main.c 42 KB

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  1. /*
  2. * Atheros CARL9170 driver
  3. *
  4. * mac80211 interaction code
  5. *
  6. * Copyright 2008, Johannes Berg <johannes@sipsolutions.net>
  7. * Copyright 2009, 2010, Christian Lamparter <chunkeey@googlemail.com>
  8. *
  9. * This program is free software; you can redistribute it and/or modify
  10. * it under the terms of the GNU General Public License as published by
  11. * the Free Software Foundation; either version 2 of the License, or
  12. * (at your option) any later version.
  13. *
  14. * This program is distributed in the hope that it will be useful,
  15. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  16. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  17. * GNU General Public License for more details.
  18. *
  19. * You should have received a copy of the GNU General Public License
  20. * along with this program; see the file COPYING. If not, see
  21. * http://www.gnu.org/licenses/.
  22. *
  23. * This file incorporates work covered by the following copyright and
  24. * permission notice:
  25. * Copyright (c) 2007-2008 Atheros Communications, Inc.
  26. *
  27. * Permission to use, copy, modify, and/or distribute this software for any
  28. * purpose with or without fee is hereby granted, provided that the above
  29. * copyright notice and this permission notice appear in all copies.
  30. *
  31. * THE SOFTWARE IS PROVIDED "AS IS" AND THE AUTHOR DISCLAIMS ALL WARRANTIES
  32. * WITH REGARD TO THIS SOFTWARE INCLUDING ALL IMPLIED WARRANTIES OF
  33. * MERCHANTABILITY AND FITNESS. IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR
  34. * ANY SPECIAL, DIRECT, INDIRECT, OR CONSEQUENTIAL DAMAGES OR ANY DAMAGES
  35. * WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR PROFITS, WHETHER IN AN
  36. * ACTION OF CONTRACT, NEGLIGENCE OR OTHER TORTIOUS ACTION, ARISING OUT OF
  37. * OR IN CONNECTION WITH THE USE OR PERFORMANCE OF THIS SOFTWARE.
  38. */
  39. #include <linux/init.h>
  40. #include <linux/slab.h>
  41. #include <linux/module.h>
  42. #include <linux/etherdevice.h>
  43. #include <linux/random.h>
  44. #include <net/mac80211.h>
  45. #include <net/cfg80211.h>
  46. #include "hw.h"
  47. #include "carl9170.h"
  48. #include "cmd.h"
  49. static int modparam_nohwcrypt;
  50. module_param_named(nohwcrypt, modparam_nohwcrypt, bool, S_IRUGO);
  51. MODULE_PARM_DESC(nohwcrypt, "Disable hardware crypto offload.");
  52. int modparam_noht;
  53. module_param_named(noht, modparam_noht, int, S_IRUGO);
  54. MODULE_PARM_DESC(noht, "Disable MPDU aggregation.");
  55. #define RATE(_bitrate, _hw_rate, _txpidx, _flags) { \
  56. .bitrate = (_bitrate), \
  57. .flags = (_flags), \
  58. .hw_value = (_hw_rate) | (_txpidx) << 4, \
  59. }
  60. struct ieee80211_rate __carl9170_ratetable[] = {
  61. RATE(10, 0, 0, 0),
  62. RATE(20, 1, 1, IEEE80211_RATE_SHORT_PREAMBLE),
  63. RATE(55, 2, 2, IEEE80211_RATE_SHORT_PREAMBLE),
  64. RATE(110, 3, 3, IEEE80211_RATE_SHORT_PREAMBLE),
  65. RATE(60, 0xb, 0, 0),
  66. RATE(90, 0xf, 0, 0),
  67. RATE(120, 0xa, 0, 0),
  68. RATE(180, 0xe, 0, 0),
  69. RATE(240, 0x9, 0, 0),
  70. RATE(360, 0xd, 1, 0),
  71. RATE(480, 0x8, 2, 0),
  72. RATE(540, 0xc, 3, 0),
  73. };
  74. #undef RATE
  75. #define carl9170_g_ratetable (__carl9170_ratetable + 0)
  76. #define carl9170_g_ratetable_size 12
  77. #define carl9170_a_ratetable (__carl9170_ratetable + 4)
  78. #define carl9170_a_ratetable_size 8
  79. /*
  80. * NB: The hw_value is used as an index into the carl9170_phy_freq_params
  81. * array in phy.c so that we don't have to do frequency lookups!
  82. */
  83. #define CHAN(_freq, _idx) { \
  84. .center_freq = (_freq), \
  85. .hw_value = (_idx), \
  86. .max_power = 18, /* XXX */ \
  87. }
  88. static struct ieee80211_channel carl9170_2ghz_chantable[] = {
  89. CHAN(2412, 0),
  90. CHAN(2417, 1),
  91. CHAN(2422, 2),
  92. CHAN(2427, 3),
  93. CHAN(2432, 4),
  94. CHAN(2437, 5),
  95. CHAN(2442, 6),
  96. CHAN(2447, 7),
  97. CHAN(2452, 8),
  98. CHAN(2457, 9),
  99. CHAN(2462, 10),
  100. CHAN(2467, 11),
  101. CHAN(2472, 12),
  102. CHAN(2484, 13),
  103. };
  104. static struct ieee80211_channel carl9170_5ghz_chantable[] = {
  105. CHAN(4920, 14),
  106. CHAN(4940, 15),
  107. CHAN(4960, 16),
  108. CHAN(4980, 17),
  109. CHAN(5040, 18),
  110. CHAN(5060, 19),
  111. CHAN(5080, 20),
  112. CHAN(5180, 21),
  113. CHAN(5200, 22),
  114. CHAN(5220, 23),
  115. CHAN(5240, 24),
  116. CHAN(5260, 25),
  117. CHAN(5280, 26),
  118. CHAN(5300, 27),
  119. CHAN(5320, 28),
  120. CHAN(5500, 29),
  121. CHAN(5520, 30),
  122. CHAN(5540, 31),
  123. CHAN(5560, 32),
  124. CHAN(5580, 33),
  125. CHAN(5600, 34),
  126. CHAN(5620, 35),
  127. CHAN(5640, 36),
  128. CHAN(5660, 37),
  129. CHAN(5680, 38),
  130. CHAN(5700, 39),
  131. CHAN(5745, 40),
  132. CHAN(5765, 41),
  133. CHAN(5785, 42),
  134. CHAN(5805, 43),
  135. CHAN(5825, 44),
  136. CHAN(5170, 45),
  137. CHAN(5190, 46),
  138. CHAN(5210, 47),
  139. CHAN(5230, 48),
  140. };
  141. #undef CHAN
  142. #define CARL9170_HT_CAP \
  143. { \
  144. .ht_supported = true, \
  145. .cap = IEEE80211_HT_CAP_MAX_AMSDU | \
  146. IEEE80211_HT_CAP_SUP_WIDTH_20_40 | \
  147. IEEE80211_HT_CAP_SGI_40 | \
  148. IEEE80211_HT_CAP_DSSSCCK40 | \
  149. IEEE80211_HT_CAP_SM_PS, \
  150. .ampdu_factor = IEEE80211_HT_MAX_AMPDU_64K, \
  151. .ampdu_density = IEEE80211_HT_MPDU_DENSITY_8, \
  152. .mcs = { \
  153. .rx_mask = { 0xff, 0xff, 0, 0, 0x1, 0, 0, 0, 0, 0, }, \
  154. .rx_highest = cpu_to_le16(300), \
  155. .tx_params = IEEE80211_HT_MCS_TX_DEFINED, \
  156. }, \
  157. }
  158. static struct ieee80211_supported_band carl9170_band_2GHz = {
  159. .channels = carl9170_2ghz_chantable,
  160. .n_channels = ARRAY_SIZE(carl9170_2ghz_chantable),
  161. .bitrates = carl9170_g_ratetable,
  162. .n_bitrates = carl9170_g_ratetable_size,
  163. .ht_cap = CARL9170_HT_CAP,
  164. };
  165. static struct ieee80211_supported_band carl9170_band_5GHz = {
  166. .channels = carl9170_5ghz_chantable,
  167. .n_channels = ARRAY_SIZE(carl9170_5ghz_chantable),
  168. .bitrates = carl9170_a_ratetable,
  169. .n_bitrates = carl9170_a_ratetable_size,
  170. .ht_cap = CARL9170_HT_CAP,
  171. };
  172. static void carl9170_ampdu_gc(struct ar9170 *ar)
  173. {
  174. struct carl9170_sta_tid *tid_info;
  175. LIST_HEAD(tid_gc);
  176. rcu_read_lock();
  177. list_for_each_entry_rcu(tid_info, &ar->tx_ampdu_list, list) {
  178. spin_lock_bh(&ar->tx_ampdu_list_lock);
  179. if (tid_info->state == CARL9170_TID_STATE_SHUTDOWN) {
  180. tid_info->state = CARL9170_TID_STATE_KILLED;
  181. list_del_rcu(&tid_info->list);
  182. ar->tx_ampdu_list_len--;
  183. list_add_tail(&tid_info->tmp_list, &tid_gc);
  184. }
  185. spin_unlock_bh(&ar->tx_ampdu_list_lock);
  186. }
  187. rcu_assign_pointer(ar->tx_ampdu_iter, tid_info);
  188. rcu_read_unlock();
  189. synchronize_rcu();
  190. while (!list_empty(&tid_gc)) {
  191. struct sk_buff *skb;
  192. tid_info = list_first_entry(&tid_gc, struct carl9170_sta_tid,
  193. tmp_list);
  194. while ((skb = __skb_dequeue(&tid_info->queue)))
  195. carl9170_tx_status(ar, skb, false);
  196. list_del_init(&tid_info->tmp_list);
  197. kfree(tid_info);
  198. }
  199. }
  200. static void carl9170_flush(struct ar9170 *ar, bool drop_queued)
  201. {
  202. if (drop_queued) {
  203. int i;
  204. /*
  205. * We can only drop frames which have not been uploaded
  206. * to the device yet.
