ehci-q.c 31 KB

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  1. /*
  2. * Copyright (C) 2001-2004 by David Brownell
  3. *
  4. * This program is free software; you can redistribute it and/or modify it
  5. * under the terms of the GNU General Public License as published by the
  6. * Free Software Foundation; either version 2 of the License, or (at your
  7. * option) any later version.
  8. *
  9. * This program is distributed in the hope that it will be useful, but
  10. * WITHOUT ANY WARRANTY; without even the implied warranty of MERCHANTABILITY
  11. * or FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
  12. * for more details.
  13. *
  14. * You should have received a copy of the GNU General Public License
  15. * along with this program; if not, write to the Free Software Foundation,
  16. * Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
  17. */
  18. /* this file is part of ehci-hcd.c */
  19. /*-------------------------------------------------------------------------*/
  20. /*
  21. * EHCI hardware queue manipulation ... the core. QH/QTD manipulation.
  22. *
  23. * Control, bulk, and interrupt traffic all use "qh" lists. They list "qtd"
  24. * entries describing USB transactions, max 16-20kB/entry (with 4kB-aligned
  25. * buffers needed for the larger number). We use one QH per endpoint, queue
  26. * multiple urbs (all three types) per endpoint. URBs may need several qtds.
  27. *
  28. * ISO traffic uses "ISO TD" (itd, and sitd) records, and (along with
  29. * interrupts) needs careful scheduling. Performance improvements can be
  30. * an ongoing challenge. That's in "ehci-sched.c".
  31. *
  32. * USB 1.1 devices are handled (a) by "companion" OHCI or UHCI root hubs,
  33. * or otherwise through transaction translators (TTs) in USB 2.0 hubs using
  34. * (b) special fields in qh entries or (c) split iso entries. TTs will
  35. * buffer low/full speed data so the host collects it at high speed.
  36. */
  37. /*-------------------------------------------------------------------------*/
  38. /* fill a qtd, returning how much of the buffer we were able to queue up */
  39. static int
  40. qtd_fill(struct ehci_hcd *ehci, struct ehci_qtd *qtd, dma_addr_t buf,
  41. size_t len, int token, int maxpacket)
  42. {
  43. int i, count;
  44. u64 addr = buf;
  45. /* one buffer entry per 4K ... first might be short or unaligned */
  46. qtd->hw_buf[0] = cpu_to_hc32(ehci, (u32)addr);
  47. qtd->hw_buf_hi[0] = cpu_to_hc32(ehci, (u32)(addr >> 32));
  48. count = 0x1000 - (buf & 0x0fff); /* rest of that page */
  49. if (likely (len < count)) /* ... iff needed */
  50. count = len;
  51. else {
  52. buf += 0x1000;
  53. buf &= ~0x0fff;
  54. /* per-qtd limit: from 16K to 20K (best alignment) */
  55. for (i = 1; count < len && i < 5; i++) {
  56. addr = buf;
  57. qtd->hw_buf[i] = cpu_to_hc32(ehci, (u32)addr);
  58. qtd->hw_buf_hi[i] = cpu_to_hc32(ehci,
  59. (u32)(addr >> 32));
  60. buf += 0x1000;
  61. if ((count + 0x1000) < len)
  62. count += 0x1000;
  63. else
  64. count = len;
  65. }
  66. /* short packets may only terminate transfers */
  67. if (count != len)
  68. count -= (count % maxpacket);
  69. }
  70. qtd->hw_token = cpu_to_hc32(ehci, (count << 16) | token);
  71. qtd->length = count;
  72. return count;
  73. }
  74. /*-------------------------------------------------------------------------*/
  75. static inline void
  76. qh_update (struct ehci_hcd *ehci, struct ehci_qh *qh, struct ehci_qtd *qtd)
  77. {
  78. /* writes to an active overlay are unsafe */
  79. BUG_ON(qh->qh_state != QH_STATE_IDLE);
  80. qh->hw_qtd_next = QTD_NEXT(ehci, qtd->qtd_dma);
  81. qh->hw_alt_next = EHCI_LIST_END(ehci);
  82. /* Except for control endpoints, we make hardware maintain data
  83. * toggle (like OHCI) ... here (re)initialize the toggle in the QH,
  84. * and set the pseudo-toggle in udev. Only usb_clear_halt() will
  85. * ever clear it.
  86. */
  87. if (!(qh->hw_info1 & cpu_to_hc32(ehci, 1 << 14))) {
  88. unsigned is_out, epnum;
  89. is_out = !(qtd->hw_token & cpu_to_hc32(ehci, 1 << 8));
  90. epnum = (hc32_to_cpup(ehci, &qh->hw_info1) >> 8) & 0x0f;
  91. if (unlikely (!usb_gettoggle (qh->dev, epnum, is_out))) {
  92. qh->hw_token &= ~cpu_to_hc32(ehci, QTD_TOGGLE);
  93. usb_settoggle (qh->dev, epnum, is_out, 1);
  94. }
  95. }
  96. /* HC must see latest qtd and qh data before we clear ACTIVE+HALT */
  97. wmb ();
  98. qh->hw_token &= cpu_to_hc32(ehci, QTD_TOGGLE | QTD_STS_PING);
  99. }
  100. /* if it weren't for a common silicon quirk (writing the dummy into the qh
  101. * overlay, so qh->hw_token wrongly becomes inactive/halted), only fault
  102. * recovery (including urb dequeue) would need software changes to a QH...
