main.c 215 KB

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  1. /*
  2. * Copyright (c) 2010 Broadcom Corporation
  3. * Copyright (c) 2013 Hauke Mehrtens <hauke@hauke-m.de>
  4. *
  5. * Permission to use, copy, modify, and/or distribute this software for any
  6. * purpose with or without fee is hereby granted, provided that the above
  7. * copyright notice and this permission notice appear in all copies.
  8. *
  9. * THE SOFTWARE IS PROVIDED "AS IS" AND THE AUTHOR DISCLAIMS ALL WARRANTIES
  10. * WITH REGARD TO THIS SOFTWARE INCLUDING ALL IMPLIED WARRANTIES OF
  11. * MERCHANTABILITY AND FITNESS. IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY
  12. * SPECIAL, DIRECT, INDIRECT, OR CONSEQUENTIAL DAMAGES OR ANY DAMAGES
  13. * WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR PROFITS, WHETHER IN AN ACTION
  14. * OF CONTRACT, NEGLIGENCE OR OTHER TORTIOUS ACTION, ARISING OUT OF OR IN
  15. * CONNECTION WITH THE USE OR PERFORMANCE OF THIS SOFTWARE.
  16. */
  17. #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
  18. #include <linux/pci_ids.h>
  19. #include <linux/if_ether.h>
  20. #include <net/cfg80211.h>
  21. #include <net/mac80211.h>
  22. #include <brcm_hw_ids.h>
  23. #include <aiutils.h>
  24. #include <chipcommon.h>
  25. #include "rate.h"
  26. #include "scb.h"
  27. #include "phy/phy_hal.h"
  28. #include "channel.h"
  29. #include "antsel.h"
  30. #include "stf.h"
  31. #include "ampdu.h"
  32. #include "mac80211_if.h"
  33. #include "ucode_loader.h"
  34. #include "main.h"
  35. #include "soc.h"
  36. #include "dma.h"
  37. #include "debug.h"
  38. #include "brcms_trace_events.h"
  39. /* watchdog timer, in unit of ms */
  40. #define TIMER_INTERVAL_WATCHDOG 1000
  41. /* radio monitor timer, in unit of ms */
  42. #define TIMER_INTERVAL_RADIOCHK 800
  43. /* beacon interval, in unit of 1024TU */
  44. #define BEACON_INTERVAL_DEFAULT 100
  45. /* n-mode support capability */
  46. /* 2x2 includes both 1x1 & 2x2 devices
  47. * reserved #define 2 for future when we want to separate 1x1 & 2x2 and
  48. * control it independently
  49. */
  50. #define WL_11N_2x2 1
  51. #define WL_11N_3x3 3
  52. #define WL_11N_4x4 4
  53. #define EDCF_ACI_MASK 0x60
  54. #define EDCF_ACI_SHIFT 5
  55. #define EDCF_ECWMIN_MASK 0x0f
  56. #define EDCF_ECWMAX_SHIFT 4
  57. #define EDCF_AIFSN_MASK 0x0f
  58. #define EDCF_AIFSN_MAX 15
  59. #define EDCF_ECWMAX_MASK 0xf0
  60. #define EDCF_AC_BE_TXOP_STA 0x0000
  61. #define EDCF_AC_BK_TXOP_STA 0x0000
  62. #define EDCF_AC_VO_ACI_STA 0x62
  63. #define EDCF_AC_VO_ECW_STA 0x32
  64. #define EDCF_AC_VI_ACI_STA 0x42
  65. #define EDCF_AC_VI_ECW_STA 0x43
  66. #define EDCF_AC_BK_ECW_STA 0xA4
  67. #define EDCF_AC_VI_TXOP_STA 0x005e
  68. #define EDCF_AC_VO_TXOP_STA 0x002f
  69. #define EDCF_AC_BE_ACI_STA 0x03
  70. #define EDCF_AC_BE_ECW_STA 0xA4
  71. #define EDCF_AC_BK_ACI_STA 0x27
  72. #define EDCF_AC_VO_TXOP_AP 0x002f
  73. #define EDCF_TXOP2USEC(txop) ((txop) << 5)
  74. #define EDCF_ECW2CW(exp) ((1 << (exp)) - 1)
  75. #define APHY_SYMBOL_TIME 4
  76. #define APHY_PREAMBLE_TIME 16
  77. #define APHY_SIGNAL_TIME 4
  78. #define APHY_SIFS_TIME 16
  79. #define APHY_SERVICE_NBITS 16
  80. #define APHY_TAIL_NBITS 6
  81. #define BPHY_SIFS_TIME 10
  82. #define BPHY_PLCP_SHORT_TIME 96
  83. #define PREN_PREAMBLE 24
  84. #define PREN_MM_EXT 12
  85. #define PREN_PREAMBLE_EXT 4
  86. #define DOT11_MAC_HDR_LEN 24
  87. #define DOT11_ACK_LEN 10
  88. #define DOT11_BA_LEN 4
  89. #define DOT11_OFDM_SIGNAL_EXTENSION 6
  90. #define DOT11_MIN_FRAG_LEN 256
  91. #define DOT11_RTS_LEN 16
  92. #define DOT11_CTS_LEN 10
  93. #define DOT11_BA_BITMAP_LEN 128
  94. #define DOT11_MAXNUMFRAGS 16
  95. #define DOT11_MAX_FRAG_LEN 2346
  96. #define BPHY_PLCP_TIME 192
  97. #define RIFS_11N_TIME 2
  98. /* length of the BCN template area */
  99. #define BCN_TMPL_LEN 512
  100. /* brcms_bss_info flag bit values */
  101. #define BRCMS_BSS_HT 0x0020 /* BSS is HT (MIMO) capable */
  102. /* chip rx buffer offset */
  103. #define BRCMS_HWRXOFF 38
  104. /* rfdisable delay timer 500 ms, runs of ALP clock */
  105. #define RFDISABLE_DEFAULT 10000000
  106. #define BRCMS_TEMPSENSE_PERIOD 10 /* 10 second timeout */
  107. /* synthpu_dly times in us */
  108. #define SYNTHPU_DLY_APHY_US 3700
  109. #define SYNTHPU_DLY_BPHY_US 1050
  110. #define SYNTHPU_DLY_NPHY_US 2048
  111. #define SYNTHPU_DLY_LPPHY_US 300
  112. #define ANTCNT 10 /* vanilla M_MAX_ANTCNT val */
  113. /* Per-AC retry limit register definitions; uses defs.h bitfield macros */
  114. #define EDCF_SHORT_S 0
  115. #define EDCF_SFB_S 4
  116. #define EDCF_LONG_S 8
  117. #define EDCF_LFB_S 12
  118. #define EDCF_SHORT_M BITFIELD_MASK(4)
  119. #define EDCF_SFB_M BITFIELD_MASK(4)
  120. #define EDCF_LONG_M BITFIELD_MASK(4)
  121. #define EDCF_LFB_M BITFIELD_MASK(4)
  122. #define RETRY_SHORT_DEF 7 /* Default Short retry Limit */
  123. #define RETRY_SHORT_MAX 255 /* Maximum Short retry Limit */
  124. #define RETRY_LONG_DEF 4 /* Default Long retry count */
  125. #define RETRY_SHORT_FB 3 /* Short count for fb rate */
  126. #define RETRY_LONG_FB 2 /* Long count for fb rate */
  127. #define APHY_CWMIN 15
  128. #define PHY_CWMAX 1023
  129. #define EDCF_AIFSN_MIN 1
  130. #define FRAGNUM_MASK 0xF
  131. #define APHY_SLOT_TIME 9
  132. #define BPHY_SLOT_TIME 20
  133. #define WL_SPURAVOID_OFF 0
  134. #define WL_SPURAVOID_ON1 1
  135. #define WL_SPURAVOID_ON2 2
  136. /* invalid core flags, use the saved coreflags */
  137. #define BRCMS_USE_COREFLAGS 0xffffffff
  138. /* values for PLCPHdr_override */
  139. #define BRCMS_PLCP_AUTO -1
  140. #define BRCMS_PLCP_SHORT 0
  141. #define BRCMS_PLCP_LONG 1
  142. /* values for g_protection_override and n_protection_override */
  143. #define BRCMS_PROTECTION_AUTO -1
  144. #define BRCMS_PROTECTION_OFF 0
  145. #define BRCMS_PROTECTION_ON 1
  146. #define BRCMS_PROTECTION_MMHDR_ONLY 2
  147. #define BRCMS_PROTECTION_CTS_ONLY 3
  148. /* values for g_protection_control and n_protection_control */
  149. #define BRCMS_PROTECTION_CTL_OFF 0
  150. #define BRCMS_PROTECTION_CTL_LOCAL 1
  151. #define BRCMS_PROTECTION_CTL_OVERLAP 2
  152. /* values for n_protection */
  153. #define BRCMS_N_PROTECTION_OFF 0
  154. #define BRCMS_N_PROTECTION_OPTIONAL 1
  155. #define BRCMS_N_PROTECTION_20IN40 2
  156. #define BRCMS_N_PROTECTION_MIXEDMODE 3
  157. /* values for band specific 40MHz capabilities */
  158. #define BRCMS_N_BW_20ALL 0
  159. #define BRCMS_N_BW_40ALL 1
  160. #define BRCMS_N_BW_20IN2G_40IN5G 2
  161. /* bitflags for SGI support (sgi_rx iovar) */
  162. #define BRCMS_N_SGI_20 0x01
  163. #define BRCMS_N_SGI_40 0x02
  164. /* defines used by the nrate iovar */
  165. /* MSC in use,indicates b0-6 holds an mcs */
  166. #define NRATE_MCS_INUSE 0x00000080
  167. /* rate/mcs value */
  168. #define NRATE_RATE_MASK 0x0000007f
  169. /* stf mode mask: siso, cdd, stbc, sdm */
  170. #define NRATE_STF_MASK 0x0000ff00
  171. /* stf mode shift */
  172. #define NRATE_STF_SHIFT 8
  173. /* bit indicate to override mcs only */
  174. #define NRATE_OVERRIDE_MCS_ONLY 0x40000000
  175. #define NRATE_SGI_MASK 0x00800000 /* sgi mode */
  176. #define NRATE_SGI_SHIFT 23 /* sgi mode */
  177. #define NRATE_LDPC_CODING 0x00400000 /* adv coding in use */
  178. #define NRATE_LDPC_SHIFT 22 /* ldpc shift */
  179. #define NRATE_STF_SISO 0 /* stf mode SISO */
  180. #define NRATE_STF_CDD 1 /* stf mode CDD */
  181. #define NRATE_STF_STBC 2 /* stf mode STBC */
  182. #define NRATE_STF_SDM 3 /* stf mode SDM */
  183. #define MAX_DMA_SEGS 4
  184. /* # of entries in Tx FIFO */
  185. #define NTXD 64
  186. /* Max # of entries in Rx FIFO based on 4kb page size */
  187. #define NRXD 256
  188. /* Amount of headroom to leave in Tx FIFO */
  189. #define TX_HEADROOM 4
  190. /* try to keep this # rbufs posted to the chip */
  191. #define NRXBUFPOST 32
  192. /* max # frames to process in brcms_c_recv() */
  193. #define RXBND 8
  194. /* max # tx status to process in wlc_txstatus() */
  195. #define TXSBND 8
  196. /* brcmu_format_flags() bit description structure */
  197. struct brcms_c_bit_desc {
  198. u32 bit;
  199. const char *name;
  200. };
  201. /*
  202. * The following table lists the buffer memory allocated to xmt fifos in HW.
  203. * the size is in units of 256bytes(one block), total size is HW dependent
  204. * ucode has default fifo partition, sw can overwrite if necessary
  205. *
  206. * This is documented in twiki under the topic UcodeTxFifo. Please ensure
  207. * the twiki is updated before making changes.
  208. */
  209. /* Starting corerev for the fifo size table */
  210. #define XMTFIFOTBL_STARTREV 17
  211. struct d11init {
  212. __le16 addr;
  213. __le16 size;
  214. __le32 value;
  215. };
  216. struct edcf_acparam {
  217. u8 ACI;
  218. u8 ECW;
  219. u16 TXOP;
  220. } __packed;
  221. /* debug/trace */
  222. uint brcm_msg_level;
  223. /* TX FIFO number to WME/802.1E Access Category */
  224. static const u8 wme_fifo2ac[] = {
  225. IEEE80211_AC_BK,
  226. IEEE80211_AC_BE,
  227. IEEE80211_AC_VI,
  228. IEEE80211_AC_VO,
  229. IEEE80211_AC_BE,
  230. IEEE80211_AC_BE
  231. };
  232. /* ieee80211 Access Category to TX FIFO number */
  233. static const u8 wme_ac2fifo[] = {
  234. TX_AC_VO_FIFO,
  235. TX_AC_VI_FIFO,
  236. TX_AC_BE_FIFO,
  237. TX_AC_BK_FIFO
  238. };
  239. static const u16 xmtfifo_sz[][NFIFO] = {
  240. /* corerev 17: 5120, 49152, 49152, 5376, 4352, 1280 */
  241. {20, 192, 192, 21, 17, 5},
  242. /* corerev 18: */
  243. {0, 0, 0, 0, 0, 0},
  244. /* corerev 19: */
  245. {0, 0, 0, 0, 0, 0},
  246. /* corerev 20: 5120, 49152, 49152, 5376, 4352, 1280 */
  247. {20, 192, 192, 21, 17, 5},
  248. /* corerev 21: 2304, 14848, 5632, 3584, 3584, 1280 */
  249. {9, 58, 22, 14, 14, 5},
  250. /* corerev 22: 5120, 49152, 49152, 5376, 4352, 1280 */
  251. {20, 192, 192, 21, 17, 5},
  252. /* corerev 23: 5120, 49152, 49152, 5376, 4352, 1280 */
  253. {20, 192, 192, 21, 17, 5},
  254. /* corerev 24: 2304, 14848, 5632, 3584, 3584, 1280 */
  255. {9, 58, 22, 14, 14, 5},
  256. /* corerev 25: */
  257. {0, 0, 0, 0, 0, 0},
  258. /* corerev 26: */
  259. {0, 0, 0, 0, 0, 0},
  260. /* corerev 27: */
  261. {0, 0, 0, 0, 0, 0},
  262. /* corerev 28: 2304, 14848, 5632, 3584, 3584, 1280 */
  263. {9, 58, 22, 14, 14, 5},
  264. };
  265. #ifdef DEBUG
  266. static const char * const fifo_names[] = {
  267. "AC_BK", "AC_BE", "AC_VI", "AC_VO", "BCMC", "ATIM" };
  268. #else
  269. static const char fifo_names[6][0];
  270. #endif
  271. #ifdef DEBUG
  272. /* pointer to most recently allocated wl/wlc */
  273. static struct brcms_c_info *wlc_info_dbg = (struct brcms_c_info *) (NULL);
  274. #endif
  275. /* Mapping of ieee80211 AC numbers to tx fifos */
  276. static const u8 ac_to_fifo_mapping[IEEE80211_NUM_ACS] = {
  277. [IEEE80211_AC_VO] = TX_AC_VO_FIFO,
  278. [IEEE80211_AC_VI] = TX_AC_VI_FIFO,
  279. [IEEE80211_AC_BE] = TX_AC_BE_FIFO,
  280. [IEEE80211_AC_BK] = TX_AC_BK_FIFO,
  281. };
  282. /* Mapping of tx fifos to ieee80211 AC numbers */
  283. static const u8 fifo_to_ac_mapping[IEEE80211_NUM_ACS] = {
  284. [TX_AC_BK_FIFO] = IEEE80211_AC_BK,
  285. [TX_AC_BE_FIFO] = IEEE80211_AC_BE,
  286. [TX_AC_VI_FIFO] = IEEE80211_AC_VI,
  287. [TX_AC_VO_FIFO] = IEEE80211_AC_VO,
  288. };
  289. static u8 brcms_ac_to_fifo(u8 ac)
  290. {
  291. if (ac >= ARRAY_SIZE(ac_to_fifo_mapping))
  292. return TX_AC_BE_FIFO;
  293. return ac_to_fifo_mapping[ac];
  294. }
  295. static u8 brcms_fifo_to_ac(u8 fifo)
  296. {
  297. if (fifo >= ARRAY_SIZE(fifo_to_ac_mapping))
  298. return IEEE80211_AC_BE;
  299. return fifo_to_ac_mapping[fifo];
  300. }
  301. /* Find basic rate for a given rate */
  302. static u8 brcms_basic_rate(struct brcms_c_info *wlc, u32 rspec)
  303. {
  304. if (is_mcs_rate(rspec))
  305. return wlc->band->basic_rate[mcs_table[rspec & RSPEC_RATE_MASK]
  306. .leg_ofdm];
  307. return wlc->band->basic_rate[rspec & RSPEC_RATE_MASK];
  308. }
  309. static u16 frametype(u32 rspec, u8 mimoframe)
  310. {
  311. if (is_mcs_rate(rspec))
  312. return mimoframe;
  313. return is_cck_rate(rspec) ? FT_CCK : FT_OFDM;
  314. }
  315. /* currently the best mechanism for determining SIFS is the band in use */
  316. static u16 get_sifs(struct brcms_band *band)
  317. {
  318. return band->bandtype == BRCM_BAND_5G ? APHY_SIFS_TIME :
  319. BPHY_SIFS_TIME;
  320. }
  321. /*
  322. * Detect Card removed.
  323. * Even checking an sbconfig register read will not false trigger when the core
  324. * is in reset it breaks CF address mechanism. Accessing gphy phyversion will
  325. * cause SB error if aphy is in reset on 4306B0-DB. Need a simple accessible
  326. * reg with fixed 0/1 pattern (some platforms return all 0).
  327. * If clocks are present, call the sb routine which will figure out if the
  328. * device is removed.
  329. */
  330. static bool brcms_deviceremoved(struct brcms_c_info *wlc)
  331. {
  332. u32 macctrl;
  333. if (!wlc->hw->clk)
  334. return ai_deviceremoved(wlc->hw->sih);
  335. macctrl = bcma_read32(wlc->hw->d11core,
  336. D11REGOFFS(maccontrol));
  337. return (macctrl & (MCTL_PSM_JMP_0 | MCTL_IHR_EN)) != MCTL_IHR_EN;
  338. }
  339. /* sum the individual fifo tx pending packet counts */
  340. static int brcms_txpktpendtot(struct brcms_c_info *wlc)
  341. {
  342. int i;
  343. int pending = 0;
  344. for (i = 0; i < ARRAY_SIZE(wlc->hw->di); i++)
  345. if (wlc->hw->di[i])
  346. pending += dma_txpending(wlc->hw->di[i]);
  347. return pending;
  348. }
  349. static bool brcms_is_mband_unlocked(struct brcms_c_info *wlc)
  350. {
  351. return wlc->pub->_nbands > 1 && !wlc->bandlocked;
  352. }
  353. static int brcms_chspec_bw(u16 chanspec)
  354. {
  355. if (CHSPEC_IS40(chanspec))
  356. return BRCMS_40_MHZ;
  357. if (CHSPEC_IS20(chanspec))
  358. return BRCMS_20_MHZ;
  359. return BRCMS_10_MHZ;
  360. }
  361. static void brcms_c_bsscfg_mfree(struct brcms_bss_cfg *cfg)
  362. {
  363. if (cfg == NULL)
  364. return;
  365. kfree(cfg->current_bss);
  366. kfree(cfg);
  367. }
  368. static void brcms_c_detach_mfree(struct brcms_c_info *wlc)
  369. {
  370. if (wlc == NULL)
  371. return;
  372. brcms_c_bsscfg_mfree(wlc->bsscfg);
  373. kfree(wlc->pub);
  374. kfree(wlc->modulecb);
  375. kfree(wlc->default_bss);
  376. kfree(wlc->protection);
  377. kfree(wlc->stf);
  378. kfree(wlc->bandstate[0]);
  379. kfree(wlc->corestate->macstat_snapshot);
  380. kfree(wlc->corestate);
  381. kfree(wlc->hw->bandstate[0]);
  382. kfree(wlc->hw);
  383. if (wlc->beacon)
  384. dev_kfree_skb_any(wlc->beacon);
  385. if (wlc->probe_resp)
  386. dev_kfree_skb_any(wlc->probe_resp);
  387. /* free the wlc */
  388. kfree(wlc);
  389. wlc = NULL;
  390. }
  391. static struct brcms_bss_cfg *brcms_c_bsscfg_malloc(uint unit)
  392. {
  393. struct brcms_bss_cfg *cfg;
  394. cfg = kzalloc(sizeof(struct brcms_bss_cfg), GFP_ATOMIC);
  395. if (cfg == NULL)
  396. goto fail;
  397. cfg->current_bss = kzalloc(sizeof(struct brcms_bss_info), GFP_ATOMIC);
  398. if (cfg->current_bss == NULL)
  399. goto fail;
  400. return cfg;
  401. fail:
  402. brcms_c_bsscfg_mfree(cfg);
  403. return NULL;
  404. }
  405. static struct brcms_c_info *
  406. brcms_c_attach_malloc(uint unit, uint *err, uint devid)
  407. {
  408. struct brcms_c_info *wlc;
  409. wlc = kzalloc(sizeof(struct brcms_c_info), GFP_ATOMIC);
  410. if (wlc == NULL) {
  411. *err = 1002;
  412. goto fail;
  413. }
  414. /* allocate struct brcms_c_pub state structure */
  415. wlc->pub = kzalloc(sizeof(struct brcms_pub), GFP_ATOMIC);
  416. if (wlc->pub == NULL) {
  417. *err = 1003;
  418. goto fail;
  419. }
  420. wlc->pub->wlc = wlc;
  421. /* allocate struct brcms_hardware state structure */
  422. wlc->hw = kzalloc(sizeof(struct brcms_hardware), GFP_ATOMIC);
  423. if (wlc->hw == NULL) {
  424. *err = 1005;
  425. goto fail;
  426. }
  427. wlc->hw->wlc = wlc;
  428. wlc->hw->bandstate[0] =
  429. kzalloc(sizeof(struct brcms_hw_band) * MAXBANDS, GFP_ATOMIC);
  430. if (wlc->hw->bandstate[0] == NULL) {
  431. *err = 1006;
  432. goto fail;
  433. } else {
  434. int i;
  435. for (i = 1; i < MAXBANDS; i++)
  436. wlc->hw->bandstate[i] = (struct brcms_hw_band *)
  437. ((unsigned long)wlc->hw->bandstate[0] +
  438. (sizeof(struct brcms_hw_band) * i));
  439. }
  440. wlc->modulecb =
  441. kzalloc(sizeof(struct modulecb) * BRCMS_MAXMODULES, GFP_ATOMIC);
  442. if (wlc->modulecb == NULL) {
  443. *err = 1009;
  444. goto fail;
  445. }
  446. wlc->default_bss = kzalloc(sizeof(struct brcms_bss_info), GFP_ATOMIC);
  447. if (wlc->default_bss == NULL) {
  448. *err = 1010;
  449. goto fail;
  450. }
  451. wlc->bsscfg = brcms_c_bsscfg_malloc(unit);
  452. if (wlc->bsscfg == NULL) {
  453. *err = 1011;
  454. goto fail;
  455. }
  456. wlc->protection = kzalloc(sizeof(struct brcms_protection),
  457. GFP_ATOMIC);
  458. if (wlc->protection == NULL) {
  459. *err = 1016;
  460. goto fail;
  461. }
  462. wlc->stf = kzalloc(sizeof(struct brcms_stf), GFP_ATOMIC);
  463. if (wlc->stf == NULL) {
  464. *err = 1017;
  465. goto fail;
  466. }
  467. wlc->bandstate[0] =
  468. kzalloc(sizeof(struct brcms_band)*MAXBANDS, GFP_ATOMIC);
  469. if (wlc->bandstate[0] == NULL) {
  470. *err = 1025;
  471. goto fail;
  472. } else {
  473. int i;
  474. for (i = 1; i < MAXBANDS; i++)
  475. wlc->bandstate[i] = (struct brcms_band *)
  476. ((unsigned long)wlc->bandstate[0]
  477. + (sizeof(struct brcms_band)*i));
  478. }
  479. wlc->corestate = kzalloc(sizeof(struct brcms_core), GFP_ATOMIC);
  480. if (wlc->corestate == NULL) {
  481. *err = 1026;
  482. goto fail;
  483. }
  484. wlc->corestate->macstat_snapshot =
  485. kzalloc(sizeof(struct macstat), GFP_ATOMIC);
  486. if (wlc->corestate->macstat_snapshot == NULL) {
  487. *err = 1027;
  488. goto fail;
  489. }
  490. return wlc;
  491. fail:
  492. brcms_c_detach_mfree(wlc);
  493. return NULL;
  494. }
  495. /*
  496. * Update the slot timing for standard 11b/g (20us slots)
  497. * or shortslot 11g (9us slots)
  498. * The PSM needs to be suspended for this call.
  499. */
  500. static void brcms_b_update_slot_timing(struct brcms_hardware *wlc_hw,
  501. bool shortslot)
  502. {
  503. struct bcma_device *core = wlc_hw->d11core;
  504. if (shortslot) {
  505. /* 11g short slot: 11a timing */
  506. bcma_write16(core, D11REGOFFS(ifs_slot), 0x0207);
  507. brcms_b_write_shm(wlc_hw, M_DOT11_SLOT, APHY_SLOT_TIME);
  508. } else {
  509. /* 11g long slot: 11b timing */
  510. bcma_write16(core, D11REGOFFS(ifs_slot), 0x0212);
  511. brcms_b_write_shm(wlc_hw, M_DOT11_SLOT, BPHY_SLOT_TIME);
  512. }
  513. }
  514. /*
  515. * calculate frame duration of a given rate and length, return
  516. * time in usec unit
  517. */
  518. static uint brcms_c_calc_frame_time(struct brcms_c_info *wlc, u32 ratespec,
  519. u8 preamble_type, uint mac_len)
  520. {
  521. uint nsyms, dur = 0, Ndps, kNdps;
  522. uint rate = rspec2rate(ratespec);
  523. if (rate == 0) {
  524. brcms_err(wlc->hw->d11core, "wl%d: WAR: using rate of 1 mbps\n",
  525. wlc->pub->unit);
  526. rate = BRCM_RATE_1M;
  527. }
  528. if (is_mcs_rate(ratespec)) {
  529. uint mcs = ratespec & RSPEC_RATE_MASK;
  530. int tot_streams = mcs_2_txstreams(mcs) + rspec_stc(ratespec);
  531. dur = PREN_PREAMBLE + (tot_streams * PREN_PREAMBLE_EXT);
  532. if (preamble_type == BRCMS_MM_PREAMBLE)
  533. dur += PREN_MM_EXT;
  534. /* 1000Ndbps = kbps * 4 */
  535. kNdps = mcs_2_rate(mcs, rspec_is40mhz(ratespec),
  536. rspec_issgi(ratespec)) * 4;
  537. if (rspec_stc(ratespec) == 0)
  538. nsyms =
  539. CEIL((APHY_SERVICE_NBITS + 8 * mac_len +
  540. APHY_TAIL_NBITS) * 1000, kNdps);
  541. else
  542. /* STBC needs to have even number of symbols */
  543. nsyms =
  544. 2 *
  545. CEIL((APHY_SERVICE_NBITS + 8 * mac_len +
  546. APHY_TAIL_NBITS) * 1000, 2 * kNdps);
  547. dur += APHY_SYMBOL_TIME * nsyms;
  548. if (wlc->band->bandtype == BRCM_BAND_2G)
  549. dur += DOT11_OFDM_SIGNAL_EXTENSION;
  550. } else if (is_ofdm_rate(rate)) {
  551. dur = APHY_PREAMBLE_TIME;
  552. dur += APHY_SIGNAL_TIME;
  553. /* Ndbps = Mbps * 4 = rate(500Kbps) * 2 */
  554. Ndps = rate * 2;
  555. /* NSyms = CEILING((SERVICE + 8*NBytes + TAIL) / Ndbps) */
  556. nsyms =
  557. CEIL((APHY_SERVICE_NBITS + 8 * mac_len + APHY_TAIL_NBITS),
  558. Ndps);
  559. dur += APHY_SYMBOL_TIME * nsyms;
  560. if (wlc->band->bandtype == BRCM_BAND_2G)
  561. dur += DOT11_OFDM_SIGNAL_EXTENSION;
  562. } else {
  563. /*
  564. * calc # bits * 2 so factor of 2 in rate (1/2 mbps)
  565. * will divide out
  566. */
  567. mac_len = mac_len * 8 * 2;
  568. /* calc ceiling of bits/rate = microseconds of air time */
  569. dur = (mac_len + rate - 1) / rate;
  570. if (preamble_type & BRCMS_SHORT_PREAMBLE)
  571. dur += BPHY_PLCP_SHORT_TIME;
  572. else
  573. dur += BPHY_PLCP_TIME;
  574. }
  575. return dur;
  576. }
  577. static void brcms_c_write_inits(struct brcms_hardware *wlc_hw,
  578. const struct d11init *inits)
  579. {
  580. struct bcma_device *core = wlc_hw->d11core;
  581. int i;
  582. uint offset;
  583. u16 size;
  584. u32 value;
  585. brcms_dbg_info(wlc_hw->d11core, "wl%d\n", wlc_hw->unit);
  586. for (i = 0; inits[i].addr != cpu_to_le16(0xffff); i++) {
  587. size = le16_to_cpu(inits[i].size);
  588. offset = le16_to_cpu(inits[i].addr);
  589. value = le32_to_cpu(inits[i].value);
  590. if (size == 2)
  591. bcma_write16(core, offset, value);
  592. else if (size == 4)
  593. bcma_write32(core, offset, value);
  594. else
  595. break;
  596. }
  597. }
  598. static void brcms_c_write_mhf(struct brcms_hardware *wlc_hw, u16 *mhfs)
  599. {
  600. u8 idx;
  601. u16 addr[] = {
  602. M_HOST_FLAGS1, M_HOST_FLAGS2, M_HOST_FLAGS3, M_HOST_FLAGS4,
  603. M_HOST_FLAGS5
  604. };
  605. for (idx = 0; idx < MHFMAX; idx++)
  606. brcms_b_write_shm(wlc_hw, addr[idx], mhfs[idx]);
  607. }
  608. static void brcms_c_ucode_bsinit(struct brcms_hardware *wlc_hw)
  609. {
  610. struct brcms_ucode *ucode = &wlc_hw->wlc->wl->ucode;
  611. /* init microcode host flags */
  612. brcms_c_write_mhf(wlc_hw, wlc_hw->band->mhfs);
  613. /* do band-specific ucode IHR, SHM, and SCR inits */
  614. if (D11REV_IS(wlc_hw->corerev, 17) || D11REV_IS(wlc_hw->corerev, 23)) {
  615. if (BRCMS_ISNPHY(wlc_hw->band))
  616. brcms_c_write_inits(wlc_hw, ucode->d11n0bsinitvals16);
  617. else
  618. brcms_err(wlc_hw->d11core,
  619. "%s: wl%d: unsupported phy in corerev %d\n",
  620. __func__, wlc_hw->unit,
  621. wlc_hw->corerev);
  622. } else {
  623. if (D11REV_IS(wlc_hw->corerev, 24)) {
  624. if (BRCMS_ISLCNPHY(wlc_hw->band))
  625. brcms_c_write_inits(wlc_hw,
  626. ucode->d11lcn0bsinitvals24);
  627. else
  628. brcms_err(wlc_hw->d11core,
  629. "%s: wl%d: unsupported phy in core rev %d\n",
  630. __func__, wlc_hw->unit,
  631. wlc_hw->corerev);
  632. } else {
  633. brcms_err(wlc_hw->d11core,
  634. "%s: wl%d: unsupported corerev %d\n",
  635. __func__, wlc_hw->unit, wlc_hw->corerev);
  636. }
  637. }
  638. }
  639. static void brcms_b_core_ioctl(struct brcms_hardware *wlc_hw, u32 m, u32 v)
  640. {
  641. struct bcma_device *core = wlc_hw->d11core;
  642. u32 ioctl = bcma_aread32(core, BCMA_IOCTL) & ~m;
  643. bcma_awrite32(core, BCMA_IOCTL, ioctl | v);
  644. }
  645. static void brcms_b_core_phy_clk(struct brcms_hardware *wlc_hw, bool clk)
  646. {
  647. brcms_dbg_info(wlc_hw->d11core, "wl%d: clk %d\n", wlc_hw->unit, clk);
  648. wlc_hw->phyclk = clk;
  649. if (OFF == clk) { /* clear gmode bit, put phy into reset */
  650. brcms_b_core_ioctl(wlc_hw, (SICF_PRST | SICF_FGC | SICF_GMODE),
  651. (SICF_PRST | SICF_FGC));
  652. udelay(1);
  653. brcms_b_core_ioctl(wlc_hw, (SICF_PRST | SICF_FGC), SICF_PRST);
  654. udelay(1);
  655. } else { /* take phy out of reset */
  656. brcms_b_core_ioctl(wlc_hw, (SICF_PRST | SICF_FGC), SICF_FGC);
  657. udelay(1);
  658. brcms_b_core_ioctl(wlc_hw, SICF_FGC, 0);
  659. udelay(1);
  660. }
  661. }
  662. /* low-level band switch utility routine */
  663. static void brcms_c_setxband(struct brcms_hardware *wlc_hw, uint bandunit)
  664. {
  665. brcms_dbg_mac80211(wlc_hw->d11core, "wl%d: bandunit %d\n", wlc_hw->unit,
  666. bandunit);
  667. wlc_hw->band = wlc_hw->bandstate[bandunit];
  668. /*
  669. * BMAC_NOTE:
  670. * until we eliminate need for wlc->band refs in low level code
  671. */
  672. wlc_hw->wlc->band = wlc_hw->wlc->bandstate[bandunit];
  673. /* set gmode core flag */
  674. if (wlc_hw->sbclk && !wlc_hw->noreset) {
  675. u32 gmode = 0;
  676. if (bandunit == 0)
  677. gmode = SICF_GMODE;
  678. brcms_b_core_ioctl(wlc_hw, SICF_GMODE, gmode);
  679. }
  680. }
  681. /* switch to new band but leave it inactive */
  682. static u32 brcms_c_setband_inact(struct brcms_c_info *wlc, uint bandunit)
  683. {
  684. struct brcms_hardware *wlc_hw = wlc->hw;
  685. u32 macintmask;
  686. u32 macctrl;
  687. brcms_dbg_mac80211(wlc_hw->d11core, "wl%d\n", wlc_hw->unit);
  688. macctrl = bcma_read32(wlc_hw->d11core,
  689. D11REGOFFS(maccontrol));
  690. WARN_ON((macctrl & MCTL_EN_MAC) != 0);
  691. /* disable interrupts */
  692. macintmask = brcms_intrsoff(wlc->wl);
  693. /* radio off */
  694. wlc_phy_switch_radio(wlc_hw->band->pi, OFF);
  695. brcms_b_core_phy_clk(wlc_hw, OFF);
  696. brcms_c_setxband(wlc_hw, bandunit);
  697. return macintmask;
  698. }
  699. /* process an individual struct tx_status */
  700. static bool
  701. brcms_c_dotxstatus(struct brcms_c_info *wlc, struct tx_status *txs)
  702. {
  703. struct sk_buff *p = NULL;
  704. uint queue = NFIFO;
  705. struct dma_pub *dma = NULL;
  706. struct d11txh *txh = NULL;
  707. struct scb *scb = NULL;
  708. bool free_pdu;
  709. int tx_rts, tx_frame_count, tx_rts_count;
  710. uint totlen, supr_status;
  711. bool lastframe;
  712. struct ieee80211_hdr *h;
  713. u16 mcl;
  714. struct ieee80211_tx_info *tx_info;
  715. struct ieee80211_tx_rate *txrate;
  716. int i;
  717. bool fatal = true;
  718. trace_brcms_txstatus(&wlc->hw->d11core->dev, txs->framelen,
  719. txs->frameid, txs->status, txs->lasttxtime,
  720. txs->sequence, txs->phyerr, txs->ackphyrxsh);
  721. /* discard intermediate indications for ucode with one legitimate case:
  722. * e.g. if "useRTS" is set. ucode did a successful rts/cts exchange,
  723. * but the subsequent tx of DATA failed. so it will start rts/cts
  724. * from the beginning (resetting the rts transmission count)
  725. */
  726. if (!(txs->status & TX_STATUS_AMPDU)
  727. && (txs->status & TX_STATUS_INTERMEDIATE)) {
  728. brcms_dbg_tx(wlc->hw->d11core, "INTERMEDIATE but not AMPDU\n");
  729. fatal = false;
  730. goto out;
  731. }
  732. queue = txs->frameid & TXFID_QUEUE_MASK;
  733. if (queue >= NFIFO) {
  734. brcms_err(wlc->hw->d11core, "queue %u >= NFIFO\n", queue);
  735. goto out;
  736. }
  737. dma = wlc->hw->di[queue];
  738. p = dma_getnexttxp(wlc->hw->di[queue], DMA_RANGE_TRANSMITTED);
  739. if (p == NULL) {
  740. brcms_err(wlc->hw->d11core, "dma_getnexttxp returned null!\n");
  741. goto out;
  742. }
  743. txh = (struct d11txh *) (p->data);
  744. mcl = le16_to_cpu(txh->MacTxControlLow);
  745. if (txs->phyerr)
  746. brcms_err(wlc->hw->d11core, "phyerr 0x%x, rate 0x%x\n",
  747. txs->phyerr, txh->MainRates);
  748. if (txs->frameid != le16_to_cpu(txh->TxFrameID)) {
  749. brcms_err(wlc->hw->d11core, "frameid != txh->TxFrameID\n");
  750. goto out;
  751. }
  752. tx_info = IEEE80211_SKB_CB(p);
  753. h = (struct ieee80211_hdr *)((u8 *) (txh + 1) + D11_PHY_HDR_LEN);
  754. if (tx_info->rate_driver_data[0])
  755. scb = &wlc->pri_scb;
  756. if (tx_info->flags & IEEE80211_TX_CTL_AMPDU) {
  757. brcms_c_ampdu_dotxstatus(wlc->ampdu, scb, p, txs);
  758. fatal = false;
  759. goto out;
  760. }
  761. /*
  762. * brcms_c_ampdu_dotxstatus() will trace tx descriptors for AMPDU
  763. * frames; this traces them for the rest.
  764. */
  765. trace_brcms_txdesc(&wlc->hw->d11core->dev, txh, sizeof(*txh));
  766. supr_status = txs->status & TX_STATUS_SUPR_MASK;
  767. if (supr_status == TX_STATUS_SUPR_BADCH) {
  768. unsigned xfts = le16_to_cpu(txh->XtraFrameTypes);
  769. brcms_dbg_tx(wlc->hw->d11core,
  770. "Pkt tx suppressed, dest chan %u, current %d\n",
  771. (xfts >> XFTS_CHANNEL_SHIFT) & 0xff,
  772. CHSPEC_CHANNEL(wlc->default_bss->chanspec));
  773. }
  774. tx_rts = le16_to_cpu(txh->MacTxControlLow) & TXC_SENDRTS;
  775. tx_frame_count =
  776. (txs->status & TX_STATUS_FRM_RTX_MASK) >> TX_STATUS_FRM_RTX_SHIFT;
  777. tx_rts_count =
  778. (txs->status & TX_STATUS_RTS_RTX_MASK) >> TX_STATUS_RTS_RTX_SHIFT;
  779. lastframe = !ieee80211_has_morefrags(h->frame_control);
  780. if (!lastframe) {
  781. brcms_err(wlc->hw->d11core, "Not last frame!\n");
  782. } else {
  783. /*
  784. * Set information to be consumed by Minstrel ht.
  785. *
  786. * The "fallback limit" is the number of tx attempts a given
  787. * MPDU is sent at the "primary" rate. Tx attempts beyond that
  788. * limit are sent at the "secondary" rate.
  789. * A 'short frame' does not exceed RTS treshold.
  790. */
  791. u16 sfbl, /* Short Frame Rate Fallback Limit */
  792. lfbl, /* Long Frame Rate Fallback Limit */
  793. fbl;
  794. if (queue < IEEE80211_NUM_ACS) {
  795. sfbl = GFIELD(wlc->wme_retries[wme_fifo2ac[queue]],
  796. EDCF_SFB);
  797. lfbl = GFIELD(wlc->wme_retries[wme_fifo2ac[queue]],
  798. EDCF_LFB);
  799. } else {
  800. sfbl = wlc->SFBL;
  801. lfbl = wlc->LFBL;
  802. }
  803. txrate = tx_info->status.rates;
  804. if (txrate[0].flags & IEEE80211_TX_RC_USE_RTS_CTS)
  805. fbl = lfbl;
  806. else
  807. fbl = sfbl;
  808. ieee80211_tx_info_clear_status(tx_info);
  809. if ((tx_frame_count > fbl) && (txrate[1].idx >= 0)) {
  810. /*
  811. * rate selection requested a fallback rate
  812. * and we used it
  813. */
  814. txrate[0].count = fbl;
  815. txrate[1].count = tx_frame_count - fbl;
  816. } else {
  817. /*
  818. * rate selection did not request fallback rate, or
  819. * we didn't need it
  820. */
  821. txrate[0].count = tx_frame_count;
  822. /*
  823. * rc80211_minstrel.c:minstrel_tx_status() expects
  824. * unused rates to be marked with idx = -1
  825. */
  826. txrate[1].idx = -1;
  827. txrate[1].count = 0;
  828. }
  829. /* clear the rest of the rates */
  830. for (i = 2; i < IEEE80211_TX_MAX_RATES; i++) {
  831. txrate[i].idx = -1;
  832. txrate[i].count = 0;
  833. }
  834. if (txs->status & TX_STATUS_ACK_RCV)
  835. tx_info->flags |= IEEE80211_TX_STAT_ACK;
  836. }
  837. totlen = p->len;
  838. free_pdu = true;
  839. if (lastframe) {
  840. /* remove PLCP & Broadcom tx descriptor header */
  841. skb_pull(p, D11_PHY_HDR_LEN);
  842. skb_pull(p, D11_TXH_LEN);
  843. ieee80211_tx_status_irqsafe(wlc->pub->ieee_hw, p);
  844. } else {
  845. brcms_err(wlc->hw->d11core,
  846. "%s: Not last frame => not calling tx_status\n",
  847. __func__);
  848. }
  849. fatal = false;
  850. out:
  851. if (fatal) {
  852. if (txh)
  853. trace_brcms_txdesc(&wlc->hw->d11core->dev, txh,
  854. sizeof(*txh));
  855. if (p)
  856. brcmu_pkt_buf_free_skb(p);
  857. }
  858. if (dma && queue < NFIFO) {
  859. u16 ac_queue = brcms_fifo_to_ac(queue);
  860. if (dma->txavail > TX_HEADROOM && queue < TX_BCMC_FIFO &&
  861. ieee80211_queue_stopped(wlc->pub->ieee_hw, ac_queue))
  862. ieee80211_wake_queue(wlc->pub->ieee_hw, ac_queue);
  863. dma_kick_tx(dma);
  864. }
  865. return fatal;
  866. }
  867. /* process tx completion events in BMAC
  868. * Return true if more tx status need to be processed. false otherwise.
  869. */
  870. static bool
  871. brcms_b_txstatus(struct brcms_hardware *wlc_hw, bool bound, bool *fatal)
  872. {
  873. struct bcma_device *core;
  874. struct tx_status txstatus, *txs;
  875. u32 s1, s2;
  876. uint n = 0;
  877. /*
  878. * Param 'max_tx_num' indicates max. # tx status to process before
  879. * break out.
