wmi.c 53 KB

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  1. /*
  2. * Copyright (c) 2012-2017 Qualcomm Atheros, Inc.
  3. *
  4. * Permission to use, copy, modify, and/or distribute this software for any
  5. * purpose with or without fee is hereby granted, provided that the above
  6. * copyright notice and this permission notice appear in all copies.
  7. *
  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. #include <linux/moduleparam.h>
  17. #include <linux/etherdevice.h>
  18. #include <linux/if_arp.h>
  19. #include "wil6210.h"
  20. #include "txrx.h"
  21. #include "wmi.h"
  22. #include "trace.h"
  23. static uint max_assoc_sta = WIL6210_MAX_CID;
  24. module_param(max_assoc_sta, uint, 0644);
  25. MODULE_PARM_DESC(max_assoc_sta, " Max number of stations associated to the AP");
  26. int agg_wsize; /* = 0; */
  27. module_param(agg_wsize, int, 0644);
  28. MODULE_PARM_DESC(agg_wsize, " Window size for Tx Block Ack after connect;"
  29. " 0 - use default; < 0 - don't auto-establish");
  30. u8 led_id = WIL_LED_INVALID_ID;
  31. module_param(led_id, byte, 0444);
  32. MODULE_PARM_DESC(led_id,
  33. " 60G device led enablement. Set the led ID (0-2) to enable");
  34. #define WIL_WAIT_FOR_SUSPEND_RESUME_COMP 200
  35. /**
  36. * WMI event receiving - theory of operations
  37. *
  38. * When firmware about to report WMI event, it fills memory area
  39. * in the mailbox and raises misc. IRQ. Thread interrupt handler invoked for
  40. * the misc IRQ, function @wmi_recv_cmd called by thread IRQ handler.
  41. *
  42. * @wmi_recv_cmd reads event, allocates memory chunk and attaches it to the
  43. * event list @wil->pending_wmi_ev. Then, work queue @wil->wmi_wq wakes up
  44. * and handles events within the @wmi_event_worker. Every event get detached
  45. * from list, processed and deleted.
  46. *
  47. * Purpose for this mechanism is to release IRQ thread; otherwise,
  48. * if WMI event handling involves another WMI command flow, this 2-nd flow
  49. * won't be completed because of blocked IRQ thread.
  50. */
  51. /**
  52. * Addressing - theory of operations
  53. *
  54. * There are several buses present on the WIL6210 card.
  55. * Same memory areas are visible at different address on
  56. * the different busses. There are 3 main bus masters:
  57. * - MAC CPU (ucode)
  58. * - User CPU (firmware)
  59. * - AHB (host)
  60. *
  61. * On the PCI bus, there is one BAR (BAR0) of 2Mb size, exposing
  62. * AHB addresses starting from 0x880000
  63. *
  64. * Internally, firmware uses addresses that allows faster access but
  65. * are invisible from the host. To read from these addresses, alternative
  66. * AHB address must be used.
  67. *
  68. * Memory mapping
  69. * Linker address PCI/Host address
  70. * 0x880000 .. 0xa80000 2Mb BAR0
  71. * 0x800000 .. 0x807000 0x900000 .. 0x907000 28k DCCM
  72. * 0x840000 .. 0x857000 0x908000 .. 0x91f000 92k PERIPH
  73. */
  74. /**
  75. * @fw_mapping provides memory remapping table
  76. *
  77. * array size should be in sync with the declaration in the wil6210.h
  78. */
  79. const struct fw_map fw_mapping[] = {
  80. /* FW code RAM 256k */
  81. {0x000000, 0x040000, 0x8c0000, "fw_code", true},
  82. /* FW data RAM 32k */
  83. {0x800000, 0x808000, 0x900000, "fw_data", true},
  84. /* periph data 128k */
  85. {0x840000, 0x860000, 0x908000, "fw_peri", true},
  86. /* various RGF 40k */
  87. {0x880000, 0x88a000, 0x880000, "rgf", true},
  88. /* AGC table 4k */
  89. {0x88a000, 0x88b000, 0x88a000, "AGC_tbl", true},
  90. /* Pcie_ext_rgf 4k */
  91. {0x88b000, 0x88c000, 0x88b000, "rgf_ext", true},
  92. /* mac_ext_rgf 512b */
  93. {0x88c000, 0x88c200, 0x88c000, "mac_rgf_ext", true},
  94. /* upper area 548k */
  95. {0x8c0000, 0x949000, 0x8c0000, "upper", true},
  96. /* UCODE areas - accessible by debugfs blobs but not by
  97. * wmi_addr_remap. UCODE areas MUST be added AFTER FW areas!
  98. */
  99. /* ucode code RAM 128k */
  100. {0x000000, 0x020000, 0x920000, "uc_code", false},
  101. /* ucode data RAM 16k */
  102. {0x800000, 0x804000, 0x940000, "uc_data", false},
  103. };
  104. struct blink_on_off_time led_blink_time[] = {
  105. {WIL_LED_BLINK_ON_SLOW_MS, WIL_LED_BLINK_OFF_SLOW_MS},
  106. {WIL_LED_BLINK_ON_MED_MS, WIL_LED_BLINK_OFF_MED_MS},
  107. {WIL_LED_BLINK_ON_FAST_MS, WIL_LED_BLINK_OFF_FAST_MS},
  108. };
  109. u8 led_polarity = LED_POLARITY_LOW_ACTIVE;
  110. /**
  111. * return AHB address for given firmware internal (linker) address
  112. * @x - internal address
  113. * If address have no valid AHB mapping, return 0
  114. */
  115. static u32 wmi_addr_remap(u32 x)
  116. {
  117. uint i;
  118. for (i = 0; i < ARRAY_SIZE(fw_mapping); i++) {
  119. if (fw_mapping[i].fw &&
  120. ((x >= fw_mapping[i].from) && (x < fw_mapping[i].to)))
  121. return x + fw_mapping[i].host - fw_mapping[i].from;
  122. }
  123. return 0;
  124. }
  125. /**
  126. * Check address validity for WMI buffer; remap if needed
  127. * @ptr - internal (linker) fw/ucode address
  128. *
  129. * Valid buffer should be DWORD aligned
  130. *
  131. * return address for accessing buffer from the host;
  132. * if buffer is not valid, return NULL.
  133. */
  134. void __iomem *wmi_buffer(struct wil6210_priv *wil, __le32 ptr_)
  135. {
  136. u32 off;
  137. u32 ptr = le32_to_cpu(ptr_);
  138. if (ptr % 4)
  139. return NULL;
  140. ptr = wmi_addr_remap(ptr);
  141. if (ptr < WIL6210_FW_HOST_OFF)
  142. return NULL;
  143. off = HOSTADDR(ptr);
  144. if (off > wil->bar_size - 4)
  145. return NULL;
  146. return wil->csr + off;
  147. }
  148. /**
  149. * Check address validity
  150. */
  151. void __iomem *wmi_addr(struct wil6210_priv *wil, u32 ptr)
  152. {
  153. u32 off;
  154. if (ptr % 4)
  155. return NULL;
  156. if (ptr < WIL6210_FW_HOST_OFF)
  157. return NULL;
  158. off = HOSTADDR(ptr);
  159. if (off > wil->bar_size - 4)
  160. return NULL;
  161. return wil->csr + off;
  162. }
  163. int wmi_read_hdr(struct wil6210_priv *wil, __le32 ptr,
  164. struct wil6210_mbox_hdr *hdr)
  165. {
  166. void __iomem *src = wmi_buffer(wil, ptr);
  167. if (!src)
  168. return -EINVAL;
  169. wil_memcpy_fromio_32(hdr, src, sizeof(*hdr));
  170. return 0;
  171. }
  172. static int __wmi_send(struct wil6210_priv *wil, u16 cmdid, void *buf, u16 len)
  173. {
  174. struct {
  175. struct wil6210_mbox_hdr hdr;
  176. struct wmi_cmd_hdr wmi;
  177. } __packed cmd = {
  178. .hdr = {
  179. .type = WIL_MBOX_HDR_TYPE_WMI,
  180. .flags = 0,
  181. .len = cpu_to_le16(sizeof(cmd.wmi) + len),
  182. },
  183. .wmi = {
  184. .mid = 0,
  185. .command_id = cpu_to_le16(cmdid),
  186. },
  187. };
  188. struct wil6210_mbox_ring *r = &wil->mbox_ctl.tx;
  189. struct wil6210_mbox_ring_desc d_head;
  190. u32 next_head;
  191. void __iomem *dst;
  192. void __iomem *head = wmi_addr(wil, r->head);
  193. uint retry;
  194. int rc = 0;
  195. if (sizeof(cmd) + len > r->entry_size) {
  196. wil_err(wil, "WMI size too large: %d bytes, max is %d\n",
  197. (int)(sizeof(cmd) + len), r->entry_size);
  198. return -ERANGE;
  199. }
  200. might_sleep();
  201. if (!test_bit(wil_status_fwready, wil->status)) {
  202. wil_err(wil, "WMI: cannot send command while FW not ready\n");
  203. return -EAGAIN;
  204. }
  205. /* Allow sending only suspend / resume commands during susepnd flow */
  206. if ((test_bit(wil_status_suspending, wil->status) ||
