3945.c 76 KB

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  1. /******************************************************************************
  2. *
  3. * Copyright(c) 2003 - 2011 Intel Corporation. All rights reserved.
  4. *
  5. * This program is free software; you can redistribute it and/or modify it
  6. * under the terms of version 2 of the GNU General Public License as
  7. * published by the Free Software Foundation.
  8. *
  9. * This program is distributed in the hope that it will be useful, but WITHOUT
  10. * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
  11. * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License for
  12. * more details.
  13. *
  14. * You should have received a copy of the GNU General Public License along with
  15. * this program; if not, write to the Free Software Foundation, Inc.,
  16. * 51 Franklin Street, Fifth Floor, Boston, MA 02110, USA
  17. *
  18. * The full GNU General Public License is included in this distribution in the
  19. * file called LICENSE.
  20. *
  21. * Contact Information:
  22. * Intel Linux Wireless <ilw@linux.intel.com>
  23. * Intel Corporation, 5200 N.E. Elam Young Parkway, Hillsboro, OR 97124-6497
  24. *
  25. *****************************************************************************/
  26. #include <linux/kernel.h>
  27. #include <linux/module.h>
  28. #include <linux/init.h>
  29. #include <linux/slab.h>
  30. #include <linux/pci.h>
  31. #include <linux/dma-mapping.h>
  32. #include <linux/delay.h>
  33. #include <linux/sched.h>
  34. #include <linux/skbuff.h>
  35. #include <linux/netdevice.h>
  36. #include <linux/firmware.h>
  37. #include <linux/etherdevice.h>
  38. #include <asm/unaligned.h>
  39. #include <net/mac80211.h>
  40. #include "common.h"
  41. #include "3945.h"
  42. /* Send led command */
  43. static int
  44. il3945_send_led_cmd(struct il_priv *il, struct il_led_cmd *led_cmd)
  45. {
  46. struct il_host_cmd cmd = {
  47. .id = C_LEDS,
  48. .len = sizeof(struct il_led_cmd),
  49. .data = led_cmd,
  50. .flags = CMD_ASYNC,
  51. .callback = NULL,
  52. };
  53. return il_send_cmd(il, &cmd);
  54. }
  55. #define IL_DECLARE_RATE_INFO(r, ip, in, rp, rn, pp, np) \
  56. [RATE_##r##M_IDX] = { RATE_##r##M_PLCP, \
  57. RATE_##r##M_IEEE, \
  58. RATE_##ip##M_IDX, \
  59. RATE_##in##M_IDX, \
  60. RATE_##rp##M_IDX, \
  61. RATE_##rn##M_IDX, \
  62. RATE_##pp##M_IDX, \
  63. RATE_##np##M_IDX, \
  64. RATE_##r##M_IDX_TBL, \
  65. RATE_##ip##M_IDX_TBL }
  66. /*
  67. * Parameter order:
  68. * rate, prev rate, next rate, prev tgg rate, next tgg rate
  69. *
  70. * If there isn't a valid next or previous rate then INV is used which
  71. * maps to RATE_INVALID
  72. *
  73. */
  74. const struct il3945_rate_info il3945_rates[RATE_COUNT_3945] = {
  75. IL_DECLARE_RATE_INFO(1, INV, 2, INV, 2, INV, 2), /* 1mbps */
  76. IL_DECLARE_RATE_INFO(2, 1, 5, 1, 5, 1, 5), /* 2mbps */
  77. IL_DECLARE_RATE_INFO(5, 2, 6, 2, 11, 2, 11), /*5.5mbps */
  78. IL_DECLARE_RATE_INFO(11, 9, 12, 5, 12, 5, 18), /* 11mbps */
  79. IL_DECLARE_RATE_INFO(6, 5, 9, 5, 11, 5, 11), /* 6mbps */
  80. IL_DECLARE_RATE_INFO(9, 6, 11, 5, 11, 5, 11), /* 9mbps */
  81. IL_DECLARE_RATE_INFO(12, 11, 18, 11, 18, 11, 18), /* 12mbps */
  82. IL_DECLARE_RATE_INFO(18, 12, 24, 12, 24, 11, 24), /* 18mbps */
  83. IL_DECLARE_RATE_INFO(24, 18, 36, 18, 36, 18, 36), /* 24mbps */
  84. IL_DECLARE_RATE_INFO(36, 24, 48, 24, 48, 24, 48), /* 36mbps */
  85. IL_DECLARE_RATE_INFO(48, 36, 54, 36, 54, 36, 54), /* 48mbps */
  86. IL_DECLARE_RATE_INFO(54, 48, INV, 48, INV, 48, INV), /* 54mbps */
  87. };
  88. static inline u8
  89. il3945_get_prev_ieee_rate(u8 rate_idx)
  90. {
  91. u8 rate = il3945_rates[rate_idx].prev_ieee;
  92. if (rate == RATE_INVALID)
  93. rate = rate_idx;
  94. return rate;
  95. }
  96. /* 1 = enable the il3945_disable_events() function */
  97. #define IL_EVT_DISABLE (0)
  98. #define IL_EVT_DISABLE_SIZE (1532/32)
  99. /**
  100. * il3945_disable_events - Disable selected events in uCode event log
  101. *
  102. * Disable an event by writing "1"s into "disable"
  103. * bitmap in SRAM. Bit position corresponds to Event # (id/type).
  104. * Default values of 0 enable uCode events to be logged.
  105. * Use for only special debugging. This function is just a placeholder as-is,
  106. * you'll need to provide the special bits! ...
  107. * ... and set IL_EVT_DISABLE to 1. */
  108. void
  109. il3945_disable_events(struct il_priv *il)
  110. {
  111. int i;
  112. u32 base; /* SRAM address of event log header */
  113. u32 disable_ptr; /* SRAM address of event-disable bitmap array */
  114. u32 array_size; /* # of u32 entries in array */
  115. static const u32 evt_disable[IL_EVT_DISABLE_SIZE] = {
  116. 0x00000000, /* 31 - 0 Event id numbers */
  117. 0x00000000, /* 63 - 32 */
  118. 0x00000000, /* 95 - 64 */
  119. 0x00000000, /* 127 - 96 */
  120. 0x00000000, /* 159 - 128 */
  121. 0x00000000, /* 191 - 160 */
  122. 0x00000000, /* 223 - 192 */
  123. 0x00000000, /* 255 - 224 */
  124. 0x00000000, /* 287 - 256 */
  125. 0x00000000, /* 319 - 288 */
  126. 0x00000000, /* 351 - 320 */
  127. 0x00000000, /* 383 - 352 */
  128. 0x00000000, /* 415 - 384 */
  129. 0x00000000, /* 447 - 416 */
  130. 0x00000000, /* 479 - 448 */
  131. 0x00000000, /* 511 - 480 */
  132. 0x00000000, /* 543 - 512 */
  133. 0x00000000, /* 575 - 544 */
  134. 0x00000000, /* 607 - 576 */
  135. 0x00000000, /* 639 - 608 */
  136. 0x00000000, /* 671 - 640 */
  137. 0x00000000, /* 703 - 672 */
  138. 0x00000000, /* 735 - 704 */
  139. 0x00000000, /* 767 - 736 */
  140. 0x00000000, /* 799 - 768 */
  141. 0x00000000, /* 831 - 800 */
  142. 0x00000000, /* 863 - 832 */
  143. 0x00000000, /* 895 - 864 */
  144. 0x00000000, /* 927 - 896 */
  145. 0x00000000, /* 959 - 928 */
  146. 0x00000000, /* 991 - 960 */
  147. 0x00000000, /* 1023 - 992 */
  148. 0x00000000, /* 1055 - 1024 */
  149. 0x00000000, /* 1087 - 1056 */
  150. 0x00000000, /* 1119 - 1088 */
  151. 0x00000000, /* 1151 - 1120 */
  152. 0x00000000, /* 1183 - 1152 */
  153. 0x00000000, /* 1215 - 1184 */
  154. 0x00000000, /* 1247 - 1216 */
  155. 0x00000000, /* 1279 - 1248 */
  156. 0x00000000, /* 1311 - 1280 */
  157. 0x00000000, /* 1343 - 1312 */
  158. 0x00000000, /* 1375 - 1344 */
  159. 0x00000000, /* 1407 - 1376 */
  160. 0x00000000, /* 1439 - 1408 */
  161. 0x00000000, /* 1471 - 1440 */
  162. 0x00000000, /* 1503 - 1472 */
  163. };
  164. base = le32_to_cpu(il->card_alive.log_event_table_ptr);
  165. if (!il3945_hw_valid_rtc_data_addr(base)) {
  166. IL_ERR("Invalid event log pointer 0x%08X\n", base);
  167. return;
  168. }
  169. disable_ptr = il_read_targ_mem(il, base + (4 * sizeof(u32)));
  170. array_size = il_read_targ_mem(il, base + (5 * sizeof(u32)));
  171. if (IL_EVT_DISABLE && array_size == IL_EVT_DISABLE_SIZE) {
  172. D_INFO("Disabling selected uCode log events at 0x%x\n",
  173. disable_ptr);
  174. for (i = 0; i < IL_EVT_DISABLE_SIZE; i++)
  175. il_write_targ_mem(il, disable_ptr + (i * sizeof(u32)),
  176. evt_disable[i]);
  177. } else {
  178. D_INFO("Selected uCode log events may be disabled\n");
  179. D_INFO(" by writing \"1\"s into disable bitmap\n");
  180. D_INFO(" in SRAM at 0x%x, size %d u32s\n", disable_ptr,
  181. array_size);
  182. }
  183. }
  184. static int
  185. il3945_hwrate_to_plcp_idx(u8 plcp)
  186. {
  187. int idx;
  188. for (idx = 0; idx < RATE_COUNT_3945; idx++)
  189. if (il3945_rates[idx].plcp == plcp)
  190. return idx;
  191. return -1;
  192. }
  193. #ifdef CONFIG_IWLEGACY_DEBUG
  194. #define TX_STATUS_ENTRY(x) case TX_3945_STATUS_FAIL_ ## x: return #x
  195. static const char *
  196. il3945_get_tx_fail_reason(u32 status)
  197. {
  198. switch (status & TX_STATUS_MSK) {
  199. case TX_3945_STATUS_SUCCESS:
  200. return "SUCCESS";
  201. TX_STATUS_ENTRY(SHORT_LIMIT);
  202. TX_STATUS_ENTRY(LONG_LIMIT);
  203. TX_STATUS_ENTRY(FIFO_UNDERRUN);
  204. TX_STATUS_ENTRY(MGMNT_ABORT);
  205. TX_STATUS_ENTRY(NEXT_FRAG);
  206. TX_STATUS_ENTRY(LIFE_EXPIRE);
  207. TX_STATUS_ENTRY(DEST_PS);
  208. TX_STATUS_ENTRY(ABORTED);
  209. TX_STATUS_ENTRY(BT_RETRY);
  210. TX_STATUS_ENTRY(STA_INVALID);
  211. TX_STATUS_ENTRY(FRAG_DROPPED);
  212. TX_STATUS_ENTRY(TID_DISABLE);
  213. TX_STATUS_ENTRY(FRAME_FLUSHED);
  214. TX_STATUS_ENTRY(INSUFFICIENT_CF_POLL);
  215. TX_STATUS_ENTRY(TX_LOCKED);
  216. TX_STATUS_ENTRY(NO_BEACON_ON_RADAR);
  217. }
  218. return "UNKNOWN";
  219. }
  220. #else
  221. static inline const char *
  222. il3945_get_tx_fail_reason(u32 status)
  223. {
  224. return "";
  225. }
  226. #endif
  227. /*
  228. * get ieee prev rate from rate scale table.
  229. * for A and B mode we need to overright prev
  230. * value
  231. */
  232. int
  233. il3945_rs_next_rate(struct il_priv *il, int rate)
  234. {
  235. int next_rate = il3945_get_prev_ieee_rate(rate);
  236. switch (il->band) {
  237. case IEEE80211_BAND_5GHZ:
  238. if (rate == RATE_12M_IDX)
  239. next_rate = RATE_9M_IDX;
  240. else if (rate == RATE_6M_IDX)
  241. next_rate = RATE_6M_IDX;
  242. break;
  243. case IEEE80211_BAND_2GHZ:
  244. if (!(il->_3945.sta_supp_rates & IL_OFDM_RATES_MASK) &&
  245. il_is_associated(il)) {
  246. if (rate == RATE_11M_IDX)
  247. next_rate = RATE_5M_IDX;
  248. }
  249. break;
  250. default:
  251. break;
  252. }
  253. return next_rate;
  254. }
  255. /**
  256. * il3945_tx_queue_reclaim - Reclaim Tx queue entries already Tx'd
  257. *
  258. * When FW advances 'R' idx, all entries between old and new 'R' idx
  259. * need to be reclaimed. As result, some free space forms. If there is
  260. * enough free space (> low mark), wake the stack that feeds us.
  261. */
  262. static void
  263. il3945_tx_queue_reclaim(struct il_priv *il, int txq_id, int idx)
  264. {
  265. struct il_tx_queue *txq = &il->txq[txq_id];
  266. struct il_queue *q = &txq->q;
  267. struct sk_buff *skb;
  268. BUG_ON(txq_id == IL39_CMD_QUEUE_NUM);
  269. for (idx = il_queue_inc_wrap(idx, q->n_bd); q->read_ptr != idx;
  270. q->read_ptr = il_queue_inc_wrap(q->read_ptr, q->n_bd)) {
  271. skb = txq->skbs[txq->q.read_ptr];
  272. ieee80211_tx_status_irqsafe(il->hw, skb);
  273. txq->skbs[txq->q.read_ptr] = NULL;
  274. il->ops->txq_free_tfd(il, txq);
  275. }
  276. if (il_queue_space(q) > q->low_mark && txq_id >= 0 &&
  277. txq_id != IL39_CMD_QUEUE_NUM && il->mac80211_registered)
  278. il_wake_queue(il, txq);
  279. }
  280. /**
  281. * il3945_hdl_tx - Handle Tx response
  282. */
  283. static void
  284. il3945_hdl_tx(struct il_priv *il, struct il_rx_buf *rxb)
  285. {
  286. struct il_rx_pkt *pkt = rxb_addr(rxb);
  287. u16 sequence = le16_to_cpu(pkt->hdr.sequence);
  288. int txq_id = SEQ_TO_QUEUE(sequence);
  289. int idx = SEQ_TO_IDX(sequence);
  290. struct il_tx_queue *txq = &il->txq[txq_id];
  291. struct ieee80211_tx_info *info;
  292. struct il3945_tx_resp *tx_resp = (void *)&pkt->u.raw[0];
  293. u32 status = le32_to_cpu(tx_resp->status);
  294. int rate_idx;
  295. int fail;
  296. if (idx >= txq->q.n_bd || il_queue_used(&txq->q, idx) == 0) {
  297. IL_ERR("Read idx for DMA queue txq_id (%d) idx %d "
  298. "is out of range [0-%d] %d %d\n", txq_id, idx,
  299. txq->q.n_bd, txq->q.write_ptr, txq->q.read_ptr);
  300. return;
  301. }
  302. /*
  303. * Firmware will not transmit frame on passive channel, if it not yet
  304. * received some valid frame on that channel. When this error happen
  305. * we have to wait until firmware will unblock itself i.e. when we
  306. * note received beacon or other frame. We unblock queues in
  307. * il3945_pass_packet_to_mac80211 or in il_mac_bss_info_changed.
