goku_udc.c 46 KB

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  1. /*
  2. * Toshiba TC86C001 ("Goku-S") USB Device Controller driver
  3. *
  4. * Copyright (C) 2000-2002 Lineo
  5. * by Stuart Lynne, Tom Rushworth, and Bruce Balden
  6. * Copyright (C) 2002 Toshiba Corporation
  7. * Copyright (C) 2003 MontaVista Software (source@mvista.com)
  8. *
  9. * This file is licensed under the terms of the GNU General Public
  10. * License version 2. This program is licensed "as is" without any
  11. * warranty of any kind, whether express or implied.
  12. */
  13. /*
  14. * This device has ep0 and three semi-configurable bulk/interrupt endpoints.
  15. *
  16. * - Endpoint numbering is fixed: ep{1,2,3}-bulk
  17. * - Gadget drivers can choose ep maxpacket (8/16/32/64)
  18. * - Gadget drivers can choose direction (IN, OUT)
  19. * - DMA works with ep1 (OUT transfers) and ep2 (IN transfers).
  20. */
  21. // #define VERBOSE /* extra debug messages (success too) */
  22. // #define USB_TRACE /* packet-level success messages */
  23. #include <linux/kernel.h>
  24. #include <linux/module.h>
  25. #include <linux/pci.h>
  26. #include <linux/delay.h>
  27. #include <linux/ioport.h>
  28. #include <linux/slab.h>
  29. #include <linux/errno.h>
  30. #include <linux/timer.h>
  31. #include <linux/list.h>
  32. #include <linux/interrupt.h>
  33. #include <linux/proc_fs.h>
  34. #include <linux/seq_file.h>
  35. #include <linux/device.h>
  36. #include <linux/usb/ch9.h>
  37. #include <linux/usb/gadget.h>
  38. #include <linux/prefetch.h>
  39. #include <asm/byteorder.h>
  40. #include <asm/io.h>
  41. #include <asm/irq.h>
  42. #include <asm/unaligned.h>
  43. #include "goku_udc.h"
  44. #define DRIVER_DESC "TC86C001 USB Device Controller"
  45. #define DRIVER_VERSION "30-Oct 2003"
  46. static const char driver_name [] = "goku_udc";
  47. static const char driver_desc [] = DRIVER_DESC;
  48. MODULE_AUTHOR("source@mvista.com");
  49. MODULE_DESCRIPTION(DRIVER_DESC);
  50. MODULE_LICENSE("GPL");
  51. /*
  52. * IN dma behaves ok under testing, though the IN-dma abort paths don't
  53. * seem to behave quite as expected. Used by default.
  54. *
  55. * OUT dma documents design problems handling the common "short packet"
  56. * transfer termination policy; it couldn't be enabled by default, even
  57. * if the OUT-dma abort problems had a resolution.
  58. */
  59. static unsigned use_dma = 1;
  60. #if 0
  61. //#include <linux/moduleparam.h>
  62. /* "modprobe goku_udc use_dma=1" etc
  63. * 0 to disable dma
  64. * 1 to use IN dma only (normal operation)
  65. * 2 to use IN and OUT dma
  66. */
  67. module_param(use_dma, uint, S_IRUGO);
  68. #endif
  69. /*-------------------------------------------------------------------------*/
  70. static void nuke(struct goku_ep *, int status);
  71. static inline void
  72. command(struct goku_udc_regs __iomem *regs, int command, unsigned epnum)
  73. {
  74. writel(COMMAND_EP(epnum) | command, &regs->Command);
  75. udelay(300);
  76. }
  77. static int
  78. goku_ep_enable(struct usb_ep *_ep, const struct usb_endpoint_descriptor *desc)
  79. {
  80. struct goku_udc *dev;
  81. struct goku_ep *ep;
  82. u32 mode;
  83. u16 max;
  84. unsigned long flags;
  85. ep = container_of(_ep, struct goku_ep, ep);
  86. if (!_ep || !desc
  87. || desc->bDescriptorType != USB_DT_ENDPOINT)
  88. return -EINVAL;
  89. dev = ep->dev;
  90. if (ep == &dev->ep[0])
  91. return -EINVAL;
  92. if (!dev->driver || dev->gadget.speed == USB_SPEED_UNKNOWN)
  93. return -ESHUTDOWN;
  94. if (ep->num != usb_endpoint_num(desc))
  95. return -EINVAL;
  96. switch (usb_endpoint_type(desc)) {
  97. case USB_ENDPOINT_XFER_BULK:
  98. case USB_ENDPOINT_XFER_INT:
  99. break;
  100. default:
  101. return -EINVAL;
  102. }
  103. if ((readl(ep->reg_status) & EPxSTATUS_EP_MASK)
  104. != EPxSTATUS_EP_INVALID)
  105. return -EBUSY;
  106. /* enabling the no-toggle interrupt mode would need an api hook */
  107. mode = 0;
  108. max = get_unaligned_le16(&desc->wMaxPacketSize);
  109. switch (max) {
  110. case 64: mode++;
  111. case 32: mode++;
  112. case 16: mode++;
  113. case 8: mode <<= 3;
  114. break;
  115. default:
  116. return -EINVAL;
  117. }
  118. mode |= 2 << 1; /* bulk, or intr-with-toggle */
  119. /* ep1/ep2 dma direction is chosen early; it works in the other
  120. * direction, with pio. be cautious with out-dma.
  121. */
  122. ep->is_in = usb_endpoint_dir_in(desc);
  123. if (ep->is_in) {
  124. mode |= 1;
  125. ep->dma = (use_dma != 0) && (ep->num == UDC_MSTRD_ENDPOINT);
  126. } else {
  127. ep->dma = (use_dma == 2) && (ep->num == UDC_MSTWR_ENDPOINT);
  128. if (ep->dma)
  129. DBG(dev, "%s out-dma hides short packets\n",
  130. ep->ep.name);
  131. }
  132. spin_lock_irqsave(&ep->dev->lock, flags);
  133. /* ep1 and ep2 can do double buffering and/or dma */
  134. if (ep->num < 3) {
  135. struct goku_udc_regs __iomem *regs = ep->dev->regs;
  136. u32 tmp;
  137. /* double buffer except (for now) with pio in */
  138. tmp = ((ep->dma || !ep->is_in)
  139. ? 0x10 /* double buffered */
  140. : 0x11 /* single buffer */
  141. ) << ep->num;
  142. tmp |= readl(&regs->EPxSingle);
  143. writel(tmp, &regs->EPxSingle);
  144. tmp = (ep->dma ? 0x10/*dma*/ : 0x11/*pio*/) << ep->num;
  145. tmp |= readl(&regs->EPxBCS);
  146. writel(tmp, &regs->EPxBCS);
  147. }
  148. writel(mode, ep->reg_mode);
  149. command(ep->dev->regs, COMMAND_RESET, ep->num);
  150. ep->ep.maxpacket = max;
  151. ep->stopped = 0;
  152. ep->ep.desc = desc;
  153. spin_unlock_irqrestore(&ep->dev->lock, flags);
  154. DBG(dev, "enable %s %s %s maxpacket %u\n", ep->ep.name,
  155. ep->is_in ? "IN" : "OUT",
  156. ep->dma ? "dma" : "pio",
  157. max);
  158. return 0;
  159. }
  160. static void ep_reset(struct goku_udc_regs __iomem *regs, struct goku_ep *ep)
  161. {
  162. struct goku_udc *dev = ep->dev;
  163. if (regs) {
  164. command(regs, COMMAND_INVALID, ep->num);
  165. if (ep->num) {
  166. if (ep->num == UDC_MSTWR_ENDPOINT)
  167. dev->int_enable &= ~(INT_MSTWREND
  168. |INT_MSTWRTMOUT);
  169. else if (ep->num == UDC_MSTRD_ENDPOINT)
  170. dev->int_enable &= ~INT_MSTRDEND;
  171. dev->int_enable &= ~INT_EPxDATASET (ep->num);
  172. } else
  173. dev->int_enable &= ~INT_EP0;
  174. writel(dev->int_enable, &regs->int_enable);
  175. readl(&regs->int_enable);
  176. if (ep->num < 3) {
  177. struct goku_udc_regs __iomem *r = ep->dev->regs;
  178. u32 tmp;
  179. tmp = readl(&r->EPxSingle);
  180. tmp &= ~(0x11 << ep->num);
  181. writel(tmp, &r->EPxSingle);
  182. tmp = readl(&r->EPxBCS);
  183. tmp &= ~(0x11 << ep->num);
  184. writel(tmp, &r->EPxBCS);
  185. }
  186. /* reset dma in case we're still using it */
  187. if (ep->dma) {