  207. test_bit(wil_status_suspended, wil->status) ||
  208. test_bit(wil_status_resuming, wil->status)) &&
  209. ((cmdid != WMI_TRAFFIC_SUSPEND_CMDID) &&
  210. (cmdid != WMI_TRAFFIC_RESUME_CMDID))) {
  211. wil_err(wil, "WMI: reject send_command during suspend\n");
  212. return -EINVAL;
  213. }
  214. if (!head) {
  215. wil_err(wil, "WMI head is garbage: 0x%08x\n", r->head);
  216. return -EINVAL;
  217. }
  218. wil_halp_vote(wil);
  219. /* read Tx head till it is not busy */
  220. for (retry = 5; retry > 0; retry--) {
  221. wil_memcpy_fromio_32(&d_head, head, sizeof(d_head));
  222. if (d_head.sync == 0)
  223. break;
  224. msleep(20);
  225. }
  226. if (d_head.sync != 0) {
  227. wil_err(wil, "WMI head busy\n");
  228. rc = -EBUSY;
  229. goto out;
  230. }
  231. /* next head */
  232. next_head = r->base + ((r->head - r->base + sizeof(d_head)) % r->size);
  233. wil_dbg_wmi(wil, "Head 0x%08x -> 0x%08x\n", r->head, next_head);
  234. /* wait till FW finish with previous command */
  235. for (retry = 5; retry > 0; retry--) {
  236. if (!test_bit(wil_status_fwready, wil->status)) {
  237. wil_err(wil, "WMI: cannot send command while FW not ready\n");
  238. rc = -EAGAIN;
  239. goto out;
  240. }
  241. r->tail = wil_r(wil, RGF_MBOX +
  242. offsetof(struct wil6210_mbox_ctl, tx.tail));
  243. if (next_head != r->tail)
  244. break;
  245. msleep(20);
  246. }
  247. if (next_head == r->tail) {
  248. wil_err(wil, "WMI ring full\n");
  249. rc = -EBUSY;
  250. goto out;
  251. }
  252. dst = wmi_buffer(wil, d_head.addr);
  253. if (!dst) {
  254. wil_err(wil, "invalid WMI buffer: 0x%08x\n",
  255. le32_to_cpu(d_head.addr));
  256. rc = -EAGAIN;
  257. goto out;
  258. }
  259. cmd.hdr.seq = cpu_to_le16(++wil->wmi_seq);
  260. /* set command */
  261. wil_dbg_wmi(wil, "WMI command 0x%04x [%d]\n", cmdid, len);
  262. wil_hex_dump_wmi("Cmd ", DUMP_PREFIX_OFFSET, 16, 1, &cmd,
  263. sizeof(cmd), true);
  264. wil_hex_dump_wmi("cmd ", DUMP_PREFIX_OFFSET, 16, 1, buf,
  265. len, true);
  266. wil_memcpy_toio_32(dst, &cmd, sizeof(cmd));
  267. wil_memcpy_toio_32(dst + sizeof(cmd), buf, len);
  268. /* mark entry as full */
  269. wil_w(wil, r->head + offsetof(struct wil6210_mbox_ring_desc, sync), 1);
  270. /* advance next ptr */
  271. wil_w(wil, RGF_MBOX + offsetof(struct wil6210_mbox_ctl, tx.head),
  272. r->head = next_head);
  273. trace_wil6210_wmi_cmd(&cmd.wmi, buf, len);
  274. /* interrupt to FW */
  275. wil_w(wil, RGF_USER_USER_ICR + offsetof(struct RGF_ICR, ICS),
  276. SW_INT_MBOX);
  277. out:
  278. wil_halp_unvote(wil);
  279. return rc;
  280. }
  281. int wmi_send(struct wil6210_priv *wil, u16 cmdid, void *buf, u16 len)
  282. {
  283. int rc;
  284. mutex_lock(&wil->wmi_mutex);
  285. rc = __wmi_send(wil, cmdid, buf, len);
  286. mutex_unlock(&wil->wmi_mutex);
  287. return rc;
  288. }
  289. /*=== Event handlers ===*/
  290. static void wmi_evt_ready(struct wil6210_priv *wil, int id, void *d, int len)
  291. {
  292. struct wireless_dev *wdev = wil->wdev;
  293. struct wmi_ready_event *evt = d;
  294. wil->n_mids = evt->numof_additional_mids;
  295. wil_info(wil, "FW ver. %s(SW %d); MAC %pM; %d MID's\n",
  296. wil->fw_version, le32_to_cpu(evt->sw_version),
  297. evt->mac, wil->n_mids);
  298. /* ignore MAC address, we already have it from the boot loader */
  299. strlcpy(wdev->wiphy->fw_version, wil->fw_version,
  300. sizeof(wdev->wiphy->fw_version));
  301. if (len > offsetof(struct wmi_ready_event, rfc_read_calib_result)) {
  302. wil_dbg_wmi(wil, "rfc calibration result %d\n",
  303. evt->rfc_read_calib_result);
  304. wil->fw_calib_result = evt->rfc_read_calib_result;
  305. }
  306. wil_set_recovery_state(wil, fw_recovery_idle);
  307. set_bit(wil_status_fwready, wil->status);
  308. /* let the reset sequence continue */
  309. complete(&wil->wmi_ready);
  310. }
  311. static void wmi_evt_rx_mgmt(struct wil6210_priv *wil, int id, void *d, int len)
  312. {
  313. struct wmi_rx_mgmt_packet_event *data = d;
  314. struct wiphy *wiphy = wil_to_wiphy(wil);
  315. struct ieee80211_mgmt *rx_mgmt_frame =
  316. (struct ieee80211_mgmt *)data->payload;
  317. int flen = len - offsetof(struct wmi_rx_mgmt_packet_event, payload);
  318. int ch_no;
  319. u32 freq;
  320. struct ieee80211_channel *channel;
  321. s32 signal;
  322. __le16 fc;
  323. u32 d_len;
  324. u16 d_status;
  325. if (flen < 0) {
  326. wil_err(wil, "MGMT Rx: short event, len %d\n", len);
  327. return;
  328. }
  329. d_len = le32_to_cpu(data->info.len);
  330. if (d_len != flen) {
  331. wil_err(wil,
  332. "MGMT Rx: length mismatch, d_len %d should be %d\n",
  333. d_len, flen);
  334. return;
  335. }
  336. ch_no = data->info.channel + 1;
  337. freq = ieee80211_channel_to_frequency(ch_no, NL80211_BAND_60GHZ);
  338. channel = ieee80211_get_channel(wiphy, freq);
  339. if (test_bit(WMI_FW_CAPABILITY_RSSI_REPORTING, wil->fw_capabilities))
  340. signal = 100 * data->info.rssi;
  341. else
  342. signal = data->info.sqi;
  343. d_status = le16_to_cpu(data->info.status);
  344. fc = rx_mgmt_frame->frame_control;
  345. wil_dbg_wmi(wil, "MGMT Rx: channel %d MCS %d RSSI %d SQI %d%%\n",
  346. data->info.channel, data->info.mcs, data->info.rssi,
  347. data->info.sqi);
  348. wil_dbg_wmi(wil, "status 0x%04x len %d fc 0x%04x\n", d_status, d_len,
  349. le16_to_cpu(fc));
  350. wil_dbg_wmi(wil, "qid %d mid %d cid %d\n",
  351. data->info.qid, data->info.mid, data->info.cid);
  352. wil_hex_dump_wmi("MGMT Rx ", DUMP_PREFIX_OFFSET, 16, 1, rx_mgmt_frame,
  353. d_len, true);
  354. if (!channel) {
  355. wil_err(wil, "Frame on unsupported channel\n");
  356. return;
  357. }
  358. if (ieee80211_is_beacon(fc) || ieee80211_is_probe_resp(fc)) {
  359. struct cfg80211_bss *bss;
  360. u64 tsf = le64_to_cpu(rx_mgmt_frame->u.beacon.timestamp);
  361. u16 cap = le16_to_cpu(rx_mgmt_frame->u.beacon.capab_info);
  362. u16 bi = le16_to_cpu(rx_mgmt_frame->u.beacon.beacon_int);
  363. const u8 *ie_buf = rx_mgmt_frame->u.beacon.variable;
  364. size_t ie_len = d_len - offsetof(struct ieee80211_mgmt,
  365. u.beacon.variable);
  366. wil_dbg_wmi(wil, "Capability info : 0x%04x\n", cap);
  367. wil_dbg_wmi(wil, "TSF : 0x%016llx\n", tsf);
  368. wil_dbg_wmi(wil, "Beacon interval : %d\n", bi);
  369. wil_hex_dump_wmi("IE ", DUMP_PREFIX_OFFSET, 16, 1, ie_buf,
  370. ie_len, true);
  371. wil_dbg_wmi(wil, "Capability info : 0x%04x\n", cap);
  372. bss = cfg80211_inform_bss_frame(wiphy, channel, rx_mgmt_frame,
  373. d_len, signal, GFP_KERNEL);
  374. if (bss) {
  375. wil_dbg_wmi(wil, "Added BSS %pM\n",
  376. rx_mgmt_frame->bssid);
  377. cfg80211_put_bss(wiphy, bss);
  378. } else {
  379. wil_err(wil, "cfg80211_inform_bss_frame() failed\n");
  380. }
  381. } else {
  382. mutex_lock(&wil->p2p_wdev_mutex);
  383. cfg80211_rx_mgmt(wil->radio_wdev, freq, signal,
  384. (void *)rx_mgmt_frame, d_len, 0);
  385. mutex_unlock(&wil->p2p_wdev_mutex);
  386. }
  387. }
  388. static void wmi_evt_tx_mgmt(struct wil6210_priv *wil, int id, void *d, int len)
  389. {
  390. struct wmi_tx_mgmt_packet_event *data = d;
  391. struct ieee80211_mgmt *mgmt_frame =
  392. (struct ieee80211_mgmt *)data->payload;
  393. int flen = len - offsetof(struct wmi_tx_mgmt_packet_event, payload);
  394. wil_hex_dump_wmi("MGMT Tx ", DUMP_PREFIX_OFFSET, 16, 1, mgmt_frame,
  395. flen, true);
  396. }
