net2272.c 69 KB

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  1. /*
  2. * Driver for PLX NET2272 USB device controller
  3. *
  4. * Copyright (C) 2005-2006 PLX Technology, Inc.
  5. * Copyright (C) 2006-2011 Analog Devices, Inc.
  6. *
  7. * This program is free software; you can redistribute it and/or modify
  8. * it under the terms of the GNU General Public License as published by
  9. * the Free Software Foundation; either version 2 of the License, or
  10. * (at your option) any later version.
  11. *
  12. * This program is distributed in the hope that it will be useful,
  13. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  14. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  15. * GNU General Public License for more details.
  16. *
  17. * You should have received a copy of the GNU General Public License
  18. * along with this program; if not, write to the Free Software
  19. * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
  20. */
  21. #include <linux/delay.h>
  22. #include <linux/device.h>
  23. #include <linux/errno.h>
  24. #include <linux/gpio.h>
  25. #include <linux/init.h>
  26. #include <linux/interrupt.h>
  27. #include <linux/io.h>
  28. #include <linux/ioport.h>
  29. #include <linux/kernel.h>
  30. #include <linux/list.h>
  31. #include <linux/module.h>
  32. #include <linux/moduleparam.h>
  33. #include <linux/pci.h>
  34. #include <linux/platform_device.h>
  35. #include <linux/prefetch.h>
  36. #include <linux/sched.h>
  37. #include <linux/slab.h>
  38. #include <linux/timer.h>
  39. #include <linux/usb.h>
  40. #include <linux/usb/ch9.h>
  41. #include <linux/usb/gadget.h>
  42. #include <asm/byteorder.h>
  43. #include <asm/unaligned.h>
  44. #include "net2272.h"
  45. #define DRIVER_DESC "PLX NET2272 USB Peripheral Controller"
  46. static const char driver_name[] = "net2272";
  47. static const char driver_vers[] = "2006 October 17/mainline";
  48. static const char driver_desc[] = DRIVER_DESC;
  49. static const char ep0name[] = "ep0";
  50. static const char * const ep_name[] = {
  51. ep0name,
  52. "ep-a", "ep-b", "ep-c",
  53. };
  54. #ifdef CONFIG_USB_NET2272_DMA
  55. /*
  56. * use_dma: the NET2272 can use an external DMA controller.
  57. * Note that since there is no generic DMA api, some functions,
  58. * notably request_dma, start_dma, and cancel_dma will need to be
  59. * modified for your platform's particular dma controller.
  60. *
  61. * If use_dma is disabled, pio will be used instead.
  62. */
  63. static bool use_dma = 0;
  64. module_param(use_dma, bool, 0644);
  65. /*
  66. * dma_ep: selects the endpoint for use with dma (1=ep-a, 2=ep-b)
  67. * The NET2272 can only use dma for a single endpoint at a time.
  68. * At some point this could be modified to allow either endpoint
  69. * to take control of dma as it becomes available.
  70. *
  71. * Note that DMA should not be used on OUT endpoints unless it can
  72. * be guaranteed that no short packets will arrive on an IN endpoint
  73. * while the DMA operation is pending. Otherwise the OUT DMA will
  74. * terminate prematurely (See NET2272 Errata 630-0213-0101)
  75. */
  76. static ushort dma_ep = 1;
  77. module_param(dma_ep, ushort, 0644);
  78. /*
  79. * dma_mode: net2272 dma mode setting (see LOCCTL1 definiton):
  80. * mode 0 == Slow DREQ mode
  81. * mode 1 == Fast DREQ mode
  82. * mode 2 == Burst mode
  83. */
  84. static ushort dma_mode = 2;
  85. module_param(dma_mode, ushort, 0644);
  86. #else
  87. #define use_dma 0
  88. #define dma_ep 1
  89. #define dma_mode 2
  90. #endif
  91. /*
  92. * fifo_mode: net2272 buffer configuration:
  93. * mode 0 == ep-{a,b,c} 512db each
  94. * mode 1 == ep-a 1k, ep-{b,c} 512db
  95. * mode 2 == ep-a 1k, ep-b 1k, ep-c 512db
  96. * mode 3 == ep-a 1k, ep-b disabled, ep-c 512db
  97. */
  98. static ushort fifo_mode = 0;
  99. module_param(fifo_mode, ushort, 0644);
  100. /*
  101. * enable_suspend: When enabled, the driver will respond to
  102. * USB suspend requests by powering down the NET2272. Otherwise,
  103. * USB suspend requests will be ignored. This is acceptible for
  104. * self-powered devices. For bus powered devices set this to 1.
  105. */
  106. static ushort enable_suspend = 0;
  107. module_param(enable_suspend, ushort, 0644);
  108. static void assert_out_naking(struct net2272_ep *ep, const char *where)
  109. {
  110. u8 tmp;
  111. #ifndef DEBUG
  112. return;
  113. #endif
  114. tmp = net2272_ep_read(ep, EP_STAT0);
  115. if ((tmp & (1 << NAK_OUT_PACKETS)) == 0) {
  116. dev_dbg(ep->dev->dev, "%s %s %02x !NAK\n",
  117. ep->ep.name, where, tmp);
  118. net2272_ep_write(ep, EP_RSPSET, 1 << ALT_NAK_OUT_PACKETS);
  119. }
  120. }
  121. #define ASSERT_OUT_NAKING(ep) assert_out_naking(ep, __func__)
  122. static void stop_out_naking(struct net2272_ep *ep)
  123. {
  124. u8 tmp = net2272_ep_read(ep, EP_STAT0);
  125. if ((tmp & (1 << NAK_OUT_PACKETS)) != 0)
  126. net2272_ep_write(ep, EP_RSPCLR, 1 << ALT_NAK_OUT_PACKETS);
  127. }
  128. #define PIPEDIR(bAddress) (usb_pipein(bAddress) ? "in" : "out")
  129. static char *type_string(u8 bmAttributes)
  130. {
  131. switch ((bmAttributes) & USB_ENDPOINT_XFERTYPE_MASK) {
  132. case USB_ENDPOINT_XFER_BULK: return "bulk";
  133. case USB_ENDPOINT_XFER_ISOC: return "iso";
  134. case USB_ENDPOINT_XFER_INT: return "intr";
  135. default: return "control";
  136. }
  137. }
  138. static char *buf_state_string(unsigned state)
  139. {
  140. switch (state) {
  141. case BUFF_FREE: return "free";
  142. case BUFF_VALID: return "valid";
  143. case BUFF_LCL: return "local";
  144. case BUFF_USB: return "usb";
  145. default: return "unknown";
  146. }
  147. }
  148. static char *dma_mode_string(void)
  149. {
  150. if (!use_dma)
  151. return "PIO";
  152. switch (dma_mode) {
  153. case 0: return "SLOW DREQ";
  154. case 1: return "FAST DREQ";
  155. case 2: return "BURST";
  156. default: return "invalid";
  157. }
  158. }
  159. static void net2272_dequeue_all(struct net2272_ep *);
  160. static int net2272_kick_dma(struct net2272_ep *, struct net2272_request *);
  161. static int net2272_fifo_status(struct usb_ep *);
  162. static struct usb_ep_ops net2272_ep_ops;
  163. /*---------------------------------------------------------------------------*/
  164. static int
  165. net2272_enable(struct usb_ep *_ep, const struct usb_endpoint_descriptor *desc)
  166. {
  167. struct net2272 *dev;
  168. struct net2272_ep *ep;
  169. u32 max;
  170. u8 tmp;
  171. unsigned long flags;
  172. ep = container_of(_ep, struct net2272_ep, ep);
  173. if (!_ep || !desc || ep->desc || _ep->name == ep0name
  174. || desc->bDescriptorType != USB_DT_ENDPOINT)
  175. return -EINVAL;
  176. dev = ep->dev;
  177. if (!dev->driver || dev->gadget.speed == USB_SPEED_UNKNOWN)
  178. return -ESHUTDOWN;
  179. max = usb_endpoint_maxp(desc) & 0x1fff;
  180. spin_lock_irqsave(&dev->lock, flags);
  181. _ep->maxpacket = max & 0x7fff;
  182. ep->desc = desc;
  183. /* net2272_ep_reset() has already been called */
  184. ep->stopped = 0;
  185. ep->wedged = 0;
  186. /* set speed-dependent max packet */
  187. net2272_ep_write(ep, EP_MAXPKT0, max & 0xff);
  188. net2272_ep_write(ep, EP_MAXPKT1, (max & 0xff00) >> 8);
  189. /* set type, direction, address; reset fifo counters */
  190. net2272_ep_write(ep, EP_STAT1, 1 << BUFFER_FLUSH);
  191. tmp = usb_endpoint_type(desc);
  192. if (usb_endpoint_xfer_bulk(desc)) {
  193. /* catch some particularly blatant driver bugs */
  194. if ((dev->gadget.speed == USB_SPEED_HIGH && max != 512) ||
  195. (dev->gadget.speed == USB_SPEED_FULL && max > 64)) {
  196. spin_unlock_irqrestore(&dev->lock, flags);
  197. return -ERANGE;
  198. }
  199. }
  200. ep->is_iso = usb_endpoint_xfer_isoc(desc) ? 1 : 0;
  201. tmp <<= ENDPOINT_TYPE;
  202. tmp |= ((desc->bEndpointAddress & 0x0f) << ENDPOINT_NUMBER);
  203. tmp |= usb_endpoint_dir_in(desc) << ENDPOINT_DIRECTION;
  204. tmp |= (1 << ENDPOINT_ENABLE);
  205. /* for OUT transfers, block the rx fifo until a read is posted */
  206. ep->is_in = usb_endpoint_dir_in(desc);
  207. if (!ep->is_in)
  208. net2272_ep_write(ep, EP_RSPSET, 1 << ALT_NAK_OUT_PACKETS);
  209. net2272_ep_write(ep, EP_CFG, tmp);
  210. /* enable irqs */
  211. tmp = (1 << ep->num) | net2272_read(dev, IRQENB0);
  212. net2272_write(dev, IRQENB0, tmp);
  213. tmp = (1 << DATA_PACKET_RECEIVED_INTERRUPT_ENABLE)
  214. | (1 << DATA_PACKET_TRANSMITTED_INTERRUPT_ENABLE)
  215. | net2272_ep_read(ep, EP_IRQENB);
  216. net2272_ep_write(ep, EP_IRQENB, tmp);
  217. tmp = desc->bEndpointAddress;
  218. dev_dbg(dev->dev, "enabled %s (ep%d%s-%s) max %04x cfg %02x\n",
  219. _ep->name, tmp & 0x0f, PIPEDIR(tmp),
  220. type_string(desc->bmAttributes), max,
  221. net2272_ep_read(ep, EP_CFG));
  222. spin_unlock_irqrestore(&dev->lock, flags);
  223. return 0;
  224. }
  225. static void net2272_ep_reset(struct net2272_ep *ep)
  226. {
  227. u8 tmp;
  228. ep->desc = NULL;
  229. INIT_LIST_HEAD(&ep->queue);
  230. usb_ep_set_maxpacket_limit(&ep->ep, ~0);
  231. ep->ep.ops = &net2272_ep_ops;
  232. /* disable irqs, endpoint */
  233. net2272_ep_write(ep, EP_IRQENB, 0);
  234. /* init to our chosen defaults, notably so that we NAK OUT
  235. * packets until the driver queues a read.
