bcmsdh.c 34 KB

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  1. /*
  2. * Copyright (c) 2010 Broadcom Corporation
  3. *
  4. * Permission to use, copy, modify, and/or distribute this software for any
  5. * purpose with or without fee is hereby granted, provided that the above
  6. * copyright notice and this permission notice appear in all copies.
  7. *
  8. * THE SOFTWARE IS PROVIDED "AS IS" AND THE AUTHOR DISCLAIMS ALL WARRANTIES
  9. * WITH REGARD TO THIS SOFTWARE INCLUDING ALL IMPLIED WARRANTIES OF
  10. * MERCHANTABILITY AND FITNESS. IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY
  11. * SPECIAL, DIRECT, INDIRECT, OR CONSEQUENTIAL DAMAGES OR ANY DAMAGES
  12. * WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR PROFITS, WHETHER IN AN ACTION
  13. * OF CONTRACT, NEGLIGENCE OR OTHER TORTIOUS ACTION, ARISING OUT OF OR IN
  14. * CONNECTION WITH THE USE OR PERFORMANCE OF THIS SOFTWARE.
  15. */
  16. /* ****************** SDIO CARD Interface Functions **************************/
  17. #include <linux/types.h>
  18. #include <linux/netdevice.h>
  19. #include <linux/pci.h>
  20. #include <linux/pci_ids.h>
  21. #include <linux/sched.h>
  22. #include <linux/completion.h>
  23. #include <linux/scatterlist.h>
  24. #include <linux/mmc/sdio.h>
  25. #include <linux/mmc/core.h>
  26. #include <linux/mmc/sdio_func.h>
  27. #include <linux/mmc/card.h>
  28. #include <linux/mmc/host.h>
  29. #include <linux/platform_device.h>
  30. #include <linux/platform_data/brcmfmac-sdio.h>
  31. #include <linux/pm_runtime.h>
  32. #include <linux/suspend.h>
  33. #include <linux/errno.h>
  34. #include <linux/module.h>
  35. #include <net/cfg80211.h>
  36. #include <defs.h>
  37. #include <brcm_hw_ids.h>
  38. #include <brcmu_utils.h>
  39. #include <brcmu_wifi.h>
  40. #include <chipcommon.h>
  41. #include <soc.h>
  42. #include "chip.h"
  43. #include "bus.h"
  44. #include "debug.h"
  45. #include "sdio.h"
  46. #include "of.h"
  47. #define SDIOH_API_ACCESS_RETRY_LIMIT 2
  48. #define DMA_ALIGN_MASK 0x03
  49. #define SDIO_FUNC1_BLOCKSIZE 64
  50. #define SDIO_FUNC2_BLOCKSIZE 512
  51. /* Maximum milliseconds to wait for F2 to come up */
  52. #define SDIO_WAIT_F2RDY 3000
  53. #define BRCMF_DEFAULT_TXGLOM_SIZE 32 /* max tx frames in glom chain */
  54. #define BRCMF_DEFAULT_RXGLOM_SIZE 32 /* max rx frames in glom chain */
  55. struct brcmf_sdiod_freezer {
  56. atomic_t freezing;
  57. atomic_t thread_count;
  58. u32 frozen_count;
  59. wait_queue_head_t thread_freeze;
  60. struct completion resumed;
  61. };
  62. static int brcmf_sdiod_txglomsz = BRCMF_DEFAULT_TXGLOM_SIZE;
  63. module_param_named(txglomsz, brcmf_sdiod_txglomsz, int, 0);
  64. MODULE_PARM_DESC(txglomsz, "maximum tx packet chain size [SDIO]");
  65. static irqreturn_t brcmf_sdiod_oob_irqhandler(int irq, void *dev_id)
  66. {
  67. struct brcmf_bus *bus_if = dev_get_drvdata(dev_id);
  68. struct brcmf_sdio_dev *sdiodev = bus_if->bus_priv.sdio;
  69. brcmf_dbg(INTR, "OOB intr triggered\n");
  70. /* out-of-band interrupt is level-triggered which won't
  71. * be cleared until dpc
  72. */
  73. if (sdiodev->irq_en) {
  74. disable_irq_nosync(irq);
  75. sdiodev->irq_en = false;
  76. }
  77. brcmf_sdio_isr(sdiodev->bus);
  78. return IRQ_HANDLED;
  79. }
  80. static void brcmf_sdiod_ib_irqhandler(struct sdio_func *func)
  81. {
  82. struct brcmf_bus *bus_if = dev_get_drvdata(&func->dev);
  83. struct brcmf_sdio_dev *sdiodev = bus_if->bus_priv.sdio;
  84. brcmf_dbg(INTR, "IB intr triggered\n");
  85. brcmf_sdio_isr(sdiodev->bus);
  86. }
  87. /* dummy handler for SDIO function 2 interrupt */
  88. static void brcmf_sdiod_dummy_irqhandler(struct sdio_func *func)
  89. {
  90. }
  91. int brcmf_sdiod_intr_register(struct brcmf_sdio_dev *sdiodev)
  92. {
  93. int ret = 0;
  94. u8 data;
  95. u32 addr, gpiocontrol;
  96. unsigned long flags;
  97. if ((sdiodev->pdata) && (sdiodev->pdata->oob_irq_supported)) {
  98. brcmf_dbg(SDIO, "Enter, register OOB IRQ %d\n",
  99. sdiodev->pdata->oob_irq_nr);
  100. ret = request_irq(sdiodev->pdata->oob_irq_nr,
  101. brcmf_sdiod_oob_irqhandler,
  102. sdiodev->pdata->oob_irq_flags,
  103. "brcmf_oob_intr",
  104. &sdiodev->func[1]->dev);
  105. if (ret != 0) {
  106. brcmf_err("request_irq failed %d\n", ret);
  107. return ret;
  108. }
  109. sdiodev->oob_irq_requested = true;
  110. spin_lock_init(&sdiodev->irq_en_lock);
  111. spin_lock_irqsave(&sdiodev->irq_en_lock, flags);
  112. sdiodev->irq_en = true;
  113. spin_unlock_irqrestore(&sdiodev->irq_en_lock, flags);
  114. ret = enable_irq_wake(sdiodev->pdata->oob_irq_nr);
  115. if (ret != 0) {
  116. brcmf_err("enable_irq_wake failed %d\n", ret);
  117. return ret;
  118. }
  119. sdiodev->irq_wake = true;
  120. sdio_claim_host(sdiodev->func[1]);
  121. if (sdiodev->bus_if->chip == BRCM_CC_43362_CHIP_ID) {
  122. /* assign GPIO to SDIO core */
  123. addr = CORE_CC_REG(SI_ENUM_BASE, gpiocontrol);
  124. gpiocontrol = brcmf_sdiod_regrl(sdiodev, addr, &ret);
  125. gpiocontrol |= 0x2;
  126. brcmf_sdiod_regwl(sdiodev, addr, gpiocontrol, &ret);
  127. brcmf_sdiod_regwb(sdiodev, SBSDIO_GPIO_SELECT, 0xf,
  128. &ret);
  129. brcmf_sdiod_regwb(sdiodev, SBSDIO_GPIO_OUT, 0, &ret);
  130. brcmf_sdiod_regwb(sdiodev, SBSDIO_GPIO_EN, 0x2, &ret);
  131. }
  132. /* must configure SDIO_CCCR_IENx to enable irq */
  133. data = brcmf_sdiod_regrb(sdiodev, SDIO_CCCR_IENx, &ret);
  134. data |= 1 << SDIO_FUNC_1 | 1 << SDIO_FUNC_2 | 1;
  135. brcmf_sdiod_regwb(sdiodev, SDIO_CCCR_IENx, data, &ret);
