4965.h 51 KB

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  1. /******************************************************************************
  2. *
  3. * GPL LICENSE SUMMARY
  4. *
  5. * Copyright(c) 2008 - 2011 Intel Corporation. All rights reserved.
  6. *
  7. * This program is free software; you can redistribute it and/or modify
  8. * it under the terms of version 2 of the GNU General Public License as
  9. * published by the Free Software Foundation.
  10. *
  11. * This program is distributed in the hope that it will be useful, but
  12. * WITHOUT ANY WARRANTY; without even the implied warranty of
  13. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
  14. * General Public License for more details.
  15. *
  16. * You should have received a copy of the GNU General Public License
  17. * along with this program; if not, write to the Free Software
  18. * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110,
  19. * USA
  20. *
  21. * The full GNU General Public License is included in this distribution
  22. * in the file called LICENSE.GPL.
  23. *
  24. * Contact Information:
  25. * Intel Linux Wireless <ilw@linux.intel.com>
  26. * Intel Corporation, 5200 N.E. Elam Young Parkway, Hillsboro, OR 97124-6497
  27. *
  28. *****************************************************************************/
  29. #ifndef __il_4965_h__
  30. #define __il_4965_h__
  31. struct il_rx_queue;
  32. struct il_rx_buf;
  33. struct il_rx_pkt;
  34. struct il_tx_queue;
  35. struct il_rxon_context;
  36. /* configuration for the _4965 devices */
  37. extern struct il_cfg il4965_cfg;
  38. extern struct il_mod_params il4965_mod_params;
  39. extern struct ieee80211_ops il4965_hw_ops;
  40. /* tx queue */
  41. void il4965_free_tfds_in_queue(struct il_priv *il, int sta_id, int tid,
  42. int freed);
  43. /* RXON */
  44. void il4965_set_rxon_chain(struct il_priv *il, struct il_rxon_context *ctx);
  45. /* uCode */
  46. int il4965_verify_ucode(struct il_priv *il);
  47. /* lib */
  48. void il4965_check_abort_status(struct il_priv *il, u8 frame_count, u32 status);
  49. void il4965_rx_queue_reset(struct il_priv *il, struct il_rx_queue *rxq);
  50. int il4965_rx_init(struct il_priv *il, struct il_rx_queue *rxq);
  51. int il4965_hw_nic_init(struct il_priv *il);
  52. int il4965_dump_fh(struct il_priv *il, char **buf, bool display);
  53. /* rx */
  54. void il4965_rx_queue_restock(struct il_priv *il);
  55. void il4965_rx_replenish(struct il_priv *il);
  56. void il4965_rx_replenish_now(struct il_priv *il);
  57. void il4965_rx_queue_free(struct il_priv *il, struct il_rx_queue *rxq);
  58. int il4965_rxq_stop(struct il_priv *il);
  59. int il4965_hwrate_to_mac80211_idx(u32 rate_n_flags, enum ieee80211_band band);
  60. void il4965_hdl_rx(struct il_priv *il, struct il_rx_buf *rxb);
  61. void il4965_hdl_rx_phy(struct il_priv *il, struct il_rx_buf *rxb);
  62. void il4965_rx_handle(struct il_priv *il);
  63. /* tx */
  64. void il4965_hw_txq_free_tfd(struct il_priv *il, struct il_tx_queue *txq);
  65. int il4965_hw_txq_attach_buf_to_tfd(struct il_priv *il, struct il_tx_queue *txq,
  66. dma_addr_t addr, u16 len, u8 reset, u8 pad);
  67. int il4965_hw_tx_queue_init(struct il_priv *il, struct il_tx_queue *txq);
  68. void il4965_hwrate_to_tx_control(struct il_priv *il, u32 rate_n_flags,
  69. struct ieee80211_tx_info *info);
  70. int il4965_tx_skb(struct il_priv *il, struct sk_buff *skb);
  71. int il4965_tx_agg_start(struct il_priv *il, struct ieee80211_vif *vif,
  72. struct ieee80211_sta *sta, u16 tid, u16 * ssn);
  73. int il4965_tx_agg_stop(struct il_priv *il, struct ieee80211_vif *vif,
  74. struct ieee80211_sta *sta, u16 tid);
  75. int il4965_txq_check_empty(struct il_priv *il, int sta_id, u8 tid, int txq_id);
  76. void il4965_hdl_compressed_ba(struct il_priv *il, struct il_rx_buf *rxb);
  77. int il4965_tx_queue_reclaim(struct il_priv *il, int txq_id, int idx);
  78. void il4965_hw_txq_ctx_free(struct il_priv *il);
  79. int il4965_txq_ctx_alloc(struct il_priv *il);
  80. void il4965_txq_ctx_reset(struct il_priv *il);
  81. void il4965_txq_ctx_stop(struct il_priv *il);
  82. void il4965_txq_set_sched(struct il_priv *il, u32 mask);
  83. /*
  84. * Acquire il->lock before calling this function !
  85. */
  86. void il4965_set_wr_ptrs(struct il_priv *il, int txq_id, u32 idx);
  87. /**
  88. * il4965_tx_queue_set_status - (optionally) start Tx/Cmd queue
  89. * @tx_fifo_id: Tx DMA/FIFO channel (range 0-7) that the queue will feed
  90. * @scd_retry: (1) Indicates queue will be used in aggregation mode
  91. *
  92. * NOTE: Acquire il->lock before calling this function !
  93. */
  94. void il4965_tx_queue_set_status(struct il_priv *il, struct il_tx_queue *txq,
  95. int tx_fifo_id, int scd_retry);
  96. u8 il4965_toggle_tx_ant(struct il_priv *il, u8 ant_idx, u8 valid);
  97. /* rx */
  98. void il4965_hdl_missed_beacon(struct il_priv *il, struct il_rx_buf *rxb);
  99. bool il4965_good_plcp_health(struct il_priv *il, struct il_rx_pkt *pkt);
  100. void il4965_hdl_stats(struct il_priv *il, struct il_rx_buf *rxb);
  101. void il4965_hdl_c_stats(struct il_priv *il, struct il_rx_buf *rxb);
  102. /* scan */
  103. int il4965_request_scan(struct il_priv *il, struct ieee80211_vif *vif);
  104. /* station mgmt */
  105. int il4965_manage_ibss_station(struct il_priv *il, struct ieee80211_vif *vif,
  106. bool add);
  107. /* hcmd */
  108. int il4965_send_beacon_cmd(struct il_priv *il);
  109. #ifdef CONFIG_IWLEGACY_DEBUG
  110. const char *il4965_get_tx_fail_reason(u32 status);
  111. #else
  112. static inline const char *
  113. il4965_get_tx_fail_reason(u32 status)
  114. {
  115. return "";
  116. }
  117. #endif
  118. /* station management */
  119. int il4965_alloc_bcast_station(struct il_priv *il, struct il_rxon_context *ctx);
  120. int il4965_add_bssid_station(struct il_priv *il, struct il_rxon_context *ctx,
  121. const u8 *addr, u8 *sta_id_r);
  122. int il4965_remove_default_wep_key(struct il_priv *il,
  123. struct il_rxon_context *ctx,
  124. struct ieee80211_key_conf *key);
  125. int il4965_set_default_wep_key(struct il_priv *il, struct il_rxon_context *ctx,
  126. struct ieee80211_key_conf *key);
  127. int il4965_restore_default_wep_keys(struct il_priv *il,
  128. struct il_rxon_context *ctx);
  129. int il4965_set_dynamic_key(struct il_priv *il, struct il_rxon_context *ctx,
  130. struct ieee80211_key_conf *key, u8 sta_id);
  131. int il4965_remove_dynamic_key(struct il_priv *il, struct il_rxon_context *ctx,
  132. struct ieee80211_key_conf *key, u8 sta_id);
  133. void il4965_update_tkip_key(struct il_priv *il, struct il_rxon_context *ctx,
  134. struct ieee80211_key_conf *keyconf,
  135. struct ieee80211_sta *sta, u32 iv32,
  136. u16 *phase1key);
  137. int il4965_sta_tx_modify_enable_tid(struct il_priv *il, int sta_id, int tid);
  138. int il4965_sta_rx_agg_start(struct il_priv *il, struct ieee80211_sta *sta,
  139. int tid, u16 ssn);
  140. int il4965_sta_rx_agg_stop(struct il_priv *il, struct ieee80211_sta *sta,
