iwl-agn.c 68 KB

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  1. /******************************************************************************
  2. *
  3. * Copyright(c) 2003 - 2012 Intel Corporation. All rights reserved.
  4. *
  5. * Portions of this file are derived from the ipw3945 project, as well
  6. * as portions of the ieee80211 subsystem header files.
  7. *
  8. * This program is free software; you can redistribute it and/or modify it
  9. * under the terms of version 2 of the GNU General Public License as
  10. * published by the Free Software Foundation.
  11. *
  12. * This program is distributed in the hope that it will be useful, but WITHOUT
  13. * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
  14. * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License for
  15. * more details.
  16. *
  17. * You should have received a copy of the GNU General Public License along with
  18. * this program; if not, write to the Free Software Foundation, Inc.,
  19. * 51 Franklin Street, Fifth Floor, Boston, MA 02110, USA
  20. *
  21. * The full GNU General Public License is included in this distribution in the
  22. * file called LICENSE.
  23. *
  24. * Contact Information:
  25. * Intel Linux Wireless <ilw@linux.intel.com>
  26. * Intel Corporation, 5200 N.E. Elam Young Parkway, Hillsboro, OR 97124-6497
  27. *
  28. *****************************************************************************/
  29. #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
  30. #include <linux/kernel.h>
  31. #include <linux/module.h>
  32. #include <linux/init.h>
  33. #include <linux/slab.h>
  34. #include <linux/delay.h>
  35. #include <linux/sched.h>
  36. #include <linux/skbuff.h>
  37. #include <linux/netdevice.h>
  38. #include <linux/etherdevice.h>
  39. #include <linux/if_arp.h>
  40. #include <net/mac80211.h>
  41. #include <asm/div64.h>
  42. #include "iwl-eeprom.h"
  43. #include "iwl-dev.h"
  44. #include "iwl-core.h"
  45. #include "iwl-io.h"
  46. #include "iwl-agn-calib.h"
  47. #include "iwl-agn.h"
  48. #include "iwl-trans.h"
  49. #include "iwl-op-mode.h"
  50. /******************************************************************************
  51. *
  52. * module boiler plate
  53. *
  54. ******************************************************************************/
  55. /*
  56. * module name, copyright, version, etc.
  57. */
  58. #define DRV_DESCRIPTION "Intel(R) Wireless WiFi Link AGN driver for Linux"
  59. #ifdef CONFIG_IWLWIFI_DEBUG
  60. #define VD "d"
  61. #else
  62. #define VD
  63. #endif
  64. #define DRV_VERSION IWLWIFI_VERSION VD
  65. MODULE_DESCRIPTION(DRV_DESCRIPTION);
  66. MODULE_VERSION(DRV_VERSION);
  67. MODULE_AUTHOR(DRV_COPYRIGHT " " DRV_AUTHOR);
  68. MODULE_LICENSE("GPL");
  69. MODULE_ALIAS("iwlagn");
  70. void iwl_update_chain_flags(struct iwl_priv *priv)
  71. {
  72. struct iwl_rxon_context *ctx;
  73. for_each_context(priv, ctx) {
  74. iwlagn_set_rxon_chain(priv, ctx);
  75. if (ctx->active.rx_chain != ctx->staging.rx_chain)
  76. iwlagn_commit_rxon(priv, ctx);
  77. }
  78. }
  79. /* Parse the beacon frame to find the TIM element and set tim_idx & tim_size */
  80. static void iwl_set_beacon_tim(struct iwl_priv *priv,
  81. struct iwl_tx_beacon_cmd *tx_beacon_cmd,
  82. u8 *beacon, u32 frame_size)
  83. {
  84. u16 tim_idx;
  85. struct ieee80211_mgmt *mgmt = (struct ieee80211_mgmt *)beacon;
  86. /*
  87. * The index is relative to frame start but we start looking at the
  88. * variable-length part of the beacon.
  89. */
  90. tim_idx = mgmt->u.beacon.variable - beacon;
  91. /* Parse variable-length elements of beacon to find WLAN_EID_TIM */
  92. while ((tim_idx < (frame_size - 2)) &&
  93. (beacon[tim_idx] != WLAN_EID_TIM))
  94. tim_idx += beacon[tim_idx+1] + 2;
  95. /* If TIM field was found, set variables */
  96. if ((tim_idx < (frame_size - 1)) && (beacon[tim_idx] == WLAN_EID_TIM)) {
  97. tx_beacon_cmd->tim_idx = cpu_to_le16(tim_idx);
  98. tx_beacon_cmd->tim_size = beacon[tim_idx+1];
  99. } else
  100. IWL_WARN(priv, "Unable to find TIM Element in beacon\n");
  101. }
  102. int iwlagn_send_beacon_cmd(struct iwl_priv *priv)
  103. {
  104. struct iwl_tx_beacon_cmd *tx_beacon_cmd;
  105. struct iwl_host_cmd cmd = {
  106. .id = REPLY_TX_BEACON,
  107. .flags = CMD_SYNC,
  108. };
  109. struct ieee80211_tx_info *info;
  110. u32 frame_size;
  111. u32 rate_flags;
  112. u32 rate;
  113. /*
  114. * We have to set up the TX command, the TX Beacon command, and the
  115. * beacon contents.
  116. */
  117. lockdep_assert_held(&priv->mutex);
  118. if (!priv->beacon_ctx) {
  119. IWL_ERR(priv, "trying to build beacon w/o beacon context!\n");
  120. return 0;
  121. }
  122. if (WARN_ON(!priv->beacon_skb))
  123. return -EINVAL;
  124. /* Allocate beacon command */
  125. if (!priv->beacon_cmd)
  126. priv->beacon_cmd = kzalloc(sizeof(*tx_beacon_cmd), GFP_KERNEL);
  127. tx_beacon_cmd = priv->beacon_cmd;
  128. if (!tx_beacon_cmd)
  129. return -ENOMEM;
  130. frame_size = priv->beacon_skb->len;
  131. /* Set up TX command fields */
  132. tx_beacon_cmd->tx.len = cpu_to_le16((u16)frame_size);
  133. tx_beacon_cmd->tx.sta_id = priv->beacon_ctx->bcast_sta_id;
  134. tx_beacon_cmd->tx.stop_time.life_time = TX_CMD_LIFE_TIME_INFINITE;
  135. tx_beacon_cmd->tx.tx_flags = TX_CMD_FLG_SEQ_CTL_MSK |
  136. TX_CMD_FLG_TSF_MSK | TX_CMD_FLG_STA_RATE_MSK;
  137. /* Set up TX beacon command fields */
  138. iwl_set_beacon_tim(priv, tx_beacon_cmd, priv->beacon_skb->data,
  139. frame_size);
  140. /* Set up packet rate and flags */
  141. info = IEEE80211_SKB_CB(priv->beacon_skb);
  142. /*
  143. * Let's set up the rate at least somewhat correctly;
  144. * it will currently not actually be used by the uCode,
  145. * it uses the broadcast station's rate instead.
  146. */
  147. if (info->control.rates[0].idx < 0 ||
  148. info->control.rates[0].flags & IEEE80211_TX_RC_MCS)
  149. rate = 0;
  150. else
  151. rate = info->control.rates[0].idx;
  152. priv->mgmt_tx_ant = iwl_toggle_tx_ant(priv, priv->mgmt_tx_ant,
  153. priv->hw_params.valid_tx_ant);
  154. rate_flags = iwl_ant_idx_to_flags(priv->mgmt_tx_ant);
  155. /* In mac80211, rates for 5 GHz start at 0 */
  156. if (info->band == IEEE80211_BAND_5GHZ)
  157. rate += IWL_FIRST_OFDM_RATE;
  158. else if (rate >= IWL_FIRST_CCK_RATE && rate <= IWL_LAST_CCK_RATE)
  159. rate_flags |= RATE_MCS_CCK_MSK;
  160. tx_beacon_cmd->tx.rate_n_flags =
  161. iwl_hw_set_rate_n_flags(rate, rate_flags);
  162. /* Submit command */
  163. cmd.len[0] = sizeof(*tx_beacon_cmd);
  164. cmd.data[0] = tx_beacon_cmd;
  165. cmd.dataflags[0] = IWL_HCMD_DFL_NOCOPY;
  166. cmd.len[1] = frame_size;
  167. cmd.data[1] = priv->beacon_skb->data;
  168. cmd.dataflags[1] = IWL_HCMD_DFL_NOCOPY;
  169. return iwl_dvm_send_cmd(priv, &cmd);
  170. }
  171. static void iwl_bg_beacon_update(struct work_struct *work)
  172. {
  173. struct iwl_priv *priv =
  174. container_of(work, struct iwl_priv, beacon_update);
  175. struct sk_buff *beacon;
  176. mutex_lock(&priv->mutex);
  177. if (!priv->beacon_ctx) {
  178. IWL_ERR(priv, "updating beacon w/o beacon context!\n");
  179. goto out;
  180. }
  181. if (priv->beacon_ctx->vif->type != NL80211_IFTYPE_AP) {
  182. /*
  183. * The ucode will send beacon notifications even in
  184. * IBSS mode, but we don't want to process them. But
  185. * we need to defer the type check to here due to
  186. * requiring locking around the beacon_ctx access.
  187. */
  188. goto out;
  189. }
  190. /* Pull updated AP beacon from mac80211. will fail if not in AP mode */
  191. beacon = ieee80211_beacon_get(priv->hw, priv->beacon_ctx->vif);
  192. if (!beacon) {
  193. IWL_ERR(priv, "update beacon failed -- keeping old\n");
  194. goto out;
  195. }
  196. /* new beacon skb is allocated every time; dispose previous.*/
  197. dev_kfree_skb(priv->beacon_skb);
  198. priv->beacon_skb = beacon;
  199. iwlagn_send_beacon_cmd(priv);
  200. out:
  201. mutex_unlock(&priv->mutex);
  202. }
  203. static void iwl_bg_bt_runtime_config(struct work_struct *work)
  204. {
  205. struct iwl_priv *priv =
  206. container_of(work, struct iwl_priv, bt_runtime_config);
  207. if (test_bit(STATUS_EXIT_PENDING, &priv->status))
  208. return;
  209. /* dont send host command if rf-kill is on */
  210. if (!iwl_is_ready_rf(priv))
  211. return;
  212. iwlagn_send_advance_bt_config(priv);
  213. }
  214. static void iwl_bg_bt_full_concurrency(struct work_struct *work)
  215. {
  216. struct iwl_priv *priv =
  217. container_of(work, struct iwl_priv, bt_full_concurrency);
  218. struct iwl_rxon_context *ctx;
  219. mutex_lock(&priv->mutex);
  220. if (test_bit(STATUS_EXIT_PENDING, &priv->status))
  221. goto out;
  222. /* dont send host command if rf-kill is on */
  223. if (!iwl_is_ready_rf(priv))
  224. goto out;
  225. IWL_DEBUG_INFO(priv, "BT coex in %s mode\n",
  226. priv->bt_full_concurrent ?
  227. "full concurrency" : "3-wire");
  228. /*
  229. * LQ & RXON updated cmds must be sent before BT Config cmd
  230. * to avoid 3-wire collisions
  231. */
  232. for_each_context(priv, ctx) {
  233. iwlagn_set_rxon_chain(priv, ctx);
  234. iwlagn_commit_rxon(priv, ctx);
  235. }
  236. iwlagn_send_advance_bt_config(priv);
  237. out:
  238. mutex_unlock(&priv->mutex);
  239. }
  240. int iwl_send_statistics_request(struct iwl_priv *priv, u8 flags, bool clear)
  241. {
  242. struct iwl_statistics_cmd statistics_cmd = {
  243. .configuration_flags =
  244. clear ? IWL_STATS_CONF_CLEAR_STATS : 0,
  245. };
  246. if (flags & CMD_ASYNC)
  247. return iwl_dvm_send_cmd_pdu(priv, REPLY_STATISTICS_CMD,
  248. CMD_ASYNC,
  249. sizeof(struct iwl_statistics_cmd),
  250. &statistics_cmd);
  251. else
  252. return iwl_dvm_send_cmd_pdu(priv, REPLY_STATISTICS_CMD,
  253. CMD_SYNC,
  254. sizeof(struct iwl_statistics_cmd),
  255. &statistics_cmd);
  256. }
  257. /**
  258. * iwl_bg_statistics_periodic - Timer callback to queue statistics
  259. *
  260. * This callback is provided in order to send a statistics request.
  261. *
  262. * This timer function is continually reset to execute within
  263. * REG_RECALIB_PERIOD seconds since the last STATISTICS_NOTIFICATION
  264. * was received. We need to ensure we receive the statistics in order
  265. * to update the temperature used for calibrating the TXPOWER.
  266. */
  267. static void iwl_bg_statistics_periodic(unsigned long data)
  268. {
  269. struct iwl_priv *priv = (struct iwl_priv *)data;
  270. if (test_bit(STATUS_EXIT_PENDING, &priv->status))
  271. return;
  272. /* dont send host command if rf-kill is on */
  273. if (!iwl_is_ready_rf(priv))
  274. return;
  275. iwl_send_statistics_request(priv, CMD_ASYNC, false);
  276. }
  277. static void iwl_print_cont_event_trace(struct iwl_priv *priv, u32 base,
  278. u32 start_idx, u32 num_events,
  279. u32 capacity, u32 mode)
  280. {
  281. u32 i;
  282. u32 ptr; /* SRAM byte address of log data */
  283. u32 ev, time, data; /* event log data */
  284. unsigned long reg_flags;
  285. if (mode == 0)
  286. ptr = base + (4 * sizeof(u32)) + (start_idx * 2 * sizeof(u32));
  287. else
  288. ptr = base + (4 * sizeof(u32)) + (start_idx * 3 * sizeof(u32));
  289. /* Make sure device is powered up for SRAM reads */
  290. spin_lock_irqsave(&priv->trans->reg_lock, reg_flags);
  291. if (unlikely(!iwl_grab_nic_access(priv->trans))) {
  292. spin_unlock_irqrestore(&priv->trans->reg_lock, reg_flags);
  293. return;
  294. }
  295. /* Set starting address; reads will auto-increment */
  296. iwl_write32(priv->trans, HBUS_TARG_MEM_RADDR, ptr);
  297. /*
  298. * Refuse to read more than would have fit into the log from
  299. * the current start_idx. This used to happen due to the race
  300. * described below, but now WARN because the code below should
  301. * prevent it from happening here.