  397. static void wmi_evt_scan_complete(struct wil6210_priv *wil, int id,
  398. void *d, int len)
  399. {
  400. mutex_lock(&wil->p2p_wdev_mutex);
  401. if (wil->scan_request) {
  402. struct wmi_scan_complete_event *data = d;
  403. int status = le32_to_cpu(data->status);
  404. struct cfg80211_scan_info info = {
  405. .aborted = ((status != WMI_SCAN_SUCCESS) &&
  406. (status != WMI_SCAN_ABORT_REJECTED)),
  407. };
  408. wil_dbg_wmi(wil, "SCAN_COMPLETE(0x%08x)\n", status);
  409. wil_dbg_misc(wil, "Complete scan_request 0x%p aborted %d\n",
  410. wil->scan_request, info.aborted);
  411. del_timer_sync(&wil->scan_timer);
  412. cfg80211_scan_done(wil->scan_request, &info);
  413. wil->radio_wdev = wil->wdev;
  414. wil->scan_request = NULL;
  415. wake_up_interruptible(&wil->wq);
  416. if (wil->p2p.pending_listen_wdev) {
  417. wil_dbg_misc(wil, "Scheduling delayed listen\n");
  418. schedule_work(&wil->p2p.delayed_listen_work);
  419. }
  420. } else {
  421. wil_err(wil, "SCAN_COMPLETE while not scanning\n");
  422. }
  423. mutex_unlock(&wil->p2p_wdev_mutex);
  424. }
  425. static void wmi_evt_connect(struct wil6210_priv *wil, int id, void *d, int len)
  426. {
  427. struct net_device *ndev = wil_to_ndev(wil);
  428. struct wireless_dev *wdev = wil->wdev;
  429. struct wmi_connect_event *evt = d;
  430. int ch; /* channel number */
  431. struct station_info sinfo;
  432. u8 *assoc_req_ie, *assoc_resp_ie;
  433. size_t assoc_req_ielen, assoc_resp_ielen;
  434. /* capinfo(u16) + listen_interval(u16) + IEs */
  435. const size_t assoc_req_ie_offset = sizeof(u16) * 2;
  436. /* capinfo(u16) + status_code(u16) + associd(u16) + IEs */
  437. const size_t assoc_resp_ie_offset = sizeof(u16) * 3;
  438. int rc;
  439. if (len < sizeof(*evt)) {
  440. wil_err(wil, "Connect event too short : %d bytes\n", len);
  441. return;
  442. }
  443. if (len != sizeof(*evt) + evt->beacon_ie_len + evt->assoc_req_len +
  444. evt->assoc_resp_len) {
  445. wil_err(wil,
  446. "Connect event corrupted : %d != %d + %d + %d + %d\n",
  447. len, (int)sizeof(*evt), evt->beacon_ie_len,
  448. evt->assoc_req_len, evt->assoc_resp_len);
  449. return;
  450. }
  451. if (evt->cid >= WIL6210_MAX_CID) {
  452. wil_err(wil, "Connect CID invalid : %d\n", evt->cid);
  453. return;
  454. }
  455. ch = evt->channel + 1;
  456. wil_info(wil, "Connect %pM channel [%d] cid %d aid %d\n",
  457. evt->bssid, ch, evt->cid, evt->aid);
  458. wil_hex_dump_wmi("connect AI : ", DUMP_PREFIX_OFFSET, 16, 1,
  459. evt->assoc_info, len - sizeof(*evt), true);
  460. /* figure out IE's */
  461. assoc_req_ie = &evt->assoc_info[evt->beacon_ie_len +
  462. assoc_req_ie_offset];
  463. assoc_req_ielen = evt->assoc_req_len - assoc_req_ie_offset;
  464. if (evt->assoc_req_len <= assoc_req_ie_offset) {
  465. assoc_req_ie = NULL;
  466. assoc_req_ielen = 0;
  467. }
  468. assoc_resp_ie = &evt->assoc_info[evt->beacon_ie_len +
  469. evt->assoc_req_len +
  470. assoc_resp_ie_offset];
  471. assoc_resp_ielen = evt->assoc_resp_len - assoc_resp_ie_offset;
  472. if (evt->assoc_resp_len <= assoc_resp_ie_offset) {
  473. assoc_resp_ie = NULL;
  474. assoc_resp_ielen = 0;
  475. }
  476. if (test_bit(wil_status_resetting, wil->status) ||
  477. !test_bit(wil_status_fwready, wil->status)) {
  478. wil_err(wil, "status_resetting, cancel connect event, CID %d\n",
  479. evt->cid);
  480. /* no need for cleanup, wil_reset will do that */
  481. return;
  482. }
  483. mutex_lock(&wil->mutex);
  484. if ((wdev->iftype == NL80211_IFTYPE_STATION) ||
  485. (wdev->iftype == NL80211_IFTYPE_P2P_CLIENT)) {
  486. if (!test_bit(wil_status_fwconnecting, wil->status)) {
  487. wil_err(wil, "Not in connecting state\n");
  488. mutex_unlock(&wil->mutex);
  489. return;
  490. }
  491. del_timer_sync(&wil->connect_timer);
  492. } else if ((wdev->iftype == NL80211_IFTYPE_AP) ||
  493. (wdev->iftype == NL80211_IFTYPE_P2P_GO)) {
  494. if (wil->sta[evt->cid].status != wil_sta_unused) {
  495. wil_err(wil, "AP: Invalid status %d for CID %d\n",
  496. wil->sta[evt->cid].status, evt->cid);
  497. mutex_unlock(&wil->mutex);
  498. return;
  499. }
  500. }
  501. /* FIXME FW can transmit only ucast frames to peer */
  502. /* FIXME real ring_id instead of hard coded 0 */
  503. ether_addr_copy(wil->sta[evt->cid].addr, evt->bssid);
  504. wil->sta[evt->cid].status = wil_sta_conn_pending;
  505. rc = wil_tx_init(wil, evt->cid);
  506. if (rc) {
  507. wil_err(wil, "config tx vring failed for CID %d, rc (%d)\n",
  508. evt->cid, rc);
  509. wmi_disconnect_sta(wil, wil->sta[evt->cid].addr,
  510. WLAN_REASON_UNSPECIFIED, false, false);
  511. } else {
  512. wil_info(wil, "successful connection to CID %d\n", evt->cid);
  513. }
  514. if ((wdev->iftype == NL80211_IFTYPE_STATION) ||
  515. (wdev->iftype == NL80211_IFTYPE_P2P_CLIENT)) {
  516. if (rc) {
  517. netif_carrier_off(ndev);
  518. wil6210_bus_request(wil, WIL_DEFAULT_BUS_REQUEST_KBPS);
  519. wil_err(wil, "cfg80211_connect_result with failure\n");
  520. cfg80211_connect_result(ndev, evt->bssid, NULL, 0,
  521. NULL, 0,
  522. WLAN_STATUS_UNSPECIFIED_FAILURE,
  523. GFP_KERNEL);
  524. goto out;
  525. } else {
  526. struct wiphy *wiphy = wil_to_wiphy(wil);
  527. cfg80211_ref_bss(wiphy, wil->bss);
  528. cfg80211_connect_bss(ndev, evt->bssid, wil->bss,
  529. assoc_req_ie, assoc_req_ielen,
  530. assoc_resp_ie, assoc_resp_ielen,
  531. WLAN_STATUS_SUCCESS, GFP_KERNEL,
  532. NL80211_TIMEOUT_UNSPECIFIED);
  533. }
  534. wil->bss = NULL;
  535. } else if ((wdev->iftype == NL80211_IFTYPE_AP) ||
  536. (wdev->iftype == NL80211_IFTYPE_P2P_GO)) {
  537. if (rc) {
  538. if (disable_ap_sme)
  539. /* notify new_sta has failed */
  540. cfg80211_del_sta(ndev, evt->bssid, GFP_KERNEL);
  541. goto out;
  542. }
  543. memset(&sinfo, 0, sizeof(sinfo));
  544. sinfo.generation = wil->sinfo_gen++;
  545. if (assoc_req_ie) {
  546. sinfo.assoc_req_ies = assoc_req_ie;
  547. sinfo.assoc_req_ies_len = assoc_req_ielen;
  548. }
  549. cfg80211_new_sta(ndev, evt->bssid, &sinfo, GFP_KERNEL);
  550. } else {
  551. wil_err(wil, "unhandled iftype %d for CID %d\n", wdev->iftype,
  552. evt->cid);
  553. goto out;
  554. }
  555. wil->sta[evt->cid].status = wil_sta_connected;
  556. wil->sta[evt->cid].aid = evt->aid;
  557. set_bit(wil_status_fwconnected, wil->status);
  558. wil_update_net_queues_bh(wil, NULL, false);
  559. out:
  560. if (rc)
  561. wil->sta[evt->cid].status = wil_sta_unused;
  562. clear_bit(wil_status_fwconnecting, wil->status);
  563. mutex_unlock(&wil->mutex);
  564. }
  565. static void wmi_evt_disconnect(struct wil6210_priv *wil, int id,
  566. void *d, int len)
  567. {
  568. struct wmi_disconnect_event *evt = d;
  569. u16 reason_code = le16_to_cpu(evt->protocol_reason_status);
  570. wil_info(wil, "Disconnect %pM reason [proto %d wmi %d]\n",
  571. evt->bssid, reason_code, evt->disconnect_reason);
  572. wil->sinfo_gen++;
  573. if (test_bit(wil_status_resetting, wil->status) ||
  574. !test_bit(wil_status_fwready, wil->status)) {
  575. wil_err(wil, "status_resetting, cancel disconnect event\n");
  576. /* no need for cleanup, wil_reset will do that */
  577. return;
  578. }
  579. mutex_lock(&wil->mutex);
  580. wil6210_disconnect(wil, evt->bssid, reason_code, true);
  581. mutex_unlock(&wil->mutex);
  582. }
  583. /*
  584. * Firmware reports EAPOL frame using WME event.