  188. u32 master;
  189. master = readl(&regs->dma_master) & MST_RW_BITS;
  190. if (ep->num == UDC_MSTWR_ENDPOINT) {
  191. master &= ~MST_W_BITS;
  192. master |= MST_WR_RESET;
  193. } else {
  194. master &= ~MST_R_BITS;
  195. master |= MST_RD_RESET;
  196. }
  197. writel(master, &regs->dma_master);
  198. }
  199. }
  200. usb_ep_set_maxpacket_limit(&ep->ep, MAX_FIFO_SIZE);
  201. ep->ep.desc = NULL;
  202. ep->stopped = 1;
  203. ep->irqs = 0;
  204. ep->dma = 0;
  205. }
  206. static int goku_ep_disable(struct usb_ep *_ep)
  207. {
  208. struct goku_ep *ep;
  209. struct goku_udc *dev;
  210. unsigned long flags;
  211. ep = container_of(_ep, struct goku_ep, ep);
  212. if (!_ep || !ep->ep.desc)
  213. return -ENODEV;
  214. dev = ep->dev;
  215. if (dev->ep0state == EP0_SUSPEND)
  216. return -EBUSY;
  217. VDBG(dev, "disable %s\n", _ep->name);
  218. spin_lock_irqsave(&dev->lock, flags);
  219. nuke(ep, -ESHUTDOWN);
  220. ep_reset(dev->regs, ep);
  221. spin_unlock_irqrestore(&dev->lock, flags);
  222. return 0;
  223. }
  224. /*-------------------------------------------------------------------------*/
  225. static struct usb_request *
  226. goku_alloc_request(struct usb_ep *_ep, gfp_t gfp_flags)
  227. {
  228. struct goku_request *req;
  229. if (!_ep)
  230. return NULL;
  231. req = kzalloc(sizeof *req, gfp_flags);
  232. if (!req)
  233. return NULL;
  234. INIT_LIST_HEAD(&req->queue);
  235. return &req->req;
  236. }
  237. static void
  238. goku_free_request(struct usb_ep *_ep, struct usb_request *_req)
  239. {
  240. struct goku_request *req;
  241. if (!_ep || !_req)
  242. return;
  243. req = container_of(_req, struct goku_request, req);
  244. WARN_ON(!list_empty(&req->queue));
  245. kfree(req);
  246. }
  247. /*-------------------------------------------------------------------------*/
  248. static void
  249. done(struct goku_ep *ep, struct goku_request *req, int status)
  250. {
  251. struct goku_udc *dev;
  252. unsigned stopped = ep->stopped;
  253. list_del_init(&req->queue);
  254. if (likely(req->req.status == -EINPROGRESS))
  255. req->req.status = status;
  256. else
  257. status = req->req.status;
  258. dev = ep->dev;
  259. if (ep->dma)
  260. usb_gadget_unmap_request(&dev->gadget, &req->req, ep->is_in);
  261. #ifndef USB_TRACE
  262. if (status && status != -ESHUTDOWN)
  263. #endif
  264. VDBG(dev, "complete %s req %p stat %d len %u/%u\n",
  265. ep->ep.name, &req->req, status,
  266. req->req.actual, req->req.length);
  267. /* don't modify queue heads during completion callback */
  268. ep->stopped = 1;
  269. spin_unlock(&dev->lock);
  270. usb_gadget_giveback_request(&ep->ep, &req->req);
  271. spin_lock(&dev->lock);
  272. ep->stopped = stopped;
  273. }
  274. /*-------------------------------------------------------------------------*/
  275. static inline int
  276. write_packet(u32 __iomem *fifo, u8 *buf, struct goku_request *req, unsigned max)
  277. {
  278. unsigned length, count;
  279. length = min(req->req.length - req->req.actual, max);
  280. req->req.actual += length;
  281. count = length;
  282. while (likely(count--))
  283. writel(*buf++, fifo);
  284. return length;
  285. }
  286. // return: 0 = still running, 1 = completed, negative = errno
  287. static int write_fifo(struct goku_ep *ep, struct goku_request *req)
  288. {
  289. struct goku_udc *dev = ep->dev;
  290. u32 tmp;
  291. u8 *buf;
  292. unsigned count;
  293. int is_last;
  294. tmp = readl(&dev->regs->DataSet);
  295. buf = req->req.buf + req->req.actual;
  296. prefetch(buf);
  297. dev = ep->dev;
  298. if (unlikely(ep->num == 0 && dev->ep0state != EP0_IN))
  299. return -EL2HLT;
  300. /* NOTE: just single-buffered PIO-IN for now. */
  301. if (unlikely((tmp & DATASET_A(ep->num)) != 0))
  302. return 0;
  303. /* clear our "packet available" irq */
  304. if (ep->num != 0)
  305. writel(~INT_EPxDATASET(ep->num), &dev->regs->int_status);
  306. count = write_packet(ep->reg_fifo, buf, req, ep->ep.maxpacket);
  307. /* last packet often short (sometimes a zlp, especially on ep0) */
  308. if (unlikely(count != ep->ep.maxpacket)) {
  309. writel(~(1<<ep->num), &dev->regs->EOP);
  310. if (ep->num == 0) {
  311. dev->ep[0].stopped = 1;
  312. dev->ep0state = EP0_STATUS;
  313. }
  314. is_last = 1;
  315. } else {
  316. if (likely(req->req.length != req->req.actual)
  317. || req->req.zero)
  318. is_last = 0;
  319. else
  320. is_last = 1;
  321. }
  322. #if 0 /* printk seemed to trash is_last...*/
  323. //#ifdef USB_TRACE
  324. VDBG(dev, "wrote %s %u bytes%s IN %u left %p\n",
  325. ep->ep.name, count, is_last ? "/last" : "",
  326. req->req.length - req->req.actual, req);
  327. #endif
  328. /* requests complete when all IN data is in the FIFO,
  329. * or sometimes later, if a zlp was needed.
  330. */
  331. if (is_last) {
  332. done(ep, req, 0);
  333. return 1;
  334. }
  335. return 0;
  336. }
  337. static int read_fifo(struct goku_ep *ep, struct goku_request *req)
  338. {
  339. struct goku_udc_regs __iomem *regs;
  340. u32 size, set;
  341. u8 *buf;
  342. unsigned bufferspace, is_short, dbuff;
  343. regs = ep->dev->regs;
  344. top:
  345. buf = req->req.buf + req->req.actual;
  346. prefetchw(buf);
  347. if (unlikely(ep->num == 0 && ep->dev->ep0state != EP0_OUT))
  348. return -EL2HLT;
  349. dbuff = (ep->num == 1 || ep->num == 2);
  350. do {
  351. /* ack dataset irq matching the status we'll handle */
  352. if (ep->num != 0)
  353. writel(~INT_EPxDATASET(ep->num), &regs->int_status);
  354. set = readl(&regs->DataSet) & DATASET_AB(ep->num);
  355. size = readl(&regs->EPxSizeLA[ep->num]);
  356. bufferspace = req->req.length - req->req.actual;
  357. /* usually do nothing without an OUT packet */
  358. if (likely(ep->num != 0 || bufferspace != 0)) {
  359. if (unlikely(set == 0))
  360. break;
  361. /* use ep1/ep2 double-buffering for OUT */
  362. if (!(size & PACKET_ACTIVE))
  363. size = readl(&regs->EPxSizeLB[ep->num]);
  364. if (!(size & PACKET_ACTIVE)) /* "can't happen" */
  365. break;
  366. size &= DATASIZE; /* EPxSizeH == 0 */
  367. /* ep0out no-out-data case for set_config, etc */
  368. } else
  369. size = 0;
  370. /* read all bytes from this packet */
  371. req->req.actual += size;
  372. is_short = (size < ep->ep.maxpacket);
  373. #ifdef USB_TRACE
  374. VDBG(ep->dev, "read %s %u bytes%s OUT req %p %u/%u\n",
  375. ep->ep.name, size, is_short ? "/S" : "",
  376. req, req->req.actual, req->req.length);
  377. #endif
  378. while (likely(size-- != 0)) {
  379. u8 byte = (u8) readl(ep->reg_fifo);
  380. if (unlikely(bufferspace == 0)) {
  381. /* this happens when the driver's buffer
  382. * is smaller than what the host sent.
  383. * discard the extra data in this packet.