  236. */
  237. tmp = (1 << NAK_OUT_PACKETS_MODE) | (1 << ALT_NAK_OUT_PACKETS);
  238. net2272_ep_write(ep, EP_RSPSET, tmp);
  239. tmp = (1 << INTERRUPT_MODE) | (1 << HIDE_STATUS_PHASE);
  240. if (ep->num != 0)
  241. tmp |= (1 << ENDPOINT_TOGGLE) | (1 << ENDPOINT_HALT);
  242. net2272_ep_write(ep, EP_RSPCLR, tmp);
  243. /* scrub most status bits, and flush any fifo state */
  244. net2272_ep_write(ep, EP_STAT0,
  245. (1 << DATA_IN_TOKEN_INTERRUPT)
  246. | (1 << DATA_OUT_TOKEN_INTERRUPT)
  247. | (1 << DATA_PACKET_TRANSMITTED_INTERRUPT)
  248. | (1 << DATA_PACKET_RECEIVED_INTERRUPT)
  249. | (1 << SHORT_PACKET_TRANSFERRED_INTERRUPT));
  250. net2272_ep_write(ep, EP_STAT1,
  251. (1 << TIMEOUT)
  252. | (1 << USB_OUT_ACK_SENT)
  253. | (1 << USB_OUT_NAK_SENT)
  254. | (1 << USB_IN_ACK_RCVD)
  255. | (1 << USB_IN_NAK_SENT)
  256. | (1 << USB_STALL_SENT)
  257. | (1 << LOCAL_OUT_ZLP)
  258. | (1 << BUFFER_FLUSH));
  259. /* fifo size is handled seperately */
  260. }
  261. static int net2272_disable(struct usb_ep *_ep)
  262. {
  263. struct net2272_ep *ep;
  264. unsigned long flags;
  265. ep = container_of(_ep, struct net2272_ep, ep);
  266. if (!_ep || !ep->desc || _ep->name == ep0name)
  267. return -EINVAL;
  268. spin_lock_irqsave(&ep->dev->lock, flags);
  269. net2272_dequeue_all(ep);
  270. net2272_ep_reset(ep);
  271. dev_vdbg(ep->dev->dev, "disabled %s\n", _ep->name);
  272. spin_unlock_irqrestore(&ep->dev->lock, flags);
  273. return 0;
  274. }
  275. /*---------------------------------------------------------------------------*/
  276. static struct usb_request *
  277. net2272_alloc_request(struct usb_ep *_ep, gfp_t gfp_flags)
  278. {
  279. struct net2272_ep *ep;
  280. struct net2272_request *req;
  281. if (!_ep)
  282. return NULL;
  283. ep = container_of(_ep, struct net2272_ep, ep);
  284. req = kzalloc(sizeof(*req), gfp_flags);
  285. if (!req)
  286. return NULL;
  287. INIT_LIST_HEAD(&req->queue);
  288. return &req->req;
  289. }
  290. static void
  291. net2272_free_request(struct usb_ep *_ep, struct usb_request *_req)
  292. {
  293. struct net2272_ep *ep;
  294. struct net2272_request *req;
  295. ep = container_of(_ep, struct net2272_ep, ep);
  296. if (!_ep || !_req)
  297. return;
  298. req = container_of(_req, struct net2272_request, req);
  299. WARN_ON(!list_empty(&req->queue));
  300. kfree(req);
  301. }
  302. static void
  303. net2272_done(struct net2272_ep *ep, struct net2272_request *req, int status)
  304. {
  305. struct net2272 *dev;
  306. unsigned stopped = ep->stopped;
  307. if (ep->num == 0) {
  308. if (ep->dev->protocol_stall) {
  309. ep->stopped = 1;
  310. set_halt(ep);
  311. }
  312. allow_status(ep);
  313. }
  314. list_del_init(&req->queue);
  315. if (req->req.status == -EINPROGRESS)
  316. req->req.status = status;
  317. else
  318. status = req->req.status;
  319. dev = ep->dev;
  320. if (use_dma && ep->dma)
  321. usb_gadget_unmap_request(&dev->gadget, &req->req,
  322. ep->is_in);
  323. if (status && status != -ESHUTDOWN)
  324. dev_vdbg(dev->dev, "complete %s req %p stat %d len %u/%u buf %p\n",
  325. ep->ep.name, &req->req, status,
  326. req->req.actual, req->req.length, req->req.buf);
  327. /* don't modify queue heads during completion callback */
  328. ep->stopped = 1;
  329. spin_unlock(&dev->lock);
  330. usb_gadget_giveback_request(&ep->ep, &req->req);
  331. spin_lock(&dev->lock);
  332. ep->stopped = stopped;
  333. }
  334. static int
  335. net2272_write_packet(struct net2272_ep *ep, u8 *buf,
  336. struct net2272_request *req, unsigned max)
  337. {
  338. u16 __iomem *ep_data = net2272_reg_addr(ep->dev, EP_DATA);
  339. u16 *bufp;
  340. unsigned length, count;
  341. u8 tmp;
  342. length = min(req->req.length - req->req.actual, max);
  343. req->req.actual += length;
  344. dev_vdbg(ep->dev->dev, "write packet %s req %p max %u len %u avail %u\n",
  345. ep->ep.name, req, max, length,
  346. (net2272_ep_read(ep, EP_AVAIL1) << 8) | net2272_ep_read(ep, EP_AVAIL0));
  347. count = length;
  348. bufp = (u16 *)buf;
  349. while (likely(count >= 2)) {
  350. /* no byte-swap required; chip endian set during init */
  351. writew(*bufp++, ep_data);
  352. count -= 2;
  353. }
  354. buf = (u8 *)bufp;
  355. /* write final byte by placing the NET2272 into 8-bit mode */
  356. if (unlikely(count)) {
  357. tmp = net2272_read(ep->dev, LOCCTL);
  358. net2272_write(ep->dev, LOCCTL, tmp & ~(1 << DATA_WIDTH));
  359. writeb(*buf, ep_data);
  360. net2272_write(ep->dev, LOCCTL, tmp);
  361. }
  362. return length;
  363. }
  364. /* returns: 0: still running, 1: completed, negative: errno */
  365. static int
  366. net2272_write_fifo(struct net2272_ep *ep, struct net2272_request *req)
  367. {
  368. u8 *buf;
  369. unsigned count, max;
  370. int status;
  371. dev_vdbg(ep->dev->dev, "write_fifo %s actual %d len %d\n",
  372. ep->ep.name, req->req.actual, req->req.length);
  373. /*
  374. * Keep loading the endpoint until the final packet is loaded,
  375. * or the endpoint buffer is full.
  376. */
  377. top:
  378. /*
  379. * Clear interrupt status
  380. * - Packet Transmitted interrupt will become set again when the
  381. * host successfully takes another packet
  382. */
  383. net2272_ep_write(ep, EP_STAT0, (1 << DATA_PACKET_TRANSMITTED_INTERRUPT));
  384. while (!(net2272_ep_read(ep, EP_STAT0) & (1 << BUFFER_FULL))) {
  385. buf = req->req.buf + req->req.actual;
  386. prefetch(buf);
  387. /* force pagesel */
  388. net2272_ep_read(ep, EP_STAT0);
  389. max = (net2272_ep_read(ep, EP_AVAIL1) << 8) |
  390. (net2272_ep_read(ep, EP_AVAIL0));
  391. if (max < ep->ep.maxpacket)
  392. max = (net2272_ep_read(ep, EP_AVAIL1) << 8)
  393. | (net2272_ep_read(ep, EP_AVAIL0));
  394. count = net2272_write_packet(ep, buf, req, max);
  395. /* see if we are done */
  396. if (req->req.length == req->req.actual) {
  397. /* validate short or zlp packet */
  398. if (count < ep->ep.maxpacket)
  399. set_fifo_bytecount(ep, 0);
  400. net2272_done(ep, req, 0);
  401. if (!list_empty(&ep->queue)) {
  402. req = list_entry(ep->queue.next,
  403. struct net2272_request,
  404. queue);
  405. status = net2272_kick_dma(ep, req);
  406. if (status < 0)
  407. if ((net2272_ep_read(ep, EP_STAT0)
  408. & (1 << BUFFER_EMPTY)))
  409. goto top;
  410. }
  411. return 1;
  412. }
  413. net2272_ep_write(ep, EP_STAT0, (1 << DATA_PACKET_TRANSMITTED_INTERRUPT));
  414. }
  415. return 0;
  416. }
  417. static void
  418. net2272_out_flush(struct net2272_ep *ep)
  419. {
  420. ASSERT_OUT_NAKING(ep);
  421. net2272_ep_write(ep, EP_STAT0, (1 << DATA_OUT_TOKEN_INTERRUPT)
  422. | (1 << DATA_PACKET_RECEIVED_INTERRUPT));
  423. net2272_ep_write(ep, EP_STAT1, 1 << BUFFER_FLUSH);
  424. }
  425. static int
  426. net2272_read_packet(struct net2272_ep *ep, u8 *buf,
  427. struct net2272_request *req, unsigned avail)
  428. {
  429. u16 __iomem *ep_data = net2272_reg_addr(ep->dev, EP_DATA);
  430. unsigned is_short;
  431. u16 *bufp;
  432. req->req.actual += avail;
  433. dev_vdbg(ep->dev->dev, "read packet %s req %p len %u avail %u\n",
  434. ep->ep.name, req, avail,
  435. (net2272_ep_read(ep, EP_AVAIL1) << 8) | net2272_ep_read(ep, EP_AVAIL0));
  436. is_short = (avail < ep->ep.maxpacket);
  437. if (unlikely(avail == 0)) {
  438. /* remove any zlp from the buffer */
  439. (void)readw(ep_data);
  440. return is_short;
  441. }
  442. /* Ensure we get the final byte */
  443. if (unlikely(avail % 2))
  444. avail++;
  445. bufp = (u16 *)buf;
  446. do {
  447. *bufp++ = readw(ep_data);
  448. avail -= 2;
  449. } while (avail);
  450. /*
  451. * To avoid false endpoint available race condition must read
  452. * ep stat0 twice in the case of a short transfer
  453. */
  454. if (net2272_ep_read(ep, EP_STAT0) & (1 << SHORT_PACKET_TRANSFERRED_INTERRUPT))
  455. net2272_ep_read(ep, EP_STAT0);
  456. return is_short;
  457. }
  458. static int
  459. net2272_read_fifo(struct net2272_ep *ep, struct net2272_request *req)
  460. {
  461. u8 *buf;
  462. unsigned is_short;
  463. int count;
  464. int tmp;
  465. int cleanup = 0;
  466. int status = -1;
  467. dev_vdbg(ep->dev->dev, "read_fifo %s actual %d len %d\n",
  468. ep->ep.name, req->req.actual, req->req.length);
  469. top:
  470. do {
  471. buf = req->req.buf + req->req.actual;
  472. prefetchw(buf);
  473. count = (net2272_ep_read(ep, EP_AVAIL1) << 8)
  474. | net2272_ep_read(ep, EP_AVAIL0);
  475. net2272_ep_write(ep, EP_STAT0,
  476. (1 << SHORT_PACKET_TRANSFERRED_INTERRUPT) |
  477. (1 << DATA_PACKET_RECEIVED_INTERRUPT));
  478. tmp = req->req.length - req->req.actual;
  479. if (count > tmp) {
  480. if ((tmp % ep->ep.maxpacket) != 0) {
  481. dev_err(ep->dev->dev,
  482. "%s out fifo %d bytes, expected %d\n",
  483. ep->ep.name, count, tmp);
  484. cleanup = 1;
  485. }
  486. count = (tmp > 0) ? tmp : 0;
  487. }
  488. is_short = net2272_read_packet(ep, buf, req, count);
  489. /* completion */
  490. if (unlikely(cleanup || is_short ||
  491. ((req->req.actual == req->req.length)
  492. && !req->req.zero))) {
  493. if (cleanup) {
  494. net2272_out_flush(ep);
  495. net2272_done(ep, req, -EOVERFLOW);
  496. } else
  497. net2272_done(ep, req, 0);
  498. /* re-initialize endpoint transfer registers
  499. * otherwise they may result in erroneous pre-validation
  500. * for subsequent control reads
  501. */
  502. if (unlikely(ep->num == 0)) {
  503. net2272_ep_write(ep, EP_TRANSFER2, 0);
  504. net2272_ep_write(ep, EP_TRANSFER1, 0);
  505. net2272_ep_write(ep, EP_TRANSFER0, 0);
  506. }
  507. if (!list_empty(&ep->queue)) {
  508. req = list_entry(ep->queue.next,
  509. struct net2272_request, queue);
  510. status = net2272_kick_dma(ep, req);
  511. if ((status < 0) &&
  512. !(net2272_ep_read(ep, EP_STAT0) & (1 << BUFFER_EMPTY)))
  513. goto top;
  514. }
  515. return 1;
  516. }
  517. } while (!(net2272_ep_read(ep, EP_STAT0) & (1 << BUFFER_EMPTY)));
  518. return 0;
  519. }
  520. static void
  521. net2272_pio_advance(struct net2272_ep *ep)
  522. {
  523. struct net2272_request *req;
  524. if (unlikely(list_empty(&ep->queue)))
  525. return;
  526. req = list_entry(ep->queue.next, struct net2272_request, queue);
  527. (ep->is_in ? net2272_write_fifo : net2272_read_fifo)(ep, req);
  528. }
  529. /* returns 0 on success, else negative errno */
  530. static int
  531. net2272_request_dma(struct net2272 *dev, unsigned ep, u32 buf,
  532. unsigned len, unsigned dir)
  533. {
  534. dev_vdbg(dev->dev, "request_dma ep %d buf %08x len %d dir %d\n",
  535. ep, buf, len, dir);
  536. /* The NET2272 only supports a single dma channel */
  537. if (dev->dma_busy)
  538. return -EBUSY;
  539. /*
  540. * EP_TRANSFER (used to determine the number of bytes received
  541. * in an OUT transfer) is 24 bits wide; don't ask for more than that.
