f51345f6619fea5dfd9a6fca478abc9b36cafdb6
[firefly-linux-kernel-4.4.55.git] / drivers / usb / host / ehci-q.c
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
19 /* this file is part of ehci-hcd.c */
20
21 /*-------------------------------------------------------------------------*/
22
23 /*
24  * EHCI hardware queue manipulation ... the core.  QH/QTD manipulation.
25  *
26  * Control, bulk, and interrupt traffic all use "qh" lists.  They list "qtd"
27  * entries describing USB transactions, max 16-20kB/entry (with 4kB-aligned
28  * buffers needed for the larger number).  We use one QH per endpoint, queue
29  * multiple urbs (all three types) per endpoint.  URBs may need several qtds.
30  *
31  * ISO traffic uses "ISO TD" (itd, and sitd) records, and (along with
32  * interrupts) needs careful scheduling.  Performance improvements can be
33  * an ongoing challenge.  That's in "ehci-sched.c".
34  *
35  * USB 1.1 devices are handled (a) by "companion" OHCI or UHCI root hubs,
36  * or otherwise through transaction translators (TTs) in USB 2.0 hubs using
37  * (b) special fields in qh entries or (c) split iso entries.  TTs will
38  * buffer low/full speed data so the host collects it at high speed.
39  */
40
41 /*-------------------------------------------------------------------------*/
42
43 /* fill a qtd, returning how much of the buffer we were able to queue up */
44
45 static int
46 qtd_fill(struct ehci_hcd *ehci, struct ehci_qtd *qtd, dma_addr_t buf,
47                   size_t len, int token, int maxpacket)
48 {
49         int     i, count;
50         u64     addr = buf;
51
52         /* one buffer entry per 4K ... first might be short or unaligned */
53         qtd->hw_buf[0] = cpu_to_hc32(ehci, (u32)addr);
54         qtd->hw_buf_hi[0] = cpu_to_hc32(ehci, (u32)(addr >> 32));
55         count = 0x1000 - (buf & 0x0fff);        /* rest of that page */
56         if (likely (len < count))               /* ... iff needed */
57                 count = len;
58         else {
59                 buf +=  0x1000;
60                 buf &= ~0x0fff;
61
62                 /* per-qtd limit: from 16K to 20K (best alignment) */
63                 for (i = 1; count < len && i < 5; i++) {
64                         addr = buf;
65                         qtd->hw_buf[i] = cpu_to_hc32(ehci, (u32)addr);
66                         qtd->hw_buf_hi[i] = cpu_to_hc32(ehci,
67                                         (u32)(addr >> 32));
68                         buf += 0x1000;
69                         if ((count + 0x1000) < len)
70                                 count += 0x1000;
71                         else
72                                 count = len;
73                 }
74
75                 /* short packets may only terminate transfers */
76                 if (count != len)
77                         count -= (count % maxpacket);
78         }
79         qtd->hw_token = cpu_to_hc32(ehci, (count << 16) | token);
80         qtd->length = count;
81
82         return count;
83 }
84
85 /*-------------------------------------------------------------------------*/
86
87 static inline void
88 qh_update (struct ehci_hcd *ehci, struct ehci_qh *qh, struct ehci_qtd *qtd)
89 {
90         struct ehci_qh_hw *hw = qh->hw;
91
92         /* writes to an active overlay are unsafe */
93         BUG_ON(qh->qh_state != QH_STATE_IDLE);
94
95         hw->hw_qtd_next = QTD_NEXT(ehci, qtd->qtd_dma);
96         hw->hw_alt_next = EHCI_LIST_END(ehci);
97
98         /* Except for control endpoints, we make hardware maintain data
99          * toggle (like OHCI) ... here (re)initialize the toggle in the QH,
100          * and set the pseudo-toggle in udev. Only usb_clear_halt() will
101          * ever clear it.
102          */
103         if (!(hw->hw_info1 & cpu_to_hc32(ehci, 1 << 14))) {
104                 unsigned        is_out, epnum;
105
106                 is_out = !(qtd->hw_token & cpu_to_hc32(ehci, 1 << 8));
107                 epnum = (hc32_to_cpup(ehci, &hw->hw_info1) >> 8) & 0x0f;
108                 if (unlikely (!usb_gettoggle (qh->dev, epnum, is_out))) {
109                         hw->hw_token &= ~cpu_to_hc32(ehci, QTD_TOGGLE);
110                         usb_settoggle (qh->dev, epnum, is_out, 1);
111                 }
112         }
113
114         /* HC must see latest qtd and qh data before we clear ACTIVE+HALT */
115         wmb ();
116         hw->hw_token &= cpu_to_hc32(ehci, QTD_TOGGLE | QTD_STS_PING);
117 }
118
119 /* if it weren't for a common silicon quirk (writing the dummy into the qh
120  * overlay, so qh->hw_token wrongly becomes inactive/halted), only fault
121  * recovery (including urb dequeue) would need software changes to a QH...
122  */
123 static void
124 qh_refresh (struct ehci_hcd *ehci, struct ehci_qh *qh)
125 {
126         struct ehci_qtd *qtd;
127
128         if (list_empty (&qh->qtd_list))
129                 qtd = qh->dummy;
130         else {
131                 qtd = list_entry (qh->qtd_list.next,
132                                 struct ehci_qtd, qtd_list);
133                 /* first qtd may already be partially processed */
134                 if (cpu_to_hc32(ehci, qtd->qtd_dma) == qh->hw->hw_current)
135                         qtd = NULL;
136         }
137
138         if (qtd)
139                 qh_update (ehci, qh, qtd);
140 }
141
142 /*-------------------------------------------------------------------------*/
143
144 static void qh_link_async(struct ehci_hcd *ehci, struct ehci_qh *qh);
145
146 static void ehci_clear_tt_buffer_complete(struct usb_hcd *hcd,
147                 struct usb_host_endpoint *ep)
148 {
149         struct ehci_hcd         *ehci = hcd_to_ehci(hcd);
150         struct ehci_qh          *qh = ep->hcpriv;
151         unsigned long           flags;
152
153         spin_lock_irqsave(&ehci->lock, flags);
154         qh->clearing_tt = 0;
155         if (qh->qh_state == QH_STATE_IDLE && !list_empty(&qh->qtd_list)
156                         && HC_IS_RUNNING(hcd->state))
157                 qh_link_async(ehci, qh);
158         spin_unlock_irqrestore(&ehci->lock, flags);
159 }
160
161 static void ehci_clear_tt_buffer(struct ehci_hcd *ehci, struct ehci_qh *qh,
162                 struct urb *urb, u32 token)
163 {
164
165         /* If an async split transaction gets an error or is unlinked,
166          * the TT buffer may be left in an indeterminate state.  We
167          * have to clear the TT buffer.