  880. */
  881. uint max_tx_num = bound ? TXSBND : -1;
  882. txs = &txstatus;
  883. core = wlc_hw->d11core;
  884. *fatal = false;
  885. while (n < max_tx_num) {
  886. s1 = bcma_read32(core, D11REGOFFS(frmtxstatus));
  887. if (s1 == 0xffffffff) {
  888. brcms_err(core, "wl%d: %s: dead chip\n", wlc_hw->unit,
  889. __func__);
  890. *fatal = true;
  891. return false;
  892. }
  893. /* only process when valid */
  894. if (!(s1 & TXS_V))
  895. break;
  896. s2 = bcma_read32(core, D11REGOFFS(frmtxstatus2));
  897. txs->status = s1 & TXS_STATUS_MASK;
  898. txs->frameid = (s1 & TXS_FID_MASK) >> TXS_FID_SHIFT;
  899. txs->sequence = s2 & TXS_SEQ_MASK;
  900. txs->phyerr = (s2 & TXS_PTX_MASK) >> TXS_PTX_SHIFT;
  901. txs->lasttxtime = 0;
  902. *fatal = brcms_c_dotxstatus(wlc_hw->wlc, txs);
  903. if (*fatal == true)
  904. return false;
  905. n++;
  906. }
  907. return n >= max_tx_num;
  908. }
  909. static void brcms_c_tbtt(struct brcms_c_info *wlc)
  910. {
  911. if (wlc->bsscfg->type == BRCMS_TYPE_ADHOC)
  912. /*
  913. * DirFrmQ is now valid...defer setting until end
  914. * of ATIM window
  915. */
  916. wlc->qvalid |= MCMD_DIRFRMQVAL;
  917. }
  918. /* set initial host flags value */
  919. static void
  920. brcms_c_mhfdef(struct brcms_c_info *wlc, u16 *mhfs, u16 mhf2_init)
  921. {
  922. struct brcms_hardware *wlc_hw = wlc->hw;
  923. memset(mhfs, 0, MHFMAX * sizeof(u16));
  924. mhfs[MHF2] |= mhf2_init;
  925. /* prohibit use of slowclock on multifunction boards */
  926. if (wlc_hw->boardflags & BFL_NOPLLDOWN)
  927. mhfs[MHF1] |= MHF1_FORCEFASTCLK;
  928. if (BRCMS_ISNPHY(wlc_hw->band) && NREV_LT(wlc_hw->band->phyrev, 2)) {
  929. mhfs[MHF2] |= MHF2_NPHY40MHZ_WAR;
  930. mhfs[MHF1] |= MHF1_IQSWAP_WAR;
  931. }
  932. }
  933. static uint
  934. dmareg(uint direction, uint fifonum)
  935. {
  936. if (direction == DMA_TX)
  937. return offsetof(struct d11regs, fifo64regs[fifonum].dmaxmt);
  938. return offsetof(struct d11regs, fifo64regs[fifonum].dmarcv);
  939. }
  940. static bool brcms_b_attach_dmapio(struct brcms_c_info *wlc, uint j, bool wme)
  941. {
  942. uint i;
  943. char name[8];
  944. /*
  945. * ucode host flag 2 needed for pio mode, independent of band and fifo
  946. */
  947. u16 pio_mhf2 = 0;
  948. struct brcms_hardware *wlc_hw = wlc->hw;
  949. uint unit = wlc_hw->unit;
  950. /* name and offsets for dma_attach */
  951. snprintf(name, sizeof(name), "wl%d", unit);
  952. if (wlc_hw->di[0] == NULL) { /* Init FIFOs */
  953. int dma_attach_err = 0;
  954. /*
  955. * FIFO 0
  956. * TX: TX_AC_BK_FIFO (TX AC Background data packets)
  957. * RX: RX_FIFO (RX data packets)
  958. */
  959. wlc_hw->di[0] = dma_attach(name, wlc,
  960. (wme ? dmareg(DMA_TX, 0) : 0),
  961. dmareg(DMA_RX, 0),
  962. (wme ? NTXD : 0), NRXD,
  963. RXBUFSZ, -1, NRXBUFPOST,
  964. BRCMS_HWRXOFF);
  965. dma_attach_err |= (NULL == wlc_hw->di[0]);
  966. /*
  967. * FIFO 1
  968. * TX: TX_AC_BE_FIFO (TX AC Best-Effort data packets)
  969. * (legacy) TX_DATA_FIFO (TX data packets)
  970. * RX: UNUSED
  971. */
  972. wlc_hw->di[1] = dma_attach(name, wlc,
  973. dmareg(DMA_TX, 1), 0,
  974. NTXD, 0, 0, -1, 0, 0);
  975. dma_attach_err |= (NULL == wlc_hw->di[1]);
  976. /*
  977. * FIFO 2
  978. * TX: TX_AC_VI_FIFO (TX AC Video data packets)
  979. * RX: UNUSED
  980. */
  981. wlc_hw->di[2] = dma_attach(name, wlc,
  982. dmareg(DMA_TX, 2), 0,
  983. NTXD, 0, 0, -1, 0, 0);
  984. dma_attach_err |= (NULL == wlc_hw->di[2]);
  985. /*
  986. * FIFO 3
  987. * TX: TX_AC_VO_FIFO (TX AC Voice data packets)
  988. * (legacy) TX_CTL_FIFO (TX control & mgmt packets)
  989. */
  990. wlc_hw->di[3] = dma_attach(name, wlc,
  991. dmareg(DMA_TX, 3),
  992. 0, NTXD, 0, 0, -1,
  993. 0, 0);
  994. dma_attach_err |= (NULL == wlc_hw->di[3]);
  995. /* Cleaner to leave this as if with AP defined */
  996. if (dma_attach_err) {
  997. brcms_err(wlc_hw->d11core,
  998. "wl%d: wlc_attach: dma_attach failed\n",
  999. unit);
  1000. return false;
  1001. }
  1002. /* get pointer to dma engine tx flow control variable */
  1003. for (i = 0; i < NFIFO; i++)
  1004. if (wlc_hw->di[i])
  1005. wlc_hw->txavail[i] =
  1006. (uint *) dma_getvar(wlc_hw->di[i],
  1007. "&txavail");
  1008. }
  1009. /* initial ucode host flags */
  1010. brcms_c_mhfdef(wlc, wlc_hw->band->mhfs, pio_mhf2);
  1011. return true;
  1012. }
  1013. static void brcms_b_detach_dmapio(struct brcms_hardware *wlc_hw)
  1014. {
  1015. uint j;
  1016. for (j = 0; j < NFIFO; j++) {
  1017. if (wlc_hw->di[j]) {
  1018. dma_detach(wlc_hw->di[j]);
  1019. wlc_hw->di[j] = NULL;
  1020. }
  1021. }
  1022. }
  1023. /*
  1024. * Initialize brcms_c_info default values ...
  1025. * may get overrides later in this function
  1026. * BMAC_NOTES, move low out and resolve the dangling ones
  1027. */
  1028. static void brcms_b_info_init(struct brcms_hardware *wlc_hw)
  1029. {
  1030. struct brcms_c_info *wlc = wlc_hw->wlc;
  1031. /* set default sw macintmask value */
  1032. wlc->defmacintmask = DEF_MACINTMASK;
  1033. /* various 802.11g modes */
  1034. wlc_hw->shortslot = false;
  1035. wlc_hw->SFBL = RETRY_SHORT_FB;
  1036. wlc_hw->LFBL = RETRY_LONG_FB;
  1037. /* default mac retry limits */
  1038. wlc_hw->SRL = RETRY_SHORT_DEF;
  1039. wlc_hw->LRL = RETRY_LONG_DEF;
  1040. wlc_hw->chanspec = ch20mhz_chspec(1);
  1041. }
  1042. static void brcms_b_wait_for_wake(struct brcms_hardware *wlc_hw)
  1043. {
  1044. /* delay before first read of ucode state */
  1045. udelay(40);
  1046. /* wait until ucode is no longer asleep */
  1047. SPINWAIT((brcms_b_read_shm(wlc_hw, M_UCODE_DBGST) ==
  1048. DBGST_ASLEEP), wlc_hw->wlc->fastpwrup_dly);
  1049. }
  1050. /* control chip clock to save power, enable dynamic clock or force fast clock */
  1051. static void brcms_b_clkctl_clk(struct brcms_hardware *wlc_hw, enum bcma_clkmode mode)
  1052. {
  1053. if (ai_get_cccaps(wlc_hw->sih) & CC_CAP_PMU) {
  1054. /* new chips with PMU, CCS_FORCEHT will distribute the HT clock
  1055. * on backplane, but mac core will still run on ALP(not HT) when
  1056. * it enters powersave mode, which means the FCA bit may not be
  1057. * set. Should wakeup mac if driver wants it to run on HT.
  1058. */
  1059. if (wlc_hw->clk) {
  1060. if (mode == BCMA_CLKMODE_FAST) {
  1061. bcma_set32(wlc_hw->d11core,
  1062. D11REGOFFS(clk_ctl_st),
  1063. CCS_FORCEHT);
  1064. udelay(64);
  1065. SPINWAIT(
  1066. ((bcma_read32(wlc_hw->d11core,
  1067. D11REGOFFS(clk_ctl_st)) &
  1068. CCS_HTAVAIL) == 0),
  1069. PMU_MAX_TRANSITION_DLY);
  1070. WARN_ON(!(bcma_read32(wlc_hw->d11core,
  1071. D11REGOFFS(clk_ctl_st)) &
  1072. CCS_HTAVAIL));
  1073. } else {
  1074. if ((ai_get_pmurev(wlc_hw->sih) == 0) &&
  1075. (bcma_read32(wlc_hw->d11core,
  1076. D11REGOFFS(clk_ctl_st)) &
  1077. (CCS_FORCEHT | CCS_HTAREQ)))
  1078. SPINWAIT(
  1079. ((bcma_read32(wlc_hw->d11core,
  1080. offsetof(struct d11regs,
  1081. clk_ctl_st)) &
  1082. CCS_HTAVAIL) == 0),
  1083. PMU_MAX_TRANSITION_DLY);
  1084. bcma_mask32(wlc_hw->d11core,
  1085. D11REGOFFS(clk_ctl_st),
  1086. ~CCS_FORCEHT);
  1087. }
  1088. }
  1089. wlc_hw->forcefastclk = (mode == BCMA_CLKMODE_FAST);
  1090. } else {
  1091. /* old chips w/o PMU, force HT through cc,
  1092. * then use FCA to verify mac is running fast clock
  1093. */
  1094. wlc_hw->forcefastclk = ai_clkctl_cc(wlc_hw->sih, mode);
  1095. /* check fast clock is available (if core is not in reset) */
  1096. if (wlc_hw->forcefastclk && wlc_hw->clk)
  1097. WARN_ON(!(bcma_aread32(wlc_hw->d11core, BCMA_IOST) &
  1098. SISF_FCLKA));
  1099. /*
  1100. * keep the ucode wake bit on if forcefastclk is on since we
  1101. * do not want ucode to put us back to slow clock when it dozes
  1102. * for PM mode. Code below matches the wake override bit with
  1103. * current forcefastclk state. Only setting bit in wake_override
  1104. * instead of waking ucode immediately since old code had this
  1105. * behavior. Older code set wlc->forcefastclk but only had the
  1106. * wake happen if the wakup_ucode work (protected by an up
  1107. * check) was executed just below.
  1108. */
  1109. if (wlc_hw->forcefastclk)
  1110. mboolset(wlc_hw->wake_override,
  1111. BRCMS_WAKE_OVERRIDE_FORCEFAST);
  1112. else
  1113. mboolclr(wlc_hw->wake_override,
  1114. BRCMS_WAKE_OVERRIDE_FORCEFAST);
  1115. }
  1116. }
  1117. /* set or clear ucode host flag bits
  1118. * it has an optimization for no-change write
  1119. * it only writes through shared memory when the core has clock;
  1120. * pre-CLK changes should use wlc_write_mhf to get around the optimization
  1121. *
  1122. *
  1123. * bands values are: BRCM_BAND_AUTO <--- Current band only
  1124. * BRCM_BAND_5G <--- 5G band only
  1125. * BRCM_BAND_2G <--- 2G band only
  1126. * BRCM_BAND_ALL <--- All bands
  1127. */
  1128. void
  1129. brcms_b_mhf(struct brcms_hardware *wlc_hw, u8 idx, u16 mask, u16 val,
  1130. int bands)
  1131. {
  1132. u16 save;
  1133. u16 addr[MHFMAX] = {
  1134. M_HOST_FLAGS1, M_HOST_FLAGS2, M_HOST_FLAGS3, M_HOST_FLAGS4,
  1135. M_HOST_FLAGS5
  1136. };
  1137. struct brcms_hw_band *band;
  1138. if ((val & ~mask) || idx >= MHFMAX)
  1139. return; /* error condition */
  1140. switch (bands) {
  1141. /* Current band only or all bands,
  1142. * then set the band to current band
  1143. */
  1144. case BRCM_BAND_AUTO:
  1145. case BRCM_BAND_ALL:
  1146. band = wlc_hw->band;
  1147. break;
  1148. case BRCM_BAND_5G:
  1149. band = wlc_hw->bandstate[BAND_5G_INDEX];
  1150. break;
  1151. case BRCM_BAND_2G:
  1152. band = wlc_hw->bandstate[BAND_2G_INDEX];
  1153. break;
  1154. default:
  1155. band = NULL; /* error condition */
  1156. }
  1157. if (band) {
  1158. save = band->mhfs[idx];
  1159. band->mhfs[idx] = (band->mhfs[idx] & ~mask) | val;
  1160. /* optimization: only write through if changed, and
  1161. * changed band is the current band
  1162. */
  1163. if (wlc_hw->clk && (band->mhfs[idx] != save)
  1164. && (band == wlc_hw->band))
  1165. brcms_b_write_shm(wlc_hw, addr[idx],
  1166. (u16) band->mhfs[idx]);
  1167. }
  1168. if (bands == BRCM_BAND_ALL) {
  1169. wlc_hw->bandstate[0]->mhfs[idx] =
  1170. (wlc_hw->bandstate[0]->mhfs[idx] & ~mask) | val;
  1171. wlc_hw->bandstate[1]->mhfs[idx] =
  1172. (wlc_hw->bandstate[1]->mhfs[idx] & ~mask) | val;
  1173. }
  1174. }
  1175. /* set the maccontrol register to desired reset state and
  1176. * initialize the sw cache of the register
  1177. */
  1178. static void brcms_c_mctrl_reset(struct brcms_hardware *wlc_hw)
  1179. {
  1180. /* IHR accesses are always enabled, PSM disabled, HPS off and WAKE on */
  1181. wlc_hw->maccontrol = 0;
  1182. wlc_hw->suspended_fifos = 0;
  1183. wlc_hw->wake_override = 0;
  1184. wlc_hw->mute_override = 0;
  1185. brcms_b_mctrl(wlc_hw, ~0, MCTL_IHR_EN | MCTL_WAKE);
  1186. }
  1187. /*
  1188. * write the software state of maccontrol and
  1189. * overrides to the maccontrol register
  1190. */
  1191. static void brcms_c_mctrl_write(struct brcms_hardware *wlc_hw)
  1192. {
  1193. u32 maccontrol = wlc_hw->maccontrol;
  1194. /* OR in the wake bit if overridden */
  1195. if (wlc_hw->wake_override)
  1196. maccontrol |= MCTL_WAKE;
  1197. /* set AP and INFRA bits for mute if needed */
  1198. if (wlc_hw->mute_override) {
  1199. maccontrol &= ~(MCTL_AP);
  1200. maccontrol |= MCTL_INFRA;
  1201. }
  1202. bcma_write32(wlc_hw->d11core, D11REGOFFS(maccontrol),
  1203. maccontrol);
  1204. }
  1205. /* set or clear maccontrol bits */
  1206. void brcms_b_mctrl(struct brcms_hardware *wlc_hw, u32 mask, u32 val)
  1207. {
  1208. u32 maccontrol;
  1209. u32 new_maccontrol;
  1210. if (val & ~mask)
  1211. return; /* error condition */
  1212. maccontrol = wlc_hw->maccontrol;
  1213. new_maccontrol = (maccontrol & ~mask) | val;
  1214. /* if the new maccontrol value is the same as the old, nothing to do */
  1215. if (new_maccontrol == maccontrol)
  1216. return;
  1217. /* something changed, cache the new value */
  1218. wlc_hw->maccontrol = new_maccontrol;
  1219. /* write the new values with overrides applied */
  1220. brcms_c_mctrl_write(wlc_hw);
  1221. }
  1222. void brcms_c_ucode_wake_override_set(struct brcms_hardware *wlc_hw,
  1223. u32 override_bit)
  1224. {
  1225. if (wlc_hw->wake_override || (wlc_hw->maccontrol & MCTL_WAKE)) {
  1226. mboolset(wlc_hw->wake_override, override_bit);
  1227. return;
  1228. }
  1229. mboolset(wlc_hw->wake_override, override_bit);
  1230. brcms_c_mctrl_write(wlc_hw);
  1231. brcms_b_wait_for_wake(wlc_hw);
  1232. }
  1233. void brcms_c_ucode_wake_override_clear(struct brcms_hardware *wlc_hw,
  1234. u32 override_bit)
  1235. {
  1236. mboolclr(wlc_hw->wake_override, override_bit);
  1237. if (wlc_hw->wake_override || (wlc_hw->maccontrol & MCTL_WAKE))
  1238. return;
  1239. brcms_c_mctrl_write(wlc_hw);
  1240. }
  1241. /* When driver needs ucode to stop beaconing, it has to make sure that
  1242. * MCTL_AP is clear and MCTL_INFRA is set
  1243. * Mode MCTL_AP MCTL_INFRA
  1244. * AP 1 1
  1245. * STA 0 1 <--- This will ensure no beacons
  1246. * IBSS 0 0
  1247. */
  1248. static void brcms_c_ucode_mute_override_set(struct brcms_hardware *wlc_hw)
  1249. {
  1250. wlc_hw->mute_override = 1;
  1251. /* if maccontrol already has AP == 0 and INFRA == 1 without this
  1252. * override, then there is no change to write
  1253. */
  1254. if ((wlc_hw->maccontrol & (MCTL_AP | MCTL_INFRA)) == MCTL_INFRA)
  1255. return;
  1256. brcms_c_mctrl_write(wlc_hw);
  1257. }
  1258. /* Clear the override on AP and INFRA bits */
  1259. static void brcms_c_ucode_mute_override_clear(struct brcms_hardware *wlc_hw)
  1260. {
  1261. if (wlc_hw->mute_override == 0)
  1262. return;
  1263. wlc_hw->mute_override = 0;
  1264. /* if maccontrol already has AP == 0 and INFRA == 1 without this
  1265. * override, then there is no change to write
  1266. */
  1267. if ((wlc_hw->maccontrol & (MCTL_AP | MCTL_INFRA)) == MCTL_INFRA)
  1268. return;
  1269. brcms_c_mctrl_write(wlc_hw);
  1270. }
  1271. /*
  1272. * Write a MAC address to the given match reg offset in the RXE match engine.
  1273. */
  1274. static void
  1275. brcms_b_set_addrmatch(struct brcms_hardware *wlc_hw, int match_reg_offset,
  1276. const u8 *addr)
  1277. {
  1278. struct bcma_device *core = wlc_hw->d11core;
  1279. u16 mac_l;
  1280. u16 mac_m;
  1281. u16 mac_h;
  1282. brcms_dbg_rx(core, "wl%d: brcms_b_set_addrmatch\n", wlc_hw->unit);
  1283. mac_l = addr[0] | (addr[1] << 8);
  1284. mac_m = addr[2] | (addr[3] << 8);
  1285. mac_h = addr[4] | (addr[5] << 8);
  1286. /* enter the MAC addr into the RXE match registers */
  1287. bcma_write16(core, D11REGOFFS(rcm_ctl),
  1288. RCM_INC_DATA | match_reg_offset);
  1289. bcma_write16(core, D11REGOFFS(rcm_mat_data), mac_l);
  1290. bcma_write16(core, D11REGOFFS(rcm_mat_data), mac_m);
  1291. bcma_write16(core, D11REGOFFS(rcm_mat_data), mac_h);
  1292. }
  1293. void
  1294. brcms_b_write_template_ram(struct brcms_hardware *wlc_hw, int offset, int len,
  1295. void *buf)
  1296. {
  1297. struct bcma_device *core = wlc_hw->d11core;
  1298. u32 word;
  1299. __le32 word_le;
  1300. __be32 word_be;
  1301. bool be_bit;
  1302. brcms_dbg_info(core, "wl%d\n", wlc_hw->unit);
  1303. bcma_write32(core, D11REGOFFS(tplatewrptr), offset);
  1304. /* if MCTL_BIGEND bit set in mac control register,
  1305. * the chip swaps data in fifo, as well as data in
  1306. * template ram
  1307. */
  1308. be_bit = (bcma_read32(core, D11REGOFFS(maccontrol)) & MCTL_BIGEND) != 0;
  1309. while (len > 0) {
  1310. memcpy(&word, buf, sizeof(u32));
  1311. if (be_bit) {
  1312. word_be = cpu_to_be32(word);
  1313. word = *(u32 *)&word_be;
  1314. } else {
  1315. word_le = cpu_to_le32(word);
  1316. word = *(u32 *)&word_le;
  1317. }
  1318. bcma_write32(core, D11REGOFFS(tplatewrdata), word);
  1319. buf = (u8 *) buf + sizeof(u32);
  1320. len -= sizeof(u32);
  1321. }
  1322. }
  1323. static void brcms_b_set_cwmin(struct brcms_hardware *wlc_hw, u16 newmin)
  1324. {
  1325. wlc_hw->band->CWmin = newmin;
  1326. bcma_write32(wlc_hw->d11core, D11REGOFFS(objaddr),
  1327. OBJADDR_SCR_SEL | S_DOT11_CWMIN);
  1328. (void)bcma_read32(wlc_hw->d11core, D11REGOFFS(objaddr));
  1329. bcma_write32(wlc_hw->d11core, D11REGOFFS(objdata), newmin);
  1330. }
  1331. static void brcms_b_set_cwmax(struct brcms_hardware *wlc_hw, u16 newmax)
  1332. {
  1333. wlc_hw->band->CWmax = newmax;
  1334. bcma_write32(wlc_hw->d11core, D11REGOFFS(objaddr),
  1335. OBJADDR_SCR_SEL | S_DOT11_CWMAX);
  1336. (void)bcma_read32(wlc_hw->d11core, D11REGOFFS(objaddr));
  1337. bcma_write32(wlc_hw->d11core, D11REGOFFS(objdata), newmax);
  1338. }
  1339. void brcms_b_bw_set(struct brcms_hardware *wlc_hw, u16 bw)
  1340. {
  1341. bool fastclk;
  1342. /* request FAST clock if not on */
  1343. fastclk = wlc_hw->forcefastclk;
  1344. if (!fastclk)
  1345. brcms_b_clkctl_clk(wlc_hw, BCMA_CLKMODE_FAST);
  1346. wlc_phy_bw_state_set(wlc_hw->band->pi, bw);
  1347. brcms_b_phy_reset(wlc_hw);
  1348. wlc_phy_init(wlc_hw->band->pi, wlc_phy_chanspec_get(wlc_hw->band->pi));
  1349. /* restore the clk */
  1350. if (!fastclk)
  1351. brcms_b_clkctl_clk(wlc_hw, BCMA_CLKMODE_DYNAMIC);
  1352. }
  1353. static void brcms_b_upd_synthpu(struct brcms_hardware *wlc_hw)
  1354. {
  1355. u16 v;
  1356. struct brcms_c_info *wlc = wlc_hw->wlc;
  1357. /* update SYNTHPU_DLY */
  1358. if (BRCMS_ISLCNPHY(wlc->band))
  1359. v = SYNTHPU_DLY_LPPHY_US;
  1360. else if (BRCMS_ISNPHY(wlc->band) && (NREV_GE(wlc->band->phyrev, 3)))
  1361. v = SYNTHPU_DLY_NPHY_US;
  1362. else
  1363. v = SYNTHPU_DLY_BPHY_US;
  1364. brcms_b_write_shm(wlc_hw, M_SYNTHPU_DLY, v);
  1365. }
  1366. static void brcms_c_ucode_txant_set(struct brcms_hardware *wlc_hw)
  1367. {
  1368. u16 phyctl;
  1369. u16 phytxant = wlc_hw->bmac_phytxant;
  1370. u16 mask = PHY_TXC_ANT_MASK;
  1371. /* set the Probe Response frame phy control word */
  1372. phyctl = brcms_b_read_shm(wlc_hw, M_CTXPRS_BLK + C_CTX_PCTLWD_POS);
  1373. phyctl = (phyctl & ~mask) | phytxant;
  1374. brcms_b_write_shm(wlc_hw, M_CTXPRS_BLK + C_CTX_PCTLWD_POS, phyctl);
  1375. /* set the Response (ACK/CTS) frame phy control word */
  1376. phyctl = brcms_b_read_shm(wlc_hw, M_RSP_PCTLWD);
  1377. phyctl = (phyctl & ~mask) | phytxant;
  1378. brcms_b_write_shm(wlc_hw, M_RSP_PCTLWD, phyctl);
  1379. }
  1380. static u16 brcms_b_ofdm_ratetable_offset(struct brcms_hardware *wlc_hw,
  1381. u8 rate)
  1382. {
  1383. uint i;
  1384. u8 plcp_rate = 0;
  1385. struct plcp_signal_rate_lookup {
  1386. u8 rate;
  1387. u8 signal_rate;
  1388. };
  1389. /* OFDM RATE sub-field of PLCP SIGNAL field, per 802.11 sec 17.3.4.1 */
  1390. const struct plcp_signal_rate_lookup rate_lookup[] = {
  1391. {BRCM_RATE_6M, 0xB},
  1392. {BRCM_RATE_9M, 0xF},
  1393. {BRCM_RATE_12M, 0xA},
  1394. {BRCM_RATE_18M, 0xE},
  1395. {BRCM_RATE_24M, 0x9},
  1396. {BRCM_RATE_36M, 0xD},
  1397. {BRCM_RATE_48M, 0x8},
  1398. {BRCM_RATE_54M, 0xC}
  1399. };
  1400. for (i = 0; i < ARRAY_SIZE(rate_lookup); i++) {
  1401. if (rate == rate_lookup[i].rate) {
  1402. plcp_rate = rate_lookup[i].signal_rate;
  1403. break;
  1404. }
  1405. }
  1406. /* Find the SHM pointer to the rate table entry by looking in the
  1407. * Direct-map Table
  1408. */
  1409. return 2 * brcms_b_read_shm(wlc_hw, M_RT_DIRMAP_A + (plcp_rate * 2));
  1410. }
  1411. static void brcms_upd_ofdm_pctl1_table(struct brcms_hardware *wlc_hw)
  1412. {
  1413. u8 rate;
  1414. u8 rates[8] = {
  1415. BRCM_RATE_6M, BRCM_RATE_9M, BRCM_RATE_12M, BRCM_RATE_18M,
  1416. BRCM_RATE_24M, BRCM_RATE_36M, BRCM_RATE_48M, BRCM_RATE_54M
  1417. };
  1418. u16 entry_ptr;
  1419. u16 pctl1;
  1420. uint i;
  1421. if (!BRCMS_PHY_11N_CAP(wlc_hw->band))
  1422. return;
  1423. /* walk the phy rate table and update the entries */
  1424. for (i = 0; i < ARRAY_SIZE(rates); i++) {
  1425. rate = rates[i];
  1426. entry_ptr = brcms_b_ofdm_ratetable_offset(wlc_hw, rate);
  1427. /* read the SHM Rate Table entry OFDM PCTL1 values */
  1428. pctl1 =
  1429. brcms_b_read_shm(wlc_hw, entry_ptr + M_RT_OFDM_PCTL1_POS);
  1430. /* modify the value */
  1431. pctl1 &= ~PHY_TXC1_MODE_MASK;
  1432. pctl1 |= (wlc_hw->hw_stf_ss_opmode << PHY_TXC1_MODE_SHIFT);
  1433. /* Update the SHM Rate Table entry OFDM PCTL1 values */
  1434. brcms_b_write_shm(wlc_hw, entry_ptr + M_RT_OFDM_PCTL1_POS,
  1435. pctl1);
  1436. }
  1437. }
  1438. /* band-specific init */
  1439. static void brcms_b_bsinit(struct brcms_c_info *wlc, u16 chanspec)
  1440. {
  1441. struct brcms_hardware *wlc_hw = wlc->hw;
  1442. brcms_dbg_mac80211(wlc_hw->d11core, "wl%d: bandunit %d\n", wlc_hw->unit,
  1443. wlc_hw->band->bandunit);
  1444. brcms_c_ucode_bsinit(wlc_hw);
  1445. wlc_phy_init(wlc_hw->band->pi, chanspec);
  1446. brcms_c_ucode_txant_set(wlc_hw);
  1447. /*
  1448. * cwmin is band-specific, update hardware
  1449. * with value for current band
  1450. */
  1451. brcms_b_set_cwmin(wlc_hw, wlc_hw->band->CWmin);
  1452. brcms_b_set_cwmax(wlc_hw, wlc_hw->band->CWmax);
  1453. brcms_b_update_slot_timing(wlc_hw,
  1454. wlc_hw->band->bandtype == BRCM_BAND_5G ?
  1455. true : wlc_hw->shortslot);
  1456. /* write phytype and phyvers */
  1457. brcms_b_write_shm(wlc_hw, M_PHYTYPE, (u16) wlc_hw->band->phytype);
  1458. brcms_b_write_shm(wlc_hw, M_PHYVER, (u16) wlc_hw->band->phyrev);
  1459. /*
  1460. * initialize the txphyctl1 rate table since
  1461. * shmem is shared between bands
  1462. */
  1463. brcms_upd_ofdm_pctl1_table(wlc_hw);
  1464. brcms_b_upd_synthpu(wlc_hw);
  1465. }
  1466. /* Perform a soft reset of the PHY PLL */
  1467. void brcms_b_core_phypll_reset(struct brcms_hardware *wlc_hw)
  1468. {
  1469. ai_cc_reg(wlc_hw->sih, offsetof(struct chipcregs, chipcontrol_addr),
  1470. ~0, 0);
  1471. udelay(1);
  1472. ai_cc_reg(wlc_hw->sih, offsetof(struct chipcregs, chipcontrol_data),
  1473. 0x4, 0);
  1474. udelay(1);
  1475. ai_cc_reg(wlc_hw->sih, offsetof(struct chipcregs, chipcontrol_data),
  1476. 0x4, 4);
  1477. udelay(1);
  1478. ai_cc_reg(wlc_hw->sih, offsetof(struct chipcregs, chipcontrol_data),
  1479. 0x4, 0);
  1480. udelay(1);
  1481. }
  1482. /* light way to turn on phy clock without reset for NPHY only
  1483. * refer to brcms_b_core_phy_clk for full version
  1484. */
  1485. void brcms_b_phyclk_fgc(struct brcms_hardware *wlc_hw, bool clk)
  1486. {
  1487. /* support(necessary for NPHY and HYPHY) only */
  1488. if (!BRCMS_ISNPHY(wlc_hw->band))
  1489. return;
  1490. if (ON == clk)
  1491. brcms_b_core_ioctl(wlc_hw, SICF_FGC, SICF_FGC);
  1492. else
  1493. brcms_b_core_ioctl(wlc_hw, SICF_FGC, 0);
  1494. }
  1495. void brcms_b_macphyclk_set(struct brcms_hardware *wlc_hw, bool clk)
  1496. {
  1497. if (ON == clk)
  1498. brcms_b_core_ioctl(wlc_hw, SICF_MPCLKE, SICF_MPCLKE);
  1499. else
  1500. brcms_b_core_ioctl(wlc_hw, SICF_MPCLKE, 0);
  1501. }
  1502. void brcms_b_phy_reset(struct brcms_hardware *wlc_hw)
  1503. {
  1504. struct brcms_phy_pub *pih = wlc_hw->band->pi;
  1505. u32 phy_bw_clkbits;
  1506. bool phy_in_reset = false;
  1507. brcms_dbg_info(wlc_hw->d11core, "wl%d: reset phy\n", wlc_hw->unit);
  1508. if (pih == NULL)
  1509. return;
  1510. phy_bw_clkbits = wlc_phy_clk_bwbits(wlc_hw->band->pi);
  1511. /* Specific reset sequence required for NPHY rev 3 and 4 */
  1512. if (BRCMS_ISNPHY(wlc_hw->band) && NREV_GE(wlc_hw->band->phyrev, 3) &&
  1513. NREV_LE(wlc_hw->band->phyrev, 4)) {
  1514. /* Set the PHY bandwidth */
  1515. brcms_b_core_ioctl(wlc_hw, SICF_BWMASK, phy_bw_clkbits);
  1516. udelay(1);
  1517. /* Perform a soft reset of the PHY PLL */
  1518. brcms_b_core_phypll_reset(wlc_hw);
  1519. /* reset the PHY */
  1520. brcms_b_core_ioctl(wlc_hw, (SICF_PRST | SICF_PCLKE),
  1521. (SICF_PRST | SICF_PCLKE));
  1522. phy_in_reset = true;
  1523. } else {
  1524. brcms_b_core_ioctl(wlc_hw,
  1525. (SICF_PRST | SICF_PCLKE | SICF_BWMASK),
  1526. (SICF_PRST | SICF_PCLKE | phy_bw_clkbits));
  1527. }
  1528. udelay(2);
  1529. brcms_b_core_phy_clk(wlc_hw, ON);
  1530. if (pih)
  1531. wlc_phy_anacore(pih, ON);
  1532. }
  1533. /* switch to and initialize new band */
  1534. static void brcms_b_setband(struct brcms_hardware *wlc_hw, uint bandunit,
  1535. u16 chanspec) {
  1536. struct brcms_c_info *wlc = wlc_hw->wlc;
  1537. u32 macintmask;
  1538. /* Enable the d11 core before accessing it */
  1539. if (!bcma_core_is_enabled(wlc_hw->d11core)) {
  1540. bcma_core_enable(wlc_hw->d11core, 0);
  1541. brcms_c_mctrl_reset(wlc_hw);
  1542. }
  1543. macintmask = brcms_c_setband_inact(wlc, bandunit);
  1544. if (!wlc_hw->up)
  1545. return;
  1546. brcms_b_core_phy_clk(wlc_hw, ON);
  1547. /* band-specific initializations */
  1548. brcms_b_bsinit(wlc, chanspec);
  1549. /*
  1550. * If there are any pending software interrupt bits,
  1551. * then replace these with a harmless nonzero value
  1552. * so brcms_c_dpc() will re-enable interrupts when done.
  1553. */
  1554. if (wlc->macintstatus)
  1555. wlc->macintstatus = MI_DMAINT;
  1556. /* restore macintmask */
  1557. brcms_intrsrestore(wlc->wl, macintmask);
  1558. /* ucode should still be suspended.. */
  1559. WARN_ON((bcma_read32(wlc_hw->d11core, D11REGOFFS(maccontrol)) &
  1560. MCTL_EN_MAC) != 0);
  1561. }
  1562. static bool brcms_c_isgoodchip(struct brcms_hardware *wlc_hw)
  1563. {
  1564. /* reject unsupported corerev */
  1565. if (!CONF_HAS(D11CONF, wlc_hw->corerev)) {
  1566. wiphy_err(wlc_hw->wlc->wiphy, "unsupported core rev %d\n",
  1567. wlc_hw->corerev);
  1568. return false;
  1569. }
  1570. return true;
  1571. }
  1572. /* Validate some board info parameters */
  1573. static bool brcms_c_validboardtype(struct brcms_hardware *wlc_hw)
  1574. {
  1575. uint boardrev = wlc_hw->boardrev;
  1576. /* 4 bits each for board type, major, minor, and tiny version */
  1577. uint brt = (boardrev & 0xf000) >> 12;
  1578. uint b0 = (boardrev & 0xf00) >> 8;
  1579. uint b1 = (boardrev & 0xf0) >> 4;
  1580. uint b2 = boardrev & 0xf;
  1581. /* voards from other vendors are always considered valid */
  1582. if (ai_get_boardvendor(wlc_hw->sih) != PCI_VENDOR_ID_BROADCOM)
  1583. return true;
  1584. /* do some boardrev sanity checks when boardvendor is Broadcom */
  1585. if (boardrev == 0)
  1586. return false;
  1587. if (boardrev <= 0xff)
  1588. return true;
  1589. if ((brt > 2) || (brt == 0) || (b0 > 9) || (b0 == 0) || (b1 > 9)
  1590. || (b2 > 9))
  1591. return false;
  1592. return true;
  1593. }
  1594. static void brcms_c_get_macaddr(struct brcms_hardware *wlc_hw, u8 etheraddr[ETH_ALEN])
  1595. {
  1596. struct ssb_sprom *sprom = &wlc_hw->d11core->bus->sprom;
  1597. /* If macaddr exists, use it (Sromrev4, CIS, ...). */
  1598. if (!is_zero_ether_addr(sprom->il0mac)) {
  1599. memcpy(etheraddr, sprom->il0mac, 6);
  1600. return;
  1601. }
  1602. if (wlc_hw->_nbands > 1)
  1603. memcpy(etheraddr, sprom->et1mac, 6);
  1604. else
  1605. memcpy(etheraddr, sprom->il0mac, 6);
  1606. }
  1607. /* power both the pll and external oscillator on/off */
  1608. static void brcms_b_xtal(struct brcms_hardware *wlc_hw, bool want)
  1609. {
  1610. brcms_dbg_info(wlc_hw->d11core, "wl%d: want %d\n", wlc_hw->unit, want);
  1611. /*
  1612. * dont power down if plldown is false or
  1613. * we must poll hw radio disable
  1614. */
  1615. if (!want && wlc_hw->pllreq)
  1616. return;
  1617. wlc_hw->sbclk = want;
  1618. if (!wlc_hw->sbclk) {
  1619. wlc_hw->clk = false;
  1620. if (wlc_hw->band && wlc_hw->band->pi)
  1621. wlc_phy_hw_clk_state_upd(wlc_hw->band->pi, false);
  1622. }
  1623. }
  1624. /*
  1625. * Return true if radio is disabled, otherwise false.
  1626. * hw radio disable signal is an external pin, users activate it asynchronously
  1627. * this function could be called when driver is down and w/o clock
  1628. * it operates on different registers depending on corerev and boardflag.
  1629. */
  1630. static bool brcms_b_radio_read_hwdisabled(struct brcms_hardware *wlc_hw)
  1631. {
  1632. bool v, clk, xtal;
  1633. u32 flags = 0;
  1634. xtal = wlc_hw->sbclk;
  1635. if (!xtal)
  1636. brcms_b_xtal(wlc_hw, ON);
  1637. /* may need to take core out of reset first */
  1638. clk = wlc_hw->clk;
  1639. if (!clk) {
  1640. /*
  1641. * mac no longer enables phyclk automatically when driver
  1642. * accesses phyreg throughput mac. This can be skipped since
  1643. * only mac reg is accessed below
  1644. */
  1645. if (D11REV_GE(wlc_hw->corerev, 18))
  1646. flags |= SICF_PCLKE;
  1647. /*
  1648. * TODO: test suspend/resume
  1649. *
  1650. * AI chip doesn't restore bar0win2 on
  1651. * hibernation/resume, need sw fixup
  1652. */
  1653. bcma_core_enable(wlc_hw->d11core, flags);
  1654. brcms_c_mctrl_reset(wlc_hw);
  1655. }
  1656. v = ((bcma_read32(wlc_hw->d11core,
  1657. D11REGOFFS(phydebug)) & PDBG_RFD) != 0);
  1658. /* put core back into reset */
  1659. if (!clk)
  1660. bcma_core_disable(wlc_hw->d11core, 0);
  1661. if (!xtal)
  1662. brcms_b_xtal(wlc_hw, OFF);
  1663. return v;
  1664. }
  1665. static bool wlc_dma_rxreset(struct brcms_hardware *wlc_hw, uint fifo)
  1666. {
  1667. struct dma_pub *di = wlc_hw->di[fifo];
  1668. return dma_rxreset(di);
  1669. }
  1670. /* d11 core reset
  1671. * ensure fask clock during reset
  1672. * reset dma
  1673. * reset d11(out of reset)
  1674. * reset phy(out of reset)
  1675. * clear software macintstatus for fresh new start
  1676. * one testing hack wlc_hw->noreset will bypass the d11/phy reset
  1677. */
  1678. void brcms_b_corereset(struct brcms_hardware *wlc_hw, u32 flags)
  1679. {
  1680. uint i;
  1681. bool fastclk;
  1682. if (flags == BRCMS_USE_COREFLAGS)
  1683. flags = (wlc_hw->band->pi ? wlc_hw->band->core_flags : 0);
  1684. brcms_dbg_info(wlc_hw->d11core, "wl%d: core reset\n", wlc_hw->unit);
  1685. /* request FAST clock if not on */
  1686. fastclk = wlc_hw->forcefastclk;
  1687. if (!fastclk)
  1688. brcms_b_clkctl_clk(wlc_hw, BCMA_CLKMODE_FAST);
  1689. /* reset the dma engines except first time thru */
  1690. if (bcma_core_is_enabled(wlc_hw->d11core)) {
  1691. for (i = 0; i < NFIFO; i++)
  1692. if ((wlc_hw->di[i]) && (!dma_txreset(wlc_hw->di[i])))
  1693. brcms_err(wlc_hw->d11core, "wl%d: %s: "
  1694. "dma_txreset[%d]: cannot stop dma\n",
  1695. wlc_hw->unit, __func__, i);
  1696. if ((wlc_hw->di[RX_FIFO])
  1697. && (!wlc_dma_rxreset(wlc_hw, RX_FIFO)))
  1698. brcms_err(wlc_hw->d11core, "wl%d: %s: dma_rxreset"
  1699. "[%d]: cannot stop dma\n",
  1700. wlc_hw->unit, __func__, RX_FIFO);
  1701. }
  1702. /* if noreset, just stop the psm and return */
  1703. if (wlc_hw->noreset) {
  1704. wlc_hw->wlc->macintstatus = 0; /* skip wl_dpc after down */
  1705. brcms_b_mctrl(wlc_hw, MCTL_PSM_RUN | MCTL_EN_MAC, 0);
  1706. return;
  1707. }
  1708. /*
  1709. * mac no longer enables phyclk automatically when driver accesses
  1710. * phyreg throughput mac, AND phy_reset is skipped at early stage when
  1711. * band->pi is invalid. need to enable PHY CLK
  1712. */
  1713. if (D11REV_GE(wlc_hw->corerev, 18))
  1714. flags |= SICF_PCLKE;
  1715. /*
  1716. * reset the core
  1717. * In chips with PMU, the fastclk request goes through d11 core
  1718. * reg 0x1e0, which is cleared by the core_reset. have to re-request it.
  1719. *
  1720. * This adds some delay and we can optimize it by also requesting
  1721. * fastclk through chipcommon during this period if necessary. But
  1722. * that has to work coordinate with other driver like mips/arm since
  1723. * they may touch chipcommon as well.
  1724. */
  1725. wlc_hw->clk = false;
  1726. bcma_core_enable(wlc_hw->d11core, flags);
  1727. wlc_hw->clk = true;
  1728. if (wlc_hw->band && wlc_hw->band->pi)
  1729. wlc_phy_hw_clk_state_upd(wlc_hw->band->pi, true);
  1730. brcms_c_mctrl_reset(wlc_hw);
  1731. if (ai_get_cccaps(wlc_hw->sih) & CC_CAP_PMU)
  1732. brcms_b_clkctl_clk(wlc_hw, BCMA_CLKMODE_FAST);
  1733. brcms_b_phy_reset(wlc_hw);
  1734. /* turn on PHY_PLL */
  1735. brcms_b_core_phypll_ctl(wlc_hw, true);
  1736. /* clear sw intstatus */
  1737. wlc_hw->wlc->macintstatus = 0;
  1738. /* restore the clk setting */
  1739. if (!fastclk)
  1740. brcms_b_clkctl_clk(wlc_hw, BCMA_CLKMODE_DYNAMIC);
  1741. }
  1742. /* txfifo sizes needs to be modified(increased) since the newer cores
  1743. * have more memory.