  585. * Reconstruct Ethernet frame and deliver it via normal Rx
  586. */
  587. static void wmi_evt_eapol_rx(struct wil6210_priv *wil, int id,
  588. void *d, int len)
  589. {
  590. struct net_device *ndev = wil_to_ndev(wil);
  591. struct wmi_eapol_rx_event *evt = d;
  592. u16 eapol_len = le16_to_cpu(evt->eapol_len);
  593. int sz = eapol_len + ETH_HLEN;
  594. struct sk_buff *skb;
  595. struct ethhdr *eth;
  596. int cid;
  597. struct wil_net_stats *stats = NULL;
  598. wil_dbg_wmi(wil, "EAPOL len %d from %pM\n", eapol_len,
  599. evt->src_mac);
  600. cid = wil_find_cid(wil, evt->src_mac);
  601. if (cid >= 0)
  602. stats = &wil->sta[cid].stats;
  603. if (eapol_len > 196) { /* TODO: revisit size limit */
  604. wil_err(wil, "EAPOL too large\n");
  605. return;
  606. }
  607. skb = alloc_skb(sz, GFP_KERNEL);
  608. if (!skb) {
  609. wil_err(wil, "Failed to allocate skb\n");
  610. return;
  611. }
  612. eth = skb_put(skb, ETH_HLEN);
  613. ether_addr_copy(eth->h_dest, ndev->dev_addr);
  614. ether_addr_copy(eth->h_source, evt->src_mac);
  615. eth->h_proto = cpu_to_be16(ETH_P_PAE);
  616. skb_put_data(skb, evt->eapol, eapol_len);
  617. skb->protocol = eth_type_trans(skb, ndev);
  618. if (likely(netif_rx_ni(skb) == NET_RX_SUCCESS)) {
  619. ndev->stats.rx_packets++;
  620. ndev->stats.rx_bytes += sz;
  621. if (stats) {
  622. stats->rx_packets++;
  623. stats->rx_bytes += sz;
  624. }
  625. } else {
  626. ndev->stats.rx_dropped++;
  627. if (stats)
  628. stats->rx_dropped++;
  629. }
  630. }
  631. static void wmi_evt_vring_en(struct wil6210_priv *wil, int id, void *d, int len)
  632. {
  633. struct wmi_vring_en_event *evt = d;
  634. u8 vri = evt->vring_index;
  635. struct wireless_dev *wdev = wil_to_wdev(wil);
  636. wil_dbg_wmi(wil, "Enable vring %d\n", vri);
  637. if (vri >= ARRAY_SIZE(wil->vring_tx)) {
  638. wil_err(wil, "Enable for invalid vring %d\n", vri);
  639. return;
  640. }
  641. if (wdev->iftype != NL80211_IFTYPE_AP || !disable_ap_sme)
  642. /* in AP mode with disable_ap_sme, this is done by
  643. * wil_cfg80211_change_station()
  644. */
  645. wil->vring_tx_data[vri].dot1x_open = true;
  646. if (vri == wil->bcast_vring) /* no BA for bcast */
  647. return;
  648. if (agg_wsize >= 0)
  649. wil_addba_tx_request(wil, vri, agg_wsize);
  650. }
  651. static void wmi_evt_ba_status(struct wil6210_priv *wil, int id, void *d,
  652. int len)
  653. {
  654. struct wmi_ba_status_event *evt = d;
  655. struct vring_tx_data *txdata;
  656. wil_dbg_wmi(wil, "BACK[%d] %s {%d} timeout %d AMSDU%s\n",
  657. evt->ringid,
  658. evt->status == WMI_BA_AGREED ? "OK" : "N/A",
  659. evt->agg_wsize, __le16_to_cpu(evt->ba_timeout),
  660. evt->amsdu ? "+" : "-");
  661. if (evt->ringid >= WIL6210_MAX_TX_RINGS) {
  662. wil_err(wil, "invalid ring id %d\n", evt->ringid);
  663. return;
  664. }
  665. if (evt->status != WMI_BA_AGREED) {
  666. evt->ba_timeout = 0;
  667. evt->agg_wsize = 0;
  668. evt->amsdu = 0;
  669. }
  670. txdata = &wil->vring_tx_data[evt->ringid];
  671. txdata->agg_timeout = le16_to_cpu(evt->ba_timeout);
  672. txdata->agg_wsize = evt->agg_wsize;
  673. txdata->agg_amsdu = evt->amsdu;
  674. txdata->addba_in_progress = false;
  675. }
  676. static void wmi_evt_addba_rx_req(struct wil6210_priv *wil, int id, void *d,
  677. int len)
  678. {
  679. struct wmi_rcp_addba_req_event *evt = d;
  680. wil_addba_rx_request(wil, evt->cidxtid, evt->dialog_token,
  681. evt->ba_param_set, evt->ba_timeout,
  682. evt->ba_seq_ctrl);
  683. }
  684. static void wmi_evt_delba(struct wil6210_priv *wil, int id, void *d, int len)
  685. __acquires(&sta->tid_rx_lock) __releases(&sta->tid_rx_lock)
  686. {
  687. struct wmi_delba_event *evt = d;
  688. u8 cid, tid;
  689. u16 reason = __le16_to_cpu(evt->reason);
  690. struct wil_sta_info *sta;
  691. struct wil_tid_ampdu_rx *r;
  692. might_sleep();
  693. parse_cidxtid(evt->cidxtid, &cid, &tid);
  694. wil_dbg_wmi(wil, "DELBA CID %d TID %d from %s reason %d\n",
  695. cid, tid,
  696. evt->from_initiator ? "originator" : "recipient",
  697. reason);
  698. if (!evt->from_initiator) {
  699. int i;
  700. /* find Tx vring it belongs to */
  701. for (i = 0; i < ARRAY_SIZE(wil->vring2cid_tid); i++) {
  702. if ((wil->vring2cid_tid[i][0] == cid) &&
  703. (wil->vring2cid_tid[i][1] == tid)) {
  704. struct vring_tx_data *txdata =
  705. &wil->vring_tx_data[i];
  706. wil_dbg_wmi(wil, "DELBA Tx vring %d\n", i);
  707. txdata->agg_timeout = 0;
  708. txdata->agg_wsize = 0;
  709. txdata->addba_in_progress = false;
  710. break; /* max. 1 matching ring */
  711. }
  712. }
  713. if (i >= ARRAY_SIZE(wil->vring2cid_tid))
  714. wil_err(wil, "DELBA: unable to find Tx vring\n");
  715. return;
  716. }
  717. sta = &wil->sta[cid];
  718. spin_lock_bh(&sta->tid_rx_lock);
  719. r = sta->tid_rx[tid];
  720. sta->tid_rx[tid] = NULL;
  721. wil_tid_ampdu_rx_free(wil, r);
  722. spin_unlock_bh(&sta->tid_rx_lock);
  723. }
  724. /**
  725. * Some events are ignored for purpose; and need not be interpreted as
  726. * "unhandled events"
  727. */
  728. static void wmi_evt_ignore(struct wil6210_priv *wil, int id, void *d, int len)
  729. {
  730. wil_dbg_wmi(wil, "Ignore event 0x%04x len %d\n", id, len);
  731. }
  732. static const struct {
  733. int eventid;
  734. void (*handler)(struct wil6210_priv *wil, int eventid,
  735. void *data, int data_len);
  736. } wmi_evt_handlers[] = {
  737. {WMI_READY_EVENTID, wmi_evt_ready},
  738. {WMI_FW_READY_EVENTID, wmi_evt_ignore},
  739. {WMI_RX_MGMT_PACKET_EVENTID, wmi_evt_rx_mgmt},
  740. {WMI_TX_MGMT_PACKET_EVENTID, wmi_evt_tx_mgmt},
  741. {WMI_SCAN_COMPLETE_EVENTID, wmi_evt_scan_complete},
  742. {WMI_CONNECT_EVENTID, wmi_evt_connect},
  743. {WMI_DISCONNECT_EVENTID, wmi_evt_disconnect},
  744. {WMI_EAPOL_RX_EVENTID, wmi_evt_eapol_rx},
  745. {WMI_BA_STATUS_EVENTID, wmi_evt_ba_status},
  746. {WMI_RCP_ADDBA_REQ_EVENTID, wmi_evt_addba_rx_req},
  747. {WMI_DELBA_EVENTID, wmi_evt_delba},
  748. {WMI_VRING_EN_EVENTID, wmi_evt_vring_en},
  749. {WMI_DATA_PORT_OPEN_EVENTID, wmi_evt_ignore},
  750. };
  751. /*
  752. * Run in IRQ context
  753. * Extract WMI command from mailbox. Queue it to the @wil->pending_wmi_ev
  754. * that will be eventually handled by the @wmi_event_worker in the thread
  755. * context of thread "wil6210_wmi"
  756. */
  757. void wmi_recv_cmd(struct wil6210_priv *wil)
  758. {
  759. struct wil6210_mbox_ring_desc d_tail;
  760. struct wil6210_mbox_hdr hdr;
  761. struct wil6210_mbox_ring *r = &wil->mbox_ctl.rx;
  762. struct pending_wmi_event *evt;
  763. u8 *cmd;
  764. void __iomem *src;
  765. ulong flags;
  766. unsigned n;
  767. unsigned int num_immed_reply = 0;
  768. if (!test_bit(wil_status_mbox_ready, wil->status)) {
  769. wil_err(wil, "Reset in progress. Cannot handle WMI event\n");
  770. return;
  771. }
  772. if (test_bit(wil_status_suspended, wil->status)) {
  773. wil_err(wil, "suspended. cannot handle WMI event\n");
  774. return;
  775. }
  776. for (n = 0;; n++) {
  777. u16 len;
  778. bool q;
  779. bool immed_reply = false;
  780. r->head = wil_r(wil, RGF_MBOX +
  781. offsetof(struct wil6210_mbox_ctl, rx.head));
  782. if (r->tail == r->head)
  783. break;
  784. wil_dbg_wmi(wil, "Mbox head %08x tail %08x\n",
  785. r->head, r->tail);
  786. /* read cmd descriptor from tail */
  787. wil_memcpy_fromio_32(&d_tail, wil->csr + HOSTADDR(r->tail),
  788. sizeof(struct wil6210_mbox_ring_desc));
  789. if (d_tail.sync == 0) {
  790. wil_err(wil, "Mbox evt not owned by FW?\n");
  791. break;
  792. }
  793. /* read cmd header from descriptor */
  794. if (0 != wmi_read_hdr(wil, d_tail.addr, &hdr)) {
  795. wil_err(wil, "Mbox evt at 0x%08x?\n",
  796. le32_to_cpu(d_tail.addr));
  797. break;
  798. }
  799. len = le16_to_cpu(hdr.len);
  800. wil_dbg_wmi(wil, "Mbox evt %04x %04x %04x %02x\n",
  801. le16_to_cpu(hdr.seq), len, le16_to_cpu(hdr.type),
  802. hdr.flags);
  803. /* read cmd buffer from descriptor */
  804. src = wmi_buffer(wil, d_tail.addr) +
  805. sizeof(struct wil6210_mbox_hdr);
  806. evt = kmalloc(ALIGN(offsetof(struct pending_wmi_event,
  807. event.wmi) + len, 4),
