bcm43xx_phy.c 69 KB

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  1. /*
  2. Broadcom BCM43xx wireless driver
  3. Copyright (c) 2005 Martin Langer <martin-langer@gmx.de>,
  4. Stefano Brivio <st3@riseup.net>
  5. Michael Buesch <mbuesch@freenet.de>
  6. Danny van Dyk <kugelfang@gentoo.org>
  7. Andreas Jaggi <andreas.jaggi@waterwave.ch>
  8. Some parts of the code in this file are derived from the ipw2200
  9. driver Copyright(c) 2003 - 2004 Intel Corporation.
  10. This program is free software; you can redistribute it and/or modify
  11. it under the terms of the GNU General Public License as published by
  12. the Free Software Foundation; either version 2 of the License, or
  13. (at your option) any later version.
  14. This program is distributed in the hope that it will be useful,
  15. but WITHOUT ANY WARRANTY; without even the implied warranty of
  16. MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  17. GNU General Public License for more details.
  18. You should have received a copy of the GNU General Public License
  19. along with this program; see the file COPYING. If not, write to
  20. the Free Software Foundation, Inc., 51 Franklin Steet, Fifth Floor,
  21. Boston, MA 02110-1301, USA.
  22. */
  23. #include <linux/delay.h>
  24. #include <linux/pci.h>
  25. #include <linux/types.h>
  26. #include "bcm43xx.h"
  27. #include "bcm43xx_phy.h"
  28. #include "bcm43xx_main.h"
  29. #include "bcm43xx_radio.h"
  30. #include "bcm43xx_ilt.h"
  31. #include "bcm43xx_power.h"
  32. static const s8 bcm43xx_tssi2dbm_b_table[] = {
  33. 0x4D, 0x4C, 0x4B, 0x4A,
  34. 0x4A, 0x49, 0x48, 0x47,
  35. 0x47, 0x46, 0x45, 0x45,
  36. 0x44, 0x43, 0x42, 0x42,
  37. 0x41, 0x40, 0x3F, 0x3E,
  38. 0x3D, 0x3C, 0x3B, 0x3A,
  39. 0x39, 0x38, 0x37, 0x36,
  40. 0x35, 0x34, 0x32, 0x31,
  41. 0x30, 0x2F, 0x2D, 0x2C,
  42. 0x2B, 0x29, 0x28, 0x26,
  43. 0x25, 0x23, 0x21, 0x1F,
  44. 0x1D, 0x1A, 0x17, 0x14,
  45. 0x10, 0x0C, 0x06, 0x00,
  46. -7, -7, -7, -7,
  47. -7, -7, -7, -7,
  48. -7, -7, -7, -7,
  49. };
  50. static const s8 bcm43xx_tssi2dbm_g_table[] = {
  51. 77, 77, 77, 76,
  52. 76, 76, 75, 75,
  53. 74, 74, 73, 73,
  54. 73, 72, 72, 71,
  55. 71, 70, 70, 69,
  56. 68, 68, 67, 67,
  57. 66, 65, 65, 64,
  58. 63, 63, 62, 61,
  59. 60, 59, 58, 57,
  60. 56, 55, 54, 53,
  61. 52, 50, 49, 47,
  62. 45, 43, 40, 37,
  63. 33, 28, 22, 14,
  64. 5, -7, -20, -20,
  65. -20, -20, -20, -20,
  66. -20, -20, -20, -20,
  67. };
  68. static void bcm43xx_phy_initg(struct bcm43xx_private *bcm);
  69. static inline
  70. void bcm43xx_voluntary_preempt(void)
  71. {
  72. assert(!in_atomic() && !in_irq() &&
  73. !in_interrupt() && !irqs_disabled());
  74. #ifndef CONFIG_PREEMPT
  75. cond_resched();
  76. #endif /* CONFIG_PREEMPT */
  77. }
  78. void bcm43xx_raw_phy_lock(struct bcm43xx_private *bcm)
  79. {
  80. struct bcm43xx_phyinfo *phy = bcm43xx_current_phy(bcm);
  81. assert(irqs_disabled());
  82. if (bcm43xx_read32(bcm, BCM43xx_MMIO_STATUS_BITFIELD) == 0x00000000) {
  83. phy->is_locked = 0;
  84. return;
  85. }
  86. if (bcm->current_core->rev < 3) {
  87. bcm43xx_mac_suspend(bcm);
  88. spin_lock(&phy->lock);
  89. } else {
  90. if (bcm->ieee->iw_mode != IW_MODE_MASTER)
  91. bcm43xx_power_saving_ctl_bits(bcm, -1, 1);
  92. }
  93. phy->is_locked = 1;
  94. }
  95. void bcm43xx_raw_phy_unlock(struct bcm43xx_private *bcm)
  96. {
  97. struct bcm43xx_phyinfo *phy = bcm43xx_current_phy(bcm);
  98. assert(irqs_disabled());
  99. if (bcm->current_core->rev < 3) {
  100. if (phy->is_locked) {
  101. spin_unlock(&phy->lock);
  102. bcm43xx_mac_enable(bcm);
  103. }
  104. } else {
  105. if (bcm->ieee->iw_mode != IW_MODE_MASTER)
  106. bcm43xx_power_saving_ctl_bits(bcm, -1, -1);
  107. }
  108. phy->is_locked = 0;
  109. }
  110. u16 bcm43xx_phy_read(struct bcm43xx_private *bcm, u16 offset)
  111. {
  112. bcm43xx_write16(bcm, BCM43xx_MMIO_PHY_CONTROL, offset);
  113. return bcm43xx_read16(bcm, BCM43xx_MMIO_PHY_DATA);
  114. }
  115. void bcm43xx_phy_write(struct bcm43xx_private *bcm, u16 offset, u16 val)
  116. {
  117. bcm43xx_write16(bcm, BCM43xx_MMIO_PHY_CONTROL, offset);
  118. mmiowb();
  119. bcm43xx_write16(bcm, BCM43xx_MMIO_PHY_DATA, val);
  120. }
  121. void bcm43xx_phy_calibrate(struct bcm43xx_private *bcm)
  122. {
  123. struct bcm43xx_phyinfo *phy = bcm43xx_current_phy(bcm);
  124. bcm43xx_read32(bcm, BCM43xx_MMIO_STATUS_BITFIELD); /* Dummy read. */
  125. if (phy->calibrated)
  126. return;
  127. if (phy->type == BCM43xx_PHYTYPE_G && phy->rev == 1) {
  128. bcm43xx_wireless_core_reset(bcm, 0);
  129. bcm43xx_phy_initg(bcm);
  130. bcm43xx_wireless_core_reset(bcm, 1);
  131. }
  132. phy->calibrated = 1;
  133. }
  134. /* Connect the PHY
  135. * http://bcm-specs.sipsolutions.net/SetPHY
  136. */
  137. int bcm43xx_phy_connect(struct bcm43xx_private *bcm, int connect)
  138. {
  139. struct bcm43xx_phyinfo *phy = bcm43xx_current_phy(bcm);
  140. u32 flags;
  141. if (bcm->current_core->rev < 5)
  142. goto out;
  143. flags = bcm43xx_read32(bcm, BCM43xx_CIR_SBTMSTATEHIGH);
  144. if (connect) {
  145. if (!(flags & 0x00010000))
  146. return -ENODEV;
  147. flags = bcm43xx_read32(bcm, BCM43xx_CIR_SBTMSTATELOW);
  148. flags |= (0x800 << 18);
  149. bcm43xx_write32(bcm, BCM43xx_CIR_SBTMSTATELOW, flags);
  150. } else {
  151. if (!(flags & 0x00020000))
  152. return -ENODEV;
  153. flags = bcm43xx_read32(bcm, BCM43xx_CIR_SBTMSTATELOW);
  154. flags &= ~(0x800 << 18);
  155. bcm43xx_write32(bcm, BCM43xx_CIR_SBTMSTATELOW, flags);
  156. }
  157. out:
  158. phy->connected = connect;
  159. if (connect)
  160. dprintk(KERN_INFO PFX "PHY connected\n");
  161. else
  162. dprintk(KERN_INFO PFX "PHY disconnected\n");
  163. return 0;
  164. }
  165. /* intialize B PHY power control
  166. * as described in http://bcm-specs.sipsolutions.net/InitPowerControl
  167. */
  168. static void bcm43xx_phy_init_pctl(struct bcm43xx_private *bcm)
  169. {
  170. struct bcm43xx_phyinfo *phy = bcm43xx_current_phy(bcm);
  171. struct bcm43xx_radioinfo *radio = bcm43xx_current_radio(bcm);
  172. u16 saved_batt = 0, saved_ratt = 0, saved_txctl1 = 0;
  173. int must_reset_txpower = 0;
  174. assert(phy->type != BCM43xx_PHYTYPE_A);
  175. if ((bcm->board_vendor == PCI_VENDOR_ID_BROADCOM) &&
  176. (bcm->board_type == 0x0416))
  177. return;
  178. bcm43xx_phy_write(bcm, 0x0028, 0x8018);
  179. bcm43xx_write16(bcm, 0x03E6, bcm43xx_read16(bcm, 0x03E6) & 0xFFDF);
  180. if (phy->type == BCM43xx_PHYTYPE_G) {
  181. if (!phy->connected)
  182. return;
  183. bcm43xx_phy_write(bcm, 0x047A, 0xC111);
  184. }
  185. if (phy->savedpctlreg != 0xFFFF)
  186. return;
  187. if (phy->type == BCM43xx_PHYTYPE_B &&
  188. phy->rev >= 2 &&
  189. radio->version == 0x2050) {
  190. bcm43xx_radio_write16(bcm, 0x0076,
  191. bcm43xx_radio_read16(bcm, 0x0076) | 0x0084);
  192. } else {
  193. saved_batt = radio->baseband_atten;
  194. saved_ratt = radio->radio_atten;
  195. saved_txctl1 = radio->txctl1;
  196. if ((radio->revision >= 6) && (radio->revision <= 8)
  197. && /*FIXME: incomplete specs for 5 < revision < 9 */ 0)
  198. bcm43xx_radio_set_txpower_bg(bcm, 0xB, 0x1F, 0);
  199. else
  200. bcm43xx_radio_set_txpower_bg(bcm, 0xB, 9, 0);
  201. must_reset_txpower = 1;
  202. }
  203. bcm43xx_dummy_transmission(bcm);
  204. phy->savedpctlreg = bcm43xx_phy_read(bcm, BCM43xx_PHY_G_PCTL);
  205. if (must_reset_txpower)
  206. bcm43xx_radio_set_txpower_bg(bcm, saved_batt, saved_ratt, saved_txctl1);
  207. else
  208. bcm43xx_radio_write16(bcm, 0x0076, bcm43xx_radio_read16(bcm, 0x0076) & 0xFF7B);
  209. bcm43xx_radio_clear_tssi(bcm);
  210. }
  211. static void bcm43xx_phy_agcsetup(struct bcm43xx_private *bcm)
  212. {
  213. struct bcm43xx_phyinfo *phy = bcm43xx_current_phy(bcm);
  214. u16 offset = 0x0000;
  215. if (phy->rev == 1)
  216. offset = 0x4C00;
  217. bcm43xx_ilt_write(bcm, offset, 0x00FE);
  218. bcm43xx_ilt_write(bcm, offset + 1, 0x000D);
  219. bcm43xx_ilt_write(bcm, offset + 2, 0x0013);
  220. bcm43xx_ilt_write(bcm, offset + 3, 0x0019);
  221. if (phy->rev == 1) {
  222. bcm43xx_ilt_write(bcm, 0x1800, 0x2710);
  223. bcm43xx_ilt_write(bcm, 0x1801, 0x9B83);
  224. bcm43xx_ilt_write(bcm, 0x1802, 0x9B83);
  225. bcm43xx_ilt_write(bcm, 0x1803, 0x0F8D);
  226. bcm43xx_phy_write(bcm, 0x0455, 0x0004);
  227. }
  228. bcm43xx_phy_write(bcm, 0x04A5, (bcm43xx_phy_read(bcm, 0x04A5) & 0x00FF) | 0x5700);
  229. bcm43xx_phy_write(bcm, 0x041A, (bcm43xx_phy_read(bcm, 0x041A) & 0xFF80) | 0x000F);
  230. bcm43xx_phy_write(bcm, 0x041A, (bcm43xx_phy_read(bcm, 0x041A) & 0xC07F) | 0x2B80);
  231. bcm43xx_phy_write(bcm, 0x048C, (bcm43xx_phy_read(bcm, 0x048C) & 0xF0FF) | 0x0300);
  232. bcm43xx_radio_write16(bcm, 0x007A, bcm43xx_radio_read16(bcm, 0x007A) | 0x0008);
  233. bcm43xx_phy_write(bcm, 0x04A0, (bcm43xx_phy_read(bcm, 0x04A0) & 0xFFF0) | 0x0008);
  234. bcm43xx_phy_write(bcm, 0x04A1, (bcm43xx_phy_read(bcm, 0x04A1) & 0xF0FF) | 0x0600);
  235. bcm43xx_phy_write(bcm, 0x04A2, (bcm43xx_phy_read(bcm, 0x04A2) & 0xF0FF) | 0x0700);
  236. bcm43xx_phy_write(bcm, 0x04A0, (bcm43xx_phy_read(bcm, 0x04A0) & 0xF0FF) | 0x0100);
  237. if (phy->rev == 1)
  238. bcm43xx_phy_write(bcm, 0x04A2, (bcm43xx_phy_read(bcm, 0x04A2) & 0xFFF0) | 0x0007);
  239. bcm43xx_phy_write(bcm, 0x0488, (bcm43xx_phy_read(bcm, 0x0488) & 0xFF00) | 0x001C);
  240. bcm43xx_phy_write(bcm, 0x0488, (bcm43xx_phy_read(bcm, 0x0488) & 0xC0FF) | 0x0200);
  241. bcm43xx_phy_write(bcm, 0x0496, (bcm43xx_phy_read(bcm, 0x0496) & 0xFF00) | 0x001C);
  242. bcm43xx_phy_write(bcm, 0x0489, (bcm43xx_phy_read(bcm, 0x0489) & 0xFF00) | 0x0020);
  243. bcm43xx_phy_write(bcm, 0x0489, (bcm43xx_phy_read(bcm, 0x0489) & 0xC0FF) | 0x0200);
  244. bcm43xx_phy_write(bcm, 0x0482, (bcm43xx_phy_read(bcm, 0x0482) & 0xFF00) | 0x002E);
