ehci-sched.c 62.4 KB
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/*
 * Copyright (c) 2001-2004 by David Brownell
 * Copyright (c) 2003 Michal Sojka, for high-speed iso transfers
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 *
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 * This program is free software; you can redistribute it and/or modify it
 * under the terms of the GNU General Public License as published by the
 * Free Software Foundation; either version 2 of the License, or (at your
 * option) any later version.
 *
 * This program is distributed in the hope that it will be useful, but
 * WITHOUT ANY WARRANTY; without even the implied warranty of MERCHANTABILITY
 * or FITNESS FOR A PARTICULAR PURPOSE.  See the GNU General Public License
 * for more details.
 *
 * You should have received a copy of the GNU General Public License
 * along with this program; if not, write to the Free Software Foundation,
 * Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
 */

/* this file is part of ehci-hcd.c */

/*-------------------------------------------------------------------------*/

/*
 * EHCI scheduled transaction support:  interrupt, iso, split iso
 * These are called "periodic" transactions in the EHCI spec.
 *
 * Note that for interrupt transfers, the QH/QTD manipulation is shared
 * with the "asynchronous" transaction support (control/bulk transfers).
 * The only real difference is in how interrupt transfers are scheduled.
 *
 * For ISO, we make an "iso_stream" head to serve the same role as a QH.
 * It keeps track of every ITD (or SITD) that's linked, and holds enough
 * pre-calculated schedule data to make appending to the queue be quick.
 */

static int ehci_get_frame (struct usb_hcd *hcd);

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#ifdef CONFIG_PCI

static unsigned ehci_read_frame_index(struct ehci_hcd *ehci)
{
	unsigned uf;

	/*
	 * The MosChip MCS9990 controller updates its microframe counter
	 * a little before the frame counter, and occasionally we will read
	 * the invalid intermediate value.  Avoid problems by checking the
	 * microframe number (the low-order 3 bits); if they are 0 then
	 * re-read the register to get the correct value.
	 */
	uf = ehci_readl(ehci, &ehci->regs->frame_index);
	if (unlikely(ehci->frame_index_bug && ((uf & 7) == 0)))
		uf = ehci_readl(ehci, &ehci->regs->frame_index);
	return uf;
}

#endif

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/*-------------------------------------------------------------------------*/

/*
 * periodic_next_shadow - return "next" pointer on shadow list
 * @periodic: host pointer to qh/itd/sitd
 * @tag: hardware tag for type of this record
 */
static union ehci_shadow *
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periodic_next_shadow(struct ehci_hcd *ehci, union ehci_shadow *periodic,
		__hc32 tag)
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{
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	switch (hc32_to_cpu(ehci, tag)) {
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	case Q_TYPE_QH:
		return &periodic->qh->qh_next;
	case Q_TYPE_FSTN:
		return &periodic->fstn->fstn_next;
	case Q_TYPE_ITD:
		return &periodic->itd->itd_next;
	// case Q_TYPE_SITD:
	default:
		return &periodic->sitd->sitd_next;
	}
}

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static __hc32 *
shadow_next_periodic(struct ehci_hcd *ehci, union ehci_shadow *periodic,
		__hc32 tag)
{
	switch (hc32_to_cpu(ehci, tag)) {
	/* our ehci_shadow.qh is actually software part */
	case Q_TYPE_QH:
		return &periodic->qh->hw->hw_next;
	/* others are hw parts */
	default:
		return periodic->hw_next;
	}
}

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/* caller must hold ehci->lock */
static void periodic_unlink (struct ehci_hcd *ehci, unsigned frame, void *ptr)
{
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	union ehci_shadow	*prev_p = &ehci->pshadow[frame];
	__hc32			*hw_p = &ehci->periodic[frame];
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	union ehci_shadow	here = *prev_p;

	/* find predecessor of "ptr"; hw and shadow lists are in sync */
	while (here.ptr && here.ptr != ptr) {
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		prev_p = periodic_next_shadow(ehci, prev_p,
				Q_NEXT_TYPE(ehci, *hw_p));
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		hw_p = shadow_next_periodic(ehci, &here,
				Q_NEXT_TYPE(ehci, *hw_p));
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		here = *prev_p;
	}
	/* an interrupt entry (at list end) could have been shared */
	if (!here.ptr)
		return;

	/* update shadow and hardware lists ... the old "next" pointers
	 * from ptr may still be in use, the caller updates them.
	 */
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	*prev_p = *periodic_next_shadow(ehci, &here,
			Q_NEXT_TYPE(ehci, *hw_p));
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	if (!ehci->use_dummy_qh ||
	    *shadow_next_periodic(ehci, &here, Q_NEXT_TYPE(ehci, *hw_p))
			!= EHCI_LIST_END(ehci))
		*hw_p = *shadow_next_periodic(ehci, &here,
				Q_NEXT_TYPE(ehci, *hw_p));
	else
		*hw_p = ehci->dummy->qh_dma;
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}

/* how many of the uframe's 125 usecs are allocated? */
static unsigned short
periodic_usecs (struct ehci_hcd *ehci, unsigned frame, unsigned uframe)
{
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	__hc32			*hw_p = &ehci->periodic [frame];
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	union ehci_shadow	*q = &ehci->pshadow [frame];
	unsigned		usecs = 0;
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	struct ehci_qh_hw	*hw;
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	while (q->ptr) {
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		switch (hc32_to_cpu(ehci, Q_NEXT_TYPE(ehci, *hw_p))) {
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		case Q_TYPE_QH:
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			hw = q->qh->hw;
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			/* is it in the S-mask? */
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			if (hw->hw_info2 & cpu_to_hc32(ehci, 1 << uframe))
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				usecs += q->qh->usecs;
			/* ... or C-mask? */
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			if (hw->hw_info2 & cpu_to_hc32(ehci,
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					1 << (8 + uframe)))
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				usecs += q->qh->c_usecs;
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			hw_p = &hw->hw_next;
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			q = &q->qh->qh_next;
			break;
		// case Q_TYPE_FSTN:
		default:
			/* for "save place" FSTNs, count the relevant INTR
			 * bandwidth from the previous frame
			 */
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			if (q->fstn->hw_prev != EHCI_LIST_END(ehci)) {
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				ehci_dbg (ehci, "ignoring FSTN cost ...\n");
			}
			hw_p = &q->fstn->hw_next;
			q = &q->fstn->fstn_next;
			break;
		case Q_TYPE_ITD:
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			if (q->itd->hw_transaction[uframe])
				usecs += q->itd->stream->usecs;
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			hw_p = &q->itd->hw_next;
			q = &q->itd->itd_next;
			break;
		case Q_TYPE_SITD:
			/* is it in the S-mask?  (count SPLIT, DATA) */
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			if (q->sitd->hw_uframe & cpu_to_hc32(ehci,
					1 << uframe)) {
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				if (q->sitd->hw_fullspeed_ep &
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						cpu_to_hc32(ehci, 1<<31))
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					usecs += q->sitd->stream->usecs;
				else	/* worst case for OUT start-split */
					usecs += HS_USECS_ISO (188);
			}

			/* ... C-mask?  (count CSPLIT, DATA) */
			if (q->sitd->hw_uframe &
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					cpu_to_hc32(ehci, 1 << (8 + uframe))) {
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				/* worst case for IN complete-split */
				usecs += q->sitd->stream->c_usecs;
			}

			hw_p = &q->sitd->hw_next;
			q = &q->sitd->sitd_next;
			break;
		}
	}
#ifdef	DEBUG
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	if (usecs > ehci->uframe_periodic_max)
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		ehci_err (ehci, "uframe %d sched overrun: %d usecs\n",
			frame * 8 + uframe, usecs);
#endif
	return usecs;
}

/*-------------------------------------------------------------------------*/

static int same_tt (struct usb_device *dev1, struct usb_device *dev2)
{
	if (!dev1->tt || !dev2->tt)
		return 0;
	if (dev1->tt != dev2->tt)
		return 0;
	if (dev1->tt->multi)
		return dev1->ttport == dev2->ttport;
	else
		return 1;
}

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#ifdef CONFIG_USB_EHCI_TT_NEWSCHED

/* Which uframe does the low/fullspeed transfer start in?
 *
 * The parameter is the mask of ssplits in "H-frame" terms
 * and this returns the transfer start uframe in "B-frame" terms,
 * which allows both to match, e.g. a ssplit in "H-frame" uframe 0
 * will cause a transfer in "B-frame" uframe 0.  "B-frames" lag
 * "H-frames" by 1 uframe.  See the EHCI spec sec 4.5 and figure 4.7.
 */
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static inline unsigned char tt_start_uframe(struct ehci_hcd *ehci, __hc32 mask)
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{
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	unsigned char smask = QH_SMASK & hc32_to_cpu(ehci, mask);
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	if (!smask) {
		ehci_err(ehci, "invalid empty smask!\n");
		/* uframe 7 can't have bw so this will indicate failure */
		return 7;
	}
	return ffs(smask) - 1;
}

static const unsigned char
max_tt_usecs[] = { 125, 125, 125, 125, 125, 125, 30, 0 };

/* carryover low/fullspeed bandwidth that crosses uframe boundries */
static inline void carryover_tt_bandwidth(unsigned short tt_usecs[8])
{
	int i;
	for (i=0; i<7; i++) {
		if (max_tt_usecs[i] < tt_usecs[i]) {
			tt_usecs[i+1] += tt_usecs[i] - max_tt_usecs[i];
			tt_usecs[i] = max_tt_usecs[i];
		}
	}
}

/* How many of the tt's periodic downstream 1000 usecs are allocated?
 *
 * While this measures the bandwidth in terms of usecs/uframe,
 * the low/fullspeed bus has no notion of uframes, so any particular
 * low/fullspeed transfer can "carry over" from one uframe to the next,
 * since the TT just performs downstream transfers in sequence.
 *
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 * For example two separate 100 usec transfers can start in the same uframe,
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 * and the second one would "carry over" 75 usecs into the next uframe.
 */
static void
periodic_tt_usecs (
	struct ehci_hcd *ehci,
	struct usb_device *dev,
	unsigned frame,
	unsigned short tt_usecs[8]
)
{
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	__hc32			*hw_p = &ehci->periodic [frame];
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	union ehci_shadow	*q = &ehci->pshadow [frame];
	unsigned char		uf;

	memset(tt_usecs, 0, 16);

	while (q->ptr) {
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		switch (hc32_to_cpu(ehci, Q_NEXT_TYPE(ehci, *hw_p))) {
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		case Q_TYPE_ITD:
			hw_p = &q->itd->hw_next;
			q = &q->itd->itd_next;
			continue;
		case Q_TYPE_QH:
			if (same_tt(dev, q->qh->dev)) {
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				uf = tt_start_uframe(ehci, q->qh->hw->hw_info2);
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				tt_usecs[uf] += q->qh->tt_usecs;
			}
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			hw_p = &q->qh->hw->hw_next;
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			q = &q->qh->qh_next;
			continue;
		case Q_TYPE_SITD:
			if (same_tt(dev, q->sitd->urb->dev)) {
				uf = tt_start_uframe(ehci, q->sitd->hw_uframe);
				tt_usecs[uf] += q->sitd->stream->tt_usecs;
			}
			hw_p = &q->sitd->hw_next;
			q = &q->sitd->sitd_next;
			continue;
		// case Q_TYPE_FSTN:
		default:
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			ehci_dbg(ehci, "ignoring periodic frame %d FSTN\n",
					frame);
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			hw_p = &q->fstn->hw_next;
			q = &q->fstn->fstn_next;
		}
	}

	carryover_tt_bandwidth(tt_usecs);

	if (max_tt_usecs[7] < tt_usecs[7])
		ehci_err(ehci, "frame %d tt sched overrun: %d usecs\n",
			frame, tt_usecs[7] - max_tt_usecs[7]);
}

