u8 *peer_addr, enum wmi_peer_param param_id,
  1571. u32 param_value)
  1572. {
  1573. struct wmi_peer_set_param_cmd *cmd;
  1574. struct sk_buff *skb;
  1575. skb = ath10k_wmi_alloc_skb(sizeof(*cmd));
  1576. if (!skb)
  1577. return -ENOMEM;
  1578. cmd = (struct wmi_peer_set_param_cmd *)skb->data;
  1579. cmd->vdev_id = __cpu_to_le32(vdev_id);
  1580. cmd->param_id = __cpu_to_le32(param_id);
  1581. cmd->param_value = __cpu_to_le32(param_value);
  1582. memcpy(&cmd->peer_macaddr.addr, peer_addr, 6);
  1583. ath10k_dbg(ATH10K_DBG_WMI,
  1584. "wmi vdev %d peer 0x%pM set param %d value %d\n",
  1585. vdev_id, peer_addr, param_id, param_value);
  1586. return ath10k_wmi_cmd_send(ar, skb, WMI_PEER_SET_PARAM_CMDID);
  1587. }
  1588. int ath10k_wmi_set_psmode(struct ath10k *ar, u32 vdev_id,
  1589. enum wmi_sta_ps_mode psmode)
  1590. {
  1591. struct wmi_sta_powersave_mode_cmd *cmd;
  1592. struct sk_buff *skb;
  1593. skb = ath10k_wmi_alloc_skb(sizeof(*cmd));
  1594. if (!skb)
  1595. return -ENOMEM;
  1596. cmd = (struct wmi_sta_powersave_mode_cmd *)skb->data;
  1597. cmd->vdev_id = __cpu_to_le32(vdev_id);
  1598. cmd->sta_ps_mode = __cpu_to_le32(psmode);
  1599. ath10k_dbg(ATH10K_DBG_WMI,
  1600. "wmi set powersave id 0x%x mode %d\n",
  1601. vdev_id, psmode);
  1602. return ath10k_wmi_cmd_send(ar, skb, WMI_STA_POWERSAVE_MODE_CMDID);
  1603. }
  1604. int ath10k_wmi_set_sta_ps_param(struct ath10k *ar, u32 vdev_id,
  1605. enum wmi_sta_powersave_param param_id,
  1606. u32 value)
  1607. {
  1608. struct wmi_sta_powersave_param_cmd *cmd;
  1609. struct sk_buff *skb;
  1610. skb = ath10k_wmi_alloc_skb(sizeof(*cmd));
  1611. if (!skb)
  1612. return -ENOMEM;
  1613. cmd = (struct wmi_sta_powersave_param_cmd *)skb->data;
  1614. cmd->vdev_id = __cpu_to_le32(vdev_id);
  1615. cmd->param_id = __cpu_to_le32(param_id);
  1616. cmd->param_value = __cpu_to_le32(value);
  1617. ath10k_dbg(ATH10K_DBG_WMI,
  1618. "wmi sta ps param vdev_id 0x%x param %d value %d\n",
  1619. vdev_id, param_id, value);
  1620. return ath10k_wmi_cmd_send(ar, skb, WMI_STA_POWERSAVE_PARAM_CMDID);
  1621. }
  1622. int ath10k_wmi_set_ap_ps_param(struct ath10k *ar, u32 vdev_id, const u8 *mac,
  1623. enum wmi_ap_ps_peer_param param_id, u32 value)
  1624. {
  1625. struct wmi_ap_ps_peer_cmd *cmd;
  1626. struct sk_buff *skb;
  1627. if (!mac)
  1628. return -EINVAL;
  1629. skb = ath10k_wmi_alloc_skb(sizeof(*cmd));
  1630. if (!skb)
  1631. return -ENOMEM;
  1632. cmd = (struct wmi_ap_ps_peer_cmd *)skb->data;
  1633. cmd->vdev_id = __cpu_to_le32(vdev_id);
  1634. cmd->param_id = __cpu_to_le32(param_id);
  1635. cmd->param_value = __cpu_to_le32(value);
  1636. memcpy(&cmd->peer_macaddr, mac, ETH_ALEN);
  1637. ath10k_dbg(ATH10K_DBG_WMI,
  1638. "wmi ap ps param vdev_id 0x%X param %d value %d mac_addr %pM\n",
  1639. vdev_id, param_id, value, mac);
  1640. return ath10k_wmi_cmd_send(ar, skb, WMI_AP_PS_PEER_PARAM_CMDID);
  1641. }
  1642. int ath10k_wmi_scan_chan_list(struct ath10k *ar,
  1643. const struct wmi_scan_chan_list_arg *arg)
  1644. {
  1645. struct wmi_scan_chan_list_cmd *cmd;
  1646. struct sk_buff *skb;
  1647. struct wmi_channel_arg *ch;
  1648. struct wmi_channel *ci;
  1649. int len;
  1650. int i;
  1651. len = sizeof(*cmd) + arg->n_channels * sizeof(struct wmi_channel);
  1652. skb = ath10k_wmi_alloc_skb(len);