  1744. */
  1745. static void brcms_b_corerev_fifofixup(struct brcms_hardware *wlc_hw)
  1746. {
  1747. struct bcma_device *core = wlc_hw->d11core;
  1748. u16 fifo_nu;
  1749. u16 txfifo_startblk = TXFIFO_START_BLK, txfifo_endblk;
  1750. u16 txfifo_def, txfifo_def1;
  1751. u16 txfifo_cmd;
  1752. /* tx fifos start at TXFIFO_START_BLK from the Base address */
  1753. txfifo_startblk = TXFIFO_START_BLK;
  1754. /* sequence of operations: reset fifo, set fifo size, reset fifo */
  1755. for (fifo_nu = 0; fifo_nu < NFIFO; fifo_nu++) {
  1756. txfifo_endblk = txfifo_startblk + wlc_hw->xmtfifo_sz[fifo_nu];
  1757. txfifo_def = (txfifo_startblk & 0xff) |
  1758. (((txfifo_endblk - 1) & 0xff) << TXFIFO_FIFOTOP_SHIFT);
  1759. txfifo_def1 = ((txfifo_startblk >> 8) & 0x1) |
  1760. ((((txfifo_endblk -
  1761. 1) >> 8) & 0x1) << TXFIFO_FIFOTOP_SHIFT);
  1762. txfifo_cmd =
  1763. TXFIFOCMD_RESET_MASK | (fifo_nu << TXFIFOCMD_FIFOSEL_SHIFT);
  1764. bcma_write16(core, D11REGOFFS(xmtfifocmd), txfifo_cmd);
  1765. bcma_write16(core, D11REGOFFS(xmtfifodef), txfifo_def);
  1766. bcma_write16(core, D11REGOFFS(xmtfifodef1), txfifo_def1);
  1767. bcma_write16(core, D11REGOFFS(xmtfifocmd), txfifo_cmd);
  1768. txfifo_startblk += wlc_hw->xmtfifo_sz[fifo_nu];
  1769. }
  1770. /*
  1771. * need to propagate to shm location to be in sync since ucode/hw won't
  1772. * do this
  1773. */
  1774. brcms_b_write_shm(wlc_hw, M_FIFOSIZE0,
  1775. wlc_hw->xmtfifo_sz[TX_AC_BE_FIFO]);
  1776. brcms_b_write_shm(wlc_hw, M_FIFOSIZE1,
  1777. wlc_hw->xmtfifo_sz[TX_AC_VI_FIFO]);
  1778. brcms_b_write_shm(wlc_hw, M_FIFOSIZE2,
  1779. ((wlc_hw->xmtfifo_sz[TX_AC_VO_FIFO] << 8) | wlc_hw->
  1780. xmtfifo_sz[TX_AC_BK_FIFO]));
  1781. brcms_b_write_shm(wlc_hw, M_FIFOSIZE3,
  1782. ((wlc_hw->xmtfifo_sz[TX_ATIM_FIFO] << 8) | wlc_hw->
  1783. xmtfifo_sz[TX_BCMC_FIFO]));
  1784. }
  1785. /* This function is used for changing the tsf frac register
  1786. * If spur avoidance mode is off, the mac freq will be 80/120/160Mhz
  1787. * If spur avoidance mode is on1, the mac freq will be 82/123/164Mhz
  1788. * If spur avoidance mode is on2, the mac freq will be 84/126/168Mhz
  1789. * HTPHY Formula is 2^26/freq(MHz) e.g.
  1790. * For spuron2 - 126MHz -> 2^26/126 = 532610.0
  1791. * - 532610 = 0x82082 => tsf_clk_frac_h = 0x8, tsf_clk_frac_l = 0x2082
  1792. * For spuron: 123MHz -> 2^26/123 = 545600.5
  1793. * - 545601 = 0x85341 => tsf_clk_frac_h = 0x8, tsf_clk_frac_l = 0x5341
  1794. * For spur off: 120MHz -> 2^26/120 = 559240.5
  1795. * - 559241 = 0x88889 => tsf_clk_frac_h = 0x8, tsf_clk_frac_l = 0x8889
  1796. */
  1797. void brcms_b_switch_macfreq(struct brcms_hardware *wlc_hw, u8 spurmode)
  1798. {
  1799. struct bcma_device *core = wlc_hw->d11core;
  1800. if ((ai_get_chip_id(wlc_hw->sih) == BCMA_CHIP_ID_BCM43224) ||
  1801. (ai_get_chip_id(wlc_hw->sih) == BCMA_CHIP_ID_BCM43225)) {
  1802. if (spurmode == WL_SPURAVOID_ON2) { /* 126Mhz */
  1803. bcma_write16(core, D11REGOFFS(tsf_clk_frac_l), 0x2082);
  1804. bcma_write16(core, D11REGOFFS(tsf_clk_frac_h), 0x8);
  1805. } else if (spurmode == WL_SPURAVOID_ON1) { /* 123Mhz */
  1806. bcma_write16(core, D11REGOFFS(tsf_clk_frac_l), 0x5341);
  1807. bcma_write16(core, D11REGOFFS(tsf_clk_frac_h), 0x8);
  1808. } else { /* 120Mhz */
  1809. bcma_write16(core, D11REGOFFS(tsf_clk_frac_l), 0x8889);
  1810. bcma_write16(core, D11REGOFFS(tsf_clk_frac_h), 0x8);
  1811. }
  1812. } else if (BRCMS_ISLCNPHY(wlc_hw->band)) {
  1813. if (spurmode == WL_SPURAVOID_ON1) { /* 82Mhz */
  1814. bcma_write16(core, D11REGOFFS(tsf_clk_frac_l), 0x7CE0);
  1815. bcma_write16(core, D11REGOFFS(tsf_clk_frac_h), 0xC);
  1816. } else { /* 80Mhz */
  1817. bcma_write16(core, D11REGOFFS(tsf_clk_frac_l), 0xCCCD);
  1818. bcma_write16(core, D11REGOFFS(tsf_clk_frac_h), 0xC);
  1819. }
  1820. }
  1821. }
  1822. void brcms_c_start_station(struct brcms_c_info *wlc, u8 *addr)
  1823. {
  1824. memcpy(wlc->pub->cur_etheraddr, addr, sizeof(wlc->pub->cur_etheraddr));
  1825. wlc->bsscfg->type = BRCMS_TYPE_STATION;
  1826. }
  1827. void brcms_c_start_ap(struct brcms_c_info *wlc, u8 *addr, const u8 *bssid,
  1828. u8 *ssid, size_t ssid_len)
  1829. {
  1830. brcms_c_set_ssid(wlc, ssid, ssid_len);
  1831. memcpy(wlc->pub->cur_etheraddr, addr, sizeof(wlc->pub->cur_etheraddr));
  1832. memcpy(wlc->bsscfg->BSSID, bssid, sizeof(wlc->bsscfg->BSSID));
  1833. wlc->bsscfg->type = BRCMS_TYPE_AP;
  1834. brcms_b_mctrl(wlc->hw, MCTL_AP | MCTL_INFRA, MCTL_AP | MCTL_INFRA);
  1835. }
  1836. void brcms_c_start_adhoc(struct brcms_c_info *wlc, u8 *addr)
  1837. {
  1838. memcpy(wlc->pub->cur_etheraddr, addr, sizeof(wlc->pub->cur_etheraddr));
  1839. wlc->bsscfg->type = BRCMS_TYPE_ADHOC;
  1840. brcms_b_mctrl(wlc->hw, MCTL_AP | MCTL_INFRA, 0);
  1841. }
  1842. /* Initialize GPIOs that are controlled by D11 core */
  1843. static void brcms_c_gpio_init(struct brcms_c_info *wlc)
  1844. {
  1845. struct brcms_hardware *wlc_hw = wlc->hw;
  1846. u32 gc, gm;
  1847. /* use GPIO select 0 to get all gpio signals from the gpio out reg */
  1848. brcms_b_mctrl(wlc_hw, MCTL_GPOUT_SEL_MASK, 0);
  1849. /*
  1850. * Common GPIO setup:
  1851. * G0 = LED 0 = WLAN Activity
  1852. * G1 = LED 1 = WLAN 2.4 GHz Radio State
  1853. * G2 = LED 2 = WLAN 5 GHz Radio State
  1854. * G4 = radio disable input (HI enabled, LO disabled)
  1855. */
  1856. gc = gm = 0;
  1857. /* Allocate GPIOs for mimo antenna diversity feature */
  1858. if (wlc_hw->antsel_type == ANTSEL_2x3) {
  1859. /* Enable antenna diversity, use 2x3 mode */
  1860. brcms_b_mhf(wlc_hw, MHF3, MHF3_ANTSEL_EN,
  1861. MHF3_ANTSEL_EN, BRCM_BAND_ALL);
  1862. brcms_b_mhf(wlc_hw, MHF3, MHF3_ANTSEL_MODE,
  1863. MHF3_ANTSEL_MODE, BRCM_BAND_ALL);
  1864. /* init superswitch control */
  1865. wlc_phy_antsel_init(wlc_hw->band->pi, false);
  1866. } else if (wlc_hw->antsel_type == ANTSEL_2x4) {
  1867. gm |= gc |= (BOARD_GPIO_12 | BOARD_GPIO_13);
  1868. /*
  1869. * The board itself is powered by these GPIOs
  1870. * (when not sending pattern) so set them high
  1871. */
  1872. bcma_set16(wlc_hw->d11core, D11REGOFFS(psm_gpio_oe),
  1873. (BOARD_GPIO_12 | BOARD_GPIO_13));
  1874. bcma_set16(wlc_hw->d11core, D11REGOFFS(psm_gpio_out),
  1875. (BOARD_GPIO_12 | BOARD_GPIO_13));
  1876. /* Enable antenna diversity, use 2x4 mode */
  1877. brcms_b_mhf(wlc_hw, MHF3, MHF3_ANTSEL_EN,
  1878. MHF3_ANTSEL_EN, BRCM_BAND_ALL);
  1879. brcms_b_mhf(wlc_hw, MHF3, MHF3_ANTSEL_MODE, 0,
  1880. BRCM_BAND_ALL);
  1881. /* Configure the desired clock to be 4Mhz */
  1882. brcms_b_write_shm(wlc_hw, M_ANTSEL_CLKDIV,
  1883. ANTSEL_CLKDIV_4MHZ);
  1884. }
  1885. /*
  1886. * gpio 9 controls the PA. ucode is responsible
  1887. * for wiggling out and oe
  1888. */
  1889. if (wlc_hw->boardflags & BFL_PACTRL)
  1890. gm |= gc |= BOARD_GPIO_PACTRL;
  1891. /* apply to gpiocontrol register */
  1892. bcma_chipco_gpio_control(&wlc_hw->d11core->bus->drv_cc, gm, gc);
  1893. }
  1894. static void brcms_ucode_write(struct brcms_hardware *wlc_hw,
  1895. const __le32 ucode[], const size_t nbytes)
  1896. {
  1897. struct bcma_device *core = wlc_hw->d11core;
  1898. uint i;
  1899. uint count;
  1900. brcms_dbg_info(wlc_hw->d11core, "wl%d\n", wlc_hw->unit);
  1901. count = (nbytes / sizeof(u32));
  1902. bcma_write32(core, D11REGOFFS(objaddr),
  1903. OBJADDR_AUTO_INC | OBJADDR_UCM_SEL);
  1904. (void)bcma_read32(core, D11REGOFFS(objaddr));
  1905. for (i = 0; i < count; i++)
  1906. bcma_write32(core, D11REGOFFS(objdata), le32_to_cpu(ucode[i]));
  1907. }
  1908. static void brcms_ucode_download(struct brcms_hardware *wlc_hw)
  1909. {
  1910. struct brcms_c_info *wlc;
  1911. struct brcms_ucode *ucode = &wlc_hw->wlc->wl->ucode;
  1912. wlc = wlc_hw->wlc;
  1913. if (wlc_hw->ucode_loaded)
  1914. return;
  1915. if (D11REV_IS(wlc_hw->corerev, 17) || D11REV_IS(wlc_hw->corerev, 23)) {
  1916. if (BRCMS_ISNPHY(wlc_hw->band)) {
  1917. brcms_ucode_write(wlc_hw, ucode->bcm43xx_16_mimo,
  1918. ucode->bcm43xx_16_mimosz);
  1919. wlc_hw->ucode_loaded = true;
  1920. } else
  1921. brcms_err(wlc_hw->d11core,
  1922. "%s: wl%d: unsupported phy in corerev %d\n",
  1923. __func__, wlc_hw->unit, wlc_hw->corerev);
  1924. } else if (D11REV_IS(wlc_hw->corerev, 24)) {
  1925. if (BRCMS_ISLCNPHY(wlc_hw->band)) {
  1926. brcms_ucode_write(wlc_hw, ucode->bcm43xx_24_lcn,
  1927. ucode->bcm43xx_24_lcnsz);
  1928. wlc_hw->ucode_loaded = true;
  1929. } else {
  1930. brcms_err(wlc_hw->d11core,
  1931. "%s: wl%d: unsupported phy in corerev %d\n",
  1932. __func__, wlc_hw->unit, wlc_hw->corerev);
  1933. }
  1934. }
  1935. }
  1936. void brcms_b_txant_set(struct brcms_hardware *wlc_hw, u16 phytxant)
  1937. {
  1938. /* update sw state */
  1939. wlc_hw->bmac_phytxant = phytxant;
  1940. /* push to ucode if up */
  1941. if (!wlc_hw->up)
  1942. return;
  1943. brcms_c_ucode_txant_set(wlc_hw);
  1944. }
  1945. u16 brcms_b_get_txant(struct brcms_hardware *wlc_hw)
  1946. {
  1947. return (u16) wlc_hw->wlc->stf->txant;
  1948. }
  1949. void brcms_b_antsel_type_set(struct brcms_hardware *wlc_hw, u8 antsel_type)
  1950. {
  1951. wlc_hw->antsel_type = antsel_type;
  1952. /* Update the antsel type for phy module to use */
  1953. wlc_phy_antsel_type_set(wlc_hw->band->pi, antsel_type);
  1954. }
  1955. static void brcms_b_fifoerrors(struct brcms_hardware *wlc_hw)
  1956. {
  1957. bool fatal = false;
  1958. uint unit;
  1959. uint intstatus, idx;
  1960. struct bcma_device *core = wlc_hw->d11core;
  1961. unit = wlc_hw->unit;
  1962. for (idx = 0; idx < NFIFO; idx++) {
  1963. /* read intstatus register and ignore any non-error bits */
  1964. intstatus =
  1965. bcma_read32(core,
  1966. D11REGOFFS(intctrlregs[idx].intstatus)) &
  1967. I_ERRORS;
  1968. if (!intstatus)
  1969. continue;
  1970. brcms_dbg_int(core, "wl%d: intstatus%d 0x%x\n",
  1971. unit, idx, intstatus);
  1972. if (intstatus & I_RO) {
  1973. brcms_err(core, "wl%d: fifo %d: receive fifo "
  1974. "overflow\n", unit, idx);
  1975. fatal = true;
  1976. }
  1977. if (intstatus & I_PC) {
  1978. brcms_err(core, "wl%d: fifo %d: descriptor error\n",
  1979. unit, idx);
  1980. fatal = true;
  1981. }
  1982. if (intstatus & I_PD) {
  1983. brcms_err(core, "wl%d: fifo %d: data error\n", unit,
  1984. idx);
  1985. fatal = true;
  1986. }
  1987. if (intstatus & I_DE) {
  1988. brcms_err(core, "wl%d: fifo %d: descriptor protocol "
  1989. "error\n", unit, idx);
  1990. fatal = true;
  1991. }
  1992. if (intstatus & I_RU)
  1993. brcms_err(core, "wl%d: fifo %d: receive descriptor "
  1994. "underflow\n", idx, unit);
  1995. if (intstatus & I_XU) {
  1996. brcms_err(core, "wl%d: fifo %d: transmit fifo "
  1997. "underflow\n", idx, unit);
  1998. fatal = true;
  1999. }
  2000. if (fatal) {
  2001. brcms_fatal_error(wlc_hw->wlc->wl); /* big hammer */
  2002. break;
  2003. } else
  2004. bcma_write32(core,
  2005. D11REGOFFS(intctrlregs[idx].intstatus),
  2006. intstatus);
  2007. }
  2008. }
  2009. void brcms_c_intrson(struct brcms_c_info *wlc)
  2010. {
  2011. struct brcms_hardware *wlc_hw = wlc->hw;
  2012. wlc->macintmask = wlc->defmacintmask;
  2013. bcma_write32(wlc_hw->d11core, D11REGOFFS(macintmask), wlc->macintmask);
  2014. }
  2015. u32 brcms_c_intrsoff(struct brcms_c_info *wlc)
  2016. {
  2017. struct brcms_hardware *wlc_hw = wlc->hw;
  2018. u32 macintmask;
  2019. if (!wlc_hw->clk)
  2020. return 0;
  2021. macintmask = wlc->macintmask; /* isr can still happen */
  2022. bcma_write32(wlc_hw->d11core, D11REGOFFS(macintmask), 0);
  2023. (void)bcma_read32(wlc_hw->d11core, D11REGOFFS(macintmask));
  2024. udelay(1); /* ensure int line is no longer driven */
  2025. wlc->macintmask = 0;
  2026. /* return previous macintmask; resolve race between us and our isr */
  2027. return wlc->macintstatus ? 0 : macintmask;
  2028. }
  2029. void brcms_c_intrsrestore(struct brcms_c_info *wlc, u32 macintmask)
  2030. {
  2031. struct brcms_hardware *wlc_hw = wlc->hw;
  2032. if (!wlc_hw->clk)
  2033. return;
  2034. wlc->macintmask = macintmask;
  2035. bcma_write32(wlc_hw->d11core, D11REGOFFS(macintmask), wlc->macintmask);
  2036. }
  2037. /* assumes that the d11 MAC is enabled */
  2038. static void brcms_b_tx_fifo_suspend(struct brcms_hardware *wlc_hw,
  2039. uint tx_fifo)
  2040. {
  2041. u8 fifo = 1 << tx_fifo;
  2042. /* Two clients of this code, 11h Quiet period and scanning. */
  2043. /* only suspend if not already suspended */
  2044. if ((wlc_hw->suspended_fifos & fifo) == fifo)
  2045. return;
  2046. /* force the core awake only if not already */
  2047. if (wlc_hw->suspended_fifos == 0)
  2048. brcms_c_ucode_wake_override_set(wlc_hw,
  2049. BRCMS_WAKE_OVERRIDE_TXFIFO);
  2050. wlc_hw->suspended_fifos |= fifo;
  2051. if (wlc_hw->di[tx_fifo]) {
  2052. /*
  2053. * Suspending AMPDU transmissions in the middle can cause
  2054. * underflow which may result in mismatch between ucode and
  2055. * driver so suspend the mac before suspending the FIFO
  2056. */
  2057. if (BRCMS_PHY_11N_CAP(wlc_hw->band))
  2058. brcms_c_suspend_mac_and_wait(wlc_hw->wlc);
  2059. dma_txsuspend(wlc_hw->di[tx_fifo]);
  2060. if (BRCMS_PHY_11N_CAP(wlc_hw->band))
  2061. brcms_c_enable_mac(wlc_hw->wlc);
  2062. }
  2063. }
  2064. static void brcms_b_tx_fifo_resume(struct brcms_hardware *wlc_hw,
  2065. uint tx_fifo)
  2066. {
  2067. /* BMAC_NOTE: BRCMS_TX_FIFO_ENAB is done in brcms_c_dpc() for DMA case
  2068. * but need to be done here for PIO otherwise the watchdog will catch
  2069. * the inconsistency and fire
  2070. */
  2071. /* Two clients of this code, 11h Quiet period and scanning. */
  2072. if (wlc_hw->di[tx_fifo])
  2073. dma_txresume(wlc_hw->di[tx_fifo]);
  2074. /* allow core to sleep again */
  2075. if (wlc_hw->suspended_fifos == 0)
  2076. return;
  2077. else {
  2078. wlc_hw->suspended_fifos &= ~(1 << tx_fifo);
  2079. if (wlc_hw->suspended_fifos == 0)
  2080. brcms_c_ucode_wake_override_clear(wlc_hw,
  2081. BRCMS_WAKE_OVERRIDE_TXFIFO);
  2082. }
  2083. }
  2084. /* precondition: requires the mac core to be enabled */
  2085. static void brcms_b_mute(struct brcms_hardware *wlc_hw, bool mute_tx)
  2086. {
  2087. static const u8 null_ether_addr[ETH_ALEN] = {0, 0, 0, 0, 0, 0};
  2088. u8 *ethaddr = wlc_hw->wlc->pub->cur_etheraddr;
  2089. if (mute_tx) {
  2090. /* suspend tx fifos */
  2091. brcms_b_tx_fifo_suspend(wlc_hw, TX_DATA_FIFO);
  2092. brcms_b_tx_fifo_suspend(wlc_hw, TX_CTL_FIFO);
  2093. brcms_b_tx_fifo_suspend(wlc_hw, TX_AC_BK_FIFO);
  2094. brcms_b_tx_fifo_suspend(wlc_hw, TX_AC_VI_FIFO);
  2095. /* zero the address match register so we do not send ACKs */
  2096. brcms_b_set_addrmatch(wlc_hw, RCM_MAC_OFFSET, null_ether_addr);
  2097. } else {
  2098. /* resume tx fifos */
  2099. brcms_b_tx_fifo_resume(wlc_hw, TX_DATA_FIFO);
  2100. brcms_b_tx_fifo_resume(wlc_hw, TX_CTL_FIFO);
  2101. brcms_b_tx_fifo_resume(wlc_hw, TX_AC_BK_FIFO);
  2102. brcms_b_tx_fifo_resume(wlc_hw, TX_AC_VI_FIFO);
  2103. /* Restore address */
  2104. brcms_b_set_addrmatch(wlc_hw, RCM_MAC_OFFSET, ethaddr);
  2105. }
  2106. wlc_phy_mute_upd(wlc_hw->band->pi, mute_tx, 0);
  2107. if (mute_tx)
  2108. brcms_c_ucode_mute_override_set(wlc_hw);
  2109. else
  2110. brcms_c_ucode_mute_override_clear(wlc_hw);
  2111. }
  2112. void
  2113. brcms_c_mute(struct brcms_c_info *wlc, bool mute_tx)
  2114. {
  2115. brcms_b_mute(wlc->hw, mute_tx);
  2116. }
  2117. /*
  2118. * Read and clear macintmask and macintstatus and intstatus registers.
  2119. * This routine should be called with interrupts off
  2120. * Return:
  2121. * -1 if brcms_deviceremoved(wlc) evaluates to true;
  2122. * 0 if the interrupt is not for us, or we are in some special cases;
  2123. * device interrupt status bits otherwise.
  2124. */
  2125. static inline u32 wlc_intstatus(struct brcms_c_info *wlc, bool in_isr)
  2126. {
  2127. struct brcms_hardware *wlc_hw = wlc->hw;
  2128. struct bcma_device *core = wlc_hw->d11core;
  2129. u32 macintstatus, mask;
  2130. /* macintstatus includes a DMA interrupt summary bit */
  2131. macintstatus = bcma_read32(core, D11REGOFFS(macintstatus));
  2132. mask = in_isr ? wlc->macintmask : wlc->defmacintmask;
  2133. trace_brcms_macintstatus(&core->dev, in_isr, macintstatus, mask);
  2134. /* detect cardbus removed, in power down(suspend) and in reset */
  2135. if (brcms_deviceremoved(wlc))
  2136. return -1;
  2137. /* brcms_deviceremoved() succeeds even when the core is still resetting,
  2138. * handle that case here.
  2139. */
  2140. if (macintstatus == 0xffffffff)
  2141. return 0;
  2142. /* defer unsolicited interrupts */
  2143. macintstatus &= mask;
  2144. /* if not for us */
  2145. if (macintstatus == 0)
  2146. return 0;
  2147. /* turn off the interrupts */
  2148. bcma_write32(core, D11REGOFFS(macintmask), 0);
  2149. (void)bcma_read32(core, D11REGOFFS(macintmask));
  2150. wlc->macintmask = 0;
  2151. /* clear device interrupts */
  2152. bcma_write32(core, D11REGOFFS(macintstatus), macintstatus);
  2153. /* MI_DMAINT is indication of non-zero intstatus */
  2154. if (macintstatus & MI_DMAINT)
  2155. /*
  2156. * only fifo interrupt enabled is I_RI in
  2157. * RX_FIFO. If MI_DMAINT is set, assume it
  2158. * is set and clear the interrupt.
  2159. */
  2160. bcma_write32(core, D11REGOFFS(intctrlregs[RX_FIFO].intstatus),
  2161. DEF_RXINTMASK);
  2162. return macintstatus;
  2163. }
  2164. /* Update wlc->macintstatus and wlc->intstatus[]. */
  2165. /* Return true if they are updated successfully. false otherwise */
  2166. bool brcms_c_intrsupd(struct brcms_c_info *wlc)
  2167. {
  2168. u32 macintstatus;
  2169. /* read and clear macintstatus and intstatus registers */
  2170. macintstatus = wlc_intstatus(wlc, false);
  2171. /* device is removed */
  2172. if (macintstatus == 0xffffffff)
  2173. return false;
  2174. /* update interrupt status in software */
  2175. wlc->macintstatus |= macintstatus;
  2176. return true;
  2177. }
  2178. /*
  2179. * First-level interrupt processing.
  2180. * Return true if this was our interrupt
  2181. * and if further brcms_c_dpc() processing is required,
  2182. * false otherwise.
  2183. */
  2184. bool brcms_c_isr(struct brcms_c_info *wlc)
  2185. {
  2186. struct brcms_hardware *wlc_hw = wlc->hw;
  2187. u32 macintstatus;
  2188. if (!wlc_hw->up || !wlc->macintmask)
  2189. return false;
  2190. /* read and clear macintstatus and intstatus registers */
  2191. macintstatus = wlc_intstatus(wlc, true);
  2192. if (macintstatus == 0xffffffff) {
  2193. brcms_err(wlc_hw->d11core,
  2194. "DEVICEREMOVED detected in the ISR code path\n");
  2195. return false;
  2196. }
  2197. /* it is not for us */
  2198. if (macintstatus == 0)
  2199. return false;
  2200. /* save interrupt status bits */
  2201. wlc->macintstatus = macintstatus;
  2202. return true;
  2203. }
  2204. void brcms_c_suspend_mac_and_wait(struct brcms_c_info *wlc)
  2205. {
  2206. struct brcms_hardware *wlc_hw = wlc->hw;
  2207. struct bcma_device *core = wlc_hw->d11core;
  2208. u32 mc, mi;
  2209. brcms_dbg_mac80211(core, "wl%d: bandunit %d\n", wlc_hw->unit,
  2210. wlc_hw->band->bandunit);
  2211. /*
  2212. * Track overlapping suspend requests
  2213. */
  2214. wlc_hw->mac_suspend_depth++;
  2215. if (wlc_hw->mac_suspend_depth > 1)
  2216. return;
  2217. /* force the core awake */
  2218. brcms_c_ucode_wake_override_set(wlc_hw, BRCMS_WAKE_OVERRIDE_MACSUSPEND);
  2219. mc = bcma_read32(core, D11REGOFFS(maccontrol));
  2220. if (mc == 0xffffffff) {
  2221. brcms_err(core, "wl%d: %s: dead chip\n", wlc_hw->unit,
  2222. __func__);
  2223. brcms_down(wlc->wl);
  2224. return;
  2225. }
  2226. WARN_ON(mc & MCTL_PSM_JMP_0);
  2227. WARN_ON(!(mc & MCTL_PSM_RUN));
  2228. WARN_ON(!(mc & MCTL_EN_MAC));
  2229. mi = bcma_read32(core, D11REGOFFS(macintstatus));
  2230. if (mi == 0xffffffff) {
  2231. brcms_err(core, "wl%d: %s: dead chip\n", wlc_hw->unit,
  2232. __func__);
  2233. brcms_down(wlc->wl);
  2234. return;
  2235. }
  2236. WARN_ON(mi & MI_MACSSPNDD);
  2237. brcms_b_mctrl(wlc_hw, MCTL_EN_MAC, 0);
  2238. SPINWAIT(!(bcma_read32(core, D11REGOFFS(macintstatus)) & MI_MACSSPNDD),
  2239. BRCMS_MAX_MAC_SUSPEND);
  2240. if (!(bcma_read32(core, D11REGOFFS(macintstatus)) & MI_MACSSPNDD)) {
  2241. brcms_err(core, "wl%d: wlc_suspend_mac_and_wait: waited %d uS"
  2242. " and MI_MACSSPNDD is still not on.\n",
  2243. wlc_hw->unit, BRCMS_MAX_MAC_SUSPEND);
  2244. brcms_err(core, "wl%d: psmdebug 0x%08x, phydebug 0x%08x, "
  2245. "psm_brc 0x%04x\n", wlc_hw->unit,
  2246. bcma_read32(core, D11REGOFFS(psmdebug)),
  2247. bcma_read32(core, D11REGOFFS(phydebug)),
  2248. bcma_read16(core, D11REGOFFS(psm_brc)));
  2249. }
  2250. mc = bcma_read32(core, D11REGOFFS(maccontrol));
  2251. if (mc == 0xffffffff) {
  2252. brcms_err(core, "wl%d: %s: dead chip\n", wlc_hw->unit,
  2253. __func__);
  2254. brcms_down(wlc->wl);
  2255. return;
  2256. }
  2257. WARN_ON(mc & MCTL_PSM_JMP_0);
  2258. WARN_ON(!(mc & MCTL_PSM_RUN));
  2259. WARN_ON(mc & MCTL_EN_MAC);
  2260. }
  2261. void brcms_c_enable_mac(struct brcms_c_info *wlc)
  2262. {
  2263. struct brcms_hardware *wlc_hw = wlc->hw;
  2264. struct bcma_device *core = wlc_hw->d11core;
  2265. u32 mc, mi;
  2266. brcms_dbg_mac80211(core, "wl%d: bandunit %d\n", wlc_hw->unit,
  2267. wlc->band->bandunit);
  2268. /*
  2269. * Track overlapping suspend requests
  2270. */
  2271. wlc_hw->mac_suspend_depth--;
  2272. if (wlc_hw->mac_suspend_depth > 0)
  2273. return;
  2274. mc = bcma_read32(core, D11REGOFFS(maccontrol));
  2275. WARN_ON(mc & MCTL_PSM_JMP_0);
  2276. WARN_ON(mc & MCTL_EN_MAC);
  2277. WARN_ON(!(mc & MCTL_PSM_RUN));
  2278. brcms_b_mctrl(wlc_hw, MCTL_EN_MAC, MCTL_EN_MAC);
  2279. bcma_write32(core, D11REGOFFS(macintstatus), MI_MACSSPNDD);
  2280. mc = bcma_read32(core, D11REGOFFS(maccontrol));
  2281. WARN_ON(mc & MCTL_PSM_JMP_0);
  2282. WARN_ON(!(mc & MCTL_EN_MAC));
  2283. WARN_ON(!(mc & MCTL_PSM_RUN));
  2284. mi = bcma_read32(core, D11REGOFFS(macintstatus));
  2285. WARN_ON(mi & MI_MACSSPNDD);
  2286. brcms_c_ucode_wake_override_clear(wlc_hw,
  2287. BRCMS_WAKE_OVERRIDE_MACSUSPEND);
  2288. }
  2289. void brcms_b_band_stf_ss_set(struct brcms_hardware *wlc_hw, u8 stf_mode)
  2290. {
  2291. wlc_hw->hw_stf_ss_opmode = stf_mode;
  2292. if (wlc_hw->clk)
  2293. brcms_upd_ofdm_pctl1_table(wlc_hw);
  2294. }
  2295. static bool brcms_b_validate_chip_access(struct brcms_hardware *wlc_hw)
  2296. {
  2297. struct bcma_device *core = wlc_hw->d11core;
  2298. u32 w, val;
  2299. struct wiphy *wiphy = wlc_hw->wlc->wiphy;
  2300. /* Validate dchip register access */
  2301. bcma_write32(core, D11REGOFFS(objaddr), OBJADDR_SHM_SEL | 0);
  2302. (void)bcma_read32(core, D11REGOFFS(objaddr));
  2303. w = bcma_read32(core, D11REGOFFS(objdata));
  2304. /* Can we write and read back a 32bit register? */
  2305. bcma_write32(core, D11REGOFFS(objaddr), OBJADDR_SHM_SEL | 0);
  2306. (void)bcma_read32(core, D11REGOFFS(objaddr));
  2307. bcma_write32(core, D11REGOFFS(objdata), (u32) 0xaa5555aa);
  2308. bcma_write32(core, D11REGOFFS(objaddr), OBJADDR_SHM_SEL | 0);
  2309. (void)bcma_read32(core, D11REGOFFS(objaddr));
  2310. val = bcma_read32(core, D11REGOFFS(objdata));
  2311. if (val != (u32) 0xaa5555aa) {
  2312. wiphy_err(wiphy, "wl%d: validate_chip_access: SHM = 0x%x, "
  2313. "expected 0xaa5555aa\n", wlc_hw->unit, val);
  2314. return false;
  2315. }
  2316. bcma_write32(core, D11REGOFFS(objaddr), OBJADDR_SHM_SEL | 0);
  2317. (void)bcma_read32(core, D11REGOFFS(objaddr));
  2318. bcma_write32(core, D11REGOFFS(objdata), (u32) 0x55aaaa55);
  2319. bcma_write32(core, D11REGOFFS(objaddr), OBJADDR_SHM_SEL | 0);
  2320. (void)bcma_read32(core, D11REGOFFS(objaddr));
  2321. val = bcma_read32(core, D11REGOFFS(objdata));
  2322. if (val != (u32) 0x55aaaa55) {
  2323. wiphy_err(wiphy, "wl%d: validate_chip_access: SHM = 0x%x, "
  2324. "expected 0x55aaaa55\n", wlc_hw->unit, val);
  2325. return false;
  2326. }
  2327. bcma_write32(core, D11REGOFFS(objaddr), OBJADDR_SHM_SEL | 0);
  2328. (void)bcma_read32(core, D11REGOFFS(objaddr));
  2329. bcma_write32(core, D11REGOFFS(objdata), w);
  2330. /* clear CFPStart */
  2331. bcma_write32(core, D11REGOFFS(tsf_cfpstart), 0);
  2332. w = bcma_read32(core, D11REGOFFS(maccontrol));
  2333. if ((w != (MCTL_IHR_EN | MCTL_WAKE)) &&
  2334. (w != (MCTL_IHR_EN | MCTL_GMODE | MCTL_WAKE))) {
  2335. wiphy_err(wiphy, "wl%d: validate_chip_access: maccontrol = "
  2336. "0x%x, expected 0x%x or 0x%x\n", wlc_hw->unit, w,
  2337. (MCTL_IHR_EN | MCTL_WAKE),
  2338. (MCTL_IHR_EN | MCTL_GMODE | MCTL_WAKE));
  2339. return false;
  2340. }
  2341. return true;
  2342. }
  2343. #define PHYPLL_WAIT_US 100000
  2344. void brcms_b_core_phypll_ctl(struct brcms_hardware *wlc_hw, bool on)
  2345. {
  2346. struct bcma_device *core = wlc_hw->d11core;
  2347. u32 tmp;
  2348. brcms_dbg_info(core, "wl%d\n", wlc_hw->unit);
  2349. tmp = 0;
  2350. if (on) {
  2351. if ((ai_get_chip_id(wlc_hw->sih) == BCMA_CHIP_ID_BCM4313)) {
  2352. bcma_set32(core, D11REGOFFS(clk_ctl_st),
  2353. CCS_ERSRC_REQ_HT |
  2354. CCS_ERSRC_REQ_D11PLL |
  2355. CCS_ERSRC_REQ_PHYPLL);
  2356. SPINWAIT((bcma_read32(core, D11REGOFFS(clk_ctl_st)) &
  2357. CCS_ERSRC_AVAIL_HT) != CCS_ERSRC_AVAIL_HT,
  2358. PHYPLL_WAIT_US);
  2359. tmp = bcma_read32(core, D11REGOFFS(clk_ctl_st));
  2360. if ((tmp & CCS_ERSRC_AVAIL_HT) != CCS_ERSRC_AVAIL_HT)
  2361. brcms_err(core, "%s: turn on PHY PLL failed\n",
  2362. __func__);
  2363. } else {
  2364. bcma_set32(core, D11REGOFFS(clk_ctl_st),
  2365. tmp | CCS_ERSRC_REQ_D11PLL |
  2366. CCS_ERSRC_REQ_PHYPLL);
  2367. SPINWAIT((bcma_read32(core, D11REGOFFS(clk_ctl_st)) &
  2368. (CCS_ERSRC_AVAIL_D11PLL |
  2369. CCS_ERSRC_AVAIL_PHYPLL)) !=
  2370. (CCS_ERSRC_AVAIL_D11PLL |
  2371. CCS_ERSRC_AVAIL_PHYPLL), PHYPLL_WAIT_US);
  2372. tmp = bcma_read32(core, D11REGOFFS(clk_ctl_st));
  2373. if ((tmp &
  2374. (CCS_ERSRC_AVAIL_D11PLL | CCS_ERSRC_AVAIL_PHYPLL))
  2375. !=
  2376. (CCS_ERSRC_AVAIL_D11PLL | CCS_ERSRC_AVAIL_PHYPLL))
  2377. brcms_err(core, "%s: turn on PHY PLL failed\n",
  2378. __func__);
  2379. }
  2380. } else {
  2381. /*
  2382. * Since the PLL may be shared, other cores can still
  2383. * be requesting it; so we'll deassert the request but
  2384. * not wait for status to comply.
  2385. */
  2386. bcma_mask32(core, D11REGOFFS(clk_ctl_st),
  2387. ~CCS_ERSRC_REQ_PHYPLL);
  2388. (void)bcma_read32(core, D11REGOFFS(clk_ctl_st));
  2389. }
  2390. }
  2391. static void brcms_c_coredisable(struct brcms_hardware *wlc_hw)
  2392. {
  2393. bool dev_gone;
  2394. brcms_dbg_info(wlc_hw->d11core, "wl%d: disable core\n", wlc_hw->unit);
  2395. dev_gone = brcms_deviceremoved(wlc_hw->wlc);
  2396. if (dev_gone)
  2397. return;
  2398. if (wlc_hw->noreset)
  2399. return;
  2400. /* radio off */
  2401. wlc_phy_switch_radio(wlc_hw->band->pi, OFF);
  2402. /* turn off analog core */
  2403. wlc_phy_anacore(wlc_hw->band->pi, OFF);
  2404. /* turn off PHYPLL to save power */
  2405. brcms_b_core_phypll_ctl(wlc_hw, false);
  2406. wlc_hw->clk = false;
  2407. bcma_core_disable(wlc_hw->d11core, 0);
  2408. wlc_phy_hw_clk_state_upd(wlc_hw->band->pi, false);
  2409. }
  2410. static void brcms_c_flushqueues(struct brcms_c_info *wlc)
  2411. {
  2412. struct brcms_hardware *wlc_hw = wlc->hw;
  2413. uint i;
  2414. /* free any posted tx packets */
  2415. for (i = 0; i < NFIFO; i++) {
  2416. if (wlc_hw->di[i]) {
  2417. dma_txreclaim(wlc_hw->di[i], DMA_RANGE_ALL);
  2418. if (i < TX_BCMC_FIFO)
  2419. ieee80211_wake_queue(wlc->pub->ieee_hw,
  2420. brcms_fifo_to_ac(i));
  2421. }
  2422. }
  2423. /* free any posted rx packets */
  2424. dma_rxreclaim(wlc_hw->di[RX_FIFO]);
  2425. }
  2426. static u16
  2427. brcms_b_read_objmem(struct brcms_hardware *wlc_hw, uint offset, u32 sel)
  2428. {
  2429. struct bcma_device *core = wlc_hw->d11core;
  2430. u16 objoff = D11REGOFFS(objdata);
  2431. bcma_write32(core, D11REGOFFS(objaddr), sel | (offset >> 2));
  2432. (void)bcma_read32(core, D11REGOFFS(objaddr));
  2433. if (offset & 2)
  2434. objoff += 2;
  2435. return bcma_read16(core, objoff);
  2436. }
  2437. static void
  2438. brcms_b_write_objmem(struct brcms_hardware *wlc_hw, uint offset, u16 v,
  2439. u32 sel)
  2440. {
  2441. struct bcma_device *core = wlc_hw->d11core;
  2442. u16 objoff = D11REGOFFS(objdata);
  2443. bcma_write32(core, D11REGOFFS(objaddr), sel | (offset >> 2));
  2444. (void)bcma_read32(core, D11REGOFFS(objaddr));
  2445. if (offset & 2)
  2446. objoff += 2;
  2447. bcma_wflush16(core, objoff, v);
  2448. }
  2449. /*
  2450. * Read a single u16 from shared memory.
  2451. * SHM 'offset' needs to be an even address
  2452. */
  2453. u16 brcms_b_read_shm(struct brcms_hardware *wlc_hw, uint offset)
  2454. {
  2455. return brcms_b_read_objmem(wlc_hw, offset, OBJADDR_SHM_SEL);
  2456. }
  2457. /*
  2458. * Write a single u16 to shared memory.
  2459. * SHM 'offset' needs to be an even address
  2460. */
  2461. void brcms_b_write_shm(struct brcms_hardware *wlc_hw, uint offset, u16 v)
  2462. {
  2463. brcms_b_write_objmem(wlc_hw, offset, v, OBJADDR_SHM_SEL);
  2464. }
  2465. /*
  2466. * Copy a buffer to shared memory of specified type .
  2467. * SHM 'offset' needs to be an even address and
  2468. * Buffer length 'len' must be an even number of bytes
  2469. * 'sel' selects the type of memory
  2470. */
  2471. void
  2472. brcms_b_copyto_objmem(struct brcms_hardware *wlc_hw, uint offset,
  2473. const void *buf, int len, u32 sel)
  2474. {
  2475. u16 v;
  2476. const u8 *p = (const u8 *)buf;
  2477. int i;
  2478. if (len <= 0 || (offset & 1) || (len & 1))
  2479. return;
  2480. for (i = 0; i < len; i += 2) {
  2481. v = p[i] | (p[i + 1] << 8);
  2482. brcms_b_write_objmem(wlc_hw, offset + i, v, sel);
  2483. }
  2484. }
  2485. /*
  2486. * Copy a piece of shared memory of specified type to a buffer .
  2487. * SHM 'offset' needs to be an even address and
  2488. * Buffer length 'len' must be an even number of bytes
  2489. * 'sel' selects the type of memory
  2490. */
  2491. void
  2492. brcms_b_copyfrom_objmem(struct brcms_hardware *wlc_hw, uint offset, void *buf,
  2493. int len, u32 sel)
  2494. {
  2495. u16 v;
  2496. u8 *p = (u8 *) buf;
  2497. int i;
  2498. if (len <= 0 || (offset & 1) || (len & 1))
  2499. return;
  2500. for (i = 0; i < len; i += 2) {
  2501. v = brcms_b_read_objmem(wlc_hw, offset + i, sel);
  2502. p[i] = v & 0xFF;
  2503. p[i + 1] = (v >> 8) & 0xFF;
  2504. }
  2505. }
  2506. /* Copy a buffer to shared memory.
