iwl-agn-calib.c 33 KB

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  1. /******************************************************************************
  2. *
  3. * This file is provided under a dual BSD/GPLv2 license. When using or
  4. * redistributing this file, you may do so under either license.
  5. *
  6. * GPL LICENSE SUMMARY
  7. *
  8. * Copyright(c) 2008 - 2011 Intel Corporation. All rights reserved.
  9. *
  10. * This program is free software; you can redistribute it and/or modify
  11. * it under the terms of version 2 of the GNU General Public License as
  12. * published by the Free Software Foundation.
  13. *
  14. * This program is distributed in the hope that it will be useful, but
  15. * WITHOUT ANY WARRANTY; without even the implied warranty of
  16. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
  17. * General Public License for more details.
  18. *
  19. * You should have received a copy of the GNU General Public License
  20. * along with this program; if not, write to the Free Software
  21. * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110,
  22. * USA
  23. *
  24. * The full GNU General Public License is included in this distribution
  25. * in the file called LICENSE.GPL.
  26. *
  27. * Contact Information:
  28. * Intel Linux Wireless <ilw@linux.intel.com>
  29. * Intel Corporation, 5200 N.E. Elam Young Parkway, Hillsboro, OR 97124-6497
  30. *
  31. * BSD LICENSE
  32. *
  33. * Copyright(c) 2005 - 2011 Intel Corporation. All rights reserved.
  34. * All rights reserved.
  35. *
  36. * Redistribution and use in source and binary forms, with or without
  37. * modification, are permitted provided that the following conditions
  38. * are met:
  39. *
  40. * * Redistributions of source code must retain the above copyright
  41. * notice, this list of conditions and the following disclaimer.
  42. * * Redistributions in binary form must reproduce the above copyright
  43. * notice, this list of conditions and the following disclaimer in
  44. * the documentation and/or other materials provided with the
  45. * distribution.
  46. * * Neither the name Intel Corporation nor the names of its
  47. * contributors may be used to endorse or promote products derived
  48. * from this software without specific prior written permission.
  49. *
  50. * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
  51. * "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
  52. * LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
  53. * A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
  54. * OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
  55. * SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT
  56. * LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
  57. * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
  58. * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
  59. * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
  60. * OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
  61. *****************************************************************************/
  62. #include <linux/slab.h>
  63. #include <net/mac80211.h>
  64. #include "iwl-dev.h"
  65. #include "iwl-core.h"
  66. #include "iwl-agn-calib.h"
  67. /*****************************************************************************
  68. * INIT calibrations framework
  69. *****************************************************************************/
  70. struct statistics_general_data {
  71. u32 beacon_silence_rssi_a;
  72. u32 beacon_silence_rssi_b;
  73. u32 beacon_silence_rssi_c;
  74. u32 beacon_energy_a;
  75. u32 beacon_energy_b;
  76. u32 beacon_energy_c;
  77. };
  78. int iwl_send_calib_results(struct iwl_priv *priv)
  79. {
  80. int ret = 0;
  81. int i = 0;
  82. struct iwl_host_cmd hcmd = {
  83. .id = REPLY_PHY_CALIBRATION_CMD,
  84. .flags = CMD_SIZE_HUGE,
  85. };
  86. for (i = 0; i < IWL_CALIB_MAX; i++) {
  87. if ((BIT(i) & priv->hw_params.calib_init_cfg) &&
  88. priv->calib_results[i].buf) {
  89. hcmd.len = priv->calib_results[i].buf_len;
  90. hcmd.data = priv->calib_results[i].buf;
  91. ret = iwl_send_cmd_sync(priv, &hcmd);
  92. if (ret) {
  93. IWL_ERR(priv, "Error %d iteration %d\n",
  94. ret, i);
  95. break;
  96. }
  97. }
  98. }
  99. return ret;
  100. }
  101. int iwl_calib_set(struct iwl_calib_result *res, const u8 *buf, int len)
  102. {
  103. if (res->buf_len != len) {
  104. kfree(res->buf);
  105. res->buf = kzalloc(len, GFP_ATOMIC);
  106. }
  107. if (unlikely(res->buf == NULL))
  108. return -ENOMEM;
  109. res->buf_len = len;
  110. memcpy(res->buf, buf, len);
  111. return 0;
  112. }
  113. void iwl_calib_free_results(struct iwl_priv *priv)
  114. {
  115. int i;
  116. for (i = 0; i < IWL_CALIB_MAX; i++) {
  117. kfree(priv->calib_results[i].buf);
  118. priv->calib_results[i].buf = NULL;
  119. priv->calib_results[i].buf_len = 0;
  120. }
  121. }
  122. /*****************************************************************************
  123. * RUNTIME calibrations framework
  124. *****************************************************************************/
  125. /* "false alarms" are signals that our DSP tries to lock onto,
  126. * but then determines that they are either noise, or transmissions
  127. * from a distant wireless network (also "noise", really) that get
  128. * "stepped on" by stronger transmissions within our own network.
  129. * This algorithm attempts to set a sensitivity level that is high
  130. * enough to receive all of our own network traffic, but not so
  131. * high that our DSP gets too busy trying to lock onto non-network
  132. * activity/noise. */
  133. static int iwl_sens_energy_cck(struct iwl_priv *priv,
  134. u32 norm_fa,
  135. u32 rx_enable_time,
  136. struct statistics_general_data *rx_info)
  137. {
  138. u32 max_nrg_cck = 0;
  139. int i = 0;
  140. u8 max_silence_rssi = 0;
  141. u32 silence_ref = 0;
  142. u8 silence_rssi_a = 0;
  143. u8 silence_rssi_b = 0;
  144. u8 silence_rssi_c = 0;
  145. u32 val;
  146. /* "false_alarms" values below are cross-multiplications to assess the
  147. * numbers of false alarms within the measured period of actual Rx
  148. * (Rx is off when we're txing), vs the min/max expected false alarms
  149. * (some should be expected if rx is sensitive enough) in a
  150. * hypothetical listening period of 200 time units (TU), 204.8 msec:
  151. *
  152. * MIN_FA/fixed-time < false_alarms/actual-rx-time < MAX_FA/beacon-time
  153. *
  154. * */
  155. u32 false_alarms = norm_fa * 200 * 1024;
  156. u32 max_false_alarms = MAX_FA_CCK * rx_enable_time;
  157. u32 min_false_alarms = MIN_FA_CCK * rx_enable_time;
  158. struct iwl_sensitivity_data *data = NULL;
  159. const struct iwl_sensitivity_ranges *ranges = priv->hw_params.sens;
  160. data = &(priv->sensitivity_data);
  161. data->nrg_auto_corr_silence_diff = 0;
  162. /* Find max silence rssi among all 3 receivers.