/*
 * Return true if the device's tt's downstream bus is available for a
 * periodic transfer of the specified length (usecs), starting at the
 * specified frame/uframe.  Note that (as summarized in section 11.19
 * of the usb 2.0 spec) TTs can buffer multiple transactions for each
 * uframe.
 *
 * The uframe parameter is when the fullspeed/lowspeed transfer
 * should be executed in "B-frame" terms, which is the same as the
 * highspeed ssplit's uframe (which is in "H-frame" terms).  For example
 * a ssplit in "H-frame" 0 causes a transfer in "B-frame" 0.
 * See the EHCI spec sec 4.5 and fig 4.7.
 *
 * This checks if the full/lowspeed bus, at the specified starting uframe,
 * has the specified bandwidth available, according to rules listed
 * in USB 2.0 spec section 11.18.1 fig 11-60.
 *
 * This does not check if the transfer would exceed the max ssplit
 * limit of 16, specified in USB 2.0 spec section 11.18.4 requirement #4,
 * since proper scheduling limits ssplits to less than 16 per uframe.
 */
static int tt_available (
	struct ehci_hcd		*ehci,
	unsigned		period,
	struct usb_device	*dev,
	unsigned		frame,
	unsigned		uframe,
	u16			usecs
)
{
	if ((period == 0) || (uframe >= 7))	/* error */
		return 0;

	for (; frame < ehci->periodic_size; frame += period) {
		unsigned short tt_usecs[8];

		periodic_tt_usecs (ehci, dev, frame, tt_usecs);

		ehci_vdbg(ehci, "tt frame %d check %d usecs start uframe %d in"
			" schedule %d/%d/%d/%d/%d/%d/%d/%d\n",
			frame, usecs, uframe,
			tt_usecs[0], tt_usecs[1], tt_usecs[2], tt_usecs[3],
			tt_usecs[4], tt_usecs[5], tt_usecs[6], tt_usecs[7]);

		if (max_tt_usecs[uframe] <= tt_usecs[uframe]) {
			ehci_vdbg(ehci, "frame %d uframe %d fully scheduled\n",
				frame, uframe);
			return 0;
		}

		/* special case for isoc transfers larger than 125us:
		 * the first and each subsequent fully used uframe
		 * must be empty, so as to not illegally delay
		 * already scheduled transactions
		 */
		if (125 < usecs) {
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			int ufs = (usecs / 125);
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			int i;
			for (i = uframe; i < (uframe + ufs) && i < 8; i++)
				if (0 < tt_usecs[i]) {
					ehci_vdbg(ehci,
						"multi-uframe xfer can't fit "
						"in frame %d uframe %d\n",
						frame, i);
					return 0;
				}
		}

		tt_usecs[uframe] += usecs;

		carryover_tt_bandwidth(tt_usecs);

		/* fail if the carryover pushed bw past the last uframe's limit */
		if (max_tt_usecs[7] < tt_usecs[7]) {
			ehci_vdbg(ehci,
				"tt unavailable usecs %d frame %d uframe %d\n",
				usecs, frame, uframe);
			return 0;
		}
	}

	return 1;
}

#else

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/* return true iff the device's transaction translator is available
 * for a periodic transfer starting at the specified frame, using
 * all the uframes in the mask.
 */
static int tt_no_collision (
	struct ehci_hcd		*ehci,
	unsigned		period,
	struct usb_device	*dev,
	unsigned		frame,
	u32			uf_mask
)
{
	if (period == 0)	/* error */
		return 0;

	/* note bandwidth wastage:  split never follows csplit
	 * (different dev or endpoint) until the next uframe.
	 * calling convention doesn't make that distinction.
	 */
	for (; frame < ehci->periodic_size; frame += period) {
		union ehci_shadow	here;
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		__hc32			type;
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		struct ehci_qh_hw	*hw;
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		here = ehci->pshadow [frame];
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		type = Q_NEXT_TYPE(ehci, ehci->periodic [frame]);
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		while (here.ptr) {
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			switch (hc32_to_cpu(ehci, type)) {
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			case Q_TYPE_ITD:
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				type = Q_NEXT_TYPE(ehci, here.itd->hw_next);
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				here = here.itd->itd_next;
				continue;
			case Q_TYPE_QH:
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				hw = here.qh->hw;
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				if (same_tt (dev, here.qh->dev)) {
					u32		mask;

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					mask = hc32_to_cpu(ehci,
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							hw->hw_info2);
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					/* "knows" no gap is needed */
					mask |= mask >> 8;
					if (mask & uf_mask)
						break;
				}
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				type = Q_NEXT_TYPE(ehci, hw->hw_next);
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				here = here.qh->qh_next;
				continue;
			case Q_TYPE_SITD:
				if (same_tt (dev, here.sitd->urb->dev)) {
					u16		mask;

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					mask = hc32_to_cpu(ehci, here.sitd
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								->hw_uframe);
					/* FIXME assumes no gap for IN! */
					mask |= mask >> 8;
					if (mask & uf_mask)
						break;
				}
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				type = Q_NEXT_TYPE(ehci, here.sitd->hw_next);
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				here = here.sitd->sitd_next;
				continue;
			// case Q_TYPE_FSTN:
			default:
				ehci_dbg (ehci,
					"periodic frame %d bogus type %d\n",
					frame, type);
			}

			/* collision or error */
			return 0;
		}
	}

	/* no collision */
	return 1;
}

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#endif /* CONFIG_USB_EHCI_TT_NEWSCHED */

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/*-------------------------------------------------------------------------*/

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static void enable_periodic(struct ehci_hcd *ehci)
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{
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	if (ehci->periodic_count++)
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		return;
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	/* Stop waiting to turn off the periodic schedule */
	ehci->enabled_hrtimer_events &= ~BIT(EHCI_HRTIMER_DISABLE_PERIODIC);
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	/* Don't start the schedule until PSS is 0 */
	ehci_poll_PSS(ehci);
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	turn_on_io_watchdog(ehci);
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}

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static void disable_periodic(struct ehci_hcd *ehci)
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{
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	if (--ehci->periodic_count)
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		return;
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	ehci->next_uframe = -1;		/* the periodic schedule is empty */
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	/* Don't turn off the schedule until PSS is 1 */
	ehci_poll_PSS(ehci);
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}

/*-------------------------------------------------------------------------*/

/* periodic schedule slots have iso tds (normal or split) first, then a
 * sparse tree for active interrupt transfers.
 *
 * this just links in a qh; caller guarantees uframe masks are set right.
 * no FSTN support (yet; ehci 0.96+)
 */
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static void qh_link_periodic(struct ehci_hcd *ehci, struct ehci_qh *qh)
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{
	unsigned	i;
	unsigned	period = qh->period;

	dev_dbg (&qh->dev->dev,
		"link qh%d-%04x/%p start %d [%d/%d us]\n",
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		period, hc32_to_cpup(ehci, &qh->hw->hw_info2)
			& (QH_CMASK | QH_SMASK),
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		qh, qh->start, qh->usecs, qh->c_usecs);

	/* high bandwidth, or otherwise every microframe */
	if (period == 0)
		period = 1;

	for (i = qh->start; i < ehci->periodic_size; i += period) {
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		union ehci_shadow	*prev = &ehci->pshadow[i];
		__hc32			*hw_p = &ehci->periodic[i];
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		union ehci_shadow	here = *prev;
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		__hc32			type = 0;
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		/* skip the iso nodes at list head */
		while (here.ptr) {
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			type = Q_NEXT_TYPE(ehci, *hw_p);
			if (type == cpu_to_hc32(ehci, Q_TYPE_QH))
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				break;
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			prev = periodic_next_shadow(ehci, prev, type);
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			hw_p = shadow_next_periodic(ehci, &here, type);
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			here = *prev;
		}

		/* sorting each branch by period (slow-->fast)
		 * enables sharing interior tree nodes
		 */
		while (here.ptr && qh != here.qh) {
			if (qh->period > here.qh->period)
				break;
			prev = &here.qh->qh_next;
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			hw_p = &here.qh->hw->hw_next;
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			here = *prev;
		}
		/* link in this qh, unless some earlier pass did that */
		if (qh != here.qh) {
			qh->qh_next = here;
			if (here.qh)
559
				qh->hw->hw_next = *hw_p;
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			wmb ();
			prev->qh = qh;
562
			*hw_p = QH_NEXT (ehci, qh->qh_dma);
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		}
	}
	qh->qh_state = QH_STATE_LINKED;
566
	qh->xacterrs = 0;
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	/* update per-qh bandwidth for usbfs */
	ehci_to_hcd(ehci)->self.bandwidth_allocated += qh->period
		? ((qh->usecs + qh->c_usecs) / qh->period)
		: (qh->usecs * 8);

573 574
	list_add(&qh->intr_node, &ehci->intr_qh_list);

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	/* maybe enable periodic schedule processing */
576
	++ehci->intr_count;
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	enable_periodic(ehci);
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}

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static void qh_unlink_periodic(struct ehci_hcd *ehci, struct ehci_qh *qh)
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{
	unsigned	i;
	unsigned	period;

585 586 587 588 589 590 591 592 593 594 595 596 597 598
	/*
	 * If qh is for a low/full-speed device, simply unlinking it
	 * could interfere with an ongoing split transaction.  To unlink
	 * it safely would require setting the QH_INACTIVATE bit and
	 * waiting at least one frame, as described in EHCI 4.12.2.5.
	 *
	 * We won't bother with any of this.  Instead, we assume that the
	 * only reason for unlinking an interrupt QH while the current URB
	 * is still active is to dequeue all the URBs (flush the whole
	 * endpoint queue).
	 *
	 * If rebalancing the periodic schedule is ever implemented, this
	 * approach will no longer be valid.
	 */
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	/* high bandwidth, or otherwise part of every microframe */
	if ((period = qh->period) == 0)
		period = 1;

	for (i = qh->start; i < ehci->periodic_size; i += period)
		periodic_unlink (ehci, i, qh);

	/* update per-qh bandwidth for usbfs */
	ehci_to_hcd(ehci)->self.bandwidth_allocated -= qh->period
		? ((qh->usecs + qh->c_usecs) / qh->period)
		: (qh->usecs * 8);

	dev_dbg (&qh->dev->dev,
		"unlink qh%d-%04x/%p start %d [%d/%d us]\n",
614
		qh->period,
615
		hc32_to_cpup(ehci, &qh->hw->hw_info2) & (QH_CMASK | QH_SMASK),
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		qh, qh->start, qh->usecs, qh->c_usecs);

	/* qh->qh_next still "live" to HC */
	qh->qh_state = QH_STATE_UNLINK;
	qh->qh_next.ptr = NULL;
621 622 623 624 625

	if (ehci->qh_scan_next == qh)
		ehci->qh_scan_next = list_entry(qh->intr_node.next,
				struct ehci_qh, intr_node);
	list_del(&qh->intr_node);
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}

628
static void start_unlink_intr(struct ehci_hcd *ehci, struct ehci_qh *qh)
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{
630 631 632 633 634 635 636 637 638
	/* If the QH isn't linked then there's nothing we can do
	 * unless we were called during a giveback, in which case
	 * qh_completions() has to deal with it.
	 */
	if (qh->qh_state != QH_STATE_LINKED) {
		if (qh->qh_state == QH_STATE_COMPLETING)
			qh->needs_rescan = 1;
		return;
	}
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	qh_unlink_periodic (ehci, qh);