  542. */
  543. if ((dir == 1) && (len > 0x1000000))
  544. return -EINVAL;
  545. dev->dma_busy = 1;
  546. /* initialize platform's dma */
  547. #ifdef CONFIG_PCI
  548. /* NET2272 addr, buffer addr, length, etc. */
  549. switch (dev->dev_id) {
  550. case PCI_DEVICE_ID_RDK1:
  551. /* Setup PLX 9054 DMA mode */
  552. writel((1 << LOCAL_BUS_WIDTH) |
  553. (1 << TA_READY_INPUT_ENABLE) |
  554. (0 << LOCAL_BURST_ENABLE) |
  555. (1 << DONE_INTERRUPT_ENABLE) |
  556. (1 << LOCAL_ADDRESSING_MODE) |
  557. (1 << DEMAND_MODE) |
  558. (1 << DMA_EOT_ENABLE) |
  559. (1 << FAST_SLOW_TERMINATE_MODE_SELECT) |
  560. (1 << DMA_CHANNEL_INTERRUPT_SELECT),
  561. dev->rdk1.plx9054_base_addr + DMAMODE0);
  562. writel(0x100000, dev->rdk1.plx9054_base_addr + DMALADR0);
  563. writel(buf, dev->rdk1.plx9054_base_addr + DMAPADR0);
  564. writel(len, dev->rdk1.plx9054_base_addr + DMASIZ0);
  565. writel((dir << DIRECTION_OF_TRANSFER) |
  566. (1 << INTERRUPT_AFTER_TERMINAL_COUNT),
  567. dev->rdk1.plx9054_base_addr + DMADPR0);
  568. writel((1 << LOCAL_DMA_CHANNEL_0_INTERRUPT_ENABLE) |
  569. readl(dev->rdk1.plx9054_base_addr + INTCSR),
  570. dev->rdk1.plx9054_base_addr + INTCSR);
  571. break;
  572. }
  573. #endif
  574. net2272_write(dev, DMAREQ,
  575. (0 << DMA_BUFFER_VALID) |
  576. (1 << DMA_REQUEST_ENABLE) |
  577. (1 << DMA_CONTROL_DACK) |
  578. (dev->dma_eot_polarity << EOT_POLARITY) |
  579. (dev->dma_dack_polarity << DACK_POLARITY) |
  580. (dev->dma_dreq_polarity << DREQ_POLARITY) |
  581. ((ep >> 1) << DMA_ENDPOINT_SELECT));
  582. (void) net2272_read(dev, SCRATCH);
  583. return 0;
  584. }
  585. static void
  586. net2272_start_dma(struct net2272 *dev)
  587. {
  588. /* start platform's dma controller */
  589. #ifdef CONFIG_PCI
  590. switch (dev->dev_id) {
  591. case PCI_DEVICE_ID_RDK1:
  592. writeb((1 << CHANNEL_ENABLE) | (1 << CHANNEL_START),
  593. dev->rdk1.plx9054_base_addr + DMACSR0);
  594. break;
  595. }
  596. #endif
  597. }
  598. /* returns 0 on success, else negative errno */
  599. static int
  600. net2272_kick_dma(struct net2272_ep *ep, struct net2272_request *req)
  601. {
  602. unsigned size;
  603. u8 tmp;
  604. if (!use_dma || (ep->num < 1) || (ep->num > 2) || !ep->dma)
  605. return -EINVAL;
  606. /* don't use dma for odd-length transfers
  607. * otherwise, we'd need to deal with the last byte with pio
  608. */
  609. if (req->req.length & 1)
  610. return -EINVAL;
  611. dev_vdbg(ep->dev->dev, "kick_dma %s req %p dma %08llx\n",
  612. ep->ep.name, req, (unsigned long long) req->req.dma);
  613. net2272_ep_write(ep, EP_RSPSET, 1 << ALT_NAK_OUT_PACKETS);
  614. /* The NET2272 can only use DMA on one endpoint at a time */
  615. if (ep->dev->dma_busy)
  616. return -EBUSY;
  617. /* Make sure we only DMA an even number of bytes (we'll use
  618. * pio to complete the transfer)
  619. */
  620. size = req->req.length;
  621. size &= ~1;
  622. /* device-to-host transfer */
  623. if (ep->is_in) {
  624. /* initialize platform's dma controller */
  625. if (net2272_request_dma(ep->dev, ep->num, req->req.dma, size, 0))
  626. /* unable to obtain DMA channel; return error and use pio mode */
  627. return -EBUSY;
  628. req->req.actual += size;
  629. /* host-to-device transfer */
  630. } else {
  631. tmp = net2272_ep_read(ep, EP_STAT0);
  632. /* initialize platform's dma controller */
  633. if (net2272_request_dma(ep->dev, ep->num, req->req.dma, size, 1))
  634. /* unable to obtain DMA channel; return error and use pio mode */
  635. return -EBUSY;
  636. if (!(tmp & (1 << BUFFER_EMPTY)))
  637. ep->not_empty = 1;
  638. else
  639. ep->not_empty = 0;
  640. /* allow the endpoint's buffer to fill */
  641. net2272_ep_write(ep, EP_RSPCLR, 1 << ALT_NAK_OUT_PACKETS);
  642. /* this transfer completed and data's already in the fifo
  643. * return error so pio gets used.
  644. */
  645. if (tmp & (1 << SHORT_PACKET_TRANSFERRED_INTERRUPT)) {
  646. /* deassert dreq */
  647. net2272_write(ep->dev, DMAREQ,
  648. (0 << DMA_BUFFER_VALID) |
  649. (0 << DMA_REQUEST_ENABLE) |
  650. (1 << DMA_CONTROL_DACK) |
  651. (ep->dev->dma_eot_polarity << EOT_POLARITY) |
  652. (ep->dev->dma_dack_polarity << DACK_POLARITY) |
  653. (ep->dev->dma_dreq_polarity << DREQ_POLARITY) |
  654. ((ep->num >> 1) << DMA_ENDPOINT_SELECT));
  655. return -EBUSY;
  656. }
  657. }
  658. /* Don't use per-packet interrupts: use dma interrupts only */
  659. net2272_ep_write(ep, EP_IRQENB, 0);
  660. net2272_start_dma(ep->dev);
  661. return 0;
  662. }
  663. static void net2272_cancel_dma(struct net2272 *dev)
  664. {
  665. #ifdef CONFIG_PCI
  666. switch (dev->dev_id) {
  667. case PCI_DEVICE_ID_RDK1:
  668. writeb(0, dev->rdk1.plx9054_base_addr + DMACSR0);
  669. writeb(1 << CHANNEL_ABORT, dev->rdk1.plx9054_base_addr + DMACSR0);
  670. while (!(readb(dev->rdk1.plx9054_base_addr + DMACSR0) &
  671. (1 << CHANNEL_DONE)))
  672. continue; /* wait for dma to stabalize */
  673. /* dma abort generates an interrupt */
  674. writeb(1 << CHANNEL_CLEAR_INTERRUPT,
  675. dev->rdk1.plx9054_base_addr + DMACSR0);
  676. break;
  677. }
  678. #endif
  679. dev->dma_busy = 0;
  680. }
  681. /*---------------------------------------------------------------------------*/
  682. static int
  683. net2272_queue(struct usb_ep *_ep, struct usb_request *_req, gfp_t gfp_flags)
  684. {
  685. struct net2272_request *req;
  686. struct net2272_ep *ep;
  687. struct net2272 *dev;
  688. unsigned long flags;
  689. int status = -1;
  690. u8 s;
  691. req = container_of(_req, struct net2272_request, req);
  692. if (!_req || !_req->complete || !_req->buf
  693. || !list_empty(&req->queue))
  694. return -EINVAL;
  695. ep = container_of(_ep, struct net2272_ep, ep);
  696. if (!_ep || (!ep->desc && ep->num != 0))
  697. return -EINVAL;
  698. dev = ep->dev;
  699. if (!dev->driver || dev->gadget.speed == USB_SPEED_UNKNOWN)
  700. return -ESHUTDOWN;
  701. /* set up dma mapping in case the caller didn't */
  702. if (use_dma && ep->dma) {
  703. status = usb_gadget_map_request(&dev->gadget, _req,
  704. ep->is_in);
  705. if (status)
  706. return status;
  707. }
  708. dev_vdbg(dev->dev, "%s queue req %p, len %d buf %p dma %08llx %s\n",
  709. _ep->name, _req, _req->length, _req->buf,
  710. (unsigned long long) _req->dma, _req->zero ? "zero" : "!zero");
  711. spin_lock_irqsave(&dev->lock, flags);
  712. _req->status = -EINPROGRESS;
  713. _req->actual = 0;
  714. /* kickstart this i/o queue? */
  715. if (list_empty(&ep->queue) && !ep->stopped) {
  716. /* maybe there's no control data, just status ack */
  717. if (ep->num == 0 && _req->length == 0) {
  718. net2272_done(ep, req, 0);
  719. dev_vdbg(dev->dev, "%s status ack\n", ep->ep.name);
  720. goto done;
  721. }
  722. /* Return zlp, don't let it block subsequent packets */
  723. s = net2272_ep_read(ep, EP_STAT0);
  724. if (s & (1 << BUFFER_EMPTY)) {
  725. /* Buffer is empty check for a blocking zlp, handle it */
  726. if ((s & (1 << NAK_OUT_PACKETS)) &&
  727. net2272_ep_read(ep, EP_STAT1) & (1 << LOCAL_OUT_ZLP)) {
  728. dev_dbg(dev->dev, "WARNING: returning ZLP short packet termination!\n");
  729. /*
  730. * Request is going to terminate with a short packet ...
  731. * hope the client is ready for it!
  732. */
  733. status = net2272_read_fifo(ep, req);
  734. /* clear short packet naking */
  735. net2272_ep_write(ep, EP_STAT0, (1 << NAK_OUT_PACKETS));
  736. goto done;
  737. }
  738. }
  739. /* try dma first */
  740. status = net2272_kick_dma(ep, req);
  741. if (status < 0) {
  742. /* dma failed (most likely in use by another endpoint)
  743. * fallback to pio
  744. */
  745. status = 0;
  746. if (ep->is_in)
  747. status = net2272_write_fifo(ep, req);
  748. else {
  749. s = net2272_ep_read(ep, EP_STAT0);
  750. if ((s & (1 << BUFFER_EMPTY)) == 0)
  751. status = net2272_read_fifo(ep, req);
  752. }
  753. if (unlikely(status != 0)) {
  754. if (status > 0)
  755. status = 0;
  756. req = NULL;
  757. }
  758. }
  759. }
  760. if (likely(req))
  761. list_add_tail(&req->queue, &ep->queue);
  762. if (likely(!list_empty(&ep->queue)))
  763. net2272_ep_write(ep, EP_RSPCLR, 1 << ALT_NAK_OUT_PACKETS);
  764. done:
  765. spin_unlock_irqrestore(&dev->lock, flags);
  766. return 0;
  767. }
  768. /* dequeue ALL requests */
  769. static void
  770. net2272_dequeue_all(struct net2272_ep *ep)
  771. {
  772. struct net2272_request *req;
  773. /* called with spinlock held */
  774. ep->stopped = 1;
  775. while (!list_empty(&ep->queue)) {
  776. req = list_entry(ep->queue.next,
  777. struct net2272_request,
  778. queue);
  779. net2272_done(ep, req, -ESHUTDOWN);
  780. }
  781. }
  782. /* dequeue JUST ONE request */
  783. static int
  784. net2272_dequeue(struct usb_ep *_ep, struct usb_request *_req)
  785. {
  786. struct net2272_ep *ep;
  787. struct net2272_request *req;
  788. unsigned long flags;
  789. int stopped;
  790. ep = container_of(_ep, struct net2272_ep, ep);
  791. if (!_ep || (!ep->desc && ep->num != 0) || !_req)
  792. return -EINVAL;
  793. spin_lock_irqsave(&ep->dev->lock, flags);
  794. stopped = ep->stopped;
  795. ep->stopped = 1;
  796. /* make sure it's still queued on this endpoint */
  797. list_for_each_entry(req, &ep->queue, queue) {
  798. if (&req->req == _req)
  799. break;
  800. }
  801. if (&req->req != _req) {
  802. spin_unlock_irqrestore(&ep->dev->lock, flags);
  803. return -EINVAL;
  804. }
  805. /* queue head may be partially complete */
  806. if (ep->queue.next == &req->queue) {
  807. dev_dbg(ep->dev->dev, "unlink (%s) pio\n", _ep->name);
  808. net2272_done(ep, req, -ECONNRESET);
  809. }
  810. req = NULL;
  811. ep->stopped = stopped;
  812. spin_unlock_irqrestore(&ep->dev->lock, flags);
  813. return 0;
  814. }
  815. /*---------------------------------------------------------------------------*/
  816. static int
  817. net2272_set_halt_and_wedge(struct usb_ep *_ep, int value, int wedged)
  818. {
  819. struct net2272_ep *ep;
  820. unsigned long flags;
  821. int ret = 0;
  822. ep = container_of(_ep, struct net2272_ep, ep);
  823. if (!_ep || (!ep->desc && ep->num != 0))
  824. return -EINVAL;
  825. if (!ep->dev->driver || ep->dev->gadget.speed == USB_SPEED_UNKNOWN)
  826. return -ESHUTDOWN;
  827. if (ep->desc /* not ep0 */ && usb_endpoint_xfer_isoc(ep->desc))
  828. return -EINVAL;
  829. spin_lock_irqsave(&ep->dev->lock, flags);
  830. if (!list_empty(&ep->queue))
  831. ret = -EAGAIN;
  832. else if (ep->is_in && value && net2272_fifo_status(_ep) != 0)
  833. ret = -EAGAIN;
  834. else {
  835. dev_vdbg(ep->dev->dev, "%s %s %s\n", _ep->name,
  836. value ? "set" : "clear",
  837. wedged ? "wedge" : "halt");
  838. /* set/clear */
  839. if (value) {
  840. if (ep->num == 0)
  841. ep->dev->protocol_stall = 1;
  842. else