  163. * This is background noise, which may include transmissions from other
  164. * networks, measured during silence before our network's beacon */
  165. silence_rssi_a = (u8)((rx_info->beacon_silence_rssi_a &
  166. ALL_BAND_FILTER) >> 8);
  167. silence_rssi_b = (u8)((rx_info->beacon_silence_rssi_b &
  168. ALL_BAND_FILTER) >> 8);
  169. silence_rssi_c = (u8)((rx_info->beacon_silence_rssi_c &
  170. ALL_BAND_FILTER) >> 8);
  171. val = max(silence_rssi_b, silence_rssi_c);
  172. max_silence_rssi = max(silence_rssi_a, (u8) val);
  173. /* Store silence rssi in 20-beacon history table */
  174. data->nrg_silence_rssi[data->nrg_silence_idx] = max_silence_rssi;
  175. data->nrg_silence_idx++;
  176. if (data->nrg_silence_idx >= NRG_NUM_PREV_STAT_L)
  177. data->nrg_silence_idx = 0;
  178. /* Find max silence rssi across 20 beacon history */
  179. for (i = 0; i < NRG_NUM_PREV_STAT_L; i++) {
  180. val = data->nrg_silence_rssi[i];
  181. silence_ref = max(silence_ref, val);
  182. }
  183. IWL_DEBUG_CALIB(priv, "silence a %u, b %u, c %u, 20-bcn max %u\n",
  184. silence_rssi_a, silence_rssi_b, silence_rssi_c,
  185. silence_ref);
  186. /* Find max rx energy (min value!) among all 3 receivers,
  187. * measured during beacon frame.
  188. * Save it in 10-beacon history table. */
  189. i = data->nrg_energy_idx;
  190. val = min(rx_info->beacon_energy_b, rx_info->beacon_energy_c);
  191. data->nrg_value[i] = min(rx_info->beacon_energy_a, val);
  192. data->nrg_energy_idx++;
  193. if (data->nrg_energy_idx >= 10)
  194. data->nrg_energy_idx = 0;
  195. /* Find min rx energy (max value) across 10 beacon history.
  196. * This is the minimum signal level that we want to receive well.
  197. * Add backoff (margin so we don't miss slightly lower energy frames).
  198. * This establishes an upper bound (min value) for energy threshold. */
  199. max_nrg_cck = data->nrg_value[0];
  200. for (i = 1; i < 10; i++)
  201. max_nrg_cck = (u32) max(max_nrg_cck, (data->nrg_value[i]));
  202. max_nrg_cck += 6;
  203. IWL_DEBUG_CALIB(priv, "rx energy a %u, b %u, c %u, 10-bcn max/min %u\n",
  204. rx_info->beacon_energy_a, rx_info->beacon_energy_b,
  205. rx_info->beacon_energy_c, max_nrg_cck - 6);
  206. /* Count number of consecutive beacons with fewer-than-desired
  207. * false alarms. */
  208. if (false_alarms < min_false_alarms)
  209. data->num_in_cck_no_fa++;
  210. else
  211. data->num_in_cck_no_fa = 0;
  212. IWL_DEBUG_CALIB(priv, "consecutive bcns with few false alarms = %u\n",
  213. data->num_in_cck_no_fa);
  214. /* If we got too many false alarms this time, reduce sensitivity */
  215. if ((false_alarms > max_false_alarms) &&
  216. (data->auto_corr_cck > AUTO_CORR_MAX_TH_CCK)) {
  217. IWL_DEBUG_CALIB(priv, "norm FA %u > max FA %u\n",
  218. false_alarms, max_false_alarms);
  219. IWL_DEBUG_CALIB(priv, "... reducing sensitivity\n");
  220. data->nrg_curr_state = IWL_FA_TOO_MANY;
  221. /* Store for "fewer than desired" on later beacon */
  222. data->nrg_silence_ref = silence_ref;
  223. /* increase energy threshold (reduce nrg value)
  224. * to decrease sensitivity */
  225. data->nrg_th_cck = data->nrg_th_cck - NRG_STEP_CCK;
  226. /* Else if we got fewer than desired, increase sensitivity */
  227. } else if (false_alarms < min_false_alarms) {
  228. data->nrg_curr_state = IWL_FA_TOO_FEW;
  229. /* Compare silence level with silence level for most recent
  230. * healthy number or too many false alarms */
  231. data->nrg_auto_corr_silence_diff = (s32)data->nrg_silence_ref -
  232. (s32)silence_ref;
  233. IWL_DEBUG_CALIB(priv, "norm FA %u < min FA %u, silence diff %d\n",
  234. false_alarms, min_false_alarms,
  235. data->nrg_auto_corr_silence_diff);
  236. /* Increase value to increase sensitivity, but only if:
  237. * 1a) previous beacon did *not* have *too many* false alarms
  238. * 1b) AND there's a significant difference in Rx levels
  239. * from a previous beacon with too many, or healthy # FAs
  240. * OR 2) We've seen a lot of beacons (100) with too few
  241. * false alarms */
  242. if ((data->nrg_prev_state != IWL_FA_TOO_MANY) &&
  243. ((data->nrg_auto_corr_silence_diff > NRG_DIFF) ||
  244. (data->num_in_cck_no_fa > MAX_NUMBER_CCK_NO_FA))) {
  245. IWL_DEBUG_CALIB(priv, "... increasing sensitivity\n");
  246. /* Increase nrg value to increase sensitivity */
  247. val = data->nrg_th_cck + NRG_STEP_CCK;
  248. data->nrg_th_cck = min((u32)ranges->min_nrg_cck, val);
  249. } else {
  250. IWL_DEBUG_CALIB(priv, "... but not changing sensitivity\n");
  251. }
  252. /* Else we got a healthy number of false alarms, keep status quo */
  253. } else {
  254. IWL_DEBUG_CALIB(priv, " FA in safe zone\n");
  255. data->nrg_curr_state = IWL_FA_GOOD_RANGE;
  256. /* Store for use in "fewer than desired" with later beacon */
  257. data->nrg_silence_ref = silence_ref;
  258. /* If previous beacon had too many false alarms,
  259. * give it some extra margin by reducing sensitivity again
  260. * (but don't go below measured energy of desired Rx) */
  261. if (IWL_FA_TOO_MANY == data->nrg_prev_state) {
  262. IWL_DEBUG_CALIB(priv, "... increasing margin\n");
  263. if (data->nrg_th_cck > (max_nrg_cck + NRG_MARGIN))
  264. data->nrg_th_cck -= NRG_MARGIN;
  265. else
  266. data->nrg_th_cck = max_nrg_cck;
  267. }
  268. }
  269. /* Make sure the energy threshold does not go above the measured
  270. * energy of the desired Rx signals (reduced by backoff margin),
  271. * or else we might start missing Rx frames.