  308. */
  309. if (unlikely((status & TX_STATUS_MSK) == TX_STATUS_FAIL_PASSIVE_NO_RX) &&
  310. il->iw_mode == NL80211_IFTYPE_STATION) {
  311. il_stop_queues_by_reason(il, IL_STOP_REASON_PASSIVE);
  312. D_INFO("Stopped queues - RX waiting on passive channel\n");
  313. }
  314. txq->time_stamp = jiffies;
  315. info = IEEE80211_SKB_CB(txq->skbs[txq->q.read_ptr]);
  316. ieee80211_tx_info_clear_status(info);
  317. /* Fill the MRR chain with some info about on-chip retransmissions */
  318. rate_idx = il3945_hwrate_to_plcp_idx(tx_resp->rate);
  319. if (info->band == IEEE80211_BAND_5GHZ)
  320. rate_idx -= IL_FIRST_OFDM_RATE;
  321. fail = tx_resp->failure_frame;
  322. info->status.rates[0].idx = rate_idx;
  323. info->status.rates[0].count = fail + 1; /* add final attempt */
  324. /* tx_status->rts_retry_count = tx_resp->failure_rts; */
  325. info->flags |=
  326. ((status & TX_STATUS_MSK) ==
  327. TX_STATUS_SUCCESS) ? IEEE80211_TX_STAT_ACK : 0;
  328. D_TX("Tx queue %d Status %s (0x%08x) plcp rate %d retries %d\n", txq_id,
  329. il3945_get_tx_fail_reason(status), status, tx_resp->rate,
  330. tx_resp->failure_frame);
  331. D_TX_REPLY("Tx queue reclaim %d\n", idx);
  332. il3945_tx_queue_reclaim(il, txq_id, idx);
  333. if (status & TX_ABORT_REQUIRED_MSK)
  334. IL_ERR("TODO: Implement Tx ABORT REQUIRED!!!\n");
  335. }
  336. /*****************************************************************************
  337. *
  338. * Intel PRO/Wireless 3945ABG/BG Network Connection
  339. *
  340. * RX handler implementations
  341. *
  342. *****************************************************************************/
  343. #ifdef CONFIG_IWLEGACY_DEBUGFS
  344. static void
  345. il3945_accumulative_stats(struct il_priv *il, __le32 * stats)
  346. {
  347. int i;
  348. __le32 *prev_stats;
  349. u32 *accum_stats;
  350. u32 *delta, *max_delta;
  351. prev_stats = (__le32 *) &il->_3945.stats;
  352. accum_stats = (u32 *) &il->_3945.accum_stats;
  353. delta = (u32 *) &il->_3945.delta_stats;
  354. max_delta = (u32 *) &il->_3945.max_delta;
  355. for (i = sizeof(__le32); i < sizeof(struct il3945_notif_stats);
  356. i +=
  357. sizeof(__le32), stats++, prev_stats++, delta++, max_delta++,
  358. accum_stats++) {
  359. if (le32_to_cpu(*stats) > le32_to_cpu(*prev_stats)) {
  360. *delta =
  361. (le32_to_cpu(*stats) - le32_to_cpu(*prev_stats));
  362. *accum_stats += *delta;
  363. if (*delta > *max_delta)
  364. *max_delta = *delta;
  365. }
  366. }
  367. /* reset accumulative stats for "no-counter" type stats */
  368. il->_3945.accum_stats.general.temperature =
  369. il->_3945.stats.general.temperature;
  370. il->_3945.accum_stats.general.ttl_timestamp =
  371. il->_3945.stats.general.ttl_timestamp;
  372. }
  373. #endif
  374. void
  375. il3945_hdl_stats(struct il_priv *il, struct il_rx_buf *rxb)
  376. {
  377. struct il_rx_pkt *pkt = rxb_addr(rxb);
  378. D_RX("Statistics notification received (%d vs %d).\n",
  379. (int)sizeof(struct il3945_notif_stats),
  380. le32_to_cpu(pkt->len_n_flags) & IL_RX_FRAME_SIZE_MSK);
  381. #ifdef CONFIG_IWLEGACY_DEBUGFS
  382. il3945_accumulative_stats(il, (__le32 *) &pkt->u.raw);
  383. #endif
  384. memcpy(&il->_3945.stats, pkt->u.raw, sizeof(il->_3945.stats));
  385. }
  386. void
  387. il3945_hdl_c_stats(struct il_priv *il, struct il_rx_buf *rxb)
  388. {
  389. struct il_rx_pkt *pkt = rxb_addr(rxb);
  390. __le32 *flag = (__le32 *) &pkt->u.raw;
  391. if (le32_to_cpu(*flag) & UCODE_STATS_CLEAR_MSK) {
  392. #ifdef CONFIG_IWLEGACY_DEBUGFS
  393. memset(&il->_3945.accum_stats, 0,
  394. sizeof(struct il3945_notif_stats));
  395. memset(&il->_3945.delta_stats, 0,
  396. sizeof(struct il3945_notif_stats));
  397. memset(&il->_3945.max_delta, 0,
  398. sizeof(struct il3945_notif_stats));
  399. #endif
  400. D_RX("Statistics have been cleared\n");
  401. }
  402. il3945_hdl_stats(il, rxb);
  403. }
  404. /******************************************************************************
  405. *
  406. * Misc. internal state and helper functions
  407. *
  408. ******************************************************************************/
  409. /* This is necessary only for a number of stats, see the caller. */
  410. static int
  411. il3945_is_network_packet(struct il_priv *il, struct ieee80211_hdr *header)
  412. {
  413. /* Filter incoming packets to determine if they are targeted toward
  414. * this network, discarding packets coming from ourselves */
  415. switch (il->iw_mode) {
  416. case NL80211_IFTYPE_ADHOC: /* Header: Dest. | Source | BSSID */
  417. /* packets to our IBSS update information */
  418. return ether_addr_equal(header->addr3, il->bssid);
  419. case NL80211_IFTYPE_STATION: /* Header: Dest. | AP{BSSID} | Source */
  420. /* packets to our IBSS update information */
  421. return ether_addr_equal(header->addr2, il->bssid);
  422. default:
  423. return 1;
  424. }
  425. }
  426. static void
  427. il3945_pass_packet_to_mac80211(struct il_priv *il, struct il_rx_buf *rxb,
  428. struct ieee80211_rx_status *stats)
  429. {
  430. struct il_rx_pkt *pkt = rxb_addr(rxb);
  431. struct ieee80211_hdr *hdr = (struct ieee80211_hdr *)IL_RX_DATA(pkt);
  432. struct il3945_rx_frame_hdr *rx_hdr = IL_RX_HDR(pkt);
  433. struct il3945_rx_frame_end *rx_end = IL_RX_END(pkt);
  434. u16 len = le16_to_cpu(rx_hdr->len);
  435. struct sk_buff *skb;
  436. __le16 fc = hdr->frame_control;
  437. /* We received data from the HW, so stop the watchdog */
  438. if (unlikely
  439. (len + IL39_RX_FRAME_SIZE >
  440. PAGE_SIZE << il->hw_params.rx_page_order)) {
  441. D_DROP("Corruption detected!\n");
  442. return;
  443. }
  444. /* We only process data packets if the interface is open */
  445. if (unlikely(!il->is_open)) {
  446. D_DROP("Dropping packet while interface is not open.\n");
  447. return;
  448. }
  449. if (unlikely(test_bit(IL_STOP_REASON_PASSIVE, &il->stop_reason))) {
  450. il_wake_queues_by_reason(il, IL_STOP_REASON_PASSIVE);
  451. D_INFO("Woke queues - frame received on passive channel\n");
  452. }
  453. skb = dev_alloc_skb(128);
  454. if (!skb) {
  455. IL_ERR("dev_alloc_skb failed\n");
  456. return;
  457. }
  458. if (!il3945_mod_params.sw_crypto)
  459. il_set_decrypted_flag(il, (struct ieee80211_hdr *)rxb_addr(rxb),
  460. le32_to_cpu(rx_end->status), stats);
  461. skb_add_rx_frag(skb, 0, rxb->page,
  462. (void *)rx_hdr->payload - (void *)pkt, len,
  463. len);
  464. il_update_stats(il, false, fc, len);
  465. memcpy(IEEE80211_SKB_RXCB(skb), stats, sizeof(*stats));
  466. ieee80211_rx(il->hw, skb);
  467. il->alloc_rxb_page--;
  468. rxb->page = NULL;
  469. }
  470. #define IL_DELAY_NEXT_SCAN_AFTER_ASSOC (HZ*6)
  471. static void
  472. il3945_hdl_rx(struct il_priv *il, struct il_rx_buf *rxb)
  473. {
  474. struct ieee80211_hdr *header;
  475. struct ieee80211_rx_status rx_status = {};
  476. struct il_rx_pkt *pkt = rxb_addr(rxb);
  477. struct il3945_rx_frame_stats *rx_stats = IL_RX_STATS(pkt);
  478. struct il3945_rx_frame_hdr *rx_hdr = IL_RX_HDR(pkt);
  479. struct il3945_rx_frame_end *rx_end = IL_RX_END(pkt);
  480. u16 rx_stats_sig_avg __maybe_unused = le16_to_cpu(rx_stats->sig_avg);
  481. u16 rx_stats_noise_diff __maybe_unused =
  482. le16_to_cpu(rx_stats->noise_diff);
  483. u8 network_packet;
  484. rx_status.flag = 0;
  485. rx_status.mactime = le64_to_cpu(rx_end->timestamp);
  486. rx_status.band =
  487. (rx_hdr->
  488. phy_flags & RX_RES_PHY_FLAGS_BAND_24_MSK) ? IEEE80211_BAND_2GHZ :
  489. IEEE80211_BAND_5GHZ;
  490. rx_status.freq =
  491. ieee80211_channel_to_frequency(le16_to_cpu(rx_hdr->channel),
  492. rx_status.band);
  493. rx_status.rate_idx = il3945_hwrate_to_plcp_idx(rx_hdr->rate);
  494. if (rx_status.band == IEEE80211_BAND_5GHZ)
  495. rx_status.rate_idx -= IL_FIRST_OFDM_RATE;
  496. rx_status.antenna =
  497. (le16_to_cpu(rx_hdr->phy_flags) & RX_RES_PHY_FLAGS_ANTENNA_MSK) >>
  498. 4;
  499. /* set the preamble flag if appropriate */
  500. if (rx_hdr->phy_flags & RX_RES_PHY_FLAGS_SHORT_PREAMBLE_MSK)
  501. rx_status.flag |= RX_FLAG_SHORTPRE;
  502. if ((unlikely(rx_stats->phy_count > 20))) {
  503. D_DROP("dsp size out of range [0,20]: %d/n",
  504. rx_stats->phy_count);
  505. return;
  506. }
  507. if (!(rx_end->status & RX_RES_STATUS_NO_CRC32_ERROR) ||
  508. !(rx_end->status & RX_RES_STATUS_NO_RXE_OVERFLOW)) {
  509. D_RX("Bad CRC or FIFO: 0x%08X.\n", rx_end->status);
  510. return;
  511. }
  512. /* Convert 3945's rssi indicator to dBm */
  513. rx_status.signal = rx_stats->rssi - IL39_RSSI_OFFSET;
  514. D_STATS("Rssi %d sig_avg %d noise_diff %d\n", rx_status.signal,
  515. rx_stats_sig_avg, rx_stats_noise_diff);
  516. header = (struct ieee80211_hdr *)IL_RX_DATA(pkt);
  517. network_packet = il3945_is_network_packet(il, header);
  518. D_STATS("[%c] %d RSSI:%d Signal:%u, Rate:%u\n",
  519. network_packet ? '*' : ' ', le16_to_cpu(rx_hdr->channel),
  520. rx_status.signal, rx_status.signal, rx_status.rate_idx);
  521. if (network_packet) {
  522. il->_3945.last_beacon_time =
  523. le32_to_cpu(rx_end->beacon_timestamp);
  524. il->_3945.last_tsf = le64_to_cpu(rx_end->timestamp);
  525. il->_3945.last_rx_rssi = rx_status.signal;
  526. }
  527. il3945_pass_packet_to_mac80211(il, rxb, &rx_status);
  528. }
  529. int
  530. il3945_hw_txq_attach_buf_to_tfd(struct il_priv *il, struct il_tx_queue *txq,
  531. dma_addr_t addr, u16 len, u8 reset, u8 pad)
  532. {
  533. int count;
  534. struct il_queue *q;
  535. struct il3945_tfd *tfd, *tfd_tmp;
  536. q = &txq->q;
  537. tfd_tmp = (struct il3945_tfd *)txq->tfds;
  538. tfd = &tfd_tmp[q->write_ptr];
  539. if (reset)
  540. memset(tfd, 0, sizeof(*tfd));
  541. count = TFD_CTL_COUNT_GET(le32_to_cpu(tfd->control_flags));
  542. if (count >= NUM_TFD_CHUNKS || count < 0) {
  543. IL_ERR("Error can not send more than %d chunks\n",
  544. NUM_TFD_CHUNKS);
  545. return -EINVAL;
  546. }
  547. tfd->tbs[count].addr = cpu_to_le32(addr);
  548. tfd->tbs[count].len = cpu_to_le32(len);
  549. count++;
  550. tfd->control_flags =
  551. cpu_to_le32(TFD_CTL_COUNT_SET(count) | TFD_CTL_PAD_SET(pad));
  552. return 0;
  553. }
  554. /**
  555. * il3945_hw_txq_free_tfd - Free one TFD, those at idx [txq->q.read_ptr]
  556. *
  557. * Does NOT advance any idxes
  558. */
  559. void
  560. il3945_hw_txq_free_tfd(struct il_priv *il, struct il_tx_queue *txq)
  561. {
  562. struct il3945_tfd *tfd_tmp = (struct il3945_tfd *)txq->tfds;
  563. int idx = txq->q.read_ptr;
  564. struct il3945_tfd *tfd = &tfd_tmp[idx];
  565. struct pci_dev *dev = il->pci_dev;
  566. int i;
  567. int counter;
  568. /* sanity check */
  569. counter = TFD_CTL_COUNT_GET(le32_to_cpu(tfd->control_flags));
  570. if (counter > NUM_TFD_CHUNKS) {
  571. IL_ERR("Too many chunks: %i\n", counter);
  572. /* @todo issue fatal error, it is quite serious situation */
  573. return;
  574. }
  575. /* Unmap tx_cmd */
  576. if (counter)
  577. pci_unmap_single(dev, dma_unmap_addr(&txq->meta[idx], mapping),
  578. dma_unmap_len(&txq->meta[idx], len),
  579. PCI_DMA_TODEVICE);
  580. /* unmap chunks if any */
  581. for (i = 1; i < counter; i++)
  582. pci_unmap_single(dev, le32_to_cpu(tfd->tbs[i].addr),
  583. le32_to_cpu(tfd->tbs[i].len),
  584. PCI_DMA_TODEVICE);
  585. /* free SKB */
  586. if (txq->skbs) {
  587. struct sk_buff *skb = txq->skbs[txq->q.read_ptr];
  588. /* can be called from irqs-disabled context */
  589. if (skb) {
  590. dev_kfree_skb_any(skb);
  591. txq->skbs[txq->q.read_ptr] = NULL;
  592. }
  593. }
  594. }
  595. /**
  596. * il3945_hw_build_tx_cmd_rate - Add rate portion to TX_CMD:
  597. *
  598. */
  599. void
  600. il3945_hw_build_tx_cmd_rate(struct il_priv *il, struct il_device_cmd *cmd,
