rt2500usb.c 56 KB

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  1. /*
  2. Copyright (C) 2004 - 2007 rt2x00 SourceForge Project
  3. <http://rt2x00.serialmonkey.com>
  4. This program is free software; you can redistribute it and/or modify
  5. it under the terms of the GNU General Public License as published by
  6. the Free Software Foundation; either version 2 of the License, or
  7. (at your option) any later version.
  8. This program is distributed in the hope that it will be useful,
  9. but WITHOUT ANY WARRANTY; without even the implied warranty of
  10. MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  11. GNU General Public License for more details.
  12. You should have received a copy of the GNU General Public License
  13. along with this program; if not, write to the
  14. Free Software Foundation, Inc.,
  15. 59 Temple Place - Suite 330, Boston, MA 02111-1307, USA.
  16. */
  17. /*
  18. Module: rt2500usb
  19. Abstract: rt2500usb device specific routines.
  20. Supported chipsets: RT2570.
  21. */
  22. /*
  23. * Set enviroment defines for rt2x00.h
  24. */
  25. #define DRV_NAME "rt2500usb"
  26. #include <linux/delay.h>
  27. #include <linux/etherdevice.h>
  28. #include <linux/init.h>
  29. #include <linux/kernel.h>
  30. #include <linux/module.h>
  31. #include <linux/usb.h>
  32. #include "rt2x00.h"
  33. #include "rt2x00usb.h"
  34. #include "rt2500usb.h"
  35. /*
  36. * Register access.
  37. * All access to the CSR registers will go through the methods
  38. * rt2500usb_register_read and rt2500usb_register_write.
  39. * BBP and RF register require indirect register access,
  40. * and use the CSR registers BBPCSR and RFCSR to achieve this.
  41. * These indirect registers work with busy bits,
  42. * and we will try maximal REGISTER_BUSY_COUNT times to access
  43. * the register while taking a REGISTER_BUSY_DELAY us delay
  44. * between each attampt. When the busy bit is still set at that time,
  45. * the access attempt is considered to have failed,
  46. * and we will print an error.
  47. */
  48. static inline void rt2500usb_register_read(const struct rt2x00_dev *rt2x00dev,
  49. const unsigned int offset,
  50. u16 *value)
  51. {
  52. __le16 reg;
  53. rt2x00usb_vendor_request_buff(rt2x00dev, USB_MULTI_READ,
  54. USB_VENDOR_REQUEST_IN, offset,
  55. &reg, sizeof(u16), REGISTER_TIMEOUT);
  56. *value = le16_to_cpu(reg);
  57. }
  58. static inline void rt2500usb_register_multiread(const struct rt2x00_dev
  59. *rt2x00dev,
  60. const unsigned int offset,
  61. void *value, const u16 length)
  62. {
  63. int timeout = REGISTER_TIMEOUT * (length / sizeof(u16));
  64. rt2x00usb_vendor_request_buff(rt2x00dev, USB_MULTI_READ,
  65. USB_VENDOR_REQUEST_IN, offset,
  66. value, length, timeout);
  67. }
  68. static inline void rt2500usb_register_write(const struct rt2x00_dev *rt2x00dev,
  69. const unsigned int offset,
  70. u16 value)
  71. {
  72. __le16 reg = cpu_to_le16(value);
  73. rt2x00usb_vendor_request_buff(rt2x00dev, USB_MULTI_WRITE,
  74. USB_VENDOR_REQUEST_OUT, offset,
  75. &reg, sizeof(u16), REGISTER_TIMEOUT);
  76. }
  77. static inline void rt2500usb_register_multiwrite(const struct rt2x00_dev
  78. *rt2x00dev,
  79. const unsigned int offset,
  80. void *value, const u16 length)
  81. {
  82. int timeout = REGISTER_TIMEOUT * (length / sizeof(u16));
  83. rt2x00usb_vendor_request_buff(rt2x00dev, USB_MULTI_WRITE,
  84. USB_VENDOR_REQUEST_OUT, offset,
  85. value, length, timeout);
  86. }
  87. static u16 rt2500usb_bbp_check(const struct rt2x00_dev *rt2x00dev)
  88. {
  89. u16 reg;
  90. unsigned int i;
  91. for (i = 0; i < REGISTER_BUSY_COUNT; i++) {
  92. rt2500usb_register_read(rt2x00dev, PHY_CSR8, &reg);
  93. if (!rt2x00_get_field16(reg, PHY_CSR8_BUSY))
  94. break;
  95. udelay(REGISTER_BUSY_DELAY);
  96. }
  97. return reg;
  98. }
  99. static void rt2500usb_bbp_write(const struct rt2x00_dev *rt2x00dev,
  100. const unsigned int word, const u8 value)
  101. {
  102. u16 reg;
  103. /*
  104. * Wait until the BBP becomes ready.
  105. */
  106. reg = rt2500usb_bbp_check(rt2x00dev);
  107. if (rt2x00_get_field16(reg, PHY_CSR8_BUSY)) {
  108. ERROR(rt2x00dev, "PHY_CSR8 register busy. Write failed.\n");
  109. return;
  110. }
  111. /*
  112. * Write the data into the BBP.
  113. */
  114. reg = 0;
  115. rt2x00_set_field16(&reg, PHY_CSR7_DATA, value);
  116. rt2x00_set_field16(&reg, PHY_CSR7_REG_ID, word);
  117. rt2x00_set_field16(&reg, PHY_CSR7_READ_CONTROL, 0);
  118. rt2500usb_register_write(rt2x00dev, PHY_CSR7, reg);
  119. }
  120. static void rt2500usb_bbp_read(const struct rt2x00_dev *rt2x00dev,
  121. const unsigned int word, u8 *value)
  122. {
  123. u16 reg;
  124. /*
  125. * Wait until the BBP becomes ready.
  126. */
  127. reg = rt2500usb_bbp_check(rt2x00dev);
  128. if (rt2x00_get_field16(reg, PHY_CSR8_BUSY)) {
  129. ERROR(rt2x00dev, "PHY_CSR8 register busy. Read failed.\n");
  130. return;
  131. }
  132. /*
  133. * Write the request into the BBP.
  134. */
  135. reg = 0;
  136. rt2x00_set_field16(&reg, PHY_CSR7_REG_ID, word);
  137. rt2x00_set_field16(&reg, PHY_CSR7_READ_CONTROL, 1);
  138. rt2500usb_register_write(rt2x00dev, PHY_CSR7, reg);
  139. /*
  140. * Wait until the BBP becomes ready.
  141. */
  142. reg = rt2500usb_bbp_check(rt2x00dev);
  143. if (rt2x00_get_field16(reg, PHY_CSR8_BUSY)) {
  144. ERROR(rt2x00dev, "PHY_CSR8 register busy. Read failed.\n");
  145. *value = 0xff;
  146. return;
  147. }
  148. rt2500usb_register_read(rt2x00dev, PHY_CSR7, &reg);
  149. *value = rt2x00_get_field16(reg, PHY_CSR7_DATA);
  150. }
  151. static void rt2500usb_rf_write(const struct rt2x00_dev *rt2x00dev,
  152. const unsigned int word, const u32 value)
  153. {
  154. u16 reg;
  155. unsigned int i;
  156. if (!word)
  157. return;
  158. for (i = 0; i < REGISTER_BUSY_COUNT; i++) {
  159. rt2500usb_register_read(rt2x00dev, PHY_CSR10, &reg);
  160. if (!rt2x00_get_field16(reg, PHY_CSR10_RF_BUSY))
  161. goto rf_write;
  162. udelay(REGISTER_BUSY_DELAY);
  163. }
  164. ERROR(rt2x00dev, "PHY_CSR10 register busy. Write failed.\n");
  165. return;
  166. rf_write:
  167. reg = 0;
  168. rt2x00_set_field16(&reg, PHY_CSR9_RF_VALUE, value);
  169. rt2500usb_register_write(rt2x00dev, PHY_CSR9, reg);
  170. reg = 0;
  171. rt2x00_set_field16(&reg, PHY_CSR10_RF_VALUE, value >> 16);
  172. rt2x00_set_field16(&reg, PHY_CSR10_RF_NUMBER_OF_BITS, 20);
  173. rt2x00_set_field16(&reg, PHY_CSR10_RF_IF_SELECT, 0);
  174. rt2x00_set_field16(&reg, PHY_CSR10_RF_BUSY, 1);
  175. rt2500usb_register_write(rt2x00dev, PHY_CSR10, reg);
  176. rt2x00_rf_write(rt2x00dev, word, value);
  177. }
  178. #ifdef CONFIG_RT2X00_LIB_DEBUGFS
  179. #define CSR_OFFSET(__word) ( CSR_REG_BASE + ((__word) * sizeof(u16)) )
  180. static void rt2500usb_read_csr(const struct rt2x00_dev *rt2x00dev,
  181. const unsigned int word, u32 *data)
  182. {
  183. rt2500usb_register_read(rt2x00dev, CSR_OFFSET(word), (u16 *) data);
  184. }
  185. static void rt2500usb_write_csr(const struct rt2x00_dev *rt2x00dev,
  186. const unsigned int word, u32 data)
  187. {
  188. rt2500usb_register_write(rt2x00dev, CSR_OFFSET(word), data);
  189. }
  190. static const struct rt2x00debug rt2500usb_rt2x00debug = {
  191. .owner = THIS_MODULE,
  192. .csr = {
  193. .read = rt2500usb_read_csr,
  194. .write = rt2500usb_write_csr,
  195. .word_size = sizeof(u16),
  196. .word_count = CSR_REG_SIZE / sizeof(u16),
  197. },
  198. .eeprom = {
  199. .read = rt2x00_eeprom_read,
  200. .write = rt2x00_eeprom_write,
  201. .word_size = sizeof(u16),
  202. .word_count = EEPROM_SIZE / sizeof(u16),
  203. },
  204. .bbp = {
  205. .read = rt2500usb_bbp_read,
  206. .write = rt2500usb_bbp_write,
  207. .word_size = sizeof(u8),
  208. .word_count = BBP_SIZE / sizeof(u8),
  209. },
  210. .rf = {
  211. .read = rt2x00_rf_read,
  212. .write = rt2500usb_rf_write,
  213. .word_size = sizeof(u32),
  214. .word_count = RF_SIZE / sizeof(u32),
  215. },
  216. };
  217. #endif /* CONFIG_RT2X00_LIB_DEBUGFS */
  218. /*
  219. * Configuration handlers.
  220. */
  221. static void rt2500usb_config_mac_addr(struct rt2x00_dev *rt2x00dev,
  222. __le32 *mac)
  223. {
  224. rt2500usb_register_multiwrite(rt2x00dev, MAC_CSR2, mac,
  225. (3 * sizeof(__le16)));
  226. }
  227. static void rt2500usb_config_bssid(struct rt2x00_dev *rt2x00dev,
  228. __le32 *bssid)
  229. {
  230. rt2500usb_register_multiwrite(rt2x00dev, MAC_CSR5, bssid,
  231. (3 * sizeof(__le16)));
  232. }
  233. static void rt2500usb_config_type(struct rt2x00_dev *rt2x00dev, const int type,
  234. const int tsf_sync)
  235. {
  236. u16 reg;
  237. rt2500usb_register_write(rt2x00dev, TXRX_CSR19, 0);
  238. /*
  239. * Enable beacon config
  240. */
  241. rt2500usb_register_read(rt2x00dev, TXRX_CSR20, &reg);
  242. rt2x00_set_field16(&reg, TXRX_CSR20_OFFSET,
  243. (PREAMBLE + get_duration(IEEE80211_HEADER, 20)) >> 6);
  244. if (type == IEEE80211_IF_TYPE_STA)
  245. rt2x00_set_field16(&reg, TXRX_CSR20_BCN_EXPECT_WINDOW, 0);
  246. else
  247. rt2x00_set_field16(&reg, TXRX_CSR20_BCN_EXPECT_WINDOW, 2);
  248. rt2500usb_register_write(rt2x00dev, TXRX_CSR20, reg);
  249. /*
  250. * Enable synchronisation.