  103. */
  104. static void
  105. qh_refresh (struct ehci_hcd *ehci, struct ehci_qh *qh)
  106. {
  107. struct ehci_qtd *qtd;
  108. if (list_empty (&qh->qtd_list))
  109. qtd = qh->dummy;
  110. else {
  111. qtd = list_entry (qh->qtd_list.next,
  112. struct ehci_qtd, qtd_list);
  113. /* first qtd may already be partially processed */
  114. if (cpu_to_hc32(ehci, qtd->qtd_dma) == qh->hw_current)
  115. qtd = NULL;
  116. }
  117. if (qtd)
  118. qh_update (ehci, qh, qtd);
  119. }
  120. /*-------------------------------------------------------------------------*/
  121. static void qtd_copy_status (
  122. struct ehci_hcd *ehci,
  123. struct urb *urb,
  124. size_t length,
  125. u32 token
  126. )
  127. {
  128. /* count IN/OUT bytes, not SETUP (even short packets) */
  129. if (likely (QTD_PID (token) != 2))
  130. urb->actual_length += length - QTD_LENGTH (token);
  131. /* don't modify error codes */
  132. if (unlikely (urb->status != -EINPROGRESS))
  133. return;
  134. /* force cleanup after short read; not always an error */
  135. if (unlikely (IS_SHORT_READ (token)))
  136. urb->status = -EREMOTEIO;
  137. /* serious "can't proceed" faults reported by the hardware */
  138. if (token & QTD_STS_HALT) {
  139. if (token & QTD_STS_BABBLE) {
  140. /* FIXME "must" disable babbling device's port too */
  141. urb->status = -EOVERFLOW;
  142. } else if (token & QTD_STS_MMF) {
  143. /* fs/ls interrupt xfer missed the complete-split */
  144. urb->status = -EPROTO;
  145. } else if (token & QTD_STS_DBE) {
  146. urb->status = (QTD_PID (token) == 1) /* IN ? */
  147. ? -ENOSR /* hc couldn't read data */
  148. : -ECOMM; /* hc couldn't write data */
  149. } else if (token & QTD_STS_XACT) {
  150. /* timeout, bad crc, wrong PID, etc; retried */
  151. if (QTD_CERR (token))
  152. urb->status = -EPIPE;
  153. else {
  154. ehci_dbg (ehci, "devpath %s ep%d%s 3strikes\n",
  155. urb->dev->devpath,
  156. usb_pipeendpoint (urb->pipe),
  157. usb_pipein (urb->pipe) ? "in" : "out");
  158. urb->status = -EPROTO;
  159. }
  160. /* CERR nonzero + no errors + halt --> stall */
  161. } else if (QTD_CERR (token))
  162. urb->status = -EPIPE;
  163. else /* unknown */
  164. urb->status = -EPROTO;
  165. ehci_vdbg (ehci,
  166. "dev%d ep%d%s qtd token %08x --> status %d\n",
  167. usb_pipedevice (urb->pipe),
  168. usb_pipeendpoint (urb->pipe),
  169. usb_pipein (urb->pipe) ? "in" : "out",
  170. token, urb->status);
  171. /* if async CSPLIT failed, try cleaning out the TT buffer */
  172. if (urb->status != -EPIPE
  173. && urb->dev->tt && !usb_pipeint (urb->pipe)
  174. && ((token & QTD_STS_MMF) != 0
  175. || QTD_CERR(token) == 0)
  176. && (!ehci_is_TDI(ehci)
  177. || urb->dev->tt->hub !=
  178. ehci_to_hcd(ehci)->self.root_hub)) {
  179. #ifdef DEBUG
  180. struct usb_device *tt = urb->dev->tt->hub;
  181. dev_dbg (&tt->dev,
  182. "clear tt buffer port %d, a%d ep%d t%08x\n",
  183. urb->dev->ttport, urb->dev->devnum,
  184. usb_pipeendpoint (urb->pipe), token);
  185. #endif /* DEBUG */
  186. usb_hub_tt_clear_buffer (urb->dev, urb->pipe);
  187. }
  188. }
  189. }
  190. static void
  191. ehci_urb_done (struct ehci_hcd *ehci, struct urb *urb)
  192. __releases(ehci->lock)
  193. __acquires(ehci->lock)
  194. {
  195. if (likely (urb->hcpriv != NULL)) {
  196. struct ehci_qh *qh = (struct ehci_qh *) urb->hcpriv;
  197. /* S-mask in a QH means it's an interrupt urb */
  198. if ((qh->hw_info2 & cpu_to_hc32(ehci, QH_SMASK)) != 0) {
  199. /* ... update hc-wide periodic stats (for usbfs) */
  200. ehci_to_hcd(ehci)->self.bandwidth_int_reqs--;
  201. }
  202. qh_put (qh);
  203. }
  204. spin_lock (&urb->lock);
  205. urb->hcpriv = NULL;
  206. switch (urb->status) {
  207. case -EINPROGRESS: /* success */
  208. urb->status = 0;
  209. default: /* fault */
  210. COUNT (ehci->stats.complete);
  211. break;
  212. case -EREMOTEIO: /* fault or normal */
  213. if (!(urb->transfer_flags & URB_SHORT_NOT_OK))
  214. urb->status = 0;
  215. COUNT (ehci->stats.complete);
  216. break;
  217. case -ECONNRESET: /* canceled */
  218. case -ENOENT:
  219. COUNT (ehci->stats.unlink);
  220. break;
  221. }
  222. spin_unlock (&urb->lock);
  223. #ifdef EHCI_URB_TRACE
  224. ehci_dbg (ehci,
  225. "%s %s urb %p ep%d%s status %d len %d/%d\n",
  226. __FUNCTION__, urb->dev->devpath, urb,
  227. usb_pipeendpoint (urb->pipe),
  228. usb_pipein (urb->pipe) ? "in" : "out",
  229. urb->status,
  230. urb->actual_length, urb->transfer_buffer_length);
  231. #endif
  232. /* complete() can reenter this HCD */
  233. usb_hcd_unlink_urb_from_ep(ehci_to_hcd(ehci), urb);
  234. spin_unlock (&ehci->lock);
  235. usb_hcd_giveback_urb (ehci_to_hcd(ehci), urb);
  236. spin_lock (&ehci->lock);
  237. }
  238. static void start_unlink_async (struct ehci_hcd *ehci, struct ehci_qh *qh);
  239. static void unlink_async (struct ehci_hcd *ehci, struct ehci_qh *qh);
  240. static void intr_deschedule (struct ehci_hcd *ehci, struct ehci_qh *qh);
  241. static int qh_schedule (struct ehci_hcd *ehci, struct ehci_qh *qh);
  242. /*
  243. * Process and free completed qtds for a qh, returning URBs to drivers.
