rt2x00dev.c 27 KB

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  1. /*
  2. Copyright (C) 2010 Willow Garage <http://www.willowgarage.com>
  3. Copyright (C) 2004 - 2010 Ivo van Doorn <IvDoorn@gmail.com>
  4. <http://rt2x00.serialmonkey.com>
  5. This program is free software; you can redistribute it and/or modify
  6. it under the terms of the GNU General Public License as published by
  7. the Free Software Foundation; either version 2 of the License, or
  8. (at your option) any later version.
  9. This program is distributed in the hope that it will be useful,
  10. but WITHOUT ANY WARRANTY; without even the implied warranty of
  11. MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  12. GNU General Public License for more details.
  13. You should have received a copy of the GNU General Public License
  14. along with this program; if not, write to the
  15. Free Software Foundation, Inc.,
  16. 59 Temple Place - Suite 330, Boston, MA 02111-1307, USA.
  17. */
  18. /*
  19. Module: rt2x00lib
  20. Abstract: rt2x00 generic device routines.
  21. */
  22. #include <linux/kernel.h>
  23. #include <linux/module.h>
  24. #include <linux/slab.h>
  25. #include "rt2x00.h"
  26. #include "rt2x00lib.h"
  27. /*
  28. * Radio control handlers.
  29. */
  30. int rt2x00lib_enable_radio(struct rt2x00_dev *rt2x00dev)
  31. {
  32. int status;
  33. /*
  34. * Don't enable the radio twice.
  35. * And check if the hardware button has been disabled.
  36. */
  37. if (test_bit(DEVICE_STATE_ENABLED_RADIO, &rt2x00dev->flags))
  38. return 0;
  39. /*
  40. * Initialize all data queues.
  41. */
  42. rt2x00queue_init_queues(rt2x00dev);
  43. /*
  44. * Enable radio.
  45. */
  46. status =
  47. rt2x00dev->ops->lib->set_device_state(rt2x00dev, STATE_RADIO_ON);
  48. if (status)
  49. return status;
  50. rt2x00dev->ops->lib->set_device_state(rt2x00dev, STATE_RADIO_IRQ_ON);
  51. rt2x00leds_led_radio(rt2x00dev, true);
  52. rt2x00led_led_activity(rt2x00dev, true);
  53. set_bit(DEVICE_STATE_ENABLED_RADIO, &rt2x00dev->flags);
  54. /*
  55. * Enable RX.
  56. */
  57. rt2x00lib_toggle_rx(rt2x00dev, STATE_RADIO_RX_ON);
  58. /*
  59. * Start watchdog monitoring.
  60. */
  61. rt2x00link_start_watchdog(rt2x00dev);
  62. /*
  63. * Start the TX queues.
  64. */
  65. ieee80211_wake_queues(rt2x00dev->hw);
  66. return 0;
  67. }
  68. void rt2x00lib_disable_radio(struct rt2x00_dev *rt2x00dev)
  69. {
  70. if (!test_and_clear_bit(DEVICE_STATE_ENABLED_RADIO, &rt2x00dev->flags))
  71. return;
  72. /*
  73. * Stop the TX queues in mac80211.
  74. */
  75. ieee80211_stop_queues(rt2x00dev->hw);
  76. rt2x00queue_stop_queues(rt2x00dev);
  77. /*
  78. * Stop watchdog monitoring.
  79. */
  80. rt2x00link_stop_watchdog(rt2x00dev);
  81. /*
  82. * Disable RX.
  83. */
  84. rt2x00lib_toggle_rx(rt2x00dev, STATE_RADIO_RX_OFF);
  85. /*
  86. * Disable radio.
  87. */
  88. rt2x00dev->ops->lib->set_device_state(rt2x00dev, STATE_RADIO_OFF);
  89. rt2x00dev->ops->lib->set_device_state(rt2x00dev, STATE_RADIO_IRQ_OFF);
  90. rt2x00led_led_activity(rt2x00dev, false);
  91. rt2x00leds_led_radio(rt2x00dev, false);
  92. }
  93. void rt2x00lib_toggle_rx(struct rt2x00_dev *rt2x00dev, enum dev_state state)
  94. {
  95. /*
  96. * When we are disabling the RX, we should also stop the link tuner.
  97. */
  98. if (state == STATE_RADIO_RX_OFF)
  99. rt2x00link_stop_tuner(rt2x00dev);
  100. rt2x00dev->ops->lib->set_device_state(rt2x00dev, state);
  101. /*
  102. * When we are enabling the RX, we should also start the link tuner.
  103. */
  104. if (state == STATE_RADIO_RX_ON)
  105. rt2x00link_start_tuner(rt2x00dev);
  106. }
  107. static void rt2x00lib_intf_scheduled_iter(void *data, u8 *mac,
  108. struct ieee80211_vif *vif)
  109. {
  110. struct rt2x00_dev *rt2x00dev = data;
  111. struct rt2x00_intf *intf = vif_to_intf(vif);
  112. int delayed_flags;
  113. /*
  114. * Copy all data we need during this action under the protection
  115. * of a spinlock. Otherwise race conditions might occur which results
  116. * into an invalid configuration.
  117. */
  118. spin_lock(&intf->lock);
  119. delayed_flags = intf->delayed_flags;
  120. intf->delayed_flags = 0;
  121. spin_unlock(&intf->lock);
  122. /*
  123. * It is possible the radio was disabled while the work had been
  124. * scheduled. If that happens we should return here immediately,
  125. * note that in the spinlock protected area above the delayed_flags
  126. * have been cleared correctly.