  272. * Lower value is higher energy, so we use max()!
  273. */
  274. data->nrg_th_cck = max(max_nrg_cck, data->nrg_th_cck);
  275. IWL_DEBUG_CALIB(priv, "new nrg_th_cck %u\n", data->nrg_th_cck);
  276. data->nrg_prev_state = data->nrg_curr_state;
  277. /* Auto-correlation CCK algorithm */
  278. if (false_alarms > min_false_alarms) {
  279. /* increase auto_corr values to decrease sensitivity
  280. * so the DSP won't be disturbed by the noise
  281. */
  282. if (data->auto_corr_cck < AUTO_CORR_MAX_TH_CCK)
  283. data->auto_corr_cck = AUTO_CORR_MAX_TH_CCK + 1;
  284. else {
  285. val = data->auto_corr_cck + AUTO_CORR_STEP_CCK;
  286. data->auto_corr_cck =
  287. min((u32)ranges->auto_corr_max_cck, val);
  288. }
  289. val = data->auto_corr_cck_mrc + AUTO_CORR_STEP_CCK;
  290. data->auto_corr_cck_mrc =
  291. min((u32)ranges->auto_corr_max_cck_mrc, val);
  292. } else if ((false_alarms < min_false_alarms) &&
  293. ((data->nrg_auto_corr_silence_diff > NRG_DIFF) ||
  294. (data->num_in_cck_no_fa > MAX_NUMBER_CCK_NO_FA))) {
  295. /* Decrease auto_corr values to increase sensitivity */
  296. val = data->auto_corr_cck - AUTO_CORR_STEP_CCK;
  297. data->auto_corr_cck =
  298. max((u32)ranges->auto_corr_min_cck, val);
  299. val = data->auto_corr_cck_mrc - AUTO_CORR_STEP_CCK;
  300. data->auto_corr_cck_mrc =
  301. max((u32)ranges->auto_corr_min_cck_mrc, val);
  302. }
  303. return 0;
  304. }
  305. static int iwl_sens_auto_corr_ofdm(struct iwl_priv *priv,
  306. u32 norm_fa,
  307. u32 rx_enable_time)
  308. {
  309. u32 val;
  310. u32 false_alarms = norm_fa * 200 * 1024;
  311. u32 max_false_alarms = MAX_FA_OFDM * rx_enable_time;
  312. u32 min_false_alarms = MIN_FA_OFDM * rx_enable_time;
  313. struct iwl_sensitivity_data *data = NULL;
  314. const struct iwl_sensitivity_ranges *ranges = priv->hw_params.sens;
  315. data = &(priv->sensitivity_data);
  316. /* If we got too many false alarms this time, reduce sensitivity */
  317. if (false_alarms > max_false_alarms) {
  318. IWL_DEBUG_CALIB(priv, "norm FA %u > max FA %u)\n",
  319. false_alarms, max_false_alarms);
  320. val = data->auto_corr_ofdm + AUTO_CORR_STEP_OFDM;
  321. data->auto_corr_ofdm =
  322. min((u32)ranges->auto_corr_max_ofdm, val);
  323. val = data->auto_corr_ofdm_mrc + AUTO_CORR_STEP_OFDM;
  324. data->auto_corr_ofdm_mrc =
  325. min((u32)ranges->auto_corr_max_ofdm_mrc, val);
  326. val = data->auto_corr_ofdm_x1 + AUTO_CORR_STEP_OFDM;
  327. data->auto_corr_ofdm_x1 =
  328. min((u32)ranges->auto_corr_max_ofdm_x1, val);
  329. val = data->auto_corr_ofdm_mrc_x1 + AUTO_CORR_STEP_OFDM;
  330. data->auto_corr_ofdm_mrc_x1 =
  331. min((u32)ranges->auto_corr_max_ofdm_mrc_x1, val);
  332. }
  333. /* Else if we got fewer than desired, increase sensitivity */
  334. else if (false_alarms < min_false_alarms) {
  335. IWL_DEBUG_CALIB(priv, "norm FA %u < min FA %u\n",
  336. false_alarms, min_false_alarms);
  337. val = data->auto_corr_ofdm - AUTO_CORR_STEP_OFDM;
  338. data->auto_corr_ofdm =
  339. max((u32)ranges->auto_corr_min_ofdm, val);
  340. val = data->auto_corr_ofdm_mrc - AUTO_CORR_STEP_OFDM;
  341. data->auto_corr_ofdm_mrc =
  342. max((u32)ranges->auto_corr_min_ofdm_mrc, val);
  343. val = data->auto_corr_ofdm_x1 - AUTO_CORR_STEP_OFDM;
  344. data->auto_corr_ofdm_x1 =
  345. max((u32)ranges->auto_corr_min_ofdm_x1, val);
  346. val = data->auto_corr_ofdm_mrc_x1 - AUTO_CORR_STEP_OFDM;
  347. data->auto_corr_ofdm_mrc_x1 =
  348. max((u32)ranges->auto_corr_min_ofdm_mrc_x1, val);
  349. } else {
  350. IWL_DEBUG_CALIB(priv, "min FA %u < norm FA %u < max FA %u OK\n",
  351. min_false_alarms, false_alarms, max_false_alarms);
  352. }
  353. return 0;
  354. }
  355. static void iwl_prepare_legacy_sensitivity_tbl(struct iwl_priv *priv,
