p54common.c 59 KB

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  1. /*
  2. * Common code for mac80211 Prism54 drivers
  3. *
  4. * Copyright (c) 2006, Michael Wu <flamingice@sourmilk.net>
  5. * Copyright (c) 2007, Christian Lamparter <chunkeey@web.de>
  6. * Copyright 2008, Johannes Berg <johannes@sipsolutions.net>
  7. *
  8. * Based on:
  9. * - the islsm (softmac prism54) driver, which is:
  10. * Copyright 2004-2006 Jean-Baptiste Note <jbnote@gmail.com>, et al.
  11. * - stlc45xx driver
  12. * Copyright (C) 2008 Nokia Corporation and/or its subsidiary(-ies).
  13. *
  14. * This program is free software; you can redistribute it and/or modify
  15. * it under the terms of the GNU General Public License version 2 as
  16. * published by the Free Software Foundation.
  17. */
  18. #include <linux/init.h>
  19. #include <linux/firmware.h>
  20. #include <linux/etherdevice.h>
  21. #include <net/mac80211.h>
  22. #include "p54.h"
  23. #include "p54common.h"
  24. static int modparam_nohwcrypt;
  25. module_param_named(nohwcrypt, modparam_nohwcrypt, bool, S_IRUGO);
  26. MODULE_PARM_DESC(nohwcrypt, "Disable hardware encryption.");
  27. MODULE_AUTHOR("Michael Wu <flamingice@sourmilk.net>");
  28. MODULE_DESCRIPTION("Softmac Prism54 common code");
  29. MODULE_LICENSE("GPL");
  30. MODULE_ALIAS("prism54common");
  31. static struct ieee80211_rate p54_bgrates[] = {
  32. { .bitrate = 10, .hw_value = 0, .flags = IEEE80211_RATE_SHORT_PREAMBLE },
  33. { .bitrate = 20, .hw_value = 1, .flags = IEEE80211_RATE_SHORT_PREAMBLE },
  34. { .bitrate = 55, .hw_value = 2, .flags = IEEE80211_RATE_SHORT_PREAMBLE },
  35. { .bitrate = 110, .hw_value = 3, .flags = IEEE80211_RATE_SHORT_PREAMBLE },
  36. { .bitrate = 60, .hw_value = 4, },
  37. { .bitrate = 90, .hw_value = 5, },
  38. { .bitrate = 120, .hw_value = 6, },
  39. { .bitrate = 180, .hw_value = 7, },
  40. { .bitrate = 240, .hw_value = 8, },
  41. { .bitrate = 360, .hw_value = 9, },
  42. { .bitrate = 480, .hw_value = 10, },
  43. { .bitrate = 540, .hw_value = 11, },
  44. };
  45. static struct ieee80211_channel p54_bgchannels[] = {
  46. { .center_freq = 2412, .hw_value = 1, },
  47. { .center_freq = 2417, .hw_value = 2, },
  48. { .center_freq = 2422, .hw_value = 3, },
  49. { .center_freq = 2427, .hw_value = 4, },
  50. { .center_freq = 2432, .hw_value = 5, },
  51. { .center_freq = 2437, .hw_value = 6, },
  52. { .center_freq = 2442, .hw_value = 7, },
  53. { .center_freq = 2447, .hw_value = 8, },
  54. { .center_freq = 2452, .hw_value = 9, },
  55. { .center_freq = 2457, .hw_value = 10, },
  56. { .center_freq = 2462, .hw_value = 11, },
  57. { .center_freq = 2467, .hw_value = 12, },
  58. { .center_freq = 2472, .hw_value = 13, },
  59. { .center_freq = 2484, .hw_value = 14, },
  60. };
  61. static struct ieee80211_supported_band band_2GHz = {
  62. .channels = p54_bgchannels,
  63. .n_channels = ARRAY_SIZE(p54_bgchannels),
  64. .bitrates = p54_bgrates,
  65. .n_bitrates = ARRAY_SIZE(p54_bgrates),
  66. };
  67. static struct ieee80211_rate p54_arates[] = {
  68. { .bitrate = 60, .hw_value = 4, },
  69. { .bitrate = 90, .hw_value = 5, },
  70. { .bitrate = 120, .hw_value = 6, },
  71. { .bitrate = 180, .hw_value = 7, },
  72. { .bitrate = 240, .hw_value = 8, },
  73. { .bitrate = 360, .hw_value = 9, },
  74. { .bitrate = 480, .hw_value = 10, },
  75. { .bitrate = 540, .hw_value = 11, },
  76. };
  77. static struct ieee80211_channel p54_achannels[] = {
  78. { .center_freq = 4920 },
  79. { .center_freq = 4940 },
  80. { .center_freq = 4960 },
  81. { .center_freq = 4980 },
  82. { .center_freq = 5040 },
  83. { .center_freq = 5060 },
  84. { .center_freq = 5080 },
  85. { .center_freq = 5170 },
  86. { .center_freq = 5180 },
  87. { .center_freq = 5190 },
  88. { .center_freq = 5200 },
  89. { .center_freq = 5210 },
  90. { .center_freq = 5220 },
  91. { .center_freq = 5230 },
  92. { .center_freq = 5240 },
  93. { .center_freq = 5260 },
  94. { .center_freq = 5280 },
  95. { .center_freq = 5300 },
  96. { .center_freq = 5320 },
  97. { .center_freq = 5500 },
  98. { .center_freq = 5520 },
  99. { .center_freq = 5540 },
  100. { .center_freq = 5560 },
  101. { .center_freq = 5580 },
  102. { .center_freq = 5600 },
  103. { .center_freq = 5620 },
  104. { .center_freq = 5640 },
  105. { .center_freq = 5660 },
  106. { .center_freq = 5680 },
  107. { .center_freq = 5700 },
  108. { .center_freq = 5745 },
  109. { .center_freq = 5765 },
  110. { .center_freq = 5785 },
  111. { .center_freq = 5805 },
  112. { .center_freq = 5825 },
  113. };
  114. static struct ieee80211_supported_band band_5GHz = {
  115. .channels = p54_achannels,
  116. .n_channels = ARRAY_SIZE(p54_achannels),
  117. .bitrates = p54_arates,
  118. .n_bitrates = ARRAY_SIZE(p54_arates),
  119. };
  120. int p54_parse_firmware(struct ieee80211_hw *dev, const struct firmware *fw)
  121. {
  122. struct p54_common *priv = dev->priv;
  123. struct bootrec_exp_if *exp_if;
  124. struct bootrec *bootrec;
  125. u32 *data = (u32 *)fw->data;
  126. u32 *end_data = (u32 *)fw->data + (fw->size >> 2);
  127. u8 *fw_version = NULL;
  128. size_t len;
  129. int i;
  130. int maxlen;
  131. if (priv->rx_start)
  132. return 0;
  133. while (data < end_data && *data)
  134. data++;
  135. while (data < end_data && !*data)
  136. data++;
  137. bootrec = (struct bootrec *) data;
  138. while (bootrec->data <= end_data &&
  139. (bootrec->data + (len = le32_to_cpu(bootrec->len))) <= end_data) {
  140. u32 code = le32_to_cpu(bootrec->code);
  141. switch (code) {
  142. case BR_CODE_COMPONENT_ID:
  143. priv->fw_interface = be32_to_cpup((__be32 *)
  144. bootrec->data);
  145. switch (priv->fw_interface) {
  146. case FW_LM86:
  147. case FW_LM20:
  148. case FW_LM87: {
  149. char *iftype = (char *)bootrec->data;
  150. printk(KERN_INFO "%s: p54 detected a LM%c%c "
  151. "firmware\n",
  152. wiphy_name(dev->wiphy),
  153. iftype[2], iftype[3]);
  154. break;
  155. }
  156. case FW_FMAC:
  157. default:
  158. printk(KERN_ERR "%s: unsupported firmware\n",
  159. wiphy_name(dev->wiphy));
  160. return -ENODEV;
  161. }
  162. break;
  163. case BR_CODE_COMPONENT_VERSION:
  164. /* 24 bytes should be enough for all firmwares */
  165. if (strnlen((unsigned char*)bootrec->data, 24) < 24)
  166. fw_version = (unsigned char*)bootrec->data;
  167. break;
  168. case BR_CODE_DESCR: {
  169. struct bootrec_desc *desc =
  170. (struct bootrec_desc *)bootrec->data;
  171. priv->rx_start = le32_to_cpu(desc->rx_start);
  172. /* FIXME add sanity checking */
  173. priv->rx_end = le32_to_cpu(desc->rx_end) - 0x3500;
  174. priv->headroom = desc->headroom;
  175. priv->tailroom = desc->tailroom;
  176. priv->privacy_caps = desc->privacy_caps;
  177. priv->rx_keycache_size = desc->rx_keycache_size;
  178. if (le32_to_cpu(bootrec->len) == 11)
  179. priv->rx_mtu = le16_to_cpu(desc->rx_mtu);
  180. else
  181. priv->rx_mtu = (size_t)
  182. 0x620 - priv->tx_hdr_len;
  183. maxlen = priv->tx_hdr_len + /* USB devices */
  184. sizeof(struct p54_rx_data) +
  185. 4 + /* rx alignment */
  186. IEEE80211_MAX_FRAG_THRESHOLD;
  187. if (priv->rx_mtu > maxlen && PAGE_SIZE == 4096) {
  188. printk(KERN_INFO "p54: rx_mtu reduced from %d "
  189. "to %d\n", priv->rx_mtu,
  190. maxlen);
  191. priv->rx_mtu = maxlen;
  192. }
  193. break;
  194. }
  195. case BR_CODE_EXPOSED_IF:
  196. exp_if = (struct bootrec_exp_if *) bootrec->data;
  197. for (i = 0; i < (len * sizeof(*exp_if) / 4); i++)
  198. if (exp_if[i].if_id == cpu_to_le16(0x1a))
  199. priv->fw_var = le16_to_cpu(exp_if[i].variant);
  200. break;
  201. case BR_CODE_DEPENDENT_IF:
  202. break;
  203. case BR_CODE_END_OF_BRA:
  204. case LEGACY_BR_CODE_END_OF_BRA:
  205. end_data = NULL;
  206. break;
  207. default:
  208. break;
  209. }
  210. bootrec = (struct bootrec *)&bootrec->data[len];
  211. }
  212. if (fw_version)
  213. printk(KERN_INFO "%s: FW rev %s - Softmac protocol %x.%x\n",
  214. wiphy_name(dev->wiphy), fw_version,
  215. priv->fw_var >> 8, priv->fw_var & 0xff);
  216. if (priv->fw_var < 0x500)
  217. printk(KERN_INFO "%s: you are using an obsolete firmware. "
  218. "visit http://wireless.kernel.org/en/users/Drivers/p54 "
  219. "and grab one for \"kernel >= 2.6.28\"!\n",
  220. wiphy_name(dev->wiphy));
  221. if (priv->fw_var >= 0x300) {
  222. /* Firmware supports QoS, use it! */
  223. priv->tx_stats[4].limit = 3; /* AC_VO */
  224. priv->tx_stats[5].limit = 4; /* AC_VI */
  225. priv->tx_stats[6].limit = 3; /* AC_BE */
  226. priv->tx_stats[7].limit = 2; /* AC_BK */
  227. dev->queues = 4;
  228. }
  229. if (!modparam_nohwcrypt)
  230. printk(KERN_INFO "%s: cryptographic accelerator "
  231. "WEP:%s, TKIP:%s, CCMP:%s\n",
  232. wiphy_name(dev->wiphy),
  233. (priv->privacy_caps & BR_DESC_PRIV_CAP_WEP) ? "YES" :
  234. "no", (priv->privacy_caps & (BR_DESC_PRIV_CAP_TKIP |
  235. BR_DESC_PRIV_CAP_MICHAEL)) ? "YES" : "no",
  236. (priv->privacy_caps & BR_DESC_PRIV_CAP_AESCCMP) ?