  127. */
  128. if (!test_bit(DEVICE_STATE_ENABLED_RADIO, &rt2x00dev->flags))
  129. return;
  130. if (delayed_flags & DELAYED_UPDATE_BEACON)
  131. rt2x00queue_update_beacon(rt2x00dev, vif, true);
  132. }
  133. static void rt2x00lib_intf_scheduled(struct work_struct *work)
  134. {
  135. struct rt2x00_dev *rt2x00dev =
  136. container_of(work, struct rt2x00_dev, intf_work);
  137. /*
  138. * Iterate over each interface and perform the
  139. * requested configurations.
  140. */
  141. ieee80211_iterate_active_interfaces(rt2x00dev->hw,
  142. rt2x00lib_intf_scheduled_iter,
  143. rt2x00dev);
  144. }
  145. /*
  146. * Interrupt context handlers.
  147. */
  148. static void rt2x00lib_bc_buffer_iter(void *data, u8 *mac,
  149. struct ieee80211_vif *vif)
  150. {
  151. struct rt2x00_dev *rt2x00dev = data;
  152. struct sk_buff *skb;
  153. /*
  154. * Only AP mode interfaces do broad- and multicast buffering
  155. */
  156. if (vif->type != NL80211_IFTYPE_AP)
  157. return;
  158. /*
  159. * Send out buffered broad- and multicast frames
  160. */
  161. skb = ieee80211_get_buffered_bc(rt2x00dev->hw, vif);
  162. while (skb) {
  163. rt2x00mac_tx(rt2x00dev->hw, skb);
  164. skb = ieee80211_get_buffered_bc(rt2x00dev->hw, vif);
  165. }
  166. }
  167. static void rt2x00lib_beaconupdate_iter(void *data, u8 *mac,
  168. struct ieee80211_vif *vif)
  169. {
  170. struct rt2x00_dev *rt2x00dev = data;
  171. if (vif->type != NL80211_IFTYPE_AP &&
  172. vif->type != NL80211_IFTYPE_ADHOC &&
  173. vif->type != NL80211_IFTYPE_MESH_POINT &&
  174. vif->type != NL80211_IFTYPE_WDS)
  175. return;
  176. rt2x00queue_update_beacon(rt2x00dev, vif, true);
  177. }
  178. void rt2x00lib_beacondone(struct rt2x00_dev *rt2x00dev)
  179. {
  180. if (!test_bit(DEVICE_STATE_ENABLED_RADIO, &rt2x00dev->flags))
  181. return;
  182. /* send buffered bc/mc frames out for every bssid */
  183. ieee80211_iterate_active_interfaces(rt2x00dev->hw,
  184. rt2x00lib_bc_buffer_iter,
  185. rt2x00dev);
  186. /*
  187. * Devices with pre tbtt interrupt don't need to update the beacon
  188. * here as they will fetch the next beacon directly prior to
  189. * transmission.
  190. */
  191. if (test_bit(DRIVER_SUPPORT_PRE_TBTT_INTERRUPT, &rt2x00dev->flags))
  192. return;
  193. /* fetch next beacon */
  194. ieee80211_iterate_active_interfaces(rt2x00dev->hw,
  195. rt2x00lib_beaconupdate_iter,
  196. rt2x00dev);
  197. }
  198. EXPORT_SYMBOL_GPL(rt2x00lib_beacondone);
  199. void rt2x00lib_pretbtt(struct rt2x00_dev *rt2x00dev)
  200. {
  201. if (!test_bit(DEVICE_STATE_ENABLED_RADIO, &rt2x00dev->flags))
  202. return;
  203. /* fetch next beacon */
  204. ieee80211_iterate_active_interfaces(rt2x00dev->hw,
  205. rt2x00lib_beaconupdate_iter,
  206. rt2x00dev);
  207. }
  208. EXPORT_SYMBOL_GPL(rt2x00lib_pretbtt);
  209. void rt2x00lib_dmadone(struct queue_entry *entry)
  210. {
  211. rt2x00queue_index_inc(entry->queue, Q_INDEX_DMA_DONE);
  212. }
  213. EXPORT_SYMBOL_GPL(rt2x00lib_dmadone);
  214. void rt2x00lib_txdone(struct queue_entry *entry,
  215. struct txdone_entry_desc *txdesc)
  216. {
  217. struct rt2x00_dev *rt2x00dev = entry->queue->rt2x00dev;
  218. struct ieee80211_tx_info *tx_info = IEEE80211_SKB_CB(entry->skb);
  219. struct skb_frame_desc *skbdesc = get_skb_frame_desc(entry->skb);
  220. enum data_queue_qid qid = skb_get_queue_mapping(entry->skb);
  221. unsigned int header_length = ieee80211_get_hdrlen_from_skb(entry->skb);
  222. u8 rate_idx, rate_flags, retry_rates;
  223. u8 skbdesc_flags = skbdesc->flags;
  224. unsigned int i;
  225. bool success;
  226. /*
  227. * Unmap the skb.
  228. */
  229. rt2x00queue_unmap_skb(rt2x00dev, entry->skb);
  230. /*
  231. * Remove the extra tx headroom from the skb.
  232. */
  233. skb_pull(entry->skb, rt2x00dev->ops->extra_tx_headroom);
  234. /*
  235. * Signal that the TX descriptor is no longer in the skb.