  251. */
  252. rt2500usb_register_read(rt2x00dev, TXRX_CSR18, &reg);
  253. rt2x00_set_field16(&reg, TXRX_CSR18_OFFSET, 0);
  254. rt2500usb_register_write(rt2x00dev, TXRX_CSR18, reg);
  255. rt2500usb_register_read(rt2x00dev, TXRX_CSR19, &reg);
  256. rt2x00_set_field16(&reg, TXRX_CSR19_TSF_COUNT, 1);
  257. rt2x00_set_field16(&reg, TXRX_CSR19_TBCN, 1);
  258. rt2x00_set_field16(&reg, TXRX_CSR19_BEACON_GEN, 0);
  259. rt2x00_set_field16(&reg, TXRX_CSR19_TSF_SYNC, tsf_sync);
  260. rt2500usb_register_write(rt2x00dev, TXRX_CSR19, reg);
  261. }
  262. static void rt2500usb_config_preamble(struct rt2x00_dev *rt2x00dev,
  263. const int short_preamble,
  264. const int ack_timeout,
  265. const int ack_consume_time)
  266. {
  267. u16 reg;
  268. /*
  269. * When in atomic context, reschedule and let rt2x00lib
  270. * call this function again.
  271. */
  272. if (in_atomic()) {
  273. queue_work(rt2x00dev->hw->workqueue, &rt2x00dev->config_work);
  274. return;
  275. }
  276. rt2500usb_register_read(rt2x00dev, TXRX_CSR1, &reg);
  277. rt2x00_set_field16(&reg, TXRX_CSR1_ACK_TIMEOUT, ack_timeout);
  278. rt2500usb_register_write(rt2x00dev, TXRX_CSR1, reg);
  279. rt2500usb_register_read(rt2x00dev, TXRX_CSR10, &reg);
  280. rt2x00_set_field16(&reg, TXRX_CSR10_AUTORESPOND_PREAMBLE,
  281. !!short_preamble);
  282. rt2500usb_register_write(rt2x00dev, TXRX_CSR10, reg);
  283. }
  284. static void rt2500usb_config_phymode(struct rt2x00_dev *rt2x00dev,
  285. const int phymode,
  286. const int basic_rate_mask)
  287. {
  288. rt2500usb_register_write(rt2x00dev, TXRX_CSR11, basic_rate_mask);
  289. if (phymode == HWMODE_B) {
  290. rt2500usb_register_write(rt2x00dev, MAC_CSR11, 0x000b);
  291. rt2500usb_register_write(rt2x00dev, MAC_CSR12, 0x0040);
  292. } else {
  293. rt2500usb_register_write(rt2x00dev, MAC_CSR11, 0x0005);
  294. rt2500usb_register_write(rt2x00dev, MAC_CSR12, 0x016c);
  295. }
  296. }
  297. static void rt2500usb_config_channel(struct rt2x00_dev *rt2x00dev,
  298. struct rf_channel *rf, const int txpower)
  299. {
  300. /*
  301. * Set TXpower.
  302. */
  303. rt2x00_set_field32(&rf->rf3, RF3_TXPOWER, TXPOWER_TO_DEV(txpower));
  304. /*
  305. * For RT2525E we should first set the channel to half band higher.
  306. */
  307. if (rt2x00_rf(&rt2x00dev->chip, RF2525E)) {
  308. static const u32 vals[] = {
  309. 0x000008aa, 0x000008ae, 0x000008ae, 0x000008b2,
  310. 0x000008b2, 0x000008b6, 0x000008b6, 0x000008ba,
  311. 0x000008ba, 0x000008be, 0x000008b7, 0x00000902,
  312. 0x00000902, 0x00000906
  313. };
  314. rt2500usb_rf_write(rt2x00dev, 2, vals[rf->channel - 1]);
  315. if (rf->rf4)
  316. rt2500usb_rf_write(rt2x00dev, 4, rf->rf4);
  317. }
  318. rt2500usb_rf_write(rt2x00dev, 1, rf->rf1);
  319. rt2500usb_rf_write(rt2x00dev, 2, rf->rf2);
  320. rt2500usb_rf_write(rt2x00dev, 3, rf->rf3);
  321. if (rf->rf4)
  322. rt2500usb_rf_write(rt2x00dev, 4, rf->rf4);
  323. }
  324. static void rt2500usb_config_txpower(struct rt2x00_dev *rt2x00dev,
  325. const int txpower)
  326. {
  327. u32 rf3;
  328. rt2x00_rf_read(rt2x00dev, 3, &rf3);
  329. rt2x00_set_field32(&rf3, RF3_TXPOWER, TXPOWER_TO_DEV(txpower));
  330. rt2500usb_rf_write(rt2x00dev, 3, rf3);
  331. }
  332. static void rt2500usb_config_antenna(struct rt2x00_dev *rt2x00dev,
  333. struct antenna_setup *ant)
  334. {
  335. u8 r2;
  336. u8 r14;
  337. u16 csr5;
  338. u16 csr6;
  339. rt2500usb_bbp_read(rt2x00dev, 2, &r2);
  340. rt2500usb_bbp_read(rt2x00dev, 14, &r14);
  341. rt2500usb_register_read(rt2x00dev, PHY_CSR5, &csr5);
  342. rt2500usb_register_read(rt2x00dev, PHY_CSR6, &csr6);
  343. /*
  344. * Configure the TX antenna.
  345. */
  346. switch (ant->tx) {
  347. case ANTENNA_SW_DIVERSITY:
  348. case ANTENNA_HW_DIVERSITY:
  349. rt2x00_set_field8(&r2, BBP_R2_TX_ANTENNA, 1);
  350. rt2x00_set_field16(&csr5, PHY_CSR5_CCK, 1);
  351. rt2x00_set_field16(&csr6, PHY_CSR6_OFDM, 1);
  352. break;
  353. case ANTENNA_A:
  354. rt2x00_set_field8(&r2, BBP_R2_TX_ANTENNA, 0);
  355. rt2x00_set_field16(&csr5, PHY_CSR5_CCK, 0);
  356. rt2x00_set_field16(&csr6, PHY_CSR6_OFDM, 0);
  357. break;
  358. case ANTENNA_B:
  359. rt2x00_set_field8(&r2, BBP_R2_TX_ANTENNA, 2);
  360. rt2x00_set_field16(&csr5, PHY_CSR5_CCK, 2);
  361. rt2x00_set_field16(&csr6, PHY_CSR6_OFDM, 2);
  362. break;
  363. }
  364. /*
  365. * Configure the RX antenna.
  366. */
  367. switch (ant->rx) {
  368. case ANTENNA_SW_DIVERSITY:
  369. case ANTENNA_HW_DIVERSITY:
  370. rt2x00_set_field8(&r14, BBP_R14_RX_ANTENNA, 1);
  371. break;
  372. case ANTENNA_A:
  373. rt2x00_set_field8(&r14, BBP_R14_RX_ANTENNA, 0);
  374. break;
  375. case ANTENNA_B:
  376. rt2x00_set_field8(&r14, BBP_R14_RX_ANTENNA, 2);
  377. break;
  378. }
  379. /*
  380. * RT2525E and RT5222 need to flip TX I/Q
  381. */
  382. if (rt2x00_rf(&rt2x00dev->chip, RF2525E) ||
  383. rt2x00_rf(&rt2x00dev->chip, RF5222)) {
  384. rt2x00_set_field8(&r2, BBP_R2_TX_IQ_FLIP, 1);
  385. rt2x00_set_field16(&csr5, PHY_CSR5_CCK_FLIP, 1);
  386. rt2x00_set_field16(&csr6, PHY_CSR6_OFDM_FLIP, 1);
  387. /*
  388. * RT2525E does not need RX I/Q Flip.
  389. */
  390. if (rt2x00_rf(&rt2x00dev->chip, RF2525E))
  391. rt2x00_set_field8(&r14, BBP_R14_RX_IQ_FLIP, 0);
  392. } else {
  393. rt2x00_set_field16(&csr5, PHY_CSR5_CCK_FLIP, 0);
  394. rt2x00_set_field16(&csr6, PHY_CSR6_OFDM_FLIP, 0);
  395. }
  396. rt2500usb_bbp_write(rt2x00dev, 2, r2);
  397. rt2500usb_bbp_write(rt2x00dev, 14, r14);
  398. rt2500usb_register_write(rt2x00dev, PHY_CSR5, csr5);
  399. rt2500usb_register_write(rt2x00dev, PHY_CSR6, csr6);
  400. }
  401. static void rt2500usb_config_duration(struct rt2x00_dev *rt2x00dev,
  402. struct rt2x00lib_conf *libconf)
  403. {
  404. u16 reg;
  405. rt2500usb_register_write(rt2x00dev, MAC_CSR10, libconf->slot_time);
  406. rt2500usb_register_read(rt2x00dev, TXRX_CSR18, &reg);
  407. rt2x00_set_field16(&reg, TXRX_CSR18_INTERVAL,
  408. libconf->conf->beacon_int * 4);
  409. rt2500usb_register_write(rt2x00dev, TXRX_CSR18, reg);
  410. }
  411. static void rt2500usb_config(struct rt2x00_dev *rt2x00dev,
  412. const unsigned int flags,
  413. struct rt2x00lib_conf *libconf)
  414. {
  415. if (flags & CONFIG_UPDATE_PHYMODE)
  416. rt2500usb_config_phymode(rt2x00dev, libconf->phymode,
  417. libconf->basic_rates);
  418. if (flags & CONFIG_UPDATE_CHANNEL)
  419. rt2500usb_config_channel(rt2x00dev, &libconf->rf,
  420. libconf->conf->power_level);
  421. if ((flags & CONFIG_UPDATE_TXPOWER) && !(flags & CONFIG_UPDATE_CHANNEL))
  422. rt2500usb_config_txpower(rt2x00dev,
  423. libconf->conf->power_level);
  424. if (flags & CONFIG_UPDATE_ANTENNA)
  425. rt2500usb_config_antenna(rt2x00dev, &libconf->ant);
  426. if (flags & (CONFIG_UPDATE_SLOT_TIME | CONFIG_UPDATE_BEACON_INT))
  427. rt2500usb_config_duration(rt2x00dev, libconf);
  428. }
  429. /*
  430. * LED functions.
  431. */
  432. static void rt2500usb_enable_led(struct rt2x00_dev *rt2x00dev)
  433. {
  434. u16 reg;
  435. rt2500usb_register_read(rt2x00dev, MAC_CSR21, &reg);
  436. rt2x00_set_field16(&reg, MAC_CSR21_ON_PERIOD, 70);
  437. rt2x00_set_field16(&reg, MAC_CSR21_OFF_PERIOD, 30);
  438. rt2500usb_register_write(rt2x00dev, MAC_CSR21, reg);
  439. rt2500usb_register_read(rt2x00dev, MAC_CSR20, &reg);
  440. if (rt2x00dev->led_mode == LED_MODE_TXRX_ACTIVITY) {
  441. rt2x00_set_field16(&reg, MAC_CSR20_LINK, 1);
  442. rt2x00_set_field16(&reg, MAC_CSR20_ACTIVITY, 0);
  443. } else if (rt2x00dev->led_mode == LED_MODE_ASUS) {
  444. rt2x00_set_field16(&reg, MAC_CSR20_LINK, 0);
  445. rt2x00_set_field16(&reg, MAC_CSR20_ACTIVITY, 1);
  446. } else {
  447. rt2x00_set_field16(&reg, MAC_CSR20_LINK, 1);
  448. rt2x00_set_field16(&reg, MAC_CSR20_ACTIVITY, 1);
  449. }
  450. rt2500usb_register_write(rt2x00dev, MAC_CSR20, reg);
  451. }
  452. static void rt2500usb_disable_led(struct rt2x00_dev *rt2x00dev)
  453. {
  454. u16 reg;
  455. rt2500usb_register_read(rt2x00dev, MAC_CSR20, &reg);
  456. rt2x00_set_field16(&reg, MAC_CSR20_LINK, 0);
  457. rt2x00_set_field16(&reg, MAC_CSR20_ACTIVITY, 0);
  458. rt2500usb_register_write(rt2x00dev, MAC_CSR20, reg);
  459. }
  460. /*
  461. * Link tuning
  462. */
  463. static void rt2500usb_link_stats(struct rt2x00_dev *rt2x00dev,
  464. struct link_qual *qual)
  465. {
  466. u16 reg;
  467. /*
  468. * Update FCS error count from register.