  356. struct iwl_sensitivity_data *data,
  357. __le16 *tbl)
  358. {
  359. tbl[HD_AUTO_CORR32_X4_TH_ADD_MIN_INDEX] =
  360. cpu_to_le16((u16)data->auto_corr_ofdm);
  361. tbl[HD_AUTO_CORR32_X4_TH_ADD_MIN_MRC_INDEX] =
  362. cpu_to_le16((u16)data->auto_corr_ofdm_mrc);
  363. tbl[HD_AUTO_CORR32_X1_TH_ADD_MIN_INDEX] =
  364. cpu_to_le16((u16)data->auto_corr_ofdm_x1);
  365. tbl[HD_AUTO_CORR32_X1_TH_ADD_MIN_MRC_INDEX] =
  366. cpu_to_le16((u16)data->auto_corr_ofdm_mrc_x1);
  367. tbl[HD_AUTO_CORR40_X4_TH_ADD_MIN_INDEX] =
  368. cpu_to_le16((u16)data->auto_corr_cck);
  369. tbl[HD_AUTO_CORR40_X4_TH_ADD_MIN_MRC_INDEX] =
  370. cpu_to_le16((u16)data->auto_corr_cck_mrc);
  371. tbl[HD_MIN_ENERGY_CCK_DET_INDEX] =
  372. cpu_to_le16((u16)data->nrg_th_cck);
  373. tbl[HD_MIN_ENERGY_OFDM_DET_INDEX] =
  374. cpu_to_le16((u16)data->nrg_th_ofdm);
  375. tbl[HD_BARKER_CORR_TH_ADD_MIN_INDEX] =
  376. cpu_to_le16(data->barker_corr_th_min);
  377. tbl[HD_BARKER_CORR_TH_ADD_MIN_MRC_INDEX] =
  378. cpu_to_le16(data->barker_corr_th_min_mrc);
  379. tbl[HD_OFDM_ENERGY_TH_IN_INDEX] =
  380. cpu_to_le16(data->nrg_th_cca);
  381. IWL_DEBUG_CALIB(priv, "ofdm: ac %u mrc %u x1 %u mrc_x1 %u thresh %u\n",
  382. data->auto_corr_ofdm, data->auto_corr_ofdm_mrc,
  383. data->auto_corr_ofdm_x1, data->auto_corr_ofdm_mrc_x1,
  384. data->nrg_th_ofdm);
  385. IWL_DEBUG_CALIB(priv, "cck: ac %u mrc %u thresh %u\n",
  386. data->auto_corr_cck, data->auto_corr_cck_mrc,
  387. data->nrg_th_cck);
  388. }
  389. /* Prepare a SENSITIVITY_CMD, send to uCode if values have changed */
  390. static int iwl_sensitivity_write(struct iwl_priv *priv)
  391. {
  392. struct iwl_sensitivity_cmd cmd;
  393. struct iwl_sensitivity_data *data = NULL;
  394. struct iwl_host_cmd cmd_out = {
  395. .id = SENSITIVITY_CMD,
  396. .len = sizeof(struct iwl_sensitivity_cmd),
  397. .flags = CMD_ASYNC,
  398. .data = &cmd,
  399. };
  400. data = &(priv->sensitivity_data);
  401. memset(&cmd, 0, sizeof(cmd));
  402. iwl_prepare_legacy_sensitivity_tbl(priv, data, &cmd.table[0]);
  403. /* Update uCode's "work" table, and copy it to DSP */
  404. cmd.control = SENSITIVITY_CMD_CONTROL_WORK_TABLE;
  405. /* Don't send command to uCode if nothing has changed */
  406. if (!memcmp(&cmd.table[0], &(priv->sensitivity_tbl[0]),
  407. sizeof(u16)*HD_TABLE_SIZE)) {
  408. IWL_DEBUG_CALIB(priv, "No change in SENSITIVITY_CMD\n");
  409. return 0;
  410. }
  411. /* Copy table for comparison next time */
  412. memcpy(&(priv->sensitivity_tbl[0]), &(cmd.table[0]),
  413. sizeof(u16)*HD_TABLE_SIZE);
  414. return iwl_send_cmd(priv, &cmd_out);
  415. }
  416. /* Prepare a SENSITIVITY_CMD, send to uCode if values have changed */
  417. static int iwl_enhance_sensitivity_write(struct iwl_priv *priv)
  418. {
  419. struct iwl_enhance_sensitivity_cmd cmd;
  420. struct iwl_sensitivity_data *data = NULL;
  421. struct iwl_host_cmd cmd_out = {
  422. .id = SENSITIVITY_CMD,
  423. .len = sizeof(struct iwl_enhance_sensitivity_cmd),
  424. .flags = CMD_ASYNC,
  425. .data = &cmd,
  426. };
  427. data = &(priv->sensitivity_data);
  428. memset(&cmd, 0, sizeof(cmd));
  429. iwl_prepare_legacy_sensitivity_tbl(priv, data, &cmd.enhance_table[0]);
  430. cmd.enhance_table[HD_INA_NON_SQUARE_DET_OFDM_INDEX] =
  431. HD_INA_NON_SQUARE_DET_OFDM_DATA;
  432. cmd.enhance_table[HD_INA_NON_SQUARE_DET_CCK_INDEX] =
  433. HD_INA_NON_SQUARE_DET_CCK_DATA;
  434. cmd.enhance_table[HD_CORR_11_INSTEAD_OF_CORR_9_EN_INDEX] =
  435. HD_CORR_11_INSTEAD_OF_CORR_9_EN_DATA;
  436. cmd.enhance_table[HD_OFDM_NON_SQUARE_DET_SLOPE_MRC_INDEX] =
  437. HD_OFDM_NON_SQUARE_DET_SLOPE_MRC_DATA;
  438. cmd.enhance_table[HD_OFDM_NON_SQUARE_DET_INTERCEPT_MRC_INDEX] =