  207. */
  208. for (i = 0; i < ar->hw->queues; i++) {
  209. struct sk_buff *skb;
  210. while ((skb = skb_dequeue(&ar->tx_pending[i]))) {
  211. struct ieee80211_tx_info *info;
  212. info = IEEE80211_SKB_CB(skb);
  213. if (info->flags & IEEE80211_TX_CTL_AMPDU)
  214. atomic_dec(&ar->tx_ampdu_upload);
  215. carl9170_tx_status(ar, skb, false);
  216. }
  217. }
  218. }
  219. /* Wait for all other outstanding frames to timeout. */
  220. if (atomic_read(&ar->tx_total_queued))
  221. WARN_ON(wait_for_completion_timeout(&ar->tx_flush, HZ) == 0);
  222. }
  223. static void carl9170_flush_ba(struct ar9170 *ar)
  224. {
  225. struct sk_buff_head free;
  226. struct carl9170_sta_tid *tid_info;
  227. struct sk_buff *skb;
  228. __skb_queue_head_init(&free);
  229. rcu_read_lock();
  230. spin_lock_bh(&ar->tx_ampdu_list_lock);
  231. list_for_each_entry_rcu(tid_info, &ar->tx_ampdu_list, list) {
  232. if (tid_info->state > CARL9170_TID_STATE_SUSPEND) {
  233. tid_info->state = CARL9170_TID_STATE_SUSPEND;
  234. spin_lock(&tid_info->lock);
  235. while ((skb = __skb_dequeue(&tid_info->queue)))
  236. __skb_queue_tail(&free, skb);
  237. spin_unlock(&tid_info->lock);
  238. }
  239. }
  240. spin_unlock_bh(&ar->tx_ampdu_list_lock);
  241. rcu_read_unlock();
  242. while ((skb = __skb_dequeue(&free)))
  243. carl9170_tx_status(ar, skb, false);
  244. }
  245. static void carl9170_zap_queues(struct ar9170 *ar)
  246. {
  247. struct carl9170_vif_info *cvif;
  248. unsigned int i;
  249. carl9170_ampdu_gc(ar);
  250. carl9170_flush_ba(ar);
  251. carl9170_flush(ar, true);
  252. for (i = 0; i < ar->hw->queues; i++) {
  253. spin_lock_bh(&ar->tx_status[i].lock);
  254. while (!skb_queue_empty(&ar->tx_status[i])) {
  255. struct sk_buff *skb;
  256. skb = skb_peek(&ar->tx_status[i]);
  257. carl9170_tx_get_skb(skb);
  258. spin_unlock_bh(&ar->tx_status[i].lock);
  259. carl9170_tx_drop(ar, skb);
  260. spin_lock_bh(&ar->tx_status[i].lock);
  261. carl9170_tx_put_skb(skb);
  262. }
  263. spin_unlock_bh(&ar->tx_status[i].lock);
  264. }
  265. BUILD_BUG_ON(CARL9170_NUM_TX_LIMIT_SOFT < 1);
  266. BUILD_BUG_ON(CARL9170_NUM_TX_LIMIT_HARD < CARL9170_NUM_TX_LIMIT_SOFT);
  267. BUILD_BUG_ON(CARL9170_NUM_TX_LIMIT_HARD >= CARL9170_BAW_BITS);
  268. /* reinitialize queues statistics */
  269. memset(&ar->tx_stats, 0, sizeof(ar->tx_stats));
  270. for (i = 0; i < ar->hw->queues; i++)
  271. ar->tx_stats[i].limit = CARL9170_NUM_TX_LIMIT_HARD;
  272. for (i = 0; i < DIV_ROUND_UP(ar->fw.mem_blocks, BITS_PER_LONG); i++)
  273. ar->mem_bitmap[i] = 0;
  274. rcu_read_lock();
  275. list_for_each_entry_rcu(cvif, &ar->vif_list, list) {
  276. spin_lock_bh(&ar->beacon_lock);
  277. dev_kfree_skb_any(cvif->beacon);
  278. cvif->beacon = NULL;
  279. spin_unlock_bh(&ar->beacon_lock);
  280. }
  281. rcu_read_unlock();
  282. atomic_set(&ar->tx_ampdu_upload, 0);
  283. atomic_set(&ar->tx_ampdu_scheduler, 0);
  284. atomic_set(&ar->tx_total_pending, 0);
  285. atomic_set(&ar->tx_total_queued, 0);
  286. atomic_set(&ar->mem_free_blocks, ar->fw.mem_blocks);
  287. }
  288. #define CARL9170_FILL_QUEUE(queue, ai_fs, cwmin, cwmax, _txop) \
  289. do { \
  290. queue.aifs = ai_fs; \
  291. queue.cw_min = cwmin; \
  292. queue.cw_max = cwmax; \
  293. queue.txop = _txop; \
  294. } while (0)
  295. static int carl9170_op_start(struct ieee80211_hw *hw)
  296. {
  297. struct ar9170 *ar = hw->priv;
  298. int err, i;
  299. mutex_lock(&ar->mutex);
  300. carl9170_zap_queues(ar);
  301. /* reset QoS defaults */
  302. CARL9170_FILL_QUEUE(ar->edcf[AR9170_TXQ_VO], 2, 3, 7, 47);
  303. CARL9170_FILL_QUEUE(ar->edcf[AR9170_TXQ_VI], 2, 7, 15, 94);
  304. CARL9170_FILL_QUEUE(ar->edcf[AR9170_TXQ_BE], 3, 15, 1023, 0);
  305. CARL9170_FILL_QUEUE(ar->edcf[AR9170_TXQ_BK], 7, 15, 1023, 0);
  306. CARL9170_FILL_QUEUE(ar->edcf[AR9170_TXQ_SPECIAL], 2, 3, 7, 0);
  307. ar->current_factor = ar->current_density = -1;
  308. /* "The first key is unique." */
  309. ar->usedkeys = 1;
  310. ar->filter_state = 0;
  311. ar->ps.last_action = jiffies;
  312. ar->ps.last_slept = jiffies;
  313. ar->erp_mode = CARL9170_ERP_AUTO;
  314. ar->rx_software_decryption = false;
  315. ar->disable_offload = false;
  316. for (i = 0; i < ar->hw->queues; i++) {
  317. ar->queue_stop_timeout[i] = jiffies;
  318. ar->max_queue_stop_timeout[i] = 0;
  319. }
  320. atomic_set(&ar->mem_allocs, 0);
  321. err = carl9170_usb_open(ar);
  322. if (err)
  323. goto out;
  324. err = carl9170_init_mac(ar);
  325. if (err)
  326. goto out;
  327. err = carl9170_set_qos(ar);
  328. if (err)
  329. goto out;
  330. if (ar->fw.rx_filter) {
  331. err = carl9170_rx_filter(ar, CARL9170_RX_FILTER_OTHER_RA |
  332. CARL9170_RX_FILTER_CTL_OTHER | CARL9170_RX_FILTER_BAD);
  333. if (err)
  334. goto out;
  335. }
  336. err = carl9170_write_reg(ar, AR9170_MAC_REG_DMA_TRIGGER,
  337. AR9170_DMA_TRIGGER_RXQ);
  338. if (err)
  339. goto out;
  340. /* Clear key-cache */
  341. for (i = 0; i < AR9170_CAM_MAX_USER + 4; i++) {
  342. err = carl9170_upload_key(ar, i, NULL, AR9170_ENC_ALG_NONE,
  343. 0, NULL, 0);