  237. "YES" : "no");
  238. return 0;
  239. }
  240. EXPORT_SYMBOL_GPL(p54_parse_firmware);
  241. static int p54_convert_rev0(struct ieee80211_hw *dev,
  242. struct pda_pa_curve_data *curve_data)
  243. {
  244. struct p54_common *priv = dev->priv;
  245. struct p54_pa_curve_data_sample *dst;
  246. struct pda_pa_curve_data_sample_rev0 *src;
  247. size_t cd_len = sizeof(*curve_data) +
  248. (curve_data->points_per_channel*sizeof(*dst) + 2) *
  249. curve_data->channels;
  250. unsigned int i, j;
  251. void *source, *target;
  252. priv->curve_data = kmalloc(cd_len, GFP_KERNEL);
  253. if (!priv->curve_data)
  254. return -ENOMEM;
  255. memcpy(priv->curve_data, curve_data, sizeof(*curve_data));
  256. source = curve_data->data;
  257. target = priv->curve_data->data;
  258. for (i = 0; i < curve_data->channels; i++) {
  259. __le16 *freq = source;
  260. source += sizeof(__le16);
  261. *((__le16 *)target) = *freq;
  262. target += sizeof(__le16);
  263. for (j = 0; j < curve_data->points_per_channel; j++) {
  264. dst = target;
  265. src = source;
  266. dst->rf_power = src->rf_power;
  267. dst->pa_detector = src->pa_detector;
  268. dst->data_64qam = src->pcv;
  269. /* "invent" the points for the other modulations */
  270. #define SUB(x,y) (u8)((x) - (y)) > (x) ? 0 : (x) - (y)
  271. dst->data_16qam = SUB(src->pcv, 12);
  272. dst->data_qpsk = SUB(dst->data_16qam, 12);
  273. dst->data_bpsk = SUB(dst->data_qpsk, 12);
  274. dst->data_barker = SUB(dst->data_bpsk, 14);
  275. #undef SUB
  276. target += sizeof(*dst);
  277. source += sizeof(*src);
  278. }
  279. }
  280. return 0;
  281. }
  282. static int p54_convert_rev1(struct ieee80211_hw *dev,
  283. struct pda_pa_curve_data *curve_data)
  284. {
  285. struct p54_common *priv = dev->priv;
  286. struct p54_pa_curve_data_sample *dst;
  287. struct pda_pa_curve_data_sample_rev1 *src;
  288. size_t cd_len = sizeof(*curve_data) +
  289. (curve_data->points_per_channel*sizeof(*dst) + 2) *
  290. curve_data->channels;
  291. unsigned int i, j;
  292. void *source, *target;
  293. priv->curve_data = kmalloc(cd_len, GFP_KERNEL);
  294. if (!priv->curve_data)
  295. return -ENOMEM;
  296. memcpy(priv->curve_data, curve_data, sizeof(*curve_data));
  297. source = curve_data->data;
  298. target = priv->curve_data->data;
  299. for (i = 0; i < curve_data->channels; i++) {
  300. __le16 *freq = source;
  301. source += sizeof(__le16);
  302. *((__le16 *)target) = *freq;
  303. target += sizeof(__le16);
  304. for (j = 0; j < curve_data->points_per_channel; j++) {
  305. memcpy(target, source, sizeof(*src));
  306. target += sizeof(*dst);
  307. source += sizeof(*src);
  308. }
  309. source++;
  310. }
  311. return 0;
  312. }
  313. static const char *p54_rf_chips[] = { "NULL", "Duette3", "Duette2",
  314. "Frisbee", "Xbow", "Longbow", "NULL", "NULL" };
  315. static int p54_init_xbow_synth(struct ieee80211_hw *dev);
  316. static void p54_parse_rssical(struct ieee80211_hw *dev, void *data, int len,
  317. u16 type)
  318. {
  319. struct p54_common *priv = dev->priv;
  320. int offset = (type == PDR_RSSI_LINEAR_APPROXIMATION_EXTENDED) ? 2 : 0;
  321. int entry_size = sizeof(struct pda_rssi_cal_entry) + offset;
  322. int num_entries = (type == PDR_RSSI_LINEAR_APPROXIMATION) ? 1 : 2;
  323. int i;
  324. if (len != (entry_size * num_entries)) {
  325. printk(KERN_ERR "%s: unknown rssi calibration data packing "
  326. " type:(%x) len:%d.\n",
  327. wiphy_name(dev->wiphy), type, len);
  328. print_hex_dump_bytes("rssical:", DUMP_PREFIX_NONE,
  329. data, len);
  330. printk(KERN_ERR "%s: please report this issue.\n",
  331. wiphy_name(dev->wiphy));
  332. return;
  333. }
  334. for (i = 0; i < num_entries; i++) {
  335. struct pda_rssi_cal_entry *cal = data +
  336. (offset + i * entry_size);
  337. priv->rssical_db[i].mul = (s16) le16_to_cpu(cal->mul);
  338. priv->rssical_db[i].add = (s16) le16_to_cpu(cal->add);
  339. }
  340. }
  341. static int p54_parse_eeprom(struct ieee80211_hw *dev, void *eeprom, int len)
  342. {
  343. struct p54_common *priv = dev->priv;
  344. struct eeprom_pda_wrap *wrap = NULL;
  345. struct pda_entry *entry;
  346. unsigned int data_len, entry_len;
  347. void *tmp;
  348. int err;
  349. u8 *end = (u8 *)eeprom + len;
  350. u16 synth = 0;
  351. wrap = (struct eeprom_pda_wrap *) eeprom;
  352. entry = (void *)wrap->data + le16_to_cpu(wrap->len);
  353. /* verify that at least the entry length/code fits */
  354. while ((u8 *)entry <= end - sizeof(*entry)) {
  355. entry_len = le16_to_cpu(entry->len);
  356. data_len = ((entry_len - 1) << 1);
  357. /* abort if entry exceeds whole structure */
  358. if ((u8 *)entry + sizeof(*entry) + data_len > end)
  359. break;
  360. switch (le16_to_cpu(entry->code)) {
  361. case PDR_MAC_ADDRESS:
  362. SET_IEEE80211_PERM_ADDR(dev, entry->data);
  363. break;
  364. case PDR_PRISM_PA_CAL_OUTPUT_POWER_LIMITS:
  365. if (data_len < 2) {
  366. err = -EINVAL;
  367. goto err;
  368. }
  369. if (2 + entry->data[1]*sizeof(*priv->output_limit) > data_len) {
  370. err = -EINVAL;
  371. goto err;
  372. }
  373. priv->output_limit = kmalloc(entry->data[1] *
  374. sizeof(*priv->output_limit), GFP_KERNEL);
  375. if (!priv->output_limit) {
  376. err = -ENOMEM;
  377. goto err;
  378. }
  379. memcpy(priv->output_limit, &entry->data[2],
  380. entry->data[1]*sizeof(*priv->output_limit));
  381. priv->output_limit_len = entry->data[1];
  382. break;
  383. case PDR_PRISM_PA_CAL_CURVE_DATA: {
  384. struct pda_pa_curve_data *curve_data =
  385. (struct pda_pa_curve_data *)entry->data;
  386. if (data_len < sizeof(*curve_data)) {
  387. err = -EINVAL;
  388. goto err;
  389. }
  390. switch (curve_data->cal_method_rev) {
  391. case 0:
  392. err = p54_convert_rev0(dev, curve_data);
  393. break;
  394. case 1:
  395. err = p54_convert_rev1(dev, curve_data);
  396. break;
  397. default:
  398. printk(KERN_ERR "%s: unknown curve data "
  399. "revision %d\n",
  400. wiphy_name(dev->wiphy),
  401. curve_data->cal_method_rev);
  402. err = -ENODEV;
  403. break;
  404. }
  405. if (err)
  406. goto err;
  407. }
  408. break;
  409. case PDR_PRISM_ZIF_TX_IQ_CALIBRATION:
  410. priv->iq_autocal = kmalloc(data_len, GFP_KERNEL);
  411. if (!priv->iq_autocal) {
  412. err = -ENOMEM;
  413. goto err;
  414. }
  415. memcpy(priv->iq_autocal, entry->data, data_len);
  416. priv->iq_autocal_len = data_len / sizeof(struct pda_iq_autocal_entry);
  417. break;
  418. case PDR_INTERFACE_LIST:
  419. tmp = entry->data;
  420. while ((u8 *)tmp < entry->data + data_len) {
  421. struct bootrec_exp_if *exp_if = tmp;
  422. if (le16_to_cpu(exp_if->if_id) == 0xf)
  423. synth = le16_to_cpu(exp_if->variant);
  424. tmp += sizeof(struct bootrec_exp_if);
  425. }
  426. break;
  427. case PDR_HARDWARE_PLATFORM_COMPONENT_ID:
  428. priv->version = *(u8 *)(entry->data + 1);
  429. break;
  430. case PDR_RSSI_LINEAR_APPROXIMATION:
  431. case PDR_RSSI_LINEAR_APPROXIMATION_DUAL_BAND:
  432. case PDR_RSSI_LINEAR_APPROXIMATION_EXTENDED:
  433. p54_parse_rssical(dev, entry->data, data_len,
  434. le16_to_cpu(entry->code));
  435. break;
  436. case PDR_END:
  437. /* make it overrun */
  438. entry_len = len;
  439. break;
  440. case PDR_MANUFACTURING_PART_NUMBER:
  441. case PDR_PDA_VERSION:
  442. case PDR_NIC_SERIAL_NUMBER:
  443. case PDR_REGULATORY_DOMAIN_LIST:
  444. case PDR_TEMPERATURE_TYPE:
  445. case PDR_PRISM_PCI_IDENTIFIER:
  446. case PDR_COUNTRY_INFORMATION:
  447. case PDR_OEM_NAME:
  448. case PDR_PRODUCT_NAME:
  449. case PDR_UTF8_OEM_NAME:
  450. case PDR_UTF8_PRODUCT_NAME:
  451. case PDR_COUNTRY_LIST:
  452. case PDR_DEFAULT_COUNTRY:
  453. case PDR_ANTENNA_GAIN:
  454. case PDR_PRISM_INDIGO_PA_CALIBRATION_DATA:
  455. case PDR_REGULATORY_POWER_LIMITS:
  456. case PDR_RADIATED_TRANSMISSION_CORRECTION:
  457. case PDR_PRISM_TX_IQ_CALIBRATION:
  458. case PDR_BASEBAND_REGISTERS:
  459. case PDR_PER_CHANNEL_BASEBAND_REGISTERS:
  460. break;
  461. default:
  462. printk(KERN_INFO "%s: unknown eeprom code : 0x%x\n",
  463. wiphy_name(dev->wiphy),
  464. le16_to_cpu(entry->code));
  465. break;
  466. }
  467. entry = (void *)entry + (entry_len + 1)*2;
  468. }
  469. if (!synth || !priv->iq_autocal || !priv->output_limit ||
  470. !priv->curve_data) {
  471. printk(KERN_ERR "%s: not all required entries found in eeprom!\n",
  472. wiphy_name(dev->wiphy));
  473. err = -EINVAL;
  474. goto err;
  475. }
  476. priv->rxhw = synth & PDR_SYNTH_FRONTEND_MASK;
  477. if (priv->rxhw == 4)
  478. p54_init_xbow_synth(dev);
  479. if (!(synth & PDR_SYNTH_24_GHZ_DISABLED))
  480. dev->wiphy->bands[IEEE80211_BAND_2GHZ] = &band_2GHz;
  481. if (!(synth & PDR_SYNTH_5_GHZ_DISABLED))
  482. dev->wiphy->bands[IEEE80211_BAND_5GHZ] = &band_5GHz;
  483. if (!is_valid_ether_addr(dev->wiphy->perm_addr)) {
  484. u8 perm_addr[ETH_ALEN];
  485. printk(KERN_WARNING "%s: Invalid hwaddr! Using randomly generated MAC addr\n",
  486. wiphy_name(dev->wiphy));
  487. random_ether_addr(perm_addr);
  488. SET_IEEE80211_PERM_ADDR(dev, perm_addr);
  489. }
  490. printk(KERN_INFO "%s: hwaddr %pM, MAC:isl38%02x RF:%s\n",
  491. wiphy_name(dev->wiphy),
  492. dev->wiphy->perm_addr,
  493. priv->version, p54_rf_chips[priv->rxhw]);
  494. return 0;
  495. err:
  496. if (priv->iq_autocal) {
  497. kfree(priv->iq_autocal);
  498. priv->iq_autocal = NULL;
  499. }
  500. if (priv->output_limit) {
  501. kfree(priv->output_limit);
  502. priv->output_limit = NULL;
  503. }
  504. if (priv->curve_data) {
  505. kfree(priv->curve_data);
  506. priv->curve_data = NULL;
  507. }
  508. printk(KERN_ERR "%s: eeprom parse failed!\n",
  509. wiphy_name(dev->wiphy));
  510. return err;
  511. }
  512. static int p54_rssi_to_dbm(struct ieee80211_hw *dev, int rssi)
  513. {
  514. struct p54_common *priv = dev->priv;
  515. int band = dev->conf.channel->band;
  516. return ((rssi * priv->rssical_db[band].mul) / 64 +
  517. priv->rssical_db[band].add) / 4;
  518. }
  519. static int p54_rx_data(struct ieee80211_hw *dev, struct sk_buff *skb)
  520. {
  521. struct p54_common *priv = dev->priv;
  522. struct p54_rx_data *hdr = (struct p54_rx_data *) skb->data;
  523. struct ieee80211_rx_status rx_status = {0};
  524. u16 freq = le16_to_cpu(hdr->freq);
  525. size_t header_len = sizeof(*hdr);
  526. u32 tsf32;
  527. u8 rate = hdr->rate & 0xf;
  528. /*
  529. * If the device is in a unspecified state we have to
  530. * ignore all data frames. Else we could end up with a
  531. * nasty crash.