  439. HD_OFDM_NON_SQUARE_DET_INTERCEPT_MRC_DATA;
  440. cmd.enhance_table[HD_OFDM_NON_SQUARE_DET_SLOPE_INDEX] =
  441. HD_OFDM_NON_SQUARE_DET_SLOPE_DATA;
  442. cmd.enhance_table[HD_OFDM_NON_SQUARE_DET_INTERCEPT_INDEX] =
  443. HD_OFDM_NON_SQUARE_DET_INTERCEPT_DATA;
  444. cmd.enhance_table[HD_CCK_NON_SQUARE_DET_SLOPE_MRC_INDEX] =
  445. HD_CCK_NON_SQUARE_DET_SLOPE_MRC_DATA;
  446. cmd.enhance_table[HD_CCK_NON_SQUARE_DET_INTERCEPT_MRC_INDEX] =
  447. HD_CCK_NON_SQUARE_DET_INTERCEPT_MRC_DATA;
  448. cmd.enhance_table[HD_CCK_NON_SQUARE_DET_SLOPE_INDEX] =
  449. HD_CCK_NON_SQUARE_DET_SLOPE_DATA;
  450. cmd.enhance_table[HD_CCK_NON_SQUARE_DET_INTERCEPT_INDEX] =
  451. HD_CCK_NON_SQUARE_DET_INTERCEPT_DATA;
  452. /* Update uCode's "work" table, and copy it to DSP */
  453. cmd.control = SENSITIVITY_CMD_CONTROL_WORK_TABLE;
  454. /* Don't send command to uCode if nothing has changed */
  455. if (!memcmp(&cmd.enhance_table[0], &(priv->sensitivity_tbl[0]),
  456. sizeof(u16)*HD_TABLE_SIZE) &&
  457. !memcmp(&cmd.enhance_table[HD_INA_NON_SQUARE_DET_OFDM_INDEX],
  458. &(priv->enhance_sensitivity_tbl[0]),
  459. sizeof(u16)*ENHANCE_HD_TABLE_ENTRIES)) {
  460. IWL_DEBUG_CALIB(priv, "No change in SENSITIVITY_CMD\n");
  461. return 0;
  462. }
  463. /* Copy table for comparison next time */
  464. memcpy(&(priv->sensitivity_tbl[0]), &(cmd.enhance_table[0]),
  465. sizeof(u16)*HD_TABLE_SIZE);
  466. memcpy(&(priv->enhance_sensitivity_tbl[0]),
  467. &(cmd.enhance_table[HD_INA_NON_SQUARE_DET_OFDM_INDEX]),
  468. sizeof(u16)*ENHANCE_HD_TABLE_ENTRIES);
  469. return iwl_send_cmd(priv, &cmd_out);
  470. }
  471. void iwl_init_sensitivity(struct iwl_priv *priv)
  472. {
  473. int ret = 0;
  474. int i;
  475. struct iwl_sensitivity_data *data = NULL;
  476. const struct iwl_sensitivity_ranges *ranges = priv->hw_params.sens;
  477. if (priv->disable_sens_cal)
  478. return;
  479. IWL_DEBUG_CALIB(priv, "Start iwl_init_sensitivity\n");
  480. /* Clear driver's sensitivity algo data */
  481. data = &(priv->sensitivity_data);
  482. if (ranges == NULL)
  483. return;
  484. memset(data, 0, sizeof(struct iwl_sensitivity_data));
  485. data->num_in_cck_no_fa = 0;
  486. data->nrg_curr_state = IWL_FA_TOO_MANY;
  487. data->nrg_prev_state = IWL_FA_TOO_MANY;
  488. data->nrg_silence_ref = 0;
  489. data->nrg_silence_idx = 0;
  490. data->nrg_energy_idx = 0;
  491. for (i = 0; i < 10; i++)
  492. data->nrg_value[i] = 0;
  493. for (i = 0; i < NRG_NUM_PREV_STAT_L; i++)
  494. data->nrg_silence_rssi[i] = 0;
  495. data->auto_corr_ofdm = ranges->auto_corr_min_ofdm;
  496. data->auto_corr_ofdm_mrc = ranges->auto_corr_min_ofdm_mrc;
  497. data->auto_corr_ofdm_x1 = ranges->auto_corr_min_ofdm_x1;
  498. data->auto_corr_ofdm_mrc_x1 = ranges->auto_corr_min_ofdm_mrc_x1;
  499. data->auto_corr_cck = AUTO_CORR_CCK_MIN_VAL_DEF;
  500. data->auto_corr_cck_mrc = ranges->auto_corr_min_cck_mrc;
  501. data->nrg_th_cck = ranges->nrg_th_cck;
  502. data->nrg_th_ofdm = ranges->nrg_th_ofdm;
  503. data->barker_corr_th_min = ranges->barker_corr_th_min;
  504. data->barker_corr_th_min_mrc = ranges->barker_corr_th_min_mrc;
  505. data->nrg_th_cca = ranges->nrg_th_cca;
  506. data->last_bad_plcp_cnt_ofdm = 0;
  507. data->last_fa_cnt_ofdm = 0;
  508. data->last_bad_plcp_cnt_cck = 0;
  509. data->last_fa_cnt_cck = 0;
  510. if (priv->enhance_sensitivity_table)
  511. ret |= iwl_enhance_sensitivity_write(priv);
  512. else
  513. ret |= iwl_sensitivity_write(priv);
  514. IWL_DEBUG_CALIB(priv, "<<return 0x%X\n", ret);
  515. }
  516. void iwl_sensitivity_calibration(struct iwl_priv *priv)
  517. {
  518. u32 rx_enable_time;
  519. u32 fa_cck;
  520. u32 fa_ofdm;
  521. u32 bad_plcp_cck;
  522. u32 bad_plcp_ofdm;
  523. u32 norm_fa_ofdm;
  524. u32 norm_fa_cck;