  302. */
  303. if (WARN_ON(num_events > capacity - start_idx))
  304. num_events = capacity - start_idx;
  305. /*
  306. * "time" is actually "data" for mode 0 (no timestamp).
  307. * place event id # at far right for easier visual parsing.
  308. */
  309. for (i = 0; i < num_events; i++) {
  310. ev = iwl_read32(priv->trans, HBUS_TARG_MEM_RDAT);
  311. time = iwl_read32(priv->trans, HBUS_TARG_MEM_RDAT);
  312. if (mode == 0) {
  313. trace_iwlwifi_dev_ucode_cont_event(
  314. priv->trans->dev, 0, time, ev);
  315. } else {
  316. data = iwl_read32(priv->trans, HBUS_TARG_MEM_RDAT);
  317. trace_iwlwifi_dev_ucode_cont_event(
  318. priv->trans->dev, time, data, ev);
  319. }
  320. }
  321. /* Allow device to power down */
  322. iwl_release_nic_access(priv->trans);
  323. spin_unlock_irqrestore(&priv->trans->reg_lock, reg_flags);
  324. }
  325. static void iwl_continuous_event_trace(struct iwl_priv *priv)
  326. {
  327. u32 capacity; /* event log capacity in # entries */
  328. struct {
  329. u32 capacity;
  330. u32 mode;
  331. u32 wrap_counter;
  332. u32 write_counter;
  333. } __packed read;
  334. u32 base; /* SRAM byte address of event log header */
  335. u32 mode; /* 0 - no timestamp, 1 - timestamp recorded */
  336. u32 num_wraps; /* # times uCode wrapped to top of log */
  337. u32 next_entry; /* index of next entry to be written by uCode */
  338. base = priv->device_pointers.log_event_table;
  339. if (iwlagn_hw_valid_rtc_data_addr(base)) {
  340. iwl_read_targ_mem_words(priv->trans, base, &read, sizeof(read));
  341. capacity = read.capacity;
  342. mode = read.mode;
  343. num_wraps = read.wrap_counter;
  344. next_entry = read.write_counter;
  345. } else
  346. return;
  347. /*
  348. * Unfortunately, the uCode doesn't use temporary variables.
  349. * Therefore, it can happen that we read next_entry == capacity,
  350. * which really means next_entry == 0.
  351. */
  352. if (unlikely(next_entry == capacity))
  353. next_entry = 0;
  354. /*
  355. * Additionally, the uCode increases the write pointer before
  356. * the wraps counter, so if the write pointer is smaller than
  357. * the old write pointer (wrap occurred) but we read that no
  358. * wrap occurred, we actually read between the next_entry and
  359. * num_wraps update (this does happen in practice!!) -- take
  360. * that into account by increasing num_wraps.
  361. */
  362. if (unlikely(next_entry < priv->event_log.next_entry &&
  363. num_wraps == priv->event_log.num_wraps))
  364. num_wraps++;
  365. if (num_wraps == priv->event_log.num_wraps) {
  366. iwl_print_cont_event_trace(
  367. priv, base, priv->event_log.next_entry,
  368. next_entry - priv->event_log.next_entry,
  369. capacity, mode);
  370. priv->event_log.non_wraps_count++;
  371. } else {
  372. if (num_wraps - priv->event_log.num_wraps > 1)
  373. priv->event_log.wraps_more_count++;
  374. else
  375. priv->event_log.wraps_once_count++;
  376. trace_iwlwifi_dev_ucode_wrap_event(priv->trans->dev,
  377. num_wraps - priv->event_log.num_wraps,
  378. next_entry, priv->event_log.next_entry);
  379. if (next_entry < priv->event_log.next_entry) {
  380. iwl_print_cont_event_trace(
  381. priv, base, priv->event_log.next_entry,
  382. capacity - priv->event_log.next_entry,
  383. capacity, mode);
  384. iwl_print_cont_event_trace(
  385. priv, base, 0, next_entry, capacity, mode);
  386. } else {
  387. iwl_print_cont_event_trace(
  388. priv, base, next_entry,
  389. capacity - next_entry,
  390. capacity, mode);
  391. iwl_print_cont_event_trace(
  392. priv, base, 0, next_entry, capacity, mode);
  393. }
  394. }
  395. priv->event_log.num_wraps = num_wraps;
  396. priv->event_log.next_entry = next_entry;
  397. }
  398. /**
  399. * iwl_bg_ucode_trace - Timer callback to log ucode event
  400. *
  401. * The timer is continually set to execute every
  402. * UCODE_TRACE_PERIOD milliseconds after the last timer expired
  403. * this function is to perform continuous uCode event logging operation
  404. * if enabled
  405. */
  406. static void iwl_bg_ucode_trace(unsigned long data)
  407. {
  408. struct iwl_priv *priv = (struct iwl_priv *)data;
  409. if (test_bit(STATUS_EXIT_PENDING, &priv->status))
  410. return;
  411. if (priv->event_log.ucode_trace) {
  412. iwl_continuous_event_trace(priv);
  413. /* Reschedule the timer to occur in UCODE_TRACE_PERIOD */
  414. mod_timer(&priv->ucode_trace,
  415. jiffies + msecs_to_jiffies(UCODE_TRACE_PERIOD));
  416. }
  417. }
  418. static void iwl_bg_tx_flush(struct work_struct *work)
  419. {
  420. struct iwl_priv *priv =
  421. container_of(work, struct iwl_priv, tx_flush);
  422. if (test_bit(STATUS_EXIT_PENDING, &priv->status))
  423. return;
  424. /* do nothing if rf-kill is on */
  425. if (!iwl_is_ready_rf(priv))
  426. return;
  427. IWL_DEBUG_INFO(priv, "device request: flush all tx frames\n");
  428. iwlagn_dev_txfifo_flush(priv, IWL_DROP_ALL);
  429. }
  430. /*
  431. * queue/FIFO/AC mapping definitions
  432. */
  433. #define IWL_TX_FIFO_BK 0 /* shared */
  434. #define IWL_TX_FIFO_BE 1
  435. #define IWL_TX_FIFO_VI 2 /* shared */
  436. #define IWL_TX_FIFO_VO 3
  437. #define IWL_TX_FIFO_BK_IPAN IWL_TX_FIFO_BK
  438. #define IWL_TX_FIFO_BE_IPAN 4
  439. #define IWL_TX_FIFO_VI_IPAN IWL_TX_FIFO_VI
  440. #define IWL_TX_FIFO_VO_IPAN 5
  441. /* re-uses the VO FIFO, uCode will properly flush/schedule */
  442. #define IWL_TX_FIFO_AUX 5
  443. #define IWL_TX_FIFO_UNUSED -1
  444. #define IWLAGN_CMD_FIFO_NUM 7
  445. /*
  446. * This queue number is required for proper operation
  447. * because the ucode will stop/start the scheduler as
  448. * required.
  449. */
  450. #define IWL_IPAN_MCAST_QUEUE 8
  451. static const u8 iwlagn_default_queue_to_tx_fifo[] = {
  452. IWL_TX_FIFO_VO,
  453. IWL_TX_FIFO_VI,
  454. IWL_TX_FIFO_BE,
  455. IWL_TX_FIFO_BK,
  456. IWLAGN_CMD_FIFO_NUM,
  457. };
  458. static const u8 iwlagn_ipan_queue_to_tx_fifo[] = {
  459. IWL_TX_FIFO_VO,
  460. IWL_TX_FIFO_VI,
  461. IWL_TX_FIFO_BE,
  462. IWL_TX_FIFO_BK,
  463. IWL_TX_FIFO_BK_IPAN,
  464. IWL_TX_FIFO_BE_IPAN,
  465. IWL_TX_FIFO_VI_IPAN,
  466. IWL_TX_FIFO_VO_IPAN,
  467. IWL_TX_FIFO_BE_IPAN,
  468. IWLAGN_CMD_FIFO_NUM,
  469. IWL_TX_FIFO_AUX,
  470. };
  471. static const u8 iwlagn_bss_ac_to_fifo[] = {
  472. IWL_TX_FIFO_VO,
  473. IWL_TX_FIFO_VI,
  474. IWL_TX_FIFO_BE,
  475. IWL_TX_FIFO_BK,
  476. };
  477. static const u8 iwlagn_bss_ac_to_queue[] = {
  478. 0, 1, 2, 3,
  479. };
  480. static const u8 iwlagn_pan_ac_to_fifo[] = {
  481. IWL_TX_FIFO_VO_IPAN,
  482. IWL_TX_FIFO_VI_IPAN,
  483. IWL_TX_FIFO_BE_IPAN,
  484. IWL_TX_FIFO_BK_IPAN,
  485. };
  486. static const u8 iwlagn_pan_ac_to_queue[] = {
  487. 7, 6, 5, 4,
  488. };
  489. static const u8 iwlagn_bss_queue_to_ac[] = {
  490. IEEE80211_AC_VO,
  491. IEEE80211_AC_VI,
  492. IEEE80211_AC_BE,
  493. IEEE80211_AC_BK,
  494. };
  495. static const u8 iwlagn_pan_queue_to_ac[] = {
  496. IEEE80211_AC_VO,
  497. IEEE80211_AC_VI,
  498. IEEE80211_AC_BE,
  499. IEEE80211_AC_BK,
  500. IEEE80211_AC_BK,
  501. IEEE80211_AC_BE,
  502. IEEE80211_AC_VI,
  503. IEEE80211_AC_VO,
  504. };
  505. void iwl_init_context(struct iwl_priv *priv, u32 ucode_flags)
  506. {
  507. int i;
  508. /*
  509. * The default context is always valid,
  510. * the PAN context depends on uCode.