  808. GFP_KERNEL);
  809. if (!evt)
  810. break;
  811. evt->event.hdr = hdr;
  812. cmd = (void *)&evt->event.wmi;
  813. wil_memcpy_fromio_32(cmd, src, len);
  814. /* mark entry as empty */
  815. wil_w(wil, r->tail +
  816. offsetof(struct wil6210_mbox_ring_desc, sync), 0);
  817. /* indicate */
  818. if ((hdr.type == WIL_MBOX_HDR_TYPE_WMI) &&
  819. (len >= sizeof(struct wmi_cmd_hdr))) {
  820. struct wmi_cmd_hdr *wmi = &evt->event.wmi;
  821. u16 id = le16_to_cpu(wmi->command_id);
  822. u32 tstamp = le32_to_cpu(wmi->fw_timestamp);
  823. if (test_bit(wil_status_resuming, wil->status)) {
  824. if (id == WMI_TRAFFIC_RESUME_EVENTID)
  825. clear_bit(wil_status_resuming,
  826. wil->status);
  827. else
  828. wil_err(wil,
  829. "WMI evt %d while resuming\n",
  830. id);
  831. }
  832. spin_lock_irqsave(&wil->wmi_ev_lock, flags);
  833. if (wil->reply_id && wil->reply_id == id) {
  834. if (wil->reply_buf) {
  835. memcpy(wil->reply_buf, wmi,
  836. min(len, wil->reply_size));
  837. immed_reply = true;
  838. }
  839. if (id == WMI_TRAFFIC_SUSPEND_EVENTID) {
  840. wil_dbg_wmi(wil,
  841. "set suspend_resp_rcvd\n");
  842. wil->suspend_resp_rcvd = true;
  843. }
  844. }
  845. spin_unlock_irqrestore(&wil->wmi_ev_lock, flags);
  846. wil_dbg_wmi(wil, "WMI event 0x%04x MID %d @%d msec\n",
  847. id, wmi->mid, tstamp);
  848. trace_wil6210_wmi_event(wmi, &wmi[1],
  849. len - sizeof(*wmi));
  850. }
  851. wil_hex_dump_wmi("evt ", DUMP_PREFIX_OFFSET, 16, 1,
  852. &evt->event.hdr, sizeof(hdr) + len, true);
  853. /* advance tail */
  854. r->tail = r->base + ((r->tail - r->base +
  855. sizeof(struct wil6210_mbox_ring_desc)) % r->size);
  856. wil_w(wil, RGF_MBOX +
  857. offsetof(struct wil6210_mbox_ctl, rx.tail), r->tail);
  858. if (immed_reply) {
  859. wil_dbg_wmi(wil, "recv_cmd: Complete WMI 0x%04x\n",
  860. wil->reply_id);
  861. kfree(evt);
  862. num_immed_reply++;
  863. complete(&wil->wmi_call);
  864. } else {
  865. /* add to the pending list */
  866. spin_lock_irqsave(&wil->wmi_ev_lock, flags);
  867. list_add_tail(&evt->list, &wil->pending_wmi_ev);
  868. spin_unlock_irqrestore(&wil->wmi_ev_lock, flags);
  869. q = queue_work(wil->wmi_wq, &wil->wmi_event_worker);
  870. wil_dbg_wmi(wil, "queue_work -> %d\n", q);
  871. }
  872. }
  873. /* normally, 1 event per IRQ should be processed */
  874. wil_dbg_wmi(wil, "recv_cmd: -> %d events queued, %d completed\n",
  875. n - num_immed_reply, num_immed_reply);
  876. }
  877. int wmi_call(struct wil6210_priv *wil, u16 cmdid, void *buf, u16 len,
  878. u16 reply_id, void *reply, u8 reply_size, int to_msec)
  879. {
  880. int rc;
  881. unsigned long remain;
  882. mutex_lock(&wil->wmi_mutex);
  883. spin_lock(&wil->wmi_ev_lock);
  884. wil->reply_id = reply_id;
  885. wil->reply_buf = reply;
  886. wil->reply_size = reply_size;
  887. reinit_completion(&wil->wmi_call);
  888. spin_unlock(&wil->wmi_ev_lock);
  889. rc = __wmi_send(wil, cmdid, buf, len);
  890. if (rc)
  891. goto out;
  892. remain = wait_for_completion_timeout(&wil->wmi_call,
  893. msecs_to_jiffies(to_msec));
  894. if (0 == remain) {
  895. wil_err(wil, "wmi_call(0x%04x->0x%04x) timeout %d msec\n",
  896. cmdid, reply_id, to_msec);
  897. rc = -ETIME;
  898. } else {
  899. wil_dbg_wmi(wil,
  900. "wmi_call(0x%04x->0x%04x) completed in %d msec\n",
  901. cmdid, reply_id,
  902. to_msec - jiffies_to_msecs(remain));
  903. }
  904. out:
  905. spin_lock(&wil->wmi_ev_lock);
  906. wil->reply_id = 0;
  907. wil->reply_buf = NULL;
  908. wil->reply_size = 0;
  909. spin_unlock(&wil->wmi_ev_lock);
  910. mutex_unlock(&wil->wmi_mutex);
  911. return rc;
  912. }
  913. int wmi_echo(struct wil6210_priv *wil)
  914. {
  915. struct wmi_echo_cmd cmd = {
  916. .value = cpu_to_le32(0x12345678),
  917. };
  918. return wmi_call(wil, WMI_ECHO_CMDID, &cmd, sizeof(cmd),
  919. WMI_ECHO_RSP_EVENTID, NULL, 0, 50);
  920. }
  921. int wmi_set_mac_address(struct wil6210_priv *wil, void *addr)
  922. {
  923. struct wmi_set_mac_address_cmd cmd;
  924. ether_addr_copy(cmd.mac, addr);
  925. wil_dbg_wmi(wil, "Set MAC %pM\n", addr);
  926. return wmi_send(wil, WMI_SET_MAC_ADDRESS_CMDID, &cmd, sizeof(cmd));
  927. }
  928. int wmi_led_cfg(struct wil6210_priv *wil, bool enable)
  929. {
  930. int rc = 0;
  931. struct wmi_led_cfg_cmd cmd = {
  932. .led_mode = enable,
  933. .id = led_id,
  934. .slow_blink_cfg.blink_on =
  935. cpu_to_le32(led_blink_time[WIL_LED_TIME_SLOW].on_ms),
  936. .slow_blink_cfg.blink_off =
  937. cpu_to_le32(led_blink_time[WIL_LED_TIME_SLOW].off_ms),
  938. .medium_blink_cfg.blink_on =
  939. cpu_to_le32(led_blink_time[WIL_LED_TIME_MED].on_ms),
  940. .medium_blink_cfg.blink_off =
  941. cpu_to_le32(led_blink_time[WIL_LED_TIME_MED].off_ms),
  942. .fast_blink_cfg.blink_on =
  943. cpu_to_le32(led_blink_time[WIL_LED_TIME_FAST].on_ms),
  944. .fast_blink_cfg.blink_off =
  945. cpu_to_le32(led_blink_time[WIL_LED_TIME_FAST].off_ms),
  946. .led_polarity = led_polarity,
  947. };
  948. struct {
  949. struct wmi_cmd_hdr wmi;
  950. struct wmi_led_cfg_done_event evt;
  951. } __packed reply;
  952. if (led_id == WIL_LED_INVALID_ID)
  953. goto out;
  954. if (led_id > WIL_LED_MAX_ID) {
  955. wil_err(wil, "Invalid led id %d\n", led_id);
  956. rc = -EINVAL;
  957. goto out;
  958. }
  959. wil_dbg_wmi(wil,
  960. "%s led %d\n",
  961. enable ? "enabling" : "disabling", led_id);
  962. rc = wmi_call(wil, WMI_LED_CFG_CMDID, &cmd, sizeof(cmd),
  963. WMI_LED_CFG_DONE_EVENTID, &reply, sizeof(reply),
  964. 100);
  965. if (rc)
  966. goto out;
  967. if (reply.evt.status) {
  968. wil_err(wil, "led %d cfg failed with status %d\n",
  969. led_id, le32_to_cpu(reply.evt.status));
  970. rc = -EINVAL;
  971. }
  972. out:
  973. return rc;
  974. }
  975. int wmi_pcp_start(struct wil6210_priv *wil, int bi, u8 wmi_nettype,
  976. u8 chan, u8 hidden_ssid, u8 is_go)
  977. {
  978. int rc;
  979. struct wmi_pcp_start_cmd cmd = {
  980. .bcon_interval = cpu_to_le16(bi),
  981. .network_type = wmi_nettype,
  982. .disable_sec_offload = 1,
  983. .channel = chan - 1,
  984. .pcp_max_assoc_sta = max_assoc_sta,
  985. .hidden_ssid = hidden_ssid,
  986. .is_go = is_go,
  987. .disable_ap_sme = disable_ap_sme,
  988. .abft_len = wil->abft_len,
  989. };
  990. struct {
  991. struct wmi_cmd_hdr wmi;
  992. struct wmi_pcp_started_event evt;
  993. } __packed reply;
  994. if (!wil->privacy)
  995. cmd.disable_sec = 1;
  996. if ((cmd.pcp_max_assoc_sta > WIL6210_MAX_CID) ||
  997. (cmd.pcp_max_assoc_sta <= 0)) {
  998. wil_info(wil,
  999. "Requested connection limit %u, valid values are 1 - %d. Setting to %d\n",
  1000. max_assoc_sta, WIL6210_MAX_CID, WIL6210_MAX_CID);
  1001. cmd.pcp_max_assoc_sta = WIL6210_MAX_CID;
  1002. }
  1003. if (disable_ap_sme &&
  1004. !test_bit(WMI_FW_CAPABILITY_DISABLE_AP_SME,
  1005. wil->fw_capabilities)) {
  1006. wil_err(wil, "disable_ap_sme not supported by FW\n");
  1007. return -EOPNOTSUPP;
  1008. }
  1009. /*
  1010. * Processing time may be huge, in case of secure AP it takes about
  1011. * 3500ms for FW to start AP
  1012. */
  1013. rc = wmi_call(wil, WMI_PCP_START_CMDID, &cmd, sizeof(cmd),
  1014. WMI_PCP_STARTED_EVENTID, &reply, sizeof(reply), 5000);
  1015. if (rc)
  1016. return rc;
  1017. if (reply.evt.status != WMI_FW_STATUS_SUCCESS)
  1018. rc = -EINVAL;
  1019. if (wmi_nettype != WMI_NETTYPE_P2P)
  1020. /* Don't fail due to error in the led configuration */
  1021. wmi_led_cfg(wil, true);
  1022. return rc;
  1023. }
  1024. int wmi_pcp_stop(struct wil6210_priv *wil)
  1025. {
  1026. int rc;
  1027. rc = wmi_led_cfg(wil, false);
  1028. if (rc)
  1029. return rc;
  1030. return wmi_call(wil, WMI_PCP_STOP_CMDID, NULL, 0,
  1031. WMI_PCP_STOPPED_EVENTID, NULL, 0, 20);
  1032. }
  1033. int wmi_set_ssid(struct wil6210_priv *wil, u8 ssid_len, const void *ssid)
  1034. {
  1035. struct wmi_set_ssid_cmd cmd = {
  1036. .ssid_len = cpu_to_le32(ssid_len),
  1037. };
  1038. if (ssid_len > sizeof(cmd.ssid))
  1039. return -EINVAL;
  1040. memcpy(cmd.ssid, ssid, ssid_len);
  1041. return wmi_send(wil, WMI_SET_SSID_CMDID, &cmd, sizeof(cmd));