  525. struct iwl_sensitivity_data *data = NULL;
  526. struct statistics_rx_non_phy *rx_info;
  527. struct statistics_rx_phy *ofdm, *cck;
  528. unsigned long flags;
  529. struct statistics_general_data statis;
  530. if (priv->disable_sens_cal)
  531. return;
  532. data = &(priv->sensitivity_data);
  533. if (!iwl_is_any_associated(priv)) {
  534. IWL_DEBUG_CALIB(priv, "<< - not associated\n");
  535. return;
  536. }
  537. spin_lock_irqsave(&priv->lock, flags);
  538. rx_info = &priv->statistics.rx_non_phy;
  539. ofdm = &priv->statistics.rx_ofdm;
  540. cck = &priv->statistics.rx_cck;
  541. if (rx_info->interference_data_flag != INTERFERENCE_DATA_AVAILABLE) {
  542. IWL_DEBUG_CALIB(priv, "<< invalid data.\n");
  543. spin_unlock_irqrestore(&priv->lock, flags);
  544. return;
  545. }
  546. /* Extract Statistics: */
  547. rx_enable_time = le32_to_cpu(rx_info->channel_load);
  548. fa_cck = le32_to_cpu(cck->false_alarm_cnt);
  549. fa_ofdm = le32_to_cpu(ofdm->false_alarm_cnt);
  550. bad_plcp_cck = le32_to_cpu(cck->plcp_err);
  551. bad_plcp_ofdm = le32_to_cpu(ofdm->plcp_err);
  552. statis.beacon_silence_rssi_a =
  553. le32_to_cpu(rx_info->beacon_silence_rssi_a);
  554. statis.beacon_silence_rssi_b =
  555. le32_to_cpu(rx_info->beacon_silence_rssi_b);
  556. statis.beacon_silence_rssi_c =
  557. le32_to_cpu(rx_info->beacon_silence_rssi_c);
  558. statis.beacon_energy_a =
  559. le32_to_cpu(rx_info->beacon_energy_a);
  560. statis.beacon_energy_b =
  561. le32_to_cpu(rx_info->beacon_energy_b);
  562. statis.beacon_energy_c =
  563. le32_to_cpu(rx_info->beacon_energy_c);
  564. spin_unlock_irqrestore(&priv->lock, flags);
  565. IWL_DEBUG_CALIB(priv, "rx_enable_time = %u usecs\n", rx_enable_time);
  566. if (!rx_enable_time) {
  567. IWL_DEBUG_CALIB(priv, "<< RX Enable Time == 0!\n");
  568. return;
  569. }
  570. /* These statistics increase monotonically, and do not reset
  571. * at each beacon. Calculate difference from last value, or just
  572. * use the new statistics value if it has reset or wrapped around. */
  573. if (data->last_bad_plcp_cnt_cck > bad_plcp_cck)
  574. data->last_bad_plcp_cnt_cck = bad_plcp_cck;
  575. else {
  576. bad_plcp_cck -= data->last_bad_plcp_cnt_cck;
  577. data->last_bad_plcp_cnt_cck += bad_plcp_cck;
  578. }
  579. if (data->last_bad_plcp_cnt_ofdm > bad_plcp_ofdm)
  580. data->last_bad_plcp_cnt_ofdm = bad_plcp_ofdm;
  581. else {
  582. bad_plcp_ofdm -= data->last_bad_plcp_cnt_ofdm;
  583. data->last_bad_plcp_cnt_ofdm += bad_plcp_ofdm;
  584. }
  585. if (data->last_fa_cnt_ofdm > fa_ofdm)
  586. data->last_fa_cnt_ofdm = fa_ofdm;
  587. else {
  588. fa_ofdm -= data->last_fa_cnt_ofdm;
  589. data->last_fa_cnt_ofdm += fa_ofdm;
  590. }
  591. if (data->last_fa_cnt_cck > fa_cck)
  592. data->last_fa_cnt_cck = fa_cck;
  593. else {
  594. fa_cck -= data->last_fa_cnt_cck;
  595. data->last_fa_cnt_cck += fa_cck;
  596. }
  597. /* Total aborted signal locks */
  598. norm_fa_ofdm = fa_ofdm + bad_plcp_ofdm;
  599. norm_fa_cck = fa_cck + bad_plcp_cck;
  600. IWL_DEBUG_CALIB(priv, "cck: fa %u badp %u ofdm: fa %u badp %u\n", fa_cck,
  601. bad_plcp_cck, fa_ofdm, bad_plcp_ofdm);
  602. iwl_sens_auto_corr_ofdm(priv, norm_fa_ofdm, rx_enable_time);
  603. iwl_sens_energy_cck(priv, norm_fa_cck, rx_enable_time, &statis);
  604. if (priv->enhance_sensitivity_table)
  605. iwl_enhance_sensitivity_write(priv);
  606. else
  607. iwl_sensitivity_write(priv);
  608. }
  609. static inline u8 find_first_chain(u8 mask)
  610. {
  611. if (mask & ANT_A)
  612. return CHAIN_A;
  613. if (mask & ANT_B)
  614. return CHAIN_B;
  615. return CHAIN_C;
  616. }
  617. /**
  618. * Run disconnected antenna algorithm to find out which antennas are
  619. * disconnected.