  236. */
  237. skbdesc->flags &= ~SKBDESC_DESC_IN_SKB;
  238. /*
  239. * Remove L2 padding which was added during
  240. */
  241. if (test_bit(DRIVER_REQUIRE_L2PAD, &rt2x00dev->flags))
  242. rt2x00queue_remove_l2pad(entry->skb, header_length);
  243. /*
  244. * If the IV/EIV data was stripped from the frame before it was
  245. * passed to the hardware, we should now reinsert it again because
  246. * mac80211 will expect the same data to be present it the
  247. * frame as it was passed to us.
  248. */
  249. if (test_bit(CONFIG_SUPPORT_HW_CRYPTO, &rt2x00dev->flags))
  250. rt2x00crypto_tx_insert_iv(entry->skb, header_length);
  251. /*
  252. * Send frame to debugfs immediately, after this call is completed
  253. * we are going to overwrite the skb->cb array.
  254. */
  255. rt2x00debug_dump_frame(rt2x00dev, DUMP_FRAME_TXDONE, entry->skb);
  256. /*
  257. * Determine if the frame has been successfully transmitted.
  258. */
  259. success =
  260. test_bit(TXDONE_SUCCESS, &txdesc->flags) ||
  261. test_bit(TXDONE_UNKNOWN, &txdesc->flags);
  262. /*
  263. * Update TX statistics.
  264. */
  265. rt2x00dev->link.qual.tx_success += success;
  266. rt2x00dev->link.qual.tx_failed += !success;
  267. rate_idx = skbdesc->tx_rate_idx;
  268. rate_flags = skbdesc->tx_rate_flags;
  269. retry_rates = test_bit(TXDONE_FALLBACK, &txdesc->flags) ?
  270. (txdesc->retry + 1) : 1;
  271. /*
  272. * Initialize TX status
  273. */
  274. memset(&tx_info->status, 0, sizeof(tx_info->status));
  275. tx_info->status.ack_signal = 0;
  276. /*
  277. * Frame was send with retries, hardware tried
  278. * different rates to send out the frame, at each
  279. * retry it lowered the rate 1 step except when the
  280. * lowest rate was used.
  281. */
  282. for (i = 0; i < retry_rates && i < IEEE80211_TX_MAX_RATES; i++) {
  283. tx_info->status.rates[i].idx = rate_idx - i;
  284. tx_info->status.rates[i].flags = rate_flags;
  285. if (rate_idx - i == 0) {
  286. /*
  287. * The lowest rate (index 0) was used until the
  288. * number of max retries was reached.
  289. */
  290. tx_info->status.rates[i].count = retry_rates - i;
  291. i++;
  292. break;
  293. }
  294. tx_info->status.rates[i].count = 1;
  295. }
  296. if (i < (IEEE80211_TX_MAX_RATES - 1))
  297. tx_info->status.rates[i].idx = -1; /* terminate */
  298. if (!(tx_info->flags & IEEE80211_TX_CTL_NO_ACK)) {
  299. if (success)
  300. tx_info->flags |= IEEE80211_TX_STAT_ACK;
  301. else
  302. rt2x00dev->low_level_stats.dot11ACKFailureCount++;
  303. }
  304. /*
  305. * Every single frame has it's own tx status, hence report
  306. * every frame as ampdu of size 1.
  307. *
  308. * TODO: if we can find out how many frames were aggregated
  309. * by the hw we could provide the real ampdu_len to mac80211
  310. * which would allow the rc algorithm to better decide on
  311. * which rates are suitable.
  312. */
  313. if (tx_info->flags & IEEE80211_TX_CTL_AMPDU) {
  314. tx_info->flags |= IEEE80211_TX_STAT_AMPDU;
  315. tx_info->status.ampdu_len = 1;
  316. tx_info->status.ampdu_ack_len = success ? 1 : 0;
  317. }
  318. if (rate_flags & IEEE80211_TX_RC_USE_RTS_CTS) {
  319. if (success)
  320. rt2x00dev->low_level_stats.dot11RTSSuccessCount++;
  321. else
  322. rt2x00dev->low_level_stats.dot11RTSFailureCount++;
  323. }
  324. /*
  325. * Only send the status report to mac80211 when it's a frame
  326. * that originated in mac80211. If this was a extra frame coming
  327. * through a mac80211 library call (RTS/CTS) then we should not
  328. * send the status report back.
  329. */
  330. if (!(skbdesc_flags & SKBDESC_NOT_MAC80211))
  331. ieee80211_tx_status(rt2x00dev->hw, entry->skb);
  332. else
  333. dev_kfree_skb_any(entry->skb);
  334. /*
  335. * Make this entry available for reuse.
  336. */
  337. entry->skb = NULL;
  338. entry->flags = 0;
  339. rt2x00dev->ops->lib->clear_entry(entry);
  340. rt2x00queue_index_inc(entry->queue, Q_INDEX_DONE);
  341. /*
  342. * If the data queue was below the threshold before the txdone
  343. * handler we must make sure the packet queue in the mac80211 stack
  344. * is reenabled when the txdone handler has finished.