642 643 644 645 646 647 648
	/* Make sure the unlinks are visible before starting the timer */
	wmb();

	/*
	 * The EHCI spec doesn't say how long it takes the controller to
	 * stop accessing an unlinked interrupt QH.  The timer delay is
	 * 9 uframes; presumably that will be long enough.
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	 */
650 651 652 653 654
	qh->unlink_cycle = ehci->intr_unlink_cycle;

	/* New entries go at the end of the intr_unlink list */
	if (ehci->intr_unlink)
		ehci->intr_unlink_last->unlink_next = qh;
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	else
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		ehci->intr_unlink = qh;
	ehci->intr_unlink_last = qh;

	if (ehci->intr_unlinking)
		;	/* Avoid recursive calls */
	else if (ehci->rh_state < EHCI_RH_RUNNING)
		ehci_handle_intr_unlinks(ehci);
	else if (ehci->intr_unlink == qh) {
		ehci_enable_event(ehci, EHCI_HRTIMER_UNLINK_INTR, true);
		++ehci->intr_unlink_cycle;
	}
}

static void end_unlink_intr(struct ehci_hcd *ehci, struct ehci_qh *qh)
{
	struct ehci_qh_hw	*hw = qh->hw;
	int			rc;
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	qh->qh_state = QH_STATE_IDLE;
675
	hw->hw_next = EHCI_LIST_END(ehci);
676 677 678 679

	qh_completions(ehci, qh);

	/* reschedule QH iff another request is queued */
680
	if (!list_empty(&qh->qtd_list) && ehci->rh_state == EHCI_RH_RUNNING) {
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		rc = qh_schedule(ehci, qh);

		/* An error here likely indicates handshake failure
		 * or no space left in the schedule.  Neither fault
		 * should happen often ...
		 *
		 * FIXME kill the now-dysfunctional queued urbs
		 */
		if (rc != 0)
			ehci_err(ehci, "can't reschedule qh %p, err %d\n",
					qh, rc);
	}
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	/* maybe turn off periodic schedule */
695
	--ehci->intr_count;
696
	disable_periodic(ehci);
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}

/*-------------------------------------------------------------------------*/

static int check_period (
702
	struct ehci_hcd *ehci,
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	unsigned	frame,
	unsigned	uframe,
	unsigned	period,
	unsigned	usecs
) {
	int		claimed;

	/* complete split running into next frame?
	 * given FSTN support, we could sometimes check...
	 */
	if (uframe >= 8)
		return 0;

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	/* convert "usecs we need" to "max already claimed" */
	usecs = ehci->uframe_periodic_max - usecs;
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	/* we "know" 2 and 4 uframe intervals were rejected; so
	 * for period 0, check _every_ microframe in the schedule.
	 */
	if (unlikely (period == 0)) {
		do {
			for (uframe = 0; uframe < 7; uframe++) {
				claimed = periodic_usecs (ehci, frame, uframe);
				if (claimed > usecs)
					return 0;
			}
		} while ((frame += 1) < ehci->periodic_size);

	/* just check the specified uframe, at that period */
	} else {
		do {
			claimed = periodic_usecs (ehci, frame, uframe);
			if (claimed > usecs)
				return 0;
		} while ((frame += period) < ehci->periodic_size);
	}

	// success!
	return 1;
}

static int check_intr_schedule (
745
	struct ehci_hcd		*ehci,
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	unsigned		frame,
	unsigned		uframe,
	const struct ehci_qh	*qh,
749
	__hc32			*c_maskp
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)
{
752
	int		retval = -ENOSPC;
753
	u8		mask = 0;
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	if (qh->c_usecs && uframe >= 6)		/* FSTN territory? */
		goto done;

	if (!check_period (ehci, frame, uframe, qh->period, qh->usecs))
		goto done;
	if (!qh->c_usecs) {
		retval = 0;
		*c_maskp = 0;
		goto done;
	}

766 767 768 769 770 771 772 773 774 775 776 777 778 779 780
#ifdef CONFIG_USB_EHCI_TT_NEWSCHED
	if (tt_available (ehci, qh->period, qh->dev, frame, uframe,
				qh->tt_usecs)) {
		unsigned i;

		/* TODO : this may need FSTN for SSPLIT in uframe 5. */
		for (i=uframe+1; i<8 && i<uframe+4; i++)
			if (!check_period (ehci, frame, i,
						qh->period, qh->c_usecs))
				goto done;
			else
				mask |= 1 << i;

		retval = 0;

781
		*c_maskp = cpu_to_hc32(ehci, mask << 8);
782 783
	}
#else
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	/* Make sure this tt's buffer is also available for CSPLITs.
	 * We pessimize a bit; probably the typical full speed case
	 * doesn't need the second CSPLIT.
787
	 *
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	 * NOTE:  both SPLIT and CSPLIT could be checked in just
	 * one smart pass...
	 */
	mask = 0x03 << (uframe + qh->gap_uf);
792
	*c_maskp = cpu_to_hc32(ehci, mask << 8);
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	mask |= 1 << uframe;
	if (tt_no_collision (ehci, qh->period, qh->dev, frame, mask)) {
		if (!check_period (ehci, frame, uframe + qh->gap_uf + 1,
					qh->period, qh->c_usecs))
			goto done;
		if (!check_period (ehci, frame, uframe + qh->gap_uf,
					qh->period, qh->c_usecs))
			goto done;
		retval = 0;
	}
804
#endif
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done:
	return retval;
}

/* "first fit" scheduling policy used the first time through,
 * or when the previous schedule slot can't be re-used.
 */
812
static int qh_schedule(struct ehci_hcd *ehci, struct ehci_qh *qh)
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{
814
	int		status;
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	unsigned	uframe;
816
	__hc32		c_mask;
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	unsigned	frame;		/* 0..(qh->period - 1), or NO_FRAME */
818
	struct ehci_qh_hw	*hw = qh->hw;
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	qh_refresh(ehci, qh);
821
	hw->hw_next = EHCI_LIST_END(ehci);
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	frame = qh->start;

	/* reuse the previous schedule slots, if we can */
	if (frame < qh->period) {
826
		uframe = ffs(hc32_to_cpup(ehci, &hw->hw_info2) & QH_SMASK);
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		status = check_intr_schedule (ehci, frame, --uframe,
				qh, &c_mask);
	} else {
		uframe = 0;
		c_mask = 0;
		status = -ENOSPC;
	}

	/* else scan the schedule to find a group of slots such that all
	 * uframes have enough periodic bandwidth available.
	 */
	if (status) {
		/* "normal" case, uframing flexible except with splits */
		if (qh->period) {
841 842 843 844
			int		i;

			for (i = qh->period; status && i > 0; --i) {
				frame = ++ehci->random_frame % qh->period;
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				for (uframe = 0; uframe < 8; uframe++) {
					status = check_intr_schedule (ehci,
							frame, uframe, qh,
							&c_mask);
					if (status == 0)
						break;
				}
852
			}
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		/* qh->period == 0 means every uframe */
		} else {
			frame = 0;
			status = check_intr_schedule (ehci, 0, 0, qh, &c_mask);
		}
		if (status)
			goto done;
		qh->start = frame;

		/* reset S-frame and (maybe) C-frame masks */
864 865
		hw->hw_info2 &= cpu_to_hc32(ehci, ~(QH_CMASK | QH_SMASK));
		hw->hw_info2 |= qh->period
866 867
			? cpu_to_hc32(ehci, 1 << uframe)
			: cpu_to_hc32(ehci, QH_SMASK);
868
		hw->hw_info2 |= c_mask;
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	} else
		ehci_dbg (ehci, "reused qh %p schedule\n", qh);

	/* stuff into the periodic schedule */
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	qh_link_periodic(ehci, qh);
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done:
	return status;
}

static int intr_submit (
	struct ehci_hcd		*ehci,
	struct urb		*urb,
	struct list_head	*qtd_list,
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	gfp_t			mem_flags
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) {
	unsigned		epnum;
	unsigned long		flags;
	struct ehci_qh		*qh;
887
	int			status;
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	struct list_head	empty;

	/* get endpoint and transfer/schedule data */
891
	epnum = urb->ep->desc.bEndpointAddress;
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	spin_lock_irqsave (&ehci->lock, flags);

895
	if (unlikely(!HCD_HW_ACCESSIBLE(ehci_to_hcd(ehci)))) {
896
		status = -ESHUTDOWN;
897
		goto done_not_linked;
898
	}
899 900 901
	status = usb_hcd_link_urb_to_ep(ehci_to_hcd(ehci), urb);
	if (unlikely(status))
		goto done_not_linked;
902

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	/* get qh and force any scheduling errors */
	INIT_LIST_HEAD (&empty);
905
	qh = qh_append_tds(ehci, urb, &empty, epnum, &urb->ep->hcpriv);
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	if (qh == NULL) {
		status = -ENOMEM;
		goto done;
	}
	if (qh->qh_state == QH_STATE_IDLE) {
		if ((status = qh_schedule (ehci, qh)) != 0)
			goto done;
	}

	/* then queue the urb's tds to the qh */
916
	qh = qh_append_tds(ehci, urb, qtd_list, epnum, &urb->ep->hcpriv);
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	BUG_ON (qh == NULL);

	/* ... update usbfs periodic stats */
	ehci_to_hcd(ehci)->self.bandwidth_int_reqs++;

done:
923 924 925
	if (unlikely(status))
		usb_hcd_unlink_urb_from_ep(ehci_to_hcd(ehci), urb);
done_not_linked:
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	spin_unlock_irqrestore (&ehci->lock, flags);
	if (status)
		qtd_list_free (ehci, urb, qtd_list);

	return status;
}

933 934 935 936 937 938 939 940 941 942 943 944 945 946 947 948 949 950 951 952 953 954 955 956 957 958 959 960 961
static void scan_intr(struct ehci_hcd *ehci)
{
	struct ehci_qh		*qh;

	list_for_each_entry_safe(qh, ehci->qh_scan_next, &ehci->intr_qh_list,
			intr_node) {
 rescan:
		/* clean any finished work for this qh */
		if (!list_empty(&qh->qtd_list)) {
			int temp;

			/*
			 * Unlinks could happen here; completion reporting
			 * drops the lock.  That's why ehci->qh_scan_next
			 * always holds the next qh to scan; if the next qh
			 * gets unlinked then ehci->qh_scan_next is adjusted
			 * in qh_unlink_periodic().
			 */
			temp = qh_completions(ehci, qh);
			if (unlikely(qh->needs_rescan ||
					(list_empty(&qh->qtd_list) &&
						qh->qh_state == QH_STATE_LINKED)))
				start_unlink_intr(ehci, qh);
			else if (temp != 0)
				goto rescan;
		}
	}
}

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/*-------------------------------------------------------------------------*/

/* ehci_iso_stream ops work with both ITD and SITD */

static struct ehci_iso_stream *
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iso_stream_alloc (gfp_t mem_flags)
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{
	struct ehci_iso_stream *stream;

971
	stream = kzalloc(sizeof *stream, mem_flags);
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	if (likely (stream != NULL)) {
		INIT_LIST_HEAD(&stream->td_list);
		INIT_LIST_HEAD(&stream->free_list);
		stream->next_uframe = -1;
	}
	return stream;
}

static void
iso_stream_init (
	struct ehci_hcd		*ehci,
	struct ehci_iso_stream	*stream,
	struct usb_device	*dev,
	int			pipe,
	unsigned		interval
)
{
	static const u8 smask_out [] = { 0x01, 0x03, 0x07, 0x0f, 0x1f, 0x3f };

	u32			buf1;
	unsigned		epnum, maxp;
	int			is_input;
	long			bandwidth;