  245. bcm43xx_phy_write(bcm, 0x0496, (bcm43xx_phy_read(bcm, 0x0496) & 0x00FF) | 0x1A00);
  246. bcm43xx_phy_write(bcm, 0x0481, (bcm43xx_phy_read(bcm, 0x0481) & 0xFF00) | 0x0028);
  247. bcm43xx_phy_write(bcm, 0x0481, (bcm43xx_phy_read(bcm, 0x0481) & 0x00FF) | 0x2C00);
  248. if (phy->rev == 1) {
  249. bcm43xx_phy_write(bcm, 0x0430, 0x092B);
  250. bcm43xx_phy_write(bcm, 0x041B, (bcm43xx_phy_read(bcm, 0x041B) & 0xFFE1) | 0x0002);
  251. } else {
  252. bcm43xx_phy_write(bcm, 0x041B, bcm43xx_phy_read(bcm, 0x041B) & 0xFFE1);
  253. bcm43xx_phy_write(bcm, 0x041F, 0x287A);
  254. bcm43xx_phy_write(bcm, 0x0420, (bcm43xx_phy_read(bcm, 0x0420) & 0xFFF0) | 0x0004);
  255. }
  256. if (phy->rev > 2) {
  257. bcm43xx_phy_write(bcm, 0x0422, 0x287A);
  258. bcm43xx_phy_write(bcm, 0x0420, (bcm43xx_phy_read(bcm, 0x0420) & 0x0FFF) | 0x3000);
  259. }
  260. bcm43xx_phy_write(bcm, 0x04A8, (bcm43xx_phy_read(bcm, 0x04A8) & 0x8080) | 0x7874);
  261. bcm43xx_phy_write(bcm, 0x048E, 0x1C00);
  262. if (phy->rev == 1) {
  263. bcm43xx_phy_write(bcm, 0x04AB, (bcm43xx_phy_read(bcm, 0x04AB) & 0xF0FF) | 0x0600);
  264. bcm43xx_phy_write(bcm, 0x048B, 0x005E);
  265. bcm43xx_phy_write(bcm, 0x048C, (bcm43xx_phy_read(bcm, 0x048C) & 0xFF00) | 0x001E);
  266. bcm43xx_phy_write(bcm, 0x048D, 0x0002);
  267. }
  268. bcm43xx_ilt_write(bcm, offset + 0x0800, 0);
  269. bcm43xx_ilt_write(bcm, offset + 0x0801, 7);
  270. bcm43xx_ilt_write(bcm, offset + 0x0802, 16);
  271. bcm43xx_ilt_write(bcm, offset + 0x0803, 28);
  272. if (phy->rev >= 6) {
  273. bcm43xx_phy_write(bcm, 0x0426, (bcm43xx_phy_read(bcm, 0x0426)
  274. & 0xFFFC));
  275. bcm43xx_phy_write(bcm, 0x0426, (bcm43xx_phy_read(bcm, 0x0426)
  276. & 0xEFFF));
  277. }
  278. }
  279. static void bcm43xx_phy_setupg(struct bcm43xx_private *bcm)
  280. {
  281. struct bcm43xx_phyinfo *phy = bcm43xx_current_phy(bcm);
  282. u16 i;
  283. assert(phy->type == BCM43xx_PHYTYPE_G);
  284. if (phy->rev == 1) {
  285. bcm43xx_phy_write(bcm, 0x0406, 0x4F19);
  286. bcm43xx_phy_write(bcm, BCM43xx_PHY_G_CRS,
  287. (bcm43xx_phy_read(bcm, BCM43xx_PHY_G_CRS) & 0xFC3F) | 0x0340);
  288. bcm43xx_phy_write(bcm, 0x042C, 0x005A);
  289. bcm43xx_phy_write(bcm, 0x0427, 0x001A);
  290. for (i = 0; i < BCM43xx_ILT_FINEFREQG_SIZE; i++)
  291. bcm43xx_ilt_write(bcm, 0x5800 + i, bcm43xx_ilt_finefreqg[i]);
  292. for (i = 0; i < BCM43xx_ILT_NOISEG1_SIZE; i++)
  293. bcm43xx_ilt_write(bcm, 0x1800 + i, bcm43xx_ilt_noiseg1[i]);
  294. for (i = 0; i < BCM43xx_ILT_ROTOR_SIZE; i++)
  295. bcm43xx_ilt_write32(bcm, 0x2000 + i, bcm43xx_ilt_rotor[i]);
  296. } else {
  297. /* nrssi values are signed 6-bit values. Not sure why we write 0x7654 here... */
  298. bcm43xx_nrssi_hw_write(bcm, 0xBA98, (s16)0x7654);
  299. if (phy->rev == 2) {
  300. bcm43xx_phy_write(bcm, 0x04C0, 0x1861);
  301. bcm43xx_phy_write(bcm, 0x04C1, 0x0271);
  302. } else if (phy->rev > 2) {
  303. bcm43xx_phy_write(bcm, 0x04C0, 0x0098);
  304. bcm43xx_phy_write(bcm, 0x04C1, 0x0070);
  305. bcm43xx_phy_write(bcm, 0x04C9, 0x0080);
  306. }
  307. bcm43xx_phy_write(bcm, 0x042B, bcm43xx_phy_read(bcm, 0x042B) | 0x800);
  308. for (i = 0; i < 64; i++)
  309. bcm43xx_ilt_write(bcm, 0x4000 + i, i);
  310. for (i = 0; i < BCM43xx_ILT_NOISEG2_SIZE; i++)
  311. bcm43xx_ilt_write(bcm, 0x1800 + i, bcm43xx_ilt_noiseg2[i]);
  312. }
  313. if (phy->rev <= 2)
  314. for (i = 0; i < BCM43xx_ILT_NOISESCALEG_SIZE; i++)
  315. bcm43xx_ilt_write(bcm, 0x1400 + i, bcm43xx_ilt_noisescaleg1[i]);
  316. else if ((phy->rev >= 7) && (bcm43xx_phy_read(bcm, 0x0449) & 0x0200))
  317. for (i = 0; i < BCM43xx_ILT_NOISESCALEG_SIZE; i++)
  318. bcm43xx_ilt_write(bcm, 0x1400 + i, bcm43xx_ilt_noisescaleg3[i]);
  319. else
  320. for (i = 0; i < BCM43xx_ILT_NOISESCALEG_SIZE; i++)
  321. bcm43xx_ilt_write(bcm, 0x1400 + i, bcm43xx_ilt_noisescaleg2[i]);
  322. if (phy->rev == 2)
  323. for (i = 0; i < BCM43xx_ILT_SIGMASQR_SIZE; i++)
  324. bcm43xx_ilt_write(bcm, 0x5000 + i, bcm43xx_ilt_sigmasqr1[i]);
  325. else if ((phy->rev > 2) && (phy->rev <= 8))
  326. for (i = 0; i < BCM43xx_ILT_SIGMASQR_SIZE; i++)
  327. bcm43xx_ilt_write(bcm, 0x5000 + i, bcm43xx_ilt_sigmasqr2[i]);
  328. if (phy->rev == 1) {
  329. for (i = 0; i < BCM43xx_ILT_RETARD_SIZE; i++)
  330. bcm43xx_ilt_write32(bcm, 0x2400 + i, bcm43xx_ilt_retard[i]);
  331. for (i = 0; i < 4; i++) {
  332. bcm43xx_ilt_write(bcm, 0x5404 + i, 0x0020);
  333. bcm43xx_ilt_write(bcm, 0x5408 + i, 0x0020);
  334. bcm43xx_ilt_write(bcm, 0x540C + i, 0x0020);
  335. bcm43xx_ilt_write(bcm, 0x5410 + i, 0x0020);
  336. }
  337. bcm43xx_phy_agcsetup(bcm);
  338. if ((bcm->board_vendor == PCI_VENDOR_ID_BROADCOM) &&
  339. (bcm->board_type == 0x0416) &&
  340. (bcm->board_revision == 0x0017))
  341. return;
  342. bcm43xx_ilt_write(bcm, 0x5001, 0x0002);
  343. bcm43xx_ilt_write(bcm, 0x5002, 0x0001);
  344. } else {
  345. for (i = 0; i <= 0x2F; i++)
  346. bcm43xx_ilt_write(bcm, 0x1000 + i, 0x0820);
  347. bcm43xx_phy_agcsetup(bcm);
  348. bcm43xx_phy_read(bcm, 0x0400); /* dummy read */
  349. bcm43xx_phy_write(bcm, 0x0403, 0x1000);
  350. bcm43xx_ilt_write(bcm, 0x3C02, 0x000F);
  351. bcm43xx_ilt_write(bcm, 0x3C03, 0x0014);
  352. if ((bcm->board_vendor == PCI_VENDOR_ID_BROADCOM) &&
  353. (bcm->board_type == 0x0416) &&
  354. (bcm->board_revision == 0x0017))
  355. return;
  356. bcm43xx_ilt_write(bcm, 0x0401, 0x0002);
  357. bcm43xx_ilt_write(bcm, 0x0402, 0x0001);
  358. }
  359. }
  360. /* Initialize the noisescaletable for APHY */
  361. static void bcm43xx_phy_init_noisescaletbl(struct bcm43xx_private *bcm)
  362. {
  363. struct bcm43xx_phyinfo *phy = bcm43xx_current_phy(bcm);
  364. int i;
  365. bcm43xx_phy_write(bcm, BCM43xx_PHY_ILT_A_CTRL, 0x1400);
  366. for (i = 0; i < 12; i++) {
  367. if (phy->rev == 2)
  368. bcm43xx_phy_write(bcm, BCM43xx_PHY_ILT_A_DATA1, 0x6767);
  369. else
  370. bcm43xx_phy_write(bcm, BCM43xx_PHY_ILT_A_DATA1, 0x2323);
  371. }
  372. if (phy->rev == 2)
  373. bcm43xx_phy_write(bcm, BCM43xx_PHY_ILT_A_DATA1, 0x6700);
  374. else
  375. bcm43xx_phy_write(bcm, BCM43xx_PHY_ILT_A_DATA1, 0x2300);
  376. for (i = 0; i < 11; i++) {
  377. if (phy->rev == 2)
  378. bcm43xx_phy_write(bcm, BCM43xx_PHY_ILT_A_DATA1, 0x6767);
  379. else
  380. bcm43xx_phy_write(bcm, BCM43xx_PHY_ILT_A_DATA1, 0x2323);
  381. }
  382. if (phy->rev == 2)
  383. bcm43xx_phy_write(bcm, BCM43xx_PHY_ILT_A_DATA1, 0x0067);
  384. else
  385. bcm43xx_phy_write(bcm, BCM43xx_PHY_ILT_A_DATA1, 0x0023);
  386. }
  387. static void bcm43xx_phy_setupa(struct bcm43xx_private *bcm)
  388. {
  389. struct bcm43xx_phyinfo *phy = bcm43xx_current_phy(bcm);
  390. u16 i;
  391. assert(phy->type == BCM43xx_PHYTYPE_A);
  392. switch (phy->rev) {
  393. case 2:
  394. bcm43xx_phy_write(bcm, 0x008E, 0x3800);
  395. bcm43xx_phy_write(bcm, 0x0035, 0x03FF);
  396. bcm43xx_phy_write(bcm, 0x0036, 0x0400);
  397. bcm43xx_ilt_write(bcm, 0x3807, 0x0051);
  398. bcm43xx_phy_write(bcm, 0x001C, 0x0FF9);
  399. bcm43xx_phy_write(bcm, 0x0020, bcm43xx_phy_read(bcm, 0x0020) & 0xFF0F);
  400. bcm43xx_ilt_write(bcm, 0x3C0C, 0x07BF);
  401. bcm43xx_radio_write16(bcm, 0x0002, 0x07BF);
  402. bcm43xx_phy_write(bcm, 0x0024, 0x4680);
  403. bcm43xx_phy_write(bcm, 0x0020, 0x0003);
  404. bcm43xx_phy_write(bcm, 0x001D, 0x0F40);
  405. bcm43xx_phy_write(bcm, 0x001F, 0x1C00);
  406. bcm43xx_phy_write(bcm, 0x002A, (bcm43xx_phy_read(bcm, 0x002A) & 0x00FF) | 0x0400);
  407. bcm43xx_phy_write(bcm, 0x002B, bcm43xx_phy_read(bcm, 0x002B) & 0xFBFF);
  408. bcm43xx_phy_write(bcm, 0x008E, 0x58C1);
  409. bcm43xx_ilt_write(bcm, 0x0803, 0x000F);
  410. bcm43xx_ilt_write(bcm, 0x0804, 0x001F);
  411. bcm43xx_ilt_write(bcm, 0x0805, 0x002A);
  412. bcm43xx_ilt_write(bcm, 0x0805, 0x0030);
  413. bcm43xx_ilt_write(bcm, 0x0807, 0x003A);
  414. bcm43xx_ilt_write(bcm, 0x0000, 0x0013);
  415. bcm43xx_ilt_write(bcm, 0x0001, 0x0013);
  416. bcm43xx_ilt_write(bcm, 0x0002, 0x0013);
  417. bcm43xx_ilt_write(bcm, 0x0003, 0x0013);
  418. bcm43xx_ilt_write(bcm, 0x0004, 0x0015);
  419. bcm43xx_ilt_write(bcm, 0x0005, 0x0015);
  420. bcm43xx_ilt_write(bcm, 0x0006, 0x0019);
  421. bcm43xx_ilt_write(bcm, 0x0404, 0x0003);
  422. bcm43xx_ilt_write(bcm, 0x0405, 0x0003);
  423. bcm43xx_ilt_write(bcm, 0x0406, 0x0007);
  424. for (i = 0; i < 16; i++)
  425. bcm43xx_ilt_write(bcm, 0x4000 + i, (0x8 + i) & 0x000F);
  426. bcm43xx_ilt_write(bcm, 0x3003, 0x1044);
  427. bcm43xx_ilt_write(bcm, 0x3004, 0x7201);
  428. bcm43xx_ilt_write(bcm, 0x3006, 0x0040);
  429. bcm43xx_ilt_write(bcm, 0x3001, (bcm43xx_ilt_read(bcm, 0x3001) & 0x0010) | 0x0008);
  430. for (i = 0; i < BCM43xx_ILT_FINEFREQA_SIZE; i++)
  431. bcm43xx_ilt_write(bcm, 0x5800 + i, bcm43xx_ilt_finefreqa[i]);
  432. for (i = 0; i < BCM43xx_ILT_NOISEA2_SIZE; i++)
  433. bcm43xx_ilt_write(bcm, 0x1800 + i, bcm43xx_ilt_noisea2[i]);
  434. for (i = 0; i < BCM43xx_ILT_ROTOR_SIZE; i++)
  435. bcm43xx_ilt_write32(bcm, 0x2000 + i, bcm43xx_ilt_rotor[i]);
  436. bcm43xx_phy_init_noisescaletbl(bcm);
  437. for (i = 0; i < BCM43xx_ILT_RETARD_SIZE; i++)
  438. bcm43xx_ilt_write32(bcm, 0x2400 + i, bcm43xx_ilt_retard[i]);
  439. break;
  440. case 3:
  441. for (i = 0; i < 64; i++)
  442. bcm43xx_ilt_write(bcm, 0x4000 + i, i);
  443. bcm43xx_ilt_write(bcm, 0x3807, 0x0051);
  444. bcm43xx_phy_write(bcm, 0x001C, 0x0FF9);
  445. bcm43xx_phy_write(bcm, 0x0020, bcm43xx_phy_read(bcm, 0x0020) & 0xFF0F);
  446. bcm43xx_radio_write16(bcm, 0x0002, 0x07BF);
  447. bcm43xx_phy_write(bcm, 0x0024, 0x4680);
  448. bcm43xx_phy_write(bcm, 0x0020, 0x0003);
  449. bcm43xx_phy_write(bcm, 0x001D, 0x0F40);
  450. bcm43xx_phy_write(bcm, 0x001F, 0x1C00);
  451. bcm43xx_phy_write(bcm, 0x002A, (bcm43xx_phy_read(bcm, 0x002A) & 0x00FF) | 0x0400);
  452. bcm43xx_ilt_write(bcm, 0x3001, (bcm43xx_ilt_read(bcm, 0x3001) & 0x0010) | 0x0008);
  453. for (i = 0; i < BCM43xx_ILT_NOISEA3_SIZE; i++)
  454. bcm43xx_ilt_write(bcm, 0x1800 + i, bcm43xx_ilt_noisea3[i]);