  620. */
  621. static void iwl_find_disconn_antenna(struct iwl_priv *priv, u32* average_sig,
  622. struct iwl_chain_noise_data *data)
  623. {
  624. u32 active_chains = 0;
  625. u32 max_average_sig;
  626. u16 max_average_sig_antenna_i;
  627. u8 num_tx_chains;
  628. u8 first_chain;
  629. u16 i = 0;
  630. average_sig[0] = data->chain_signal_a /
  631. priv->cfg->base_params->chain_noise_num_beacons;
  632. average_sig[1] = data->chain_signal_b /
  633. priv->cfg->base_params->chain_noise_num_beacons;
  634. average_sig[2] = data->chain_signal_c /
  635. priv->cfg->base_params->chain_noise_num_beacons;
  636. if (average_sig[0] >= average_sig[1]) {
  637. max_average_sig = average_sig[0];
  638. max_average_sig_antenna_i = 0;
  639. active_chains = (1 << max_average_sig_antenna_i);
  640. } else {
  641. max_average_sig = average_sig[1];
  642. max_average_sig_antenna_i = 1;
  643. active_chains = (1 << max_average_sig_antenna_i);
  644. }
  645. if (average_sig[2] >= max_average_sig) {
  646. max_average_sig = average_sig[2];
  647. max_average_sig_antenna_i = 2;
  648. active_chains = (1 << max_average_sig_antenna_i);
  649. }
  650. IWL_DEBUG_CALIB(priv, "average_sig: a %d b %d c %d\n",
  651. average_sig[0], average_sig[1], average_sig[2]);
  652. IWL_DEBUG_CALIB(priv, "max_average_sig = %d, antenna %d\n",
  653. max_average_sig, max_average_sig_antenna_i);
  654. /* Compare signal strengths for all 3 receivers. */
  655. for (i = 0; i < NUM_RX_CHAINS; i++) {
  656. if (i != max_average_sig_antenna_i) {
  657. s32 rssi_delta = (max_average_sig - average_sig[i]);
  658. /* If signal is very weak, compared with
  659. * strongest, mark it as disconnected. */
  660. if (rssi_delta > MAXIMUM_ALLOWED_PATHLOSS)
  661. data->disconn_array[i] = 1;
  662. else
  663. active_chains |= (1 << i);
  664. IWL_DEBUG_CALIB(priv, "i = %d rssiDelta = %d "
  665. "disconn_array[i] = %d\n",
  666. i, rssi_delta, data->disconn_array[i]);
  667. }
  668. }
  669. /*
  670. * The above algorithm sometimes fails when the ucode
  671. * reports 0 for all chains. It's not clear why that
  672. * happens to start with, but it is then causing trouble
  673. * because this can make us enable more chains than the
  674. * hardware really has.
  675. *
  676. * To be safe, simply mask out any chains that we know
  677. * are not on the device.
  678. */
  679. active_chains &= priv->hw_params.valid_rx_ant;
  680. num_tx_chains = 0;
  681. for (i = 0; i < NUM_RX_CHAINS; i++) {
  682. /* loops on all the bits of
  683. * priv->hw_setting.valid_tx_ant */
  684. u8 ant_msk = (1 << i);
  685. if (!(priv->hw_params.valid_tx_ant & ant_msk))
  686. continue;
  687. num_tx_chains++;
  688. if (data->disconn_array[i] == 0)
  689. /* there is a Tx antenna connected */
  690. break;
  691. if (num_tx_chains == priv->hw_params.tx_chains_num &&
  692. data->disconn_array[i]) {
  693. /*
  694. * If all chains are disconnected
  695. * connect the first valid tx chain
  696. */
  697. first_chain =
  698. find_first_chain(priv->cfg->valid_tx_ant);
  699. data->disconn_array[first_chain] = 0;
  700. active_chains |= BIT(first_chain);
  701. IWL_DEBUG_CALIB(priv, "All Tx chains are disconnected \
  702. W/A - declare %d as connected\n",
  703. first_chain);
  704. break;
  705. }
  706. }
  707. if (active_chains != priv->hw_params.valid_rx_ant &&
  708. active_chains != priv->chain_noise_data.active_chains)
  709. IWL_DEBUG_CALIB(priv,
  710. "Detected that not all antennas are connected! "
  711. "Connected: %#x, valid: %#x.\n",
  712. active_chains, priv->hw_params.valid_rx_ant);
  713. /* Save for use within RXON, TX, SCAN commands, etc. */
  714. data->active_chains = active_chains;
  715. IWL_DEBUG_CALIB(priv, "active_chains (bitwise) = 0x%x\n",
  716. active_chains);
  717. }
  718. /*
  719. * Accumulate 16 beacons of signal and noise statistics for each of
  720. * 3 receivers/antennas/rx-chains, then figure out:
  721. * 1) Which antennas are connected.
  722. * 2) Differential rx gain settings to balance the 3 receivers.
  723. */
  724. void iwl_chain_noise_calibration(struct iwl_priv *priv)
  725. {
  726. struct iwl_chain_noise_data *data = NULL;
  727. u32 chain_noise_a;
  728. u32 chain_noise_b;
  729. u32 chain_noise_c;
  730. u32 chain_sig_a;
  731. u32 chain_sig_b;
  732. u32 chain_sig_c;
  733. u32 average_sig[NUM_RX_CHAINS] = {INITIALIZATION_VALUE};
  734. u32 average_noise[NUM_RX_CHAINS] = {INITIALIZATION_VALUE};
  735. u32 min_average_noise = MIN_AVERAGE_NOISE_MAX_VALUE;
  736. u16 min_average_noise_antenna_i = INITIALIZATION_VALUE;
  737. u16 i = 0;
  738. u16 rxon_chnum = INITIALIZATION_VALUE;
  739. u16 stat_chnum = INITIALIZATION_VALUE;
  740. u8 rxon_band24;
  741. u8 stat_band24;
  742. unsigned long flags;
  743. struct statistics_rx_non_phy *rx_info;
  744. /*
  745. * MULTI-FIXME:
  746. * When we support multiple interfaces on different channels,
  747. * this must be modified/fixed.
  748. */
  749. struct iwl_rxon_context *ctx = &priv->contexts[IWL_RXON_CTX_BSS];
  750. if (priv->disable_chain_noise_cal)
  751. return;
  752. data = &(priv->chain_noise_data);
  753. /*
  754. * Accumulate just the first "chain_noise_num_beacons" after
  755. * the first association, then we're done forever.