  843. set_halt(ep);
  844. if (wedged)
  845. ep->wedged = 1;
  846. } else {
  847. clear_halt(ep);
  848. ep->wedged = 0;
  849. }
  850. }
  851. spin_unlock_irqrestore(&ep->dev->lock, flags);
  852. return ret;
  853. }
  854. static int
  855. net2272_set_halt(struct usb_ep *_ep, int value)
  856. {
  857. return net2272_set_halt_and_wedge(_ep, value, 0);
  858. }
  859. static int
  860. net2272_set_wedge(struct usb_ep *_ep)
  861. {
  862. if (!_ep || _ep->name == ep0name)
  863. return -EINVAL;
  864. return net2272_set_halt_and_wedge(_ep, 1, 1);
  865. }
  866. static int
  867. net2272_fifo_status(struct usb_ep *_ep)
  868. {
  869. struct net2272_ep *ep;
  870. u16 avail;
  871. ep = container_of(_ep, struct net2272_ep, ep);
  872. if (!_ep || (!ep->desc && ep->num != 0))
  873. return -ENODEV;
  874. if (!ep->dev->driver || ep->dev->gadget.speed == USB_SPEED_UNKNOWN)
  875. return -ESHUTDOWN;
  876. avail = net2272_ep_read(ep, EP_AVAIL1) << 8;
  877. avail |= net2272_ep_read(ep, EP_AVAIL0);
  878. if (avail > ep->fifo_size)
  879. return -EOVERFLOW;
  880. if (ep->is_in)
  881. avail = ep->fifo_size - avail;
  882. return avail;
  883. }
  884. static void
  885. net2272_fifo_flush(struct usb_ep *_ep)
  886. {
  887. struct net2272_ep *ep;
  888. ep = container_of(_ep, struct net2272_ep, ep);
  889. if (!_ep || (!ep->desc && ep->num != 0))
  890. return;
  891. if (!ep->dev->driver || ep->dev->gadget.speed == USB_SPEED_UNKNOWN)
  892. return;
  893. net2272_ep_write(ep, EP_STAT1, 1 << BUFFER_FLUSH);
  894. }
  895. static struct usb_ep_ops net2272_ep_ops = {
  896. .enable = net2272_enable,
  897. .disable = net2272_disable,
  898. .alloc_request = net2272_alloc_request,
  899. .free_request = net2272_free_request,
  900. .queue = net2272_queue,
  901. .dequeue = net2272_dequeue,
  902. .set_halt = net2272_set_halt,
  903. .set_wedge = net2272_set_wedge,
  904. .fifo_status = net2272_fifo_status,
  905. .fifo_flush = net2272_fifo_flush,
  906. };
  907. /*---------------------------------------------------------------------------*/
  908. static int
  909. net2272_get_frame(struct usb_gadget *_gadget)
  910. {
  911. struct net2272 *dev;
  912. unsigned long flags;
  913. u16 ret;
  914. if (!_gadget)
  915. return -ENODEV;
  916. dev = container_of(_gadget, struct net2272, gadget);
  917. spin_lock_irqsave(&dev->lock, flags);
  918. ret = net2272_read(dev, FRAME1) << 8;
  919. ret |= net2272_read(dev, FRAME0);
  920. spin_unlock_irqrestore(&dev->lock, flags);
  921. return ret;
  922. }
  923. static int
  924. net2272_wakeup(struct usb_gadget *_gadget)
  925. {
  926. struct net2272 *dev;
  927. u8 tmp;
  928. unsigned long flags;
  929. if (!_gadget)
  930. return 0;
  931. dev = container_of(_gadget, struct net2272, gadget);
  932. spin_lock_irqsave(&dev->lock, flags);
  933. tmp = net2272_read(dev, USBCTL0);
  934. if (tmp & (1 << IO_WAKEUP_ENABLE))
  935. net2272_write(dev, USBCTL1, (1 << GENERATE_RESUME));
  936. spin_unlock_irqrestore(&dev->lock, flags);
  937. return 0;
  938. }
  939. static int
  940. net2272_set_selfpowered(struct usb_gadget *_gadget, int value)
  941. {
  942. struct net2272 *dev;
  943. if (!_gadget)
  944. return -ENODEV;
  945. dev = container_of(_gadget, struct net2272, gadget);
  946. dev->is_selfpowered = value;
  947. return 0;
  948. }
  949. static int
  950. net2272_pullup(struct usb_gadget *_gadget, int is_on)
  951. {
  952. struct net2272 *dev;
  953. u8 tmp;
  954. unsigned long flags;
  955. if (!_gadget)
  956. return -ENODEV;
  957. dev = container_of(_gadget, struct net2272, gadget);
  958. spin_lock_irqsave(&dev->lock, flags);
  959. tmp = net2272_read(dev, USBCTL0);
  960. dev->softconnect = (is_on != 0);
  961. if (is_on)
  962. tmp |= (1 << USB_DETECT_ENABLE);
  963. else
  964. tmp &= ~(1 << USB_DETECT_ENABLE);
  965. net2272_write(dev, USBCTL0, tmp);
  966. spin_unlock_irqrestore(&dev->lock, flags);
  967. return 0;
  968. }
  969. static int net2272_start(struct usb_gadget *_gadget,
  970. struct usb_gadget_driver *driver);
  971. static int net2272_stop(struct usb_gadget *_gadget);
  972. static const struct usb_gadget_ops net2272_ops = {
  973. .get_frame = net2272_get_frame,
  974. .wakeup = net2272_wakeup,
  975. .set_selfpowered = net2272_set_selfpowered,
  976. .pullup = net2272_pullup,
  977. .udc_start = net2272_start,
  978. .udc_stop = net2272_stop,
  979. };
  980. /*---------------------------------------------------------------------------*/
  981. static ssize_t
  982. registers_show(struct device *_dev, struct device_attribute *attr, char *buf)
  983. {
  984. struct net2272 *dev;
  985. char *next;
  986. unsigned size, t;
  987. unsigned long flags;
  988. u8 t1, t2;
  989. int i;
  990. const char *s;
  991. dev = dev_get_drvdata(_dev);
  992. next = buf;
  993. size = PAGE_SIZE;
  994. spin_lock_irqsave(&dev->lock, flags);
  995. if (dev->driver)
  996. s = dev->driver->driver.name;
  997. else
  998. s = "(none)";
  999. /* Main Control Registers */
  1000. t = scnprintf(next, size, "%s version %s,"
  1001. "chiprev %02x, locctl %02x\n"
  1002. "irqenb0 %02x irqenb1 %02x "
  1003. "irqstat0 %02x irqstat1 %02x\n",
  1004. driver_name, driver_vers, dev->chiprev,
  1005. net2272_read(dev, LOCCTL),
  1006. net2272_read(dev, IRQENB0),
  1007. net2272_read(dev, IRQENB1),
  1008. net2272_read(dev, IRQSTAT0),
  1009. net2272_read(dev, IRQSTAT1));
  1010. size -= t;
  1011. next += t;
  1012. /* DMA */
  1013. t1 = net2272_read(dev, DMAREQ);
  1014. t = scnprintf(next, size, "\ndmareq %02x: %s %s%s%s%s\n",
  1015. t1, ep_name[(t1 & 0x01) + 1],
  1016. t1 & (1 << DMA_CONTROL_DACK) ? "dack " : "",
  1017. t1 & (1 << DMA_REQUEST_ENABLE) ? "reqenb " : "",
  1018. t1 & (1 << DMA_REQUEST) ? "req " : "",
  1019. t1 & (1 << DMA_BUFFER_VALID) ? "valid " : "");
  1020. size -= t;
  1021. next += t;
  1022. /* USB Control Registers */
  1023. t1 = net2272_read(dev, USBCTL1);
  1024. if (t1 & (1 << VBUS_PIN)) {
  1025. if (t1 & (1 << USB_HIGH_SPEED))
  1026. s = "high speed";
  1027. else if (dev->gadget.speed == USB_SPEED_UNKNOWN)
  1028. s = "powered";
  1029. else
  1030. s = "full speed";
  1031. } else
  1032. s = "not attached";
  1033. t = scnprintf(next, size,
  1034. "usbctl0 %02x usbctl1 %02x addr 0x%02x (%s)\n",
  1035. net2272_read(dev, USBCTL0), t1,
  1036. net2272_read(dev, OURADDR), s);
  1037. size -= t;
  1038. next += t;
  1039. /* Endpoint Registers */
  1040. for (i = 0; i < 4; ++i) {
  1041. struct net2272_ep *ep;
  1042. ep = &dev->ep[i];
  1043. if (i && !ep->desc)
  1044. continue;
  1045. t1 = net2272_ep_read(ep, EP_CFG);
  1046. t2 = net2272_ep_read(ep, EP_RSPSET);
  1047. t = scnprintf(next, size,
  1048. "\n%s\tcfg %02x rsp (%02x) %s%s%s%s%s%s%s%s"
  1049. "irqenb %02x\n",
  1050. ep->ep.name, t1, t2,
  1051. (t2 & (1 << ALT_NAK_OUT_PACKETS)) ? "NAK " : "",
  1052. (t2 & (1 << HIDE_STATUS_PHASE)) ? "hide " : "",
  1053. (t2 & (1 << AUTOVALIDATE)) ? "auto " : "",
  1054. (t2 & (1 << INTERRUPT_MODE)) ? "interrupt " : "",
  1055. (t2 & (1 << CONTROL_STATUS_PHASE_HANDSHAKE)) ? "status " : "",
  1056. (t2 & (1 << NAK_OUT_PACKETS_MODE)) ? "NAKmode " : "",
  1057. (t2 & (1 << ENDPOINT_TOGGLE)) ? "DATA1 " : "DATA0 ",
  1058. (t2 & (1 << ENDPOINT_HALT)) ? "HALT " : "",
  1059. net2272_ep_read(ep, EP_IRQENB));
  1060. size -= t;
  1061. next += t;
  1062. t = scnprintf(next, size,
  1063. "\tstat0 %02x stat1 %02x avail %04x "
  1064. "(ep%d%s-%s)%s\n",
  1065. net2272_ep_read(ep, EP_STAT0),
  1066. net2272_ep_read(ep, EP_STAT1),
  1067. (net2272_ep_read(ep, EP_AVAIL1) << 8) | net2272_ep_read(ep, EP_AVAIL0),
  1068. t1 & 0x0f,
  1069. ep->is_in ? "in" : "out",
  1070. type_string(t1 >> 5),
  1071. ep->stopped ? "*" : "");
  1072. size -= t;
  1073. next += t;
  1074. t = scnprintf(next, size,
  1075. "\tep_transfer %06x\n",
  1076. ((net2272_ep_read(ep, EP_TRANSFER2) & 0xff) << 16) |
  1077. ((net2272_ep_read(ep, EP_TRANSFER1) & 0xff) << 8) |
  1078. ((net2272_ep_read(ep, EP_TRANSFER0) & 0xff)));
  1079. size -= t;
  1080. next += t;
  1081. t1 = net2272_ep_read(ep, EP_BUFF_STATES) & 0x03;
  1082. t2 = (net2272_ep_read(ep, EP_BUFF_STATES) >> 2) & 0x03;
  1083. t = scnprintf(next, size,
  1084. "\tbuf-a %s buf-b %s\n",
  1085. buf_state_string(t1),
  1086. buf_state_string(t2));
  1087. size -= t;
  1088. next += t;
  1089. }
  1090. spin_unlock_irqrestore(&dev->lock, flags);
  1091. return PAGE_SIZE - size;
  1092. }
  1093. static DEVICE_ATTR_RO(registers);
  1094. /*---------------------------------------------------------------------------*/
  1095. static void
  1096. net2272_set_fifo_mode(struct net2272 *dev, int mode)
  1097. {
  1098. u8 tmp;
  1099. tmp = net2272_read(dev, LOCCTL) & 0x3f;
  1100. tmp |= (mode << 6);
  1101. net2272_write(dev, LOCCTL, tmp);
  1102. INIT_LIST_HEAD(&dev->gadget.ep_list);
  1103. /* always ep-a, ep-c ... maybe not ep-b */
  1104. list_add_tail(&dev->ep[1].ep.ep_list, &dev->gadget.ep_list);
  1105. switch (mode) {
  1106. case 0:
  1107. list_add_tail(&dev->ep[2].ep.ep_list, &dev->gadget.ep_list);
  1108. dev->ep[1].fifo_size = dev->ep[2].fifo_size = 512;
  1109. break;
  1110. case 1:
  1111. list_add_tail(&dev->ep[2].ep.ep_list, &dev->gadget.ep_list);
  1112. dev->ep[1].fifo_size = 1024;
  1113. dev->ep[2].fifo_size = 512;
  1114. break;
  1115. case 2:
  1116. list_add_tail(&dev->ep[2].ep.ep_list, &dev->gadget.ep_list);
  1117. dev->ep[1].fifo_size = dev->ep[2].fifo_size = 1024;
  1118. break;
  1119. case 3:
  1120. dev->ep[1].fifo_size = 1024;
  1121. break;
  1122. }
  1123. /* ep-c is always 2 512 byte buffers */
  1124. list_add_tail(&dev->ep[3].ep.ep_list, &dev->gadget.ep_list);
  1125. dev->ep[3].fifo_size = 512;
  1126. }
  1127. /*---------------------------------------------------------------------------*/
  1128. static void
  1129. net2272_usb_reset(struct net2272 *dev)
  1130. {
  1131. dev->gadget.speed = USB_SPEED_UNKNOWN;
  1132. net2272_cancel_dma(dev);
  1133. net2272_write(dev, IRQENB0, 0);
  1134. net2272_write(dev, IRQENB1, 0);
  1135. /* clear irq state */
  1136. net2272_write(dev, IRQSTAT0, 0xff);
  1137. net2272_write(dev, IRQSTAT1, ~(1 << SUSPEND_REQUEST_INTERRUPT));
  1138. net2272_write(dev, DMAREQ,
  1139. (0 << DMA_BUFFER_VALID) |
  1140. (0 << DMA_REQUEST_ENABLE) |
  1141. (1 << DMA_CONTROL_DACK) |
  1142. (dev->dma_eot_polarity << EOT_POLARITY) |
  1143. (dev->dma_dack_polarity << DACK_POLARITY) |
  1144. (dev->dma_dreq_polarity << DREQ_POLARITY) |
  1145. ((dma_ep >> 1) << DMA_ENDPOINT_SELECT));
  1146. net2272_cancel_dma(dev);
  1147. net2272_set_fifo_mode(dev, (fifo_mode <= 3) ? fifo_mode : 0);
  1148. /* Set the NET2272 ep fifo data width to 16-bit mode and for correct byte swapping
  1149. * note that the higher level gadget drivers are expected to convert data to little endian.