  136. /* redirect, configure and enable io for interrupt signal */
  137. data = SDIO_SEPINT_MASK | SDIO_SEPINT_OE;
  138. if (sdiodev->pdata->oob_irq_flags & IRQF_TRIGGER_HIGH)
  139. data |= SDIO_SEPINT_ACT_HI;
  140. brcmf_sdiod_regwb(sdiodev, SDIO_CCCR_BRCM_SEPINT, data, &ret);
  141. sdio_release_host(sdiodev->func[1]);
  142. } else {
  143. brcmf_dbg(SDIO, "Entering\n");
  144. sdio_claim_host(sdiodev->func[1]);
  145. sdio_claim_irq(sdiodev->func[1], brcmf_sdiod_ib_irqhandler);
  146. sdio_claim_irq(sdiodev->func[2], brcmf_sdiod_dummy_irqhandler);
  147. sdio_release_host(sdiodev->func[1]);
  148. }
  149. return 0;
  150. }
  151. int brcmf_sdiod_intr_unregister(struct brcmf_sdio_dev *sdiodev)
  152. {
  153. brcmf_dbg(SDIO, "Entering\n");
  154. if ((sdiodev->pdata) && (sdiodev->pdata->oob_irq_supported)) {
  155. sdio_claim_host(sdiodev->func[1]);
  156. brcmf_sdiod_regwb(sdiodev, SDIO_CCCR_BRCM_SEPINT, 0, NULL);
  157. brcmf_sdiod_regwb(sdiodev, SDIO_CCCR_IENx, 0, NULL);
  158. sdio_release_host(sdiodev->func[1]);
  159. if (sdiodev->oob_irq_requested) {
  160. sdiodev->oob_irq_requested = false;
  161. if (sdiodev->irq_wake) {
  162. disable_irq_wake(sdiodev->pdata->oob_irq_nr);
  163. sdiodev->irq_wake = false;
  164. }
  165. free_irq(sdiodev->pdata->oob_irq_nr,
  166. &sdiodev->func[1]->dev);
  167. sdiodev->irq_en = false;
  168. }
  169. } else {
  170. sdio_claim_host(sdiodev->func[1]);
  171. sdio_release_irq(sdiodev->func[2]);
  172. sdio_release_irq(sdiodev->func[1]);
  173. sdio_release_host(sdiodev->func[1]);
  174. }
  175. return 0;
  176. }
  177. void brcmf_sdiod_change_state(struct brcmf_sdio_dev *sdiodev,
  178. enum brcmf_sdiod_state state)
  179. {
  180. if (sdiodev->state == BRCMF_SDIOD_NOMEDIUM ||
  181. state == sdiodev->state)
  182. return;
  183. brcmf_dbg(TRACE, "%d -> %d\n", sdiodev->state, state);
  184. switch (sdiodev->state) {
  185. case BRCMF_SDIOD_DATA:
  186. /* any other state means bus interface is down */
  187. brcmf_bus_change_state(sdiodev->bus_if, BRCMF_BUS_DOWN);
  188. break;
  189. case BRCMF_SDIOD_DOWN:
  190. /* transition from DOWN to DATA means bus interface is up */
  191. if (state == BRCMF_SDIOD_DATA)
  192. brcmf_bus_change_state(sdiodev->bus_if, BRCMF_BUS_UP);
  193. break;
  194. default:
  195. break;
  196. }
  197. sdiodev->state = state;
  198. }
  199. static inline int brcmf_sdiod_f0_writeb(struct sdio_func *func,
  200. uint regaddr, u8 byte)
  201. {
  202. int err_ret;
  203. /*
  204. * Can only directly write to some F0 registers.
  205. * Handle CCCR_IENx and CCCR_ABORT command
  206. * as a special case.
  207. */
  208. if ((regaddr == SDIO_CCCR_ABORT) ||
  209. (regaddr == SDIO_CCCR_IENx))
  210. sdio_writeb(func, byte, regaddr, &err_ret);
  211. else
  212. sdio_f0_writeb(func, byte, regaddr, &err_ret);
  213. return err_ret;
  214. }
  215. static int brcmf_sdiod_request_data(struct brcmf_sdio_dev *sdiodev, u8 fn,
  216. u32 addr, u8 regsz, void *data, bool write)
  217. {
  218. struct sdio_func *func;
  219. int ret;
  220. brcmf_dbg(SDIO, "rw=%d, func=%d, addr=0x%05x, nbytes=%d\n",
  221. write, fn, addr, regsz);
  222. /* only allow byte access on F0 */
  223. if (WARN_ON(regsz > 1 && !fn))
  224. return -EINVAL;
  225. func = sdiodev->func[fn];
  226. switch (regsz) {
  227. case sizeof(u8):
  228. if (write) {
  229. if (fn)
  230. sdio_writeb(func, *(u8 *)data, addr, &ret);
  231. else
  232. ret = brcmf_sdiod_f0_writeb(func, addr,
  233. *(u8 *)data);
  234. } else {
  235. if (fn)
  236. *(u8 *)data = sdio_readb(func, addr, &ret);
  237. else
  238. *(u8 *)data = sdio_f0_readb(func, addr, &ret);
  239. }
  240. break;
  241. case sizeof(u16):
  242. if (write)
  243. sdio_writew(func, *(u16 *)data, addr, &ret);
  244. else
  245. *(u16 *)data = sdio_readw(func, addr, &ret);
  246. break;
  247. case sizeof(u32):
  248. if (write)
  249. sdio_writel(func, *(u32 *)data, addr, &ret);
  250. else
  251. *(u32 *)data = sdio_readl(func, addr, &ret);
  252. break;
  253. default:
  254. brcmf_err("invalid size: %d\n", regsz);
  255. break;
  256. }
  257. if (ret)
  258. brcmf_dbg(SDIO, "failed to %s data F%d@0x%05x, err: %d\n",
  259. write ? "write" : "read", fn, addr, ret);
  260. return ret;
  261. }
  262. static int brcmf_sdiod_regrw_helper(struct brcmf_sdio_dev *sdiodev, u32 addr,
  263. u8 regsz, void *data, bool write)
  264. {
  265. u8 func;
  266. s32 retry = 0;
  267. int ret;
  268. if (sdiodev->state == BRCMF_SDIOD_NOMEDIUM)
  269. return -ENOMEDIUM;
  270. /*
  271. * figure out how to read the register based on address range
  272. * 0x00 ~ 0x7FF: function 0 CCCR and FBR
  273. * 0x10000 ~ 0x1FFFF: function 1 miscellaneous registers
  274. * The rest: function 1 silicon backplane core registers
  275. */
  276. if ((addr & ~REG_F0_REG_MASK) == 0)
  277. func = SDIO_FUNC_0;
  278. else
  279. func = SDIO_FUNC_1;
  280. do {
  281. if (!write)
  282. memset(data, 0, regsz);
  283. /* for retry wait for 1 ms till bus get settled down */
  284. if (retry)
  285. usleep_range(1000, 2000);
  286. ret = brcmf_sdiod_request_data(sdiodev, func, addr, regsz,
  287. data, write);
  288. } while (ret != 0 && ret != -ENOMEDIUM &&
  289. retry++ < SDIOH_API_ACCESS_RETRY_LIMIT);
  290. if (ret == -ENOMEDIUM)
  291. brcmf_sdiod_change_state(sdiodev, BRCMF_SDIOD_NOMEDIUM);
  292. else if (ret != 0) {
  293. /*
  294. * SleepCSR register access can fail when
  295. * waking up the device so reduce this noise
  296. * in the logs.