  511. */
  512. priv->valid_contexts = BIT(IWL_RXON_CTX_BSS);
  513. if (ucode_flags & IWL_UCODE_TLV_FLAGS_PAN)
  514. priv->valid_contexts |= BIT(IWL_RXON_CTX_PAN);
  515. for (i = 0; i < NUM_IWL_RXON_CTX; i++)
  516. priv->contexts[i].ctxid = i;
  517. priv->contexts[IWL_RXON_CTX_BSS].always_active = true;
  518. priv->contexts[IWL_RXON_CTX_BSS].is_active = true;
  519. priv->contexts[IWL_RXON_CTX_BSS].rxon_cmd = REPLY_RXON;
  520. priv->contexts[IWL_RXON_CTX_BSS].rxon_timing_cmd = REPLY_RXON_TIMING;
  521. priv->contexts[IWL_RXON_CTX_BSS].rxon_assoc_cmd = REPLY_RXON_ASSOC;
  522. priv->contexts[IWL_RXON_CTX_BSS].qos_cmd = REPLY_QOS_PARAM;
  523. priv->contexts[IWL_RXON_CTX_BSS].ap_sta_id = IWL_AP_ID;
  524. priv->contexts[IWL_RXON_CTX_BSS].wep_key_cmd = REPLY_WEPKEY;
  525. priv->contexts[IWL_RXON_CTX_BSS].bcast_sta_id = IWLAGN_BROADCAST_ID;
  526. priv->contexts[IWL_RXON_CTX_BSS].exclusive_interface_modes =
  527. BIT(NL80211_IFTYPE_ADHOC);
  528. priv->contexts[IWL_RXON_CTX_BSS].interface_modes =
  529. BIT(NL80211_IFTYPE_STATION);
  530. priv->contexts[IWL_RXON_CTX_BSS].ap_devtype = RXON_DEV_TYPE_AP;
  531. priv->contexts[IWL_RXON_CTX_BSS].ibss_devtype = RXON_DEV_TYPE_IBSS;
  532. priv->contexts[IWL_RXON_CTX_BSS].station_devtype = RXON_DEV_TYPE_ESS;
  533. priv->contexts[IWL_RXON_CTX_BSS].unused_devtype = RXON_DEV_TYPE_ESS;
  534. memcpy(priv->contexts[IWL_RXON_CTX_BSS].ac_to_queue,
  535. iwlagn_bss_ac_to_queue, sizeof(iwlagn_bss_ac_to_queue));
  536. memcpy(priv->contexts[IWL_RXON_CTX_BSS].ac_to_fifo,
  537. iwlagn_bss_ac_to_fifo, sizeof(iwlagn_bss_ac_to_fifo));
  538. priv->contexts[IWL_RXON_CTX_PAN].rxon_cmd = REPLY_WIPAN_RXON;
  539. priv->contexts[IWL_RXON_CTX_PAN].rxon_timing_cmd =
  540. REPLY_WIPAN_RXON_TIMING;
  541. priv->contexts[IWL_RXON_CTX_PAN].rxon_assoc_cmd =
  542. REPLY_WIPAN_RXON_ASSOC;
  543. priv->contexts[IWL_RXON_CTX_PAN].qos_cmd = REPLY_WIPAN_QOS_PARAM;
  544. priv->contexts[IWL_RXON_CTX_PAN].ap_sta_id = IWL_AP_ID_PAN;
  545. priv->contexts[IWL_RXON_CTX_PAN].wep_key_cmd = REPLY_WIPAN_WEPKEY;
  546. priv->contexts[IWL_RXON_CTX_PAN].bcast_sta_id = IWLAGN_PAN_BCAST_ID;
  547. priv->contexts[IWL_RXON_CTX_PAN].station_flags = STA_FLG_PAN_STATION;
  548. priv->contexts[IWL_RXON_CTX_PAN].interface_modes =
  549. BIT(NL80211_IFTYPE_STATION) | BIT(NL80211_IFTYPE_AP);
  550. if (ucode_flags & IWL_UCODE_TLV_FLAGS_P2P)
  551. priv->contexts[IWL_RXON_CTX_PAN].interface_modes |=
  552. BIT(NL80211_IFTYPE_P2P_CLIENT) |
  553. BIT(NL80211_IFTYPE_P2P_GO);
  554. priv->contexts[IWL_RXON_CTX_PAN].ap_devtype = RXON_DEV_TYPE_CP;
  555. priv->contexts[IWL_RXON_CTX_PAN].station_devtype = RXON_DEV_TYPE_2STA;
  556. priv->contexts[IWL_RXON_CTX_PAN].unused_devtype = RXON_DEV_TYPE_P2P;
  557. memcpy(priv->contexts[IWL_RXON_CTX_PAN].ac_to_queue,
  558. iwlagn_pan_ac_to_queue, sizeof(iwlagn_pan_ac_to_queue));
  559. memcpy(priv->contexts[IWL_RXON_CTX_PAN].ac_to_fifo,
  560. iwlagn_pan_ac_to_fifo, sizeof(iwlagn_pan_ac_to_fifo));
  561. priv->contexts[IWL_RXON_CTX_PAN].mcast_queue = IWL_IPAN_MCAST_QUEUE;
  562. BUILD_BUG_ON(NUM_IWL_RXON_CTX != 2);
  563. }
  564. void iwl_rf_kill_ct_config(struct iwl_priv *priv)
  565. {
  566. struct iwl_ct_kill_config cmd;
  567. struct iwl_ct_kill_throttling_config adv_cmd;
  568. int ret = 0;
  569. iwl_write32(priv->trans, CSR_UCODE_DRV_GP1_CLR,
  570. CSR_UCODE_DRV_GP1_REG_BIT_CT_KILL_EXIT);
  571. priv->thermal_throttle.ct_kill_toggle = false;
  572. if (priv->cfg->base_params->support_ct_kill_exit) {
  573. adv_cmd.critical_temperature_enter =
  574. cpu_to_le32(priv->hw_params.ct_kill_threshold);
  575. adv_cmd.critical_temperature_exit =
  576. cpu_to_le32(priv->hw_params.ct_kill_exit_threshold);
  577. ret = iwl_dvm_send_cmd_pdu(priv,
  578. REPLY_CT_KILL_CONFIG_CMD,
  579. CMD_SYNC, sizeof(adv_cmd), &adv_cmd);
  580. if (ret)
  581. IWL_ERR(priv, "REPLY_CT_KILL_CONFIG_CMD failed\n");
  582. else
  583. IWL_DEBUG_INFO(priv, "REPLY_CT_KILL_CONFIG_CMD "
  584. "succeeded, critical temperature enter is %d,"
  585. "exit is %d\n",
  586. priv->hw_params.ct_kill_threshold,
  587. priv->hw_params.ct_kill_exit_threshold);
  588. } else {
  589. cmd.critical_temperature_R =
  590. cpu_to_le32(priv->hw_params.ct_kill_threshold);
  591. ret = iwl_dvm_send_cmd_pdu(priv,
  592. REPLY_CT_KILL_CONFIG_CMD,
  593. CMD_SYNC, sizeof(cmd), &cmd);
  594. if (ret)
  595. IWL_ERR(priv, "REPLY_CT_KILL_CONFIG_CMD failed\n");
  596. else
  597. IWL_DEBUG_INFO(priv, "REPLY_CT_KILL_CONFIG_CMD "
  598. "succeeded, "
  599. "critical temperature is %d\n",
  600. priv->hw_params.ct_kill_threshold);
  601. }
  602. }
  603. static int iwlagn_send_calib_cfg_rt(struct iwl_priv *priv, u32 cfg)
  604. {
  605. struct iwl_calib_cfg_cmd calib_cfg_cmd;
  606. struct iwl_host_cmd cmd = {
  607. .id = CALIBRATION_CFG_CMD,
  608. .len = { sizeof(struct iwl_calib_cfg_cmd), },
  609. .data = { &calib_cfg_cmd, },
  610. };
  611. memset(&calib_cfg_cmd, 0, sizeof(calib_cfg_cmd));
  612. calib_cfg_cmd.ucd_calib_cfg.once.is_enable = IWL_CALIB_RT_CFG_ALL;
  613. calib_cfg_cmd.ucd_calib_cfg.once.start = cpu_to_le32(cfg);
  614. return iwl_dvm_send_cmd(priv, &cmd);
  615. }
  616. static int iwlagn_send_tx_ant_config(struct iwl_priv *priv, u8 valid_tx_ant)
  617. {
  618. struct iwl_tx_ant_config_cmd tx_ant_cmd = {
  619. .valid = cpu_to_le32(valid_tx_ant),
  620. };
  621. if (IWL_UCODE_API(priv->fw->ucode_ver) > 1) {
  622. IWL_DEBUG_HC(priv, "select valid tx ant: %u\n", valid_tx_ant);
  623. return iwl_dvm_send_cmd_pdu(priv,
  624. TX_ANT_CONFIGURATION_CMD,
  625. CMD_SYNC,
  626. sizeof(struct iwl_tx_ant_config_cmd),
  627. &tx_ant_cmd);
  628. } else {
  629. IWL_DEBUG_HC(priv, "TX_ANT_CONFIGURATION_CMD not supported\n");
  630. return -EOPNOTSUPP;
  631. }
  632. }
  633. void iwl_send_bt_config(struct iwl_priv *priv)
  634. {
  635. struct iwl_bt_cmd bt_cmd = {
  636. .lead_time = BT_LEAD_TIME_DEF,
  637. .max_kill = BT_MAX_KILL_DEF,
  638. .kill_ack_mask = 0,
  639. .kill_cts_mask = 0,
  640. };
  641. if (!iwlagn_mod_params.bt_coex_active)
  642. bt_cmd.flags = BT_COEX_DISABLE;
  643. else
  644. bt_cmd.flags = BT_COEX_ENABLE;
  645. priv->bt_enable_flag = bt_cmd.flags;
  646. IWL_DEBUG_INFO(priv, "BT coex %s\n",
  647. (bt_cmd.flags == BT_COEX_DISABLE) ? "disable" : "active");
  648. if (iwl_dvm_send_cmd_pdu(priv, REPLY_BT_CONFIG,
  649. CMD_SYNC, sizeof(struct iwl_bt_cmd), &bt_cmd))
  650. IWL_ERR(priv, "failed to send BT Coex Config\n");
  651. }
  652. /**
  653. * iwl_alive_start - called after REPLY_ALIVE notification received
  654. * from protocol/runtime uCode (initialization uCode's
  655. * Alive gets handled by iwl_init_alive_start()).
  656. */
  657. int iwl_alive_start(struct iwl_priv *priv)
  658. {
  659. int ret = 0;
  660. struct iwl_rxon_context *ctx = &priv->contexts[IWL_RXON_CTX_BSS];
  661. IWL_DEBUG_INFO(priv, "Runtime Alive received.\n");
  662. /* After the ALIVE response, we can send host commands to the uCode */
  663. set_bit(STATUS_ALIVE, &priv->status);
  664. if (iwl_is_rfkill(priv))
  665. return -ERFKILL;
  666. if (priv->event_log.ucode_trace) {
  667. /* start collecting data now */
  668. mod_timer(&priv->ucode_trace, jiffies);
  669. }
  670. /* download priority table before any calibration request */
  671. if (priv->cfg->bt_params &&
  672. priv->cfg->bt_params->advanced_bt_coexist) {
  673. /* Configure Bluetooth device coexistence support */
  674. if (priv->cfg->bt_params->bt_sco_disable)
  675. priv->bt_enable_pspoll = false;
  676. else
  677. priv->bt_enable_pspoll = true;
  678. priv->bt_valid = IWLAGN_BT_ALL_VALID_MSK;
  679. priv->kill_ack_mask = IWLAGN_BT_KILL_ACK_MASK_DEFAULT;
  680. priv->kill_cts_mask = IWLAGN_BT_KILL_CTS_MASK_DEFAULT;
  681. iwlagn_send_advance_bt_config(priv);
  682. priv->bt_valid = IWLAGN_BT_VALID_ENABLE_FLAGS;
  683. priv->cur_rssi_ctx = NULL;
  684. iwl_send_prio_tbl(priv);
  685. /* FIXME: w/a to force change uCode BT state machine */
  686. ret = iwl_send_bt_env(priv, IWL_BT_COEX_ENV_OPEN,
  687. BT_COEX_PRIO_TBL_EVT_INIT_CALIB2);
  688. if (ret)
  689. return ret;
  690. ret = iwl_send_bt_env(priv, IWL_BT_COEX_ENV_CLOSE,
  691. BT_COEX_PRIO_TBL_EVT_INIT_CALIB2);
  692. if (ret)
  693. return ret;
  694. } else {
  695. /*
  696. * default is 2-wire BT coexexistence support
  697. */
  698. iwl_send_bt_config(priv);
  699. }
  700. /*
  701. * Perform runtime calibrations, including DC calibration.
  702. */
  703. iwlagn_send_calib_cfg_rt(priv, IWL_CALIB_CFG_DC_IDX);
  704. ieee80211_wake_queues(priv->hw);
  705. /* Configure Tx antenna selection based on H/W config */
  706. iwlagn_send_tx_ant_config(priv, priv->hw_params.valid_tx_ant);
  707. if (iwl_is_associated_ctx(ctx) && !priv->wowlan) {
  708. struct iwl_rxon_cmd *active_rxon =
  709. (struct iwl_rxon_cmd *)&ctx->active;
  710. /* apply any changes in staging */
  711. ctx->staging.filter_flags |= RXON_FILTER_ASSOC_MSK;
  712. active_rxon->filter_flags &= ~RXON_FILTER_ASSOC_MSK;
  713. } else {
  714. struct iwl_rxon_context *tmp;
  715. /* Initialize our rx_config data */
  716. for_each_context(priv, tmp)
  717. iwl_connection_init_rx_config(priv, tmp);
  718. iwlagn_set_rxon_chain(priv, ctx);
  719. }
  720. if (!priv->wowlan) {
  721. /* WoWLAN ucode will not reply in the same way, skip it */
  722. iwl_reset_run_time_calib(priv);
  723. }
  724. set_bit(STATUS_READY, &priv->status);
  725. /* Configure the adapter for unassociated operation */
  726. ret = iwlagn_commit_rxon(priv, ctx);
  727. if (ret)
  728. return ret;
  729. /* At this point, the NIC is initialized and operational */
  730. iwl_rf_kill_ct_config(priv);
  731. IWL_DEBUG_INFO(priv, "ALIVE processing complete.\n");
  732. return iwl_power_update_mode(priv, true);
  733. }
  734. /**
  735. * iwl_clear_driver_stations - clear knowledge of all stations from driver
  736. * @priv: iwl priv struct
  737. *
  738. * This is called during iwl_down() to make sure that in the case
  739. * we're coming there from a hardware restart mac80211 will be
  740. * able to reconfigure stations -- if we're getting there in the
  741. * normal down flow then the stations will already be cleared.
  742. */
  743. static void iwl_clear_driver_stations(struct iwl_priv *priv)
  744. {
  745. struct iwl_rxon_context *ctx;
  746. spin_lock_bh(&priv->sta_lock);
  747. memset(priv->stations, 0, sizeof(priv->stations));
  748. priv->num_stations = 0;
  749. priv->ucode_key_table = 0;
  750. for_each_context(priv, ctx) {
  751. /*
  752. * Remove all key information that is not stored as part
  753. * of station information since mac80211 may not have had
  754. * a chance to remove all the keys. When device is
  755. * reconfigured by mac80211 after an error all keys will
  756. * be reconfigured.
  757. */
  758. memset(ctx->wep_keys, 0, sizeof(ctx->wep_keys));
  759. ctx->key_mapping_keys = 0;
  760. }
  761. spin_unlock_bh(&priv->sta_lock);
  762. }
  763. void iwl_down(struct iwl_priv *priv)
  764. {
  765. int exit_pending;
  766. IWL_DEBUG_INFO(priv, DRV_NAME " is going down\n");
  767. lockdep_assert_held(&priv->mutex);
  768. iwl_scan_cancel_timeout(priv, 200);
  769. /*
  770. * If active, scanning won't cancel it, so say it expired.
  771. * No race since we hold the mutex here and a new one
  772. * can't come in at this time.