  469. */
  470. rt2500usb_register_read(rt2x00dev, STA_CSR0, &reg);
  471. qual->rx_failed = rt2x00_get_field16(reg, STA_CSR0_FCS_ERROR);
  472. /*
  473. * Update False CCA count from register.
  474. */
  475. rt2500usb_register_read(rt2x00dev, STA_CSR3, &reg);
  476. qual->false_cca = rt2x00_get_field16(reg, STA_CSR3_FALSE_CCA_ERROR);
  477. }
  478. static void rt2500usb_reset_tuner(struct rt2x00_dev *rt2x00dev)
  479. {
  480. u16 eeprom;
  481. u16 value;
  482. rt2x00_eeprom_read(rt2x00dev, EEPROM_BBPTUNE_R24, &eeprom);
  483. value = rt2x00_get_field16(eeprom, EEPROM_BBPTUNE_R24_LOW);
  484. rt2500usb_bbp_write(rt2x00dev, 24, value);
  485. rt2x00_eeprom_read(rt2x00dev, EEPROM_BBPTUNE_R25, &eeprom);
  486. value = rt2x00_get_field16(eeprom, EEPROM_BBPTUNE_R25_LOW);
  487. rt2500usb_bbp_write(rt2x00dev, 25, value);
  488. rt2x00_eeprom_read(rt2x00dev, EEPROM_BBPTUNE_R61, &eeprom);
  489. value = rt2x00_get_field16(eeprom, EEPROM_BBPTUNE_R61_LOW);
  490. rt2500usb_bbp_write(rt2x00dev, 61, value);
  491. rt2x00_eeprom_read(rt2x00dev, EEPROM_BBPTUNE_VGC, &eeprom);
  492. value = rt2x00_get_field16(eeprom, EEPROM_BBPTUNE_VGCUPPER);
  493. rt2500usb_bbp_write(rt2x00dev, 17, value);
  494. rt2x00dev->link.vgc_level = value;
  495. }
  496. static void rt2500usb_link_tuner(struct rt2x00_dev *rt2x00dev)
  497. {
  498. int rssi = rt2x00_get_link_rssi(&rt2x00dev->link);
  499. u16 bbp_thresh;
  500. u16 vgc_bound;
  501. u16 sens;
  502. u16 r24;
  503. u16 r25;
  504. u16 r61;
  505. u16 r17_sens;
  506. u8 r17;
  507. u8 up_bound;
  508. u8 low_bound;
  509. /*
  510. * Determine the BBP tuning threshold and correctly
  511. * set BBP 24, 25 and 61.
  512. */
  513. rt2x00_eeprom_read(rt2x00dev, EEPROM_BBPTUNE, &bbp_thresh);
  514. bbp_thresh = rt2x00_get_field16(bbp_thresh, EEPROM_BBPTUNE_THRESHOLD);
  515. rt2x00_eeprom_read(rt2x00dev, EEPROM_BBPTUNE_R24, &r24);
  516. rt2x00_eeprom_read(rt2x00dev, EEPROM_BBPTUNE_R25, &r25);
  517. rt2x00_eeprom_read(rt2x00dev, EEPROM_BBPTUNE_R61, &r61);
  518. if ((rssi + bbp_thresh) > 0) {
  519. r24 = rt2x00_get_field16(r24, EEPROM_BBPTUNE_R24_HIGH);
  520. r25 = rt2x00_get_field16(r25, EEPROM_BBPTUNE_R25_HIGH);
  521. r61 = rt2x00_get_field16(r61, EEPROM_BBPTUNE_R61_HIGH);
  522. } else {
  523. r24 = rt2x00_get_field16(r24, EEPROM_BBPTUNE_R24_LOW);
  524. r25 = rt2x00_get_field16(r25, EEPROM_BBPTUNE_R25_LOW);
  525. r61 = rt2x00_get_field16(r61, EEPROM_BBPTUNE_R61_LOW);
  526. }
  527. rt2500usb_bbp_write(rt2x00dev, 24, r24);
  528. rt2500usb_bbp_write(rt2x00dev, 25, r25);
  529. rt2500usb_bbp_write(rt2x00dev, 61, r61);
  530. /*
  531. * Read current r17 value, as well as the sensitivity values
  532. * for the r17 register.
  533. */
  534. rt2500usb_bbp_read(rt2x00dev, 17, &r17);
  535. rt2x00_eeprom_read(rt2x00dev, EEPROM_BBPTUNE_R17, &r17_sens);
  536. /*
  537. * A too low RSSI will cause too much false CCA which will
  538. * then corrupt the R17 tuning. To remidy this the tuning should
  539. * be stopped (While making sure the R17 value will not exceed limits)
  540. */
  541. if (rssi >= -40) {
  542. if (r17 != 0x60)
  543. rt2500usb_bbp_write(rt2x00dev, 17, 0x60);
  544. return;
  545. }
  546. /*
  547. * Special big-R17 for short distance
  548. */
  549. if (rssi >= -58) {
  550. sens = rt2x00_get_field16(r17_sens, EEPROM_BBPTUNE_R17_LOW);
  551. if (r17 != sens)
  552. rt2500usb_bbp_write(rt2x00dev, 17, sens);
  553. return;
  554. }
  555. /*
  556. * Special mid-R17 for middle distance
  557. */
  558. if (rssi >= -74) {
  559. sens = rt2x00_get_field16(r17_sens, EEPROM_BBPTUNE_R17_HIGH);
  560. if (r17 != sens)
  561. rt2500usb_bbp_write(rt2x00dev, 17, sens);
  562. return;
  563. }
  564. /*
  565. * Leave short or middle distance condition, restore r17
  566. * to the dynamic tuning range.
  567. */
  568. rt2x00_eeprom_read(rt2x00dev, EEPROM_BBPTUNE_VGC, &vgc_bound);
  569. vgc_bound = rt2x00_get_field16(vgc_bound, EEPROM_BBPTUNE_VGCUPPER);
  570. low_bound = 0x32;
  571. if (rssi >= -77)
  572. up_bound = vgc_bound;
  573. else
  574. up_bound = vgc_bound - (-77 - rssi);
  575. if (up_bound < low_bound)
  576. up_bound = low_bound;
  577. if (r17 > up_bound) {
  578. rt2500usb_bbp_write(rt2x00dev, 17, up_bound);
  579. rt2x00dev->link.vgc_level = up_bound;
  580. } else if (rt2x00dev->link.qual.false_cca > 512 && r17 < up_bound) {
  581. rt2500usb_bbp_write(rt2x00dev, 17, ++r17);
  582. rt2x00dev->link.vgc_level = r17;
  583. } else if (rt2x00dev->link.qual.false_cca < 100 && r17 > low_bound) {
  584. rt2500usb_bbp_write(rt2x00dev, 17, --r17);
  585. rt2x00dev->link.vgc_level = r17;
  586. }
  587. }
  588. /*
  589. * Initialization functions.
  590. */
  591. static int rt2500usb_init_registers(struct rt2x00_dev *rt2x00dev)
  592. {
  593. u16 reg;
  594. rt2x00usb_vendor_request_sw(rt2x00dev, USB_DEVICE_MODE, 0x0001,
  595. USB_MODE_TEST, REGISTER_TIMEOUT);
  596. rt2x00usb_vendor_request_sw(rt2x00dev, USB_SINGLE_WRITE, 0x0308,
  597. 0x00f0, REGISTER_TIMEOUT);
  598. rt2500usb_register_read(rt2x00dev, TXRX_CSR2, &reg);
  599. rt2x00_set_field16(&reg, TXRX_CSR2_DISABLE_RX, 1);
  600. rt2500usb_register_write(rt2x00dev, TXRX_CSR2, reg);
  601. rt2500usb_register_write(rt2x00dev, MAC_CSR13, 0x1111);
  602. rt2500usb_register_write(rt2x00dev, MAC_CSR14, 0x1e11);
  603. rt2500usb_register_read(rt2x00dev, MAC_CSR1, &reg);
  604. rt2x00_set_field16(&reg, MAC_CSR1_SOFT_RESET, 1);
  605. rt2x00_set_field16(&reg, MAC_CSR1_BBP_RESET, 1);
  606. rt2x00_set_field16(&reg, MAC_CSR1_HOST_READY, 0);
  607. rt2500usb_register_write(rt2x00dev, MAC_CSR1, reg);
  608. rt2500usb_register_read(rt2x00dev, MAC_CSR1, &reg);
  609. rt2x00_set_field16(&reg, MAC_CSR1_SOFT_RESET, 0);
  610. rt2x00_set_field16(&reg, MAC_CSR1_BBP_RESET, 0);
  611. rt2x00_set_field16(&reg, MAC_CSR1_HOST_READY, 0);
  612. rt2500usb_register_write(rt2x00dev, MAC_CSR1, reg);
  613. rt2500usb_register_read(rt2x00dev, TXRX_CSR5, &reg);
  614. rt2x00_set_field16(&reg, TXRX_CSR5_BBP_ID0, 13);
  615. rt2x00_set_field16(&reg, TXRX_CSR5_BBP_ID0_VALID, 1);
  616. rt2x00_set_field16(&reg, TXRX_CSR5_BBP_ID1, 12);
  617. rt2x00_set_field16(&reg, TXRX_CSR5_BBP_ID1_VALID, 1);
  618. rt2500usb_register_write(rt2x00dev, TXRX_CSR5, reg);
  619. rt2500usb_register_read(rt2x00dev, TXRX_CSR6, &reg);
  620. rt2x00_set_field16(&reg, TXRX_CSR6_BBP_ID0, 10);
  621. rt2x00_set_field16(&reg, TXRX_CSR6_BBP_ID0_VALID, 1);
  622. rt2x00_set_field16(&reg, TXRX_CSR6_BBP_ID1, 11);
  623. rt2x00_set_field16(&reg, TXRX_CSR6_BBP_ID1_VALID, 1);
  624. rt2500usb_register_write(rt2x00dev, TXRX_CSR6, reg);
  625. rt2500usb_register_read(rt2x00dev, TXRX_CSR7, &reg);
  626. rt2x00_set_field16(&reg, TXRX_CSR7_BBP_ID0, 7);
  627. rt2x00_set_field16(&reg, TXRX_CSR7_BBP_ID0_VALID, 1);
  628. rt2x00_set_field16(&reg, TXRX_CSR7_BBP_ID1, 6);
  629. rt2x00_set_field16(&reg, TXRX_CSR7_BBP_ID1_VALID, 1);
  630. rt2500usb_register_write(rt2x00dev, TXRX_CSR7, reg);
  631. rt2500usb_register_read(rt2x00dev, TXRX_CSR8, &reg);
  632. rt2x00_set_field16(&reg, TXRX_CSR8_BBP_ID0, 5);
  633. rt2x00_set_field16(&reg, TXRX_CSR8_BBP_ID0_VALID, 1);
  634. rt2x00_set_field16(&reg, TXRX_CSR8_BBP_ID1, 0);
  635. rt2x00_set_field16(&reg, TXRX_CSR8_BBP_ID1_VALID, 0);
  636. rt2500usb_register_write(rt2x00dev, TXRX_CSR8, reg);
  637. rt2500usb_register_write(rt2x00dev, TXRX_CSR21, 0xe78f);
  638. rt2500usb_register_write(rt2x00dev, MAC_CSR9, 0xff1d);
  639. if (rt2x00dev->ops->lib->set_device_state(rt2x00dev, STATE_AWAKE))
  640. return -EBUSY;
  641. rt2500usb_register_read(rt2x00dev, MAC_CSR1, &reg);
  642. rt2x00_set_field16(&reg, MAC_CSR1_SOFT_RESET, 0);
  643. rt2x00_set_field16(&reg, MAC_CSR1_BBP_RESET, 0);
  644. rt2x00_set_field16(&reg, MAC_CSR1_HOST_READY, 1);
  645. rt2500usb_register_write(rt2x00dev, MAC_CSR1, reg);
  646. if (rt2x00_rev(&rt2x00dev->chip) >= RT2570_VERSION_C) {
  647. rt2500usb_register_read(rt2x00dev, PHY_CSR2, &reg);
  648. reg &= ~0x0002;