  345. */
  346. if (!rt2x00queue_threshold(entry->queue))
  347. ieee80211_wake_queue(rt2x00dev->hw, qid);
  348. }
  349. EXPORT_SYMBOL_GPL(rt2x00lib_txdone);
  350. void rt2x00lib_txdone_noinfo(struct queue_entry *entry, u32 status)
  351. {
  352. struct txdone_entry_desc txdesc;
  353. txdesc.flags = 0;
  354. __set_bit(status, &txdesc.flags);
  355. txdesc.retry = 0;
  356. rt2x00lib_txdone(entry, &txdesc);
  357. }
  358. EXPORT_SYMBOL_GPL(rt2x00lib_txdone_noinfo);
  359. static int rt2x00lib_rxdone_read_signal(struct rt2x00_dev *rt2x00dev,
  360. struct rxdone_entry_desc *rxdesc)
  361. {
  362. struct ieee80211_supported_band *sband;
  363. const struct rt2x00_rate *rate;
  364. unsigned int i;
  365. int signal;
  366. int type;
  367. /*
  368. * For non-HT rates the MCS value needs to contain the
  369. * actually used rate modulation (CCK or OFDM).
  370. */
  371. if (rxdesc->dev_flags & RXDONE_SIGNAL_MCS)
  372. signal = RATE_MCS(rxdesc->rate_mode, rxdesc->signal);
  373. else
  374. signal = rxdesc->signal;
  375. type = (rxdesc->dev_flags & RXDONE_SIGNAL_MASK);
  376. sband = &rt2x00dev->bands[rt2x00dev->curr_band];
  377. for (i = 0; i < sband->n_bitrates; i++) {
  378. rate = rt2x00_get_rate(sband->bitrates[i].hw_value);
  379. if (((type == RXDONE_SIGNAL_PLCP) &&
  380. (rate->plcp == signal)) ||
  381. ((type == RXDONE_SIGNAL_BITRATE) &&
  382. (rate->bitrate == signal)) ||
  383. ((type == RXDONE_SIGNAL_MCS) &&
  384. (rate->mcs == signal))) {
  385. return i;
  386. }
  387. }
  388. WARNING(rt2x00dev, "Frame received with unrecognized signal, "
  389. "signal=0x%.4x, type=%d.\n", signal, type);
  390. return 0;
  391. }
  392. void rt2x00lib_rxdone(struct rt2x00_dev *rt2x00dev,
  393. struct queue_entry *entry)
  394. {
  395. struct rxdone_entry_desc rxdesc;
  396. struct sk_buff *skb;
  397. struct ieee80211_rx_status *rx_status;
  398. unsigned int header_length;
  399. int rate_idx;
  400. if (test_bit(ENTRY_DATA_IO_FAILED, &entry->flags))
  401. goto submit_entry;
  402. /*
  403. * Allocate a new sk_buffer. If no new buffer available, drop the
  404. * received frame and reuse the existing buffer.
  405. */
  406. skb = rt2x00queue_alloc_rxskb(rt2x00dev, entry);
  407. if (!skb)
  408. return;
  409. /*
  410. * Unmap the skb.
  411. */
  412. rt2x00queue_unmap_skb(rt2x00dev, entry->skb);
  413. /*
  414. * Extract the RXD details.
  415. */
  416. memset(&rxdesc, 0, sizeof(rxdesc));
  417. rt2x00dev->ops->lib->fill_rxdone(entry, &rxdesc);
  418. /*
  419. * The data behind the ieee80211 header must be
  420. * aligned on a 4 byte boundary.
  421. */
  422. header_length = ieee80211_get_hdrlen_from_skb(entry->skb);
  423. /*
  424. * Hardware might have stripped the IV/EIV/ICV data,
  425. * in that case it is possible that the data was
  426. * provided separately (through hardware descriptor)
  427. * in which case we should reinsert the data into the frame.
  428. */
  429. if ((rxdesc.dev_flags & RXDONE_CRYPTO_IV) &&
  430. (rxdesc.flags & RX_FLAG_IV_STRIPPED))
  431. rt2x00crypto_rx_insert_iv(entry->skb, header_length,
  432. &rxdesc);
  433. else if (header_length &&
  434. (rxdesc.size > header_length) &&
  435. (rxdesc.dev_flags & RXDONE_L2PAD))
  436. rt2x00queue_remove_l2pad(entry->skb, header_length);
  437. else
  438. rt2x00queue_align_payload(entry->skb, header_length);
  439. /* Trim buffer to correct size */
  440. skb_trim(entry->skb, rxdesc.size);
  441. /*
  442. * Check if the frame was received using HT. In that case,
  443. * the rate is the MCS index and should be passed to mac80211
  444. * directly. Otherwise we need to translate the signal to
  445. * the correct bitrate index.
  446. */
  447. if (rxdesc.rate_mode == RATE_MODE_CCK ||
  448. rxdesc.rate_mode == RATE_MODE_OFDM) {
  449. rate_idx = rt2x00lib_rxdone_read_signal(rt2x00dev, &rxdesc);
  450. } else {
  451. rxdesc.flags |= RX_FLAG_HT;
  452. rate_idx = rxdesc.signal;
  453. }
  454. /*
  455. * Update extra components
  456. */
  457. rt2x00link_update_stats(rt2x00dev, entry->skb, &rxdesc);
  458. rt2x00debug_update_crypto(rt2x00dev, &rxdesc);
  459. rt2x00debug_dump_frame(rt2x00dev, DUMP_FRAME_RXDONE, entry->skb);
  460. /*
  461. * Initialize RX status information, and send frame
  462. * to mac80211.