  297. */
  298. if (addr != SBSDIO_FUNC1_SLEEPCSR)
  299. brcmf_err("failed to %s data F%d@0x%05x, err: %d\n",
  300. write ? "write" : "read", func, addr, ret);
  301. else
  302. brcmf_dbg(SDIO, "failed to %s data F%d@0x%05x, err: %d\n",
  303. write ? "write" : "read", func, addr, ret);
  304. }
  305. return ret;
  306. }
  307. static int
  308. brcmf_sdiod_set_sbaddr_window(struct brcmf_sdio_dev *sdiodev, u32 address)
  309. {
  310. int err = 0, i;
  311. u8 addr[3];
  312. if (sdiodev->state == BRCMF_SDIOD_NOMEDIUM)
  313. return -ENOMEDIUM;
  314. addr[0] = (address >> 8) & SBSDIO_SBADDRLOW_MASK;
  315. addr[1] = (address >> 16) & SBSDIO_SBADDRMID_MASK;
  316. addr[2] = (address >> 24) & SBSDIO_SBADDRHIGH_MASK;
  317. for (i = 0; i < 3; i++) {
  318. err = brcmf_sdiod_regrw_helper(sdiodev,
  319. SBSDIO_FUNC1_SBADDRLOW + i,
  320. sizeof(u8), &addr[i], true);
  321. if (err) {
  322. brcmf_err("failed at addr: 0x%0x\n",
  323. SBSDIO_FUNC1_SBADDRLOW + i);
  324. break;
  325. }
  326. }
  327. return err;
  328. }
  329. static int
  330. brcmf_sdiod_addrprep(struct brcmf_sdio_dev *sdiodev, uint width, u32 *addr)
  331. {
  332. uint bar0 = *addr & ~SBSDIO_SB_OFT_ADDR_MASK;
  333. int err = 0;
  334. if (bar0 != sdiodev->sbwad) {
  335. err = brcmf_sdiod_set_sbaddr_window(sdiodev, bar0);
  336. if (err)
  337. return err;
  338. sdiodev->sbwad = bar0;
  339. }
  340. *addr &= SBSDIO_SB_OFT_ADDR_MASK;
  341. if (width == 4)
  342. *addr |= SBSDIO_SB_ACCESS_2_4B_FLAG;
  343. return 0;
  344. }
  345. u8 brcmf_sdiod_regrb(struct brcmf_sdio_dev *sdiodev, u32 addr, int *ret)
  346. {
  347. u8 data;
  348. int retval;
  349. brcmf_dbg(SDIO, "addr:0x%08x\n", addr);
  350. retval = brcmf_sdiod_regrw_helper(sdiodev, addr, sizeof(data), &data,
  351. false);
  352. brcmf_dbg(SDIO, "data:0x%02x\n", data);
  353. if (ret)
  354. *ret = retval;
  355. return data;
  356. }
  357. u32 brcmf_sdiod_regrl(struct brcmf_sdio_dev *sdiodev, u32 addr, int *ret)
  358. {
  359. u32 data;
  360. int retval;
  361. brcmf_dbg(SDIO, "addr:0x%08x\n", addr);
  362. retval = brcmf_sdiod_addrprep(sdiodev, sizeof(data), &addr);
  363. if (retval)
  364. goto done;
  365. retval = brcmf_sdiod_regrw_helper(sdiodev, addr, sizeof(data), &data,
  366. false);
  367. brcmf_dbg(SDIO, "data:0x%08x\n", data);
  368. done:
  369. if (ret)
  370. *ret = retval;
  371. return data;
  372. }
  373. void brcmf_sdiod_regwb(struct brcmf_sdio_dev *sdiodev, u32 addr,
  374. u8 data, int *ret)
  375. {
  376. int retval;
  377. brcmf_dbg(SDIO, "addr:0x%08x, data:0x%02x\n", addr, data);
  378. retval = brcmf_sdiod_regrw_helper(sdiodev, addr, sizeof(data), &data,
  379. true);
  380. if (ret)
  381. *ret = retval;
  382. }
  383. void brcmf_sdiod_regwl(struct brcmf_sdio_dev *sdiodev, u32 addr,
  384. u32 data, int *ret)
  385. {
  386. int retval;
  387. brcmf_dbg(SDIO, "addr:0x%08x, data:0x%08x\n", addr, data);
  388. retval = brcmf_sdiod_addrprep(sdiodev, sizeof(data), &addr);
  389. if (retval)
  390. goto done;
  391. retval = brcmf_sdiod_regrw_helper(sdiodev, addr, sizeof(data), &data,
  392. true);
  393. done:
  394. if (ret)
  395. *ret = retval;
  396. }
  397. static int brcmf_sdiod_buffrw(struct brcmf_sdio_dev *sdiodev, uint fn,
  398. bool write, u32 addr, struct sk_buff *pkt)
  399. {
  400. unsigned int req_sz;
  401. int err;
  402. /* Single skb use the standard mmc interface */
  403. req_sz = pkt->len + 3;
  404. req_sz &= (uint)~3;
  405. if (write)
  406. err = sdio_memcpy_toio(sdiodev->func[fn], addr,
  407. ((u8 *)(pkt->data)), req_sz);
  408. else if (fn == 1)
  409. err = sdio_memcpy_fromio(sdiodev->func[fn], ((u8 *)(pkt->data)),
  410. addr, req_sz);
  411. else
  412. /* function 2 read is FIFO operation */
  413. err = sdio_readsb(sdiodev->func[fn], ((u8 *)(pkt->data)), addr,
  414. req_sz);
  415. if (err == -ENOMEDIUM)
  416. brcmf_sdiod_change_state(sdiodev, BRCMF_SDIOD_NOMEDIUM);
  417. return err;
  418. }
  419. /**
  420. * brcmf_sdiod_sglist_rw - SDIO interface function for block data access
  421. * @sdiodev: brcmfmac sdio device
  422. * @fn: SDIO function number
  423. * @write: direction flag
  424. * @addr: dongle memory address as source/destination
  425. * @pkt: skb pointer
  426. *
  427. * This function takes the respbonsibility as the interface function to MMC
  428. * stack for block data access. It assumes that the skb passed down by the
  429. * caller has already been padded and aligned.