  2507. * SHM 'offset' needs to be an even address and
  2508. * Buffer length 'len' must be an even number of bytes
  2509. */
  2510. static void brcms_c_copyto_shm(struct brcms_c_info *wlc, uint offset,
  2511. const void *buf, int len)
  2512. {
  2513. brcms_b_copyto_objmem(wlc->hw, offset, buf, len, OBJADDR_SHM_SEL);
  2514. }
  2515. static void brcms_b_retrylimit_upd(struct brcms_hardware *wlc_hw,
  2516. u16 SRL, u16 LRL)
  2517. {
  2518. wlc_hw->SRL = SRL;
  2519. wlc_hw->LRL = LRL;
  2520. /* write retry limit to SCR, shouldn't need to suspend */
  2521. if (wlc_hw->up) {
  2522. bcma_write32(wlc_hw->d11core, D11REGOFFS(objaddr),
  2523. OBJADDR_SCR_SEL | S_DOT11_SRC_LMT);
  2524. (void)bcma_read32(wlc_hw->d11core, D11REGOFFS(objaddr));
  2525. bcma_write32(wlc_hw->d11core, D11REGOFFS(objdata), wlc_hw->SRL);
  2526. bcma_write32(wlc_hw->d11core, D11REGOFFS(objaddr),
  2527. OBJADDR_SCR_SEL | S_DOT11_LRC_LMT);
  2528. (void)bcma_read32(wlc_hw->d11core, D11REGOFFS(objaddr));
  2529. bcma_write32(wlc_hw->d11core, D11REGOFFS(objdata), wlc_hw->LRL);
  2530. }
  2531. }
  2532. static void brcms_b_pllreq(struct brcms_hardware *wlc_hw, bool set, u32 req_bit)
  2533. {
  2534. if (set) {
  2535. if (mboolisset(wlc_hw->pllreq, req_bit))
  2536. return;
  2537. mboolset(wlc_hw->pllreq, req_bit);
  2538. if (mboolisset(wlc_hw->pllreq, BRCMS_PLLREQ_FLIP)) {
  2539. if (!wlc_hw->sbclk)
  2540. brcms_b_xtal(wlc_hw, ON);
  2541. }
  2542. } else {
  2543. if (!mboolisset(wlc_hw->pllreq, req_bit))
  2544. return;
  2545. mboolclr(wlc_hw->pllreq, req_bit);
  2546. if (mboolisset(wlc_hw->pllreq, BRCMS_PLLREQ_FLIP)) {
  2547. if (wlc_hw->sbclk)
  2548. brcms_b_xtal(wlc_hw, OFF);
  2549. }
  2550. }
  2551. }
  2552. static void brcms_b_antsel_set(struct brcms_hardware *wlc_hw, u32 antsel_avail)
  2553. {
  2554. wlc_hw->antsel_avail = antsel_avail;
  2555. }
  2556. /*
  2557. * conditions under which the PM bit should be set in outgoing frames
  2558. * and STAY_AWAKE is meaningful
  2559. */
  2560. static bool brcms_c_ps_allowed(struct brcms_c_info *wlc)
  2561. {
  2562. /* disallow PS when one of the following global conditions meets */
  2563. if (!wlc->pub->associated)
  2564. return false;
  2565. /* disallow PS when one of these meets when not scanning */
  2566. if (wlc->filter_flags & FIF_PROMISC_IN_BSS)
  2567. return false;
  2568. if (wlc->bsscfg->type == BRCMS_TYPE_AP)
  2569. return false;
  2570. if (wlc->bsscfg->type == BRCMS_TYPE_ADHOC)
  2571. return false;
  2572. return true;
  2573. }
  2574. static void brcms_c_statsupd(struct brcms_c_info *wlc)
  2575. {
  2576. int i;
  2577. struct macstat macstats;
  2578. #ifdef DEBUG
  2579. u16 delta;
  2580. u16 rxf0ovfl;
  2581. u16 txfunfl[NFIFO];
  2582. #endif /* DEBUG */
  2583. /* if driver down, make no sense to update stats */
  2584. if (!wlc->pub->up)
  2585. return;
  2586. #ifdef DEBUG
  2587. /* save last rx fifo 0 overflow count */
  2588. rxf0ovfl = wlc->core->macstat_snapshot->rxf0ovfl;
  2589. /* save last tx fifo underflow count */
  2590. for (i = 0; i < NFIFO; i++)
  2591. txfunfl[i] = wlc->core->macstat_snapshot->txfunfl[i];
  2592. #endif /* DEBUG */
  2593. /* Read mac stats from contiguous shared memory */
  2594. brcms_b_copyfrom_objmem(wlc->hw, M_UCODE_MACSTAT, &macstats,
  2595. sizeof(struct macstat), OBJADDR_SHM_SEL);
  2596. #ifdef DEBUG
  2597. /* check for rx fifo 0 overflow */
  2598. delta = (u16) (wlc->core->macstat_snapshot->rxf0ovfl - rxf0ovfl);
  2599. if (delta)
  2600. brcms_err(wlc->hw->d11core, "wl%d: %u rx fifo 0 overflows!\n",
  2601. wlc->pub->unit, delta);
  2602. /* check for tx fifo underflows */
  2603. for (i = 0; i < NFIFO; i++) {
  2604. delta =
  2605. (u16) (wlc->core->macstat_snapshot->txfunfl[i] -
  2606. txfunfl[i]);
  2607. if (delta)
  2608. brcms_err(wlc->hw->d11core,
  2609. "wl%d: %u tx fifo %d underflows!\n",
  2610. wlc->pub->unit, delta, i);
  2611. }
  2612. #endif /* DEBUG */
  2613. /* merge counters from dma module */
  2614. for (i = 0; i < NFIFO; i++) {
  2615. if (wlc->hw->di[i])
  2616. dma_counterreset(wlc->hw->di[i]);
  2617. }
  2618. }
  2619. static void brcms_b_reset(struct brcms_hardware *wlc_hw)
  2620. {
  2621. /* reset the core */
  2622. if (!brcms_deviceremoved(wlc_hw->wlc))
  2623. brcms_b_corereset(wlc_hw, BRCMS_USE_COREFLAGS);
  2624. /* purge the dma rings */
  2625. brcms_c_flushqueues(wlc_hw->wlc);
  2626. }
  2627. void brcms_c_reset(struct brcms_c_info *wlc)
  2628. {
  2629. brcms_dbg_info(wlc->hw->d11core, "wl%d\n", wlc->pub->unit);
  2630. /* slurp up hw mac counters before core reset */
  2631. brcms_c_statsupd(wlc);
  2632. /* reset our snapshot of macstat counters */
  2633. memset(wlc->core->macstat_snapshot, 0, sizeof(struct macstat));
  2634. brcms_b_reset(wlc->hw);
  2635. }
  2636. void brcms_c_init_scb(struct scb *scb)
  2637. {
  2638. int i;
  2639. memset(scb, 0, sizeof(struct scb));
  2640. scb->flags = SCB_WMECAP | SCB_HTCAP;
  2641. for (i = 0; i < NUMPRIO; i++) {
  2642. scb->seqnum[i] = 0;
  2643. scb->seqctl[i] = 0xFFFF;
  2644. }
  2645. scb->seqctl_nonqos = 0xFFFF;
  2646. scb->magic = SCB_MAGIC;
  2647. }
  2648. /* d11 core init
  2649. * reset PSM
  2650. * download ucode/PCM
  2651. * let ucode run to suspended
  2652. * download ucode inits
  2653. * config other core registers
  2654. * init dma
  2655. */
  2656. static void brcms_b_coreinit(struct brcms_c_info *wlc)
  2657. {
  2658. struct brcms_hardware *wlc_hw = wlc->hw;
  2659. struct bcma_device *core = wlc_hw->d11core;
  2660. u32 sflags;
  2661. u32 bcnint_us;
  2662. uint i = 0;
  2663. bool fifosz_fixup = false;
  2664. int err = 0;
  2665. u16 buf[NFIFO];
  2666. struct brcms_ucode *ucode = &wlc_hw->wlc->wl->ucode;
  2667. brcms_dbg_info(core, "wl%d: core init\n", wlc_hw->unit);
  2668. /* reset PSM */
  2669. brcms_b_mctrl(wlc_hw, ~0, (MCTL_IHR_EN | MCTL_PSM_JMP_0 | MCTL_WAKE));
  2670. brcms_ucode_download(wlc_hw);
  2671. /*
  2672. * FIFOSZ fixup. driver wants to controls the fifo allocation.
  2673. */
  2674. fifosz_fixup = true;
  2675. /* let the PSM run to the suspended state, set mode to BSS STA */
  2676. bcma_write32(core, D11REGOFFS(macintstatus), -1);
  2677. brcms_b_mctrl(wlc_hw, ~0,
  2678. (MCTL_IHR_EN | MCTL_INFRA | MCTL_PSM_RUN | MCTL_WAKE));
  2679. /* wait for ucode to self-suspend after auto-init */
  2680. SPINWAIT(((bcma_read32(core, D11REGOFFS(macintstatus)) &
  2681. MI_MACSSPNDD) == 0), 1000 * 1000);
  2682. if ((bcma_read32(core, D11REGOFFS(macintstatus)) & MI_MACSSPNDD) == 0)
  2683. brcms_err(core, "wl%d: wlc_coreinit: ucode did not self-"
  2684. "suspend!\n", wlc_hw->unit);
  2685. brcms_c_gpio_init(wlc);
  2686. sflags = bcma_aread32(core, BCMA_IOST);
  2687. if (D11REV_IS(wlc_hw->corerev, 17) || D11REV_IS(wlc_hw->corerev, 23)) {
  2688. if (BRCMS_ISNPHY(wlc_hw->band))
  2689. brcms_c_write_inits(wlc_hw, ucode->d11n0initvals16);
  2690. else
  2691. brcms_err(core, "%s: wl%d: unsupported phy in corerev"
  2692. " %d\n", __func__, wlc_hw->unit,
  2693. wlc_hw->corerev);
  2694. } else if (D11REV_IS(wlc_hw->corerev, 24)) {
  2695. if (BRCMS_ISLCNPHY(wlc_hw->band))
  2696. brcms_c_write_inits(wlc_hw, ucode->d11lcn0initvals24);
  2697. else
  2698. brcms_err(core, "%s: wl%d: unsupported phy in corerev"
  2699. " %d\n", __func__, wlc_hw->unit,
  2700. wlc_hw->corerev);
  2701. } else {
  2702. brcms_err(core, "%s: wl%d: unsupported corerev %d\n",
  2703. __func__, wlc_hw->unit, wlc_hw->corerev);
  2704. }
  2705. /* For old ucode, txfifo sizes needs to be modified(increased) */
  2706. if (fifosz_fixup)
  2707. brcms_b_corerev_fifofixup(wlc_hw);
  2708. /* check txfifo allocations match between ucode and driver */
  2709. buf[TX_AC_BE_FIFO] = brcms_b_read_shm(wlc_hw, M_FIFOSIZE0);
  2710. if (buf[TX_AC_BE_FIFO] != wlc_hw->xmtfifo_sz[TX_AC_BE_FIFO]) {
  2711. i = TX_AC_BE_FIFO;
  2712. err = -1;
  2713. }
  2714. buf[TX_AC_VI_FIFO] = brcms_b_read_shm(wlc_hw, M_FIFOSIZE1);
  2715. if (buf[TX_AC_VI_FIFO] != wlc_hw->xmtfifo_sz[TX_AC_VI_FIFO]) {
  2716. i = TX_AC_VI_FIFO;
  2717. err = -1;
  2718. }
  2719. buf[TX_AC_BK_FIFO] = brcms_b_read_shm(wlc_hw, M_FIFOSIZE2);
  2720. buf[TX_AC_VO_FIFO] = (buf[TX_AC_BK_FIFO] >> 8) & 0xff;
  2721. buf[TX_AC_BK_FIFO] &= 0xff;
  2722. if (buf[TX_AC_BK_FIFO] != wlc_hw->xmtfifo_sz[TX_AC_BK_FIFO]) {
  2723. i = TX_AC_BK_FIFO;
  2724. err = -1;
  2725. }
  2726. if (buf[TX_AC_VO_FIFO] != wlc_hw->xmtfifo_sz[TX_AC_VO_FIFO]) {
  2727. i = TX_AC_VO_FIFO;
  2728. err = -1;
  2729. }
  2730. buf[TX_BCMC_FIFO] = brcms_b_read_shm(wlc_hw, M_FIFOSIZE3);
  2731. buf[TX_ATIM_FIFO] = (buf[TX_BCMC_FIFO] >> 8) & 0xff;
  2732. buf[TX_BCMC_FIFO] &= 0xff;
  2733. if (buf[TX_BCMC_FIFO] != wlc_hw->xmtfifo_sz[TX_BCMC_FIFO]) {
  2734. i = TX_BCMC_FIFO;
  2735. err = -1;
  2736. }
  2737. if (buf[TX_ATIM_FIFO] != wlc_hw->xmtfifo_sz[TX_ATIM_FIFO]) {
  2738. i = TX_ATIM_FIFO;
  2739. err = -1;
  2740. }
  2741. if (err != 0)
  2742. brcms_err(core, "wlc_coreinit: txfifo mismatch: ucode size %d"
  2743. " driver size %d index %d\n", buf[i],
  2744. wlc_hw->xmtfifo_sz[i], i);
  2745. /* make sure we can still talk to the mac */
  2746. WARN_ON(bcma_read32(core, D11REGOFFS(maccontrol)) == 0xffffffff);
  2747. /* band-specific inits done by wlc_bsinit() */
  2748. /* Set up frame burst size and antenna swap threshold init values */
  2749. brcms_b_write_shm(wlc_hw, M_MBURST_SIZE, MAXTXFRAMEBURST);
  2750. brcms_b_write_shm(wlc_hw, M_MAX_ANTCNT, ANTCNT);
  2751. /* enable one rx interrupt per received frame */
  2752. bcma_write32(core, D11REGOFFS(intrcvlazy[0]), (1 << IRL_FC_SHIFT));
  2753. /* set the station mode (BSS STA) */
  2754. brcms_b_mctrl(wlc_hw,
  2755. (MCTL_INFRA | MCTL_DISCARD_PMQ | MCTL_AP),
  2756. (MCTL_INFRA | MCTL_DISCARD_PMQ));
  2757. /* set up Beacon interval */
  2758. bcnint_us = 0x8000 << 10;
  2759. bcma_write32(core, D11REGOFFS(tsf_cfprep),
  2760. (bcnint_us << CFPREP_CBI_SHIFT));
  2761. bcma_write32(core, D11REGOFFS(tsf_cfpstart), bcnint_us);
  2762. bcma_write32(core, D11REGOFFS(macintstatus), MI_GP1);
  2763. /* write interrupt mask */
  2764. bcma_write32(core, D11REGOFFS(intctrlregs[RX_FIFO].intmask),
  2765. DEF_RXINTMASK);
  2766. /* allow the MAC to control the PHY clock (dynamic on/off) */
  2767. brcms_b_macphyclk_set(wlc_hw, ON);
  2768. /* program dynamic clock control fast powerup delay register */
  2769. wlc->fastpwrup_dly = ai_clkctl_fast_pwrup_delay(wlc_hw->sih);
  2770. bcma_write16(core, D11REGOFFS(scc_fastpwrup_dly), wlc->fastpwrup_dly);
  2771. /* tell the ucode the corerev */
  2772. brcms_b_write_shm(wlc_hw, M_MACHW_VER, (u16) wlc_hw->corerev);
  2773. /* tell the ucode MAC capabilities */
  2774. brcms_b_write_shm(wlc_hw, M_MACHW_CAP_L,
  2775. (u16) (wlc_hw->machwcap & 0xffff));
  2776. brcms_b_write_shm(wlc_hw, M_MACHW_CAP_H,
  2777. (u16) ((wlc_hw->
  2778. machwcap >> 16) & 0xffff));
  2779. /* write retry limits to SCR, this done after PSM init */
  2780. bcma_write32(core, D11REGOFFS(objaddr),
  2781. OBJADDR_SCR_SEL | S_DOT11_SRC_LMT);
  2782. (void)bcma_read32(core, D11REGOFFS(objaddr));
  2783. bcma_write32(core, D11REGOFFS(objdata), wlc_hw->SRL);
  2784. bcma_write32(core, D11REGOFFS(objaddr),
  2785. OBJADDR_SCR_SEL | S_DOT11_LRC_LMT);
  2786. (void)bcma_read32(core, D11REGOFFS(objaddr));
  2787. bcma_write32(core, D11REGOFFS(objdata), wlc_hw->LRL);
  2788. /* write rate fallback retry limits */
  2789. brcms_b_write_shm(wlc_hw, M_SFRMTXCNTFBRTHSD, wlc_hw->SFBL);
  2790. brcms_b_write_shm(wlc_hw, M_LFRMTXCNTFBRTHSD, wlc_hw->LFBL);
  2791. bcma_mask16(core, D11REGOFFS(ifs_ctl), 0x0FFF);
  2792. bcma_write16(core, D11REGOFFS(ifs_aifsn), EDCF_AIFSN_MIN);
  2793. /* init the tx dma engines */
  2794. for (i = 0; i < NFIFO; i++) {
  2795. if (wlc_hw->di[i])
  2796. dma_txinit(wlc_hw->di[i]);
  2797. }
  2798. /* init the rx dma engine(s) and post receive buffers */
  2799. dma_rxinit(wlc_hw->di[RX_FIFO]);
  2800. dma_rxfill(wlc_hw->di[RX_FIFO]);
  2801. }
  2802. void
  2803. static brcms_b_init(struct brcms_hardware *wlc_hw, u16 chanspec) {
  2804. u32 macintmask;
  2805. bool fastclk;
  2806. struct brcms_c_info *wlc = wlc_hw->wlc;
  2807. /* request FAST clock if not on */
  2808. fastclk = wlc_hw->forcefastclk;
  2809. if (!fastclk)
  2810. brcms_b_clkctl_clk(wlc_hw, BCMA_CLKMODE_FAST);
  2811. /* disable interrupts */
  2812. macintmask = brcms_intrsoff(wlc->wl);
  2813. /* set up the specified band and chanspec */
  2814. brcms_c_setxband(wlc_hw, chspec_bandunit(chanspec));
  2815. wlc_phy_chanspec_radio_set(wlc_hw->band->pi, chanspec);
  2816. /* do one-time phy inits and calibration */
  2817. wlc_phy_cal_init(wlc_hw->band->pi);
  2818. /* core-specific initialization */
  2819. brcms_b_coreinit(wlc);
  2820. /* band-specific inits */
  2821. brcms_b_bsinit(wlc, chanspec);
  2822. /* restore macintmask */
  2823. brcms_intrsrestore(wlc->wl, macintmask);
  2824. /* seed wake_override with BRCMS_WAKE_OVERRIDE_MACSUSPEND since the mac
  2825. * is suspended and brcms_c_enable_mac() will clear this override bit.
  2826. */
  2827. mboolset(wlc_hw->wake_override, BRCMS_WAKE_OVERRIDE_MACSUSPEND);
  2828. /*
  2829. * initialize mac_suspend_depth to 1 to match ucode
  2830. * initial suspended state
  2831. */
  2832. wlc_hw->mac_suspend_depth = 1;
  2833. /* restore the clk */
  2834. if (!fastclk)
  2835. brcms_b_clkctl_clk(wlc_hw, BCMA_CLKMODE_DYNAMIC);
  2836. }
  2837. static void brcms_c_set_phy_chanspec(struct brcms_c_info *wlc,
  2838. u16 chanspec)
  2839. {
  2840. /* Save our copy of the chanspec */
  2841. wlc->chanspec = chanspec;
  2842. /* Set the chanspec and power limits for this locale */
  2843. brcms_c_channel_set_chanspec(wlc->cmi, chanspec, BRCMS_TXPWR_MAX);
  2844. if (wlc->stf->ss_algosel_auto)
  2845. brcms_c_stf_ss_algo_channel_get(wlc, &wlc->stf->ss_algo_channel,
  2846. chanspec);
  2847. brcms_c_stf_ss_update(wlc, wlc->band);
  2848. }
  2849. static void
  2850. brcms_default_rateset(struct brcms_c_info *wlc, struct brcms_c_rateset *rs)
  2851. {
  2852. brcms_c_rateset_default(rs, NULL, wlc->band->phytype,
  2853. wlc->band->bandtype, false, BRCMS_RATE_MASK_FULL,
  2854. (bool) (wlc->pub->_n_enab & SUPPORT_11N),
  2855. brcms_chspec_bw(wlc->default_bss->chanspec),
  2856. wlc->stf->txstreams);
  2857. }
  2858. /* derive wlc->band->basic_rate[] table from 'rateset' */
  2859. static void brcms_c_rate_lookup_init(struct brcms_c_info *wlc,
  2860. struct brcms_c_rateset *rateset)
  2861. {
  2862. u8 rate;
  2863. u8 mandatory;
  2864. u8 cck_basic = 0;
  2865. u8 ofdm_basic = 0;
  2866. u8 *br = wlc->band->basic_rate;
  2867. uint i;
  2868. /* incoming rates are in 500kbps units as in 802.11 Supported Rates */
  2869. memset(br, 0, BRCM_MAXRATE + 1);
  2870. /* For each basic rate in the rates list, make an entry in the
  2871. * best basic lookup.
  2872. */
  2873. for (i = 0; i < rateset->count; i++) {
  2874. /* only make an entry for a basic rate */
  2875. if (!(rateset->rates[i] & BRCMS_RATE_FLAG))
  2876. continue;
  2877. /* mask off basic bit */
  2878. rate = (rateset->rates[i] & BRCMS_RATE_MASK);
  2879. if (rate > BRCM_MAXRATE) {
  2880. brcms_err(wlc->hw->d11core, "brcms_c_rate_lookup_init: "
  2881. "invalid rate 0x%X in rate set\n",
  2882. rateset->rates[i]);
  2883. continue;
  2884. }
  2885. br[rate] = rate;
  2886. }
  2887. /* The rate lookup table now has non-zero entries for each
  2888. * basic rate, equal to the basic rate: br[basicN] = basicN
  2889. *
  2890. * To look up the best basic rate corresponding to any
  2891. * particular rate, code can use the basic_rate table
  2892. * like this
  2893. *
  2894. * basic_rate = wlc->band->basic_rate[tx_rate]
  2895. *
  2896. * Make sure there is a best basic rate entry for
  2897. * every rate by walking up the table from low rates
  2898. * to high, filling in holes in the lookup table
  2899. */
  2900. for (i = 0; i < wlc->band->hw_rateset.count; i++) {
  2901. rate = wlc->band->hw_rateset.rates[i];
  2902. if (br[rate] != 0) {
  2903. /* This rate is a basic rate.
  2904. * Keep track of the best basic rate so far by
  2905. * modulation type.
  2906. */
  2907. if (is_ofdm_rate(rate))
  2908. ofdm_basic = rate;
  2909. else
  2910. cck_basic = rate;
  2911. continue;
  2912. }
  2913. /* This rate is not a basic rate so figure out the
  2914. * best basic rate less than this rate and fill in
  2915. * the hole in the table
  2916. */
  2917. br[rate] = is_ofdm_rate(rate) ? ofdm_basic : cck_basic;
  2918. if (br[rate] != 0)
  2919. continue;
  2920. if (is_ofdm_rate(rate)) {
  2921. /*
  2922. * In 11g and 11a, the OFDM mandatory rates
  2923. * are 6, 12, and 24 Mbps
  2924. */
  2925. if (rate >= BRCM_RATE_24M)
  2926. mandatory = BRCM_RATE_24M;
  2927. else if (rate >= BRCM_RATE_12M)
  2928. mandatory = BRCM_RATE_12M;
  2929. else
  2930. mandatory = BRCM_RATE_6M;
  2931. } else {
  2932. /* In 11b, all CCK rates are mandatory 1 - 11 Mbps */
  2933. mandatory = rate;
  2934. }
  2935. br[rate] = mandatory;
  2936. }
  2937. }
  2938. static void brcms_c_bandinit_ordered(struct brcms_c_info *wlc,
  2939. u16 chanspec)
  2940. {
  2941. struct brcms_c_rateset default_rateset;
  2942. uint parkband;
  2943. uint i, band_order[2];
  2944. /*
  2945. * We might have been bandlocked during down and the chip
  2946. * power-cycled (hibernate). Figure out the right band to park on
  2947. */
  2948. if (wlc->bandlocked || wlc->pub->_nbands == 1) {
  2949. /* updated in brcms_c_bandlock() */
  2950. parkband = wlc->band->bandunit;
  2951. band_order[0] = band_order[1] = parkband;
  2952. } else {
  2953. /* park on the band of the specified chanspec */
  2954. parkband = chspec_bandunit(chanspec);
  2955. /* order so that parkband initialize last */
  2956. band_order[0] = parkband ^ 1;
  2957. band_order[1] = parkband;
  2958. }
  2959. /* make each band operational, software state init */
  2960. for (i = 0; i < wlc->pub->_nbands; i++) {
  2961. uint j = band_order[i];
  2962. wlc->band = wlc->bandstate[j];
  2963. brcms_default_rateset(wlc, &default_rateset);
  2964. /* fill in hw_rate */
  2965. brcms_c_rateset_filter(&default_rateset, &wlc->band->hw_rateset,
  2966. false, BRCMS_RATES_CCK_OFDM, BRCMS_RATE_MASK,
  2967. (bool) (wlc->pub->_n_enab & SUPPORT_11N));
  2968. /* init basic rate lookup */
  2969. brcms_c_rate_lookup_init(wlc, &default_rateset);
  2970. }
  2971. /* sync up phy/radio chanspec */
  2972. brcms_c_set_phy_chanspec(wlc, chanspec);
  2973. }
  2974. /*
  2975. * Set or clear filtering related maccontrol bits based on
  2976. * specified filter flags
  2977. */
  2978. void brcms_c_mac_promisc(struct brcms_c_info *wlc, uint filter_flags)
  2979. {
  2980. u32 promisc_bits = 0;
  2981. wlc->filter_flags = filter_flags;
  2982. if (filter_flags & (FIF_PROMISC_IN_BSS | FIF_OTHER_BSS))
  2983. promisc_bits |= MCTL_PROMISC;
  2984. if (filter_flags & FIF_BCN_PRBRESP_PROMISC)
  2985. promisc_bits |= MCTL_BCNS_PROMISC;
  2986. if (filter_flags & FIF_FCSFAIL)
  2987. promisc_bits |= MCTL_KEEPBADFCS;
  2988. if (filter_flags & (FIF_CONTROL | FIF_PSPOLL))
  2989. promisc_bits |= MCTL_KEEPCONTROL;
  2990. brcms_b_mctrl(wlc->hw,
  2991. MCTL_PROMISC | MCTL_BCNS_PROMISC |
  2992. MCTL_KEEPCONTROL | MCTL_KEEPBADFCS,
  2993. promisc_bits);
  2994. }
  2995. /*
  2996. * ucode, hwmac update
  2997. * Channel dependent updates for ucode and hw
  2998. */
  2999. static void brcms_c_ucode_mac_upd(struct brcms_c_info *wlc)
  3000. {
  3001. /* enable or disable any active IBSSs depending on whether or not
  3002. * we are on the home channel
  3003. */
  3004. if (wlc->home_chanspec == wlc_phy_chanspec_get(wlc->band->pi)) {
  3005. if (wlc->pub->associated) {
  3006. /*
  3007. * BMAC_NOTE: This is something that should be fixed
  3008. * in ucode inits. I think that the ucode inits set
  3009. * up the bcn templates and shm values with a bogus
  3010. * beacon. This should not be done in the inits. If
  3011. * ucode needs to set up a beacon for testing, the
  3012. * test routines should write it down, not expect the
  3013. * inits to populate a bogus beacon.
  3014. */
  3015. if (BRCMS_PHY_11N_CAP(wlc->band))
  3016. brcms_b_write_shm(wlc->hw,
  3017. M_BCN_TXTSF_OFFSET, 0);
  3018. }
  3019. } else {
  3020. /* disable an active IBSS if we are not on the home channel */
  3021. }
  3022. }
  3023. static void brcms_c_write_rate_shm(struct brcms_c_info *wlc, u8 rate,
  3024. u8 basic_rate)
  3025. {
  3026. u8 phy_rate, index;
  3027. u8 basic_phy_rate, basic_index;
  3028. u16 dir_table, basic_table;
  3029. u16 basic_ptr;
  3030. /* Shared memory address for the table we are reading */
  3031. dir_table = is_ofdm_rate(basic_rate) ? M_RT_DIRMAP_A : M_RT_DIRMAP_B;
  3032. /* Shared memory address for the table we are writing */
  3033. basic_table = is_ofdm_rate(rate) ? M_RT_BBRSMAP_A : M_RT_BBRSMAP_B;
  3034. /*
  3035. * for a given rate, the LS-nibble of the PLCP SIGNAL field is
  3036. * the index into the rate table.
  3037. */
  3038. phy_rate = rate_info[rate] & BRCMS_RATE_MASK;
  3039. basic_phy_rate = rate_info[basic_rate] & BRCMS_RATE_MASK;
  3040. index = phy_rate & 0xf;
  3041. basic_index = basic_phy_rate & 0xf;
  3042. /* Find the SHM pointer to the ACK rate entry by looking in the
  3043. * Direct-map Table
  3044. */
  3045. basic_ptr = brcms_b_read_shm(wlc->hw, (dir_table + basic_index * 2));
  3046. /* Update the SHM BSS-basic-rate-set mapping table with the pointer
  3047. * to the correct basic rate for the given incoming rate
  3048. */
  3049. brcms_b_write_shm(wlc->hw, (basic_table + index * 2), basic_ptr);
  3050. }
  3051. static const struct brcms_c_rateset *
  3052. brcms_c_rateset_get_hwrs(struct brcms_c_info *wlc)
  3053. {
  3054. const struct brcms_c_rateset *rs_dflt;
  3055. if (BRCMS_PHY_11N_CAP(wlc->band)) {
  3056. if (wlc->band->bandtype == BRCM_BAND_5G)
  3057. rs_dflt = &ofdm_mimo_rates;
  3058. else
  3059. rs_dflt = &cck_ofdm_mimo_rates;
  3060. } else if (wlc->band->gmode)
  3061. rs_dflt = &cck_ofdm_rates;
  3062. else
  3063. rs_dflt = &cck_rates;
  3064. return rs_dflt;
  3065. }
  3066. static void brcms_c_set_ratetable(struct brcms_c_info *wlc)
  3067. {
  3068. const struct brcms_c_rateset *rs_dflt;
  3069. struct brcms_c_rateset rs;
  3070. u8 rate, basic_rate;
  3071. uint i;
  3072. rs_dflt = brcms_c_rateset_get_hwrs(wlc);
  3073. brcms_c_rateset_copy(rs_dflt, &rs);
  3074. brcms_c_rateset_mcs_upd(&rs, wlc->stf->txstreams);
  3075. /* walk the phy rate table and update SHM basic rate lookup table */
  3076. for (i = 0; i < rs.count; i++) {
  3077. rate = rs.rates[i] & BRCMS_RATE_MASK;
  3078. /* for a given rate brcms_basic_rate returns the rate at
  3079. * which a response ACK/CTS should be sent.
  3080. */
  3081. basic_rate = brcms_basic_rate(wlc, rate);
  3082. if (basic_rate == 0)
  3083. /* This should only happen if we are using a
  3084. * restricted rateset.
  3085. */
  3086. basic_rate = rs.rates[0] & BRCMS_RATE_MASK;
  3087. brcms_c_write_rate_shm(wlc, rate, basic_rate);
  3088. }
  3089. }
  3090. /* band-specific init */
  3091. static void brcms_c_bsinit(struct brcms_c_info *wlc)
  3092. {
  3093. brcms_dbg_info(wlc->hw->d11core, "wl%d: bandunit %d\n",
  3094. wlc->pub->unit, wlc->band->bandunit);
  3095. /* write ucode ACK/CTS rate table */
  3096. brcms_c_set_ratetable(wlc);
  3097. /* update some band specific mac configuration */
  3098. brcms_c_ucode_mac_upd(wlc);
  3099. /* init antenna selection */
  3100. brcms_c_antsel_init(wlc->asi);
  3101. }
  3102. /* formula: IDLE_BUSY_RATIO_X_16 = (100-duty_cycle)/duty_cycle*16 */
  3103. static int
  3104. brcms_c_duty_cycle_set(struct brcms_c_info *wlc, int duty_cycle, bool isOFDM,
  3105. bool writeToShm)
  3106. {
  3107. int idle_busy_ratio_x_16 = 0;
  3108. uint offset =
  3109. isOFDM ? M_TX_IDLE_BUSY_RATIO_X_16_OFDM :
  3110. M_TX_IDLE_BUSY_RATIO_X_16_CCK;
  3111. if (duty_cycle > 100 || duty_cycle < 0) {
  3112. brcms_err(wlc->hw->d11core,
  3113. "wl%d: duty cycle value off limit\n",
  3114. wlc->pub->unit);
  3115. return -EINVAL;
  3116. }
  3117. if (duty_cycle)
  3118. idle_busy_ratio_x_16 = (100 - duty_cycle) * 16 / duty_cycle;
  3119. /* Only write to shared memory when wl is up */
  3120. if (writeToShm)
  3121. brcms_b_write_shm(wlc->hw, offset, (u16) idle_busy_ratio_x_16);
  3122. if (isOFDM)
  3123. wlc->tx_duty_cycle_ofdm = (u16) duty_cycle;
  3124. else
  3125. wlc->tx_duty_cycle_cck = (u16) duty_cycle;
  3126. return 0;
  3127. }
  3128. /* push sw hps and wake state through hardware */
  3129. static void brcms_c_set_ps_ctrl(struct brcms_c_info *wlc)
  3130. {
  3131. u32 v1, v2;
  3132. bool hps;
  3133. bool awake_before;
  3134. hps = brcms_c_ps_allowed(wlc);
  3135. brcms_dbg_mac80211(wlc->hw->d11core, "wl%d: hps %d\n", wlc->pub->unit,
  3136. hps);
  3137. v1 = bcma_read32(wlc->hw->d11core, D11REGOFFS(maccontrol));
  3138. v2 = MCTL_WAKE;
  3139. if (hps)
  3140. v2 |= MCTL_HPS;
  3141. brcms_b_mctrl(wlc->hw, MCTL_WAKE | MCTL_HPS, v2);
  3142. awake_before = ((v1 & MCTL_WAKE) || ((v1 & MCTL_HPS) == 0));
  3143. if (!awake_before)
  3144. brcms_b_wait_for_wake(wlc->hw);
  3145. }
  3146. /*
  3147. * Write this BSS config's MAC address to core.
  3148. * Updates RXE match engine.
  3149. */
  3150. static int brcms_c_set_mac(struct brcms_bss_cfg *bsscfg)
  3151. {
  3152. int err = 0;
  3153. struct brcms_c_info *wlc = bsscfg->wlc;
  3154. /* enter the MAC addr into the RXE match registers */
  3155. brcms_c_set_addrmatch(wlc, RCM_MAC_OFFSET, wlc->pub->cur_etheraddr);
  3156. brcms_c_ampdu_macaddr_upd(wlc);
  3157. return err;
  3158. }
  3159. /* Write the BSS config's BSSID address to core (set_bssid in d11procs.tcl).
  3160. * Updates RXE match engine.
  3161. */
  3162. static void brcms_c_set_bssid(struct brcms_bss_cfg *bsscfg)
  3163. {
  3164. /* we need to update BSSID in RXE match registers */
  3165. brcms_c_set_addrmatch(bsscfg->wlc, RCM_BSSID_OFFSET, bsscfg->BSSID);
  3166. }
  3167. void brcms_c_set_ssid(struct brcms_c_info *wlc, u8 *ssid, size_t ssid_len)
  3168. {
  3169. u8 len = min_t(u8, sizeof(wlc->bsscfg->SSID), ssid_len);
  3170. memset(wlc->bsscfg->SSID, 0, sizeof(wlc->bsscfg->SSID));
  3171. memcpy(wlc->bsscfg->SSID, ssid, len);
  3172. wlc->bsscfg->SSID_len = len;
  3173. }
  3174. static void brcms_b_set_shortslot(struct brcms_hardware *wlc_hw, bool shortslot)
  3175. {
  3176. wlc_hw->shortslot = shortslot;
  3177. if (wlc_hw->band->bandtype == BRCM_BAND_2G && wlc_hw->up) {
  3178. brcms_c_suspend_mac_and_wait(wlc_hw->wlc);
  3179. brcms_b_update_slot_timing(wlc_hw, shortslot);
  3180. brcms_c_enable_mac(wlc_hw->wlc);
  3181. }
  3182. }
  3183. /*
  3184. * Suspend the the MAC and update the slot timing
  3185. * for standard 11b/g (20us slots) or shortslot 11g (9us slots).
  3186. */
  3187. static void brcms_c_switch_shortslot(struct brcms_c_info *wlc, bool shortslot)
  3188. {
  3189. /* use the override if it is set */
  3190. if (wlc->shortslot_override != BRCMS_SHORTSLOT_AUTO)
  3191. shortslot = (wlc->shortslot_override == BRCMS_SHORTSLOT_ON);
  3192. if (wlc->shortslot == shortslot)
  3193. return;
  3194. wlc->shortslot = shortslot;
  3195. brcms_b_set_shortslot(wlc->hw, shortslot);
  3196. }
  3197. static void brcms_c_set_home_chanspec(struct brcms_c_info *wlc, u16 chanspec)
  3198. {
  3199. if (wlc->home_chanspec != chanspec) {
  3200. wlc->home_chanspec = chanspec;
  3201. if (wlc->pub->associated)
  3202. wlc->bsscfg->current_bss->chanspec = chanspec;
  3203. }
  3204. }
  3205. void
  3206. brcms_b_set_chanspec(struct brcms_hardware *wlc_hw, u16 chanspec,
  3207. bool mute_tx, struct txpwr_limits *txpwr)
  3208. {
  3209. uint bandunit;
  3210. brcms_dbg_mac80211(wlc_hw->d11core, "wl%d: 0x%x\n", wlc_hw->unit,
  3211. chanspec);
  3212. wlc_hw->chanspec = chanspec;
  3213. /* Switch bands if necessary */
  3214. if (wlc_hw->_nbands > 1) {
  3215. bandunit = chspec_bandunit(chanspec);
  3216. if (wlc_hw->band->bandunit != bandunit) {
  3217. /* brcms_b_setband disables other bandunit,
  3218. * use light band switch if not up yet
  3219. */
  3220. if (wlc_hw->up) {
  3221. wlc_phy_chanspec_radio_set(wlc_hw->
  3222. bandstate[bandunit]->
  3223. pi, chanspec);
  3224. brcms_b_setband(wlc_hw, bandunit, chanspec);
  3225. } else {
  3226. brcms_c_setxband(wlc_hw, bandunit);
  3227. }
  3228. }
  3229. }
  3230. wlc_phy_initcal_enable(wlc_hw->band->pi, !mute_tx);
  3231. if (!wlc_hw->up) {
  3232. if (wlc_hw->clk)
  3233. wlc_phy_txpower_limit_set(wlc_hw->band->pi, txpwr,
  3234. chanspec);
  3235. wlc_phy_chanspec_radio_set(wlc_hw->band->pi, chanspec);
  3236. } else {
  3237. wlc_phy_chanspec_set(wlc_hw->band->pi, chanspec);
  3238. wlc_phy_txpower_limit_set(wlc_hw->band->pi, txpwr, chanspec);
  3239. /* Update muting of the channel */
  3240. brcms_b_mute(wlc_hw, mute_tx);
  3241. }
  3242. }
  3243. /* switch to and initialize new band */
  3244. static void brcms_c_setband(struct brcms_c_info *wlc,
  3245. uint bandunit)
  3246. {
  3247. wlc->band = wlc->bandstate[bandunit];
  3248. if (!wlc->pub->up)
  3249. return;
  3250. /* wait for at least one beacon before entering sleeping state */
  3251. brcms_c_set_ps_ctrl(wlc);
  3252. /* band-specific initializations */
  3253. brcms_c_bsinit(wlc);
  3254. }
  3255. static void brcms_c_set_chanspec(struct brcms_c_info *wlc, u16 chanspec)
  3256. {
  3257. uint bandunit;
  3258. bool switchband = false;
  3259. u16 old_chanspec = wlc->chanspec;
  3260. if (!brcms_c_valid_chanspec_db(wlc->cmi, chanspec)) {
  3261. brcms_err(wlc->hw->d11core, "wl%d: %s: Bad channel %d\n",
  3262. wlc->pub->unit, __func__, CHSPEC_CHANNEL(chanspec));
  3263. return;
  3264. }
  3265. /* Switch bands if necessary */
  3266. if (wlc->pub->_nbands > 1) {
  3267. bandunit = chspec_bandunit(chanspec);
  3268. if (wlc->band->bandunit != bandunit || wlc->bandinit_pending) {
  3269. switchband = true;
  3270. if (wlc->bandlocked) {
  3271. brcms_err(wlc->hw->d11core,
  3272. "wl%d: %s: chspec %d band is locked!\n",
  3273. wlc->pub->unit, __func__,
  3274. CHSPEC_CHANNEL(chanspec));
  3275. return;
  3276. }
  3277. /*
  3278. * should the setband call come after the
  3279. * brcms_b_chanspec() ? if the setband updates
  3280. * (brcms_c_bsinit) use low level calls to inspect and
  3281. * set state, the state inspected may be from the wrong
  3282. * band, or the following brcms_b_set_chanspec() may
  3283. * undo the work.
  3284. */
  3285. brcms_c_setband(wlc, bandunit);
  3286. }
  3287. }
  3288. /* sync up phy/radio chanspec */
  3289. brcms_c_set_phy_chanspec(wlc, chanspec);
  3290. /* init antenna selection */
  3291. if (brcms_chspec_bw(old_chanspec) != brcms_chspec_bw(chanspec)) {
  3292. brcms_c_antsel_init(wlc->asi);
  3293. /* Fix the hardware rateset based on bw.
  3294. * Mainly add MCS32 for 40Mhz, remove MCS 32 for 20Mhz
  3295. */
  3296. brcms_c_rateset_bw_mcs_filter(&wlc->band->hw_rateset,
  3297. wlc->band->mimo_cap_40 ? brcms_chspec_bw(chanspec) : 0);
  3298. }
  3299. /* update some mac configuration since chanspec changed */
  3300. brcms_c_ucode_mac_upd(wlc);
  3301. }
  3302. /*
  3303. * This function changes the phytxctl for beacon based on current
  3304. * beacon ratespec AND txant setting as per this table:
  3305. * ratespec CCK ant = wlc->stf->txant
  3306. * OFDM ant = 3
  3307. */
  3308. void brcms_c_beacon_phytxctl_txant_upd(struct brcms_c_info *wlc,
  3309. u32 bcn_rspec)
  3310. {
  3311. u16 phyctl;
  3312. u16 phytxant = wlc->stf->phytxant;
  3313. u16 mask = PHY_TXC_ANT_MASK;
  3314. /* for non-siso rates or default setting, use the available chains */
  3315. if (BRCMS_PHY_11N_CAP(wlc->band))
  3316. phytxant = brcms_c_stf_phytxchain_sel(wlc, bcn_rspec);
  3317. phyctl = brcms_b_read_shm(wlc->hw, M_BCN_PCTLWD);
  3318. phyctl = (phyctl & ~mask) | phytxant;
  3319. brcms_b_write_shm(wlc->hw, M_BCN_PCTLWD, phyctl);
  3320. }
  3321. /*
  3322. * centralized protection config change function to simplify debugging, no
  3323. * consistency checking this should be called only on changes to avoid overhead
  3324. * in periodic function
  3325. */
  3326. void brcms_c_protection_upd(struct brcms_c_info *wlc, uint idx, int val)
  3327. {
  3328. /*
  3329. * Cannot use brcms_dbg_* here because this function is called
  3330. * before wlc is sufficiently initialized.