  1150. * Enable byte swap for your local bus/cpu if needed by setting BYTE_SWAP in LOCCTL here
  1151. */
  1152. net2272_write(dev, LOCCTL, net2272_read(dev, LOCCTL) | (1 << DATA_WIDTH));
  1153. net2272_write(dev, LOCCTL1, (dma_mode << DMA_MODE));
  1154. }
  1155. static void
  1156. net2272_usb_reinit(struct net2272 *dev)
  1157. {
  1158. int i;
  1159. /* basic endpoint init */
  1160. for (i = 0; i < 4; ++i) {
  1161. struct net2272_ep *ep = &dev->ep[i];
  1162. ep->ep.name = ep_name[i];
  1163. ep->dev = dev;
  1164. ep->num = i;
  1165. ep->not_empty = 0;
  1166. if (use_dma && ep->num == dma_ep)
  1167. ep->dma = 1;
  1168. if (i > 0 && i <= 3)
  1169. ep->fifo_size = 512;
  1170. else
  1171. ep->fifo_size = 64;
  1172. net2272_ep_reset(ep);
  1173. }
  1174. usb_ep_set_maxpacket_limit(&dev->ep[0].ep, 64);
  1175. dev->gadget.ep0 = &dev->ep[0].ep;
  1176. dev->ep[0].stopped = 0;
  1177. INIT_LIST_HEAD(&dev->gadget.ep0->ep_list);
  1178. }
  1179. static void
  1180. net2272_ep0_start(struct net2272 *dev)
  1181. {
  1182. struct net2272_ep *ep0 = &dev->ep[0];
  1183. net2272_ep_write(ep0, EP_RSPSET,
  1184. (1 << NAK_OUT_PACKETS_MODE) |
  1185. (1 << ALT_NAK_OUT_PACKETS));
  1186. net2272_ep_write(ep0, EP_RSPCLR,
  1187. (1 << HIDE_STATUS_PHASE) |
  1188. (1 << CONTROL_STATUS_PHASE_HANDSHAKE));
  1189. net2272_write(dev, USBCTL0,
  1190. (dev->softconnect << USB_DETECT_ENABLE) |
  1191. (1 << USB_ROOT_PORT_WAKEUP_ENABLE) |
  1192. (1 << IO_WAKEUP_ENABLE));
  1193. net2272_write(dev, IRQENB0,
  1194. (1 << SETUP_PACKET_INTERRUPT_ENABLE) |
  1195. (1 << ENDPOINT_0_INTERRUPT_ENABLE) |
  1196. (1 << DMA_DONE_INTERRUPT_ENABLE));
  1197. net2272_write(dev, IRQENB1,
  1198. (1 << VBUS_INTERRUPT_ENABLE) |
  1199. (1 << ROOT_PORT_RESET_INTERRUPT_ENABLE) |
  1200. (1 << SUSPEND_REQUEST_CHANGE_INTERRUPT_ENABLE));
  1201. }
  1202. /* when a driver is successfully registered, it will receive
  1203. * control requests including set_configuration(), which enables
  1204. * non-control requests. then usb traffic follows until a
  1205. * disconnect is reported. then a host may connect again, or
  1206. * the driver might get unbound.
  1207. */
  1208. static int net2272_start(struct usb_gadget *_gadget,
  1209. struct usb_gadget_driver *driver)
  1210. {
  1211. struct net2272 *dev;
  1212. unsigned i;
  1213. if (!driver || !driver->setup ||
  1214. driver->max_speed != USB_SPEED_HIGH)
  1215. return -EINVAL;
  1216. dev = container_of(_gadget, struct net2272, gadget);
  1217. for (i = 0; i < 4; ++i)
  1218. dev->ep[i].irqs = 0;
  1219. /* hook up the driver ... */
  1220. dev->softconnect = 1;
  1221. driver->driver.bus = NULL;
  1222. dev->driver = driver;
  1223. /* ... then enable host detection and ep0; and we're ready
  1224. * for set_configuration as well as eventual disconnect.
  1225. */
  1226. net2272_ep0_start(dev);
  1227. return 0;
  1228. }
  1229. static void
  1230. stop_activity(struct net2272 *dev, struct usb_gadget_driver *driver)
  1231. {
  1232. int i;
  1233. /* don't disconnect if it's not connected */
  1234. if (dev->gadget.speed == USB_SPEED_UNKNOWN)
  1235. driver = NULL;
  1236. /* stop hardware; prevent new request submissions;
  1237. * and kill any outstanding requests.
  1238. */
  1239. net2272_usb_reset(dev);
  1240. for (i = 0; i < 4; ++i)
  1241. net2272_dequeue_all(&dev->ep[i]);
  1242. /* report disconnect; the driver is already quiesced */
  1243. if (driver) {
  1244. spin_unlock(&dev->lock);
  1245. driver->disconnect(&dev->gadget);
  1246. spin_lock(&dev->lock);
  1247. }
  1248. net2272_usb_reinit(dev);
  1249. }
  1250. static int net2272_stop(struct usb_gadget *_gadget)
  1251. {
  1252. struct net2272 *dev;
  1253. unsigned long flags;
  1254. dev = container_of(_gadget, struct net2272, gadget);
  1255. spin_lock_irqsave(&dev->lock, flags);
  1256. stop_activity(dev, NULL);
  1257. spin_unlock_irqrestore(&dev->lock, flags);
  1258. dev->driver = NULL;
  1259. return 0;
  1260. }
  1261. /*---------------------------------------------------------------------------*/
  1262. /* handle ep-a/ep-b dma completions */
  1263. static void
  1264. net2272_handle_dma(struct net2272_ep *ep)
  1265. {
  1266. struct net2272_request *req;
  1267. unsigned len;
  1268. int status;
  1269. if (!list_empty(&ep->queue))
  1270. req = list_entry(ep->queue.next,
  1271. struct net2272_request, queue);
  1272. else
  1273. req = NULL;
  1274. dev_vdbg(ep->dev->dev, "handle_dma %s req %p\n", ep->ep.name, req);
  1275. /* Ensure DREQ is de-asserted */
  1276. net2272_write(ep->dev, DMAREQ,
  1277. (0 << DMA_BUFFER_VALID)
  1278. | (0 << DMA_REQUEST_ENABLE)
  1279. | (1 << DMA_CONTROL_DACK)
  1280. | (ep->dev->dma_eot_polarity << EOT_POLARITY)
  1281. | (ep->dev->dma_dack_polarity << DACK_POLARITY)
  1282. | (ep->dev->dma_dreq_polarity << DREQ_POLARITY)
  1283. | (ep->dma << DMA_ENDPOINT_SELECT));
  1284. ep->dev->dma_busy = 0;
  1285. net2272_ep_write(ep, EP_IRQENB,
  1286. (1 << DATA_PACKET_RECEIVED_INTERRUPT_ENABLE)
  1287. | (1 << DATA_PACKET_TRANSMITTED_INTERRUPT_ENABLE)
  1288. | net2272_ep_read(ep, EP_IRQENB));
  1289. /* device-to-host transfer completed */
  1290. if (ep->is_in) {
  1291. /* validate a short packet or zlp if necessary */
  1292. if ((req->req.length % ep->ep.maxpacket != 0) ||
  1293. req->req.zero)
  1294. set_fifo_bytecount(ep, 0);
  1295. net2272_done(ep, req, 0);
  1296. if (!list_empty(&ep->queue)) {
  1297. req = list_entry(ep->queue.next,
  1298. struct net2272_request, queue);
  1299. status = net2272_kick_dma(ep, req);
  1300. if (status < 0)
  1301. net2272_pio_advance(ep);
  1302. }
  1303. /* host-to-device transfer completed */
  1304. } else {
  1305. /* terminated with a short packet? */
  1306. if (net2272_read(ep->dev, IRQSTAT0) &
  1307. (1 << DMA_DONE_INTERRUPT)) {
  1308. /* abort system dma */
  1309. net2272_cancel_dma(ep->dev);
  1310. }
  1311. /* EP_TRANSFER will contain the number of bytes
  1312. * actually received.
  1313. * NOTE: There is no overflow detection on EP_TRANSFER:
  1314. * We can't deal with transfers larger than 2^24 bytes!
  1315. */
  1316. len = (net2272_ep_read(ep, EP_TRANSFER2) << 16)
  1317. | (net2272_ep_read(ep, EP_TRANSFER1) << 8)
  1318. | (net2272_ep_read(ep, EP_TRANSFER0));
  1319. if (ep->not_empty)
  1320. len += 4;
  1321. req->req.actual += len;
  1322. /* get any remaining data */
  1323. net2272_pio_advance(ep);
  1324. }
  1325. }
  1326. /*---------------------------------------------------------------------------*/
  1327. static void
  1328. net2272_handle_ep(struct net2272_ep *ep)
  1329. {
  1330. struct net2272_request *req;
  1331. u8 stat0, stat1;
  1332. if (!list_empty(&ep->queue))
  1333. req = list_entry(ep->queue.next,
  1334. struct net2272_request, queue);
  1335. else
  1336. req = NULL;
  1337. /* ack all, and handle what we care about */
  1338. stat0 = net2272_ep_read(ep, EP_STAT0);
  1339. stat1 = net2272_ep_read(ep, EP_STAT1);
  1340. ep->irqs++;
  1341. dev_vdbg(ep->dev->dev, "%s ack ep_stat0 %02x, ep_stat1 %02x, req %p\n",
  1342. ep->ep.name, stat0, stat1, req ? &req->req : NULL);
  1343. net2272_ep_write(ep, EP_STAT0, stat0 &
  1344. ~((1 << NAK_OUT_PACKETS)
  1345. | (1 << SHORT_PACKET_TRANSFERRED_INTERRUPT)));
  1346. net2272_ep_write(ep, EP_STAT1, stat1);
  1347. /* data packet(s) received (in the fifo, OUT)
  1348. * direction must be validated, otherwise control read status phase
  1349. * could be interpreted as a valid packet
  1350. */
  1351. if (!ep->is_in && (stat0 & (1 << DATA_PACKET_RECEIVED_INTERRUPT)))
  1352. net2272_pio_advance(ep);
  1353. /* data packet(s) transmitted (IN) */
  1354. else if (stat0 & (1 << DATA_PACKET_TRANSMITTED_INTERRUPT))
  1355. net2272_pio_advance(ep);
  1356. }
  1357. static struct net2272_ep *
  1358. net2272_get_ep_by_addr(struct net2272 *dev, u16 wIndex)
  1359. {
  1360. struct net2272_ep *ep;
  1361. if ((wIndex & USB_ENDPOINT_NUMBER_MASK) == 0)
  1362. return &dev->ep[0];
  1363. list_for_each_entry(ep, &dev->gadget.ep_list, ep.ep_list) {
  1364. u8 bEndpointAddress;
  1365. if (!ep->desc)
  1366. continue;
  1367. bEndpointAddress = ep->desc->bEndpointAddress;
  1368. if ((wIndex ^ bEndpointAddress) & USB_DIR_IN)
  1369. continue;
  1370. if ((wIndex & 0x0f) == (bEndpointAddress & 0x0f))
  1371. return ep;
  1372. }
  1373. return NULL;
  1374. }
  1375. /*
  1376. * USB Test Packet:
  1377. * JKJKJKJK * 9
  1378. * JJKKJJKK * 8
  1379. * JJJJKKKK * 8
  1380. * JJJJJJJKKKKKKK * 8
  1381. * JJJJJJJK * 8
  1382. * {JKKKKKKK * 10}, JK
  1383. */
  1384. static const u8 net2272_test_packet[] = {
  1385. 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
  1386. 0xAA, 0xAA, 0xAA, 0xAA, 0xAA, 0xAA, 0xAA, 0xAA,
  1387. 0xEE, 0xEE, 0xEE, 0xEE, 0xEE, 0xEE, 0xEE, 0xEE,
  1388. 0xFE, 0xFF, 0xFF, 0xFF, 0xFF, 0xFF, 0xFF, 0xFF, 0xFF, 0xFF, 0xFF, 0xFF,
  1389. 0x7F, 0xBF, 0xDF, 0xEF, 0xF7, 0xFB, 0xFD,
  1390. 0xFC, 0x7E, 0xBF, 0xDF, 0xEF, 0xF7, 0xFD, 0x7E
  1391. };
  1392. static void
  1393. net2272_set_test_mode(struct net2272 *dev, int mode)
  1394. {
  1395. int i;
  1396. /* Disable all net2272 interrupts:
  1397. * Nothing but a power cycle should stop the test.