  344. if (err)
  345. goto out;
  346. err = carl9170_upload_key(ar, i, NULL, AR9170_ENC_ALG_NONE,
  347. 1, NULL, 0);
  348. if (err)
  349. goto out;
  350. if (i < AR9170_CAM_MAX_USER) {
  351. err = carl9170_disable_key(ar, i);
  352. if (err)
  353. goto out;
  354. }
  355. }
  356. carl9170_set_state_when(ar, CARL9170_IDLE, CARL9170_STARTED);
  357. ieee80211_wake_queues(ar->hw);
  358. err = 0;
  359. out:
  360. mutex_unlock(&ar->mutex);
  361. return err;
  362. }
  363. static void carl9170_cancel_worker(struct ar9170 *ar)
  364. {
  365. cancel_delayed_work_sync(&ar->tx_janitor);
  366. #ifdef CONFIG_CARL9170_LEDS
  367. cancel_delayed_work_sync(&ar->led_work);
  368. #endif /* CONFIG_CARL9170_LEDS */
  369. cancel_work_sync(&ar->ps_work);
  370. cancel_work_sync(&ar->ping_work);
  371. cancel_work_sync(&ar->ampdu_work);
  372. }
  373. static void carl9170_op_stop(struct ieee80211_hw *hw)
  374. {
  375. struct ar9170 *ar = hw->priv;
  376. carl9170_set_state_when(ar, CARL9170_STARTED, CARL9170_IDLE);
  377. ieee80211_stop_queues(ar->hw);
  378. mutex_lock(&ar->mutex);
  379. if (IS_ACCEPTING_CMD(ar)) {
  380. rcu_assign_pointer(ar->beacon_iter, NULL);
  381. carl9170_led_set_state(ar, 0);
  382. /* stop DMA */
  383. carl9170_write_reg(ar, AR9170_MAC_REG_DMA_TRIGGER, 0);
  384. carl9170_usb_stop(ar);
  385. }
  386. carl9170_zap_queues(ar);
  387. mutex_unlock(&ar->mutex);
  388. carl9170_cancel_worker(ar);
  389. }
  390. static void carl9170_restart_work(struct work_struct *work)
  391. {
  392. struct ar9170 *ar = container_of(work, struct ar9170,
  393. restart_work);
  394. int err;
  395. ar->usedkeys = 0;
  396. ar->filter_state = 0;
  397. carl9170_cancel_worker(ar);
  398. mutex_lock(&ar->mutex);
  399. err = carl9170_usb_restart(ar);
  400. if (net_ratelimit()) {
  401. if (err) {
  402. dev_err(&ar->udev->dev, "Failed to restart device "
  403. " (%d).\n", err);
  404. } else {
  405. dev_info(&ar->udev->dev, "device restarted "
  406. "successfully.\n");
  407. }
  408. }
  409. carl9170_zap_queues(ar);
  410. mutex_unlock(&ar->mutex);
  411. if (!err) {
  412. ar->restart_counter++;
  413. atomic_set(&ar->pending_restarts, 0);
  414. ieee80211_restart_hw(ar->hw);
  415. } else {
  416. /*
  417. * The reset was unsuccessful and the device seems to
  418. * be dead. But there's still one option: a low-level
  419. * usb subsystem reset...
  420. */
  421. carl9170_usb_reset(ar);
  422. }
  423. }
  424. void carl9170_restart(struct ar9170 *ar, const enum carl9170_restart_reasons r)
  425. {
  426. carl9170_set_state_when(ar, CARL9170_STARTED, CARL9170_IDLE);
  427. /*
  428. * Sometimes, an error can trigger several different reset events.
  429. * By ignoring these *surplus* reset events, the device won't be
  430. * killed again, right after it has recovered.
  431. */
  432. if (atomic_inc_return(&ar->pending_restarts) > 1) {
  433. dev_dbg(&ar->udev->dev, "ignoring restart (%d)\n", r);
  434. return;
  435. }
  436. ieee80211_stop_queues(ar->hw);
  437. dev_err(&ar->udev->dev, "restart device (%d)\n", r);
  438. if (!WARN_ON(r == CARL9170_RR_NO_REASON) ||
  439. !WARN_ON(r >= __CARL9170_RR_LAST))
  440. ar->last_reason = r;
  441. if (!ar->registered)
  442. return;
  443. if (IS_ACCEPTING_CMD(ar) && !ar->needs_full_reset)
  444. ieee80211_queue_work(ar->hw, &ar->restart_work);
  445. else
  446. carl9170_usb_reset(ar);
  447. /*
  448. * At this point, the device instance might have vanished/disabled.
  449. * So, don't put any code which access the ar9170 struct
  450. * without proper protection.
  451. */
  452. }
  453. static void carl9170_ping_work(struct work_struct *work)
  454. {
  455. struct ar9170 *ar = container_of(work, struct ar9170, ping_work);
  456. int err;
  457. if (!IS_STARTED(ar))
  458. return;
  459. mutex_lock(&ar->mutex);
  460. err = carl9170_echo_test(ar, 0xdeadbeef);
  461. if (err)
  462. carl9170_restart(ar, CARL9170_RR_UNRESPONSIVE_DEVICE);
  463. mutex_unlock(&ar->mutex);
  464. }
  465. static int carl9170_init_interface(struct ar9170 *ar,
  466. struct ieee80211_vif *vif)
  467. {
  468. struct ath_common *common = &ar->common;
  469. int err;
  470. if (!vif) {
  471. WARN_ON_ONCE(IS_STARTED(ar));
  472. return 0;
  473. }
  474. memcpy(common->macaddr, vif->addr, ETH_ALEN);
  475. if (modparam_nohwcrypt ||
  476. ((vif->type != NL80211_IFTYPE_STATION) &&
  477. (vif->type != NL80211_IFTYPE_AP))) {
  478. ar->rx_software_decryption = true;
  479. ar->disable_offload = true;
  480. }
  481. err = carl9170_set_operating_mode(ar);
  482. return err;
  483. }
  484. static int carl9170_op_add_interface(struct ieee80211_hw *hw,
  485. struct ieee80211_vif *vif)
  486. {
  487. struct carl9170_vif_info *vif_priv = (void *) vif->drv_priv;
  488. struct ieee80211_vif *main_vif;
  489. struct ar9170 *ar = hw->priv;
  490. int vif_id = -1, err = 0;
  491. mutex_lock(&ar->mutex);
  492. rcu_read_lock();
  493. if (vif_priv->active) {
  494. /*
  495. * Skip the interface structure initialization,
  496. * if the vif survived the _restart call.