	/*
	 * this might be a "high bandwidth" highspeed endpoint,
	 * as encoded in the ep descriptor's wMaxPacket field
	 */
	epnum = usb_pipeendpoint (pipe);
	is_input = usb_pipein (pipe) ? USB_DIR_IN : 0;
	maxp = usb_maxpacket(dev, pipe, !is_input);
	if (is_input) {
		buf1 = (1 << 11);
	} else {
		buf1 = 0;
	}

	/* knows about ITD vs SITD */
	if (dev->speed == USB_SPEED_HIGH) {
		unsigned multi = hb_mult(maxp);

		stream->highspeed = 1;

		maxp = max_packet(maxp);
		buf1 |= maxp;
		maxp *= multi;

1019 1020 1021
		stream->buf0 = cpu_to_hc32(ehci, (epnum << 8) | dev->devnum);
		stream->buf1 = cpu_to_hc32(ehci, buf1);
		stream->buf2 = cpu_to_hc32(ehci, multi);
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		/* usbfs wants to report the average usecs per frame tied up
		 * when transfers on this endpoint are scheduled ...
		 */
		stream->usecs = HS_USECS_ISO (maxp);
		bandwidth = stream->usecs * 8;
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		bandwidth /= interval;
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	} else {
		u32		addr;
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		int		think_time;
1033
		int		hs_transfers;
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		addr = dev->ttport << 24;
		if (!ehci_is_TDI(ehci)
				|| (dev->tt->hub !=
					ehci_to_hcd(ehci)->self.root_hub))
			addr |= dev->tt->hub->devnum << 16;
		addr |= epnum << 8;
		addr |= dev->devnum;
		stream->usecs = HS_USECS_ISO (maxp);
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		think_time = dev->tt ? dev->tt->think_time : 0;
		stream->tt_usecs = NS_TO_US (think_time + usb_calc_bus_time (
				dev->speed, is_input, 1, maxp));
1046
		hs_transfers = max (1u, (maxp + 187) / 188);
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		if (is_input) {
			u32	tmp;

			addr |= 1 << 31;
			stream->c_usecs = stream->usecs;
			stream->usecs = HS_USECS_ISO (1);
			stream->raw_mask = 1;

1055 1056 1057
			/* c-mask as specified in USB 2.0 11.18.4 3.c */
			tmp = (1 << (hs_transfers + 2)) - 1;
			stream->raw_mask |= tmp << (8 + 2);
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		} else
1059
			stream->raw_mask = smask_out [hs_transfers - 1];
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		bandwidth = stream->usecs + stream->c_usecs;
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		bandwidth /= interval << 3;
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		/* stream->splits gets created from raw_mask later */
1064
		stream->address = cpu_to_hc32(ehci, addr);
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	}
	stream->bandwidth = bandwidth;

	stream->udev = dev;

	stream->bEndpointAddress = is_input | epnum;
	stream->interval = interval;
	stream->maxp = maxp;
}

static struct ehci_iso_stream *
iso_stream_find (struct ehci_hcd *ehci, struct urb *urb)
{
	unsigned		epnum;
	struct ehci_iso_stream	*stream;
	struct usb_host_endpoint *ep;
	unsigned long		flags;

	epnum = usb_pipeendpoint (urb->pipe);
	if (usb_pipein(urb->pipe))
		ep = urb->dev->ep_in[epnum];
	else
		ep = urb->dev->ep_out[epnum];

	spin_lock_irqsave (&ehci->lock, flags);
	stream = ep->hcpriv;

	if (unlikely (stream == NULL)) {
		stream = iso_stream_alloc(GFP_ATOMIC);
		if (likely (stream != NULL)) {
			ep->hcpriv = stream;
			stream->ep = ep;
			iso_stream_init(ehci, stream, urb->dev, urb->pipe,
					urb->interval);
		}

1101 1102
	/* if dev->ep [epnum] is a QH, hw is set */
	} else if (unlikely (stream->hw != NULL)) {
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		ehci_dbg (ehci, "dev %s ep%d%s, not iso??\n",
			urb->dev->devpath, epnum,
			usb_pipein(urb->pipe) ? "in" : "out");
		stream = NULL;
	}

	spin_unlock_irqrestore (&ehci->lock, flags);
	return stream;
}

/*-------------------------------------------------------------------------*/

/* ehci_iso_sched ops can be ITD-only or SITD-only */

static struct ehci_iso_sched *
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iso_sched_alloc (unsigned packets, gfp_t mem_flags)
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{
	struct ehci_iso_sched	*iso_sched;
	int			size = sizeof *iso_sched;

	size += packets * sizeof (struct ehci_iso_packet);
1124
	iso_sched = kzalloc(size, mem_flags);
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	if (likely (iso_sched != NULL)) {
		INIT_LIST_HEAD (&iso_sched->td_list);
	}
	return iso_sched;
}

static inline void
1132 1133
itd_sched_init(
	struct ehci_hcd		*ehci,
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	struct ehci_iso_sched	*iso_sched,
	struct ehci_iso_stream	*stream,
	struct urb		*urb
)
{
	unsigned	i;
	dma_addr_t	dma = urb->transfer_dma;

	/* how many uframes are needed for these transfers */
	iso_sched->span = urb->number_of_packets * stream->interval;

	/* figure out per-uframe itd fields that we'll need later
	 * when we fit new itds into the schedule.
	 */
	for (i = 0; i < urb->number_of_packets; i++) {
		struct ehci_iso_packet	*uframe = &iso_sched->packet [i];
		unsigned		length;
		dma_addr_t		buf;
		u32			trans;

		length = urb->iso_frame_desc [i].length;
		buf = dma + urb->iso_frame_desc [i].offset;

		trans = EHCI_ISOC_ACTIVE;
		trans |= buf & 0x0fff;
		if (unlikely (((i + 1) == urb->number_of_packets))
				&& !(urb->transfer_flags & URB_NO_INTERRUPT))
			trans |= EHCI_ITD_IOC;
		trans |= length << 16;
1163
		uframe->transaction = cpu_to_hc32(ehci, trans);
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1165
		/* might need to cross a buffer page within a uframe */
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		uframe->bufp = (buf & ~(u64)0x0fff);
		buf += length;
		if (unlikely ((uframe->bufp != (buf & ~(u64)0x0fff))))
			uframe->cross = 1;
	}
}

static void
iso_sched_free (
	struct ehci_iso_stream	*stream,
	struct ehci_iso_sched	*iso_sched
)
{
	if (!iso_sched)
		return;
	// caller must hold ehci->lock!
	list_splice (&iso_sched->td_list, &stream->free_list);
	kfree (iso_sched);
}

static int
itd_urb_transaction (
	struct ehci_iso_stream	*stream,
	struct ehci_hcd		*ehci,
	struct urb		*urb,
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	gfp_t			mem_flags
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)
{
	struct ehci_itd		*itd;
	dma_addr_t		itd_dma;
	int			i;
	unsigned		num_itds;
	struct ehci_iso_sched	*sched;
	unsigned long		flags;

	sched = iso_sched_alloc (urb->number_of_packets, mem_flags);
	if (unlikely (sched == NULL))
		return -ENOMEM;

1205
	itd_sched_init(ehci, sched, stream, urb);
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	if (urb->interval < 8)
		num_itds = 1 + (sched->span + 7) / 8;
	else
		num_itds = urb->number_of_packets;

	/* allocate/init ITDs */
	spin_lock_irqsave (&ehci->lock, flags);
	for (i = 0; i < num_itds; i++) {

1216 1217 1218
		/*
		 * Use iTDs from the free list, but not iTDs that may
		 * still be in use by the hardware.
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		 */
1220 1221
		if (likely(!list_empty(&stream->free_list))) {
			itd = list_first_entry(&stream->free_list,
1222
					struct ehci_itd, itd_list);
1223 1224
			if (itd->frame == ehci->clock_frame)
				goto alloc_itd;
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			list_del (&itd->itd_list);
			itd_dma = itd->itd_dma;
1227
		} else {
1228
 alloc_itd:
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			spin_unlock_irqrestore (&ehci->lock, flags);
			itd = dma_pool_alloc (ehci->itd_pool, mem_flags,
					&itd_dma);
			spin_lock_irqsave (&ehci->lock, flags);
1233 1234 1235 1236 1237
			if (!itd) {
				iso_sched_free(stream, sched);
				spin_unlock_irqrestore(&ehci->lock, flags);
				return -ENOMEM;
			}
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		}

		memset (itd, 0, sizeof *itd);
		itd->itd_dma = itd_dma;
		list_add (&itd->itd_list, &sched->td_list);
	}
	spin_unlock_irqrestore (&ehci->lock, flags);

	/* temporarily store schedule info in hcpriv */
	urb->hcpriv = sched;
	urb->error_count = 0;
	return 0;
}

/*-------------------------------------------------------------------------*/

static inline int
itd_slot_ok (
	struct ehci_hcd		*ehci,
	u32			mod,
	u32			uframe,
	u8			usecs,
	u32			period
)
{
	uframe %= period;
	do {
1265
		/* can't commit more than uframe_periodic_max usec */
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		if (periodic_usecs (ehci, uframe >> 3, uframe & 0x7)
1267
				> (ehci->uframe_periodic_max - usecs))
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			return 0;

		/* we know urb->interval is 2^N uframes */
		uframe += period;
	} while (uframe < mod);
	return 1;
}

static inline int
sitd_slot_ok (
	struct ehci_hcd		*ehci,
	u32			mod,
	struct ehci_iso_stream	*stream,
	u32			uframe,
	struct ehci_iso_sched	*sched,
	u32			period_uframes
)
{
	u32			mask, tmp;
	u32			frame, uf;

	mask = stream->raw_mask << (uframe & 7);

	/* for IN, don't wrap CSPLIT into the next frame */
	if (mask & ~0xffff)
		return 0;

1295 1296 1297 1298 1299 1300 1301 1302 1303 1304 1305 1306 1307 1308 1309 1310 1311 1312 1313 1314 1315
	/* check bandwidth */
	uframe %= period_uframes;
	frame = uframe >> 3;

#ifdef CONFIG_USB_EHCI_TT_NEWSCHED
	/* The tt's fullspeed bus bandwidth must be available.
	 * tt_available scheduling guarantees 10+% for control/bulk.
	 */
	uf = uframe & 7;
	if (!tt_available(ehci, period_uframes >> 3,
			stream->udev, frame, uf, stream->tt_usecs))
		return 0;
#else
	/* tt must be idle for start(s), any gap, and csplit.
	 * assume scheduling slop leaves 10+% for control/bulk.
	 */
	if (!tt_no_collision(ehci, period_uframes >> 3,
			stream->udev, frame, mask))
		return 0;
#endif

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	/* this multi-pass logic is simple, but performance may
	 * suffer when the schedule data isn't cached.
	 */
	do {
		u32		max_used;

		frame = uframe >> 3;
		uf = uframe & 7;

		/* check starts (OUT uses more than one) */
1326
		max_used = ehci->uframe_periodic_max - stream->usecs;
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		for (tmp = stream->raw_mask & 0xff; tmp; tmp >>= 1, uf++) {
			if (periodic_usecs (ehci, frame, uf) > max_used)
				return 0;
		}