  532. */
  533. if (unlikely(priv->mode == NL80211_IFTYPE_UNSPECIFIED))
  534. return 0;
  535. if (!(hdr->flags & cpu_to_le16(P54_HDR_FLAG_DATA_IN_FCS_GOOD))) {
  536. if (priv->filter_flags & FIF_FCSFAIL)
  537. rx_status.flag |= RX_FLAG_FAILED_FCS_CRC;
  538. else
  539. return 0;
  540. }
  541. if (hdr->decrypt_status == P54_DECRYPT_OK)
  542. rx_status.flag |= RX_FLAG_DECRYPTED;
  543. if ((hdr->decrypt_status == P54_DECRYPT_FAIL_MICHAEL) ||
  544. (hdr->decrypt_status == P54_DECRYPT_FAIL_TKIP))
  545. rx_status.flag |= RX_FLAG_MMIC_ERROR;
  546. rx_status.signal = p54_rssi_to_dbm(dev, hdr->rssi);
  547. rx_status.noise = priv->noise;
  548. /* XX correct? */
  549. rx_status.qual = (100 * hdr->rssi) / 127;
  550. if (hdr->rate & 0x10)
  551. rx_status.flag |= RX_FLAG_SHORTPRE;
  552. if (dev->conf.channel->band == IEEE80211_BAND_5GHZ)
  553. rx_status.rate_idx = (rate < 4) ? 0 : rate - 4;
  554. else
  555. rx_status.rate_idx = rate;
  556. rx_status.freq = freq;
  557. rx_status.band = dev->conf.channel->band;
  558. rx_status.antenna = hdr->antenna;
  559. tsf32 = le32_to_cpu(hdr->tsf32);
  560. if (tsf32 < priv->tsf_low32)
  561. priv->tsf_high32++;
  562. rx_status.mactime = ((u64)priv->tsf_high32) << 32 | tsf32;
  563. priv->tsf_low32 = tsf32;
  564. rx_status.flag |= RX_FLAG_TSFT;
  565. if (hdr->flags & cpu_to_le16(P54_HDR_FLAG_DATA_ALIGN))
  566. header_len += hdr->align[0];
  567. skb_pull(skb, header_len);
  568. skb_trim(skb, le16_to_cpu(hdr->len));
  569. ieee80211_rx_irqsafe(dev, skb, &rx_status);
  570. queue_delayed_work(dev->workqueue, &priv->work,
  571. msecs_to_jiffies(P54_STATISTICS_UPDATE));
  572. return -1;
  573. }
  574. static void inline p54_wake_free_queues(struct ieee80211_hw *dev)
  575. {
  576. struct p54_common *priv = dev->priv;
  577. int i;
  578. if (priv->mode == NL80211_IFTYPE_UNSPECIFIED)
  579. return ;
  580. for (i = 0; i < dev->queues; i++)
  581. if (priv->tx_stats[i + 4].len < priv->tx_stats[i + 4].limit)
  582. ieee80211_wake_queue(dev, i);
  583. }
  584. void p54_free_skb(struct ieee80211_hw *dev, struct sk_buff *skb)
  585. {
  586. struct p54_common *priv = dev->priv;
  587. struct ieee80211_tx_info *info;
  588. struct memrecord *range;
  589. unsigned long flags;
  590. u32 freed = 0, last_addr = priv->rx_start;
  591. if (unlikely(!skb || !dev || !skb_queue_len(&priv->tx_queue)))
  592. return;
  593. /*
  594. * don't try to free an already unlinked skb
  595. */
  596. if (unlikely((!skb->next) || (!skb->prev)))
  597. return;
  598. spin_lock_irqsave(&priv->tx_queue.lock, flags);
  599. info = IEEE80211_SKB_CB(skb);
  600. range = (void *)info->rate_driver_data;
  601. if (skb->prev != (struct sk_buff *)&priv->tx_queue) {
  602. struct ieee80211_tx_info *ni;
  603. struct memrecord *mr;
  604. ni = IEEE80211_SKB_CB(skb->prev);
  605. mr = (struct memrecord *)ni->rate_driver_data;
  606. last_addr = mr->end_addr;
  607. }
  608. if (skb->next != (struct sk_buff *)&priv->tx_queue) {
  609. struct ieee80211_tx_info *ni;
  610. struct memrecord *mr;
  611. ni = IEEE80211_SKB_CB(skb->next);
  612. mr = (struct memrecord *)ni->rate_driver_data;
  613. freed = mr->start_addr - last_addr;
  614. } else
  615. freed = priv->rx_end - last_addr;
  616. __skb_unlink(skb, &priv->tx_queue);
  617. spin_unlock_irqrestore(&priv->tx_queue.lock, flags);
  618. dev_kfree_skb_any(skb);
  619. if (freed >= priv->headroom + sizeof(struct p54_hdr) + 48 +
  620. IEEE80211_MAX_RTS_THRESHOLD + priv->tailroom)
  621. p54_wake_free_queues(dev);
  622. }
  623. EXPORT_SYMBOL_GPL(p54_free_skb);
  624. static struct sk_buff *p54_find_tx_entry(struct ieee80211_hw *dev,
  625. __le32 req_id)
  626. {
  627. struct p54_common *priv = dev->priv;
  628. struct sk_buff *entry = priv->tx_queue.next;
  629. unsigned long flags;
  630. spin_lock_irqsave(&priv->tx_queue.lock, flags);
  631. while (entry != (struct sk_buff *)&priv->tx_queue) {
  632. struct p54_hdr *hdr = (struct p54_hdr *) entry->data;
  633. if (hdr->req_id == req_id) {
  634. spin_unlock_irqrestore(&priv->tx_queue.lock, flags);
  635. return entry;
  636. }
  637. entry = entry->next;
  638. }
  639. spin_unlock_irqrestore(&priv->tx_queue.lock, flags);
  640. return NULL;
  641. }
  642. static void p54_rx_frame_sent(struct ieee80211_hw *dev, struct sk_buff *skb)
  643. {
  644. struct p54_common *priv = dev->priv;
  645. struct p54_hdr *hdr = (struct p54_hdr *) skb->data;
  646. struct p54_frame_sent *payload = (struct p54_frame_sent *) hdr->data;
  647. struct sk_buff *entry = (struct sk_buff *) priv->tx_queue.next;
  648. u32 addr = le32_to_cpu(hdr->req_id) - priv->headroom;
  649. struct memrecord *range = NULL;
  650. u32 freed = 0;
  651. u32 last_addr = priv->rx_start;
  652. unsigned long flags;
  653. int count, idx;
  654. spin_lock_irqsave(&priv->tx_queue.lock, flags);
  655. while (entry != (struct sk_buff *)&priv->tx_queue) {
  656. struct ieee80211_tx_info *info = IEEE80211_SKB_CB(entry);
  657. struct p54_hdr *entry_hdr;
  658. struct p54_tx_data *entry_data;
  659. int pad = 0;
  660. range = (void *)info->rate_driver_data;
  661. if (range->start_addr != addr) {
  662. last_addr = range->end_addr;
  663. entry = entry->next;
  664. continue;
  665. }
  666. if (entry->next != (struct sk_buff *)&priv->tx_queue) {
  667. struct ieee80211_tx_info *ni;
  668. struct memrecord *mr;
  669. ni = IEEE80211_SKB_CB(entry->next);
  670. mr = (struct memrecord *)ni->rate_driver_data;
  671. freed = mr->start_addr - last_addr;
  672. } else
  673. freed = priv->rx_end - last_addr;
  674. last_addr = range->end_addr;
  675. __skb_unlink(entry, &priv->tx_queue);
  676. spin_unlock_irqrestore(&priv->tx_queue.lock, flags);
  677. entry_hdr = (struct p54_hdr *) entry->data;
  678. entry_data = (struct p54_tx_data *) entry_hdr->data;
  679. priv->tx_stats[entry_data->hw_queue].len--;
  680. priv->stats.dot11ACKFailureCount += payload->tries - 1;
  681. if (unlikely(entry == priv->cached_beacon)) {
  682. kfree_skb(entry);
  683. priv->cached_beacon = NULL;
  684. goto out;
  685. }
  686. /*
  687. * Clear manually, ieee80211_tx_info_clear_status would
  688. * clear the counts too and we need them.