  601. struct ieee80211_tx_info *info,
  602. struct ieee80211_hdr *hdr, int sta_id)
  603. {
  604. u16 hw_value = ieee80211_get_tx_rate(il->hw, info)->hw_value;
  605. u16 rate_idx = min(hw_value & 0xffff, RATE_COUNT_3945 - 1);
  606. u16 rate_mask;
  607. int rate;
  608. const u8 rts_retry_limit = 7;
  609. u8 data_retry_limit;
  610. __le32 tx_flags;
  611. __le16 fc = hdr->frame_control;
  612. struct il3945_tx_cmd *tx_cmd = (struct il3945_tx_cmd *)cmd->cmd.payload;
  613. rate = il3945_rates[rate_idx].plcp;
  614. tx_flags = tx_cmd->tx_flags;
  615. /* We need to figure out how to get the sta->supp_rates while
  616. * in this running context */
  617. rate_mask = RATES_MASK_3945;
  618. /* Set retry limit on DATA packets and Probe Responses */
  619. if (ieee80211_is_probe_resp(fc))
  620. data_retry_limit = 3;
  621. else
  622. data_retry_limit = IL_DEFAULT_TX_RETRY;
  623. tx_cmd->data_retry_limit = data_retry_limit;
  624. /* Set retry limit on RTS packets */
  625. tx_cmd->rts_retry_limit = min(data_retry_limit, rts_retry_limit);
  626. tx_cmd->rate = rate;
  627. tx_cmd->tx_flags = tx_flags;
  628. /* OFDM */
  629. tx_cmd->supp_rates[0] =
  630. ((rate_mask & IL_OFDM_RATES_MASK) >> IL_FIRST_OFDM_RATE) & 0xFF;
  631. /* CCK */
  632. tx_cmd->supp_rates[1] = (rate_mask & 0xF);
  633. D_RATE("Tx sta id: %d, rate: %d (plcp), flags: 0x%4X "
  634. "cck/ofdm mask: 0x%x/0x%x\n", sta_id, tx_cmd->rate,
  635. le32_to_cpu(tx_cmd->tx_flags), tx_cmd->supp_rates[1],
  636. tx_cmd->supp_rates[0]);
  637. }
  638. static u8
  639. il3945_sync_sta(struct il_priv *il, int sta_id, u16 tx_rate)
  640. {
  641. unsigned long flags_spin;
  642. struct il_station_entry *station;
  643. if (sta_id == IL_INVALID_STATION)
  644. return IL_INVALID_STATION;
  645. spin_lock_irqsave(&il->sta_lock, flags_spin);
  646. station = &il->stations[sta_id];
  647. station->sta.sta.modify_mask = STA_MODIFY_TX_RATE_MSK;
  648. station->sta.rate_n_flags = cpu_to_le16(tx_rate);
  649. station->sta.mode = STA_CONTROL_MODIFY_MSK;
  650. il_send_add_sta(il, &station->sta, CMD_ASYNC);
  651. spin_unlock_irqrestore(&il->sta_lock, flags_spin);
  652. D_RATE("SCALE sync station %d to rate %d\n", sta_id, tx_rate);
  653. return sta_id;
  654. }
  655. static void
  656. il3945_set_pwr_vmain(struct il_priv *il)
  657. {
  658. /*
  659. * (for documentation purposes)
  660. * to set power to V_AUX, do
  661. if (pci_pme_capable(il->pci_dev, PCI_D3cold)) {
  662. il_set_bits_mask_prph(il, APMG_PS_CTRL_REG,
  663. APMG_PS_CTRL_VAL_PWR_SRC_VAUX,
  664. ~APMG_PS_CTRL_MSK_PWR_SRC);
  665. _il_poll_bit(il, CSR_GPIO_IN,
  666. CSR_GPIO_IN_VAL_VAUX_PWR_SRC,
  667. CSR_GPIO_IN_BIT_AUX_POWER, 5000);
  668. }
  669. */
  670. il_set_bits_mask_prph(il, APMG_PS_CTRL_REG,
  671. APMG_PS_CTRL_VAL_PWR_SRC_VMAIN,
  672. ~APMG_PS_CTRL_MSK_PWR_SRC);
  673. _il_poll_bit(il, CSR_GPIO_IN, CSR_GPIO_IN_VAL_VMAIN_PWR_SRC,
  674. CSR_GPIO_IN_BIT_AUX_POWER, 5000);
  675. }
  676. static int
  677. il3945_rx_init(struct il_priv *il, struct il_rx_queue *rxq)
  678. {
  679. il_wr(il, FH39_RCSR_RBD_BASE(0), rxq->bd_dma);
  680. il_wr(il, FH39_RCSR_RPTR_ADDR(0), rxq->rb_stts_dma);
  681. il_wr(il, FH39_RCSR_WPTR(0), 0);
  682. il_wr(il, FH39_RCSR_CONFIG(0),
  683. FH39_RCSR_RX_CONFIG_REG_VAL_DMA_CHNL_EN_ENABLE |
  684. FH39_RCSR_RX_CONFIG_REG_VAL_RDRBD_EN_ENABLE |
  685. FH39_RCSR_RX_CONFIG_REG_BIT_WR_STTS_EN |
  686. FH39_RCSR_RX_CONFIG_REG_VAL_MAX_FRAG_SIZE_128 | (RX_QUEUE_SIZE_LOG
  687. <<
  688. FH39_RCSR_RX_CONFIG_REG_POS_RBDC_SIZE)
  689. | FH39_RCSR_RX_CONFIG_REG_VAL_IRQ_DEST_INT_HOST | (1 <<
  690. FH39_RCSR_RX_CONFIG_REG_POS_IRQ_RBTH)
  691. | FH39_RCSR_RX_CONFIG_REG_VAL_MSG_MODE_FH);
  692. /* fake read to flush all prev I/O */
  693. il_rd(il, FH39_RSSR_CTRL);
  694. return 0;
  695. }
  696. static int
  697. il3945_tx_reset(struct il_priv *il)
  698. {
  699. /* bypass mode */
  700. il_wr_prph(il, ALM_SCD_MODE_REG, 0x2);
  701. /* RA 0 is active */
  702. il_wr_prph(il, ALM_SCD_ARASTAT_REG, 0x01);
  703. /* all 6 fifo are active */
  704. il_wr_prph(il, ALM_SCD_TXFACT_REG, 0x3f);
  705. il_wr_prph(il, ALM_SCD_SBYP_MODE_1_REG, 0x010000);
  706. il_wr_prph(il, ALM_SCD_SBYP_MODE_2_REG, 0x030002);
  707. il_wr_prph(il, ALM_SCD_TXF4MF_REG, 0x000004);
  708. il_wr_prph(il, ALM_SCD_TXF5MF_REG, 0x000005);
  709. il_wr(il, FH39_TSSR_CBB_BASE, il->_3945.shared_phys);
  710. il_wr(il, FH39_TSSR_MSG_CONFIG,
  711. FH39_TSSR_TX_MSG_CONFIG_REG_VAL_SNOOP_RD_TXPD_ON |
  712. FH39_TSSR_TX_MSG_CONFIG_REG_VAL_ORDER_RD_TXPD_ON |
  713. FH39_TSSR_TX_MSG_CONFIG_REG_VAL_MAX_FRAG_SIZE_128B |
  714. FH39_TSSR_TX_MSG_CONFIG_REG_VAL_SNOOP_RD_TFD_ON |
  715. FH39_TSSR_TX_MSG_CONFIG_REG_VAL_ORDER_RD_CBB_ON |
  716. FH39_TSSR_TX_MSG_CONFIG_REG_VAL_ORDER_RSP_WAIT_TH |
  717. FH39_TSSR_TX_MSG_CONFIG_REG_VAL_RSP_WAIT_TH);
  718. return 0;
  719. }
  720. /**
  721. * il3945_txq_ctx_reset - Reset TX queue context
  722. *
  723. * Destroys all DMA structures and initialize them again
  724. */
  725. static int
  726. il3945_txq_ctx_reset(struct il_priv *il)
  727. {
  728. int rc, txq_id;
  729. il3945_hw_txq_ctx_free(il);
  730. /* allocate tx queue structure */
  731. rc = il_alloc_txq_mem(il);
  732. if (rc)
  733. return rc;
  734. /* Tx CMD queue */
  735. rc = il3945_tx_reset(il);
  736. if (rc)
  737. goto error;
  738. /* Tx queue(s) */
  739. for (txq_id = 0; txq_id < il->hw_params.max_txq_num; txq_id++) {
  740. rc = il_tx_queue_init(il, txq_id);
  741. if (rc) {
  742. IL_ERR("Tx %d queue init failed\n", txq_id);
  743. goto error;
  744. }
  745. }
  746. return rc;
  747. error:
  748. il3945_hw_txq_ctx_free(il);
  749. return rc;
  750. }
  751. /*
  752. * Start up 3945's basic functionality after it has been reset
  753. * (e.g. after platform boot, or shutdown via il_apm_stop())
  754. * NOTE: This does not load uCode nor start the embedded processor
  755. */
  756. static int
  757. il3945_apm_init(struct il_priv *il)
  758. {
  759. int ret = il_apm_init(il);
  760. /* Clear APMG (NIC's internal power management) interrupts */
  761. il_wr_prph(il, APMG_RTC_INT_MSK_REG, 0x0);
  762. il_wr_prph(il, APMG_RTC_INT_STT_REG, 0xFFFFFFFF);
  763. /* Reset radio chip */
  764. il_set_bits_prph(il, APMG_PS_CTRL_REG, APMG_PS_CTRL_VAL_RESET_REQ);
  765. udelay(5);
  766. il_clear_bits_prph(il, APMG_PS_CTRL_REG, APMG_PS_CTRL_VAL_RESET_REQ);
  767. return ret;
  768. }
  769. static void
  770. il3945_nic_config(struct il_priv *il)
  771. {
  772. struct il3945_eeprom *eeprom = (struct il3945_eeprom *)il->eeprom;
  773. unsigned long flags;
  774. u8 rev_id = il->pci_dev->revision;
  775. spin_lock_irqsave(&il->lock, flags);
  776. /* Determine HW type */
  777. D_INFO("HW Revision ID = 0x%X\n", rev_id);
  778. if (rev_id & PCI_CFG_REV_ID_BIT_RTP)
  779. D_INFO("RTP type\n");
  780. else if (rev_id & PCI_CFG_REV_ID_BIT_BASIC_SKU) {
  781. D_INFO("3945 RADIO-MB type\n");
  782. il_set_bit(il, CSR_HW_IF_CONFIG_REG,
  783. CSR39_HW_IF_CONFIG_REG_BIT_3945_MB);
  784. } else {
  785. D_INFO("3945 RADIO-MM type\n");
  786. il_set_bit(il, CSR_HW_IF_CONFIG_REG,
  787. CSR39_HW_IF_CONFIG_REG_BIT_3945_MM);
  788. }
  789. if (EEPROM_SKU_CAP_OP_MODE_MRC == eeprom->sku_cap) {
  790. D_INFO("SKU OP mode is mrc\n");
  791. il_set_bit(il, CSR_HW_IF_CONFIG_REG,
  792. CSR39_HW_IF_CONFIG_REG_BIT_SKU_MRC);
  793. } else
  794. D_INFO("SKU OP mode is basic\n");
  795. if ((eeprom->board_revision & 0xF0) == 0xD0) {
  796. D_INFO("3945ABG revision is 0x%X\n", eeprom->board_revision);
  797. il_set_bit(il, CSR_HW_IF_CONFIG_REG,
  798. CSR39_HW_IF_CONFIG_REG_BIT_BOARD_TYPE);
  799. } else {
  800. D_INFO("3945ABG revision is 0x%X\n", eeprom->board_revision);
  801. il_clear_bit(il, CSR_HW_IF_CONFIG_REG,
  802. CSR39_HW_IF_CONFIG_REG_BIT_BOARD_TYPE);
  803. }
  804. if (eeprom->almgor_m_version <= 1) {
  805. il_set_bit(il, CSR_HW_IF_CONFIG_REG,
  806. CSR39_HW_IF_CONFIG_REG_BITS_SILICON_TYPE_A);
  807. D_INFO("Card M type A version is 0x%X\n",
  808. eeprom->almgor_m_version);
  809. } else {
  810. D_INFO("Card M type B version is 0x%X\n",
  811. eeprom->almgor_m_version);
  812. il_set_bit(il, CSR_HW_IF_CONFIG_REG,
  813. CSR39_HW_IF_CONFIG_REG_BITS_SILICON_TYPE_B);
  814. }
  815. spin_unlock_irqrestore(&il->lock, flags);
  816. if (eeprom->sku_cap & EEPROM_SKU_CAP_SW_RF_KILL_ENABLE)
  817. D_RF_KILL("SW RF KILL supported in EEPROM.\n");
  818. if (eeprom->sku_cap & EEPROM_SKU_CAP_HW_RF_KILL_ENABLE)
  819. D_RF_KILL("HW RF KILL supported in EEPROM.\n");
  820. }
  821. int
  822. il3945_hw_nic_init(struct il_priv *il)
  823. {
  824. int rc;
  825. unsigned long flags;
  826. struct il_rx_queue *rxq = &il->rxq;
  827. spin_lock_irqsave(&il->lock, flags);
  828. il3945_apm_init(il);
  829. spin_unlock_irqrestore(&il->lock, flags);
  830. il3945_set_pwr_vmain(il);
  831. il3945_nic_config(il);
  832. /* Allocate the RX queue, or reset if it is already allocated */
  833. if (!rxq->bd) {
  834. rc = il_rx_queue_alloc(il);
  835. if (rc) {
  836. IL_ERR("Unable to initialize Rx queue\n");
  837. return -ENOMEM;
  838. }
  839. } else
  840. il3945_rx_queue_reset(il, rxq);
  841. il3945_rx_replenish(il);
  842. il3945_rx_init(il, rxq);
  843. /* Look at using this instead:
  844. rxq->need_update = 1;
  845. il_rx_queue_update_write_ptr(il, rxq);
  846. */
  847. il_wr(il, FH39_RCSR_WPTR(0), rxq->write & ~7);
  848. rc = il3945_txq_ctx_reset(il);
  849. if (rc)
  850. return rc;
  851. set_bit(S_INIT, &il->status);
  852. return 0;
  853. }
  854. /**
  855. * il3945_hw_txq_ctx_free - Free TXQ Context
  856. *
  857. * Destroy all TX DMA queues and structures
  858. */
  859. void
  860. il3945_hw_txq_ctx_free(struct il_priv *il)
  861. {
  862. int txq_id;
  863. /* Tx queues */
  864. if (il->txq)
  865. for (txq_id = 0; txq_id < il->hw_params.max_txq_num; txq_id++)
  866. if (txq_id == IL39_CMD_QUEUE_NUM)
  867. il_cmd_queue_free(il);
  868. else
  869. il_tx_queue_free(il, txq_id);
  870. /* free tx queue structure */
  871. il_free_txq_mem(il);
  872. }
  873. void
  874. il3945_hw_txq_ctx_stop(struct il_priv *il)
  875. {
  876. int txq_id;
  877. /* stop SCD */
  878. _il_wr_prph(il, ALM_SCD_MODE_REG, 0);
  879. _il_wr_prph(il, ALM_SCD_TXFACT_REG, 0);
  880. /* reset TFD queues */
  881. for (txq_id = 0; txq_id < il->hw_params.max_txq_num; txq_id++) {
  882. _il_wr(il, FH39_TCSR_CONFIG(txq_id), 0x0);
  883. _il_poll_bit(il, FH39_TSSR_TX_STATUS,
  884. FH39_TSSR_TX_STATUS_REG_MSK_CHNL_IDLE(txq_id),
  885. FH39_TSSR_TX_STATUS_REG_MSK_CHNL_IDLE(txq_id),
  886. 1000);
  887. }
  888. }
  889. /**
  890. * il3945_hw_reg_adjust_power_by_temp
  891. * return idx delta into power gain settings table
  892. */
  893. static int
  894. il3945_hw_reg_adjust_power_by_temp(int new_reading, int old_reading)
  895. {
  896. return (new_reading - old_reading) * (-11) / 100;
  897. }
  898. /**
  899. * il3945_hw_reg_temp_out_of_range - Keep temperature in sane range
  900. */
  901. static inline int
  902. il3945_hw_reg_temp_out_of_range(int temperature)
  903. {
  904. return (temperature < -260 || temperature > 25) ? 1 : 0;
  905. }
  906. int
  907. il3945_hw_get_temperature(struct il_priv *il)
  908. {
  909. return _il_rd(il, CSR_UCODE_DRV_GP2);
  910. }
  911. /**
  912. * il3945_hw_reg_txpower_get_temperature
  913. * get the current temperature by reading from NIC
  914. */
  915. static int
  916. il3945_hw_reg_txpower_get_temperature(struct il_priv *il)
  917. {
  918. struct il3945_eeprom *eeprom = (struct il3945_eeprom *)il->eeprom;
  919. int temperature;
  920. temperature = il3945_hw_get_temperature(il);
  921. /* driver's okay range is -260 to +25.