  3331. */
  3332. BCMMSG(wlc->wiphy, "idx %d, val %d\n", idx, val);
  3333. switch (idx) {
  3334. case BRCMS_PROT_G_SPEC:
  3335. wlc->protection->_g = (bool) val;
  3336. break;
  3337. case BRCMS_PROT_G_OVR:
  3338. wlc->protection->g_override = (s8) val;
  3339. break;
  3340. case BRCMS_PROT_G_USER:
  3341. wlc->protection->gmode_user = (u8) val;
  3342. break;
  3343. case BRCMS_PROT_OVERLAP:
  3344. wlc->protection->overlap = (s8) val;
  3345. break;
  3346. case BRCMS_PROT_N_USER:
  3347. wlc->protection->nmode_user = (s8) val;
  3348. break;
  3349. case BRCMS_PROT_N_CFG:
  3350. wlc->protection->n_cfg = (s8) val;
  3351. break;
  3352. case BRCMS_PROT_N_CFG_OVR:
  3353. wlc->protection->n_cfg_override = (s8) val;
  3354. break;
  3355. case BRCMS_PROT_N_NONGF:
  3356. wlc->protection->nongf = (bool) val;
  3357. break;
  3358. case BRCMS_PROT_N_NONGF_OVR:
  3359. wlc->protection->nongf_override = (s8) val;
  3360. break;
  3361. case BRCMS_PROT_N_PAM_OVR:
  3362. wlc->protection->n_pam_override = (s8) val;
  3363. break;
  3364. case BRCMS_PROT_N_OBSS:
  3365. wlc->protection->n_obss = (bool) val;
  3366. break;
  3367. default:
  3368. break;
  3369. }
  3370. }
  3371. static void brcms_c_ht_update_sgi_rx(struct brcms_c_info *wlc, int val)
  3372. {
  3373. if (wlc->pub->up) {
  3374. brcms_c_update_beacon(wlc);
  3375. brcms_c_update_probe_resp(wlc, true);
  3376. }
  3377. }
  3378. static void brcms_c_ht_update_ldpc(struct brcms_c_info *wlc, s8 val)
  3379. {
  3380. wlc->stf->ldpc = val;
  3381. if (wlc->pub->up) {
  3382. brcms_c_update_beacon(wlc);
  3383. brcms_c_update_probe_resp(wlc, true);
  3384. wlc_phy_ldpc_override_set(wlc->band->pi, (val ? true : false));
  3385. }
  3386. }
  3387. void brcms_c_wme_setparams(struct brcms_c_info *wlc, u16 aci,
  3388. const struct ieee80211_tx_queue_params *params,
  3389. bool suspend)
  3390. {
  3391. int i;
  3392. struct shm_acparams acp_shm;
  3393. u16 *shm_entry;
  3394. /* Only apply params if the core is out of reset and has clocks */
  3395. if (!wlc->clk) {
  3396. brcms_err(wlc->hw->d11core, "wl%d: %s : no-clock\n",
  3397. wlc->pub->unit, __func__);
  3398. return;
  3399. }
  3400. memset(&acp_shm, 0, sizeof(struct shm_acparams));
  3401. /* fill in shm ac params struct */
  3402. acp_shm.txop = params->txop;
  3403. /* convert from units of 32us to us for ucode */
  3404. wlc->edcf_txop[aci & 0x3] = acp_shm.txop =
  3405. EDCF_TXOP2USEC(acp_shm.txop);
  3406. acp_shm.aifs = (params->aifs & EDCF_AIFSN_MASK);
  3407. if (aci == IEEE80211_AC_VI && acp_shm.txop == 0
  3408. && acp_shm.aifs < EDCF_AIFSN_MAX)
  3409. acp_shm.aifs++;
  3410. if (acp_shm.aifs < EDCF_AIFSN_MIN
  3411. || acp_shm.aifs > EDCF_AIFSN_MAX) {
  3412. brcms_err(wlc->hw->d11core, "wl%d: edcf_setparams: bad "
  3413. "aifs %d\n", wlc->pub->unit, acp_shm.aifs);
  3414. } else {
  3415. acp_shm.cwmin = params->cw_min;
  3416. acp_shm.cwmax = params->cw_max;
  3417. acp_shm.cwcur = acp_shm.cwmin;
  3418. acp_shm.bslots =
  3419. bcma_read16(wlc->hw->d11core, D11REGOFFS(tsf_random)) &
  3420. acp_shm.cwcur;
  3421. acp_shm.reggap = acp_shm.bslots + acp_shm.aifs;
  3422. /* Indicate the new params to the ucode */
  3423. acp_shm.status = brcms_b_read_shm(wlc->hw, (M_EDCF_QINFO +
  3424. wme_ac2fifo[aci] *
  3425. M_EDCF_QLEN +
  3426. M_EDCF_STATUS_OFF));
  3427. acp_shm.status |= WME_STATUS_NEWAC;
  3428. /* Fill in shm acparam table */
  3429. shm_entry = (u16 *) &acp_shm;
  3430. for (i = 0; i < (int)sizeof(struct shm_acparams); i += 2)
  3431. brcms_b_write_shm(wlc->hw,
  3432. M_EDCF_QINFO +
  3433. wme_ac2fifo[aci] * M_EDCF_QLEN + i,
  3434. *shm_entry++);
  3435. }
  3436. if (suspend)
  3437. brcms_c_suspend_mac_and_wait(wlc);
  3438. brcms_c_update_beacon(wlc);
  3439. brcms_c_update_probe_resp(wlc, false);
  3440. if (suspend)
  3441. brcms_c_enable_mac(wlc);
  3442. }
  3443. static void brcms_c_edcf_setparams(struct brcms_c_info *wlc, bool suspend)
  3444. {
  3445. u16 aci;
  3446. int i_ac;
  3447. struct ieee80211_tx_queue_params txq_pars;
  3448. static const struct edcf_acparam default_edcf_acparams[] = {
  3449. {EDCF_AC_BE_ACI_STA, EDCF_AC_BE_ECW_STA, EDCF_AC_BE_TXOP_STA},
  3450. {EDCF_AC_BK_ACI_STA, EDCF_AC_BK_ECW_STA, EDCF_AC_BK_TXOP_STA},
  3451. {EDCF_AC_VI_ACI_STA, EDCF_AC_VI_ECW_STA, EDCF_AC_VI_TXOP_STA},
  3452. {EDCF_AC_VO_ACI_STA, EDCF_AC_VO_ECW_STA, EDCF_AC_VO_TXOP_STA}
  3453. }; /* ucode needs these parameters during its initialization */
  3454. const struct edcf_acparam *edcf_acp = &default_edcf_acparams[0];
  3455. for (i_ac = 0; i_ac < IEEE80211_NUM_ACS; i_ac++, edcf_acp++) {
  3456. /* find out which ac this set of params applies to */
  3457. aci = (edcf_acp->ACI & EDCF_ACI_MASK) >> EDCF_ACI_SHIFT;
  3458. /* fill in shm ac params struct */
  3459. txq_pars.txop = edcf_acp->TXOP;
  3460. txq_pars.aifs = edcf_acp->ACI;
  3461. /* CWmin = 2^(ECWmin) - 1 */
  3462. txq_pars.cw_min = EDCF_ECW2CW(edcf_acp->ECW & EDCF_ECWMIN_MASK);
  3463. /* CWmax = 2^(ECWmax) - 1 */
  3464. txq_pars.cw_max = EDCF_ECW2CW((edcf_acp->ECW & EDCF_ECWMAX_MASK)
  3465. >> EDCF_ECWMAX_SHIFT);
  3466. brcms_c_wme_setparams(wlc, aci, &txq_pars, suspend);
  3467. }
  3468. if (suspend) {
  3469. brcms_c_suspend_mac_and_wait(wlc);
  3470. brcms_c_enable_mac(wlc);
  3471. }
  3472. }
  3473. static void brcms_c_radio_monitor_start(struct brcms_c_info *wlc)
  3474. {
  3475. /* Don't start the timer if HWRADIO feature is disabled */
  3476. if (wlc->radio_monitor)
  3477. return;
  3478. wlc->radio_monitor = true;
  3479. brcms_b_pllreq(wlc->hw, true, BRCMS_PLLREQ_RADIO_MON);
  3480. brcms_add_timer(wlc->radio_timer, TIMER_INTERVAL_RADIOCHK, true);
  3481. }
  3482. static bool brcms_c_radio_monitor_stop(struct brcms_c_info *wlc)
  3483. {
  3484. if (!wlc->radio_monitor)
  3485. return true;
  3486. wlc->radio_monitor = false;
  3487. brcms_b_pllreq(wlc->hw, false, BRCMS_PLLREQ_RADIO_MON);
  3488. return brcms_del_timer(wlc->radio_timer);
  3489. }
  3490. /* read hwdisable state and propagate to wlc flag */
  3491. static void brcms_c_radio_hwdisable_upd(struct brcms_c_info *wlc)
  3492. {
  3493. if (wlc->pub->hw_off)
  3494. return;
  3495. if (brcms_b_radio_read_hwdisabled(wlc->hw))
  3496. mboolset(wlc->pub->radio_disabled, WL_RADIO_HW_DISABLE);
  3497. else
  3498. mboolclr(wlc->pub->radio_disabled, WL_RADIO_HW_DISABLE);
  3499. }
  3500. /* update hwradio status and return it */
  3501. bool brcms_c_check_radio_disabled(struct brcms_c_info *wlc)
  3502. {
  3503. brcms_c_radio_hwdisable_upd(wlc);
  3504. return mboolisset(wlc->pub->radio_disabled, WL_RADIO_HW_DISABLE) ?
  3505. true : false;
  3506. }
  3507. /* periodical query hw radio button while driver is "down" */
  3508. static void brcms_c_radio_timer(void *arg)
  3509. {
  3510. struct brcms_c_info *wlc = (struct brcms_c_info *) arg;
  3511. if (brcms_deviceremoved(wlc)) {
  3512. brcms_err(wlc->hw->d11core, "wl%d: %s: dead chip\n",
  3513. wlc->pub->unit, __func__);
  3514. brcms_down(wlc->wl);
  3515. return;
  3516. }
  3517. brcms_c_radio_hwdisable_upd(wlc);
  3518. }
  3519. /* common low-level watchdog code */
  3520. static void brcms_b_watchdog(struct brcms_c_info *wlc)
  3521. {
  3522. struct brcms_hardware *wlc_hw = wlc->hw;
  3523. if (!wlc_hw->up)
  3524. return;
  3525. /* increment second count */
  3526. wlc_hw->now++;
  3527. /* Check for FIFO error interrupts */
  3528. brcms_b_fifoerrors(wlc_hw);
  3529. /* make sure RX dma has buffers */
  3530. dma_rxfill(wlc->hw->di[RX_FIFO]);
  3531. wlc_phy_watchdog(wlc_hw->band->pi);
  3532. }
  3533. /* common watchdog code */
  3534. static void brcms_c_watchdog(struct brcms_c_info *wlc)
  3535. {
  3536. brcms_dbg_info(wlc->hw->d11core, "wl%d\n", wlc->pub->unit);
  3537. if (!wlc->pub->up)
  3538. return;
  3539. if (brcms_deviceremoved(wlc)) {
  3540. brcms_err(wlc->hw->d11core, "wl%d: %s: dead chip\n",
  3541. wlc->pub->unit, __func__);
  3542. brcms_down(wlc->wl);
  3543. return;
  3544. }
  3545. /* increment second count */
  3546. wlc->pub->now++;
  3547. brcms_c_radio_hwdisable_upd(wlc);
  3548. /* if radio is disable, driver may be down, quit here */
  3549. if (wlc->pub->radio_disabled)
  3550. return;
  3551. brcms_b_watchdog(wlc);
  3552. /*
  3553. * occasionally sample mac stat counters to
  3554. * detect 16-bit counter wrap
  3555. */
  3556. if ((wlc->pub->now % SW_TIMER_MAC_STAT_UPD) == 0)
  3557. brcms_c_statsupd(wlc);
  3558. if (BRCMS_ISNPHY(wlc->band) &&
  3559. ((wlc->pub->now - wlc->tempsense_lasttime) >=
  3560. BRCMS_TEMPSENSE_PERIOD)) {
  3561. wlc->tempsense_lasttime = wlc->pub->now;
  3562. brcms_c_tempsense_upd(wlc);
  3563. }
  3564. }
  3565. static void brcms_c_watchdog_by_timer(void *arg)
  3566. {
  3567. struct brcms_c_info *wlc = (struct brcms_c_info *) arg;
  3568. brcms_c_watchdog(wlc);
  3569. }
  3570. static bool brcms_c_timers_init(struct brcms_c_info *wlc, int unit)
  3571. {
  3572. wlc->wdtimer = brcms_init_timer(wlc->wl, brcms_c_watchdog_by_timer,
  3573. wlc, "watchdog");
  3574. if (!wlc->wdtimer) {
  3575. wiphy_err(wlc->wiphy, "wl%d: wl_init_timer for wdtimer "
  3576. "failed\n", unit);
  3577. goto fail;
  3578. }
  3579. wlc->radio_timer = brcms_init_timer(wlc->wl, brcms_c_radio_timer,
  3580. wlc, "radio");
  3581. if (!wlc->radio_timer) {
  3582. wiphy_err(wlc->wiphy, "wl%d: wl_init_timer for radio_timer "
  3583. "failed\n", unit);
  3584. goto fail;
  3585. }
  3586. return true;
  3587. fail:
  3588. return false;
  3589. }
  3590. /*
  3591. * Initialize brcms_c_info default values ...
  3592. * may get overrides later in this function
  3593. */
  3594. static void brcms_c_info_init(struct brcms_c_info *wlc, int unit)
  3595. {
  3596. int i;
  3597. /* Save our copy of the chanspec */
  3598. wlc->chanspec = ch20mhz_chspec(1);
  3599. /* various 802.11g modes */
  3600. wlc->shortslot = false;
  3601. wlc->shortslot_override = BRCMS_SHORTSLOT_AUTO;
  3602. brcms_c_protection_upd(wlc, BRCMS_PROT_G_OVR, BRCMS_PROTECTION_AUTO);
  3603. brcms_c_protection_upd(wlc, BRCMS_PROT_G_SPEC, false);
  3604. brcms_c_protection_upd(wlc, BRCMS_PROT_N_CFG_OVR,
  3605. BRCMS_PROTECTION_AUTO);
  3606. brcms_c_protection_upd(wlc, BRCMS_PROT_N_CFG, BRCMS_N_PROTECTION_OFF);
  3607. brcms_c_protection_upd(wlc, BRCMS_PROT_N_NONGF_OVR,
  3608. BRCMS_PROTECTION_AUTO);
  3609. brcms_c_protection_upd(wlc, BRCMS_PROT_N_NONGF, false);
  3610. brcms_c_protection_upd(wlc, BRCMS_PROT_N_PAM_OVR, AUTO);
  3611. brcms_c_protection_upd(wlc, BRCMS_PROT_OVERLAP,
  3612. BRCMS_PROTECTION_CTL_OVERLAP);
  3613. /* 802.11g draft 4.0 NonERP elt advertisement */
  3614. wlc->include_legacy_erp = true;
  3615. wlc->stf->ant_rx_ovr = ANT_RX_DIV_DEF;
  3616. wlc->stf->txant = ANT_TX_DEF;
  3617. wlc->prb_resp_timeout = BRCMS_PRB_RESP_TIMEOUT;
  3618. wlc->usr_fragthresh = DOT11_DEFAULT_FRAG_LEN;
  3619. for (i = 0; i < NFIFO; i++)
  3620. wlc->fragthresh[i] = DOT11_DEFAULT_FRAG_LEN;
  3621. wlc->RTSThresh = DOT11_DEFAULT_RTS_LEN;
  3622. /* default rate fallback retry limits */
  3623. wlc->SFBL = RETRY_SHORT_FB;
  3624. wlc->LFBL = RETRY_LONG_FB;
  3625. /* default mac retry limits */
  3626. wlc->SRL = RETRY_SHORT_DEF;
  3627. wlc->LRL = RETRY_LONG_DEF;
  3628. /* WME QoS mode is Auto by default */
  3629. wlc->pub->_ampdu = AMPDU_AGG_HOST;
  3630. }
  3631. static uint brcms_c_attach_module(struct brcms_c_info *wlc)
  3632. {
  3633. uint err = 0;
  3634. uint unit;
  3635. unit = wlc->pub->unit;
  3636. wlc->asi = brcms_c_antsel_attach(wlc);
  3637. if (wlc->asi == NULL) {
  3638. wiphy_err(wlc->wiphy, "wl%d: attach: antsel_attach "
  3639. "failed\n", unit);
  3640. err = 44;
  3641. goto fail;
  3642. }
  3643. wlc->ampdu = brcms_c_ampdu_attach(wlc);
  3644. if (wlc->ampdu == NULL) {
  3645. wiphy_err(wlc->wiphy, "wl%d: attach: ampdu_attach "
  3646. "failed\n", unit);
  3647. err = 50;
  3648. goto fail;
  3649. }
  3650. if ((brcms_c_stf_attach(wlc) != 0)) {
  3651. wiphy_err(wlc->wiphy, "wl%d: attach: stf_attach "
  3652. "failed\n", unit);
  3653. err = 68;
  3654. goto fail;
  3655. }
  3656. fail:
  3657. return err;
  3658. }
  3659. struct brcms_pub *brcms_c_pub(struct brcms_c_info *wlc)
  3660. {
  3661. return wlc->pub;
  3662. }
  3663. /* low level attach
  3664. * run backplane attach, init nvram
  3665. * run phy attach
  3666. * initialize software state for each core and band
  3667. * put the whole chip in reset(driver down state), no clock
  3668. */
  3669. static int brcms_b_attach(struct brcms_c_info *wlc, struct bcma_device *core,
  3670. uint unit, bool piomode)
  3671. {
  3672. struct brcms_hardware *wlc_hw;
  3673. uint err = 0;
  3674. uint j;
  3675. bool wme = false;
  3676. struct shared_phy_params sha_params;
  3677. struct wiphy *wiphy = wlc->wiphy;
  3678. struct pci_dev *pcidev = core->bus->host_pci;
  3679. struct ssb_sprom *sprom = &core->bus->sprom;
  3680. if (core->bus->hosttype == BCMA_HOSTTYPE_PCI)
  3681. brcms_dbg_info(core, "wl%d: vendor 0x%x device 0x%x\n", unit,
  3682. pcidev->vendor,
  3683. pcidev->device);
  3684. else
  3685. brcms_dbg_info(core, "wl%d: vendor 0x%x device 0x%x\n", unit,
  3686. core->bus->boardinfo.vendor,
  3687. core->bus->boardinfo.type);
  3688. wme = true;
  3689. wlc_hw = wlc->hw;
  3690. wlc_hw->wlc = wlc;
  3691. wlc_hw->unit = unit;
  3692. wlc_hw->band = wlc_hw->bandstate[0];
  3693. wlc_hw->_piomode = piomode;
  3694. /* populate struct brcms_hardware with default values */
  3695. brcms_b_info_init(wlc_hw);
  3696. /*
  3697. * Do the hardware portion of the attach. Also initialize software
  3698. * state that depends on the particular hardware we are running.
  3699. */
  3700. wlc_hw->sih = ai_attach(core->bus);
  3701. if (wlc_hw->sih == NULL) {
  3702. wiphy_err(wiphy, "wl%d: brcms_b_attach: si_attach failed\n",
  3703. unit);
  3704. err = 11;
  3705. goto fail;
  3706. }
  3707. /* verify again the device is supported */
  3708. if (!brcms_c_chipmatch(core)) {
  3709. wiphy_err(wiphy, "wl%d: brcms_b_attach: Unsupported device\n",
  3710. unit);
  3711. err = 12;
  3712. goto fail;
  3713. }
  3714. if (core->bus->hosttype == BCMA_HOSTTYPE_PCI) {
  3715. wlc_hw->vendorid = pcidev->vendor;
  3716. wlc_hw->deviceid = pcidev->device;
  3717. } else {
  3718. wlc_hw->vendorid = core->bus->boardinfo.vendor;
  3719. wlc_hw->deviceid = core->bus->boardinfo.type;
  3720. }
  3721. wlc_hw->d11core = core;
  3722. wlc_hw->corerev = core->id.rev;
  3723. /* validate chip, chiprev and corerev */
  3724. if (!brcms_c_isgoodchip(wlc_hw)) {
  3725. err = 13;
  3726. goto fail;
  3727. }
  3728. /* initialize power control registers */
  3729. ai_clkctl_init(wlc_hw->sih);
  3730. /* request fastclock and force fastclock for the rest of attach
  3731. * bring the d11 core out of reset.
  3732. * For PMU chips, the first wlc_clkctl_clk is no-op since core-clk
  3733. * is still false; But it will be called again inside wlc_corereset,
  3734. * after d11 is out of reset.
  3735. */
  3736. brcms_b_clkctl_clk(wlc_hw, BCMA_CLKMODE_FAST);
  3737. brcms_b_corereset(wlc_hw, BRCMS_USE_COREFLAGS);
  3738. if (!brcms_b_validate_chip_access(wlc_hw)) {
  3739. wiphy_err(wiphy, "wl%d: brcms_b_attach: validate_chip_access "
  3740. "failed\n", unit);
  3741. err = 14;
  3742. goto fail;
  3743. }
  3744. /* get the board rev, used just below */
  3745. j = sprom->board_rev;
  3746. /* promote srom boardrev of 0xFF to 1 */
  3747. if (j == BOARDREV_PROMOTABLE)
  3748. j = BOARDREV_PROMOTED;
  3749. wlc_hw->boardrev = (u16) j;
  3750. if (!brcms_c_validboardtype(wlc_hw)) {
  3751. wiphy_err(wiphy, "wl%d: brcms_b_attach: Unsupported Broadcom "
  3752. "board type (0x%x)" " or revision level (0x%x)\n",
  3753. unit, ai_get_boardtype(wlc_hw->sih),
  3754. wlc_hw->boardrev);
  3755. err = 15;
  3756. goto fail;
  3757. }
  3758. wlc_hw->sromrev = sprom->revision;
  3759. wlc_hw->boardflags = sprom->boardflags_lo + (sprom->boardflags_hi << 16);
  3760. wlc_hw->boardflags2 = sprom->boardflags2_lo + (sprom->boardflags2_hi << 16);
  3761. if (wlc_hw->boardflags & BFL_NOPLLDOWN)
  3762. brcms_b_pllreq(wlc_hw, true, BRCMS_PLLREQ_SHARED);
  3763. /* check device id(srom, nvram etc.) to set bands */
  3764. if (wlc_hw->deviceid == BCM43224_D11N_ID ||
  3765. wlc_hw->deviceid == BCM43224_D11N_ID_VEN1 ||
  3766. wlc_hw->deviceid == BCM43224_CHIP_ID)
  3767. /* Dualband boards */
  3768. wlc_hw->_nbands = 2;
  3769. else
  3770. wlc_hw->_nbands = 1;
  3771. if ((ai_get_chip_id(wlc_hw->sih) == BCMA_CHIP_ID_BCM43225))
  3772. wlc_hw->_nbands = 1;
  3773. /* BMAC_NOTE: remove init of pub values when brcms_c_attach()
  3774. * unconditionally does the init of these values
  3775. */
  3776. wlc->vendorid = wlc_hw->vendorid;
  3777. wlc->deviceid = wlc_hw->deviceid;
  3778. wlc->pub->sih = wlc_hw->sih;
  3779. wlc->pub->corerev = wlc_hw->corerev;
  3780. wlc->pub->sromrev = wlc_hw->sromrev;
  3781. wlc->pub->boardrev = wlc_hw->boardrev;
  3782. wlc->pub->boardflags = wlc_hw->boardflags;
  3783. wlc->pub->boardflags2 = wlc_hw->boardflags2;
  3784. wlc->pub->_nbands = wlc_hw->_nbands;
  3785. wlc_hw->physhim = wlc_phy_shim_attach(wlc_hw, wlc->wl, wlc);
  3786. if (wlc_hw->physhim == NULL) {
  3787. wiphy_err(wiphy, "wl%d: brcms_b_attach: wlc_phy_shim_attach "
  3788. "failed\n", unit);
  3789. err = 25;
  3790. goto fail;
  3791. }
  3792. /* pass all the parameters to wlc_phy_shared_attach in one struct */
  3793. sha_params.sih = wlc_hw->sih;
  3794. sha_params.physhim = wlc_hw->physhim;
  3795. sha_params.unit = unit;
  3796. sha_params.corerev = wlc_hw->corerev;
  3797. sha_params.vid = wlc_hw->vendorid;
  3798. sha_params.did = wlc_hw->deviceid;
  3799. sha_params.chip = ai_get_chip_id(wlc_hw->sih);
  3800. sha_params.chiprev = ai_get_chiprev(wlc_hw->sih);
  3801. sha_params.chippkg = ai_get_chippkg(wlc_hw->sih);
  3802. sha_params.sromrev = wlc_hw->sromrev;
  3803. sha_params.boardtype = ai_get_boardtype(wlc_hw->sih);
  3804. sha_params.boardrev = wlc_hw->boardrev;
  3805. sha_params.boardflags = wlc_hw->boardflags;
  3806. sha_params.boardflags2 = wlc_hw->boardflags2;
  3807. /* alloc and save pointer to shared phy state area */
  3808. wlc_hw->phy_sh = wlc_phy_shared_attach(&sha_params);
  3809. if (!wlc_hw->phy_sh) {
  3810. err = 16;
  3811. goto fail;
  3812. }
  3813. /* initialize software state for each core and band */
  3814. for (j = 0; j < wlc_hw->_nbands; j++) {
  3815. /*
  3816. * band0 is always 2.4Ghz
  3817. * band1, if present, is 5Ghz
  3818. */
  3819. brcms_c_setxband(wlc_hw, j);
  3820. wlc_hw->band->bandunit = j;
  3821. wlc_hw->band->bandtype = j ? BRCM_BAND_5G : BRCM_BAND_2G;
  3822. wlc->band->bandunit = j;
  3823. wlc->band->bandtype = j ? BRCM_BAND_5G : BRCM_BAND_2G;
  3824. wlc->core->coreidx = core->core_index;
  3825. wlc_hw->machwcap = bcma_read32(core, D11REGOFFS(machwcap));
  3826. wlc_hw->machwcap_backup = wlc_hw->machwcap;
  3827. /* init tx fifo size */
  3828. WARN_ON((wlc_hw->corerev - XMTFIFOTBL_STARTREV) < 0 ||
  3829. (wlc_hw->corerev - XMTFIFOTBL_STARTREV) >
  3830. ARRAY_SIZE(xmtfifo_sz));
  3831. wlc_hw->xmtfifo_sz =
  3832. xmtfifo_sz[(wlc_hw->corerev - XMTFIFOTBL_STARTREV)];
  3833. WARN_ON(!wlc_hw->xmtfifo_sz[0]);
  3834. /* Get a phy for this band */
  3835. wlc_hw->band->pi =
  3836. wlc_phy_attach(wlc_hw->phy_sh, core,
  3837. wlc_hw->band->bandtype,
  3838. wlc->wiphy);
  3839. if (wlc_hw->band->pi == NULL) {
  3840. wiphy_err(wiphy, "wl%d: brcms_b_attach: wlc_phy_"
  3841. "attach failed\n", unit);
  3842. err = 17;
  3843. goto fail;
  3844. }
  3845. wlc_phy_machwcap_set(wlc_hw->band->pi, wlc_hw->machwcap);
  3846. wlc_phy_get_phyversion(wlc_hw->band->pi, &wlc_hw->band->phytype,
  3847. &wlc_hw->band->phyrev,
  3848. &wlc_hw->band->radioid,
  3849. &wlc_hw->band->radiorev);
  3850. wlc_hw->band->abgphy_encore =
  3851. wlc_phy_get_encore(wlc_hw->band->pi);
  3852. wlc->band->abgphy_encore = wlc_phy_get_encore(wlc_hw->band->pi);
  3853. wlc_hw->band->core_flags =
  3854. wlc_phy_get_coreflags(wlc_hw->band->pi);
  3855. /* verify good phy_type & supported phy revision */
  3856. if (BRCMS_ISNPHY(wlc_hw->band)) {
  3857. if (NCONF_HAS(wlc_hw->band->phyrev))
  3858. goto good_phy;
  3859. else
  3860. goto bad_phy;
  3861. } else if (BRCMS_ISLCNPHY(wlc_hw->band)) {
  3862. if (LCNCONF_HAS(wlc_hw->band->phyrev))
  3863. goto good_phy;
  3864. else
  3865. goto bad_phy;
  3866. } else {
  3867. bad_phy:
  3868. wiphy_err(wiphy, "wl%d: brcms_b_attach: unsupported "
  3869. "phy type/rev (%d/%d)\n", unit,
  3870. wlc_hw->band->phytype, wlc_hw->band->phyrev);
  3871. err = 18;
  3872. goto fail;
  3873. }
  3874. good_phy:
  3875. /*
  3876. * BMAC_NOTE: wlc->band->pi should not be set below and should
  3877. * be done in the high level attach. However we can not make
  3878. * that change until all low level access is changed to
  3879. * wlc_hw->band->pi. Instead do the wlc->band->pi init below,
  3880. * keeping wlc_hw->band->pi as well for incremental update of
  3881. * low level fns, and cut over low only init when all fns
  3882. * updated.
  3883. */
  3884. wlc->band->pi = wlc_hw->band->pi;
  3885. wlc->band->phytype = wlc_hw->band->phytype;
  3886. wlc->band->phyrev = wlc_hw->band->phyrev;
  3887. wlc->band->radioid = wlc_hw->band->radioid;
  3888. wlc->band->radiorev = wlc_hw->band->radiorev;
  3889. /* default contention windows size limits */
  3890. wlc_hw->band->CWmin = APHY_CWMIN;
  3891. wlc_hw->band->CWmax = PHY_CWMAX;
  3892. if (!brcms_b_attach_dmapio(wlc, j, wme)) {
  3893. err = 19;
  3894. goto fail;
  3895. }
  3896. }
  3897. /* disable core to match driver "down" state */
  3898. brcms_c_coredisable(wlc_hw);
  3899. /* Match driver "down" state */
  3900. ai_pci_down(wlc_hw->sih);
  3901. /* turn off pll and xtal to match driver "down" state */
  3902. brcms_b_xtal(wlc_hw, OFF);
  3903. /* *******************************************************************
  3904. * The hardware is in the DOWN state at this point. D11 core
  3905. * or cores are in reset with clocks off, and the board PLLs
  3906. * are off if possible.
  3907. *
  3908. * Beyond this point, wlc->sbclk == false and chip registers
  3909. * should not be touched.
  3910. *********************************************************************
  3911. */
  3912. /* init etheraddr state variables */
  3913. brcms_c_get_macaddr(wlc_hw, wlc_hw->etheraddr);
  3914. if (is_broadcast_ether_addr(wlc_hw->etheraddr) ||
  3915. is_zero_ether_addr(wlc_hw->etheraddr)) {
  3916. wiphy_err(wiphy, "wl%d: brcms_b_attach: bad macaddr\n",
  3917. unit);
  3918. err = 22;
  3919. goto fail;
  3920. }
  3921. brcms_dbg_info(wlc_hw->d11core, "deviceid 0x%x nbands %d board 0x%x\n",
  3922. wlc_hw->deviceid, wlc_hw->_nbands,
  3923. ai_get_boardtype(wlc_hw->sih));
  3924. return err;
  3925. fail:
  3926. wiphy_err(wiphy, "wl%d: brcms_b_attach: failed with err %d\n", unit,
  3927. err);
  3928. return err;
  3929. }
  3930. static void brcms_c_attach_antgain_init(struct brcms_c_info *wlc)
  3931. {
  3932. uint unit;
  3933. unit = wlc->pub->unit;
  3934. if ((wlc->band->antgain == -1) && (wlc->pub->sromrev == 1)) {
  3935. /* default antenna gain for srom rev 1 is 2 dBm (8 qdbm) */
  3936. wlc->band->antgain = 8;
  3937. } else if (wlc->band->antgain == -1) {
  3938. wiphy_err(wlc->wiphy, "wl%d: %s: Invalid antennas available in"
  3939. " srom, using 2dB\n", unit, __func__);
  3940. wlc->band->antgain = 8;
  3941. } else {
  3942. s8 gain, fract;
  3943. /* Older sroms specified gain in whole dbm only. In order
  3944. * be able to specify qdbm granularity and remain backward
  3945. * compatible the whole dbms are now encoded in only
  3946. * low 6 bits and remaining qdbms are encoded in the hi 2 bits.
  3947. * 6 bit signed number ranges from -32 - 31.
  3948. *
  3949. * Examples:
  3950. * 0x1 = 1 db,
  3951. * 0xc1 = 1.75 db (1 + 3 quarters),
  3952. * 0x3f = -1 (-1 + 0 quarters),
  3953. * 0x7f = -.75 (-1 + 1 quarters) = -3 qdbm.
  3954. * 0xbf = -.50 (-1 + 2 quarters) = -2 qdbm.
  3955. */
  3956. gain = wlc->band->antgain & 0x3f;
  3957. gain <<= 2; /* Sign extend */
  3958. gain >>= 2;
  3959. fract = (wlc->band->antgain & 0xc0) >> 6;
  3960. wlc->band->antgain = 4 * gain + fract;
  3961. }
  3962. }
  3963. static bool brcms_c_attach_stf_ant_init(struct brcms_c_info *wlc)
  3964. {
  3965. int aa;
  3966. uint unit;
  3967. int bandtype;
  3968. struct ssb_sprom *sprom = &wlc->hw->d11core->bus->sprom;
  3969. unit = wlc->pub->unit;
  3970. bandtype = wlc->band->bandtype;
  3971. /* get antennas available */
  3972. if (bandtype == BRCM_BAND_5G)
  3973. aa = sprom->ant_available_a;
  3974. else
  3975. aa = sprom->ant_available_bg;
  3976. if ((aa < 1) || (aa > 15)) {
  3977. wiphy_err(wlc->wiphy, "wl%d: %s: Invalid antennas available in"
  3978. " srom (0x%x), using 3\n", unit, __func__, aa);
  3979. aa = 3;
  3980. }
  3981. /* reset the defaults if we have a single antenna */
  3982. if (aa == 1) {
  3983. wlc->stf->ant_rx_ovr = ANT_RX_DIV_FORCE_0;
  3984. wlc->stf->txant = ANT_TX_FORCE_0;
  3985. } else if (aa == 2) {
  3986. wlc->stf->ant_rx_ovr = ANT_RX_DIV_FORCE_1;
  3987. wlc->stf->txant = ANT_TX_FORCE_1;
  3988. } else {
  3989. }
  3990. /* Compute Antenna Gain */
  3991. if (bandtype == BRCM_BAND_5G)
  3992. wlc->band->antgain = sprom->antenna_gain.a1;
  3993. else
  3994. wlc->band->antgain = sprom->antenna_gain.a0;
  3995. brcms_c_attach_antgain_init(wlc);
  3996. return true;
  3997. }
  3998. static void brcms_c_bss_default_init(struct brcms_c_info *wlc)
  3999. {
  4000. u16 chanspec;
  4001. struct brcms_band *band;
  4002. struct brcms_bss_info *bi = wlc->default_bss;
  4003. /* init default and target BSS with some sane initial values */
  4004. memset(bi, 0, sizeof(*bi));
  4005. bi->beacon_period = BEACON_INTERVAL_DEFAULT;
  4006. /* fill the default channel as the first valid channel
  4007. * starting from the 2G channels
  4008. */
  4009. chanspec = ch20mhz_chspec(1);
  4010. wlc->home_chanspec = bi->chanspec = chanspec;
  4011. /* find the band of our default channel */
  4012. band = wlc->band;
  4013. if (wlc->pub->_nbands > 1 &&
  4014. band->bandunit != chspec_bandunit(chanspec))
  4015. band = wlc->bandstate[OTHERBANDUNIT(wlc)];
  4016. /* init bss rates to the band specific default rate set */
  4017. brcms_c_rateset_default(&bi->rateset, NULL, band->phytype,
  4018. band->bandtype, false, BRCMS_RATE_MASK_FULL,
  4019. (bool) (wlc->pub->_n_enab & SUPPORT_11N),
  4020. brcms_chspec_bw(chanspec), wlc->stf->txstreams);
  4021. if (wlc->pub->_n_enab & SUPPORT_11N)
  4022. bi->flags |= BRCMS_BSS_HT;
  4023. }
  4024. static void brcms_c_update_mimo_band_bwcap(struct brcms_c_info *wlc, u8 bwcap)
  4025. {
  4026. uint i;
  4027. struct brcms_band *band;
  4028. for (i = 0; i < wlc->pub->_nbands; i++) {
  4029. band = wlc->bandstate[i];
  4030. if (band->bandtype == BRCM_BAND_5G) {
  4031. if ((bwcap == BRCMS_N_BW_40ALL)
  4032. || (bwcap == BRCMS_N_BW_20IN2G_40IN5G))
  4033. band->mimo_cap_40 = true;
  4034. else
  4035. band->mimo_cap_40 = false;
  4036. } else {
  4037. if (bwcap == BRCMS_N_BW_40ALL)
  4038. band->mimo_cap_40 = true;
  4039. else
  4040. band->mimo_cap_40 = false;
  4041. }
  4042. }
  4043. }
  4044. static void brcms_c_timers_deinit(struct brcms_c_info *wlc)
  4045. {
  4046. /* free timer state */
  4047. if (wlc->wdtimer) {
  4048. brcms_free_timer(wlc->wdtimer);
  4049. wlc->wdtimer = NULL;
  4050. }
  4051. if (wlc->radio_timer) {
  4052. brcms_free_timer(wlc->radio_timer);
  4053. wlc->radio_timer = NULL;
  4054. }
  4055. }
  4056. static void brcms_c_detach_module(struct brcms_c_info *wlc)
  4057. {
  4058. if (wlc->asi) {
  4059. brcms_c_antsel_detach(wlc->asi);
  4060. wlc->asi = NULL;
  4061. }
  4062. if (wlc->ampdu) {
  4063. brcms_c_ampdu_detach(wlc->ampdu);
  4064. wlc->ampdu = NULL;
  4065. }
  4066. brcms_c_stf_detach(wlc);
  4067. }
  4068. /*
  4069. * low level detach
  4070. */
  4071. static int brcms_b_detach(struct brcms_c_info *wlc)
  4072. {
  4073. uint i;
  4074. struct brcms_hw_band *band;
  4075. struct brcms_hardware *wlc_hw = wlc->hw;
  4076. int callbacks;
  4077. callbacks = 0;
  4078. brcms_b_detach_dmapio(wlc_hw);
  4079. band = wlc_hw->band;
  4080. for (i = 0; i < wlc_hw->_nbands; i++) {
  4081. if (band->pi) {
  4082. /* Detach this band's phy */
  4083. wlc_phy_detach(band->pi);
  4084. band->pi = NULL;
  4085. }
  4086. band = wlc_hw->bandstate[OTHERBANDUNIT(wlc)];
  4087. }
  4088. /* Free shared phy state */
  4089. kfree(wlc_hw->phy_sh);
  4090. wlc_phy_shim_detach(wlc_hw->physhim);
  4091. if (wlc_hw->sih) {
  4092. ai_detach(wlc_hw->sih);
  4093. wlc_hw->sih = NULL;
  4094. }
  4095. return callbacks;
  4096. }
  4097. /*
  4098. * Return a count of the number of driver callbacks still pending.
  4099. *
  4100. * General policy is that brcms_c_detach can only dealloc/free software states.
  4101. * It can NOT touch hardware registers since the d11core may be in reset and
  4102. * clock may not be available.
  4103. * One exception is sb register access, which is possible if crystal is turned
  4104. * on after "down" state, driver should avoid software timer with the exception
  4105. * of radio_monitor.
  4106. */
  4107. uint brcms_c_detach(struct brcms_c_info *wlc)
  4108. {
  4109. uint callbacks = 0;
  4110. if (wlc == NULL)
  4111. return 0;
  4112. callbacks += brcms_b_detach(wlc);
  4113. /* delete software timers */
  4114. if (!brcms_c_radio_monitor_stop(wlc))
  4115. callbacks++;
  4116. brcms_c_channel_mgr_detach(wlc->cmi);
  4117. brcms_c_timers_deinit(wlc);
  4118. brcms_c_detach_module(wlc);
  4119. brcms_c_detach_mfree(wlc);
  4120. return callbacks;
  4121. }
  4122. /* update state that depends on the current value of "ap" */
  4123. static void brcms_c_ap_upd(struct brcms_c_info *wlc)
  4124. {
  4125. /* STA-BSS; short capable */
  4126. wlc->PLCPHdr_override = BRCMS_PLCP_SHORT;
  4127. }
  4128. /* Initialize just the hardware when coming out of POR or S3/S5 system states */
  4129. static void brcms_b_hw_up(struct brcms_hardware *wlc_hw)
  4130. {
  4131. if (wlc_hw->wlc->pub->hw_up)
  4132. return;
  4133. brcms_dbg_info(wlc_hw->d11core, "wl%d\n", wlc_hw->unit);
  4134. /*
  4135. * Enable pll and xtal, initialize the power control registers,
  4136. * and force fastclock for the remainder of brcms_c_up().
  4137. */
  4138. brcms_b_xtal(wlc_hw, ON);
  4139. ai_clkctl_init(wlc_hw->sih);
  4140. brcms_b_clkctl_clk(wlc_hw, BCMA_CLKMODE_FAST);
  4141. /*
  4142. * TODO: test suspend/resume
  4143. *
  4144. * AI chip doesn't restore bar0win2 on
  4145. * hibernation/resume, need sw fixup
  4146. */
  4147. /*
  4148. * Inform phy that a POR reset has occurred so
  4149. * it does a complete phy init
  4150. */
  4151. wlc_phy_por_inform(wlc_hw->band->pi);
  4152. wlc_hw->ucode_loaded = false;
  4153. wlc_hw->wlc->pub->hw_up = true;
  4154. if ((wlc_hw->boardflags & BFL_FEM)
  4155. && (ai_get_chip_id(wlc_hw->sih) == BCMA_CHIP_ID_BCM4313)) {
  4156. if (!
  4157. (wlc_hw->boardrev >= 0x1250
  4158. && (wlc_hw->boardflags & BFL_FEM_BT)))
  4159. ai_epa_4313war(wlc_hw->sih);
  4160. }
  4161. }
  4162. static int brcms_b_up_prep(struct brcms_hardware *wlc_hw)
  4163. {
  4164. brcms_dbg_info(wlc_hw->d11core, "wl%d\n", wlc_hw->unit);
  4165. /*
  4166. * Enable pll and xtal, initialize the power control registers,
  4167. * and force fastclock for the remainder of brcms_c_up().
  4168. */
  4169. brcms_b_xtal(wlc_hw, ON);
  4170. ai_clkctl_init(wlc_hw->sih);
  4171. brcms_b_clkctl_clk(wlc_hw, BCMA_CLKMODE_FAST);
  4172. /*
  4173. * Configure pci/pcmcia here instead of in brcms_c_attach()
  4174. * to allow mfg hotswap: down, hotswap (chip power cycle), up.
  4175. */
  4176. bcma_core_pci_irq_ctl(&wlc_hw->d11core->bus->drv_pci[0], wlc_hw->d11core,
  4177. true);
  4178. /*
  4179. * Need to read the hwradio status here to cover the case where the
  4180. * system is loaded with the hw radio disabled. We do not want to
  4181. * bring the driver up in this case.
  4182. */
  4183. if (brcms_b_radio_read_hwdisabled(wlc_hw)) {
  4184. /* put SB PCI in down state again */
  4185. ai_pci_down(wlc_hw->sih);
  4186. brcms_b_xtal(wlc_hw, OFF);
  4187. return -ENOMEDIUM;
  4188. }
  4189. ai_pci_up(wlc_hw->sih);
  4190. /* reset the d11 core */
  4191. brcms_b_corereset(wlc_hw, BRCMS_USE_COREFLAGS);
  4192. return 0;
  4193. }
  4194. static int brcms_b_up_finish(struct brcms_hardware *wlc_hw)
  4195. {
  4196. wlc_hw->up = true;
  4197. wlc_phy_hw_state_upd(wlc_hw->band->pi, true);
  4198. /* FULLY enable dynamic power control and d11 core interrupt */
  4199. brcms_b_clkctl_clk(wlc_hw, BCMA_CLKMODE_DYNAMIC);
  4200. brcms_intrson(wlc_hw->wlc->wl);
  4201. return 0;
  4202. }
  4203. /*
  4204. * Write WME tunable parameters for retransmit/max rate
  4205. * from wlc struct to ucode
  4206. */
  4207. static void brcms_c_wme_retries_write(struct brcms_c_info *wlc)
  4208. {
  4209. int ac;
  4210. /* Need clock to do this */
  4211. if (!wlc->clk)
  4212. return;
  4213. for (ac = 0; ac < IEEE80211_NUM_ACS; ac++)
  4214. brcms_b_write_shm(wlc->hw, M_AC_TXLMT_ADDR(ac),
  4215. wlc->wme_retries[ac]);
  4216. }
  4217. /* make interface operational */
  4218. int brcms_c_up(struct brcms_c_info *wlc)
  4219. {
  4220. struct ieee80211_channel *ch;
  4221. brcms_dbg_info(wlc->hw->d11core, "wl%d\n", wlc->pub->unit);
  4222. /* HW is turned off so don't try to access it */
  4223. if (wlc->pub->hw_off || brcms_deviceremoved(wlc))
  4224. return -ENOMEDIUM;
  4225. if (!wlc->pub->hw_up) {
  4226. brcms_b_hw_up(wlc->hw);
  4227. wlc->pub->hw_up = true;
  4228. }
  4229. if ((wlc->pub->boardflags & BFL_FEM)
  4230. && (ai_get_chip_id(wlc->hw->sih) == BCMA_CHIP_ID_BCM4313)) {
  4231. if (wlc->pub->boardrev >= 0x1250
  4232. && (wlc->pub->boardflags & BFL_FEM_BT))
  4233. brcms_b_mhf(wlc->hw, MHF5, MHF5_4313_GPIOCTRL,
  4234. MHF5_4313_GPIOCTRL, BRCM_BAND_ALL);
  4235. else
  4236. brcms_b_mhf(wlc->hw, MHF4, MHF4_EXTPA_ENABLE,
  4237. MHF4_EXTPA_ENABLE, BRCM_BAND_ALL);
  4238. }
  4239. /*
  4240. * Need to read the hwradio status here to cover the case where the
  4241. * system is loaded with the hw radio disabled. We do not want to bring
  4242. * the driver up in this case. If radio is disabled, abort up, lower
  4243. * power, start radio timer and return 0(for NDIS) don't call
  4244. * radio_update to avoid looping brcms_c_up.