  689. */
  690. memset(&info->status.ampdu_ack_len, 0,
  691. sizeof(struct ieee80211_tx_info) -
  692. offsetof(struct ieee80211_tx_info, status.ampdu_ack_len));
  693. BUILD_BUG_ON(offsetof(struct ieee80211_tx_info,
  694. status.ampdu_ack_len) != 23);
  695. if (entry_hdr->flags & cpu_to_le16(P54_HDR_FLAG_DATA_ALIGN))
  696. pad = entry_data->align[0];
  697. /* walk through the rates array and adjust the counts */
  698. count = payload->tries;
  699. for (idx = 0; idx < 4; idx++) {
  700. if (count >= info->status.rates[idx].count) {
  701. count -= info->status.rates[idx].count;
  702. } else if (count > 0) {
  703. info->status.rates[idx].count = count;
  704. count = 0;
  705. } else {
  706. info->status.rates[idx].idx = -1;
  707. info->status.rates[idx].count = 0;
  708. }
  709. }
  710. if (!(info->flags & IEEE80211_TX_CTL_NO_ACK) &&
  711. (!payload->status))
  712. info->flags |= IEEE80211_TX_STAT_ACK;
  713. if (payload->status & P54_TX_PSM_CANCELLED)
  714. info->flags |= IEEE80211_TX_STAT_TX_FILTERED;
  715. info->status.ack_signal = p54_rssi_to_dbm(dev,
  716. (int)payload->ack_rssi);
  717. if (entry_data->key_type == P54_CRYPTO_TKIPMICHAEL) {
  718. u8 *iv = (u8 *)(entry_data->align + pad +
  719. entry_data->crypt_offset);
  720. /* Restore the original TKIP IV. */
  721. iv[2] = iv[0];
  722. iv[0] = iv[1];
  723. iv[1] = (iv[0] | 0x20) & 0x7f; /* WEPSeed - 8.3.2.2 */
  724. }
  725. skb_pull(entry, sizeof(*hdr) + pad + sizeof(*entry_data));
  726. ieee80211_tx_status_irqsafe(dev, entry);
  727. goto out;
  728. }
  729. spin_unlock_irqrestore(&priv->tx_queue.lock, flags);
  730. out:
  731. if (freed >= priv->headroom + sizeof(struct p54_hdr) + 48 +
  732. IEEE80211_MAX_RTS_THRESHOLD + priv->tailroom)
  733. p54_wake_free_queues(dev);
  734. }
  735. static void p54_rx_eeprom_readback(struct ieee80211_hw *dev,
  736. struct sk_buff *skb)
  737. {
  738. struct p54_hdr *hdr = (struct p54_hdr *) skb->data;
  739. struct p54_eeprom_lm86 *eeprom = (struct p54_eeprom_lm86 *) hdr->data;
  740. struct p54_common *priv = dev->priv;
  741. if (!priv->eeprom)
  742. return ;
  743. if (priv->fw_var >= 0x509) {
  744. memcpy(priv->eeprom, eeprom->v2.data,
  745. le16_to_cpu(eeprom->v2.len));
  746. } else {
  747. memcpy(priv->eeprom, eeprom->v1.data,
  748. le16_to_cpu(eeprom->v1.len));
  749. }
  750. complete(&priv->eeprom_comp);
  751. }
  752. static void p54_rx_stats(struct ieee80211_hw *dev, struct sk_buff *skb)
  753. {
  754. struct p54_common *priv = dev->priv;
  755. struct p54_hdr *hdr = (struct p54_hdr *) skb->data;
  756. struct p54_statistics *stats = (struct p54_statistics *) hdr->data;
  757. u32 tsf32;
  758. if (unlikely(priv->mode == NL80211_IFTYPE_UNSPECIFIED))
  759. return ;
  760. tsf32 = le32_to_cpu(stats->tsf32);
  761. if (tsf32 < priv->tsf_low32)
  762. priv->tsf_high32++;
  763. priv->tsf_low32 = tsf32;
  764. priv->stats.dot11RTSFailureCount = le32_to_cpu(stats->rts_fail);
  765. priv->stats.dot11RTSSuccessCount = le32_to_cpu(stats->rts_success);
  766. priv->stats.dot11FCSErrorCount = le32_to_cpu(stats->rx_bad_fcs);
  767. priv->noise = p54_rssi_to_dbm(dev, le32_to_cpu(stats->noise));
  768. p54_free_skb(dev, p54_find_tx_entry(dev, hdr->req_id));
  769. }
  770. static void p54_rx_trap(struct ieee80211_hw *dev, struct sk_buff *skb)
  771. {
  772. struct p54_hdr *hdr = (struct p54_hdr *) skb->data;
  773. struct p54_trap *trap = (struct p54_trap *) hdr->data;
  774. u16 event = le16_to_cpu(trap->event);
  775. u16 freq = le16_to_cpu(trap->frequency);
  776. switch (event) {
  777. case P54_TRAP_BEACON_TX:
  778. break;
  779. case P54_TRAP_RADAR:
  780. printk(KERN_INFO "%s: radar (freq:%d MHz)\n",
  781. wiphy_name(dev->wiphy), freq);
  782. break;
  783. case P54_TRAP_NO_BEACON:
  784. break;
  785. case P54_TRAP_SCAN:
  786. break;
  787. case P54_TRAP_TBTT:
  788. break;
  789. case P54_TRAP_TIMER:
  790. break;
  791. default:
  792. printk(KERN_INFO "%s: received event:%x freq:%d\n",
  793. wiphy_name(dev->wiphy), event, freq);
  794. break;
  795. }
  796. }
  797. static int p54_rx_control(struct ieee80211_hw *dev, struct sk_buff *skb)
  798. {
  799. struct p54_hdr *hdr = (struct p54_hdr *) skb->data;
  800. switch (le16_to_cpu(hdr->type)) {
  801. case P54_CONTROL_TYPE_TXDONE:
  802. p54_rx_frame_sent(dev, skb);
  803. break;
  804. case P54_CONTROL_TYPE_TRAP:
  805. p54_rx_trap(dev, skb);
  806. break;
  807. case P54_CONTROL_TYPE_BBP:
  808. break;
  809. case P54_CONTROL_TYPE_STAT_READBACK:
  810. p54_rx_stats(dev, skb);
  811. break;
  812. case P54_CONTROL_TYPE_EEPROM_READBACK:
  813. p54_rx_eeprom_readback(dev, skb);
  814. break;
  815. default:
  816. printk(KERN_DEBUG "%s: not handling 0x%02x type control frame\n",
  817. wiphy_name(dev->wiphy), le16_to_cpu(hdr->type));
  818. break;
  819. }
  820. return 0;
  821. }
  822. /* returns zero if skb can be reused */
  823. int p54_rx(struct ieee80211_hw *dev, struct sk_buff *skb)
  824. {
  825. u16 type = le16_to_cpu(*((__le16 *)skb->data));
  826. if (type & P54_HDR_FLAG_CONTROL)
  827. return p54_rx_control(dev, skb);
  828. else
  829. return p54_rx_data(dev, skb);
  830. }
  831. EXPORT_SYMBOL_GPL(p54_rx);
  832. /*
  833. * So, the firmware is somewhat stupid and doesn't know what places in its
  834. * memory incoming data should go to. By poking around in the firmware, we
  835. * can find some unused memory to upload our packets to. However, data that we
  836. * want the card to TX needs to stay intact until the card has told us that
  837. * it is done with it. This function finds empty places we can upload to and
  838. * marks allocated areas as reserved if necessary. p54_rx_frame_sent frees
  839. * allocated areas.
  840. */
  841. static int p54_assign_address(struct ieee80211_hw *dev, struct sk_buff *skb,
  842. struct p54_hdr *data, u32 len)
  843. {
  844. struct p54_common *priv = dev->priv;
  845. struct sk_buff *entry = priv->tx_queue.next;
  846. struct sk_buff *target_skb = NULL;
  847. struct ieee80211_tx_info *info;
  848. struct memrecord *range;
  849. u32 last_addr = priv->rx_start;
  850. u32 largest_hole = 0;
  851. u32 target_addr = priv->rx_start;
  852. unsigned long flags;
  853. unsigned int left;
  854. len = (len + priv->headroom + priv->tailroom + 3) & ~0x3;
  855. if (!skb)
  856. return -EINVAL;
  857. spin_lock_irqsave(&priv->tx_queue.lock, flags);
  858. left = skb_queue_len(&priv->tx_queue);
  859. if (unlikely(left >= 28)) {
  860. /*
  861. * The tx_queue is nearly full!
  862. * We have throttle normal data traffic, because we must
  863. * have a few spare slots for control frames left.
  864. */
  865. ieee80211_stop_queues(dev);
  866. queue_delayed_work(dev->workqueue, &priv->work,
  867. msecs_to_jiffies(P54_TX_TIMEOUT));
  868. if (unlikely(left == 32)) {
  869. /*
  870. * The tx_queue is now really full.
  871. *
  872. * TODO: check if the device has crashed and reset it.
  873. */
  874. spin_unlock_irqrestore(&priv->tx_queue.lock, flags);
  875. return -ENOSPC;
  876. }
  877. }
  878. while (left--) {
  879. u32 hole_size;
  880. info = IEEE80211_SKB_CB(entry);
  881. range = (void *)info->rate_driver_data;
  882. hole_size = range->start_addr - last_addr;
  883. if (!target_skb && hole_size >= len) {
  884. target_skb = entry->prev;
  885. hole_size -= len;
  886. target_addr = last_addr;
  887. }
  888. largest_hole = max(largest_hole, hole_size);
  889. last_addr = range->end_addr;
  890. entry = entry->next;
  891. }
  892. if (!target_skb && priv->rx_end - last_addr >= len) {
  893. target_skb = priv->tx_queue.prev;
  894. largest_hole = max(largest_hole, priv->rx_end - last_addr - len);
  895. if (!skb_queue_empty(&priv->tx_queue)) {
  896. info = IEEE80211_SKB_CB(target_skb);
  897. range = (void *)info->rate_driver_data;
  898. target_addr = range->end_addr;
  899. }
  900. } else
  901. largest_hole = max(largest_hole, priv->rx_end - last_addr);
  902. if (!target_skb) {
  903. spin_unlock_irqrestore(&priv->tx_queue.lock, flags);
  904. ieee80211_stop_queues(dev);
  905. return -ENOSPC;
  906. }
  907. info = IEEE80211_SKB_CB(skb);
  908. range = (void *)info->rate_driver_data;
  909. range->start_addr = target_addr;
  910. range->end_addr = target_addr + len;
  911. __skb_queue_after(&priv->tx_queue, target_skb, skb);
  912. spin_unlock_irqrestore(&priv->tx_queue.lock, flags);
  913. if (largest_hole < priv->headroom + sizeof(struct p54_hdr) +
  914. 48 + IEEE80211_MAX_RTS_THRESHOLD + priv->tailroom)
  915. ieee80211_stop_queues(dev);
  916. data->req_id = cpu_to_le32(target_addr + priv->headroom);
  917. return 0;
  918. }
  919. static struct sk_buff *p54_alloc_skb(struct ieee80211_hw *dev,
  920. u16 hdr_flags, u16 len, u16 type, gfp_t memflags)
  921. {
  922. struct p54_common *priv = dev->priv;
  923. struct p54_hdr *hdr;
  924. struct sk_buff *skb;
  925. skb = __dev_alloc_skb(len + priv->tx_hdr_len, memflags);
  926. if (!skb)
  927. return NULL;
  928. skb_reserve(skb, priv->tx_hdr_len);
  929. hdr = (struct p54_hdr *) skb_put(skb, sizeof(*hdr));