168          *
169          * Note: this routine is never called for Isochronous transfers.
170          */
171         if (urb->dev->tt && !usb_pipeint(urb->pipe) && !qh->clearing_tt) {
172 #ifdef DEBUG
173                 struct usb_device *tt = urb->dev->tt->hub;
174                 dev_dbg(&tt->dev,
175                         "clear tt buffer port %d, a%d ep%d t%08x\n",
176                         urb->dev->ttport, urb->dev->devnum,
177                         usb_pipeendpoint(urb->pipe), token);
178 #endif /* DEBUG */
179                 if (!ehci_is_TDI(ehci)
180                                 || urb->dev->tt->hub !=
181                                    ehci_to_hcd(ehci)->self.root_hub) {
182                         if (usb_hub_clear_tt_buffer(urb) == 0)
183                                 qh->clearing_tt = 1;
184                 } else {
185
186                         /* REVISIT ARC-derived cores don't clear the root
187                          * hub TT buffer in this way...
188                          */
189                 }
190         }
191 }
192
193 static int qtd_copy_status (
194         struct ehci_hcd *ehci,
195         struct urb *urb,
196         size_t length,
197         u32 token
198 )
199 {
200         int     status = -EINPROGRESS;
201
202         /* count IN/OUT bytes, not SETUP (even short packets) */
203         if (likely (QTD_PID (token) != 2))
204                 urb->actual_length += length - QTD_LENGTH (token);
205
206         /* don't modify error codes */
207         if (unlikely(urb->unlinked))
208                 return status;
209
210         /* force cleanup after short read; not always an error */
211         if (unlikely (IS_SHORT_READ (token)))
212                 status = -EREMOTEIO;
213
214         /* serious "can't proceed" faults reported by the hardware */
215         if (token & QTD_STS_HALT) {
216                 if (token & QTD_STS_BABBLE) {
217                         /* FIXME "must" disable babbling device's port too */
218                         status = -EOVERFLOW;
219                 /* CERR nonzero + halt --> stall */
220                 } else if (QTD_CERR(token)) {
221                         status = -EPIPE;
222
223                 /* In theory, more than one of the following bits can be set
224                  * since they are sticky and the transaction is retried.
225                  * Which to test first is rather arbitrary.
226                  */
227                 } else if (token & QTD_STS_MMF) {
228                         /* fs/ls interrupt xfer missed the complete-split */
229                         status = -EPROTO;
230                 } else if (token & QTD_STS_DBE) {
231                         status = (QTD_PID (token) == 1) /* IN ? */
232                                 ? -ENOSR  /* hc couldn't read data */
233                                 : -ECOMM; /* hc couldn't write data */
234                 } else if (token & QTD_STS_XACT) {
235                         /* timeout, bad CRC, wrong PID, etc */
236                         ehci_dbg(ehci, "devpath %s ep%d%s 3strikes\n",
237                                 urb->dev->devpath,
238                                 usb_pipeendpoint(urb->pipe),
239                                 usb_pipein(urb->pipe) ? "in" : "out");
240                         status = -EPROTO;
241                 } else {        /* unknown */
242                         status = -EPROTO;
243                 }
244
245                 ehci_vdbg (ehci,
246                         "dev%d ep%d%s qtd token %08x --> status %d\n",
247                         usb_pipedevice (urb->pipe),
248                         usb_pipeendpoint (urb->pipe),
249                         usb_pipein (urb->pipe) ? "in" : "out",
250                         token, status);
251         }
252
253         return status;
254 }
255
256 static void
257 ehci_urb_done(struct ehci_hcd *ehci, struct urb *urb, int status)
258 __releases(ehci->lock)
259 __acquires(ehci->lock)
260 {
261         if (likely (urb->hcpriv != NULL)) {
262                 struct ehci_qh  *qh = (struct ehci_qh *) urb->hcpriv;
263
264                 /* S-mask in a QH means it's an interrupt urb */
265                 if ((qh->hw->hw_info2 & cpu_to_hc32(ehci, QH_SMASK)) != 0) {
266
267                         /* ... update hc-wide periodic stats (for usbfs) */
268                         ehci_to_hcd(ehci)->self.bandwidth_int_reqs--;
269                 }
270                 qh_put (qh);
271         }
272
273         if (unlikely(urb->unlinked)) {
274                 COUNT(ehci->stats.unlink);
275         } else {
276                 /* report non-error and short read status as zero */
277                 if (status == -EINPROGRESS || status == -EREMOTEIO)
278                         status = 0;
279                 COUNT(ehci->stats.complete);
280         }
281
282 #ifdef EHCI_URB_TRACE
283         ehci_dbg (ehci,
284                 "%s %s urb %p ep%d%s status %d len %d/%d\n",
285                 __func__, urb->dev->devpath, urb,
286                 usb_pipeendpoint (urb->pipe),
287                 usb_pipein (urb->pipe) ? "in" : "out",
288                 status,
289                 urb->actual_length, urb->transfer_buffer_length);
290 #endif
291
292         /* complete() can reenter this HCD */
293         usb_hcd_unlink_urb_from_ep(ehci_to_hcd(ehci), urb);
294         spin_unlock (&ehci->lock);
295         usb_hcd_giveback_urb(ehci_to_hcd(ehci), urb, status);
296         spin_lock (&ehci->lock);
297 }
298
299 static void start_unlink_async (struct ehci_hcd *ehci, struct ehci_qh *qh);
300 static void unlink_async (struct ehci_hcd *ehci, struct ehci_qh *qh);
301
302 static int qh_schedule (struct ehci_hcd *ehci, struct ehci_qh *qh);
303
304 /*
305  * Process and free completed qtds for a qh, returning URBs to drivers.
306  * Chases up to qh->hw_current.  Returns number of completions called,
307  * indicating how much "real" work we did.
308  */
309 static unsigned
310 qh_completions (struct ehci_hcd *ehci, struct ehci_qh *qh)
311 {
312         struct ehci_qtd         *last, *end = qh->dummy;
313         struct list_head        *entry, *tmp;
314         int                     last_status;
315         int                     stopped;
316         unsigned                count = 0;
317         u8                      state;
318         struct ehci_qh_hw       *hw = qh->hw;
319
320         if (unlikely (list_empty (&qh->qtd_list)))
321                 return count;
322
323         /* completions (or tasks on other cpus) must never clobber HALT
324          * till we've gone through and cleaned everything up, even when
325          * they add urbs to this qh's queue or mark them for unlinking.