  141. int tid);
  142. void il4965_sta_modify_sleep_tx_count(struct il_priv *il, int sta_id, int cnt);
  143. int il4965_update_bcast_stations(struct il_priv *il);
  144. /* rate */
  145. static inline u8
  146. il4965_hw_get_rate(__le32 rate_n_flags)
  147. {
  148. return le32_to_cpu(rate_n_flags) & 0xFF;
  149. }
  150. static inline __le32
  151. il4965_hw_set_rate_n_flags(u8 rate, u32 flags)
  152. {
  153. return cpu_to_le32(flags | (u32) rate);
  154. }
  155. /* eeprom */
  156. void il4965_eeprom_get_mac(const struct il_priv *il, u8 * mac);
  157. int il4965_eeprom_acquire_semaphore(struct il_priv *il);
  158. void il4965_eeprom_release_semaphore(struct il_priv *il);
  159. int il4965_eeprom_check_version(struct il_priv *il);
  160. /* mac80211 handlers (for 4965) */
  161. void il4965_mac_tx(struct ieee80211_hw *hw, struct sk_buff *skb);
  162. int il4965_mac_start(struct ieee80211_hw *hw);
  163. void il4965_mac_stop(struct ieee80211_hw *hw);
  164. void il4965_configure_filter(struct ieee80211_hw *hw,
  165. unsigned int changed_flags,
  166. unsigned int *total_flags, u64 multicast);
  167. int il4965_mac_set_key(struct ieee80211_hw *hw, enum set_key_cmd cmd,
  168. struct ieee80211_vif *vif, struct ieee80211_sta *sta,
  169. struct ieee80211_key_conf *key);
  170. void il4965_mac_update_tkip_key(struct ieee80211_hw *hw,
  171. struct ieee80211_vif *vif,
  172. struct ieee80211_key_conf *keyconf,
  173. struct ieee80211_sta *sta, u32 iv32,
  174. u16 *phase1key);
  175. int il4965_mac_ampdu_action(struct ieee80211_hw *hw, struct ieee80211_vif *vif,
  176. enum ieee80211_ampdu_mlme_action action,
  177. struct ieee80211_sta *sta, u16 tid, u16 * ssn,
  178. u8 buf_size);
  179. int il4965_mac_sta_add(struct ieee80211_hw *hw, struct ieee80211_vif *vif,
  180. struct ieee80211_sta *sta);
  181. void il4965_mac_channel_switch(struct ieee80211_hw *hw,
  182. struct ieee80211_channel_switch *ch_switch);
  183. void il4965_led_enable(struct il_priv *il);
  184. /* EEPROM */
  185. #define IL4965_EEPROM_IMG_SIZE 1024
  186. /*
  187. * uCode queue management definitions ...
  188. * The first queue used for block-ack aggregation is #7 (4965 only).
  189. * All block-ack aggregation queues should map to Tx DMA/FIFO channel 7.
  190. */
  191. #define IL49_FIRST_AMPDU_QUEUE 7
  192. /* Sizes and addresses for instruction and data memory (SRAM) in
  193. * 4965's embedded processor. Driver access is via HBUS_TARG_MEM_* regs. */
  194. #define IL49_RTC_INST_LOWER_BOUND (0x000000)
  195. #define IL49_RTC_INST_UPPER_BOUND (0x018000)
  196. #define IL49_RTC_DATA_LOWER_BOUND (0x800000)
  197. #define IL49_RTC_DATA_UPPER_BOUND (0x80A000)
  198. #define IL49_RTC_INST_SIZE (IL49_RTC_INST_UPPER_BOUND - \
  199. IL49_RTC_INST_LOWER_BOUND)
  200. #define IL49_RTC_DATA_SIZE (IL49_RTC_DATA_UPPER_BOUND - \
  201. IL49_RTC_DATA_LOWER_BOUND)
  202. #define IL49_MAX_INST_SIZE IL49_RTC_INST_SIZE
  203. #define IL49_MAX_DATA_SIZE IL49_RTC_DATA_SIZE
  204. /* Size of uCode instruction memory in bootstrap state machine */
  205. #define IL49_MAX_BSM_SIZE BSM_SRAM_SIZE
  206. static inline int
  207. il4965_hw_valid_rtc_data_addr(u32 addr)
  208. {
  209. return (addr >= IL49_RTC_DATA_LOWER_BOUND &&
  210. addr < IL49_RTC_DATA_UPPER_BOUND);
  211. }
  212. /********************* START TEMPERATURE *************************************/
  213. /**
  214. * 4965 temperature calculation.
  215. *
  216. * The driver must calculate the device temperature before calculating
  217. * a txpower setting (amplifier gain is temperature dependent). The
  218. * calculation uses 4 measurements, 3 of which (R1, R2, R3) are calibration
  219. * values used for the life of the driver, and one of which (R4) is the
  220. * real-time temperature indicator.
  221. *
  222. * uCode provides all 4 values to the driver via the "initialize alive"
  223. * notification (see struct il4965_init_alive_resp). After the runtime uCode
  224. * image loads, uCode updates the R4 value via stats notifications
  225. * (see N_STATS), which occur after each received beacon
  226. * when associated, or can be requested via C_STATS.
  227. *
  228. * NOTE: uCode provides the R4 value as a 23-bit signed value. Driver
  229. * must sign-extend to 32 bits before applying formula below.
  230. *
  231. * Formula:
  232. *
  233. * degrees Kelvin = ((97 * 259 * (R4 - R2) / (R3 - R1)) / 100) + 8
  234. *
  235. * NOTE: The basic formula is 259 * (R4-R2) / (R3-R1). The 97/100 is
  236. * an additional correction, which should be centered around 0 degrees
  237. * Celsius (273 degrees Kelvin). The 8 (3 percent of 273) compensates for
  238. * centering the 97/100 correction around 0 degrees K.
  239. *
  240. * Add 273 to Kelvin value to find degrees Celsius, for comparing current
  241. * temperature with factory-measured temperatures when calculating txpower
  242. * settings.
  243. */
  244. #define TEMPERATURE_CALIB_KELVIN_OFFSET 8
  245. #define TEMPERATURE_CALIB_A_VAL 259
  246. /* Limit range of calculated temperature to be between these Kelvin values */
  247. #define IL_TX_POWER_TEMPERATURE_MIN (263)
  248. #define IL_TX_POWER_TEMPERATURE_MAX (410)
  249. #define IL_TX_POWER_TEMPERATURE_OUT_OF_RANGE(t) \
  250. ((t) < IL_TX_POWER_TEMPERATURE_MIN || \
  251. (t) > IL_TX_POWER_TEMPERATURE_MAX)
  252. /********************* END TEMPERATURE ***************************************/
  253. /********************* START TXPOWER *****************************************/
  254. /**
  255. * 4965 txpower calculations rely on information from three sources:
  256. *
  257. * 1) EEPROM
  258. * 2) "initialize" alive notification
  259. * 3) stats notifications
  260. *
  261. * EEPROM data consists of:
  262. *
  263. * 1) Regulatory information (max txpower and channel usage flags) is provided
  264. * separately for each channel that can possibly supported by 4965.
  265. * 40 MHz wide (.11n HT40) channels are listed separately from 20 MHz
  266. * (legacy) channels.
  267. *
  268. * See struct il4965_eeprom_channel for format, and struct il4965_eeprom
  269. * for locations in EEPROM.
  270. *
  271. * 2) Factory txpower calibration information is provided separately for
  272. * sub-bands of contiguous channels. 2.4GHz has just one sub-band,
  273. * but 5 GHz has several sub-bands.
  274. *
  275. * In addition, per-band (2.4 and 5 Ghz) saturation txpowers are provided.
  276. *
  277. * See struct il4965_eeprom_calib_info (and the tree of structures
  278. * contained within it) for format, and struct il4965_eeprom for
  279. * locations in EEPROM.
  280. *
  281. * "Initialization alive" notification (see struct il4965_init_alive_resp)
  282. * consists of:
  283. *
  284. * 1) Temperature calculation parameters.
  285. *
  286. * 2) Power supply voltage measurement.
  287. *
  288. * 3) Tx gain compensation to balance 2 transmitters for MIMO use.
  289. *
  290. * Statistics notifications deliver:
  291. *
  292. * 1) Current values for temperature param R4.