  384. */
  385. if (req->req.status != -EOVERFLOW)
  386. DBG(ep->dev, "%s overflow %u\n",
  387. ep->ep.name, size);
  388. req->req.status = -EOVERFLOW;
  389. } else {
  390. *buf++ = byte;
  391. bufferspace--;
  392. }
  393. }
  394. /* completion */
  395. if (unlikely(is_short || req->req.actual == req->req.length)) {
  396. if (unlikely(ep->num == 0)) {
  397. /* non-control endpoints now usable? */
  398. if (ep->dev->req_config)
  399. writel(ep->dev->configured
  400. ? USBSTATE_CONFIGURED
  401. : 0,
  402. &regs->UsbState);
  403. /* ep0out status stage */
  404. writel(~(1<<0), &regs->EOP);
  405. ep->stopped = 1;
  406. ep->dev->ep0state = EP0_STATUS;
  407. }
  408. done(ep, req, 0);
  409. /* empty the second buffer asap */
  410. if (dbuff && !list_empty(&ep->queue)) {
  411. req = list_entry(ep->queue.next,
  412. struct goku_request, queue);
  413. goto top;
  414. }
  415. return 1;
  416. }
  417. } while (dbuff);
  418. return 0;
  419. }
  420. static inline void
  421. pio_irq_enable(struct goku_udc *dev,
  422. struct goku_udc_regs __iomem *regs, int epnum)
  423. {
  424. dev->int_enable |= INT_EPxDATASET (epnum);
  425. writel(dev->int_enable, &regs->int_enable);
  426. /* write may still be posted */
  427. }
  428. static inline void
  429. pio_irq_disable(struct goku_udc *dev,
  430. struct goku_udc_regs __iomem *regs, int epnum)
  431. {
  432. dev->int_enable &= ~INT_EPxDATASET (epnum);
  433. writel(dev->int_enable, &regs->int_enable);
  434. /* write may still be posted */
  435. }
  436. static inline void
  437. pio_advance(struct goku_ep *ep)
  438. {
  439. struct goku_request *req;
  440. if (unlikely(list_empty (&ep->queue)))
  441. return;
  442. req = list_entry(ep->queue.next, struct goku_request, queue);
  443. (ep->is_in ? write_fifo : read_fifo)(ep, req);
  444. }
  445. /*-------------------------------------------------------------------------*/
  446. // return: 0 = q running, 1 = q stopped, negative = errno
  447. static int start_dma(struct goku_ep *ep, struct goku_request *req)
  448. {
  449. struct goku_udc_regs __iomem *regs = ep->dev->regs;
  450. u32 master;
  451. u32 start = req->req.dma;
  452. u32 end = start + req->req.length - 1;
  453. master = readl(&regs->dma_master) & MST_RW_BITS;
  454. /* re-init the bits affecting IN dma; careful with zlps */
  455. if (likely(ep->is_in)) {
  456. if (unlikely(master & MST_RD_ENA)) {
  457. DBG (ep->dev, "start, IN active dma %03x!!\n",
  458. master);
  459. // return -EL2HLT;
  460. }
  461. writel(end, &regs->in_dma_end);
  462. writel(start, &regs->in_dma_start);
  463. master &= ~MST_R_BITS;
  464. if (unlikely(req->req.length == 0))
  465. master = MST_RD_ENA | MST_RD_EOPB;
  466. else if ((req->req.length % ep->ep.maxpacket) != 0
  467. || req->req.zero)
  468. master = MST_RD_ENA | MST_EOPB_ENA;
  469. else
  470. master = MST_RD_ENA | MST_EOPB_DIS;
  471. ep->dev->int_enable |= INT_MSTRDEND;
  472. /* Goku DMA-OUT merges short packets, which plays poorly with
  473. * protocols where short packets mark the transfer boundaries.
  474. * The chip supports a nonstandard policy with INT_MSTWRTMOUT,
  475. * ending transfers after 3 SOFs; we don't turn it on.
  476. */
  477. } else {
  478. if (unlikely(master & MST_WR_ENA)) {
  479. DBG (ep->dev, "start, OUT active dma %03x!!\n",
  480. master);
  481. // return -EL2HLT;
  482. }
  483. writel(end, &regs->out_dma_end);
  484. writel(start, &regs->out_dma_start);
  485. master &= ~MST_W_BITS;
  486. master |= MST_WR_ENA | MST_TIMEOUT_DIS;
  487. ep->dev->int_enable |= INT_MSTWREND|INT_MSTWRTMOUT;
  488. }
  489. writel(master, &regs->dma_master);
  490. writel(ep->dev->int_enable, &regs->int_enable);
  491. return 0;
  492. }
  493. static void dma_advance(struct goku_udc *dev, struct goku_ep *ep)
  494. {
  495. struct goku_request *req;
  496. struct goku_udc_regs __iomem *regs = ep->dev->regs;
  497. u32 master;
  498. master = readl(&regs->dma_master);
  499. if (unlikely(list_empty(&ep->queue))) {
  500. stop:
  501. if (ep->is_in)
  502. dev->int_enable &= ~INT_MSTRDEND;
  503. else
  504. dev->int_enable &= ~(INT_MSTWREND|INT_MSTWRTMOUT);
  505. writel(dev->int_enable, &regs->int_enable);
  506. return;
  507. }
  508. req = list_entry(ep->queue.next, struct goku_request, queue);
  509. /* normal hw dma completion (not abort) */
  510. if (likely(ep->is_in)) {
  511. if (unlikely(master & MST_RD_ENA))
  512. return;
  513. req->req.actual = readl(&regs->in_dma_current);
  514. } else {
  515. if (unlikely(master & MST_WR_ENA))
  516. return;
  517. /* hardware merges short packets, and also hides packet
  518. * overruns. a partial packet MAY be in the fifo here.
  519. */
  520. req->req.actual = readl(&regs->out_dma_current);
  521. }
  522. req->req.actual -= req->req.dma;
  523. req->req.actual++;
  524. #ifdef USB_TRACE
  525. VDBG(dev, "done %s %s dma, %u/%u bytes, req %p\n",
  526. ep->ep.name, ep->is_in ? "IN" : "OUT",
  527. req->req.actual, req->req.length, req);
  528. #endif
  529. done(ep, req, 0);
  530. if (list_empty(&ep->queue))
  531. goto stop;
  532. req = list_entry(ep->queue.next, struct goku_request, queue);
  533. (void) start_dma(ep, req);
  534. }
  535. static void abort_dma(struct goku_ep *ep, int status)
  536. {
  537. struct goku_udc_regs __iomem *regs = ep->dev->regs;
  538. struct goku_request *req;
  539. u32 curr, master;
  540. /* NAK future host requests, hoping the implicit delay lets the
  541. * dma engine finish reading (or writing) its latest packet and
  542. * empty the dma buffer (up to 16 bytes).
  543. *
  544. * This avoids needing to clean up a partial packet in the fifo;
  545. * we can't do that for IN without side effects to HALT and TOGGLE.
  546. */
  547. command(regs, COMMAND_FIFO_DISABLE, ep->num);
  548. req = list_entry(ep->queue.next, struct goku_request, queue);
  549. master = readl(&regs->dma_master) & MST_RW_BITS;
  550. /* FIXME using these resets isn't usably documented. this may
  551. * not work unless it's followed by disabling the endpoint.
  552. *
  553. * FIXME the OUT reset path doesn't even behave consistently.
  554. */
  555. if (ep->is_in) {
  556. if (unlikely((readl(&regs->dma_master) & MST_RD_ENA) == 0))
  557. goto finished;
  558. curr = readl(&regs->in_dma_current);
  559. writel(curr, &regs->in_dma_end);
  560. writel(curr, &regs->in_dma_start);
  561. master &= ~MST_R_BITS;
  562. master |= MST_RD_RESET;
  563. writel(master, &regs->dma_master);
  564. if (readl(&regs->dma_master) & MST_RD_ENA)
  565. DBG(ep->dev, "IN dma active after reset!\n");
  566. } else {
  567. if (unlikely((readl(&regs->dma_master) & MST_WR_ENA) == 0))
  568. goto finished;
  569. curr = readl(&regs->out_dma_current);
  570. writel(curr, &regs->out_dma_end);
  571. writel(curr, &regs->out_dma_start);
  572. master &= ~MST_W_BITS;
  573. master |= MST_WR_RESET;
  574. writel(master, &regs->dma_master);
  575. if (readl(&regs->dma_master) & MST_WR_ENA)
  576. DBG(ep->dev, "OUT dma active after reset!\n");
  577. }
  578. req->req.actual = (curr - req->req.dma) + 1;
  579. req->req.status = status;
  580. VDBG(ep->dev, "%s %s %s %d/%d\n", __func__, ep->ep.name,
  581. ep->is_in ? "IN" : "OUT",
  582. req->req.actual, req->req.length);
  583. command(regs, COMMAND_FIFO_ENABLE, ep->num);
  584. return;
  585. finished:
  586. /* dma already completed; no abort needed */
  587. command(regs, COMMAND_FIFO_ENABLE, ep->num);
  588. req->req.actual = req->req.length;
  589. req->req.status = 0;
  590. }
  591. /*-------------------------------------------------------------------------*/
  592. static int
  593. goku_queue(struct usb_ep *_ep, struct usb_request *_req, gfp_t gfp_flags)
  594. {
  595. struct goku_request *req;
  596. struct goku_ep *ep;
  597. struct goku_udc *dev;
  598. unsigned long flags;
  599. int status;
  600. /* always require a cpu-view buffer so pio works */
  601. req = container_of(_req, struct goku_request, req);
  602. if (unlikely(!_req || !_req->complete
  603. || !_req->buf || !list_empty(&req->queue)))
  604. return -EINVAL;
  605. ep = container_of(_ep, struct goku_ep, ep);
  606. if (unlikely(!_ep || (!ep->ep.desc && ep->num != 0)))
  607. return -EINVAL;
  608. dev = ep->dev;
  609. if (unlikely(!dev->driver || dev->gadget.speed == USB_SPEED_UNKNOWN))
  610. return -ESHUTDOWN;
  611. /* can't touch registers when suspended */
  612. if (dev->ep0state == EP0_SUSPEND)
  613. return -EBUSY;
  614. /* set up dma mapping in case the caller didn't */
  615. if (ep->dma) {
  616. status = usb_gadget_map_request(&dev->gadget, &req->req,
  617. ep->is_in);
  618. if (status)
  619. return status;
  620. }
  621. #ifdef USB_TRACE
  622. VDBG(dev, "%s queue req %p, len %u buf %p\n",
  623. _ep->name, _req, _req->length, _req->buf);
  624. #endif
  625. spin_lock_irqsave(&dev->lock, flags);
  626. _req->status = -EINPROGRESS;
  627. _req->actual = 0;
  628. /* for ep0 IN without premature status, zlp is required and
  629. * writing EOP starts the status stage (OUT).