  649. } else {
  650. reg = 0x3002;
  651. }
  652. rt2500usb_register_write(rt2x00dev, PHY_CSR2, reg);
  653. rt2500usb_register_write(rt2x00dev, MAC_CSR11, 0x0002);
  654. rt2500usb_register_write(rt2x00dev, MAC_CSR22, 0x0053);
  655. rt2500usb_register_write(rt2x00dev, MAC_CSR15, 0x01ee);
  656. rt2500usb_register_write(rt2x00dev, MAC_CSR16, 0x0000);
  657. rt2500usb_register_read(rt2x00dev, MAC_CSR8, &reg);
  658. rt2x00_set_field16(&reg, MAC_CSR8_MAX_FRAME_UNIT,
  659. rt2x00dev->rx->data_size);
  660. rt2500usb_register_write(rt2x00dev, MAC_CSR8, reg);
  661. rt2500usb_register_read(rt2x00dev, TXRX_CSR0, &reg);
  662. rt2x00_set_field16(&reg, TXRX_CSR0_IV_OFFSET, IEEE80211_HEADER);
  663. rt2x00_set_field16(&reg, TXRX_CSR0_KEY_ID, 0xff);
  664. rt2500usb_register_write(rt2x00dev, TXRX_CSR0, reg);
  665. rt2500usb_register_read(rt2x00dev, MAC_CSR18, &reg);
  666. rt2x00_set_field16(&reg, MAC_CSR18_DELAY_AFTER_BEACON, 90);
  667. rt2500usb_register_write(rt2x00dev, MAC_CSR18, reg);
  668. rt2500usb_register_read(rt2x00dev, PHY_CSR4, &reg);
  669. rt2x00_set_field16(&reg, PHY_CSR4_LOW_RF_LE, 1);
  670. rt2500usb_register_write(rt2x00dev, PHY_CSR4, reg);
  671. rt2500usb_register_read(rt2x00dev, TXRX_CSR1, &reg);
  672. rt2x00_set_field16(&reg, TXRX_CSR1_AUTO_SEQUENCE, 1);
  673. rt2500usb_register_write(rt2x00dev, TXRX_CSR1, reg);
  674. return 0;
  675. }
  676. static int rt2500usb_init_bbp(struct rt2x00_dev *rt2x00dev)
  677. {
  678. unsigned int i;
  679. u16 eeprom;
  680. u8 value;
  681. u8 reg_id;
  682. for (i = 0; i < REGISTER_BUSY_COUNT; i++) {
  683. rt2500usb_bbp_read(rt2x00dev, 0, &value);
  684. if ((value != 0xff) && (value != 0x00))
  685. goto continue_csr_init;
  686. NOTICE(rt2x00dev, "Waiting for BBP register.\n");
  687. udelay(REGISTER_BUSY_DELAY);
  688. }
  689. ERROR(rt2x00dev, "BBP register access failed, aborting.\n");
  690. return -EACCES;
  691. continue_csr_init:
  692. rt2500usb_bbp_write(rt2x00dev, 3, 0x02);
  693. rt2500usb_bbp_write(rt2x00dev, 4, 0x19);
  694. rt2500usb_bbp_write(rt2x00dev, 14, 0x1c);
  695. rt2500usb_bbp_write(rt2x00dev, 15, 0x30);
  696. rt2500usb_bbp_write(rt2x00dev, 16, 0xac);
  697. rt2500usb_bbp_write(rt2x00dev, 18, 0x18);
  698. rt2500usb_bbp_write(rt2x00dev, 19, 0xff);
  699. rt2500usb_bbp_write(rt2x00dev, 20, 0x1e);
  700. rt2500usb_bbp_write(rt2x00dev, 21, 0x08);
  701. rt2500usb_bbp_write(rt2x00dev, 22, 0x08);
  702. rt2500usb_bbp_write(rt2x00dev, 23, 0x08);
  703. rt2500usb_bbp_write(rt2x00dev, 24, 0x80);
  704. rt2500usb_bbp_write(rt2x00dev, 25, 0x50);
  705. rt2500usb_bbp_write(rt2x00dev, 26, 0x08);
  706. rt2500usb_bbp_write(rt2x00dev, 27, 0x23);
  707. rt2500usb_bbp_write(rt2x00dev, 30, 0x10);
  708. rt2500usb_bbp_write(rt2x00dev, 31, 0x2b);
  709. rt2500usb_bbp_write(rt2x00dev, 32, 0xb9);
  710. rt2500usb_bbp_write(rt2x00dev, 34, 0x12);
  711. rt2500usb_bbp_write(rt2x00dev, 35, 0x50);
  712. rt2500usb_bbp_write(rt2x00dev, 39, 0xc4);
  713. rt2500usb_bbp_write(rt2x00dev, 40, 0x02);
  714. rt2500usb_bbp_write(rt2x00dev, 41, 0x60);
  715. rt2500usb_bbp_write(rt2x00dev, 53, 0x10);
  716. rt2500usb_bbp_write(rt2x00dev, 54, 0x18);
  717. rt2500usb_bbp_write(rt2x00dev, 56, 0x08);
  718. rt2500usb_bbp_write(rt2x00dev, 57, 0x10);
  719. rt2500usb_bbp_write(rt2x00dev, 58, 0x08);
  720. rt2500usb_bbp_write(rt2x00dev, 61, 0x60);
  721. rt2500usb_bbp_write(rt2x00dev, 62, 0x10);
  722. rt2500usb_bbp_write(rt2x00dev, 75, 0xff);
  723. DEBUG(rt2x00dev, "Start initialization from EEPROM...\n");
  724. for (i = 0; i < EEPROM_BBP_SIZE; i++) {
  725. rt2x00_eeprom_read(rt2x00dev, EEPROM_BBP_START + i, &eeprom);
  726. if (eeprom != 0xffff && eeprom != 0x0000) {
  727. reg_id = rt2x00_get_field16(eeprom, EEPROM_BBP_REG_ID);
  728. value = rt2x00_get_field16(eeprom, EEPROM_BBP_VALUE);
  729. DEBUG(rt2x00dev, "BBP: 0x%02x, value: 0x%02x.\n",
  730. reg_id, value);
  731. rt2500usb_bbp_write(rt2x00dev, reg_id, value);
  732. }
  733. }
  734. DEBUG(rt2x00dev, "...End initialization from EEPROM.\n");
  735. return 0;
  736. }
  737. /*
  738. * Device state switch handlers.
  739. */
  740. static void rt2500usb_toggle_rx(struct rt2x00_dev *rt2x00dev,
  741. enum dev_state state)
  742. {
  743. u16 reg;
  744. rt2500usb_register_read(rt2x00dev, TXRX_CSR2, &reg);
  745. rt2x00_set_field16(&reg, TXRX_CSR2_DISABLE_RX,
  746. state == STATE_RADIO_RX_OFF);
  747. rt2500usb_register_write(rt2x00dev, TXRX_CSR2, reg);
  748. }
  749. static int rt2500usb_enable_radio(struct rt2x00_dev *rt2x00dev)
  750. {
  751. /*
  752. * Initialize all registers.
  753. */
  754. if (rt2500usb_init_registers(rt2x00dev) ||
  755. rt2500usb_init_bbp(rt2x00dev)) {
  756. ERROR(rt2x00dev, "Register initialization failed.\n");
  757. return -EIO;
  758. }
  759. rt2x00usb_enable_radio(rt2x00dev);
  760. /*
  761. * Enable LED
  762. */
  763. rt2500usb_enable_led(rt2x00dev);
  764. return 0;
  765. }
  766. static void rt2500usb_disable_radio(struct rt2x00_dev *rt2x00dev)
  767. {
  768. /*
  769. * Disable LED
  770. */
  771. rt2500usb_disable_led(rt2x00dev);
  772. rt2500usb_register_write(rt2x00dev, MAC_CSR13, 0x2121);
  773. rt2500usb_register_write(rt2x00dev, MAC_CSR14, 0x2121);
  774. /*
  775. * Disable synchronisation.
  776. */
  777. rt2500usb_register_write(rt2x00dev, TXRX_CSR19, 0);
  778. rt2x00usb_disable_radio(rt2x00dev);
  779. }
  780. static int rt2500usb_set_state(struct rt2x00_dev *rt2x00dev,
  781. enum dev_state state)
  782. {
  783. u16 reg;
  784. u16 reg2;
  785. unsigned int i;
  786. char put_to_sleep;
  787. char bbp_state;
  788. char rf_state;
  789. put_to_sleep = (state != STATE_AWAKE);
  790. reg = 0;
  791. rt2x00_set_field16(&reg, MAC_CSR17_BBP_DESIRE_STATE, state);
  792. rt2x00_set_field16(&reg, MAC_CSR17_RF_DESIRE_STATE, state);
  793. rt2x00_set_field16(&reg, MAC_CSR17_PUT_TO_SLEEP, put_to_sleep);
  794. rt2500usb_register_write(rt2x00dev, MAC_CSR17, reg);
  795. rt2x00_set_field16(&reg, MAC_CSR17_SET_STATE, 1);
  796. rt2500usb_register_write(rt2x00dev, MAC_CSR17, reg);
  797. /*
  798. * Device is not guaranteed to be in the requested state yet.
  799. * We must wait until the register indicates that the
  800. * device has entered the correct state.
  801. */
  802. for (i = 0; i < REGISTER_BUSY_COUNT; i++) {
  803. rt2500usb_register_read(rt2x00dev, MAC_CSR17, &reg2);
  804. bbp_state = rt2x00_get_field16(reg2, MAC_CSR17_BBP_CURR_STATE);
  805. rf_state = rt2x00_get_field16(reg2, MAC_CSR17_RF_CURR_STATE);
  806. if (bbp_state == state && rf_state == state)
  807. return 0;
  808. rt2500usb_register_write(rt2x00dev, MAC_CSR17, reg);
  809. msleep(30);
  810. }
  811. NOTICE(rt2x00dev, "Device failed to enter state %d, "
  812. "current device state: bbp %d and rf %d.\n",
  813. state, bbp_state, rf_state);
  814. return -EBUSY;
  815. }
  816. static int rt2500usb_set_device_state(struct rt2x00_dev *rt2x00dev,
  817. enum dev_state state)
  818. {
  819. int retval = 0;
  820. switch (state) {
  821. case STATE_RADIO_ON:
  822. retval = rt2500usb_enable_radio(rt2x00dev);
  823. break;
  824. case STATE_RADIO_OFF:
  825. rt2500usb_disable_radio(rt2x00dev);
  826. break;
  827. case STATE_RADIO_RX_ON:
  828. case STATE_RADIO_RX_OFF:
  829. rt2500usb_toggle_rx(rt2x00dev, state);
  830. break;
  831. case STATE_DEEP_SLEEP:
  832. case STATE_SLEEP:
  833. case STATE_STANDBY:
  834. case STATE_AWAKE:
  835. retval = rt2500usb_set_state(rt2x00dev, state);
  836. break;
  837. default:
  838. retval = -ENOTSUPP;
  839. break;
  840. }
  841. return retval;
  842. }
  843. /*
  844. * TX descriptor initialization
  845. */
  846. static void rt2500usb_write_tx_desc(struct rt2x00_dev *rt2x00dev,
  847. struct data_desc *txd,
  848. struct txdata_entry_desc *desc,
  849. struct ieee80211_hdr *ieee80211hdr,
  850. unsigned int length,
  851. struct ieee80211_tx_control *control)
  852. {
  853. u32 word;
  854. /*
  855. * Start writing the descriptor words.