  756. */
  757. if (data->state != IWL_CHAIN_NOISE_ACCUMULATE) {
  758. if (data->state == IWL_CHAIN_NOISE_ALIVE)
  759. IWL_DEBUG_CALIB(priv, "Wait for noise calib reset\n");
  760. return;
  761. }
  762. spin_lock_irqsave(&priv->lock, flags);
  763. rx_info = &priv->statistics.rx_non_phy;
  764. if (rx_info->interference_data_flag != INTERFERENCE_DATA_AVAILABLE) {
  765. IWL_DEBUG_CALIB(priv, " << Interference data unavailable\n");
  766. spin_unlock_irqrestore(&priv->lock, flags);
  767. return;
  768. }
  769. rxon_band24 = !!(ctx->staging.flags & RXON_FLG_BAND_24G_MSK);
  770. rxon_chnum = le16_to_cpu(ctx->staging.channel);
  771. stat_band24 =
  772. !!(priv->statistics.flag & STATISTICS_REPLY_FLG_BAND_24G_MSK);
  773. stat_chnum = le32_to_cpu(priv->statistics.flag) >> 16;
  774. /* Make sure we accumulate data for just the associated channel
  775. * (even if scanning). */
  776. if ((rxon_chnum != stat_chnum) || (rxon_band24 != stat_band24)) {
  777. IWL_DEBUG_CALIB(priv, "Stats not from chan=%d, band24=%d\n",
  778. rxon_chnum, rxon_band24);
  779. spin_unlock_irqrestore(&priv->lock, flags);
  780. return;
  781. }
  782. /*
  783. * Accumulate beacon statistics values across
  784. * "chain_noise_num_beacons"
  785. */
  786. chain_noise_a = le32_to_cpu(rx_info->beacon_silence_rssi_a) &
  787. IN_BAND_FILTER;
  788. chain_noise_b = le32_to_cpu(rx_info->beacon_silence_rssi_b) &
  789. IN_BAND_FILTER;
  790. chain_noise_c = le32_to_cpu(rx_info->beacon_silence_rssi_c) &
  791. IN_BAND_FILTER;
  792. chain_sig_a = le32_to_cpu(rx_info->beacon_rssi_a) & IN_BAND_FILTER;
  793. chain_sig_b = le32_to_cpu(rx_info->beacon_rssi_b) & IN_BAND_FILTER;
  794. chain_sig_c = le32_to_cpu(rx_info->beacon_rssi_c) & IN_BAND_FILTER;
  795. spin_unlock_irqrestore(&priv->lock, flags);
  796. data->beacon_count++;
  797. data->chain_noise_a = (chain_noise_a + data->chain_noise_a);
  798. data->chain_noise_b = (chain_noise_b + data->chain_noise_b);
  799. data->chain_noise_c = (chain_noise_c + data->chain_noise_c);
  800. data->chain_signal_a = (chain_sig_a + data->chain_signal_a);
  801. data->chain_signal_b = (chain_sig_b + data->chain_signal_b);
  802. data->chain_signal_c = (chain_sig_c + data->chain_signal_c);
  803. IWL_DEBUG_CALIB(priv, "chan=%d, band24=%d, beacon=%d\n",
  804. rxon_chnum, rxon_band24, data->beacon_count);
  805. IWL_DEBUG_CALIB(priv, "chain_sig: a %d b %d c %d\n",
  806. chain_sig_a, chain_sig_b, chain_sig_c);
  807. IWL_DEBUG_CALIB(priv, "chain_noise: a %d b %d c %d\n",
  808. chain_noise_a, chain_noise_b, chain_noise_c);
  809. /* If this is the "chain_noise_num_beacons", determine:
  810. * 1) Disconnected antennas (using signal strengths)
  811. * 2) Differential gain (using silence noise) to balance receivers */
  812. if (data->beacon_count !=
  813. priv->cfg->base_params->chain_noise_num_beacons)
  814. return;
  815. /* Analyze signal for disconnected antenna */
  816. if (priv->cfg->bt_params &&
  817. priv->cfg->bt_params->advanced_bt_coexist) {
  818. /* Disable disconnected antenna algorithm for advanced
  819. bt coex, assuming valid antennas are connected */
  820. data->active_chains = priv->hw_params.valid_rx_ant;
  821. for (i = 0; i < NUM_RX_CHAINS; i++)
  822. if (!(data->active_chains & (1<<i)))
  823. data->disconn_array[i] = 1;
  824. } else
  825. iwl_find_disconn_antenna(priv, average_sig, data);
  826. /* Analyze noise for rx balance */
  827. average_noise[0] = data->chain_noise_a /
  828. priv->cfg->base_params->chain_noise_num_beacons;
  829. average_noise[1] = data->chain_noise_b /
  830. priv->cfg->base_params->chain_noise_num_beacons;
  831. average_noise[2] = data->chain_noise_c /
  832. priv->cfg->base_params->chain_noise_num_beacons;
  833. for (i = 0; i < NUM_RX_CHAINS; i++) {
  834. if (!(data->disconn_array[i]) &&
  835. (average_noise[i] <= min_average_noise)) {
  836. /* This means that chain i is active and has
  837. * lower noise values so far: */
  838. min_average_noise = average_noise[i];
  839. min_average_noise_antenna_i = i;
  840. }
  841. }
  842. IWL_DEBUG_CALIB(priv, "average_noise: a %d b %d c %d\n",
  843. average_noise[0], average_noise[1],
  844. average_noise[2]);
  845. IWL_DEBUG_CALIB(priv, "min_average_noise = %d, antenna %d\n",
  846. min_average_noise, min_average_noise_antenna_i);
  847. if (priv->cfg->ops->utils->gain_computation)
  848. priv->cfg->ops->utils->gain_computation(priv, average_noise,
  849. min_average_noise_antenna_i, min_average_noise,
  850. find_first_chain(priv->cfg->valid_rx_ant));
  851. /* Some power changes may have been made during the calibration.
  852. * Update and commit the RXON
  853. */
  854. if (priv->cfg->ops->lib->update_chain_flags)
  855. priv->cfg->ops->lib->update_chain_flags(priv);
  856. data->state = IWL_CHAIN_NOISE_DONE;
  857. iwl_power_update_mode(priv, false);
  858. }
  859. void iwl_reset_run_time_calib(struct iwl_priv *priv)
  860. {
  861. int i;
  862. memset(&(priv->sensitivity_data), 0,
  863. sizeof(struct iwl_sensitivity_data));
  864. memset(&(priv->chain_noise_data), 0,
  865. sizeof(struct iwl_chain_noise_data));
  866. for (i = 0; i < NUM_RX_CHAINS; i++)
  867. priv->chain_noise_data.delta_gain_code[i] =
  868. CHAIN_NOISE_DELTA_GAIN_INIT_VAL;
  869. /* Ask for statistics now, the uCode will send notification
  870. * periodically after association */
  871. iwl_send_statistics_request(priv, CMD_ASYNC, true);
  872. }