		/* for IN, check CSPLIT */
		if (stream->c_usecs) {
1334
			uf = uframe & 7;
1335
			max_used = ehci->uframe_periodic_max - stream->c_usecs;
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			do {
				tmp = 1 << uf;
				tmp <<= 8;
				if ((stream->raw_mask & tmp) == 0)
					continue;
				if (periodic_usecs (ehci, frame, uf)
						> max_used)
					return 0;
			} while (++uf < 8);
		}

		/* we know urb->interval is 2^N uframes */
		uframe += period_uframes;
	} while (uframe < mod);

1351
	stream->splits = cpu_to_hc32(ehci, stream->raw_mask << (uframe & 7));
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	return 1;
}

/*
 * This scheduler plans almost as far into the future as it has actual
 * periodic schedule slots.  (Affected by TUNE_FLS, which defaults to
 * "as small as possible" to be cache-friendlier.)  That limits the size
 * transfers you can stream reliably; avoid more than 64 msec per urb.
 * Also avoid queue depths of less than ehci's worst irq latency (affected
 * by the per-urb URB_NO_INTERRUPT hint, the log2_irq_thresh module parameter,
 * and other factors); or more than about 230 msec total (for portability,
 * given EHCI_TUNE_FLS and the slop).  Or, write a smarter scheduler!
 */

1366
#define SCHEDULE_SLOP	80	/* microframes */
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static int
iso_stream_schedule (
	struct ehci_hcd		*ehci,
	struct urb		*urb,
	struct ehci_iso_stream	*stream
)
{
1375
	u32			now, next, start, period, span;
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	int			status;
	unsigned		mod = ehci->periodic_size << 3;
	struct ehci_iso_sched	*sched = urb->hcpriv;

1380 1381 1382 1383 1384 1385 1386 1387
	period = urb->interval;
	span = sched->span;
	if (!stream->highspeed) {
		period <<= 3;
		span <<= 3;
	}

	if (span > mod - SCHEDULE_SLOP) {
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		ehci_dbg (ehci, "iso request %p too long\n", urb);
		status = -EFBIG;
		goto fail;
	}

1393
	now = ehci_read_frame_index(ehci) & (mod - 1);
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1395 1396 1397 1398
	/* Typical case: reuse current schedule, stream is still active.
	 * Hopefully there are no gaps from the host falling behind
	 * (irq delays etc), but if there are we'll take the next
	 * slot in the schedule, implicitly assuming URB_ISO_ASAP.
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	 */
	if (likely (!list_empty (&stream->td_list))) {
1401
		u32	excess;
1402 1403

		/* For high speed devices, allow scheduling within the
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		 * isochronous scheduling threshold.  For full speed devices
		 * and Intel PCI-based controllers, don't (work around for
		 * Intel ICH9 bug).
1407
		 */
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		if (!stream->highspeed && ehci->fs_i_thresh)
1409 1410 1411
			next = now + ehci->i_thresh;
		else
			next = now;
1412

1413 1414 1415 1416 1417 1418 1419 1420 1421 1422 1423 1424 1425 1426
		/* Fell behind (by up to twice the slop amount)?
		 * We decide based on the time of the last currently-scheduled
		 * slot, not the time of the next available slot.
		 */
		excess = (stream->next_uframe - period - next) & (mod - 1);
		if (excess >= mod - 2 * SCHEDULE_SLOP)
			start = next + excess - mod + period *
					DIV_ROUND_UP(mod - excess, period);
		else
			start = next + excess + period;
		if (start - now >= mod) {
			ehci_dbg(ehci, "request %p would overflow (%d+%d >= %d)\n",
					urb, start - now - period, period,
					mod);
1427 1428 1429
			status = -EFBIG;
			goto fail;
		}
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	}

	/* need to schedule; when's the next (u)frame we could start?
	 * this is bigger than ehci->i_thresh allows; scheduling itself
	 * isn't free, the slop should handle reasonably slow cpus.  it
	 * can also help high bandwidth if the dma and irq loads don't
	 * jump until after the queue is primed.
	 */
1438
	else {
1439
		int done = 0;
1440 1441 1442 1443
		start = SCHEDULE_SLOP + (now & ~0x07);

		/* NOTE:  assumes URB_ISO_ASAP, to limit complexity/bugs */

1444 1445 1446 1447 1448 1449 1450 1451 1452
		/* find a uframe slot with enough bandwidth.
		 * Early uframes are more precious because full-speed
		 * iso IN transfers can't use late uframes,
		 * and therefore they should be allocated last.
		 */
		next = start;
		start += period;
		do {
			start--;
1453 1454 1455 1456
			/* check schedule: enough space? */
			if (stream->highspeed) {
				if (itd_slot_ok(ehci, mod, start,
						stream->usecs, period))
1457
					done = 1;
1458 1459 1460 1461 1462
			} else {
				if ((start % 8) >= 6)
					continue;
				if (sitd_slot_ok(ehci, mod, stream,
						start, sched, period))
1463
					done = 1;
1464
			}
1465
		} while (start > next && !done);
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1467
		/* no room in the schedule */
1468
		if (!done) {
1469 1470 1471 1472
			ehci_dbg(ehci, "iso resched full %p (now %d max %d)\n",
				urb, now, now + mod);
			status = -ENOSPC;
			goto fail;
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		}
	}

1476 1477 1478 1479 1480 1481 1482 1483 1484
	/* Tried to schedule too far into the future? */
	if (unlikely(start - now + span - period
				>= mod - 2 * SCHEDULE_SLOP)) {
		ehci_dbg(ehci, "request %p would overflow (%d+%d >= %d)\n",
				urb, start - now, span - period,
				mod - 2 * SCHEDULE_SLOP);
		status = -EFBIG;
		goto fail;
	}
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1486
	stream->next_uframe = start & (mod - 1);
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	/* report high speed start in uframes; full speed, in frames */
	urb->start_frame = stream->next_uframe;
	if (!stream->highspeed)
		urb->start_frame >>= 3;
1492 1493 1494 1495

	/* Make sure scan_isoc() sees these */
	if (ehci->isoc_count == 0)
		ehci->next_uframe = now;
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	return 0;
1497 1498 1499 1500 1501

 fail:
	iso_sched_free(stream, sched);
	urb->hcpriv = NULL;
	return status;
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}

/*-------------------------------------------------------------------------*/

static inline void
1507 1508
itd_init(struct ehci_hcd *ehci, struct ehci_iso_stream *stream,
		struct ehci_itd *itd)
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{
	int i;

1512
	/* it's been recently zeroed */
1513
	itd->hw_next = EHCI_LIST_END(ehci);
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	itd->hw_bufp [0] = stream->buf0;
	itd->hw_bufp [1] = stream->buf1;
	itd->hw_bufp [2] = stream->buf2;

	for (i = 0; i < 8; i++)
		itd->index[i] = -1;

	/* All other fields are filled when scheduling */
}

static inline void
1525 1526
itd_patch(
	struct ehci_hcd		*ehci,
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	struct ehci_itd		*itd,
	struct ehci_iso_sched	*iso_sched,
	unsigned		index,
1530
	u16			uframe
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)
{
	struct ehci_iso_packet	*uf = &iso_sched->packet [index];
	unsigned		pg = itd->pg;

	// BUG_ON (pg == 6 && uf->cross);

	uframe &= 0x07;
	itd->index [uframe] = index;

1541 1542 1543 1544
	itd->hw_transaction[uframe] = uf->transaction;
	itd->hw_transaction[uframe] |= cpu_to_hc32(ehci, pg << 12);
	itd->hw_bufp[pg] |= cpu_to_hc32(ehci, uf->bufp & ~(u32)0);
	itd->hw_bufp_hi[pg] |= cpu_to_hc32(ehci, (u32)(uf->bufp >> 32));
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	/* iso_frame_desc[].offset must be strictly increasing */
1547
	if (unlikely (uf->cross)) {
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		u64	bufp = uf->bufp + 4096;
1549

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		itd->pg = ++pg;
1551 1552
		itd->hw_bufp[pg] |= cpu_to_hc32(ehci, bufp & ~(u32)0);
		itd->hw_bufp_hi[pg] |= cpu_to_hc32(ehci, (u32)(bufp >> 32));
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	}
}

static inline void
itd_link (struct ehci_hcd *ehci, unsigned frame, struct ehci_itd *itd)
{
C
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	union ehci_shadow	*prev = &ehci->pshadow[frame];
	__hc32			*hw_p = &ehci->periodic[frame];
	union ehci_shadow	here = *prev;
	__hc32			type = 0;

	/* skip any iso nodes which might belong to previous microframes */
	while (here.ptr) {
		type = Q_NEXT_TYPE(ehci, *hw_p);
		if (type == cpu_to_hc32(ehci, Q_TYPE_QH))
			break;
		prev = periodic_next_shadow(ehci, prev, type);
		hw_p = shadow_next_periodic(ehci, &here, type);
		here = *prev;
	}

	itd->itd_next = here;
	itd->hw_next = *hw_p;
	prev->itd = itd;
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	itd->frame = frame;
	wmb ();
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	*hw_p = cpu_to_hc32(ehci, itd->itd_dma | Q_TYPE_ITD);
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}

/* fit urb's itds into the selected schedule slot; activate as needed */
A
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static void itd_link_urb(
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	struct ehci_hcd		*ehci,
	struct urb		*urb,
	unsigned		mod,
	struct ehci_iso_stream	*stream
)
{
1590
	int			packet;
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	unsigned		next_uframe, uframe, frame;
	struct ehci_iso_sched	*iso_sched = urb->hcpriv;
	struct ehci_itd		*itd;

1595
	next_uframe = stream->next_uframe & (mod - 1);
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	if (unlikely (list_empty(&stream->td_list))) {
		ehci_to_hcd(ehci)->self.bandwidth_allocated
				+= stream->bandwidth;
		ehci_vdbg (ehci,
			"schedule devp %s ep%d%s-iso period %d start %d.%d\n",
			urb->dev->devpath, stream->bEndpointAddress & 0x0f,
			(stream->bEndpointAddress & USB_DIR_IN) ? "in" : "out",
			urb->interval,
			next_uframe >> 3, next_uframe & 0x7);
	}
1607 1608

	if (ehci_to_hcd(ehci)->self.bandwidth_isoc_reqs == 0) {
1609 1610
		if (ehci->amd_pll_fix == 1)
			usb_amd_quirk_pll_disable();
1611 1612
	}

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	ehci_to_hcd(ehci)->self.bandwidth_isoc_reqs++;

	/* fill iTDs uframe by uframe */
	for (packet = 0, itd = NULL; packet < urb->number_of_packets; ) {
		if (itd == NULL) {
			/* ASSERT:  we have all necessary itds */
			// BUG_ON (list_empty (&iso_sched->td_list));

			/* ASSERT:  no itds for this endpoint in this uframe */

			itd = list_entry (iso_sched->td_list.next,
					struct ehci_itd, itd_list);
			list_move_tail (&itd->itd_list, &stream->td_list);
1626
			itd->stream = stream;
1627
			itd->urb = urb;
1628
			itd_init (ehci, stream, itd);
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		}

		uframe = next_uframe & 0x07;
		frame = next_uframe >> 3;

1634
		itd_patch(ehci, itd, iso_sched, packet, uframe);
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		next_uframe += stream->interval;
1637
		next_uframe &= mod - 1;
L
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1638 1639 1640 1641 1642
		packet++;