  856. */
  857. rt2x00_desc_read(txd, 1, &word);
  858. rt2x00_set_field32(&word, TXD_W1_IV_OFFSET, IEEE80211_HEADER);
  859. rt2x00_set_field32(&word, TXD_W1_AIFS, desc->aifs);
  860. rt2x00_set_field32(&word, TXD_W1_CWMIN, desc->cw_min);
  861. rt2x00_set_field32(&word, TXD_W1_CWMAX, desc->cw_max);
  862. rt2x00_desc_write(txd, 1, word);
  863. rt2x00_desc_read(txd, 2, &word);
  864. rt2x00_set_field32(&word, TXD_W2_PLCP_SIGNAL, desc->signal);
  865. rt2x00_set_field32(&word, TXD_W2_PLCP_SERVICE, desc->service);
  866. rt2x00_set_field32(&word, TXD_W2_PLCP_LENGTH_LOW, desc->length_low);
  867. rt2x00_set_field32(&word, TXD_W2_PLCP_LENGTH_HIGH, desc->length_high);
  868. rt2x00_desc_write(txd, 2, word);
  869. rt2x00_desc_read(txd, 0, &word);
  870. rt2x00_set_field32(&word, TXD_W0_RETRY_LIMIT, control->retry_limit);
  871. rt2x00_set_field32(&word, TXD_W0_MORE_FRAG,
  872. test_bit(ENTRY_TXD_MORE_FRAG, &desc->flags));
  873. rt2x00_set_field32(&word, TXD_W0_ACK,
  874. !(control->flags & IEEE80211_TXCTL_NO_ACK));
  875. rt2x00_set_field32(&word, TXD_W0_TIMESTAMP,
  876. test_bit(ENTRY_TXD_REQ_TIMESTAMP, &desc->flags));
  877. rt2x00_set_field32(&word, TXD_W0_OFDM,
  878. test_bit(ENTRY_TXD_OFDM_RATE, &desc->flags));
  879. rt2x00_set_field32(&word, TXD_W0_NEW_SEQ,
  880. !!(control->flags & IEEE80211_TXCTL_FIRST_FRAGMENT));
  881. rt2x00_set_field32(&word, TXD_W0_IFS, desc->ifs);
  882. rt2x00_set_field32(&word, TXD_W0_DATABYTE_COUNT, length);
  883. rt2x00_set_field32(&word, TXD_W0_CIPHER, CIPHER_NONE);
  884. rt2x00_desc_write(txd, 0, word);
  885. }
  886. static int rt2500usb_get_tx_data_len(struct rt2x00_dev *rt2x00dev,
  887. struct sk_buff *skb)
  888. {
  889. int length;
  890. /*
  891. * The length _must_ be a multiple of 2,
  892. * but it must _not_ be a multiple of the USB packet size.
  893. */
  894. length = roundup(skb->len, 2);
  895. length += (2 * !(length % rt2x00dev->usb_maxpacket));
  896. return length;
  897. }
  898. /*
  899. * TX data initialization
  900. */
  901. static void rt2500usb_kick_tx_queue(struct rt2x00_dev *rt2x00dev,
  902. unsigned int queue)
  903. {
  904. u16 reg;
  905. if (queue != IEEE80211_TX_QUEUE_BEACON)
  906. return;
  907. rt2500usb_register_read(rt2x00dev, TXRX_CSR19, &reg);
  908. if (!rt2x00_get_field16(reg, TXRX_CSR19_BEACON_GEN)) {
  909. rt2x00_set_field16(&reg, TXRX_CSR19_BEACON_GEN, 1);
  910. /*
  911. * Beacon generation will fail initially.
  912. * To prevent this we need to register the TXRX_CSR19
  913. * register several times.
  914. */
  915. rt2500usb_register_write(rt2x00dev, TXRX_CSR19, reg);
  916. rt2500usb_register_write(rt2x00dev, TXRX_CSR19, 0);
  917. rt2500usb_register_write(rt2x00dev, TXRX_CSR19, reg);
  918. rt2500usb_register_write(rt2x00dev, TXRX_CSR19, 0);
  919. rt2500usb_register_write(rt2x00dev, TXRX_CSR19, reg);
  920. }
  921. }
  922. /*
  923. * RX control handlers
  924. */
  925. static void rt2500usb_fill_rxdone(struct data_entry *entry,
  926. struct rxdata_entry_desc *desc)
  927. {
  928. struct urb *urb = entry->priv;
  929. struct data_desc *rxd = (struct data_desc *)(entry->skb->data +
  930. (urb->actual_length -
  931. entry->ring->desc_size));
  932. u32 word0;
  933. u32 word1;
  934. rt2x00_desc_read(rxd, 0, &word0);
  935. rt2x00_desc_read(rxd, 1, &word1);
  936. desc->flags = 0;
  937. if (rt2x00_get_field32(word0, RXD_W0_CRC_ERROR))
  938. desc->flags |= RX_FLAG_FAILED_FCS_CRC;
  939. if (rt2x00_get_field32(word0, RXD_W0_PHYSICAL_ERROR))
  940. desc->flags |= RX_FLAG_FAILED_PLCP_CRC;
  941. /*
  942. * Obtain the status about this packet.
  943. */
  944. desc->signal = rt2x00_get_field32(word1, RXD_W1_SIGNAL);
  945. desc->rssi = rt2x00_get_field32(word1, RXD_W1_RSSI) -
  946. entry->ring->rt2x00dev->rssi_offset;
  947. desc->ofdm = rt2x00_get_field32(word0, RXD_W0_OFDM);
  948. desc->size = rt2x00_get_field32(word0, RXD_W0_DATABYTE_COUNT);
  949. return;
  950. }
  951. /*
  952. * Interrupt functions.
  953. */
  954. static void rt2500usb_beacondone(struct urb *urb)
  955. {
  956. struct data_entry *entry = (struct data_entry *)urb->context;
  957. struct data_ring *ring = entry->ring;
  958. if (!test_bit(DEVICE_ENABLED_RADIO, &ring->rt2x00dev->flags))
  959. return;
  960. /*
  961. * Check if this was the guardian beacon,
  962. * if that was the case we need to send the real beacon now.
  963. * Otherwise we should free the sk_buffer, the device
  964. * should be doing the rest of the work now.
  965. */
  966. if (ring->index == 1) {
  967. rt2x00_ring_index_done_inc(ring);
  968. entry = rt2x00_get_data_entry(ring);
  969. usb_submit_urb(entry->priv, GFP_ATOMIC);
  970. rt2x00_ring_index_inc(ring);
  971. } else if (ring->index_done == 1) {
  972. entry = rt2x00_get_data_entry_done(ring);
  973. if (entry->skb) {
  974. dev_kfree_skb(entry->skb);
  975. entry->skb = NULL;
  976. }
  977. rt2x00_ring_index_done_inc(ring);
  978. }
  979. }
  980. /*
  981. * Device probe functions.
  982. */
  983. static int rt2500usb_validate_eeprom(struct rt2x00_dev *rt2x00dev)
  984. {
  985. u16 word;
  986. u8 *mac;
  987. rt2x00usb_eeprom_read(rt2x00dev, rt2x00dev->eeprom, EEPROM_SIZE);
  988. /*
  989. * Start validation of the data that has been read.
  990. */
  991. mac = rt2x00_eeprom_addr(rt2x00dev, EEPROM_MAC_ADDR_0);
  992. if (!is_valid_ether_addr(mac)) {
  993. DECLARE_MAC_BUF(macbuf);
  994. random_ether_addr(mac);
  995. EEPROM(rt2x00dev, "MAC: %s\n", print_mac(macbuf, mac));
  996. }
  997. rt2x00_eeprom_read(rt2x00dev, EEPROM_ANTENNA, &word);
  998. if (word == 0xffff) {
  999. rt2x00_set_field16(&word, EEPROM_ANTENNA_NUM, 2);
  1000. rt2x00_set_field16(&word, EEPROM_ANTENNA_TX_DEFAULT,
  1001. ANTENNA_SW_DIVERSITY);
  1002. rt2x00_set_field16(&word, EEPROM_ANTENNA_RX_DEFAULT,
  1003. ANTENNA_SW_DIVERSITY);
  1004. rt2x00_set_field16(&word, EEPROM_ANTENNA_LED_MODE,
  1005. LED_MODE_DEFAULT);
  1006. rt2x00_set_field16(&word, EEPROM_ANTENNA_DYN_TXAGC, 0);
  1007. rt2x00_set_field16(&word, EEPROM_ANTENNA_HARDWARE_RADIO, 0);
  1008. rt2x00_set_field16(&word, EEPROM_ANTENNA_RF_TYPE, RF2522);
  1009. rt2x00_eeprom_write(rt2x00dev, EEPROM_ANTENNA, word);
  1010. EEPROM(rt2x00dev, "Antenna: 0x%04x\n", word);
  1011. }
  1012. rt2x00_eeprom_read(rt2x00dev, EEPROM_NIC, &word);
  1013. if (word == 0xffff) {
  1014. rt2x00_set_field16(&word, EEPROM_NIC_CARDBUS_ACCEL, 0);
  1015. rt2x00_set_field16(&word, EEPROM_NIC_DYN_BBP_TUNE, 0);
  1016. rt2x00_set_field16(&word, EEPROM_NIC_CCK_TX_POWER, 0);
  1017. rt2x00_eeprom_write(rt2x00dev, EEPROM_NIC, word);
  1018. EEPROM(rt2x00dev, "NIC: 0x%04x\n", word);
  1019. }
  1020. rt2x00_eeprom_read(rt2x00dev, EEPROM_CALIBRATE_OFFSET, &word);
  1021. if (word == 0xffff) {
  1022. rt2x00_set_field16(&word, EEPROM_CALIBRATE_OFFSET_RSSI,
  1023. DEFAULT_RSSI_OFFSET);
  1024. rt2x00_eeprom_write(rt2x00dev, EEPROM_CALIBRATE_OFFSET, word);
  1025. EEPROM(rt2x00dev, "Calibrate offset: 0x%04x\n", word);
  1026. }
  1027. rt2x00_eeprom_read(rt2x00dev, EEPROM_BBPTUNE, &word);
  1028. if (word == 0xffff) {
  1029. rt2x00_set_field16(&word, EEPROM_BBPTUNE_THRESHOLD, 45);
  1030. rt2x00_eeprom_write(rt2x00dev, EEPROM_BBPTUNE, word);
  1031. EEPROM(rt2x00dev, "BBPtune: 0x%04x\n", word);
  1032. }
  1033. rt2x00_eeprom_read(rt2x00dev, EEPROM_BBPTUNE_VGC, &word);
  1034. if (word == 0xffff) {
  1035. rt2x00_set_field16(&word, EEPROM_BBPTUNE_VGCUPPER, 0x40);
  1036. rt2x00_eeprom_write(rt2x00dev, EEPROM_BBPTUNE_VGC, word);
  1037. EEPROM(rt2x00dev, "BBPtune vgc: 0x%04x\n", word);
  1038. }
  1039. rt2x00_eeprom_read(rt2x00dev, EEPROM_BBPTUNE_R17, &word);
  1040. if (word == 0xffff) {
  1041. rt2x00_set_field16(&word, EEPROM_BBPTUNE_R17_LOW, 0x48);
  1042. rt2x00_set_field16(&word, EEPROM_BBPTUNE_R17_HIGH, 0x41);
  1043. rt2x00_eeprom_write(rt2x00dev, EEPROM_BBPTUNE_R17, word);
  1044. EEPROM(rt2x00dev, "BBPtune r17: 0x%04x\n", word);
  1045. }
  1046. rt2x00_eeprom_read(rt2x00dev, EEPROM_BBPTUNE_R24, &word);
  1047. if (word == 0xffff) {
  1048. rt2x00_set_field16(&word, EEPROM_BBPTUNE_R24_LOW, 0x40);
  1049. rt2x00_set_field16(&word, EEPROM_BBPTUNE_R24_HIGH, 0x80);
  1050. rt2x00_eeprom_write(rt2x00dev, EEPROM_BBPTUNE_R24, word);
  1051. EEPROM(rt2x00dev, "BBPtune r24: 0x%04x\n", word);
  1052. }
  1053. rt2x00_eeprom_read(rt2x00dev, EEPROM_BBPTUNE_R25, &word);
  1054. if (word == 0xffff) {
  1055. rt2x00_set_field16(&word, EEPROM_BBPTUNE_R25_LOW, 0x40);
  1056. rt2x00_set_field16(&word, EEPROM_BBPTUNE_R25_HIGH, 0x50);
  1057. rt2x00_eeprom_write(rt2x00dev, EEPROM_BBPTUNE_R25, word);
  1058. EEPROM(rt2x00dev, "BBPtune r25: 0x%04x\n", word);
  1059. }
  1060. rt2x00_eeprom_read(rt2x00dev, EEPROM_BBPTUNE_R61, &word);
  1061. if (word == 0xffff) {
  1062. rt2x00_set_field16(&word, EEPROM_BBPTUNE_R61_LOW, 0x60);
  1063. rt2x00_set_field16(&word, EEPROM_BBPTUNE_R61_HIGH, 0x6d);
  1064. rt2x00_eeprom_write(rt2x00dev, EEPROM_BBPTUNE_R61, word);
  1065. EEPROM(rt2x00dev, "BBPtune r61: 0x%04x\n", word);
  1066. }
  1067. return 0;
  1068. }
  1069. static int rt2500usb_init_eeprom(struct rt2x00_dev *rt2x00dev)
  1070. {
  1071. u16 reg;
  1072. u16 value;
  1073. u16 eeprom;
  1074. /*
  1075. * Read EEPROM word for configuration.