  630. */
  631. if (unlikely(ep->num == 0 && ep->is_in))
  632. _req->zero = 1;
  633. /* kickstart this i/o queue? */
  634. status = 0;
  635. if (list_empty(&ep->queue) && likely(!ep->stopped)) {
  636. /* dma: done after dma completion IRQ (or error)
  637. * pio: done after last fifo operation
  638. */
  639. if (ep->dma)
  640. status = start_dma(ep, req);
  641. else
  642. status = (ep->is_in ? write_fifo : read_fifo)(ep, req);
  643. if (unlikely(status != 0)) {
  644. if (status > 0)
  645. status = 0;
  646. req = NULL;
  647. }
  648. } /* else pio or dma irq handler advances the queue. */
  649. if (likely(req != NULL))
  650. list_add_tail(&req->queue, &ep->queue);
  651. if (likely(!list_empty(&ep->queue))
  652. && likely(ep->num != 0)
  653. && !ep->dma
  654. && !(dev->int_enable & INT_EPxDATASET (ep->num)))
  655. pio_irq_enable(dev, dev->regs, ep->num);
  656. spin_unlock_irqrestore(&dev->lock, flags);
  657. /* pci writes may still be posted */
  658. return status;
  659. }
  660. /* dequeue ALL requests */
  661. static void nuke(struct goku_ep *ep, int status)
  662. {
  663. struct goku_request *req;
  664. ep->stopped = 1;
  665. if (list_empty(&ep->queue))
  666. return;
  667. if (ep->dma)
  668. abort_dma(ep, status);
  669. while (!list_empty(&ep->queue)) {
  670. req = list_entry(ep->queue.next, struct goku_request, queue);
  671. done(ep, req, status);
  672. }
  673. }
  674. /* dequeue JUST ONE request */
  675. static int goku_dequeue(struct usb_ep *_ep, struct usb_request *_req)
  676. {
  677. struct goku_request *req;
  678. struct goku_ep *ep;
  679. struct goku_udc *dev;
  680. unsigned long flags;
  681. ep = container_of(_ep, struct goku_ep, ep);
  682. if (!_ep || !_req || (!ep->ep.desc && ep->num != 0))
  683. return -EINVAL;
  684. dev = ep->dev;
  685. if (!dev->driver)
  686. return -ESHUTDOWN;
  687. /* we can't touch (dma) registers when suspended */
  688. if (dev->ep0state == EP0_SUSPEND)
  689. return -EBUSY;
  690. VDBG(dev, "%s %s %s %s %p\n", __func__, _ep->name,
  691. ep->is_in ? "IN" : "OUT",
  692. ep->dma ? "dma" : "pio",
  693. _req);
  694. spin_lock_irqsave(&dev->lock, flags);
  695. /* make sure it's actually queued on this endpoint */
  696. list_for_each_entry (req, &ep->queue, queue) {
  697. if (&req->req == _req)
  698. break;
  699. }
  700. if (&req->req != _req) {
  701. spin_unlock_irqrestore (&dev->lock, flags);
  702. return -EINVAL;
  703. }
  704. if (ep->dma && ep->queue.next == &req->queue && !ep->stopped) {
  705. abort_dma(ep, -ECONNRESET);
  706. done(ep, req, -ECONNRESET);
  707. dma_advance(dev, ep);
  708. } else if (!list_empty(&req->queue))
  709. done(ep, req, -ECONNRESET);
  710. else
  711. req = NULL;
  712. spin_unlock_irqrestore(&dev->lock, flags);
  713. return req ? 0 : -EOPNOTSUPP;
  714. }
  715. /*-------------------------------------------------------------------------*/
  716. static void goku_clear_halt(struct goku_ep *ep)
  717. {
  718. // assert (ep->num !=0)
  719. VDBG(ep->dev, "%s clear halt\n", ep->ep.name);
  720. command(ep->dev->regs, COMMAND_SETDATA0, ep->num);
  721. command(ep->dev->regs, COMMAND_STALL_CLEAR, ep->num);
  722. if (ep->stopped) {
  723. ep->stopped = 0;
  724. if (ep->dma) {
  725. struct goku_request *req;
  726. if (list_empty(&ep->queue))
  727. return;
  728. req = list_entry(ep->queue.next, struct goku_request,
  729. queue);
  730. (void) start_dma(ep, req);
  731. } else
  732. pio_advance(ep);
  733. }
  734. }
  735. static int goku_set_halt(struct usb_ep *_ep, int value)
  736. {
  737. struct goku_ep *ep;
  738. unsigned long flags;
  739. int retval = 0;
  740. if (!_ep)
  741. return -ENODEV;
  742. ep = container_of (_ep, struct goku_ep, ep);
  743. if (ep->num == 0) {
  744. if (value) {
  745. ep->dev->ep0state = EP0_STALL;
  746. ep->dev->ep[0].stopped = 1;
  747. } else
  748. return -EINVAL;
  749. /* don't change EPxSTATUS_EP_INVALID to READY */
  750. } else if (!ep->ep.desc) {
  751. DBG(ep->dev, "%s %s inactive?\n", __func__, ep->ep.name);
  752. return -EINVAL;
  753. }
  754. spin_lock_irqsave(&ep->dev->lock, flags);
  755. if (!list_empty(&ep->queue))
  756. retval = -EAGAIN;
  757. else if (ep->is_in && value
  758. /* data in (either) packet buffer? */
  759. && (readl(&ep->dev->regs->DataSet)
  760. & DATASET_AB(ep->num)))
  761. retval = -EAGAIN;
  762. else if (!value)
  763. goku_clear_halt(ep);
  764. else {
  765. ep->stopped = 1;
  766. VDBG(ep->dev, "%s set halt\n", ep->ep.name);
  767. command(ep->dev->regs, COMMAND_STALL, ep->num);
  768. readl(ep->reg_status);
  769. }
  770. spin_unlock_irqrestore(&ep->dev->lock, flags);
  771. return retval;
  772. }
  773. static int goku_fifo_status(struct usb_ep *_ep)
  774. {
  775. struct goku_ep *ep;
  776. struct goku_udc_regs __iomem *regs;
  777. u32 size;
  778. if (!_ep)
  779. return -ENODEV;
  780. ep = container_of(_ep, struct goku_ep, ep);
  781. /* size is only reported sanely for OUT */
  782. if (ep->is_in)
  783. return -EOPNOTSUPP;
  784. /* ignores 16-byte dma buffer; SizeH == 0 */
  785. regs = ep->dev->regs;
  786. size = readl(&regs->EPxSizeLA[ep->num]) & DATASIZE;
  787. size += readl(&regs->EPxSizeLB[ep->num]) & DATASIZE;
  788. VDBG(ep->dev, "%s %s %u\n", __func__, ep->ep.name, size);
  789. return size;
  790. }
  791. static void goku_fifo_flush(struct usb_ep *_ep)
  792. {
  793. struct goku_ep *ep;
  794. struct goku_udc_regs __iomem *regs;
  795. u32 size;
  796. if (!_ep)
  797. return;
  798. ep = container_of(_ep, struct goku_ep, ep);
  799. VDBG(ep->dev, "%s %s\n", __func__, ep->ep.name);
  800. /* don't change EPxSTATUS_EP_INVALID to READY */
  801. if (!ep->ep.desc && ep->num != 0) {
  802. DBG(ep->dev, "%s %s inactive?\n", __func__, ep->ep.name);
  803. return;
  804. }
  805. regs = ep->dev->regs;
  806. size = readl(&regs->EPxSizeLA[ep->num]);
  807. size &= DATASIZE;
  808. /* Non-desirable behavior: FIFO_CLEAR also clears the
  809. * endpoint halt feature. For OUT, we _could_ just read
  810. * the bytes out (PIO, if !ep->dma); for in, no choice.