  293. */
  294. /**
  295. * To calculate a txpower setting for a given desired target txpower, channel,
  296. * modulation bit rate, and transmitter chain (4965 has 2 transmitters to
  297. * support MIMO and transmit diversity), driver must do the following:
  298. *
  299. * 1) Compare desired txpower vs. (EEPROM) regulatory limit for this channel.
  300. * Do not exceed regulatory limit; reduce target txpower if necessary.
  301. *
  302. * If setting up txpowers for MIMO rates (rate idxes 8-15, 24-31),
  303. * 2 transmitters will be used simultaneously; driver must reduce the
  304. * regulatory limit by 3 dB (half-power) for each transmitter, so the
  305. * combined total output of the 2 transmitters is within regulatory limits.
  306. *
  307. *
  308. * 2) Compare target txpower vs. (EEPROM) saturation txpower *reduced by
  309. * backoff for this bit rate*. Do not exceed (saturation - backoff[rate]);
  310. * reduce target txpower if necessary.
  311. *
  312. * Backoff values below are in 1/2 dB units (equivalent to steps in
  313. * txpower gain tables):
  314. *
  315. * OFDM 6 - 36 MBit: 10 steps (5 dB)
  316. * OFDM 48 MBit: 15 steps (7.5 dB)
  317. * OFDM 54 MBit: 17 steps (8.5 dB)
  318. * OFDM 60 MBit: 20 steps (10 dB)
  319. * CCK all rates: 10 steps (5 dB)
  320. *
  321. * Backoff values apply to saturation txpower on a per-transmitter basis;
  322. * when using MIMO (2 transmitters), each transmitter uses the same
  323. * saturation level provided in EEPROM, and the same backoff values;
  324. * no reduction (such as with regulatory txpower limits) is required.
  325. *
  326. * Saturation and Backoff values apply equally to 20 Mhz (legacy) channel
  327. * widths and 40 Mhz (.11n HT40) channel widths; there is no separate
  328. * factory measurement for ht40 channels.
  329. *
  330. * The result of this step is the final target txpower. The rest of
  331. * the steps figure out the proper settings for the device to achieve
  332. * that target txpower.
  333. *
  334. *
  335. * 3) Determine (EEPROM) calibration sub band for the target channel, by
  336. * comparing against first and last channels in each sub band
  337. * (see struct il4965_eeprom_calib_subband_info).
  338. *
  339. *
  340. * 4) Linearly interpolate (EEPROM) factory calibration measurement sets,
  341. * referencing the 2 factory-measured (sample) channels within the sub band.
  342. *
  343. * Interpolation is based on difference between target channel's frequency
  344. * and the sample channels' frequencies. Since channel numbers are based
  345. * on frequency (5 MHz between each channel number), this is equivalent
  346. * to interpolating based on channel number differences.
  347. *
  348. * Note that the sample channels may or may not be the channels at the
  349. * edges of the sub band. The target channel may be "outside" of the
  350. * span of the sampled channels.
  351. *
  352. * Driver may choose the pair (for 2 Tx chains) of measurements (see
  353. * struct il4965_eeprom_calib_ch_info) for which the actual measured
  354. * txpower comes closest to the desired txpower. Usually, though,
  355. * the middle set of measurements is closest to the regulatory limits,
  356. * and is therefore a good choice for all txpower calculations (this
  357. * assumes that high accuracy is needed for maximizing legal txpower,
  358. * while lower txpower configurations do not need as much accuracy).
  359. *
  360. * Driver should interpolate both members of the chosen measurement pair,
  361. * i.e. for both Tx chains (radio transmitters), unless the driver knows
  362. * that only one of the chains will be used (e.g. only one tx antenna
  363. * connected, but this should be unusual). The rate scaling algorithm
  364. * switches antennas to find best performance, so both Tx chains will
  365. * be used (although only one at a time) even for non-MIMO transmissions.
  366. *
  367. * Driver should interpolate factory values for temperature, gain table
  368. * idx, and actual power. The power amplifier detector values are
  369. * not used by the driver.
  370. *
  371. * Sanity check: If the target channel happens to be one of the sample
  372. * channels, the results should agree with the sample channel's
  373. * measurements!
  374. *
  375. *
  376. * 5) Find difference between desired txpower and (interpolated)
  377. * factory-measured txpower. Using (interpolated) factory gain table idx
  378. * (shown elsewhere) as a starting point, adjust this idx lower to
  379. * increase txpower, or higher to decrease txpower, until the target
  380. * txpower is reached. Each step in the gain table is 1/2 dB.
  381. *
  382. * For example, if factory measured txpower is 16 dBm, and target txpower
  383. * is 13 dBm, add 6 steps to the factory gain idx to reduce txpower
  384. * by 3 dB.
  385. *
  386. *
  387. * 6) Find difference between current device temperature and (interpolated)
  388. * factory-measured temperature for sub-band. Factory values are in
  389. * degrees Celsius. To calculate current temperature, see comments for
  390. * "4965 temperature calculation".
  391. *
  392. * If current temperature is higher than factory temperature, driver must
  393. * increase gain (lower gain table idx), and vice verse.
  394. *
  395. * Temperature affects gain differently for different channels:
  396. *
  397. * 2.4 GHz all channels: 3.5 degrees per half-dB step
  398. * 5 GHz channels 34-43: 4.5 degrees per half-dB step
  399. * 5 GHz channels >= 44: 4.0 degrees per half-dB step
  400. *
  401. * NOTE: Temperature can increase rapidly when transmitting, especially
  402. * with heavy traffic at high txpowers. Driver should update
  403. * temperature calculations often under these conditions to
  404. * maintain strong txpower in the face of rising temperature.
  405. *
  406. *
  407. * 7) Find difference between current power supply voltage indicator
  408. * (from "initialize alive") and factory-measured power supply voltage
  409. * indicator (EEPROM).
  410. *
  411. * If the current voltage is higher (indicator is lower) than factory
  412. * voltage, gain should be reduced (gain table idx increased) by:
  413. *
  414. * (eeprom - current) / 7
  415. *
  416. * If the current voltage is lower (indicator is higher) than factory
  417. * voltage, gain should be increased (gain table idx decreased) by:
  418. *
  419. * 2 * (current - eeprom) / 7
  420. *
  421. * If number of idx steps in either direction turns out to be > 2,
  422. * something is wrong ... just use 0.
  423. *
  424. * NOTE: Voltage compensation is independent of band/channel.
  425. *
  426. * NOTE: "Initialize" uCode measures current voltage, which is assumed
  427. * to be constant after this initial measurement. Voltage
  428. * compensation for txpower (number of steps in gain table)
  429. * may be calculated once and used until the next uCode bootload.
  430. *
  431. *
  432. * 8) If setting up txpowers for MIMO rates (rate idxes 8-15, 24-31),
  433. * adjust txpower for each transmitter chain, so txpower is balanced
  434. * between the two chains. There are 5 pairs of tx_atten[group][chain]
  435. * values in "initialize alive", one pair for each of 5 channel ranges:
  436. *
  437. * Group 0: 5 GHz channel 34-43
  438. * Group 1: 5 GHz channel 44-70
  439. * Group 2: 5 GHz channel 71-124
  440. * Group 3: 5 GHz channel 125-200
  441. * Group 4: 2.4 GHz all channels
  442. *
  443. * Add the tx_atten[group][chain] value to the idx for the target chain.
  444. * The values are signed, but are in pairs of 0 and a non-negative number,
  445. * so as to reduce gain (if necessary) of the "hotter" channel. This
  446. * avoids any need to double-check for regulatory compliance after
  447. * this step.
  448. *
  449. *
  450. * 9) If setting up for a CCK rate, lower the gain by adding a CCK compensation
  451. * value to the idx:
  452. *
  453. * Hardware rev B: 9 steps (4.5 dB)
  454. * Hardware rev C: 5 steps (2.5 dB)
  455. *
  456. * Hardware rev for 4965 can be determined by reading CSR_HW_REV_WA_REG,
  457. * bits [3:2], 1 = B, 2 = C.
  458. *
  459. * NOTE: This compensation is in addition to any saturation backoff that
  460. * might have been applied in an earlier step.
  461. *
  462. *
  463. * 10) Select the gain table, based on band (2.4 vs 5 GHz).
  464. *
  465. * Limit the adjusted idx to stay within the table!
  466. *
  467. *
  468. * 11) Read gain table entries for DSP and radio gain, place into appropriate
  469. * location(s) in command (struct il4965_txpowertable_cmd).