326          *
327          * NOTE:  unlinking expects to be done in queue order.
328          *
329          * It's a bug for qh->qh_state to be anything other than
330          * QH_STATE_IDLE, unless our caller is scan_async() or
331          * scan_periodic().
332          */
333         state = qh->qh_state;
334         qh->qh_state = QH_STATE_COMPLETING;
335         stopped = (state == QH_STATE_IDLE);
336
337  rescan:
338         last = NULL;
339         last_status = -EINPROGRESS;
340         qh->needs_rescan = 0;
341
342         /* remove de-activated QTDs from front of queue.
343          * after faults (including short reads), cleanup this urb
344          * then let the queue advance.
345          * if queue is stopped, handles unlinks.
346          */
347         list_for_each_safe (entry, tmp, &qh->qtd_list) {
348                 struct ehci_qtd *qtd;
349                 struct urb      *urb;
350                 u32             token = 0;
351
352                 qtd = list_entry (entry, struct ehci_qtd, qtd_list);
353                 urb = qtd->urb;
354
355                 /* clean up any state from previous QTD ...*/
356                 if (last) {
357                         if (likely (last->urb != urb)) {
358                                 ehci_urb_done(ehci, last->urb, last_status);
359                                 count++;
360                                 last_status = -EINPROGRESS;
361                         }
362                         ehci_qtd_free (ehci, last);
363                         last = NULL;
364                 }
365
366                 /* ignore urbs submitted during completions we reported */
367                 if (qtd == end)
368                         break;
369
370                 /* hardware copies qtd out of qh overlay */
371                 rmb ();
372                 token = hc32_to_cpu(ehci, qtd->hw_token);
373
374                 /* always clean up qtds the hc de-activated */
375  retry_xacterr:
376                 if ((token & QTD_STS_ACTIVE) == 0) {
377
378                         /* on STALL, error, and short reads this urb must
379                          * complete and all its qtds must be recycled.
380                          */
381                         if ((token & QTD_STS_HALT) != 0) {
382
383                                 /* retry transaction errors until we
384                                  * reach the software xacterr limit
385                                  */
386                                 if ((token & QTD_STS_XACT) &&
387                                                 QTD_CERR(token) == 0 &&
388                                                 ++qh->xacterrs < QH_XACTERR_MAX &&
389                                                 !urb->unlinked) {
390                                         ehci_dbg(ehci,
391         "detected XactErr len %zu/%zu retry %d\n",
392         qtd->length - QTD_LENGTH(token), qtd->length, qh->xacterrs);
393
394                                         /* reset the token in the qtd and the
395                                          * qh overlay (which still contains
396                                          * the qtd) so that we pick up from
397                                          * where we left off
398                                          */
399                                         token &= ~QTD_STS_HALT;
400                                         token |= QTD_STS_ACTIVE |
401                                                         (EHCI_TUNE_CERR << 10);
402                                         qtd->hw_token = cpu_to_hc32(ehci,
403                                                         token);
404                                         wmb();
405                                         hw->hw_token = cpu_to_hc32(ehci,
406                                                         token);
407                                         goto retry_xacterr;
408                                 }
409                                 stopped = 1;
410
411                         /* magic dummy for some short reads; qh won't advance.
412                          * that silicon quirk can kick in with this dummy too.
413                          *
414                          * other short reads won't stop the queue, including
415                          * control transfers (status stage handles that) or
416                          * most other single-qtd reads ... the queue stops if
417                          * URB_SHORT_NOT_OK was set so the driver submitting
418                          * the urbs could clean it up.
419                          */
420                         } else if (IS_SHORT_READ (token)
421                                         && !(qtd->hw_alt_next
422                                                 & EHCI_LIST_END(ehci))) {
423                                 stopped = 1;
424                         }
425
426                 /* stop scanning when we reach qtds the hc is using */
427                 } else if (likely (!stopped
428                                 && HC_IS_RUNNING (ehci_to_hcd(ehci)->state))) {
429                         break;
430
431                 /* scan the whole queue for unlinks whenever it stops */
432                 } else {
433                         stopped = 1;
434
435                         /* cancel everything if we halt, suspend, etc */
436                         if (!HC_IS_RUNNING(ehci_to_hcd(ehci)->state))
437                                 last_status = -ESHUTDOWN;
438
439                         /* this qtd is active; skip it unless a previous qtd
440                          * for its urb faulted, or its urb was canceled.
441                          */
442                         else if (last_status == -EINPROGRESS && !urb->unlinked)
443                                 continue;
444
445                         /* qh unlinked; token in overlay may be most current */
446                         if (state == QH_STATE_IDLE
447                                         && cpu_to_hc32(ehci, qtd->qtd_dma)
448                                                 == hw->hw_current) {
449                                 token = hc32_to_cpu(ehci, hw->hw_token);
450
451                                 /* An unlink may leave an incomplete
452                                  * async transaction in the TT buffer.
453                                  * We have to clear it.
454                                  */
455                                 ehci_clear_tt_buffer(ehci, qh, urb, token);
456                         }
457                 }
458
459                 /* unless we already know the urb's status, collect qtd status
460                  * and update count of bytes transferred.  in common short read
461                  * cases with only one data qtd (including control transfers),
462                  * queue processing won't halt.  but with two or more qtds (for
463                  * example, with a 32 KB transfer), when the first qtd gets a
464                  * short read the second must be removed by hand.
465                  */
466                 if (last_status == -EINPROGRESS) {
467                         last_status = qtd_copy_status(ehci, urb,
468                                         qtd->length, token);
469                         if (last_status == -EREMOTEIO
470                                         && (qtd->hw_alt_next
471                                                 & EHCI_LIST_END(ehci)))
472                                 last_status = -EINPROGRESS;
473
474                         /* As part of low/full-speed endpoint-halt processing
475                          * we must clear the TT buffer (11.17.5).
476                          */
477                         if (unlikely(last_status != -EINPROGRESS &&
478                                         last_status != -EREMOTEIO)) {
479                                 /* The TT's in some hubs malfunction when they
480                                  * receive this request following a STALL (they
481                                  * stop sending isochronous packets).  Since a
482                                  * STALL can't leave the TT buffer in a busy
483                                  * state (if you believe Figures 11-48 - 11-51
484                                  * in the USB 2.0 spec), we won't clear the TT
485                                  * buffer in this case.  Strictly speaking this
486                                  * is a violation of the spec.