  773. */
  774. ieee80211_remain_on_channel_expired(priv->hw);
  775. exit_pending =
  776. test_and_set_bit(STATUS_EXIT_PENDING, &priv->status);
  777. iwl_clear_ucode_stations(priv, NULL);
  778. iwl_dealloc_bcast_stations(priv);
  779. iwl_clear_driver_stations(priv);
  780. /* reset BT coex data */
  781. priv->bt_status = 0;
  782. priv->cur_rssi_ctx = NULL;
  783. priv->bt_is_sco = 0;
  784. if (priv->cfg->bt_params)
  785. priv->bt_traffic_load =
  786. priv->cfg->bt_params->bt_init_traffic_load;
  787. else
  788. priv->bt_traffic_load = 0;
  789. priv->bt_full_concurrent = false;
  790. priv->bt_ci_compliance = 0;
  791. /* Wipe out the EXIT_PENDING status bit if we are not actually
  792. * exiting the module */
  793. if (!exit_pending)
  794. clear_bit(STATUS_EXIT_PENDING, &priv->status);
  795. if (priv->mac80211_registered)
  796. ieee80211_stop_queues(priv->hw);
  797. priv->ucode_loaded = false;
  798. iwl_trans_stop_device(priv->trans);
  799. /* Clear out all status bits but a few that are stable across reset */
  800. priv->status &= test_bit(STATUS_RF_KILL_HW, &priv->status) <<
  801. STATUS_RF_KILL_HW |
  802. test_bit(STATUS_GEO_CONFIGURED, &priv->status) <<
  803. STATUS_GEO_CONFIGURED |
  804. test_bit(STATUS_FW_ERROR, &priv->status) <<
  805. STATUS_FW_ERROR |
  806. test_bit(STATUS_EXIT_PENDING, &priv->status) <<
  807. STATUS_EXIT_PENDING;
  808. dev_kfree_skb(priv->beacon_skb);
  809. priv->beacon_skb = NULL;
  810. }
  811. /*****************************************************************************
  812. *
  813. * Workqueue callbacks
  814. *
  815. *****************************************************************************/
  816. static void iwl_bg_run_time_calib_work(struct work_struct *work)
  817. {
  818. struct iwl_priv *priv = container_of(work, struct iwl_priv,
  819. run_time_calib_work);
  820. mutex_lock(&priv->mutex);
  821. if (test_bit(STATUS_EXIT_PENDING, &priv->status) ||
  822. test_bit(STATUS_SCANNING, &priv->status)) {
  823. mutex_unlock(&priv->mutex);
  824. return;
  825. }
  826. if (priv->start_calib) {
  827. iwl_chain_noise_calibration(priv);
  828. iwl_sensitivity_calibration(priv);
  829. }
  830. mutex_unlock(&priv->mutex);
  831. }
  832. void iwlagn_prepare_restart(struct iwl_priv *priv)
  833. {
  834. struct iwl_rxon_context *ctx;
  835. bool bt_full_concurrent;
  836. u8 bt_ci_compliance;
  837. u8 bt_load;
  838. u8 bt_status;
  839. bool bt_is_sco;
  840. int i;
  841. lockdep_assert_held(&priv->mutex);
  842. for_each_context(priv, ctx)
  843. ctx->vif = NULL;
  844. priv->is_open = 0;
  845. /*
  846. * __iwl_down() will clear the BT status variables,
  847. * which is correct, but when we restart we really
  848. * want to keep them so restore them afterwards.
  849. *
  850. * The restart process will later pick them up and
  851. * re-configure the hw when we reconfigure the BT
  852. * command.
  853. */
  854. bt_full_concurrent = priv->bt_full_concurrent;
  855. bt_ci_compliance = priv->bt_ci_compliance;
  856. bt_load = priv->bt_traffic_load;
  857. bt_status = priv->bt_status;
  858. bt_is_sco = priv->bt_is_sco;
  859. iwl_down(priv);
  860. priv->bt_full_concurrent = bt_full_concurrent;
  861. priv->bt_ci_compliance = bt_ci_compliance;
  862. priv->bt_traffic_load = bt_load;
  863. priv->bt_status = bt_status;
  864. priv->bt_is_sco = bt_is_sco;
  865. /* reset all queues */
  866. for (i = 0; i < IEEE80211_NUM_ACS; i++)
  867. atomic_set(&priv->ac_stop_count[i], 0);
  868. for (i = IWLAGN_FIRST_AMPDU_QUEUE; i < IWL_MAX_HW_QUEUES; i++)
  869. priv->queue_to_ac[i] = IWL_INVALID_AC;
  870. memset(priv->agg_q_alloc, 0, sizeof(priv->agg_q_alloc));
  871. }
  872. static void iwl_bg_restart(struct work_struct *data)
  873. {
  874. struct iwl_priv *priv = container_of(data, struct iwl_priv, restart);
  875. if (test_bit(STATUS_EXIT_PENDING, &priv->status))
  876. return;
  877. if (test_and_clear_bit(STATUS_FW_ERROR, &priv->status)) {
  878. mutex_lock(&priv->mutex);
  879. iwlagn_prepare_restart(priv);
  880. mutex_unlock(&priv->mutex);
  881. iwl_cancel_deferred_work(priv);
  882. ieee80211_restart_hw(priv->hw);
  883. } else {
  884. WARN_ON(1);
  885. }
  886. }
  887. void iwlagn_disable_roc(struct iwl_priv *priv)
  888. {
  889. struct iwl_rxon_context *ctx = &priv->contexts[IWL_RXON_CTX_PAN];
  890. lockdep_assert_held(&priv->mutex);
  891. if (!priv->hw_roc_setup)
  892. return;
  893. ctx->staging.dev_type = RXON_DEV_TYPE_P2P;
  894. ctx->staging.filter_flags &= ~RXON_FILTER_ASSOC_MSK;
  895. priv->hw_roc_channel = NULL;
  896. memset(ctx->staging.node_addr, 0, ETH_ALEN);
  897. iwlagn_commit_rxon(priv, ctx);
  898. ctx->is_active = false;
  899. priv->hw_roc_setup = false;
  900. }
  901. static void iwlagn_disable_roc_work(struct work_struct *work)
  902. {
  903. struct iwl_priv *priv = container_of(work, struct iwl_priv,
  904. hw_roc_disable_work.work);
  905. mutex_lock(&priv->mutex);
  906. iwlagn_disable_roc(priv);
  907. mutex_unlock(&priv->mutex);
  908. }
  909. /*****************************************************************************
  910. *
  911. * driver setup and teardown
  912. *
  913. *****************************************************************************/
  914. void iwl_setup_deferred_work(struct iwl_priv *priv)
  915. {
  916. priv->workqueue = create_singlethread_workqueue(DRV_NAME);
  917. INIT_WORK(&priv->restart, iwl_bg_restart);
  918. INIT_WORK(&priv->beacon_update, iwl_bg_beacon_update);
  919. INIT_WORK(&priv->run_time_calib_work, iwl_bg_run_time_calib_work);
  920. INIT_WORK(&priv->tx_flush, iwl_bg_tx_flush);
  921. INIT_WORK(&priv->bt_full_concurrency, iwl_bg_bt_full_concurrency);
  922. INIT_WORK(&priv->bt_runtime_config, iwl_bg_bt_runtime_config);
  923. INIT_DELAYED_WORK(&priv->hw_roc_disable_work,
  924. iwlagn_disable_roc_work);
  925. iwl_setup_scan_deferred_work(priv);
  926. if (priv->cfg->bt_params)
  927. iwlagn_bt_setup_deferred_work(priv);
  928. init_timer(&priv->statistics_periodic);
  929. priv->statistics_periodic.data = (unsigned long)priv;
  930. priv->statistics_periodic.function = iwl_bg_statistics_periodic;
  931. init_timer(&priv->ucode_trace);
  932. priv->ucode_trace.data = (unsigned long)priv;
  933. priv->ucode_trace.function = iwl_bg_ucode_trace;
  934. }
  935. void iwl_cancel_deferred_work(struct iwl_priv *priv)
  936. {
  937. if (priv->cfg->bt_params)
  938. iwlagn_bt_cancel_deferred_work(priv);
  939. cancel_work_sync(&priv->run_time_calib_work);
  940. cancel_work_sync(&priv->beacon_update);
  941. iwl_cancel_scan_deferred_work(priv);
  942. cancel_work_sync(&priv->bt_full_concurrency);
  943. cancel_work_sync(&priv->bt_runtime_config);
  944. cancel_delayed_work_sync(&priv->hw_roc_disable_work);
  945. del_timer_sync(&priv->statistics_periodic);
  946. del_timer_sync(&priv->ucode_trace);
  947. }
  948. static void iwl_init_hw_rates(struct ieee80211_rate *rates)
  949. {
  950. int i;
  951. for (i = 0; i < IWL_RATE_COUNT_LEGACY; i++) {
  952. rates[i].bitrate = iwl_rates[i].ieee * 5;
  953. rates[i].hw_value = i; /* Rate scaling will work on indexes */
  954. rates[i].hw_value_short = i;
  955. rates[i].flags = 0;
  956. if ((i >= IWL_FIRST_CCK_RATE) && (i <= IWL_LAST_CCK_RATE)) {
  957. /*
  958. * If CCK != 1M then set short preamble rate flag.
  959. */
  960. rates[i].flags |=
  961. (iwl_rates[i].plcp == IWL_RATE_1M_PLCP) ?
  962. 0 : IEEE80211_RATE_SHORT_PREAMBLE;
  963. }
  964. }
  965. }
  966. #define MAX_BIT_RATE_40_MHZ 150 /* Mbps */
  967. #define MAX_BIT_RATE_20_MHZ 72 /* Mbps */
  968. static void iwl_init_ht_hw_capab(const struct iwl_priv *priv,
  969. struct ieee80211_sta_ht_cap *ht_info,
  970. enum ieee80211_band band)
  971. {
  972. u16 max_bit_rate = 0;
  973. u8 rx_chains_num = priv->hw_params.rx_chains_num;
  974. u8 tx_chains_num = priv->hw_params.tx_chains_num;
  975. ht_info->cap = 0;
  976. memset(&ht_info->mcs, 0, sizeof(ht_info->mcs));
  977. ht_info->ht_supported = true;
  978. if (priv->cfg->ht_params &&
  979. priv->cfg->ht_params->ht_greenfield_support)
  980. ht_info->cap |= IEEE80211_HT_CAP_GRN_FLD;
  981. ht_info->cap |= IEEE80211_HT_CAP_SGI_20;
  982. max_bit_rate = MAX_BIT_RATE_20_MHZ;
  983. if (priv->hw_params.ht40_channel & BIT(band)) {
  984. ht_info->cap |= IEEE80211_HT_CAP_SUP_WIDTH_20_40;
  985. ht_info->cap |= IEEE80211_HT_CAP_SGI_40;
  986. ht_info->mcs.rx_mask[4] = 0x01;
  987. max_bit_rate = MAX_BIT_RATE_40_MHZ;
  988. }
  989. if (iwlagn_mod_params.amsdu_size_8K)
  990. ht_info->cap |= IEEE80211_HT_CAP_MAX_AMSDU;
  991. ht_info->ampdu_factor = CFG_HT_RX_AMPDU_FACTOR_DEF;
  992. ht_info->ampdu_density = CFG_HT_MPDU_DENSITY_DEF;
  993. ht_info->mcs.rx_mask[0] = 0xFF;
  994. if (rx_chains_num >= 2)
  995. ht_info->mcs.rx_mask[1] = 0xFF;
  996. if (rx_chains_num >= 3)
  997. ht_info->mcs.rx_mask[2] = 0xFF;
  998. /* Highest supported Rx data rate */
  999. max_bit_rate *= rx_chains_num;
  1000. WARN_ON(max_bit_rate & ~IEEE80211_HT_MCS_RX_HIGHEST_MASK);
  1001. ht_info->mcs.rx_highest = cpu_to_le16(max_bit_rate);
  1002. /* Tx MCS capabilities */
  1003. ht_info->mcs.tx_params = IEEE80211_HT_MCS_TX_DEFINED;
  1004. if (tx_chains_num != rx_chains_num) {
  1005. ht_info->mcs.tx_params |= IEEE80211_HT_MCS_TX_RX_DIFF;
  1006. ht_info->mcs.tx_params |= ((tx_chains_num - 1) <<
  1007. IEEE80211_HT_MCS_TX_MAX_STREAMS_SHIFT);
  1008. }
  1009. }
  1010. /**
  1011. * iwl_init_geos - Initialize mac80211's geo/channel info based from eeprom
  1012. */
  1013. static int iwl_init_geos(struct iwl_priv *priv)
  1014. {
  1015. struct iwl_channel_info *ch;
  1016. struct ieee80211_supported_band *sband;
  1017. struct ieee80211_channel *channels;
  1018. struct ieee80211_channel *geo_ch;
  1019. struct ieee80211_rate *rates;
  1020. int i = 0;
  1021. s8 max_tx_power = IWLAGN_TX_POWER_TARGET_POWER_MIN;
  1022. if (priv->bands[IEEE80211_BAND_2GHZ].n_bitrates ||
  1023. priv->bands[IEEE80211_BAND_5GHZ].n_bitrates) {
  1024. IWL_DEBUG_INFO(priv, "Geography modes already initialized.\n");
  1025. set_bit(STATUS_GEO_CONFIGURED, &priv->status);
  1026. return 0;
  1027. }
  1028. channels = kcalloc(priv->channel_count,
  1029. sizeof(struct ieee80211_channel), GFP_KERNEL);
  1030. if (!channels)
  1031. return -ENOMEM;
  1032. rates = kcalloc(IWL_RATE_COUNT_LEGACY, sizeof(struct ieee80211_rate),
  1033. GFP_KERNEL);
  1034. if (!rates) {
  1035. kfree(channels);
  1036. return -ENOMEM;
  1037. }
  1038. /* 5.2GHz channels start after the 2.4GHz channels */
  1039. sband = &priv->bands[IEEE80211_BAND_5GHZ];
  1040. sband->channels = &channels[ARRAY_SIZE(iwl_eeprom_band_1)];
  1041. /* just OFDM */
  1042. sband->bitrates = &rates[IWL_FIRST_OFDM_RATE];
  1043. sband->n_bitrates = IWL_RATE_COUNT_LEGACY - IWL_FIRST_OFDM_RATE;
  1044. if (priv->hw_params.sku & EEPROM_SKU_CAP_11N_ENABLE)
  1045. iwl_init_ht_hw_capab(priv, &sband->ht_cap,
  1046. IEEE80211_BAND_5GHZ);
  1047. sband = &priv->bands[IEEE80211_BAND_2GHZ];
  1048. sband->channels = channels;
  1049. /* OFDM & CCK */
  1050. sband->bitrates = rates;
  1051. sband->n_bitrates = IWL_RATE_COUNT_LEGACY;
  1052. if (priv->hw_params.sku & EEPROM_SKU_CAP_11N_ENABLE)
  1053. iwl_init_ht_hw_capab(priv, &sband->ht_cap,
  1054. IEEE80211_BAND_2GHZ);
  1055. priv->ieee_channels = channels;
  1056. priv->ieee_rates = rates;
  1057. for (i = 0; i < priv->channel_count; i++) {
  1058. ch = &priv->channel_info[i];
  1059. /* FIXME: might be removed if scan is OK */
  1060. if (!is_channel_valid(ch))
  1061. continue;
  1062. sband = &priv->bands[ch->band];
  1063. geo_ch = &sband->channels[sband->n_channels++];
  1064. geo_ch->center_freq =
  1065. ieee80211_channel_to_frequency(ch->channel, ch->band);
  1066. geo_ch->max_power = ch->max_power_avg;
  1067. geo_ch->max_antenna_gain = 0xff;
  1068. geo_ch->hw_value = ch->channel;
  1069. if (is_channel_valid(ch)) {
  1070. if (!(ch->flags & EEPROM_CHANNEL_IBSS))
  1071. geo_ch->flags |= IEEE80211_CHAN_NO_IBSS;
  1072. if (!(ch->flags & EEPROM_CHANNEL_ACTIVE))
  1073. geo_ch->flags |= IEEE80211_CHAN_PASSIVE_SCAN;
  1074. if (ch->flags & EEPROM_CHANNEL_RADAR)
  1075. geo_ch->flags |= IEEE80211_CHAN_RADAR;
  1076. geo_ch->flags |= ch->ht40_extension_channel;
  1077. if (ch->max_power_avg > max_tx_power)
  1078. max_tx_power = ch->max_power_avg;
  1079. } else {
  1080. geo_ch->flags |= IEEE80211_CHAN_DISABLED;
  1081. }
  1082. IWL_DEBUG_INFO(priv, "Channel %d Freq=%d[%sGHz] %s flag=0x%X\n",
  1083. ch->channel, geo_ch->center_freq,
  1084. is_channel_a_band(ch) ? "5.2" : "2.4",
  1085. geo_ch->flags & IEEE80211_CHAN_DISABLED ?