  244. * Chases up to qh->hw_current. Returns number of completions called,
  245. * indicating how much "real" work we did.
  246. */
  247. static unsigned
  248. qh_completions (struct ehci_hcd *ehci, struct ehci_qh *qh)
  249. {
  250. struct ehci_qtd *last = NULL, *end = qh->dummy;
  251. struct list_head *entry, *tmp;
  252. int stopped;
  253. unsigned count = 0;
  254. int do_status = 0;
  255. u8 state;
  256. u32 halt = HALT_BIT(ehci);
  257. if (unlikely (list_empty (&qh->qtd_list)))
  258. return count;
  259. /* completions (or tasks on other cpus) must never clobber HALT
  260. * till we've gone through and cleaned everything up, even when
  261. * they add urbs to this qh's queue or mark them for unlinking.
  262. *
  263. * NOTE: unlinking expects to be done in queue order.
  264. */
  265. state = qh->qh_state;
  266. qh->qh_state = QH_STATE_COMPLETING;
  267. stopped = (state == QH_STATE_IDLE);
  268. /* remove de-activated QTDs from front of queue.
  269. * after faults (including short reads), cleanup this urb
  270. * then let the queue advance.
  271. * if queue is stopped, handles unlinks.
  272. */
  273. list_for_each_safe (entry, tmp, &qh->qtd_list) {
  274. struct ehci_qtd *qtd;
  275. struct urb *urb;
  276. u32 token = 0;
  277. qtd = list_entry (entry, struct ehci_qtd, qtd_list);
  278. urb = qtd->urb;
  279. /* clean up any state from previous QTD ...*/
  280. if (last) {
  281. if (likely (last->urb != urb)) {
  282. ehci_urb_done (ehci, last->urb);
  283. count++;
  284. }
  285. ehci_qtd_free (ehci, last);
  286. last = NULL;
  287. }
  288. /* ignore urbs submitted during completions we reported */
  289. if (qtd == end)
  290. break;
  291. /* hardware copies qtd out of qh overlay */
  292. rmb ();
  293. token = hc32_to_cpu(ehci, qtd->hw_token);
  294. /* always clean up qtds the hc de-activated */
  295. if ((token & QTD_STS_ACTIVE) == 0) {
  296. if ((token & QTD_STS_HALT) != 0) {
  297. stopped = 1;
  298. /* magic dummy for some short reads; qh won't advance.
  299. * that silicon quirk can kick in with this dummy too.
  300. */
  301. } else if (IS_SHORT_READ (token)
  302. && !(qtd->hw_alt_next
  303. & EHCI_LIST_END(ehci))) {
  304. stopped = 1;
  305. goto halt;
  306. }
  307. /* stop scanning when we reach qtds the hc is using */
  308. } else if (likely (!stopped
  309. && HC_IS_RUNNING (ehci_to_hcd(ehci)->state))) {
  310. break;
  311. } else {
  312. stopped = 1;
  313. if (unlikely (!HC_IS_RUNNING (ehci_to_hcd(ehci)->state)))
  314. urb->status = -ESHUTDOWN;
  315. /* ignore active urbs unless some previous qtd
  316. * for the urb faulted (including short read) or
  317. * its urb was canceled. we may patch qh or qtds.
  318. */
  319. if (likely (urb->status == -EINPROGRESS))
  320. continue;
  321. /* issue status after short control reads */
  322. if (unlikely (do_status != 0)
  323. && QTD_PID (token) == 0 /* OUT */) {
  324. do_status = 0;
  325. continue;
  326. }
  327. /* token in overlay may be most current */
  328. if (state == QH_STATE_IDLE
  329. && cpu_to_hc32(ehci, qtd->qtd_dma)
  330. == qh->hw_current)
  331. token = hc32_to_cpu(ehci, qh->hw_token);
  332. /* force halt for unlinked or blocked qh, so we'll
  333. * patch the qh later and so that completions can't
  334. * activate it while we "know" it's stopped.
  335. */
  336. if ((halt & qh->hw_token) == 0) {
  337. halt:
  338. qh->hw_token |= halt;
  339. wmb ();
  340. }
  341. }
  342. /* remove it from the queue */
  343. spin_lock (&urb->lock);
  344. qtd_copy_status (ehci, urb, qtd->length, token);
  345. do_status = (urb->status == -EREMOTEIO)
  346. && usb_pipecontrol (urb->pipe);
  347. spin_unlock (&urb->lock);
  348. if (stopped && qtd->qtd_list.prev != &qh->qtd_list) {
  349. last = list_entry (qtd->qtd_list.prev,
  350. struct ehci_qtd, qtd_list);
  351. last->hw_next = qtd->hw_next;
  352. }
  353. list_del (&qtd->qtd_list);
  354. last = qtd;
  355. }
  356. /* last urb's completion might still need calling */
  357. if (likely (last != NULL)) {
  358. ehci_urb_done (ehci, last->urb);
  359. count++;
  360. ehci_qtd_free (ehci, last);
  361. }
  362. /* restore original state; caller must unlink or relink */
  363. qh->qh_state = state;
  364. /* be sure the hardware's done with the qh before refreshing
  365. * it after fault cleanup, or recovering from silicon wrongly
  366. * overlaying the dummy qtd (which reduces DMA chatter).