  455. bcm43xx_phy_init_noisescaletbl(bcm);
  456. for (i = 0; i < BCM43xx_ILT_SIGMASQR_SIZE; i++)
  457. bcm43xx_ilt_write(bcm, 0x5000 + i, bcm43xx_ilt_sigmasqr1[i]);
  458. bcm43xx_phy_write(bcm, 0x0003, 0x1808);
  459. bcm43xx_ilt_write(bcm, 0x0803, 0x000F);
  460. bcm43xx_ilt_write(bcm, 0x0804, 0x001F);
  461. bcm43xx_ilt_write(bcm, 0x0805, 0x002A);
  462. bcm43xx_ilt_write(bcm, 0x0805, 0x0030);
  463. bcm43xx_ilt_write(bcm, 0x0807, 0x003A);
  464. bcm43xx_ilt_write(bcm, 0x0000, 0x0013);
  465. bcm43xx_ilt_write(bcm, 0x0001, 0x0013);
  466. bcm43xx_ilt_write(bcm, 0x0002, 0x0013);
  467. bcm43xx_ilt_write(bcm, 0x0003, 0x0013);
  468. bcm43xx_ilt_write(bcm, 0x0004, 0x0015);
  469. bcm43xx_ilt_write(bcm, 0x0005, 0x0015);
  470. bcm43xx_ilt_write(bcm, 0x0006, 0x0019);
  471. bcm43xx_ilt_write(bcm, 0x0404, 0x0003);
  472. bcm43xx_ilt_write(bcm, 0x0405, 0x0003);
  473. bcm43xx_ilt_write(bcm, 0x0406, 0x0007);
  474. bcm43xx_ilt_write(bcm, 0x3C02, 0x000F);
  475. bcm43xx_ilt_write(bcm, 0x3C03, 0x0014);
  476. break;
  477. default:
  478. assert(0);
  479. }
  480. }
  481. /* Initialize APHY. This is also called for the GPHY in some cases. */
  482. static void bcm43xx_phy_inita(struct bcm43xx_private *bcm)
  483. {
  484. struct bcm43xx_phyinfo *phy = bcm43xx_current_phy(bcm);
  485. struct bcm43xx_radioinfo *radio = bcm43xx_current_radio(bcm);
  486. u16 tval;
  487. if (phy->type == BCM43xx_PHYTYPE_A) {
  488. bcm43xx_phy_setupa(bcm);
  489. } else {
  490. bcm43xx_phy_setupg(bcm);
  491. if (bcm->sprom.boardflags & BCM43xx_BFL_PACTRL)
  492. bcm43xx_phy_write(bcm, 0x046E, 0x03CF);
  493. return;
  494. }
  495. bcm43xx_phy_write(bcm, BCM43xx_PHY_A_CRS,
  496. (bcm43xx_phy_read(bcm, BCM43xx_PHY_A_CRS) & 0xF83C) | 0x0340);
  497. bcm43xx_phy_write(bcm, 0x0034, 0x0001);
  498. TODO();//TODO: RSSI AGC
  499. bcm43xx_phy_write(bcm, BCM43xx_PHY_A_CRS,
  500. bcm43xx_phy_read(bcm, BCM43xx_PHY_A_CRS) | (1 << 14));
  501. bcm43xx_radio_init2060(bcm);
  502. if ((bcm->board_vendor == PCI_VENDOR_ID_BROADCOM)
  503. && ((bcm->board_type == 0x0416) || (bcm->board_type == 0x040A))) {
  504. if (radio->lofcal == 0xFFFF) {
  505. TODO();//TODO: LOF Cal
  506. bcm43xx_radio_set_tx_iq(bcm);
  507. } else
  508. bcm43xx_radio_write16(bcm, 0x001E, radio->lofcal);
  509. }
  510. bcm43xx_phy_write(bcm, 0x007A, 0xF111);
  511. if (phy->savedpctlreg == 0xFFFF) {
  512. bcm43xx_radio_write16(bcm, 0x0019, 0x0000);
  513. bcm43xx_radio_write16(bcm, 0x0017, 0x0020);
  514. tval = bcm43xx_ilt_read(bcm, 0x3001);
  515. if (phy->rev == 1) {
  516. bcm43xx_ilt_write(bcm, 0x3001,
  517. (bcm43xx_ilt_read(bcm, 0x3001) & 0xFF87)
  518. | 0x0058);
  519. } else {
  520. bcm43xx_ilt_write(bcm, 0x3001,
  521. (bcm43xx_ilt_read(bcm, 0x3001) & 0xFFC3)
  522. | 0x002C);
  523. }
  524. bcm43xx_dummy_transmission(bcm);
  525. phy->savedpctlreg = bcm43xx_phy_read(bcm, BCM43xx_PHY_A_PCTL);
  526. bcm43xx_ilt_write(bcm, 0x3001, tval);
  527. bcm43xx_radio_set_txpower_a(bcm, 0x0018);
  528. }
  529. bcm43xx_radio_clear_tssi(bcm);
  530. }
  531. static void bcm43xx_phy_initb2(struct bcm43xx_private *bcm)
  532. {
  533. struct bcm43xx_radioinfo *radio = bcm43xx_current_radio(bcm);
  534. u16 offset, val;
  535. bcm43xx_write16(bcm, 0x03EC, 0x3F22);
  536. bcm43xx_phy_write(bcm, 0x0020, 0x301C);
  537. bcm43xx_phy_write(bcm, 0x0026, 0x0000);
  538. bcm43xx_phy_write(bcm, 0x0030, 0x00C6);
  539. bcm43xx_phy_write(bcm, 0x0088, 0x3E00);
  540. val = 0x3C3D;
  541. for (offset = 0x0089; offset < 0x00A7; offset++) {
  542. bcm43xx_phy_write(bcm, offset, val);
  543. val -= 0x0202;
  544. }
  545. bcm43xx_phy_write(bcm, 0x03E4, 0x3000);
  546. if (radio->channel == 0xFF)
  547. bcm43xx_radio_selectchannel(bcm, BCM43xx_RADIO_DEFAULT_CHANNEL_BG, 0);
  548. else
  549. bcm43xx_radio_selectchannel(bcm, radio->channel, 0);
  550. if (radio->version != 0x2050) {
  551. bcm43xx_radio_write16(bcm, 0x0075, 0x0080);
  552. bcm43xx_radio_write16(bcm, 0x0079, 0x0081);
  553. }
  554. bcm43xx_radio_write16(bcm, 0x0050, 0x0020);
  555. bcm43xx_radio_write16(bcm, 0x0050, 0x0023);
  556. if (radio->version == 0x2050) {
  557. bcm43xx_radio_write16(bcm, 0x0050, 0x0020);
  558. bcm43xx_radio_write16(bcm, 0x005A, 0x0070);
  559. bcm43xx_radio_write16(bcm, 0x005B, 0x007B);
  560. bcm43xx_radio_write16(bcm, 0x005C, 0x00B0);
  561. bcm43xx_radio_write16(bcm, 0x007A, 0x000F);
  562. bcm43xx_phy_write(bcm, 0x0038, 0x0677);
  563. bcm43xx_radio_init2050(bcm);
  564. }
  565. bcm43xx_phy_write(bcm, 0x0014, 0x0080);
  566. bcm43xx_phy_write(bcm, 0x0032, 0x00CA);
  567. bcm43xx_phy_write(bcm, 0x0032, 0x00CC);
  568. bcm43xx_phy_write(bcm, 0x0035, 0x07C2);
  569. bcm43xx_phy_lo_b_measure(bcm);
  570. bcm43xx_phy_write(bcm, 0x0026, 0xCC00);
  571. if (radio->version != 0x2050)
  572. bcm43xx_phy_write(bcm, 0x0026, 0xCE00);
  573. bcm43xx_write16(bcm, BCM43xx_MMIO_CHANNEL_EXT, 0x1000);
  574. bcm43xx_phy_write(bcm, 0x002A, 0x88A3);
  575. if (radio->version != 0x2050)
  576. bcm43xx_phy_write(bcm, 0x002A, 0x88C2);
  577. bcm43xx_radio_set_txpower_bg(bcm, 0xFFFF, 0xFFFF, 0xFFFF);
  578. bcm43xx_phy_init_pctl(bcm);
  579. }
  580. static void bcm43xx_phy_initb4(struct bcm43xx_private *bcm)
  581. {
  582. struct bcm43xx_radioinfo *radio = bcm43xx_current_radio(bcm);
  583. u16 offset, val;
  584. bcm43xx_write16(bcm, 0x03EC, 0x3F22);
  585. bcm43xx_phy_write(bcm, 0x0020, 0x301C);
  586. bcm43xx_phy_write(bcm, 0x0026, 0x0000);
  587. bcm43xx_phy_write(bcm, 0x0030, 0x00C6);
  588. bcm43xx_phy_write(bcm, 0x0088, 0x3E00);
  589. val = 0x3C3D;
  590. for (offset = 0x0089; offset < 0x00A7; offset++) {
  591. bcm43xx_phy_write(bcm, offset, val);
  592. val -= 0x0202;
  593. }
  594. bcm43xx_phy_write(bcm, 0x03E4, 0x3000);
  595. if (radio->channel == 0xFF)
  596. bcm43xx_radio_selectchannel(bcm, BCM43xx_RADIO_DEFAULT_CHANNEL_BG, 0);
  597. else
  598. bcm43xx_radio_selectchannel(bcm, radio->channel, 0);
  599. if (radio->version != 0x2050) {
  600. bcm43xx_radio_write16(bcm, 0x0075, 0x0080);
  601. bcm43xx_radio_write16(bcm, 0x0079, 0x0081);
  602. }
  603. bcm43xx_radio_write16(bcm, 0x0050, 0x0020);
  604. bcm43xx_radio_write16(bcm, 0x0050, 0x0023);
  605. if (radio->version == 0x2050) {
  606. bcm43xx_radio_write16(bcm, 0x0050, 0x0020);
  607. bcm43xx_radio_write16(bcm, 0x005A, 0x0070);
  608. bcm43xx_radio_write16(bcm, 0x005B, 0x007B);
  609. bcm43xx_radio_write16(bcm, 0x005C, 0x00B0);
  610. bcm43xx_radio_write16(bcm, 0x007A, 0x000F);
  611. bcm43xx_phy_write(bcm, 0x0038, 0x0677);
  612. bcm43xx_radio_init2050(bcm);
  613. }
  614. bcm43xx_phy_write(bcm, 0x0014, 0x0080);
  615. bcm43xx_phy_write(bcm, 0x0032, 0x00CA);
  616. if (radio->version == 0x2050)
  617. bcm43xx_phy_write(bcm, 0x0032, 0x00E0);
  618. bcm43xx_phy_write(bcm, 0x0035, 0x07C2);
  619. bcm43xx_phy_lo_b_measure(bcm);
  620. bcm43xx_phy_write(bcm, 0x0026, 0xCC00);
  621. if (radio->version == 0x2050)
  622. bcm43xx_phy_write(bcm, 0x0026, 0xCE00);
  623. bcm43xx_write16(bcm, BCM43xx_MMIO_CHANNEL_EXT, 0x1100);
  624. bcm43xx_phy_write(bcm, 0x002A, 0x88A3);
  625. if (radio->version == 0x2050)
  626. bcm43xx_phy_write(bcm, 0x002A, 0x88C2);
  627. bcm43xx_radio_set_txpower_bg(bcm, 0xFFFF, 0xFFFF, 0xFFFF);
  628. if (bcm->sprom.boardflags & BCM43xx_BFL_RSSI) {
  629. bcm43xx_calc_nrssi_slope(bcm);
  630. bcm43xx_calc_nrssi_threshold(bcm);
  631. }
  632. bcm43xx_phy_init_pctl(bcm);
  633. }
  634. static void bcm43xx_phy_initb5(struct bcm43xx_private *bcm)
  635. {
  636. struct bcm43xx_phyinfo *phy = bcm43xx_current_phy(bcm);
  637. struct bcm43xx_radioinfo *radio = bcm43xx_current_radio(bcm);
  638. u16 offset;
  639. u16 value;
  640. u8 old_channel;
  641. if (phy->analog == 1)
  642. bcm43xx_radio_write16(bcm, 0x007A,
  643. bcm43xx_radio_read16(bcm, 0x007A)
  644. | 0x0050);
  645. if ((bcm->board_vendor != PCI_VENDOR_ID_BROADCOM) &&
  646. (bcm->board_type != 0x0416)) {
  647. value = 0x2120;
  648. for (offset = 0x00A8 ; offset < 0x00C7; offset++) {
  649. bcm43xx_phy_write(bcm, offset, value);
  650. value += 0x0202;
  651. }
  652. }
  653. bcm43xx_phy_write(bcm, 0x0035,
  654. (bcm43xx_phy_read(bcm, 0x0035) & 0xF0FF)
  655. | 0x0700);
  656. if (radio->version == 0x2050)
  657. bcm43xx_phy_write(bcm, 0x0038, 0x0667);
  658. if (phy->type == BCM43xx_PHYTYPE_G) {
  659. if (radio->version == 0x2050) {
  660. bcm43xx_radio_write16(bcm, 0x007A,
  661. bcm43xx_radio_read16(bcm, 0x007A)
  662. | 0x0020);
  663. bcm43xx_radio_write16(bcm, 0x0051,
  664. bcm43xx_radio_read16(bcm, 0x0051)
  665. | 0x0004);
  666. }
  667. bcm43xx_write16(bcm, BCM43xx_MMIO_PHY_RADIO, 0x0000);
  668. bcm43xx_phy_write(bcm, 0x0802, bcm43xx_phy_read(bcm, 0x0802) | 0x0100);
  669. bcm43xx_phy_write(bcm, 0x042B, bcm43xx_phy_read(bcm, 0x042B) | 0x2000);
  670. bcm43xx_phy_write(bcm, 0x001C, 0x186A);
  671. bcm43xx_phy_write(bcm, 0x0013, (bcm43xx_phy_read(bcm, 0x0013) & 0x00FF) | 0x1900);
  672. bcm43xx_phy_write(bcm, 0x0035, (bcm43xx_phy_read(bcm, 0x0035) & 0xFFC0) | 0x0064);
  673. bcm43xx_phy_write(bcm, 0x005D, (bcm43xx_phy_read(bcm, 0x005D) & 0xFF80) | 0x000A);
  674. }
  675. if (bcm->bad_frames_preempt) {
  676. bcm43xx_phy_write(bcm, BCM43xx_PHY_RADIO_BITFIELD,
  677. bcm43xx_phy_read(bcm, BCM43xx_PHY_RADIO_BITFIELD) | (1 << 11));
  678. }
  679. if (phy->analog == 1) {
  680. bcm43xx_phy_write(bcm, 0x0026, 0xCE00);
  681. bcm43xx_phy_write(bcm, 0x0021, 0x3763);
  682. bcm43xx_phy_write(bcm, 0x0022, 0x1BC3);
  683. bcm43xx_phy_write(bcm, 0x0023, 0x06F9);
  684. bcm43xx_phy_write(bcm, 0x0024, 0x037E);
  685. } else
  686. bcm43xx_phy_write(bcm, 0x0026, 0xCC00);
  687. bcm43xx_phy_write(bcm, 0x0030, 0x00C6);
  688. bcm43xx_write16(bcm, 0x03EC, 0x3F22);
  689. if (phy->analog == 1)
  690. bcm43xx_phy_write(bcm, 0x0020, 0x3E1C);
  691. else
  692. bcm43xx_phy_write(bcm, 0x0020, 0x301C);