  4245. *
  4246. * brcms_b_up_prep() returns either 0 or -BCME_RADIOOFF only
  4247. */
  4248. if (!wlc->pub->radio_disabled) {
  4249. int status = brcms_b_up_prep(wlc->hw);
  4250. if (status == -ENOMEDIUM) {
  4251. if (!mboolisset
  4252. (wlc->pub->radio_disabled, WL_RADIO_HW_DISABLE)) {
  4253. struct brcms_bss_cfg *bsscfg = wlc->bsscfg;
  4254. mboolset(wlc->pub->radio_disabled,
  4255. WL_RADIO_HW_DISABLE);
  4256. if (bsscfg->type == BRCMS_TYPE_STATION ||
  4257. bsscfg->type == BRCMS_TYPE_ADHOC)
  4258. brcms_err(wlc->hw->d11core,
  4259. "wl%d: up: rfdisable -> "
  4260. "bsscfg_disable()\n",
  4261. wlc->pub->unit);
  4262. }
  4263. }
  4264. }
  4265. if (wlc->pub->radio_disabled) {
  4266. brcms_c_radio_monitor_start(wlc);
  4267. return 0;
  4268. }
  4269. /* brcms_b_up_prep has done brcms_c_corereset(). so clk is on, set it */
  4270. wlc->clk = true;
  4271. brcms_c_radio_monitor_stop(wlc);
  4272. /* Set EDCF hostflags */
  4273. brcms_b_mhf(wlc->hw, MHF1, MHF1_EDCF, MHF1_EDCF, BRCM_BAND_ALL);
  4274. brcms_init(wlc->wl);
  4275. wlc->pub->up = true;
  4276. if (wlc->bandinit_pending) {
  4277. ch = wlc->pub->ieee_hw->conf.chandef.chan;
  4278. brcms_c_suspend_mac_and_wait(wlc);
  4279. brcms_c_set_chanspec(wlc, ch20mhz_chspec(ch->hw_value));
  4280. wlc->bandinit_pending = false;
  4281. brcms_c_enable_mac(wlc);
  4282. }
  4283. brcms_b_up_finish(wlc->hw);
  4284. /* Program the TX wme params with the current settings */
  4285. brcms_c_wme_retries_write(wlc);
  4286. /* start one second watchdog timer */
  4287. brcms_add_timer(wlc->wdtimer, TIMER_INTERVAL_WATCHDOG, true);
  4288. wlc->WDarmed = true;
  4289. /* ensure antenna config is up to date */
  4290. brcms_c_stf_phy_txant_upd(wlc);
  4291. /* ensure LDPC config is in sync */
  4292. brcms_c_ht_update_ldpc(wlc, wlc->stf->ldpc);
  4293. return 0;
  4294. }
  4295. static uint brcms_c_down_del_timer(struct brcms_c_info *wlc)
  4296. {
  4297. uint callbacks = 0;
  4298. return callbacks;
  4299. }
  4300. static int brcms_b_bmac_down_prep(struct brcms_hardware *wlc_hw)
  4301. {
  4302. bool dev_gone;
  4303. uint callbacks = 0;
  4304. if (!wlc_hw->up)
  4305. return callbacks;
  4306. dev_gone = brcms_deviceremoved(wlc_hw->wlc);
  4307. /* disable interrupts */
  4308. if (dev_gone)
  4309. wlc_hw->wlc->macintmask = 0;
  4310. else {
  4311. /* now disable interrupts */
  4312. brcms_intrsoff(wlc_hw->wlc->wl);
  4313. /* ensure we're running on the pll clock again */
  4314. brcms_b_clkctl_clk(wlc_hw, BCMA_CLKMODE_FAST);
  4315. }
  4316. /* down phy at the last of this stage */
  4317. callbacks += wlc_phy_down(wlc_hw->band->pi);
  4318. return callbacks;
  4319. }
  4320. static int brcms_b_down_finish(struct brcms_hardware *wlc_hw)
  4321. {
  4322. uint callbacks = 0;
  4323. bool dev_gone;
  4324. if (!wlc_hw->up)
  4325. return callbacks;
  4326. wlc_hw->up = false;
  4327. wlc_phy_hw_state_upd(wlc_hw->band->pi, false);
  4328. dev_gone = brcms_deviceremoved(wlc_hw->wlc);
  4329. if (dev_gone) {
  4330. wlc_hw->sbclk = false;
  4331. wlc_hw->clk = false;
  4332. wlc_phy_hw_clk_state_upd(wlc_hw->band->pi, false);
  4333. /* reclaim any posted packets */
  4334. brcms_c_flushqueues(wlc_hw->wlc);
  4335. } else {
  4336. /* Reset and disable the core */
  4337. if (bcma_core_is_enabled(wlc_hw->d11core)) {
  4338. if (bcma_read32(wlc_hw->d11core,
  4339. D11REGOFFS(maccontrol)) & MCTL_EN_MAC)
  4340. brcms_c_suspend_mac_and_wait(wlc_hw->wlc);
  4341. callbacks += brcms_reset(wlc_hw->wlc->wl);
  4342. brcms_c_coredisable(wlc_hw);
  4343. }
  4344. /* turn off primary xtal and pll */
  4345. if (!wlc_hw->noreset) {
  4346. ai_pci_down(wlc_hw->sih);
  4347. brcms_b_xtal(wlc_hw, OFF);
  4348. }
  4349. }
  4350. return callbacks;
  4351. }
  4352. /*
  4353. * Mark the interface nonoperational, stop the software mechanisms,
  4354. * disable the hardware, free any transient buffer state.
  4355. * Return a count of the number of driver callbacks still pending.
  4356. */
  4357. uint brcms_c_down(struct brcms_c_info *wlc)
  4358. {
  4359. uint callbacks = 0;
  4360. int i;
  4361. bool dev_gone = false;
  4362. brcms_dbg_info(wlc->hw->d11core, "wl%d\n", wlc->pub->unit);
  4363. /* check if we are already in the going down path */
  4364. if (wlc->going_down) {
  4365. brcms_err(wlc->hw->d11core,
  4366. "wl%d: %s: Driver going down so return\n",
  4367. wlc->pub->unit, __func__);
  4368. return 0;
  4369. }
  4370. if (!wlc->pub->up)
  4371. return callbacks;
  4372. wlc->going_down = true;
  4373. callbacks += brcms_b_bmac_down_prep(wlc->hw);
  4374. dev_gone = brcms_deviceremoved(wlc);
  4375. /* Call any registered down handlers */
  4376. for (i = 0; i < BRCMS_MAXMODULES; i++) {
  4377. if (wlc->modulecb[i].down_fn)
  4378. callbacks +=
  4379. wlc->modulecb[i].down_fn(wlc->modulecb[i].hdl);
  4380. }
  4381. /* cancel the watchdog timer */
  4382. if (wlc->WDarmed) {
  4383. if (!brcms_del_timer(wlc->wdtimer))
  4384. callbacks++;
  4385. wlc->WDarmed = false;
  4386. }
  4387. /* cancel all other timers */
  4388. callbacks += brcms_c_down_del_timer(wlc);
  4389. wlc->pub->up = false;
  4390. wlc_phy_mute_upd(wlc->band->pi, false, PHY_MUTE_ALL);
  4391. callbacks += brcms_b_down_finish(wlc->hw);
  4392. /* brcms_b_down_finish has done brcms_c_coredisable(). so clk is off */
  4393. wlc->clk = false;
  4394. wlc->going_down = false;
  4395. return callbacks;
  4396. }
  4397. /* Set the current gmode configuration */
  4398. int brcms_c_set_gmode(struct brcms_c_info *wlc, u8 gmode, bool config)
  4399. {
  4400. int ret = 0;
  4401. uint i;
  4402. struct brcms_c_rateset rs;
  4403. /* Default to 54g Auto */
  4404. /* Advertise and use shortslot (-1/0/1 Auto/Off/On) */
  4405. s8 shortslot = BRCMS_SHORTSLOT_AUTO;
  4406. bool shortslot_restrict = false; /* Restrict association to stations
  4407. * that support shortslot
  4408. */
  4409. bool ofdm_basic = false; /* Make 6, 12, and 24 basic rates */
  4410. /* Advertise and use short preambles (-1/0/1 Auto/Off/On) */
  4411. int preamble = BRCMS_PLCP_LONG;
  4412. bool preamble_restrict = false; /* Restrict association to stations
  4413. * that support short preambles
  4414. */
  4415. struct brcms_band *band;
  4416. /* if N-support is enabled, allow Gmode set as long as requested
  4417. * Gmode is not GMODE_LEGACY_B
  4418. */
  4419. if ((wlc->pub->_n_enab & SUPPORT_11N) && gmode == GMODE_LEGACY_B)
  4420. return -ENOTSUPP;
  4421. /* verify that we are dealing with 2G band and grab the band pointer */
  4422. if (wlc->band->bandtype == BRCM_BAND_2G)
  4423. band = wlc->band;
  4424. else if ((wlc->pub->_nbands > 1) &&
  4425. (wlc->bandstate[OTHERBANDUNIT(wlc)]->bandtype == BRCM_BAND_2G))
  4426. band = wlc->bandstate[OTHERBANDUNIT(wlc)];
  4427. else
  4428. return -EINVAL;
  4429. /* update configuration value */
  4430. if (config)
  4431. brcms_c_protection_upd(wlc, BRCMS_PROT_G_USER, gmode);
  4432. /* Clear rateset override */
  4433. memset(&rs, 0, sizeof(rs));
  4434. switch (gmode) {
  4435. case GMODE_LEGACY_B:
  4436. shortslot = BRCMS_SHORTSLOT_OFF;
  4437. brcms_c_rateset_copy(&gphy_legacy_rates, &rs);
  4438. break;
  4439. case GMODE_LRS:
  4440. break;
  4441. case GMODE_AUTO:
  4442. /* Accept defaults */
  4443. break;
  4444. case GMODE_ONLY:
  4445. ofdm_basic = true;
  4446. preamble = BRCMS_PLCP_SHORT;
  4447. preamble_restrict = true;
  4448. break;
  4449. case GMODE_PERFORMANCE:
  4450. shortslot = BRCMS_SHORTSLOT_ON;
  4451. shortslot_restrict = true;
  4452. ofdm_basic = true;
  4453. preamble = BRCMS_PLCP_SHORT;
  4454. preamble_restrict = true;
  4455. break;
  4456. default:
  4457. /* Error */
  4458. brcms_err(wlc->hw->d11core, "wl%d: %s: invalid gmode %d\n",
  4459. wlc->pub->unit, __func__, gmode);
  4460. return -ENOTSUPP;
  4461. }
  4462. band->gmode = gmode;
  4463. wlc->shortslot_override = shortslot;
  4464. /* Use the default 11g rateset */
  4465. if (!rs.count)
  4466. brcms_c_rateset_copy(&cck_ofdm_rates, &rs);
  4467. if (ofdm_basic) {
  4468. for (i = 0; i < rs.count; i++) {
  4469. if (rs.rates[i] == BRCM_RATE_6M
  4470. || rs.rates[i] == BRCM_RATE_12M
  4471. || rs.rates[i] == BRCM_RATE_24M)
  4472. rs.rates[i] |= BRCMS_RATE_FLAG;
  4473. }
  4474. }
  4475. /* Set default bss rateset */
  4476. wlc->default_bss->rateset.count = rs.count;
  4477. memcpy(wlc->default_bss->rateset.rates, rs.rates,
  4478. sizeof(wlc->default_bss->rateset.rates));
  4479. return ret;
  4480. }
  4481. int brcms_c_set_nmode(struct brcms_c_info *wlc)
  4482. {
  4483. uint i;
  4484. s32 nmode = AUTO;
  4485. if (wlc->stf->txstreams == WL_11N_3x3)
  4486. nmode = WL_11N_3x3;
  4487. else
  4488. nmode = WL_11N_2x2;
  4489. /* force GMODE_AUTO if NMODE is ON */
  4490. brcms_c_set_gmode(wlc, GMODE_AUTO, true);
  4491. if (nmode == WL_11N_3x3)
  4492. wlc->pub->_n_enab = SUPPORT_HT;
  4493. else
  4494. wlc->pub->_n_enab = SUPPORT_11N;
  4495. wlc->default_bss->flags |= BRCMS_BSS_HT;
  4496. /* add the mcs rates to the default and hw ratesets */
  4497. brcms_c_rateset_mcs_build(&wlc->default_bss->rateset,
  4498. wlc->stf->txstreams);
  4499. for (i = 0; i < wlc->pub->_nbands; i++)
  4500. memcpy(wlc->bandstate[i]->hw_rateset.mcs,
  4501. wlc->default_bss->rateset.mcs, MCSSET_LEN);
  4502. return 0;
  4503. }
  4504. static int
  4505. brcms_c_set_internal_rateset(struct brcms_c_info *wlc,
  4506. struct brcms_c_rateset *rs_arg)
  4507. {
  4508. struct brcms_c_rateset rs, new;
  4509. uint bandunit;
  4510. memcpy(&rs, rs_arg, sizeof(struct brcms_c_rateset));
  4511. /* check for bad count value */
  4512. if ((rs.count == 0) || (rs.count > BRCMS_NUMRATES))
  4513. return -EINVAL;
  4514. /* try the current band */
  4515. bandunit = wlc->band->bandunit;
  4516. memcpy(&new, &rs, sizeof(struct brcms_c_rateset));
  4517. if (brcms_c_rate_hwrs_filter_sort_validate
  4518. (&new, &wlc->bandstate[bandunit]->hw_rateset, true,
  4519. wlc->stf->txstreams))
  4520. goto good;
  4521. /* try the other band */
  4522. if (brcms_is_mband_unlocked(wlc)) {
  4523. bandunit = OTHERBANDUNIT(wlc);
  4524. memcpy(&new, &rs, sizeof(struct brcms_c_rateset));
  4525. if (brcms_c_rate_hwrs_filter_sort_validate(&new,
  4526. &wlc->
  4527. bandstate[bandunit]->
  4528. hw_rateset, true,
  4529. wlc->stf->txstreams))
  4530. goto good;
  4531. }
  4532. return -EBADE;
  4533. good:
  4534. /* apply new rateset */
  4535. memcpy(&wlc->default_bss->rateset, &new,
  4536. sizeof(struct brcms_c_rateset));
  4537. memcpy(&wlc->bandstate[bandunit]->defrateset, &new,
  4538. sizeof(struct brcms_c_rateset));
  4539. return 0;
  4540. }
  4541. static void brcms_c_ofdm_rateset_war(struct brcms_c_info *wlc)
  4542. {
  4543. u8 r;
  4544. bool war = false;
  4545. if (wlc->pub->associated)
  4546. r = wlc->bsscfg->current_bss->rateset.rates[0];
  4547. else
  4548. r = wlc->default_bss->rateset.rates[0];
  4549. wlc_phy_ofdm_rateset_war(wlc->band->pi, war);
  4550. }
  4551. int brcms_c_set_channel(struct brcms_c_info *wlc, u16 channel)
  4552. {
  4553. u16 chspec = ch20mhz_chspec(channel);
  4554. if (channel < 0 || channel > MAXCHANNEL)
  4555. return -EINVAL;
  4556. if (!brcms_c_valid_chanspec_db(wlc->cmi, chspec))
  4557. return -EINVAL;
  4558. if (!wlc->pub->up && brcms_is_mband_unlocked(wlc)) {
  4559. if (wlc->band->bandunit != chspec_bandunit(chspec))
  4560. wlc->bandinit_pending = true;
  4561. else
  4562. wlc->bandinit_pending = false;
  4563. }
  4564. wlc->default_bss->chanspec = chspec;
  4565. /* brcms_c_BSSinit() will sanitize the rateset before
  4566. * using it.. */
  4567. if (wlc->pub->up && (wlc_phy_chanspec_get(wlc->band->pi) != chspec)) {
  4568. brcms_c_set_home_chanspec(wlc, chspec);
  4569. brcms_c_suspend_mac_and_wait(wlc);
  4570. brcms_c_set_chanspec(wlc, chspec);
  4571. brcms_c_enable_mac(wlc);
  4572. }
  4573. return 0;
  4574. }
  4575. int brcms_c_set_rate_limit(struct brcms_c_info *wlc, u16 srl, u16 lrl)
  4576. {
  4577. int ac;
  4578. if (srl < 1 || srl > RETRY_SHORT_MAX ||
  4579. lrl < 1 || lrl > RETRY_SHORT_MAX)
  4580. return -EINVAL;
  4581. wlc->SRL = srl;
  4582. wlc->LRL = lrl;
  4583. brcms_b_retrylimit_upd(wlc->hw, wlc->SRL, wlc->LRL);
  4584. for (ac = 0; ac < IEEE80211_NUM_ACS; ac++) {
  4585. wlc->wme_retries[ac] = SFIELD(wlc->wme_retries[ac],
  4586. EDCF_SHORT, wlc->SRL);
  4587. wlc->wme_retries[ac] = SFIELD(wlc->wme_retries[ac],
  4588. EDCF_LONG, wlc->LRL);
  4589. }
  4590. brcms_c_wme_retries_write(wlc);
  4591. return 0;
  4592. }
  4593. void brcms_c_get_current_rateset(struct brcms_c_info *wlc,
  4594. struct brcm_rateset *currs)
  4595. {
  4596. struct brcms_c_rateset *rs;
  4597. if (wlc->pub->associated)
  4598. rs = &wlc->bsscfg->current_bss->rateset;
  4599. else
  4600. rs = &wlc->default_bss->rateset;
  4601. /* Copy only legacy rateset section */
  4602. currs->count = rs->count;
  4603. memcpy(&currs->rates, &rs->rates, rs->count);
  4604. }
  4605. int brcms_c_set_rateset(struct brcms_c_info *wlc, struct brcm_rateset *rs)
  4606. {
  4607. struct brcms_c_rateset internal_rs;
  4608. int bcmerror;
  4609. if (rs->count > BRCMS_NUMRATES)
  4610. return -ENOBUFS;
  4611. memset(&internal_rs, 0, sizeof(internal_rs));
  4612. /* Copy only legacy rateset section */
  4613. internal_rs.count = rs->count;
  4614. memcpy(&internal_rs.rates, &rs->rates, internal_rs.count);
  4615. /* merge rateset coming in with the current mcsset */
  4616. if (wlc->pub->_n_enab & SUPPORT_11N) {
  4617. struct brcms_bss_info *mcsset_bss;
  4618. if (wlc->pub->associated)
  4619. mcsset_bss = wlc->bsscfg->current_bss;
  4620. else
  4621. mcsset_bss = wlc->default_bss;
  4622. memcpy(internal_rs.mcs, &mcsset_bss->rateset.mcs[0],
  4623. MCSSET_LEN);
  4624. }
  4625. bcmerror = brcms_c_set_internal_rateset(wlc, &internal_rs);
  4626. if (!bcmerror)
  4627. brcms_c_ofdm_rateset_war(wlc);
  4628. return bcmerror;
  4629. }
  4630. static void brcms_c_time_lock(struct brcms_c_info *wlc)
  4631. {
  4632. bcma_set32(wlc->hw->d11core, D11REGOFFS(maccontrol), MCTL_TBTTHOLD);
  4633. /* Commit the write */
  4634. bcma_read32(wlc->hw->d11core, D11REGOFFS(maccontrol));
  4635. }
  4636. static void brcms_c_time_unlock(struct brcms_c_info *wlc)
  4637. {
  4638. bcma_mask32(wlc->hw->d11core, D11REGOFFS(maccontrol), ~MCTL_TBTTHOLD);
  4639. /* Commit the write */
  4640. bcma_read32(wlc->hw->d11core, D11REGOFFS(maccontrol));
  4641. }
  4642. int brcms_c_set_beacon_period(struct brcms_c_info *wlc, u16 period)
  4643. {
  4644. u32 bcnint_us;
  4645. if (period == 0)
  4646. return -EINVAL;
  4647. wlc->default_bss->beacon_period = period;
  4648. bcnint_us = period << 10;
  4649. brcms_c_time_lock(wlc);
  4650. bcma_write32(wlc->hw->d11core, D11REGOFFS(tsf_cfprep),
  4651. (bcnint_us << CFPREP_CBI_SHIFT));
  4652. bcma_write32(wlc->hw->d11core, D11REGOFFS(tsf_cfpstart), bcnint_us);
  4653. brcms_c_time_unlock(wlc);
  4654. return 0;
  4655. }
  4656. u16 brcms_c_get_phy_type(struct brcms_c_info *wlc, int phyidx)
  4657. {
  4658. return wlc->band->phytype;
  4659. }
  4660. void brcms_c_set_shortslot_override(struct brcms_c_info *wlc, s8 sslot_override)
  4661. {
  4662. wlc->shortslot_override = sslot_override;
  4663. /*
  4664. * shortslot is an 11g feature, so no more work if we are
  4665. * currently on the 5G band
  4666. */
  4667. if (wlc->band->bandtype == BRCM_BAND_5G)
  4668. return;
  4669. if (wlc->pub->up && wlc->pub->associated) {
  4670. /* let watchdog or beacon processing update shortslot */
  4671. } else if (wlc->pub->up) {
  4672. /* unassociated shortslot is off */
  4673. brcms_c_switch_shortslot(wlc, false);
  4674. } else {
  4675. /* driver is down, so just update the brcms_c_info
  4676. * value */
  4677. if (wlc->shortslot_override == BRCMS_SHORTSLOT_AUTO)
  4678. wlc->shortslot = false;
  4679. else
  4680. wlc->shortslot =
  4681. (wlc->shortslot_override ==
  4682. BRCMS_SHORTSLOT_ON);
  4683. }
  4684. }
  4685. /*
  4686. * register watchdog and down handlers.
  4687. */
  4688. int brcms_c_module_register(struct brcms_pub *pub,
  4689. const char *name, struct brcms_info *hdl,
  4690. int (*d_fn)(void *handle))
  4691. {
  4692. struct brcms_c_info *wlc = (struct brcms_c_info *) pub->wlc;
  4693. int i;
  4694. /* find an empty entry and just add, no duplication check! */
  4695. for (i = 0; i < BRCMS_MAXMODULES; i++) {
  4696. if (wlc->modulecb[i].name[0] == '\0') {
  4697. strncpy(wlc->modulecb[i].name, name,
  4698. sizeof(wlc->modulecb[i].name) - 1);
  4699. wlc->modulecb[i].hdl = hdl;
  4700. wlc->modulecb[i].down_fn = d_fn;
  4701. return 0;
  4702. }
  4703. }
  4704. return -ENOSR;
  4705. }
  4706. /* unregister module callbacks */
  4707. int brcms_c_module_unregister(struct brcms_pub *pub, const char *name,
  4708. struct brcms_info *hdl)
  4709. {
  4710. struct brcms_c_info *wlc = (struct brcms_c_info *) pub->wlc;
  4711. int i;
  4712. if (wlc == NULL)
  4713. return -ENODATA;
  4714. for (i = 0; i < BRCMS_MAXMODULES; i++) {
  4715. if (!strcmp(wlc->modulecb[i].name, name) &&
  4716. (wlc->modulecb[i].hdl == hdl)) {
  4717. memset(&wlc->modulecb[i], 0, sizeof(wlc->modulecb[i]));
  4718. return 0;
  4719. }
  4720. }
  4721. /* table not found! */
  4722. return -ENODATA;
  4723. }
  4724. static bool brcms_c_chipmatch_pci(struct bcma_device *core)
  4725. {
  4726. struct pci_dev *pcidev = core->bus->host_pci;
  4727. u16 vendor = pcidev->vendor;
  4728. u16 device = pcidev->device;
  4729. if (vendor != PCI_VENDOR_ID_BROADCOM) {
  4730. pr_err("unknown vendor id %04x\n", vendor);
  4731. return false;
  4732. }
  4733. if (device == BCM43224_D11N_ID_VEN1 || device == BCM43224_CHIP_ID)
  4734. return true;
  4735. if ((device == BCM43224_D11N_ID) || (device == BCM43225_D11N2G_ID))
  4736. return true;
  4737. if (device == BCM4313_D11N2G_ID)
  4738. return true;
  4739. if ((device == BCM43236_D11N_ID) || (device == BCM43236_D11N2G_ID))
  4740. return true;
  4741. pr_err("unknown device id %04x\n", device);
  4742. return false;
  4743. }
  4744. static bool brcms_c_chipmatch_soc(struct bcma_device *core)
  4745. {
  4746. struct bcma_chipinfo *chipinfo = &core->bus->chipinfo;
  4747. if (chipinfo->id == BCMA_CHIP_ID_BCM4716)
  4748. return true;
  4749. pr_err("unknown chip id %04x\n", chipinfo->id);
  4750. return false;
  4751. }
  4752. bool brcms_c_chipmatch(struct bcma_device *core)
  4753. {
  4754. switch (core->bus->hosttype) {
  4755. case BCMA_HOSTTYPE_PCI:
  4756. return brcms_c_chipmatch_pci(core);
  4757. case BCMA_HOSTTYPE_SOC:
  4758. return brcms_c_chipmatch_soc(core);
  4759. default:
  4760. pr_err("unknown host type: %i\n", core->bus->hosttype);
  4761. return false;
  4762. }
  4763. }
  4764. u16 brcms_b_rate_shm_offset(struct brcms_hardware *wlc_hw, u8 rate)
  4765. {
  4766. u16 table_ptr;
  4767. u8 phy_rate, index;
  4768. /* get the phy specific rate encoding for the PLCP SIGNAL field */
  4769. if (is_ofdm_rate(rate))
  4770. table_ptr = M_RT_DIRMAP_A;
  4771. else
  4772. table_ptr = M_RT_DIRMAP_B;
  4773. /* for a given rate, the LS-nibble of the PLCP SIGNAL field is
  4774. * the index into the rate table.
  4775. */
  4776. phy_rate = rate_info[rate] & BRCMS_RATE_MASK;
  4777. index = phy_rate & 0xf;
  4778. /* Find the SHM pointer to the rate table entry by looking in the
  4779. * Direct-map Table
  4780. */
  4781. return 2 * brcms_b_read_shm(wlc_hw, table_ptr + (index * 2));
  4782. }
  4783. /*
  4784. * bcmc_fid_generate:
  4785. * Generate frame ID for a BCMC packet. The frag field is not used
  4786. * for MC frames so is used as part of the sequence number.
  4787. */
  4788. static inline u16
  4789. bcmc_fid_generate(struct brcms_c_info *wlc, struct brcms_bss_cfg *bsscfg,
  4790. struct d11txh *txh)
  4791. {
  4792. u16 frameid;
  4793. frameid = le16_to_cpu(txh->TxFrameID) & ~(TXFID_SEQ_MASK |
  4794. TXFID_QUEUE_MASK);
  4795. frameid |=
  4796. (((wlc->
  4797. mc_fid_counter++) << TXFID_SEQ_SHIFT) & TXFID_SEQ_MASK) |
  4798. TX_BCMC_FIFO;
  4799. return frameid;
  4800. }
  4801. static uint
  4802. brcms_c_calc_ack_time(struct brcms_c_info *wlc, u32 rspec,
  4803. u8 preamble_type)
  4804. {
  4805. uint dur = 0;
  4806. /*
  4807. * Spec 9.6: ack rate is the highest rate in BSSBasicRateSet that
  4808. * is less than or equal to the rate of the immediately previous
  4809. * frame in the FES
  4810. */
  4811. rspec = brcms_basic_rate(wlc, rspec);
  4812. /* ACK frame len == 14 == 2(fc) + 2(dur) + 6(ra) + 4(fcs) */
  4813. dur =
  4814. brcms_c_calc_frame_time(wlc, rspec, preamble_type,
  4815. (DOT11_ACK_LEN + FCS_LEN));
  4816. return dur;
  4817. }
  4818. static uint
  4819. brcms_c_calc_cts_time(struct brcms_c_info *wlc, u32 rspec,
  4820. u8 preamble_type)
  4821. {
  4822. return brcms_c_calc_ack_time(wlc, rspec, preamble_type);
  4823. }
  4824. static uint
  4825. brcms_c_calc_ba_time(struct brcms_c_info *wlc, u32 rspec,
  4826. u8 preamble_type)
  4827. {
  4828. /*
  4829. * Spec 9.6: ack rate is the highest rate in BSSBasicRateSet that
  4830. * is less than or equal to the rate of the immediately previous
  4831. * frame in the FES
  4832. */
  4833. rspec = brcms_basic_rate(wlc, rspec);
  4834. /* BA len == 32 == 16(ctl hdr) + 4(ba len) + 8(bitmap) + 4(fcs) */
  4835. return brcms_c_calc_frame_time(wlc, rspec, preamble_type,
  4836. (DOT11_BA_LEN + DOT11_BA_BITMAP_LEN +
  4837. FCS_LEN));
  4838. }
  4839. /* brcms_c_compute_frame_dur()
  4840. *
  4841. * Calculate the 802.11 MAC header DUR field for MPDU
  4842. * DUR for a single frame = 1 SIFS + 1 ACK
  4843. * DUR for a frame with following frags = 3 SIFS + 2 ACK + next frag time
  4844. *
  4845. * rate MPDU rate in unit of 500kbps
  4846. * next_frag_len next MPDU length in bytes
  4847. * preamble_type use short/GF or long/MM PLCP header
  4848. */
  4849. static u16
  4850. brcms_c_compute_frame_dur(struct brcms_c_info *wlc, u32 rate,
  4851. u8 preamble_type, uint next_frag_len)
  4852. {
  4853. u16 dur, sifs;
  4854. sifs = get_sifs(wlc->band);
  4855. dur = sifs;
  4856. dur += (u16) brcms_c_calc_ack_time(wlc, rate, preamble_type);
  4857. if (next_frag_len) {
  4858. /* Double the current DUR to get 2 SIFS + 2 ACKs */
  4859. dur *= 2;
  4860. /* add another SIFS and the frag time */
  4861. dur += sifs;
  4862. dur +=
  4863. (u16) brcms_c_calc_frame_time(wlc, rate, preamble_type,
  4864. next_frag_len);
  4865. }
  4866. return dur;
  4867. }
  4868. /* The opposite of brcms_c_calc_frame_time */
  4869. static uint
  4870. brcms_c_calc_frame_len(struct brcms_c_info *wlc, u32 ratespec,
  4871. u8 preamble_type, uint dur)
  4872. {
  4873. uint nsyms, mac_len, Ndps, kNdps;
  4874. uint rate = rspec2rate(ratespec);
  4875. if (is_mcs_rate(ratespec)) {
  4876. uint mcs = ratespec & RSPEC_RATE_MASK;
  4877. int tot_streams = mcs_2_txstreams(mcs) + rspec_stc(ratespec);
  4878. dur -= PREN_PREAMBLE + (tot_streams * PREN_PREAMBLE_EXT);
  4879. /* payload calculation matches that of regular ofdm */
  4880. if (wlc->band->bandtype == BRCM_BAND_2G)
  4881. dur -= DOT11_OFDM_SIGNAL_EXTENSION;
  4882. /* kNdbps = kbps * 4 */
  4883. kNdps = mcs_2_rate(mcs, rspec_is40mhz(ratespec),
  4884. rspec_issgi(ratespec)) * 4;
  4885. nsyms = dur / APHY_SYMBOL_TIME;
  4886. mac_len =
  4887. ((nsyms * kNdps) -
  4888. ((APHY_SERVICE_NBITS + APHY_TAIL_NBITS) * 1000)) / 8000;
  4889. } else if (is_ofdm_rate(ratespec)) {
  4890. dur -= APHY_PREAMBLE_TIME;
  4891. dur -= APHY_SIGNAL_TIME;
  4892. /* Ndbps = Mbps * 4 = rate(500Kbps) * 2 */
  4893. Ndps = rate * 2;
  4894. nsyms = dur / APHY_SYMBOL_TIME;
  4895. mac_len =
  4896. ((nsyms * Ndps) -
  4897. (APHY_SERVICE_NBITS + APHY_TAIL_NBITS)) / 8;
  4898. } else {
  4899. if (preamble_type & BRCMS_SHORT_PREAMBLE)
  4900. dur -= BPHY_PLCP_SHORT_TIME;
  4901. else
  4902. dur -= BPHY_PLCP_TIME;
  4903. mac_len = dur * rate;
  4904. /* divide out factor of 2 in rate (1/2 mbps) */
  4905. mac_len = mac_len / 8 / 2;
  4906. }
  4907. return mac_len;
  4908. }
  4909. /*
  4910. * Return true if the specified rate is supported by the specified band.
  4911. * BRCM_BAND_AUTO indicates the current band.
  4912. */
  4913. static bool brcms_c_valid_rate(struct brcms_c_info *wlc, u32 rspec, int band,
  4914. bool verbose)
  4915. {
  4916. struct brcms_c_rateset *hw_rateset;
  4917. uint i;
  4918. if ((band == BRCM_BAND_AUTO) || (band == wlc->band->bandtype))
  4919. hw_rateset = &wlc->band->hw_rateset;
  4920. else if (wlc->pub->_nbands > 1)
  4921. hw_rateset = &wlc->bandstate[OTHERBANDUNIT(wlc)]->hw_rateset;
  4922. else
  4923. /* other band specified and we are a single band device */
  4924. return false;
  4925. /* check if this is a mimo rate */
  4926. if (is_mcs_rate(rspec)) {
  4927. if ((rspec & RSPEC_RATE_MASK) >= MCS_TABLE_SIZE)
  4928. goto error;
  4929. return isset(hw_rateset->mcs, (rspec & RSPEC_RATE_MASK));
  4930. }
  4931. for (i = 0; i < hw_rateset->count; i++)
  4932. if (hw_rateset->rates[i] == rspec2rate(rspec))
  4933. return true;
  4934. error:
  4935. if (verbose)
  4936. brcms_err(wlc->hw->d11core, "wl%d: valid_rate: rate spec 0x%x "
  4937. "not in hw_rateset\n", wlc->pub->unit, rspec);
  4938. return false;
  4939. }
  4940. static u32
  4941. mac80211_wlc_set_nrate(struct brcms_c_info *wlc, struct brcms_band *cur_band,
  4942. u32 int_val)
  4943. {
  4944. struct bcma_device *core = wlc->hw->d11core;
  4945. u8 stf = (int_val & NRATE_STF_MASK) >> NRATE_STF_SHIFT;
  4946. u8 rate = int_val & NRATE_RATE_MASK;
  4947. u32 rspec;
  4948. bool ismcs = ((int_val & NRATE_MCS_INUSE) == NRATE_MCS_INUSE);
  4949. bool issgi = ((int_val & NRATE_SGI_MASK) >> NRATE_SGI_SHIFT);
  4950. bool override_mcs_only = ((int_val & NRATE_OVERRIDE_MCS_ONLY)
  4951. == NRATE_OVERRIDE_MCS_ONLY);
  4952. int bcmerror = 0;
  4953. if (!ismcs)
  4954. return (u32) rate;
  4955. /* validate the combination of rate/mcs/stf is allowed */
  4956. if ((wlc->pub->_n_enab & SUPPORT_11N) && ismcs) {
  4957. /* mcs only allowed when nmode */
  4958. if (stf > PHY_TXC1_MODE_SDM) {
  4959. brcms_err(core, "wl%d: %s: Invalid stf\n",
  4960. wlc->pub->unit, __func__);
  4961. bcmerror = -EINVAL;
  4962. goto done;
  4963. }
  4964. /* mcs 32 is a special case, DUP mode 40 only */
  4965. if (rate == 32) {
  4966. if (!CHSPEC_IS40(wlc->home_chanspec) ||
  4967. ((stf != PHY_TXC1_MODE_SISO)
  4968. && (stf != PHY_TXC1_MODE_CDD))) {
  4969. brcms_err(core, "wl%d: %s: Invalid mcs 32\n",
  4970. wlc->pub->unit, __func__);
  4971. bcmerror = -EINVAL;
  4972. goto done;
  4973. }
  4974. /* mcs > 7 must use stf SDM */
  4975. } else if (rate > HIGHEST_SINGLE_STREAM_MCS) {
  4976. /* mcs > 7 must use stf SDM */
  4977. if (stf != PHY_TXC1_MODE_SDM) {
  4978. brcms_dbg_mac80211(core, "wl%d: enabling "
  4979. "SDM mode for mcs %d\n",
  4980. wlc->pub->unit, rate);
  4981. stf = PHY_TXC1_MODE_SDM;
  4982. }
  4983. } else {
  4984. /*
  4985. * MCS 0-7 may use SISO, CDD, and for
  4986. * phy_rev >= 3 STBC
  4987. */
  4988. if ((stf > PHY_TXC1_MODE_STBC) ||
  4989. (!BRCMS_STBC_CAP_PHY(wlc)
  4990. && (stf == PHY_TXC1_MODE_STBC))) {
  4991. brcms_err(core, "wl%d: %s: Invalid STBC\n",
  4992. wlc->pub->unit, __func__);
  4993. bcmerror = -EINVAL;
  4994. goto done;
  4995. }
  4996. }
  4997. } else if (is_ofdm_rate(rate)) {
  4998. if ((stf != PHY_TXC1_MODE_CDD) && (stf != PHY_TXC1_MODE_SISO)) {
  4999. brcms_err(core, "wl%d: %s: Invalid OFDM\n",
  5000. wlc->pub->unit, __func__);
  5001. bcmerror = -EINVAL;
  5002. goto done;
  5003. }
  5004. } else if (is_cck_rate(rate)) {
  5005. if ((cur_band->bandtype != BRCM_BAND_2G)
  5006. || (stf != PHY_TXC1_MODE_SISO)) {
  5007. brcms_err(core, "wl%d: %s: Invalid CCK\n",
  5008. wlc->pub->unit, __func__);
  5009. bcmerror = -EINVAL;
  5010. goto done;
  5011. }
  5012. } else {
  5013. brcms_err(core, "wl%d: %s: Unknown rate type\n",
  5014. wlc->pub->unit, __func__);
  5015. bcmerror = -EINVAL;
  5016. goto done;
  5017. }
  5018. /* make sure multiple antennae are available for non-siso rates */
  5019. if ((stf != PHY_TXC1_MODE_SISO) && (wlc->stf->txstreams == 1)) {
  5020. brcms_err(core, "wl%d: %s: SISO antenna but !SISO "
  5021. "request\n", wlc->pub->unit, __func__);
  5022. bcmerror = -EINVAL;
  5023. goto done;
  5024. }
  5025. rspec = rate;
  5026. if (ismcs) {
  5027. rspec |= RSPEC_MIMORATE;
  5028. /* For STBC populate the STC field of the ratespec */
  5029. if (stf == PHY_TXC1_MODE_STBC) {
  5030. u8 stc;
  5031. stc = 1; /* Nss for single stream is always 1 */
  5032. rspec |= (stc << RSPEC_STC_SHIFT);
  5033. }
  5034. }
  5035. rspec |= (stf << RSPEC_STF_SHIFT);
  5036. if (override_mcs_only)
  5037. rspec |= RSPEC_OVERRIDE_MCS_ONLY;
  5038. if (issgi)
  5039. rspec |= RSPEC_SHORT_GI;
  5040. if ((rate != 0)
  5041. && !brcms_c_valid_rate(wlc, rspec, cur_band->bandtype, true))
  5042. return rate;
  5043. return rspec;
  5044. done:
  5045. return rate;
  5046. }
  5047. /*
  5048. * Compute PLCP, but only requires actual rate and length of pkt.
  5049. * Rate is given in the driver standard multiple of 500 kbps.
  5050. * le is set for 11 Mbps rate if necessary.
  5051. * Broken out for PRQ.
  5052. */
  5053. static void brcms_c_cck_plcp_set(struct brcms_c_info *wlc, int rate_500,
  5054. uint length, u8 *plcp)
  5055. {
  5056. u16 usec = 0;
  5057. u8 le = 0;
  5058. switch (rate_500) {
  5059. case BRCM_RATE_1M:
  5060. usec = length << 3;
  5061. break;
  5062. case BRCM_RATE_2M:
  5063. usec = length << 2;
  5064. break;
  5065. case BRCM_RATE_5M5:
  5066. usec = (length << 4) / 11;
  5067. if ((length << 4) - (usec * 11) > 0)
  5068. usec++;
  5069. break;
  5070. case BRCM_RATE_11M:
  5071. usec = (length << 3) / 11;
  5072. if ((length << 3) - (usec * 11) > 0) {
  5073. usec++;
  5074. if ((usec * 11) - (length << 3) >= 8)
  5075. le = D11B_PLCP_SIGNAL_LE;
  5076. }
  5077. break;
  5078. default:
  5079. brcms_err(wlc->hw->d11core,
  5080. "brcms_c_cck_plcp_set: unsupported rate %d\n",
  5081. rate_500);
  5082. rate_500 = BRCM_RATE_1M;
  5083. usec = length << 3;
  5084. break;
  5085. }
  5086. /* PLCP signal byte */
  5087. plcp[0] = rate_500 * 5; /* r (500kbps) * 5 == r (100kbps) */
  5088. /* PLCP service byte */
  5089. plcp[1] = (u8) (le | D11B_PLCP_SIGNAL_LOCKED);
  5090. /* PLCP length u16, little endian */
  5091. plcp[2] = usec & 0xff;
  5092. plcp[3] = (usec >> 8) & 0xff;
  5093. /* PLCP CRC16 */
  5094. plcp[4] = 0;
  5095. plcp[5] = 0;
  5096. }
  5097. /* Rate: 802.11 rate code, length: PSDU length in octets */
  5098. static void brcms_c_compute_mimo_plcp(u32 rspec, uint length, u8 *plcp)
  5099. {
  5100. u8 mcs = (u8) (rspec & RSPEC_RATE_MASK);
  5101. plcp[0] = mcs;
  5102. if (rspec_is40mhz(rspec) || (mcs == 32))
  5103. plcp[0] |= MIMO_PLCP_40MHZ;
  5104. BRCMS_SET_MIMO_PLCP_LEN(plcp, length);
  5105. plcp[3] = rspec_mimoplcp3(rspec); /* rspec already holds this byte */
  5106. plcp[3] |= 0x7; /* set smoothing, not sounding ppdu & reserved */
  5107. plcp[4] = 0; /* number of extension spatial streams bit 0 & 1 */
  5108. plcp[5] = 0;
  5109. }
  5110. /* Rate: 802.11 rate code, length: PSDU length in octets */
  5111. static void
  5112. brcms_c_compute_ofdm_plcp(u32 rspec, u32 length, u8 *plcp)
  5113. {
  5114. u8 rate_signal;
  5115. u32 tmp = 0;
  5116. int rate = rspec2rate(rspec);
  5117. /*
  5118. * encode rate per 802.11a-1999 sec 17.3.4.1, with lsb
  5119. * transmitted first
  5120. */
  5121. rate_signal = rate_info[rate] & BRCMS_RATE_MASK;
  5122. memset(plcp, 0, D11_PHY_HDR_LEN);
  5123. D11A_PHY_HDR_SRATE((struct ofdm_phy_hdr *) plcp, rate_signal);
  5124. tmp = (length & 0xfff) << 5;
  5125. plcp[2] |= (tmp >> 16) & 0xff;
  5126. plcp[1] |= (tmp >> 8) & 0xff;
  5127. plcp[0] |= tmp & 0xff;
  5128. }
  5129. /* Rate: 802.11 rate code, length: PSDU length in octets */
  5130. static void brcms_c_compute_cck_plcp(struct brcms_c_info *wlc, u32 rspec,
  5131. uint length, u8 *plcp)
  5132. {
  5133. int rate = rspec2rate(rspec);
  5134. brcms_c_cck_plcp_set(wlc, rate, length, plcp);
  5135. }
  5136. static void
  5137. brcms_c_compute_plcp(struct brcms_c_info *wlc, u32 rspec,
  5138. uint length, u8 *plcp)
  5139. {
  5140. if (is_mcs_rate(rspec))
  5141. brcms_c_compute_mimo_plcp(rspec, length, plcp);
  5142. else if (is_ofdm_rate(rspec))
  5143. brcms_c_compute_ofdm_plcp(rspec, length, plcp);
  5144. else
  5145. brcms_c_compute_cck_plcp(wlc, rspec, length, plcp);
  5146. }
  5147. /* brcms_c_compute_rtscts_dur()
  5148. *
  5149. * Calculate the 802.11 MAC header DUR field for an RTS or CTS frame
  5150. * DUR for normal RTS/CTS w/ frame = 3 SIFS + 1 CTS + next frame time + 1 ACK
  5151. * DUR for CTS-TO-SELF w/ frame = 2 SIFS + next frame time + 1 ACK
  5152. *
  5153. * cts cts-to-self or rts/cts
  5154. * rts_rate rts or cts rate in unit of 500kbps
  5155. * rate next MPDU rate in unit of 500kbps
  5156. * frame_len next MPDU frame length in bytes
  5157. */
  5158. u16
  5159. brcms_c_compute_rtscts_dur(struct brcms_c_info *wlc, bool cts_only,
  5160. u32 rts_rate,
  5161. u32 frame_rate, u8 rts_preamble_type,
  5162. u8 frame_preamble_type, uint frame_len, bool ba)
  5163. {
  5164. u16 dur, sifs;
  5165. sifs = get_sifs(wlc->band);
  5166. if (!cts_only) {
  5167. /* RTS/CTS */
  5168. dur = 3 * sifs;
  5169. dur +=
  5170. (u16) brcms_c_calc_cts_time(wlc, rts_rate,
  5171. rts_preamble_type);
  5172. } else {
  5173. /* CTS-TO-SELF */
  5174. dur = 2 * sifs;
  5175. }
  5176. dur +=
  5177. (u16) brcms_c_calc_frame_time(wlc, frame_rate, frame_preamble_type,
  5178. frame_len);
  5179. if (ba)
  5180. dur +=
  5181. (u16) brcms_c_calc_ba_time(wlc, frame_rate,
  5182. BRCMS_SHORT_PREAMBLE);
  5183. else
  5184. dur +=
  5185. (u16) brcms_c_calc_ack_time(wlc, frame_rate,
  5186. frame_preamble_type);
  5187. return dur;
  5188. }
  5189. static u16 brcms_c_phytxctl1_calc(struct brcms_c_info *wlc, u32 rspec)
  5190. {
  5191. u16 phyctl1 = 0;
  5192. u16 bw;
  5193. if (BRCMS_ISLCNPHY(wlc->band)) {
  5194. bw = PHY_TXC1_BW_20MHZ;
  5195. } else {
  5196. bw = rspec_get_bw(rspec);
  5197. /* 10Mhz is not supported yet */
  5198. if (bw < PHY_TXC1_BW_20MHZ) {
  5199. brcms_err(wlc->hw->d11core, "phytxctl1_calc: bw %d is "
  5200. "not supported yet, set to 20L\n", bw);
  5201. bw = PHY_TXC1_BW_20MHZ;
  5202. }
  5203. }
  5204. if (is_mcs_rate(rspec)) {
  5205. uint mcs = rspec & RSPEC_RATE_MASK;
  5206. /* bw, stf, coding-type is part of rspec_phytxbyte2 returns */
  5207. phyctl1 = rspec_phytxbyte2(rspec);
  5208. /* set the upper byte of phyctl1 */
  5209. phyctl1 |= (mcs_table[mcs].tx_phy_ctl3 << 8);
  5210. } else if (is_cck_rate(rspec) && !BRCMS_ISLCNPHY(wlc->band)
  5211. && !BRCMS_ISSSLPNPHY(wlc->band)) {
  5212. /*
  5213. * In CCK mode LPPHY overloads OFDM Modulation bits with CCK
  5214. * Data Rate. Eventually MIMOPHY would also be converted to
  5215. * this format
  5216. */
  5217. /* 0 = 1Mbps; 1 = 2Mbps; 2 = 5.5Mbps; 3 = 11Mbps */
  5218. phyctl1 = (bw | (rspec_stf(rspec) << PHY_TXC1_MODE_SHIFT));
  5219. } else { /* legacy OFDM/CCK */
  5220. s16 phycfg;
  5221. /* get the phyctl byte from rate phycfg table */
  5222. phycfg = brcms_c_rate_legacy_phyctl(rspec2rate(rspec));
  5223. if (phycfg == -1) {
  5224. brcms_err(wlc->hw->d11core, "phytxctl1_calc: wrong "
  5225. "legacy OFDM/CCK rate\n");
  5226. phycfg = 0;
  5227. }
  5228. /* set the upper byte of phyctl1 */
  5229. phyctl1 =
  5230. (bw | (phycfg << 8) |
  5231. (rspec_stf(rspec) << PHY_TXC1_MODE_SHIFT));
  5232. }
  5233. return phyctl1;
  5234. }
  5235. /*
  5236. * Add struct d11txh, struct cck_phy_hdr.