  463. */
  464. rx_status = IEEE80211_SKB_RXCB(entry->skb);
  465. rx_status->mactime = rxdesc.timestamp;
  466. rx_status->band = rt2x00dev->curr_band;
  467. rx_status->freq = rt2x00dev->curr_freq;
  468. rx_status->rate_idx = rate_idx;
  469. rx_status->signal = rxdesc.rssi;
  470. rx_status->flag = rxdesc.flags;
  471. rx_status->antenna = rt2x00dev->link.ant.active.rx;
  472. ieee80211_rx_ni(rt2x00dev->hw, entry->skb);
  473. /*
  474. * Replace the skb with the freshly allocated one.
  475. */
  476. entry->skb = skb;
  477. submit_entry:
  478. rt2x00dev->ops->lib->clear_entry(entry);
  479. rt2x00queue_index_inc(entry->queue, Q_INDEX);
  480. rt2x00queue_index_inc(entry->queue, Q_INDEX_DONE);
  481. }
  482. EXPORT_SYMBOL_GPL(rt2x00lib_rxdone);
  483. /*
  484. * Driver initialization handlers.
  485. */
  486. const struct rt2x00_rate rt2x00_supported_rates[12] = {
  487. {
  488. .flags = DEV_RATE_CCK,
  489. .bitrate = 10,
  490. .ratemask = BIT(0),
  491. .plcp = 0x00,
  492. .mcs = RATE_MCS(RATE_MODE_CCK, 0),
  493. },
  494. {
  495. .flags = DEV_RATE_CCK | DEV_RATE_SHORT_PREAMBLE,
  496. .bitrate = 20,
  497. .ratemask = BIT(1),
  498. .plcp = 0x01,
  499. .mcs = RATE_MCS(RATE_MODE_CCK, 1),
  500. },
  501. {
  502. .flags = DEV_RATE_CCK | DEV_RATE_SHORT_PREAMBLE,
  503. .bitrate = 55,
  504. .ratemask = BIT(2),
  505. .plcp = 0x02,
  506. .mcs = RATE_MCS(RATE_MODE_CCK, 2),
  507. },
  508. {
  509. .flags = DEV_RATE_CCK | DEV_RATE_SHORT_PREAMBLE,
  510. .bitrate = 110,
  511. .ratemask = BIT(3),
  512. .plcp = 0x03,
  513. .mcs = RATE_MCS(RATE_MODE_CCK, 3),
  514. },
  515. {
  516. .flags = DEV_RATE_OFDM,
  517. .bitrate = 60,
  518. .ratemask = BIT(4),
  519. .plcp = 0x0b,
  520. .mcs = RATE_MCS(RATE_MODE_OFDM, 0),
  521. },
  522. {
  523. .flags = DEV_RATE_OFDM,
  524. .bitrate = 90,
  525. .ratemask = BIT(5),
  526. .plcp = 0x0f,
  527. .mcs = RATE_MCS(RATE_MODE_OFDM, 1),
  528. },
  529. {
  530. .flags = DEV_RATE_OFDM,
  531. .bitrate = 120,
  532. .ratemask = BIT(6),
  533. .plcp = 0x0a,
  534. .mcs = RATE_MCS(RATE_MODE_OFDM, 2),
  535. },
  536. {
  537. .flags = DEV_RATE_OFDM,
  538. .bitrate = 180,
  539. .ratemask = BIT(7),
  540. .plcp = 0x0e,
  541. .mcs = RATE_MCS(RATE_MODE_OFDM, 3),
  542. },
  543. {
  544. .flags = DEV_RATE_OFDM,
  545. .bitrate = 240,
  546. .ratemask = BIT(8),
  547. .plcp = 0x09,
  548. .mcs = RATE_MCS(RATE_MODE_OFDM, 4),
  549. },
  550. {
  551. .flags = DEV_RATE_OFDM,
  552. .bitrate = 360,
  553. .ratemask = BIT(9),
  554. .plcp = 0x0d,
  555. .mcs = RATE_MCS(RATE_MODE_OFDM, 5),
  556. },
  557. {
  558. .flags = DEV_RATE_OFDM,
  559. .bitrate = 480,
  560. .ratemask = BIT(10),
  561. .plcp = 0x08,
  562. .mcs = RATE_MCS(RATE_MODE_OFDM, 6),
  563. },
  564. {
  565. .flags = DEV_RATE_OFDM,
  566. .bitrate = 540,
  567. .ratemask = BIT(11),
  568. .plcp = 0x0c,
  569. .mcs = RATE_MCS(RATE_MODE_OFDM, 7),
  570. },
  571. };
  572. static void rt2x00lib_channel(struct ieee80211_channel *entry,
  573. const int channel, const int tx_power,
  574. const int value)
  575. {
  576. entry->center_freq = ieee80211_channel_to_frequency(channel);
  577. entry->hw_value = value;
  578. entry->max_power = tx_power;
  579. entry->max_antenna_gain = 0xff;
  580. }
  581. static void rt2x00lib_rate(struct ieee80211_rate *entry,
  582. const u16 index, const struct rt2x00_rate *rate)
  583. {
  584. entry->flags = 0;
  585. entry->bitrate = rate->bitrate;
  586. entry->hw_value =index;
  587. entry->hw_value_short = index;
  588. if (rate->flags & DEV_RATE_SHORT_PREAMBLE)
  589. entry->flags |= IEEE80211_RATE_SHORT_PREAMBLE;
  590. }
  591. static int rt2x00lib_probe_hw_modes(struct rt2x00_dev *rt2x00dev,
  592. struct hw_mode_spec *spec)
  593. {
  594. struct ieee80211_hw *hw = rt2x00dev->hw;
  595. struct ieee80211_channel *channels;
  596. struct ieee80211_rate *rates;
  597. unsigned int num_rates;
  598. unsigned int i;
  599. num_rates = 0;
  600. if (spec->supported_rates & SUPPORT_RATE_CCK)
  601. num_rates += 4;
  602. if (spec->supported_rates & SUPPORT_RATE_OFDM)
  603. num_rates += 8;
  604. channels = kzalloc(sizeof(*channels) * spec->num_channels, GFP_KERNEL);
  605. if (!channels)
  606. return -ENOMEM;
  607. rates = kzalloc(sizeof(*rates) * num_rates, GFP_KERNEL);
  608. if (!rates)
  609. goto exit_free_channels;
  610. /*
  611. * Initialize Rate list.