  1398. */
  1399. net2272_write(dev, IRQENB0, 0x00);
  1400. net2272_write(dev, IRQENB1, 0x00);
  1401. /* Force tranceiver to high-speed */
  1402. net2272_write(dev, XCVRDIAG, 1 << FORCE_HIGH_SPEED);
  1403. net2272_write(dev, PAGESEL, 0);
  1404. net2272_write(dev, EP_STAT0, 1 << DATA_PACKET_TRANSMITTED_INTERRUPT);
  1405. net2272_write(dev, EP_RSPCLR,
  1406. (1 << CONTROL_STATUS_PHASE_HANDSHAKE)
  1407. | (1 << HIDE_STATUS_PHASE));
  1408. net2272_write(dev, EP_CFG, 1 << ENDPOINT_DIRECTION);
  1409. net2272_write(dev, EP_STAT1, 1 << BUFFER_FLUSH);
  1410. /* wait for status phase to complete */
  1411. while (!(net2272_read(dev, EP_STAT0) &
  1412. (1 << DATA_PACKET_TRANSMITTED_INTERRUPT)))
  1413. ;
  1414. /* Enable test mode */
  1415. net2272_write(dev, USBTEST, mode);
  1416. /* load test packet */
  1417. if (mode == TEST_PACKET) {
  1418. /* switch to 8 bit mode */
  1419. net2272_write(dev, LOCCTL, net2272_read(dev, LOCCTL) &
  1420. ~(1 << DATA_WIDTH));
  1421. for (i = 0; i < sizeof(net2272_test_packet); ++i)
  1422. net2272_write(dev, EP_DATA, net2272_test_packet[i]);
  1423. /* Validate test packet */
  1424. net2272_write(dev, EP_TRANSFER0, 0);
  1425. }
  1426. }
  1427. static void
  1428. net2272_handle_stat0_irqs(struct net2272 *dev, u8 stat)
  1429. {
  1430. struct net2272_ep *ep;
  1431. u8 num, scratch;
  1432. /* starting a control request? */
  1433. if (unlikely(stat & (1 << SETUP_PACKET_INTERRUPT))) {
  1434. union {
  1435. u8 raw[8];
  1436. struct usb_ctrlrequest r;
  1437. } u;
  1438. int tmp = 0;
  1439. struct net2272_request *req;
  1440. if (dev->gadget.speed == USB_SPEED_UNKNOWN) {
  1441. if (net2272_read(dev, USBCTL1) & (1 << USB_HIGH_SPEED))
  1442. dev->gadget.speed = USB_SPEED_HIGH;
  1443. else
  1444. dev->gadget.speed = USB_SPEED_FULL;
  1445. dev_dbg(dev->dev, "%s\n",
  1446. usb_speed_string(dev->gadget.speed));
  1447. }
  1448. ep = &dev->ep[0];
  1449. ep->irqs++;
  1450. /* make sure any leftover interrupt state is cleared */
  1451. stat &= ~(1 << ENDPOINT_0_INTERRUPT);
  1452. while (!list_empty(&ep->queue)) {
  1453. req = list_entry(ep->queue.next,
  1454. struct net2272_request, queue);
  1455. net2272_done(ep, req,
  1456. (req->req.actual == req->req.length) ? 0 : -EPROTO);
  1457. }
  1458. ep->stopped = 0;
  1459. dev->protocol_stall = 0;
  1460. net2272_ep_write(ep, EP_STAT0,
  1461. (1 << DATA_IN_TOKEN_INTERRUPT)
  1462. | (1 << DATA_OUT_TOKEN_INTERRUPT)
  1463. | (1 << DATA_PACKET_TRANSMITTED_INTERRUPT)
  1464. | (1 << DATA_PACKET_RECEIVED_INTERRUPT)
  1465. | (1 << SHORT_PACKET_TRANSFERRED_INTERRUPT));
  1466. net2272_ep_write(ep, EP_STAT1,
  1467. (1 << TIMEOUT)
  1468. | (1 << USB_OUT_ACK_SENT)
  1469. | (1 << USB_OUT_NAK_SENT)
  1470. | (1 << USB_IN_ACK_RCVD)
  1471. | (1 << USB_IN_NAK_SENT)
  1472. | (1 << USB_STALL_SENT)
  1473. | (1 << LOCAL_OUT_ZLP));
  1474. /*
  1475. * Ensure Control Read pre-validation setting is beyond maximum size
  1476. * - Control Writes can leave non-zero values in EP_TRANSFER. If
  1477. * an EP0 transfer following the Control Write is a Control Read,
  1478. * the NET2272 sees the non-zero EP_TRANSFER as an unexpected
  1479. * pre-validation count.
  1480. * - Setting EP_TRANSFER beyond the maximum EP0 transfer size ensures
  1481. * the pre-validation count cannot cause an unexpected validatation
  1482. */
  1483. net2272_write(dev, PAGESEL, 0);
  1484. net2272_write(dev, EP_TRANSFER2, 0xff);
  1485. net2272_write(dev, EP_TRANSFER1, 0xff);
  1486. net2272_write(dev, EP_TRANSFER0, 0xff);
  1487. u.raw[0] = net2272_read(dev, SETUP0);
  1488. u.raw[1] = net2272_read(dev, SETUP1);
  1489. u.raw[2] = net2272_read(dev, SETUP2);
  1490. u.raw[3] = net2272_read(dev, SETUP3);
  1491. u.raw[4] = net2272_read(dev, SETUP4);
  1492. u.raw[5] = net2272_read(dev, SETUP5);
  1493. u.raw[6] = net2272_read(dev, SETUP6);
  1494. u.raw[7] = net2272_read(dev, SETUP7);
  1495. /*
  1496. * If you have a big endian cpu make sure le16_to_cpus
  1497. * performs the proper byte swapping here...
  1498. */
  1499. le16_to_cpus(&u.r.wValue);
  1500. le16_to_cpus(&u.r.wIndex);
  1501. le16_to_cpus(&u.r.wLength);
  1502. /* ack the irq */
  1503. net2272_write(dev, IRQSTAT0, 1 << SETUP_PACKET_INTERRUPT);
  1504. stat ^= (1 << SETUP_PACKET_INTERRUPT);
  1505. /* watch control traffic at the token level, and force
  1506. * synchronization before letting the status phase happen.
  1507. */
  1508. ep->is_in = (u.r.bRequestType & USB_DIR_IN) != 0;
  1509. if (ep->is_in) {
  1510. scratch = (1 << DATA_PACKET_TRANSMITTED_INTERRUPT_ENABLE)
  1511. | (1 << DATA_OUT_TOKEN_INTERRUPT_ENABLE)
  1512. | (1 << DATA_IN_TOKEN_INTERRUPT_ENABLE);
  1513. stop_out_naking(ep);
  1514. } else
  1515. scratch = (1 << DATA_PACKET_RECEIVED_INTERRUPT_ENABLE)
  1516. | (1 << DATA_OUT_TOKEN_INTERRUPT_ENABLE)
  1517. | (1 << DATA_IN_TOKEN_INTERRUPT_ENABLE);
  1518. net2272_ep_write(ep, EP_IRQENB, scratch);
  1519. if ((u.r.bRequestType & USB_TYPE_MASK) != USB_TYPE_STANDARD)
  1520. goto delegate;
  1521. switch (u.r.bRequest) {
  1522. case USB_REQ_GET_STATUS: {
  1523. struct net2272_ep *e;
  1524. u16 status = 0;
  1525. switch (u.r.bRequestType & USB_RECIP_MASK) {
  1526. case USB_RECIP_ENDPOINT:
  1527. e = net2272_get_ep_by_addr(dev, u.r.wIndex);
  1528. if (!e || u.r.wLength > 2)
  1529. goto do_stall;
  1530. if (net2272_ep_read(e, EP_RSPSET) & (1 << ENDPOINT_HALT))
  1531. status = __constant_cpu_to_le16(1);
  1532. else
  1533. status = __constant_cpu_to_le16(0);
  1534. /* don't bother with a request object! */
  1535. net2272_ep_write(&dev->ep[0], EP_IRQENB, 0);
  1536. writew(status, net2272_reg_addr(dev, EP_DATA));
  1537. set_fifo_bytecount(&dev->ep[0], 0);
  1538. allow_status(ep);
  1539. dev_vdbg(dev->dev, "%s stat %02x\n",
  1540. ep->ep.name, status);
  1541. goto next_endpoints;
  1542. case USB_RECIP_DEVICE:
  1543. if (u.r.wLength > 2)
  1544. goto do_stall;
  1545. if (dev->is_selfpowered)
  1546. status = (1 << USB_DEVICE_SELF_POWERED);
  1547. /* don't bother with a request object! */
  1548. net2272_ep_write(&dev->ep[0], EP_IRQENB, 0);
  1549. writew(status, net2272_reg_addr(dev, EP_DATA));
  1550. set_fifo_bytecount(&dev->ep[0], 0);
  1551. allow_status(ep);
  1552. dev_vdbg(dev->dev, "device stat %02x\n", status);
  1553. goto next_endpoints;
  1554. case USB_RECIP_INTERFACE:
  1555. if (u.r.wLength > 2)
  1556. goto do_stall;
  1557. /* don't bother with a request object! */
  1558. net2272_ep_write(&dev->ep[0], EP_IRQENB, 0);
  1559. writew(status, net2272_reg_addr(dev, EP_DATA));
  1560. set_fifo_bytecount(&dev->ep[0], 0);
  1561. allow_status(ep);
  1562. dev_vdbg(dev->dev, "interface status %02x\n", status);
  1563. goto next_endpoints;
  1564. }
  1565. break;
  1566. }
  1567. case USB_REQ_CLEAR_FEATURE: {
  1568. struct net2272_ep *e;
  1569. if (u.r.bRequestType != USB_RECIP_ENDPOINT)
  1570. goto delegate;
  1571. if (u.r.wValue != USB_ENDPOINT_HALT ||
  1572. u.r.wLength != 0)
  1573. goto do_stall;
  1574. e = net2272_get_ep_by_addr(dev, u.r.wIndex);
  1575. if (!e)
  1576. goto do_stall;
  1577. if (e->wedged) {
  1578. dev_vdbg(dev->dev, "%s wedged, halt not cleared\n",
  1579. ep->ep.name);
  1580. } else {
  1581. dev_vdbg(dev->dev, "%s clear halt\n", ep->ep.name);
  1582. clear_halt(e);
  1583. }
  1584. allow_status(ep);
  1585. goto next_endpoints;
  1586. }
  1587. case USB_REQ_SET_FEATURE: {
  1588. struct net2272_ep *e;
  1589. if (u.r.bRequestType == USB_RECIP_DEVICE) {
  1590. if (u.r.wIndex != NORMAL_OPERATION)
  1591. net2272_set_test_mode(dev, (u.r.wIndex >> 8));
  1592. allow_status(ep);
  1593. dev_vdbg(dev->dev, "test mode: %d\n", u.r.wIndex);
  1594. goto next_endpoints;
  1595. } else if (u.r.bRequestType != USB_RECIP_ENDPOINT)
  1596. goto delegate;
  1597. if (u.r.wValue != USB_ENDPOINT_HALT ||
  1598. u.r.wLength != 0)
  1599. goto do_stall;
  1600. e = net2272_get_ep_by_addr(dev, u.r.wIndex);
  1601. if (!e)
  1602. goto do_stall;
  1603. set_halt(e);
  1604. allow_status(ep);
  1605. dev_vdbg(dev->dev, "%s set halt\n", ep->ep.name);
  1606. goto next_endpoints;
  1607. }
  1608. case USB_REQ_SET_ADDRESS: {
  1609. net2272_write(dev, OURADDR, u.r.wValue & 0xff);
  1610. allow_status(ep);
  1611. break;
  1612. }
  1613. default:
  1614. delegate:
  1615. dev_vdbg(dev->dev, "setup %02x.%02x v%04x i%04x "
  1616. "ep_cfg %08x\n",
  1617. u.r.bRequestType, u.r.bRequest,
  1618. u.r.wValue, u.r.wIndex,
  1619. net2272_ep_read(ep, EP_CFG));
  1620. spin_unlock(&dev->lock);
  1621. tmp = dev->driver->setup(&dev->gadget, &u.r);
  1622. spin_lock(&dev->lock);
  1623. }
  1624. /* stall ep0 on error */
  1625. if (tmp < 0) {
  1626. do_stall:
  1627. dev_vdbg(dev->dev, "req %02x.%02x protocol STALL; stat %d\n",
  1628. u.r.bRequestType, u.r.bRequest, tmp);
  1629. dev->protocol_stall = 1;
  1630. }
  1631. /* endpoint dma irq? */
  1632. } else if (stat & (1 << DMA_DONE_INTERRUPT)) {
  1633. net2272_cancel_dma(dev);
  1634. net2272_write(dev, IRQSTAT0, 1 << DMA_DONE_INTERRUPT);
  1635. stat &= ~(1 << DMA_DONE_INTERRUPT);
  1636. num = (net2272_read(dev, DMAREQ) & (1 << DMA_ENDPOINT_SELECT))
  1637. ? 2 : 1;
  1638. ep = &dev->ep[num];
  1639. net2272_handle_dma(ep);
  1640. }
  1641. next_endpoints:
  1642. /* endpoint data irq? */
  1643. scratch = stat & 0x0f;
  1644. stat &= ~0x0f;
  1645. for (num = 0; scratch; num++) {
  1646. u8 t;
  1647. /* does this endpoint's FIFO and queue need tending? */
  1648. t = 1 << num;
  1649. if ((scratch & t) == 0)
  1650. continue;
  1651. scratch ^= t;
  1652. ep = &dev->ep[num];
  1653. net2272_handle_ep(ep);
  1654. }
  1655. /* some interrupts we can just ignore */
  1656. stat &= ~(1 << SOF_INTERRUPT);
  1657. if (stat)
  1658. dev_dbg(dev->dev, "unhandled irqstat0 %02x\n", stat);
  1659. }
  1660. static void
  1661. net2272_handle_stat1_irqs(struct net2272 *dev, u8 stat)
  1662. {
  1663. u8 tmp, mask;
  1664. /* after disconnect there's nothing else to do! */
  1665. tmp = (1 << VBUS_INTERRUPT) | (1 << ROOT_PORT_RESET_INTERRUPT);
  1666. mask = (1 << USB_HIGH_SPEED) | (1 << USB_FULL_SPEED);
  1667. if (stat & tmp) {
  1668. bool reset = false;
  1669. bool disconnect = false;
  1670. /*
  1671. * Ignore disconnects and resets if the speed hasn't been set.
  1672. * VBUS can bounce and there's always an initial reset.