487                                  */
488                                 if (last_status != -EPIPE)
489                                         ehci_clear_tt_buffer(ehci, qh, urb,
490                                                         token);
491                         }
492                 }
493
494                 /* if we're removing something not at the queue head,
495                  * patch the hardware queue pointer.
496                  */
497                 if (stopped && qtd->qtd_list.prev != &qh->qtd_list) {
498                         last = list_entry (qtd->qtd_list.prev,
499                                         struct ehci_qtd, qtd_list);
500                         last->hw_next = qtd->hw_next;
501                 }
502
503                 /* remove qtd; it's recycled after possible urb completion */
504                 list_del (&qtd->qtd_list);
505                 last = qtd;
506
507                 /* reinit the xacterr counter for the next qtd */
508                 qh->xacterrs = 0;
509         }
510
511         /* last urb's completion might still need calling */
512         if (likely (last != NULL)) {
513                 ehci_urb_done(ehci, last->urb, last_status);
514                 count++;
515                 ehci_qtd_free (ehci, last);
516         }
517
518         /* Do we need to rescan for URBs dequeued during a giveback? */
519         if (unlikely(qh->needs_rescan)) {
520                 /* If the QH is already unlinked, do the rescan now. */
521                 if (state == QH_STATE_IDLE)
522                         goto rescan;
523
524                 /* Otherwise we have to wait until the QH is fully unlinked.
525                  * Our caller will start an unlink if qh->needs_rescan is
526                  * set.  But if an unlink has already started, nothing needs
527                  * to be done.
528                  */
529                 if (state != QH_STATE_LINKED)
530                         qh->needs_rescan = 0;
531         }
532
533         /* restore original state; caller must unlink or relink */
534         qh->qh_state = state;
535
536         /* be sure the hardware's done with the qh before refreshing
537          * it after fault cleanup, or recovering from silicon wrongly
538          * overlaying the dummy qtd (which reduces DMA chatter).
539          */
540         if (stopped != 0 || hw->hw_qtd_next == EHCI_LIST_END(ehci)) {
541                 switch (state) {
542                 case QH_STATE_IDLE:
543                         qh_refresh(ehci, qh);
544                         break;
545                 case QH_STATE_LINKED:
546                         /* We won't refresh a QH that's linked (after the HC
547                          * stopped the queue).  That avoids a race:
548                          *  - HC reads first part of QH;
549                          *  - CPU updates that first part and the token;
550                          *  - HC reads rest of that QH, including token
551                          * Result:  HC gets an inconsistent image, and then
552                          * DMAs to/from the wrong memory (corrupting it).
553                          *
554                          * That should be rare for interrupt transfers,
555                          * except maybe high bandwidth ...
556                          */
557
558                         /* Tell the caller to start an unlink */
559                         qh->needs_rescan = 1;
560                         break;
561                 /* otherwise, unlink already started */
562                 }
563         }
564
565         return count;
566 }
567
568 /*-------------------------------------------------------------------------*/
569
570 // high bandwidth multiplier, as encoded in highspeed endpoint descriptors
571 #define hb_mult(wMaxPacketSize) (1 + (((wMaxPacketSize) >> 11) & 0x03))
572 // ... and packet size, for any kind of endpoint descriptor
573 #define max_packet(wMaxPacketSize) ((wMaxPacketSize) & 0x07ff)
574
575 /*
576  * reverse of qh_urb_transaction:  free a list of TDs.
577  * used for cleanup after errors, before HC sees an URB's TDs.
578  */
579 static void qtd_list_free (
580         struct ehci_hcd         *ehci,
581         struct urb              *urb,
582         struct list_head        *qtd_list
583 ) {
584         struct list_head        *entry, *temp;
585
586         list_for_each_safe (entry, temp, qtd_list) {
587                 struct ehci_qtd *qtd;
588
589                 qtd = list_entry (entry, struct ehci_qtd, qtd_list);
590                 list_del (&qtd->qtd_list);
591                 ehci_qtd_free (ehci, qtd);
592         }
593 }
594
595 /*
596  * create a list of filled qtds for this URB; won't link into qh.
597  */
598 static struct list_head *
599 qh_urb_transaction (
600         struct ehci_hcd         *ehci,
601         struct urb              *urb,
602         struct list_head        *head,
603         gfp_t                   flags
604 ) {
605         struct ehci_qtd         *qtd, *qtd_prev;
606         dma_addr_t              buf;
607         int                     len, maxpacket;
608         int                     is_input;
609         u32                     token;
610
611         /*
612          * URBs map to sequences of QTDs:  one logical transaction
613          */
614         qtd = ehci_qtd_alloc (ehci, flags);
615         if (unlikely (!qtd))
616                 return NULL;
617         list_add_tail (&qtd->qtd_list, head);
618         qtd->urb = urb;
619
620         token = QTD_STS_ACTIVE;
621         token |= (EHCI_TUNE_CERR << 10);
622         /* for split transactions, SplitXState initialized to zero */
623
624         len = urb->transfer_buffer_length;
625         is_input = usb_pipein (urb->pipe);
626         if (usb_pipecontrol (urb->pipe)) {
627                 /* SETUP pid */
628                 qtd_fill(ehci, qtd, urb->setup_dma,
629                                 sizeof (struct usb_ctrlrequest),
630                                 token | (2 /* "setup" */ << 8), 8);
631
632                 /* ... and always at least one more pid */
633                 token ^= QTD_TOGGLE;
634                 qtd_prev = qtd;
635                 qtd = ehci_qtd_alloc (ehci, flags);
636                 if (unlikely (!qtd))
637                         goto cleanup;
638                 qtd->urb = urb;
639                 qtd_prev->hw_next = QTD_NEXT(ehci, qtd->qtd_dma);
640                 list_add_tail (&qtd->qtd_list, head);
641
642                 /* for zero length DATA stages, STATUS is always IN */
643                 if (len == 0)
644                         token |= (1 /* "in" */ << 8);
645         }
646
647         /*
648          * data transfer stage:  buffer setup
649          */
650         buf = urb->transfer_dma;
651
652         if (is_input)
653                 token |= (1 /* "in" */ << 8);
654         /* else it's already initted to "out" pid (0 << 8) */
655
656         maxpacket = max_packet(usb_maxpacket(urb->dev, urb->pipe, !is_input));
657
658         /*
659          * buffer gets wrapped in one or more qtds;
660          * last one may be "short" (including zero len)
661          * and may serve as a control status ack
662          */
663         for (;;) {
664                 int this_qtd_len;
665
666                 this_qtd_len = qtd_fill(ehci, qtd, buf, len, token, maxpacket);
667                 len -= this_qtd_len;
668                 buf += this_qtd_len;
669
670                 /*
671                  * short reads advance to a "magic" dummy instead of the next
672                  * qtd ... that forces the queue to stop, for manual cleanup.