  497. */
  498. vif_id = vif_priv->id;
  499. vif_priv->enable_beacon = false;
  500. spin_lock_bh(&ar->beacon_lock);
  501. dev_kfree_skb_any(vif_priv->beacon);
  502. vif_priv->beacon = NULL;
  503. spin_unlock_bh(&ar->beacon_lock);
  504. goto init;
  505. }
  506. main_vif = carl9170_get_main_vif(ar);
  507. if (main_vif) {
  508. switch (main_vif->type) {
  509. case NL80211_IFTYPE_STATION:
  510. if (vif->type == NL80211_IFTYPE_STATION)
  511. break;
  512. err = -EBUSY;
  513. rcu_read_unlock();
  514. goto unlock;
  515. case NL80211_IFTYPE_AP:
  516. if ((vif->type == NL80211_IFTYPE_STATION) ||
  517. (vif->type == NL80211_IFTYPE_WDS) ||
  518. (vif->type == NL80211_IFTYPE_AP))
  519. break;
  520. err = -EBUSY;
  521. rcu_read_unlock();
  522. goto unlock;
  523. default:
  524. rcu_read_unlock();
  525. goto unlock;
  526. }
  527. }
  528. vif_id = bitmap_find_free_region(&ar->vif_bitmap, ar->fw.vif_num, 0);
  529. if (vif_id < 0) {
  530. rcu_read_unlock();
  531. err = -ENOSPC;
  532. goto unlock;
  533. }
  534. BUG_ON(ar->vif_priv[vif_id].id != vif_id);
  535. vif_priv->active = true;
  536. vif_priv->id = vif_id;
  537. vif_priv->enable_beacon = false;
  538. ar->vifs++;
  539. list_add_tail_rcu(&vif_priv->list, &ar->vif_list);
  540. rcu_assign_pointer(ar->vif_priv[vif_id].vif, vif);
  541. init:
  542. if (carl9170_get_main_vif(ar) == vif) {
  543. rcu_assign_pointer(ar->beacon_iter, vif_priv);
  544. rcu_read_unlock();
  545. err = carl9170_init_interface(ar, vif);
  546. if (err)
  547. goto unlock;
  548. } else {
  549. rcu_read_unlock();
  550. err = carl9170_mod_virtual_mac(ar, vif_id, vif->addr);
  551. if (err)
  552. goto unlock;
  553. }
  554. if (ar->fw.tx_seq_table) {
  555. err = carl9170_write_reg(ar, ar->fw.tx_seq_table + vif_id * 4,
  556. 0);
  557. if (err)
  558. goto unlock;
  559. }
  560. unlock:
  561. if (err && (vif_id >= 0)) {
  562. vif_priv->active = false;
  563. bitmap_release_region(&ar->vif_bitmap, vif_id, 0);
  564. ar->vifs--;
  565. rcu_assign_pointer(ar->vif_priv[vif_id].vif, NULL);
  566. list_del_rcu(&vif_priv->list);
  567. mutex_unlock(&ar->mutex);
  568. synchronize_rcu();
  569. } else {
  570. if (ar->vifs > 1)
  571. ar->ps.off_override |= PS_OFF_VIF;
  572. mutex_unlock(&ar->mutex);
  573. }
  574. return err;
  575. }
  576. static void carl9170_op_remove_interface(struct ieee80211_hw *hw,
  577. struct ieee80211_vif *vif)
  578. {
  579. struct carl9170_vif_info *vif_priv = (void *) vif->drv_priv;
  580. struct ieee80211_vif *main_vif;
  581. struct ar9170 *ar = hw->priv;
  582. unsigned int id;
  583. mutex_lock(&ar->mutex);
  584. if (WARN_ON_ONCE(!vif_priv->active))
  585. goto unlock;
  586. ar->vifs--;
  587. rcu_read_lock();
  588. main_vif = carl9170_get_main_vif(ar);
  589. id = vif_priv->id;
  590. vif_priv->active = false;
  591. WARN_ON(vif_priv->enable_beacon);
  592. vif_priv->enable_beacon = false;
  593. list_del_rcu(&vif_priv->list);
  594. rcu_assign_pointer(ar->vif_priv[id].vif, NULL);
  595. if (vif == main_vif) {
  596. rcu_read_unlock();
  597. if (ar->vifs) {
  598. WARN_ON(carl9170_init_interface(ar,
  599. carl9170_get_main_vif(ar)));
  600. } else {
  601. carl9170_set_operating_mode(ar);
  602. }
  603. } else {
  604. rcu_read_unlock();
  605. WARN_ON(carl9170_mod_virtual_mac(ar, id, NULL));
  606. }
  607. carl9170_update_beacon(ar, false);
  608. carl9170_flush_cab(ar, id);
  609. spin_lock_bh(&ar->beacon_lock);
  610. dev_kfree_skb_any(vif_priv->beacon);
  611. vif_priv->beacon = NULL;
  612. spin_unlock_bh(&ar->beacon_lock);
  613. bitmap_release_region(&ar->vif_bitmap, id, 0);
  614. carl9170_set_beacon_timers(ar);
  615. if (ar->vifs == 1)
  616. ar->ps.off_override &= ~PS_OFF_VIF;
  617. unlock:
  618. mutex_unlock(&ar->mutex);
  619. synchronize_rcu();
  620. }
  621. void carl9170_ps_check(struct ar9170 *ar)
  622. {
  623. ieee80211_queue_work(ar->hw, &ar->ps_work);
  624. }
  625. /* caller must hold ar->mutex */
  626. static int carl9170_ps_update(struct ar9170 *ar)
  627. {
  628. bool ps = false;
  629. int err = 0;
  630. if (!ar->ps.off_override)
  631. ps = (ar->hw->conf.flags & IEEE80211_CONF_PS);
  632. if (ps != ar->ps.state) {
  633. err = carl9170_powersave(ar, ps);
  634. if (err)
  635. return err;
  636. if (ar->ps.state && !ps) {
  637. ar->ps.sleep_ms = jiffies_to_msecs(jiffies -
  638. ar->ps.last_action);
  639. }
  640. if (ps)
  641. ar->ps.last_slept = jiffies;
  642. ar->ps.last_action = jiffies;
  643. ar->ps.state = ps;
  644. }
  645. return 0;
  646. }
  647. static void carl9170_ps_work(struct work_struct *work)
  648. {
  649. struct ar9170 *ar = container_of(work, struct ar9170,
  650. ps_work);
  651. mutex_lock(&ar->mutex);
  652. if (IS_STARTED(ar))
  653. WARN_ON_ONCE(carl9170_ps_update(ar) != 0);
  654. mutex_unlock(&ar->mutex);
  655. }
  656. static int carl9170_op_config(struct ieee80211_hw *hw, u32 changed)
  657. {
  658. struct ar9170 *ar = hw->priv;
  659. int err = 0;
  660. mutex_lock(&ar->mutex);
  661. if (changed & IEEE80211_CONF_CHANGE_LISTEN_INTERVAL) {
  662. /* TODO */
  663. err = 0;
  664. }
  665. if (changed & IEEE80211_CONF_CHANGE_PS) {
  666. err = carl9170_ps_update(ar);
  667. if (err)
  668. goto out;
  669. }
  670. if (changed & IEEE80211_CONF_CHANGE_POWER) {
  671. /* TODO */
  672. err = 0;
  673. }
  674. if (changed & IEEE80211_CONF_CHANGE_SMPS) {
  675. /* TODO */
  676. err = 0;
  677. }
  678. if (changed & IEEE80211_CONF_CHANGE_CHANNEL) {
  679. /* adjust slot time for 5 GHz */
  680. err = carl9170_set_slot_time(ar);
  681. if (err)
  682. goto out;
  683. err = carl9170_set_channel(ar, hw->conf.channel,
  684. hw->conf.channel_type, CARL9170_RFI_NONE);
  685. if (err)
  686. goto out;
  687. err = carl9170_set_dyn_sifs_ack(ar);
  688. if (err)
  689. goto out;
  690. err = carl9170_set_rts_cts_rate(ar);
  691. if (err)
  692. goto out;
  693. }
  694. out:
  695. mutex_unlock(&ar->mutex);
  696. return err;
  697. }
  698. static u64 carl9170_op_prepare_multicast(struct ieee80211_hw *hw,
  699. struct netdev_hw_addr_list *mc_list)
  700. {
  701. struct netdev_hw_addr *ha;
  702. u64 mchash;
  703. /* always get broadcast frames */
  704. mchash = 1ULL << (0xff >> 2);
  705. netdev_hw_addr_list_for_each(ha, mc_list)
  706. mchash |= 1ULL << (ha->addr[5] >> 2);
  707. return mchash;
  708. }
  709. static void carl9170_op_configure_filter(struct ieee80211_hw *hw,
  710. unsigned int changed_flags,
  711. unsigned int *new_flags,
  712. u64 multicast)
  713. {
  714. struct ar9170 *ar = hw->priv;
  715. /* mask supported flags */
  716. *new_flags &= FIF_ALLMULTI | ar->rx_filter_caps;
  717. if (!IS_ACCEPTING_CMD(ar))
  718. return;
  719. mutex_lock(&ar->mutex);
  720. ar->filter_state = *new_flags;
  721. /*
  722. * We can support more by setting the sniffer bit and
  723. * then checking the error flags, later.