  1086. "restricted" : "valid",
  1087. geo_ch->flags);
  1088. }
  1089. priv->tx_power_device_lmt = max_tx_power;
  1090. priv->tx_power_user_lmt = max_tx_power;
  1091. priv->tx_power_next = max_tx_power;
  1092. if ((priv->bands[IEEE80211_BAND_5GHZ].n_channels == 0) &&
  1093. priv->hw_params.sku & EEPROM_SKU_CAP_BAND_52GHZ) {
  1094. IWL_INFO(priv, "Incorrectly detected BG card as ABG. "
  1095. "Please send your %s to maintainer.\n",
  1096. priv->trans->hw_id_str);
  1097. priv->hw_params.sku &= ~EEPROM_SKU_CAP_BAND_52GHZ;
  1098. }
  1099. IWL_INFO(priv, "Tunable channels: %d 802.11bg, %d 802.11a channels\n",
  1100. priv->bands[IEEE80211_BAND_2GHZ].n_channels,
  1101. priv->bands[IEEE80211_BAND_5GHZ].n_channels);
  1102. set_bit(STATUS_GEO_CONFIGURED, &priv->status);
  1103. return 0;
  1104. }
  1105. /*
  1106. * iwl_free_geos - undo allocations in iwl_init_geos
  1107. */
  1108. static void iwl_free_geos(struct iwl_priv *priv)
  1109. {
  1110. kfree(priv->ieee_channels);
  1111. kfree(priv->ieee_rates);
  1112. clear_bit(STATUS_GEO_CONFIGURED, &priv->status);
  1113. }
  1114. int iwl_init_drv(struct iwl_priv *priv)
  1115. {
  1116. int ret;
  1117. spin_lock_init(&priv->sta_lock);
  1118. mutex_init(&priv->mutex);
  1119. INIT_LIST_HEAD(&priv->calib_results);
  1120. priv->ieee_channels = NULL;
  1121. priv->ieee_rates = NULL;
  1122. priv->band = IEEE80211_BAND_2GHZ;
  1123. priv->plcp_delta_threshold =
  1124. priv->cfg->base_params->plcp_delta_threshold;
  1125. priv->iw_mode = NL80211_IFTYPE_STATION;
  1126. priv->current_ht_config.smps = IEEE80211_SMPS_STATIC;
  1127. priv->missed_beacon_threshold = IWL_MISSED_BEACON_THRESHOLD_DEF;
  1128. priv->agg_tids_count = 0;
  1129. priv->ucode_owner = IWL_OWNERSHIP_DRIVER;
  1130. priv->rx_statistics_jiffies = jiffies;
  1131. /* Choose which receivers/antennas to use */
  1132. iwlagn_set_rxon_chain(priv, &priv->contexts[IWL_RXON_CTX_BSS]);
  1133. iwl_init_scan_params(priv);
  1134. /* init bt coex */
  1135. if (priv->cfg->bt_params &&
  1136. priv->cfg->bt_params->advanced_bt_coexist) {
  1137. priv->kill_ack_mask = IWLAGN_BT_KILL_ACK_MASK_DEFAULT;
  1138. priv->kill_cts_mask = IWLAGN_BT_KILL_CTS_MASK_DEFAULT;
  1139. priv->bt_valid = IWLAGN_BT_ALL_VALID_MSK;
  1140. priv->bt_on_thresh = BT_ON_THRESHOLD_DEF;
  1141. priv->bt_duration = BT_DURATION_LIMIT_DEF;
  1142. priv->dynamic_frag_thresh = BT_FRAG_THRESHOLD_DEF;
  1143. }
  1144. ret = iwl_init_channel_map(priv);
  1145. if (ret) {
  1146. IWL_ERR(priv, "initializing regulatory failed: %d\n", ret);
  1147. goto err;
  1148. }
  1149. ret = iwl_init_geos(priv);
  1150. if (ret) {
  1151. IWL_ERR(priv, "initializing geos failed: %d\n", ret);
  1152. goto err_free_channel_map;
  1153. }
  1154. iwl_init_hw_rates(priv->ieee_rates);
  1155. return 0;
  1156. err_free_channel_map:
  1157. iwl_free_channel_map(priv);
  1158. err:
  1159. return ret;
  1160. }
  1161. void iwl_uninit_drv(struct iwl_priv *priv)
  1162. {
  1163. iwl_free_geos(priv);
  1164. iwl_free_channel_map(priv);
  1165. kfree(priv->scan_cmd);
  1166. kfree(priv->beacon_cmd);
  1167. kfree(rcu_dereference_raw(priv->noa_data));
  1168. iwl_calib_free_results(priv);
  1169. #ifdef CONFIG_IWLWIFI_DEBUGFS
  1170. kfree(priv->wowlan_sram);
  1171. #endif
  1172. }
  1173. void iwl_set_hw_params(struct iwl_priv *priv)
  1174. {
  1175. if (priv->cfg->ht_params)
  1176. priv->hw_params.use_rts_for_aggregation =
  1177. priv->cfg->ht_params->use_rts_for_aggregation;
  1178. if (iwlagn_mod_params.disable_11n & IWL_DISABLE_HT_ALL)
  1179. priv->hw_params.sku &= ~EEPROM_SKU_CAP_11N_ENABLE;
  1180. /* Device-specific setup */
  1181. priv->lib->set_hw_params(priv);
  1182. }
  1183. void iwl_debug_config(struct iwl_priv *priv)
  1184. {
  1185. dev_printk(KERN_INFO, priv->trans->dev, "CONFIG_IWLWIFI_DEBUG "
  1186. #ifdef CONFIG_IWLWIFI_DEBUG
  1187. "enabled\n");
  1188. #else
  1189. "disabled\n");
  1190. #endif
  1191. dev_printk(KERN_INFO, priv->trans->dev, "CONFIG_IWLWIFI_DEBUGFS "
  1192. #ifdef CONFIG_IWLWIFI_DEBUGFS
  1193. "enabled\n");
  1194. #else
  1195. "disabled\n");
  1196. #endif
  1197. dev_printk(KERN_INFO, priv->trans->dev, "CONFIG_IWLWIFI_DEVICE_TRACING "
  1198. #ifdef CONFIG_IWLWIFI_DEVICE_TRACING
  1199. "enabled\n");
  1200. #else
  1201. "disabled\n");
  1202. #endif
  1203. dev_printk(KERN_INFO, priv->trans->dev, "CONFIG_IWLWIFI_DEVICE_TESTMODE "
  1204. #ifdef CONFIG_IWLWIFI_DEVICE_TESTMODE
  1205. "enabled\n");
  1206. #else
  1207. "disabled\n");
  1208. #endif
  1209. dev_printk(KERN_INFO, priv->trans->dev, "CONFIG_IWLWIFI_P2P "
  1210. #ifdef CONFIG_IWLWIFI_P2P
  1211. "enabled\n");
  1212. #else
  1213. "disabled\n");
  1214. #endif
  1215. }
  1216. static struct iwl_op_mode *iwl_op_mode_dvm_start(struct iwl_trans *trans,
  1217. const struct iwl_cfg *cfg,
  1218. const struct iwl_fw *fw)
  1219. {
  1220. struct iwl_priv *priv;
  1221. struct ieee80211_hw *hw;
  1222. struct iwl_op_mode *op_mode;
  1223. u16 num_mac;
  1224. u32 ucode_flags;
  1225. struct iwl_trans_config trans_cfg;
  1226. static const u8 no_reclaim_cmds[] = {
  1227. REPLY_RX_PHY_CMD,
  1228. REPLY_RX,
  1229. REPLY_RX_MPDU_CMD,
  1230. REPLY_COMPRESSED_BA,
  1231. STATISTICS_NOTIFICATION,
  1232. REPLY_TX,
  1233. };
  1234. const u8 *q_to_ac;
  1235. int n_q_to_ac;
  1236. int i;
  1237. /************************
  1238. * 1. Allocating HW data
  1239. ************************/
  1240. hw = iwl_alloc_all();
  1241. if (!hw) {
  1242. pr_err("%s: Cannot allocate network device\n", cfg->name);
  1243. goto out;
  1244. }
  1245. op_mode = hw->priv;
  1246. op_mode->ops = &iwl_dvm_ops;
  1247. priv = IWL_OP_MODE_GET_DVM(op_mode);
  1248. priv->trans = trans;
  1249. priv->dev = trans->dev;
  1250. priv->cfg = cfg;
  1251. priv->fw = fw;
  1252. switch (priv->cfg->device_family) {
  1253. case IWL_DEVICE_FAMILY_1000:
  1254. case IWL_DEVICE_FAMILY_100:
  1255. priv->lib = &iwl1000_lib;
  1256. break;
  1257. case IWL_DEVICE_FAMILY_2000:
  1258. case IWL_DEVICE_FAMILY_105:
  1259. priv->lib = &iwl2000_lib;
  1260. break;
  1261. case IWL_DEVICE_FAMILY_2030:
  1262. case IWL_DEVICE_FAMILY_135:
  1263. priv->lib = &iwl2030_lib;
  1264. break;
  1265. case IWL_DEVICE_FAMILY_5000:
  1266. priv->lib = &iwl5000_lib;
  1267. break;
  1268. case IWL_DEVICE_FAMILY_5150:
  1269. priv->lib = &iwl5150_lib;
  1270. break;
  1271. case IWL_DEVICE_FAMILY_6000:
  1272. case IWL_DEVICE_FAMILY_6005:
  1273. case IWL_DEVICE_FAMILY_6000i:
  1274. case IWL_DEVICE_FAMILY_6050:
  1275. case IWL_DEVICE_FAMILY_6150:
  1276. priv->lib = &iwl6000_lib;
  1277. break;
  1278. case IWL_DEVICE_FAMILY_6030:
  1279. priv->lib = &iwl6030_lib;
  1280. break;
  1281. default:
  1282. break;
  1283. }
  1284. if (WARN_ON(!priv->lib))
  1285. goto out_free_traffic_mem;
  1286. /*
  1287. * Populate the state variables that the transport layer needs
  1288. * to know about.