  1653. if (!skb)
  1654. return -EINVAL;
  1655. cmd = (struct wmi_scan_chan_list_cmd *)skb->data;
  1656. cmd->num_scan_chans = __cpu_to_le32(arg->n_channels);
  1657. for (i = 0; i < arg->n_channels; i++) {
  1658. u32 flags = 0;
  1659. ch = &arg->channels[i];
  1660. ci = &cmd->chan_info[i];
  1661. if (ch->passive)
  1662. flags |= WMI_CHAN_FLAG_PASSIVE;
  1663. if (ch->allow_ibss)
  1664. flags |= WMI_CHAN_FLAG_ADHOC_ALLOWED;
  1665. if (ch->allow_ht)
  1666. flags |= WMI_CHAN_FLAG_ALLOW_HT;
  1667. if (ch->allow_vht)
  1668. flags |= WMI_CHAN_FLAG_ALLOW_VHT;
  1669. if (ch->ht40plus)
  1670. flags |= WMI_CHAN_FLAG_HT40_PLUS;
  1671. ci->mhz = __cpu_to_le32(ch->freq);
  1672. ci->band_center_freq1 = __cpu_to_le32(ch->freq);
  1673. ci->band_center_freq2 = 0;
  1674. ci->min_power = ch->min_power;
  1675. ci->max_power = ch->max_power;
  1676. ci->reg_power = ch->max_reg_power;
  1677. ci->antenna_max = ch->max_antenna_gain;
  1678. ci->antenna_max = 0;
  1679. /* mode & flags share storage */
  1680. ci->mode = ch->mode;
  1681. ci->flags |= __cpu_to_le32(flags);
  1682. }
  1683. return ath10k_wmi_cmd_send(ar, skb, WMI_SCAN_CHAN_LIST_CMDID);
  1684. }
  1685. int ath10k_wmi_peer_assoc(struct ath10k *ar,
  1686. const struct wmi_peer_assoc_complete_arg *arg)
  1687. {
  1688. struct wmi_peer_assoc_complete_cmd *cmd;
  1689. struct sk_buff *skb;
  1690. if (arg->peer_mpdu_density > 16)
  1691. return -EINVAL;
  1692. if (arg->peer_legacy_rates.num_rates > MAX_SUPPORTED_RATES)
  1693. return -EINVAL;
  1694. if (arg->peer_ht_rates.num_rates > MAX_SUPPORTED_RATES)
  1695. return -EINVAL;
  1696. skb = ath10k_wmi_alloc_skb(sizeof(*cmd));
  1697. if (!skb)
  1698. return -ENOMEM;
  1699. cmd = (struct wmi_peer_assoc_complete_cmd *)skb->data;
  1700. cmd->vdev_id = __cpu_to_le32(arg->vdev_id);
  1701. cmd->peer_new_assoc = __cpu_to_le32(arg->peer_reassoc ? 0 : 1);
  1702. cmd->peer_associd = __cpu_to_le32(arg->peer_aid);
  1703. cmd->peer_flags = __cpu_to_le32(arg->peer_flags);
  1704. cmd->peer_caps = __cpu_to_le32(arg->peer_caps);
  1705. cmd->peer_listen_intval = __cpu_to_le32(arg->peer_listen_intval);
  1706. cmd->peer_ht_caps = __cpu_to_le32(arg->peer_ht_caps);
  1707. cmd->peer_max_mpdu = __cpu_to_le32(arg->peer_max_mpdu);
  1708. cmd->peer_mpdu_density = __cpu_to_le32(arg->peer_mpdu_density);
  1709. cmd->peer_rate_caps = __cpu_to_le32(arg->peer_rate_caps);
  1710. cmd->peer_nss = __cpu_to_le32(arg->peer_num_spatial_streams);
  1711. cmd->peer_vht_caps = __cpu_to_le32(arg->peer_vht_caps);
  1712. cmd->peer_phymode = __cpu_to_le32(arg->peer_phymode);
  1713. memcpy(cmd->peer_macaddr.addr, arg->addr, ETH_ALEN);
  1714. cmd->peer_legacy_rates.num_rates =
  1715. __cpu_to_le32(arg->peer_legacy_rates.num_rates);
  1716. memcpy(cmd->peer_legacy_rates.rates, arg->peer_legacy_rates.rates,
  1717. arg->peer_legacy_rates.num_rates);
  1718. cmd->peer_ht_rates.num_rates =
  1719. __cpu_to_le32(arg->peer_ht_rates.num_rates);
  1720. memcpy(cmd->peer_ht_rates.rates, arg->peer_ht_rates.rates,
  1721. arg->peer_ht_rates.num_rates);
  1722. cmd->peer_vht_rates.rx_max_rate =
  1723. __cpu_to_le32(arg->peer_vht_rates.rx_max_rate);
  1724. cmd->peer_vht_rates.rx_mcs_set =
  1725. __cpu_to_le32(arg->peer_vht_rates.rx_mcs_set);
  1726. cmd->peer_vht_rates.tx_max_rate =