  724. */
  725. if (*new_flags & FIF_ALLMULTI)
  726. multicast = ~0ULL;
  727. if (multicast != ar->cur_mc_hash)
  728. WARN_ON(carl9170_update_multicast(ar, multicast));
  729. if (changed_flags & (FIF_OTHER_BSS | FIF_PROMISC_IN_BSS)) {
  730. ar->sniffer_enabled = !!(*new_flags &
  731. (FIF_OTHER_BSS | FIF_PROMISC_IN_BSS));
  732. WARN_ON(carl9170_set_operating_mode(ar));
  733. }
  734. if (ar->fw.rx_filter && changed_flags & ar->rx_filter_caps) {
  735. u32 rx_filter = 0;
  736. if (!(*new_flags & (FIF_FCSFAIL | FIF_PLCPFAIL)))
  737. rx_filter |= CARL9170_RX_FILTER_BAD;
  738. if (!(*new_flags & FIF_CONTROL))
  739. rx_filter |= CARL9170_RX_FILTER_CTL_OTHER;
  740. if (!(*new_flags & FIF_PSPOLL))
  741. rx_filter |= CARL9170_RX_FILTER_CTL_PSPOLL;
  742. if (!(*new_flags & (FIF_OTHER_BSS | FIF_PROMISC_IN_BSS))) {
  743. rx_filter |= CARL9170_RX_FILTER_OTHER_RA;
  744. rx_filter |= CARL9170_RX_FILTER_DECRY_FAIL;
  745. }
  746. WARN_ON(carl9170_rx_filter(ar, rx_filter));
  747. }
  748. mutex_unlock(&ar->mutex);
  749. }
  750. static void carl9170_op_bss_info_changed(struct ieee80211_hw *hw,
  751. struct ieee80211_vif *vif,
  752. struct ieee80211_bss_conf *bss_conf,
  753. u32 changed)
  754. {
  755. struct ar9170 *ar = hw->priv;
  756. struct ath_common *common = &ar->common;
  757. int err = 0;
  758. struct carl9170_vif_info *vif_priv;
  759. struct ieee80211_vif *main_vif;
  760. mutex_lock(&ar->mutex);
  761. vif_priv = (void *) vif->drv_priv;
  762. main_vif = carl9170_get_main_vif(ar);
  763. if (WARN_ON(!main_vif))
  764. goto out;
  765. if (changed & BSS_CHANGED_BEACON_ENABLED) {
  766. struct carl9170_vif_info *iter;
  767. int i = 0;
  768. vif_priv->enable_beacon = bss_conf->enable_beacon;
  769. rcu_read_lock();
  770. list_for_each_entry_rcu(iter, &ar->vif_list, list) {
  771. if (iter->active && iter->enable_beacon)
  772. i++;
  773. }
  774. rcu_read_unlock();
  775. ar->beacon_enabled = i;
  776. }
  777. if (changed & BSS_CHANGED_BEACON) {
  778. err = carl9170_update_beacon(ar, false);
  779. if (err)
  780. goto out;
  781. }
  782. if (changed & (BSS_CHANGED_BEACON_ENABLED | BSS_CHANGED_BEACON |
  783. BSS_CHANGED_BEACON_INT)) {
  784. if (main_vif != vif) {
  785. bss_conf->beacon_int = main_vif->bss_conf.beacon_int;
  786. bss_conf->dtim_period = main_vif->bss_conf.dtim_period;
  787. }
  788. /*
  789. * Therefore a hard limit for the broadcast traffic should
  790. * prevent false alarms.
  791. */
  792. if (vif->type != NL80211_IFTYPE_STATION &&
  793. (bss_conf->beacon_int * bss_conf->dtim_period >=
  794. (CARL9170_QUEUE_STUCK_TIMEOUT / 2))) {
  795. err = -EINVAL;
  796. goto out;
  797. }
  798. err = carl9170_set_beacon_timers(ar);
  799. if (err)
  800. goto out;
  801. }
  802. if (changed & BSS_CHANGED_HT) {
  803. /* TODO */
  804. err = 0;
  805. if (err)
  806. goto out;
  807. }
  808. if (main_vif != vif)
  809. goto out;
  810. /*
  811. * The following settings can only be changed by the
  812. * master interface.
  813. */
  814. if (changed & BSS_CHANGED_BSSID) {
  815. memcpy(common->curbssid, bss_conf->bssid, ETH_ALEN);
  816. err = carl9170_set_operating_mode(ar);
  817. if (err)
  818. goto out;
  819. }
  820. if (changed & BSS_CHANGED_ASSOC) {
  821. ar->common.curaid = bss_conf->aid;
  822. err = carl9170_set_beacon_timers(ar);
  823. if (err)
  824. goto out;
  825. }
  826. if (changed & BSS_CHANGED_ERP_SLOT) {
  827. err = carl9170_set_slot_time(ar);
  828. if (err)
  829. goto out;
  830. }
  831. if (changed & BSS_CHANGED_BASIC_RATES) {
  832. err = carl9170_set_mac_rates(ar);
  833. if (err)
  834. goto out;
  835. }
  836. out:
  837. WARN_ON_ONCE(err && IS_STARTED(ar));
  838. mutex_unlock(&ar->mutex);
  839. }
  840. static u64 carl9170_op_get_tsf(struct ieee80211_hw *hw)
  841. {
  842. struct ar9170 *ar = hw->priv;
  843. struct carl9170_tsf_rsp tsf;
  844. int err;
  845. mutex_lock(&ar->mutex);
  846. err = carl9170_exec_cmd(ar, CARL9170_CMD_READ_TSF,
  847. 0, NULL, sizeof(tsf), &tsf);
  848. mutex_unlock(&ar->mutex);
  849. if (WARN_ON(err))
  850. return 0;
  851. return le64_to_cpu(tsf.tsf_64);
  852. }
  853. static int carl9170_op_set_key(struct ieee80211_hw *hw, enum set_key_cmd cmd,
  854. struct ieee80211_vif *vif,
  855. struct ieee80211_sta *sta,
  856. struct ieee80211_key_conf *key)
  857. {
  858. struct ar9170 *ar = hw->priv;
  859. int err = 0, i;
  860. u8 ktype;
  861. if (ar->disable_offload || !vif)
  862. return -EOPNOTSUPP;
  863. /*
  864. * We have to fall back to software encryption, whenever
  865. * the user choose to participates in an IBSS or is connected
  866. * to more than one network.
  867. *
  868. * This is very unfortunate, because some machines cannot handle
  869. * the high througput speed in 802.11n networks.
  870. */
  871. if (!is_main_vif(ar, vif))
  872. goto err_softw;
  873. /*
  874. * While the hardware supports *catch-all* key, for offloading
  875. * group-key en-/de-cryption. The way of how the hardware
  876. * decides which keyId maps to which key, remains a mystery...
  877. */
  878. if ((vif->type != NL80211_IFTYPE_STATION &&
  879. vif->type != NL80211_IFTYPE_ADHOC) &&
  880. !(key->flags & IEEE80211_KEY_FLAG_PAIRWISE))
  881. return -EOPNOTSUPP;
  882. switch (key->cipher) {
  883. case WLAN_CIPHER_SUITE_WEP40:
  884. ktype = AR9170_ENC_ALG_WEP64;
  885. break;
  886. case WLAN_CIPHER_SUITE_WEP104:
  887. ktype = AR9170_ENC_ALG_WEP128;
  888. break;
  889. case WLAN_CIPHER_SUITE_TKIP:
  890. ktype = AR9170_ENC_ALG_TKIP;
  891. break;
  892. case WLAN_CIPHER_SUITE_CCMP:
  893. ktype = AR9170_ENC_ALG_AESCCMP;
  894. break;
  895. default:
  896. return -EOPNOTSUPP;
  897. }
  898. mutex_lock(&ar->mutex);
  899. if (cmd == SET_KEY) {
  900. if (!IS_STARTED(ar)) {
  901. err = -EOPNOTSUPP;
  902. goto out;
  903. }
  904. if (!(key->flags & IEEE80211_KEY_FLAG_PAIRWISE)) {
  905. sta = NULL;
  906. i = 64 + key->keyidx;
  907. } else {
  908. for (i = 0; i < 64; i++)
  909. if (!(ar->usedkeys & BIT(i)))
  910. break;
  911. if (i == 64)
  912. goto err_softw;
  913. }
  914. key->hw_key_idx = i;
  915. err = carl9170_upload_key(ar, i, sta ? sta->addr : NULL,
  916. ktype, 0, key->key,
  917. min_t(u8, 16, key->keylen));
  918. if (err)
  919. goto out;
  920. if (key->cipher == WLAN_CIPHER_SUITE_TKIP) {
  921. err = carl9170_upload_key(ar, i, sta ? sta->addr :
  922. NULL, ktype, 1,
  923. key->key + 16, 16);
  924. if (err)
  925. goto out;
  926. /*
  927. * hardware is not capable generating MMIC
  928. * of fragmented frames!
  929. */
  930. key->flags |= IEEE80211_KEY_FLAG_GENERATE_MMIC;
  931. }
  932. if (i < 64)
  933. ar->usedkeys |= BIT(i);
  934. key->flags |= IEEE80211_KEY_FLAG_GENERATE_IV;
  935. } else {
  936. if (!IS_STARTED(ar)) {
  937. /* The device is gone... together with the key ;-) */
  938. err = 0;
  939. goto out;
  940. }
  941. if (key->hw_key_idx < 64) {
  942. ar->usedkeys &= ~BIT(key->hw_key_idx);
  943. } else {
  944. err = carl9170_upload_key(ar, key->hw_key_idx, NULL,
  945. AR9170_ENC_ALG_NONE, 0,
  946. NULL, 0);
  947. if (err)
  948. goto out;
  949. if (key->cipher == WLAN_CIPHER_SUITE_TKIP) {
  950. err = carl9170_upload_key(ar, key->hw_key_idx,
  951. NULL,
  952. AR9170_ENC_ALG_NONE,
  953. 1, NULL, 0);
  954. if (err)
  955. goto out;
  956. }
  957. }
  958. err = carl9170_disable_key(ar, key->hw_key_idx);
  959. if (err)
  960. goto out;
  961. }
  962. out:
  963. mutex_unlock(&ar->mutex);
  964. return err;
  965. err_softw:
  966. if (!ar->rx_software_decryption) {
  967. ar->rx_software_decryption = true;
  968. carl9170_set_operating_mode(ar);
  969. }
  970. mutex_unlock(&ar->mutex);
  971. return -ENOSPC;
  972. }
  973. static int carl9170_op_sta_add(struct ieee80211_hw *hw,
  974. struct ieee80211_vif *vif,
  975. struct ieee80211_sta *sta)
  976. {
  977. struct carl9170_sta_info *sta_info = (void *) sta->drv_priv;
  978. unsigned int i;
  979. atomic_set(&sta_info->pending_frames, 0);
  980. if (sta->ht_cap.ht_supported) {
  981. if (sta->ht_cap.ampdu_density > 6) {
  982. /*
  983. * HW does support 16us AMPDU density.