  1042. }
  1043. int wmi_get_ssid(struct wil6210_priv *wil, u8 *ssid_len, void *ssid)
  1044. {
  1045. int rc;
  1046. struct {
  1047. struct wmi_cmd_hdr wmi;
  1048. struct wmi_set_ssid_cmd cmd;
  1049. } __packed reply;
  1050. int len; /* reply.cmd.ssid_len in CPU order */
  1051. rc = wmi_call(wil, WMI_GET_SSID_CMDID, NULL, 0, WMI_GET_SSID_EVENTID,
  1052. &reply, sizeof(reply), 20);
  1053. if (rc)
  1054. return rc;
  1055. len = le32_to_cpu(reply.cmd.ssid_len);
  1056. if (len > sizeof(reply.cmd.ssid))
  1057. return -EINVAL;
  1058. *ssid_len = len;
  1059. memcpy(ssid, reply.cmd.ssid, len);
  1060. return 0;
  1061. }
  1062. int wmi_set_channel(struct wil6210_priv *wil, int channel)
  1063. {
  1064. struct wmi_set_pcp_channel_cmd cmd = {
  1065. .channel = channel - 1,
  1066. };
  1067. return wmi_send(wil, WMI_SET_PCP_CHANNEL_CMDID, &cmd, sizeof(cmd));
  1068. }
  1069. int wmi_get_channel(struct wil6210_priv *wil, int *channel)
  1070. {
  1071. int rc;
  1072. struct {
  1073. struct wmi_cmd_hdr wmi;
  1074. struct wmi_set_pcp_channel_cmd cmd;
  1075. } __packed reply;
  1076. rc = wmi_call(wil, WMI_GET_PCP_CHANNEL_CMDID, NULL, 0,
  1077. WMI_GET_PCP_CHANNEL_EVENTID, &reply, sizeof(reply), 20);
  1078. if (rc)
  1079. return rc;
  1080. if (reply.cmd.channel > 3)
  1081. return -EINVAL;
  1082. *channel = reply.cmd.channel + 1;
  1083. return 0;
  1084. }
  1085. int wmi_p2p_cfg(struct wil6210_priv *wil, int channel, int bi)
  1086. {
  1087. int rc;
  1088. struct wmi_p2p_cfg_cmd cmd = {
  1089. .discovery_mode = WMI_DISCOVERY_MODE_PEER2PEER,
  1090. .bcon_interval = cpu_to_le16(bi),
  1091. .channel = channel - 1,
  1092. };
  1093. struct {
  1094. struct wmi_cmd_hdr wmi;
  1095. struct wmi_p2p_cfg_done_event evt;
  1096. } __packed reply;
  1097. wil_dbg_wmi(wil, "sending WMI_P2P_CFG_CMDID\n");
  1098. rc = wmi_call(wil, WMI_P2P_CFG_CMDID, &cmd, sizeof(cmd),
  1099. WMI_P2P_CFG_DONE_EVENTID, &reply, sizeof(reply), 300);
  1100. if (!rc && reply.evt.status != WMI_FW_STATUS_SUCCESS) {
  1101. wil_err(wil, "P2P_CFG failed. status %d\n", reply.evt.status);
  1102. rc = -EINVAL;
  1103. }
  1104. return rc;
  1105. }
  1106. int wmi_start_listen(struct wil6210_priv *wil)
  1107. {
  1108. int rc;
  1109. struct {
  1110. struct wmi_cmd_hdr wmi;
  1111. struct wmi_listen_started_event evt;
  1112. } __packed reply;
  1113. wil_dbg_wmi(wil, "sending WMI_START_LISTEN_CMDID\n");
  1114. rc = wmi_call(wil, WMI_START_LISTEN_CMDID, NULL, 0,
  1115. WMI_LISTEN_STARTED_EVENTID, &reply, sizeof(reply), 300);
  1116. if (!rc && reply.evt.status != WMI_FW_STATUS_SUCCESS) {
  1117. wil_err(wil, "device failed to start listen. status %d\n",
  1118. reply.evt.status);
  1119. rc = -EINVAL;
  1120. }
  1121. return rc;
  1122. }
  1123. int wmi_start_search(struct wil6210_priv *wil)
  1124. {
  1125. int rc;
  1126. struct {
  1127. struct wmi_cmd_hdr wmi;
  1128. struct wmi_search_started_event evt;
  1129. } __packed reply;
  1130. wil_dbg_wmi(wil, "sending WMI_START_SEARCH_CMDID\n");
  1131. rc = wmi_call(wil, WMI_START_SEARCH_CMDID, NULL, 0,
  1132. WMI_SEARCH_STARTED_EVENTID, &reply, sizeof(reply), 300);
  1133. if (!rc && reply.evt.status != WMI_FW_STATUS_SUCCESS) {
  1134. wil_err(wil, "device failed to start search. status %d\n",
  1135. reply.evt.status);
  1136. rc = -EINVAL;
  1137. }
  1138. return rc;
  1139. }
  1140. int wmi_stop_discovery(struct wil6210_priv *wil)
  1141. {
  1142. int rc;
  1143. wil_dbg_wmi(wil, "sending WMI_DISCOVERY_STOP_CMDID\n");
  1144. rc = wmi_call(wil, WMI_DISCOVERY_STOP_CMDID, NULL, 0,
  1145. WMI_DISCOVERY_STOPPED_EVENTID, NULL, 0, 100);
  1146. if (rc)
  1147. wil_err(wil, "Failed to stop discovery\n");
  1148. return rc;
  1149. }
  1150. int wmi_del_cipher_key(struct wil6210_priv *wil, u8 key_index,
  1151. const void *mac_addr, int key_usage)
  1152. {
  1153. struct wmi_delete_cipher_key_cmd cmd = {
  1154. .key_index = key_index,
  1155. };
  1156. if (mac_addr)
  1157. memcpy(cmd.mac, mac_addr, WMI_MAC_LEN);
  1158. return wmi_send(wil, WMI_DELETE_CIPHER_KEY_CMDID, &cmd, sizeof(cmd));
  1159. }
  1160. int wmi_add_cipher_key(struct wil6210_priv *wil, u8 key_index,
  1161. const void *mac_addr, int key_len, const void *key,
  1162. int key_usage)
  1163. {
  1164. struct wmi_add_cipher_key_cmd cmd = {
  1165. .key_index = key_index,
  1166. .key_usage = key_usage,
  1167. .key_len = key_len,
  1168. };
  1169. if (!key || (key_len > sizeof(cmd.key)))
  1170. return -EINVAL;
  1171. memcpy(cmd.key, key, key_len);
  1172. if (mac_addr)
  1173. memcpy(cmd.mac, mac_addr, WMI_MAC_LEN);
  1174. return wmi_send(wil, WMI_ADD_CIPHER_KEY_CMDID, &cmd, sizeof(cmd));
  1175. }
  1176. int wmi_set_ie(struct wil6210_priv *wil, u8 type, u16 ie_len, const void *ie)
  1177. {
  1178. static const char *const names[] = {
  1179. [WMI_FRAME_BEACON] = "BEACON",
  1180. [WMI_FRAME_PROBE_REQ] = "PROBE_REQ",
  1181. [WMI_FRAME_PROBE_RESP] = "WMI_FRAME_PROBE_RESP",
  1182. [WMI_FRAME_ASSOC_REQ] = "WMI_FRAME_ASSOC_REQ",
  1183. [WMI_FRAME_ASSOC_RESP] = "WMI_FRAME_ASSOC_RESP",
  1184. };
  1185. int rc;
  1186. u16 len = sizeof(struct wmi_set_appie_cmd) + ie_len;
  1187. struct wmi_set_appie_cmd *cmd = kzalloc(len, GFP_KERNEL);
  1188. if (!cmd) {
  1189. rc = -ENOMEM;
  1190. goto out;
  1191. }
  1192. if (!ie)
  1193. ie_len = 0;
  1194. cmd->mgmt_frm_type = type;
  1195. /* BUG: FW API define ieLen as u8. Will fix FW */
  1196. cmd->ie_len = cpu_to_le16(ie_len);
  1197. memcpy(cmd->ie_info, ie, ie_len);
  1198. rc = wmi_send(wil, WMI_SET_APPIE_CMDID, cmd, len);
  1199. kfree(cmd);
  1200. out:
  1201. if (rc) {
  1202. const char *name = type < ARRAY_SIZE(names) ?
  1203. names[type] : "??";
  1204. wil_err(wil, "set_ie(%d %s) failed : %d\n", type, name, rc);
  1205. }
  1206. return rc;
  1207. }
  1208. /**
  1209. * wmi_rxon - turn radio on/off
  1210. * @on: turn on if true, off otherwise
  1211. *
  1212. * Only switch radio. Channel should be set separately.
  1213. * No timeout for rxon - radio turned on forever unless some other call
  1214. * turns it off
  1215. */
  1216. int wmi_rxon(struct wil6210_priv *wil, bool on)
  1217. {
  1218. int rc;
  1219. struct {
  1220. struct wmi_cmd_hdr wmi;
  1221. struct wmi_listen_started_event evt;
  1222. } __packed reply;
  1223. wil_info(wil, "(%s)\n", on ? "on" : "off");
  1224. if (on) {
  1225. rc = wmi_call(wil, WMI_START_LISTEN_CMDID, NULL, 0,
  1226. WMI_LISTEN_STARTED_EVENTID,
  1227. &reply, sizeof(reply), 100);
  1228. if ((rc == 0) && (reply.evt.status != WMI_FW_STATUS_SUCCESS))
  1229. rc = -EINVAL;
  1230. } else {
  1231. rc = wmi_call(wil, WMI_DISCOVERY_STOP_CMDID, NULL, 0,
  1232. WMI_DISCOVERY_STOPPED_EVENTID, NULL, 0, 20);
  1233. }
  1234. return rc;
  1235. }
  1236. int wmi_rx_chain_add(struct wil6210_priv *wil, struct vring *vring)
  1237. {
  1238. struct wireless_dev *wdev = wil->wdev;
  1239. struct net_device *ndev = wil_to_ndev(wil);
  1240. struct wmi_cfg_rx_chain_cmd cmd = {
  1241. .action = WMI_RX_CHAIN_ADD,
  1242. .rx_sw_ring = {
  1243. .max_mpdu_size = cpu_to_le16(
  1244. wil_mtu2macbuf(wil->rx_buf_len)),
  1245. .ring_mem_base = cpu_to_le64(vring->pa),
  1246. .ring_size = cpu_to_le16(vring->size),
  1247. },
  1248. .mid = 0, /* TODO - what is it? */
  1249. .decap_trans_type = WMI_DECAP_TYPE_802_3,
  1250. .reorder_type = WMI_RX_SW_REORDER,
  1251. .host_thrsh = cpu_to_le16(rx_ring_overflow_thrsh),
  1252. };
  1253. struct {
  1254. struct wmi_cmd_hdr wmi;
  1255. struct wmi_cfg_rx_chain_done_event evt;
  1256. } __packed evt;
  1257. int rc;
  1258. if (wdev->iftype == NL80211_IFTYPE_MONITOR) {
  1259. struct ieee80211_channel *ch = wdev->preset_chandef.chan;
  1260. cmd.sniffer_cfg.mode = cpu_to_le32(WMI_SNIFFER_ON);
  1261. if (ch)
  1262. cmd.sniffer_cfg.channel = ch->hw_value - 1;
  1263. cmd.sniffer_cfg.phy_info_mode =
  1264. cpu_to_le32(ndev->type == ARPHRD_IEEE80211_RADIOTAP);
  1265. cmd.sniffer_cfg.phy_support =
  1266. cpu_to_le32((wil->monitor_flags & MONITOR_FLAG_CONTROL)
  1267. ? WMI_SNIFFER_CP : WMI_SNIFFER_BOTH_PHYS);
  1268. } else {
  1269. /* Initialize offload (in non-sniffer mode).