  5237. *
  5238. * 'p' data must start with 802.11 MAC header
  5239. * 'p' must allow enough bytes of local headers to be "pushed" onto the packet
  5240. *
  5241. * headroom == D11_PHY_HDR_LEN + D11_TXH_LEN (D11_TXH_LEN is now 104 bytes)
  5242. *
  5243. */
  5244. static u16
  5245. brcms_c_d11hdrs_mac80211(struct brcms_c_info *wlc, struct ieee80211_hw *hw,
  5246. struct sk_buff *p, struct scb *scb, uint frag,
  5247. uint nfrags, uint queue, uint next_frag_len)
  5248. {
  5249. struct ieee80211_hdr *h;
  5250. struct d11txh *txh;
  5251. u8 *plcp, plcp_fallback[D11_PHY_HDR_LEN];
  5252. int len, phylen, rts_phylen;
  5253. u16 mch, phyctl, xfts, mainrates;
  5254. u16 seq = 0, mcl = 0, status = 0, frameid = 0;
  5255. u32 rspec[2] = { BRCM_RATE_1M, BRCM_RATE_1M };
  5256. u32 rts_rspec[2] = { BRCM_RATE_1M, BRCM_RATE_1M };
  5257. bool use_rts = false;
  5258. bool use_cts = false;
  5259. bool use_rifs = false;
  5260. bool short_preamble[2] = { false, false };
  5261. u8 preamble_type[2] = { BRCMS_LONG_PREAMBLE, BRCMS_LONG_PREAMBLE };
  5262. u8 rts_preamble_type[2] = { BRCMS_LONG_PREAMBLE, BRCMS_LONG_PREAMBLE };
  5263. u8 *rts_plcp, rts_plcp_fallback[D11_PHY_HDR_LEN];
  5264. struct ieee80211_rts *rts = NULL;
  5265. bool qos;
  5266. uint ac;
  5267. bool hwtkmic = false;
  5268. u16 mimo_ctlchbw = PHY_TXC1_BW_20MHZ;
  5269. #define ANTCFG_NONE 0xFF
  5270. u8 antcfg = ANTCFG_NONE;
  5271. u8 fbantcfg = ANTCFG_NONE;
  5272. uint phyctl1_stf = 0;
  5273. u16 durid = 0;
  5274. struct ieee80211_tx_rate *txrate[2];
  5275. int k;
  5276. struct ieee80211_tx_info *tx_info;
  5277. bool is_mcs;
  5278. u16 mimo_txbw;
  5279. u8 mimo_preamble_type;
  5280. /* locate 802.11 MAC header */
  5281. h = (struct ieee80211_hdr *)(p->data);
  5282. qos = ieee80211_is_data_qos(h->frame_control);
  5283. /* compute length of frame in bytes for use in PLCP computations */
  5284. len = p->len;
  5285. phylen = len + FCS_LEN;
  5286. /* Get tx_info */
  5287. tx_info = IEEE80211_SKB_CB(p);
  5288. /* add PLCP */
  5289. plcp = skb_push(p, D11_PHY_HDR_LEN);
  5290. /* add Broadcom tx descriptor header */
  5291. txh = (struct d11txh *) skb_push(p, D11_TXH_LEN);
  5292. memset(txh, 0, D11_TXH_LEN);
  5293. /* setup frameid */
  5294. if (tx_info->flags & IEEE80211_TX_CTL_ASSIGN_SEQ) {
  5295. /* non-AP STA should never use BCMC queue */
  5296. if (queue == TX_BCMC_FIFO) {
  5297. brcms_err(wlc->hw->d11core,
  5298. "wl%d: %s: ASSERT queue == TX_BCMC!\n",
  5299. wlc->pub->unit, __func__);
  5300. frameid = bcmc_fid_generate(wlc, NULL, txh);
  5301. } else {
  5302. /* Increment the counter for first fragment */
  5303. if (tx_info->flags & IEEE80211_TX_CTL_FIRST_FRAGMENT)
  5304. scb->seqnum[p->priority]++;
  5305. /* extract fragment number from frame first */
  5306. seq = le16_to_cpu(h->seq_ctrl) & FRAGNUM_MASK;
  5307. seq |= (scb->seqnum[p->priority] << SEQNUM_SHIFT);
  5308. h->seq_ctrl = cpu_to_le16(seq);
  5309. frameid = ((seq << TXFID_SEQ_SHIFT) & TXFID_SEQ_MASK) |
  5310. (queue & TXFID_QUEUE_MASK);
  5311. }
  5312. }
  5313. frameid |= queue & TXFID_QUEUE_MASK;
  5314. /* set the ignpmq bit for all pkts tx'd in PS mode and for beacons */
  5315. if (ieee80211_is_beacon(h->frame_control))
  5316. mcl |= TXC_IGNOREPMQ;
  5317. txrate[0] = tx_info->control.rates;
  5318. txrate[1] = txrate[0] + 1;
  5319. /*
  5320. * if rate control algorithm didn't give us a fallback
  5321. * rate, use the primary rate
  5322. */
  5323. if (txrate[1]->idx < 0)
  5324. txrate[1] = txrate[0];
  5325. for (k = 0; k < hw->max_rates; k++) {
  5326. is_mcs = txrate[k]->flags & IEEE80211_TX_RC_MCS ? true : false;
  5327. if (!is_mcs) {
  5328. if ((txrate[k]->idx >= 0)
  5329. && (txrate[k]->idx <
  5330. hw->wiphy->bands[tx_info->band]->n_bitrates)) {
  5331. rspec[k] =
  5332. hw->wiphy->bands[tx_info->band]->
  5333. bitrates[txrate[k]->idx].hw_value;
  5334. short_preamble[k] =
  5335. txrate[k]->
  5336. flags & IEEE80211_TX_RC_USE_SHORT_PREAMBLE ?
  5337. true : false;
  5338. } else {
  5339. rspec[k] = BRCM_RATE_1M;
  5340. }
  5341. } else {
  5342. rspec[k] = mac80211_wlc_set_nrate(wlc, wlc->band,
  5343. NRATE_MCS_INUSE | txrate[k]->idx);
  5344. }
  5345. /*
  5346. * Currently only support same setting for primay and
  5347. * fallback rates. Unify flags for each rate into a
  5348. * single value for the frame
  5349. */
  5350. use_rts |=
  5351. txrate[k]->
  5352. flags & IEEE80211_TX_RC_USE_RTS_CTS ? true : false;
  5353. use_cts |=
  5354. txrate[k]->
  5355. flags & IEEE80211_TX_RC_USE_CTS_PROTECT ? true : false;
  5356. /*
  5357. * (1) RATE:
  5358. * determine and validate primary rate
  5359. * and fallback rates
  5360. */
  5361. if (!rspec_active(rspec[k])) {
  5362. rspec[k] = BRCM_RATE_1M;
  5363. } else {
  5364. if (!is_multicast_ether_addr(h->addr1)) {
  5365. /* set tx antenna config */
  5366. brcms_c_antsel_antcfg_get(wlc->asi, false,
  5367. false, 0, 0, &antcfg, &fbantcfg);
  5368. }
  5369. }
  5370. }
  5371. phyctl1_stf = wlc->stf->ss_opmode;
  5372. if (wlc->pub->_n_enab & SUPPORT_11N) {
  5373. for (k = 0; k < hw->max_rates; k++) {
  5374. /*
  5375. * apply siso/cdd to single stream mcs's or ofdm
  5376. * if rspec is auto selected
  5377. */
  5378. if (((is_mcs_rate(rspec[k]) &&
  5379. is_single_stream(rspec[k] & RSPEC_RATE_MASK)) ||
  5380. is_ofdm_rate(rspec[k]))
  5381. && ((rspec[k] & RSPEC_OVERRIDE_MCS_ONLY)
  5382. || !(rspec[k] & RSPEC_OVERRIDE))) {
  5383. rspec[k] &= ~(RSPEC_STF_MASK | RSPEC_STC_MASK);
  5384. /* For SISO MCS use STBC if possible */
  5385. if (is_mcs_rate(rspec[k])
  5386. && BRCMS_STF_SS_STBC_TX(wlc, scb)) {
  5387. u8 stc;
  5388. /* Nss for single stream is always 1 */
  5389. stc = 1;
  5390. rspec[k] |= (PHY_TXC1_MODE_STBC <<
  5391. RSPEC_STF_SHIFT) |
  5392. (stc << RSPEC_STC_SHIFT);
  5393. } else
  5394. rspec[k] |=
  5395. (phyctl1_stf << RSPEC_STF_SHIFT);
  5396. }
  5397. /*
  5398. * Is the phy configured to use 40MHZ frames? If
  5399. * so then pick the desired txbw
  5400. */
  5401. if (brcms_chspec_bw(wlc->chanspec) == BRCMS_40_MHZ) {
  5402. /* default txbw is 20in40 SB */
  5403. mimo_ctlchbw = mimo_txbw =
  5404. CHSPEC_SB_UPPER(wlc_phy_chanspec_get(
  5405. wlc->band->pi))
  5406. ? PHY_TXC1_BW_20MHZ_UP : PHY_TXC1_BW_20MHZ;
  5407. if (is_mcs_rate(rspec[k])) {
  5408. /* mcs 32 must be 40b/w DUP */
  5409. if ((rspec[k] & RSPEC_RATE_MASK)
  5410. == 32) {
  5411. mimo_txbw =
  5412. PHY_TXC1_BW_40MHZ_DUP;
  5413. /* use override */
  5414. } else if (wlc->mimo_40txbw != AUTO)
  5415. mimo_txbw = wlc->mimo_40txbw;
  5416. /* else check if dst is using 40 Mhz */
  5417. else if (scb->flags & SCB_IS40)
  5418. mimo_txbw = PHY_TXC1_BW_40MHZ;
  5419. } else if (is_ofdm_rate(rspec[k])) {
  5420. if (wlc->ofdm_40txbw != AUTO)
  5421. mimo_txbw = wlc->ofdm_40txbw;
  5422. } else if (wlc->cck_40txbw != AUTO) {
  5423. mimo_txbw = wlc->cck_40txbw;
  5424. }
  5425. } else {
  5426. /*
  5427. * mcs32 is 40 b/w only.
  5428. * This is possible for probe packets on
  5429. * a STA during SCAN
  5430. */
  5431. if ((rspec[k] & RSPEC_RATE_MASK) == 32)
  5432. /* mcs 0 */
  5433. rspec[k] = RSPEC_MIMORATE;
  5434. mimo_txbw = PHY_TXC1_BW_20MHZ;
  5435. }
  5436. /* Set channel width */
  5437. rspec[k] &= ~RSPEC_BW_MASK;
  5438. if ((k == 0) || ((k > 0) && is_mcs_rate(rspec[k])))
  5439. rspec[k] |= (mimo_txbw << RSPEC_BW_SHIFT);
  5440. else
  5441. rspec[k] |= (mimo_ctlchbw << RSPEC_BW_SHIFT);
  5442. /* Disable short GI, not supported yet */
  5443. rspec[k] &= ~RSPEC_SHORT_GI;
  5444. mimo_preamble_type = BRCMS_MM_PREAMBLE;
  5445. if (txrate[k]->flags & IEEE80211_TX_RC_GREEN_FIELD)
  5446. mimo_preamble_type = BRCMS_GF_PREAMBLE;
  5447. if ((txrate[k]->flags & IEEE80211_TX_RC_MCS)
  5448. && (!is_mcs_rate(rspec[k]))) {
  5449. brcms_warn(wlc->hw->d11core,
  5450. "wl%d: %s: IEEE80211_TX_RC_MCS != is_mcs_rate(rspec)\n",
  5451. wlc->pub->unit, __func__);
  5452. }
  5453. if (is_mcs_rate(rspec[k])) {
  5454. preamble_type[k] = mimo_preamble_type;
  5455. /*
  5456. * if SGI is selected, then forced mm
  5457. * for single stream
  5458. */
  5459. if ((rspec[k] & RSPEC_SHORT_GI)
  5460. && is_single_stream(rspec[k] &
  5461. RSPEC_RATE_MASK))
  5462. preamble_type[k] = BRCMS_MM_PREAMBLE;
  5463. }
  5464. /* should be better conditionalized */
  5465. if (!is_mcs_rate(rspec[0])
  5466. && (tx_info->control.rates[0].
  5467. flags & IEEE80211_TX_RC_USE_SHORT_PREAMBLE))
  5468. preamble_type[k] = BRCMS_SHORT_PREAMBLE;
  5469. }
  5470. } else {
  5471. for (k = 0; k < hw->max_rates; k++) {
  5472. /* Set ctrlchbw as 20Mhz */
  5473. rspec[k] &= ~RSPEC_BW_MASK;
  5474. rspec[k] |= (PHY_TXC1_BW_20MHZ << RSPEC_BW_SHIFT);
  5475. /* for nphy, stf of ofdm frames must follow policies */
  5476. if (BRCMS_ISNPHY(wlc->band) && is_ofdm_rate(rspec[k])) {
  5477. rspec[k] &= ~RSPEC_STF_MASK;
  5478. rspec[k] |= phyctl1_stf << RSPEC_STF_SHIFT;
  5479. }
  5480. }
  5481. }
  5482. /* Reset these for use with AMPDU's */
  5483. txrate[0]->count = 0;
  5484. txrate[1]->count = 0;
  5485. /* (2) PROTECTION, may change rspec */
  5486. if ((ieee80211_is_data(h->frame_control) ||
  5487. ieee80211_is_mgmt(h->frame_control)) &&
  5488. (phylen > wlc->RTSThresh) && !is_multicast_ether_addr(h->addr1))
  5489. use_rts = true;
  5490. /* (3) PLCP: determine PLCP header and MAC duration,
  5491. * fill struct d11txh */
  5492. brcms_c_compute_plcp(wlc, rspec[0], phylen, plcp);
  5493. brcms_c_compute_plcp(wlc, rspec[1], phylen, plcp_fallback);
  5494. memcpy(&txh->FragPLCPFallback,
  5495. plcp_fallback, sizeof(txh->FragPLCPFallback));
  5496. /* Length field now put in CCK FBR CRC field */
  5497. if (is_cck_rate(rspec[1])) {
  5498. txh->FragPLCPFallback[4] = phylen & 0xff;
  5499. txh->FragPLCPFallback[5] = (phylen & 0xff00) >> 8;
  5500. }
  5501. /* MIMO-RATE: need validation ?? */
  5502. mainrates = is_ofdm_rate(rspec[0]) ?
  5503. D11A_PHY_HDR_GRATE((struct ofdm_phy_hdr *) plcp) :
  5504. plcp[0];
  5505. /* DUR field for main rate */
  5506. if (!ieee80211_is_pspoll(h->frame_control) &&
  5507. !is_multicast_ether_addr(h->addr1) && !use_rifs) {
  5508. durid =
  5509. brcms_c_compute_frame_dur(wlc, rspec[0], preamble_type[0],
  5510. next_frag_len);
  5511. h->duration_id = cpu_to_le16(durid);
  5512. } else if (use_rifs) {
  5513. /* NAV protect to end of next max packet size */
  5514. durid =
  5515. (u16) brcms_c_calc_frame_time(wlc, rspec[0],
  5516. preamble_type[0],
  5517. DOT11_MAX_FRAG_LEN);
  5518. durid += RIFS_11N_TIME;
  5519. h->duration_id = cpu_to_le16(durid);
  5520. }
  5521. /* DUR field for fallback rate */
  5522. if (ieee80211_is_pspoll(h->frame_control))
  5523. txh->FragDurFallback = h->duration_id;
  5524. else if (is_multicast_ether_addr(h->addr1) || use_rifs)
  5525. txh->FragDurFallback = 0;
  5526. else {
  5527. durid = brcms_c_compute_frame_dur(wlc, rspec[1],
  5528. preamble_type[1], next_frag_len);
  5529. txh->FragDurFallback = cpu_to_le16(durid);
  5530. }
  5531. /* (4) MAC-HDR: MacTxControlLow */
  5532. if (frag == 0)
  5533. mcl |= TXC_STARTMSDU;
  5534. if (!is_multicast_ether_addr(h->addr1))
  5535. mcl |= TXC_IMMEDACK;
  5536. if (wlc->band->bandtype == BRCM_BAND_5G)
  5537. mcl |= TXC_FREQBAND_5G;
  5538. if (CHSPEC_IS40(wlc_phy_chanspec_get(wlc->band->pi)))
  5539. mcl |= TXC_BW_40;
  5540. /* set AMIC bit if using hardware TKIP MIC */
  5541. if (hwtkmic)
  5542. mcl |= TXC_AMIC;
  5543. txh->MacTxControlLow = cpu_to_le16(mcl);
  5544. /* MacTxControlHigh */
  5545. mch = 0;
  5546. /* Set fallback rate preamble type */
  5547. if ((preamble_type[1] == BRCMS_SHORT_PREAMBLE) ||
  5548. (preamble_type[1] == BRCMS_GF_PREAMBLE)) {
  5549. if (rspec2rate(rspec[1]) != BRCM_RATE_1M)
  5550. mch |= TXC_PREAMBLE_DATA_FB_SHORT;
  5551. }
  5552. /* MacFrameControl */
  5553. memcpy(&txh->MacFrameControl, &h->frame_control, sizeof(u16));
  5554. txh->TxFesTimeNormal = cpu_to_le16(0);
  5555. txh->TxFesTimeFallback = cpu_to_le16(0);
  5556. /* TxFrameRA */
  5557. memcpy(&txh->TxFrameRA, &h->addr1, ETH_ALEN);
  5558. /* TxFrameID */
  5559. txh->TxFrameID = cpu_to_le16(frameid);
  5560. /*
  5561. * TxStatus, Note the case of recreating the first frag of a suppressed
  5562. * frame then we may need to reset the retry cnt's via the status reg
  5563. */
  5564. txh->TxStatus = cpu_to_le16(status);
  5565. /*
  5566. * extra fields for ucode AMPDU aggregation, the new fields are added to
  5567. * the END of previous structure so that it's compatible in driver.
  5568. */
  5569. txh->MaxNMpdus = cpu_to_le16(0);
  5570. txh->MaxABytes_MRT = cpu_to_le16(0);
  5571. txh->MaxABytes_FBR = cpu_to_le16(0);
  5572. txh->MinMBytes = cpu_to_le16(0);
  5573. /* (5) RTS/CTS: determine RTS/CTS PLCP header and MAC duration,
  5574. * furnish struct d11txh */
  5575. /* RTS PLCP header and RTS frame */
  5576. if (use_rts || use_cts) {
  5577. if (use_rts && use_cts)
  5578. use_cts = false;
  5579. for (k = 0; k < 2; k++) {
  5580. rts_rspec[k] = brcms_c_rspec_to_rts_rspec(wlc, rspec[k],
  5581. false,
  5582. mimo_ctlchbw);
  5583. }
  5584. if (!is_ofdm_rate(rts_rspec[0]) &&
  5585. !((rspec2rate(rts_rspec[0]) == BRCM_RATE_1M) ||
  5586. (wlc->PLCPHdr_override == BRCMS_PLCP_LONG))) {
  5587. rts_preamble_type[0] = BRCMS_SHORT_PREAMBLE;
  5588. mch |= TXC_PREAMBLE_RTS_MAIN_SHORT;
  5589. }
  5590. if (!is_ofdm_rate(rts_rspec[1]) &&
  5591. !((rspec2rate(rts_rspec[1]) == BRCM_RATE_1M) ||
  5592. (wlc->PLCPHdr_override == BRCMS_PLCP_LONG))) {
  5593. rts_preamble_type[1] = BRCMS_SHORT_PREAMBLE;
  5594. mch |= TXC_PREAMBLE_RTS_FB_SHORT;
  5595. }
  5596. /* RTS/CTS additions to MacTxControlLow */
  5597. if (use_cts) {
  5598. txh->MacTxControlLow |= cpu_to_le16(TXC_SENDCTS);
  5599. } else {
  5600. txh->MacTxControlLow |= cpu_to_le16(TXC_SENDRTS);
  5601. txh->MacTxControlLow |= cpu_to_le16(TXC_LONGFRAME);
  5602. }
  5603. /* RTS PLCP header */
  5604. rts_plcp = txh->RTSPhyHeader;
  5605. if (use_cts)
  5606. rts_phylen = DOT11_CTS_LEN + FCS_LEN;
  5607. else
  5608. rts_phylen = DOT11_RTS_LEN + FCS_LEN;
  5609. brcms_c_compute_plcp(wlc, rts_rspec[0], rts_phylen, rts_plcp);
  5610. /* fallback rate version of RTS PLCP header */
  5611. brcms_c_compute_plcp(wlc, rts_rspec[1], rts_phylen,
  5612. rts_plcp_fallback);
  5613. memcpy(&txh->RTSPLCPFallback, rts_plcp_fallback,
  5614. sizeof(txh->RTSPLCPFallback));
  5615. /* RTS frame fields... */
  5616. rts = (struct ieee80211_rts *)&txh->rts_frame;
  5617. durid = brcms_c_compute_rtscts_dur(wlc, use_cts, rts_rspec[0],
  5618. rspec[0], rts_preamble_type[0],
  5619. preamble_type[0], phylen, false);
  5620. rts->duration = cpu_to_le16(durid);
  5621. /* fallback rate version of RTS DUR field */
  5622. durid = brcms_c_compute_rtscts_dur(wlc, use_cts,
  5623. rts_rspec[1], rspec[1],
  5624. rts_preamble_type[1],
  5625. preamble_type[1], phylen, false);
  5626. txh->RTSDurFallback = cpu_to_le16(durid);
  5627. if (use_cts) {
  5628. rts->frame_control = cpu_to_le16(IEEE80211_FTYPE_CTL |
  5629. IEEE80211_STYPE_CTS);
  5630. memcpy(&rts->ra, &h->addr2, ETH_ALEN);
  5631. } else {
  5632. rts->frame_control = cpu_to_le16(IEEE80211_FTYPE_CTL |
  5633. IEEE80211_STYPE_RTS);
  5634. memcpy(&rts->ra, &h->addr1, 2 * ETH_ALEN);
  5635. }
  5636. /* mainrate
  5637. * low 8 bits: main frag rate/mcs,
  5638. * high 8 bits: rts/cts rate/mcs
  5639. */
  5640. mainrates |= (is_ofdm_rate(rts_rspec[0]) ?
  5641. D11A_PHY_HDR_GRATE(
  5642. (struct ofdm_phy_hdr *) rts_plcp) :
  5643. rts_plcp[0]) << 8;
  5644. } else {
  5645. memset(txh->RTSPhyHeader, 0, D11_PHY_HDR_LEN);
  5646. memset(&txh->rts_frame, 0, sizeof(struct ieee80211_rts));
  5647. memset(txh->RTSPLCPFallback, 0, sizeof(txh->RTSPLCPFallback));
  5648. txh->RTSDurFallback = 0;
  5649. }
  5650. #ifdef SUPPORT_40MHZ
  5651. /* add null delimiter count */
  5652. if ((tx_info->flags & IEEE80211_TX_CTL_AMPDU) && is_mcs_rate(rspec))
  5653. txh->RTSPLCPFallback[AMPDU_FBR_NULL_DELIM] =
  5654. brcm_c_ampdu_null_delim_cnt(wlc->ampdu, scb, rspec, phylen);
  5655. #endif
  5656. /*
  5657. * Now that RTS/RTS FB preamble types are updated, write
  5658. * the final value
  5659. */
  5660. txh->MacTxControlHigh = cpu_to_le16(mch);
  5661. /*
  5662. * MainRates (both the rts and frag plcp rates have
  5663. * been calculated now)
  5664. */
  5665. txh->MainRates = cpu_to_le16(mainrates);
  5666. /* XtraFrameTypes */
  5667. xfts = frametype(rspec[1], wlc->mimoft);
  5668. xfts |= (frametype(rts_rspec[0], wlc->mimoft) << XFTS_RTS_FT_SHIFT);
  5669. xfts |= (frametype(rts_rspec[1], wlc->mimoft) << XFTS_FBRRTS_FT_SHIFT);
  5670. xfts |= CHSPEC_CHANNEL(wlc_phy_chanspec_get(wlc->band->pi)) <<
  5671. XFTS_CHANNEL_SHIFT;
  5672. txh->XtraFrameTypes = cpu_to_le16(xfts);
  5673. /* PhyTxControlWord */
  5674. phyctl = frametype(rspec[0], wlc->mimoft);
  5675. if ((preamble_type[0] == BRCMS_SHORT_PREAMBLE) ||
  5676. (preamble_type[0] == BRCMS_GF_PREAMBLE)) {
  5677. if (rspec2rate(rspec[0]) != BRCM_RATE_1M)
  5678. phyctl |= PHY_TXC_SHORT_HDR;
  5679. }
  5680. /* phytxant is properly bit shifted */
  5681. phyctl |= brcms_c_stf_d11hdrs_phyctl_txant(wlc, rspec[0]);
  5682. txh->PhyTxControlWord = cpu_to_le16(phyctl);
  5683. /* PhyTxControlWord_1 */
  5684. if (BRCMS_PHY_11N_CAP(wlc->band)) {
  5685. u16 phyctl1 = 0;
  5686. phyctl1 = brcms_c_phytxctl1_calc(wlc, rspec[0]);
  5687. txh->PhyTxControlWord_1 = cpu_to_le16(phyctl1);
  5688. phyctl1 = brcms_c_phytxctl1_calc(wlc, rspec[1]);
  5689. txh->PhyTxControlWord_1_Fbr = cpu_to_le16(phyctl1);
  5690. if (use_rts || use_cts) {
  5691. phyctl1 = brcms_c_phytxctl1_calc(wlc, rts_rspec[0]);
  5692. txh->PhyTxControlWord_1_Rts = cpu_to_le16(phyctl1);
  5693. phyctl1 = brcms_c_phytxctl1_calc(wlc, rts_rspec[1]);
  5694. txh->PhyTxControlWord_1_FbrRts = cpu_to_le16(phyctl1);
  5695. }
  5696. /*
  5697. * For mcs frames, if mixedmode(overloaded with long preamble)
  5698. * is going to be set, fill in non-zero MModeLen and/or
  5699. * MModeFbrLen it will be unnecessary if they are separated
  5700. */
  5701. if (is_mcs_rate(rspec[0]) &&
  5702. (preamble_type[0] == BRCMS_MM_PREAMBLE)) {
  5703. u16 mmodelen =
  5704. brcms_c_calc_lsig_len(wlc, rspec[0], phylen);
  5705. txh->MModeLen = cpu_to_le16(mmodelen);
  5706. }
  5707. if (is_mcs_rate(rspec[1]) &&
  5708. (preamble_type[1] == BRCMS_MM_PREAMBLE)) {
  5709. u16 mmodefbrlen =
  5710. brcms_c_calc_lsig_len(wlc, rspec[1], phylen);
  5711. txh->MModeFbrLen = cpu_to_le16(mmodefbrlen);
  5712. }
  5713. }
  5714. ac = skb_get_queue_mapping(p);
  5715. if ((scb->flags & SCB_WMECAP) && qos && wlc->edcf_txop[ac]) {
  5716. uint frag_dur, dur, dur_fallback;
  5717. /* WME: Update TXOP threshold */
  5718. if (!(tx_info->flags & IEEE80211_TX_CTL_AMPDU) && frag == 0) {
  5719. frag_dur =
  5720. brcms_c_calc_frame_time(wlc, rspec[0],
  5721. preamble_type[0], phylen);
  5722. if (rts) {
  5723. /* 1 RTS or CTS-to-self frame */
  5724. dur =
  5725. brcms_c_calc_cts_time(wlc, rts_rspec[0],
  5726. rts_preamble_type[0]);
  5727. dur_fallback =
  5728. brcms_c_calc_cts_time(wlc, rts_rspec[1],
  5729. rts_preamble_type[1]);
  5730. /* (SIFS + CTS) + SIFS + frame + SIFS + ACK */
  5731. dur += le16_to_cpu(rts->duration);
  5732. dur_fallback +=
  5733. le16_to_cpu(txh->RTSDurFallback);
  5734. } else if (use_rifs) {
  5735. dur = frag_dur;
  5736. dur_fallback = 0;
  5737. } else {
  5738. /* frame + SIFS + ACK */
  5739. dur = frag_dur;
  5740. dur +=
  5741. brcms_c_compute_frame_dur(wlc, rspec[0],
  5742. preamble_type[0], 0);
  5743. dur_fallback =
  5744. brcms_c_calc_frame_time(wlc, rspec[1],
  5745. preamble_type[1],
  5746. phylen);
  5747. dur_fallback +=
  5748. brcms_c_compute_frame_dur(wlc, rspec[1],
  5749. preamble_type[1], 0);
  5750. }
  5751. /* NEED to set TxFesTimeNormal (hard) */
  5752. txh->TxFesTimeNormal = cpu_to_le16((u16) dur);
  5753. /*
  5754. * NEED to set fallback rate version of
  5755. * TxFesTimeNormal (hard)
  5756. */
  5757. txh->TxFesTimeFallback =
  5758. cpu_to_le16((u16) dur_fallback);
  5759. /*
  5760. * update txop byte threshold (txop minus intraframe
  5761. * overhead)
  5762. */
  5763. if (wlc->edcf_txop[ac] >= (dur - frag_dur)) {
  5764. uint newfragthresh;
  5765. newfragthresh =
  5766. brcms_c_calc_frame_len(wlc,
  5767. rspec[0], preamble_type[0],
  5768. (wlc->edcf_txop[ac] -
  5769. (dur - frag_dur)));
  5770. /* range bound the fragthreshold */
  5771. if (newfragthresh < DOT11_MIN_FRAG_LEN)
  5772. newfragthresh =
  5773. DOT11_MIN_FRAG_LEN;
  5774. else if (newfragthresh >
  5775. wlc->usr_fragthresh)
  5776. newfragthresh =
  5777. wlc->usr_fragthresh;
  5778. /* update the fragthresh and do txc update */
  5779. if (wlc->fragthresh[queue] !=
  5780. (u16) newfragthresh)
  5781. wlc->fragthresh[queue] =
  5782. (u16) newfragthresh;
  5783. } else {
  5784. brcms_warn(wlc->hw->d11core,
  5785. "wl%d: %s txop invalid for rate %d\n",
  5786. wlc->pub->unit, fifo_names[queue],
  5787. rspec2rate(rspec[0]));
  5788. }
  5789. if (dur > wlc->edcf_txop[ac])
  5790. brcms_warn(wlc->hw->d11core,
  5791. "wl%d: %s: %s txop exceeded phylen %d/%d dur %d/%d\n",
  5792. wlc->pub->unit, __func__,
  5793. fifo_names[queue],
  5794. phylen, wlc->fragthresh[queue],
  5795. dur, wlc->edcf_txop[ac]);
  5796. }
  5797. }
  5798. return 0;
  5799. }
  5800. static int brcms_c_tx(struct brcms_c_info *wlc, struct sk_buff *skb)
  5801. {
  5802. struct dma_pub *dma;
  5803. int fifo, ret = -ENOSPC;
  5804. struct d11txh *txh;
  5805. u16 frameid = INVALIDFID;
  5806. fifo = brcms_ac_to_fifo(skb_get_queue_mapping(skb));
  5807. dma = wlc->hw->di[fifo];
  5808. txh = (struct d11txh *)(skb->data);
  5809. if (dma->txavail == 0) {
  5810. /*
  5811. * We sometimes get a frame from mac80211 after stopping
  5812. * the queues. This only ever seems to be a single frame
  5813. * and is seems likely to be a race. TX_HEADROOM should
  5814. * ensure that we have enough space to handle these stray
  5815. * packets, so warn if there isn't. If we're out of space
  5816. * in the tx ring and the tx queue isn't stopped then
  5817. * we've really got a bug; warn loudly if that happens.
  5818. */
  5819. brcms_warn(wlc->hw->d11core,
  5820. "Received frame for tx with no space in DMA ring\n");
  5821. WARN_ON(!ieee80211_queue_stopped(wlc->pub->ieee_hw,
  5822. skb_get_queue_mapping(skb)));
  5823. return -ENOSPC;
  5824. }
  5825. /* When a BC/MC frame is being committed to the BCMC fifo
  5826. * via DMA (NOT PIO), update ucode or BSS info as appropriate.
  5827. */
  5828. if (fifo == TX_BCMC_FIFO)
  5829. frameid = le16_to_cpu(txh->TxFrameID);
  5830. /* Commit BCMC sequence number in the SHM frame ID location */
  5831. if (frameid != INVALIDFID) {
  5832. /*
  5833. * To inform the ucode of the last mcast frame posted
  5834. * so that it can clear moredata bit
  5835. */
  5836. brcms_b_write_shm(wlc->hw, M_BCMC_FID, frameid);
  5837. }
  5838. ret = brcms_c_txfifo(wlc, fifo, skb);
  5839. /*
  5840. * The only reason for brcms_c_txfifo to fail is because
  5841. * there weren't any DMA descriptors, but we've already
  5842. * checked for that. So if it does fail yell loudly.
  5843. */
  5844. WARN_ON_ONCE(ret);
  5845. return ret;
  5846. }
  5847. bool brcms_c_sendpkt_mac80211(struct brcms_c_info *wlc, struct sk_buff *sdu,
  5848. struct ieee80211_hw *hw)
  5849. {
  5850. uint fifo;
  5851. struct scb *scb = &wlc->pri_scb;
  5852. fifo = brcms_ac_to_fifo(skb_get_queue_mapping(sdu));
  5853. brcms_c_d11hdrs_mac80211(wlc, hw, sdu, scb, 0, 1, fifo, 0);
  5854. if (!brcms_c_tx(wlc, sdu))
  5855. return true;
  5856. /* packet discarded */
  5857. dev_kfree_skb_any(sdu);
  5858. return false;
  5859. }
  5860. int
  5861. brcms_c_txfifo(struct brcms_c_info *wlc, uint fifo, struct sk_buff *p)
  5862. {
  5863. struct dma_pub *dma = wlc->hw->di[fifo];
  5864. int ret;
  5865. u16 queue;
  5866. ret = dma_txfast(wlc, dma, p);
  5867. if (ret < 0)
  5868. wiphy_err(wlc->wiphy, "txfifo: fatal, toss frames !!!\n");
  5869. /*
  5870. * Stop queue if DMA ring is full. Reserve some free descriptors,
  5871. * as we sometimes receive a frame from mac80211 after the queues
  5872. * are stopped.
  5873. */
  5874. queue = skb_get_queue_mapping(p);
  5875. if (dma->txavail <= TX_HEADROOM && fifo < TX_BCMC_FIFO &&
  5876. !ieee80211_queue_stopped(wlc->pub->ieee_hw, queue))
  5877. ieee80211_stop_queue(wlc->pub->ieee_hw, queue);
  5878. return ret;
  5879. }
  5880. u32
  5881. brcms_c_rspec_to_rts_rspec(struct brcms_c_info *wlc, u32 rspec,
  5882. bool use_rspec, u16 mimo_ctlchbw)
  5883. {
  5884. u32 rts_rspec = 0;
  5885. if (use_rspec)
  5886. /* use frame rate as rts rate */
  5887. rts_rspec = rspec;
  5888. else if (wlc->band->gmode && wlc->protection->_g && !is_cck_rate(rspec))
  5889. /* Use 11Mbps as the g protection RTS target rate and fallback.
  5890. * Use the brcms_basic_rate() lookup to find the best basic rate
  5891. * under the target in case 11 Mbps is not Basic.
  5892. * 6 and 9 Mbps are not usually selected by rate selection, but
  5893. * even if the OFDM rate we are protecting is 6 or 9 Mbps, 11
  5894. * is more robust.
  5895. */
  5896. rts_rspec = brcms_basic_rate(wlc, BRCM_RATE_11M);
  5897. else
  5898. /* calculate RTS rate and fallback rate based on the frame rate
  5899. * RTS must be sent at a basic rate since it is a
  5900. * control frame, sec 9.6 of 802.11 spec
  5901. */
  5902. rts_rspec = brcms_basic_rate(wlc, rspec);
  5903. if (BRCMS_PHY_11N_CAP(wlc->band)) {
  5904. /* set rts txbw to correct side band */
  5905. rts_rspec &= ~RSPEC_BW_MASK;
  5906. /*
  5907. * if rspec/rspec_fallback is 40MHz, then send RTS on both
  5908. * 20MHz channel (DUP), otherwise send RTS on control channel
  5909. */
  5910. if (rspec_is40mhz(rspec) && !is_cck_rate(rts_rspec))
  5911. rts_rspec |= (PHY_TXC1_BW_40MHZ_DUP << RSPEC_BW_SHIFT);
  5912. else
  5913. rts_rspec |= (mimo_ctlchbw << RSPEC_BW_SHIFT);
  5914. /* pick siso/cdd as default for ofdm */
  5915. if (is_ofdm_rate(rts_rspec)) {
  5916. rts_rspec &= ~RSPEC_STF_MASK;
  5917. rts_rspec |= (wlc->stf->ss_opmode << RSPEC_STF_SHIFT);
  5918. }
  5919. }
  5920. return rts_rspec;
  5921. }
  5922. /* Update beacon listen interval in shared memory */
  5923. static void brcms_c_bcn_li_upd(struct brcms_c_info *wlc)
  5924. {
  5925. /* wake up every DTIM is the default */
  5926. if (wlc->bcn_li_dtim == 1)
  5927. brcms_b_write_shm(wlc->hw, M_BCN_LI, 0);
  5928. else
  5929. brcms_b_write_shm(wlc->hw, M_BCN_LI,
  5930. (wlc->bcn_li_dtim << 8) | wlc->bcn_li_bcn);
  5931. }
  5932. static void
  5933. brcms_b_read_tsf(struct brcms_hardware *wlc_hw, u32 *tsf_l_ptr,
  5934. u32 *tsf_h_ptr)
  5935. {
  5936. struct bcma_device *core = wlc_hw->d11core;
  5937. /* read the tsf timer low, then high to get an atomic read */
  5938. *tsf_l_ptr = bcma_read32(core, D11REGOFFS(tsf_timerlow));
  5939. *tsf_h_ptr = bcma_read32(core, D11REGOFFS(tsf_timerhigh));
  5940. }
  5941. /*
  5942. * recover 64bit TSF value from the 16bit TSF value in the rx header
  5943. * given the assumption that the TSF passed in header is within 65ms
  5944. * of the current tsf.
  5945. *
  5946. * 6 5 4 4 3 2 1
  5947. * 3.......6.......8.......0.......2.......4.......6.......8......0
  5948. * |<---------- tsf_h ----------->||<--- tsf_l -->||<-RxTSFTime ->|
  5949. *
  5950. * The RxTSFTime are the lowest 16 bits and provided by the ucode. The
  5951. * tsf_l is filled in by brcms_b_recv, which is done earlier in the
  5952. * receive call sequence after rx interrupt. Only the higher 16 bits
  5953. * are used. Finally, the tsf_h is read from the tsf register.
  5954. */
  5955. static u64 brcms_c_recover_tsf64(struct brcms_c_info *wlc,
  5956. struct d11rxhdr *rxh)
  5957. {
  5958. u32 tsf_h, tsf_l;
  5959. u16 rx_tsf_0_15, rx_tsf_16_31;
  5960. brcms_b_read_tsf(wlc->hw, &tsf_l, &tsf_h);
  5961. rx_tsf_16_31 = (u16)(tsf_l >> 16);
  5962. rx_tsf_0_15 = rxh->RxTSFTime;
  5963. /*
  5964. * a greater tsf time indicates the low 16 bits of
  5965. * tsf_l wrapped, so decrement the high 16 bits.