  922. * human readable okay range is 0 to +285 */
  923. D_INFO("Temperature: %d\n", temperature + IL_TEMP_CONVERT);
  924. /* handle insane temp reading */
  925. if (il3945_hw_reg_temp_out_of_range(temperature)) {
  926. IL_ERR("Error bad temperature value %d\n", temperature);
  927. /* if really really hot(?),
  928. * substitute the 3rd band/group's temp measured at factory */
  929. if (il->last_temperature > 100)
  930. temperature = eeprom->groups[2].temperature;
  931. else /* else use most recent "sane" value from driver */
  932. temperature = il->last_temperature;
  933. }
  934. return temperature; /* raw, not "human readable" */
  935. }
  936. /* Adjust Txpower only if temperature variance is greater than threshold.
  937. *
  938. * Both are lower than older versions' 9 degrees */
  939. #define IL_TEMPERATURE_LIMIT_TIMER 6
  940. /**
  941. * il3945_is_temp_calib_needed - determines if new calibration is needed
  942. *
  943. * records new temperature in tx_mgr->temperature.
  944. * replaces tx_mgr->last_temperature *only* if calib needed
  945. * (assumes caller will actually do the calibration!). */
  946. static int
  947. il3945_is_temp_calib_needed(struct il_priv *il)
  948. {
  949. int temp_diff;
  950. il->temperature = il3945_hw_reg_txpower_get_temperature(il);
  951. temp_diff = il->temperature - il->last_temperature;
  952. /* get absolute value */
  953. if (temp_diff < 0) {
  954. D_POWER("Getting cooler, delta %d,\n", temp_diff);
  955. temp_diff = -temp_diff;
  956. } else if (temp_diff == 0)
  957. D_POWER("Same temp,\n");
  958. else
  959. D_POWER("Getting warmer, delta %d,\n", temp_diff);
  960. /* if we don't need calibration, *don't* update last_temperature */
  961. if (temp_diff < IL_TEMPERATURE_LIMIT_TIMER) {
  962. D_POWER("Timed thermal calib not needed\n");
  963. return 0;
  964. }
  965. D_POWER("Timed thermal calib needed\n");
  966. /* assume that caller will actually do calib ...
  967. * update the "last temperature" value */
  968. il->last_temperature = il->temperature;
  969. return 1;
  970. }
  971. #define IL_MAX_GAIN_ENTRIES 78
  972. #define IL_CCK_FROM_OFDM_POWER_DIFF -5
  973. #define IL_CCK_FROM_OFDM_IDX_DIFF (10)
  974. /* radio and DSP power table, each step is 1/2 dB.
  975. * 1st number is for RF analog gain, 2nd number is for DSP pre-DAC gain. */
  976. static struct il3945_tx_power power_gain_table[2][IL_MAX_GAIN_ENTRIES] = {
  977. {
  978. {251, 127}, /* 2.4 GHz, highest power */
  979. {251, 127},
  980. {251, 127},
  981. {251, 127},
  982. {251, 125},
  983. {251, 110},
  984. {251, 105},
  985. {251, 98},
  986. {187, 125},
  987. {187, 115},
  988. {187, 108},
  989. {187, 99},
  990. {243, 119},
  991. {243, 111},
  992. {243, 105},
  993. {243, 97},
  994. {243, 92},
  995. {211, 106},
  996. {211, 100},
  997. {179, 120},
  998. {179, 113},
  999. {179, 107},
  1000. {147, 125},
  1001. {147, 119},
  1002. {147, 112},
  1003. {147, 106},
  1004. {147, 101},
  1005. {147, 97},
  1006. {147, 91},
  1007. {115, 107},
  1008. {235, 121},
  1009. {235, 115},
  1010. {235, 109},
  1011. {203, 127},
  1012. {203, 121},
  1013. {203, 115},
  1014. {203, 108},
  1015. {203, 102},
  1016. {203, 96},
  1017. {203, 92},
  1018. {171, 110},
  1019. {171, 104},
  1020. {171, 98},
  1021. {139, 116},
  1022. {227, 125},
  1023. {227, 119},
  1024. {227, 113},
  1025. {227, 107},
  1026. {227, 101},
  1027. {227, 96},
  1028. {195, 113},
  1029. {195, 106},
  1030. {195, 102},
  1031. {195, 95},
  1032. {163, 113},
  1033. {163, 106},
  1034. {163, 102},
  1035. {163, 95},
  1036. {131, 113},
  1037. {131, 106},
  1038. {131, 102},
  1039. {131, 95},
  1040. {99, 113},
  1041. {99, 106},
  1042. {99, 102},
  1043. {99, 95},
  1044. {67, 113},
  1045. {67, 106},
  1046. {67, 102},
  1047. {67, 95},
  1048. {35, 113},
  1049. {35, 106},
  1050. {35, 102},
  1051. {35, 95},
  1052. {3, 113},
  1053. {3, 106},
  1054. {3, 102},
  1055. {3, 95} /* 2.4 GHz, lowest power */
  1056. },
  1057. {
  1058. {251, 127}, /* 5.x GHz, highest power */
  1059. {251, 120},
  1060. {251, 114},
  1061. {219, 119},
  1062. {219, 101},
  1063. {187, 113},
  1064. {187, 102},
  1065. {155, 114},
  1066. {155, 103},
  1067. {123, 117},
  1068. {123, 107},
  1069. {123, 99},
  1070. {123, 92},
  1071. {91, 108},
  1072. {59, 125},
  1073. {59, 118},
  1074. {59, 109},
  1075. {59, 102},
  1076. {59, 96},
  1077. {59, 90},
  1078. {27, 104},
  1079. {27, 98},
  1080. {27, 92},
  1081. {115, 118},
  1082. {115, 111},
  1083. {115, 104},
  1084. {83, 126},
  1085. {83, 121},
  1086. {83, 113},
  1087. {83, 105},
  1088. {83, 99},
  1089. {51, 118},
  1090. {51, 111},
  1091. {51, 104},
  1092. {51, 98},
  1093. {19, 116},
  1094. {19, 109},
  1095. {19, 102},
  1096. {19, 98},
  1097. {19, 93},
  1098. {171, 113},
  1099. {171, 107},
  1100. {171, 99},
  1101. {139, 120},
  1102. {139, 113},
  1103. {139, 107},
  1104. {139, 99},
  1105. {107, 120},
  1106. {107, 113},
  1107. {107, 107},
  1108. {107, 99},
  1109. {75, 120},
  1110. {75, 113},
  1111. {75, 107},
  1112. {75, 99},
  1113. {43, 120},
  1114. {43, 113},
  1115. {43, 107},
  1116. {43, 99},
  1117. {11, 120},
  1118. {11, 113},
  1119. {11, 107},
  1120. {11, 99},
  1121. {131, 107},
  1122. {131, 99},
  1123. {99, 120},
  1124. {99, 113},
  1125. {99, 107},
  1126. {99, 99},
  1127. {67, 120},
  1128. {67, 113},
  1129. {67, 107},
  1130. {67, 99},
  1131. {35, 120},
  1132. {35, 113},
  1133. {35, 107},
  1134. {35, 99},
  1135. {3, 120} /* 5.x GHz, lowest power */
  1136. }
  1137. };
  1138. static inline u8
  1139. il3945_hw_reg_fix_power_idx(int idx)
  1140. {
  1141. if (idx < 0)
  1142. return 0;
  1143. if (idx >= IL_MAX_GAIN_ENTRIES)
  1144. return IL_MAX_GAIN_ENTRIES - 1;
  1145. return (u8) idx;
  1146. }
  1147. /* Kick off thermal recalibration check every 60 seconds */
  1148. #define REG_RECALIB_PERIOD (60)
  1149. /**
  1150. * il3945_hw_reg_set_scan_power - Set Tx power for scan probe requests
  1151. *
  1152. * Set (in our channel info database) the direct scan Tx power for 1 Mbit (CCK)
  1153. * or 6 Mbit (OFDM) rates.
  1154. */
  1155. static void
  1156. il3945_hw_reg_set_scan_power(struct il_priv *il, u32 scan_tbl_idx, s32 rate_idx,
  1157. const s8 *clip_pwrs,
  1158. struct il_channel_info *ch_info, int band_idx)
  1159. {
  1160. struct il3945_scan_power_info *scan_power_info;
  1161. s8 power;
  1162. u8 power_idx;
  1163. scan_power_info = &ch_info->scan_pwr_info[scan_tbl_idx];
  1164. /* use this channel group's 6Mbit clipping/saturation pwr,
  1165. * but cap at regulatory scan power restriction (set during init
  1166. * based on eeprom channel data) for this channel. */
  1167. power = min(ch_info->scan_power, clip_pwrs[RATE_6M_IDX_TBL]);
  1168. power = min(power, il->tx_power_user_lmt);
  1169. scan_power_info->requested_power = power;
  1170. /* find difference between new scan *power* and current "normal"
  1171. * Tx *power* for 6Mb. Use this difference (x2) to adjust the
  1172. * current "normal" temperature-compensated Tx power *idx* for
  1173. * this rate (1Mb or 6Mb) to yield new temp-compensated scan power
  1174. * *idx*. */
  1175. power_idx =
  1176. ch_info->power_info[rate_idx].power_table_idx - (power -
  1177. ch_info->
  1178. power_info
  1179. [RATE_6M_IDX_TBL].
  1180. requested_power) *
  1181. 2;
  1182. /* store reference idx that we use when adjusting *all* scan
  1183. * powers. So we can accommodate user (all channel) or spectrum
  1184. * management (single channel) power changes "between" temperature
  1185. * feedback compensation procedures.