  984. * No HT-Xmit for station.
  985. */
  986. return 0;
  987. }
  988. for (i = 0; i < CARL9170_NUM_TID; i++)
  989. rcu_assign_pointer(sta_info->agg[i], NULL);
  990. sta_info->ampdu_max_len = 1 << (3 + sta->ht_cap.ampdu_factor);
  991. sta_info->ht_sta = true;
  992. }
  993. return 0;
  994. }
  995. static int carl9170_op_sta_remove(struct ieee80211_hw *hw,
  996. struct ieee80211_vif *vif,
  997. struct ieee80211_sta *sta)
  998. {
  999. struct ar9170 *ar = hw->priv;
  1000. struct carl9170_sta_info *sta_info = (void *) sta->drv_priv;
  1001. unsigned int i;
  1002. bool cleanup = false;
  1003. if (sta->ht_cap.ht_supported) {
  1004. sta_info->ht_sta = false;
  1005. rcu_read_lock();
  1006. for (i = 0; i < CARL9170_NUM_TID; i++) {
  1007. struct carl9170_sta_tid *tid_info;
  1008. tid_info = rcu_dereference(sta_info->agg[i]);
  1009. rcu_assign_pointer(sta_info->agg[i], NULL);
  1010. if (!tid_info)
  1011. continue;
  1012. spin_lock_bh(&ar->tx_ampdu_list_lock);
  1013. if (tid_info->state > CARL9170_TID_STATE_SHUTDOWN)
  1014. tid_info->state = CARL9170_TID_STATE_SHUTDOWN;
  1015. spin_unlock_bh(&ar->tx_ampdu_list_lock);
  1016. cleanup = true;
  1017. }
  1018. rcu_read_unlock();
  1019. if (cleanup)
  1020. carl9170_ampdu_gc(ar);
  1021. }
  1022. return 0;
  1023. }
  1024. static int carl9170_op_conf_tx(struct ieee80211_hw *hw, u16 queue,
  1025. const struct ieee80211_tx_queue_params *param)
  1026. {
  1027. struct ar9170 *ar = hw->priv;
  1028. int ret;
  1029. mutex_lock(&ar->mutex);
  1030. if (queue < ar->hw->queues) {
  1031. memcpy(&ar->edcf[ar9170_qmap[queue]], param, sizeof(*param));
  1032. ret = carl9170_set_qos(ar);
  1033. } else {
  1034. ret = -EINVAL;
  1035. }
  1036. mutex_unlock(&ar->mutex);
  1037. return ret;
  1038. }
  1039. static void carl9170_ampdu_work(struct work_struct *work)
  1040. {
  1041. struct ar9170 *ar = container_of(work, struct ar9170,
  1042. ampdu_work);
  1043. if (!IS_STARTED(ar))
  1044. return;
  1045. mutex_lock(&ar->mutex);
  1046. carl9170_ampdu_gc(ar);
  1047. mutex_unlock(&ar->mutex);
  1048. }
  1049. static int carl9170_op_ampdu_action(struct ieee80211_hw *hw,
  1050. struct ieee80211_vif *vif,
  1051. enum ieee80211_ampdu_mlme_action action,
  1052. struct ieee80211_sta *sta,
  1053. u16 tid, u16 *ssn, u8 buf_size)
  1054. {
  1055. struct ar9170 *ar = hw->priv;
  1056. struct carl9170_sta_info *sta_info = (void *) sta->drv_priv;
  1057. struct carl9170_sta_tid *tid_info;
  1058. if (modparam_noht)
  1059. return -EOPNOTSUPP;
  1060. switch (action) {
  1061. case IEEE80211_AMPDU_TX_START:
  1062. if (!sta_info->ht_sta)
  1063. return -EOPNOTSUPP;
  1064. rcu_read_lock();
  1065. if (rcu_dereference(sta_info->agg[tid])) {
  1066. rcu_read_unlock();
  1067. return -EBUSY;
  1068. }
  1069. tid_info = kzalloc(sizeof(struct carl9170_sta_tid),
  1070. GFP_ATOMIC);
  1071. if (!tid_info) {
  1072. rcu_read_unlock();
  1073. return -ENOMEM;
  1074. }
  1075. tid_info->hsn = tid_info->bsn = tid_info->snx = (*ssn);
  1076. tid_info->state = CARL9170_TID_STATE_PROGRESS;
  1077. tid_info->tid = tid;
  1078. tid_info->max = sta_info->ampdu_max_len;
  1079. INIT_LIST_HEAD(&tid_info->list);
  1080. INIT_LIST_HEAD(&tid_info->tmp_list);
  1081. skb_queue_head_init(&tid_info->queue);
  1082. spin_lock_init(&tid_info->lock);
  1083. spin_lock_bh(&ar->tx_ampdu_list_lock);
  1084. ar->tx_ampdu_list_len++;
  1085. list_add_tail_rcu(&tid_info->list, &ar->tx_ampdu_list);
  1086. rcu_assign_pointer(sta_info->agg[tid], tid_info);
  1087. spin_unlock_bh(&ar->tx_ampdu_list_lock);
  1088. rcu_read_unlock();
  1089. ieee80211_start_tx_ba_cb_irqsafe(vif, sta->addr, tid);
  1090. break;
  1091. case IEEE80211_AMPDU_TX_STOP:
  1092. rcu_read_lock();
  1093. tid_info = rcu_dereference(sta_info->agg[tid]);
  1094. if (tid_info) {
  1095. spin_lock_bh(&ar->tx_ampdu_list_lock);
  1096. if (tid_info->state > CARL9170_TID_STATE_SHUTDOWN)
  1097. tid_info->state = CARL9170_TID_STATE_SHUTDOWN;
  1098. spin_unlock_bh(&ar->tx_ampdu_list_lock);
  1099. }
  1100. rcu_assign_pointer(sta_info->agg[tid], NULL);
  1101. rcu_read_unlock();
  1102. ieee80211_stop_tx_ba_cb_irqsafe(vif, sta->addr, tid);
  1103. ieee80211_queue_work(ar->hw, &ar->ampdu_work);
  1104. break;
  1105. case IEEE80211_AMPDU_TX_OPERATIONAL:
  1106. rcu_read_lock();
  1107. tid_info = rcu_dereference(sta_info->agg[tid]);
  1108. sta_info->stats[tid].clear = true;
  1109. sta_info->stats[tid].req = false;
  1110. if (tid_info) {
  1111. bitmap_zero(tid_info->bitmap, CARL9170_BAW_SIZE);
  1112. tid_info->state = CARL9170_TID_STATE_IDLE;
  1113. }
  1114. rcu_read_unlock();
  1115. if (WARN_ON_ONCE(!tid_info))
  1116. return -EFAULT;
  1117. break;
  1118. case IEEE80211_AMPDU_RX_START:
  1119. case IEEE80211_AMPDU_RX_STOP:
  1120. /* Handled by hardware */
  1121. break;
  1122. default:
  1123. return -EOPNOTSUPP;
  1124. }
  1125. return 0;
  1126. }
  1127. #ifdef CONFIG_CARL9170_WPC
  1128. static int carl9170_register_wps_button(struct ar9170 *ar)
  1129. {
  1130. struct input_dev *input;
  1131. int err;
  1132. if (!(ar->features & CARL9170_WPS_BUTTON))
  1133. return 0;
  1134. input = input_allocate_device();
  1135. if (!input)
  1136. return -ENOMEM;
  1137. snprintf(ar->wps.name, sizeof(ar->wps.name), "%s WPS Button",
  1138. wiphy_name(ar->hw->wiphy));
  1139. snprintf(ar->wps.phys, sizeof(ar->wps.phys),
  1140. "ieee80211/%s/input0", wiphy_name(ar->hw->wiphy));
  1141. input->name = ar->wps.name;
  1142. input->phys = ar->wps.phys;
  1143. input->id.bustype = BUS_USB;
  1144. input->dev.parent = &ar->hw->wiphy->dev;
  1145. input_set_capability(input, EV_KEY, KEY_WPS_BUTTON);
  1146. err = input_register_device(input);
  1147. if (err) {