  693. if (phy->analog == 0)
  694. bcm43xx_write16(bcm, 0x03E4, 0x3000);
  695. old_channel = radio->channel;
  696. /* Force to channel 7, even if not supported. */
  697. bcm43xx_radio_selectchannel(bcm, 7, 0);
  698. if (radio->version != 0x2050) {
  699. bcm43xx_radio_write16(bcm, 0x0075, 0x0080);
  700. bcm43xx_radio_write16(bcm, 0x0079, 0x0081);
  701. }
  702. bcm43xx_radio_write16(bcm, 0x0050, 0x0020);
  703. bcm43xx_radio_write16(bcm, 0x0050, 0x0023);
  704. if (radio->version == 0x2050) {
  705. bcm43xx_radio_write16(bcm, 0x0050, 0x0020);
  706. bcm43xx_radio_write16(bcm, 0x005A, 0x0070);
  707. }
  708. bcm43xx_radio_write16(bcm, 0x005B, 0x007B);
  709. bcm43xx_radio_write16(bcm, 0x005C, 0x00B0);
  710. bcm43xx_radio_write16(bcm, 0x007A, bcm43xx_radio_read16(bcm, 0x007A) | 0x0007);
  711. bcm43xx_radio_selectchannel(bcm, old_channel, 0);
  712. bcm43xx_phy_write(bcm, 0x0014, 0x0080);
  713. bcm43xx_phy_write(bcm, 0x0032, 0x00CA);
  714. bcm43xx_phy_write(bcm, 0x002A, 0x88A3);
  715. bcm43xx_radio_set_txpower_bg(bcm, 0xFFFF, 0xFFFF, 0xFFFF);
  716. if (radio->version == 0x2050)
  717. bcm43xx_radio_write16(bcm, 0x005D, 0x000D);
  718. bcm43xx_write16(bcm, 0x03E4, (bcm43xx_read16(bcm, 0x03E4) & 0xFFC0) | 0x0004);
  719. }
  720. static void bcm43xx_phy_initb6(struct bcm43xx_private *bcm)
  721. {
  722. struct bcm43xx_phyinfo *phy = bcm43xx_current_phy(bcm);
  723. struct bcm43xx_radioinfo *radio = bcm43xx_current_radio(bcm);
  724. u16 offset, val;
  725. u8 old_channel;
  726. bcm43xx_phy_write(bcm, 0x003E, 0x817A);
  727. bcm43xx_radio_write16(bcm, 0x007A,
  728. (bcm43xx_radio_read16(bcm, 0x007A) | 0x0058));
  729. if (radio->revision == 4 ||
  730. radio->revision == 5) {
  731. bcm43xx_radio_write16(bcm, 0x0051, 0x0037);
  732. bcm43xx_radio_write16(bcm, 0x0052, 0x0070);
  733. bcm43xx_radio_write16(bcm, 0x0053, 0x00B3);
  734. bcm43xx_radio_write16(bcm, 0x0054, 0x009B);
  735. bcm43xx_radio_write16(bcm, 0x005A, 0x0088);
  736. bcm43xx_radio_write16(bcm, 0x005B, 0x0088);
  737. bcm43xx_radio_write16(bcm, 0x005D, 0x0088);
  738. bcm43xx_radio_write16(bcm, 0x005E, 0x0088);
  739. bcm43xx_radio_write16(bcm, 0x007D, 0x0088);
  740. bcm43xx_shm_write32(bcm, BCM43xx_SHM_SHARED,
  741. BCM43xx_UCODEFLAGS_OFFSET,
  742. (bcm43xx_shm_read32(bcm, BCM43xx_SHM_SHARED,
  743. BCM43xx_UCODEFLAGS_OFFSET)
  744. | 0x00000200));
  745. }
  746. if (radio->revision == 8) {
  747. bcm43xx_radio_write16(bcm, 0x0051, 0x0000);
  748. bcm43xx_radio_write16(bcm, 0x0052, 0x0040);
  749. bcm43xx_radio_write16(bcm, 0x0053, 0x00B7);
  750. bcm43xx_radio_write16(bcm, 0x0054, 0x0098);
  751. bcm43xx_radio_write16(bcm, 0x005A, 0x0088);
  752. bcm43xx_radio_write16(bcm, 0x005B, 0x006B);
  753. bcm43xx_radio_write16(bcm, 0x005C, 0x000F);
  754. if (bcm->sprom.boardflags & 0x8000) {
  755. bcm43xx_radio_write16(bcm, 0x005D, 0x00FA);
  756. bcm43xx_radio_write16(bcm, 0x005E, 0x00D8);
  757. } else {
  758. bcm43xx_radio_write16(bcm, 0x005D, 0x00F5);
  759. bcm43xx_radio_write16(bcm, 0x005E, 0x00B8);
  760. }
  761. bcm43xx_radio_write16(bcm, 0x0073, 0x0003);
  762. bcm43xx_radio_write16(bcm, 0x007D, 0x00A8);
  763. bcm43xx_radio_write16(bcm, 0x007C, 0x0001);
  764. bcm43xx_radio_write16(bcm, 0x007E, 0x0008);
  765. }
  766. val = 0x1E1F;
  767. for (offset = 0x0088; offset < 0x0098; offset++) {
  768. bcm43xx_phy_write(bcm, offset, val);
  769. val -= 0x0202;
  770. }
  771. val = 0x3E3F;
  772. for (offset = 0x0098; offset < 0x00A8; offset++) {
  773. bcm43xx_phy_write(bcm, offset, val);
  774. val -= 0x0202;
  775. }
  776. val = 0x2120;
  777. for (offset = 0x00A8; offset < 0x00C8; offset++) {
  778. bcm43xx_phy_write(bcm, offset, (val & 0x3F3F));
  779. val += 0x0202;
  780. }
  781. if (phy->type == BCM43xx_PHYTYPE_G) {
  782. bcm43xx_radio_write16(bcm, 0x007A,
  783. bcm43xx_radio_read16(bcm, 0x007A) | 0x0020);
  784. bcm43xx_radio_write16(bcm, 0x0051,
  785. bcm43xx_radio_read16(bcm, 0x0051) | 0x0004);
  786. bcm43xx_phy_write(bcm, 0x0802,
  787. bcm43xx_phy_read(bcm, 0x0802) | 0x0100);
  788. bcm43xx_phy_write(bcm, 0x042B,
  789. bcm43xx_phy_read(bcm, 0x042B) | 0x2000);
  790. bcm43xx_phy_write(bcm, 0x5B, 0x0000);
  791. bcm43xx_phy_write(bcm, 0x5C, 0x0000);
  792. }
  793. old_channel = radio->channel;
  794. if (old_channel >= 8)
  795. bcm43xx_radio_selectchannel(bcm, 1, 0);
  796. else
  797. bcm43xx_radio_selectchannel(bcm, 13, 0);
  798. bcm43xx_radio_write16(bcm, 0x0050, 0x0020);
  799. bcm43xx_radio_write16(bcm, 0x0050, 0x0023);
  800. udelay(40);
  801. if (radio->revision < 6 || radio-> revision == 8) {
  802. bcm43xx_radio_write16(bcm, 0x007C, (bcm43xx_radio_read16(bcm, 0x007C)
  803. | 0x0002));
  804. bcm43xx_radio_write16(bcm, 0x0050, 0x0020);
  805. }
  806. if (radio->revision <= 2) {
  807. bcm43xx_radio_write16(bcm, 0x007C, 0x0020);
  808. bcm43xx_radio_write16(bcm, 0x005A, 0x0070);
  809. bcm43xx_radio_write16(bcm, 0x005B, 0x007B);
  810. bcm43xx_radio_write16(bcm, 0x005C, 0x00B0);
  811. }
  812. bcm43xx_radio_write16(bcm, 0x007A,
  813. (bcm43xx_radio_read16(bcm, 0x007A) & 0x00F8) | 0x0007);
  814. bcm43xx_radio_selectchannel(bcm, old_channel, 0);
  815. bcm43xx_phy_write(bcm, 0x0014, 0x0200);
  816. if (radio->revision >= 6)
  817. bcm43xx_phy_write(bcm, 0x002A, 0x88C2);
  818. else
  819. bcm43xx_phy_write(bcm, 0x002A, 0x8AC0);
  820. bcm43xx_phy_write(bcm, 0x0038, 0x0668);
  821. bcm43xx_radio_set_txpower_bg(bcm, 0xFFFF, 0xFFFF, 0xFFFF);
  822. if (radio->revision <= 5)
  823. bcm43xx_phy_write(bcm, 0x005D, (bcm43xx_phy_read(bcm, 0x005D)
  824. & 0xFF80) | 0x0003);
  825. if (radio->revision <= 2)
  826. bcm43xx_radio_write16(bcm, 0x005D, 0x000D);
  827. if (phy->analog == 4){
  828. bcm43xx_write16(bcm, 0x03E4, 0x0009);
  829. bcm43xx_phy_write(bcm, 0x61, bcm43xx_phy_read(bcm, 0x61) & 0xFFF);
  830. } else {
  831. bcm43xx_phy_write(bcm, 0x0002, (bcm43xx_phy_read(bcm, 0x0002) & 0xFFC0) | 0x0004);
  832. }
  833. if (phy->type == BCM43xx_PHYTYPE_G)
  834. bcm43xx_write16(bcm, 0x03E6, 0x0);
  835. if (phy->type == BCM43xx_PHYTYPE_B) {
  836. bcm43xx_write16(bcm, 0x03E6, 0x8140);
  837. bcm43xx_phy_write(bcm, 0x0016, 0x0410);
  838. bcm43xx_phy_write(bcm, 0x0017, 0x0820);
  839. bcm43xx_phy_write(bcm, 0x0062, 0x0007);
  840. bcm43xx_radio_init2050(bcm);
  841. bcm43xx_phy_lo_g_measure(bcm);
  842. if (bcm->sprom.boardflags & BCM43xx_BFL_RSSI) {
  843. bcm43xx_calc_nrssi_slope(bcm);
  844. bcm43xx_calc_nrssi_threshold(bcm);
  845. }
  846. bcm43xx_phy_init_pctl(bcm);
  847. }
  848. }
  849. static void bcm43xx_calc_loopback_gain(struct bcm43xx_private *bcm)
  850. {
  851. struct bcm43xx_phyinfo *phy = bcm43xx_current_phy(bcm);
  852. struct bcm43xx_radioinfo *radio = bcm43xx_current_radio(bcm);
  853. u16 backup_phy[15];
  854. u16 backup_radio[3];
  855. u16 backup_bband;
  856. u16 i;
  857. u16 loop1_cnt, loop1_done, loop1_omitted;
  858. u16 loop2_done;
  859. backup_phy[0] = bcm43xx_phy_read(bcm, 0x0429);
  860. backup_phy[1] = bcm43xx_phy_read(bcm, 0x0001);
  861. backup_phy[2] = bcm43xx_phy_read(bcm, 0x0811);
  862. backup_phy[3] = bcm43xx_phy_read(bcm, 0x0812);
  863. backup_phy[4] = bcm43xx_phy_read(bcm, 0x0814);
  864. backup_phy[5] = bcm43xx_phy_read(bcm, 0x0815);
  865. backup_phy[6] = bcm43xx_phy_read(bcm, 0x005A);
  866. backup_phy[7] = bcm43xx_phy_read(bcm, 0x0059);
  867. backup_phy[8] = bcm43xx_phy_read(bcm, 0x0058);
  868. backup_phy[9] = bcm43xx_phy_read(bcm, 0x000A);
  869. backup_phy[10] = bcm43xx_phy_read(bcm, 0x0003);
  870. backup_phy[11] = bcm43xx_phy_read(bcm, 0x080F);
  871. backup_phy[12] = bcm43xx_phy_read(bcm, 0x0810);
  872. backup_phy[13] = bcm43xx_phy_read(bcm, 0x002B);
  873. backup_phy[14] = bcm43xx_phy_read(bcm, 0x0015);
  874. bcm43xx_phy_read(bcm, 0x002D); /* dummy read */
  875. backup_bband = radio->baseband_atten;
  876. backup_radio[0] = bcm43xx_radio_read16(bcm, 0x0052);
  877. backup_radio[1] = bcm43xx_radio_read16(bcm, 0x0043);
  878. backup_radio[2] = bcm43xx_radio_read16(bcm, 0x007A);
  879. bcm43xx_phy_write(bcm, 0x0429,
  880. bcm43xx_phy_read(bcm, 0x0429) & 0x3FFF);
  881. bcm43xx_phy_write(bcm, 0x0001,
  882. bcm43xx_phy_read(bcm, 0x0001) & 0x8000);
  883. bcm43xx_phy_write(bcm, 0x0811,
  884. bcm43xx_phy_read(bcm, 0x0811) | 0x0002);
  885. bcm43xx_phy_write(bcm, 0x0812,
  886. bcm43xx_phy_read(bcm, 0x0812) & 0xFFFD);
  887. bcm43xx_phy_write(bcm, 0x0811,
  888. bcm43xx_phy_read(bcm, 0x0811) | 0x0001);
  889. bcm43xx_phy_write(bcm, 0x0812,
  890. bcm43xx_phy_read(bcm, 0x0812) & 0xFFFE);
  891. bcm43xx_phy_write(bcm, 0x0814,
  892. bcm43xx_phy_read(bcm, 0x0814) | 0x0001);
  893. bcm43xx_phy_write(bcm, 0x0815,
  894. bcm43xx_phy_read(bcm, 0x0815) & 0xFFFE);
  895. bcm43xx_phy_write(bcm, 0x0814,
  896. bcm43xx_phy_read(bcm, 0x0814) | 0x0002);
  897. bcm43xx_phy_write(bcm, 0x0815,
  898. bcm43xx_phy_read(bcm, 0x0815) & 0xFFFD);
  899. bcm43xx_phy_write(bcm, 0x0811,
  900. bcm43xx_phy_read(bcm, 0x0811) | 0x000C);
  901. bcm43xx_phy_write(bcm, 0x0812,
  902. bcm43xx_phy_read(bcm, 0x0812) | 0x000C);
  903. bcm43xx_phy_write(bcm, 0x0811,
  904. (bcm43xx_phy_read(bcm, 0x0811)
  905. & 0xFFCF) | 0x0030);
  906. bcm43xx_phy_write(bcm, 0x0812,
  907. (bcm43xx_phy_read(bcm, 0x0812)
  908. & 0xFFCF) | 0x0010);
  909. bcm43xx_phy_write(bcm, 0x005A, 0x0780);
  910. bcm43xx_phy_write(bcm, 0x0059, 0xC810);
  911. bcm43xx_phy_write(bcm, 0x0058, 0x000D);
  912. if (phy->analog == 0) {
  913. bcm43xx_phy_write(bcm, 0x0003, 0x0122);
  914. } else {
  915. bcm43xx_phy_write(bcm, 0x000A,
  916. bcm43xx_phy_read(bcm, 0x000A)
  917. | 0x2000);
  918. }
  919. bcm43xx_phy_write(bcm, 0x0814,
  920. bcm43xx_phy_read(bcm, 0x0814) | 0x0004);
  921. bcm43xx_phy_write(bcm, 0x0815,
  922. bcm43xx_phy_read(bcm, 0x0815) & 0xFFFB);
  923. bcm43xx_phy_write(bcm, 0x0003,
  924. (bcm43xx_phy_read(bcm, 0x0003)
  925. & 0xFF9F) | 0x0040);