  612. */
  613. for (i = 0; i < num_rates; i++)
  614. rt2x00lib_rate(&rates[i], i, rt2x00_get_rate(i));
  615. /*
  616. * Initialize Channel list.
  617. */
  618. for (i = 0; i < spec->num_channels; i++) {
  619. rt2x00lib_channel(&channels[i],
  620. spec->channels[i].channel,
  621. spec->channels_info[i].max_power, i);
  622. }
  623. /*
  624. * Intitialize 802.11b, 802.11g
  625. * Rates: CCK, OFDM.
  626. * Channels: 2.4 GHz
  627. */
  628. if (spec->supported_bands & SUPPORT_BAND_2GHZ) {
  629. rt2x00dev->bands[IEEE80211_BAND_2GHZ].n_channels = 14;
  630. rt2x00dev->bands[IEEE80211_BAND_2GHZ].n_bitrates = num_rates;
  631. rt2x00dev->bands[IEEE80211_BAND_2GHZ].channels = channels;
  632. rt2x00dev->bands[IEEE80211_BAND_2GHZ].bitrates = rates;
  633. hw->wiphy->bands[IEEE80211_BAND_2GHZ] =
  634. &rt2x00dev->bands[IEEE80211_BAND_2GHZ];
  635. memcpy(&rt2x00dev->bands[IEEE80211_BAND_2GHZ].ht_cap,
  636. &spec->ht, sizeof(spec->ht));
  637. }
  638. /*
  639. * Intitialize 802.11a
  640. * Rates: OFDM.
  641. * Channels: OFDM, UNII, HiperLAN2.
  642. */
  643. if (spec->supported_bands & SUPPORT_BAND_5GHZ) {
  644. rt2x00dev->bands[IEEE80211_BAND_5GHZ].n_channels =
  645. spec->num_channels - 14;
  646. rt2x00dev->bands[IEEE80211_BAND_5GHZ].n_bitrates =
  647. num_rates - 4;
  648. rt2x00dev->bands[IEEE80211_BAND_5GHZ].channels = &channels[14];
  649. rt2x00dev->bands[IEEE80211_BAND_5GHZ].bitrates = &rates[4];
  650. hw->wiphy->bands[IEEE80211_BAND_5GHZ] =
  651. &rt2x00dev->bands[IEEE80211_BAND_5GHZ];
  652. memcpy(&rt2x00dev->bands[IEEE80211_BAND_5GHZ].ht_cap,
  653. &spec->ht, sizeof(spec->ht));
  654. }
  655. return 0;
  656. exit_free_channels:
  657. kfree(channels);
  658. ERROR(rt2x00dev, "Allocation ieee80211 modes failed.\n");
  659. return -ENOMEM;
  660. }
  661. static void rt2x00lib_remove_hw(struct rt2x00_dev *rt2x00dev)
  662. {
  663. if (test_bit(DEVICE_STATE_REGISTERED_HW, &rt2x00dev->flags))
  664. ieee80211_unregister_hw(rt2x00dev->hw);
  665. if (likely(rt2x00dev->hw->wiphy->bands[IEEE80211_BAND_2GHZ])) {
  666. kfree(rt2x00dev->hw->wiphy->bands[IEEE80211_BAND_2GHZ]->channels);
  667. kfree(rt2x00dev->hw->wiphy->bands[IEEE80211_BAND_2GHZ]->bitrates);
  668. rt2x00dev->hw->wiphy->bands[IEEE80211_BAND_2GHZ] = NULL;
  669. rt2x00dev->hw->wiphy->bands[IEEE80211_BAND_5GHZ] = NULL;
  670. }
  671. kfree(rt2x00dev->spec.channels_info);
  672. }
  673. static int rt2x00lib_probe_hw(struct rt2x00_dev *rt2x00dev)
  674. {
  675. struct hw_mode_spec *spec = &rt2x00dev->spec;
  676. int status;
  677. if (test_bit(DEVICE_STATE_REGISTERED_HW, &rt2x00dev->flags))
  678. return 0;
  679. /*
  680. * Initialize HW modes.
  681. */
  682. status = rt2x00lib_probe_hw_modes(rt2x00dev, spec);
  683. if (status)
  684. return status;
  685. /*
  686. * Initialize HW fields.
  687. */
  688. rt2x00dev->hw->queues = rt2x00dev->ops->tx_queues;
  689. /*
  690. * Initialize extra TX headroom required.