  5966. */
  5967. if ((u16)tsf_l < rx_tsf_0_15) {
  5968. rx_tsf_16_31 -= 1;
  5969. if (rx_tsf_16_31 == 0xffff)
  5970. tsf_h -= 1;
  5971. }
  5972. return ((u64)tsf_h << 32) | (((u32)rx_tsf_16_31 << 16) + rx_tsf_0_15);
  5973. }
  5974. static void
  5975. prep_mac80211_status(struct brcms_c_info *wlc, struct d11rxhdr *rxh,
  5976. struct sk_buff *p,
  5977. struct ieee80211_rx_status *rx_status)
  5978. {
  5979. int preamble;
  5980. int channel;
  5981. u32 rspec;
  5982. unsigned char *plcp;
  5983. /* fill in TSF and flag its presence */
  5984. rx_status->mactime = brcms_c_recover_tsf64(wlc, rxh);
  5985. rx_status->flag |= RX_FLAG_MACTIME_START;
  5986. channel = BRCMS_CHAN_CHANNEL(rxh->RxChan);
  5987. rx_status->band =
  5988. channel > 14 ? IEEE80211_BAND_5GHZ : IEEE80211_BAND_2GHZ;
  5989. rx_status->freq =
  5990. ieee80211_channel_to_frequency(channel, rx_status->band);
  5991. rx_status->signal = wlc_phy_rssi_compute(wlc->hw->band->pi, rxh);
  5992. /* noise */
  5993. /* qual */
  5994. rx_status->antenna =
  5995. (rxh->PhyRxStatus_0 & PRXS0_RXANT_UPSUBBAND) ? 1 : 0;
  5996. plcp = p->data;
  5997. rspec = brcms_c_compute_rspec(rxh, plcp);
  5998. if (is_mcs_rate(rspec)) {
  5999. rx_status->rate_idx = rspec & RSPEC_RATE_MASK;
  6000. rx_status->flag |= RX_FLAG_HT;
  6001. if (rspec_is40mhz(rspec))
  6002. rx_status->flag |= RX_FLAG_40MHZ;
  6003. } else {
  6004. switch (rspec2rate(rspec)) {
  6005. case BRCM_RATE_1M:
  6006. rx_status->rate_idx = 0;
  6007. break;
  6008. case BRCM_RATE_2M:
  6009. rx_status->rate_idx = 1;
  6010. break;
  6011. case BRCM_RATE_5M5:
  6012. rx_status->rate_idx = 2;
  6013. break;
  6014. case BRCM_RATE_11M:
  6015. rx_status->rate_idx = 3;
  6016. break;
  6017. case BRCM_RATE_6M:
  6018. rx_status->rate_idx = 4;
  6019. break;
  6020. case BRCM_RATE_9M:
  6021. rx_status->rate_idx = 5;
  6022. break;
  6023. case BRCM_RATE_12M:
  6024. rx_status->rate_idx = 6;
  6025. break;
  6026. case BRCM_RATE_18M:
  6027. rx_status->rate_idx = 7;
  6028. break;
  6029. case BRCM_RATE_24M:
  6030. rx_status->rate_idx = 8;
  6031. break;
  6032. case BRCM_RATE_36M:
  6033. rx_status->rate_idx = 9;
  6034. break;
  6035. case BRCM_RATE_48M:
  6036. rx_status->rate_idx = 10;
  6037. break;
  6038. case BRCM_RATE_54M:
  6039. rx_status->rate_idx = 11;
  6040. break;
  6041. default:
  6042. brcms_err(wlc->hw->d11core,
  6043. "%s: Unknown rate\n", __func__);
  6044. }
  6045. /*
  6046. * For 5GHz, we should decrease the index as it is
  6047. * a subset of the 2.4G rates. See bitrates field
  6048. * of brcms_band_5GHz_nphy (in mac80211_if.c).
  6049. */
  6050. if (rx_status->band == IEEE80211_BAND_5GHZ)
  6051. rx_status->rate_idx -= BRCMS_LEGACY_5G_RATE_OFFSET;
  6052. /* Determine short preamble and rate_idx */
  6053. preamble = 0;
  6054. if (is_cck_rate(rspec)) {
  6055. if (rxh->PhyRxStatus_0 & PRXS0_SHORTH)
  6056. rx_status->flag |= RX_FLAG_SHORTPRE;
  6057. } else if (is_ofdm_rate(rspec)) {
  6058. rx_status->flag |= RX_FLAG_SHORTPRE;
  6059. } else {
  6060. brcms_err(wlc->hw->d11core, "%s: Unknown modulation\n",
  6061. __func__);
  6062. }
  6063. }
  6064. if (plcp3_issgi(plcp[3]))
  6065. rx_status->flag |= RX_FLAG_SHORT_GI;
  6066. if (rxh->RxStatus1 & RXS_DECERR) {
  6067. rx_status->flag |= RX_FLAG_FAILED_PLCP_CRC;
  6068. brcms_err(wlc->hw->d11core, "%s: RX_FLAG_FAILED_PLCP_CRC\n",
  6069. __func__);
  6070. }
  6071. if (rxh->RxStatus1 & RXS_FCSERR) {
  6072. rx_status->flag |= RX_FLAG_FAILED_FCS_CRC;
  6073. brcms_err(wlc->hw->d11core, "%s: RX_FLAG_FAILED_FCS_CRC\n",
  6074. __func__);
  6075. }
  6076. }
  6077. static void
  6078. brcms_c_recvctl(struct brcms_c_info *wlc, struct d11rxhdr *rxh,
  6079. struct sk_buff *p)
  6080. {
  6081. int len_mpdu;
  6082. struct ieee80211_rx_status rx_status;
  6083. struct ieee80211_hdr *hdr;
  6084. memset(&rx_status, 0, sizeof(rx_status));
  6085. prep_mac80211_status(wlc, rxh, p, &rx_status);
  6086. /* mac header+body length, exclude CRC and plcp header */
  6087. len_mpdu = p->len - D11_PHY_HDR_LEN - FCS_LEN;
  6088. skb_pull(p, D11_PHY_HDR_LEN);
  6089. __skb_trim(p, len_mpdu);
  6090. /* unmute transmit */
  6091. if (wlc->hw->suspended_fifos) {
  6092. hdr = (struct ieee80211_hdr *)p->data;
  6093. if (ieee80211_is_beacon(hdr->frame_control))
  6094. brcms_b_mute(wlc->hw, false);
  6095. }
  6096. memcpy(IEEE80211_SKB_RXCB(p), &rx_status, sizeof(rx_status));
  6097. ieee80211_rx_irqsafe(wlc->pub->ieee_hw, p);
  6098. }
  6099. /* calculate frame duration for Mixed-mode L-SIG spoofing, return
  6100. * number of bytes goes in the length field
  6101. *
  6102. * Formula given by HT PHY Spec v 1.13
  6103. * len = 3(nsyms + nstream + 3) - 3
  6104. */
  6105. u16
  6106. brcms_c_calc_lsig_len(struct brcms_c_info *wlc, u32 ratespec,
  6107. uint mac_len)
  6108. {
  6109. uint nsyms, len = 0, kNdps;
  6110. if (is_mcs_rate(ratespec)) {
  6111. uint mcs = ratespec & RSPEC_RATE_MASK;
  6112. int tot_streams = (mcs_2_txstreams(mcs) + 1) +
  6113. rspec_stc(ratespec);
  6114. /*
  6115. * the payload duration calculation matches that
  6116. * of regular ofdm
  6117. */
  6118. /* 1000Ndbps = kbps * 4 */
  6119. kNdps = mcs_2_rate(mcs, rspec_is40mhz(ratespec),
  6120. rspec_issgi(ratespec)) * 4;
  6121. if (rspec_stc(ratespec) == 0)
  6122. nsyms =
  6123. CEIL((APHY_SERVICE_NBITS + 8 * mac_len +
  6124. APHY_TAIL_NBITS) * 1000, kNdps);
  6125. else
  6126. /* STBC needs to have even number of symbols */
  6127. nsyms =
  6128. 2 *
  6129. CEIL((APHY_SERVICE_NBITS + 8 * mac_len +
  6130. APHY_TAIL_NBITS) * 1000, 2 * kNdps);
  6131. /* (+3) account for HT-SIG(2) and HT-STF(1) */
  6132. nsyms += (tot_streams + 3);
  6133. /*
  6134. * 3 bytes/symbol @ legacy 6Mbps rate
  6135. * (-3) excluding service bits and tail bits
  6136. */
  6137. len = (3 * nsyms) - 3;
  6138. }
  6139. return (u16) len;
  6140. }
  6141. static void
  6142. brcms_c_mod_prb_rsp_rate_table(struct brcms_c_info *wlc, uint frame_len)
  6143. {
  6144. const struct brcms_c_rateset *rs_dflt;
  6145. struct brcms_c_rateset rs;
  6146. u8 rate;
  6147. u16 entry_ptr;
  6148. u8 plcp[D11_PHY_HDR_LEN];
  6149. u16 dur, sifs;
  6150. uint i;
  6151. sifs = get_sifs(wlc->band);
  6152. rs_dflt = brcms_c_rateset_get_hwrs(wlc);
  6153. brcms_c_rateset_copy(rs_dflt, &rs);
  6154. brcms_c_rateset_mcs_upd(&rs, wlc->stf->txstreams);
  6155. /*
  6156. * walk the phy rate table and update MAC core SHM
  6157. * basic rate table entries
  6158. */
  6159. for (i = 0; i < rs.count; i++) {
  6160. rate = rs.rates[i] & BRCMS_RATE_MASK;
  6161. entry_ptr = brcms_b_rate_shm_offset(wlc->hw, rate);
  6162. /* Calculate the Probe Response PLCP for the given rate */
  6163. brcms_c_compute_plcp(wlc, rate, frame_len, plcp);
  6164. /*
  6165. * Calculate the duration of the Probe Response
  6166. * frame plus SIFS for the MAC
  6167. */
  6168. dur = (u16) brcms_c_calc_frame_time(wlc, rate,
  6169. BRCMS_LONG_PREAMBLE, frame_len);
  6170. dur += sifs;
  6171. /* Update the SHM Rate Table entry Probe Response values */
  6172. brcms_b_write_shm(wlc->hw, entry_ptr + M_RT_PRS_PLCP_POS,
  6173. (u16) (plcp[0] + (plcp[1] << 8)));
  6174. brcms_b_write_shm(wlc->hw, entry_ptr + M_RT_PRS_PLCP_POS + 2,
  6175. (u16) (plcp[2] + (plcp[3] << 8)));
  6176. brcms_b_write_shm(wlc->hw, entry_ptr + M_RT_PRS_DUR_POS, dur);
  6177. }
  6178. }
  6179. int brcms_c_get_header_len(void)
  6180. {
  6181. return TXOFF;
  6182. }
  6183. static void brcms_c_beacon_write(struct brcms_c_info *wlc,
  6184. struct sk_buff *beacon, u16 tim_offset,
  6185. u16 dtim_period, bool bcn0, bool bcn1)
  6186. {
  6187. size_t len;
  6188. struct ieee80211_tx_info *tx_info;
  6189. struct brcms_hardware *wlc_hw = wlc->hw;
  6190. struct ieee80211_hw *ieee_hw = brcms_c_pub(wlc)->ieee_hw;
  6191. /* Get tx_info */
  6192. tx_info = IEEE80211_SKB_CB(beacon);
  6193. len = min_t(size_t, beacon->len, BCN_TMPL_LEN);
  6194. wlc->bcn_rspec = ieee80211_get_tx_rate(ieee_hw, tx_info)->hw_value;
  6195. brcms_c_compute_plcp(wlc, wlc->bcn_rspec,
  6196. len + FCS_LEN - D11_PHY_HDR_LEN, beacon->data);
  6197. /* "Regular" and 16 MBSS but not for 4 MBSS */
  6198. /* Update the phytxctl for the beacon based on the rspec */
  6199. brcms_c_beacon_phytxctl_txant_upd(wlc, wlc->bcn_rspec);
  6200. if (bcn0) {
  6201. /* write the probe response into the template region */
  6202. brcms_b_write_template_ram(wlc_hw, T_BCN0_TPL_BASE,
  6203. (len + 3) & ~3, beacon->data);
  6204. /* write beacon length to SCR */
  6205. brcms_b_write_shm(wlc_hw, M_BCN0_FRM_BYTESZ, (u16) len);
  6206. }
  6207. if (bcn1) {
  6208. /* write the probe response into the template region */
  6209. brcms_b_write_template_ram(wlc_hw, T_BCN1_TPL_BASE,
  6210. (len + 3) & ~3, beacon->data);
  6211. /* write beacon length to SCR */
  6212. brcms_b_write_shm(wlc_hw, M_BCN1_FRM_BYTESZ, (u16) len);
  6213. }
  6214. if (tim_offset != 0) {
  6215. brcms_b_write_shm(wlc_hw, M_TIMBPOS_INBEACON,
  6216. tim_offset + D11B_PHY_HDR_LEN);
  6217. brcms_b_write_shm(wlc_hw, M_DOT11_DTIMPERIOD, dtim_period);
  6218. } else {
  6219. brcms_b_write_shm(wlc_hw, M_TIMBPOS_INBEACON,
  6220. len + D11B_PHY_HDR_LEN);
  6221. brcms_b_write_shm(wlc_hw, M_DOT11_DTIMPERIOD, 0);
  6222. }
  6223. }
  6224. static void brcms_c_update_beacon_hw(struct brcms_c_info *wlc,
  6225. struct sk_buff *beacon, u16 tim_offset,
  6226. u16 dtim_period)
  6227. {
  6228. struct brcms_hardware *wlc_hw = wlc->hw;
  6229. struct bcma_device *core = wlc_hw->d11core;
  6230. /* Hardware beaconing for this config */
  6231. u32 both_valid = MCMD_BCN0VLD | MCMD_BCN1VLD;
  6232. /* Check if both templates are in use, if so sched. an interrupt
  6233. * that will call back into this routine
  6234. */
  6235. if ((bcma_read32(core, D11REGOFFS(maccommand)) & both_valid) == both_valid)
  6236. /* clear any previous status */
  6237. bcma_write32(core, D11REGOFFS(macintstatus), MI_BCNTPL);
  6238. if (wlc->beacon_template_virgin) {
  6239. wlc->beacon_template_virgin = false;
  6240. brcms_c_beacon_write(wlc, beacon, tim_offset, dtim_period, true,
  6241. true);
  6242. /* mark beacon0 valid */
  6243. bcma_set32(core, D11REGOFFS(maccommand), MCMD_BCN0VLD);
  6244. return;
  6245. }
  6246. /* Check that after scheduling the interrupt both of the
  6247. * templates are still busy. if not clear the int. & remask
  6248. */
  6249. if ((bcma_read32(core, D11REGOFFS(maccommand)) & both_valid) == both_valid) {
  6250. wlc->defmacintmask |= MI_BCNTPL;
  6251. return;
  6252. }
  6253. if (!(bcma_read32(core, D11REGOFFS(maccommand)) & MCMD_BCN0VLD)) {
  6254. brcms_c_beacon_write(wlc, beacon, tim_offset, dtim_period, true,
  6255. false);
  6256. /* mark beacon0 valid */
  6257. bcma_set32(core, D11REGOFFS(maccommand), MCMD_BCN0VLD);
  6258. return;
  6259. }
  6260. if (!(bcma_read32(core, D11REGOFFS(maccommand)) & MCMD_BCN1VLD)) {
  6261. brcms_c_beacon_write(wlc, beacon, tim_offset, dtim_period,
  6262. false, true);
  6263. /* mark beacon0 valid */
  6264. bcma_set32(core, D11REGOFFS(maccommand), MCMD_BCN1VLD);
  6265. return;
  6266. }
  6267. return;
  6268. }
  6269. /*
  6270. * Update all beacons for the system.
  6271. */
  6272. void brcms_c_update_beacon(struct brcms_c_info *wlc)
  6273. {
  6274. struct brcms_bss_cfg *bsscfg = wlc->bsscfg;
  6275. if (wlc->pub->up && (bsscfg->type == BRCMS_TYPE_AP ||
  6276. bsscfg->type == BRCMS_TYPE_ADHOC)) {
  6277. /* Clear the soft intmask */
  6278. wlc->defmacintmask &= ~MI_BCNTPL;
  6279. if (!wlc->beacon)
  6280. return;
  6281. brcms_c_update_beacon_hw(wlc, wlc->beacon,
  6282. wlc->beacon_tim_offset,
  6283. wlc->beacon_dtim_period);
  6284. }
  6285. }
  6286. void brcms_c_set_new_beacon(struct brcms_c_info *wlc, struct sk_buff *beacon,
  6287. u16 tim_offset, u16 dtim_period)
  6288. {
  6289. if (!beacon)
  6290. return;
  6291. if (wlc->beacon)
  6292. dev_kfree_skb_any(wlc->beacon);
  6293. wlc->beacon = beacon;
  6294. /* add PLCP */
  6295. skb_push(wlc->beacon, D11_PHY_HDR_LEN);
  6296. wlc->beacon_tim_offset = tim_offset;
  6297. wlc->beacon_dtim_period = dtim_period;
  6298. brcms_c_update_beacon(wlc);
  6299. }
  6300. void brcms_c_set_new_probe_resp(struct brcms_c_info *wlc,
  6301. struct sk_buff *probe_resp)
  6302. {
  6303. if (!probe_resp)
  6304. return;
  6305. if (wlc->probe_resp)
  6306. dev_kfree_skb_any(wlc->probe_resp);
  6307. wlc->probe_resp = probe_resp;
  6308. /* add PLCP */
  6309. skb_push(wlc->probe_resp, D11_PHY_HDR_LEN);
  6310. brcms_c_update_probe_resp(wlc, false);
  6311. }
  6312. void brcms_c_enable_probe_resp(struct brcms_c_info *wlc, bool enable)
  6313. {
  6314. /*
  6315. * prevent ucode from sending probe responses by setting the timeout
  6316. * to 1, it can not send it in that time frame.
  6317. */
  6318. wlc->prb_resp_timeout = enable ? BRCMS_PRB_RESP_TIMEOUT : 1;
  6319. brcms_b_write_shm(wlc->hw, M_PRS_MAXTIME, wlc->prb_resp_timeout);
  6320. /* TODO: if (enable) => also deactivate receiving of probe request */
  6321. }
  6322. /* Write ssid into shared memory */
  6323. static void
  6324. brcms_c_shm_ssid_upd(struct brcms_c_info *wlc, struct brcms_bss_cfg *cfg)
  6325. {
  6326. u8 *ssidptr = cfg->SSID;
  6327. u16 base = M_SSID;
  6328. u8 ssidbuf[IEEE80211_MAX_SSID_LEN];
  6329. /* padding the ssid with zero and copy it into shm */
  6330. memset(ssidbuf, 0, IEEE80211_MAX_SSID_LEN);
  6331. memcpy(ssidbuf, ssidptr, cfg->SSID_len);
  6332. brcms_c_copyto_shm(wlc, base, ssidbuf, IEEE80211_MAX_SSID_LEN);
  6333. brcms_b_write_shm(wlc->hw, M_SSIDLEN, (u16) cfg->SSID_len);
  6334. }
  6335. static void
  6336. brcms_c_bss_update_probe_resp(struct brcms_c_info *wlc,
  6337. struct brcms_bss_cfg *cfg,
  6338. struct sk_buff *probe_resp,
  6339. bool suspend)
  6340. {
  6341. int len;
  6342. len = min_t(size_t, probe_resp->len, BCN_TMPL_LEN);
  6343. if (suspend)
  6344. brcms_c_suspend_mac_and_wait(wlc);
  6345. /* write the probe response into the template region */
  6346. brcms_b_write_template_ram(wlc->hw, T_PRS_TPL_BASE,
  6347. (len + 3) & ~3, probe_resp->data);
  6348. /* write the length of the probe response frame (+PLCP/-FCS) */
  6349. brcms_b_write_shm(wlc->hw, M_PRB_RESP_FRM_LEN, (u16) len);
  6350. /* write the SSID and SSID length */
  6351. brcms_c_shm_ssid_upd(wlc, cfg);
  6352. /*
  6353. * Write PLCP headers and durations for probe response frames
  6354. * at all rates. Use the actual frame length covered by the
  6355. * PLCP header for the call to brcms_c_mod_prb_rsp_rate_table()
  6356. * by subtracting the PLCP len and adding the FCS.
  6357. */
  6358. brcms_c_mod_prb_rsp_rate_table(wlc,
  6359. (u16)len + FCS_LEN - D11_PHY_HDR_LEN);
  6360. if (suspend)
  6361. brcms_c_enable_mac(wlc);
  6362. }
  6363. void brcms_c_update_probe_resp(struct brcms_c_info *wlc, bool suspend)
  6364. {
  6365. struct brcms_bss_cfg *bsscfg = wlc->bsscfg;
  6366. /* update AP or IBSS probe responses */
  6367. if (wlc->pub->up && (bsscfg->type == BRCMS_TYPE_AP ||
  6368. bsscfg->type == BRCMS_TYPE_ADHOC)) {
  6369. if (!wlc->probe_resp)
  6370. return;
  6371. brcms_c_bss_update_probe_resp(wlc, bsscfg, wlc->probe_resp,
  6372. suspend);
  6373. }
  6374. }
  6375. int brcms_b_xmtfifo_sz_get(struct brcms_hardware *wlc_hw, uint fifo,
  6376. uint *blocks)
  6377. {
  6378. if (fifo >= NFIFO)
  6379. return -EINVAL;
  6380. *blocks = wlc_hw->xmtfifo_sz[fifo];
  6381. return 0;
  6382. }
  6383. void
  6384. brcms_c_set_addrmatch(struct brcms_c_info *wlc, int match_reg_offset,
  6385. const u8 *addr)
  6386. {
  6387. brcms_b_set_addrmatch(wlc->hw, match_reg_offset, addr);
  6388. if (match_reg_offset == RCM_BSSID_OFFSET)
  6389. memcpy(wlc->bsscfg->BSSID, addr, ETH_ALEN);
  6390. }
  6391. /*
  6392. * Flag 'scan in progress' to withhold dynamic phy calibration
  6393. */
  6394. void brcms_c_scan_start(struct brcms_c_info *wlc)
  6395. {
  6396. wlc_phy_hold_upd(wlc->band->pi, PHY_HOLD_FOR_SCAN, true);
  6397. }
  6398. void brcms_c_scan_stop(struct brcms_c_info *wlc)
  6399. {
  6400. wlc_phy_hold_upd(wlc->band->pi, PHY_HOLD_FOR_SCAN, false);
  6401. }
  6402. void brcms_c_associate_upd(struct brcms_c_info *wlc, bool state)
  6403. {
  6404. wlc->pub->associated = state;
  6405. }
  6406. /*
  6407. * When a remote STA/AP is removed by Mac80211, or when it can no longer accept
  6408. * AMPDU traffic, packets pending in hardware have to be invalidated so that
  6409. * when later on hardware releases them, they can be handled appropriately.
  6410. */
  6411. void brcms_c_inval_dma_pkts(struct brcms_hardware *hw,
  6412. struct ieee80211_sta *sta,
  6413. void (*dma_callback_fn))
  6414. {
  6415. struct dma_pub *dmah;
  6416. int i;
  6417. for (i = 0; i < NFIFO; i++) {
  6418. dmah = hw->di[i];
  6419. if (dmah != NULL)
  6420. dma_walk_packets(dmah, dma_callback_fn, sta);
  6421. }
  6422. }
  6423. int brcms_c_get_curband(struct brcms_c_info *wlc)
  6424. {
  6425. return wlc->band->bandunit;
  6426. }
  6427. bool brcms_c_tx_flush_completed(struct brcms_c_info *wlc)
  6428. {
  6429. int i;
  6430. /* Kick DMA to send any pending AMPDU */
  6431. for (i = 0; i < ARRAY_SIZE(wlc->hw->di); i++)
  6432. if (wlc->hw->di[i])
  6433. dma_kick_tx(wlc->hw->di[i]);
  6434. return !brcms_txpktpendtot(wlc);
  6435. }
  6436. void brcms_c_set_beacon_listen_interval(struct brcms_c_info *wlc, u8 interval)
  6437. {
  6438. wlc->bcn_li_bcn = interval;
  6439. if (wlc->pub->up)
  6440. brcms_c_bcn_li_upd(wlc);
  6441. }
  6442. u64 brcms_c_tsf_get(struct brcms_c_info *wlc)
  6443. {
  6444. u32 tsf_h, tsf_l;
  6445. u64 tsf;
  6446. brcms_b_read_tsf(wlc->hw, &tsf_l, &tsf_h);
  6447. tsf = tsf_h;
  6448. tsf <<= 32;
  6449. tsf |= tsf_l;
  6450. return tsf;
  6451. }
  6452. void brcms_c_tsf_set(struct brcms_c_info *wlc, u64 tsf)
  6453. {
  6454. u32 tsf_h, tsf_l;
  6455. brcms_c_time_lock(wlc);
  6456. tsf_l = tsf;
  6457. tsf_h = (tsf >> 32);
  6458. /* read the tsf timer low, then high to get an atomic read */
  6459. bcma_write32(wlc->hw->d11core, D11REGOFFS(tsf_timerlow), tsf_l);
  6460. bcma_write32(wlc->hw->d11core, D11REGOFFS(tsf_timerhigh), tsf_h);
  6461. brcms_c_time_unlock(wlc);
  6462. }
  6463. int brcms_c_set_tx_power(struct brcms_c_info *wlc, int txpwr)
  6464. {
  6465. uint qdbm;
  6466. /* Remove override bit and clip to max qdbm value */
  6467. qdbm = min_t(uint, txpwr * BRCMS_TXPWR_DB_FACTOR, 0xff);
  6468. return wlc_phy_txpower_set(wlc->band->pi, qdbm, false);
  6469. }
  6470. int brcms_c_get_tx_power(struct brcms_c_info *wlc)
  6471. {
  6472. uint qdbm;
  6473. bool override;
  6474. wlc_phy_txpower_get(wlc->band->pi, &qdbm, &override);
  6475. /* Return qdbm units */
  6476. return (int)(qdbm / BRCMS_TXPWR_DB_FACTOR);
  6477. }
  6478. /* Process received frames */
  6479. /*
  6480. * Return true if more frames need to be processed. false otherwise.
  6481. * Param 'bound' indicates max. # frames to process before break out.
  6482. */
  6483. static void brcms_c_recv(struct brcms_c_info *wlc, struct sk_buff *p)
  6484. {
  6485. struct d11rxhdr *rxh;
  6486. struct ieee80211_hdr *h;
  6487. uint len;
  6488. bool is_amsdu;
  6489. /* frame starts with rxhdr */
  6490. rxh = (struct d11rxhdr *) (p->data);
  6491. /* strip off rxhdr */
  6492. skb_pull(p, BRCMS_HWRXOFF);
  6493. /* MAC inserts 2 pad bytes for a4 headers or QoS or A-MSDU subframes */
  6494. if (rxh->RxStatus1 & RXS_PBPRES) {
  6495. if (p->len < 2) {
  6496. brcms_err(wlc->hw->d11core,
  6497. "wl%d: recv: rcvd runt of len %d\n",
  6498. wlc->pub->unit, p->len);
  6499. goto toss;
  6500. }
  6501. skb_pull(p, 2);
  6502. }
  6503. h = (struct ieee80211_hdr *)(p->data + D11_PHY_HDR_LEN);
  6504. len = p->len;
  6505. if (rxh->RxStatus1 & RXS_FCSERR) {
  6506. if (!(wlc->filter_flags & FIF_FCSFAIL))
  6507. goto toss;
  6508. }
  6509. /* check received pkt has at least frame control field */
  6510. if (len < D11_PHY_HDR_LEN + sizeof(h->frame_control))
  6511. goto toss;
  6512. /* not supporting A-MSDU */
  6513. is_amsdu = rxh->RxStatus2 & RXS_AMSDU_MASK;
  6514. if (is_amsdu)
  6515. goto toss;
  6516. brcms_c_recvctl(wlc, rxh, p);
  6517. return;
  6518. toss:
  6519. brcmu_pkt_buf_free_skb(p);
  6520. }
  6521. /* Process received frames */
  6522. /*
  6523. * Return true if more frames need to be processed. false otherwise.
  6524. * Param 'bound' indicates max. # frames to process before break out.
  6525. */
  6526. static bool
  6527. brcms_b_recv(struct brcms_hardware *wlc_hw, uint fifo, bool bound)
  6528. {
  6529. struct sk_buff *p;
  6530. struct sk_buff *next = NULL;
  6531. struct sk_buff_head recv_frames;
  6532. uint n = 0;
  6533. uint bound_limit = bound ? RXBND : -1;
  6534. bool morepending = false;
  6535. skb_queue_head_init(&recv_frames);
  6536. /* gather received frames */
  6537. do {
  6538. /* !give others some time to run! */
  6539. if (n >= bound_limit)
  6540. break;
  6541. morepending = dma_rx(wlc_hw->di[fifo], &recv_frames);
  6542. n++;
  6543. } while (morepending);
  6544. /* post more rbufs */
  6545. dma_rxfill(wlc_hw->di[fifo]);
  6546. /* process each frame */
  6547. skb_queue_walk_safe(&recv_frames, p, next) {
  6548. struct d11rxhdr_le *rxh_le;
  6549. struct d11rxhdr *rxh;
  6550. skb_unlink(p, &recv_frames);
  6551. rxh_le = (struct d11rxhdr_le *)p->data;
  6552. rxh = (struct d11rxhdr *)p->data;
  6553. /* fixup rx header endianness */
  6554. rxh->RxFrameSize = le16_to_cpu(rxh_le->RxFrameSize);
  6555. rxh->PhyRxStatus_0 = le16_to_cpu(rxh_le->PhyRxStatus_0);
  6556. rxh->PhyRxStatus_1 = le16_to_cpu(rxh_le->PhyRxStatus_1);
  6557. rxh->PhyRxStatus_2 = le16_to_cpu(rxh_le->PhyRxStatus_2);
  6558. rxh->PhyRxStatus_3 = le16_to_cpu(rxh_le->PhyRxStatus_3);
  6559. rxh->PhyRxStatus_4 = le16_to_cpu(rxh_le->PhyRxStatus_4);
  6560. rxh->PhyRxStatus_5 = le16_to_cpu(rxh_le->PhyRxStatus_5);
  6561. rxh->RxStatus1 = le16_to_cpu(rxh_le->RxStatus1);
  6562. rxh->RxStatus2 = le16_to_cpu(rxh_le->RxStatus2);
  6563. rxh->RxTSFTime = le16_to_cpu(rxh_le->RxTSFTime);
  6564. rxh->RxChan = le16_to_cpu(rxh_le->RxChan);
  6565. brcms_c_recv(wlc_hw->wlc, p);
  6566. }
  6567. return morepending;
  6568. }
  6569. /* second-level interrupt processing
  6570. * Return true if another dpc needs to be re-scheduled. false otherwise.
  6571. * Param 'bounded' indicates if applicable loops should be bounded.
  6572. */
  6573. bool brcms_c_dpc(struct brcms_c_info *wlc, bool bounded)
  6574. {
  6575. u32 macintstatus;
  6576. struct brcms_hardware *wlc_hw = wlc->hw;
  6577. struct bcma_device *core = wlc_hw->d11core;
  6578. if (brcms_deviceremoved(wlc)) {
  6579. brcms_err(core, "wl%d: %s: dead chip\n", wlc_hw->unit,
  6580. __func__);
  6581. brcms_down(wlc->wl);
  6582. return false;
  6583. }
  6584. /* grab and clear the saved software intstatus bits */
  6585. macintstatus = wlc->macintstatus;
  6586. wlc->macintstatus = 0;
  6587. brcms_dbg_int(core, "wl%d: macintstatus 0x%x\n",
  6588. wlc_hw->unit, macintstatus);
  6589. WARN_ON(macintstatus & MI_PRQ); /* PRQ Interrupt in non-MBSS */
  6590. /* tx status */
  6591. if (macintstatus & MI_TFS) {
  6592. bool fatal;
  6593. if (brcms_b_txstatus(wlc->hw, bounded, &fatal))
  6594. wlc->macintstatus |= MI_TFS;
  6595. if (fatal) {
  6596. brcms_err(core, "MI_TFS: fatal\n");
  6597. goto fatal;
  6598. }
  6599. }
  6600. if (macintstatus & (MI_TBTT | MI_DTIM_TBTT))
  6601. brcms_c_tbtt(wlc);
  6602. /* ATIM window end */
  6603. if (macintstatus & MI_ATIMWINEND) {
  6604. brcms_dbg_info(core, "end of ATIM window\n");
  6605. bcma_set32(core, D11REGOFFS(maccommand), wlc->qvalid);
  6606. wlc->qvalid = 0;
  6607. }
  6608. /*
  6609. * received data or control frame, MI_DMAINT is
  6610. * indication of RX_FIFO interrupt
  6611. */
  6612. if (macintstatus & MI_DMAINT)
  6613. if (brcms_b_recv(wlc_hw, RX_FIFO, bounded))
  6614. wlc->macintstatus |= MI_DMAINT;
  6615. /* noise sample collected */
  6616. if (macintstatus & MI_BG_NOISE)
  6617. wlc_phy_noise_sample_intr(wlc_hw->band->pi);
  6618. if (macintstatus & MI_GP0) {
  6619. brcms_err(core, "wl%d: PSM microcode watchdog fired at %d "
  6620. "(seconds). Resetting.\n", wlc_hw->unit, wlc_hw->now);
  6621. printk_once("%s : PSM Watchdog, chipid 0x%x, chiprev 0x%x\n",
  6622. __func__, ai_get_chip_id(wlc_hw->sih),
  6623. ai_get_chiprev(wlc_hw->sih));
  6624. brcms_fatal_error(wlc_hw->wlc->wl);
  6625. }
  6626. /* gptimer timeout */
  6627. if (macintstatus & MI_TO)
  6628. bcma_write32(core, D11REGOFFS(gptimer), 0);
  6629. if (macintstatus & MI_RFDISABLE) {
  6630. brcms_dbg_info(core, "wl%d: BMAC Detected a change on the"
  6631. " RF Disable Input\n", wlc_hw->unit);
  6632. brcms_rfkill_set_hw_state(wlc->wl);
  6633. }
  6634. /* BCN template is available */
  6635. if (macintstatus & MI_BCNTPL)
  6636. brcms_c_update_beacon(wlc);
  6637. /* it isn't done and needs to be resched if macintstatus is non-zero */
  6638. return wlc->macintstatus != 0;
  6639. fatal:
  6640. brcms_fatal_error(wlc_hw->wlc->wl);
  6641. return wlc->macintstatus != 0;
  6642. }
  6643. void brcms_c_init(struct brcms_c_info *wlc, bool mute_tx)
  6644. {
  6645. struct bcma_device *core = wlc->hw->d11core;
  6646. struct ieee80211_channel *ch = wlc->pub->ieee_hw->conf.chandef.chan;
  6647. u16 chanspec;
  6648. brcms_dbg_info(core, "wl%d\n", wlc->pub->unit);
  6649. chanspec = ch20mhz_chspec(ch->hw_value);
  6650. brcms_b_init(wlc->hw, chanspec);
  6651. /* update beacon listen interval */
  6652. brcms_c_bcn_li_upd(wlc);
  6653. /* write ethernet address to core */
  6654. brcms_c_set_mac(wlc->bsscfg);
  6655. brcms_c_set_bssid(wlc->bsscfg);
  6656. /* Update tsf_cfprep if associated and up */
  6657. if (wlc->pub->associated && wlc->pub->up) {
  6658. u32 bi;
  6659. /* get beacon period and convert to uS */
  6660. bi = wlc->bsscfg->current_bss->beacon_period << 10;
  6661. /*
  6662. * update since init path would reset
  6663. * to default value
  6664. */
  6665. bcma_write32(core, D11REGOFFS(tsf_cfprep),
  6666. bi << CFPREP_CBI_SHIFT);
  6667. /* Update maccontrol PM related bits */
  6668. brcms_c_set_ps_ctrl(wlc);
  6669. }
  6670. brcms_c_bandinit_ordered(wlc, chanspec);
  6671. /* init probe response timeout */
  6672. brcms_b_write_shm(wlc->hw, M_PRS_MAXTIME, wlc->prb_resp_timeout);
  6673. /* init max burst txop (framebursting) */
  6674. brcms_b_write_shm(wlc->hw, M_MBURST_TXOP,
  6675. (wlc->
  6676. _rifs ? (EDCF_AC_VO_TXOP_AP << 5) : MAXFRAMEBURST_TXOP));
  6677. /* initialize maximum allowed duty cycle */
  6678. brcms_c_duty_cycle_set(wlc, wlc->tx_duty_cycle_ofdm, true, true);
  6679. brcms_c_duty_cycle_set(wlc, wlc->tx_duty_cycle_cck, false, true);
  6680. /*
  6681. * Update some shared memory locations related to
  6682. * max AMPDU size allowed to received
  6683. */
  6684. brcms_c_ampdu_shm_upd(wlc->ampdu);
  6685. /* band-specific inits */
  6686. brcms_c_bsinit(wlc);
  6687. /* Enable EDCF mode (while the MAC is suspended) */
  6688. bcma_set16(core, D11REGOFFS(ifs_ctl), IFS_USEEDCF);
  6689. brcms_c_edcf_setparams(wlc, false);
  6690. /* read the ucode version if we have not yet done so */
  6691. if (wlc->ucode_rev == 0) {
  6692. u16 rev;
  6693. u16 patch;
  6694. rev = brcms_b_read_shm(wlc->hw, M_BOM_REV_MAJOR);
  6695. patch = brcms_b_read_shm(wlc->hw, M_BOM_REV_MINOR);
  6696. wlc->ucode_rev = (rev << NBITS(u16)) | patch;
  6697. snprintf(wlc->wiphy->fw_version,
  6698. sizeof(wlc->wiphy->fw_version), "%u.%u", rev, patch);
  6699. }
  6700. /* ..now really unleash hell (allow the MAC out of suspend) */
  6701. brcms_c_enable_mac(wlc);
  6702. /* suspend the tx fifos and mute the phy for preism cac time */
  6703. if (mute_tx)
  6704. brcms_b_mute(wlc->hw, true);
  6705. /* enable the RF Disable Delay timer */
  6706. bcma_write32(core, D11REGOFFS(rfdisabledly), RFDISABLE_DEFAULT);
  6707. /*
  6708. * Initialize WME parameters; if they haven't been set by some other
  6709. * mechanism (IOVar, etc) then read them from the hardware.
  6710. */
  6711. if (GFIELD(wlc->wme_retries[0], EDCF_SHORT) == 0) {
  6712. /* Uninitialized; read from HW */
  6713. int ac;
  6714. for (ac = 0; ac < IEEE80211_NUM_ACS; ac++)
  6715. wlc->wme_retries[ac] =
  6716. brcms_b_read_shm(wlc->hw, M_AC_TXLMT_ADDR(ac));
  6717. }
  6718. }
  6719. /*
  6720. * The common driver entry routine. Error codes should be unique
  6721. */
  6722. struct brcms_c_info *
  6723. brcms_c_attach(struct brcms_info *wl, struct bcma_device *core, uint unit,
  6724. bool piomode, uint *perr)
  6725. {
  6726. struct brcms_c_info *wlc;
  6727. uint err = 0;
  6728. uint i, j;
  6729. struct brcms_pub *pub;
  6730. /* allocate struct brcms_c_info state and its substructures */
  6731. wlc = brcms_c_attach_malloc(unit, &err, 0);
  6732. if (wlc == NULL)
  6733. goto fail;
  6734. wlc->wiphy = wl->wiphy;
  6735. pub = wlc->pub;
  6736. #if defined(DEBUG)
  6737. wlc_info_dbg = wlc;
  6738. #endif
  6739. wlc->band = wlc->bandstate[0];
  6740. wlc->core = wlc->corestate;
  6741. wlc->wl = wl;
  6742. pub->unit = unit;
  6743. pub->_piomode = piomode;
  6744. wlc->bandinit_pending = false;
  6745. wlc->beacon_template_virgin = true;
  6746. /* populate struct brcms_c_info with default values */
  6747. brcms_c_info_init(wlc, unit);
  6748. /* update sta/ap related parameters */
  6749. brcms_c_ap_upd(wlc);
  6750. /*
  6751. * low level attach steps(all hw accesses go
  6752. * inside, no more in rest of the attach)
  6753. */
  6754. err = brcms_b_attach(wlc, core, unit, piomode);
  6755. if (err)
  6756. goto fail;
  6757. brcms_c_protection_upd(wlc, BRCMS_PROT_N_PAM_OVR, OFF);
  6758. pub->phy_11ncapable = BRCMS_PHY_11N_CAP(wlc->band);
  6759. /* disable allowed duty cycle */
  6760. wlc->tx_duty_cycle_ofdm = 0;
  6761. wlc->tx_duty_cycle_cck = 0;
  6762. brcms_c_stf_phy_chain_calc(wlc);
  6763. /* txchain 1: txant 0, txchain 2: txant 1 */
  6764. if (BRCMS_ISNPHY(wlc->band) && (wlc->stf->txstreams == 1))
  6765. wlc->stf->txant = wlc->stf->hw_txchain - 1;
  6766. /* push to BMAC driver */
  6767. wlc_phy_stf_chain_init(wlc->band->pi, wlc->stf->hw_txchain,
  6768. wlc->stf->hw_rxchain);
  6769. /* pull up some info resulting from the low attach */
  6770. for (i = 0; i < NFIFO; i++)
  6771. wlc->core->txavail[i] = wlc->hw->txavail[i];
  6772. memcpy(&wlc->perm_etheraddr, &wlc->hw->etheraddr, ETH_ALEN);
  6773. memcpy(&pub->cur_etheraddr, &wlc->hw->etheraddr, ETH_ALEN);
  6774. for (j = 0; j < wlc->pub->_nbands; j++) {
  6775. wlc->band = wlc->bandstate[j];
  6776. if (!brcms_c_attach_stf_ant_init(wlc)) {
  6777. err = 24;
  6778. goto fail;
  6779. }
  6780. /* default contention windows size limits */
  6781. wlc->band->CWmin = APHY_CWMIN;
  6782. wlc->band->CWmax = PHY_CWMAX;
  6783. /* init gmode value */
  6784. if (wlc->band->bandtype == BRCM_BAND_2G) {
  6785. wlc->band->gmode = GMODE_AUTO;
  6786. brcms_c_protection_upd(wlc, BRCMS_PROT_G_USER,
  6787. wlc->band->gmode);
  6788. }
  6789. /* init _n_enab supported mode */
  6790. if (BRCMS_PHY_11N_CAP(wlc->band)) {
  6791. pub->_n_enab = SUPPORT_11N;
  6792. brcms_c_protection_upd(wlc, BRCMS_PROT_N_USER,
  6793. ((pub->_n_enab ==
  6794. SUPPORT_11N) ? WL_11N_2x2 :
  6795. WL_11N_3x3));
  6796. }
  6797. /* init per-band default rateset, depend on band->gmode */
  6798. brcms_default_rateset(wlc, &wlc->band->defrateset);
  6799. /* fill in hw_rateset */
  6800. brcms_c_rateset_filter(&wlc->band->defrateset,
  6801. &wlc->band->hw_rateset, false,
  6802. BRCMS_RATES_CCK_OFDM, BRCMS_RATE_MASK,
  6803. (bool) (wlc->pub->_n_enab & SUPPORT_11N));
  6804. }
  6805. /*
  6806. * update antenna config due to
  6807. * wlc->stf->txant/txchain/ant_rx_ovr change
  6808. */
  6809. brcms_c_stf_phy_txant_upd(wlc);
  6810. /* attach each modules */
  6811. err = brcms_c_attach_module(wlc);
  6812. if (err != 0)
  6813. goto fail;
  6814. if (!brcms_c_timers_init(wlc, unit)) {
  6815. wiphy_err(wl->wiphy, "wl%d: %s: init_timer failed\n", unit,
  6816. __func__);
  6817. err = 32;
  6818. goto fail;
  6819. }
  6820. /* depend on rateset, gmode */
  6821. wlc->cmi = brcms_c_channel_mgr_attach(wlc);
  6822. if (!wlc->cmi) {
  6823. wiphy_err(wl->wiphy, "wl%d: %s: channel_mgr_attach failed"
  6824. "\n", unit, __func__);
  6825. err = 33;
  6826. goto fail;
  6827. }
  6828. /* init default when all parameters are ready, i.e. ->rateset */
  6829. brcms_c_bss_default_init(wlc);
  6830. /*
  6831. * Complete the wlc default state initializations..
  6832. */
  6833. wlc->bsscfg->wlc = wlc;
  6834. wlc->mimoft = FT_HT;
  6835. wlc->mimo_40txbw = AUTO;
  6836. wlc->ofdm_40txbw = AUTO;
  6837. wlc->cck_40txbw = AUTO;
  6838. brcms_c_update_mimo_band_bwcap(wlc, BRCMS_N_BW_20IN2G_40IN5G);
  6839. /* Set default values of SGI */
  6840. if (BRCMS_SGI_CAP_PHY(wlc)) {
  6841. brcms_c_ht_update_sgi_rx(wlc, (BRCMS_N_SGI_20 |
  6842. BRCMS_N_SGI_40));
  6843. } else if (BRCMS_ISSSLPNPHY(wlc->band)) {
  6844. brcms_c_ht_update_sgi_rx(wlc, (BRCMS_N_SGI_20 |
  6845. BRCMS_N_SGI_40));
  6846. } else {
  6847. brcms_c_ht_update_sgi_rx(wlc, 0);
  6848. }
  6849. brcms_b_antsel_set(wlc->hw, wlc->asi->antsel_avail);
  6850. if (perr)
  6851. *perr = 0;
  6852. return wlc;
  6853. fail:
  6854. wiphy_err(wl->wiphy, "wl%d: %s: failed with err %d\n",
  6855. unit, __func__, err);
  6856. if (wlc)
  6857. brcms_c_detach(wlc);
  6858. if (perr)
  6859. *perr = err;
  6860. return NULL;
  6861. }