  1186. * don't force fit this reference idx into gain table; it may be a
  1187. * negative number. This will help avoid errors when we're at
  1188. * the lower bounds (highest gains, for warmest temperatures)
  1189. * of the table. */
  1190. /* don't exceed table bounds for "real" setting */
  1191. power_idx = il3945_hw_reg_fix_power_idx(power_idx);
  1192. scan_power_info->power_table_idx = power_idx;
  1193. scan_power_info->tpc.tx_gain =
  1194. power_gain_table[band_idx][power_idx].tx_gain;
  1195. scan_power_info->tpc.dsp_atten =
  1196. power_gain_table[band_idx][power_idx].dsp_atten;
  1197. }
  1198. /**
  1199. * il3945_send_tx_power - fill in Tx Power command with gain settings
  1200. *
  1201. * Configures power settings for all rates for the current channel,
  1202. * using values from channel info struct, and send to NIC
  1203. */
  1204. static int
  1205. il3945_send_tx_power(struct il_priv *il)
  1206. {
  1207. int rate_idx, i;
  1208. const struct il_channel_info *ch_info = NULL;
  1209. struct il3945_txpowertable_cmd txpower = {
  1210. .channel = il->active.channel,
  1211. };
  1212. u16 chan;
  1213. if (WARN_ONCE
  1214. (test_bit(S_SCAN_HW, &il->status),
  1215. "TX Power requested while scanning!\n"))
  1216. return -EAGAIN;
  1217. chan = le16_to_cpu(il->active.channel);
  1218. txpower.band = (il->band == IEEE80211_BAND_5GHZ) ? 0 : 1;
  1219. ch_info = il_get_channel_info(il, il->band, chan);
  1220. if (!ch_info) {
  1221. IL_ERR("Failed to get channel info for channel %d [%d]\n", chan,
  1222. il->band);
  1223. return -EINVAL;
  1224. }
  1225. if (!il_is_channel_valid(ch_info)) {
  1226. D_POWER("Not calling TX_PWR_TBL_CMD on " "non-Tx channel.\n");
  1227. return 0;
  1228. }
  1229. /* fill cmd with power settings for all rates for current channel */
  1230. /* Fill OFDM rate */
  1231. for (rate_idx = IL_FIRST_OFDM_RATE, i = 0;
  1232. rate_idx <= IL39_LAST_OFDM_RATE; rate_idx++, i++) {
  1233. txpower.power[i].tpc = ch_info->power_info[i].tpc;
  1234. txpower.power[i].rate = il3945_rates[rate_idx].plcp;
  1235. D_POWER("ch %d:%d rf %d dsp %3d rate code 0x%02x\n",
  1236. le16_to_cpu(txpower.channel), txpower.band,
  1237. txpower.power[i].tpc.tx_gain,
  1238. txpower.power[i].tpc.dsp_atten, txpower.power[i].rate);
  1239. }
  1240. /* Fill CCK rates */
  1241. for (rate_idx = IL_FIRST_CCK_RATE; rate_idx <= IL_LAST_CCK_RATE;
  1242. rate_idx++, i++) {
  1243. txpower.power[i].tpc = ch_info->power_info[i].tpc;
  1244. txpower.power[i].rate = il3945_rates[rate_idx].plcp;
  1245. D_POWER("ch %d:%d rf %d dsp %3d rate code 0x%02x\n",
  1246. le16_to_cpu(txpower.channel), txpower.band,
  1247. txpower.power[i].tpc.tx_gain,
  1248. txpower.power[i].tpc.dsp_atten, txpower.power[i].rate);
  1249. }
  1250. return il_send_cmd_pdu(il, C_TX_PWR_TBL,
  1251. sizeof(struct il3945_txpowertable_cmd),
  1252. &txpower);
  1253. }
  1254. /**
  1255. * il3945_hw_reg_set_new_power - Configures power tables at new levels
  1256. * @ch_info: Channel to update. Uses power_info.requested_power.
  1257. *
  1258. * Replace requested_power and base_power_idx ch_info fields for
  1259. * one channel.
  1260. *
  1261. * Called if user or spectrum management changes power preferences.
  1262. * Takes into account h/w and modulation limitations (clip power).
  1263. *
  1264. * This does *not* send anything to NIC, just sets up ch_info for one channel.
  1265. *
  1266. * NOTE: reg_compensate_for_temperature_dif() *must* be run after this to
  1267. * properly fill out the scan powers, and actual h/w gain settings,
  1268. * and send changes to NIC
  1269. */
  1270. static int
  1271. il3945_hw_reg_set_new_power(struct il_priv *il, struct il_channel_info *ch_info)
  1272. {
  1273. struct il3945_channel_power_info *power_info;
  1274. int power_changed = 0;
  1275. int i;
  1276. const s8 *clip_pwrs;
  1277. int power;
  1278. /* Get this chnlgrp's rate-to-max/clip-powers table */
  1279. clip_pwrs = il->_3945.clip_groups[ch_info->group_idx].clip_powers;
  1280. /* Get this channel's rate-to-current-power settings table */
  1281. power_info = ch_info->power_info;
  1282. /* update OFDM Txpower settings */
  1283. for (i = RATE_6M_IDX_TBL; i <= RATE_54M_IDX_TBL; i++, ++power_info) {
  1284. int delta_idx;
  1285. /* limit new power to be no more than h/w capability */
  1286. power = min(ch_info->curr_txpow, clip_pwrs[i]);
  1287. if (power == power_info->requested_power)
  1288. continue;
  1289. /* find difference between old and new requested powers,
  1290. * update base (non-temp-compensated) power idx */
  1291. delta_idx = (power - power_info->requested_power) * 2;
  1292. power_info->base_power_idx -= delta_idx;
  1293. /* save new requested power value */
  1294. power_info->requested_power = power;
  1295. power_changed = 1;
  1296. }
  1297. /* update CCK Txpower settings, based on OFDM 12M setting ...
  1298. * ... all CCK power settings for a given channel are the *same*. */
  1299. if (power_changed) {
  1300. power =
  1301. ch_info->power_info[RATE_12M_IDX_TBL].requested_power +
  1302. IL_CCK_FROM_OFDM_POWER_DIFF;
  1303. /* do all CCK rates' il3945_channel_power_info structures */
  1304. for (i = RATE_1M_IDX_TBL; i <= RATE_11M_IDX_TBL; i++) {
  1305. power_info->requested_power = power;
  1306. power_info->base_power_idx =
  1307. ch_info->power_info[RATE_12M_IDX_TBL].
  1308. base_power_idx + IL_CCK_FROM_OFDM_IDX_DIFF;
  1309. ++power_info;
  1310. }
  1311. }
  1312. return 0;
  1313. }
  1314. /**
  1315. * il3945_hw_reg_get_ch_txpower_limit - returns new power limit for channel
  1316. *
  1317. * NOTE: Returned power limit may be less (but not more) than requested,
  1318. * based strictly on regulatory (eeprom and spectrum mgt) limitations
  1319. * (no consideration for h/w clipping limitations).
  1320. */
  1321. static int
  1322. il3945_hw_reg_get_ch_txpower_limit(struct il_channel_info *ch_info)
  1323. {
  1324. s8 max_power;
  1325. #if 0
  1326. /* if we're using TGd limits, use lower of TGd or EEPROM */
  1327. if (ch_info->tgd_data.max_power != 0)
  1328. max_power =
  1329. min(ch_info->tgd_data.max_power,
  1330. ch_info->eeprom.max_power_avg);
  1331. /* else just use EEPROM limits */
  1332. else
  1333. #endif
  1334. max_power = ch_info->eeprom.max_power_avg;
  1335. return min(max_power, ch_info->max_power_avg);
  1336. }
  1337. /**
  1338. * il3945_hw_reg_comp_txpower_temp - Compensate for temperature
  1339. *
  1340. * Compensate txpower settings of *all* channels for temperature.
  1341. * This only accounts for the difference between current temperature
  1342. * and the factory calibration temperatures, and bases the new settings
  1343. * on the channel's base_power_idx.
  1344. *
  1345. * If RxOn is "associated", this sends the new Txpower to NIC!
  1346. */
  1347. static int
  1348. il3945_hw_reg_comp_txpower_temp(struct il_priv *il)
  1349. {
  1350. struct il_channel_info *ch_info = NULL;
  1351. struct il3945_eeprom *eeprom = (struct il3945_eeprom *)il->eeprom;
  1352. int delta_idx;
  1353. const s8 *clip_pwrs; /* array of h/w max power levels for each rate */
  1354. u8 a_band;
  1355. u8 rate_idx;
  1356. u8 scan_tbl_idx;
  1357. u8 i;
  1358. int ref_temp;
  1359. int temperature = il->temperature;
  1360. if (il->disable_tx_power_cal || test_bit(S_SCANNING, &il->status)) {
  1361. /* do not perform tx power calibration */
  1362. return 0;
  1363. }
  1364. /* set up new Tx power info for each and every channel, 2.4 and 5.x */
  1365. for (i = 0; i < il->channel_count; i++) {
  1366. ch_info = &il->channel_info[i];
  1367. a_band = il_is_channel_a_band(ch_info);
  1368. /* Get this chnlgrp's factory calibration temperature */
  1369. ref_temp = (s16) eeprom->groups[ch_info->group_idx].temperature;
  1370. /* get power idx adjustment based on current and factory
  1371. * temps */
  1372. delta_idx =
  1373. il3945_hw_reg_adjust_power_by_temp(temperature, ref_temp);
  1374. /* set tx power value for all rates, OFDM and CCK */
  1375. for (rate_idx = 0; rate_idx < RATE_COUNT_3945; rate_idx++) {
  1376. int power_idx =
  1377. ch_info->power_info[rate_idx].base_power_idx;
  1378. /* temperature compensate */
  1379. power_idx += delta_idx;
  1380. /* stay within table range */
  1381. power_idx = il3945_hw_reg_fix_power_idx(power_idx);
  1382. ch_info->power_info[rate_idx].power_table_idx =
  1383. (u8) power_idx;
  1384. ch_info->power_info[rate_idx].tpc =
  1385. power_gain_table[a_band][power_idx];
  1386. }
  1387. /* Get this chnlgrp's rate-to-max/clip-powers table */
  1388. clip_pwrs =
  1389. il->_3945.clip_groups[ch_info->group_idx].clip_powers;
  1390. /* set scan tx power, 1Mbit for CCK, 6Mbit for OFDM */
  1391. for (scan_tbl_idx = 0; scan_tbl_idx < IL_NUM_SCAN_RATES;
  1392. scan_tbl_idx++) {
  1393. s32 actual_idx =
  1394. (scan_tbl_idx ==
  1395. 0) ? RATE_1M_IDX_TBL : RATE_6M_IDX_TBL;
  1396. il3945_hw_reg_set_scan_power(il, scan_tbl_idx,
  1397. actual_idx, clip_pwrs,
  1398. ch_info, a_band);
  1399. }
  1400. }
  1401. /* send Txpower command for current channel to ucode */
  1402. return il->ops->send_tx_power(il);
  1403. }
  1404. int
  1405. il3945_hw_reg_set_txpower(struct il_priv *il, s8 power)
  1406. {
  1407. struct il_channel_info *ch_info;
  1408. s8 max_power;
  1409. u8 a_band;
  1410. u8 i;
  1411. if (il->tx_power_user_lmt == power) {
  1412. D_POWER("Requested Tx power same as current " "limit: %ddBm.\n",
  1413. power);
  1414. return 0;
  1415. }
  1416. D_POWER("Setting upper limit clamp to %ddBm.\n", power);
  1417. il->tx_power_user_lmt = power;
  1418. /* set up new Tx powers for each and every channel, 2.4 and 5.x */
  1419. for (i = 0; i < il->channel_count; i++) {
  1420. ch_info = &il->channel_info[i];
  1421. a_band = il_is_channel_a_band(ch_info);
  1422. /* find minimum power of all user and regulatory constraints
  1423. * (does not consider h/w clipping limitations) */
  1424. max_power = il3945_hw_reg_get_ch_txpower_limit(ch_info);
  1425. max_power = min(power, max_power);
  1426. if (max_power != ch_info->curr_txpow) {
  1427. ch_info->curr_txpow = max_power;
  1428. /* this considers the h/w clipping limitations */
  1429. il3945_hw_reg_set_new_power(il, ch_info);
  1430. }
  1431. }
  1432. /* update txpower settings for all channels,
  1433. * send to NIC if associated. */
  1434. il3945_is_temp_calib_needed(il);
  1435. il3945_hw_reg_comp_txpower_temp(il);
  1436. return 0;
  1437. }
  1438. static int
  1439. il3945_send_rxon_assoc(struct il_priv *il)
  1440. {
  1441. int rc = 0;
  1442. struct il_rx_pkt *pkt;
  1443. struct il3945_rxon_assoc_cmd rxon_assoc;
  1444. struct il_host_cmd cmd = {
  1445. .id = C_RXON_ASSOC,
  1446. .len = sizeof(rxon_assoc),
  1447. .flags = CMD_WANT_SKB,
  1448. .data = &rxon_assoc,
  1449. };
  1450. const struct il_rxon_cmd *rxon1 = &il->staging;
  1451. const struct il_rxon_cmd *rxon2 = &il->active;
  1452. if (rxon1->flags == rxon2->flags &&
  1453. rxon1->filter_flags == rxon2->filter_flags &&
  1454. rxon1->cck_basic_rates == rxon2->cck_basic_rates &&
  1455. rxon1->ofdm_basic_rates == rxon2->ofdm_basic_rates) {
  1456. D_INFO("Using current RXON_ASSOC. Not resending.\n");
  1457. return 0;
  1458. }
  1459. rxon_assoc.flags = il->staging.flags;
  1460. rxon_assoc.filter_flags = il->staging.filter_flags;
  1461. rxon_assoc.ofdm_basic_rates = il->staging.ofdm_basic_rates;
  1462. rxon_assoc.cck_basic_rates = il->staging.cck_basic_rates;
  1463. rxon_assoc.reserved = 0;
  1464. rc = il_send_cmd_sync(il, &cmd);
  1465. if (rc)
  1466. return rc;
  1467. pkt = (struct il_rx_pkt *)cmd.reply_page;
  1468. if (pkt->hdr.flags & IL_CMD_FAILED_MSK) {
  1469. IL_ERR("Bad return from C_RXON_ASSOC command\n");
  1470. rc = -EIO;
  1471. }
  1472. il_free_pages(il, cmd.reply_page);
  1473. return rc;
  1474. }
  1475. /**
  1476. * il3945_commit_rxon - commit staging_rxon to hardware
  1477. *
  1478. * The RXON command in staging_rxon is committed to the hardware and
  1479. * the active_rxon structure is updated with the new data. This
  1480. * function correctly transitions out of the RXON_ASSOC_MSK state if
  1481. * a HW tune is required based on the RXON structure changes.
  1482. */
  1483. int
  1484. il3945_commit_rxon(struct il_priv *il)
  1485. {
  1486. /* cast away the const for active_rxon in this function */
  1487. struct il3945_rxon_cmd *active_rxon = (void *)&il->active;
  1488. struct il3945_rxon_cmd *staging_rxon = (void *)&il->staging;
  1489. int rc = 0;
  1490. bool new_assoc = !!(staging_rxon->filter_flags & RXON_FILTER_ASSOC_MSK);
  1491. if (test_bit(S_EXIT_PENDING, &il->status))
  1492. return -EINVAL;
  1493. if (!il_is_alive(il))
  1494. return -1;
  1495. /* always get timestamp with Rx frame */
  1496. staging_rxon->flags |= RXON_FLG_TSF2HOST_MSK;
  1497. /* select antenna */
  1498. staging_rxon->flags &= ~(RXON_FLG_DIS_DIV_MSK | RXON_FLG_ANT_SEL_MSK);
  1499. staging_rxon->flags |= il3945_get_antenna_flags(il);
  1500. rc = il_check_rxon_cmd(il);
  1501. if (rc) {
  1502. IL_ERR("Invalid RXON configuration. Not committing.\n");
  1503. return -EINVAL;
  1504. }
  1505. /* If we don't need to send a full RXON, we can use
  1506. * il3945_rxon_assoc_cmd which is used to reconfigure filter
  1507. * and other flags for the current radio configuration. */
  1508. if (!il_full_rxon_required(il)) {
  1509. rc = il_send_rxon_assoc(il);
  1510. if (rc) {
  1511. IL_ERR("Error setting RXON_ASSOC "
  1512. "configuration (%d).\n", rc);
  1513. return rc;
  1514. }
  1515. memcpy(active_rxon, staging_rxon, sizeof(*active_rxon));
  1516. /*
  1517. * We do not commit tx power settings while channel changing,
  1518. * do it now if tx power changed.
