ehci-q.c 37.7 KB
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/*
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 * Copyright (C) 2001-2004 by David Brownell
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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 hardware queue manipulation ... the core.  QH/QTD manipulation.
 *
 * Control, bulk, and interrupt traffic all use "qh" lists.  They list "qtd"
 * entries describing USB transactions, max 16-20kB/entry (with 4kB-aligned
 * buffers needed for the larger number).  We use one QH per endpoint, queue
 * multiple urbs (all three types) per endpoint.  URBs may need several qtds.
 *
 * ISO traffic uses "ISO TD" (itd, and sitd) records, and (along with
 * interrupts) needs careful scheduling.  Performance improvements can be
 * an ongoing challenge.  That's in "ehci-sched.c".
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 *
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 * USB 1.1 devices are handled (a) by "companion" OHCI or UHCI root hubs,
 * or otherwise through transaction translators (TTs) in USB 2.0 hubs using
 * (b) special fields in qh entries or (c) split iso entries.  TTs will
 * buffer low/full speed data so the host collects it at high speed.
 */

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

/* fill a qtd, returning how much of the buffer we were able to queue up */

static int
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qtd_fill(struct ehci_hcd *ehci, struct ehci_qtd *qtd, dma_addr_t buf,
		  size_t len, int token, int maxpacket)
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{
	int	i, count;
	u64	addr = buf;

	/* one buffer entry per 4K ... first might be short or unaligned */
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	qtd->hw_buf[0] = cpu_to_hc32(ehci, (u32)addr);
	qtd->hw_buf_hi[0] = cpu_to_hc32(ehci, (u32)(addr >> 32));
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	count = 0x1000 - (buf & 0x0fff);	/* rest of that page */
	if (likely (len < count))		/* ... iff needed */
		count = len;
	else {
		buf +=  0x1000;
		buf &= ~0x0fff;

		/* per-qtd limit: from 16K to 20K (best alignment) */
		for (i = 1; count < len && i < 5; i++) {
			addr = buf;
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			qtd->hw_buf[i] = cpu_to_hc32(ehci, (u32)addr);
			qtd->hw_buf_hi[i] = cpu_to_hc32(ehci,
					(u32)(addr >> 32));
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			buf += 0x1000;
			if ((count + 0x1000) < len)
				count += 0x1000;
			else
				count = len;
		}

		/* short packets may only terminate transfers */
		if (count != len)
			count -= (count % maxpacket);
	}
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	qtd->hw_token = cpu_to_hc32(ehci, (count << 16) | token);
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	qtd->length = count;

	return count;
}

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

static inline void
qh_update (struct ehci_hcd *ehci, struct ehci_qh *qh, struct ehci_qtd *qtd)
{
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	struct ehci_qh_hw *hw = qh->hw;

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	/* writes to an active overlay are unsafe */
	BUG_ON(qh->qh_state != QH_STATE_IDLE);

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	hw->hw_qtd_next = QTD_NEXT(ehci, qtd->qtd_dma);
	hw->hw_alt_next = EHCI_LIST_END(ehci);
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	/* Except for control endpoints, we make hardware maintain data
	 * toggle (like OHCI) ... here (re)initialize the toggle in the QH,
	 * and set the pseudo-toggle in udev. Only usb_clear_halt() will
	 * ever clear it.
	 */
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	if (!(hw->hw_info1 & cpu_to_hc32(ehci, QH_TOGGLE_CTL))) {
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		unsigned	is_out, epnum;

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		is_out = qh->is_out;
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		epnum = (hc32_to_cpup(ehci, &hw->hw_info1) >> 8) & 0x0f;
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		if (unlikely (!usb_gettoggle (qh->dev, epnum, is_out))) {
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			hw->hw_token &= ~cpu_to_hc32(ehci, QTD_TOGGLE);
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			usb_settoggle (qh->dev, epnum, is_out, 1);
		}
	}

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	hw->hw_token &= cpu_to_hc32(ehci, QTD_TOGGLE | QTD_STS_PING);
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}