  367. */
  368. if (stopped != 0 || qh->hw_qtd_next == EHCI_LIST_END(ehci)) {
  369. switch (state) {
  370. case QH_STATE_IDLE:
  371. qh_refresh(ehci, qh);
  372. break;
  373. case QH_STATE_LINKED:
  374. /* should be rare for periodic transfers,
  375. * except maybe high bandwidth ...
  376. */
  377. if ((cpu_to_hc32(ehci, QH_SMASK)
  378. & qh->hw_info2) != 0) {
  379. intr_deschedule (ehci, qh);
  380. (void) qh_schedule (ehci, qh);
  381. } else
  382. unlink_async (ehci, qh);
  383. break;
  384. /* otherwise, unlink already started */
  385. }
  386. }
  387. return count;
  388. }
  389. /*-------------------------------------------------------------------------*/
  390. // high bandwidth multiplier, as encoded in highspeed endpoint descriptors
  391. #define hb_mult(wMaxPacketSize) (1 + (((wMaxPacketSize) >> 11) & 0x03))
  392. // ... and packet size, for any kind of endpoint descriptor
  393. #define max_packet(wMaxPacketSize) ((wMaxPacketSize) & 0x07ff)
  394. /*
  395. * reverse of qh_urb_transaction: free a list of TDs.
  396. * used for cleanup after errors, before HC sees an URB's TDs.
  397. */
  398. static void qtd_list_free (
  399. struct ehci_hcd *ehci,
  400. struct urb *urb,
  401. struct list_head *qtd_list
  402. ) {
  403. struct list_head *entry, *temp;
  404. list_for_each_safe (entry, temp, qtd_list) {
  405. struct ehci_qtd *qtd;
  406. qtd = list_entry (entry, struct ehci_qtd, qtd_list);
  407. list_del (&qtd->qtd_list);
  408. ehci_qtd_free (ehci, qtd);
  409. }
  410. }
  411. /*
  412. * create a list of filled qtds for this URB; won't link into qh.
  413. */
  414. static struct list_head *
  415. qh_urb_transaction (
  416. struct ehci_hcd *ehci,
  417. struct urb *urb,
  418. struct list_head *head,
  419. gfp_t flags
  420. ) {
  421. struct ehci_qtd *qtd, *qtd_prev;
  422. dma_addr_t buf;
  423. int len, maxpacket;
  424. int is_input;
  425. u32 token;
  426. /*
  427. * URBs map to sequences of QTDs: one logical transaction
  428. */
  429. qtd = ehci_qtd_alloc (ehci, flags);
  430. if (unlikely (!qtd))
  431. return NULL;
  432. list_add_tail (&qtd->qtd_list, head);
  433. qtd->urb = urb;
  434. token = QTD_STS_ACTIVE;
  435. token |= (EHCI_TUNE_CERR << 10);
  436. /* for split transactions, SplitXState initialized to zero */
  437. len = urb->transfer_buffer_length;
  438. is_input = usb_pipein (urb->pipe);
  439. if (usb_pipecontrol (urb->pipe)) {
  440. /* SETUP pid */
  441. qtd_fill(ehci, qtd, urb->setup_dma,
  442. sizeof (struct usb_ctrlrequest),
  443. token | (2 /* "setup" */ << 8), 8);
  444. /* ... and always at least one more pid */
  445. token ^= QTD_TOGGLE;
  446. qtd_prev = qtd;
  447. qtd = ehci_qtd_alloc (ehci, flags);
  448. if (unlikely (!qtd))
  449. goto cleanup;
  450. qtd->urb = urb;
  451. qtd_prev->hw_next = QTD_NEXT(ehci, qtd->qtd_dma);
  452. list_add_tail (&qtd->qtd_list, head);
  453. /* for zero length DATA stages, STATUS is always IN */
  454. if (len == 0)
  455. token |= (1 /* "in" */ << 8);
  456. }
  457. /*
  458. * data transfer stage: buffer setup
  459. */
  460. buf = urb->transfer_dma;
  461. if (is_input)
  462. token |= (1 /* "in" */ << 8);
  463. /* else it's already initted to "out" pid (0 << 8) */
  464. maxpacket = max_packet(usb_maxpacket(urb->dev, urb->pipe, !is_input));
  465. /*
  466. * buffer gets wrapped in one or more qtds;
  467. * last one may be "short" (including zero len)
  468. * and may serve as a control status ack
  469. */
  470. for (;;) {
  471. int this_qtd_len;
  472. this_qtd_len = qtd_fill(ehci, qtd, buf, len, token, maxpacket);
  473. len -= this_qtd_len;
  474. buf += this_qtd_len;
  475. if (is_input)
  476. qtd->hw_alt_next = ehci->async->hw_alt_next;
  477. /* qh makes control packets use qtd toggle; maybe switch it */
  478. if ((maxpacket & (this_qtd_len + (maxpacket - 1))) == 0)
  479. token ^= QTD_TOGGLE;
  480. if (likely (len <= 0))
  481. break;
  482. qtd_prev = qtd;
  483. qtd = ehci_qtd_alloc (ehci, flags);
  484. if (unlikely (!qtd))
  485. goto cleanup;
  486. qtd->urb = urb;
  487. qtd_prev->hw_next = QTD_NEXT(ehci, qtd->qtd_dma);
  488. list_add_tail (&qtd->qtd_list, head);
  489. }
  490. /* unless the bulk/interrupt caller wants a chance to clean
  491. * up after short reads, hc should advance qh past this urb
  492. */
  493. if (likely ((urb->transfer_flags & URB_SHORT_NOT_OK) == 0
  494. || usb_pipecontrol (urb->pipe)))
  495. qtd->hw_alt_next = EHCI_LIST_END(ehci);
  496. /*
  497. * control requests may need a terminating data "status" ack;
  498. * bulk ones may need a terminating short packet (zero length).