  1076. */
  1077. rt2x00_eeprom_read(rt2x00dev, EEPROM_ANTENNA, &eeprom);
  1078. /*
  1079. * Identify RF chipset.
  1080. */
  1081. value = rt2x00_get_field16(eeprom, EEPROM_ANTENNA_RF_TYPE);
  1082. rt2500usb_register_read(rt2x00dev, MAC_CSR0, &reg);
  1083. rt2x00_set_chip(rt2x00dev, RT2570, value, reg);
  1084. if (!rt2x00_check_rev(&rt2x00dev->chip, 0)) {
  1085. ERROR(rt2x00dev, "Invalid RT chipset detected.\n");
  1086. return -ENODEV;
  1087. }
  1088. if (!rt2x00_rf(&rt2x00dev->chip, RF2522) &&
  1089. !rt2x00_rf(&rt2x00dev->chip, RF2523) &&
  1090. !rt2x00_rf(&rt2x00dev->chip, RF2524) &&
  1091. !rt2x00_rf(&rt2x00dev->chip, RF2525) &&
  1092. !rt2x00_rf(&rt2x00dev->chip, RF2525E) &&
  1093. !rt2x00_rf(&rt2x00dev->chip, RF5222)) {
  1094. ERROR(rt2x00dev, "Invalid RF chipset detected.\n");
  1095. return -ENODEV;
  1096. }
  1097. /*
  1098. * Identify default antenna configuration.
  1099. */
  1100. rt2x00dev->default_ant.tx =
  1101. rt2x00_get_field16(eeprom, EEPROM_ANTENNA_TX_DEFAULT);
  1102. rt2x00dev->default_ant.rx =
  1103. rt2x00_get_field16(eeprom, EEPROM_ANTENNA_RX_DEFAULT);
  1104. /*
  1105. * When the eeprom indicates SW_DIVERSITY use HW_DIVERSITY instead.
  1106. * I am not 100% sure about this, but the legacy drivers do not
  1107. * indicate antenna swapping in software is required when
  1108. * diversity is enabled.
  1109. */
  1110. if (rt2x00dev->default_ant.tx == ANTENNA_SW_DIVERSITY)
  1111. rt2x00dev->default_ant.tx = ANTENNA_HW_DIVERSITY;
  1112. if (rt2x00dev->default_ant.rx == ANTENNA_SW_DIVERSITY)
  1113. rt2x00dev->default_ant.rx = ANTENNA_HW_DIVERSITY;
  1114. /*
  1115. * Store led mode, for correct led behaviour.
  1116. */
  1117. rt2x00dev->led_mode =
  1118. rt2x00_get_field16(eeprom, EEPROM_ANTENNA_LED_MODE);
  1119. /*
  1120. * Check if the BBP tuning should be disabled.
  1121. */
  1122. rt2x00_eeprom_read(rt2x00dev, EEPROM_NIC, &eeprom);
  1123. if (rt2x00_get_field16(eeprom, EEPROM_NIC_DYN_BBP_TUNE))
  1124. __set_bit(CONFIG_DISABLE_LINK_TUNING, &rt2x00dev->flags);
  1125. /*
  1126. * Read the RSSI <-> dBm offset information.
  1127. */
  1128. rt2x00_eeprom_read(rt2x00dev, EEPROM_CALIBRATE_OFFSET, &eeprom);
  1129. rt2x00dev->rssi_offset =
  1130. rt2x00_get_field16(eeprom, EEPROM_CALIBRATE_OFFSET_RSSI);
  1131. return 0;
  1132. }
  1133. /*
  1134. * RF value list for RF2522
  1135. * Supports: 2.4 GHz
  1136. */
  1137. static const struct rf_channel rf_vals_bg_2522[] = {
  1138. { 1, 0x00002050, 0x000c1fda, 0x00000101, 0 },
  1139. { 2, 0x00002050, 0x000c1fee, 0x00000101, 0 },
  1140. { 3, 0x00002050, 0x000c2002, 0x00000101, 0 },
  1141. { 4, 0x00002050, 0x000c2016, 0x00000101, 0 },
  1142. { 5, 0x00002050, 0x000c202a, 0x00000101, 0 },
  1143. { 6, 0x00002050, 0x000c203e, 0x00000101, 0 },
  1144. { 7, 0x00002050, 0x000c2052, 0x00000101, 0 },
  1145. { 8, 0x00002050, 0x000c2066, 0x00000101, 0 },
  1146. { 9, 0x00002050, 0x000c207a, 0x00000101, 0 },
  1147. { 10, 0x00002050, 0x000c208e, 0x00000101, 0 },
  1148. { 11, 0x00002050, 0x000c20a2, 0x00000101, 0 },
  1149. { 12, 0x00002050, 0x000c20b6, 0x00000101, 0 },
  1150. { 13, 0x00002050, 0x000c20ca, 0x00000101, 0 },
  1151. { 14, 0x00002050, 0x000c20fa, 0x00000101, 0 },
  1152. };
  1153. /*
  1154. * RF value list for RF2523
  1155. * Supports: 2.4 GHz
  1156. */
  1157. static const struct rf_channel rf_vals_bg_2523[] = {
  1158. { 1, 0x00022010, 0x00000c9e, 0x000e0111, 0x00000a1b },
  1159. { 2, 0x00022010, 0x00000ca2, 0x000e0111, 0x00000a1b },
  1160. { 3, 0x00022010, 0x00000ca6, 0x000e0111, 0x00000a1b },
  1161. { 4, 0x00022010, 0x00000caa, 0x000e0111, 0x00000a1b },
  1162. { 5, 0x00022010, 0x00000cae, 0x000e0111, 0x00000a1b },
  1163. { 6, 0x00022010, 0x00000cb2, 0x000e0111, 0x00000a1b },
  1164. { 7, 0x00022010, 0x00000cb6, 0x000e0111, 0x00000a1b },
  1165. { 8, 0x00022010, 0x00000cba, 0x000e0111, 0x00000a1b },
  1166. { 9, 0x00022010, 0x00000cbe, 0x000e0111, 0x00000a1b },
  1167. { 10, 0x00022010, 0x00000d02, 0x000e0111, 0x00000a1b },
  1168. { 11, 0x00022010, 0x00000d06, 0x000e0111, 0x00000a1b },
  1169. { 12, 0x00022010, 0x00000d0a, 0x000e0111, 0x00000a1b },
  1170. { 13, 0x00022010, 0x00000d0e, 0x000e0111, 0x00000a1b },
  1171. { 14, 0x00022010, 0x00000d1a, 0x000e0111, 0x00000a03 },
  1172. };
  1173. /*
  1174. * RF value list for RF2524
  1175. * Supports: 2.4 GHz
  1176. */
  1177. static const struct rf_channel rf_vals_bg_2524[] = {
  1178. { 1, 0x00032020, 0x00000c9e, 0x00000101, 0x00000a1b },
  1179. { 2, 0x00032020, 0x00000ca2, 0x00000101, 0x00000a1b },
  1180. { 3, 0x00032020, 0x00000ca6, 0x00000101, 0x00000a1b },
  1181. { 4, 0x00032020, 0x00000caa, 0x00000101, 0x00000a1b },
  1182. { 5, 0x00032020, 0x00000cae, 0x00000101, 0x00000a1b },
  1183. { 6, 0x00032020, 0x00000cb2, 0x00000101, 0x00000a1b },
  1184. { 7, 0x00032020, 0x00000cb6, 0x00000101, 0x00000a1b },
  1185. { 8, 0x00032020, 0x00000cba, 0x00000101, 0x00000a1b },
  1186. { 9, 0x00032020, 0x00000cbe, 0x00000101, 0x00000a1b },
  1187. { 10, 0x00032020, 0x00000d02, 0x00000101, 0x00000a1b },
  1188. { 11, 0x00032020, 0x00000d06, 0x00000101, 0x00000a1b },
  1189. { 12, 0x00032020, 0x00000d0a, 0x00000101, 0x00000a1b },
  1190. { 13, 0x00032020, 0x00000d0e, 0x00000101, 0x00000a1b },
  1191. { 14, 0x00032020, 0x00000d1a, 0x00000101, 0x00000a03 },
  1192. };
  1193. /*
  1194. * RF value list for RF2525
  1195. * Supports: 2.4 GHz
  1196. */
  1197. static const struct rf_channel rf_vals_bg_2525[] = {
  1198. { 1, 0x00022020, 0x00080c9e, 0x00060111, 0x00000a1b },
  1199. { 2, 0x00022020, 0x00080ca2, 0x00060111, 0x00000a1b },
  1200. { 3, 0x00022020, 0x00080ca6, 0x00060111, 0x00000a1b },
  1201. { 4, 0x00022020, 0x00080caa, 0x00060111, 0x00000a1b },
  1202. { 5, 0x00022020, 0x00080cae, 0x00060111, 0x00000a1b },
  1203. { 6, 0x00022020, 0x00080cb2, 0x00060111, 0x00000a1b },
  1204. { 7, 0x00022020, 0x00080cb6, 0x00060111, 0x00000a1b },
  1205. { 8, 0x00022020, 0x00080cba, 0x00060111, 0x00000a1b },
  1206. { 9, 0x00022020, 0x00080cbe, 0x00060111, 0x00000a1b },
  1207. { 10, 0x00022020, 0x00080d02, 0x00060111, 0x00000a1b },
  1208. { 11, 0x00022020, 0x00080d06, 0x00060111, 0x00000a1b },
  1209. { 12, 0x00022020, 0x00080d0a, 0x00060111, 0x00000a1b },
  1210. { 13, 0x00022020, 0x00080d0e, 0x00060111, 0x00000a1b },
  1211. { 14, 0x00022020, 0x00080d1a, 0x00060111, 0x00000a03 },
  1212. };
  1213. /*
  1214. * RF value list for RF2525e
  1215. * Supports: 2.4 GHz
  1216. */
  1217. static const struct rf_channel rf_vals_bg_2525e[] = {
  1218. { 1, 0x00022010, 0x0000089a, 0x00060111, 0x00000e1b },
  1219. { 2, 0x00022010, 0x0000089e, 0x00060111, 0x00000e07 },
  1220. { 3, 0x00022010, 0x0000089e, 0x00060111, 0x00000e1b },
  1221. { 4, 0x00022010, 0x000008a2, 0x00060111, 0x00000e07 },
  1222. { 5, 0x00022010, 0x000008a2, 0x00060111, 0x00000e1b },
  1223. { 6, 0x00022010, 0x000008a6, 0x00060111, 0x00000e07 },
  1224. { 7, 0x00022010, 0x000008a6, 0x00060111, 0x00000e1b },
  1225. { 8, 0x00022010, 0x000008aa, 0x00060111, 0x00000e07 },
  1226. { 9, 0x00022010, 0x000008aa, 0x00060111, 0x00000e1b },
  1227. { 10, 0x00022010, 0x000008ae, 0x00060111, 0x00000e07 },
  1228. { 11, 0x00022010, 0x000008ae, 0x00060111, 0x00000e1b },
  1229. { 12, 0x00022010, 0x000008b2, 0x00060111, 0x00000e07 },
  1230. { 13, 0x00022010, 0x000008b2, 0x00060111, 0x00000e1b },
  1231. { 14, 0x00022010, 0x000008b6, 0x00060111, 0x00000e23 },
  1232. };
  1233. /*