/* if it weren't for a common silicon quirk (writing the dummy into the qh
 * overlay, so qh->hw_token wrongly becomes inactive/halted), only fault
 * recovery (including urb dequeue) would need software changes to a QH...
 */
static void
qh_refresh (struct ehci_hcd *ehci, struct ehci_qh *qh)
{
	struct ehci_qtd *qtd;

	if (list_empty (&qh->qtd_list))
		qtd = qh->dummy;
	else {
		qtd = list_entry (qh->qtd_list.next,
				struct ehci_qtd, qtd_list);
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		/*
		 * first qtd may already be partially processed.
		 * If we come here during unlink, the QH overlay region
		 * might have reference to the just unlinked qtd. The
		 * qtd is updated in qh_completions(). Update the QH
		 * overlay here.
		 */
		if (cpu_to_hc32(ehci, qtd->qtd_dma) == qh->hw->hw_current) {
			qh->hw->hw_qtd_next = qtd->hw_next;
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			qtd = NULL;
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		}
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	}

	if (qtd)
		qh_update (ehci, qh, qtd);
}

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

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static void qh_link_async(struct ehci_hcd *ehci, struct ehci_qh *qh);

static void ehci_clear_tt_buffer_complete(struct usb_hcd *hcd,
		struct usb_host_endpoint *ep)
{
	struct ehci_hcd		*ehci = hcd_to_ehci(hcd);
	struct ehci_qh		*qh = ep->hcpriv;
	unsigned long		flags;

	spin_lock_irqsave(&ehci->lock, flags);
	qh->clearing_tt = 0;
	if (qh->qh_state == QH_STATE_IDLE && !list_empty(&qh->qtd_list)
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			&& ehci->rh_state == EHCI_RH_RUNNING)
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		qh_link_async(ehci, qh);
	spin_unlock_irqrestore(&ehci->lock, flags);
}

static void ehci_clear_tt_buffer(struct ehci_hcd *ehci, struct ehci_qh *qh,
		struct urb *urb, u32 token)
{

	/* If an async split transaction gets an error or is unlinked,
	 * the TT buffer may be left in an indeterminate state.  We
	 * have to clear the TT buffer.
	 *
	 * Note: this routine is never called for Isochronous transfers.
	 */
	if (urb->dev->tt && !usb_pipeint(urb->pipe) && !qh->clearing_tt) {
#ifdef DEBUG
		struct usb_device *tt = urb->dev->tt->hub;
		dev_dbg(&tt->dev,
			"clear tt buffer port %d, a%d ep%d t%08x\n",
			urb->dev->ttport, urb->dev->devnum,
			usb_pipeendpoint(urb->pipe), token);
#endif /* DEBUG */
		if (!ehci_is_TDI(ehci)
				|| urb->dev->tt->hub !=
				   ehci_to_hcd(ehci)->self.root_hub) {
			if (usb_hub_clear_tt_buffer(urb) == 0)
				qh->clearing_tt = 1;
		} else {

			/* REVISIT ARC-derived cores don't clear the root
			 * hub TT buffer in this way...
			 */
		}
	}
}

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static int qtd_copy_status (
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	struct ehci_hcd *ehci,
	struct urb *urb,
	size_t length,
	u32 token
)
{
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	int	status = -EINPROGRESS;

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	/* count IN/OUT bytes, not SETUP (even short packets) */
	if (likely (QTD_PID (token) != 2))
		urb->actual_length += length - QTD_LENGTH (token);

	/* don't modify error codes */
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	if (unlikely(urb->unlinked))
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		return status;
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	/* force cleanup after short read; not always an error */
	if (unlikely (IS_SHORT_READ (token)))
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		status = -EREMOTEIO;
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	/* serious "can't proceed" faults reported by the hardware */
	if (token & QTD_STS_HALT) {
		if (token & QTD_STS_BABBLE) {
			/* FIXME "must" disable babbling device's port too */
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			status = -EOVERFLOW;
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		/* CERR nonzero + halt --> stall */
		} else if (QTD_CERR(token)) {
			status = -EPIPE;

		/* In theory, more than one of the following bits can be set
		 * since they are sticky and the transaction is retried.
		 * Which to test first is rather arbitrary.
		 */
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		} else if (token & QTD_STS_MMF) {
			/* fs/ls interrupt xfer missed the complete-split */
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			status = -EPROTO;
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		} else if (token & QTD_STS_DBE) {
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			status = (QTD_PID (token) == 1) /* IN ? */
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				? -ENOSR  /* hc couldn't read data */
				: -ECOMM; /* hc couldn't write data */
		} else if (token & QTD_STS_XACT) {
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			/* timeout, bad CRC, wrong PID, etc */
			ehci_dbg(ehci, "devpath %s ep%d%s 3strikes\n",
				urb->dev->devpath,
				usb_pipeendpoint(urb->pipe),
				usb_pipein(urb->pipe) ? "in" : "out");
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			status = -EPROTO;
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		} else {	/* unknown */
			status = -EPROTO;
		}
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		ehci_vdbg (ehci,
			"dev%d ep%d%s qtd token %08x --> status %d\n",
			usb_pipedevice (urb->pipe),
			usb_pipeendpoint (urb->pipe),
			usb_pipein (urb->pipe) ? "in" : "out",
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			token, status);
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	}
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	return status;
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}