  1270. * Linux IP stack always calculates IP checksum
  1271. * HW always calculate TCP/UDP checksum
  1272. */
  1273. cmd.l3_l4_ctrl |= (1 << L3_L4_CTRL_TCPIP_CHECKSUM_EN_POS);
  1274. }
  1275. if (rx_align_2)
  1276. cmd.l2_802_3_offload_ctrl |=
  1277. L2_802_3_OFFLOAD_CTRL_SNAP_KEEP_MSK;
  1278. /* typical time for secure PCP is 840ms */
  1279. rc = wmi_call(wil, WMI_CFG_RX_CHAIN_CMDID, &cmd, sizeof(cmd),
  1280. WMI_CFG_RX_CHAIN_DONE_EVENTID, &evt, sizeof(evt), 2000);
  1281. if (rc)
  1282. return rc;
  1283. vring->hwtail = le32_to_cpu(evt.evt.rx_ring_tail_ptr);
  1284. wil_dbg_misc(wil, "Rx init: status %d tail 0x%08x\n",
  1285. le32_to_cpu(evt.evt.status), vring->hwtail);
  1286. if (le32_to_cpu(evt.evt.status) != WMI_CFG_RX_CHAIN_SUCCESS)
  1287. rc = -EINVAL;
  1288. return rc;
  1289. }
  1290. int wmi_get_temperature(struct wil6210_priv *wil, u32 *t_bb, u32 *t_rf)
  1291. {
  1292. int rc;
  1293. struct wmi_temp_sense_cmd cmd = {
  1294. .measure_baseband_en = cpu_to_le32(!!t_bb),
  1295. .measure_rf_en = cpu_to_le32(!!t_rf),
  1296. .measure_mode = cpu_to_le32(TEMPERATURE_MEASURE_NOW),
  1297. };
  1298. struct {
  1299. struct wmi_cmd_hdr wmi;
  1300. struct wmi_temp_sense_done_event evt;
  1301. } __packed reply;
  1302. rc = wmi_call(wil, WMI_TEMP_SENSE_CMDID, &cmd, sizeof(cmd),
  1303. WMI_TEMP_SENSE_DONE_EVENTID, &reply, sizeof(reply), 100);
  1304. if (rc)
  1305. return rc;
  1306. if (t_bb)
  1307. *t_bb = le32_to_cpu(reply.evt.baseband_t1000);
  1308. if (t_rf)
  1309. *t_rf = le32_to_cpu(reply.evt.rf_t1000);
  1310. return 0;
  1311. }
  1312. int wmi_disconnect_sta(struct wil6210_priv *wil, const u8 *mac,
  1313. u16 reason, bool full_disconnect, bool del_sta)
  1314. {
  1315. int rc;
  1316. u16 reason_code;
  1317. struct wmi_disconnect_sta_cmd disc_sta_cmd = {
  1318. .disconnect_reason = cpu_to_le16(reason),
  1319. };
  1320. struct wmi_del_sta_cmd del_sta_cmd = {
  1321. .disconnect_reason = cpu_to_le16(reason),
  1322. };
  1323. struct {
  1324. struct wmi_cmd_hdr wmi;
  1325. struct wmi_disconnect_event evt;
  1326. } __packed reply;
  1327. wil_dbg_wmi(wil, "disconnect_sta: (%pM, reason %d)\n", mac, reason);
  1328. wil->locally_generated_disc = true;
  1329. if (del_sta) {
  1330. ether_addr_copy(del_sta_cmd.dst_mac, mac);
  1331. rc = wmi_call(wil, WMI_DEL_STA_CMDID, &del_sta_cmd,
  1332. sizeof(del_sta_cmd), WMI_DISCONNECT_EVENTID,
  1333. &reply, sizeof(reply), 1000);
  1334. } else {
  1335. ether_addr_copy(disc_sta_cmd.dst_mac, mac);
  1336. rc = wmi_call(wil, WMI_DISCONNECT_STA_CMDID, &disc_sta_cmd,
  1337. sizeof(disc_sta_cmd), WMI_DISCONNECT_EVENTID,
  1338. &reply, sizeof(reply), 1000);
  1339. }
  1340. /* failure to disconnect in reasonable time treated as FW error */
  1341. if (rc) {
  1342. wil_fw_error_recovery(wil);
  1343. return rc;
  1344. }
  1345. if (full_disconnect) {
  1346. /* call event handler manually after processing wmi_call,
  1347. * to avoid deadlock - disconnect event handler acquires
  1348. * wil->mutex while it is already held here
  1349. */
  1350. reason_code = le16_to_cpu(reply.evt.protocol_reason_status);
  1351. wil_dbg_wmi(wil, "Disconnect %pM reason [proto %d wmi %d]\n",
  1352. reply.evt.bssid, reason_code,
  1353. reply.evt.disconnect_reason);
  1354. wil->sinfo_gen++;
  1355. wil6210_disconnect(wil, reply.evt.bssid, reason_code, true);
  1356. }
  1357. return 0;
  1358. }
  1359. int wmi_addba(struct wil6210_priv *wil, u8 ringid, u8 size, u16 timeout)
  1360. {
  1361. struct wmi_vring_ba_en_cmd cmd = {
  1362. .ringid = ringid,
  1363. .agg_max_wsize = size,
  1364. .ba_timeout = cpu_to_le16(timeout),
  1365. .amsdu = 0,
  1366. };
  1367. wil_dbg_wmi(wil, "addba: (ring %d size %d timeout %d)\n", ringid, size,
  1368. timeout);
  1369. return wmi_send(wil, WMI_VRING_BA_EN_CMDID, &cmd, sizeof(cmd));
  1370. }
  1371. int wmi_delba_tx(struct wil6210_priv *wil, u8 ringid, u16 reason)
  1372. {
  1373. struct wmi_vring_ba_dis_cmd cmd = {
  1374. .ringid = ringid,
  1375. .reason = cpu_to_le16(reason),
  1376. };
  1377. wil_dbg_wmi(wil, "delba_tx: (ring %d reason %d)\n", ringid, reason);
  1378. return wmi_send(wil, WMI_VRING_BA_DIS_CMDID, &cmd, sizeof(cmd));
  1379. }
  1380. int wmi_delba_rx(struct wil6210_priv *wil, u8 cidxtid, u16 reason)
  1381. {
  1382. struct wmi_rcp_delba_cmd cmd = {
  1383. .cidxtid = cidxtid,
  1384. .reason = cpu_to_le16(reason),
  1385. };
  1386. wil_dbg_wmi(wil, "delba_rx: (CID %d TID %d reason %d)\n", cidxtid & 0xf,
  1387. (cidxtid >> 4) & 0xf, reason);
  1388. return wmi_send(wil, WMI_RCP_DELBA_CMDID, &cmd, sizeof(cmd));
  1389. }
  1390. int wmi_addba_rx_resp(struct wil6210_priv *wil, u8 cid, u8 tid, u8 token,
  1391. u16 status, bool amsdu, u16 agg_wsize, u16 timeout)
  1392. {
  1393. int rc;
  1394. struct wmi_rcp_addba_resp_cmd cmd = {
  1395. .cidxtid = mk_cidxtid(cid, tid),
  1396. .dialog_token = token,
  1397. .status_code = cpu_to_le16(status),
  1398. /* bit 0: A-MSDU supported
  1399. * bit 1: policy (should be 0 for us)
  1400. * bits 2..5: TID
  1401. * bits 6..15: buffer size
  1402. */
  1403. .ba_param_set = cpu_to_le16((amsdu ? 1 : 0) | (tid << 2) |
  1404. (agg_wsize << 6)),
  1405. .ba_timeout = cpu_to_le16(timeout),
  1406. };
  1407. struct {
  1408. struct wmi_cmd_hdr wmi;
  1409. struct wmi_rcp_addba_resp_sent_event evt;
  1410. } __packed reply;
  1411. wil_dbg_wmi(wil,
  1412. "ADDBA response for CID %d TID %d size %d timeout %d status %d AMSDU%s\n",
  1413. cid, tid, agg_wsize, timeout, status, amsdu ? "+" : "-");
  1414. rc = wmi_call(wil, WMI_RCP_ADDBA_RESP_CMDID, &cmd, sizeof(cmd),
  1415. WMI_RCP_ADDBA_RESP_SENT_EVENTID, &reply, sizeof(reply),
  1416. 100);
  1417. if (rc)
  1418. return rc;
  1419. if (reply.evt.status) {
  1420. wil_err(wil, "ADDBA response failed with status %d\n",
  1421. le16_to_cpu(reply.evt.status));
  1422. rc = -EINVAL;
  1423. }
  1424. return rc;
  1425. }
  1426. int wmi_ps_dev_profile_cfg(struct wil6210_priv *wil,
  1427. enum wmi_ps_profile_type ps_profile)
  1428. {
  1429. int rc;
  1430. struct wmi_ps_dev_profile_cfg_cmd cmd = {
  1431. .ps_profile = ps_profile,
  1432. };
  1433. struct {
  1434. struct wmi_cmd_hdr wmi;
  1435. struct wmi_ps_dev_profile_cfg_event evt;
  1436. } __packed reply;
  1437. u32 status;
  1438. wil_dbg_wmi(wil, "Setting ps dev profile %d\n", ps_profile);
  1439. reply.evt.status = cpu_to_le32(WMI_PS_CFG_CMD_STATUS_ERROR);
  1440. rc = wmi_call(wil, WMI_PS_DEV_PROFILE_CFG_CMDID, &cmd, sizeof(cmd),
  1441. WMI_PS_DEV_PROFILE_CFG_EVENTID, &reply, sizeof(reply),
  1442. 100);
  1443. if (rc)
  1444. return rc;
  1445. status = le32_to_cpu(reply.evt.status);
  1446. if (status != WMI_PS_CFG_CMD_STATUS_SUCCESS) {
  1447. wil_err(wil, "ps dev profile cfg failed with status %d\n",
  1448. status);
  1449. rc = -EINVAL;
  1450. }
  1451. return rc;
  1452. }
  1453. int wmi_set_mgmt_retry(struct wil6210_priv *wil, u8 retry_short)
  1454. {
  1455. int rc;
  1456. struct wmi_set_mgmt_retry_limit_cmd cmd = {
  1457. .mgmt_retry_limit = retry_short,
  1458. };
  1459. struct {
  1460. struct wmi_cmd_hdr wmi;
  1461. struct wmi_set_mgmt_retry_limit_event evt;
  1462. } __packed reply;
  1463. wil_dbg_wmi(wil, "Setting mgmt retry short %d\n", retry_short);
  1464. if (!test_bit(WMI_FW_CAPABILITY_MGMT_RETRY_LIMIT, wil->fw_capabilities))
  1465. return -ENOTSUPP;
  1466. reply.evt.status = WMI_FW_STATUS_FAILURE;
  1467. rc = wmi_call(wil, WMI_SET_MGMT_RETRY_LIMIT_CMDID, &cmd, sizeof(cmd),
  1468. WMI_SET_MGMT_RETRY_LIMIT_EVENTID, &reply, sizeof(reply),
  1469. 100);
  1470. if (rc)
  1471. return rc;
  1472. if (reply.evt.status != WMI_FW_STATUS_SUCCESS) {
  1473. wil_err(wil, "set mgmt retry limit failed with status %d\n",
  1474. reply.evt.status);
  1475. rc = -EINVAL;
  1476. }
  1477. return rc;
  1478. }