  930. hdr->flags = cpu_to_le16(hdr_flags);
  931. hdr->len = cpu_to_le16(len - sizeof(*hdr));
  932. hdr->type = cpu_to_le16(type);
  933. hdr->tries = hdr->rts_tries = 0;
  934. if (unlikely(p54_assign_address(dev, skb, hdr, len))) {
  935. kfree_skb(skb);
  936. return NULL;
  937. }
  938. return skb;
  939. }
  940. int p54_read_eeprom(struct ieee80211_hw *dev)
  941. {
  942. struct p54_common *priv = dev->priv;
  943. struct p54_hdr *hdr = NULL;
  944. struct p54_eeprom_lm86 *eeprom_hdr;
  945. struct sk_buff *skb;
  946. size_t eeprom_size = 0x2020, offset = 0, blocksize, maxblocksize;
  947. int ret = -ENOMEM;
  948. void *eeprom = NULL;
  949. maxblocksize = EEPROM_READBACK_LEN;
  950. if (priv->fw_var >= 0x509)
  951. maxblocksize -= 0xc;
  952. else
  953. maxblocksize -= 0x4;
  954. skb = p54_alloc_skb(dev, P54_HDR_FLAG_CONTROL, sizeof(*hdr) +
  955. sizeof(*eeprom_hdr) + maxblocksize,
  956. P54_CONTROL_TYPE_EEPROM_READBACK, GFP_KERNEL);
  957. if (!skb)
  958. goto free;
  959. priv->eeprom = kzalloc(EEPROM_READBACK_LEN, GFP_KERNEL);
  960. if (!priv->eeprom)
  961. goto free;
  962. eeprom = kzalloc(eeprom_size, GFP_KERNEL);
  963. if (!eeprom)
  964. goto free;
  965. eeprom_hdr = (struct p54_eeprom_lm86 *) skb_put(skb,
  966. sizeof(*eeprom_hdr) + maxblocksize);
  967. while (eeprom_size) {
  968. blocksize = min(eeprom_size, maxblocksize);
  969. if (priv->fw_var < 0x509) {
  970. eeprom_hdr->v1.offset = cpu_to_le16(offset);
  971. eeprom_hdr->v1.len = cpu_to_le16(blocksize);
  972. } else {
  973. eeprom_hdr->v2.offset = cpu_to_le32(offset);
  974. eeprom_hdr->v2.len = cpu_to_le16(blocksize);
  975. eeprom_hdr->v2.magic2 = 0xf;
  976. memcpy(eeprom_hdr->v2.magic, (const char *)"LOCK", 4);
  977. }
  978. priv->tx(dev, skb);
  979. if (!wait_for_completion_interruptible_timeout(&priv->eeprom_comp, HZ)) {
  980. printk(KERN_ERR "%s: device does not respond!\n",
  981. wiphy_name(dev->wiphy));
  982. ret = -EBUSY;
  983. goto free;
  984. }
  985. memcpy(eeprom + offset, priv->eeprom, blocksize);
  986. offset += blocksize;
  987. eeprom_size -= blocksize;
  988. }
  989. ret = p54_parse_eeprom(dev, eeprom, offset);
  990. free:
  991. kfree(priv->eeprom);
  992. priv->eeprom = NULL;
  993. p54_free_skb(dev, skb);
  994. kfree(eeprom);
  995. return ret;
  996. }
  997. EXPORT_SYMBOL_GPL(p54_read_eeprom);
  998. static int p54_set_tim(struct ieee80211_hw *dev, struct ieee80211_sta *sta,
  999. bool set)
  1000. {
  1001. struct p54_common *priv = dev->priv;
  1002. struct sk_buff *skb;
  1003. struct p54_tim *tim;
  1004. skb = p54_alloc_skb(dev, P54_HDR_FLAG_CONTROL_OPSET,
  1005. sizeof(struct p54_hdr) + sizeof(*tim),
  1006. P54_CONTROL_TYPE_TIM, GFP_ATOMIC);
  1007. if (!skb)
  1008. return -ENOMEM;
  1009. tim = (struct p54_tim *) skb_put(skb, sizeof(*tim));
  1010. tim->count = 1;
  1011. tim->entry[0] = cpu_to_le16(set ? (sta->aid | 0x8000) : sta->aid);
  1012. priv->tx(dev, skb);
  1013. return 0;
  1014. }
  1015. static int p54_sta_unlock(struct ieee80211_hw *dev, u8 *addr)
  1016. {
  1017. struct p54_common *priv = dev->priv;
  1018. struct sk_buff *skb;
  1019. struct p54_sta_unlock *sta;
  1020. skb = p54_alloc_skb(dev, P54_HDR_FLAG_CONTROL_OPSET,
  1021. sizeof(struct p54_hdr) + sizeof(*sta),
  1022. P54_CONTROL_TYPE_PSM_STA_UNLOCK, GFP_ATOMIC);
  1023. if (!skb)
  1024. return -ENOMEM;
  1025. sta = (struct p54_sta_unlock *)skb_put(skb, sizeof(*sta));
  1026. memcpy(sta->addr, addr, ETH_ALEN);
  1027. priv->tx(dev, skb);
  1028. return 0;
  1029. }
  1030. static void p54_sta_notify(struct ieee80211_hw *dev, struct ieee80211_vif *vif,
  1031. enum sta_notify_cmd notify_cmd,
  1032. struct ieee80211_sta *sta)
  1033. {
  1034. switch (notify_cmd) {
  1035. case STA_NOTIFY_ADD:
  1036. case STA_NOTIFY_REMOVE:
  1037. /*
  1038. * Notify the firmware that we don't want or we don't
  1039. * need to buffer frames for this station anymore.
  1040. */
  1041. p54_sta_unlock(dev, sta->addr);
  1042. break;
  1043. case STA_NOTIFY_AWAKE:
  1044. /* update the firmware's filter table */
  1045. p54_sta_unlock(dev, sta->addr);
  1046. break;
  1047. default:
  1048. break;
  1049. }
  1050. }
  1051. static int p54_tx_cancel(struct ieee80211_hw *dev, struct sk_buff *entry)
  1052. {
  1053. struct p54_common *priv = dev->priv;
  1054. struct sk_buff *skb;
  1055. struct p54_hdr *hdr;
  1056. struct p54_txcancel *cancel;
  1057. skb = p54_alloc_skb(dev, P54_HDR_FLAG_CONTROL_OPSET,
  1058. sizeof(struct p54_hdr) + sizeof(*cancel),
  1059. P54_CONTROL_TYPE_TXCANCEL, GFP_ATOMIC);
  1060. if (!skb)
  1061. return -ENOMEM;
  1062. hdr = (void *)entry->data;
  1063. cancel = (struct p54_txcancel *)skb_put(skb, sizeof(*cancel));
  1064. cancel->req_id = hdr->req_id;
  1065. priv->tx(dev, skb);
  1066. return 0;
  1067. }
  1068. static int p54_tx_fill(struct ieee80211_hw *dev, struct sk_buff *skb,
  1069. struct ieee80211_tx_info *info, u8 *queue, size_t *extra_len,
  1070. u16 *flags, u16 *aid)
  1071. {
  1072. struct ieee80211_hdr *hdr = (struct ieee80211_hdr *)skb->data;
  1073. struct p54_common *priv = dev->priv;
  1074. int ret = 0;
  1075. if (unlikely(ieee80211_is_mgmt(hdr->frame_control))) {
  1076. if (ieee80211_is_beacon(hdr->frame_control)) {
  1077. *aid = 0;
  1078. *queue = 0;
  1079. *extra_len = IEEE80211_MAX_TIM_LEN;
  1080. *flags = P54_HDR_FLAG_DATA_OUT_TIMESTAMP;
  1081. return 0;
  1082. } else if (ieee80211_is_probe_resp(hdr->frame_control)) {
  1083. *aid = 0;
  1084. *queue = 2;
  1085. *flags = P54_HDR_FLAG_DATA_OUT_TIMESTAMP |
  1086. P54_HDR_FLAG_DATA_OUT_NOCANCEL;
  1087. return 0;
  1088. } else {
  1089. *queue = 2;
  1090. ret = 0;
  1091. }
  1092. } else {
  1093. *queue += 4;
  1094. ret = 1;
  1095. }
  1096. switch (priv->mode) {
  1097. case NL80211_IFTYPE_STATION:
  1098. *aid = 1;
  1099. break;
  1100. case NL80211_IFTYPE_AP:
  1101. case NL80211_IFTYPE_ADHOC:
  1102. case NL80211_IFTYPE_MESH_POINT:
  1103. if (info->flags & IEEE80211_TX_CTL_SEND_AFTER_DTIM) {
  1104. *aid = 0;
  1105. *queue = 3;
  1106. return 0;
  1107. }
  1108. if (info->control.sta)
  1109. *aid = info->control.sta->aid;
  1110. else
  1111. *flags |= P54_HDR_FLAG_DATA_OUT_NOCANCEL;
  1112. }
  1113. return ret;
  1114. }
  1115. static u8 p54_convert_algo(enum ieee80211_key_alg alg)
  1116. {
  1117. switch (alg) {
  1118. case ALG_WEP:
  1119. return P54_CRYPTO_WEP;
  1120. case ALG_TKIP:
  1121. return P54_CRYPTO_TKIPMICHAEL;
  1122. case ALG_CCMP:
  1123. return P54_CRYPTO_AESCCMP;
  1124. default:
  1125. return 0;
  1126. }
  1127. }
  1128. static int p54_tx(struct ieee80211_hw *dev, struct sk_buff *skb)
  1129. {
  1130. struct ieee80211_tx_info *info = IEEE80211_SKB_CB(skb);
  1131. struct ieee80211_tx_queue_stats *current_queue = NULL;
  1132. struct p54_common *priv = dev->priv;
  1133. struct p54_hdr *hdr;
  1134. struct p54_tx_data *txhdr;
  1135. size_t padding, len, tim_len = 0;
  1136. int i, j, ridx, ret;
  1137. u16 hdr_flags = 0, aid = 0;
  1138. u8 rate, queue, crypt_offset = 0;
  1139. u8 cts_rate = 0x20;
  1140. u8 rc_flags;
  1141. u8 calculated_tries[4];
  1142. u8 nrates = 0, nremaining = 8;
  1143. queue = skb_get_queue_mapping(skb);
  1144. ret = p54_tx_fill(dev, skb, info, &queue, &tim_len, &hdr_flags, &aid);
  1145. current_queue = &priv->tx_stats[queue];
  1146. if (unlikely((current_queue->len > current_queue->limit) && ret))
  1147. return NETDEV_TX_BUSY;
  1148. current_queue->len++;
  1149. current_queue->count++;
  1150. if ((current_queue->len == current_queue->limit) && ret)
  1151. ieee80211_stop_queue(dev, skb_get_queue_mapping(skb));
  1152. padding = (unsigned long)(skb->data - (sizeof(*hdr) + sizeof(*txhdr))) & 3;
  1153. len = skb->len;
  1154. if (info->control.hw_key) {
  1155. crypt_offset = ieee80211_get_hdrlen_from_skb(skb);
  1156. if (info->control.hw_key->alg == ALG_TKIP) {
  1157. u8 *iv = (u8 *)(skb->data + crypt_offset);
  1158. /*
  1159. * The firmware excepts that the IV has to have
  1160. * this special format
  1161. */
  1162. iv[1] = iv[0];
  1163. iv[0] = iv[2];
  1164. iv[2] = 0;
  1165. }
  1166. }
  1167. txhdr = (struct p54_tx_data *) skb_push(skb, sizeof(*txhdr) + padding);
  1168. hdr = (struct p54_hdr *) skb_push(skb, sizeof(*hdr));
  1169. if (padding)
  1170. hdr_flags |= P54_HDR_FLAG_DATA_ALIGN;
  1171. hdr->type = cpu_to_le16(aid);
  1172. hdr->rts_tries = info->control.rates[0].count;
  1173. /*
  1174. * we register the rates in perfect order, and
  1175. * RTS/CTS won't happen on 5 GHz
  1176. */
  1177. cts_rate = info->control.rts_cts_rate_idx;
  1178. memset(&txhdr->rateset, 0, sizeof(txhdr->rateset));
  1179. /* see how many rates got used */
  1180. for (i = 0; i < 4; i++) {
  1181. if (info->control.rates[i].idx < 0)
  1182. break;
  1183. nrates++;
  1184. }
  1185. /* limit tries to 8/nrates per rate */
  1186. for (i = 0; i < nrates; i++) {
  1187. /*
  1188. * The magic expression here is equivalent to 8/nrates for
  1189. * all values that matter, but avoids division and jumps.
  1190. * Note that nrates can only take the values 1 through 4.