  430. */
  431. static int brcmf_sdiod_sglist_rw(struct brcmf_sdio_dev *sdiodev, uint fn,
  432. bool write, u32 addr,
  433. struct sk_buff_head *pktlist)
  434. {
  435. unsigned int req_sz, func_blk_sz, sg_cnt, sg_data_sz, pkt_offset;
  436. unsigned int max_req_sz, orig_offset, dst_offset;
  437. unsigned short max_seg_cnt, seg_sz;
  438. unsigned char *pkt_data, *orig_data, *dst_data;
  439. struct sk_buff *pkt_next = NULL, *local_pkt_next;
  440. struct sk_buff_head local_list, *target_list;
  441. struct mmc_request mmc_req;
  442. struct mmc_command mmc_cmd;
  443. struct mmc_data mmc_dat;
  444. struct scatterlist *sgl;
  445. int ret = 0;
  446. if (!pktlist->qlen)
  447. return -EINVAL;
  448. target_list = pktlist;
  449. /* for host with broken sg support, prepare a page aligned list */
  450. __skb_queue_head_init(&local_list);
  451. if (sdiodev->pdata && sdiodev->pdata->broken_sg_support && !write) {
  452. req_sz = 0;
  453. skb_queue_walk(pktlist, pkt_next)
  454. req_sz += pkt_next->len;
  455. req_sz = ALIGN(req_sz, sdiodev->func[fn]->cur_blksize);
  456. while (req_sz > PAGE_SIZE) {
  457. pkt_next = brcmu_pkt_buf_get_skb(PAGE_SIZE);
  458. if (pkt_next == NULL) {
  459. ret = -ENOMEM;
  460. goto exit;
  461. }
  462. __skb_queue_tail(&local_list, pkt_next);
  463. req_sz -= PAGE_SIZE;
  464. }
  465. pkt_next = brcmu_pkt_buf_get_skb(req_sz);
  466. if (pkt_next == NULL) {
  467. ret = -ENOMEM;
  468. goto exit;
  469. }
  470. __skb_queue_tail(&local_list, pkt_next);
  471. target_list = &local_list;
  472. }
  473. func_blk_sz = sdiodev->func[fn]->cur_blksize;
  474. max_req_sz = sdiodev->max_request_size;
  475. max_seg_cnt = min_t(unsigned short, sdiodev->max_segment_count,
  476. target_list->qlen);
  477. seg_sz = target_list->qlen;
  478. pkt_offset = 0;
  479. pkt_next = target_list->next;
  480. memset(&mmc_req, 0, sizeof(struct mmc_request));
  481. memset(&mmc_cmd, 0, sizeof(struct mmc_command));
  482. memset(&mmc_dat, 0, sizeof(struct mmc_data));
  483. mmc_dat.sg = sdiodev->sgtable.sgl;
  484. mmc_dat.blksz = func_blk_sz;
  485. mmc_dat.flags = write ? MMC_DATA_WRITE : MMC_DATA_READ;
  486. mmc_cmd.opcode = SD_IO_RW_EXTENDED;
  487. mmc_cmd.arg = write ? 1<<31 : 0; /* write flag */
  488. mmc_cmd.arg |= (fn & 0x7) << 28; /* SDIO func num */
  489. mmc_cmd.arg |= 1<<27; /* block mode */
  490. /* for function 1 the addr will be incremented */
  491. mmc_cmd.arg |= (fn == 1) ? 1<<26 : 0;
  492. mmc_cmd.flags = MMC_RSP_SPI_R5 | MMC_RSP_R5 | MMC_CMD_ADTC;
  493. mmc_req.cmd = &mmc_cmd;
  494. mmc_req.data = &mmc_dat;
  495. while (seg_sz) {
  496. req_sz = 0;
  497. sg_cnt = 0;
  498. sgl = sdiodev->sgtable.sgl;
  499. /* prep sg table */
  500. while (pkt_next != (struct sk_buff *)target_list) {
  501. pkt_data = pkt_next->data + pkt_offset;
  502. sg_data_sz = pkt_next->len - pkt_offset;
  503. if (sg_data_sz > sdiodev->max_segment_size)
  504. sg_data_sz = sdiodev->max_segment_size;
  505. if (sg_data_sz > max_req_sz - req_sz)
  506. sg_data_sz = max_req_sz - req_sz;
  507. sg_set_buf(sgl, pkt_data, sg_data_sz);
  508. sg_cnt++;
  509. sgl = sg_next(sgl);
  510. req_sz += sg_data_sz;
  511. pkt_offset += sg_data_sz;
  512. if (pkt_offset == pkt_next->len) {
  513. pkt_offset = 0;
  514. pkt_next = pkt_next->next;
  515. }
  516. if (req_sz >= max_req_sz || sg_cnt >= max_seg_cnt)
  517. break;
  518. }
  519. seg_sz -= sg_cnt;
  520. if (req_sz % func_blk_sz != 0) {
  521. brcmf_err("sg request length %u is not %u aligned\n",
  522. req_sz, func_blk_sz);
  523. ret = -ENOTBLK;
  524. goto exit;
  525. }
  526. mmc_dat.sg_len = sg_cnt;
  527. mmc_dat.blocks = req_sz / func_blk_sz;
  528. mmc_cmd.arg |= (addr & 0x1FFFF) << 9; /* address */
  529. mmc_cmd.arg |= mmc_dat.blocks & 0x1FF; /* block count */
  530. /* incrementing addr for function 1 */
  531. if (fn == 1)
  532. addr += req_sz;
  533. mmc_set_data_timeout(&mmc_dat, sdiodev->func[fn]->card);
  534. mmc_wait_for_req(sdiodev->func[fn]->card->host, &mmc_req);
  535. ret = mmc_cmd.error ? mmc_cmd.error : mmc_dat.error;
  536. if (ret == -ENOMEDIUM) {
  537. brcmf_sdiod_change_state(sdiodev, BRCMF_SDIOD_NOMEDIUM);
  538. break;
  539. } else if (ret != 0) {
  540. brcmf_err("CMD53 sg block %s failed %d\n",
  541. write ? "write" : "read", ret);
  542. ret = -EIO;
  543. break;
  544. }
  545. }
  546. if (sdiodev->pdata && sdiodev->pdata->broken_sg_support && !write) {
  547. local_pkt_next = local_list.next;
  548. orig_offset = 0;
  549. skb_queue_walk(pktlist, pkt_next) {
  550. dst_offset = 0;
  551. do {
  552. req_sz = local_pkt_next->len - orig_offset;
  553. req_sz = min_t(uint, pkt_next->len - dst_offset,
  554. req_sz);
  555. orig_data = local_pkt_next->data + orig_offset;
  556. dst_data = pkt_next->data + dst_offset;
  557. memcpy(dst_data, orig_data, req_sz);
  558. orig_offset += req_sz;
  559. dst_offset += req_sz;
  560. if (orig_offset == local_pkt_next->len) {
  561. orig_offset = 0;
  562. local_pkt_next = local_pkt_next->next;
  563. }
  564. if (dst_offset == pkt_next->len)
  565. break;
  566. } while (!skb_queue_empty(&local_list));
  567. }
  568. }
  569. exit:
  570. sg_init_table(sdiodev->sgtable.sgl, sdiodev->sgtable.orig_nents);
  571. while ((pkt_next = __skb_dequeue(&local_list)) != NULL)
  572. brcmu_pkt_buf_free_skb(pkt_next);
  573. return ret;
  574. }