  1479. int wmi_get_mgmt_retry(struct wil6210_priv *wil, u8 *retry_short)
  1480. {
  1481. int rc;
  1482. struct {
  1483. struct wmi_cmd_hdr wmi;
  1484. struct wmi_get_mgmt_retry_limit_event evt;
  1485. } __packed reply;
  1486. wil_dbg_wmi(wil, "getting mgmt retry short\n");
  1487. if (!test_bit(WMI_FW_CAPABILITY_MGMT_RETRY_LIMIT, wil->fw_capabilities))
  1488. return -ENOTSUPP;
  1489. reply.evt.mgmt_retry_limit = 0;
  1490. rc = wmi_call(wil, WMI_GET_MGMT_RETRY_LIMIT_CMDID, NULL, 0,
  1491. WMI_GET_MGMT_RETRY_LIMIT_EVENTID, &reply, sizeof(reply),
  1492. 100);
  1493. if (rc)
  1494. return rc;
  1495. if (retry_short)
  1496. *retry_short = reply.evt.mgmt_retry_limit;
  1497. return 0;
  1498. }
  1499. int wmi_abort_scan(struct wil6210_priv *wil)
  1500. {
  1501. int rc;
  1502. wil_dbg_wmi(wil, "sending WMI_ABORT_SCAN_CMDID\n");
  1503. rc = wmi_send(wil, WMI_ABORT_SCAN_CMDID, NULL, 0);
  1504. if (rc)
  1505. wil_err(wil, "Failed to abort scan (%d)\n", rc);
  1506. return rc;
  1507. }
  1508. int wmi_new_sta(struct wil6210_priv *wil, const u8 *mac, u8 aid)
  1509. {
  1510. int rc;
  1511. struct wmi_new_sta_cmd cmd = {
  1512. .aid = aid,
  1513. };
  1514. wil_dbg_wmi(wil, "new sta %pM, aid %d\n", mac, aid);
  1515. ether_addr_copy(cmd.dst_mac, mac);
  1516. rc = wmi_send(wil, WMI_NEW_STA_CMDID, &cmd, sizeof(cmd));
  1517. if (rc)
  1518. wil_err(wil, "Failed to send new sta (%d)\n", rc);
  1519. return rc;
  1520. }
  1521. void wmi_event_flush(struct wil6210_priv *wil)
  1522. {
  1523. ulong flags;
  1524. struct pending_wmi_event *evt, *t;
  1525. wil_dbg_wmi(wil, "event_flush\n");
  1526. spin_lock_irqsave(&wil->wmi_ev_lock, flags);
  1527. list_for_each_entry_safe(evt, t, &wil->pending_wmi_ev, list) {
  1528. list_del(&evt->list);
  1529. kfree(evt);
  1530. }
  1531. spin_unlock_irqrestore(&wil->wmi_ev_lock, flags);
  1532. }
  1533. int wmi_suspend(struct wil6210_priv *wil)
  1534. {
  1535. int rc;
  1536. struct wmi_traffic_suspend_cmd cmd = {
  1537. .wakeup_trigger = wil->wakeup_trigger,
  1538. };
  1539. struct {
  1540. struct wmi_cmd_hdr wmi;
  1541. struct wmi_traffic_suspend_event evt;
  1542. } __packed reply;
  1543. u32 suspend_to = WIL_WAIT_FOR_SUSPEND_RESUME_COMP;
  1544. wil->suspend_resp_rcvd = false;
  1545. wil->suspend_resp_comp = false;
  1546. reply.evt.status = WMI_TRAFFIC_SUSPEND_REJECTED;
  1547. rc = wmi_call(wil, WMI_TRAFFIC_SUSPEND_CMDID, &cmd, sizeof(cmd),
  1548. WMI_TRAFFIC_SUSPEND_EVENTID, &reply, sizeof(reply),
  1549. suspend_to);
  1550. if (rc) {
  1551. wil_err(wil, "wmi_call for suspend req failed, rc=%d\n", rc);
  1552. if (rc == -ETIME)
  1553. /* wmi_call TO */
  1554. wil->suspend_stats.rejected_by_device++;
  1555. else
  1556. wil->suspend_stats.rejected_by_host++;
  1557. goto out;
  1558. }
  1559. wil_dbg_wmi(wil, "waiting for suspend_response_completed\n");
  1560. rc = wait_event_interruptible_timeout(wil->wq,
  1561. wil->suspend_resp_comp,
  1562. msecs_to_jiffies(suspend_to));
  1563. if (rc == 0) {
  1564. wil_err(wil, "TO waiting for suspend_response_completed\n");
  1565. if (wil->suspend_resp_rcvd)
  1566. /* Device responded but we TO due to another reason */
  1567. wil->suspend_stats.rejected_by_host++;
  1568. else
  1569. wil->suspend_stats.rejected_by_device++;
  1570. rc = -EBUSY;
  1571. goto out;
  1572. }
  1573. wil_dbg_wmi(wil, "suspend_response_completed rcvd\n");
  1574. if (reply.evt.status == WMI_TRAFFIC_SUSPEND_REJECTED) {
  1575. wil_dbg_pm(wil, "device rejected the suspend\n");
  1576. wil->suspend_stats.rejected_by_device++;
  1577. }
  1578. rc = reply.evt.status;
  1579. out:
  1580. wil->suspend_resp_rcvd = false;
  1581. wil->suspend_resp_comp = false;
  1582. return rc;
  1583. }
  1584. int wmi_resume(struct wil6210_priv *wil)
  1585. {
  1586. int rc;
  1587. struct {
  1588. struct wmi_cmd_hdr wmi;
  1589. struct wmi_traffic_resume_event evt;
  1590. } __packed reply;
  1591. reply.evt.status = WMI_TRAFFIC_RESUME_FAILED;
  1592. rc = wmi_call(wil, WMI_TRAFFIC_RESUME_CMDID, NULL, 0,
  1593. WMI_TRAFFIC_RESUME_EVENTID, &reply, sizeof(reply),
  1594. WIL_WAIT_FOR_SUSPEND_RESUME_COMP);
  1595. if (rc)
  1596. return rc;
  1597. return reply.evt.status;
  1598. }
  1599. static bool wmi_evt_call_handler(struct wil6210_priv *wil, int id,
  1600. void *d, int len)
  1601. {
  1602. uint i;
  1603. for (i = 0; i < ARRAY_SIZE(wmi_evt_handlers); i++) {
  1604. if (wmi_evt_handlers[i].eventid == id) {
  1605. wmi_evt_handlers[i].handler(wil, id, d, len);
  1606. return true;
  1607. }
  1608. }
  1609. return false;
  1610. }
  1611. static void wmi_event_handle(struct wil6210_priv *wil,
  1612. struct wil6210_mbox_hdr *hdr)
  1613. {
  1614. u16 len = le16_to_cpu(hdr->len);
  1615. if ((hdr->type == WIL_MBOX_HDR_TYPE_WMI) &&
  1616. (len >= sizeof(struct wmi_cmd_hdr))) {
  1617. struct wmi_cmd_hdr *wmi = (void *)(&hdr[1]);
  1618. void *evt_data = (void *)(&wmi[1]);
  1619. u16 id = le16_to_cpu(wmi->command_id);
  1620. wil_dbg_wmi(wil, "Handle WMI 0x%04x (reply_id 0x%04x)\n",
  1621. id, wil->reply_id);
  1622. /* check if someone waits for this event */
  1623. if (wil->reply_id && wil->reply_id == id) {
  1624. WARN_ON(wil->reply_buf);
  1625. wmi_evt_call_handler(wil, id, evt_data,
  1626. len - sizeof(*wmi));
  1627. wil_dbg_wmi(wil, "event_handle: Complete WMI 0x%04x\n",
  1628. id);
  1629. complete(&wil->wmi_call);
  1630. return;
  1631. }
  1632. /* unsolicited event */
  1633. /* search for handler */
  1634. if (!wmi_evt_call_handler(wil, id, evt_data,
  1635. len - sizeof(*wmi))) {
  1636. wil_info(wil, "Unhandled event 0x%04x\n", id);
  1637. }
  1638. } else {
  1639. wil_err(wil, "Unknown event type\n");
  1640. print_hex_dump(KERN_ERR, "evt?? ", DUMP_PREFIX_OFFSET, 16, 1,
  1641. hdr, sizeof(*hdr) + len, true);
  1642. }
  1643. }
  1644. /*
  1645. * Retrieve next WMI event from the pending list
  1646. */
  1647. static struct list_head *next_wmi_ev(struct wil6210_priv *wil)
  1648. {
  1649. ulong flags;
  1650. struct list_head *ret = NULL;
  1651. spin_lock_irqsave(&wil->wmi_ev_lock, flags);
  1652. if (!list_empty(&wil->pending_wmi_ev)) {
  1653. ret = wil->pending_wmi_ev.next;
  1654. list_del(ret);
  1655. }
  1656. spin_unlock_irqrestore(&wil->wmi_ev_lock, flags);
  1657. return ret;
  1658. }
  1659. /*
  1660. * Handler for the WMI events
  1661. */
  1662. void wmi_event_worker(struct work_struct *work)
  1663. {
  1664. struct wil6210_priv *wil = container_of(work, struct wil6210_priv,
  1665. wmi_event_worker);
  1666. struct pending_wmi_event *evt;
  1667. struct list_head *lh;
  1668. wil_dbg_wmi(wil, "event_worker: Start\n");
  1669. while ((lh = next_wmi_ev(wil)) != NULL) {
  1670. evt = list_entry(lh, struct pending_wmi_event, list);
  1671. wmi_event_handle(wil, &evt->event.hdr);
  1672. kfree(evt);
  1673. }
  1674. wil_dbg_wmi(wil, "event_worker: Finished\n");
  1675. }
  1676. bool wil_is_wmi_idle(struct wil6210_priv *wil)
  1677. {
  1678. ulong flags;
  1679. struct wil6210_mbox_ring *r = &wil->mbox_ctl.rx;
  1680. bool rc = false;
  1681. spin_lock_irqsave(&wil->wmi_ev_lock, flags);
  1682. /* Check if there are pending WMI events in the events queue */
  1683. if (!list_empty(&wil->pending_wmi_ev)) {
  1684. wil_dbg_pm(wil, "Pending WMI events in queue\n");
  1685. goto out;
  1686. }
  1687. /* Check if there is a pending WMI call */
  1688. if (wil->reply_id) {
  1689. wil_dbg_pm(wil, "Pending WMI call\n");
  1690. goto out;
  1691. }
  1692. /* Check if there are pending RX events in mbox */
  1693. r->head = wil_r(wil, RGF_MBOX +
  1694. offsetof(struct wil6210_mbox_ctl, rx.head));
  1695. if (r->tail != r->head)
  1696. wil_dbg_pm(wil, "Pending WMI mbox events\n");
  1697. else
  1698. rc = true;
  1699. out:
  1700. spin_unlock_irqrestore(&wil->wmi_ev_lock, flags);
  1701. return rc;
  1702. }