  470. */
  471. /**
  472. * When MIMO is used (2 transmitters operating simultaneously), driver should
  473. * limit each transmitter to deliver a max of 3 dB below the regulatory limit
  474. * for the device. That is, use half power for each transmitter, so total
  475. * txpower is within regulatory limits.
  476. *
  477. * The value "6" represents number of steps in gain table to reduce power 3 dB.
  478. * Each step is 1/2 dB.
  479. */
  480. #define IL_TX_POWER_MIMO_REGULATORY_COMPENSATION (6)
  481. /**
  482. * CCK gain compensation.
  483. *
  484. * When calculating txpowers for CCK, after making sure that the target power
  485. * is within regulatory and saturation limits, driver must additionally
  486. * back off gain by adding these values to the gain table idx.
  487. *
  488. * Hardware rev for 4965 can be determined by reading CSR_HW_REV_WA_REG,
  489. * bits [3:2], 1 = B, 2 = C.
  490. */
  491. #define IL_TX_POWER_CCK_COMPENSATION_B_STEP (9)
  492. #define IL_TX_POWER_CCK_COMPENSATION_C_STEP (5)
  493. /*
  494. * 4965 power supply voltage compensation for txpower
  495. */
  496. #define TX_POWER_IL_VOLTAGE_CODES_PER_03V (7)
  497. /**
  498. * Gain tables.
  499. *
  500. * The following tables contain pair of values for setting txpower, i.e.
  501. * gain settings for the output of the device's digital signal processor (DSP),
  502. * and for the analog gain structure of the transmitter.
  503. *
  504. * Each entry in the gain tables represents a step of 1/2 dB. Note that these
  505. * are *relative* steps, not indications of absolute output power. Output
  506. * power varies with temperature, voltage, and channel frequency, and also
  507. * requires consideration of average power (to satisfy regulatory constraints),
  508. * and peak power (to avoid distortion of the output signal).
  509. *
  510. * Each entry contains two values:
  511. * 1) DSP gain (or sometimes called DSP attenuation). This is a fine-grained
  512. * linear value that multiplies the output of the digital signal processor,
  513. * before being sent to the analog radio.
  514. * 2) Radio gain. This sets the analog gain of the radio Tx path.
  515. * It is a coarser setting, and behaves in a logarithmic (dB) fashion.
  516. *
  517. * EEPROM contains factory calibration data for txpower. This maps actual
  518. * measured txpower levels to gain settings in the "well known" tables
  519. * below ("well-known" means here that both factory calibration *and* the
  520. * driver work with the same table).
  521. *
  522. * There are separate tables for 2.4 GHz and 5 GHz bands. The 5 GHz table
  523. * has an extension (into negative idxes), in case the driver needs to
  524. * boost power setting for high device temperatures (higher than would be
  525. * present during factory calibration). A 5 Ghz EEPROM idx of "40"
  526. * corresponds to the 49th entry in the table used by the driver.
  527. */
  528. #define MIN_TX_GAIN_IDX (0) /* highest gain, lowest idx, 2.4 */
  529. #define MIN_TX_GAIN_IDX_52GHZ_EXT (-9) /* highest gain, lowest idx, 5 */
  530. /**
  531. * 2.4 GHz gain table
  532. *
  533. * Index Dsp gain Radio gain
  534. * 0 110 0x3f (highest gain)
  535. * 1 104 0x3f
  536. * 2 98 0x3f
  537. * 3 110 0x3e
  538. * 4 104 0x3e
  539. * 5 98 0x3e
  540. * 6 110 0x3d
  541. * 7 104 0x3d
  542. * 8 98 0x3d
  543. * 9 110 0x3c
  544. * 10 104 0x3c
  545. * 11 98 0x3c
  546. * 12 110 0x3b
  547. * 13 104 0x3b
  548. * 14 98 0x3b
  549. * 15 110 0x3a
  550. * 16 104 0x3a
  551. * 17 98 0x3a
  552. * 18 110 0x39
  553. * 19 104 0x39
  554. * 20 98 0x39
  555. * 21 110 0x38
  556. * 22 104 0x38
  557. * 23 98 0x38
  558. * 24 110 0x37
  559. * 25 104 0x37
  560. * 26 98 0x37
  561. * 27 110 0x36
  562. * 28 104 0x36
  563. * 29 98 0x36
  564. * 30 110 0x35
  565. * 31 104 0x35
  566. * 32 98 0x35
  567. * 33 110 0x34
  568. * 34 104 0x34
  569. * 35 98 0x34
  570. * 36 110 0x33
  571. * 37 104 0x33
  572. * 38 98 0x33
  573. * 39 110 0x32
  574. * 40 104 0x32
  575. * 41 98 0x32
  576. * 42 110 0x31
  577. * 43 104 0x31
  578. * 44 98 0x31
  579. * 45 110 0x30
  580. * 46 104 0x30
  581. * 47 98 0x30
  582. * 48 110 0x6
  583. * 49 104 0x6
  584. * 50 98 0x6
  585. * 51 110 0x5
  586. * 52 104 0x5
  587. * 53 98 0x5
  588. * 54 110 0x4
  589. * 55 104 0x4
  590. * 56 98 0x4
  591. * 57 110 0x3
  592. * 58 104 0x3
  593. * 59 98 0x3
  594. * 60 110 0x2
  595. * 61 104 0x2
  596. * 62 98 0x2
  597. * 63 110 0x1
  598. * 64 104 0x1
  599. * 65 98 0x1
  600. * 66 110 0x0
  601. * 67 104 0x0
  602. * 68 98 0x0
  603. * 69 97 0
  604. * 70 96 0
  605. * 71 95 0
  606. * 72 94 0
  607. * 73 93 0
  608. * 74 92 0
  609. * 75 91 0
  610. * 76 90 0
  611. * 77 89 0
  612. * 78 88 0
  613. * 79 87 0
  614. * 80 86 0
  615. * 81 85 0
  616. * 82 84 0
  617. * 83 83 0
  618. * 84 82 0
  619. * 85 81 0
  620. * 86 80 0
  621. * 87 79 0
  622. * 88 78 0
  623. * 89 77 0
  624. * 90 76 0
  625. * 91 75 0
  626. * 92 74 0
  627. * 93 73 0
  628. * 94 72 0
  629. * 95 71 0
  630. * 96 70 0
  631. * 97 69 0
  632. * 98 68 0
  633. */
  634. /**
  635. * 5 GHz gain table
  636. *
  637. * Index Dsp gain Radio gain
  638. * -9 123 0x3F (highest gain)
  639. * -8 117 0x3F
  640. * -7 110 0x3F
  641. * -6 104 0x3F
  642. * -5 98 0x3F
  643. * -4 110 0x3E
  644. * -3 104 0x3E
  645. * -2 98 0x3E
  646. * -1 110 0x3D
  647. * 0 104 0x3D
  648. * 1 98 0x3D
  649. * 2 110 0x3C
  650. * 3 104 0x3C
  651. * 4 98 0x3C
  652. * 5 110 0x3B
  653. * 6 104 0x3B
  654. * 7 98 0x3B
  655. * 8 110 0x3A
  656. * 9 104 0x3A
  657. * 10 98 0x3A
  658. * 11 110 0x39
  659. * 12 104 0x39
  660. * 13 98 0x39
  661. * 14 110 0x38
  662. * 15 104 0x38
  663. * 16 98 0x38
  664. * 17 110 0x37
  665. * 18 104 0x37
  666. * 19 98 0x37
  667. * 20 110 0x36
  668. * 21 104 0x36
  669. * 22 98 0x36
  670. * 23 110 0x35
  671. * 24 104 0x35
  672. * 25 98 0x35
  673. * 26 110 0x34
  674. * 27 104 0x34
  675. * 28 98 0x34
  676. * 29 110 0x33
  677. * 30 104 0x33
  678. * 31 98 0x33
  679. * 32 110 0x32
  680. * 33 104 0x32
  681. * 34 98 0x32
  682. * 35 110 0x31
  683. * 36 104 0x31
  684. * 37 98 0x31
  685. * 38 110 0x30
  686. * 39 104 0x30
  687. * 40 98 0x30
  688. * 41 110 0x25
  689. * 42 104 0x25
  690. * 43 98 0x25
  691. * 44 110 0x24
  692. * 45 104 0x24
  693. * 46 98 0x24
  694. * 47 110 0x23
  695. * 48 104 0x23
  696. * 49 98 0x23
  697. * 50 110 0x22
  698. * 51 104 0x18
  699. * 52 98 0x18
  700. * 53 110 0x17
  701. * 54 104 0x17
  702. * 55 98 0x17
  703. * 56 110 0x16
  704. * 57 104 0x16
  705. * 58 98 0x16
  706. * 59 110 0x15
  707. * 60 104 0x15
  708. * 61 98 0x15
  709. * 62 110 0x14
  710. * 63 104 0x14
  711. * 64 98 0x14
  712. * 65 110 0x13
  713. * 66 104 0x13
  714. * 67 98 0x13
  715. * 68 110 0x12
  716. * 69 104 0x08
  717. * 70 98 0x08
  718. * 71 110 0x07
  719. * 72 104 0x07
  720. * 73 98 0x07
  721. * 74 110 0x06
  722. * 75 104 0x06
  723. * 76 98 0x06
  724. * 77 110 0x05
  725. * 78 104 0x05
  726. * 79 98 0x05
  727. * 80 110 0x04
  728. * 81 104 0x04
  729. * 82 98 0x04
  730. * 83 110 0x03
  731. * 84 104 0x03
  732. * 85 98 0x03
  733. * 86 110 0x02
  734. * 87 104 0x02
  735. * 88 98 0x02
  736. * 89 110 0x01
  737. * 90 104 0x01
  738. * 91 98 0x01
  739. * 92 110 0x00
  740. * 93 104 0x00
  741. * 94 98 0x00
  742. * 95 93 0x00
  743. * 96 88 0x00
  744. * 97 83 0x00
  745. * 98 78 0x00
  746. */
  747. /**
  748. * Sanity checks and default values for EEPROM regulatory levels.