673                  * (this will usually be overridden later.)
674                  */
675                 if (is_input)
676                         qtd->hw_alt_next = ehci->async->hw->hw_alt_next;
677
678                 /* qh makes control packets use qtd toggle; maybe switch it */
679                 if ((maxpacket & (this_qtd_len + (maxpacket - 1))) == 0)
680                         token ^= QTD_TOGGLE;
681
682                 if (likely (len <= 0))
683                         break;
684
685                 qtd_prev = qtd;
686                 qtd = ehci_qtd_alloc (ehci, flags);
687                 if (unlikely (!qtd))
688                         goto cleanup;
689                 qtd->urb = urb;
690                 qtd_prev->hw_next = QTD_NEXT(ehci, qtd->qtd_dma);
691                 list_add_tail (&qtd->qtd_list, head);
692         }
693
694         /*
695          * unless the caller requires manual cleanup after short reads,
696          * have the alt_next mechanism keep the queue running after the
697          * last data qtd (the only one, for control and most other cases).
698          */
699         if (likely ((urb->transfer_flags & URB_SHORT_NOT_OK) == 0
700                                 || usb_pipecontrol (urb->pipe)))
701                 qtd->hw_alt_next = EHCI_LIST_END(ehci);
702
703         /*
704          * control requests may need a terminating data "status" ack;
705          * bulk ones may need a terminating short packet (zero length).
706          */
707         if (likely (urb->transfer_buffer_length != 0)) {
708                 int     one_more = 0;
709
710                 if (usb_pipecontrol (urb->pipe)) {
711                         one_more = 1;
712                         token ^= 0x0100;        /* "in" <--> "out"  */
713                         token |= QTD_TOGGLE;    /* force DATA1 */
714                 } else if (usb_pipebulk (urb->pipe)
715                                 && (urb->transfer_flags & URB_ZERO_PACKET)
716                                 && !(urb->transfer_buffer_length % maxpacket)) {
717                         one_more = 1;
718                 }
719                 if (one_more) {
720                         qtd_prev = qtd;
721                         qtd = ehci_qtd_alloc (ehci, flags);
722                         if (unlikely (!qtd))
723                                 goto cleanup;
724                         qtd->urb = urb;
725                         qtd_prev->hw_next = QTD_NEXT(ehci, qtd->qtd_dma);
726                         list_add_tail (&qtd->qtd_list, head);
727
728                         /* never any data in such packets */
729                         qtd_fill(ehci, qtd, 0, 0, token, 0);
730                 }
731         }
732
733         /* by default, enable interrupt on urb completion */
734         if (likely (!(urb->transfer_flags & URB_NO_INTERRUPT)))
735                 qtd->hw_token |= cpu_to_hc32(ehci, QTD_IOC);
736         return head;
737
738 cleanup:
739         qtd_list_free (ehci, urb, head);
740         return NULL;
741 }
742
743 /*-------------------------------------------------------------------------*/
744
745 // Would be best to create all qh's from config descriptors,
746 // when each interface/altsetting is established.  Unlink
747 // any previous qh and cancel its urbs first; endpoints are
748 // implicitly reset then (data toggle too).
749 // That'd mean updating how usbcore talks to HCDs. (2.7?)
750
751
752 /*
753  * Each QH holds a qtd list; a QH is used for everything except iso.
754  *
755  * For interrupt urbs, the scheduler must set the microframe scheduling
756  * mask(s) each time the QH gets scheduled.  For highspeed, that's
757  * just one microframe in the s-mask.  For split interrupt transactions
758  * there are additional complications: c-mask, maybe FSTNs.
759  */
760 static struct ehci_qh *
761 qh_make (
762         struct ehci_hcd         *ehci,
763         struct urb              *urb,
764         gfp_t                   flags
765 ) {
766         struct ehci_qh          *qh = ehci_qh_alloc (ehci, flags);
767         u32                     info1 = 0, info2 = 0;
768         int                     is_input, type;
769         int                     maxp = 0;
770         struct usb_tt           *tt = urb->dev->tt;
771         struct ehci_qh_hw       *hw;
772
773         if (!qh)
774                 return qh;
775
776         /*
777          * init endpoint/device data for this QH
778          */
779         info1 |= usb_pipeendpoint (urb->pipe) << 8;
780         info1 |= usb_pipedevice (urb->pipe) << 0;
781
782         is_input = usb_pipein (urb->pipe);
783         type = usb_pipetype (urb->pipe);
784         maxp = usb_maxpacket (urb->dev, urb->pipe, !is_input);
785
786         /* 1024 byte maxpacket is a hardware ceiling.  High bandwidth
787          * acts like up to 3KB, but is built from smaller packets.
788          */
789         if (max_packet(maxp) > 1024) {
790                 ehci_dbg(ehci, "bogus qh maxpacket %d\n", max_packet(maxp));
791                 goto done;
792         }
793
794         /* Compute interrupt scheduling parameters just once, and save.
795          * - allowing for high bandwidth, how many nsec/uframe are used?
796          * - split transactions need a second CSPLIT uframe; same question
797          * - splits also need a schedule gap (for full/low speed I/O)
798          * - qh has a polling interval
799          *
800          * For control/bulk requests, the HC or TT handles these.
801          */
802         if (type == PIPE_INTERRUPT) {
803                 qh->usecs = NS_TO_US(usb_calc_bus_time(USB_SPEED_HIGH,
804                                 is_input, 0,
805                                 hb_mult(maxp) * max_packet(maxp)));
806                 qh->start = NO_FRAME;
807
808                 if (urb->dev->speed == USB_SPEED_HIGH) {
809                         qh->c_usecs = 0;
810                         qh->gap_uf = 0;
811
812                         qh->period = urb->interval >> 3;
813                         if (qh->period == 0 && urb->interval != 1) {
814                                 /* NOTE interval 2 or 4 uframes could work.