  691. */
  692. rt2x00dev->hw->extra_tx_headroom =
  693. max_t(unsigned int, IEEE80211_TX_STATUS_HEADROOM,
  694. rt2x00dev->ops->extra_tx_headroom);
  695. /*
  696. * Take TX headroom required for alignment into account.
  697. */
  698. if (test_bit(DRIVER_REQUIRE_L2PAD, &rt2x00dev->flags))
  699. rt2x00dev->hw->extra_tx_headroom += RT2X00_L2PAD_SIZE;
  700. else if (test_bit(DRIVER_REQUIRE_DMA, &rt2x00dev->flags))
  701. rt2x00dev->hw->extra_tx_headroom += RT2X00_ALIGN_SIZE;
  702. /*
  703. * Register HW.
  704. */
  705. status = ieee80211_register_hw(rt2x00dev->hw);
  706. if (status)
  707. return status;
  708. set_bit(DEVICE_STATE_REGISTERED_HW, &rt2x00dev->flags);
  709. return 0;
  710. }
  711. /*
  712. * Initialization/uninitialization handlers.
  713. */
  714. static void rt2x00lib_uninitialize(struct rt2x00_dev *rt2x00dev)
  715. {
  716. if (!test_and_clear_bit(DEVICE_STATE_INITIALIZED, &rt2x00dev->flags))
  717. return;
  718. /*
  719. * Unregister extra components.
  720. */
  721. rt2x00rfkill_unregister(rt2x00dev);
  722. /*
  723. * Allow the HW to uninitialize.
  724. */
  725. rt2x00dev->ops->lib->uninitialize(rt2x00dev);
  726. /*
  727. * Free allocated queue entries.
  728. */
  729. rt2x00queue_uninitialize(rt2x00dev);
  730. }
  731. static int rt2x00lib_initialize(struct rt2x00_dev *rt2x00dev)
  732. {
  733. int status;
  734. if (test_bit(DEVICE_STATE_INITIALIZED, &rt2x00dev->flags))
  735. return 0;
  736. /*
  737. * Allocate all queue entries.
  738. */
  739. status = rt2x00queue_initialize(rt2x00dev);
  740. if (status)
  741. return status;
  742. /*
  743. * Initialize the device.
  744. */
  745. status = rt2x00dev->ops->lib->initialize(rt2x00dev);
  746. if (status) {
  747. rt2x00queue_uninitialize(rt2x00dev);
  748. return status;
  749. }
  750. set_bit(DEVICE_STATE_INITIALIZED, &rt2x00dev->flags);
  751. /*
  752. * Register the extra components.
  753. */
  754. rt2x00rfkill_register(rt2x00dev);
  755. return 0;
  756. }
  757. int rt2x00lib_start(struct rt2x00_dev *rt2x00dev)
  758. {
  759. int retval;
  760. if (test_bit(DEVICE_STATE_STARTED, &rt2x00dev->flags))
  761. return 0;
  762. /*
  763. * If this is the first interface which is added,
  764. * we should load the firmware now.
  765. */
  766. retval = rt2x00lib_load_firmware(rt2x00dev);
  767. if (retval)
  768. return retval;
  769. /*
  770. * Initialize the device.
  771. */
  772. retval = rt2x00lib_initialize(rt2x00dev);
  773. if (retval)
  774. return retval;
  775. rt2x00dev->intf_ap_count = 0;
  776. rt2x00dev->intf_sta_count = 0;
  777. rt2x00dev->intf_associated = 0;
  778. /* Enable the radio */
  779. retval = rt2x00lib_enable_radio(rt2x00dev);
  780. if (retval) {
  781. rt2x00queue_uninitialize(rt2x00dev);
  782. return retval;
  783. }
  784. set_bit(DEVICE_STATE_STARTED, &rt2x00dev->flags);
  785. return 0;
  786. }
  787. void rt2x00lib_stop(struct rt2x00_dev *rt2x00dev)
  788. {
  789. if (!test_and_clear_bit(DEVICE_STATE_STARTED, &rt2x00dev->flags))
  790. return;
  791. /*
  792. * Perhaps we can add something smarter here,
  793. * but for now just disabling the radio should do.
  794. */
  795. rt2x00lib_disable_radio(rt2x00dev);
  796. rt2x00dev->intf_ap_count = 0;
  797. rt2x00dev->intf_sta_count = 0;
  798. rt2x00dev->intf_associated = 0;
  799. }
  800. /*
  801. * driver allocation handlers.
  802. */
  803. int rt2x00lib_probe_dev(struct rt2x00_dev *rt2x00dev)
  804. {
  805. int retval = -ENOMEM;
  806. mutex_init(&rt2x00dev->csr_mutex);
  807. set_bit(DEVICE_STATE_PRESENT, &rt2x00dev->flags);
  808. /*
  809. * Make room for rt2x00_intf inside the per-interface
  810. * structure ieee80211_vif.
  811. */
  812. rt2x00dev->hw->vif_data_size = sizeof(struct rt2x00_intf);
  813. /*
  814. * Determine which operating modes are supported, all modes
  815. * which require beaconing, depend on the availability of
  816. * beacon entries.
  817. */
  818. rt2x00dev->hw->wiphy->interface_modes = BIT(NL80211_IFTYPE_STATION);
  819. if (rt2x00dev->ops->bcn->entry_num > 0)
  820. rt2x00dev->hw->wiphy->interface_modes |=
  821. BIT(NL80211_IFTYPE_ADHOC) |
  822. BIT(NL80211_IFTYPE_AP) |
  823. BIT(NL80211_IFTYPE_MESH_POINT) |
  824. BIT(NL80211_IFTYPE_WDS);
  825. /*
  826. * Initialize configuration work.