		/* link completed itds into the schedule */
		if (((next_uframe >> 3) != frame)
				|| packet == urb->number_of_packets) {
1643
			itd_link(ehci, frame & (ehci->periodic_size - 1), itd);
L
Linus Torvalds 已提交
1644 1645 1646 1647 1648 1649 1650 1651 1652
			itd = NULL;
		}
	}
	stream->next_uframe = next_uframe;

	/* don't need that schedule data any more */
	iso_sched_free (stream, iso_sched);
	urb->hcpriv = NULL;

1653
	++ehci->isoc_count;
A
Alan Stern 已提交
1654
	enable_periodic(ehci);
L
Linus Torvalds 已提交
1655 1656 1657 1658
}

#define	ISO_ERRS (EHCI_ISOC_BUF_ERR | EHCI_ISOC_BABBLE | EHCI_ISOC_XACTERR)

1659 1660 1661 1662 1663 1664 1665 1666 1667 1668
/* Process and recycle a completed ITD.  Return true iff its urb completed,
 * and hence its completion callback probably added things to the hardware
 * schedule.
 *
 * Note that we carefully avoid recycling this descriptor until after any
 * completion callback runs, so that it won't be reused quickly.  That is,
 * assuming (a) no more than two urbs per frame on this endpoint, and also
 * (b) only this endpoint's completions submit URBs.  It seems some silicon
 * corrupts things if you reuse completed descriptors very quickly...
 */
L
Linus Torvalds 已提交
1669 1670 1671
static unsigned
itd_complete (
	struct ehci_hcd	*ehci,
1672
	struct ehci_itd	*itd
L
Linus Torvalds 已提交
1673 1674 1675 1676 1677 1678 1679 1680
) {
	struct urb				*urb = itd->urb;
	struct usb_iso_packet_descriptor	*desc;
	u32					t;
	unsigned				uframe;
	int					urb_index = -1;
	struct ehci_iso_stream			*stream = itd->stream;
	struct usb_device			*dev;
1681
	unsigned				retval = false;
L
Linus Torvalds 已提交
1682 1683 1684 1685 1686 1687 1688 1689

	/* for each uframe with a packet */
	for (uframe = 0; uframe < 8; uframe++) {
		if (likely (itd->index[uframe] == -1))
			continue;
		urb_index = itd->index[uframe];
		desc = &urb->iso_frame_desc [urb_index];

1690
		t = hc32_to_cpup(ehci, &itd->hw_transaction [uframe]);
L
Linus Torvalds 已提交
1691 1692 1693 1694 1695 1696 1697 1698 1699 1700 1701 1702 1703 1704 1705
		itd->hw_transaction [uframe] = 0;

		/* report transfer status */
		if (unlikely (t & ISO_ERRS)) {
			urb->error_count++;
			if (t & EHCI_ISOC_BUF_ERR)
				desc->status = usb_pipein (urb->pipe)
					? -ENOSR  /* hc couldn't read */
					: -ECOMM; /* hc couldn't write */
			else if (t & EHCI_ISOC_BABBLE)
				desc->status = -EOVERFLOW;
			else /* (t & EHCI_ISOC_XACTERR) */
				desc->status = -EPROTO;

			/* HC need not update length with this error */
1706 1707 1708 1709
			if (!(t & EHCI_ISOC_BABBLE)) {
				desc->actual_length = EHCI_ITD_LENGTH(t);
				urb->actual_length += desc->actual_length;
			}
L
Linus Torvalds 已提交
1710 1711
		} else if (likely ((t & EHCI_ISOC_ACTIVE) == 0)) {
			desc->status = 0;
1712 1713
			desc->actual_length = EHCI_ITD_LENGTH(t);
			urb->actual_length += desc->actual_length;
1714 1715 1716
		} else {
			/* URB was too late */
			desc->status = -EXDEV;
L
Linus Torvalds 已提交
1717 1718 1719 1720 1721
		}
	}

	/* handle completion now? */
	if (likely ((urb_index + 1) != urb->number_of_packets))
1722
		goto done;
L
Linus Torvalds 已提交
1723 1724 1725 1726 1727 1728

	/* ASSERT: it's really the last itd for this urb
	list_for_each_entry (itd, &stream->td_list, itd_list)
		BUG_ON (itd->urb == urb);
	 */

1729
	/* give urb back to the driver; completion often (re)submits */
1730
	dev = urb->dev;
1731
	ehci_urb_done(ehci, urb, 0);
1732
	retval = true;
L
Linus Torvalds 已提交
1733
	urb = NULL;
1734 1735

	--ehci->isoc_count;
A
Alan Stern 已提交
1736
	disable_periodic(ehci);
L
Linus Torvalds 已提交
1737

1738
	ehci_to_hcd(ehci)->self.bandwidth_isoc_reqs--;
1739
	if (ehci_to_hcd(ehci)->self.bandwidth_isoc_reqs == 0) {
1740 1741
		if (ehci->amd_pll_fix == 1)
			usb_amd_quirk_pll_enable();
1742 1743
	}

1744
	if (unlikely(list_is_singular(&stream->td_list))) {
L
Linus Torvalds 已提交
1745 1746 1747 1748 1749 1750 1751
		ehci_to_hcd(ehci)->self.bandwidth_allocated
				-= stream->bandwidth;
		ehci_vdbg (ehci,
			"deschedule devp %s ep%d%s-iso\n",
			dev->devpath, stream->bEndpointAddress & 0x0f,
			(stream->bEndpointAddress & USB_DIR_IN) ? "in" : "out");
	}
K
Karsten Wiese 已提交
1752

1753 1754
done:
	itd->urb = NULL;
1755 1756 1757 1758 1759 1760 1761 1762 1763

	/* Add to the end of the free list for later reuse */
	list_move_tail(&itd->itd_list, &stream->free_list);

	/* Recycle the iTDs when the pipeline is empty (ep no longer in use) */
	if (list_empty(&stream->td_list)) {
		list_splice_tail_init(&stream->free_list,
				&ehci->cached_itd_list);
		start_free_itds(ehci);
K
Karsten Wiese 已提交
1764
	}
1765

1766
	return retval;
L
Linus Torvalds 已提交
1767 1768 1769 1770
}

/*-------------------------------------------------------------------------*/

1771
static int itd_submit (struct ehci_hcd *ehci, struct urb *urb,
A
Al Viro 已提交
1772
	gfp_t mem_flags)
L
Linus Torvalds 已提交
1773 1774 1775 1776 1777 1778 1779 1780 1781 1782 1783 1784 1785 1786 1787 1788 1789 1790 1791 1792
{
	int			status = -EINVAL;
	unsigned long		flags;
	struct ehci_iso_stream	*stream;

	/* Get iso_stream head */
	stream = iso_stream_find (ehci, urb);
	if (unlikely (stream == NULL)) {
		ehci_dbg (ehci, "can't get iso stream\n");
		return -ENOMEM;
	}
	if (unlikely (urb->interval != stream->interval)) {
		ehci_dbg (ehci, "can't change iso interval %d --> %d\n",
			stream->interval, urb->interval);
		goto done;
	}

#ifdef EHCI_URB_TRACE
	ehci_dbg (ehci,
		"%s %s urb %p ep%d%s len %d, %d pkts %d uframes [%p]\n",
1793
		__func__, urb->dev->devpath, urb,
L
Linus Torvalds 已提交
1794 1795 1796 1797 1798 1799 1800 1801 1802 1803 1804 1805 1806 1807 1808 1809
		usb_pipeendpoint (urb->pipe),
		usb_pipein (urb->pipe) ? "in" : "out",
		urb->transfer_buffer_length,
		urb->number_of_packets, urb->interval,
		stream);
#endif

	/* allocate ITDs w/o locking anything */
	status = itd_urb_transaction (stream, ehci, urb, mem_flags);
	if (unlikely (status < 0)) {
		ehci_dbg (ehci, "can't init itds\n");
		goto done;
	}

	/* schedule ... need to lock */
	spin_lock_irqsave (&ehci->lock, flags);
1810
	if (unlikely(!HCD_HW_ACCESSIBLE(ehci_to_hcd(ehci)))) {
1811
		status = -ESHUTDOWN;
1812 1813 1814 1815 1816 1817
		goto done_not_linked;
	}
	status = usb_hcd_link_urb_to_ep(ehci_to_hcd(ehci), urb);
	if (unlikely(status))
		goto done_not_linked;
	status = iso_stream_schedule(ehci, urb, stream);
1818
	if (likely (status == 0))
L
Linus Torvalds 已提交
1819
		itd_link_urb (ehci, urb, ehci->periodic_size << 3, stream);
1820 1821
	else
		usb_hcd_unlink_urb_from_ep(ehci_to_hcd(ehci), urb);
1822
 done_not_linked:
L
Linus Torvalds 已提交
1823
	spin_unlock_irqrestore (&ehci->lock, flags);
1824
 done:
L
Linus Torvalds 已提交
1825 1826 1827 1828 1829 1830 1831 1832 1833 1834 1835
	return status;
}

/*-------------------------------------------------------------------------*/

/*
 * "Split ISO TDs" ... used for USB 1.1 devices going through the
 * TTs in USB 2.0 hubs.  These need microframe scheduling.
 */

static inline void
1836 1837
sitd_sched_init(
	struct ehci_hcd		*ehci,
L
Linus Torvalds 已提交
1838 1839 1840 1841 1842 1843 1844 1845 1846 1847 1848 1849 1850 1851 1852 1853 1854 1855 1856 1857 1858 1859 1860 1861 1862 1863 1864 1865
	struct ehci_iso_sched	*iso_sched,
	struct ehci_iso_stream	*stream,
	struct urb		*urb
)
{
	unsigned	i;
	dma_addr_t	dma = urb->transfer_dma;

	/* how many frames are needed for these transfers */
	iso_sched->span = urb->number_of_packets * stream->interval;

	/* figure out per-frame sitd fields that we'll need later
	 * when we fit new sitds into the schedule.
	 */
	for (i = 0; i < urb->number_of_packets; i++) {
		struct ehci_iso_packet	*packet = &iso_sched->packet [i];
		unsigned		length;
		dma_addr_t		buf;
		u32			trans;

		length = urb->iso_frame_desc [i].length & 0x03ff;
		buf = dma + urb->iso_frame_desc [i].offset;

		trans = SITD_STS_ACTIVE;
		if (((i + 1) == urb->number_of_packets)
				&& !(urb->transfer_flags & URB_NO_INTERRUPT))
			trans |= SITD_IOC;
		trans |= length << 16;
1866
		packet->transaction = cpu_to_hc32(ehci, trans);
L
Linus Torvalds 已提交
1867 1868 1869 1870 1871 1872 1873

		/* might need to cross a buffer page within a td */
		packet->bufp = buf;
		packet->buf1 = (buf + length) & ~0x0fff;
		if (packet->buf1 != (buf & ~(u64)0x0fff))
			packet->cross = 1;

1874
		/* OUT uses multiple start-splits */
L
Linus Torvalds 已提交
1875 1876 1877 1878 1879 1880 1881 1882 1883 1884 1885 1886 1887 1888
		if (stream->bEndpointAddress & USB_DIR_IN)
			continue;
		length = (length + 187) / 188;
		if (length > 1) /* BEGIN vs ALL */
			length |= 1 << 3;
		packet->buf1 |= length;
	}
}

static int
sitd_urb_transaction (
	struct ehci_iso_stream	*stream,
	struct ehci_hcd		*ehci,
	struct urb		*urb,
A
Al Viro 已提交
1889
	gfp_t			mem_flags
L
Linus Torvalds 已提交
1890 1891 1892 1893 1894 1895 1896 1897 1898 1899 1900 1901
)
{
	struct ehci_sitd	*sitd;
	dma_addr_t		sitd_dma;
	int			i;
	struct ehci_iso_sched	*iso_sched;
	unsigned long		flags;

	iso_sched = iso_sched_alloc (urb->number_of_packets, mem_flags);
	if (iso_sched == NULL)
		return -ENOMEM;