815                                  * But interval 1 scheduling is simpler, and
816                                  * includes high bandwidth.
817                                  */
818                                 urb->interval = 1;
819                         } else if (qh->period > ehci->periodic_size) {
820                                 qh->period = ehci->periodic_size;
821                                 urb->interval = qh->period << 3;
822                         }
823                 } else {
824                         int             think_time;
825
826                         /* gap is f(FS/LS transfer times) */
827                         qh->gap_uf = 1 + usb_calc_bus_time (urb->dev->speed,
828                                         is_input, 0, maxp) / (125 * 1000);
829
830                         /* FIXME this just approximates SPLIT/CSPLIT times */
831                         if (is_input) {         // SPLIT, gap, CSPLIT+DATA
832                                 qh->c_usecs = qh->usecs + HS_USECS (0);
833                                 qh->usecs = HS_USECS (1);
834                         } else {                // SPLIT+DATA, gap, CSPLIT
835                                 qh->usecs += HS_USECS (1);
836                                 qh->c_usecs = HS_USECS (0);
837                         }
838
839                         think_time = tt ? tt->think_time : 0;
840                         qh->tt_usecs = NS_TO_US (think_time +
841                                         usb_calc_bus_time (urb->dev->speed,
842                                         is_input, 0, max_packet (maxp)));
843                         qh->period = urb->interval;
844                         if (qh->period > ehci->periodic_size) {
845                                 qh->period = ehci->periodic_size;
846                                 urb->interval = qh->period;
847                         }
848                 }
849         }
850
851         /* support for tt scheduling, and access to toggles */
852         qh->dev = urb->dev;
853
854         /* using TT? */
855         switch (urb->dev->speed) {
856         case USB_SPEED_LOW:
857                 info1 |= (1 << 12);     /* EPS "low" */
858                 /* FALL THROUGH */
859
860         case USB_SPEED_FULL:
861                 /* EPS 0 means "full" */
862                 if (type != PIPE_INTERRUPT)
863                         info1 |= (EHCI_TUNE_RL_TT << 28);
864                 if (type == PIPE_CONTROL) {
865                         info1 |= (1 << 27);     /* for TT */
866                         info1 |= 1 << 14;       /* toggle from qtd */
867                 }
868                 info1 |= maxp << 16;
869
870                 info2 |= (EHCI_TUNE_MULT_TT << 30);
871
872                 /* Some Freescale processors have an erratum in which the
873                  * port number in the queue head was 0..N-1 instead of 1..N.
874                  */
875                 if (ehci_has_fsl_portno_bug(ehci))
876                         info2 |= (urb->dev->ttport-1) << 23;
877                 else
878                         info2 |= urb->dev->ttport << 23;
879
880                 /* set the address of the TT; for TDI's integrated
881                  * root hub tt, leave it zeroed.
882                  */
883                 if (tt && tt->hub != ehci_to_hcd(ehci)->self.root_hub)
884                         info2 |= tt->hub->devnum << 16;
885
886                 /* NOTE:  if (PIPE_INTERRUPT) { scheduler sets c-mask } */
887
888                 break;
889
890         case USB_SPEED_HIGH:            /* no TT involved */
891                 info1 |= (2 << 12);     /* EPS "high" */
892                 if (type == PIPE_CONTROL) {
893                         info1 |= (EHCI_TUNE_RL_HS << 28);
894                         info1 |= 64 << 16;      /* usb2 fixed maxpacket */
895                         info1 |= 1 << 14;       /* toggle from qtd */
896                         info2 |= (EHCI_TUNE_MULT_HS << 30);
897                 } else if (type == PIPE_BULK) {
898                         info1 |= (EHCI_TUNE_RL_HS << 28);
899                         /* The USB spec says that high speed bulk endpoints
900                          * always use 512 byte maxpacket.  But some device
901                          * vendors decided to ignore that, and MSFT is happy
902                          * to help them do so.  So now people expect to use
903                          * such nonconformant devices with Linux too; sigh.
904                          */
905                         info1 |= max_packet(maxp) << 16;
906                         info2 |= (EHCI_TUNE_MULT_HS << 30);
907                 } else {                /* PIPE_INTERRUPT */
908                         info1 |= max_packet (maxp) << 16;
909                         info2 |= hb_mult (maxp) << 30;
910                 }
911                 break;
912         default:
913                 dbg ("bogus dev %p speed %d", urb->dev, urb->dev->speed);
914 done:
915                 qh_put (qh);
916                 return NULL;
917         }
918
919         /* NOTE:  if (PIPE_INTERRUPT) { scheduler sets s-mask } */
920
921         /* init as live, toggle clear, advance to dummy */
922         qh->qh_state = QH_STATE_IDLE;
923         hw = qh->hw;
924         hw->hw_info1 = cpu_to_hc32(ehci, info1);
925         hw->hw_info2 = cpu_to_hc32(ehci, info2);
926         usb_settoggle (urb->dev, usb_pipeendpoint (urb->pipe), !is_input, 1);
927         qh_refresh (ehci, qh);
928         return qh;
929 }
930
931 /*-------------------------------------------------------------------------*/
932
933 /* move qh (and its qtds) onto async queue; maybe enable queue.  */
934
935 static void qh_link_async (struct ehci_hcd *ehci, struct ehci_qh *qh)
936 {
937         __hc32          dma = QH_NEXT(ehci, qh->qh_dma);
938         struct ehci_qh  *head;
939
940         /* Don't link a QH if there's a Clear-TT-Buffer pending */
941         if (unlikely(qh->clearing_tt))
942                 return;
943
944         WARN_ON(qh->qh_state != QH_STATE_IDLE);
945
946         /* (re)start the async schedule? */
947         head = ehci->async;
948         timer_action_done (ehci, TIMER_ASYNC_OFF);
949         if (!head->qh_next.qh) {
950                 u32     cmd = ehci_readl(ehci, &ehci->regs->command);
951
952                 if (!(cmd & CMD_ASE)) {
953                         /* in case a clear of CMD_ASE didn't take yet */
954                         (void)handshake(ehci, &ehci->regs->status,
955                                         STS_ASS, 0, 150);
956                         cmd |= CMD_ASE | CMD_RUN;
957                         ehci_writel(ehci, cmd, &ehci->regs->command);
958                         ehci_to_hcd(ehci)->state = HC_STATE_RUNNING;
959                         /* posted write need not be known to HC yet ... */
960                 }
961         }
962
963         /* clear halt and/or toggle; and maybe recover from silicon quirk */
964         qh_refresh(ehci, qh);
965
966         /* splice right after start */
967         qh->qh_next = head->qh_next;
968         qh->hw->hw_next = head->hw->hw_next;
969         wmb ();
970
971         head->qh_next.qh = qh;
972         head->hw->hw_next = dma;
973
974         qh_get(qh);
975         qh->xacterrs = 0;
976         qh->qh_state = QH_STATE_LINKED;
977         /* qtd completions reported later by interrupt */
978 }
979
980 /*-------------------------------------------------------------------------*/
981
982 /*
983  * For control/bulk/interrupt, return QH with these TDs appended.