  926. if (radio->version == 0x2050 && radio->revision == 2) {
  927. bcm43xx_radio_write16(bcm, 0x0052, 0x0000);
  928. bcm43xx_radio_write16(bcm, 0x0043,
  929. (bcm43xx_radio_read16(bcm, 0x0043)
  930. & 0xFFF0) | 0x0009);
  931. loop1_cnt = 9;
  932. } else if (radio->revision == 8) {
  933. bcm43xx_radio_write16(bcm, 0x0043, 0x000F);
  934. loop1_cnt = 15;
  935. } else
  936. loop1_cnt = 0;
  937. bcm43xx_phy_set_baseband_attenuation(bcm, 11);
  938. if (phy->rev >= 3)
  939. bcm43xx_phy_write(bcm, 0x080F, 0xC020);
  940. else
  941. bcm43xx_phy_write(bcm, 0x080F, 0x8020);
  942. bcm43xx_phy_write(bcm, 0x0810, 0x0000);
  943. bcm43xx_phy_write(bcm, 0x002B,
  944. (bcm43xx_phy_read(bcm, 0x002B)
  945. & 0xFFC0) | 0x0001);
  946. bcm43xx_phy_write(bcm, 0x002B,
  947. (bcm43xx_phy_read(bcm, 0x002B)
  948. & 0xC0FF) | 0x0800);
  949. bcm43xx_phy_write(bcm, 0x0811,
  950. bcm43xx_phy_read(bcm, 0x0811) | 0x0100);
  951. bcm43xx_phy_write(bcm, 0x0812,
  952. bcm43xx_phy_read(bcm, 0x0812) & 0xCFFF);
  953. if (bcm->sprom.boardflags & BCM43xx_BFL_EXTLNA) {
  954. if (phy->rev >= 7) {
  955. bcm43xx_phy_write(bcm, 0x0811,
  956. bcm43xx_phy_read(bcm, 0x0811)
  957. | 0x0800);
  958. bcm43xx_phy_write(bcm, 0x0812,
  959. bcm43xx_phy_read(bcm, 0x0812)
  960. | 0x8000);
  961. }
  962. }
  963. bcm43xx_radio_write16(bcm, 0x007A,
  964. bcm43xx_radio_read16(bcm, 0x007A)
  965. & 0x00F7);
  966. for (i = 0; i < loop1_cnt; i++) {
  967. bcm43xx_radio_write16(bcm, 0x0043, loop1_cnt);
  968. bcm43xx_phy_write(bcm, 0x0812,
  969. (bcm43xx_phy_read(bcm, 0x0812)
  970. & 0xF0FF) | (i << 8));
  971. bcm43xx_phy_write(bcm, 0x0015,
  972. (bcm43xx_phy_read(bcm, 0x0015)
  973. & 0x0FFF) | 0xA000);
  974. bcm43xx_phy_write(bcm, 0x0015,
  975. (bcm43xx_phy_read(bcm, 0x0015)
  976. & 0x0FFF) | 0xF000);
  977. udelay(20);
  978. if (bcm43xx_phy_read(bcm, 0x002D) >= 0x0DFC)
  979. break;
  980. }
  981. loop1_done = i;
  982. loop1_omitted = loop1_cnt - loop1_done;
  983. loop2_done = 0;
  984. if (loop1_done >= 8) {
  985. bcm43xx_phy_write(bcm, 0x0812,
  986. bcm43xx_phy_read(bcm, 0x0812)
  987. | 0x0030);
  988. for (i = loop1_done - 8; i < 16; i++) {
  989. bcm43xx_phy_write(bcm, 0x0812,
  990. (bcm43xx_phy_read(bcm, 0x0812)
  991. & 0xF0FF) | (i << 8));
  992. bcm43xx_phy_write(bcm, 0x0015,
  993. (bcm43xx_phy_read(bcm, 0x0015)
  994. & 0x0FFF) | 0xA000);
  995. bcm43xx_phy_write(bcm, 0x0015,
  996. (bcm43xx_phy_read(bcm, 0x0015)
  997. & 0x0FFF) | 0xF000);
  998. udelay(20);
  999. if (bcm43xx_phy_read(bcm, 0x002D) >= 0x0DFC)
  1000. break;
  1001. }
  1002. }
  1003. bcm43xx_phy_write(bcm, 0x0814, backup_phy[4]);
  1004. bcm43xx_phy_write(bcm, 0x0815, backup_phy[5]);
  1005. bcm43xx_phy_write(bcm, 0x005A, backup_phy[6]);
  1006. bcm43xx_phy_write(bcm, 0x0059, backup_phy[7]);
  1007. bcm43xx_phy_write(bcm, 0x0058, backup_phy[8]);
  1008. bcm43xx_phy_write(bcm, 0x000A, backup_phy[9]);
  1009. bcm43xx_phy_write(bcm, 0x0003, backup_phy[10]);
  1010. bcm43xx_phy_write(bcm, 0x080F, backup_phy[11]);
  1011. bcm43xx_phy_write(bcm, 0x0810, backup_phy[12]);
  1012. bcm43xx_phy_write(bcm, 0x002B, backup_phy[13]);
  1013. bcm43xx_phy_write(bcm, 0x0015, backup_phy[14]);
  1014. bcm43xx_phy_set_baseband_attenuation(bcm, backup_bband);
  1015. bcm43xx_radio_write16(bcm, 0x0052, backup_radio[0]);
  1016. bcm43xx_radio_write16(bcm, 0x0043, backup_radio[1]);
  1017. bcm43xx_radio_write16(bcm, 0x007A, backup_radio[2]);
  1018. bcm43xx_phy_write(bcm, 0x0811, backup_phy[2] | 0x0003);
  1019. udelay(10);
  1020. bcm43xx_phy_write(bcm, 0x0811, backup_phy[2]);
  1021. bcm43xx_phy_write(bcm, 0x0812, backup_phy[3]);
  1022. bcm43xx_phy_write(bcm, 0x0429, backup_phy[0]);
  1023. bcm43xx_phy_write(bcm, 0x0001, backup_phy[1]);
  1024. phy->loopback_gain[0] = ((loop1_done * 6) - (loop1_omitted * 4)) - 11;
  1025. phy->loopback_gain[1] = (24 - (3 * loop2_done)) * 2;
  1026. }
  1027. static void bcm43xx_phy_initg(struct bcm43xx_private *bcm)
  1028. {
  1029. struct bcm43xx_phyinfo *phy = bcm43xx_current_phy(bcm);
  1030. struct bcm43xx_radioinfo *radio = bcm43xx_current_radio(bcm);
  1031. u16 tmp;
  1032. if (phy->rev == 1)
  1033. bcm43xx_phy_initb5(bcm);
  1034. else
  1035. bcm43xx_phy_initb6(bcm);
  1036. if (phy->rev >= 2 || phy->connected)
  1037. bcm43xx_phy_inita(bcm);
  1038. if (phy->rev >= 2) {
  1039. bcm43xx_phy_write(bcm, 0x0814, 0x0000);
  1040. bcm43xx_phy_write(bcm, 0x0815, 0x0000);
  1041. }
  1042. if (phy->rev == 2) {
  1043. bcm43xx_phy_write(bcm, 0x0811, 0x0000);
  1044. bcm43xx_phy_write(bcm, 0x0015, 0x00C0);
  1045. }
  1046. if (phy->rev >= 3) {
  1047. bcm43xx_phy_write(bcm, 0x0811, 0x0400);
  1048. bcm43xx_phy_write(bcm, 0x0015, 0x00C0);
  1049. }
  1050. if (phy->connected) {
  1051. tmp = bcm43xx_phy_read(bcm, 0x0400) & 0xFF;
  1052. if (tmp < 6) {
  1053. bcm43xx_phy_write(bcm, 0x04C2, 0x1816);
  1054. bcm43xx_phy_write(bcm, 0x04C3, 0x8006);
  1055. if (tmp != 3) {
  1056. bcm43xx_phy_write(bcm, 0x04CC,
  1057. (bcm43xx_phy_read(bcm, 0x04CC)
  1058. & 0x00FF) | 0x1F00);
  1059. }
  1060. }
  1061. }
  1062. if (phy->rev < 3 && phy->connected)
  1063. bcm43xx_phy_write(bcm, 0x047E, 0x0078);
  1064. if (radio->revision == 8) {
  1065. bcm43xx_phy_write(bcm, 0x0801, bcm43xx_phy_read(bcm, 0x0801) | 0x0080);
  1066. bcm43xx_phy_write(bcm, 0x043E, bcm43xx_phy_read(bcm, 0x043E) | 0x0004);
  1067. }
  1068. if (phy->rev >= 2 && phy->connected)
  1069. bcm43xx_calc_loopback_gain(bcm);
  1070. if (radio->revision != 8) {
  1071. if (radio->initval == 0xFFFF)
  1072. radio->initval = bcm43xx_radio_init2050(bcm);
  1073. else
  1074. bcm43xx_radio_write16(bcm, 0x0078, radio->initval);
  1075. }
  1076. if (radio->txctl2 == 0xFFFF) {
  1077. bcm43xx_phy_lo_g_measure(bcm);
  1078. } else {
  1079. if (radio->version == 0x2050 && radio->revision == 8) {
  1080. bcm43xx_radio_write16(bcm, 0x0052,
  1081. (radio->txctl1 << 4) | radio->txctl2);
  1082. } else {
  1083. bcm43xx_radio_write16(bcm, 0x0052,
  1084. (bcm43xx_radio_read16(bcm, 0x0052)
  1085. & 0xFFF0) | radio->txctl1);
  1086. }
  1087. if (phy->rev >= 6) {
  1088. bcm43xx_phy_write(bcm, 0x0036,
  1089. (bcm43xx_phy_read(bcm, 0x0036)
  1090. & 0xF000) | (radio->txctl2 << 12));
  1091. }
  1092. if (bcm->sprom.boardflags & BCM43xx_BFL_PACTRL)
  1093. bcm43xx_phy_write(bcm, 0x002E, 0x8075);
  1094. else
  1095. bcm43xx_phy_write(bcm, 0x002E, 0x807F);
  1096. if (phy->rev < 2)
  1097. bcm43xx_phy_write(bcm, 0x002F, 0x0101);
  1098. else
  1099. bcm43xx_phy_write(bcm, 0x002F, 0x0202);
  1100. }
  1101. if (phy->connected) {
  1102. bcm43xx_phy_lo_adjust(bcm, 0);
  1103. bcm43xx_phy_write(bcm, 0x080F, 0x8078);
  1104. }
  1105. if (!(bcm->sprom.boardflags & BCM43xx_BFL_RSSI)) {
  1106. /* The specs state to update the NRSSI LT with
  1107. * the value 0x7FFFFFFF here. I think that is some weird
  1108. * compiler optimization in the original driver.
  1109. * Essentially, what we do here is resetting all NRSSI LT
  1110. * entries to -32 (see the limit_value() in nrssi_hw_update())
  1111. */
  1112. bcm43xx_nrssi_hw_update(bcm, 0xFFFF);
  1113. bcm43xx_calc_nrssi_threshold(bcm);
  1114. } else if (phy->connected) {
  1115. if (radio->nrssi[0] == -1000) {
  1116. assert(radio->nrssi[1] == -1000);
  1117. bcm43xx_calc_nrssi_slope(bcm);
  1118. } else {
  1119. assert(radio->nrssi[1] != -1000);
  1120. bcm43xx_calc_nrssi_threshold(bcm);
  1121. }
  1122. }
  1123. if (radio->revision == 8)
  1124. bcm43xx_phy_write(bcm, 0x0805, 0x3230);
  1125. bcm43xx_phy_init_pctl(bcm);
  1126. if (bcm->chip_id == 0x4306 && bcm->chip_package == 2) {
  1127. bcm43xx_phy_write(bcm, 0x0429,
  1128. bcm43xx_phy_read(bcm, 0x0429) & 0xBFFF);
  1129. bcm43xx_phy_write(bcm, 0x04C3,
  1130. bcm43xx_phy_read(bcm, 0x04C3) & 0x7FFF);
  1131. }
  1132. }
  1133. static u16 bcm43xx_phy_lo_b_r15_loop(struct bcm43xx_private *bcm)
  1134. {
  1135. int i;
  1136. u16 ret = 0;
  1137. unsigned long flags;
  1138. local_irq_save(flags);
  1139. for (i = 0; i < 10; i++){
  1140. bcm43xx_phy_write(bcm, 0x0015, 0xAFA0);
  1141. udelay(1);
  1142. bcm43xx_phy_write(bcm, 0x0015, 0xEFA0);
  1143. udelay(10);
  1144. bcm43xx_phy_write(bcm, 0x0015, 0xFFA0);
  1145. udelay(40);
  1146. ret += bcm43xx_phy_read(bcm, 0x002C);
  1147. }
  1148. local_irq_restore(flags);
  1149. bcm43xx_voluntary_preempt();
  1150. return ret;
  1151. }
  1152. void bcm43xx_phy_lo_b_measure(struct bcm43xx_private *bcm)
  1153. {
  1154. struct bcm43xx_radioinfo *radio = bcm43xx_current_radio(bcm);
  1155. struct bcm43xx_phyinfo *phy = bcm43xx_current_phy(bcm);
  1156. u16 regstack[12] = { 0 };
  1157. u16 mls;
  1158. u16 fval;
  1159. int i, j;
  1160. regstack[0] = bcm43xx_phy_read(bcm, 0x0015);
  1161. regstack[1] = bcm43xx_radio_read16(bcm, 0x0052) & 0xFFF0;
  1162. if (radio->version == 0x2053) {
  1163. regstack[2] = bcm43xx_phy_read(bcm, 0x000A);
  1164. regstack[3] = bcm43xx_phy_read(bcm, 0x002A);
  1165. regstack[4] = bcm43xx_phy_read(bcm, 0x0035);
  1166. regstack[5] = bcm43xx_phy_read(bcm, 0x0003);
  1167. regstack[6] = bcm43xx_phy_read(bcm, 0x0001);
  1168. regstack[7] = bcm43xx_phy_read(bcm, 0x0030);
  1169. regstack[8] = bcm43xx_radio_read16(bcm, 0x0043);
  1170. regstack[9] = bcm43xx_radio_read16(bcm, 0x007A);
  1171. regstack[10] = bcm43xx_read16(bcm, 0x03EC);
  1172. regstack[11] = bcm43xx_radio_read16(bcm, 0x0052) & 0x00F0;
  1173. bcm43xx_phy_write(bcm, 0x0030, 0x00FF);
  1174. bcm43xx_write16(bcm, 0x03EC, 0x3F3F);
  1175. bcm43xx_phy_write(bcm, 0x0035, regstack[4] & 0xFF7F);
  1176. bcm43xx_radio_write16(bcm, 0x007A, regstack[9] & 0xFFF0);
  1177. }
  1178. bcm43xx_phy_write(bcm, 0x0015, 0xB000);
  1179. bcm43xx_phy_write(bcm, 0x002B, 0x0004);
  1180. if (radio->version == 0x2053) {
  1181. bcm43xx_phy_write(bcm, 0x002B, 0x0203);
  1182. bcm43xx_phy_write(bcm, 0x002A, 0x08A3);
  1183. }