  1289. */
  1290. trans_cfg.op_mode = op_mode;
  1291. trans_cfg.no_reclaim_cmds = no_reclaim_cmds;
  1292. trans_cfg.n_no_reclaim_cmds = ARRAY_SIZE(no_reclaim_cmds);
  1293. trans_cfg.rx_buf_size_8k = iwlagn_mod_params.amsdu_size_8K;
  1294. if (!iwlagn_mod_params.wd_disable)
  1295. trans_cfg.queue_watchdog_timeout =
  1296. priv->cfg->base_params->wd_timeout;
  1297. else
  1298. trans_cfg.queue_watchdog_timeout = IWL_WATCHHDOG_DISABLED;
  1299. trans_cfg.command_names = iwl_dvm_cmd_strings;
  1300. ucode_flags = fw->ucode_capa.flags;
  1301. #ifndef CONFIG_IWLWIFI_P2P
  1302. ucode_flags &= ~IWL_UCODE_TLV_FLAGS_P2P;
  1303. #endif
  1304. if (ucode_flags & IWL_UCODE_TLV_FLAGS_PAN) {
  1305. priv->sta_key_max_num = STA_KEY_MAX_NUM_PAN;
  1306. trans_cfg.cmd_queue = IWL_IPAN_CMD_QUEUE_NUM;
  1307. trans_cfg.queue_to_fifo = iwlagn_ipan_queue_to_tx_fifo;
  1308. trans_cfg.n_queue_to_fifo =
  1309. ARRAY_SIZE(iwlagn_ipan_queue_to_tx_fifo);
  1310. q_to_ac = iwlagn_pan_queue_to_ac;
  1311. n_q_to_ac = ARRAY_SIZE(iwlagn_pan_queue_to_ac);
  1312. } else {
  1313. priv->sta_key_max_num = STA_KEY_MAX_NUM;
  1314. trans_cfg.cmd_queue = IWL_DEFAULT_CMD_QUEUE_NUM;
  1315. trans_cfg.queue_to_fifo = iwlagn_default_queue_to_tx_fifo;
  1316. trans_cfg.n_queue_to_fifo =
  1317. ARRAY_SIZE(iwlagn_default_queue_to_tx_fifo);
  1318. q_to_ac = iwlagn_bss_queue_to_ac;
  1319. n_q_to_ac = ARRAY_SIZE(iwlagn_bss_queue_to_ac);
  1320. }
  1321. /* Configure transport layer */
  1322. iwl_trans_configure(priv->trans, &trans_cfg);
  1323. /* At this point both hw and priv are allocated. */
  1324. SET_IEEE80211_DEV(priv->hw, priv->trans->dev);
  1325. /* show what debugging capabilities we have */
  1326. iwl_debug_config(priv);
  1327. IWL_DEBUG_INFO(priv, "*** LOAD DRIVER ***\n");
  1328. /* is antenna coupling more than 35dB ? */
  1329. priv->bt_ant_couple_ok =
  1330. (iwlagn_mod_params.ant_coupling >
  1331. IWL_BT_ANTENNA_COUPLING_THRESHOLD) ?
  1332. true : false;
  1333. /* enable/disable bt channel inhibition */
  1334. priv->bt_ch_announce = iwlagn_mod_params.bt_ch_announce;
  1335. IWL_DEBUG_INFO(priv, "BT channel inhibition is %s\n",
  1336. (priv->bt_ch_announce) ? "On" : "Off");
  1337. if (iwl_alloc_traffic_mem(priv))
  1338. IWL_ERR(priv, "Not enough memory to generate traffic log\n");
  1339. /* these spin locks will be used in apm_ops.init and EEPROM access
  1340. * we should init now
  1341. */
  1342. spin_lock_init(&priv->trans->reg_lock);
  1343. spin_lock_init(&priv->statistics.lock);
  1344. /***********************
  1345. * 2. Read REV register
  1346. ***********************/
  1347. IWL_INFO(priv, "Detected %s, REV=0x%X\n",
  1348. priv->cfg->name, priv->trans->hw_rev);
  1349. if (iwl_trans_start_hw(priv->trans))
  1350. goto out_free_traffic_mem;
  1351. /* Read the EEPROM */
  1352. if (iwl_eeprom_init(priv, priv->trans->hw_rev)) {
  1353. IWL_ERR(priv, "Unable to init EEPROM\n");
  1354. goto out_free_traffic_mem;
  1355. }
  1356. /* Reset chip to save power until we load uCode during "up". */
  1357. iwl_trans_stop_hw(priv->trans, false);
  1358. if (iwl_eeprom_check_version(priv))
  1359. goto out_free_eeprom;
  1360. if (iwl_eeprom_init_hw_params(priv))
  1361. goto out_free_eeprom;
  1362. /* extract MAC Address */
  1363. iwl_eeprom_get_mac(priv, priv->addresses[0].addr);
  1364. IWL_DEBUG_INFO(priv, "MAC address: %pM\n", priv->addresses[0].addr);
  1365. priv->hw->wiphy->addresses = priv->addresses;
  1366. priv->hw->wiphy->n_addresses = 1;
  1367. num_mac = iwl_eeprom_query16(priv, EEPROM_NUM_MAC_ADDRESS);
  1368. if (num_mac > 1) {
  1369. memcpy(priv->addresses[1].addr, priv->addresses[0].addr,
  1370. ETH_ALEN);
  1371. priv->addresses[1].addr[5]++;
  1372. priv->hw->wiphy->n_addresses++;
  1373. }
  1374. /************************
  1375. * 4. Setup HW constants
  1376. ************************/
  1377. iwl_set_hw_params(priv);
  1378. if (!(priv->hw_params.sku & EEPROM_SKU_CAP_IPAN_ENABLE)) {
  1379. IWL_DEBUG_INFO(priv, "Your EEPROM disabled PAN");
  1380. ucode_flags &= ~IWL_UCODE_TLV_FLAGS_PAN;
  1381. /*
  1382. * if not PAN, then don't support P2P -- might be a uCode
  1383. * packaging bug or due to the eeprom check above
  1384. */
  1385. ucode_flags &= ~IWL_UCODE_TLV_FLAGS_P2P;
  1386. priv->sta_key_max_num = STA_KEY_MAX_NUM;
  1387. trans_cfg.cmd_queue = IWL_DEFAULT_CMD_QUEUE_NUM;
  1388. trans_cfg.queue_to_fifo = iwlagn_default_queue_to_tx_fifo;
  1389. trans_cfg.n_queue_to_fifo =
  1390. ARRAY_SIZE(iwlagn_default_queue_to_tx_fifo);
  1391. q_to_ac = iwlagn_bss_queue_to_ac;
  1392. n_q_to_ac = ARRAY_SIZE(iwlagn_bss_queue_to_ac);
  1393. /* Configure transport layer again*/
  1394. iwl_trans_configure(priv->trans, &trans_cfg);
  1395. }
  1396. /*******************
  1397. * 5. Setup priv
  1398. *******************/
  1399. for (i = 0; i < IEEE80211_NUM_ACS; i++)
  1400. atomic_set(&priv->ac_stop_count[i], 0);
  1401. for (i = 0; i < IWL_MAX_HW_QUEUES; i++) {
  1402. if (i < n_q_to_ac)
  1403. priv->queue_to_ac[i] = q_to_ac[i];
  1404. else
  1405. priv->queue_to_ac[i] = IWL_INVALID_AC;
  1406. }
  1407. WARN_ON(trans_cfg.queue_to_fifo[trans_cfg.cmd_queue] !=
  1408. IWLAGN_CMD_FIFO_NUM);
  1409. if (iwl_init_drv(priv))
  1410. goto out_free_eeprom;
  1411. /* At this point both hw and priv are initialized. */
  1412. /********************
  1413. * 6. Setup services
  1414. ********************/
  1415. iwl_setup_deferred_work(priv);
  1416. iwl_setup_rx_handlers(priv);
  1417. iwl_testmode_init(priv);
  1418. iwl_power_initialize(priv);
  1419. iwl_tt_initialize(priv);
  1420. snprintf(priv->hw->wiphy->fw_version,
  1421. sizeof(priv->hw->wiphy->fw_version),
  1422. "%s", fw->fw_version);
  1423. priv->new_scan_threshold_behaviour =
  1424. !!(ucode_flags & IWL_UCODE_TLV_FLAGS_NEWSCAN);
  1425. priv->phy_calib_chain_noise_reset_cmd =
  1426. fw->ucode_capa.standard_phy_calibration_size;
  1427. priv->phy_calib_chain_noise_gain_cmd =
  1428. fw->ucode_capa.standard_phy_calibration_size + 1;
  1429. /* initialize all valid contexts */
  1430. iwl_init_context(priv, ucode_flags);
  1431. /**************************************************
  1432. * This is still part of probe() in a sense...
  1433. *
  1434. * 7. Setup and register with mac80211 and debugfs
  1435. **************************************************/
  1436. if (iwlagn_mac_setup_register(priv, &fw->ucode_capa))
  1437. goto out_destroy_workqueue;
  1438. if (iwl_dbgfs_register(priv, DRV_NAME))
  1439. IWL_ERR(priv,
  1440. "failed to create debugfs files. Ignoring error\n");
  1441. return op_mode;
  1442. out_destroy_workqueue:
  1443. destroy_workqueue(priv->workqueue);
  1444. priv->workqueue = NULL;
  1445. iwl_uninit_drv(priv);
  1446. out_free_eeprom:
  1447. iwl_eeprom_free(priv);
  1448. out_free_traffic_mem:
  1449. iwl_free_traffic_mem(priv);
  1450. ieee80211_free_hw(priv->hw);
  1451. out:
  1452. op_mode = NULL;
  1453. return op_mode;
  1454. }
  1455. void iwl_op_mode_dvm_stop(struct iwl_op_mode *op_mode)
  1456. {
  1457. struct iwl_priv *priv = IWL_OP_MODE_GET_DVM(op_mode);
  1458. IWL_DEBUG_INFO(priv, "*** UNLOAD DRIVER ***\n");
  1459. iwl_dbgfs_unregister(priv);
  1460. iwl_testmode_cleanup(priv);
  1461. iwlagn_mac_unregister(priv);
  1462. iwl_tt_exit(priv);
  1463. /*This will stop the queues, move the device to low power state */
  1464. priv->ucode_loaded = false;
  1465. iwl_trans_stop_device(priv->trans);
  1466. iwl_eeprom_free(priv);
  1467. /*netif_stop_queue(dev); */
  1468. flush_workqueue(priv->workqueue);
  1469. /* ieee80211_unregister_hw calls iwlagn_mac_stop, which flushes
  1470. * priv->workqueue... so we can't take down the workqueue
  1471. * until now... */
  1472. destroy_workqueue(priv->workqueue);
  1473. priv->workqueue = NULL;
  1474. iwl_free_traffic_mem(priv);
  1475. iwl_uninit_drv(priv);
  1476. dev_kfree_skb(priv->beacon_skb);
  1477. iwl_trans_stop_hw(priv->trans, true);
  1478. ieee80211_free_hw(priv->hw);
  1479. }
  1480. static const char * const desc_lookup_text[] = {
  1481. "OK",
  1482. "FAIL",
  1483. "BAD_PARAM",
  1484. "BAD_CHECKSUM",
  1485. "NMI_INTERRUPT_WDG",
  1486. "SYSASSERT",
  1487. "FATAL_ERROR",
  1488. "BAD_COMMAND",
  1489. "HW_ERROR_TUNE_LOCK",
  1490. "HW_ERROR_TEMPERATURE",
  1491. "ILLEGAL_CHAN_FREQ",
  1492. "VCC_NOT_STABLE",
  1493. "FH_ERROR",
  1494. "NMI_INTERRUPT_HOST",
  1495. "NMI_INTERRUPT_ACTION_PT",
  1496. "NMI_INTERRUPT_UNKNOWN",
  1497. "UCODE_VERSION_MISMATCH",
  1498. "HW_ERROR_ABS_LOCK",
  1499. "HW_ERROR_CAL_LOCK_FAIL",
  1500. "NMI_INTERRUPT_INST_ACTION_PT",
  1501. "NMI_INTERRUPT_DATA_ACTION_PT",
  1502. "NMI_TRM_HW_ER",
  1503. "NMI_INTERRUPT_TRM",
  1504. "NMI_INTERRUPT_BREAK_POINT",
  1505. "DEBUG_0",
  1506. "DEBUG_1",
  1507. "DEBUG_2",
  1508. "DEBUG_3",
  1509. };
  1510. static struct { char *name; u8 num; } advanced_lookup[] = {
  1511. { "NMI_INTERRUPT_WDG", 0x34 },
  1512. { "SYSASSERT", 0x35 },
  1513. { "UCODE_VERSION_MISMATCH", 0x37 },
  1514. { "BAD_COMMAND", 0x38 },
  1515. { "NMI_INTERRUPT_DATA_ACTION_PT", 0x3C },
  1516. { "FATAL_ERROR", 0x3D },
  1517. { "NMI_TRM_HW_ERR", 0x46 },
  1518. { "NMI_INTERRUPT_TRM", 0x4C },
  1519. { "NMI_INTERRUPT_BREAK_POINT", 0x54 },
  1520. { "NMI_INTERRUPT_WDG_RXF_FULL", 0x5C },
  1521. { "NMI_INTERRUPT_WDG_NO_RBD_RXF_FULL", 0x64 },
  1522. { "NMI_INTERRUPT_HOST", 0x66 },
  1523. { "NMI_INTERRUPT_ACTION_PT", 0x7C },
  1524. { "NMI_INTERRUPT_UNKNOWN", 0x84 },
  1525. { "NMI_INTERRUPT_INST_ACTION_PT", 0x86 },
  1526. { "ADVANCED_SYSASSERT", 0 },
  1527. };
  1528. static const char *desc_lookup(u32 num)
  1529. {
  1530. int i;
  1531. int max = ARRAY_SIZE(desc_lookup_text);
  1532. if (num < max)
  1533. return desc_lookup_text[num];
  1534. max = ARRAY_SIZE(advanced_lookup) - 1;
  1535. for (i = 0; i < max; i++) {
  1536. if (advanced_lookup[i].num == num)
  1537. break;
  1538. }
  1539. return advanced_lookup[i].name;
  1540. }
  1541. #define ERROR_START_OFFSET (1 * sizeof(u32))
  1542. #define ERROR_ELEM_SIZE (7 * sizeof(u32))
  1543. static void iwl_dump_nic_error_log(struct iwl_priv *priv)
  1544. {