  749. * If EEPROM values fall outside MIN/MAX range, use default values.
  750. *
  751. * Regulatory limits refer to the maximum average txpower allowed by
  752. * regulatory agencies in the geographies in which the device is meant
  753. * to be operated. These limits are SKU-specific (i.e. geography-specific),
  754. * and channel-specific; each channel has an individual regulatory limit
  755. * listed in the EEPROM.
  756. *
  757. * Units are in half-dBm (i.e. "34" means 17 dBm).
  758. */
  759. #define IL_TX_POWER_DEFAULT_REGULATORY_24 (34)
  760. #define IL_TX_POWER_DEFAULT_REGULATORY_52 (34)
  761. #define IL_TX_POWER_REGULATORY_MIN (0)
  762. #define IL_TX_POWER_REGULATORY_MAX (34)
  763. /**
  764. * Sanity checks and default values for EEPROM saturation levels.
  765. * If EEPROM values fall outside MIN/MAX range, use default values.
  766. *
  767. * Saturation is the highest level that the output power amplifier can produce
  768. * without significant clipping distortion. This is a "peak" power level.
  769. * Different types of modulation (i.e. various "rates", and OFDM vs. CCK)
  770. * require differing amounts of backoff, relative to their average power output,
  771. * in order to avoid clipping distortion.
  772. *
  773. * Driver must make sure that it is violating neither the saturation limit,
  774. * nor the regulatory limit, when calculating Tx power settings for various
  775. * rates.
  776. *
  777. * Units are in half-dBm (i.e. "38" means 19 dBm).
  778. */
  779. #define IL_TX_POWER_DEFAULT_SATURATION_24 (38)
  780. #define IL_TX_POWER_DEFAULT_SATURATION_52 (38)
  781. #define IL_TX_POWER_SATURATION_MIN (20)
  782. #define IL_TX_POWER_SATURATION_MAX (50)
  783. /**
  784. * Channel groups used for Tx Attenuation calibration (MIMO tx channel balance)
  785. * and thermal Txpower calibration.
  786. *
  787. * When calculating txpower, driver must compensate for current device
  788. * temperature; higher temperature requires higher gain. Driver must calculate
  789. * current temperature (see "4965 temperature calculation"), then compare vs.
  790. * factory calibration temperature in EEPROM; if current temperature is higher
  791. * than factory temperature, driver must *increase* gain by proportions shown
  792. * in table below. If current temperature is lower than factory, driver must
  793. * *decrease* gain.
  794. *
  795. * Different frequency ranges require different compensation, as shown below.
  796. */
  797. /* Group 0, 5.2 GHz ch 34-43: 4.5 degrees per 1/2 dB. */
  798. #define CALIB_IL_TX_ATTEN_GR1_FCH 34
  799. #define CALIB_IL_TX_ATTEN_GR1_LCH 43
  800. /* Group 1, 5.3 GHz ch 44-70: 4.0 degrees per 1/2 dB. */
  801. #define CALIB_IL_TX_ATTEN_GR2_FCH 44
  802. #define CALIB_IL_TX_ATTEN_GR2_LCH 70
  803. /* Group 2, 5.5 GHz ch 71-124: 4.0 degrees per 1/2 dB. */
  804. #define CALIB_IL_TX_ATTEN_GR3_FCH 71
  805. #define CALIB_IL_TX_ATTEN_GR3_LCH 124
  806. /* Group 3, 5.7 GHz ch 125-200: 4.0 degrees per 1/2 dB. */
  807. #define CALIB_IL_TX_ATTEN_GR4_FCH 125
  808. #define CALIB_IL_TX_ATTEN_GR4_LCH 200
  809. /* Group 4, 2.4 GHz all channels: 3.5 degrees per 1/2 dB. */
  810. #define CALIB_IL_TX_ATTEN_GR5_FCH 1
  811. #define CALIB_IL_TX_ATTEN_GR5_LCH 20
  812. enum {
  813. CALIB_CH_GROUP_1 = 0,
  814. CALIB_CH_GROUP_2 = 1,
  815. CALIB_CH_GROUP_3 = 2,
  816. CALIB_CH_GROUP_4 = 3,
  817. CALIB_CH_GROUP_5 = 4,
  818. CALIB_CH_GROUP_MAX
  819. };
  820. /********************* END TXPOWER *****************************************/
  821. /**
  822. * Tx/Rx Queues
  823. *
  824. * Most communication between driver and 4965 is via queues of data buffers.
  825. * For example, all commands that the driver issues to device's embedded
  826. * controller (uCode) are via the command queue (one of the Tx queues). All
  827. * uCode command responses/replies/notifications, including Rx frames, are
  828. * conveyed from uCode to driver via the Rx queue.
  829. *
  830. * Most support for these queues, including handshake support, resides in
  831. * structures in host DRAM, shared between the driver and the device. When
  832. * allocating this memory, the driver must make sure that data written by
  833. * the host CPU updates DRAM immediately (and does not get "stuck" in CPU's
  834. * cache memory), so DRAM and cache are consistent, and the device can
  835. * immediately see changes made by the driver.
  836. *
  837. * 4965 supports up to 16 DRAM-based Tx queues, and services these queues via
  838. * up to 7 DMA channels (FIFOs). Each Tx queue is supported by a circular array
  839. * in DRAM containing 256 Transmit Frame Descriptors (TFDs).
  840. */
  841. #define IL49_NUM_FIFOS 7
  842. #define IL49_CMD_FIFO_NUM 4
  843. #define IL49_NUM_QUEUES 16
  844. #define IL49_NUM_AMPDU_QUEUES 8
  845. /**
  846. * struct il4965_schedq_bc_tbl
  847. *
  848. * Byte Count table
  849. *
  850. * Each Tx queue uses a byte-count table containing 320 entries:
  851. * one 16-bit entry for each of 256 TFDs, plus an additional 64 entries that
  852. * duplicate the first 64 entries (to avoid wrap-around within a Tx win;
  853. * max Tx win is 64 TFDs).
  854. *
  855. * When driver sets up a new TFD, it must also enter the total byte count
  856. * of the frame to be transmitted into the corresponding entry in the byte
  857. * count table for the chosen Tx queue. If the TFD idx is 0-63, the driver
  858. * must duplicate the byte count entry in corresponding idx 256-319.
  859. *
  860. * padding puts each byte count table on a 1024-byte boundary;
  861. * 4965 assumes tables are separated by 1024 bytes.