static void
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ehci_urb_done(struct ehci_hcd *ehci, struct urb *urb, int status)
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__releases(ehci->lock)
__acquires(ehci->lock)
{
	if (likely (urb->hcpriv != NULL)) {
		struct ehci_qh	*qh = (struct ehci_qh *) urb->hcpriv;

		/* S-mask in a QH means it's an interrupt urb */
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		if ((qh->hw->hw_info2 & cpu_to_hc32(ehci, QH_SMASK)) != 0) {
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			/* ... update hc-wide periodic stats (for usbfs) */
			ehci_to_hcd(ehci)->self.bandwidth_int_reqs--;
		}
	}

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	if (unlikely(urb->unlinked)) {
		COUNT(ehci->stats.unlink);
	} else {
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		/* report non-error and short read status as zero */
		if (status == -EINPROGRESS || status == -EREMOTEIO)
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			status = 0;
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		COUNT(ehci->stats.complete);
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	}

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

	/* complete() can reenter this HCD */
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	usb_hcd_unlink_urb_from_ep(ehci_to_hcd(ehci), urb);
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	spin_unlock (&ehci->lock);
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	usb_hcd_giveback_urb(ehci_to_hcd(ehci), urb, status);
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	spin_lock (&ehci->lock);
}

static int qh_schedule (struct ehci_hcd *ehci, struct ehci_qh *qh);

/*
 * Process and free completed qtds for a qh, returning URBs to drivers.
 * Chases up to qh->hw_current.  Returns number of completions called,
 * indicating how much "real" work we did.
 */
static unsigned
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qh_completions (struct ehci_hcd *ehci, struct ehci_qh *qh)
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{
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	struct ehci_qtd		*last, *end = qh->dummy;
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	struct list_head	*entry, *tmp;
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	int			last_status;
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	int			stopped;
	unsigned		count = 0;
	u8			state;
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	struct ehci_qh_hw	*hw = qh->hw;
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	if (unlikely (list_empty (&qh->qtd_list)))
		return count;

	/* completions (or tasks on other cpus) must never clobber HALT
	 * till we've gone through and cleaned everything up, even when
	 * they add urbs to this qh's queue or mark them for unlinking.
	 *
	 * NOTE:  unlinking expects to be done in queue order.
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	 *
	 * It's a bug for qh->qh_state to be anything other than
	 * QH_STATE_IDLE, unless our caller is scan_async() or
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	 * scan_intr().
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	 */
	state = qh->qh_state;
	qh->qh_state = QH_STATE_COMPLETING;
	stopped = (state == QH_STATE_IDLE);

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 rescan:
	last = NULL;
	last_status = -EINPROGRESS;
	qh->needs_rescan = 0;

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	/* remove de-activated QTDs from front of queue.
	 * after faults (including short reads), cleanup this urb
	 * then let the queue advance.
	 * if queue is stopped, handles unlinks.
	 */
	list_for_each_safe (entry, tmp, &qh->qtd_list) {
		struct ehci_qtd	*qtd;
		struct urb	*urb;
		u32		token = 0;

		qtd = list_entry (entry, struct ehci_qtd, qtd_list);
		urb = qtd->urb;

		/* clean up any state from previous QTD ...*/
		if (last) {
			if (likely (last->urb != urb)) {
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				ehci_urb_done(ehci, last->urb, last_status);
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				count++;
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				last_status = -EINPROGRESS;
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			}
			ehci_qtd_free (ehci, last);
			last = NULL;
		}

		/* ignore urbs submitted during completions we reported */
		if (qtd == end)
			break;

		/* hardware copies qtd out of qh overlay */
		rmb ();
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		token = hc32_to_cpu(ehci, qtd->hw_token);
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		/* always clean up qtds the hc de-activated */
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 retry_xacterr:
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		if ((token & QTD_STS_ACTIVE) == 0) {