  811. */
  812. if (size)
  813. command(regs, COMMAND_FIFO_CLEAR, ep->num);
  814. }
  815. static const struct usb_ep_ops goku_ep_ops = {
  816. .enable = goku_ep_enable,
  817. .disable = goku_ep_disable,
  818. .alloc_request = goku_alloc_request,
  819. .free_request = goku_free_request,
  820. .queue = goku_queue,
  821. .dequeue = goku_dequeue,
  822. .set_halt = goku_set_halt,
  823. .fifo_status = goku_fifo_status,
  824. .fifo_flush = goku_fifo_flush,
  825. };
  826. /*-------------------------------------------------------------------------*/
  827. static int goku_get_frame(struct usb_gadget *_gadget)
  828. {
  829. return -EOPNOTSUPP;
  830. }
  831. static struct usb_ep *goku_match_ep(struct usb_gadget *g,
  832. struct usb_endpoint_descriptor *desc,
  833. struct usb_ss_ep_comp_descriptor *ep_comp)
  834. {
  835. struct goku_udc *dev = to_goku_udc(g);
  836. struct usb_ep *ep;
  837. switch (usb_endpoint_type(desc)) {
  838. case USB_ENDPOINT_XFER_INT:
  839. /* single buffering is enough */
  840. ep = &dev->ep[3].ep;
  841. if (usb_gadget_ep_match_desc(g, ep, desc, ep_comp))
  842. return ep;
  843. break;
  844. case USB_ENDPOINT_XFER_BULK:
  845. if (usb_endpoint_dir_in(desc)) {
  846. /* DMA may be available */
  847. ep = &dev->ep[2].ep;
  848. if (usb_gadget_ep_match_desc(g, ep, desc, ep_comp))
  849. return ep;
  850. }
  851. break;
  852. default:
  853. /* nothing */ ;
  854. }
  855. return NULL;
  856. }
  857. static int goku_udc_start(struct usb_gadget *g,
  858. struct usb_gadget_driver *driver);
  859. static int goku_udc_stop(struct usb_gadget *g);
  860. static const struct usb_gadget_ops goku_ops = {
  861. .get_frame = goku_get_frame,
  862. .udc_start = goku_udc_start,
  863. .udc_stop = goku_udc_stop,
  864. .match_ep = goku_match_ep,
  865. // no remote wakeup
  866. // not selfpowered
  867. };
  868. /*-------------------------------------------------------------------------*/
  869. static inline const char *dmastr(void)
  870. {
  871. if (use_dma == 0)
  872. return "(dma disabled)";
  873. else if (use_dma == 2)
  874. return "(dma IN and OUT)";
  875. else
  876. return "(dma IN)";
  877. }
  878. #ifdef CONFIG_USB_GADGET_DEBUG_FILES
  879. static const char proc_node_name [] = "driver/udc";
  880. #define FOURBITS "%s%s%s%s"
  881. #define EIGHTBITS FOURBITS FOURBITS
  882. static void dump_intmask(struct seq_file *m, const char *label, u32 mask)
  883. {
  884. /* int_status is the same format ... */
  885. seq_printf(m, "%s %05X =" FOURBITS EIGHTBITS EIGHTBITS "\n",
  886. label, mask,
  887. (mask & INT_PWRDETECT) ? " power" : "",
  888. (mask & INT_SYSERROR) ? " sys" : "",
  889. (mask & INT_MSTRDEND) ? " in-dma" : "",
  890. (mask & INT_MSTWRTMOUT) ? " wrtmo" : "",
  891. (mask & INT_MSTWREND) ? " out-dma" : "",
  892. (mask & INT_MSTWRSET) ? " wrset" : "",
  893. (mask & INT_ERR) ? " err" : "",
  894. (mask & INT_SOF) ? " sof" : "",
  895. (mask & INT_EP3NAK) ? " ep3nak" : "",
  896. (mask & INT_EP2NAK) ? " ep2nak" : "",
  897. (mask & INT_EP1NAK) ? " ep1nak" : "",
  898. (mask & INT_EP3DATASET) ? " ep3" : "",
  899. (mask & INT_EP2DATASET) ? " ep2" : "",
  900. (mask & INT_EP1DATASET) ? " ep1" : "",
  901. (mask & INT_STATUSNAK) ? " ep0snak" : "",
  902. (mask & INT_STATUS) ? " ep0status" : "",
  903. (mask & INT_SETUP) ? " setup" : "",
  904. (mask & INT_ENDPOINT0) ? " ep0" : "",
  905. (mask & INT_USBRESET) ? " reset" : "",
  906. (mask & INT_SUSPEND) ? " suspend" : "");
  907. }
  908. static const char *udc_ep_state(enum ep0state state)
  909. {
  910. switch (state) {
  911. case EP0_DISCONNECT:
  912. return "ep0_disconnect";
  913. case EP0_IDLE:
  914. return "ep0_idle";
  915. case EP0_IN:
  916. return "ep0_in";
  917. case EP0_OUT:
  918. return "ep0_out";
  919. case EP0_STATUS:
  920. return "ep0_status";
  921. case EP0_STALL:
  922. return "ep0_stall";
  923. case EP0_SUSPEND:
  924. return "ep0_suspend";
  925. }
  926. return "ep0_?";
  927. }
  928. static const char *udc_ep_status(u32 status)
  929. {
  930. switch (status & EPxSTATUS_EP_MASK) {
  931. case EPxSTATUS_EP_READY:
  932. return "ready";
  933. case EPxSTATUS_EP_DATAIN:
  934. return "packet";
  935. case EPxSTATUS_EP_FULL:
  936. return "full";
  937. case EPxSTATUS_EP_TX_ERR: /* host will retry */
  938. return "tx_err";
  939. case EPxSTATUS_EP_RX_ERR:
  940. return "rx_err";
  941. case EPxSTATUS_EP_BUSY: /* ep0 only */
  942. return "busy";
  943. case EPxSTATUS_EP_STALL:
  944. return "stall";
  945. case EPxSTATUS_EP_INVALID: /* these "can't happen" */
  946. return "invalid";
  947. }
  948. return "?";
  949. }
  950. static int udc_proc_read(struct seq_file *m, void *v)
  951. {
  952. struct goku_udc *dev = m->private;
  953. struct goku_udc_regs __iomem *regs = dev->regs;
  954. unsigned long flags;
  955. int i, is_usb_connected;
  956. u32 tmp;
  957. local_irq_save(flags);
  958. /* basic device status */
  959. tmp = readl(&regs->power_detect);
  960. is_usb_connected = tmp & PW_DETECT;
  961. seq_printf(m,
  962. "%s - %s\n"
  963. "%s version: %s %s\n"
  964. "Gadget driver: %s\n"
  965. "Host %s, %s\n"
  966. "\n",
  967. pci_name(dev->pdev), driver_desc,
  968. driver_name, DRIVER_VERSION, dmastr(),
  969. dev->driver ? dev->driver->driver.name : "(none)",
  970. is_usb_connected
  971. ? ((tmp & PW_PULLUP) ? "full speed" : "powered")
  972. : "disconnected",
  973. udc_ep_state(dev->ep0state));
  974. dump_intmask(m, "int_status", readl(&regs->int_status));
  975. dump_intmask(m, "int_enable", readl(&regs->int_enable));
  976. if (!is_usb_connected || !dev->driver || (tmp & PW_PULLUP) == 0)
  977. goto done;
  978. /* registers for (active) device and ep0 */
  979. seq_printf(m, "\nirqs %lu\ndataset %02x single.bcs %02x.%02x state %x addr %u\n",
  980. dev->irqs, readl(&regs->DataSet),
  981. readl(&regs->EPxSingle), readl(&regs->EPxBCS),
  982. readl(&regs->UsbState),
  983. readl(&regs->address));
  984. if (seq_has_overflowed(m))
  985. goto done;
  986. tmp = readl(&regs->dma_master);
  987. seq_printf(m, "dma %03X =" EIGHTBITS "%s %s\n",
  988. tmp,
  989. (tmp & MST_EOPB_DIS) ? " eopb-" : "",
  990. (tmp & MST_EOPB_ENA) ? " eopb+" : "",
  991. (tmp & MST_TIMEOUT_DIS) ? " tmo-" : "",
  992. (tmp & MST_TIMEOUT_ENA) ? " tmo+" : "",
  993. (tmp & MST_RD_EOPB) ? " eopb" : "",
  994. (tmp & MST_RD_RESET) ? " in_reset" : "",
  995. (tmp & MST_WR_RESET) ? " out_reset" : "",
  996. (tmp & MST_RD_ENA) ? " IN" : "",
  997. (tmp & MST_WR_ENA) ? " OUT" : "",
  998. (tmp & MST_CONNECTION) ? "ep1in/ep2out" : "ep1out/ep2in");
  999. if (seq_has_overflowed(m))
  1000. goto done;
  1001. /* dump endpoint queues */
  1002. for (i = 0; i < 4; i++) {
  1003. struct goku_ep *ep = &dev->ep [i];
  1004. struct goku_request *req;
  1005. if (i && !ep->ep.desc)
  1006. continue;
  1007. tmp = readl(ep->reg_status);
  1008. seq_printf(m, "%s %s max %u %s, irqs %lu, status %02x (%s) " FOURBITS "\n",
  1009. ep->ep.name,
  1010. ep->is_in ? "in" : "out",
  1011. ep->ep.maxpacket,
  1012. ep->dma ? "dma" : "pio",
  1013. ep->irqs,
  1014. tmp, udc_ep_status(tmp),
  1015. (tmp & EPxSTATUS_TOGGLE) ? "data1" : "data0",
  1016. (tmp & EPxSTATUS_SUSPEND) ? " suspend" : "",
  1017. (tmp & EPxSTATUS_FIFO_DISABLE) ? " disable" : "",
  1018. (tmp & EPxSTATUS_STAGE_ERROR) ? " ep0stat" : "");
  1019. if (seq_has_overflowed(m))
  1020. goto done;
  1021. if (list_empty(&ep->queue)) {
  1022. seq_puts(m, "\t(nothing queued)\n");
  1023. if (seq_has_overflowed(m))
  1024. goto done;
  1025. continue;
  1026. }
  1027. list_for_each_entry(req, &ep->queue, queue) {
  1028. if (ep->dma && req->queue.prev == &ep->queue) {
  1029. if (i == UDC_MSTRD_ENDPOINT)
  1030. tmp = readl(&regs->in_dma_current);
  1031. else
  1032. tmp = readl(&regs->out_dma_current);
  1033. tmp -= req->req.dma;
  1034. tmp++;
  1035. } else
  1036. tmp = req->req.actual;
  1037. seq_printf(m, "\treq %p len %u/%u buf %p\n",
  1038. &req->req, tmp, req->req.length,
  1039. req->req.buf);
  1040. if (seq_has_overflowed(m))
  1041. goto done;
  1042. }
  1043. }
  1044. done:
  1045. local_irq_restore(flags);
  1046. return 0;
  1047. }
  1048. /*
  1049. * seq_file wrappers for procfile show routines.