  1519. */
  1520. il_set_tx_power(il, il->tx_power_next, false);
  1521. return 0;
  1522. }
  1523. /* If we are currently associated and the new config requires
  1524. * an RXON_ASSOC and the new config wants the associated mask enabled,
  1525. * we must clear the associated from the active configuration
  1526. * before we apply the new config */
  1527. if (il_is_associated(il) && new_assoc) {
  1528. D_INFO("Toggling associated bit on current RXON\n");
  1529. active_rxon->filter_flags &= ~RXON_FILTER_ASSOC_MSK;
  1530. /*
  1531. * reserved4 and 5 could have been filled by the iwlcore code.
  1532. * Let's clear them before pushing to the 3945.
  1533. */
  1534. active_rxon->reserved4 = 0;
  1535. active_rxon->reserved5 = 0;
  1536. rc = il_send_cmd_pdu(il, C_RXON, sizeof(struct il3945_rxon_cmd),
  1537. &il->active);
  1538. /* If the mask clearing failed then we set
  1539. * active_rxon back to what it was previously */
  1540. if (rc) {
  1541. active_rxon->filter_flags |= RXON_FILTER_ASSOC_MSK;
  1542. IL_ERR("Error clearing ASSOC_MSK on current "
  1543. "configuration (%d).\n", rc);
  1544. return rc;
  1545. }
  1546. il_clear_ucode_stations(il);
  1547. il_restore_stations(il);
  1548. }
  1549. D_INFO("Sending RXON\n" "* with%s RXON_FILTER_ASSOC_MSK\n"
  1550. "* channel = %d\n" "* bssid = %pM\n", (new_assoc ? "" : "out"),
  1551. le16_to_cpu(staging_rxon->channel), staging_rxon->bssid_addr);
  1552. /*
  1553. * reserved4 and 5 could have been filled by the iwlcore code.
  1554. * Let's clear them before pushing to the 3945.
  1555. */
  1556. staging_rxon->reserved4 = 0;
  1557. staging_rxon->reserved5 = 0;
  1558. il_set_rxon_hwcrypto(il, !il3945_mod_params.sw_crypto);
  1559. /* Apply the new configuration */
  1560. rc = il_send_cmd_pdu(il, C_RXON, sizeof(struct il3945_rxon_cmd),
  1561. staging_rxon);
  1562. if (rc) {
  1563. IL_ERR("Error setting new configuration (%d).\n", rc);
  1564. return rc;
  1565. }
  1566. memcpy(active_rxon, staging_rxon, sizeof(*active_rxon));
  1567. if (!new_assoc) {
  1568. il_clear_ucode_stations(il);
  1569. il_restore_stations(il);
  1570. }
  1571. /* If we issue a new RXON command which required a tune then we must
  1572. * send a new TXPOWER command or we won't be able to Tx any frames */
  1573. rc = il_set_tx_power(il, il->tx_power_next, true);
  1574. if (rc) {
  1575. IL_ERR("Error setting Tx power (%d).\n", rc);
  1576. return rc;
  1577. }
  1578. /* Init the hardware's rate fallback order based on the band */
  1579. rc = il3945_init_hw_rate_table(il);
  1580. if (rc) {
  1581. IL_ERR("Error setting HW rate table: %02X\n", rc);
  1582. return -EIO;
  1583. }
  1584. return 0;
  1585. }
  1586. /**
  1587. * il3945_reg_txpower_periodic - called when time to check our temperature.
  1588. *
  1589. * -- reset periodic timer
  1590. * -- see if temp has changed enough to warrant re-calibration ... if so:
  1591. * -- correct coeffs for temp (can reset temp timer)
  1592. * -- save this temp as "last",
  1593. * -- send new set of gain settings to NIC
  1594. * NOTE: This should continue working, even when we're not associated,
  1595. * so we can keep our internal table of scan powers current. */
  1596. void
  1597. il3945_reg_txpower_periodic(struct il_priv *il)
  1598. {
  1599. /* This will kick in the "brute force"
  1600. * il3945_hw_reg_comp_txpower_temp() below */
  1601. if (!il3945_is_temp_calib_needed(il))
  1602. goto reschedule;
  1603. /* Set up a new set of temp-adjusted TxPowers, send to NIC.
  1604. * This is based *only* on current temperature,
  1605. * ignoring any previous power measurements */
  1606. il3945_hw_reg_comp_txpower_temp(il);
  1607. reschedule:
  1608. queue_delayed_work(il->workqueue, &il->_3945.thermal_periodic,
  1609. REG_RECALIB_PERIOD * HZ);
  1610. }
  1611. static void
  1612. il3945_bg_reg_txpower_periodic(struct work_struct *work)
  1613. {
  1614. struct il_priv *il = container_of(work, struct il_priv,
  1615. _3945.thermal_periodic.work);
  1616. mutex_lock(&il->mutex);
  1617. if (test_bit(S_EXIT_PENDING, &il->status) || il->txq == NULL)
  1618. goto out;
  1619. il3945_reg_txpower_periodic(il);
  1620. out:
  1621. mutex_unlock(&il->mutex);
  1622. }
  1623. /**
  1624. * il3945_hw_reg_get_ch_grp_idx - find the channel-group idx (0-4) for channel.
  1625. *
  1626. * This function is used when initializing channel-info structs.
  1627. *
  1628. * NOTE: These channel groups do *NOT* match the bands above!
  1629. * These channel groups are based on factory-tested channels;
  1630. * on A-band, EEPROM's "group frequency" entries represent the top
  1631. * channel in each group 1-4. Group 5 All B/G channels are in group 0.
  1632. */
  1633. static u16
  1634. il3945_hw_reg_get_ch_grp_idx(struct il_priv *il,
  1635. const struct il_channel_info *ch_info)
  1636. {
  1637. struct il3945_eeprom *eeprom = (struct il3945_eeprom *)il->eeprom;
  1638. struct il3945_eeprom_txpower_group *ch_grp = &eeprom->groups[0];
  1639. u8 group;
  1640. u16 group_idx = 0; /* based on factory calib frequencies */
  1641. u8 grp_channel;
  1642. /* Find the group idx for the channel ... don't use idx 1(?) */
  1643. if (il_is_channel_a_band(ch_info)) {
  1644. for (group = 1; group < 5; group++) {
  1645. grp_channel = ch_grp[group].group_channel;
  1646. if (ch_info->channel <= grp_channel) {
  1647. group_idx = group;
  1648. break;
  1649. }
  1650. }
  1651. /* group 4 has a few channels *above* its factory cal freq */
  1652. if (group == 5)
  1653. group_idx = 4;
  1654. } else
  1655. group_idx = 0; /* 2.4 GHz, group 0 */
  1656. D_POWER("Chnl %d mapped to grp %d\n", ch_info->channel, group_idx);
  1657. return group_idx;
  1658. }
  1659. /**
  1660. * il3945_hw_reg_get_matched_power_idx - Interpolate to get nominal idx
  1661. *
  1662. * Interpolate to get nominal (i.e. at factory calibration temperature) idx
  1663. * into radio/DSP gain settings table for requested power.
  1664. */
  1665. static int
  1666. il3945_hw_reg_get_matched_power_idx(struct il_priv *il, s8 requested_power,
  1667. s32 setting_idx, s32 *new_idx)
  1668. {
  1669. const struct il3945_eeprom_txpower_group *chnl_grp = NULL;
  1670. struct il3945_eeprom *eeprom = (struct il3945_eeprom *)il->eeprom;
  1671. s32 idx0, idx1;
  1672. s32 power = 2 * requested_power;
  1673. s32 i;
  1674. const struct il3945_eeprom_txpower_sample *samples;
  1675. s32 gains0, gains1;
  1676. s32 res;
  1677. s32 denominator;
  1678. chnl_grp = &eeprom->groups[setting_idx];
  1679. samples = chnl_grp->samples;
  1680. for (i = 0; i < 5; i++) {
  1681. if (power == samples[i].power) {
  1682. *new_idx = samples[i].gain_idx;
  1683. return 0;
  1684. }
  1685. }
  1686. if (power > samples[1].power) {
  1687. idx0 = 0;
  1688. idx1 = 1;
  1689. } else if (power > samples[2].power) {
  1690. idx0 = 1;
  1691. idx1 = 2;
  1692. } else if (power > samples[3].power) {
  1693. idx0 = 2;
  1694. idx1 = 3;
  1695. } else {
  1696. idx0 = 3;
  1697. idx1 = 4;
  1698. }
  1699. denominator = (s32) samples[idx1].power - (s32) samples[idx0].power;
  1700. if (denominator == 0)
  1701. return -EINVAL;
  1702. gains0 = (s32) samples[idx0].gain_idx * (1 << 19);
  1703. gains1 = (s32) samples[idx1].gain_idx * (1 << 19);
  1704. res =
  1705. gains0 + (gains1 - gains0) * ((s32) power -
  1706. (s32) samples[idx0].power) /
  1707. denominator + (1 << 18);
  1708. *new_idx = res >> 19;
  1709. return 0;
  1710. }
  1711. static void
  1712. il3945_hw_reg_init_channel_groups(struct il_priv *il)
  1713. {
  1714. u32 i;
  1715. s32 rate_idx;
  1716. struct il3945_eeprom *eeprom = (struct il3945_eeprom *)il->eeprom;
  1717. const struct il3945_eeprom_txpower_group *group;
  1718. D_POWER("Initializing factory calib info from EEPROM\n");
  1719. for (i = 0; i < IL_NUM_TX_CALIB_GROUPS; i++) {
  1720. s8 *clip_pwrs; /* table of power levels for each rate */
  1721. s8 satur_pwr; /* saturation power for each chnl group */
  1722. group = &eeprom->groups[i];
  1723. /* sanity check on factory saturation power value */
  1724. if (group->saturation_power < 40) {
  1725. IL_WARN("Error: saturation power is %d, "
  1726. "less than minimum expected 40\n",
  1727. group->saturation_power);
  1728. return;
  1729. }
  1730. /*
  1731. * Derive requested power levels for each rate, based on
  1732. * hardware capabilities (saturation power for band).
  1733. * Basic value is 3dB down from saturation, with further
  1734. * power reductions for highest 3 data rates. These
  1735. * backoffs provide headroom for high rate modulation
  1736. * power peaks, without too much distortion (clipping).
  1737. */
  1738. /* we'll fill in this array with h/w max power levels */
  1739. clip_pwrs = (s8 *) il->_3945.clip_groups[i].clip_powers;
  1740. /* divide factory saturation power by 2 to find -3dB level */
  1741. satur_pwr = (s8) (group->saturation_power >> 1);
  1742. /* fill in channel group's nominal powers for each rate */
  1743. for (rate_idx = 0; rate_idx < RATE_COUNT_3945;
  1744. rate_idx++, clip_pwrs++) {
  1745. switch (rate_idx) {
  1746. case RATE_36M_IDX_TBL:
  1747. if (i == 0) /* B/G */
  1748. *clip_pwrs = satur_pwr;
  1749. else /* A */
  1750. *clip_pwrs = satur_pwr - 5;
  1751. break;
  1752. case RATE_48M_IDX_TBL:
  1753. if (i == 0)
  1754. *clip_pwrs = satur_pwr - 7;
  1755. else
  1756. *clip_pwrs = satur_pwr - 10;
  1757. break;
  1758. case RATE_54M_IDX_TBL:
  1759. if (i == 0)
  1760. *clip_pwrs = satur_pwr - 9;
  1761. else
  1762. *clip_pwrs = satur_pwr - 12;
  1763. break;
  1764. default:
  1765. *clip_pwrs = satur_pwr;
  1766. break;
  1767. }
  1768. }
  1769. }
  1770. }
  1771. /**
  1772. * il3945_txpower_set_from_eeprom - Set channel power info based on EEPROM
  1773. *
  1774. * Second pass (during init) to set up il->channel_info
  1775. *
  1776. * Set up Tx-power settings in our channel info database for each VALID
  1777. * (for this geo/SKU) channel, at all Tx data rates, based on eeprom values
  1778. * and current temperature.
  1779. *
  1780. * Since this is based on current temperature (at init time), these values may
  1781. * not be valid for very long, but it gives us a starting/default point,
  1782. * and allows us to active (i.e. using Tx) scan.
  1783. *
  1784. * This does *not* write values to NIC, just sets up our internal table.
  1785. */
  1786. int
  1787. il3945_txpower_set_from_eeprom(struct il_priv *il)
  1788. {
  1789. struct il_channel_info *ch_info = NULL;
  1790. struct il3945_channel_power_info *pwr_info;
  1791. struct il3945_eeprom *eeprom = (struct il3945_eeprom *)il->eeprom;
  1792. int delta_idx;
  1793. u8 rate_idx;
  1794. u8 scan_tbl_idx;
  1795. const s8 *clip_pwrs; /* array of power levels for each rate */
  1796. u8 gain, dsp_atten;
  1797. s8 power;
  1798. u8 pwr_idx, base_pwr_idx, a_band;
  1799. u8 i;
  1800. int temperature;
  1801. /* save temperature reference,
  1802. * so we can determine next time to calibrate */
  1803. temperature = il3945_hw_reg_txpower_get_temperature(il);
  1804. il->last_temperature = temperature;
  1805. il3945_hw_reg_init_channel_groups(il);
  1806. /* initialize Tx power info for each and every channel, 2.4 and 5.x */
  1807. for (i = 0, ch_info = il->channel_info; i < il->channel_count;
  1808. i++, ch_info++) {
  1809. a_band = il_is_channel_a_band(ch_info);
  1810. if (!il_is_channel_valid(ch_info))
  1811. continue;
  1812. /* find this channel's channel group (*not* "band") idx */
  1813. ch_info->group_idx = il3945_hw_reg_get_ch_grp_idx(il, ch_info);
  1814. /* Get this chnlgrp's rate->max/clip-powers table */
  1815. clip_pwrs =
  1816. il->_3945.clip_groups[ch_info->group_idx].clip_powers;
  1817. /* calculate power idx *adjustment* value according to
  1818. * diff between current temperature and factory temperature */
  1819. delta_idx =
  1820. il3945_hw_reg_adjust_power_by_temp(temperature,
  1821. eeprom->groups[ch_info->
  1822. group_idx].