  499. */
  500. if (likely (urb->transfer_buffer_length != 0)) {
  501. int one_more = 0;
  502. if (usb_pipecontrol (urb->pipe)) {
  503. one_more = 1;
  504. token ^= 0x0100; /* "in" <--> "out" */
  505. token |= QTD_TOGGLE; /* force DATA1 */
  506. } else if (usb_pipebulk (urb->pipe)
  507. && (urb->transfer_flags & URB_ZERO_PACKET)
  508. && !(urb->transfer_buffer_length % maxpacket)) {
  509. one_more = 1;
  510. }
  511. if (one_more) {
  512. qtd_prev = qtd;
  513. qtd = ehci_qtd_alloc (ehci, flags);
  514. if (unlikely (!qtd))
  515. goto cleanup;
  516. qtd->urb = urb;
  517. qtd_prev->hw_next = QTD_NEXT(ehci, qtd->qtd_dma);
  518. list_add_tail (&qtd->qtd_list, head);
  519. /* never any data in such packets */
  520. qtd_fill(ehci, qtd, 0, 0, token, 0);
  521. }
  522. }
  523. /* by default, enable interrupt on urb completion */
  524. if (likely (!(urb->transfer_flags & URB_NO_INTERRUPT)))
  525. qtd->hw_token |= cpu_to_hc32(ehci, QTD_IOC);
  526. return head;
  527. cleanup:
  528. qtd_list_free (ehci, urb, head);
  529. return NULL;
  530. }
  531. /*-------------------------------------------------------------------------*/
  532. // Would be best to create all qh's from config descriptors,
  533. // when each interface/altsetting is established. Unlink
  534. // any previous qh and cancel its urbs first; endpoints are
  535. // implicitly reset then (data toggle too).
  536. // That'd mean updating how usbcore talks to HCDs. (2.7?)
  537. /*
  538. * Each QH holds a qtd list; a QH is used for everything except iso.
  539. *
  540. * For interrupt urbs, the scheduler must set the microframe scheduling
  541. * mask(s) each time the QH gets scheduled. For highspeed, that's
  542. * just one microframe in the s-mask. For split interrupt transactions
  543. * there are additional complications: c-mask, maybe FSTNs.
  544. */
  545. static struct ehci_qh *
  546. qh_make (
  547. struct ehci_hcd *ehci,
  548. struct urb *urb,
  549. gfp_t flags
  550. ) {
  551. struct ehci_qh *qh = ehci_qh_alloc (ehci, flags);
  552. u32 info1 = 0, info2 = 0;
  553. int is_input, type;
  554. int maxp = 0;
  555. if (!qh)
  556. return qh;
  557. /*
  558. * init endpoint/device data for this QH
  559. */
  560. info1 |= usb_pipeendpoint (urb->pipe) << 8;
  561. info1 |= usb_pipedevice (urb->pipe) << 0;
  562. is_input = usb_pipein (urb->pipe);
  563. type = usb_pipetype (urb->pipe);
  564. maxp = usb_maxpacket (urb->dev, urb->pipe, !is_input);
  565. /* Compute interrupt scheduling parameters just once, and save.
  566. * - allowing for high bandwidth, how many nsec/uframe are used?
  567. * - split transactions need a second CSPLIT uframe; same question
  568. * - splits also need a schedule gap (for full/low speed I/O)
  569. * - qh has a polling interval
  570. *
  571. * For control/bulk requests, the HC or TT handles these.
  572. */
  573. if (type == PIPE_INTERRUPT) {
  574. qh->usecs = NS_TO_US (usb_calc_bus_time (USB_SPEED_HIGH, is_input, 0,
  575. hb_mult (maxp) * max_packet (maxp)));
  576. qh->start = NO_FRAME;
  577. if (urb->dev->speed == USB_SPEED_HIGH) {
  578. qh->c_usecs = 0;
  579. qh->gap_uf = 0;
  580. qh->period = urb->interval >> 3;
  581. if (qh->period == 0 && urb->interval != 1) {
  582. /* NOTE interval 2 or 4 uframes could work.
  583. * But interval 1 scheduling is simpler, and
  584. * includes high bandwidth.