  1050. */
  1051. static int udc_proc_open(struct inode *inode, struct file *file)
  1052. {
  1053. return single_open(file, udc_proc_read, PDE_DATA(file_inode(file)));
  1054. }
  1055. static const struct file_operations udc_proc_fops = {
  1056. .open = udc_proc_open,
  1057. .read = seq_read,
  1058. .llseek = seq_lseek,
  1059. .release = single_release,
  1060. };
  1061. #endif /* CONFIG_USB_GADGET_DEBUG_FILES */
  1062. /*-------------------------------------------------------------------------*/
  1063. static void udc_reinit (struct goku_udc *dev)
  1064. {
  1065. static char *names [] = { "ep0", "ep1-bulk", "ep2-bulk", "ep3-bulk" };
  1066. unsigned i;
  1067. INIT_LIST_HEAD (&dev->gadget.ep_list);
  1068. dev->gadget.ep0 = &dev->ep [0].ep;
  1069. dev->gadget.speed = USB_SPEED_UNKNOWN;
  1070. dev->ep0state = EP0_DISCONNECT;
  1071. dev->irqs = 0;
  1072. for (i = 0; i < 4; i++) {
  1073. struct goku_ep *ep = &dev->ep[i];
  1074. ep->num = i;
  1075. ep->ep.name = names[i];
  1076. ep->reg_fifo = &dev->regs->ep_fifo [i];
  1077. ep->reg_status = &dev->regs->ep_status [i];
  1078. ep->reg_mode = &dev->regs->ep_mode[i];
  1079. ep->ep.ops = &goku_ep_ops;
  1080. list_add_tail (&ep->ep.ep_list, &dev->gadget.ep_list);
  1081. ep->dev = dev;
  1082. INIT_LIST_HEAD (&ep->queue);
  1083. ep_reset(NULL, ep);
  1084. if (i == 0)
  1085. ep->ep.caps.type_control = true;
  1086. else
  1087. ep->ep.caps.type_bulk = true;
  1088. ep->ep.caps.dir_in = true;
  1089. ep->ep.caps.dir_out = true;
  1090. }
  1091. dev->ep[0].reg_mode = NULL;
  1092. usb_ep_set_maxpacket_limit(&dev->ep[0].ep, MAX_EP0_SIZE);
  1093. list_del_init (&dev->ep[0].ep.ep_list);
  1094. }
  1095. static void udc_reset(struct goku_udc *dev)
  1096. {
  1097. struct goku_udc_regs __iomem *regs = dev->regs;
  1098. writel(0, &regs->power_detect);
  1099. writel(0, &regs->int_enable);
  1100. readl(&regs->int_enable);
  1101. dev->int_enable = 0;
  1102. /* deassert reset, leave USB D+ at hi-Z (no pullup)
  1103. * don't let INT_PWRDETECT sequence begin
  1104. */
  1105. udelay(250);
  1106. writel(PW_RESETB, &regs->power_detect);
  1107. readl(&regs->int_enable);
  1108. }
  1109. static void ep0_start(struct goku_udc *dev)
  1110. {
  1111. struct goku_udc_regs __iomem *regs = dev->regs;
  1112. unsigned i;
  1113. VDBG(dev, "%s\n", __func__);
  1114. udc_reset(dev);
  1115. udc_reinit (dev);
  1116. //writel(MST_EOPB_ENA | MST_TIMEOUT_ENA, &regs->dma_master);
  1117. /* hw handles set_address, set_feature, get_status; maybe more */
  1118. writel( G_REQMODE_SET_INTF | G_REQMODE_GET_INTF
  1119. | G_REQMODE_SET_CONF | G_REQMODE_GET_CONF
  1120. | G_REQMODE_GET_DESC
  1121. | G_REQMODE_CLEAR_FEAT
  1122. , &regs->reqmode);
  1123. for (i = 0; i < 4; i++)
  1124. dev->ep[i].irqs = 0;
  1125. /* can't modify descriptors after writing UsbReady */
  1126. for (i = 0; i < DESC_LEN; i++)
  1127. writel(0, &regs->descriptors[i]);
  1128. writel(0, &regs->UsbReady);
  1129. /* expect ep0 requests when the host drops reset */
  1130. writel(PW_RESETB | PW_PULLUP, &regs->power_detect);
  1131. dev->int_enable = INT_DEVWIDE | INT_EP0;
  1132. writel(dev->int_enable, &dev->regs->int_enable);
  1133. readl(&regs->int_enable);
  1134. dev->gadget.speed = USB_SPEED_FULL;
  1135. dev->ep0state = EP0_IDLE;
  1136. }
  1137. static void udc_enable(struct goku_udc *dev)
  1138. {
  1139. /* start enumeration now, or after power detect irq */
  1140. if (readl(&dev->regs->power_detect) & PW_DETECT)
  1141. ep0_start(dev);
  1142. else {
  1143. DBG(dev, "%s\n", __func__);
  1144. dev->int_enable = INT_PWRDETECT;
  1145. writel(dev->int_enable, &dev->regs->int_enable);
  1146. }
  1147. }
  1148. /*-------------------------------------------------------------------------*/
  1149. /* keeping it simple:
  1150. * - one bus driver, initted first;
  1151. * - one function driver, initted second
  1152. */
  1153. /* when a driver is successfully registered, it will receive
  1154. * control requests including set_configuration(), which enables
  1155. * non-control requests. then usb traffic follows until a
  1156. * disconnect is reported. then a host may connect again, or
  1157. * the driver might get unbound.
  1158. */
  1159. static int goku_udc_start(struct usb_gadget *g,
  1160. struct usb_gadget_driver *driver)
  1161. {
  1162. struct goku_udc *dev = to_goku_udc(g);
  1163. /* hook up the driver */
  1164. driver->driver.bus = NULL;
  1165. dev->driver = driver;
  1166. /*
  1167. * then enable host detection and ep0; and we're ready
  1168. * for set_configuration as well as eventual disconnect.