  1823. temperature);
  1824. D_POWER("Delta idx for channel %d: %d [%d]\n", ch_info->channel,
  1825. delta_idx, temperature + IL_TEMP_CONVERT);
  1826. /* set tx power value for all OFDM rates */
  1827. for (rate_idx = 0; rate_idx < IL_OFDM_RATES; rate_idx++) {
  1828. s32 uninitialized_var(power_idx);
  1829. int rc;
  1830. /* use channel group's clip-power table,
  1831. * but don't exceed channel's max power */
  1832. s8 pwr = min(ch_info->max_power_avg,
  1833. clip_pwrs[rate_idx]);
  1834. pwr_info = &ch_info->power_info[rate_idx];
  1835. /* get base (i.e. at factory-measured temperature)
  1836. * power table idx for this rate's power */
  1837. rc = il3945_hw_reg_get_matched_power_idx(il, pwr,
  1838. ch_info->
  1839. group_idx,
  1840. &power_idx);
  1841. if (rc) {
  1842. IL_ERR("Invalid power idx\n");
  1843. return rc;
  1844. }
  1845. pwr_info->base_power_idx = (u8) power_idx;
  1846. /* temperature compensate */
  1847. power_idx += delta_idx;
  1848. /* stay within range of gain table */
  1849. power_idx = il3945_hw_reg_fix_power_idx(power_idx);
  1850. /* fill 1 OFDM rate's il3945_channel_power_info struct */
  1851. pwr_info->requested_power = pwr;
  1852. pwr_info->power_table_idx = (u8) power_idx;
  1853. pwr_info->tpc.tx_gain =
  1854. power_gain_table[a_band][power_idx].tx_gain;
  1855. pwr_info->tpc.dsp_atten =
  1856. power_gain_table[a_band][power_idx].dsp_atten;
  1857. }
  1858. /* set tx power for CCK rates, based on OFDM 12 Mbit settings */
  1859. pwr_info = &ch_info->power_info[RATE_12M_IDX_TBL];
  1860. power = pwr_info->requested_power + IL_CCK_FROM_OFDM_POWER_DIFF;
  1861. pwr_idx = pwr_info->power_table_idx + IL_CCK_FROM_OFDM_IDX_DIFF;
  1862. base_pwr_idx =
  1863. pwr_info->base_power_idx + IL_CCK_FROM_OFDM_IDX_DIFF;
  1864. /* stay within table range */
  1865. pwr_idx = il3945_hw_reg_fix_power_idx(pwr_idx);
  1866. gain = power_gain_table[a_band][pwr_idx].tx_gain;
  1867. dsp_atten = power_gain_table[a_band][pwr_idx].dsp_atten;
  1868. /* fill each CCK rate's il3945_channel_power_info structure
  1869. * NOTE: All CCK-rate Txpwrs are the same for a given chnl!
  1870. * NOTE: CCK rates start at end of OFDM rates! */
  1871. for (rate_idx = 0; rate_idx < IL_CCK_RATES; rate_idx++) {
  1872. pwr_info =
  1873. &ch_info->power_info[rate_idx + IL_OFDM_RATES];
  1874. pwr_info->requested_power = power;
  1875. pwr_info->power_table_idx = pwr_idx;
  1876. pwr_info->base_power_idx = base_pwr_idx;
  1877. pwr_info->tpc.tx_gain = gain;
  1878. pwr_info->tpc.dsp_atten = dsp_atten;
  1879. }
  1880. /* set scan tx power, 1Mbit for CCK, 6Mbit for OFDM */
  1881. for (scan_tbl_idx = 0; scan_tbl_idx < IL_NUM_SCAN_RATES;
  1882. scan_tbl_idx++) {
  1883. s32 actual_idx =
  1884. (scan_tbl_idx ==
  1885. 0) ? RATE_1M_IDX_TBL : RATE_6M_IDX_TBL;
  1886. il3945_hw_reg_set_scan_power(il, scan_tbl_idx,
  1887. actual_idx, clip_pwrs,
  1888. ch_info, a_band);
  1889. }
  1890. }
  1891. return 0;
  1892. }
  1893. int
  1894. il3945_hw_rxq_stop(struct il_priv *il)
  1895. {
  1896. int ret;
  1897. _il_wr(il, FH39_RCSR_CONFIG(0), 0);
  1898. ret = _il_poll_bit(il, FH39_RSSR_STATUS,
  1899. FH39_RSSR_CHNL0_RX_STATUS_CHNL_IDLE,
  1900. FH39_RSSR_CHNL0_RX_STATUS_CHNL_IDLE,
  1901. 1000);
  1902. if (ret < 0)
  1903. IL_ERR("Can't stop Rx DMA.\n");
  1904. return 0;
  1905. }
  1906. int
  1907. il3945_hw_tx_queue_init(struct il_priv *il, struct il_tx_queue *txq)
  1908. {
  1909. int txq_id = txq->q.id;
  1910. struct il3945_shared *shared_data = il->_3945.shared_virt;
  1911. shared_data->tx_base_ptr[txq_id] = cpu_to_le32((u32) txq->q.dma_addr);
  1912. il_wr(il, FH39_CBCC_CTRL(txq_id), 0);
  1913. il_wr(il, FH39_CBCC_BASE(txq_id), 0);
  1914. il_wr(il, FH39_TCSR_CONFIG(txq_id),
  1915. FH39_TCSR_TX_CONFIG_REG_VAL_CIRQ_RTC_NOINT |
  1916. FH39_TCSR_TX_CONFIG_REG_VAL_MSG_MODE_TXF |
  1917. FH39_TCSR_TX_CONFIG_REG_VAL_CIRQ_HOST_IFTFD |
  1918. FH39_TCSR_TX_CONFIG_REG_VAL_DMA_CREDIT_ENABLE_VAL |
  1919. FH39_TCSR_TX_CONFIG_REG_VAL_DMA_CHNL_ENABLE);
  1920. /* fake read to flush all prev. writes */
  1921. _il_rd(il, FH39_TSSR_CBB_BASE);
  1922. return 0;
  1923. }
  1924. /*
  1925. * HCMD utils
  1926. */
  1927. static u16
  1928. il3945_get_hcmd_size(u8 cmd_id, u16 len)
  1929. {
  1930. switch (cmd_id) {
  1931. case C_RXON:
  1932. return sizeof(struct il3945_rxon_cmd);
  1933. case C_POWER_TBL:
  1934. return sizeof(struct il3945_powertable_cmd);
  1935. default:
  1936. return len;
  1937. }
  1938. }
  1939. static u16
  1940. il3945_build_addsta_hcmd(const struct il_addsta_cmd *cmd, u8 * data)
  1941. {
  1942. struct il3945_addsta_cmd *addsta = (struct il3945_addsta_cmd *)data;
  1943. addsta->mode = cmd->mode;
  1944. memcpy(&addsta->sta, &cmd->sta, sizeof(struct sta_id_modify));
  1945. memcpy(&addsta->key, &cmd->key, sizeof(struct il4965_keyinfo));
  1946. addsta->station_flags = cmd->station_flags;
  1947. addsta->station_flags_msk = cmd->station_flags_msk;
  1948. addsta->tid_disable_tx = cpu_to_le16(0);
  1949. addsta->rate_n_flags = cmd->rate_n_flags;
  1950. addsta->add_immediate_ba_tid = cmd->add_immediate_ba_tid;
  1951. addsta->remove_immediate_ba_tid = cmd->remove_immediate_ba_tid;
  1952. addsta->add_immediate_ba_ssn = cmd->add_immediate_ba_ssn;
  1953. return (u16) sizeof(struct il3945_addsta_cmd);
  1954. }
  1955. static int
  1956. il3945_add_bssid_station(struct il_priv *il, const u8 * addr, u8 * sta_id_r)
  1957. {
  1958. int ret;
  1959. u8 sta_id;
  1960. unsigned long flags;
  1961. if (sta_id_r)
  1962. *sta_id_r = IL_INVALID_STATION;
  1963. ret = il_add_station_common(il, addr, 0, NULL, &sta_id);
  1964. if (ret) {
  1965. IL_ERR("Unable to add station %pM\n", addr);
  1966. return ret;
  1967. }
  1968. if (sta_id_r)
  1969. *sta_id_r = sta_id;
  1970. spin_lock_irqsave(&il->sta_lock, flags);
  1971. il->stations[sta_id].used |= IL_STA_LOCAL;
  1972. spin_unlock_irqrestore(&il->sta_lock, flags);
  1973. return 0;
  1974. }
  1975. static int
  1976. il3945_manage_ibss_station(struct il_priv *il, struct ieee80211_vif *vif,
  1977. bool add)
  1978. {
  1979. struct il_vif_priv *vif_priv = (void *)vif->drv_priv;
  1980. int ret;
  1981. if (add) {
  1982. ret =
  1983. il3945_add_bssid_station(il, vif->bss_conf.bssid,
  1984. &vif_priv->ibss_bssid_sta_id);
  1985. if (ret)
  1986. return ret;
  1987. il3945_sync_sta(il, vif_priv->ibss_bssid_sta_id,
  1988. (il->band ==
  1989. IEEE80211_BAND_5GHZ) ? RATE_6M_PLCP :
  1990. RATE_1M_PLCP);
  1991. il3945_rate_scale_init(il->hw, vif_priv->ibss_bssid_sta_id);
  1992. return 0;
  1993. }
  1994. return il_remove_station(il, vif_priv->ibss_bssid_sta_id,
  1995. vif->bss_conf.bssid);
  1996. }
  1997. /**
  1998. * il3945_init_hw_rate_table - Initialize the hardware rate fallback table
  1999. */
  2000. int
  2001. il3945_init_hw_rate_table(struct il_priv *il)
  2002. {
  2003. int rc, i, idx, prev_idx;
  2004. struct il3945_rate_scaling_cmd rate_cmd = {
  2005. .reserved = {0, 0, 0},
  2006. };
  2007. struct il3945_rate_scaling_info *table = rate_cmd.table;
  2008. for (i = 0; i < ARRAY_SIZE(il3945_rates); i++) {
  2009. idx = il3945_rates[i].table_rs_idx;
  2010. table[idx].rate_n_flags = cpu_to_le16(il3945_rates[i].plcp);
  2011. table[idx].try_cnt = il->retry_rate;
  2012. prev_idx = il3945_get_prev_ieee_rate(i);
  2013. table[idx].next_rate_idx = il3945_rates[prev_idx].table_rs_idx;
  2014. }
  2015. switch (il->band) {
  2016. case IEEE80211_BAND_5GHZ:
  2017. D_RATE("Select A mode rate scale\n");
  2018. /* If one of the following CCK rates is used,
  2019. * have it fall back to the 6M OFDM rate */
  2020. for (i = RATE_1M_IDX_TBL; i <= RATE_11M_IDX_TBL; i++)
  2021. table[i].next_rate_idx =
  2022. il3945_rates[IL_FIRST_OFDM_RATE].table_rs_idx;
  2023. /* Don't fall back to CCK rates */
  2024. table[RATE_12M_IDX_TBL].next_rate_idx = RATE_9M_IDX_TBL;
  2025. /* Don't drop out of OFDM rates */
  2026. table[RATE_6M_IDX_TBL].next_rate_idx =
  2027. il3945_rates[IL_FIRST_OFDM_RATE].table_rs_idx;
  2028. break;
  2029. case IEEE80211_BAND_2GHZ:
  2030. D_RATE("Select B/G mode rate scale\n");
  2031. /* If an OFDM rate is used, have it fall back to the
  2032. * 1M CCK rates */
  2033. if (!(il->_3945.sta_supp_rates & IL_OFDM_RATES_MASK) &&
  2034. il_is_associated(il)) {
  2035. idx = IL_FIRST_CCK_RATE;
  2036. for (i = RATE_6M_IDX_TBL; i <= RATE_54M_IDX_TBL; i++)
  2037. table[i].next_rate_idx =
  2038. il3945_rates[idx].table_rs_idx;
  2039. idx = RATE_11M_IDX_TBL;
  2040. /* CCK shouldn't fall back to OFDM... */
  2041. table[idx].next_rate_idx = RATE_5M_IDX_TBL;
  2042. }
  2043. break;
  2044. default:
  2045. WARN_ON(1);
  2046. break;
  2047. }
  2048. /* Update the rate scaling for control frame Tx */
  2049. rate_cmd.table_id = 0;
  2050. rc = il_send_cmd_pdu(il, C_RATE_SCALE, sizeof(rate_cmd), &rate_cmd);
  2051. if (rc)
  2052. return rc;
  2053. /* Update the rate scaling for data frame Tx */
  2054. rate_cmd.table_id = 1;
  2055. return il_send_cmd_pdu(il, C_RATE_SCALE, sizeof(rate_cmd), &rate_cmd);
  2056. }
  2057. /* Called when initializing driver */
  2058. int
  2059. il3945_hw_set_hw_params(struct il_priv *il)
  2060. {
  2061. memset((void *)&il->hw_params, 0, sizeof(struct il_hw_params));
  2062. il->_3945.shared_virt =
  2063. dma_alloc_coherent(&il->pci_dev->dev, sizeof(struct il3945_shared),
  2064. &il->_3945.shared_phys, GFP_KERNEL);
  2065. if (!il->_3945.shared_virt)
  2066. return -ENOMEM;
  2067. il->hw_params.bcast_id = IL3945_BROADCAST_ID;
  2068. /* Assign number of Usable TX queues */
  2069. il->hw_params.max_txq_num = il->cfg->num_of_queues;
  2070. il->hw_params.tfd_size = sizeof(struct il3945_tfd);
  2071. il->hw_params.rx_page_order = get_order(IL_RX_BUF_SIZE_3K);
  2072. il->hw_params.max_rxq_size = RX_QUEUE_SIZE;
  2073. il->hw_params.max_rxq_log = RX_QUEUE_SIZE_LOG;
  2074. il->hw_params.max_stations = IL3945_STATION_COUNT;
  2075. il->sta_key_max_num = STA_KEY_MAX_NUM;
  2076. il->hw_params.rx_wrt_ptr_reg = FH39_RSCSR_CHNL0_WPTR;
  2077. il->hw_params.max_beacon_itrvl = IL39_MAX_UCODE_BEACON_INTERVAL;
  2078. il->hw_params.beacon_time_tsf_bits = IL3945_EXT_BEACON_TIME_POS;
  2079. return 0;
  2080. }
  2081. unsigned int
  2082. il3945_hw_get_beacon_cmd(struct il_priv *il, struct il3945_frame *frame,
  2083. u8 rate)
  2084. {
  2085. struct il3945_tx_beacon_cmd *tx_beacon_cmd;
  2086. unsigned int frame_size;
  2087. tx_beacon_cmd = (struct il3945_tx_beacon_cmd *)&frame->u;
  2088. memset(tx_beacon_cmd, 0, sizeof(*tx_beacon_cmd));
  2089. tx_beacon_cmd->tx.sta_id = il->hw_params.bcast_id;
  2090. tx_beacon_cmd->tx.stop_time.life_time = TX_CMD_LIFE_TIME_INFINITE;
  2091. frame_size =
  2092. il3945_fill_beacon_frame(il, tx_beacon_cmd->frame,
  2093. sizeof(frame->u) - sizeof(*tx_beacon_cmd));
  2094. BUG_ON(frame_size > MAX_MPDU_SIZE);
  2095. tx_beacon_cmd->tx.len = cpu_to_le16((u16) frame_size);
  2096. tx_beacon_cmd->tx.rate = rate;
  2097. tx_beacon_cmd->tx.tx_flags =
  2098. (TX_CMD_FLG_SEQ_CTL_MSK | TX_CMD_FLG_TSF_MSK);
  2099. /* supp_rates[0] == OFDM start at IL_FIRST_OFDM_RATE */
  2100. tx_beacon_cmd->tx.supp_rates[0] =
  2101. (IL_OFDM_BASIC_RATES_MASK >> IL_FIRST_OFDM_RATE) & 0xFF;
  2102. tx_beacon_cmd->tx.supp_rates[1] = (IL_CCK_BASIC_RATES_MASK & 0xF);
  2103. return sizeof(struct il3945_tx_beacon_cmd) + frame_size;
  2104. }
  2105. void
  2106. il3945_hw_handler_setup(struct il_priv *il)
  2107. {
  2108. il->handlers[C_TX] = il3945_hdl_tx;
  2109. il->handlers[N_3945_RX] = il3945_hdl_rx;
  2110. }
  2111. void
  2112. il3945_hw_setup_deferred_work(struct il_priv *il)
  2113. {
  2114. INIT_DELAYED_WORK(&il->_3945.thermal_periodic,
  2115. il3945_bg_reg_txpower_periodic);
  2116. }
  2117. void
  2118. il3945_hw_cancel_deferred_work(struct il_priv *il)
  2119. {
  2120. cancel_delayed_work(&il->_3945.thermal_periodic);
  2121. }
  2122. /* check contents of special bootstrap uCode SRAM */
  2123. static int
  2124. il3945_verify_bsm(struct il_priv *il)
  2125. {
  2126. __le32 *image = il->ucode_boot.v_addr;
  2127. u32 len = il->ucode_boot.len;
  2128. u32 reg;
  2129. u32 val;
  2130. D_INFO("Begin verify bsm\n");
  2131. /* verify BSM SRAM contents */
  2132. val = il_rd_prph(il, BSM_WR_DWCOUNT_REG);
  2133. for (reg = BSM_SRAM_LOWER_BOUND; reg < BSM_SRAM_LOWER_BOUND + len;
  2134. reg += sizeof(u32), image++) {
  2135. val = il_rd_prph(il, reg);
  2136. if (val != le32_to_cpu(*image)) {
  2137. IL_ERR("BSM uCode verification failed at "
  2138. "addr 0x%08X+%u (of %u), is 0x%x, s/b 0x%x\n",
  2139. BSM_SRAM_LOWER_BOUND, reg - BSM_SRAM_LOWER_BOUND,
  2140. len, val, le32_to_cpu(*image));
  2141. return -EIO;
  2142. }
  2143. }
  2144. D_INFO("BSM bootstrap uCode image OK\n");
  2145. return 0;
  2146. }
  2147. /******************************************************************************
  2148. *
  2149. * EEPROM related functions
  2150. *
  2151. ******************************************************************************/
  2152. /*
  2153. * Clear the OWNER_MSK, to establish driver (instead of uCode running on
  2154. * embedded controller) as EEPROM reader; each read is a series of pulses
  2155. * to/from the EEPROM chip, not a single event, so even reads could conflict
  2156. * if they weren't arbitrated by some ownership mechanism. Here, the driver
  2157. * simply claims ownership, which should be safe when this function is called
  2158. * (i.e. before loading uCode!).