  862. */
  863. struct il4965_scd_bc_tbl {
  864. __le16 tfd_offset[TFD_QUEUE_BC_SIZE];
  865. u8 pad[1024 - (TFD_QUEUE_BC_SIZE) * sizeof(__le16)];
  866. } __packed;
  867. #define IL4965_RTC_INST_LOWER_BOUND (0x000000)
  868. /* RSSI to dBm */
  869. #define IL4965_RSSI_OFFSET 44
  870. /* PCI registers */
  871. #define PCI_CFG_RETRY_TIMEOUT 0x041
  872. /* PCI register values */
  873. #define PCI_CFG_LINK_CTRL_VAL_L0S_EN 0x01
  874. #define PCI_CFG_LINK_CTRL_VAL_L1_EN 0x02
  875. #define IL4965_DEFAULT_TX_RETRY 15
  876. /* EEPROM */
  877. #define IL4965_FIRST_AMPDU_QUEUE 10
  878. /* Calibration */
  879. void il4965_chain_noise_calibration(struct il_priv *il, void *stat_resp);
  880. void il4965_sensitivity_calibration(struct il_priv *il, void *resp);
  881. void il4965_init_sensitivity(struct il_priv *il);
  882. void il4965_reset_run_time_calib(struct il_priv *il);
  883. void il4965_calib_free_results(struct il_priv *il);
  884. /* Debug */
  885. #ifdef CONFIG_IWLEGACY_DEBUGFS
  886. ssize_t il4965_ucode_rx_stats_read(struct file *file, char __user *user_buf,
  887. size_t count, loff_t *ppos);
  888. ssize_t il4965_ucode_tx_stats_read(struct file *file, char __user *user_buf,
  889. size_t count, loff_t *ppos);
  890. ssize_t il4965_ucode_general_stats_read(struct file *file,
  891. char __user *user_buf, size_t count,
  892. loff_t *ppos);
  893. #endif
  894. /****************************/
  895. /* Flow Handler Definitions */
  896. /****************************/
  897. /**
  898. * This I/O area is directly read/writable by driver (e.g. Linux uses writel())
  899. * Addresses are offsets from device's PCI hardware base address.
  900. */
  901. #define FH49_MEM_LOWER_BOUND (0x1000)
  902. #define FH49_MEM_UPPER_BOUND (0x2000)
  903. /**
  904. * Keep-Warm (KW) buffer base address.
  905. *
  906. * Driver must allocate a 4KByte buffer that is used by 4965 for keeping the
  907. * host DRAM powered on (via dummy accesses to DRAM) to maintain low-latency
  908. * DRAM access when 4965 is Txing or Rxing. The dummy accesses prevent host
  909. * from going into a power-savings mode that would cause higher DRAM latency,
  910. * and possible data over/under-runs, before all Tx/Rx is complete.
  911. *
  912. * Driver loads FH49_KW_MEM_ADDR_REG with the physical address (bits 35:4)
  913. * of the buffer, which must be 4K aligned. Once this is set up, the 4965
  914. * automatically invokes keep-warm accesses when normal accesses might not
  915. * be sufficient to maintain fast DRAM response.
  916. *
  917. * Bit fields:
  918. * 31-0: Keep-warm buffer physical base address [35:4], must be 4K aligned
  919. */
  920. #define FH49_KW_MEM_ADDR_REG (FH49_MEM_LOWER_BOUND + 0x97C)
  921. /**
  922. * TFD Circular Buffers Base (CBBC) addresses
  923. *
  924. * 4965 has 16 base pointer registers, one for each of 16 host-DRAM-resident
  925. * circular buffers (CBs/queues) containing Transmit Frame Descriptors (TFDs)
  926. * (see struct il_tfd_frame). These 16 pointer registers are offset by 0x04
  927. * bytes from one another. Each TFD circular buffer in DRAM must be 256-byte
  928. * aligned (address bits 0-7 must be 0).
  929. *
  930. * Bit fields in each pointer register:
  931. * 27-0: TFD CB physical base address [35:8], must be 256-byte aligned
  932. */
  933. #define FH49_MEM_CBBC_LOWER_BOUND (FH49_MEM_LOWER_BOUND + 0x9D0)
  934. #define FH49_MEM_CBBC_UPPER_BOUND (FH49_MEM_LOWER_BOUND + 0xA10)
  935. /* Find TFD CB base pointer for given queue (range 0-15). */
  936. #define FH49_MEM_CBBC_QUEUE(x) (FH49_MEM_CBBC_LOWER_BOUND + (x) * 0x4)
  937. /**
  938. * Rx SRAM Control and Status Registers (RSCSR)
  939. *
  940. * These registers provide handshake between driver and 4965 for the Rx queue
  941. * (this queue handles *all* command responses, notifications, Rx data, etc.
  942. * sent from 4965 uCode to host driver). Unlike Tx, there is only one Rx
  943. * queue, and only one Rx DMA/FIFO channel. Also unlike Tx, which can
  944. * concatenate up to 20 DRAM buffers to form a Tx frame, each Receive Buffer
  945. * Descriptor (RBD) points to only one Rx Buffer (RB); there is a 1:1
  946. * mapping between RBDs and RBs.
  947. *
  948. * Driver must allocate host DRAM memory for the following, and set the
  949. * physical address of each into 4965 registers:
  950. *
  951. * 1) Receive Buffer Descriptor (RBD) circular buffer (CB), typically with 256
  952. * entries (although any power of 2, up to 4096, is selectable by driver).
  953. * Each entry (1 dword) points to a receive buffer (RB) of consistent size
  954. * (typically 4K, although 8K or 16K are also selectable by driver).
  955. * Driver sets up RB size and number of RBDs in the CB via Rx config
  956. * register FH49_MEM_RCSR_CHNL0_CONFIG_REG.
  957. *
  958. * Bit fields within one RBD:
  959. * 27-0: Receive Buffer physical address bits [35:8], 256-byte aligned
  960. *
  961. * Driver sets physical address [35:8] of base of RBD circular buffer
  962. * into FH49_RSCSR_CHNL0_RBDCB_BASE_REG [27:0].
  963. *
  964. * 2) Rx status buffer, 8 bytes, in which 4965 indicates which Rx Buffers
  965. * (RBs) have been filled, via a "write pointer", actually the idx of
  966. * the RB's corresponding RBD within the circular buffer. Driver sets
  967. * physical address [35:4] into FH49_RSCSR_CHNL0_STTS_WPTR_REG [31:0].
  968. *
  969. * Bit fields in lower dword of Rx status buffer (upper dword not used
  970. * by driver; see struct il4965_shared, val0):
  971. * 31-12: Not used by driver
  972. * 11- 0: Index of last filled Rx buffer descriptor
  973. * (4965 writes, driver reads this value)
  974. *
  975. * As the driver prepares Receive Buffers (RBs) for 4965 to fill, driver must
  976. * enter pointers to these RBs into contiguous RBD circular buffer entries,
  977. * and update the 4965's "write" idx register,
  978. * FH49_RSCSR_CHNL0_RBDCB_WPTR_REG.
  979. *
  980. * This "write" idx corresponds to the *next* RBD that the driver will make
  981. * available, i.e. one RBD past the tail of the ready-to-fill RBDs within
  982. * the circular buffer. This value should initially be 0 (before preparing any
  983. * RBs), should be 8 after preparing the first 8 RBs (for example), and must
  984. * wrap back to 0 at the end of the circular buffer (but don't wrap before
  985. * "read" idx has advanced past 1! See below).
  986. * NOTE: 4965 EXPECTS THE WRITE IDX TO BE INCREMENTED IN MULTIPLES OF 8.
  987. *
  988. * As the 4965 fills RBs (referenced from contiguous RBDs within the circular
  989. * buffer), it updates the Rx status buffer in host DRAM, 2) described above,
  990. * to tell the driver the idx of the latest filled RBD. The driver must
  991. * read this "read" idx from DRAM after receiving an Rx interrupt from 4965.
  992. *
  993. * The driver must also internally keep track of a third idx, which is the
  994. * next RBD to process. When receiving an Rx interrupt, driver should process
  995. * all filled but unprocessed RBs up to, but not including, the RB
  996. * corresponding to the "read" idx. For example, if "read" idx becomes "1",
  997. * driver may process the RB pointed to by RBD 0. Depending on volume of
  998. * traffic, there may be many RBs to process.
  999. *
  1000. * If read idx == write idx, 4965 thinks there is no room to put new data.
  1001. * Due to this, the maximum number of filled RBs is 255, instead of 256. To
  1002. * be safe, make sure that there is a gap of at least 2 RBDs between "write"
  1003. * and "read" idxes; that is, make sure that there are no more than 254
  1004. * buffers waiting to be filled.