  1184. phy->minlowsig[0] = 0xFFFF;
  1185. for (i = 0; i < 4; i++) {
  1186. bcm43xx_radio_write16(bcm, 0x0052, regstack[1] | i);
  1187. bcm43xx_phy_lo_b_r15_loop(bcm);
  1188. }
  1189. for (i = 0; i < 10; i++) {
  1190. bcm43xx_radio_write16(bcm, 0x0052, regstack[1] | i);
  1191. mls = bcm43xx_phy_lo_b_r15_loop(bcm) / 10;
  1192. if (mls < phy->minlowsig[0]) {
  1193. phy->minlowsig[0] = mls;
  1194. phy->minlowsigpos[0] = i;
  1195. }
  1196. }
  1197. bcm43xx_radio_write16(bcm, 0x0052, regstack[1] | phy->minlowsigpos[0]);
  1198. phy->minlowsig[1] = 0xFFFF;
  1199. for (i = -4; i < 5; i += 2) {
  1200. for (j = -4; j < 5; j += 2) {
  1201. if (j < 0)
  1202. fval = (0x0100 * i) + j + 0x0100;
  1203. else
  1204. fval = (0x0100 * i) + j;
  1205. bcm43xx_phy_write(bcm, 0x002F, fval);
  1206. mls = bcm43xx_phy_lo_b_r15_loop(bcm) / 10;
  1207. if (mls < phy->minlowsig[1]) {
  1208. phy->minlowsig[1] = mls;
  1209. phy->minlowsigpos[1] = fval;
  1210. }
  1211. }
  1212. }
  1213. phy->minlowsigpos[1] += 0x0101;
  1214. bcm43xx_phy_write(bcm, 0x002F, phy->minlowsigpos[1]);
  1215. if (radio->version == 0x2053) {
  1216. bcm43xx_phy_write(bcm, 0x000A, regstack[2]);
  1217. bcm43xx_phy_write(bcm, 0x002A, regstack[3]);
  1218. bcm43xx_phy_write(bcm, 0x0035, regstack[4]);
  1219. bcm43xx_phy_write(bcm, 0x0003, regstack[5]);
  1220. bcm43xx_phy_write(bcm, 0x0001, regstack[6]);
  1221. bcm43xx_phy_write(bcm, 0x0030, regstack[7]);
  1222. bcm43xx_radio_write16(bcm, 0x0043, regstack[8]);
  1223. bcm43xx_radio_write16(bcm, 0x007A, regstack[9]);
  1224. bcm43xx_radio_write16(bcm, 0x0052,
  1225. (bcm43xx_radio_read16(bcm, 0x0052) & 0x000F)
  1226. | regstack[11]);
  1227. bcm43xx_write16(bcm, 0x03EC, regstack[10]);
  1228. }
  1229. bcm43xx_phy_write(bcm, 0x0015, regstack[0]);
  1230. }
  1231. static inline
  1232. u16 bcm43xx_phy_lo_g_deviation_subval(struct bcm43xx_private *bcm, u16 control)
  1233. {
  1234. struct bcm43xx_phyinfo *phy = bcm43xx_current_phy(bcm);
  1235. u16 ret;
  1236. unsigned long flags;
  1237. local_irq_save(flags);
  1238. if (phy->connected) {
  1239. bcm43xx_phy_write(bcm, 0x15, 0xE300);
  1240. control <<= 8;
  1241. bcm43xx_phy_write(bcm, 0x0812, control | 0x00B0);
  1242. udelay(5);
  1243. bcm43xx_phy_write(bcm, 0x0812, control | 0x00B2);
  1244. udelay(2);
  1245. bcm43xx_phy_write(bcm, 0x0812, control | 0x00B3);
  1246. udelay(4);
  1247. bcm43xx_phy_write(bcm, 0x0015, 0xF300);
  1248. udelay(8);
  1249. } else {
  1250. bcm43xx_phy_write(bcm, 0x0015, control | 0xEFA0);
  1251. udelay(2);
  1252. bcm43xx_phy_write(bcm, 0x0015, control | 0xEFE0);
  1253. udelay(4);
  1254. bcm43xx_phy_write(bcm, 0x0015, control | 0xFFE0);
  1255. udelay(8);
  1256. }
  1257. ret = bcm43xx_phy_read(bcm, 0x002D);
  1258. local_irq_restore(flags);
  1259. bcm43xx_voluntary_preempt();
  1260. return ret;
  1261. }
  1262. static u32 bcm43xx_phy_lo_g_singledeviation(struct bcm43xx_private *bcm, u16 control)
  1263. {
  1264. int i;
  1265. u32 ret = 0;
  1266. for (i = 0; i < 8; i++)
  1267. ret += bcm43xx_phy_lo_g_deviation_subval(bcm, control);
  1268. return ret;
  1269. }
  1270. /* Write the LocalOscillator CONTROL */
  1271. static inline
  1272. void bcm43xx_lo_write(struct bcm43xx_private *bcm,
  1273. struct bcm43xx_lopair *pair)
  1274. {
  1275. u16 value;
  1276. value = (u8)(pair->low);
  1277. value |= ((u8)(pair->high)) << 8;
  1278. #ifdef CONFIG_BCM43XX_DEBUG
  1279. /* Sanity check. */
  1280. if (pair->low < -8 || pair->low > 8 ||
  1281. pair->high < -8 || pair->high > 8) {
  1282. printk(KERN_WARNING PFX
  1283. "WARNING: Writing invalid LOpair "
  1284. "(low: %d, high: %d, index: %lu)\n",
  1285. pair->low, pair->high,
  1286. (unsigned long)(pair - bcm43xx_current_phy(bcm)->_lo_pairs));
  1287. dump_stack();
  1288. }
  1289. #endif
  1290. bcm43xx_phy_write(bcm, BCM43xx_PHY_G_LO_CONTROL, value);
  1291. }
  1292. static inline
  1293. struct bcm43xx_lopair * bcm43xx_find_lopair(struct bcm43xx_private *bcm,
  1294. u16 baseband_attenuation,
  1295. u16 radio_attenuation,
  1296. u16 tx)
  1297. {
  1298. static const u8 dict[10] = { 11, 10, 11, 12, 13, 12, 13, 12, 13, 12 };
  1299. struct bcm43xx_phyinfo *phy = bcm43xx_current_phy(bcm);
  1300. if (baseband_attenuation > 6)
  1301. baseband_attenuation = 6;
  1302. assert(radio_attenuation < 10);
  1303. if (tx == 3) {
  1304. return bcm43xx_get_lopair(phy,
  1305. radio_attenuation,
  1306. baseband_attenuation);
  1307. }
  1308. return bcm43xx_get_lopair(phy, dict[radio_attenuation], baseband_attenuation);
  1309. }
  1310. static inline
  1311. struct bcm43xx_lopair * bcm43xx_current_lopair(struct bcm43xx_private *bcm)
  1312. {
  1313. struct bcm43xx_radioinfo *radio = bcm43xx_current_radio(bcm);
  1314. return bcm43xx_find_lopair(bcm,
  1315. radio->baseband_atten,
  1316. radio->radio_atten,
  1317. radio->txctl1);
  1318. }
  1319. /* Adjust B/G LO */
  1320. void bcm43xx_phy_lo_adjust(struct bcm43xx_private *bcm, int fixed)
  1321. {
  1322. struct bcm43xx_lopair *pair;
  1323. if (fixed) {
  1324. /* Use fixed values. Only for initialization. */
  1325. pair = bcm43xx_find_lopair(bcm, 2, 3, 0);
  1326. } else
  1327. pair = bcm43xx_current_lopair(bcm);
  1328. bcm43xx_lo_write(bcm, pair);
  1329. }
  1330. static void bcm43xx_phy_lo_g_measure_txctl2(struct bcm43xx_private *bcm)
  1331. {
  1332. struct bcm43xx_radioinfo *radio = bcm43xx_current_radio(bcm);
  1333. u16 txctl2 = 0, i;
  1334. u32 smallest, tmp;
  1335. bcm43xx_radio_write16(bcm, 0x0052, 0x0000);
  1336. udelay(10);
  1337. smallest = bcm43xx_phy_lo_g_singledeviation(bcm, 0);
  1338. for (i = 0; i < 16; i++) {
  1339. bcm43xx_radio_write16(bcm, 0x0052, i);
  1340. udelay(10);
  1341. tmp = bcm43xx_phy_lo_g_singledeviation(bcm, 0);
  1342. if (tmp < smallest) {
  1343. smallest = tmp;
  1344. txctl2 = i;
  1345. }
  1346. }
  1347. radio->txctl2 = txctl2;
  1348. }
  1349. static
  1350. void bcm43xx_phy_lo_g_state(struct bcm43xx_private *bcm,
  1351. const struct bcm43xx_lopair *in_pair,
  1352. struct bcm43xx_lopair *out_pair,
  1353. u16 r27)
  1354. {
  1355. static const struct bcm43xx_lopair transitions[8] = {
  1356. { .high = 1, .low = 1, },
  1357. { .high = 1, .low = 0, },
  1358. { .high = 1, .low = -1, },
  1359. { .high = 0, .low = -1, },
  1360. { .high = -1, .low = -1, },
  1361. { .high = -1, .low = 0, },
  1362. { .high = -1, .low = 1, },
  1363. { .high = 0, .low = 1, },
  1364. };
  1365. struct bcm43xx_lopair lowest_transition = {
  1366. .high = in_pair->high,
  1367. .low = in_pair->low,
  1368. };
  1369. struct bcm43xx_lopair tmp_pair;
  1370. struct bcm43xx_lopair transition;
  1371. int i = 12;
  1372. int state = 0;
  1373. int found_lower;
  1374. int j, begin, end;
  1375. u32 lowest_deviation;
  1376. u32 tmp;
  1377. /* Note that in_pair and out_pair can point to the same pair. Be careful. */
  1378. bcm43xx_lo_write(bcm, &lowest_transition);
  1379. lowest_deviation = bcm43xx_phy_lo_g_singledeviation(bcm, r27);
  1380. do {
  1381. found_lower = 0;
  1382. assert(state >= 0 && state <= 8);
  1383. if (state == 0) {
  1384. begin = 1;
  1385. end = 8;
  1386. } else if (state % 2 == 0) {
  1387. begin = state - 1;
  1388. end = state + 1;
  1389. } else {
  1390. begin = state - 2;
  1391. end = state + 2;
  1392. }
  1393. if (begin < 1)
  1394. begin += 8;
  1395. if (end > 8)
  1396. end -= 8;
  1397. j = begin;
  1398. tmp_pair.high = lowest_transition.high;
  1399. tmp_pair.low = lowest_transition.low;
  1400. while (1) {
  1401. assert(j >= 1 && j <= 8);
  1402. transition.high = tmp_pair.high + transitions[j - 1].high;
  1403. transition.low = tmp_pair.low + transitions[j - 1].low;
  1404. if ((abs(transition.low) < 9) && (abs(transition.high) < 9)) {
  1405. bcm43xx_lo_write(bcm, &transition);
  1406. tmp = bcm43xx_phy_lo_g_singledeviation(bcm, r27);
  1407. if (tmp < lowest_deviation) {
  1408. lowest_deviation = tmp;
  1409. state = j;
  1410. found_lower = 1;
  1411. lowest_transition.high = transition.high;
  1412. lowest_transition.low = transition.low;
  1413. }
  1414. }
  1415. if (j == end)
  1416. break;
  1417. if (j == 8)
  1418. j = 1;
  1419. else
  1420. j++;
  1421. }
  1422. } while (i-- && found_lower);
  1423. out_pair->high = lowest_transition.high;
  1424. out_pair->low = lowest_transition.low;
  1425. }
  1426. /* Set the baseband attenuation value on chip. */
  1427. void bcm43xx_phy_set_baseband_attenuation(struct bcm43xx_private *bcm,
  1428. u16 baseband_attenuation)
  1429. {
  1430. struct bcm43xx_phyinfo *phy = bcm43xx_current_phy(bcm);
  1431. u16 value;
  1432. if (phy->analog == 0) {
  1433. value = (bcm43xx_read16(bcm, 0x03E6) & 0xFFF0);
  1434. value |= (baseband_attenuation & 0x000F);
  1435. bcm43xx_write16(bcm, 0x03E6, value);
  1436. return;
  1437. }
  1438. if (phy->analog > 1) {
  1439. value = bcm43xx_phy_read(bcm, 0x0060) & ~0x003C;
  1440. value |= (baseband_attenuation << 2) & 0x003C;
  1441. } else {
  1442. value = bcm43xx_phy_read(bcm, 0x0060) & ~0x0078;
  1443. value |= (baseband_attenuation << 3) & 0x0078;
  1444. }
  1445. bcm43xx_phy_write(bcm, 0x0060, value);
  1446. }
  1447. /* http://bcm-specs.sipsolutions.net/LocalOscillator/Measure */
  1448. void bcm43xx_phy_lo_g_measure(struct bcm43xx_private *bcm)
  1449. {
  1450. static const u8 pairorder[10] = { 3, 1, 5, 7, 9, 2, 0, 4, 6, 8 };
  1451. const int is_initializing = (bcm43xx_status(bcm) == BCM43xx_STAT_INITIALIZING);
  1452. struct bcm43xx_phyinfo *phy = bcm43xx_current_phy(bcm);
  1453. struct bcm43xx_radioinfo *radio = bcm43xx_current_radio(bcm);
  1454. u16 h, i, oldi = 0, j;
  1455. struct bcm43xx_lopair control;
  1456. struct bcm43xx_lopair *tmp_control;
  1457. u16 tmp;
  1458. u16 regstack[16] = { 0 };
  1459. u8 oldchannel;
  1460. //XXX: What are these?