  2159. */
  2160. static int
  2161. il3945_eeprom_acquire_semaphore(struct il_priv *il)
  2162. {
  2163. _il_clear_bit(il, CSR_EEPROM_GP, CSR_EEPROM_GP_IF_OWNER_MSK);
  2164. return 0;
  2165. }
  2166. static void
  2167. il3945_eeprom_release_semaphore(struct il_priv *il)
  2168. {
  2169. return;
  2170. }
  2171. /**
  2172. * il3945_load_bsm - Load bootstrap instructions
  2173. *
  2174. * BSM operation:
  2175. *
  2176. * The Bootstrap State Machine (BSM) stores a short bootstrap uCode program
  2177. * in special SRAM that does not power down during RFKILL. When powering back
  2178. * up after power-saving sleeps (or during initial uCode load), the BSM loads
  2179. * the bootstrap program into the on-board processor, and starts it.
  2180. *
  2181. * The bootstrap program loads (via DMA) instructions and data for a new
  2182. * program from host DRAM locations indicated by the host driver in the
  2183. * BSM_DRAM_* registers. Once the new program is loaded, it starts
  2184. * automatically.
  2185. *
  2186. * When initializing the NIC, the host driver points the BSM to the
  2187. * "initialize" uCode image. This uCode sets up some internal data, then
  2188. * notifies host via "initialize alive" that it is complete.
  2189. *
  2190. * The host then replaces the BSM_DRAM_* pointer values to point to the
  2191. * normal runtime uCode instructions and a backup uCode data cache buffer
  2192. * (filled initially with starting data values for the on-board processor),
  2193. * then triggers the "initialize" uCode to load and launch the runtime uCode,
  2194. * which begins normal operation.
  2195. *
  2196. * When doing a power-save shutdown, runtime uCode saves data SRAM into
  2197. * the backup data cache in DRAM before SRAM is powered down.
  2198. *
  2199. * When powering back up, the BSM loads the bootstrap program. This reloads
  2200. * the runtime uCode instructions and the backup data cache into SRAM,
  2201. * and re-launches the runtime uCode from where it left off.
  2202. */
  2203. static int
  2204. il3945_load_bsm(struct il_priv *il)
  2205. {
  2206. __le32 *image = il->ucode_boot.v_addr;
  2207. u32 len = il->ucode_boot.len;
  2208. dma_addr_t pinst;
  2209. dma_addr_t pdata;
  2210. u32 inst_len;
  2211. u32 data_len;
  2212. int rc;
  2213. int i;
  2214. u32 done;
  2215. u32 reg_offset;
  2216. D_INFO("Begin load bsm\n");
  2217. /* make sure bootstrap program is no larger than BSM's SRAM size */
  2218. if (len > IL39_MAX_BSM_SIZE)
  2219. return -EINVAL;
  2220. /* Tell bootstrap uCode where to find the "Initialize" uCode
  2221. * in host DRAM ... host DRAM physical address bits 31:0 for 3945.
  2222. * NOTE: il3945_initialize_alive_start() will replace these values,
  2223. * after the "initialize" uCode has run, to point to
  2224. * runtime/protocol instructions and backup data cache. */
  2225. pinst = il->ucode_init.p_addr;
  2226. pdata = il->ucode_init_data.p_addr;
  2227. inst_len = il->ucode_init.len;
  2228. data_len = il->ucode_init_data.len;
  2229. il_wr_prph(il, BSM_DRAM_INST_PTR_REG, pinst);
  2230. il_wr_prph(il, BSM_DRAM_DATA_PTR_REG, pdata);
  2231. il_wr_prph(il, BSM_DRAM_INST_BYTECOUNT_REG, inst_len);
  2232. il_wr_prph(il, BSM_DRAM_DATA_BYTECOUNT_REG, data_len);
  2233. /* Fill BSM memory with bootstrap instructions */
  2234. for (reg_offset = BSM_SRAM_LOWER_BOUND;
  2235. reg_offset < BSM_SRAM_LOWER_BOUND + len;
  2236. reg_offset += sizeof(u32), image++)
  2237. _il_wr_prph(il, reg_offset, le32_to_cpu(*image));
  2238. rc = il3945_verify_bsm(il);
  2239. if (rc)
  2240. return rc;
  2241. /* Tell BSM to copy from BSM SRAM into instruction SRAM, when asked */
  2242. il_wr_prph(il, BSM_WR_MEM_SRC_REG, 0x0);
  2243. il_wr_prph(il, BSM_WR_MEM_DST_REG, IL39_RTC_INST_LOWER_BOUND);
  2244. il_wr_prph(il, BSM_WR_DWCOUNT_REG, len / sizeof(u32));
  2245. /* Load bootstrap code into instruction SRAM now,
  2246. * to prepare to load "initialize" uCode */
  2247. il_wr_prph(il, BSM_WR_CTRL_REG, BSM_WR_CTRL_REG_BIT_START);
  2248. /* Wait for load of bootstrap uCode to finish */
  2249. for (i = 0; i < 100; i++) {
  2250. done = il_rd_prph(il, BSM_WR_CTRL_REG);
  2251. if (!(done & BSM_WR_CTRL_REG_BIT_START))
  2252. break;
  2253. udelay(10);
  2254. }
  2255. if (i < 100)
  2256. D_INFO("BSM write complete, poll %d iterations\n", i);
  2257. else {
  2258. IL_ERR("BSM write did not complete!\n");
  2259. return -EIO;
  2260. }
  2261. /* Enable future boot loads whenever power management unit triggers it
  2262. * (e.g. when powering back up after power-save shutdown) */
  2263. il_wr_prph(il, BSM_WR_CTRL_REG, BSM_WR_CTRL_REG_BIT_START_EN);
  2264. return 0;
  2265. }
  2266. const struct il_ops il3945_ops = {
  2267. .txq_attach_buf_to_tfd = il3945_hw_txq_attach_buf_to_tfd,
  2268. .txq_free_tfd = il3945_hw_txq_free_tfd,
  2269. .txq_init = il3945_hw_tx_queue_init,
  2270. .load_ucode = il3945_load_bsm,
  2271. .dump_nic_error_log = il3945_dump_nic_error_log,
  2272. .apm_init = il3945_apm_init,
  2273. .send_tx_power = il3945_send_tx_power,
  2274. .is_valid_rtc_data_addr = il3945_hw_valid_rtc_data_addr,
  2275. .eeprom_acquire_semaphore = il3945_eeprom_acquire_semaphore,
  2276. .eeprom_release_semaphore = il3945_eeprom_release_semaphore,
  2277. .rxon_assoc = il3945_send_rxon_assoc,
  2278. .commit_rxon = il3945_commit_rxon,
  2279. .get_hcmd_size = il3945_get_hcmd_size,
  2280. .build_addsta_hcmd = il3945_build_addsta_hcmd,
  2281. .request_scan = il3945_request_scan,
  2282. .post_scan = il3945_post_scan,
  2283. .post_associate = il3945_post_associate,
  2284. .config_ap = il3945_config_ap,
  2285. .manage_ibss_station = il3945_manage_ibss_station,
  2286. .send_led_cmd = il3945_send_led_cmd,
  2287. };
  2288. static struct il_cfg il3945_bg_cfg = {
  2289. .name = "3945BG",
  2290. .fw_name_pre = IL3945_FW_PRE,
  2291. .ucode_api_max = IL3945_UCODE_API_MAX,
  2292. .ucode_api_min = IL3945_UCODE_API_MIN,
  2293. .sku = IL_SKU_G,
  2294. .eeprom_ver = EEPROM_3945_EEPROM_VERSION,
  2295. .mod_params = &il3945_mod_params,
  2296. .led_mode = IL_LED_BLINK,
  2297. .eeprom_size = IL3945_EEPROM_IMG_SIZE,
  2298. .num_of_queues = IL39_NUM_QUEUES,
  2299. .pll_cfg_val = CSR39_ANA_PLL_CFG_VAL,
  2300. .set_l0s = false,
  2301. .use_bsm = true,
  2302. .led_compensation = 64,
  2303. .wd_timeout = IL_DEF_WD_TIMEOUT,
  2304. .regulatory_bands = {
  2305. EEPROM_REGULATORY_BAND_1_CHANNELS,
  2306. EEPROM_REGULATORY_BAND_2_CHANNELS,
  2307. EEPROM_REGULATORY_BAND_3_CHANNELS,
  2308. EEPROM_REGULATORY_BAND_4_CHANNELS,
  2309. EEPROM_REGULATORY_BAND_5_CHANNELS,
  2310. EEPROM_REGULATORY_BAND_NO_HT40,
  2311. EEPROM_REGULATORY_BAND_NO_HT40,
  2312. },
  2313. };
  2314. static struct il_cfg il3945_abg_cfg = {
  2315. .name = "3945ABG",
  2316. .fw_name_pre = IL3945_FW_PRE,
  2317. .ucode_api_max = IL3945_UCODE_API_MAX,
  2318. .ucode_api_min = IL3945_UCODE_API_MIN,
  2319. .sku = IL_SKU_A | IL_SKU_G,
  2320. .eeprom_ver = EEPROM_3945_EEPROM_VERSION,
  2321. .mod_params = &il3945_mod_params,
  2322. .led_mode = IL_LED_BLINK,
  2323. .eeprom_size = IL3945_EEPROM_IMG_SIZE,
  2324. .num_of_queues = IL39_NUM_QUEUES,
  2325. .pll_cfg_val = CSR39_ANA_PLL_CFG_VAL,
  2326. .set_l0s = false,
  2327. .use_bsm = true,
  2328. .led_compensation = 64,
  2329. .wd_timeout = IL_DEF_WD_TIMEOUT,
  2330. .regulatory_bands = {
  2331. EEPROM_REGULATORY_BAND_1_CHANNELS,
  2332. EEPROM_REGULATORY_BAND_2_CHANNELS,
  2333. EEPROM_REGULATORY_BAND_3_CHANNELS,
  2334. EEPROM_REGULATORY_BAND_4_CHANNELS,
  2335. EEPROM_REGULATORY_BAND_5_CHANNELS,
  2336. EEPROM_REGULATORY_BAND_NO_HT40,
  2337. EEPROM_REGULATORY_BAND_NO_HT40,
  2338. },
  2339. };
  2340. DEFINE_PCI_DEVICE_TABLE(il3945_hw_card_ids) = {
  2341. {IL_PCI_DEVICE(0x4222, 0x1005, il3945_bg_cfg)},
  2342. {IL_PCI_DEVICE(0x4222, 0x1034, il3945_bg_cfg)},
  2343. {IL_PCI_DEVICE(0x4222, 0x1044, il3945_bg_cfg)},
  2344. {IL_PCI_DEVICE(0x4227, 0x1014, il3945_bg_cfg)},
  2345. {IL_PCI_DEVICE(0x4222, PCI_ANY_ID, il3945_abg_cfg)},
  2346. {IL_PCI_DEVICE(0x4227, PCI_ANY_ID, il3945_abg_cfg)},
  2347. {0}
  2348. };
  2349. MODULE_DEVICE_TABLE(pci, il3945_hw_card_ids);