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			/* Report Data Buffer Error: non-fatal but useful */
			if (token & QTD_STS_DBE)
				ehci_dbg(ehci,
					"detected DataBufferErr for urb %p ep%d%s len %d, qtd %p [qh %p]\n",
					urb,
					usb_endpoint_num(&urb->ep->desc),
					usb_endpoint_dir_in(&urb->ep->desc) ? "in" : "out",
					urb->transfer_buffer_length,
					qtd,
					qh);

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			/* on STALL, error, and short reads this urb must
			 * complete and all its qtds must be recycled.
			 */
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			if ((token & QTD_STS_HALT) != 0) {
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				/* retry transaction errors until we
				 * reach the software xacterr limit
				 */
				if ((token & QTD_STS_XACT) &&
						QTD_CERR(token) == 0 &&
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						++qh->xacterrs < QH_XACTERR_MAX &&
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						!urb->unlinked) {
					ehci_dbg(ehci,
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	"detected XactErr len %zu/%zu retry %d\n",
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	qtd->length - QTD_LENGTH(token), qtd->length, qh->xacterrs);
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					/* reset the token in the qtd and the
					 * qh overlay (which still contains
					 * the qtd) so that we pick up from
					 * where we left off
					 */
					token &= ~QTD_STS_HALT;
					token |= QTD_STS_ACTIVE |
							(EHCI_TUNE_CERR << 10);
					qtd->hw_token = cpu_to_hc32(ehci,
							token);
					wmb();
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					hw->hw_token = cpu_to_hc32(ehci,
							token);
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					goto retry_xacterr;
				}
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				stopped = 1;

			/* magic dummy for some short reads; qh won't advance.
			 * that silicon quirk can kick in with this dummy too.
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			 *
			 * other short reads won't stop the queue, including
			 * control transfers (status stage handles that) or
			 * most other single-qtd reads ... the queue stops if
			 * URB_SHORT_NOT_OK was set so the driver submitting
			 * the urbs could clean it up.
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			 */
			} else if (IS_SHORT_READ (token)
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					&& !(qtd->hw_alt_next
						& EHCI_LIST_END(ehci))) {
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				stopped = 1;
			}

		/* stop scanning when we reach qtds the hc is using */
		} else if (likely (!stopped
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				&& ehci->rh_state >= EHCI_RH_RUNNING)) {
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			break;

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		/* scan the whole queue for unlinks whenever it stops */
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		} else {
			stopped = 1;

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			/* cancel everything if we halt, suspend, etc */
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			if (ehci->rh_state < EHCI_RH_RUNNING)
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				last_status = -ESHUTDOWN;
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			/* this qtd is active; skip it unless a previous qtd
			 * for its urb faulted, or its urb was canceled.
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			 */
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			else if (last_status == -EINPROGRESS && !urb->unlinked)
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				continue;
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			/* qh unlinked; token in overlay may be most current */
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			if (state == QH_STATE_IDLE
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					&& cpu_to_hc32(ehci, qtd->qtd_dma)
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						== hw->hw_current) {
				token = hc32_to_cpu(ehci, hw->hw_token);
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				/* An unlink may leave an incomplete
				 * async transaction in the TT buffer.
				 * We have to clear it.
				 */
				ehci_clear_tt_buffer(ehci, qh, urb, token);
			}
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		}
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		/* unless we already know the urb's status, collect qtd status
		 * and update count of bytes transferred.  in common short read
		 * cases with only one data qtd (including control transfers),
		 * queue processing won't halt.  but with two or more qtds (for
		 * example, with a 32 KB transfer), when the first qtd gets a
		 * short read the second must be removed by hand.
		 */
		if (last_status == -EINPROGRESS) {
			last_status = qtd_copy_status(ehci, urb,
					qtd->length, token);
			if (last_status == -EREMOTEIO
					&& (qtd->hw_alt_next
						& EHCI_LIST_END(ehci)))
				last_status = -EINPROGRESS;
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			/* As part of low/full-speed endpoint-halt processing
			 * we must clear the TT buffer (11.17.5).
			 */
			if (unlikely(last_status != -EINPROGRESS &&
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					last_status != -EREMOTEIO)) {
				/* The TT's in some hubs malfunction when they
				 * receive this request following a STALL (they
				 * stop sending isochronous packets).  Since a
				 * STALL can't leave the TT buffer in a busy
				 * state (if you believe Figures 11-48 - 11-51
				 * in the USB 2.0 spec), we won't clear the TT
				 * buffer in this case.  Strictly speaking this
				 * is a violation of the spec.
				 */
				if (last_status != -EPIPE)
					ehci_clear_tt_buffer(ehci, qh, urb,
							token);
			}
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		}
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		/* if we're removing something not at the queue head,
		 * patch the hardware queue pointer.
		 */
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		if (stopped && qtd->qtd_list.prev != &qh->qtd_list) {
			last = list_entry (qtd->qtd_list.prev,
					struct ehci_qtd, qtd_list);
			last->hw_next = qtd->hw_next;
		}
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		/* remove qtd; it's recycled after possible urb completion */
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		list_del (&qtd->qtd_list);
		last = qtd;
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		/* reinit the xacterr counter for the next qtd */
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		qh->xacterrs = 0;
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	}