1902
	sitd_sched_init(ehci, iso_sched, stream, urb);
L
Linus Torvalds 已提交
1903 1904 1905 1906 1907 1908 1909 1910 1911 1912

	/* allocate/init sITDs */
	spin_lock_irqsave (&ehci->lock, flags);
	for (i = 0; i < urb->number_of_packets; i++) {

		/* NOTE:  for now, we don't try to handle wraparound cases
		 * for IN (using sitd->hw_backpointer, like a FSTN), which
		 * means we never need two sitds for full speed packets.
		 */

1913 1914 1915
		/*
		 * Use siTDs from the free list, but not siTDs that may
		 * still be in use by the hardware.
L
Linus Torvalds 已提交
1916
		 */
1917 1918
		if (likely(!list_empty(&stream->free_list))) {
			sitd = list_first_entry(&stream->free_list,
L
Linus Torvalds 已提交
1919
					 struct ehci_sitd, sitd_list);
1920 1921
			if (sitd->frame == ehci->clock_frame)
				goto alloc_sitd;
L
Linus Torvalds 已提交
1922 1923
			list_del (&sitd->sitd_list);
			sitd_dma = sitd->sitd_dma;
1924
		} else {
1925
 alloc_sitd:
L
Linus Torvalds 已提交
1926 1927 1928 1929
			spin_unlock_irqrestore (&ehci->lock, flags);
			sitd = dma_pool_alloc (ehci->sitd_pool, mem_flags,
					&sitd_dma);
			spin_lock_irqsave (&ehci->lock, flags);
1930 1931 1932 1933 1934
			if (!sitd) {
				iso_sched_free(stream, iso_sched);
				spin_unlock_irqrestore(&ehci->lock, flags);
				return -ENOMEM;
			}
L
Linus Torvalds 已提交
1935 1936 1937 1938 1939 1940 1941 1942 1943 1944 1945 1946 1947 1948 1949 1950 1951 1952
		}

		memset (sitd, 0, sizeof *sitd);
		sitd->sitd_dma = sitd_dma;
		list_add (&sitd->sitd_list, &iso_sched->td_list);
	}

	/* temporarily store schedule info in hcpriv */
	urb->hcpriv = iso_sched;
	urb->error_count = 0;

	spin_unlock_irqrestore (&ehci->lock, flags);
	return 0;
}

/*-------------------------------------------------------------------------*/

static inline void
1953 1954
sitd_patch(
	struct ehci_hcd		*ehci,
L
Linus Torvalds 已提交
1955 1956 1957 1958 1959 1960 1961 1962 1963
	struct ehci_iso_stream	*stream,
	struct ehci_sitd	*sitd,
	struct ehci_iso_sched	*iso_sched,
	unsigned		index
)
{
	struct ehci_iso_packet	*uf = &iso_sched->packet [index];
	u64			bufp = uf->bufp;

1964
	sitd->hw_next = EHCI_LIST_END(ehci);
L
Linus Torvalds 已提交
1965 1966 1967
	sitd->hw_fullspeed_ep = stream->address;
	sitd->hw_uframe = stream->splits;
	sitd->hw_results = uf->transaction;
1968
	sitd->hw_backpointer = EHCI_LIST_END(ehci);
L
Linus Torvalds 已提交
1969 1970

	bufp = uf->bufp;
1971 1972
	sitd->hw_buf[0] = cpu_to_hc32(ehci, bufp);
	sitd->hw_buf_hi[0] = cpu_to_hc32(ehci, bufp >> 32);
L
Linus Torvalds 已提交
1973

1974
	sitd->hw_buf[1] = cpu_to_hc32(ehci, uf->buf1);
L
Linus Torvalds 已提交
1975 1976
	if (uf->cross)
		bufp += 4096;
1977
	sitd->hw_buf_hi[1] = cpu_to_hc32(ehci, bufp >> 32);
L
Linus Torvalds 已提交
1978 1979 1980 1981 1982 1983 1984 1985 1986 1987 1988 1989
	sitd->index = index;
}

static inline void
sitd_link (struct ehci_hcd *ehci, unsigned frame, struct ehci_sitd *sitd)
{
	/* note: sitd ordering could matter (CSPLIT then SSPLIT) */
	sitd->sitd_next = ehci->pshadow [frame];
	sitd->hw_next = ehci->periodic [frame];
	ehci->pshadow [frame].sitd = sitd;
	sitd->frame = frame;
	wmb ();
1990
	ehci->periodic[frame] = cpu_to_hc32(ehci, sitd->sitd_dma | Q_TYPE_SITD);
L
Linus Torvalds 已提交
1991 1992 1993
}

/* fit urb's sitds into the selected schedule slot; activate as needed */
A
Alan Stern 已提交
1994
static void sitd_link_urb(
L
Linus Torvalds 已提交
1995 1996 1997 1998 1999 2000 2001 2002 2003 2004 2005 2006 2007 2008 2009 2010 2011 2012 2013 2014 2015
	struct ehci_hcd		*ehci,
	struct urb		*urb,
	unsigned		mod,
	struct ehci_iso_stream	*stream
)
{
	int			packet;
	unsigned		next_uframe;
	struct ehci_iso_sched	*sched = urb->hcpriv;
	struct ehci_sitd	*sitd;

	next_uframe = stream->next_uframe;

	if (list_empty(&stream->td_list)) {
		/* usbfs ignores TT bandwidth */
		ehci_to_hcd(ehci)->self.bandwidth_allocated
				+= stream->bandwidth;
		ehci_vdbg (ehci,
			"sched devp %s ep%d%s-iso [%d] %dms/%04x\n",
			urb->dev->devpath, stream->bEndpointAddress & 0x0f,
			(stream->bEndpointAddress & USB_DIR_IN) ? "in" : "out",
2016
			(next_uframe >> 3) & (ehci->periodic_size - 1),
2017
			stream->interval, hc32_to_cpu(ehci, stream->splits));
L
Linus Torvalds 已提交
2018
	}
2019 2020

	if (ehci_to_hcd(ehci)->self.bandwidth_isoc_reqs == 0) {
2021 2022
		if (ehci->amd_pll_fix == 1)
			usb_amd_quirk_pll_disable();
2023 2024
	}

L
Linus Torvalds 已提交
2025 2026 2027 2028 2029 2030 2031 2032 2033 2034 2035 2036 2037 2038 2039
	ehci_to_hcd(ehci)->self.bandwidth_isoc_reqs++;

	/* fill sITDs frame by frame */
	for (packet = 0, sitd = NULL;
			packet < urb->number_of_packets;
			packet++) {

		/* ASSERT:  we have all necessary sitds */
		BUG_ON (list_empty (&sched->td_list));

		/* ASSERT:  no itds for this endpoint in this frame */

		sitd = list_entry (sched->td_list.next,
				struct ehci_sitd, sitd_list);
		list_move_tail (&sitd->sitd_list, &stream->td_list);
2040
		sitd->stream = stream;
2041
		sitd->urb = urb;
L
Linus Torvalds 已提交
2042

2043
		sitd_patch(ehci, stream, sitd, sched, packet);
2044
		sitd_link(ehci, (next_uframe >> 3) & (ehci->periodic_size - 1),
L
Linus Torvalds 已提交
2045 2046 2047 2048
				sitd);

		next_uframe += stream->interval << 3;
	}
2049
	stream->next_uframe = next_uframe & (mod - 1);
L
Linus Torvalds 已提交
2050 2051 2052 2053 2054

	/* don't need that schedule data any more */
	iso_sched_free (stream, sched);
	urb->hcpriv = NULL;

2055
	++ehci->isoc_count;
A
Alan Stern 已提交
2056
	enable_periodic(ehci);
L
Linus Torvalds 已提交
2057 2058 2059 2060 2061
}

/*-------------------------------------------------------------------------*/

#define	SITD_ERRS (SITD_STS_ERR | SITD_STS_DBE | SITD_STS_BABBLE \
2062
				| SITD_STS_XACT | SITD_STS_MMF)
L
Linus Torvalds 已提交
2063

2064 2065 2066 2067 2068 2069 2070 2071 2072 2073
/* Process and recycle a completed SITD.  Return true iff its urb completed,
 * and hence its completion callback probably added things to the hardware
 * schedule.
 *
 * Note that we carefully avoid recycling this descriptor until after any
 * completion callback runs, so that it won't be reused quickly.  That is,
 * assuming (a) no more than two urbs per frame on this endpoint, and also
 * (b) only this endpoint's completions submit URBs.  It seems some silicon
 * corrupts things if you reuse completed descriptors very quickly...
 */
L
Linus Torvalds 已提交
2074 2075 2076
static unsigned
sitd_complete (
	struct ehci_hcd		*ehci,
2077
	struct ehci_sitd	*sitd
L
Linus Torvalds 已提交
2078 2079 2080 2081 2082 2083 2084
) {
	struct urb				*urb = sitd->urb;
	struct usb_iso_packet_descriptor	*desc;
	u32					t;
	int					urb_index = -1;
	struct ehci_iso_stream			*stream = sitd->stream;
	struct usb_device			*dev;
2085
	unsigned				retval = false;
L
Linus Torvalds 已提交
2086 2087 2088

	urb_index = sitd->index;
	desc = &urb->iso_frame_desc [urb_index];
2089
	t = hc32_to_cpup(ehci, &sitd->hw_results);
L
Linus Torvalds 已提交
2090 2091 2092 2093 2094 2095 2096 2097 2098 2099 2100 2101 2102 2103

	/* report transfer status */
	if (t & SITD_ERRS) {
		urb->error_count++;
		if (t & SITD_STS_DBE)
			desc->status = usb_pipein (urb->pipe)
				? -ENOSR  /* hc couldn't read */
				: -ECOMM; /* hc couldn't write */
		else if (t & SITD_STS_BABBLE)
			desc->status = -EOVERFLOW;
		else /* XACT, MMF, etc */
			desc->status = -EPROTO;
	} else {
		desc->status = 0;
2104 2105
		desc->actual_length = desc->length - SITD_LENGTH(t);
		urb->actual_length += desc->actual_length;
L
Linus Torvalds 已提交
2106 2107 2108 2109
	}

	/* handle completion now? */
	if ((urb_index + 1) != urb->number_of_packets)
2110
		goto done;
L
Linus Torvalds 已提交
2111 2112 2113 2114 2115 2116

	/* ASSERT: it's really the last sitd for this urb
	list_for_each_entry (sitd, &stream->td_list, sitd_list)
		BUG_ON (sitd->urb == urb);
	 */

2117
	/* give urb back to the driver; completion often (re)submits */
2118
	dev = urb->dev;
2119
	ehci_urb_done(ehci, urb, 0);
2120
	retval = true;
L
Linus Torvalds 已提交
2121
	urb = NULL;
2122 2123

	--ehci->isoc_count;
A
Alan Stern 已提交
2124
	disable_periodic(ehci);
L
Linus Torvalds 已提交
2125

2126
	ehci_to_hcd(ehci)->self.bandwidth_isoc_reqs--;
2127
	if (ehci_to_hcd(ehci)->self.bandwidth_isoc_reqs == 0) {
2128 2129
		if (ehci->amd_pll_fix == 1)
			usb_amd_quirk_pll_enable();
2130 2131
	}