  575. int brcmf_sdiod_recv_buf(struct brcmf_sdio_dev *sdiodev, u8 *buf, uint nbytes)
  576. {
  577. struct sk_buff *mypkt;
  578. int err;
  579. mypkt = brcmu_pkt_buf_get_skb(nbytes);
  580. if (!mypkt) {
  581. brcmf_err("brcmu_pkt_buf_get_skb failed: len %d\n",
  582. nbytes);
  583. return -EIO;
  584. }
  585. err = brcmf_sdiod_recv_pkt(sdiodev, mypkt);
  586. if (!err)
  587. memcpy(buf, mypkt->data, nbytes);
  588. brcmu_pkt_buf_free_skb(mypkt);
  589. return err;
  590. }
  591. int brcmf_sdiod_recv_pkt(struct brcmf_sdio_dev *sdiodev, struct sk_buff *pkt)
  592. {
  593. u32 addr = sdiodev->sbwad;
  594. int err = 0;
  595. brcmf_dbg(SDIO, "addr = 0x%x, size = %d\n", addr, pkt->len);
  596. err = brcmf_sdiod_addrprep(sdiodev, 4, &addr);
  597. if (err)
  598. goto done;
  599. err = brcmf_sdiod_buffrw(sdiodev, SDIO_FUNC_2, false, addr, pkt);
  600. done:
  601. return err;
  602. }
  603. int brcmf_sdiod_recv_chain(struct brcmf_sdio_dev *sdiodev,
  604. struct sk_buff_head *pktq, uint totlen)
  605. {
  606. struct sk_buff *glom_skb;
  607. struct sk_buff *skb;
  608. u32 addr = sdiodev->sbwad;
  609. int err = 0;
  610. brcmf_dbg(SDIO, "addr = 0x%x, size = %d\n",
  611. addr, pktq->qlen);
  612. err = brcmf_sdiod_addrprep(sdiodev, 4, &addr);
  613. if (err)
  614. goto done;
  615. if (pktq->qlen == 1)
  616. err = brcmf_sdiod_buffrw(sdiodev, SDIO_FUNC_2, false, addr,
  617. pktq->next);
  618. else if (!sdiodev->sg_support) {
  619. glom_skb = brcmu_pkt_buf_get_skb(totlen);
  620. if (!glom_skb)
  621. return -ENOMEM;
  622. err = brcmf_sdiod_buffrw(sdiodev, SDIO_FUNC_2, false, addr,
  623. glom_skb);
  624. if (err)
  625. goto done;
  626. skb_queue_walk(pktq, skb) {
  627. memcpy(skb->data, glom_skb->data, skb->len);
  628. skb_pull(glom_skb, skb->len);
  629. }
  630. } else
  631. err = brcmf_sdiod_sglist_rw(sdiodev, SDIO_FUNC_2, false, addr,
  632. pktq);
  633. done:
  634. return err;
  635. }
  636. int brcmf_sdiod_send_buf(struct brcmf_sdio_dev *sdiodev, u8 *buf, uint nbytes)
  637. {
  638. struct sk_buff *mypkt;
  639. u32 addr = sdiodev->sbwad;
  640. int err;
  641. mypkt = brcmu_pkt_buf_get_skb(nbytes);
  642. if (!mypkt) {
  643. brcmf_err("brcmu_pkt_buf_get_skb failed: len %d\n",
  644. nbytes);
  645. return -EIO;
  646. }
  647. memcpy(mypkt->data, buf, nbytes);
  648. err = brcmf_sdiod_addrprep(sdiodev, 4, &addr);
  649. if (!err)
  650. err = brcmf_sdiod_buffrw(sdiodev, SDIO_FUNC_2, true, addr,
  651. mypkt);
  652. brcmu_pkt_buf_free_skb(mypkt);
  653. return err;
  654. }
  655. int brcmf_sdiod_send_pkt(struct brcmf_sdio_dev *sdiodev,
  656. struct sk_buff_head *pktq)
  657. {
  658. struct sk_buff *skb;
  659. u32 addr = sdiodev->sbwad;
  660. int err;
  661. brcmf_dbg(SDIO, "addr = 0x%x, size = %d\n", addr, pktq->qlen);
  662. err = brcmf_sdiod_addrprep(sdiodev, 4, &addr);
  663. if (err)
  664. return err;
  665. if (pktq->qlen == 1 || !sdiodev->sg_support)
  666. skb_queue_walk(pktq, skb) {
  667. err = brcmf_sdiod_buffrw(sdiodev, SDIO_FUNC_2, true,
  668. addr, skb);
  669. if (err)
  670. break;
  671. }
  672. else
  673. err = brcmf_sdiod_sglist_rw(sdiodev, SDIO_FUNC_2, true, addr,
  674. pktq);
  675. return err;
  676. }
  677. int
  678. brcmf_sdiod_ramrw(struct brcmf_sdio_dev *sdiodev, bool write, u32 address,
  679. u8 *data, uint size)
  680. {
  681. int bcmerror = 0;
  682. struct sk_buff *pkt;
  683. u32 sdaddr;
  684. uint dsize;
  685. dsize = min_t(uint, SBSDIO_SB_OFT_ADDR_LIMIT, size);
  686. pkt = dev_alloc_skb(dsize);
  687. if (!pkt) {
  688. brcmf_err("dev_alloc_skb failed: len %d\n", dsize);
  689. return -EIO;
  690. }
  691. pkt->priority = 0;
  692. /* Determine initial transfer parameters */
  693. sdaddr = address & SBSDIO_SB_OFT_ADDR_MASK;
  694. if ((sdaddr + size) & SBSDIO_SBWINDOW_MASK)
  695. dsize = (SBSDIO_SB_OFT_ADDR_LIMIT - sdaddr);
  696. else
  697. dsize = size;
  698. sdio_claim_host(sdiodev->func[1]);
  699. /* Do the transfer(s) */
  700. while (size) {
  701. /* Set the backplane window to include the start address */
  702. bcmerror = brcmf_sdiod_set_sbaddr_window(sdiodev, address);
  703. if (bcmerror)
  704. break;
  705. brcmf_dbg(SDIO, "%s %d bytes at offset 0x%08x in window 0x%08x\n",
  706. write ? "write" : "read", dsize,
  707. sdaddr, address & SBSDIO_SBWINDOW_MASK);
  708. sdaddr &= SBSDIO_SB_OFT_ADDR_MASK;
  709. sdaddr |= SBSDIO_SB_ACCESS_2_4B_FLAG;
  710. skb_put(pkt, dsize);
  711. if (write)
  712. memcpy(pkt->data, data, dsize);
  713. bcmerror = brcmf_sdiod_buffrw(sdiodev, SDIO_FUNC_1, write,
  714. sdaddr, pkt);
  715. if (bcmerror) {
  716. brcmf_err("membytes transfer failed\n");
  717. break;
  718. }
  719. if (!write)
  720. memcpy(data, pkt->data, dsize);
  721. skb_trim(pkt, 0);
  722. /* Adjust for next transfer (if any) */
  723. size -= dsize;
  724. if (size) {
  725. data += dsize;
  726. address += dsize;
  727. sdaddr = 0;
  728. dsize = min_t(uint, SBSDIO_SB_OFT_ADDR_LIMIT, size);
  729. }
  730. }
  731. dev_kfree_skb(pkt);
  732. /* Return the window to backplane enumeration space for core access */
  733. if (brcmf_sdiod_set_sbaddr_window(sdiodev, sdiodev->sbwad))
  734. brcmf_err("FAILED to set window back to 0x%x\n",
  735. sdiodev->sbwad);
  736. sdio_release_host(sdiodev->func[1]);
  737. return bcmerror;
  738. }
  739. int brcmf_sdiod_abort(struct brcmf_sdio_dev *sdiodev, uint fn)
  740. {
  741. char t_func = (char)fn;