  1727. __cpu_to_le32(arg->peer_vht_rates.tx_max_rate);
  1728. cmd->peer_vht_rates.tx_mcs_set =
  1729. __cpu_to_le32(arg->peer_vht_rates.tx_mcs_set);
  1730. ath10k_dbg(ATH10K_DBG_WMI,
  1731. "wmi peer assoc vdev %d addr %pM\n",
  1732. arg->vdev_id, arg->addr);
  1733. return ath10k_wmi_cmd_send(ar, skb, WMI_PEER_ASSOC_CMDID);
  1734. }
  1735. int ath10k_wmi_beacon_send(struct ath10k *ar, const struct wmi_bcn_tx_arg *arg)
  1736. {
  1737. struct wmi_bcn_tx_cmd *cmd;
  1738. struct sk_buff *skb;
  1739. skb = ath10k_wmi_alloc_skb(sizeof(*cmd) + arg->bcn_len);
  1740. if (!skb)
  1741. return -ENOMEM;
  1742. cmd = (struct wmi_bcn_tx_cmd *)skb->data;
  1743. cmd->hdr.vdev_id = __cpu_to_le32(arg->vdev_id);
  1744. cmd->hdr.tx_rate = __cpu_to_le32(arg->tx_rate);
  1745. cmd->hdr.tx_power = __cpu_to_le32(arg->tx_power);
  1746. cmd->hdr.bcn_len = __cpu_to_le32(arg->bcn_len);
  1747. memcpy(cmd->bcn, arg->bcn, arg->bcn_len);
  1748. return ath10k_wmi_cmd_send(ar, skb, WMI_BCN_TX_CMDID);
  1749. }
  1750. static void ath10k_wmi_pdev_set_wmm_param(struct wmi_wmm_params *params,
  1751. const struct wmi_wmm_params_arg *arg)
  1752. {
  1753. params->cwmin = __cpu_to_le32(arg->cwmin);
  1754. params->cwmax = __cpu_to_le32(arg->cwmax);
  1755. params->aifs = __cpu_to_le32(arg->aifs);
  1756. params->txop = __cpu_to_le32(arg->txop);
  1757. params->acm = __cpu_to_le32(arg->acm);
  1758. params->no_ack = __cpu_to_le32(arg->no_ack);
  1759. }
  1760. int ath10k_wmi_pdev_set_wmm_params(struct ath10k *ar,
  1761. const struct wmi_pdev_set_wmm_params_arg *arg)
  1762. {
  1763. struct wmi_pdev_set_wmm_params *cmd;
  1764. struct sk_buff *skb;
  1765. skb = ath10k_wmi_alloc_skb(sizeof(*cmd));
  1766. if (!skb)
  1767. return -ENOMEM;
  1768. cmd = (struct wmi_pdev_set_wmm_params *)skb->data;
  1769. ath10k_wmi_pdev_set_wmm_param(&cmd->ac_be, &arg->ac_be);
  1770. ath10k_wmi_pdev_set_wmm_param(&cmd->ac_bk, &arg->ac_bk);
  1771. ath10k_wmi_pdev_set_wmm_param(&cmd->ac_vi, &arg->ac_vi);
  1772. ath10k_wmi_pdev_set_wmm_param(&cmd->ac_vo, &arg->ac_vo);
  1773. ath10k_dbg(ATH10K_DBG_WMI, "wmi pdev set wmm params\n");
  1774. return ath10k_wmi_cmd_send(ar, skb, WMI_PDEV_SET_WMM_PARAMS_CMDID);
  1775. }
  1776. int ath10k_wmi_request_stats(struct ath10k *ar, enum wmi_stats_id stats_id)
  1777. {
  1778. struct wmi_request_stats_cmd *cmd;
  1779. struct sk_buff *skb;
  1780. skb = ath10k_wmi_alloc_skb(sizeof(*cmd));
  1781. if (!skb)
  1782. return -ENOMEM;
  1783. cmd = (struct wmi_request_stats_cmd *)skb->data;
  1784. cmd->stats_id = __cpu_to_le32(stats_id);
  1785. ath10k_dbg(ATH10K_DBG_WMI, "wmi request stats %d\n", (int)stats_id);
  1786. return ath10k_wmi_cmd_send(ar, skb, WMI_REQUEST_STATS_CMDID);
  1787. }
  1788. int ath10k_wmi_force_fw_hang(struct ath10k *ar,
  1789. enum wmi_force_fw_hang_type type, u32 delay_ms)
  1790. {
  1791. struct wmi_force_fw_hang_cmd *cmd;
  1792. struct sk_buff *skb;
  1793. skb = ath10k_wmi_alloc_skb(sizeof(*cmd));
  1794. if (!skb)
  1795. return -ENOMEM;
  1796. cmd = (struct wmi_force_fw_hang_cmd *)skb->data;
  1797. cmd->type = __cpu_to_le32(type);
  1798. cmd->delay_ms = __cpu_to_le32(delay_ms);
  1799. ath10k_dbg(ATH10K_DBG_WMI, "wmi force fw hang %d delay %d\n",
  1800. type, delay_ms);
  1801. return ath10k_wmi_cmd_send(ar, skb, WMI_FORCE_FW_HANG_CMDID);
  1802. }