  1191. */
  1192. calculated_tries[i] = min_t(int, ((15 >> nrates) | 1) + 1,
  1193. info->control.rates[i].count);
  1194. nremaining -= calculated_tries[i];
  1195. }
  1196. /* if there are tries left, distribute from back to front */
  1197. for (i = nrates - 1; nremaining > 0 && i >= 0; i--) {
  1198. int tmp = info->control.rates[i].count - calculated_tries[i];
  1199. if (tmp <= 0)
  1200. continue;
  1201. /* RC requested more tries at this rate */
  1202. tmp = min_t(int, tmp, nremaining);
  1203. calculated_tries[i] += tmp;
  1204. nremaining -= tmp;
  1205. }
  1206. ridx = 0;
  1207. for (i = 0; i < nrates && ridx < 8; i++) {
  1208. /* we register the rates in perfect order */
  1209. rate = info->control.rates[i].idx;
  1210. if (info->band == IEEE80211_BAND_5GHZ)
  1211. rate += 4;
  1212. /* store the count we actually calculated for TX status */
  1213. info->control.rates[i].count = calculated_tries[i];
  1214. rc_flags = info->control.rates[i].flags;
  1215. if (rc_flags & IEEE80211_TX_RC_USE_SHORT_PREAMBLE) {
  1216. rate |= 0x10;
  1217. cts_rate |= 0x10;
  1218. }
  1219. if (rc_flags & IEEE80211_TX_RC_USE_RTS_CTS)
  1220. rate |= 0x40;
  1221. else if (rc_flags & IEEE80211_TX_RC_USE_CTS_PROTECT)
  1222. rate |= 0x20;
  1223. for (j = 0; j < calculated_tries[i] && ridx < 8; j++) {
  1224. txhdr->rateset[ridx] = rate;
  1225. ridx++;
  1226. }
  1227. }
  1228. if (info->flags & IEEE80211_TX_CTL_ASSIGN_SEQ)
  1229. hdr_flags |= P54_HDR_FLAG_DATA_OUT_SEQNR;
  1230. /* TODO: enable bursting */
  1231. hdr->flags = cpu_to_le16(hdr_flags);
  1232. hdr->tries = ridx;
  1233. txhdr->rts_rate_idx = 0;
  1234. if (info->control.hw_key) {
  1235. txhdr->key_type = p54_convert_algo(info->control.hw_key->alg);
  1236. txhdr->key_len = min((u8)16, info->control.hw_key->keylen);
  1237. memcpy(txhdr->key, info->control.hw_key->key, txhdr->key_len);
  1238. if (info->control.hw_key->alg == ALG_TKIP) {
  1239. if (unlikely(skb_tailroom(skb) < 12))
  1240. goto err;
  1241. /* reserve space for the MIC key */
  1242. len += 8;
  1243. memcpy(skb_put(skb, 8), &(info->control.hw_key->key
  1244. [NL80211_TKIP_DATA_OFFSET_TX_MIC_KEY]), 8);
  1245. }
  1246. /* reserve some space for ICV */
  1247. len += info->control.hw_key->icv_len;
  1248. memset(skb_put(skb, info->control.hw_key->icv_len), 0,
  1249. info->control.hw_key->icv_len);
  1250. } else {
  1251. txhdr->key_type = 0;
  1252. txhdr->key_len = 0;
  1253. }
  1254. txhdr->crypt_offset = crypt_offset;
  1255. txhdr->hw_queue = queue;
  1256. if (current_queue)
  1257. txhdr->backlog = current_queue->len;
  1258. else
  1259. txhdr->backlog = 0;
  1260. memset(txhdr->durations, 0, sizeof(txhdr->durations));
  1261. txhdr->tx_antenna = (info->antenna_sel_tx == 0) ?
  1262. 2 : info->antenna_sel_tx - 1;
  1263. txhdr->output_power = priv->output_power;
  1264. txhdr->cts_rate = cts_rate;
  1265. if (padding)
  1266. txhdr->align[0] = padding;
  1267. hdr->len = cpu_to_le16(len);
  1268. /* modifies skb->cb and with it info, so must be last! */
  1269. if (unlikely(p54_assign_address(dev, skb, hdr, skb->len + tim_len)))
  1270. goto err;
  1271. priv->tx(dev, skb);
  1272. queue_delayed_work(dev->workqueue, &priv->work,
  1273. msecs_to_jiffies(P54_TX_FRAME_LIFETIME));
  1274. return 0;
  1275. err:
  1276. skb_pull(skb, sizeof(*hdr) + sizeof(*txhdr) + padding);
  1277. if (current_queue) {
  1278. current_queue->len--;
  1279. current_queue->count--;
  1280. }
  1281. return NETDEV_TX_BUSY;
  1282. }
  1283. static int p54_setup_mac(struct ieee80211_hw *dev)
  1284. {
  1285. struct p54_common *priv = dev->priv;
  1286. struct sk_buff *skb;
  1287. struct p54_setup_mac *setup;
  1288. u16 mode;
  1289. skb = p54_alloc_skb(dev, P54_HDR_FLAG_CONTROL_OPSET, sizeof(*setup) +
  1290. sizeof(struct p54_hdr), P54_CONTROL_TYPE_SETUP,
  1291. GFP_ATOMIC);
  1292. if (!skb)
  1293. return -ENOMEM;
  1294. setup = (struct p54_setup_mac *) skb_put(skb, sizeof(*setup));
  1295. if (dev->conf.radio_enabled) {
  1296. switch (priv->mode) {
  1297. case NL80211_IFTYPE_STATION:
  1298. mode = P54_FILTER_TYPE_STATION;
  1299. break;
  1300. case NL80211_IFTYPE_AP:
  1301. mode = P54_FILTER_TYPE_AP;
  1302. break;
  1303. case NL80211_IFTYPE_ADHOC:
  1304. case NL80211_IFTYPE_MESH_POINT:
  1305. mode = P54_FILTER_TYPE_IBSS;
  1306. break;
  1307. default:
  1308. mode = P54_FILTER_TYPE_NONE;
  1309. break;
  1310. }
  1311. if (priv->filter_flags & FIF_PROMISC_IN_BSS)
  1312. mode |= P54_FILTER_TYPE_TRANSPARENT;
  1313. } else
  1314. mode = P54_FILTER_TYPE_RX_DISABLED;
  1315. setup->mac_mode = cpu_to_le16(mode);
  1316. memcpy(setup->mac_addr, priv->mac_addr, ETH_ALEN);
  1317. memcpy(setup->bssid, priv->bssid, ETH_ALEN);
  1318. setup->rx_antenna = 2; /* automatic */
  1319. setup->rx_align = 0;
  1320. if (priv->fw_var < 0x500) {
  1321. setup->v1.basic_rate_mask = cpu_to_le32(priv->basic_rate_mask);
  1322. memset(setup->v1.rts_rates, 0, 8);
  1323. setup->v1.rx_addr = cpu_to_le32(priv->rx_end);
  1324. setup->v1.max_rx = cpu_to_le16(priv->rx_mtu);
  1325. setup->v1.rxhw = cpu_to_le16(priv->rxhw);
  1326. setup->v1.wakeup_timer = cpu_to_le16(priv->wakeup_timer);
  1327. setup->v1.unalloc0 = cpu_to_le16(0);
  1328. } else {
  1329. setup->v2.rx_addr = cpu_to_le32(priv->rx_end);
  1330. setup->v2.max_rx = cpu_to_le16(priv->rx_mtu);
  1331. setup->v2.rxhw = cpu_to_le16(priv->rxhw);
  1332. setup->v2.timer = cpu_to_le16(priv->wakeup_timer);
  1333. setup->v2.truncate = cpu_to_le16(48896);
  1334. setup->v2.basic_rate_mask = cpu_to_le32(priv->basic_rate_mask);
  1335. setup->v2.sbss_offset = 0;
  1336. setup->v2.mcast_window = 0;
  1337. setup->v2.rx_rssi_threshold = 0;
  1338. setup->v2.rx_ed_threshold = 0;
  1339. setup->v2.ref_clock = cpu_to_le32(644245094);
  1340. setup->v2.lpf_bandwidth = cpu_to_le16(65535);
  1341. setup->v2.osc_start_delay = cpu_to_le16(65535);
  1342. }
  1343. priv->tx(dev, skb);
  1344. return 0;
  1345. }
  1346. static int p54_scan(struct ieee80211_hw *dev, u16 mode, u16 dwell)
  1347. {
  1348. struct p54_common *priv = dev->priv;
  1349. struct sk_buff *skb;
  1350. struct p54_scan *chan;
  1351. unsigned int i;
  1352. void *entry;
  1353. __le16 freq = cpu_to_le16(dev->conf.channel->center_freq);
  1354. int band = dev->conf.channel->band;
  1355. skb = p54_alloc_skb(dev, P54_HDR_FLAG_CONTROL_OPSET, sizeof(*chan) +
  1356. sizeof(struct p54_hdr), P54_CONTROL_TYPE_SCAN,
  1357. GFP_ATOMIC);
  1358. if (!skb)
  1359. return -ENOMEM;
  1360. chan = (struct p54_scan *) skb_put(skb, sizeof(*chan));
  1361. memset(chan->padding1, 0, sizeof(chan->padding1));
  1362. chan->mode = cpu_to_le16(mode);
  1363. chan->dwell = cpu_to_le16(dwell);
  1364. for (i = 0; i < priv->iq_autocal_len; i++) {
  1365. if (priv->iq_autocal[i].freq != freq)
  1366. continue;
  1367. memcpy(&chan->iq_autocal, &priv->iq_autocal[i],
  1368. sizeof(*priv->iq_autocal));
  1369. break;
  1370. }
  1371. if (i == priv->iq_autocal_len)
  1372. goto err;
  1373. for (i = 0; i < priv->output_limit_len; i++) {
  1374. if (priv->output_limit[i].freq != freq)
  1375. continue;
  1376. chan->val_barker = 0x38;
  1377. chan->val_bpsk = chan->dup_bpsk =
  1378. priv->output_limit[i].val_bpsk;
  1379. chan->val_qpsk = chan->dup_qpsk =
  1380. priv->output_limit[i].val_qpsk;
  1381. chan->val_16qam = chan->dup_16qam =
  1382. priv->output_limit[i].val_16qam;
  1383. chan->val_64qam = chan->dup_64qam =
  1384. priv->output_limit[i].val_64qam;
  1385. break;
  1386. }
  1387. if (i == priv->output_limit_len)
  1388. goto err;
  1389. entry = priv->curve_data->data;
  1390. for (i = 0; i < priv->curve_data->channels; i++) {
  1391. if (*((__le16 *)entry) != freq) {
  1392. entry += sizeof(__le16);
  1393. entry += sizeof(struct p54_pa_curve_data_sample) *
  1394. priv->curve_data->points_per_channel;
  1395. continue;
  1396. }
  1397. entry += sizeof(__le16);
  1398. chan->pa_points_per_curve = 8;
  1399. memset(chan->curve_data, 0, sizeof(*chan->curve_data));
  1400. memcpy(chan->curve_data, entry,
  1401. sizeof(struct p54_pa_curve_data_sample) *
  1402. min((u8)8, priv->curve_data->points_per_channel));
  1403. break;
  1404. }
  1405. if (priv->fw_var < 0x500) {
  1406. chan->v1_rssi.mul = cpu_to_le16(priv->rssical_db[band].mul);
  1407. chan->v1_rssi.add = cpu_to_le16(priv->rssical_db[band].add);
  1408. } else {
  1409. chan->v2.rssi.mul = cpu_to_le16(priv->rssical_db[band].mul);
  1410. chan->v2.rssi.add = cpu_to_le16(priv->rssical_db[band].add);
  1411. chan->v2.basic_rate_mask = cpu_to_le32(priv->basic_rate_mask);
  1412. memset(chan->v2.rts_rates, 0, 8);
  1413. }
  1414. priv->tx(dev, skb);
  1415. return 0;
  1416. err:
  1417. printk(KERN_ERR "%s: frequency change failed\n", wiphy_name(dev->wiphy));
  1418. p54_free_skb(dev, skb);
  1419. return -EINVAL;
  1420. }
  1421. static int p54_set_leds(struct ieee80211_hw *dev, int mode, int link, int act)
  1422. {
  1423. struct p54_common *priv = dev->priv;
  1424. struct sk_buff *skb;
  1425. struct p54_led *led;
  1426. skb = p54_alloc_skb(dev, P54_HDR_FLAG_CONTROL_OPSET, sizeof(*led) +
  1427. sizeof(struct p54_hdr), P54_CONTROL_TYPE_LED,
  1428. GFP_ATOMIC);
  1429. if (!skb)
  1430. return -ENOMEM;
  1431. led = (struct p54_led *)skb_put(skb, sizeof(*led));
  1432. led->mode = cpu_to_le16(mode);
  1433. led->led_permanent = cpu_to_le16(link);
  1434. led->led_temporary = cpu_to_le16(act);
  1435. led->duration = cpu_to_le16(1000);
  1436. priv->tx(dev, skb);
  1437. return 0;
  1438. }
  1439. #define P54_SET_QUEUE(queue, ai_fs, cw_min, cw_max, _txop) \
  1440. do { \
  1441. queue.aifs = cpu_to_le16(ai_fs); \
  1442. queue.cwmin = cpu_to_le16(cw_min); \
  1443. queue.cwmax = cpu_to_le16(cw_max); \
  1444. queue.txop = cpu_to_le16(_txop); \
  1445. } while(0)
  1446. static int p54_set_edcf(struct ieee80211_hw *dev)
  1447. {
  1448. struct p54_common *priv = dev->priv;
  1449. struct sk_buff *skb;
  1450. struct p54_edcf *edcf;
  1451. skb = p54_alloc_skb(dev, P54_HDR_FLAG_CONTROL_OPSET, sizeof(*edcf) +
  1452. sizeof(struct p54_hdr), P54_CONTROL_TYPE_DCFINIT,
  1453. GFP_ATOMIC);
  1454. if (!skb)
  1455. return -ENOMEM;
  1456. edcf = (struct p54_edcf *)skb_put(skb, sizeof(*edcf));
  1457. if (priv->use_short_slot) {
  1458. edcf->slottime = 9;
  1459. edcf->sifs = 0x10;
  1460. edcf->eofpad = 0x00;
  1461. } else {
  1462. edcf->slottime = 20;
  1463. edcf->sifs = 0x0a;
  1464. edcf->eofpad = 0x06;
  1465. }
  1466. /* (see prism54/isl_oid.h for further details) */
  1467. edcf->frameburst = cpu_to_le16(0);
  1468. edcf->round_trip_delay = cpu_to_le16(0);
  1469. edcf->flags = 0;
  1470. memset(edcf->mapping, 0, sizeof(edcf->mapping));
  1471. memcpy(edcf->queue, priv->qos_params, sizeof(edcf->queue));
  1472. priv->tx(dev, skb);
  1473. return 0;
  1474. }
  1475. static int p54_beacon_tim(struct sk_buff *skb)
  1476. {
  1477. /*
  1478. * the good excuse for this mess is ... the firmware.