  1673. */
  1674. net2272_write(dev, IRQSTAT1, tmp);
  1675. if (dev->gadget.speed != USB_SPEED_UNKNOWN) {
  1676. if ((stat & (1 << VBUS_INTERRUPT)) &&
  1677. (net2272_read(dev, USBCTL1) &
  1678. (1 << VBUS_PIN)) == 0) {
  1679. disconnect = true;
  1680. dev_dbg(dev->dev, "disconnect %s\n",
  1681. dev->driver->driver.name);
  1682. } else if ((stat & (1 << ROOT_PORT_RESET_INTERRUPT)) &&
  1683. (net2272_read(dev, USBCTL1) & mask)
  1684. == 0) {
  1685. reset = true;
  1686. dev_dbg(dev->dev, "reset %s\n",
  1687. dev->driver->driver.name);
  1688. }
  1689. if (disconnect || reset) {
  1690. stop_activity(dev, dev->driver);
  1691. net2272_ep0_start(dev);
  1692. spin_unlock(&dev->lock);
  1693. if (reset)
  1694. usb_gadget_udc_reset
  1695. (&dev->gadget, dev->driver);
  1696. else
  1697. (dev->driver->disconnect)
  1698. (&dev->gadget);
  1699. spin_lock(&dev->lock);
  1700. return;
  1701. }
  1702. }
  1703. stat &= ~tmp;
  1704. if (!stat)
  1705. return;
  1706. }
  1707. tmp = (1 << SUSPEND_REQUEST_CHANGE_INTERRUPT);
  1708. if (stat & tmp) {
  1709. net2272_write(dev, IRQSTAT1, tmp);
  1710. if (stat & (1 << SUSPEND_REQUEST_INTERRUPT)) {
  1711. if (dev->driver->suspend)
  1712. dev->driver->suspend(&dev->gadget);
  1713. if (!enable_suspend) {
  1714. stat &= ~(1 << SUSPEND_REQUEST_INTERRUPT);
  1715. dev_dbg(dev->dev, "Suspend disabled, ignoring\n");
  1716. }
  1717. } else {
  1718. if (dev->driver->resume)
  1719. dev->driver->resume(&dev->gadget);
  1720. }
  1721. stat &= ~tmp;
  1722. }
  1723. /* clear any other status/irqs */
  1724. if (stat)
  1725. net2272_write(dev, IRQSTAT1, stat);
  1726. /* some status we can just ignore */
  1727. stat &= ~((1 << CONTROL_STATUS_INTERRUPT)
  1728. | (1 << SUSPEND_REQUEST_INTERRUPT)
  1729. | (1 << RESUME_INTERRUPT));
  1730. if (!stat)
  1731. return;
  1732. else
  1733. dev_dbg(dev->dev, "unhandled irqstat1 %02x\n", stat);
  1734. }
  1735. static irqreturn_t net2272_irq(int irq, void *_dev)
  1736. {
  1737. struct net2272 *dev = _dev;
  1738. #if defined(PLX_PCI_RDK) || defined(PLX_PCI_RDK2)
  1739. u32 intcsr;
  1740. #endif
  1741. #if defined(PLX_PCI_RDK)
  1742. u8 dmareq;
  1743. #endif
  1744. spin_lock(&dev->lock);
  1745. #if defined(PLX_PCI_RDK)
  1746. intcsr = readl(dev->rdk1.plx9054_base_addr + INTCSR);
  1747. if ((intcsr & LOCAL_INTERRUPT_TEST) == LOCAL_INTERRUPT_TEST) {
  1748. writel(intcsr & ~(1 << PCI_INTERRUPT_ENABLE),
  1749. dev->rdk1.plx9054_base_addr + INTCSR);
  1750. net2272_handle_stat1_irqs(dev, net2272_read(dev, IRQSTAT1));
  1751. net2272_handle_stat0_irqs(dev, net2272_read(dev, IRQSTAT0));
  1752. intcsr = readl(dev->rdk1.plx9054_base_addr + INTCSR);
  1753. writel(intcsr | (1 << PCI_INTERRUPT_ENABLE),
  1754. dev->rdk1.plx9054_base_addr + INTCSR);
  1755. }
  1756. if ((intcsr & DMA_CHANNEL_0_TEST) == DMA_CHANNEL_0_TEST) {
  1757. writeb((1 << CHANNEL_CLEAR_INTERRUPT | (0 << CHANNEL_ENABLE)),
  1758. dev->rdk1.plx9054_base_addr + DMACSR0);
  1759. dmareq = net2272_read(dev, DMAREQ);
  1760. if (dmareq & 0x01)
  1761. net2272_handle_dma(&dev->ep[2]);
  1762. else
  1763. net2272_handle_dma(&dev->ep[1]);
  1764. }
  1765. #endif
  1766. #if defined(PLX_PCI_RDK2)
  1767. /* see if PCI int for us by checking irqstat */
  1768. intcsr = readl(dev->rdk2.fpga_base_addr + RDK2_IRQSTAT);
  1769. if (!intcsr & (1 << NET2272_PCI_IRQ)) {
  1770. spin_unlock(&dev->lock);
  1771. return IRQ_NONE;
  1772. }
  1773. /* check dma interrupts */
  1774. #endif
  1775. /* Platform/devcice interrupt handler */
  1776. #if !defined(PLX_PCI_RDK)
  1777. net2272_handle_stat1_irqs(dev, net2272_read(dev, IRQSTAT1));
  1778. net2272_handle_stat0_irqs(dev, net2272_read(dev, IRQSTAT0));
  1779. #endif
  1780. spin_unlock(&dev->lock);
  1781. return IRQ_HANDLED;
  1782. }
  1783. static int net2272_present(struct net2272 *dev)
  1784. {
  1785. /*
  1786. * Quick test to see if CPU can communicate properly with the NET2272.
  1787. * Verifies connection using writes and reads to write/read and
  1788. * read-only registers.
  1789. *
  1790. * This routine is strongly recommended especially during early bring-up
  1791. * of new hardware, however for designs that do not apply Power On System
  1792. * Tests (POST) it may discarded (or perhaps minimized).
  1793. */
  1794. unsigned int ii;
  1795. u8 val, refval;
  1796. /* Verify NET2272 write/read SCRATCH register can write and read */
  1797. refval = net2272_read(dev, SCRATCH);
  1798. for (ii = 0; ii < 0x100; ii += 7) {
  1799. net2272_write(dev, SCRATCH, ii);
  1800. val = net2272_read(dev, SCRATCH);
  1801. if (val != ii) {
  1802. dev_dbg(dev->dev,
  1803. "%s: write/read SCRATCH register test failed: "
  1804. "wrote:0x%2.2x, read:0x%2.2x\n",
  1805. __func__, ii, val);
  1806. return -EINVAL;
  1807. }
  1808. }
  1809. /* To be nice, we write the original SCRATCH value back: */
  1810. net2272_write(dev, SCRATCH, refval);
  1811. /* Verify NET2272 CHIPREV register is read-only: */
  1812. refval = net2272_read(dev, CHIPREV_2272);
  1813. for (ii = 0; ii < 0x100; ii += 7) {
  1814. net2272_write(dev, CHIPREV_2272, ii);
  1815. val = net2272_read(dev, CHIPREV_2272);
  1816. if (val != refval) {
  1817. dev_dbg(dev->dev,
  1818. "%s: write/read CHIPREV register test failed: "
  1819. "wrote 0x%2.2x, read:0x%2.2x expected:0x%2.2x\n",
  1820. __func__, ii, val, refval);
  1821. return -EINVAL;
  1822. }
  1823. }
  1824. /*
  1825. * Verify NET2272's "NET2270 legacy revision" register
  1826. * - NET2272 has two revision registers. The NET2270 legacy revision
  1827. * register should read the same value, regardless of the NET2272
  1828. * silicon revision. The legacy register applies to NET2270
  1829. * firmware being applied to the NET2272.
  1830. */
  1831. val = net2272_read(dev, CHIPREV_LEGACY);
  1832. if (val != NET2270_LEGACY_REV) {
  1833. /*
  1834. * Unexpected legacy revision value
  1835. * - Perhaps the chip is a NET2270?
  1836. */
  1837. dev_dbg(dev->dev,
  1838. "%s: WARNING: UNEXPECTED NET2272 LEGACY REGISTER VALUE:\n"
  1839. " - CHIPREV_LEGACY: expected 0x%2.2x, got:0x%2.2x. (Not NET2272?)\n",
  1840. __func__, NET2270_LEGACY_REV, val);
  1841. return -EINVAL;
  1842. }
  1843. /*
  1844. * Verify NET2272 silicon revision
  1845. * - This revision register is appropriate for the silicon version
  1846. * of the NET2272
  1847. */
  1848. val = net2272_read(dev, CHIPREV_2272);
  1849. switch (val) {
  1850. case CHIPREV_NET2272_R1:
  1851. /*
  1852. * NET2272 Rev 1 has DMA related errata:
  1853. * - Newer silicon (Rev 1A or better) required
  1854. */
  1855. dev_dbg(dev->dev,
  1856. "%s: Rev 1 detected: newer silicon recommended for DMA support\n",
  1857. __func__);
  1858. break;
  1859. case CHIPREV_NET2272_R1A:
  1860. break;
  1861. default:
  1862. /* NET2272 silicon version *may* not work with this firmware */
  1863. dev_dbg(dev->dev,
  1864. "%s: unexpected silicon revision register value: "
  1865. " CHIPREV_2272: 0x%2.2x\n",
  1866. __func__, val);
  1867. /*
  1868. * Return Success, even though the chip rev is not an expected value
  1869. * - Older, pre-built firmware can attempt to operate on newer silicon
  1870. * - Often, new silicon is perfectly compatible
  1871. */
  1872. }
  1873. /* Success: NET2272 checks out OK */
  1874. return 0;
  1875. }
  1876. static void
  1877. net2272_gadget_release(struct device *_dev)
  1878. {
  1879. struct net2272 *dev = dev_get_drvdata(_dev);
  1880. kfree(dev);
  1881. }
  1882. /*---------------------------------------------------------------------------*/
  1883. static void
  1884. net2272_remove(struct net2272 *dev)
  1885. {
  1886. usb_del_gadget_udc(&dev->gadget);
  1887. free_irq(dev->irq, dev);
  1888. iounmap(dev->base_addr);
  1889. device_remove_file(dev->dev, &dev_attr_registers);
  1890. dev_info(dev->dev, "unbind\n");
  1891. }
  1892. static struct net2272 *net2272_probe_init(struct device *dev, unsigned int irq)
  1893. {
  1894. struct net2272 *ret;
  1895. if (!irq) {
  1896. dev_dbg(dev, "No IRQ!\n");
  1897. return ERR_PTR(-ENODEV);
  1898. }
  1899. /* alloc, and start init */
  1900. ret = kzalloc(sizeof(*ret), GFP_KERNEL);
  1901. if (!ret)
  1902. return ERR_PTR(-ENOMEM);
  1903. spin_lock_init(&ret->lock);
  1904. ret->irq = irq;
  1905. ret->dev = dev;
  1906. ret->gadget.ops = &net2272_ops;
  1907. ret->gadget.max_speed = USB_SPEED_HIGH;
  1908. /* the "gadget" abstracts/virtualizes the controller */
  1909. ret->gadget.name = driver_name;
  1910. return ret;
  1911. }
  1912. static int
  1913. net2272_probe_fin(struct net2272 *dev, unsigned int irqflags)
  1914. {
  1915. int ret;
  1916. /* See if there... */
  1917. if (net2272_present(dev)) {
  1918. dev_warn(dev->dev, "2272 not found!\n");
  1919. ret = -ENODEV;
  1920. goto err;
  1921. }
  1922. net2272_usb_reset(dev);
  1923. net2272_usb_reinit(dev);
  1924. ret = request_irq(dev->irq, net2272_irq, irqflags, driver_name, dev);
  1925. if (ret) {
  1926. dev_err(dev->dev, "request interrupt %i failed\n", dev->irq);
  1927. goto err;
  1928. }
  1929. dev->chiprev = net2272_read(dev, CHIPREV_2272);
  1930. /* done */
  1931. dev_info(dev->dev, "%s\n", driver_desc);
  1932. dev_info(dev->dev, "irq %i, mem %p, chip rev %04x, dma %s\n",
  1933. dev->irq, dev->base_addr, dev->chiprev,
  1934. dma_mode_string());
  1935. dev_info(dev->dev, "version: %s\n", driver_vers);
  1936. ret = device_create_file(dev->dev, &dev_attr_registers);
  1937. if (ret)
  1938. goto err_irq;
  1939. ret = usb_add_gadget_udc_release(dev->dev, &dev->gadget,
  1940. net2272_gadget_release);
  1941. if (ret)
  1942. goto err_add_udc;
  1943. return 0;
  1944. err_add_udc:
  1945. device_remove_file(dev->dev, &dev_attr_registers);
  1946. err_irq:
  1947. free_irq(dev->irq, dev);
  1948. err:
  1949. return ret;
  1950. }
  1951. #ifdef CONFIG_PCI
  1952. /*
  1953. * wrap this driver around the specified device, but
  1954. * don't respond over USB until a gadget driver binds to us
  1955. */
  1956. static int
  1957. net2272_rdk1_probe(struct pci_dev *pdev, struct net2272 *dev)
  1958. {
  1959. unsigned long resource, len, tmp;
  1960. void __iomem *mem_mapped_addr[4];
  1961. int ret, i;
  1962. /*
  1963. * BAR 0 holds PLX 9054 config registers
  1964. * BAR 1 is i/o memory; unused here
  1965. * BAR 2 holds EPLD config registers
  1966. * BAR 3 holds NET2272 registers
  1967. */
  1968. /* Find and map all address spaces */
  1969. for (i = 0; i < 4; ++i) {
  1970. if (i == 1)
  1971. continue; /* BAR1 unused */
  1972. resource = pci_resource_start(pdev, i);
  1973. len = pci_resource_len(pdev, i);
  1974. if (!request_mem_region(resource, len, driver_name)) {
  1975. dev_dbg(dev->dev, "controller already in use\n");