  1545. struct iwl_trans *trans = priv->trans;
  1546. u32 base;
  1547. struct iwl_error_event_table table;
  1548. base = priv->device_pointers.error_event_table;
  1549. if (priv->cur_ucode == IWL_UCODE_INIT) {
  1550. if (!base)
  1551. base = priv->fw->init_errlog_ptr;
  1552. } else {
  1553. if (!base)
  1554. base = priv->fw->inst_errlog_ptr;
  1555. }
  1556. if (!iwlagn_hw_valid_rtc_data_addr(base)) {
  1557. IWL_ERR(priv,
  1558. "Not valid error log pointer 0x%08X for %s uCode\n",
  1559. base,
  1560. (priv->cur_ucode == IWL_UCODE_INIT)
  1561. ? "Init" : "RT");
  1562. return;
  1563. }
  1564. /*TODO: Update dbgfs with ISR error stats obtained below */
  1565. iwl_read_targ_mem_words(trans, base, &table, sizeof(table));
  1566. if (ERROR_START_OFFSET <= table.valid * ERROR_ELEM_SIZE) {
  1567. IWL_ERR(trans, "Start IWL Error Log Dump:\n");
  1568. IWL_ERR(trans, "Status: 0x%08lX, count: %d\n",
  1569. priv->status, table.valid);
  1570. }
  1571. trace_iwlwifi_dev_ucode_error(trans->dev, table.error_id, table.tsf_low,
  1572. table.data1, table.data2, table.line,
  1573. table.blink1, table.blink2, table.ilink1,
  1574. table.ilink2, table.bcon_time, table.gp1,
  1575. table.gp2, table.gp3, table.ucode_ver,
  1576. table.hw_ver, table.brd_ver);
  1577. IWL_ERR(priv, "0x%08X | %-28s\n", table.error_id,
  1578. desc_lookup(table.error_id));
  1579. IWL_ERR(priv, "0x%08X | uPc\n", table.pc);
  1580. IWL_ERR(priv, "0x%08X | branchlink1\n", table.blink1);
  1581. IWL_ERR(priv, "0x%08X | branchlink2\n", table.blink2);
  1582. IWL_ERR(priv, "0x%08X | interruptlink1\n", table.ilink1);
  1583. IWL_ERR(priv, "0x%08X | interruptlink2\n", table.ilink2);
  1584. IWL_ERR(priv, "0x%08X | data1\n", table.data1);
  1585. IWL_ERR(priv, "0x%08X | data2\n", table.data2);
  1586. IWL_ERR(priv, "0x%08X | line\n", table.line);
  1587. IWL_ERR(priv, "0x%08X | beacon time\n", table.bcon_time);
  1588. IWL_ERR(priv, "0x%08X | tsf low\n", table.tsf_low);
  1589. IWL_ERR(priv, "0x%08X | tsf hi\n", table.tsf_hi);
  1590. IWL_ERR(priv, "0x%08X | time gp1\n", table.gp1);
  1591. IWL_ERR(priv, "0x%08X | time gp2\n", table.gp2);
  1592. IWL_ERR(priv, "0x%08X | time gp3\n", table.gp3);
  1593. IWL_ERR(priv, "0x%08X | uCode version\n", table.ucode_ver);
  1594. IWL_ERR(priv, "0x%08X | hw version\n", table.hw_ver);
  1595. IWL_ERR(priv, "0x%08X | board version\n", table.brd_ver);
  1596. IWL_ERR(priv, "0x%08X | hcmd\n", table.hcmd);
  1597. IWL_ERR(priv, "0x%08X | isr0\n", table.isr0);
  1598. IWL_ERR(priv, "0x%08X | isr1\n", table.isr1);
  1599. IWL_ERR(priv, "0x%08X | isr2\n", table.isr2);
  1600. IWL_ERR(priv, "0x%08X | isr3\n", table.isr3);
  1601. IWL_ERR(priv, "0x%08X | isr4\n", table.isr4);
  1602. IWL_ERR(priv, "0x%08X | isr_pref\n", table.isr_pref);
  1603. IWL_ERR(priv, "0x%08X | wait_event\n", table.wait_event);
  1604. IWL_ERR(priv, "0x%08X | l2p_control\n", table.l2p_control);
  1605. IWL_ERR(priv, "0x%08X | l2p_duration\n", table.l2p_duration);
  1606. IWL_ERR(priv, "0x%08X | l2p_mhvalid\n", table.l2p_mhvalid);
  1607. IWL_ERR(priv, "0x%08X | l2p_addr_match\n", table.l2p_addr_match);
  1608. IWL_ERR(priv, "0x%08X | lmpm_pmg_sel\n", table.lmpm_pmg_sel);
  1609. IWL_ERR(priv, "0x%08X | timestamp\n", table.u_timestamp);
  1610. IWL_ERR(priv, "0x%08X | flow_handler\n", table.flow_handler);
  1611. }
  1612. #define EVENT_START_OFFSET (4 * sizeof(u32))
  1613. /**
  1614. * iwl_print_event_log - Dump error event log to syslog
  1615. *
  1616. */
  1617. static int iwl_print_event_log(struct iwl_priv *priv, u32 start_idx,
  1618. u32 num_events, u32 mode,
  1619. int pos, char **buf, size_t bufsz)
  1620. {
  1621. u32 i;
  1622. u32 base; /* SRAM byte address of event log header */
  1623. u32 event_size; /* 2 u32s, or 3 u32s if timestamp recorded */
  1624. u32 ptr; /* SRAM byte address of log data */
  1625. u32 ev, time, data; /* event log data */
  1626. unsigned long reg_flags;
  1627. struct iwl_trans *trans = priv->trans;
  1628. if (num_events == 0)
  1629. return pos;
  1630. base = priv->device_pointers.log_event_table;
  1631. if (priv->cur_ucode == IWL_UCODE_INIT) {
  1632. if (!base)
  1633. base = priv->fw->init_evtlog_ptr;
  1634. } else {
  1635. if (!base)
  1636. base = priv->fw->inst_evtlog_ptr;
  1637. }
  1638. if (mode == 0)
  1639. event_size = 2 * sizeof(u32);
  1640. else
  1641. event_size = 3 * sizeof(u32);
  1642. ptr = base + EVENT_START_OFFSET + (start_idx * event_size);
  1643. /* Make sure device is powered up for SRAM reads */
  1644. spin_lock_irqsave(&trans->reg_lock, reg_flags);
  1645. if (unlikely(!iwl_grab_nic_access(trans)))
  1646. goto out_unlock;
  1647. /* Set starting address; reads will auto-increment */
  1648. iwl_write32(trans, HBUS_TARG_MEM_RADDR, ptr);
  1649. /* "time" is actually "data" for mode 0 (no timestamp).
  1650. * place event id # at far right for easier visual parsing. */
  1651. for (i = 0; i < num_events; i++) {
  1652. ev = iwl_read32(trans, HBUS_TARG_MEM_RDAT);
  1653. time = iwl_read32(trans, HBUS_TARG_MEM_RDAT);
  1654. if (mode == 0) {
  1655. /* data, ev */
  1656. if (bufsz) {
  1657. pos += scnprintf(*buf + pos, bufsz - pos,
  1658. "EVT_LOG:0x%08x:%04u\n",
  1659. time, ev);
  1660. } else {
  1661. trace_iwlwifi_dev_ucode_event(trans->dev, 0,
  1662. time, ev);
  1663. IWL_ERR(priv, "EVT_LOG:0x%08x:%04u\n",
  1664. time, ev);
  1665. }
  1666. } else {
  1667. data = iwl_read32(trans, HBUS_TARG_MEM_RDAT);
  1668. if (bufsz) {
  1669. pos += scnprintf(*buf + pos, bufsz - pos,
  1670. "EVT_LOGT:%010u:0x%08x:%04u\n",
  1671. time, data, ev);
  1672. } else {
  1673. IWL_ERR(priv, "EVT_LOGT:%010u:0x%08x:%04u\n",
  1674. time, data, ev);
  1675. trace_iwlwifi_dev_ucode_event(trans->dev, time,
  1676. data, ev);
  1677. }
  1678. }
  1679. }
  1680. /* Allow device to power down */
  1681. iwl_release_nic_access(trans);
  1682. out_unlock:
  1683. spin_unlock_irqrestore(&trans->reg_lock, reg_flags);
  1684. return pos;
  1685. }
  1686. /**
  1687. * iwl_print_last_event_logs - Dump the newest # of event log to syslog
  1688. */
  1689. static int iwl_print_last_event_logs(struct iwl_priv *priv, u32 capacity,
  1690. u32 num_wraps, u32 next_entry,
  1691. u32 size, u32 mode,
  1692. int pos, char **buf, size_t bufsz)
  1693. {
  1694. /*
  1695. * display the newest DEFAULT_LOG_ENTRIES entries
  1696. * i.e the entries just before the next ont that uCode would fill.
  1697. */
  1698. if (num_wraps) {
  1699. if (next_entry < size) {
  1700. pos = iwl_print_event_log(priv,
  1701. capacity - (size - next_entry),
  1702. size - next_entry, mode,
  1703. pos, buf, bufsz);
  1704. pos = iwl_print_event_log(priv, 0,
  1705. next_entry, mode,
  1706. pos, buf, bufsz);
  1707. } else
  1708. pos = iwl_print_event_log(priv, next_entry - size,
  1709. size, mode, pos, buf, bufsz);
  1710. } else {
  1711. if (next_entry < size) {
  1712. pos = iwl_print_event_log(priv, 0, next_entry,
  1713. mode, pos, buf, bufsz);
  1714. } else {
  1715. pos = iwl_print_event_log(priv, next_entry - size,
  1716. size, mode, pos, buf, bufsz);
  1717. }
  1718. }
  1719. return pos;
  1720. }
  1721. #define DEFAULT_DUMP_EVENT_LOG_ENTRIES (20)
  1722. int iwl_dump_nic_event_log(struct iwl_priv *priv, bool full_log,
  1723. char **buf, bool display)
  1724. {
  1725. u32 base; /* SRAM byte address of event log header */
  1726. u32 capacity; /* event log capacity in # entries */
  1727. u32 mode; /* 0 - no timestamp, 1 - timestamp recorded */
  1728. u32 num_wraps; /* # times uCode wrapped to top of log */
  1729. u32 next_entry; /* index of next entry to be written by uCode */
  1730. u32 size; /* # entries that we'll print */
  1731. u32 logsize;
  1732. int pos = 0;
  1733. size_t bufsz = 0;
  1734. struct iwl_trans *trans = priv->trans;
  1735. base = priv->device_pointers.log_event_table;
  1736. if (priv->cur_ucode == IWL_UCODE_INIT) {
  1737. logsize = priv->fw->init_evtlog_size;
  1738. if (!base)
  1739. base = priv->fw->init_evtlog_ptr;
  1740. } else {
  1741. logsize = priv->fw->inst_evtlog_size;
  1742. if (!base)
  1743. base = priv->fw->inst_evtlog_ptr;
  1744. }
  1745. if (!iwlagn_hw_valid_rtc_data_addr(base)) {
  1746. IWL_ERR(priv,
  1747. "Invalid event log pointer 0x%08X for %s uCode\n",
  1748. base,
  1749. (priv->cur_ucode == IWL_UCODE_INIT)
  1750. ? "Init" : "RT");
  1751. return -EINVAL;
  1752. }
  1753. /* event log header */
  1754. capacity = iwl_read_targ_mem(trans, base);
  1755. mode = iwl_read_targ_mem(trans, base + (1 * sizeof(u32)));
  1756. num_wraps = iwl_read_targ_mem(trans, base + (2 * sizeof(u32)));
  1757. next_entry = iwl_read_targ_mem(trans, base + (3 * sizeof(u32)));
  1758. if (capacity > logsize) {
  1759. IWL_ERR(priv, "Log capacity %d is bogus, limit to %d "
  1760. "entries\n", capacity, logsize);
  1761. capacity = logsize;
  1762. }
  1763. if (next_entry > logsize) {
  1764. IWL_ERR(priv, "Log write index %d is bogus, limit to %d\n",
  1765. next_entry, logsize);
  1766. next_entry = logsize;
  1767. }
  1768. size = num_wraps ? capacity : next_entry;
  1769. /* bail out if nothing in log */
  1770. if (size == 0) {
  1771. IWL_ERR(trans, "Start IWL Event Log Dump: nothing in log\n");
  1772. return pos;
  1773. }
  1774. #ifdef CONFIG_IWLWIFI_DEBUG
  1775. if (!(iwl_have_debug_level(IWL_DL_FW_ERRORS)) && !full_log)
  1776. size = (size > DEFAULT_DUMP_EVENT_LOG_ENTRIES)
  1777. ? DEFAULT_DUMP_EVENT_LOG_ENTRIES : size;
  1778. #else
  1779. size = (size > DEFAULT_DUMP_EVENT_LOG_ENTRIES)
  1780. ? DEFAULT_DUMP_EVENT_LOG_ENTRIES : size;
  1781. #endif
  1782. IWL_ERR(priv, "Start IWL Event Log Dump: display last %u entries\n",
  1783. size);
  1784. #ifdef CONFIG_IWLWIFI_DEBUG
  1785. if (display) {
  1786. if (full_log)
  1787. bufsz = capacity * 48;
  1788. else
  1789. bufsz = size * 48;
  1790. *buf = kmalloc(bufsz, GFP_KERNEL);
  1791. if (!*buf)
  1792. return -ENOMEM;
  1793. }
  1794. if (iwl_have_debug_level(IWL_DL_FW_ERRORS) || full_log) {
  1795. /*
  1796. * if uCode has wrapped back to top of log,
  1797. * start at the oldest entry,
  1798. * i.e the next one that uCode would fill.