  1479. * The dummy TIM MUST be at the end of the beacon frame,
  1480. * because it'll be overwritten!
  1481. */
  1482. struct ieee80211_mgmt *mgmt = (void *)skb->data;
  1483. u8 *pos, *end;
  1484. if (skb->len <= sizeof(mgmt))
  1485. return -EINVAL;
  1486. pos = (u8 *)mgmt->u.beacon.variable;
  1487. end = skb->data + skb->len;
  1488. while (pos < end) {
  1489. if (pos + 2 + pos[1] > end)
  1490. return -EINVAL;
  1491. if (pos[0] == WLAN_EID_TIM) {
  1492. u8 dtim_len = pos[1];
  1493. u8 dtim_period = pos[3];
  1494. u8 *next = pos + 2 + dtim_len;
  1495. if (dtim_len < 3)
  1496. return -EINVAL;
  1497. memmove(pos, next, end - next);
  1498. if (dtim_len > 3)
  1499. skb_trim(skb, skb->len - (dtim_len - 3));
  1500. pos = end - (dtim_len + 2);
  1501. /* add the dummy at the end */
  1502. pos[0] = WLAN_EID_TIM;
  1503. pos[1] = 3;
  1504. pos[2] = 0;
  1505. pos[3] = dtim_period;
  1506. pos[4] = 0;
  1507. return 0;
  1508. }
  1509. pos += 2 + pos[1];
  1510. }
  1511. return 0;
  1512. }
  1513. static int p54_beacon_update(struct ieee80211_hw *dev,
  1514. struct ieee80211_vif *vif)
  1515. {
  1516. struct p54_common *priv = dev->priv;
  1517. struct sk_buff *beacon;
  1518. int ret;
  1519. if (priv->cached_beacon) {
  1520. p54_tx_cancel(dev, priv->cached_beacon);
  1521. /* wait for the last beacon the be freed */
  1522. msleep(10);
  1523. }
  1524. beacon = ieee80211_beacon_get(dev, vif);
  1525. if (!beacon)
  1526. return -ENOMEM;
  1527. ret = p54_beacon_tim(beacon);
  1528. if (ret)
  1529. return ret;
  1530. ret = p54_tx(dev, beacon);
  1531. if (ret)
  1532. return ret;
  1533. priv->cached_beacon = beacon;
  1534. priv->tsf_high32 = 0;
  1535. priv->tsf_low32 = 0;
  1536. return 0;
  1537. }
  1538. static int p54_start(struct ieee80211_hw *dev)
  1539. {
  1540. struct p54_common *priv = dev->priv;
  1541. int err;
  1542. mutex_lock(&priv->conf_mutex);
  1543. err = priv->open(dev);
  1544. if (err)
  1545. goto out;
  1546. P54_SET_QUEUE(priv->qos_params[0], 0x0002, 0x0003, 0x0007, 47);
  1547. P54_SET_QUEUE(priv->qos_params[1], 0x0002, 0x0007, 0x000f, 94);
  1548. P54_SET_QUEUE(priv->qos_params[2], 0x0003, 0x000f, 0x03ff, 0);
  1549. P54_SET_QUEUE(priv->qos_params[3], 0x0007, 0x000f, 0x03ff, 0);
  1550. err = p54_set_edcf(dev);
  1551. if (err)
  1552. goto out;
  1553. memset(priv->bssid, ~0, ETH_ALEN);
  1554. priv->mode = NL80211_IFTYPE_MONITOR;
  1555. err = p54_setup_mac(dev);
  1556. if (err) {
  1557. priv->mode = NL80211_IFTYPE_UNSPECIFIED;
  1558. goto out;
  1559. }
  1560. queue_delayed_work(dev->workqueue, &priv->work, 0);
  1561. out:
  1562. mutex_unlock(&priv->conf_mutex);
  1563. return err;
  1564. }
  1565. static void p54_stop(struct ieee80211_hw *dev)
  1566. {
  1567. struct p54_common *priv = dev->priv;
  1568. struct sk_buff *skb;
  1569. mutex_lock(&priv->conf_mutex);
  1570. priv->mode = NL80211_IFTYPE_UNSPECIFIED;
  1571. cancel_delayed_work_sync(&priv->work);
  1572. if (priv->cached_beacon)
  1573. p54_tx_cancel(dev, priv->cached_beacon);
  1574. priv->stop(dev);
  1575. while ((skb = skb_dequeue(&priv->tx_queue)))
  1576. kfree_skb(skb);
  1577. priv->cached_beacon = NULL;
  1578. priv->tsf_high32 = priv->tsf_low32 = 0;
  1579. mutex_unlock(&priv->conf_mutex);
  1580. }
  1581. static int p54_add_interface(struct ieee80211_hw *dev,
  1582. struct ieee80211_if_init_conf *conf)
  1583. {
  1584. struct p54_common *priv = dev->priv;
  1585. mutex_lock(&priv->conf_mutex);
  1586. if (priv->mode != NL80211_IFTYPE_MONITOR) {
  1587. mutex_unlock(&priv->conf_mutex);
  1588. return -EOPNOTSUPP;
  1589. }
  1590. switch (conf->type) {
  1591. case NL80211_IFTYPE_STATION:
  1592. case NL80211_IFTYPE_ADHOC:
  1593. case NL80211_IFTYPE_AP:
  1594. case NL80211_IFTYPE_MESH_POINT:
  1595. priv->mode = conf->type;
  1596. break;
  1597. default:
  1598. mutex_unlock(&priv->conf_mutex);
  1599. return -EOPNOTSUPP;
  1600. }
  1601. memcpy(priv->mac_addr, conf->mac_addr, ETH_ALEN);
  1602. p54_setup_mac(dev);
  1603. p54_set_leds(dev, 1, 0, 0);
  1604. mutex_unlock(&priv->conf_mutex);
  1605. return 0;
  1606. }
  1607. static void p54_remove_interface(struct ieee80211_hw *dev,
  1608. struct ieee80211_if_init_conf *conf)
  1609. {
  1610. struct p54_common *priv = dev->priv;
  1611. mutex_lock(&priv->conf_mutex);
  1612. if (priv->cached_beacon)
  1613. p54_tx_cancel(dev, priv->cached_beacon);
  1614. priv->mode = NL80211_IFTYPE_MONITOR;
  1615. memset(priv->mac_addr, 0, ETH_ALEN);
  1616. memset(priv->bssid, 0, ETH_ALEN);
  1617. p54_setup_mac(dev);
  1618. mutex_unlock(&priv->conf_mutex);
  1619. }
  1620. static int p54_config(struct ieee80211_hw *dev, u32 changed)
  1621. {
  1622. int ret = 0;
  1623. struct p54_common *priv = dev->priv;
  1624. struct ieee80211_conf *conf = &dev->conf;
  1625. mutex_lock(&priv->conf_mutex);
  1626. if (changed & IEEE80211_CONF_CHANGE_POWER)
  1627. priv->output_power = conf->power_level << 2;
  1628. if (changed & IEEE80211_CONF_CHANGE_RADIO_ENABLED) {
  1629. ret = p54_setup_mac(dev);
  1630. if (ret)
  1631. goto out;
  1632. }
  1633. if (changed & IEEE80211_CONF_CHANGE_CHANNEL) {
  1634. ret = p54_scan(dev, P54_SCAN_EXIT, 0);
  1635. if (ret)
  1636. goto out;
  1637. }
  1638. out:
  1639. mutex_unlock(&priv->conf_mutex);
  1640. return ret;
  1641. }
  1642. static int p54_config_interface(struct ieee80211_hw *dev,
  1643. struct ieee80211_vif *vif,
  1644. struct ieee80211_if_conf *conf)
  1645. {
  1646. struct p54_common *priv = dev->priv;
  1647. int ret = 0;
  1648. mutex_lock(&priv->conf_mutex);
  1649. if (conf->changed & IEEE80211_IFCC_BSSID) {
  1650. memcpy(priv->bssid, conf->bssid, ETH_ALEN);
  1651. ret = p54_setup_mac(dev);
  1652. if (ret)
  1653. goto out;
  1654. }
  1655. if (conf->changed & IEEE80211_IFCC_BEACON) {
  1656. ret = p54_scan(dev, P54_SCAN_EXIT, 0);
  1657. if (ret)
  1658. goto out;
  1659. ret = p54_setup_mac(dev);
  1660. if (ret)
  1661. goto out;
  1662. ret = p54_beacon_update(dev, vif);
  1663. if (ret)
  1664. goto out;
  1665. ret = p54_set_edcf(dev);
  1666. if (ret)
  1667. goto out;
  1668. }
  1669. ret = p54_set_leds(dev, 1, !is_multicast_ether_addr(priv->bssid), 0);
  1670. out:
  1671. mutex_unlock(&priv->conf_mutex);
  1672. return ret;
  1673. }
  1674. static void p54_configure_filter(struct ieee80211_hw *dev,
  1675. unsigned int changed_flags,
  1676. unsigned int *total_flags,
  1677. int mc_count, struct dev_mc_list *mclist)
  1678. {
  1679. struct p54_common *priv = dev->priv;
  1680. *total_flags &= FIF_PROMISC_IN_BSS |
  1681. (*total_flags & FIF_PROMISC_IN_BSS) ?