  1169. */
  1170. udc_enable(dev);
  1171. return 0;
  1172. }
  1173. static void stop_activity(struct goku_udc *dev)
  1174. {
  1175. unsigned i;
  1176. DBG (dev, "%s\n", __func__);
  1177. /* disconnect gadget driver after quiesceing hw and the driver */
  1178. udc_reset (dev);
  1179. for (i = 0; i < 4; i++)
  1180. nuke(&dev->ep [i], -ESHUTDOWN);
  1181. if (dev->driver)
  1182. udc_enable(dev);
  1183. }
  1184. static int goku_udc_stop(struct usb_gadget *g)
  1185. {
  1186. struct goku_udc *dev = to_goku_udc(g);
  1187. unsigned long flags;
  1188. spin_lock_irqsave(&dev->lock, flags);
  1189. dev->driver = NULL;
  1190. stop_activity(dev);
  1191. spin_unlock_irqrestore(&dev->lock, flags);
  1192. return 0;
  1193. }
  1194. /*-------------------------------------------------------------------------*/
  1195. static void ep0_setup(struct goku_udc *dev)
  1196. {
  1197. struct goku_udc_regs __iomem *regs = dev->regs;
  1198. struct usb_ctrlrequest ctrl;
  1199. int tmp;
  1200. /* read SETUP packet and enter DATA stage */
  1201. ctrl.bRequestType = readl(&regs->bRequestType);
  1202. ctrl.bRequest = readl(&regs->bRequest);
  1203. ctrl.wValue = cpu_to_le16((readl(&regs->wValueH) << 8)
  1204. | readl(&regs->wValueL));
  1205. ctrl.wIndex = cpu_to_le16((readl(&regs->wIndexH) << 8)
  1206. | readl(&regs->wIndexL));
  1207. ctrl.wLength = cpu_to_le16((readl(&regs->wLengthH) << 8)
  1208. | readl(&regs->wLengthL));
  1209. writel(0, &regs->SetupRecv);
  1210. nuke(&dev->ep[0], 0);
  1211. dev->ep[0].stopped = 0;
  1212. if (likely(ctrl.bRequestType & USB_DIR_IN)) {
  1213. dev->ep[0].is_in = 1;
  1214. dev->ep0state = EP0_IN;
  1215. /* detect early status stages */
  1216. writel(ICONTROL_STATUSNAK, &dev->regs->IntControl);
  1217. } else {
  1218. dev->ep[0].is_in = 0;
  1219. dev->ep0state = EP0_OUT;
  1220. /* NOTE: CLEAR_FEATURE is done in software so that we can
  1221. * synchronize transfer restarts after bulk IN stalls. data
  1222. * won't even enter the fifo until the halt is cleared.
  1223. */
  1224. switch (ctrl.bRequest) {
  1225. case USB_REQ_CLEAR_FEATURE:
  1226. switch (ctrl.bRequestType) {
  1227. case USB_RECIP_ENDPOINT:
  1228. tmp = le16_to_cpu(ctrl.wIndex) & 0x0f;
  1229. /* active endpoint */
  1230. if (tmp > 3 ||
  1231. (!dev->ep[tmp].ep.desc && tmp != 0))
  1232. goto stall;
  1233. if (ctrl.wIndex & cpu_to_le16(
  1234. USB_DIR_IN)) {
  1235. if (!dev->ep[tmp].is_in)
  1236. goto stall;
  1237. } else {
  1238. if (dev->ep[tmp].is_in)
  1239. goto stall;
  1240. }
  1241. if (ctrl.wValue != cpu_to_le16(
  1242. USB_ENDPOINT_HALT))
  1243. goto stall;
  1244. if (tmp)
  1245. goku_clear_halt(&dev->ep[tmp]);
  1246. succeed:
  1247. /* start ep0out status stage */
  1248. writel(~(1<<0), &regs->EOP);
  1249. dev->ep[0].stopped = 1;
  1250. dev->ep0state = EP0_STATUS;
  1251. return;
  1252. case USB_RECIP_DEVICE:
  1253. /* device remote wakeup: always clear */
  1254. if (ctrl.wValue != cpu_to_le16(1))
  1255. goto stall;
  1256. VDBG(dev, "clear dev remote wakeup\n");
  1257. goto succeed;
  1258. case USB_RECIP_INTERFACE:
  1259. goto stall;
  1260. default: /* pass to gadget driver */
  1261. break;
  1262. }
  1263. break;
  1264. default:
  1265. break;
  1266. }
  1267. }
  1268. #ifdef USB_TRACE
  1269. VDBG(dev, "SETUP %02x.%02x v%04x i%04x l%04x\n",
  1270. ctrl.bRequestType, ctrl.bRequest,
  1271. le16_to_cpu(ctrl.wValue), le16_to_cpu(ctrl.wIndex),
  1272. le16_to_cpu(ctrl.wLength));
  1273. #endif
  1274. /* hw wants to know when we're configured (or not) */
  1275. dev->req_config = (ctrl.bRequest == USB_REQ_SET_CONFIGURATION
  1276. && ctrl.bRequestType == USB_RECIP_DEVICE);
  1277. if (unlikely(dev->req_config))
  1278. dev->configured = (ctrl.wValue != cpu_to_le16(0));
  1279. /* delegate everything to the gadget driver.
  1280. * it may respond after this irq handler returns.
  1281. */
  1282. spin_unlock (&dev->lock);
  1283. tmp = dev->driver->setup(&dev->gadget, &ctrl);
  1284. spin_lock (&dev->lock);
  1285. if (unlikely(tmp < 0)) {
  1286. stall:
  1287. #ifdef USB_TRACE
  1288. VDBG(dev, "req %02x.%02x protocol STALL; err %d\n",
  1289. ctrl.bRequestType, ctrl.bRequest, tmp);
  1290. #endif
  1291. command(regs, COMMAND_STALL, 0);
  1292. dev->ep[0].stopped = 1;
  1293. dev->ep0state = EP0_STALL;
  1294. }
  1295. /* expect at least one data or status stage irq */
  1296. }
  1297. #define ACK(irqbit) { \
  1298. stat &= ~irqbit; \
  1299. writel(~irqbit, &regs->int_status); \
  1300. handled = 1; \
  1301. }
  1302. static irqreturn_t goku_irq(int irq, void *_dev)
  1303. {
  1304. struct goku_udc *dev = _dev;
  1305. struct goku_udc_regs __iomem *regs = dev->regs;
  1306. struct goku_ep *ep;
  1307. u32 stat, handled = 0;
  1308. unsigned i, rescans = 5;
  1309. spin_lock(&dev->lock);
  1310. rescan:
  1311. stat = readl(&regs->int_status) & dev->int_enable;
  1312. if (!stat)
  1313. goto done;
  1314. dev->irqs++;
  1315. /* device-wide irqs */
  1316. if (unlikely(stat & INT_DEVWIDE)) {
  1317. if (stat & INT_SYSERROR) {
  1318. ERROR(dev, "system error\n");
  1319. stop_activity(dev);
  1320. stat = 0;
  1321. handled = 1;
  1322. // FIXME have a neater way to prevent re-enumeration
  1323. dev->driver = NULL;
  1324. goto done;
  1325. }
  1326. if (stat & INT_PWRDETECT) {
  1327. writel(~stat, &regs->int_status);
  1328. if (readl(&dev->regs->power_detect) & PW_DETECT) {
  1329. VDBG(dev, "connect\n");
  1330. ep0_start(dev);
  1331. } else {
  1332. DBG(dev, "disconnect\n");
  1333. if (dev->gadget.speed == USB_SPEED_FULL)
  1334. stop_activity(dev);
  1335. dev->ep0state = EP0_DISCONNECT;
  1336. dev->int_enable = INT_DEVWIDE;
  1337. writel(dev->int_enable, &dev->regs->int_enable);
  1338. }
  1339. stat = 0;
  1340. handled = 1;
  1341. goto done;
  1342. }
  1343. if (stat & INT_SUSPEND) {
  1344. ACK(INT_SUSPEND);
  1345. if (readl(&regs->ep_status[0]) & EPxSTATUS_SUSPEND) {
  1346. switch (dev->ep0state) {
  1347. case EP0_DISCONNECT:
  1348. case EP0_SUSPEND:
  1349. goto pm_next;
  1350. default:
  1351. break;
  1352. }
  1353. DBG(dev, "USB suspend\n");
  1354. dev->ep0state = EP0_SUSPEND;
  1355. if (dev->gadget.speed != USB_SPEED_UNKNOWN
  1356. && dev->driver
  1357. && dev->driver->suspend) {
  1358. spin_unlock(&dev->lock);
  1359. dev->driver->suspend(&dev->gadget);
  1360. spin_lock(&dev->lock);
  1361. }
  1362. } else {
  1363. if (dev->ep0state != EP0_SUSPEND) {
  1364. DBG(dev, "bogus USB resume %d\n",
  1365. dev->ep0state);
  1366. goto pm_next;
  1367. }
  1368. DBG(dev, "USB resume\n");
  1369. dev->ep0state = EP0_IDLE;
  1370. if (dev->gadget.speed != USB_SPEED_UNKNOWN
  1371. && dev->driver
  1372. && dev->driver->resume) {
  1373. spin_unlock(&dev->lock);
  1374. dev->driver->resume(&dev->gadget);
  1375. spin_lock(&dev->lock);
  1376. }
  1377. }
  1378. }
  1379. pm_next:
  1380. if (stat & INT_USBRESET) { /* hub reset done */
  1381. ACK(INT_USBRESET);
  1382. INFO(dev, "USB reset done, gadget %s\n",
  1383. dev->driver->driver.name);
  1384. }
  1385. // and INT_ERR on some endpoint's crc/bitstuff/... problem
  1386. }
  1387. /* progress ep0 setup, data, or status stages.