  1461. u8 r27 = 0, r31;
  1462. oldchannel = radio->channel;
  1463. /* Setup */
  1464. if (phy->connected) {
  1465. regstack[0] = bcm43xx_phy_read(bcm, BCM43xx_PHY_G_CRS);
  1466. regstack[1] = bcm43xx_phy_read(bcm, 0x0802);
  1467. bcm43xx_phy_write(bcm, BCM43xx_PHY_G_CRS, regstack[0] & 0x7FFF);
  1468. bcm43xx_phy_write(bcm, 0x0802, regstack[1] & 0xFFFC);
  1469. }
  1470. regstack[3] = bcm43xx_read16(bcm, 0x03E2);
  1471. bcm43xx_write16(bcm, 0x03E2, regstack[3] | 0x8000);
  1472. regstack[4] = bcm43xx_read16(bcm, BCM43xx_MMIO_CHANNEL_EXT);
  1473. regstack[5] = bcm43xx_phy_read(bcm, 0x15);
  1474. regstack[6] = bcm43xx_phy_read(bcm, 0x2A);
  1475. regstack[7] = bcm43xx_phy_read(bcm, 0x35);
  1476. regstack[8] = bcm43xx_phy_read(bcm, 0x60);
  1477. regstack[9] = bcm43xx_radio_read16(bcm, 0x43);
  1478. regstack[10] = bcm43xx_radio_read16(bcm, 0x7A);
  1479. regstack[11] = bcm43xx_radio_read16(bcm, 0x52);
  1480. if (phy->connected) {
  1481. regstack[12] = bcm43xx_phy_read(bcm, 0x0811);
  1482. regstack[13] = bcm43xx_phy_read(bcm, 0x0812);
  1483. regstack[14] = bcm43xx_phy_read(bcm, 0x0814);
  1484. regstack[15] = bcm43xx_phy_read(bcm, 0x0815);
  1485. }
  1486. bcm43xx_radio_selectchannel(bcm, 6, 0);
  1487. if (phy->connected) {
  1488. bcm43xx_phy_write(bcm, BCM43xx_PHY_G_CRS, regstack[0] & 0x7FFF);
  1489. bcm43xx_phy_write(bcm, 0x0802, regstack[1] & 0xFFFC);
  1490. bcm43xx_dummy_transmission(bcm);
  1491. }
  1492. bcm43xx_radio_write16(bcm, 0x0043, 0x0006);
  1493. bcm43xx_phy_set_baseband_attenuation(bcm, 2);
  1494. bcm43xx_write16(bcm, BCM43xx_MMIO_CHANNEL_EXT, 0x0000);
  1495. bcm43xx_phy_write(bcm, 0x002E, 0x007F);
  1496. bcm43xx_phy_write(bcm, 0x080F, 0x0078);
  1497. bcm43xx_phy_write(bcm, 0x0035, regstack[7] & ~(1 << 7));
  1498. bcm43xx_radio_write16(bcm, 0x007A, regstack[10] & 0xFFF0);
  1499. bcm43xx_phy_write(bcm, 0x002B, 0x0203);
  1500. bcm43xx_phy_write(bcm, 0x002A, 0x08A3);
  1501. if (phy->connected) {
  1502. bcm43xx_phy_write(bcm, 0x0814, regstack[14] | 0x0003);
  1503. bcm43xx_phy_write(bcm, 0x0815, regstack[15] & 0xFFFC);
  1504. bcm43xx_phy_write(bcm, 0x0811, 0x01B3);
  1505. bcm43xx_phy_write(bcm, 0x0812, 0x00B2);
  1506. }
  1507. if (is_initializing)
  1508. bcm43xx_phy_lo_g_measure_txctl2(bcm);
  1509. bcm43xx_phy_write(bcm, 0x080F, 0x8078);
  1510. /* Measure */
  1511. control.low = 0;
  1512. control.high = 0;
  1513. for (h = 0; h < 10; h++) {
  1514. /* Loop over each possible RadioAttenuation (0-9) */
  1515. i = pairorder[h];
  1516. if (is_initializing) {
  1517. if (i == 3) {
  1518. control.low = 0;
  1519. control.high = 0;
  1520. } else if (((i % 2 == 1) && (oldi % 2 == 1)) ||
  1521. ((i % 2 == 0) && (oldi % 2 == 0))) {
  1522. tmp_control = bcm43xx_get_lopair(phy, oldi, 0);
  1523. memcpy(&control, tmp_control, sizeof(control));
  1524. } else {
  1525. tmp_control = bcm43xx_get_lopair(phy, 3, 0);
  1526. memcpy(&control, tmp_control, sizeof(control));
  1527. }
  1528. }
  1529. /* Loop over each possible BasebandAttenuation/2 */
  1530. for (j = 0; j < 4; j++) {
  1531. if (is_initializing) {
  1532. tmp = i * 2 + j;
  1533. r27 = 0;
  1534. r31 = 0;
  1535. if (tmp > 14) {
  1536. r31 = 1;
  1537. if (tmp > 17)
  1538. r27 = 1;
  1539. if (tmp > 19)
  1540. r27 = 2;
  1541. }
  1542. } else {
  1543. tmp_control = bcm43xx_get_lopair(phy, i, j * 2);
  1544. if (!tmp_control->used)
  1545. continue;
  1546. memcpy(&control, tmp_control, sizeof(control));
  1547. r27 = 3;
  1548. r31 = 0;
  1549. }
  1550. bcm43xx_radio_write16(bcm, 0x43, i);
  1551. bcm43xx_radio_write16(bcm, 0x52, radio->txctl2);
  1552. udelay(10);
  1553. bcm43xx_voluntary_preempt();
  1554. bcm43xx_phy_set_baseband_attenuation(bcm, j * 2);
  1555. tmp = (regstack[10] & 0xFFF0);
  1556. if (r31)
  1557. tmp |= 0x0008;
  1558. bcm43xx_radio_write16(bcm, 0x007A, tmp);
  1559. tmp_control = bcm43xx_get_lopair(phy, i, j * 2);
  1560. bcm43xx_phy_lo_g_state(bcm, &control, tmp_control, r27);
  1561. }
  1562. oldi = i;
  1563. }
  1564. /* Loop over each possible RadioAttenuation (10-13) */
  1565. for (i = 10; i < 14; i++) {
  1566. /* Loop over each possible BasebandAttenuation/2 */
  1567. for (j = 0; j < 4; j++) {
  1568. if (is_initializing) {
  1569. tmp_control = bcm43xx_get_lopair(phy, i - 9, j * 2);
  1570. memcpy(&control, tmp_control, sizeof(control));
  1571. tmp = (i - 9) * 2 + j - 5;//FIXME: This is wrong, as the following if statement can never trigger.
  1572. r27 = 0;
  1573. r31 = 0;
  1574. if (tmp > 14) {
  1575. r31 = 1;
  1576. if (tmp > 17)
  1577. r27 = 1;
  1578. if (tmp > 19)
  1579. r27 = 2;
  1580. }
  1581. } else {
  1582. tmp_control = bcm43xx_get_lopair(phy, i - 9, j * 2);
  1583. if (!tmp_control->used)
  1584. continue;
  1585. memcpy(&control, tmp_control, sizeof(control));
  1586. r27 = 3;
  1587. r31 = 0;
  1588. }
  1589. bcm43xx_radio_write16(bcm, 0x43, i - 9);
  1590. bcm43xx_radio_write16(bcm, 0x52,
  1591. radio->txctl2
  1592. | (3/*txctl1*/ << 4));//FIXME: shouldn't txctl1 be zero here and 3 in the loop above?
  1593. udelay(10);
  1594. bcm43xx_voluntary_preempt();
  1595. bcm43xx_phy_set_baseband_attenuation(bcm, j * 2);
  1596. tmp = (regstack[10] & 0xFFF0);
  1597. if (r31)
  1598. tmp |= 0x0008;
  1599. bcm43xx_radio_write16(bcm, 0x7A, tmp);
  1600. tmp_control = bcm43xx_get_lopair(phy, i, j * 2);
  1601. bcm43xx_phy_lo_g_state(bcm, &control, tmp_control, r27);
  1602. }
  1603. }
  1604. /* Restoration */
  1605. if (phy->connected) {
  1606. bcm43xx_phy_write(bcm, 0x0015, 0xE300);
  1607. bcm43xx_phy_write(bcm, 0x0812, (r27 << 8) | 0xA0);
  1608. udelay(5);
  1609. bcm43xx_phy_write(bcm, 0x0812, (r27 << 8) | 0xA2);
  1610. udelay(2);
  1611. bcm43xx_phy_write(bcm, 0x0812, (r27 << 8) | 0xA3);
  1612. bcm43xx_voluntary_preempt();
  1613. } else
  1614. bcm43xx_phy_write(bcm, 0x0015, r27 | 0xEFA0);
  1615. bcm43xx_phy_lo_adjust(bcm, is_initializing);
  1616. bcm43xx_phy_write(bcm, 0x002E, 0x807F);
  1617. if (phy->connected)
  1618. bcm43xx_phy_write(bcm, 0x002F, 0x0202);
  1619. else
  1620. bcm43xx_phy_write(bcm, 0x002F, 0x0101);
  1621. bcm43xx_write16(bcm, BCM43xx_MMIO_CHANNEL_EXT, regstack[4]);
  1622. bcm43xx_phy_write(bcm, 0x0015, regstack[5]);
  1623. bcm43xx_phy_write(bcm, 0x002A, regstack[6]);
  1624. bcm43xx_phy_write(bcm, 0x0035, regstack[7]);
  1625. bcm43xx_phy_write(bcm, 0x0060, regstack[8]);
  1626. bcm43xx_radio_write16(bcm, 0x0043, regstack[9]);
  1627. bcm43xx_radio_write16(bcm, 0x007A, regstack[10]);
  1628. regstack[11] &= 0x00F0;
  1629. regstack[11] |= (bcm43xx_radio_read16(bcm, 0x52) & 0x000F);
  1630. bcm43xx_radio_write16(bcm, 0x52, regstack[11]);
  1631. bcm43xx_write16(bcm, 0x03E2, regstack[3]);
  1632. if (phy->connected) {
  1633. bcm43xx_phy_write(bcm, 0x0811, regstack[12]);
  1634. bcm43xx_phy_write(bcm, 0x0812, regstack[13]);
  1635. bcm43xx_phy_write(bcm, 0x0814, regstack[14]);
  1636. bcm43xx_phy_write(bcm, 0x0815, regstack[15]);
  1637. bcm43xx_phy_write(bcm, BCM43xx_PHY_G_CRS, regstack[0]);
  1638. bcm43xx_phy_write(bcm, 0x0802, regstack[1]);
  1639. }
  1640. bcm43xx_radio_selectchannel(bcm, oldchannel, 1);
  1641. #ifdef CONFIG_BCM43XX_DEBUG
  1642. {
  1643. /* Sanity check for all lopairs. */
  1644. for (i = 0; i < BCM43xx_LO_COUNT; i++) {
  1645. tmp_control = phy->_lo_pairs + i;
  1646. if (tmp_control->low < -8 || tmp_control->low > 8 ||
  1647. tmp_control->high < -8 || tmp_control->high > 8) {
  1648. printk(KERN_WARNING PFX
  1649. "WARNING: Invalid LOpair (low: %d, high: %d, index: %d)\n",
  1650. tmp_control->low, tmp_control->high, i);
  1651. }
  1652. }
  1653. }
  1654. #endif /* CONFIG_BCM43XX_DEBUG */
  1655. }
  1656. static
  1657. void bcm43xx_phy_lo_mark_current_used(struct bcm43xx_private *bcm)
  1658. {
  1659. struct bcm43xx_lopair *pair;
  1660. pair = bcm43xx_current_lopair(bcm);
  1661. pair->used = 1;
  1662. }
  1663. void bcm43xx_phy_lo_mark_all_unused(struct bcm43xx_private *bcm)
  1664. {
  1665. struct bcm43xx_phyinfo *phy = bcm43xx_current_phy(bcm);
  1666. struct bcm43xx_lopair *pair;
  1667. int i;
  1668. for (i = 0; i < BCM43xx_LO_COUNT; i++) {
  1669. pair = phy->_lo_pairs + i;
  1670. pair->used = 0;
  1671. }
  1672. }
  1673. /* http://bcm-specs.sipsolutions.net/EstimatePowerOut
  1674. * This function converts a TSSI value to dBm in Q5.2
  1675. */
  1676. static s8 bcm43xx_phy_estimate_power_out(struct bcm43xx_private *bcm, s8 tssi)
  1677. {
  1678. struct bcm43xx_phyinfo *phy = bcm43xx_current_phy(bcm);
  1679. s8 dbm = 0;
  1680. s32 tmp;
  1681. tmp = phy->idle_tssi;
  1682. tmp += tssi;
  1683. tmp -= phy->savedpctlreg;
  1684. switch (phy->type) {
  1685. case BCM43xx_PHYTYPE_A:
  1686. tmp += 0x80;
  1687. tmp = limit_value(tmp, 0x00, 0xFF);
  1688. dbm = phy->tssi2dbm[tmp];
  1689. TODO(); //TODO: There's a FIXME on the specs
  1690. break;
  1691. case BCM43xx_PHYTYPE_B:
  1692. case BCM43xx_PHYTYPE_G:
  1693. tmp = limit_value(tmp, 0x00, 0x3F);
  1694. dbm = phy->tssi2dbm[tmp];
  1695. break;
  1696. default:
  1697. assert(0);
  1698. }
  1699. return dbm;
  1700. }
  1701. /* http://bcm-specs.sipsolutions.net/RecalculateTransmissionPower */
  1702. void bcm43xx_phy_xmitpower(struct bcm43xx_private *bcm)
  1703. {
  1704. struct bcm43xx_radioinfo *radio = bcm43xx_current_radio(bcm);
  1705. struct bcm43xx_phyinfo *phy = bcm43xx_current_phy(bcm);
  1706. if (phy->savedpctlreg == 0xFFFF)
  1707. return;
  1708. if ((bcm->board_type == 0x0416) &&
  1709. (bcm->board_vendor == PCI_VENDOR_ID_BROADCOM))
  1710. return;
  1711. switch (phy->type) {
  1712. case BCM43xx_PHYTYPE_A: {
  1713. TODO(); //TODO: Nothing for A PHYs yet :-/
  1714. break;
  1715. }
  1716. case BCM43xx_PHYTYPE_B:
  1717. case BCM43xx_PHYTYPE_G: {
  1718. u16 tmp;
  1719. u16 txpower;
  1720. s8 v0, v1, v2, v3;
  1721. s8 average;
  1722. u8 max_pwr;
  1723. s16 desired_pwr, estimated_pwr, pwr_adjust;
  1724. s16 radio_att_delta, baseband_att_delta;
  1725. s16 radio_attenuation, baseband_attenuation;
  1726. unsigned long phylock_flags;
  1727. tmp = bcm43xx_shm_read16(bcm, BCM43xx_SHM_SHARED, 0x0058);
  1728. v0 = (s8)(tmp & 0x00FF);
  1729. v1 = (s8)((tmp & 0xFF00) >> 8);
  1730. tmp = bcm43xx_shm_read16(bcm, BCM43xx_SHM_SHARED, 0x005A);
  1731. v2 = (s8)(tmp & 0x00FF);
  1732. v3 = (s8)((tmp & 0xFF00) >> 8);
  1733. tmp = 0;
  1734. if (v0 == 0x7F || v1 == 0x7F || v2 == 0x7F || v3 == 0x7F) {
  1735. tmp = bcm43xx_shm_read16(bcm, BCM43xx_SHM_SHARED, 0x0070);
  1736. v0 = (s8)(tmp & 0x00FF);
  1737. v1 = (s8)((tmp & 0xFF00) >> 8);
  1738. tmp = bcm43xx_shm_read16(bcm, BCM43xx_SHM_SHARED, 0x0072);
  1739. v2 = (s8)(tmp & 0x00FF);
  1740. v3 = (s8)((tmp & 0xFF00) >> 8);
  1741. if (v0 == 0x7F || v1 == 0x7F || v2 == 0x7F || v3 == 0x7F)
  1742. return;
  1743. v0 = (v0 + 0x20) & 0x3F;
  1744. v1 = (v1 + 0x20) & 0x3F;
  1745. v2 = (v2 + 0x20) & 0x3F;
  1746. v3 = (v3 + 0x20) & 0x3F;
  1747. tmp = 1;
  1748. }
  1749. bcm43xx_radio_clear_tssi(bcm);
  1750. average = (v0 + v1 + v2 + v3 + 2) / 4;
  1751. if (tmp && (bcm43xx_shm_read16(bcm, BCM43xx_SHM_SHARED, 0x005E) & 0x8))
  1752. average -= 13;
  1753. estimated_pwr = bcm43xx_phy_estimate_power_out(bcm, average);
  1754. max_pwr = bcm->sprom.maxpower_bgphy;
  1755. if ((bcm->sprom.boardflags & BCM43xx_BFL_PACTRL) &&
  1756. (phy->type == BCM43xx_PHYTYPE_G))
  1757. max_pwr -= 0x3;
  1758. /*TODO:
  1759. max_pwr = min(REG - bcm->sprom.antennagain_bgphy - 0x6, max_pwr)
  1760. where REG is the max power as per the regulatory domain
  1761. */
  1762. desired_pwr = limit_value(radio->txpower_desired, 0, max_pwr);
  1763. /* Check if we need to adjust the current power. */
  1764. pwr_adjust = desired_pwr - estimated_pwr;
  1765. radio_att_delta = -(pwr_adjust + 7) >> 3;
  1766. baseband_att_delta = -(pwr_adjust >> 1) - (4 * radio_att_delta);
  1767. if ((radio_att_delta == 0) && (baseband_att_delta == 0)) {
  1768. bcm43xx_phy_lo_mark_current_used(bcm);
  1769. return;
  1770. }
  1771. /* Calculate the new attenuation values. */
  1772. baseband_attenuation = radio->baseband_atten;
  1773. baseband_attenuation += baseband_att_delta;
  1774. radio_attenuation = radio->radio_atten;
  1775. radio_attenuation += radio_att_delta;
  1776. /* Get baseband and radio attenuation values into their permitted ranges.