  1682. FIF_FCSFAIL : 0;
  1683. priv->filter_flags = *total_flags;
  1684. if (changed_flags & FIF_PROMISC_IN_BSS)
  1685. p54_setup_mac(dev);
  1686. }
  1687. static int p54_conf_tx(struct ieee80211_hw *dev, u16 queue,
  1688. const struct ieee80211_tx_queue_params *params)
  1689. {
  1690. struct p54_common *priv = dev->priv;
  1691. int ret;
  1692. mutex_lock(&priv->conf_mutex);
  1693. if ((params) && !(queue > 4)) {
  1694. P54_SET_QUEUE(priv->qos_params[queue], params->aifs,
  1695. params->cw_min, params->cw_max, params->txop);
  1696. ret = p54_set_edcf(dev);
  1697. } else
  1698. ret = -EINVAL;
  1699. mutex_unlock(&priv->conf_mutex);
  1700. return ret;
  1701. }
  1702. static int p54_init_xbow_synth(struct ieee80211_hw *dev)
  1703. {
  1704. struct p54_common *priv = dev->priv;
  1705. struct sk_buff *skb;
  1706. struct p54_xbow_synth *xbow;
  1707. skb = p54_alloc_skb(dev, P54_HDR_FLAG_CONTROL_OPSET, sizeof(*xbow) +
  1708. sizeof(struct p54_hdr),
  1709. P54_CONTROL_TYPE_XBOW_SYNTH_CFG,
  1710. GFP_KERNEL);
  1711. if (!skb)
  1712. return -ENOMEM;
  1713. xbow = (struct p54_xbow_synth *)skb_put(skb, sizeof(*xbow));
  1714. xbow->magic1 = cpu_to_le16(0x1);
  1715. xbow->magic2 = cpu_to_le16(0x2);
  1716. xbow->freq = cpu_to_le16(5390);
  1717. memset(xbow->padding, 0, sizeof(xbow->padding));
  1718. priv->tx(dev, skb);
  1719. return 0;
  1720. }
  1721. static void p54_work(struct work_struct *work)
  1722. {
  1723. struct p54_common *priv = container_of(work, struct p54_common,
  1724. work.work);
  1725. struct ieee80211_hw *dev = priv->hw;
  1726. struct sk_buff *skb;
  1727. if (unlikely(priv->mode == NL80211_IFTYPE_UNSPECIFIED))
  1728. return ;
  1729. /*
  1730. * TODO: walk through tx_queue and do the following tasks
  1731. * 1. initiate bursts.
  1732. * 2. cancel stuck frames / reset the device if necessary.
  1733. */
  1734. skb = p54_alloc_skb(dev, P54_HDR_FLAG_CONTROL, sizeof(struct p54_hdr) +
  1735. sizeof(struct p54_statistics),
  1736. P54_CONTROL_TYPE_STAT_READBACK, GFP_KERNEL);
  1737. if (!skb)
  1738. return ;
  1739. priv->tx(dev, skb);
  1740. }
  1741. static int p54_get_stats(struct ieee80211_hw *dev,
  1742. struct ieee80211_low_level_stats *stats)
  1743. {
  1744. struct p54_common *priv = dev->priv;
  1745. memcpy(stats, &priv->stats, sizeof(*stats));
  1746. return 0;
  1747. }
  1748. static int p54_get_tx_stats(struct ieee80211_hw *dev,
  1749. struct ieee80211_tx_queue_stats *stats)
  1750. {
  1751. struct p54_common *priv = dev->priv;
  1752. memcpy(stats, &priv->tx_stats[4], sizeof(stats[0]) * dev->queues);
  1753. return 0;
  1754. }
  1755. static void p54_bss_info_changed(struct ieee80211_hw *dev,
  1756. struct ieee80211_vif *vif,
  1757. struct ieee80211_bss_conf *info,
  1758. u32 changed)
  1759. {
  1760. struct p54_common *priv = dev->priv;
  1761. if (changed & BSS_CHANGED_ERP_SLOT) {
  1762. priv->use_short_slot = info->use_short_slot;
  1763. p54_set_edcf(dev);
  1764. }
  1765. if (changed & BSS_CHANGED_BASIC_RATES) {
  1766. if (dev->conf.channel->band == IEEE80211_BAND_5GHZ)
  1767. priv->basic_rate_mask = (info->basic_rates << 4);
  1768. else
  1769. priv->basic_rate_mask = info->basic_rates;
  1770. p54_setup_mac(dev);
  1771. if (priv->fw_var >= 0x500)
  1772. p54_scan(dev, P54_SCAN_EXIT, 0);
  1773. }
  1774. if (changed & BSS_CHANGED_ASSOC) {
  1775. if (info->assoc) {
  1776. priv->aid = info->aid;
  1777. priv->wakeup_timer = info->beacon_int *
  1778. info->dtim_period * 5;
  1779. p54_setup_mac(dev);
  1780. }
  1781. }
  1782. }
  1783. static int p54_set_key(struct ieee80211_hw *dev, enum set_key_cmd cmd,
  1784. const u8 *local_address, const u8 *address,
  1785. struct ieee80211_key_conf *key)
  1786. {
  1787. struct p54_common *priv = dev->priv;
  1788. struct sk_buff *skb;
  1789. struct p54_keycache *rxkey;
  1790. u8 algo = 0;
  1791. if (modparam_nohwcrypt)
  1792. return -EOPNOTSUPP;
  1793. if (cmd == DISABLE_KEY)
  1794. algo = 0;
  1795. else {
  1796. switch (key->alg) {
  1797. case ALG_TKIP:
  1798. if (!(priv->privacy_caps & (BR_DESC_PRIV_CAP_MICHAEL |
  1799. BR_DESC_PRIV_CAP_TKIP)))
  1800. return -EOPNOTSUPP;
  1801. key->flags |= IEEE80211_KEY_FLAG_GENERATE_IV;
  1802. algo = P54_CRYPTO_TKIPMICHAEL;
  1803. break;
  1804. case ALG_WEP:
  1805. if (!(priv->privacy_caps & BR_DESC_PRIV_CAP_WEP))
  1806. return -EOPNOTSUPP;
  1807. key->flags |= IEEE80211_KEY_FLAG_GENERATE_IV;
  1808. algo = P54_CRYPTO_WEP;
  1809. break;
  1810. case ALG_CCMP:
  1811. if (!(priv->privacy_caps & BR_DESC_PRIV_CAP_AESCCMP))
  1812. return -EOPNOTSUPP;
  1813. key->flags |= IEEE80211_KEY_FLAG_GENERATE_IV;
  1814. algo = P54_CRYPTO_AESCCMP;
  1815. break;
  1816. default:
  1817. return -EOPNOTSUPP;
  1818. }
  1819. }
  1820. if (key->keyidx > priv->rx_keycache_size) {
  1821. /*
  1822. * The device supports the choosen algorithm, but the firmware
  1823. * does not provide enough key slots to store all of them.
  1824. * So, incoming frames have to be decoded by the mac80211 stack,
  1825. * but we can still offload encryption for outgoing frames.
  1826. */
  1827. return 0;
  1828. }
  1829. mutex_lock(&priv->conf_mutex);
  1830. skb = p54_alloc_skb(dev, P54_HDR_FLAG_CONTROL_OPSET, sizeof(*rxkey) +
  1831. sizeof(struct p54_hdr), P54_CONTROL_TYPE_RX_KEYCACHE,
  1832. GFP_ATOMIC);
  1833. if (!skb) {
  1834. mutex_unlock(&priv->conf_mutex);
  1835. return -ENOMEM;
  1836. }
  1837. /* TODO: some devices have 4 more free slots for rx keys */
  1838. rxkey = (struct p54_keycache *)skb_put(skb, sizeof(*rxkey));
  1839. rxkey->entry = key->keyidx;
  1840. rxkey->key_id = key->keyidx;
  1841. rxkey->key_type = algo;
  1842. if (address)
  1843. memcpy(rxkey->mac, address, ETH_ALEN);
  1844. else
  1845. memset(rxkey->mac, ~0, ETH_ALEN);
  1846. if (key->alg != ALG_TKIP) {
  1847. rxkey->key_len = min((u8)16, key->keylen);
  1848. memcpy(rxkey->key, key->key, rxkey->key_len);
  1849. } else {
  1850. rxkey->key_len = 24;
  1851. memcpy(rxkey->key, key->key, 16);
  1852. memcpy(&(rxkey->key[16]), &(key->key
  1853. [NL80211_TKIP_DATA_OFFSET_RX_MIC_KEY]), 8);
  1854. }
  1855. priv->tx(dev, skb);
  1856. mutex_unlock(&priv->conf_mutex);
  1857. return 0;
  1858. }
  1859. static const struct ieee80211_ops p54_ops = {
  1860. .tx = p54_tx,
  1861. .start = p54_start,
  1862. .stop = p54_stop,
  1863. .add_interface = p54_add_interface,
  1864. .remove_interface = p54_remove_interface,
  1865. .set_tim = p54_set_tim,
  1866. .sta_notify = p54_sta_notify,
  1867. .set_key = p54_set_key,
  1868. .config = p54_config,
  1869. .config_interface = p54_config_interface,
  1870. .bss_info_changed = p54_bss_info_changed,
  1871. .configure_filter = p54_configure_filter,
  1872. .conf_tx = p54_conf_tx,
  1873. .get_stats = p54_get_stats,
  1874. .get_tx_stats = p54_get_tx_stats
  1875. };
  1876. struct ieee80211_hw *p54_init_common(size_t priv_data_len)
  1877. {
  1878. struct ieee80211_hw *dev;
  1879. struct p54_common *priv;
  1880. dev = ieee80211_alloc_hw(priv_data_len, &p54_ops);
  1881. if (!dev)
  1882. return NULL;
  1883. priv = dev->priv;
  1884. priv->hw = dev;
  1885. priv->mode = NL80211_IFTYPE_UNSPECIFIED;
  1886. priv->basic_rate_mask = 0x15f;
  1887. skb_queue_head_init(&priv->tx_queue);
  1888. dev->flags = IEEE80211_HW_RX_INCLUDES_FCS |
  1889. IEEE80211_HW_SIGNAL_DBM |
  1890. IEEE80211_HW_NOISE_DBM;
  1891. dev->wiphy->interface_modes = BIT(NL80211_IFTYPE_STATION) |
  1892. BIT(NL80211_IFTYPE_ADHOC) |
  1893. BIT(NL80211_IFTYPE_AP) |
  1894. BIT(NL80211_IFTYPE_MESH_POINT);
  1895. dev->channel_change_time = 1000; /* TODO: find actual value */
  1896. priv->tx_stats[0].limit = 1; /* Beacon queue */
  1897. priv->tx_stats[1].limit = 1; /* Probe queue for HW scan */
  1898. priv->tx_stats[2].limit = 3; /* queue for MLMEs */
  1899. priv->tx_stats[3].limit = 3; /* Broadcast / MC queue */
  1900. priv->tx_stats[4].limit = 5; /* Data */
  1901. dev->queues = 1;
  1902. priv->noise = -94;
  1903. /*
  1904. * We support at most 8 tries no matter which rate they're at,
  1905. * we cannot support max_rates * max_rate_tries as we set it
  1906. * here, but setting it correctly to 4/2 or so would limit us
  1907. * artificially if the RC algorithm wants just two rates, so
  1908. * let's say 4/7, we'll redistribute it at TX time, see the
  1909. * comments there.
  1910. */
  1911. dev->max_rates = 4;
  1912. dev->max_rate_tries = 7;
  1913. dev->extra_tx_headroom = sizeof(struct p54_hdr) + 4 +
  1914. sizeof(struct p54_tx_data);
  1915. mutex_init(&priv->conf_mutex);
  1916. init_completion(&priv->eeprom_comp);
  1917. INIT_DELAYED_WORK(&priv->work, p54_work);
  1918. return dev;
  1919. }
  1920. EXPORT_SYMBOL_GPL(p54_init_common);
  1921. void p54_free_common(struct ieee80211_hw *dev)
  1922. {
  1923. struct p54_common *priv = dev->priv;
  1924. kfree(priv->iq_autocal);
  1925. kfree(priv->output_limit);
  1926. kfree(priv->curve_data);
  1927. }
  1928. EXPORT_SYMBOL_GPL(p54_free_common);
  1929. static int __init p54_init(void)
  1930. {
  1931. return 0;
  1932. }
  1933. static void __exit p54_exit(void)
  1934. {
  1935. }
  1936. module_init(p54_init);
  1937. module_exit(p54_exit);