  1005. */
  1006. #define FH49_MEM_RSCSR_LOWER_BOUND (FH49_MEM_LOWER_BOUND + 0xBC0)
  1007. #define FH49_MEM_RSCSR_UPPER_BOUND (FH49_MEM_LOWER_BOUND + 0xC00)
  1008. #define FH49_MEM_RSCSR_CHNL0 (FH49_MEM_RSCSR_LOWER_BOUND)
  1009. /**
  1010. * Physical base address of 8-byte Rx Status buffer.
  1011. * Bit fields:
  1012. * 31-0: Rx status buffer physical base address [35:4], must 16-byte aligned.
  1013. */
  1014. #define FH49_RSCSR_CHNL0_STTS_WPTR_REG (FH49_MEM_RSCSR_CHNL0)
  1015. /**
  1016. * Physical base address of Rx Buffer Descriptor Circular Buffer.
  1017. * Bit fields:
  1018. * 27-0: RBD CD physical base address [35:8], must be 256-byte aligned.
  1019. */
  1020. #define FH49_RSCSR_CHNL0_RBDCB_BASE_REG (FH49_MEM_RSCSR_CHNL0 + 0x004)
  1021. /**
  1022. * Rx write pointer (idx, really!).
  1023. * Bit fields:
  1024. * 11-0: Index of driver's most recent prepared-to-be-filled RBD, + 1.
  1025. * NOTE: For 256-entry circular buffer, use only bits [7:0].
  1026. */
  1027. #define FH49_RSCSR_CHNL0_RBDCB_WPTR_REG (FH49_MEM_RSCSR_CHNL0 + 0x008)
  1028. #define FH49_RSCSR_CHNL0_WPTR (FH49_RSCSR_CHNL0_RBDCB_WPTR_REG)
  1029. /**
  1030. * Rx Config/Status Registers (RCSR)
  1031. * Rx Config Reg for channel 0 (only channel used)
  1032. *
  1033. * Driver must initialize FH49_MEM_RCSR_CHNL0_CONFIG_REG as follows for
  1034. * normal operation (see bit fields).
  1035. *
  1036. * Clearing FH49_MEM_RCSR_CHNL0_CONFIG_REG to 0 turns off Rx DMA.
  1037. * Driver should poll FH49_MEM_RSSR_RX_STATUS_REG for
  1038. * FH49_RSSR_CHNL0_RX_STATUS_CHNL_IDLE (bit 24) before continuing.
  1039. *
  1040. * Bit fields:
  1041. * 31-30: Rx DMA channel enable: '00' off/pause, '01' pause at end of frame,
  1042. * '10' operate normally
  1043. * 29-24: reserved
  1044. * 23-20: # RBDs in circular buffer = 2^value; use "8" for 256 RBDs (normal),
  1045. * min "5" for 32 RBDs, max "12" for 4096 RBDs.
  1046. * 19-18: reserved
  1047. * 17-16: size of each receive buffer; '00' 4K (normal), '01' 8K,
  1048. * '10' 12K, '11' 16K.
  1049. * 15-14: reserved
  1050. * 13-12: IRQ destination; '00' none, '01' host driver (normal operation)
  1051. * 11- 4: timeout for closing Rx buffer and interrupting host (units 32 usec)
  1052. * typical value 0x10 (about 1/2 msec)
  1053. * 3- 0: reserved
  1054. */
  1055. #define FH49_MEM_RCSR_LOWER_BOUND (FH49_MEM_LOWER_BOUND + 0xC00)
  1056. #define FH49_MEM_RCSR_UPPER_BOUND (FH49_MEM_LOWER_BOUND + 0xCC0)
  1057. #define FH49_MEM_RCSR_CHNL0 (FH49_MEM_RCSR_LOWER_BOUND)
  1058. #define FH49_MEM_RCSR_CHNL0_CONFIG_REG (FH49_MEM_RCSR_CHNL0)
  1059. #define FH49_RCSR_CHNL0_RX_CONFIG_RB_TIMEOUT_MSK (0x00000FF0) /* bits 4-11 */
  1060. #define FH49_RCSR_CHNL0_RX_CONFIG_IRQ_DEST_MSK (0x00001000) /* bits 12 */
  1061. #define FH49_RCSR_CHNL0_RX_CONFIG_SINGLE_FRAME_MSK (0x00008000) /* bit 15 */
  1062. #define FH49_RCSR_CHNL0_RX_CONFIG_RB_SIZE_MSK (0x00030000) /* bits 16-17 */
  1063. #define FH49_RCSR_CHNL0_RX_CONFIG_RBDBC_SIZE_MSK (0x00F00000) /* bits 20-23 */
  1064. #define FH49_RCSR_CHNL0_RX_CONFIG_DMA_CHNL_EN_MSK (0xC0000000) /* bits 30-31 */
  1065. #define FH49_RCSR_RX_CONFIG_RBDCB_SIZE_POS (20)
  1066. #define FH49_RCSR_RX_CONFIG_REG_IRQ_RBTH_POS (4)
  1067. #define RX_RB_TIMEOUT (0x10)
  1068. #define FH49_RCSR_RX_CONFIG_CHNL_EN_PAUSE_VAL (0x00000000)
  1069. #define FH49_RCSR_RX_CONFIG_CHNL_EN_PAUSE_EOF_VAL (0x40000000)
  1070. #define FH49_RCSR_RX_CONFIG_CHNL_EN_ENABLE_VAL (0x80000000)
  1071. #define FH49_RCSR_RX_CONFIG_REG_VAL_RB_SIZE_4K (0x00000000)
  1072. #define FH49_RCSR_RX_CONFIG_REG_VAL_RB_SIZE_8K (0x00010000)
  1073. #define FH49_RCSR_RX_CONFIG_REG_VAL_RB_SIZE_12K (0x00020000)
  1074. #define FH49_RCSR_RX_CONFIG_REG_VAL_RB_SIZE_16K (0x00030000)
  1075. #define FH49_RCSR_CHNL0_RX_IGNORE_RXF_EMPTY (0x00000004)
  1076. #define FH49_RCSR_CHNL0_RX_CONFIG_IRQ_DEST_NO_INT_VAL (0x00000000)
  1077. #define FH49_RCSR_CHNL0_RX_CONFIG_IRQ_DEST_INT_HOST_VAL (0x00001000)
  1078. /**
  1079. * Rx Shared Status Registers (RSSR)
  1080. *
  1081. * After stopping Rx DMA channel (writing 0 to
  1082. * FH49_MEM_RCSR_CHNL0_CONFIG_REG), driver must poll
  1083. * FH49_MEM_RSSR_RX_STATUS_REG until Rx channel is idle.
  1084. *
  1085. * Bit fields:
  1086. * 24: 1 = Channel 0 is idle
  1087. *
  1088. * FH49_MEM_RSSR_SHARED_CTRL_REG and FH49_MEM_RSSR_RX_ENABLE_ERR_IRQ2DRV
  1089. * contain default values that should not be altered by the driver.
  1090. */
  1091. #define FH49_MEM_RSSR_LOWER_BOUND (FH49_MEM_LOWER_BOUND + 0xC40)
  1092. #define FH49_MEM_RSSR_UPPER_BOUND (FH49_MEM_LOWER_BOUND + 0xD00)
  1093. #define FH49_MEM_RSSR_SHARED_CTRL_REG (FH49_MEM_RSSR_LOWER_BOUND)
  1094. #define FH49_MEM_RSSR_RX_STATUS_REG (FH49_MEM_RSSR_LOWER_BOUND + 0x004)
  1095. #define FH49_MEM_RSSR_RX_ENABLE_ERR_IRQ2DRV\
  1096. (FH49_MEM_RSSR_LOWER_BOUND + 0x008)
  1097. #define FH49_RSSR_CHNL0_RX_STATUS_CHNL_IDLE (0x01000000)
  1098. #define FH49_MEM_TFDIB_REG1_ADDR_BITSHIFT 28
  1099. /* TFDB Area - TFDs buffer table */
  1100. #define FH49_MEM_TFDIB_DRAM_ADDR_LSB_MSK (0xFFFFFFFF)
  1101. #define FH49_TFDIB_LOWER_BOUND (FH49_MEM_LOWER_BOUND + 0x900)
  1102. #define FH49_TFDIB_UPPER_BOUND (FH49_MEM_LOWER_BOUND + 0x958)
  1103. #define FH49_TFDIB_CTRL0_REG(_chnl) (FH49_TFDIB_LOWER_BOUND + 0x8 * (_chnl))
  1104. #define FH49_TFDIB_CTRL1_REG(_chnl) (FH49_TFDIB_LOWER_BOUND + 0x8 * (_chnl) + 0x4)
  1105. /**
  1106. * Transmit DMA Channel Control/Status Registers (TCSR)
  1107. *
  1108. * 4965 has one configuration register for each of 8 Tx DMA/FIFO channels
  1109. * supported in hardware (don't confuse these with the 16 Tx queues in DRAM,
  1110. * which feed the DMA/FIFO channels); config regs are separated by 0x20 bytes.