  1777. * baseband 0-11, radio 0-9.
  1778. * Radio attenuation affects power level 4 times as much as baseband.
  1779. */
  1780. if (radio_attenuation < 0) {
  1781. baseband_attenuation -= (4 * -radio_attenuation);
  1782. radio_attenuation = 0;
  1783. } else if (radio_attenuation > 9) {
  1784. baseband_attenuation += (4 * (radio_attenuation - 9));
  1785. radio_attenuation = 9;
  1786. } else {
  1787. while (baseband_attenuation < 0 && radio_attenuation > 0) {
  1788. baseband_attenuation += 4;
  1789. radio_attenuation--;
  1790. }
  1791. while (baseband_attenuation > 11 && radio_attenuation < 9) {
  1792. baseband_attenuation -= 4;
  1793. radio_attenuation++;
  1794. }
  1795. }
  1796. baseband_attenuation = limit_value(baseband_attenuation, 0, 11);
  1797. txpower = radio->txctl1;
  1798. if ((radio->version == 0x2050) && (radio->revision == 2)) {
  1799. if (radio_attenuation <= 1) {
  1800. if (txpower == 0) {
  1801. txpower = 3;
  1802. radio_attenuation += 2;
  1803. baseband_attenuation += 2;
  1804. } else if (bcm->sprom.boardflags & BCM43xx_BFL_PACTRL) {
  1805. baseband_attenuation += 4 * (radio_attenuation - 2);
  1806. radio_attenuation = 2;
  1807. }
  1808. } else if (radio_attenuation > 4 && txpower != 0) {
  1809. txpower = 0;
  1810. if (baseband_attenuation < 3) {
  1811. radio_attenuation -= 3;
  1812. baseband_attenuation += 2;
  1813. } else {
  1814. radio_attenuation -= 2;
  1815. baseband_attenuation -= 2;
  1816. }
  1817. }
  1818. }
  1819. radio->txctl1 = txpower;
  1820. baseband_attenuation = limit_value(baseband_attenuation, 0, 11);
  1821. radio_attenuation = limit_value(radio_attenuation, 0, 9);
  1822. bcm43xx_phy_lock(bcm, phylock_flags);
  1823. bcm43xx_radio_lock(bcm);
  1824. bcm43xx_radio_set_txpower_bg(bcm, baseband_attenuation,
  1825. radio_attenuation, txpower);
  1826. bcm43xx_phy_lo_mark_current_used(bcm);
  1827. bcm43xx_radio_unlock(bcm);
  1828. bcm43xx_phy_unlock(bcm, phylock_flags);
  1829. break;
  1830. }
  1831. default:
  1832. assert(0);
  1833. }
  1834. }
  1835. static inline
  1836. s32 bcm43xx_tssi2dbm_ad(s32 num, s32 den)
  1837. {
  1838. if (num < 0)
  1839. return num/den;
  1840. else
  1841. return (num+den/2)/den;
  1842. }
  1843. static inline
  1844. s8 bcm43xx_tssi2dbm_entry(s8 entry [], u8 index, s16 pab0, s16 pab1, s16 pab2)
  1845. {
  1846. s32 m1, m2, f = 256, q, delta;
  1847. s8 i = 0;
  1848. m1 = bcm43xx_tssi2dbm_ad(16 * pab0 + index * pab1, 32);
  1849. m2 = max(bcm43xx_tssi2dbm_ad(32768 + index * pab2, 256), 1);
  1850. do {
  1851. if (i > 15)
  1852. return -EINVAL;
  1853. q = bcm43xx_tssi2dbm_ad(f * 4096 -
  1854. bcm43xx_tssi2dbm_ad(m2 * f, 16) * f, 2048);
  1855. delta = abs(q - f);
  1856. f = q;
  1857. i++;
  1858. } while (delta >= 2);
  1859. entry[index] = limit_value(bcm43xx_tssi2dbm_ad(m1 * f, 8192), -127, 128);
  1860. return 0;
  1861. }
  1862. /* http://bcm-specs.sipsolutions.net/TSSI_to_DBM_Table */
  1863. int bcm43xx_phy_init_tssi2dbm_table(struct bcm43xx_private *bcm)
  1864. {
  1865. struct bcm43xx_phyinfo *phy = bcm43xx_current_phy(bcm);
  1866. struct bcm43xx_radioinfo *radio = bcm43xx_current_radio(bcm);
  1867. s16 pab0, pab1, pab2;
  1868. u8 idx;
  1869. s8 *dyn_tssi2dbm;
  1870. if (phy->type == BCM43xx_PHYTYPE_A) {
  1871. pab0 = (s16)(bcm->sprom.pa1b0);
  1872. pab1 = (s16)(bcm->sprom.pa1b1);
  1873. pab2 = (s16)(bcm->sprom.pa1b2);
  1874. } else {
  1875. pab0 = (s16)(bcm->sprom.pa0b0);
  1876. pab1 = (s16)(bcm->sprom.pa0b1);
  1877. pab2 = (s16)(bcm->sprom.pa0b2);
  1878. }
  1879. if ((bcm->chip_id == 0x4301) && (radio->version != 0x2050)) {
  1880. phy->idle_tssi = 0x34;
  1881. phy->tssi2dbm = bcm43xx_tssi2dbm_b_table;
  1882. return 0;
  1883. }
  1884. if (pab0 != 0 && pab1 != 0 && pab2 != 0 &&
  1885. pab0 != -1 && pab1 != -1 && pab2 != -1) {
  1886. /* The pabX values are set in SPROM. Use them. */
  1887. if (phy->type == BCM43xx_PHYTYPE_A) {
  1888. if ((s8)bcm->sprom.idle_tssi_tgt_aphy != 0 &&
  1889. (s8)bcm->sprom.idle_tssi_tgt_aphy != -1)
  1890. phy->idle_tssi = (s8)(bcm->sprom.idle_tssi_tgt_aphy);
  1891. else
  1892. phy->idle_tssi = 62;
  1893. } else {
  1894. if ((s8)bcm->sprom.idle_tssi_tgt_bgphy != 0 &&
  1895. (s8)bcm->sprom.idle_tssi_tgt_bgphy != -1)
  1896. phy->idle_tssi = (s8)(bcm->sprom.idle_tssi_tgt_bgphy);
  1897. else
  1898. phy->idle_tssi = 62;
  1899. }
  1900. dyn_tssi2dbm = kmalloc(64, GFP_KERNEL);
  1901. if (dyn_tssi2dbm == NULL) {
  1902. printk(KERN_ERR PFX "Could not allocate memory"
  1903. "for tssi2dbm table\n");
  1904. return -ENOMEM;
  1905. }
  1906. for (idx = 0; idx < 64; idx++)
  1907. if (bcm43xx_tssi2dbm_entry(dyn_tssi2dbm, idx, pab0, pab1, pab2)) {
  1908. phy->tssi2dbm = NULL;
  1909. printk(KERN_ERR PFX "Could not generate "
  1910. "tssi2dBm table\n");
  1911. kfree(dyn_tssi2dbm);
  1912. return -ENODEV;
  1913. }
  1914. phy->tssi2dbm = dyn_tssi2dbm;
  1915. phy->dyn_tssi_tbl = 1;
  1916. } else {
  1917. /* pabX values not set in SPROM. */
  1918. switch (phy->type) {
  1919. case BCM43xx_PHYTYPE_A:
  1920. /* APHY needs a generated table. */
  1921. phy->tssi2dbm = NULL;
  1922. printk(KERN_ERR PFX "Could not generate tssi2dBm "
  1923. "table (wrong SPROM info)!\n");
  1924. return -ENODEV;
  1925. case BCM43xx_PHYTYPE_B:
  1926. phy->idle_tssi = 0x34;
  1927. phy->tssi2dbm = bcm43xx_tssi2dbm_b_table;
  1928. break;
  1929. case BCM43xx_PHYTYPE_G:
  1930. phy->idle_tssi = 0x34;
  1931. phy->tssi2dbm = bcm43xx_tssi2dbm_g_table;
  1932. break;
  1933. }
  1934. }
  1935. return 0;
  1936. }
  1937. int bcm43xx_phy_init(struct bcm43xx_private *bcm)
  1938. {
  1939. struct bcm43xx_phyinfo *phy = bcm43xx_current_phy(bcm);
  1940. int err = -ENODEV;
  1941. switch (phy->type) {
  1942. case BCM43xx_PHYTYPE_A:
  1943. if (phy->rev == 2 || phy->rev == 3) {
  1944. bcm43xx_phy_inita(bcm);
  1945. err = 0;
  1946. }
  1947. break;
  1948. case BCM43xx_PHYTYPE_B:
  1949. switch (phy->rev) {
  1950. case 2:
  1951. bcm43xx_phy_initb2(bcm);
  1952. err = 0;
  1953. break;
  1954. case 4:
  1955. bcm43xx_phy_initb4(bcm);
  1956. err = 0;
  1957. break;
  1958. case 5:
  1959. bcm43xx_phy_initb5(bcm);
  1960. err = 0;
  1961. break;
  1962. case 6:
  1963. bcm43xx_phy_initb6(bcm);
  1964. err = 0;
  1965. break;
  1966. }
  1967. break;
  1968. case BCM43xx_PHYTYPE_G:
  1969. bcm43xx_phy_initg(bcm);
  1970. err = 0;
  1971. break;
  1972. }
  1973. if (err)
  1974. printk(KERN_WARNING PFX "Unknown PHYTYPE found!\n");
  1975. return err;
  1976. }
  1977. void bcm43xx_phy_set_antenna_diversity(struct bcm43xx_private *bcm)
  1978. {
  1979. struct bcm43xx_phyinfo *phy = bcm43xx_current_phy(bcm);
  1980. u16 antennadiv;
  1981. u16 offset;
  1982. u16 value;
  1983. u32 ucodeflags;
  1984. antennadiv = phy->antenna_diversity;
  1985. if (antennadiv == 0xFFFF)
  1986. antennadiv = 3;
  1987. assert(antennadiv <= 3);
  1988. ucodeflags = bcm43xx_shm_read32(bcm, BCM43xx_SHM_SHARED,
  1989. BCM43xx_UCODEFLAGS_OFFSET);
  1990. bcm43xx_shm_write32(bcm, BCM43xx_SHM_SHARED,
  1991. BCM43xx_UCODEFLAGS_OFFSET,
  1992. ucodeflags & ~BCM43xx_UCODEFLAG_AUTODIV);
  1993. switch (phy->type) {
  1994. case BCM43xx_PHYTYPE_A:
  1995. case BCM43xx_PHYTYPE_G:
  1996. if (phy->type == BCM43xx_PHYTYPE_A)
  1997. offset = 0x0000;
  1998. else
  1999. offset = 0x0400;
  2000. if (antennadiv == 2)
  2001. value = (3/*automatic*/ << 7);
  2002. else
  2003. value = (antennadiv << 7);
  2004. bcm43xx_phy_write(bcm, offset + 1,
  2005. (bcm43xx_phy_read(bcm, offset + 1)
  2006. & 0x7E7F) | value);
  2007. if (antennadiv >= 2) {
  2008. if (antennadiv == 2)
  2009. value = (antennadiv << 7);
  2010. else
  2011. value = (0/*force0*/ << 7);
  2012. bcm43xx_phy_write(bcm, offset + 0x2B,
  2013. (bcm43xx_phy_read(bcm, offset + 0x2B)
  2014. & 0xFEFF) | value);
  2015. }
  2016. if (phy->type == BCM43xx_PHYTYPE_G) {
  2017. if (antennadiv >= 2)
  2018. bcm43xx_phy_write(bcm, 0x048C,
  2019. bcm43xx_phy_read(bcm, 0x048C)
  2020. | 0x2000);
  2021. else
  2022. bcm43xx_phy_write(bcm, 0x048C,
  2023. bcm43xx_phy_read(bcm, 0x048C)
  2024. & ~0x2000);
  2025. if (phy->rev >= 2) {
  2026. bcm43xx_phy_write(bcm, 0x0461,
  2027. bcm43xx_phy_read(bcm, 0x0461)
  2028. | 0x0010);
  2029. bcm43xx_phy_write(bcm, 0x04AD,
  2030. (bcm43xx_phy_read(bcm, 0x04AD)
  2031. & 0x00FF) | 0x0015);
  2032. if (phy->rev == 2)
  2033. bcm43xx_phy_write(bcm, 0x0427, 0x0008);
  2034. else
  2035. bcm43xx_phy_write(bcm, 0x0427,
  2036. (bcm43xx_phy_read(bcm, 0x0427)
  2037. & 0x00FF) | 0x0008);
  2038. }
  2039. else if (phy->rev >= 6)
  2040. bcm43xx_phy_write(bcm, 0x049B, 0x00DC);
  2041. } else {
  2042. if (phy->rev < 3)
  2043. bcm43xx_phy_write(bcm, 0x002B,
  2044. (bcm43xx_phy_read(bcm, 0x002B)
  2045. & 0x00FF) | 0x0024);
  2046. else {
  2047. bcm43xx_phy_write(bcm, 0x0061,
  2048. bcm43xx_phy_read(bcm, 0x0061)
  2049. | 0x0010);
  2050. if (phy->rev == 3) {
  2051. bcm43xx_phy_write(bcm, 0x0093, 0x001D);
  2052. bcm43xx_phy_write(bcm, 0x0027, 0x0008);
  2053. } else {
  2054. bcm43xx_phy_write(bcm, 0x0093, 0x003A);
  2055. bcm43xx_phy_write(bcm, 0x0027,
  2056. (bcm43xx_phy_read(bcm, 0x0027)
  2057. & 0x00FF) | 0x0008);
  2058. }
  2059. }
  2060. }
  2061. break;
  2062. case BCM43xx_PHYTYPE_B:
  2063. if (bcm->current_core->rev == 2)
  2064. value = (3/*automatic*/ << 7);
  2065. else
  2066. value = (antennadiv << 7);
  2067. bcm43xx_phy_write(bcm, 0x03E2,
  2068. (bcm43xx_phy_read(bcm, 0x03E2)
  2069. & 0xFE7F) | value);
  2070. break;
  2071. default:
  2072. assert(0);
  2073. }
  2074. if (antennadiv >= 2) {
  2075. ucodeflags = bcm43xx_shm_read32(bcm, BCM43xx_SHM_SHARED,
  2076. BCM43xx_UCODEFLAGS_OFFSET);
  2077. bcm43xx_shm_write32(bcm, BCM43xx_SHM_SHARED,
  2078. BCM43xx_UCODEFLAGS_OFFSET,
  2079. ucodeflags | BCM43xx_UCODEFLAG_AUTODIV);
  2080. }
  2081. phy->antenna_diversity = antennadiv;
  2082. }