  1976. ret = -EBUSY;
  1977. goto err;
  1978. }
  1979. mem_mapped_addr[i] = ioremap_nocache(resource, len);
  1980. if (mem_mapped_addr[i] == NULL) {
  1981. release_mem_region(resource, len);
  1982. dev_dbg(dev->dev, "can't map memory\n");
  1983. ret = -EFAULT;
  1984. goto err;
  1985. }
  1986. }
  1987. dev->rdk1.plx9054_base_addr = mem_mapped_addr[0];
  1988. dev->rdk1.epld_base_addr = mem_mapped_addr[2];
  1989. dev->base_addr = mem_mapped_addr[3];
  1990. /* Set PLX 9054 bus width (16 bits) */
  1991. tmp = readl(dev->rdk1.plx9054_base_addr + LBRD1);
  1992. writel((tmp & ~(3 << MEMORY_SPACE_LOCAL_BUS_WIDTH)) | W16_BIT,
  1993. dev->rdk1.plx9054_base_addr + LBRD1);
  1994. /* Enable PLX 9054 Interrupts */
  1995. writel(readl(dev->rdk1.plx9054_base_addr + INTCSR) |
  1996. (1 << PCI_INTERRUPT_ENABLE) |
  1997. (1 << LOCAL_INTERRUPT_INPUT_ENABLE),
  1998. dev->rdk1.plx9054_base_addr + INTCSR);
  1999. writeb((1 << CHANNEL_CLEAR_INTERRUPT | (0 << CHANNEL_ENABLE)),
  2000. dev->rdk1.plx9054_base_addr + DMACSR0);
  2001. /* reset */
  2002. writeb((1 << EPLD_DMA_ENABLE) |
  2003. (1 << DMA_CTL_DACK) |
  2004. (1 << DMA_TIMEOUT_ENABLE) |
  2005. (1 << USER) |
  2006. (0 << MPX_MODE) |
  2007. (1 << BUSWIDTH) |
  2008. (1 << NET2272_RESET),
  2009. dev->base_addr + EPLD_IO_CONTROL_REGISTER);
  2010. mb();
  2011. writeb(readb(dev->base_addr + EPLD_IO_CONTROL_REGISTER) &
  2012. ~(1 << NET2272_RESET),
  2013. dev->base_addr + EPLD_IO_CONTROL_REGISTER);
  2014. udelay(200);
  2015. return 0;
  2016. err:
  2017. while (--i >= 0) {
  2018. iounmap(mem_mapped_addr[i]);
  2019. release_mem_region(pci_resource_start(pdev, i),
  2020. pci_resource_len(pdev, i));
  2021. }
  2022. return ret;
  2023. }
  2024. static int
  2025. net2272_rdk2_probe(struct pci_dev *pdev, struct net2272 *dev)
  2026. {
  2027. unsigned long resource, len;
  2028. void __iomem *mem_mapped_addr[2];
  2029. int ret, i;
  2030. /*
  2031. * BAR 0 holds FGPA config registers
  2032. * BAR 1 holds NET2272 registers
  2033. */
  2034. /* Find and map all address spaces, bar2-3 unused in rdk 2 */
  2035. for (i = 0; i < 2; ++i) {
  2036. resource = pci_resource_start(pdev, i);
  2037. len = pci_resource_len(pdev, i);
  2038. if (!request_mem_region(resource, len, driver_name)) {
  2039. dev_dbg(dev->dev, "controller already in use\n");
  2040. ret = -EBUSY;
  2041. goto err;
  2042. }
  2043. mem_mapped_addr[i] = ioremap_nocache(resource, len);
  2044. if (mem_mapped_addr[i] == NULL) {
  2045. release_mem_region(resource, len);
  2046. dev_dbg(dev->dev, "can't map memory\n");
  2047. ret = -EFAULT;
  2048. goto err;
  2049. }
  2050. }
  2051. dev->rdk2.fpga_base_addr = mem_mapped_addr[0];
  2052. dev->base_addr = mem_mapped_addr[1];
  2053. mb();
  2054. /* Set 2272 bus width (16 bits) and reset */
  2055. writel((1 << CHIP_RESET), dev->rdk2.fpga_base_addr + RDK2_LOCCTLRDK);
  2056. udelay(200);
  2057. writel((1 << BUS_WIDTH), dev->rdk2.fpga_base_addr + RDK2_LOCCTLRDK);
  2058. /* Print fpga version number */
  2059. dev_info(dev->dev, "RDK2 FPGA version %08x\n",
  2060. readl(dev->rdk2.fpga_base_addr + RDK2_FPGAREV));
  2061. /* Enable FPGA Interrupts */
  2062. writel((1 << NET2272_PCI_IRQ), dev->rdk2.fpga_base_addr + RDK2_IRQENB);
  2063. return 0;
  2064. err:
  2065. while (--i >= 0) {
  2066. iounmap(mem_mapped_addr[i]);
  2067. release_mem_region(pci_resource_start(pdev, i),
  2068. pci_resource_len(pdev, i));
  2069. }
  2070. return ret;
  2071. }
  2072. static int
  2073. net2272_pci_probe(struct pci_dev *pdev, const struct pci_device_id *id)
  2074. {
  2075. struct net2272 *dev;
  2076. int ret;
  2077. dev = net2272_probe_init(&pdev->dev, pdev->irq);
  2078. if (IS_ERR(dev))
  2079. return PTR_ERR(dev);
  2080. dev->dev_id = pdev->device;
  2081. if (pci_enable_device(pdev) < 0) {
  2082. ret = -ENODEV;
  2083. goto err_free;
  2084. }
  2085. pci_set_master(pdev);
  2086. switch (pdev->device) {
  2087. case PCI_DEVICE_ID_RDK1: ret = net2272_rdk1_probe(pdev, dev); break;
  2088. case PCI_DEVICE_ID_RDK2: ret = net2272_rdk2_probe(pdev, dev); break;
  2089. default: BUG();
  2090. }
  2091. if (ret)
  2092. goto err_pci;
  2093. ret = net2272_probe_fin(dev, 0);
  2094. if (ret)
  2095. goto err_pci;
  2096. pci_set_drvdata(pdev, dev);
  2097. return 0;
  2098. err_pci:
  2099. pci_disable_device(pdev);
  2100. err_free:
  2101. kfree(dev);
  2102. return ret;
  2103. }
  2104. static void
  2105. net2272_rdk1_remove(struct pci_dev *pdev, struct net2272 *dev)
  2106. {
  2107. int i;
  2108. /* disable PLX 9054 interrupts */
  2109. writel(readl(dev->rdk1.plx9054_base_addr + INTCSR) &
  2110. ~(1 << PCI_INTERRUPT_ENABLE),
  2111. dev->rdk1.plx9054_base_addr + INTCSR);
  2112. /* clean up resources allocated during probe() */
  2113. iounmap(dev->rdk1.plx9054_base_addr);
  2114. iounmap(dev->rdk1.epld_base_addr);
  2115. for (i = 0; i < 4; ++i) {
  2116. if (i == 1)
  2117. continue; /* BAR1 unused */
  2118. release_mem_region(pci_resource_start(pdev, i),
  2119. pci_resource_len(pdev, i));
  2120. }
  2121. }
  2122. static void
  2123. net2272_rdk2_remove(struct pci_dev *pdev, struct net2272 *dev)
  2124. {
  2125. int i;
  2126. /* disable fpga interrupts
  2127. writel(readl(dev->rdk1.plx9054_base_addr + INTCSR) &
  2128. ~(1 << PCI_INTERRUPT_ENABLE),
  2129. dev->rdk1.plx9054_base_addr + INTCSR);
  2130. */
  2131. /* clean up resources allocated during probe() */
  2132. iounmap(dev->rdk2.fpga_base_addr);
  2133. for (i = 0; i < 2; ++i)
  2134. release_mem_region(pci_resource_start(pdev, i),
  2135. pci_resource_len(pdev, i));
  2136. }
  2137. static void
  2138. net2272_pci_remove(struct pci_dev *pdev)
  2139. {
  2140. struct net2272 *dev = pci_get_drvdata(pdev);
  2141. net2272_remove(dev);
  2142. switch (pdev->device) {
  2143. case PCI_DEVICE_ID_RDK1: net2272_rdk1_remove(pdev, dev); break;
  2144. case PCI_DEVICE_ID_RDK2: net2272_rdk2_remove(pdev, dev); break;
  2145. default: BUG();
  2146. }
  2147. pci_disable_device(pdev);
  2148. kfree(dev);
  2149. }
  2150. /* Table of matching PCI IDs */
  2151. static struct pci_device_id pci_ids[] = {
  2152. { /* RDK 1 card */
  2153. .class = ((PCI_CLASS_BRIDGE_OTHER << 8) | 0xfe),
  2154. .class_mask = 0,
  2155. .vendor = PCI_VENDOR_ID_PLX,
  2156. .device = PCI_DEVICE_ID_RDK1,
  2157. .subvendor = PCI_ANY_ID,
  2158. .subdevice = PCI_ANY_ID,
  2159. },
  2160. { /* RDK 2 card */
  2161. .class = ((PCI_CLASS_BRIDGE_OTHER << 8) | 0xfe),
  2162. .class_mask = 0,
  2163. .vendor = PCI_VENDOR_ID_PLX,
  2164. .device = PCI_DEVICE_ID_RDK2,
  2165. .subvendor = PCI_ANY_ID,
  2166. .subdevice = PCI_ANY_ID,
  2167. },
  2168. { }
  2169. };
  2170. MODULE_DEVICE_TABLE(pci, pci_ids);
  2171. static struct pci_driver net2272_pci_driver = {
  2172. .name = driver_name,
  2173. .id_table = pci_ids,
  2174. .probe = net2272_pci_probe,
  2175. .remove = net2272_pci_remove,
  2176. };
  2177. static int net2272_pci_register(void)
  2178. {
  2179. return pci_register_driver(&net2272_pci_driver);
  2180. }
  2181. static void net2272_pci_unregister(void)
  2182. {
  2183. pci_unregister_driver(&net2272_pci_driver);
  2184. }
  2185. #else
  2186. static inline int net2272_pci_register(void) { return 0; }
  2187. static inline void net2272_pci_unregister(void) { }
  2188. #endif
  2189. /*---------------------------------------------------------------------------*/
  2190. static int
  2191. net2272_plat_probe(struct platform_device *pdev)
  2192. {
  2193. struct net2272 *dev;
  2194. int ret;
  2195. unsigned int irqflags;
  2196. resource_size_t base, len;
  2197. struct resource *iomem, *iomem_bus, *irq_res;
  2198. irq_res = platform_get_resource(pdev, IORESOURCE_IRQ, 0);
  2199. iomem = platform_get_resource(pdev, IORESOURCE_MEM, 0);
  2200. iomem_bus = platform_get_resource(pdev, IORESOURCE_BUS, 0);
  2201. if (!irq_res || !iomem) {
  2202. dev_err(&pdev->dev, "must provide irq/base addr");
  2203. return -EINVAL;
  2204. }
  2205. dev = net2272_probe_init(&pdev->dev, irq_res->start);
  2206. if (IS_ERR(dev))
  2207. return PTR_ERR(dev);
  2208. irqflags = 0;
  2209. if (irq_res->flags & IORESOURCE_IRQ_HIGHEDGE)
  2210. irqflags |= IRQF_TRIGGER_RISING;
  2211. if (irq_res->flags & IORESOURCE_IRQ_LOWEDGE)
  2212. irqflags |= IRQF_TRIGGER_FALLING;
  2213. if (irq_res->flags & IORESOURCE_IRQ_HIGHLEVEL)
  2214. irqflags |= IRQF_TRIGGER_HIGH;
  2215. if (irq_res->flags & IORESOURCE_IRQ_LOWLEVEL)
  2216. irqflags |= IRQF_TRIGGER_LOW;
  2217. base = iomem->start;
  2218. len = resource_size(iomem);
  2219. if (iomem_bus)
  2220. dev->base_shift = iomem_bus->start;
  2221. if (!request_mem_region(base, len, driver_name)) {
  2222. dev_dbg(dev->dev, "get request memory region!\n");
  2223. ret = -EBUSY;
  2224. goto err;
  2225. }
  2226. dev->base_addr = ioremap_nocache(base, len);
  2227. if (!dev->base_addr) {
  2228. dev_dbg(dev->dev, "can't map memory\n");
  2229. ret = -EFAULT;
  2230. goto err_req;
  2231. }
  2232. ret = net2272_probe_fin(dev, IRQF_TRIGGER_LOW);
  2233. if (ret)
  2234. goto err_io;
  2235. platform_set_drvdata(pdev, dev);
  2236. dev_info(&pdev->dev, "running in 16-bit, %sbyte swap local bus mode\n",
  2237. (net2272_read(dev, LOCCTL) & (1 << BYTE_SWAP)) ? "" : "no ");
  2238. return 0;
  2239. err_io:
  2240. iounmap(dev->base_addr);
  2241. err_req:
  2242. release_mem_region(base, len);
  2243. err:
  2244. return ret;
  2245. }
  2246. static int
  2247. net2272_plat_remove(struct platform_device *pdev)
  2248. {
  2249. struct net2272 *dev = platform_get_drvdata(pdev);
  2250. net2272_remove(dev);
  2251. release_mem_region(pdev->resource[0].start,
  2252. resource_size(&pdev->resource[0]));
  2253. kfree(dev);
  2254. return 0;
  2255. }
  2256. static struct platform_driver net2272_plat_driver = {
  2257. .probe = net2272_plat_probe,
  2258. .remove = net2272_plat_remove,
  2259. .driver = {
  2260. .name = driver_name,
  2261. },
  2262. /* FIXME .suspend, .resume */
  2263. };
  2264. MODULE_ALIAS("platform:net2272");
  2265. static int __init net2272_init(void)
  2266. {
  2267. int ret;
  2268. ret = net2272_pci_register();
  2269. if (ret)
  2270. return ret;
  2271. ret = platform_driver_register(&net2272_plat_driver);
  2272. if (ret)
  2273. goto err_pci;
  2274. return ret;
  2275. err_pci:
  2276. net2272_pci_unregister();
  2277. return ret;
  2278. }
  2279. module_init(net2272_init);
  2280. static void __exit net2272_cleanup(void)
  2281. {
  2282. net2272_pci_unregister();
  2283. platform_driver_unregister(&net2272_plat_driver);
  2284. }
  2285. module_exit(net2272_cleanup);
  2286. MODULE_DESCRIPTION(DRIVER_DESC);
  2287. MODULE_AUTHOR("PLX Technology, Inc.");
  2288. MODULE_LICENSE("GPL");