984  * Allocates and initializes the QH if necessary.
985  * Returns null if it can't allocate a QH it needs to.
986  * If the QH has TDs (urbs) already, that's great.
987  */
988 static struct ehci_qh *qh_append_tds (
989         struct ehci_hcd         *ehci,
990         struct urb              *urb,
991         struct list_head        *qtd_list,
992         int                     epnum,
993         void                    **ptr
994 )
995 {
996         struct ehci_qh          *qh = NULL;
997         __hc32                  qh_addr_mask = cpu_to_hc32(ehci, 0x7f);
998
999         qh = (struct ehci_qh *) *ptr;
1000         if (unlikely (qh == NULL)) {
1001                 /* can't sleep here, we have ehci->lock... */
1002                 qh = qh_make (ehci, urb, GFP_ATOMIC);
1003                 *ptr = qh;
1004         }
1005         if (likely (qh != NULL)) {
1006                 struct ehci_qtd *qtd;
1007
1008                 if (unlikely (list_empty (qtd_list)))
1009                         qtd = NULL;
1010                 else
1011                         qtd = list_entry (qtd_list->next, struct ehci_qtd,
1012                                         qtd_list);
1013
1014                 /* control qh may need patching ... */
1015                 if (unlikely (epnum == 0)) {
1016
1017                         /* usb_reset_device() briefly reverts to address 0 */
1018                         if (usb_pipedevice (urb->pipe) == 0)
1019                                 qh->hw->hw_info1 &= ~qh_addr_mask;
1020                 }
1021
1022                 /* just one way to queue requests: swap with the dummy qtd.
1023                  * only hc or qh_refresh() ever modify the overlay.
1024                  */
1025                 if (likely (qtd != NULL)) {
1026                         struct ehci_qtd         *dummy;
1027                         dma_addr_t              dma;
1028                         __hc32                  token;
1029
1030                         /* to avoid racing the HC, use the dummy td instead of
1031                          * the first td of our list (becomes new dummy).  both
1032                          * tds stay deactivated until we're done, when the
1033                          * HC is allowed to fetch the old dummy (4.10.2).
1034                          */
1035                         token = qtd->hw_token;
1036                         qtd->hw_token = HALT_BIT(ehci);
1037                         wmb ();
1038                         dummy = qh->dummy;
1039
1040                         dma = dummy->qtd_dma;
1041                         *dummy = *qtd;
1042                         dummy->qtd_dma = dma;
1043
1044                         list_del (&qtd->qtd_list);
1045                         list_add (&dummy->qtd_list, qtd_list);
1046                         list_splice_tail(qtd_list, &qh->qtd_list);
1047
1048                         ehci_qtd_init(ehci, qtd, qtd->qtd_dma);
1049                         qh->dummy = qtd;
1050
1051                         /* hc must see the new dummy at list end */
1052                         dma = qtd->qtd_dma;
1053                         qtd = list_entry (qh->qtd_list.prev,
1054                                         struct ehci_qtd, qtd_list);
1055                         qtd->hw_next = QTD_NEXT(ehci, dma);
1056
1057                         /* let the hc process these next qtds */
1058                         wmb ();
1059                         dummy->hw_token = token;
1060
1061                         urb->hcpriv = qh_get (qh);
1062                 }
1063         }
1064         return qh;
1065 }
1066
1067 /*-------------------------------------------------------------------------*/
1068
1069 static int
1070 submit_async (
1071         struct ehci_hcd         *ehci,
1072         struct urb              *urb,
1073         struct list_head        *qtd_list,
1074         gfp_t                   mem_flags
1075 ) {
1076         struct ehci_qtd         *qtd;
1077         int                     epnum;
1078         unsigned long           flags;
1079         struct ehci_qh          *qh = NULL;
1080         int                     rc;
1081
1082         qtd = list_entry (qtd_list->next, struct ehci_qtd, qtd_list);
1083         epnum = urb->ep->desc.bEndpointAddress;
1084
1085 #ifdef EHCI_URB_TRACE
1086         ehci_dbg (ehci,
1087                 "%s %s urb %p ep%d%s len %d, qtd %p [qh %p]\n",
1088                 __func__, urb->dev->devpath, urb,
1089                 epnum & 0x0f, (epnum & USB_DIR_IN) ? "in" : "out",
1090                 urb->transfer_buffer_length,
1091                 qtd, urb->ep->hcpriv);
1092 #endif
1093
1094         spin_lock_irqsave (&ehci->lock, flags);
1095         if (unlikely(!test_bit(HCD_FLAG_HW_ACCESSIBLE,
1096                                &ehci_to_hcd(ehci)->flags))) {
1097                 rc = -ESHUTDOWN;
1098                 goto done;
1099         }
1100         rc = usb_hcd_link_urb_to_ep(ehci_to_hcd(ehci), urb);
1101         if (unlikely(rc))
1102                 goto done;
1103
1104         qh = qh_append_tds(ehci, urb, qtd_list, epnum, &urb->ep->hcpriv);
1105         if (unlikely(qh == NULL)) {
1106                 usb_hcd_unlink_urb_from_ep(ehci_to_hcd(ehci), urb);
1107                 rc = -ENOMEM;
1108                 goto done;
1109         }
1110
1111         /* Control/bulk operations through TTs don't need scheduling,
1112          * the HC and TT handle it when the TT has a buffer ready.