  1148. input_free_device(input);
  1149. return err;
  1150. }
  1151. ar->wps.pbc = input;
  1152. return 0;
  1153. }
  1154. #endif /* CONFIG_CARL9170_WPC */
  1155. static int carl9170_op_get_survey(struct ieee80211_hw *hw, int idx,
  1156. struct survey_info *survey)
  1157. {
  1158. struct ar9170 *ar = hw->priv;
  1159. int err;
  1160. if (idx != 0)
  1161. return -ENOENT;
  1162. mutex_lock(&ar->mutex);
  1163. err = carl9170_get_noisefloor(ar);
  1164. mutex_unlock(&ar->mutex);
  1165. if (err)
  1166. return err;
  1167. survey->channel = ar->channel;
  1168. survey->filled = SURVEY_INFO_NOISE_DBM;
  1169. survey->noise = ar->noise[0];
  1170. return 0;
  1171. }
  1172. static void carl9170_op_flush(struct ieee80211_hw *hw, bool drop)
  1173. {
  1174. struct ar9170 *ar = hw->priv;
  1175. unsigned int vid;
  1176. mutex_lock(&ar->mutex);
  1177. for_each_set_bit(vid, &ar->vif_bitmap, ar->fw.vif_num)
  1178. carl9170_flush_cab(ar, vid);
  1179. carl9170_flush(ar, drop);
  1180. mutex_unlock(&ar->mutex);
  1181. }
  1182. static int carl9170_op_get_stats(struct ieee80211_hw *hw,
  1183. struct ieee80211_low_level_stats *stats)
  1184. {
  1185. struct ar9170 *ar = hw->priv;
  1186. memset(stats, 0, sizeof(*stats));
  1187. stats->dot11ACKFailureCount = ar->tx_ack_failures;
  1188. stats->dot11FCSErrorCount = ar->tx_fcs_errors;
  1189. return 0;
  1190. }
  1191. static void carl9170_op_sta_notify(struct ieee80211_hw *hw,
  1192. struct ieee80211_vif *vif,
  1193. enum sta_notify_cmd cmd,
  1194. struct ieee80211_sta *sta)
  1195. {
  1196. struct carl9170_sta_info *sta_info = (void *) sta->drv_priv;
  1197. switch (cmd) {
  1198. case STA_NOTIFY_SLEEP:
  1199. sta_info->sleeping = true;
  1200. if (atomic_read(&sta_info->pending_frames))
  1201. ieee80211_sta_block_awake(hw, sta, true);
  1202. break;
  1203. case STA_NOTIFY_AWAKE:
  1204. sta_info->sleeping = false;
  1205. break;
  1206. }
  1207. }
  1208. static bool carl9170_tx_frames_pending(struct ieee80211_hw *hw)
  1209. {
  1210. struct ar9170 *ar = hw->priv;
  1211. return !!atomic_read(&ar->tx_total_queued);
  1212. }
  1213. static const struct ieee80211_ops carl9170_ops = {
  1214. .start = carl9170_op_start,
  1215. .stop = carl9170_op_stop,
  1216. .tx = carl9170_op_tx,
  1217. .flush = carl9170_op_flush,
  1218. .add_interface = carl9170_op_add_interface,
  1219. .remove_interface = carl9170_op_remove_interface,
  1220. .config = carl9170_op_config,
  1221. .prepare_multicast = carl9170_op_prepare_multicast,
  1222. .configure_filter = carl9170_op_configure_filter,
  1223. .conf_tx = carl9170_op_conf_tx,
  1224. .bss_info_changed = carl9170_op_bss_info_changed,
  1225. .get_tsf = carl9170_op_get_tsf,
  1226. .set_key = carl9170_op_set_key,
  1227. .sta_add = carl9170_op_sta_add,
  1228. .sta_remove = carl9170_op_sta_remove,
  1229. .sta_notify = carl9170_op_sta_notify,
  1230. .get_survey = carl9170_op_get_survey,
  1231. .get_stats = carl9170_op_get_stats,
  1232. .ampdu_action = carl9170_op_ampdu_action,
  1233. .tx_frames_pending = carl9170_tx_frames_pending,
  1234. };
  1235. void *carl9170_alloc(size_t priv_size)
  1236. {
  1237. struct ieee80211_hw *hw;
  1238. struct ar9170 *ar;
  1239. struct sk_buff *skb;
  1240. int i;
  1241. /*
  1242. * this buffer is used for rx stream reconstruction.
  1243. * Under heavy load this device (or the transport layer?)
  1244. * tends to split the streams into separate rx descriptors.
  1245. */
  1246. skb = __dev_alloc_skb(AR9170_RX_STREAM_MAX_SIZE, GFP_KERNEL);
  1247. if (!skb)
  1248. goto err_nomem;
  1249. hw = ieee80211_alloc_hw(priv_size, &carl9170_ops);
  1250. if (!hw)
  1251. goto err_nomem;
  1252. ar = hw->priv;
  1253. ar->hw = hw;
  1254. ar->rx_failover = skb;
  1255. memset(&ar->rx_plcp, 0, sizeof(struct ar9170_rx_head));
  1256. ar->rx_has_plcp = false;
  1257. /*
  1258. * Here's a hidden pitfall!
  1259. *
  1260. * All 4 AC queues work perfectly well under _legacy_ operation.
  1261. * However as soon as aggregation is enabled, the traffic flow
  1262. * gets very bumpy. Therefore we have to _switch_ to a
  1263. * software AC with a single HW queue.
  1264. */
  1265. hw->queues = __AR9170_NUM_TXQ;
  1266. mutex_init(&ar->mutex);
  1267. spin_lock_init(&ar->beacon_lock);
  1268. spin_lock_init(&ar->cmd_lock);
  1269. spin_lock_init(&ar->tx_stats_lock);
  1270. spin_lock_init(&ar->tx_ampdu_list_lock);
  1271. spin_lock_init(&ar->mem_lock);
  1272. spin_lock_init(&ar->state_lock);
  1273. atomic_set(&ar->pending_restarts, 0);
  1274. ar->vifs = 0;
  1275. for (i = 0; i < ar->hw->queues; i++) {
  1276. skb_queue_head_init(&ar->tx_status[i]);
  1277. skb_queue_head_init(&ar->tx_pending[i]);
  1278. }
  1279. INIT_WORK(&ar->ps_work, carl9170_ps_work);
  1280. INIT_WORK(&ar->ping_work, carl9170_ping_work);
  1281. INIT_WORK(&ar->restart_work, carl9170_restart_work);
  1282. INIT_WORK(&ar->ampdu_work, carl9170_ampdu_work);
  1283. INIT_DELAYED_WORK(&ar->tx_janitor, carl9170_tx_janitor);
  1284. INIT_LIST_HEAD(&ar->tx_ampdu_list);
  1285. rcu_assign_pointer(ar->tx_ampdu_iter,
  1286. (struct carl9170_sta_tid *) &ar->tx_ampdu_list);
  1287. bitmap_zero(&ar->vif_bitmap, ar->fw.vif_num);
  1288. INIT_LIST_HEAD(&ar->vif_list);
  1289. init_completion(&ar->tx_flush);
  1290. /* firmware decides which modes we support */
  1291. hw->wiphy->interface_modes = 0;
  1292. hw->flags |= IEEE80211_HW_RX_INCLUDES_FCS |
  1293. IEEE80211_HW_REPORTS_TX_ACK_STATUS |
  1294. IEEE80211_HW_SUPPORTS_PS |
  1295. IEEE80211_HW_PS_NULLFUNC_STACK |
  1296. IEEE80211_HW_NEED_DTIM_PERIOD |
  1297. IEEE80211_HW_SIGNAL_DBM;
  1298. if (!modparam_noht) {
  1299. /*
  1300. * see the comment above, why we allow the user
  1301. * to disable HT by a module parameter.