  1234. * RF value list for RF5222
  1235. * Supports: 2.4 GHz & 5.2 GHz
  1236. */
  1237. static const struct rf_channel rf_vals_5222[] = {
  1238. { 1, 0x00022020, 0x00001136, 0x00000101, 0x00000a0b },
  1239. { 2, 0x00022020, 0x0000113a, 0x00000101, 0x00000a0b },
  1240. { 3, 0x00022020, 0x0000113e, 0x00000101, 0x00000a0b },
  1241. { 4, 0x00022020, 0x00001182, 0x00000101, 0x00000a0b },
  1242. { 5, 0x00022020, 0x00001186, 0x00000101, 0x00000a0b },
  1243. { 6, 0x00022020, 0x0000118a, 0x00000101, 0x00000a0b },
  1244. { 7, 0x00022020, 0x0000118e, 0x00000101, 0x00000a0b },
  1245. { 8, 0x00022020, 0x00001192, 0x00000101, 0x00000a0b },
  1246. { 9, 0x00022020, 0x00001196, 0x00000101, 0x00000a0b },
  1247. { 10, 0x00022020, 0x0000119a, 0x00000101, 0x00000a0b },
  1248. { 11, 0x00022020, 0x0000119e, 0x00000101, 0x00000a0b },
  1249. { 12, 0x00022020, 0x000011a2, 0x00000101, 0x00000a0b },
  1250. { 13, 0x00022020, 0x000011a6, 0x00000101, 0x00000a0b },
  1251. { 14, 0x00022020, 0x000011ae, 0x00000101, 0x00000a1b },
  1252. /* 802.11 UNI / HyperLan 2 */
  1253. { 36, 0x00022010, 0x00018896, 0x00000101, 0x00000a1f },
  1254. { 40, 0x00022010, 0x0001889a, 0x00000101, 0x00000a1f },
  1255. { 44, 0x00022010, 0x0001889e, 0x00000101, 0x00000a1f },
  1256. { 48, 0x00022010, 0x000188a2, 0x00000101, 0x00000a1f },
  1257. { 52, 0x00022010, 0x000188a6, 0x00000101, 0x00000a1f },
  1258. { 66, 0x00022010, 0x000188aa, 0x00000101, 0x00000a1f },
  1259. { 60, 0x00022010, 0x000188ae, 0x00000101, 0x00000a1f },
  1260. { 64, 0x00022010, 0x000188b2, 0x00000101, 0x00000a1f },
  1261. /* 802.11 HyperLan 2 */
  1262. { 100, 0x00022010, 0x00008802, 0x00000101, 0x00000a0f },
  1263. { 104, 0x00022010, 0x00008806, 0x00000101, 0x00000a0f },
  1264. { 108, 0x00022010, 0x0000880a, 0x00000101, 0x00000a0f },
  1265. { 112, 0x00022010, 0x0000880e, 0x00000101, 0x00000a0f },
  1266. { 116, 0x00022010, 0x00008812, 0x00000101, 0x00000a0f },
  1267. { 120, 0x00022010, 0x00008816, 0x00000101, 0x00000a0f },
  1268. { 124, 0x00022010, 0x0000881a, 0x00000101, 0x00000a0f },
  1269. { 128, 0x00022010, 0x0000881e, 0x00000101, 0x00000a0f },
  1270. { 132, 0x00022010, 0x00008822, 0x00000101, 0x00000a0f },
  1271. { 136, 0x00022010, 0x00008826, 0x00000101, 0x00000a0f },
  1272. /* 802.11 UNII */
  1273. { 140, 0x00022010, 0x0000882a, 0x00000101, 0x00000a0f },
  1274. { 149, 0x00022020, 0x000090a6, 0x00000101, 0x00000a07 },
  1275. { 153, 0x00022020, 0x000090ae, 0x00000101, 0x00000a07 },
  1276. { 157, 0x00022020, 0x000090b6, 0x00000101, 0x00000a07 },
  1277. { 161, 0x00022020, 0x000090be, 0x00000101, 0x00000a07 },
  1278. };
  1279. static void rt2500usb_probe_hw_mode(struct rt2x00_dev *rt2x00dev)
  1280. {
  1281. struct hw_mode_spec *spec = &rt2x00dev->spec;
  1282. u8 *txpower;
  1283. unsigned int i;
  1284. /*
  1285. * Initialize all hw fields.
  1286. */
  1287. rt2x00dev->hw->flags =
  1288. IEEE80211_HW_HOST_GEN_BEACON_TEMPLATE |
  1289. IEEE80211_HW_RX_INCLUDES_FCS |
  1290. IEEE80211_HW_HOST_BROADCAST_PS_BUFFERING;
  1291. rt2x00dev->hw->extra_tx_headroom = TXD_DESC_SIZE;
  1292. rt2x00dev->hw->max_signal = MAX_SIGNAL;
  1293. rt2x00dev->hw->max_rssi = MAX_RX_SSI;
  1294. rt2x00dev->hw->queues = 2;
  1295. SET_IEEE80211_DEV(rt2x00dev->hw, &rt2x00dev_usb(rt2x00dev)->dev);
  1296. SET_IEEE80211_PERM_ADDR(rt2x00dev->hw,
  1297. rt2x00_eeprom_addr(rt2x00dev,
  1298. EEPROM_MAC_ADDR_0));
  1299. /*
  1300. * Convert tx_power array in eeprom.
  1301. */
  1302. txpower = rt2x00_eeprom_addr(rt2x00dev, EEPROM_TXPOWER_START);
  1303. for (i = 0; i < 14; i++)
  1304. txpower[i] = TXPOWER_FROM_DEV(txpower[i]);
  1305. /*
  1306. * Initialize hw_mode information.
  1307. */
  1308. spec->num_modes = 2;
  1309. spec->num_rates = 12;
  1310. spec->tx_power_a = NULL;
  1311. spec->tx_power_bg = txpower;
  1312. spec->tx_power_default = DEFAULT_TXPOWER;
  1313. if (rt2x00_rf(&rt2x00dev->chip, RF2522)) {
  1314. spec->num_channels = ARRAY_SIZE(rf_vals_bg_2522);
  1315. spec->channels = rf_vals_bg_2522;
  1316. } else if (rt2x00_rf(&rt2x00dev->chip, RF2523)) {
  1317. spec->num_channels = ARRAY_SIZE(rf_vals_bg_2523);
  1318. spec->channels = rf_vals_bg_2523;
  1319. } else if (rt2x00_rf(&rt2x00dev->chip, RF2524)) {
  1320. spec->num_channels = ARRAY_SIZE(rf_vals_bg_2524);
  1321. spec->channels = rf_vals_bg_2524;
  1322. } else if (rt2x00_rf(&rt2x00dev->chip, RF2525)) {
  1323. spec->num_channels = ARRAY_SIZE(rf_vals_bg_2525);
  1324. spec->channels = rf_vals_bg_2525;
  1325. } else if (rt2x00_rf(&rt2x00dev->chip, RF2525E)) {
  1326. spec->num_channels = ARRAY_SIZE(rf_vals_bg_2525e);
  1327. spec->channels = rf_vals_bg_2525e;
  1328. } else if (rt2x00_rf(&rt2x00dev->chip, RF5222)) {
  1329. spec->num_channels = ARRAY_SIZE(rf_vals_5222);
  1330. spec->channels = rf_vals_5222;
  1331. spec->num_modes = 3;
  1332. }
  1333. }
  1334. static int rt2500usb_probe_hw(struct rt2x00_dev *rt2x00dev)
  1335. {
  1336. int retval;
  1337. /*
  1338. * Allocate eeprom data.
  1339. */
  1340. retval = rt2500usb_validate_eeprom(rt2x00dev);
  1341. if (retval)
  1342. return retval;
  1343. retval = rt2500usb_init_eeprom(rt2x00dev);
  1344. if (retval)
  1345. return retval;
  1346. /*
  1347. * Initialize hw specifications.
  1348. */
  1349. rt2500usb_probe_hw_mode(rt2x00dev);
  1350. /*
  1351. * This device requires the beacon ring
  1352. */
  1353. __set_bit(DRIVER_REQUIRE_BEACON_RING, &rt2x00dev->flags);
  1354. /*
  1355. * Set the rssi offset.
  1356. */
  1357. rt2x00dev->rssi_offset = DEFAULT_RSSI_OFFSET;
  1358. return 0;
  1359. }
  1360. /*
  1361. * IEEE80211 stack callback functions.
  1362. */
  1363. static void rt2500usb_configure_filter(struct ieee80211_hw *hw,
  1364. unsigned int changed_flags,
  1365. unsigned int *total_flags,
  1366. int mc_count,
  1367. struct dev_addr_list *mc_list)
  1368. {
  1369. struct rt2x00_dev *rt2x00dev = hw->priv;
  1370. struct interface *intf = &rt2x00dev->interface;
  1371. u16 reg;
  1372. /*
  1373. * Mask off any flags we are going to ignore from
  1374. * the total_flags field.
  1375. */
  1376. *total_flags &=
  1377. FIF_ALLMULTI |
  1378. FIF_FCSFAIL |
  1379. FIF_PLCPFAIL |
  1380. FIF_CONTROL |
  1381. FIF_OTHER_BSS |
  1382. FIF_PROMISC_IN_BSS;
  1383. /*
  1384. * Apply some rules to the filters:
  1385. * - Some filters imply different filters to be set.
  1386. * - Some things we can't filter out at all.
  1387. * - Some filters are set based on interface type.
  1388. */
  1389. if (mc_count)
  1390. *total_flags |= FIF_ALLMULTI;
  1391. if (*total_flags & FIF_OTHER_BSS ||
  1392. *total_flags & FIF_PROMISC_IN_BSS)
  1393. *total_flags |= FIF_PROMISC_IN_BSS | FIF_OTHER_BSS;
  1394. if (is_interface_type(intf, IEEE80211_IF_TYPE_AP))
  1395. *total_flags |= FIF_PROMISC_IN_BSS;
  1396. /*
  1397. * Check if there is any work left for us.
  1398. */
  1399. if (intf->filter == *total_flags)
  1400. return;
  1401. intf->filter = *total_flags;
  1402. /*
  1403. * When in atomic context, reschedule and let rt2x00lib
  1404. * call this function again.
  1405. */
  1406. if (in_atomic()) {
  1407. queue_work(rt2x00dev->hw->workqueue, &rt2x00dev->filter_work);
  1408. return;
  1409. }
  1410. /*
  1411. * Start configuration steps.
  1412. * Note that the version error will always be dropped
  1413. * and broadcast frames will always be accepted since
  1414. * there is no filter for it at this time.