1113          */
1114         if (likely (qh->qh_state == QH_STATE_IDLE))
1115                 qh_link_async(ehci, qh);
1116  done:
1117         spin_unlock_irqrestore (&ehci->lock, flags);
1118         if (unlikely (qh == NULL))
1119                 qtd_list_free (ehci, urb, qtd_list);
1120         return rc;
1121 }
1122
1123 /*-------------------------------------------------------------------------*/
1124
1125 /* the async qh for the qtds being reclaimed are now unlinked from the HC */
1126
1127 static void end_unlink_async (struct ehci_hcd *ehci)
1128 {
1129         struct ehci_qh          *qh = ehci->reclaim;
1130         struct ehci_qh          *next;
1131
1132         iaa_watchdog_done(ehci);
1133
1134         // qh->hw_next = cpu_to_hc32(qh->qh_dma);
1135         qh->qh_state = QH_STATE_IDLE;
1136         qh->qh_next.qh = NULL;
1137         qh_put (qh);                    // refcount from reclaim
1138
1139         /* other unlink(s) may be pending (in QH_STATE_UNLINK_WAIT) */
1140         next = qh->reclaim;
1141         ehci->reclaim = next;
1142         qh->reclaim = NULL;
1143
1144         qh_completions (ehci, qh);
1145
1146         if (!list_empty (&qh->qtd_list)
1147                         && HC_IS_RUNNING (ehci_to_hcd(ehci)->state))
1148                 qh_link_async (ehci, qh);
1149         else {
1150                 /* it's not free to turn the async schedule on/off; leave it
1151                  * active but idle for a while once it empties.
1152                  */
1153                 if (HC_IS_RUNNING (ehci_to_hcd(ehci)->state)
1154                                 && ehci->async->qh_next.qh == NULL)
1155                         timer_action (ehci, TIMER_ASYNC_OFF);
1156         }
1157         qh_put(qh);                     /* refcount from async list */
1158
1159         if (next) {
1160                 ehci->reclaim = NULL;
1161                 start_unlink_async (ehci, next);
1162         }
1163 }
1164
1165 /* makes sure the async qh will become idle */
1166 /* caller must own ehci->lock */
1167
1168 static void start_unlink_async (struct ehci_hcd *ehci, struct ehci_qh *qh)
1169 {
1170         int             cmd = ehci_readl(ehci, &ehci->regs->command);
1171         struct ehci_qh  *prev;
1172
1173 #ifdef DEBUG
1174         assert_spin_locked(&ehci->lock);
1175         if (ehci->reclaim
1176                         || (qh->qh_state != QH_STATE_LINKED
1177                                 && qh->qh_state != QH_STATE_UNLINK_WAIT)
1178                         )
1179                 BUG ();
1180 #endif
1181
1182         /* stop async schedule right now? */
1183         if (unlikely (qh == ehci->async)) {
1184                 /* can't get here without STS_ASS set */
1185                 if (ehci_to_hcd(ehci)->state != HC_STATE_HALT
1186                                 && !ehci->reclaim) {
1187                         /* ... and CMD_IAAD clear */
1188                         ehci_writel(ehci, cmd & ~CMD_ASE,
1189                                     &ehci->regs->command);
1190                         wmb ();
1191                         // handshake later, if we need to
1192                         timer_action_done (ehci, TIMER_ASYNC_OFF);
1193                 }
1194                 return;
1195         }
1196
1197         qh->qh_state = QH_STATE_UNLINK;
1198         ehci->reclaim = qh = qh_get (qh);
1199
1200         prev = ehci->async;
1201         while (prev->qh_next.qh != qh)
1202                 prev = prev->qh_next.qh;
1203
1204         prev->hw->hw_next = qh->hw->hw_next;
1205         prev->qh_next = qh->qh_next;
1206         wmb ();
1207
1208         /* If the controller isn't running, we don't have to wait for it */
1209         if (unlikely(!HC_IS_RUNNING(ehci_to_hcd(ehci)->state))) {
1210                 /* if (unlikely (qh->reclaim != 0))
1211                  *      this will recurse, probably not much
1212                  */
1213                 end_unlink_async (ehci);
1214                 return;
1215         }
1216
1217         cmd |= CMD_IAAD;
1218         ehci_writel(ehci, cmd, &ehci->regs->command);
1219         (void)ehci_readl(ehci, &ehci->regs->command);
1220         iaa_watchdog_start(ehci);
1221 }
1222
1223 /*-------------------------------------------------------------------------*/
1224
1225 static void scan_async (struct ehci_hcd *ehci)
1226 {
1227         bool                    stopped;
1228         struct ehci_qh          *qh;
1229         enum ehci_timer_action  action = TIMER_IO_WATCHDOG;
1230
1231         ehci->stamp = ehci_readl(ehci, &ehci->regs->frame_index);
1232         timer_action_done (ehci, TIMER_ASYNC_SHRINK);
1233 rescan:
1234         stopped = !HC_IS_RUNNING(ehci_to_hcd(ehci)->state);
1235         qh = ehci->async->qh_next.qh;
1236         if (likely (qh != NULL)) {
1237                 do {
1238                         /* clean any finished work for this qh */
1239                         if (!list_empty(&qh->qtd_list) && (stopped ||
1240                                         qh->stamp != ehci->stamp)) {
1241                                 int temp;
1242
1243                                 /* unlinks could happen here; completion
1244                                  * reporting drops the lock.  rescan using
1245                                  * the latest schedule, but don't rescan
1246                                  * qhs we already finished (no looping)
1247                                  * unless the controller is stopped.
1248                                  */
1249                                 qh = qh_get (qh);
1250                                 qh->stamp = ehci->stamp;
1251                                 temp = qh_completions (ehci, qh);
1252                                 if (qh->needs_rescan)
1253                                         unlink_async(ehci, qh);
1254                                 qh_put (qh);
1255                                 if (temp != 0) {
1256                                         goto rescan;
1257                                 }
1258                         }
1259
1260                         /* unlink idle entries, reducing DMA usage as well
1261                          * as HCD schedule-scanning costs.  delay for any qh
1262                          * we just scanned, there's a not-unusual case that it
1263                          * doesn't stay idle for long.
1264                          * (plus, avoids some kind of re-activation race.)
1265                          */
1266                         if (list_empty(&qh->qtd_list)
1267                                         && qh->qh_state == QH_STATE_LINKED) {
1268                                 if (!ehci->reclaim && (stopped ||
1269                                         ((ehci->stamp - qh->stamp) & 0x1fff)
1270                                                 >= EHCI_SHRINK_FRAMES * 8))
1271                                         start_unlink_async(ehci, qh);
1272                                 else
1273                                         action = TIMER_ASYNC_SHRINK;
1274                         }
1275
1276                         qh = qh->qh_next.qh;
1277                 } while (qh);
1278         }
1279         if (action == TIMER_ASYNC_SHRINK)
1280                 timer_action (ehci, TIMER_ASYNC_SHRINK);
1281 }