  1302. */
  1303. hw->flags |= IEEE80211_HW_AMPDU_AGGREGATION;
  1304. }
  1305. hw->extra_tx_headroom = sizeof(struct _carl9170_tx_superframe);
  1306. hw->sta_data_size = sizeof(struct carl9170_sta_info);
  1307. hw->vif_data_size = sizeof(struct carl9170_vif_info);
  1308. hw->max_rates = CARL9170_TX_MAX_RATES;
  1309. hw->max_rate_tries = CARL9170_TX_USER_RATE_TRIES;
  1310. for (i = 0; i < ARRAY_SIZE(ar->noise); i++)
  1311. ar->noise[i] = -95; /* ATH_DEFAULT_NOISE_FLOOR */
  1312. hw->wiphy->flags &= ~WIPHY_FLAG_PS_ON_BY_DEFAULT;
  1313. return ar;
  1314. err_nomem:
  1315. kfree_skb(skb);
  1316. return ERR_PTR(-ENOMEM);
  1317. }
  1318. static int carl9170_read_eeprom(struct ar9170 *ar)
  1319. {
  1320. #define RW 8 /* number of words to read at once */
  1321. #define RB (sizeof(u32) * RW)
  1322. u8 *eeprom = (void *)&ar->eeprom;
  1323. __le32 offsets[RW];
  1324. int i, j, err;
  1325. BUILD_BUG_ON(sizeof(ar->eeprom) & 3);
  1326. BUILD_BUG_ON(RB > CARL9170_MAX_CMD_LEN - 4);
  1327. #ifndef __CHECKER__
  1328. /* don't want to handle trailing remains */
  1329. BUILD_BUG_ON(sizeof(ar->eeprom) % RB);
  1330. #endif
  1331. for (i = 0; i < sizeof(ar->eeprom) / RB; i++) {
  1332. for (j = 0; j < RW; j++)
  1333. offsets[j] = cpu_to_le32(AR9170_EEPROM_START +
  1334. RB * i + 4 * j);
  1335. err = carl9170_exec_cmd(ar, CARL9170_CMD_RREG,
  1336. RB, (u8 *) &offsets,
  1337. RB, eeprom + RB * i);
  1338. if (err)
  1339. return err;
  1340. }
  1341. #undef RW
  1342. #undef RB
  1343. return 0;
  1344. }
  1345. static int carl9170_parse_eeprom(struct ar9170 *ar)
  1346. {
  1347. struct ath_regulatory *regulatory = &ar->common.regulatory;
  1348. unsigned int rx_streams, tx_streams, tx_params = 0;
  1349. int bands = 0;
  1350. if (ar->eeprom.length == cpu_to_le16(0xffff))
  1351. return -ENODATA;
  1352. rx_streams = hweight8(ar->eeprom.rx_mask);
  1353. tx_streams = hweight8(ar->eeprom.tx_mask);
  1354. if (rx_streams != tx_streams) {
  1355. tx_params = IEEE80211_HT_MCS_TX_RX_DIFF;
  1356. WARN_ON(!(tx_streams >= 1 && tx_streams <=
  1357. IEEE80211_HT_MCS_TX_MAX_STREAMS));
  1358. tx_params = (tx_streams - 1) <<
  1359. IEEE80211_HT_MCS_TX_MAX_STREAMS_SHIFT;
  1360. carl9170_band_2GHz.ht_cap.mcs.tx_params |= tx_params;
  1361. carl9170_band_5GHz.ht_cap.mcs.tx_params |= tx_params;
  1362. }
  1363. if (ar->eeprom.operating_flags & AR9170_OPFLAG_2GHZ) {
  1364. ar->hw->wiphy->bands[IEEE80211_BAND_2GHZ] =
  1365. &carl9170_band_2GHz;
  1366. bands++;
  1367. }
  1368. if (ar->eeprom.operating_flags & AR9170_OPFLAG_5GHZ) {
  1369. ar->hw->wiphy->bands[IEEE80211_BAND_5GHZ] =
  1370. &carl9170_band_5GHz;
  1371. bands++;
  1372. }
  1373. /*
  1374. * I measured this, a bandswitch takes roughly
  1375. * 135 ms and a frequency switch about 80.
  1376. *
  1377. * FIXME: measure these values again once EEPROM settings
  1378. * are used, that will influence them!
  1379. */
  1380. if (bands == 2)
  1381. ar->hw->channel_change_time = 135 * 1000;
  1382. else
  1383. ar->hw->channel_change_time = 80 * 1000;
  1384. regulatory->current_rd = le16_to_cpu(ar->eeprom.reg_domain[0]);
  1385. regulatory->current_rd_ext = le16_to_cpu(ar->eeprom.reg_domain[1]);
  1386. /* second part of wiphy init */
  1387. SET_IEEE80211_PERM_ADDR(ar->hw, ar->eeprom.mac_address);
  1388. return bands ? 0 : -EINVAL;
  1389. }
  1390. static int carl9170_reg_notifier(struct wiphy *wiphy,
  1391. struct regulatory_request *request)
  1392. {
  1393. struct ieee80211_hw *hw = wiphy_to_ieee80211_hw(wiphy);
  1394. struct ar9170 *ar = hw->priv;
  1395. return ath_reg_notifier_apply(wiphy, request, &ar->common.regulatory);
  1396. }
  1397. int carl9170_register(struct ar9170 *ar)
  1398. {
  1399. struct ath_regulatory *regulatory = &ar->common.regulatory;
  1400. int err = 0, i;
  1401. if (WARN_ON(ar->mem_bitmap))
  1402. return -EINVAL;
  1403. ar->mem_bitmap = kzalloc(roundup(ar->fw.mem_blocks, BITS_PER_LONG) *
  1404. sizeof(unsigned long), GFP_KERNEL);
  1405. if (!ar->mem_bitmap)
  1406. return -ENOMEM;
  1407. /* try to read EEPROM, init MAC addr */
  1408. err = carl9170_read_eeprom(ar);
  1409. if (err)
  1410. return err;
  1411. err = carl9170_fw_fix_eeprom(ar);
  1412. if (err)
  1413. return err;
  1414. err = carl9170_parse_eeprom(ar);
  1415. if (err)
  1416. return err;
  1417. err = ath_regd_init(regulatory, ar->hw->wiphy,
  1418. carl9170_reg_notifier);
  1419. if (err)
  1420. return err;
  1421. if (modparam_noht) {
  1422. carl9170_band_2GHz.ht_cap.ht_supported = false;
  1423. carl9170_band_5GHz.ht_cap.ht_supported = false;
  1424. }
  1425. for (i = 0; i < ar->fw.vif_num; i++) {
  1426. ar->vif_priv[i].id = i;
  1427. ar->vif_priv[i].vif = NULL;
  1428. }
  1429. err = ieee80211_register_hw(ar->hw);
  1430. if (err)
  1431. return err;
  1432. /* mac80211 interface is now registered */
  1433. ar->registered = true;
  1434. if (!ath_is_world_regd(regulatory))
  1435. regulatory_hint(ar->hw->wiphy, regulatory->alpha2);
  1436. #ifdef CONFIG_CARL9170_DEBUGFS
  1437. carl9170_debugfs_register(ar);
  1438. #endif /* CONFIG_CARL9170_DEBUGFS */
  1439. err = carl9170_led_init(ar);
  1440. if (err)
  1441. goto err_unreg;
  1442. #ifdef CONFIG_CARL9170_LEDS
  1443. err = carl9170_led_register(ar);
  1444. if (err)
  1445. goto err_unreg;
  1446. #endif /* CONFIG_CARL9170_LEDS */
  1447. #ifdef CONFIG_CARL9170_WPC
  1448. err = carl9170_register_wps_button(ar);
  1449. if (err)
  1450. goto err_unreg;
  1451. #endif /* CONFIG_CARL9170_WPC */
  1452. dev_info(&ar->udev->dev, "Atheros AR9170 is registered as '%s'\n",
  1453. wiphy_name(ar->hw->wiphy));
  1454. return 0;
  1455. err_unreg:
  1456. carl9170_unregister(ar);
  1457. return err;
  1458. }
  1459. void carl9170_unregister(struct ar9170 *ar)
  1460. {
  1461. if (!ar->registered)
  1462. return;
  1463. ar->registered = false;
  1464. #ifdef CONFIG_CARL9170_LEDS
  1465. carl9170_led_unregister(ar);
  1466. #endif /* CONFIG_CARL9170_LEDS */
  1467. #ifdef CONFIG_CARL9170_DEBUGFS
  1468. carl9170_debugfs_unregister(ar);
  1469. #endif /* CONFIG_CARL9170_DEBUGFS */
  1470. #ifdef CONFIG_CARL9170_WPC
  1471. if (ar->wps.pbc) {
  1472. input_unregister_device(ar->wps.pbc);
  1473. ar->wps.pbc = NULL;
  1474. }
  1475. #endif /* CONFIG_CARL9170_WPC */
  1476. carl9170_cancel_worker(ar);
  1477. cancel_work_sync(&ar->restart_work);
  1478. ieee80211_unregister_hw(ar->hw);
  1479. }
  1480. void carl9170_free(struct ar9170 *ar)
  1481. {
  1482. WARN_ON(ar->registered);
  1483. WARN_ON(IS_INITIALIZED(ar));
  1484. kfree_skb(ar->rx_failover);
  1485. ar->rx_failover = NULL;
  1486. kfree(ar->mem_bitmap);
  1487. ar->mem_bitmap = NULL;
  1488. mutex_destroy(&ar->mutex);
  1489. ieee80211_free_hw(ar->hw);
  1490. }