  1111. *
  1112. * To use a Tx DMA channel, driver must initialize its
  1113. * FH49_TCSR_CHNL_TX_CONFIG_REG(chnl) with:
  1114. *
  1115. * FH49_TCSR_TX_CONFIG_REG_VAL_DMA_CHNL_ENABLE |
  1116. * FH49_TCSR_TX_CONFIG_REG_VAL_DMA_CREDIT_ENABLE_VAL
  1117. *
  1118. * All other bits should be 0.
  1119. *
  1120. * Bit fields:
  1121. * 31-30: Tx DMA channel enable: '00' off/pause, '01' pause at end of frame,
  1122. * '10' operate normally
  1123. * 29- 4: Reserved, set to "0"
  1124. * 3: Enable internal DMA requests (1, normal operation), disable (0)
  1125. * 2- 0: Reserved, set to "0"
  1126. */
  1127. #define FH49_TCSR_LOWER_BOUND (FH49_MEM_LOWER_BOUND + 0xD00)
  1128. #define FH49_TCSR_UPPER_BOUND (FH49_MEM_LOWER_BOUND + 0xE60)
  1129. /* Find Control/Status reg for given Tx DMA/FIFO channel */
  1130. #define FH49_TCSR_CHNL_NUM (7)
  1131. #define FH50_TCSR_CHNL_NUM (8)
  1132. /* TCSR: tx_config register values */
  1133. #define FH49_TCSR_CHNL_TX_CONFIG_REG(_chnl) \
  1134. (FH49_TCSR_LOWER_BOUND + 0x20 * (_chnl))
  1135. #define FH49_TCSR_CHNL_TX_CREDIT_REG(_chnl) \
  1136. (FH49_TCSR_LOWER_BOUND + 0x20 * (_chnl) + 0x4)
  1137. #define FH49_TCSR_CHNL_TX_BUF_STS_REG(_chnl) \
  1138. (FH49_TCSR_LOWER_BOUND + 0x20 * (_chnl) + 0x8)
  1139. #define FH49_TCSR_TX_CONFIG_REG_VAL_MSG_MODE_TXF (0x00000000)
  1140. #define FH49_TCSR_TX_CONFIG_REG_VAL_MSG_MODE_DRV (0x00000001)
  1141. #define FH49_TCSR_TX_CONFIG_REG_VAL_DMA_CREDIT_DISABLE (0x00000000)
  1142. #define FH49_TCSR_TX_CONFIG_REG_VAL_DMA_CREDIT_ENABLE (0x00000008)
  1143. #define FH49_TCSR_TX_CONFIG_REG_VAL_CIRQ_HOST_NOINT (0x00000000)
  1144. #define FH49_TCSR_TX_CONFIG_REG_VAL_CIRQ_HOST_ENDTFD (0x00100000)
  1145. #define FH49_TCSR_TX_CONFIG_REG_VAL_CIRQ_HOST_IFTFD (0x00200000)
  1146. #define FH49_TCSR_TX_CONFIG_REG_VAL_CIRQ_RTC_NOINT (0x00000000)
  1147. #define FH49_TCSR_TX_CONFIG_REG_VAL_CIRQ_RTC_ENDTFD (0x00400000)
  1148. #define FH49_TCSR_TX_CONFIG_REG_VAL_CIRQ_RTC_IFTFD (0x00800000)
  1149. #define FH49_TCSR_TX_CONFIG_REG_VAL_DMA_CHNL_PAUSE (0x00000000)
  1150. #define FH49_TCSR_TX_CONFIG_REG_VAL_DMA_CHNL_PAUSE_EOF (0x40000000)
  1151. #define FH49_TCSR_TX_CONFIG_REG_VAL_DMA_CHNL_ENABLE (0x80000000)
  1152. #define FH49_TCSR_CHNL_TX_BUF_STS_REG_VAL_TFDB_EMPTY (0x00000000)
  1153. #define FH49_TCSR_CHNL_TX_BUF_STS_REG_VAL_TFDB_WAIT (0x00002000)
  1154. #define FH49_TCSR_CHNL_TX_BUF_STS_REG_VAL_TFDB_VALID (0x00000003)
  1155. #define FH49_TCSR_CHNL_TX_BUF_STS_REG_POS_TB_NUM (20)
  1156. #define FH49_TCSR_CHNL_TX_BUF_STS_REG_POS_TB_IDX (12)
  1157. /**
  1158. * Tx Shared Status Registers (TSSR)
  1159. *
  1160. * After stopping Tx DMA channel (writing 0 to
  1161. * FH49_TCSR_CHNL_TX_CONFIG_REG(chnl)), driver must poll
  1162. * FH49_TSSR_TX_STATUS_REG until selected Tx channel is idle
  1163. * (channel's buffers empty | no pending requests).
  1164. *
  1165. * Bit fields:
  1166. * 31-24: 1 = Channel buffers empty (channel 7:0)
  1167. * 23-16: 1 = No pending requests (channel 7:0)
  1168. */
  1169. #define FH49_TSSR_LOWER_BOUND (FH49_MEM_LOWER_BOUND + 0xEA0)
  1170. #define FH49_TSSR_UPPER_BOUND (FH49_MEM_LOWER_BOUND + 0xEC0)
  1171. #define FH49_TSSR_TX_STATUS_REG (FH49_TSSR_LOWER_BOUND + 0x010)
  1172. /**
  1173. * Bit fields for TSSR(Tx Shared Status & Control) error status register:
  1174. * 31: Indicates an address error when accessed to internal memory
  1175. * uCode/driver must write "1" in order to clear this flag
  1176. * 30: Indicates that Host did not send the expected number of dwords to FH
  1177. * uCode/driver must write "1" in order to clear this flag
  1178. * 16-9:Each status bit is for one channel. Indicates that an (Error) ActDMA
  1179. * command was received from the scheduler while the TRB was already full
  1180. * with previous command
  1181. * uCode/driver must write "1" in order to clear this flag
  1182. * 7-0: Each status bit indicates a channel's TxCredit error. When an error
  1183. * bit is set, it indicates that the FH has received a full indication
  1184. * from the RTC TxFIFO and the current value of the TxCredit counter was
  1185. * not equal to zero. This mean that the credit mechanism was not
  1186. * synchronized to the TxFIFO status
  1187. * uCode/driver must write "1" in order to clear this flag
  1188. */
  1189. #define FH49_TSSR_TX_ERROR_REG (FH49_TSSR_LOWER_BOUND + 0x018)
  1190. #define FH49_TSSR_TX_STATUS_REG_MSK_CHNL_IDLE(_chnl) ((1 << (_chnl)) << 16)
  1191. /* Tx service channels */
  1192. #define FH49_SRVC_CHNL (9)
  1193. #define FH49_SRVC_LOWER_BOUND (FH49_MEM_LOWER_BOUND + 0x9C8)
  1194. #define FH49_SRVC_UPPER_BOUND (FH49_MEM_LOWER_BOUND + 0x9D0)
  1195. #define FH49_SRVC_CHNL_SRAM_ADDR_REG(_chnl) \
  1196. (FH49_SRVC_LOWER_BOUND + ((_chnl) - 9) * 0x4)
  1197. #define FH49_TX_CHICKEN_BITS_REG (FH49_MEM_LOWER_BOUND + 0xE98)
  1198. /* Instruct FH to increment the retry count of a packet when
  1199. * it is brought from the memory to TX-FIFO
  1200. */
  1201. #define FH49_TX_CHICKEN_BITS_SCD_AUTO_RETRY_EN (0x00000002)
  1202. /* Keep Warm Size */
  1203. #define IL_KW_SIZE 0x1000 /* 4k */
  1204. #endif /* __il_4965_h__ */