  742. brcmf_dbg(SDIO, "Enter\n");
  743. /* issue abort cmd52 command through F0 */
  744. brcmf_sdiod_request_data(sdiodev, SDIO_FUNC_0, SDIO_CCCR_ABORT,
  745. sizeof(t_func), &t_func, true);
  746. brcmf_dbg(SDIO, "Exit\n");
  747. return 0;
  748. }
  749. static void brcmf_sdiod_sgtable_alloc(struct brcmf_sdio_dev *sdiodev)
  750. {
  751. uint nents;
  752. int err;
  753. if (!sdiodev->sg_support)
  754. return;
  755. nents = max_t(uint, BRCMF_DEFAULT_RXGLOM_SIZE, brcmf_sdiod_txglomsz);
  756. nents += (nents >> 4) + 1;
  757. WARN_ON(nents > sdiodev->max_segment_count);
  758. brcmf_dbg(TRACE, "nents=%d\n", nents);
  759. err = sg_alloc_table(&sdiodev->sgtable, nents, GFP_KERNEL);
  760. if (err < 0) {
  761. brcmf_err("allocation failed: disable scatter-gather");
  762. sdiodev->sg_support = false;
  763. }
  764. sdiodev->txglomsz = brcmf_sdiod_txglomsz;
  765. }
  766. #ifdef CONFIG_PM_SLEEP
  767. static int brcmf_sdiod_freezer_attach(struct brcmf_sdio_dev *sdiodev)
  768. {
  769. sdiodev->freezer = kzalloc(sizeof(*sdiodev->freezer), GFP_KERNEL);
  770. if (!sdiodev->freezer)
  771. return -ENOMEM;
  772. atomic_set(&sdiodev->freezer->thread_count, 0);
  773. atomic_set(&sdiodev->freezer->freezing, 0);
  774. init_waitqueue_head(&sdiodev->freezer->thread_freeze);
  775. init_completion(&sdiodev->freezer->resumed);
  776. return 0;
  777. }
  778. static void brcmf_sdiod_freezer_detach(struct brcmf_sdio_dev *sdiodev)
  779. {
  780. if (sdiodev->freezer) {
  781. WARN_ON(atomic_read(&sdiodev->freezer->freezing));
  782. kfree(sdiodev->freezer);
  783. }
  784. }
  785. static int brcmf_sdiod_freezer_on(struct brcmf_sdio_dev *sdiodev)
  786. {
  787. atomic_t *expect = &sdiodev->freezer->thread_count;
  788. int res = 0;
  789. sdiodev->freezer->frozen_count = 0;
  790. reinit_completion(&sdiodev->freezer->resumed);
  791. atomic_set(&sdiodev->freezer->freezing, 1);
  792. brcmf_sdio_trigger_dpc(sdiodev->bus);
  793. wait_event(sdiodev->freezer->thread_freeze,
  794. atomic_read(expect) == sdiodev->freezer->frozen_count);
  795. sdio_claim_host(sdiodev->func[1]);
  796. res = brcmf_sdio_sleep(sdiodev->bus, true);
  797. sdio_release_host(sdiodev->func[1]);
  798. return res;
  799. }
  800. static void brcmf_sdiod_freezer_off(struct brcmf_sdio_dev *sdiodev)
  801. {
  802. sdio_claim_host(sdiodev->func[1]);
  803. brcmf_sdio_sleep(sdiodev->bus, false);
  804. sdio_release_host(sdiodev->func[1]);
  805. atomic_set(&sdiodev->freezer->freezing, 0);
  806. complete_all(&sdiodev->freezer->resumed);
  807. }
  808. bool brcmf_sdiod_freezing(struct brcmf_sdio_dev *sdiodev)
  809. {
  810. return atomic_read(&sdiodev->freezer->freezing);
  811. }
  812. void brcmf_sdiod_try_freeze(struct brcmf_sdio_dev *sdiodev)
  813. {
  814. if (!brcmf_sdiod_freezing(sdiodev))
  815. return;
  816. sdiodev->freezer->frozen_count++;
  817. wake_up(&sdiodev->freezer->thread_freeze);
  818. wait_for_completion(&sdiodev->freezer->resumed);
  819. }
  820. void brcmf_sdiod_freezer_count(struct brcmf_sdio_dev *sdiodev)
  821. {
  822. atomic_inc(&sdiodev->freezer->thread_count);
  823. }
  824. void brcmf_sdiod_freezer_uncount(struct brcmf_sdio_dev *sdiodev)
  825. {
  826. atomic_dec(&sdiodev->freezer->thread_count);
  827. }
  828. #else
  829. static int brcmf_sdiod_freezer_attach(struct brcmf_sdio_dev *sdiodev)
  830. {
  831. return 0;
  832. }
  833. static void brcmf_sdiod_freezer_detach(struct brcmf_sdio_dev *sdiodev)
  834. {
  835. }
  836. #endif /* CONFIG_PM_SLEEP */
  837. static int brcmf_sdiod_remove(struct brcmf_sdio_dev *sdiodev)
  838. {
  839. if (sdiodev->bus) {
  840. brcmf_sdio_remove(sdiodev->bus);
  841. sdiodev->bus = NULL;
  842. }
  843. brcmf_sdiod_freezer_detach(sdiodev);
  844. /* Disable Function 2 */
  845. sdio_claim_host(sdiodev->func[2]);
  846. sdio_disable_func(sdiodev->func[2]);
  847. sdio_release_host(sdiodev->func[2]);
  848. /* Disable Function 1 */
  849. sdio_claim_host(sdiodev->func[1]);
  850. sdio_disable_func(sdiodev->func[1]);
  851. sdio_release_host(sdiodev->func[1]);
  852. sg_free_table(&sdiodev->sgtable);
  853. sdiodev->sbwad = 0;
  854. pm_runtime_allow(sdiodev->func[1]->card->host->parent);
  855. return 0;
  856. }
  857. static int brcmf_sdiod_probe(struct brcmf_sdio_dev *sdiodev)
  858. {
  859. struct sdio_func *func;
  860. struct mmc_host *host;
  861. uint max_blocks;
  862. int ret = 0;
  863. sdiodev->num_funcs = 2;
  864. sdio_claim_host(sdiodev->func[1]);
  865. ret = sdio_set_block_size(sdiodev->func[1], SDIO_FUNC1_BLOCKSIZE);
  866. if (ret) {
  867. brcmf_err("Failed to set F1 blocksize\n");
  868. sdio_release_host(sdiodev->func[1]);
  869. goto out;
  870. }
  871. ret = sdio_set_block_size(sdiodev->func[2], SDIO_FUNC2_BLOCKSIZE);
  872. if (ret) {
  873. brcmf_err("Failed to set F2 blocksize\n");
  874. sdio_release_host(sdiodev->func[1]);
  875. goto out;
  876. }
  877. /* increase F2 timeout */
  878. sdiodev->func[2]->enable_timeout = SDIO_WAIT_F2RDY;
  879. /* Enable Function 1 */
  880. ret = sdio_enable_func(sdiodev->func[1]);
  881. sdio_release_host(sdiodev->func[1]);
  882. if (ret) {
  883. brcmf_err("Failed to enable F1: err=%d\n", ret);
  884. goto out;
  885. }
  886. /*
  887. * determine host related variables after brcmf_sdiod_probe()
  888. * as func->cur_blksize is properly set and F2 init has been
  889. * completed successfully.