  1388. * no transition {EP0_STATUS, EP0_STALL} --> EP0_IDLE; saves irqs
  1389. */
  1390. if (stat & INT_SETUP) {
  1391. ACK(INT_SETUP);
  1392. dev->ep[0].irqs++;
  1393. ep0_setup(dev);
  1394. }
  1395. if (stat & INT_STATUSNAK) {
  1396. ACK(INT_STATUSNAK|INT_ENDPOINT0);
  1397. if (dev->ep0state == EP0_IN) {
  1398. ep = &dev->ep[0];
  1399. ep->irqs++;
  1400. nuke(ep, 0);
  1401. writel(~(1<<0), &regs->EOP);
  1402. dev->ep0state = EP0_STATUS;
  1403. }
  1404. }
  1405. if (stat & INT_ENDPOINT0) {
  1406. ACK(INT_ENDPOINT0);
  1407. ep = &dev->ep[0];
  1408. ep->irqs++;
  1409. pio_advance(ep);
  1410. }
  1411. /* dma completion */
  1412. if (stat & INT_MSTRDEND) { /* IN */
  1413. ACK(INT_MSTRDEND);
  1414. ep = &dev->ep[UDC_MSTRD_ENDPOINT];
  1415. ep->irqs++;
  1416. dma_advance(dev, ep);
  1417. }
  1418. if (stat & INT_MSTWREND) { /* OUT */
  1419. ACK(INT_MSTWREND);
  1420. ep = &dev->ep[UDC_MSTWR_ENDPOINT];
  1421. ep->irqs++;
  1422. dma_advance(dev, ep);
  1423. }
  1424. if (stat & INT_MSTWRTMOUT) { /* OUT */
  1425. ACK(INT_MSTWRTMOUT);
  1426. ep = &dev->ep[UDC_MSTWR_ENDPOINT];
  1427. ep->irqs++;
  1428. ERROR(dev, "%s write timeout ?\n", ep->ep.name);
  1429. // reset dma? then dma_advance()
  1430. }
  1431. /* pio */
  1432. for (i = 1; i < 4; i++) {
  1433. u32 tmp = INT_EPxDATASET(i);
  1434. if (!(stat & tmp))
  1435. continue;
  1436. ep = &dev->ep[i];
  1437. pio_advance(ep);
  1438. if (list_empty (&ep->queue))
  1439. pio_irq_disable(dev, regs, i);
  1440. stat &= ~tmp;
  1441. handled = 1;
  1442. ep->irqs++;
  1443. }
  1444. if (rescans--)
  1445. goto rescan;
  1446. done:
  1447. (void)readl(&regs->int_enable);
  1448. spin_unlock(&dev->lock);
  1449. if (stat)
  1450. DBG(dev, "unhandled irq status: %05x (%05x, %05x)\n", stat,
  1451. readl(&regs->int_status), dev->int_enable);
  1452. return IRQ_RETVAL(handled);
  1453. }
  1454. #undef ACK
  1455. /*-------------------------------------------------------------------------*/
  1456. static void gadget_release(struct device *_dev)
  1457. {
  1458. struct goku_udc *dev = dev_get_drvdata(_dev);
  1459. kfree(dev);
  1460. }
  1461. /* tear down the binding between this driver and the pci device */
  1462. static void goku_remove(struct pci_dev *pdev)
  1463. {
  1464. struct goku_udc *dev = pci_get_drvdata(pdev);
  1465. DBG(dev, "%s\n", __func__);
  1466. usb_del_gadget_udc(&dev->gadget);
  1467. BUG_ON(dev->driver);
  1468. #ifdef CONFIG_USB_GADGET_DEBUG_FILES
  1469. remove_proc_entry(proc_node_name, NULL);
  1470. #endif
  1471. if (dev->regs)
  1472. udc_reset(dev);
  1473. if (dev->got_irq)
  1474. free_irq(pdev->irq, dev);
  1475. if (dev->regs)
  1476. iounmap(dev->regs);
  1477. if (dev->got_region)
  1478. release_mem_region(pci_resource_start (pdev, 0),
  1479. pci_resource_len (pdev, 0));
  1480. if (dev->enabled)
  1481. pci_disable_device(pdev);
  1482. dev->regs = NULL;
  1483. INFO(dev, "unbind\n");
  1484. }
  1485. /* wrap this driver around the specified pci device, but
  1486. * don't respond over USB until a gadget driver binds to us.
  1487. */
  1488. static int goku_probe(struct pci_dev *pdev, const struct pci_device_id *id)
  1489. {
  1490. struct goku_udc *dev = NULL;
  1491. unsigned long resource, len;
  1492. void __iomem *base = NULL;
  1493. int retval;
  1494. if (!pdev->irq) {
  1495. printk(KERN_ERR "Check PCI %s IRQ setup!\n", pci_name(pdev));
  1496. retval = -ENODEV;
  1497. goto err;
  1498. }
  1499. /* alloc, and start init */
  1500. dev = kzalloc (sizeof *dev, GFP_KERNEL);
  1501. if (!dev) {
  1502. retval = -ENOMEM;
  1503. goto err;
  1504. }
  1505. spin_lock_init(&dev->lock);
  1506. dev->pdev = pdev;
  1507. dev->gadget.ops = &goku_ops;
  1508. dev->gadget.max_speed = USB_SPEED_FULL;
  1509. /* the "gadget" abstracts/virtualizes the controller */
  1510. dev->gadget.name = driver_name;
  1511. /* now all the pci goodies ... */
  1512. retval = pci_enable_device(pdev);
  1513. if (retval < 0) {
  1514. DBG(dev, "can't enable, %d\n", retval);
  1515. goto err;
  1516. }
  1517. dev->enabled = 1;
  1518. resource = pci_resource_start(pdev, 0);
  1519. len = pci_resource_len(pdev, 0);
  1520. if (!request_mem_region(resource, len, driver_name)) {
  1521. DBG(dev, "controller already in use\n");
  1522. retval = -EBUSY;
  1523. goto err;
  1524. }
  1525. dev->got_region = 1;
  1526. base = ioremap_nocache(resource, len);
  1527. if (base == NULL) {
  1528. DBG(dev, "can't map memory\n");
  1529. retval = -EFAULT;
  1530. goto err;
  1531. }
  1532. dev->regs = (struct goku_udc_regs __iomem *) base;
  1533. pci_set_drvdata(pdev, dev);
  1534. INFO(dev, "%s\n", driver_desc);
  1535. INFO(dev, "version: " DRIVER_VERSION " %s\n", dmastr());
  1536. INFO(dev, "irq %d, pci mem %p\n", pdev->irq, base);
  1537. /* init to known state, then setup irqs */
  1538. udc_reset(dev);
  1539. udc_reinit (dev);
  1540. if (request_irq(pdev->irq, goku_irq, IRQF_SHARED,
  1541. driver_name, dev) != 0) {
  1542. DBG(dev, "request interrupt %d failed\n", pdev->irq);
  1543. retval = -EBUSY;
  1544. goto err;
  1545. }
  1546. dev->got_irq = 1;
  1547. if (use_dma)
  1548. pci_set_master(pdev);
  1549. #ifdef CONFIG_USB_GADGET_DEBUG_FILES
  1550. proc_create_data(proc_node_name, 0, NULL, &udc_proc_fops, dev);
  1551. #endif
  1552. retval = usb_add_gadget_udc_release(&pdev->dev, &dev->gadget,
  1553. gadget_release);
  1554. if (retval)
  1555. goto err;
  1556. return 0;
  1557. err:
  1558. if (dev)
  1559. goku_remove (pdev);
  1560. /* gadget_release is not registered yet, kfree explicitly */
  1561. kfree(dev);
  1562. return retval;
  1563. }
  1564. /*-------------------------------------------------------------------------*/
  1565. static const struct pci_device_id pci_ids[] = { {
  1566. .class = PCI_CLASS_SERIAL_USB_DEVICE,
  1567. .class_mask = ~0,
  1568. .vendor = 0x102f, /* Toshiba */
  1569. .device = 0x0107, /* this UDC */
  1570. .subvendor = PCI_ANY_ID,
  1571. .subdevice = PCI_ANY_ID,
  1572. }, { /* end: all zeroes */ }
  1573. };
  1574. MODULE_DEVICE_TABLE (pci, pci_ids);
  1575. static struct pci_driver goku_pci_driver = {
  1576. .name = (char *) driver_name,
  1577. .id_table = pci_ids,
  1578. .probe = goku_probe,
  1579. .remove = goku_remove,
  1580. /* FIXME add power management support */
  1581. };
  1582. module_pci_driver(goku_pci_driver);