  827. */
  828. INIT_WORK(&rt2x00dev->intf_work, rt2x00lib_intf_scheduled);
  829. /*
  830. * Let the driver probe the device to detect the capabilities.
  831. */
  832. retval = rt2x00dev->ops->lib->probe_hw(rt2x00dev);
  833. if (retval) {
  834. ERROR(rt2x00dev, "Failed to allocate device.\n");
  835. goto exit;
  836. }
  837. /*
  838. * Allocate queue array.
  839. */
  840. retval = rt2x00queue_allocate(rt2x00dev);
  841. if (retval)
  842. goto exit;
  843. /*
  844. * Initialize ieee80211 structure.
  845. */
  846. retval = rt2x00lib_probe_hw(rt2x00dev);
  847. if (retval) {
  848. ERROR(rt2x00dev, "Failed to initialize hw.\n");
  849. goto exit;
  850. }
  851. /*
  852. * Register extra components.
  853. */
  854. rt2x00link_register(rt2x00dev);
  855. rt2x00leds_register(rt2x00dev);
  856. rt2x00debug_register(rt2x00dev);
  857. return 0;
  858. exit:
  859. rt2x00lib_remove_dev(rt2x00dev);
  860. return retval;
  861. }
  862. EXPORT_SYMBOL_GPL(rt2x00lib_probe_dev);
  863. void rt2x00lib_remove_dev(struct rt2x00_dev *rt2x00dev)
  864. {
  865. clear_bit(DEVICE_STATE_PRESENT, &rt2x00dev->flags);
  866. /*
  867. * Disable radio.
  868. */
  869. rt2x00lib_disable_radio(rt2x00dev);
  870. /*
  871. * Stop all work.
  872. */
  873. cancel_work_sync(&rt2x00dev->intf_work);
  874. cancel_work_sync(&rt2x00dev->rxdone_work);
  875. cancel_work_sync(&rt2x00dev->txdone_work);
  876. /*
  877. * Uninitialize device.
  878. */
  879. rt2x00lib_uninitialize(rt2x00dev);
  880. /*
  881. * Free extra components
  882. */
  883. rt2x00debug_deregister(rt2x00dev);
  884. rt2x00leds_unregister(rt2x00dev);
  885. /*
  886. * Free ieee80211_hw memory.
  887. */
  888. rt2x00lib_remove_hw(rt2x00dev);
  889. /*
  890. * Free firmware image.
  891. */
  892. rt2x00lib_free_firmware(rt2x00dev);
  893. /*
  894. * Free queue structures.
  895. */
  896. rt2x00queue_free(rt2x00dev);
  897. }
  898. EXPORT_SYMBOL_GPL(rt2x00lib_remove_dev);
  899. /*
  900. * Device state handlers
  901. */
  902. #ifdef CONFIG_PM
  903. int rt2x00lib_suspend(struct rt2x00_dev *rt2x00dev, pm_message_t state)
  904. {
  905. NOTICE(rt2x00dev, "Going to sleep.\n");
  906. /*
  907. * Prevent mac80211 from accessing driver while suspended.
  908. */
  909. if (!test_and_clear_bit(DEVICE_STATE_PRESENT, &rt2x00dev->flags))
  910. return 0;
  911. /*
  912. * Cleanup as much as possible.
  913. */
  914. rt2x00lib_uninitialize(rt2x00dev);
  915. /*
  916. * Suspend/disable extra components.
  917. */
  918. rt2x00leds_suspend(rt2x00dev);
  919. rt2x00debug_deregister(rt2x00dev);
  920. /*
  921. * Set device mode to sleep for power management,
  922. * on some hardware this call seems to consistently fail.
  923. * From the specifications it is hard to tell why it fails,
  924. * and if this is a "bad thing".
  925. * Overall it is safe to just ignore the failure and
  926. * continue suspending. The only downside is that the
  927. * device will not be in optimal power save mode, but with
  928. * the radio and the other components already disabled the
  929. * device is as good as disabled.
  930. */
  931. if (rt2x00dev->ops->lib->set_device_state(rt2x00dev, STATE_SLEEP))
  932. WARNING(rt2x00dev, "Device failed to enter sleep state, "
  933. "continue suspending.\n");
  934. return 0;
  935. }
  936. EXPORT_SYMBOL_GPL(rt2x00lib_suspend);
  937. int rt2x00lib_resume(struct rt2x00_dev *rt2x00dev)
  938. {
  939. NOTICE(rt2x00dev, "Waking up.\n");
  940. /*
  941. * Restore/enable extra components.
  942. */
  943. rt2x00debug_register(rt2x00dev);
  944. rt2x00leds_resume(rt2x00dev);
  945. /*
  946. * We are ready again to receive requests from mac80211.
  947. */
  948. set_bit(DEVICE_STATE_PRESENT, &rt2x00dev->flags);
  949. return 0;
  950. }
  951. EXPORT_SYMBOL_GPL(rt2x00lib_resume);
  952. #endif /* CONFIG_PM */
  953. /*
  954. * rt2x00lib module information.
  955. */
  956. MODULE_AUTHOR(DRV_PROJECT);
  957. MODULE_VERSION(DRV_VERSION);
  958. MODULE_DESCRIPTION("rt2x00 library");
  959. MODULE_LICENSE("GPL");