  890. */
  891. func = sdiodev->func[2];
  892. host = func->card->host;
  893. sdiodev->sg_support = host->max_segs > 1;
  894. max_blocks = min_t(uint, host->max_blk_count, 511u);
  895. sdiodev->max_request_size = min_t(uint, host->max_req_size,
  896. max_blocks * func->cur_blksize);
  897. sdiodev->max_segment_count = min_t(uint, host->max_segs,
  898. SG_MAX_SINGLE_ALLOC);
  899. sdiodev->max_segment_size = host->max_seg_size;
  900. /* allocate scatter-gather table. sg support
  901. * will be disabled upon allocation failure.
  902. */
  903. brcmf_sdiod_sgtable_alloc(sdiodev);
  904. ret = brcmf_sdiod_freezer_attach(sdiodev);
  905. if (ret)
  906. goto out;
  907. /* try to attach to the target device */
  908. sdiodev->bus = brcmf_sdio_probe(sdiodev);
  909. if (!sdiodev->bus) {
  910. ret = -ENODEV;
  911. goto out;
  912. }
  913. pm_runtime_forbid(host->parent);
  914. out:
  915. if (ret)
  916. brcmf_sdiod_remove(sdiodev);
  917. return ret;
  918. }
  919. #define BRCMF_SDIO_DEVICE(dev_id) \
  920. {SDIO_DEVICE(SDIO_VENDOR_ID_BROADCOM, dev_id)}
  921. /* devices we support, null terminated */
  922. static const struct sdio_device_id brcmf_sdmmc_ids[] = {
  923. BRCMF_SDIO_DEVICE(SDIO_DEVICE_ID_BROADCOM_43143),
  924. BRCMF_SDIO_DEVICE(SDIO_DEVICE_ID_BROADCOM_43241),
  925. BRCMF_SDIO_DEVICE(SDIO_DEVICE_ID_BROADCOM_4329),
  926. BRCMF_SDIO_DEVICE(SDIO_DEVICE_ID_BROADCOM_4330),
  927. BRCMF_SDIO_DEVICE(SDIO_DEVICE_ID_BROADCOM_4334),
  928. BRCMF_SDIO_DEVICE(SDIO_DEVICE_ID_BROADCOM_43340),
  929. BRCMF_SDIO_DEVICE(SDIO_DEVICE_ID_BROADCOM_43341),
  930. BRCMF_SDIO_DEVICE(SDIO_DEVICE_ID_BROADCOM_43362),
  931. BRCMF_SDIO_DEVICE(SDIO_DEVICE_ID_BROADCOM_4335_4339),
  932. BRCMF_SDIO_DEVICE(SDIO_DEVICE_ID_BROADCOM_43430),
  933. BRCMF_SDIO_DEVICE(SDIO_DEVICE_ID_BROADCOM_4345),
  934. BRCMF_SDIO_DEVICE(SDIO_DEVICE_ID_BROADCOM_4354),
  935. { /* end: all zeroes */ }
  936. };
  937. MODULE_DEVICE_TABLE(sdio, brcmf_sdmmc_ids);
  938. static struct brcmfmac_sdio_platform_data *brcmfmac_sdio_pdata;
  939. static int brcmf_ops_sdio_probe(struct sdio_func *func,
  940. const struct sdio_device_id *id)
  941. {
  942. int err;
  943. struct brcmf_sdio_dev *sdiodev;
  944. struct brcmf_bus *bus_if;
  945. brcmf_dbg(SDIO, "Enter\n");
  946. brcmf_dbg(SDIO, "Class=%x\n", func->class);
  947. brcmf_dbg(SDIO, "sdio vendor ID: 0x%04x\n", func->vendor);
  948. brcmf_dbg(SDIO, "sdio device ID: 0x%04x\n", func->device);
  949. brcmf_dbg(SDIO, "Function#: %d\n", func->num);
  950. /* Consume func num 1 but dont do anything with it. */
  951. if (func->num == 1)
  952. return 0;
  953. /* Ignore anything but func 2 */
  954. if (func->num != 2)
  955. return -ENODEV;
  956. bus_if = kzalloc(sizeof(struct brcmf_bus), GFP_KERNEL);
  957. if (!bus_if)
  958. return -ENOMEM;
  959. sdiodev = kzalloc(sizeof(struct brcmf_sdio_dev), GFP_KERNEL);
  960. if (!sdiodev) {
  961. kfree(bus_if);
  962. return -ENOMEM;
  963. }
  964. /* store refs to functions used. mmc_card does
  965. * not hold the F0 function pointer.
  966. */
  967. sdiodev->func[0] = kmemdup(func, sizeof(*func), GFP_KERNEL);
  968. sdiodev->func[0]->num = 0;
  969. sdiodev->func[1] = func->card->sdio_func[0];
  970. sdiodev->func[2] = func;
  971. sdiodev->bus_if = bus_if;
  972. bus_if->bus_priv.sdio = sdiodev;
  973. bus_if->proto_type = BRCMF_PROTO_BCDC;
  974. dev_set_drvdata(&func->dev, bus_if);
  975. dev_set_drvdata(&sdiodev->func[1]->dev, bus_if);
  976. sdiodev->dev = &sdiodev->func[1]->dev;
  977. sdiodev->pdata = brcmfmac_sdio_pdata;
  978. if (!sdiodev->pdata)
  979. brcmf_of_probe(sdiodev);
  980. #ifdef CONFIG_PM_SLEEP
  981. /* wowl can be supported when KEEP_POWER is true and (WAKE_SDIO_IRQ
  982. * is true or when platform data OOB irq is true).