  585. */
  586. dbg ("intr period %d uframes, NYET!",
  587. urb->interval);
  588. goto done;
  589. }
  590. } else {
  591. struct usb_tt *tt = urb->dev->tt;
  592. int think_time;
  593. /* gap is f(FS/LS transfer times) */
  594. qh->gap_uf = 1 + usb_calc_bus_time (urb->dev->speed,
  595. is_input, 0, maxp) / (125 * 1000);
  596. /* FIXME this just approximates SPLIT/CSPLIT times */
  597. if (is_input) { // SPLIT, gap, CSPLIT+DATA
  598. qh->c_usecs = qh->usecs + HS_USECS (0);
  599. qh->usecs = HS_USECS (1);
  600. } else { // SPLIT+DATA, gap, CSPLIT
  601. qh->usecs += HS_USECS (1);
  602. qh->c_usecs = HS_USECS (0);
  603. }
  604. think_time = tt ? tt->think_time : 0;
  605. qh->tt_usecs = NS_TO_US (think_time +
  606. usb_calc_bus_time (urb->dev->speed,
  607. is_input, 0, max_packet (maxp)));
  608. qh->period = urb->interval;
  609. }
  610. }
  611. /* support for tt scheduling, and access to toggles */
  612. qh->dev = urb->dev;
  613. /* using TT? */
  614. switch (urb->dev->speed) {
  615. case USB_SPEED_LOW:
  616. info1 |= (1 << 12); /* EPS "low" */
  617. /* FALL THROUGH */
  618. case USB_SPEED_FULL:
  619. /* EPS 0 means "full" */
  620. if (type != PIPE_INTERRUPT)
  621. info1 |= (EHCI_TUNE_RL_TT << 28);
  622. if (type == PIPE_CONTROL) {
  623. info1 |= (1 << 27); /* for TT */
  624. info1 |= 1 << 14; /* toggle from qtd */
  625. }
  626. info1 |= maxp << 16;
  627. info2 |= (EHCI_TUNE_MULT_TT << 30);
  628. /* Some Freescale processors have an erratum in which the
  629. * port number in the queue head was 0..N-1 instead of 1..N.
  630. */
  631. if (ehci_has_fsl_portno_bug(ehci))
  632. info2 |= (urb->dev->ttport-1) << 23;
  633. else
  634. info2 |= urb->dev->ttport << 23;
  635. /* set the address of the TT; for TDI's integrated
  636. * root hub tt, leave it zeroed.
  637. */
  638. if (!ehci_is_TDI(ehci)
  639. || urb->dev->tt->hub !=
  640. ehci_to_hcd(ehci)->self.root_hub)
  641. info2 |= urb->dev->tt->hub->devnum << 16;
  642. /* NOTE: if (PIPE_INTERRUPT) { scheduler sets c-mask } */
  643. break;
  644. case USB_SPEED_HIGH: /* no TT involved */
  645. info1 |= (2 << 12); /* EPS "high" */
  646. if (type == PIPE_CONTROL) {
  647. info1 |= (EHCI_TUNE_RL_HS << 28);
  648. info1 |= 64 << 16; /* usb2 fixed maxpacket */
  649. info1 |= 1 << 14; /* toggle from qtd */
  650. info2 |= (EHCI_TUNE_MULT_HS << 30);
  651. } else if (type == PIPE_BULK) {
  652. info1 |= (EHCI_TUNE_RL_HS << 28);
  653. info1 |= 512 << 16; /* usb2 fixed maxpacket */
  654. info2 |= (EHCI_TUNE_MULT_HS << 30);
  655. } else { /* PIPE_INTERRUPT */
  656. info1 |= max_packet (maxp) << 16;
  657. info2 |= hb_mult (maxp) << 30;
  658. }
  659. break;
  660. default:
  661. dbg ("bogus dev %p speed %d", urb->dev, urb->dev->speed);
  662. done:
  663. qh_put (qh);
  664. return NULL;
  665. }
  666. /* NOTE: if (PIPE_INTERRUPT) { scheduler sets s-mask } */
  667. /* init as live, toggle clear, advance to dummy */
  668. qh->qh_state = QH_STATE_IDLE;
  669. qh->hw_info1 = cpu_to_hc32(ehci, info1);
  670. qh->hw_info2 = cpu_to_hc32(ehci, info2);
  671. usb_settoggle (urb->dev, usb_pipeendpoint (urb->pipe), !is_input, 1);
  672. qh_refresh (ehci, qh);
  673. return qh;
  674. }
  675. /*-------------------------------------------------------------------------*/
  676. /* move qh (and its qtds) onto async queue; maybe enable queue. */
  677. static void qh_link_async (struct ehci_hcd *ehci, struct ehci_qh *qh)
  678. {
  679. __hc32 dma = QH_NEXT(ehci, qh->qh_dma);
  680. struct ehci_qh *head;
  681. /* (re)start the async schedule? */
  682. head = ehci->async;
  683. timer_action_done (ehci, TIMER_ASYNC_OFF);
  684. if (!head->qh_next.qh) {
  685. u32 cmd = ehci_readl(ehci, &ehci->regs->command);
  686. if (!(cmd & CMD_ASE)) {
  687. /* in case a clear of CMD_ASE didn't take yet */
  688. (void)handshake(ehci, &ehci->regs->status,
  689. STS_ASS, 0, 150);
  690. cmd |= CMD_ASE | CMD_RUN;
  691. ehci_writel(ehci, cmd, &ehci->regs->command);
  692. ehci_to_hcd(ehci)->state = HC_STATE_RUNNING;
  693. /* posted write need not be known to HC yet ... */
  694. }
  695. }
  696. /* clear halt and/or toggle; and maybe recover from silicon quirk */
  697. if (qh->qh_state == QH_STATE_IDLE)
  698. qh_refresh (ehci, qh);
  699. /* splice right after start */
  700. qh->qh_next = head->qh_next;
  701. qh->hw_next = head->hw_next;
  702. wmb ();
  703. head->qh_next.qh = qh;
  704. head->hw_next = dma;
  705. qh->qh_state = QH_STATE_LINKED;
  706. /* qtd completions reported later by interrupt */
  707. }
  708. /*-------------------------------------------------------------------------*/
  709. /*
  710. * For control/bulk/interrupt, return QH with these TDs appended.