  1799. */
  1800. if (num_wraps)
  1801. pos = iwl_print_event_log(priv, next_entry,
  1802. capacity - next_entry, mode,
  1803. pos, buf, bufsz);
  1804. /* (then/else) start at top of log */
  1805. pos = iwl_print_event_log(priv, 0,
  1806. next_entry, mode, pos, buf, bufsz);
  1807. } else
  1808. pos = iwl_print_last_event_logs(priv, capacity, num_wraps,
  1809. next_entry, size, mode,
  1810. pos, buf, bufsz);
  1811. #else
  1812. pos = iwl_print_last_event_logs(priv, capacity, num_wraps,
  1813. next_entry, size, mode,
  1814. pos, buf, bufsz);
  1815. #endif
  1816. return pos;
  1817. }
  1818. static void iwlagn_fw_error(struct iwl_priv *priv, bool ondemand)
  1819. {
  1820. unsigned int reload_msec;
  1821. unsigned long reload_jiffies;
  1822. #ifdef CONFIG_IWLWIFI_DEBUG
  1823. if (iwl_have_debug_level(IWL_DL_FW_ERRORS))
  1824. iwl_print_rx_config_cmd(priv, IWL_RXON_CTX_BSS);
  1825. #endif
  1826. /* uCode is no longer loaded. */
  1827. priv->ucode_loaded = false;
  1828. /* Set the FW error flag -- cleared on iwl_down */
  1829. set_bit(STATUS_FW_ERROR, &priv->status);
  1830. iwl_abort_notification_waits(&priv->notif_wait);
  1831. /* Keep the restart process from trying to send host
  1832. * commands by clearing the ready bit */
  1833. clear_bit(STATUS_READY, &priv->status);
  1834. wake_up(&priv->trans->wait_command_queue);
  1835. if (!ondemand) {
  1836. /*
  1837. * If firmware keep reloading, then it indicate something
  1838. * serious wrong and firmware having problem to recover
  1839. * from it. Instead of keep trying which will fill the syslog
  1840. * and hang the system, let's just stop it
  1841. */
  1842. reload_jiffies = jiffies;
  1843. reload_msec = jiffies_to_msecs((long) reload_jiffies -
  1844. (long) priv->reload_jiffies);
  1845. priv->reload_jiffies = reload_jiffies;
  1846. if (reload_msec <= IWL_MIN_RELOAD_DURATION) {
  1847. priv->reload_count++;
  1848. if (priv->reload_count >= IWL_MAX_CONTINUE_RELOAD_CNT) {
  1849. IWL_ERR(priv, "BUG_ON, Stop restarting\n");
  1850. return;
  1851. }
  1852. } else
  1853. priv->reload_count = 0;
  1854. }
  1855. if (!test_bit(STATUS_EXIT_PENDING, &priv->status)) {
  1856. if (iwlagn_mod_params.restart_fw) {
  1857. IWL_DEBUG_FW_ERRORS(priv,
  1858. "Restarting adapter due to uCode error.\n");
  1859. queue_work(priv->workqueue, &priv->restart);
  1860. } else
  1861. IWL_DEBUG_FW_ERRORS(priv,
  1862. "Detected FW error, but not restarting\n");
  1863. }
  1864. }
  1865. void iwl_nic_error(struct iwl_op_mode *op_mode)
  1866. {
  1867. struct iwl_priv *priv = IWL_OP_MODE_GET_DVM(op_mode);
  1868. IWL_ERR(priv, "Loaded firmware version: %s\n",
  1869. priv->fw->fw_version);
  1870. iwl_dump_nic_error_log(priv);
  1871. iwl_dump_nic_event_log(priv, false, NULL, false);
  1872. iwlagn_fw_error(priv, false);
  1873. }
  1874. void iwl_cmd_queue_full(struct iwl_op_mode *op_mode)
  1875. {
  1876. struct iwl_priv *priv = IWL_OP_MODE_GET_DVM(op_mode);
  1877. if (!iwl_check_for_ct_kill(priv)) {
  1878. IWL_ERR(priv, "Restarting adapter queue is full\n");
  1879. iwlagn_fw_error(priv, false);
  1880. }
  1881. }
  1882. void iwl_nic_config(struct iwl_op_mode *op_mode)
  1883. {
  1884. struct iwl_priv *priv = IWL_OP_MODE_GET_DVM(op_mode);
  1885. priv->lib->nic_config(priv);
  1886. }
  1887. static void iwl_wimax_active(struct iwl_op_mode *op_mode)
  1888. {
  1889. struct iwl_priv *priv = IWL_OP_MODE_GET_DVM(op_mode);
  1890. clear_bit(STATUS_READY, &priv->status);
  1891. IWL_ERR(priv, "RF is used by WiMAX\n");
  1892. }
  1893. void iwl_stop_sw_queue(struct iwl_op_mode *op_mode, int queue)
  1894. {
  1895. struct iwl_priv *priv = IWL_OP_MODE_GET_DVM(op_mode);
  1896. int ac = priv->queue_to_ac[queue];
  1897. if (WARN_ON_ONCE(ac == IWL_INVALID_AC))
  1898. return;
  1899. if (atomic_inc_return(&priv->ac_stop_count[ac]) > 1) {
  1900. IWL_DEBUG_TX_QUEUES(priv,
  1901. "queue %d (AC %d) already stopped\n",
  1902. queue, ac);
  1903. return;
  1904. }
  1905. set_bit(ac, &priv->transport_queue_stop);
  1906. ieee80211_stop_queue(priv->hw, ac);
  1907. }
  1908. void iwl_wake_sw_queue(struct iwl_op_mode *op_mode, int queue)
  1909. {
  1910. struct iwl_priv *priv = IWL_OP_MODE_GET_DVM(op_mode);
  1911. int ac = priv->queue_to_ac[queue];
  1912. if (WARN_ON_ONCE(ac == IWL_INVALID_AC))
  1913. return;
  1914. if (atomic_dec_return(&priv->ac_stop_count[ac]) > 0) {
  1915. IWL_DEBUG_TX_QUEUES(priv,
  1916. "queue %d (AC %d) already awake\n",
  1917. queue, ac);
  1918. return;
  1919. }
  1920. clear_bit(ac, &priv->transport_queue_stop);
  1921. if (!priv->passive_no_rx)
  1922. ieee80211_wake_queue(priv->hw, ac);
  1923. }
  1924. void iwlagn_lift_passive_no_rx(struct iwl_priv *priv)
  1925. {
  1926. int ac;
  1927. if (!priv->passive_no_rx)
  1928. return;
  1929. for (ac = IEEE80211_AC_VO; ac < IEEE80211_NUM_ACS; ac++) {
  1930. if (!test_bit(ac, &priv->transport_queue_stop)) {
  1931. IWL_DEBUG_TX_QUEUES(priv, "Wake queue %d");
  1932. ieee80211_wake_queue(priv->hw, ac);
  1933. } else {
  1934. IWL_DEBUG_TX_QUEUES(priv, "Don't wake queue %d");
  1935. }
  1936. }
  1937. priv->passive_no_rx = false;
  1938. }
  1939. void iwl_free_skb(struct iwl_op_mode *op_mode, struct sk_buff *skb)
  1940. {
  1941. struct ieee80211_tx_info *info;
  1942. info = IEEE80211_SKB_CB(skb);
  1943. kmem_cache_free(iwl_tx_cmd_pool, (info->driver_data[1]));
  1944. dev_kfree_skb_any(skb);
  1945. }
  1946. void iwl_set_hw_rfkill_state(struct iwl_op_mode *op_mode, bool state)
  1947. {
  1948. struct iwl_priv *priv = IWL_OP_MODE_GET_DVM(op_mode);
  1949. if (state)
  1950. set_bit(STATUS_RF_KILL_HW, &priv->status);
  1951. else
  1952. clear_bit(STATUS_RF_KILL_HW, &priv->status);
  1953. wiphy_rfkill_set_hw_state(priv->hw->wiphy, state);
  1954. }
  1955. const struct iwl_op_mode_ops iwl_dvm_ops = {
  1956. .start = iwl_op_mode_dvm_start,
  1957. .stop = iwl_op_mode_dvm_stop,
  1958. .rx = iwl_rx_dispatch,
  1959. .queue_full = iwl_stop_sw_queue,
  1960. .queue_not_full = iwl_wake_sw_queue,
  1961. .hw_rf_kill = iwl_set_hw_rfkill_state,
  1962. .free_skb = iwl_free_skb,
  1963. .nic_error = iwl_nic_error,
  1964. .cmd_queue_full = iwl_cmd_queue_full,
  1965. .nic_config = iwl_nic_config,
  1966. .wimax_active = iwl_wimax_active,
  1967. };
  1968. /*****************************************************************************
  1969. *
  1970. * driver and module entry point
  1971. *
  1972. *****************************************************************************/
  1973. struct kmem_cache *iwl_tx_cmd_pool;
  1974. static int __init iwl_init(void)
  1975. {
  1976. int ret;
  1977. pr_info(DRV_DESCRIPTION ", " DRV_VERSION "\n");
  1978. pr_info(DRV_COPYRIGHT "\n");
  1979. iwl_tx_cmd_pool = kmem_cache_create("iwl_dev_cmd",
  1980. sizeof(struct iwl_device_cmd),
  1981. sizeof(void *), 0, NULL);
  1982. if (!iwl_tx_cmd_pool)
  1983. return -ENOMEM;
  1984. ret = iwlagn_rate_control_register();
  1985. if (ret) {
  1986. pr_err("Unable to register rate control algorithm: %d\n", ret);
  1987. goto error_rc_register;
  1988. }
  1989. ret = iwl_pci_register_driver();
  1990. if (ret)
  1991. goto error_pci_register;
  1992. return ret;
  1993. error_pci_register:
  1994. iwlagn_rate_control_unregister();
  1995. error_rc_register:
  1996. kmem_cache_destroy(iwl_tx_cmd_pool);
  1997. return ret;
  1998. }
  1999. static void __exit iwl_exit(void)
  2000. {
  2001. iwl_pci_unregister_driver();
  2002. iwlagn_rate_control_unregister();
  2003. kmem_cache_destroy(iwl_tx_cmd_pool);
  2004. }
  2005. module_exit(iwl_exit);
  2006. module_init(iwl_init);
  2007. #ifdef CONFIG_IWLWIFI_DEBUG
  2008. module_param_named(debug, iwlagn_mod_params.debug_level, uint,
  2009. S_IRUGO | S_IWUSR);
  2010. MODULE_PARM_DESC(debug, "debug output mask");
  2011. #endif
  2012. module_param_named(swcrypto, iwlagn_mod_params.sw_crypto, int, S_IRUGO);
  2013. MODULE_PARM_DESC(swcrypto, "using crypto in software (default 0 [hardware])");
  2014. module_param_named(11n_disable, iwlagn_mod_params.disable_11n, uint, S_IRUGO);
  2015. MODULE_PARM_DESC(11n_disable,
  2016. "disable 11n functionality, bitmap: 1: full, 2: agg TX, 4: agg RX");
  2017. module_param_named(amsdu_size_8K, iwlagn_mod_params.amsdu_size_8K,
  2018. int, S_IRUGO);
  2019. MODULE_PARM_DESC(amsdu_size_8K, "enable 8K amsdu size");
  2020. module_param_named(fw_restart, iwlagn_mod_params.restart_fw, int, S_IRUGO);
  2021. MODULE_PARM_DESC(fw_restart, "restart firmware in case of error");
  2022. module_param_named(antenna_coupling, iwlagn_mod_params.ant_coupling,
  2023. int, S_IRUGO);
  2024. MODULE_PARM_DESC(antenna_coupling,
  2025. "specify antenna coupling in dB (defualt: 0 dB)");
  2026. module_param_named(bt_ch_inhibition, iwlagn_mod_params.bt_ch_announce,
  2027. bool, S_IRUGO);
  2028. MODULE_PARM_DESC(bt_ch_inhibition,
  2029. "Enable BT channel inhibition (default: enable)");
  2030. module_param_named(plcp_check, iwlagn_mod_params.plcp_check, bool, S_IRUGO);
  2031. MODULE_PARM_DESC(plcp_check, "Check plcp health (default: 1 [enabled])");
  2032. module_param_named(wd_disable, iwlagn_mod_params.wd_disable, int, S_IRUGO);
  2033. MODULE_PARM_DESC(wd_disable,
  2034. "Disable stuck queue watchdog timer 0=system default, "
  2035. "1=disable, 2=enable (default: 0)");
  2036. /*
  2037. * set bt_coex_active to true, uCode will do kill/defer
  2038. * every time the priority line is asserted (BT is sending signals on the
  2039. * priority line in the PCIx).
  2040. * set bt_coex_active to false, uCode will ignore the BT activity and
  2041. * perform the normal operation
  2042. *
  2043. * User might experience transmit issue on some platform due to WiFi/BT
  2044. * co-exist problem. The possible behaviors are:
  2045. * Able to scan and finding all the available AP
  2046. * Not able to associate with any AP
  2047. * On those platforms, WiFi communication can be restored by set
  2048. * "bt_coex_active" module parameter to "false"
  2049. *
  2050. * default: bt_coex_active = true (BT_COEX_ENABLE)
  2051. */
  2052. module_param_named(bt_coex_active, iwlagn_mod_params.bt_coex_active,
  2053. bool, S_IRUGO);
  2054. MODULE_PARM_DESC(bt_coex_active, "enable wifi/bt co-exist (default: enable)");
  2055. module_param_named(led_mode, iwlagn_mod_params.led_mode, int, S_IRUGO);
  2056. MODULE_PARM_DESC(led_mode, "0=system default, "
  2057. "1=On(RF On)/Off(RF Off), 2=blinking, 3=Off (default: 0)");
  2058. module_param_named(power_save, iwlagn_mod_params.power_save,
  2059. bool, S_IRUGO);
  2060. MODULE_PARM_DESC(power_save,
  2061. "enable WiFi power management (default: disable)");
  2062. module_param_named(power_level, iwlagn_mod_params.power_level,
  2063. int, S_IRUGO);
  2064. MODULE_PARM_DESC(power_level,
  2065. "default power save level (range from 1 - 5, default: 1)");
  2066. module_param_named(auto_agg, iwlagn_mod_params.auto_agg,
  2067. bool, S_IRUGO);
  2068. MODULE_PARM_DESC(auto_agg,
  2069. "enable agg w/o check traffic load (default: enable)");