  983. */
  984. if ((sdio_get_host_pm_caps(sdiodev->func[1]) & MMC_PM_KEEP_POWER) &&
  985. ((sdio_get_host_pm_caps(sdiodev->func[1]) & MMC_PM_WAKE_SDIO_IRQ) ||
  986. (sdiodev->pdata && sdiodev->pdata->oob_irq_supported)))
  987. bus_if->wowl_supported = true;
  988. #endif
  989. brcmf_sdiod_change_state(sdiodev, BRCMF_SDIOD_DOWN);
  990. brcmf_dbg(SDIO, "F2 found, calling brcmf_sdiod_probe...\n");
  991. err = brcmf_sdiod_probe(sdiodev);
  992. if (err) {
  993. brcmf_err("F2 error, probe failed %d...\n", err);
  994. goto fail;
  995. }
  996. brcmf_dbg(SDIO, "F2 init completed...\n");
  997. return 0;
  998. fail:
  999. dev_set_drvdata(&func->dev, NULL);
  1000. dev_set_drvdata(&sdiodev->func[1]->dev, NULL);
  1001. kfree(sdiodev->func[0]);
  1002. kfree(sdiodev);
  1003. kfree(bus_if);
  1004. return err;
  1005. }
  1006. static void brcmf_ops_sdio_remove(struct sdio_func *func)
  1007. {
  1008. struct brcmf_bus *bus_if;
  1009. struct brcmf_sdio_dev *sdiodev;
  1010. brcmf_dbg(SDIO, "Enter\n");
  1011. brcmf_dbg(SDIO, "sdio vendor ID: 0x%04x\n", func->vendor);
  1012. brcmf_dbg(SDIO, "sdio device ID: 0x%04x\n", func->device);
  1013. brcmf_dbg(SDIO, "Function: %d\n", func->num);
  1014. if (func->num != 1)
  1015. return;
  1016. bus_if = dev_get_drvdata(&func->dev);
  1017. if (bus_if) {
  1018. sdiodev = bus_if->bus_priv.sdio;
  1019. brcmf_sdiod_remove(sdiodev);
  1020. dev_set_drvdata(&sdiodev->func[1]->dev, NULL);
  1021. dev_set_drvdata(&sdiodev->func[2]->dev, NULL);
  1022. kfree(bus_if);
  1023. kfree(sdiodev->func[0]);
  1024. kfree(sdiodev);
  1025. }
  1026. brcmf_dbg(SDIO, "Exit\n");
  1027. }
  1028. void brcmf_sdio_wowl_config(struct device *dev, bool enabled)
  1029. {
  1030. struct brcmf_bus *bus_if = dev_get_drvdata(dev);
  1031. struct brcmf_sdio_dev *sdiodev = bus_if->bus_priv.sdio;
  1032. brcmf_dbg(SDIO, "Configuring WOWL, enabled=%d\n", enabled);
  1033. sdiodev->wowl_enabled = enabled;
  1034. }
  1035. #ifdef CONFIG_PM_SLEEP
  1036. static int brcmf_ops_sdio_suspend(struct device *dev)
  1037. {
  1038. struct sdio_func *func;
  1039. struct brcmf_bus *bus_if;
  1040. struct brcmf_sdio_dev *sdiodev;
  1041. mmc_pm_flag_t sdio_flags;
  1042. func = container_of(dev, struct sdio_func, dev);
  1043. brcmf_dbg(SDIO, "Enter: F%d\n", func->num);
  1044. if (func->num != SDIO_FUNC_1)
  1045. return 0;
  1046. bus_if = dev_get_drvdata(dev);
  1047. sdiodev = bus_if->bus_priv.sdio;
  1048. brcmf_sdiod_freezer_on(sdiodev);
  1049. brcmf_sdio_wd_timer(sdiodev->bus, 0);
  1050. if (sdiodev->wowl_enabled) {
  1051. sdio_flags = MMC_PM_KEEP_POWER;
  1052. if (sdiodev->pdata->oob_irq_supported)
  1053. enable_irq_wake(sdiodev->pdata->oob_irq_nr);
  1054. else
  1055. sdio_flags = MMC_PM_WAKE_SDIO_IRQ;
  1056. if (sdio_set_host_pm_flags(sdiodev->func[1], sdio_flags))
  1057. brcmf_err("Failed to set pm_flags %x\n", sdio_flags);
  1058. }
  1059. return 0;
  1060. }
  1061. static int brcmf_ops_sdio_resume(struct device *dev)
  1062. {
  1063. struct brcmf_bus *bus_if = dev_get_drvdata(dev);
  1064. struct brcmf_sdio_dev *sdiodev = bus_if->bus_priv.sdio;
  1065. struct sdio_func *func = container_of(dev, struct sdio_func, dev);
  1066. brcmf_dbg(SDIO, "Enter: F%d\n", func->num);
  1067. if (func->num != SDIO_FUNC_2)
  1068. return 0;
  1069. brcmf_sdiod_freezer_off(sdiodev);
  1070. return 0;
  1071. }
  1072. static const struct dev_pm_ops brcmf_sdio_pm_ops = {
  1073. .suspend = brcmf_ops_sdio_suspend,
  1074. .resume = brcmf_ops_sdio_resume,
  1075. };
  1076. #endif /* CONFIG_PM_SLEEP */
  1077. static struct sdio_driver brcmf_sdmmc_driver = {
  1078. .probe = brcmf_ops_sdio_probe,
  1079. .remove = brcmf_ops_sdio_remove,
  1080. .name = BRCMFMAC_SDIO_PDATA_NAME,
  1081. .id_table = brcmf_sdmmc_ids,
  1082. .drv = {
  1083. .owner = THIS_MODULE,
  1084. #ifdef CONFIG_PM_SLEEP
  1085. .pm = &brcmf_sdio_pm_ops,
  1086. #endif /* CONFIG_PM_SLEEP */
  1087. },
  1088. };
  1089. static int __init brcmf_sdio_pd_probe(struct platform_device *pdev)
  1090. {
  1091. brcmf_dbg(SDIO, "Enter\n");
  1092. brcmfmac_sdio_pdata = dev_get_platdata(&pdev->dev);
  1093. if (brcmfmac_sdio_pdata->power_on)
  1094. brcmfmac_sdio_pdata->power_on();
  1095. return 0;
  1096. }
  1097. static int brcmf_sdio_pd_remove(struct platform_device *pdev)
  1098. {
  1099. brcmf_dbg(SDIO, "Enter\n");
  1100. if (brcmfmac_sdio_pdata->power_off)
  1101. brcmfmac_sdio_pdata->power_off();
  1102. sdio_unregister_driver(&brcmf_sdmmc_driver);
  1103. return 0;
  1104. }
  1105. static struct platform_driver brcmf_sdio_pd = {
  1106. .remove = brcmf_sdio_pd_remove,
  1107. .driver = {
  1108. .name = BRCMFMAC_SDIO_PDATA_NAME,
  1109. }
  1110. };
  1111. void brcmf_sdio_register(void)
  1112. {
  1113. int ret;
  1114. ret = sdio_register_driver(&brcmf_sdmmc_driver);
  1115. if (ret)
  1116. brcmf_err("sdio_register_driver failed: %d\n", ret);
  1117. }
  1118. void brcmf_sdio_exit(void)
  1119. {
  1120. brcmf_dbg(SDIO, "Enter\n");
  1121. if (brcmfmac_sdio_pdata)
  1122. platform_driver_unregister(&brcmf_sdio_pd);
  1123. else
  1124. sdio_unregister_driver(&brcmf_sdmmc_driver);
  1125. }
  1126. void __init brcmf_sdio_init(void)
  1127. {
  1128. int ret;
  1129. brcmf_dbg(SDIO, "Enter\n");
  1130. ret = platform_driver_probe(&brcmf_sdio_pd, brcmf_sdio_pd_probe);
  1131. if (ret == -ENODEV)
  1132. brcmf_dbg(SDIO, "No platform data available.\n");
  1133. }