  711. * Allocates and initializes the QH if necessary.
  712. * Returns null if it can't allocate a QH it needs to.
  713. * If the QH has TDs (urbs) already, that's great.
  714. */
  715. static struct ehci_qh *qh_append_tds (
  716. struct ehci_hcd *ehci,
  717. struct urb *urb,
  718. struct list_head *qtd_list,
  719. int epnum,
  720. void **ptr
  721. )
  722. {
  723. struct ehci_qh *qh = NULL;
  724. u32 qh_addr_mask = cpu_to_hc32(ehci, 0x7f);
  725. qh = (struct ehci_qh *) *ptr;
  726. if (unlikely (qh == NULL)) {
  727. /* can't sleep here, we have ehci->lock... */
  728. qh = qh_make (ehci, urb, GFP_ATOMIC);
  729. *ptr = qh;
  730. }
  731. if (likely (qh != NULL)) {
  732. struct ehci_qtd *qtd;
  733. if (unlikely (list_empty (qtd_list)))
  734. qtd = NULL;
  735. else
  736. qtd = list_entry (qtd_list->next, struct ehci_qtd,
  737. qtd_list);
  738. /* control qh may need patching ... */
  739. if (unlikely (epnum == 0)) {
  740. /* usb_reset_device() briefly reverts to address 0 */
  741. if (usb_pipedevice (urb->pipe) == 0)
  742. qh->hw_info1 &= ~qh_addr_mask;
  743. }
  744. /* just one way to queue requests: swap with the dummy qtd.
  745. * only hc or qh_refresh() ever modify the overlay.
  746. */
  747. if (likely (qtd != NULL)) {
  748. struct ehci_qtd *dummy;
  749. dma_addr_t dma;
  750. __hc32 token;
  751. /* to avoid racing the HC, use the dummy td instead of
  752. * the first td of our list (becomes new dummy). both
  753. * tds stay deactivated until we're done, when the
  754. * HC is allowed to fetch the old dummy (4.10.2).
  755. */
  756. token = qtd->hw_token;
  757. qtd->hw_token = HALT_BIT(ehci);
  758. wmb ();
  759. dummy = qh->dummy;
  760. dma = dummy->qtd_dma;
  761. *dummy = *qtd;
  762. dummy->qtd_dma = dma;
  763. list_del (&qtd->qtd_list);
  764. list_add (&dummy->qtd_list, qtd_list);
  765. __list_splice (qtd_list, qh->qtd_list.prev);
  766. ehci_qtd_init(ehci, qtd, qtd->qtd_dma);
  767. qh->dummy = qtd;
  768. /* hc must see the new dummy at list end */
  769. dma = qtd->qtd_dma;
  770. qtd = list_entry (qh->qtd_list.prev,
  771. struct ehci_qtd, qtd_list);
  772. qtd->hw_next = QTD_NEXT(ehci, dma);
  773. /* let the hc process these next qtds */
  774. wmb ();
  775. dummy->hw_token = token;
  776. urb->hcpriv = qh_get (qh);
  777. }
  778. }
  779. return qh;
  780. }
  781. /*-------------------------------------------------------------------------*/
  782. static int
  783. submit_async (
  784. struct ehci_hcd *ehci,
  785. struct urb *urb,
  786. struct list_head *qtd_list,
  787. gfp_t mem_flags
  788. ) {
  789. struct ehci_qtd *qtd;
  790. int epnum;
  791. unsigned long flags;
  792. struct ehci_qh *qh = NULL;
  793. int rc;
  794. qtd = list_entry (qtd_list->next, struct ehci_qtd, qtd_list);
  795. epnum = urb->ep->desc.bEndpointAddress;
  796. #ifdef EHCI_URB_TRACE
  797. ehci_dbg (ehci,
  798. "%s %s urb %p ep%d%s len %d, qtd %p [qh %p]\n",
  799. __FUNCTION__, urb->dev->devpath, urb,
  800. epnum & 0x0f, (epnum & USB_DIR_IN) ? "in" : "out",
  801. urb->transfer_buffer_length,
  802. qtd, urb->ep->hcpriv);
  803. #endif
  804. spin_lock_irqsave (&ehci->lock, flags);
  805. if (unlikely(!test_bit(HCD_FLAG_HW_ACCESSIBLE,
  806. &ehci_to_hcd(ehci)->flags))) {
  807. rc = -ESHUTDOWN;
  808. goto done;
  809. }
  810. rc = usb_hcd_link_urb_to_ep(ehci_to_hcd(ehci), urb);
  811. if (unlikely(rc))
  812. goto done;
  813. qh = qh_append_tds(ehci, urb, qtd_list, epnum, &urb->ep->hcpriv);
  814. if (unlikely(qh == NULL)) {
  815. usb_hcd_unlink_urb_from_ep(ehci_to_hcd(ehci), urb);
  816. rc = -ENOMEM;
  817. goto done;
  818. }
  819. /* Control/bulk operations through TTs don't need scheduling,
  820. * the HC and TT handle it when the TT has a buffer ready.