  1415. */
  1416. rt2500usb_register_read(rt2x00dev, TXRX_CSR2, &reg);
  1417. rt2x00_set_field16(&reg, TXRX_CSR2_DROP_CRC,
  1418. !(*total_flags & FIF_FCSFAIL));
  1419. rt2x00_set_field16(&reg, TXRX_CSR2_DROP_PHYSICAL,
  1420. !(*total_flags & FIF_PLCPFAIL));
  1421. rt2x00_set_field16(&reg, TXRX_CSR2_DROP_CONTROL,
  1422. !(*total_flags & FIF_CONTROL));
  1423. rt2x00_set_field16(&reg, TXRX_CSR2_DROP_NOT_TO_ME,
  1424. !(*total_flags & FIF_PROMISC_IN_BSS));
  1425. rt2x00_set_field16(&reg, TXRX_CSR2_DROP_TODS,
  1426. !(*total_flags & FIF_PROMISC_IN_BSS));
  1427. rt2x00_set_field16(&reg, TXRX_CSR2_DROP_VERSION_ERROR, 1);
  1428. rt2x00_set_field16(&reg, TXRX_CSR2_DROP_MULTICAST,
  1429. !(*total_flags & FIF_ALLMULTI));
  1430. rt2x00_set_field16(&reg, TXRX_CSR2_DROP_BROADCAST, 0);
  1431. rt2500usb_register_write(rt2x00dev, TXRX_CSR2, reg);
  1432. }
  1433. static int rt2500usb_beacon_update(struct ieee80211_hw *hw,
  1434. struct sk_buff *skb,
  1435. struct ieee80211_tx_control *control)
  1436. {
  1437. struct rt2x00_dev *rt2x00dev = hw->priv;
  1438. struct usb_device *usb_dev =
  1439. interface_to_usbdev(rt2x00dev_usb(rt2x00dev));
  1440. struct data_ring *ring =
  1441. rt2x00lib_get_ring(rt2x00dev, IEEE80211_TX_QUEUE_BEACON);
  1442. struct data_entry *beacon;
  1443. struct data_entry *guardian;
  1444. int pipe = usb_sndbulkpipe(usb_dev, 1);
  1445. int length;
  1446. /*
  1447. * Just in case the ieee80211 doesn't set this,
  1448. * but we need this queue set for the descriptor
  1449. * initialization.
  1450. */
  1451. control->queue = IEEE80211_TX_QUEUE_BEACON;
  1452. /*
  1453. * Obtain 2 entries, one for the guardian byte,
  1454. * the second for the actual beacon.
  1455. */
  1456. guardian = rt2x00_get_data_entry(ring);
  1457. rt2x00_ring_index_inc(ring);
  1458. beacon = rt2x00_get_data_entry(ring);
  1459. /*
  1460. * First we create the beacon.
  1461. */
  1462. skb_push(skb, ring->desc_size);
  1463. memset(skb->data, 0, ring->desc_size);
  1464. rt2x00lib_write_tx_desc(rt2x00dev, (struct data_desc *)skb->data,
  1465. (struct ieee80211_hdr *)(skb->data +
  1466. ring->desc_size),
  1467. skb->len - ring->desc_size, control);
  1468. length = rt2500usb_get_tx_data_len(rt2x00dev, skb);
  1469. usb_fill_bulk_urb(beacon->priv, usb_dev, pipe,
  1470. skb->data, length, rt2500usb_beacondone, beacon);
  1471. beacon->skb = skb;
  1472. /*
  1473. * Second we need to create the guardian byte.
  1474. * We only need a single byte, so lets recycle
  1475. * the 'flags' field we are not using for beacons.
  1476. */
  1477. guardian->flags = 0;
  1478. usb_fill_bulk_urb(guardian->priv, usb_dev, pipe,
  1479. &guardian->flags, 1, rt2500usb_beacondone, guardian);
  1480. /*
  1481. * Send out the guardian byte.
  1482. */
  1483. usb_submit_urb(guardian->priv, GFP_ATOMIC);
  1484. /*
  1485. * Enable beacon generation.
  1486. */
  1487. rt2500usb_kick_tx_queue(rt2x00dev, IEEE80211_TX_QUEUE_BEACON);
  1488. return 0;
  1489. }
  1490. static const struct ieee80211_ops rt2500usb_mac80211_ops = {
  1491. .tx = rt2x00mac_tx,
  1492. .start = rt2x00mac_start,
  1493. .stop = rt2x00mac_stop,
  1494. .add_interface = rt2x00mac_add_interface,
  1495. .remove_interface = rt2x00mac_remove_interface,
  1496. .config = rt2x00mac_config,
  1497. .config_interface = rt2x00mac_config_interface,
  1498. .configure_filter = rt2500usb_configure_filter,
  1499. .get_stats = rt2x00mac_get_stats,
  1500. .erp_ie_changed = rt2x00mac_erp_ie_changed,
  1501. .conf_tx = rt2x00mac_conf_tx,
  1502. .get_tx_stats = rt2x00mac_get_tx_stats,
  1503. .beacon_update = rt2500usb_beacon_update,
  1504. };
  1505. static const struct rt2x00lib_ops rt2500usb_rt2x00_ops = {
  1506. .probe_hw = rt2500usb_probe_hw,
  1507. .initialize = rt2x00usb_initialize,
  1508. .uninitialize = rt2x00usb_uninitialize,
  1509. .set_device_state = rt2500usb_set_device_state,
  1510. .link_stats = rt2500usb_link_stats,
  1511. .reset_tuner = rt2500usb_reset_tuner,
  1512. .link_tuner = rt2500usb_link_tuner,
  1513. .write_tx_desc = rt2500usb_write_tx_desc,
  1514. .write_tx_data = rt2x00usb_write_tx_data,
  1515. .get_tx_data_len = rt2500usb_get_tx_data_len,
  1516. .kick_tx_queue = rt2500usb_kick_tx_queue,
  1517. .fill_rxdone = rt2500usb_fill_rxdone,
  1518. .config_mac_addr = rt2500usb_config_mac_addr,
  1519. .config_bssid = rt2500usb_config_bssid,
  1520. .config_type = rt2500usb_config_type,
  1521. .config_preamble = rt2500usb_config_preamble,
  1522. .config = rt2500usb_config,
  1523. };
  1524. static const struct rt2x00_ops rt2500usb_ops = {
  1525. .name = DRV_NAME,
  1526. .rxd_size = RXD_DESC_SIZE,
  1527. .txd_size = TXD_DESC_SIZE,
  1528. .eeprom_size = EEPROM_SIZE,
  1529. .rf_size = RF_SIZE,
  1530. .lib = &rt2500usb_rt2x00_ops,
  1531. .hw = &rt2500usb_mac80211_ops,
  1532. #ifdef CONFIG_RT2X00_LIB_DEBUGFS
  1533. .debugfs = &rt2500usb_rt2x00debug,
  1534. #endif /* CONFIG_RT2X00_LIB_DEBUGFS */
  1535. };
  1536. /*
  1537. * rt2500usb module information.
  1538. */
  1539. static struct usb_device_id rt2500usb_device_table[] = {
  1540. /* ASUS */
  1541. { USB_DEVICE(0x0b05, 0x1706), USB_DEVICE_DATA(&rt2500usb_ops) },
  1542. { USB_DEVICE(0x0b05, 0x1707), USB_DEVICE_DATA(&rt2500usb_ops) },
  1543. /* Belkin */
  1544. { USB_DEVICE(0x050d, 0x7050), USB_DEVICE_DATA(&rt2500usb_ops) },
  1545. { USB_DEVICE(0x050d, 0x7051), USB_DEVICE_DATA(&rt2500usb_ops) },
  1546. { USB_DEVICE(0x050d, 0x705a), USB_DEVICE_DATA(&rt2500usb_ops) },
  1547. /* Cisco Systems */
  1548. { USB_DEVICE(0x13b1, 0x000d), USB_DEVICE_DATA(&rt2500usb_ops) },
  1549. { USB_DEVICE(0x13b1, 0x0011), USB_DEVICE_DATA(&rt2500usb_ops) },
  1550. { USB_DEVICE(0x13b1, 0x001a), USB_DEVICE_DATA(&rt2500usb_ops) },
  1551. /* Conceptronic */
  1552. { USB_DEVICE(0x14b2, 0x3c02), USB_DEVICE_DATA(&rt2500usb_ops) },
  1553. /* D-LINK */
  1554. { USB_DEVICE(0x2001, 0x3c00), USB_DEVICE_DATA(&rt2500usb_ops) },
  1555. /* Gigabyte */
  1556. { USB_DEVICE(0x1044, 0x8001), USB_DEVICE_DATA(&rt2500usb_ops) },
  1557. { USB_DEVICE(0x1044, 0x8007), USB_DEVICE_DATA(&rt2500usb_ops) },
  1558. /* Hercules */
  1559. { USB_DEVICE(0x06f8, 0xe000), USB_DEVICE_DATA(&rt2500usb_ops) },
  1560. /* Melco */
  1561. { USB_DEVICE(0x0411, 0x0066), USB_DEVICE_DATA(&rt2500usb_ops) },
  1562. { USB_DEVICE(0x0411, 0x0067), USB_DEVICE_DATA(&rt2500usb_ops) },
  1563. { USB_DEVICE(0x0411, 0x008b), USB_DEVICE_DATA(&rt2500usb_ops) },
  1564. { USB_DEVICE(0x0411, 0x0097), USB_DEVICE_DATA(&rt2500usb_ops) },
  1565. /* MSI */
  1566. { USB_DEVICE(0x0db0, 0x6861), USB_DEVICE_DATA(&rt2500usb_ops) },
  1567. { USB_DEVICE(0x0db0, 0x6865), USB_DEVICE_DATA(&rt2500usb_ops) },
  1568. { USB_DEVICE(0x0db0, 0x6869), USB_DEVICE_DATA(&rt2500usb_ops) },
  1569. /* Ralink */
  1570. { USB_DEVICE(0x148f, 0x1706), USB_DEVICE_DATA(&rt2500usb_ops) },
  1571. { USB_DEVICE(0x148f, 0x2570), USB_DEVICE_DATA(&rt2500usb_ops) },
  1572. { USB_DEVICE(0x148f, 0x2573), USB_DEVICE_DATA(&rt2500usb_ops) },
  1573. { USB_DEVICE(0x148f, 0x9020), USB_DEVICE_DATA(&rt2500usb_ops) },
  1574. /* Siemens */
  1575. { USB_DEVICE(0x0681, 0x3c06), USB_DEVICE_DATA(&rt2500usb_ops) },
  1576. /* SMC */
  1577. { USB_DEVICE(0x0707, 0xee13), USB_DEVICE_DATA(&rt2500usb_ops) },
  1578. /* Spairon */
  1579. { USB_DEVICE(0x114b, 0x0110), USB_DEVICE_DATA(&rt2500usb_ops) },
  1580. /* Trust */
  1581. { USB_DEVICE(0x0eb0, 0x9020), USB_DEVICE_DATA(&rt2500usb_ops) },
  1582. /* Zinwell */
  1583. { USB_DEVICE(0x5a57, 0x0260), USB_DEVICE_DATA(&rt2500usb_ops) },
  1584. { 0, }
  1585. };
  1586. MODULE_AUTHOR(DRV_PROJECT);
  1587. MODULE_VERSION(DRV_VERSION);
  1588. MODULE_DESCRIPTION("Ralink RT2500 USB Wireless LAN driver.");
  1589. MODULE_SUPPORTED_DEVICE("Ralink RT2570 USB chipset based cards");
  1590. MODULE_DEVICE_TABLE(usb, rt2500usb_device_table);
  1591. MODULE_LICENSE("GPL");
  1592. static struct usb_driver rt2500usb_driver = {
  1593. .name = DRV_NAME,
  1594. .id_table = rt2500usb_device_table,
  1595. .probe = rt2x00usb_probe,
  1596. .disconnect = rt2x00usb_disconnect,
  1597. .suspend = rt2x00usb_suspend,
  1598. .resume = rt2x00usb_resume,
  1599. };
  1600. static int __init rt2500usb_init(void)
  1601. {
  1602. return usb_register(&rt2500usb_driver);
  1603. }
  1604. static void __exit rt2500usb_exit(void)
  1605. {
  1606. usb_deregister(&rt2500usb_driver);
  1607. }
  1608. module_init(rt2500usb_init);
  1609. module_exit(rt2500usb_exit);