2132
	if (list_is_singular(&stream->td_list)) {
L
Linus Torvalds 已提交
2133 2134 2135 2136 2137 2138 2139
		ehci_to_hcd(ehci)->self.bandwidth_allocated
				-= stream->bandwidth;
		ehci_vdbg (ehci,
			"deschedule devp %s ep%d%s-iso\n",
			dev->devpath, stream->bEndpointAddress & 0x0f,
			(stream->bEndpointAddress & USB_DIR_IN) ? "in" : "out");
	}
2140

2141 2142
done:
	sitd->urb = NULL;
2143 2144 2145 2146 2147 2148 2149 2150 2151

	/* Add to the end of the free list for later reuse */
	list_move_tail(&sitd->sitd_list, &stream->free_list);

	/* Recycle the siTDs when the pipeline is empty (ep no longer in use) */
	if (list_empty(&stream->td_list)) {
		list_splice_tail_init(&stream->free_list,
				&ehci->cached_sitd_list);
		start_free_itds(ehci);
2152
	}
2153

2154
	return retval;
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2155 2156 2157
}


2158
static int sitd_submit (struct ehci_hcd *ehci, struct urb *urb,
A
Al Viro 已提交
2159
	gfp_t mem_flags)
L
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2160 2161 2162 2163 2164 2165 2166 2167 2168 2169 2170 2171 2172 2173 2174 2175 2176 2177 2178 2179 2180 2181 2182 2183 2184 2185 2186 2187 2188 2189 2190 2191 2192 2193 2194
{
	int			status = -EINVAL;
	unsigned long		flags;
	struct ehci_iso_stream	*stream;

	/* Get iso_stream head */
	stream = iso_stream_find (ehci, urb);
	if (stream == NULL) {
		ehci_dbg (ehci, "can't get iso stream\n");
		return -ENOMEM;
	}
	if (urb->interval != stream->interval) {
		ehci_dbg (ehci, "can't change iso interval %d --> %d\n",
			stream->interval, urb->interval);
		goto done;
	}

#ifdef EHCI_URB_TRACE
	ehci_dbg (ehci,
		"submit %p dev%s ep%d%s-iso len %d\n",
		urb, urb->dev->devpath,
		usb_pipeendpoint (urb->pipe),
		usb_pipein (urb->pipe) ? "in" : "out",
		urb->transfer_buffer_length);
#endif

	/* allocate SITDs */
	status = sitd_urb_transaction (stream, ehci, urb, mem_flags);
	if (status < 0) {
		ehci_dbg (ehci, "can't init sitds\n");
		goto done;
	}

	/* schedule ... need to lock */
	spin_lock_irqsave (&ehci->lock, flags);
2195
	if (unlikely(!HCD_HW_ACCESSIBLE(ehci_to_hcd(ehci)))) {
2196
		status = -ESHUTDOWN;
2197 2198 2199 2200 2201 2202
		goto done_not_linked;
	}
	status = usb_hcd_link_urb_to_ep(ehci_to_hcd(ehci), urb);
	if (unlikely(status))
		goto done_not_linked;
	status = iso_stream_schedule(ehci, urb, stream);
2203
	if (status == 0)
L
Linus Torvalds 已提交
2204
		sitd_link_urb (ehci, urb, ehci->periodic_size << 3, stream);
2205 2206
	else
		usb_hcd_unlink_urb_from_ep(ehci_to_hcd(ehci), urb);
2207
 done_not_linked:
L
Linus Torvalds 已提交
2208
	spin_unlock_irqrestore (&ehci->lock, flags);
2209
 done:
L
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2210 2211 2212 2213 2214
	return status;
}

/*-------------------------------------------------------------------------*/

2215
static void scan_isoc(struct ehci_hcd *ehci)
L
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2216
{
2217
	unsigned	now_uframe, frame, clock, clock_frame, mod;
L
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2218 2219 2220 2221 2222 2223 2224 2225 2226 2227
	unsigned	modified;

	mod = ehci->periodic_size << 3;

	/*
	 * When running, scan from last scan point up to "now"
	 * else clean up by scanning everything that's left.
	 * Touches as few pages as possible:  cache-friendly.
	 */
	now_uframe = ehci->next_uframe;
2228
	if (ehci->rh_state >= EHCI_RH_RUNNING) {
2229
		clock = ehci_read_frame_index(ehci);
2230
		clock_frame = (clock >> 3) & (ehci->periodic_size - 1);
K
Karsten Wiese 已提交
2231
	} else  {
L
Linus Torvalds 已提交
2232
		clock = now_uframe + mod - 1;
K
Karsten Wiese 已提交
2233 2234
		clock_frame = -1;
	}
2235
	ehci->clock_frame = clock_frame;
2236
	clock &= mod - 1;
2237
	clock_frame = clock >> 3;
L
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2238 2239 2240

	for (;;) {
		union ehci_shadow	q, *q_p;
2241
		__hc32			type, *hw_p;
2242
		unsigned		incomplete = false;
L
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2243 2244 2245 2246 2247 2248 2249 2250

		frame = now_uframe >> 3;

restart:
		/* scan each element in frame's queue for completions */
		q_p = &ehci->pshadow [frame];
		hw_p = &ehci->periodic [frame];
		q.ptr = q_p->ptr;
2251
		type = Q_NEXT_TYPE(ehci, *hw_p);
L
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2252 2253 2254 2255 2256 2257
		modified = 0;

		while (q.ptr != NULL) {
			unsigned		uf;
			int			live;

2258
			live = (ehci->rh_state >= EHCI_RH_RUNNING);
2259
			switch (hc32_to_cpu(ehci, type)) {
L
Linus Torvalds 已提交
2260
			case Q_TYPE_ITD:
2261 2262
				/* If this ITD is still active, leave it for
				 * later processing ... check the next entry.
2263 2264
				 * No need to check for activity unless the
				 * frame is current.
2265
				 */
2266 2267 2268 2269 2270 2271 2272 2273 2274 2275 2276 2277
				if (frame == clock_frame && live) {
					rmb();
					for (uf = 0; uf < 8; uf++) {
						if (q.itd->hw_transaction[uf] &
							    ITD_ACTIVE(ehci))
							break;
					}
					if (uf < 8) {
						incomplete = true;
						q_p = &q.itd->itd_next;
						hw_p = &q.itd->hw_next;
						type = Q_NEXT_TYPE(ehci,
2278
							q.itd->hw_next);
2279 2280 2281
						q = *q_p;
						break;
					}
L
Linus Torvalds 已提交
2282 2283
				}

2284 2285 2286
				/* Take finished ITDs out of the schedule
				 * and process them:  recycle, maybe report
				 * URB completion.  HC won't cache the
L
Linus Torvalds 已提交
2287 2288 2289
				 * pointer for much longer, if at all.
				 */
				*q_p = q.itd->itd_next;
2290 2291 2292 2293 2294
				if (!ehci->use_dummy_qh ||
				    q.itd->hw_next != EHCI_LIST_END(ehci))
					*hw_p = q.itd->hw_next;
				else
					*hw_p = ehci->dummy->qh_dma;
2295
				type = Q_NEXT_TYPE(ehci, q.itd->hw_next);
L
Linus Torvalds 已提交
2296
				wmb();
2297
				modified = itd_complete (ehci, q.itd);
L
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2298 2299 2300
				q = *q_p;
				break;
			case Q_TYPE_SITD:
2301 2302
				/* If this SITD is still active, leave it for
				 * later processing ... check the next entry.
2303 2304
				 * No need to check for activity unless the
				 * frame is current.
2305
				 */
2306
				if (((frame == clock_frame) ||
2307
				     (((frame + 1) & (ehci->periodic_size - 1))
2308 2309 2310 2311 2312
				      == clock_frame))
				    && live
				    && (q.sitd->hw_results &
					SITD_ACTIVE(ehci))) {

2313
					incomplete = true;
L
Linus Torvalds 已提交
2314 2315
					q_p = &q.sitd->sitd_next;
					hw_p = &q.sitd->hw_next;
2316 2317
					type = Q_NEXT_TYPE(ehci,
							q.sitd->hw_next);
L
Linus Torvalds 已提交
2318 2319 2320
					q = *q_p;
					break;
				}
2321 2322 2323 2324 2325

				/* Take finished SITDs out of the schedule
				 * and process them:  recycle, maybe report
				 * URB completion.
				 */
L
Linus Torvalds 已提交
2326
				*q_p = q.sitd->sitd_next;
2327 2328 2329 2330 2331
				if (!ehci->use_dummy_qh ||
				    q.sitd->hw_next != EHCI_LIST_END(ehci))
					*hw_p = q.sitd->hw_next;
				else
					*hw_p = ehci->dummy->qh_dma;
2332
				type = Q_NEXT_TYPE(ehci, q.sitd->hw_next);
L
Linus Torvalds 已提交
2333
				wmb();
2334
				modified = sitd_complete (ehci, q.sitd);
L
Linus Torvalds 已提交
2335 2336 2337
				q = *q_p;
				break;
			default:
2338
				ehci_dbg(ehci, "corrupt type %d frame %d shadow %p\n",
L
Linus Torvalds 已提交
2339 2340
					type, frame, q.ptr);
				// BUG ();
2341 2342 2343 2344
				/* FALL THROUGH */
			case Q_TYPE_QH:
			case Q_TYPE_FSTN:
				/* End of the iTDs and siTDs */
L
Linus Torvalds 已提交
2345
				q.ptr = NULL;
2346
				break;
L
Linus Torvalds 已提交
2347 2348 2349
			}

			/* assume completion callbacks modify the queue */
2350
			if (unlikely (modified)) {
2351
				if (likely(ehci->isoc_count > 0))
2352
					goto restart;
2353
				/* short-circuit this scan */
2354 2355 2356
				now_uframe = clock;
				break;
			}
L
Linus Torvalds 已提交
2357 2358
		}

2359 2360 2361 2362
		/* If we can tell we caught up to the hardware, stop now.
		 * We can't advance our scan without collecting the ISO
		 * transfers that are still pending in this frame.
		 */
2363
		if (incomplete && ehci->rh_state >= EHCI_RH_RUNNING) {
2364 2365 2366
			ehci->next_uframe = now_uframe;
			break;
		}
L
Linus Torvalds 已提交
2367 2368 2369 2370 2371 2372 2373 2374 2375 2376 2377 2378

		// FIXME:  this assumes we won't get lapped when
		// latencies climb; that should be rare, but...
		// detect it, and just go all the way around.
		// FLR might help detect this case, so long as latencies
		// don't exceed periodic_size msec (default 1.024 sec).

		// FIXME:  likewise assumes HC doesn't halt mid-scan

		if (now_uframe == clock) {
			unsigned	now;

2379
			if (ehci->rh_state < EHCI_RH_RUNNING
2380
					|| ehci->isoc_count == 0)
L
Linus Torvalds 已提交
2381 2382
				break;
			ehci->next_uframe = now_uframe;
2383
			now = ehci_read_frame_index(ehci) & (mod - 1);
L
Linus Torvalds 已提交
2384 2385 2386 2387 2388
			if (now_uframe == now)
				break;

			/* rescan the rest of this frame, then ... */
			clock = now;
2389
			clock_frame = clock >> 3;
2390
			ehci->clock_frame = clock_frame;
L
Linus Torvalds 已提交
2391 2392
		} else {
			now_uframe++;
2393
			now_uframe &= mod - 1;
L
Linus Torvalds 已提交
2394
		}
2395
	}
L
Linus Torvalds 已提交
2396
}