  821. */
  822. if (likely (qh->qh_state == QH_STATE_IDLE))
  823. qh_link_async (ehci, qh_get (qh));
  824. done:
  825. spin_unlock_irqrestore (&ehci->lock, flags);
  826. if (unlikely (qh == NULL))
  827. qtd_list_free (ehci, urb, qtd_list);
  828. return rc;
  829. }
  830. /*-------------------------------------------------------------------------*/
  831. /* the async qh for the qtds being reclaimed are now unlinked from the HC */
  832. static void end_unlink_async (struct ehci_hcd *ehci)
  833. {
  834. struct ehci_qh *qh = ehci->reclaim;
  835. struct ehci_qh *next;
  836. timer_action_done (ehci, TIMER_IAA_WATCHDOG);
  837. // qh->hw_next = cpu_to_hc32(qh->qh_dma);
  838. qh->qh_state = QH_STATE_IDLE;
  839. qh->qh_next.qh = NULL;
  840. qh_put (qh); // refcount from reclaim
  841. /* other unlink(s) may be pending (in QH_STATE_UNLINK_WAIT) */
  842. next = qh->reclaim;
  843. ehci->reclaim = next;
  844. ehci->reclaim_ready = 0;
  845. qh->reclaim = NULL;
  846. qh_completions (ehci, qh);
  847. if (!list_empty (&qh->qtd_list)
  848. && HC_IS_RUNNING (ehci_to_hcd(ehci)->state))
  849. qh_link_async (ehci, qh);
  850. else {
  851. qh_put (qh); // refcount from async list
  852. /* it's not free to turn the async schedule on/off; leave it
  853. * active but idle for a while once it empties.
  854. */
  855. if (HC_IS_RUNNING (ehci_to_hcd(ehci)->state)
  856. && ehci->async->qh_next.qh == NULL)
  857. timer_action (ehci, TIMER_ASYNC_OFF);
  858. }
  859. if (next) {
  860. ehci->reclaim = NULL;
  861. start_unlink_async (ehci, next);
  862. }
  863. }
  864. /* makes sure the async qh will become idle */
  865. /* caller must own ehci->lock */
  866. static void start_unlink_async (struct ehci_hcd *ehci, struct ehci_qh *qh)
  867. {
  868. int cmd = ehci_readl(ehci, &ehci->regs->command);
  869. struct ehci_qh *prev;
  870. #ifdef DEBUG
  871. assert_spin_locked(&ehci->lock);
  872. if (ehci->reclaim
  873. || (qh->qh_state != QH_STATE_LINKED
  874. && qh->qh_state != QH_STATE_UNLINK_WAIT)
  875. )
  876. BUG ();
  877. #endif
  878. /* stop async schedule right now? */
  879. if (unlikely (qh == ehci->async)) {
  880. /* can't get here without STS_ASS set */
  881. if (ehci_to_hcd(ehci)->state != HC_STATE_HALT
  882. && !ehci->reclaim) {
  883. /* ... and CMD_IAAD clear */
  884. ehci_writel(ehci, cmd & ~CMD_ASE,
  885. &ehci->regs->command);
  886. wmb ();
  887. // handshake later, if we need to
  888. timer_action_done (ehci, TIMER_ASYNC_OFF);
  889. }
  890. return;
  891. }
  892. qh->qh_state = QH_STATE_UNLINK;
  893. ehci->reclaim = qh = qh_get (qh);
  894. prev = ehci->async;
  895. while (prev->qh_next.qh != qh)
  896. prev = prev->qh_next.qh;
  897. prev->hw_next = qh->hw_next;
  898. prev->qh_next = qh->qh_next;
  899. wmb ();
  900. if (unlikely (ehci_to_hcd(ehci)->state == HC_STATE_HALT)) {
  901. /* if (unlikely (qh->reclaim != 0))
  902. * this will recurse, probably not much
  903. */
  904. end_unlink_async (ehci);
  905. return;
  906. }
  907. ehci->reclaim_ready = 0;
  908. cmd |= CMD_IAAD;
  909. ehci_writel(ehci, cmd, &ehci->regs->command);
  910. (void)ehci_readl(ehci, &ehci->regs->command);
  911. timer_action (ehci, TIMER_IAA_WATCHDOG);
  912. }
  913. /*-------------------------------------------------------------------------*/
  914. static void scan_async (struct ehci_hcd *ehci)
  915. {
  916. struct ehci_qh *qh;
  917. enum ehci_timer_action action = TIMER_IO_WATCHDOG;
  918. if (!++(ehci->stamp))
  919. ehci->stamp++;
  920. timer_action_done (ehci, TIMER_ASYNC_SHRINK);
  921. rescan:
  922. qh = ehci->async->qh_next.qh;
  923. if (likely (qh != NULL)) {
  924. do {
  925. /* clean any finished work for this qh */
  926. if (!list_empty (&qh->qtd_list)
  927. && qh->stamp != ehci->stamp) {
  928. int temp;
  929. /* unlinks could happen here; completion
  930. * reporting drops the lock. rescan using
  931. * the latest schedule, but don't rescan
  932. * qhs we already finished (no looping).
  933. */
  934. qh = qh_get (qh);
  935. qh->stamp = ehci->stamp;
  936. temp = qh_completions (ehci, qh);
  937. qh_put (qh);
  938. if (temp != 0) {
  939. goto rescan;
  940. }
  941. }
  942. /* unlink idle entries, reducing HC PCI usage as well
  943. * as HCD schedule-scanning costs. delay for any qh
  944. * we just scanned, there's a not-unusual case that it
  945. * doesn't stay idle for long.
  946. * (plus, avoids some kind of re-activation race.)
  947. */
  948. if (list_empty (&qh->qtd_list)) {
  949. if (qh->stamp == ehci->stamp)
  950. action = TIMER_ASYNC_SHRINK;
  951. else if (!ehci->reclaim
  952. && qh->qh_state == QH_STATE_LINKED)
  953. start_unlink_async (ehci, qh);
  954. }
  955. qh = qh->qh_next.qh;
  956. } while (qh);
  957. }
  958. if (action == TIMER_ASYNC_SHRINK)
  959. timer_action (ehci, TIMER_ASYNC_SHRINK);
  960. }