	/* last urb's completion might still need calling */
	if (likely (last != NULL)) {
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		ehci_urb_done(ehci, last->urb, last_status);
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		count++;
		ehci_qtd_free (ehci, last);
	}

531 532 533 534 535 536 537 538 539 540 541 542 543 544 545
	/* Do we need to rescan for URBs dequeued during a giveback? */
	if (unlikely(qh->needs_rescan)) {
		/* If the QH is already unlinked, do the rescan now. */
		if (state == QH_STATE_IDLE)
			goto rescan;

		/* Otherwise we have to wait until the QH is fully unlinked.
		 * Our caller will start an unlink if qh->needs_rescan is
		 * set.  But if an unlink has already started, nothing needs
		 * to be done.
		 */
		if (state != QH_STATE_LINKED)
			qh->needs_rescan = 0;
	}

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	/* restore original state; caller must unlink or relink */
	qh->qh_state = state;

	/* be sure the hardware's done with the qh before refreshing
	 * it after fault cleanup, or recovering from silicon wrongly
	 * overlaying the dummy qtd (which reduces DMA chatter).
	 */
553
	if (stopped != 0 || hw->hw_qtd_next == EHCI_LIST_END(ehci)) {
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		switch (state) {
		case QH_STATE_IDLE:
			qh_refresh(ehci, qh);
			break;
		case QH_STATE_LINKED:
559 560 561 562 563 564 565 566 567
			/* We won't refresh a QH that's linked (after the HC
			 * stopped the queue).  That avoids a race:
			 *  - HC reads first part of QH;
			 *  - CPU updates that first part and the token;
			 *  - HC reads rest of that QH, including token
			 * Result:  HC gets an inconsistent image, and then
			 * DMAs to/from the wrong memory (corrupting it).
			 *
			 * That should be rare for interrupt transfers,
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			 * except maybe high bandwidth ...
			 */
570 571 572

			/* Tell the caller to start an unlink */
			qh->needs_rescan = 1;
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			break;
		/* otherwise, unlink already started */
		}
	}

	return count;
}

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

// high bandwidth multiplier, as encoded in highspeed endpoint descriptors
#define hb_mult(wMaxPacketSize) (1 + (((wMaxPacketSize) >> 11) & 0x03))
// ... and packet size, for any kind of endpoint descriptor
#define max_packet(wMaxPacketSize) ((wMaxPacketSize) & 0x07ff)

/*
 * reverse of qh_urb_transaction:  free a list of TDs.
 * used for cleanup after errors, before HC sees an URB's TDs.
 */
static void qtd_list_free (
	struct ehci_hcd		*ehci,
	struct urb		*urb,
	struct list_head	*qtd_list
) {
	struct list_head	*entry, *temp;

	list_for_each_safe (entry, temp, qtd_list) {
		struct ehci_qtd	*qtd;

		qtd = list_entry (entry, struct ehci_qtd, qtd_list);
		list_del (&qtd->qtd_list);
		ehci_qtd_free (ehci, qtd);
	}
}

/*
 * create a list of filled qtds for this URB; won't link into qh.
 */
static struct list_head *
qh_urb_transaction (
	struct ehci_hcd		*ehci,
	struct urb		*urb,
	struct list_head	*head,
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	gfp_t			flags
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) {
	struct ehci_qtd		*qtd, *qtd_prev;
	dma_addr_t		buf;
620
	int			len, this_sg_len, maxpacket;
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	int			is_input;
	u32			token;
623 624
	int			i;
	struct scatterlist	*sg;
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	/*
	 * URBs map to sequences of QTDs:  one logical transaction
	 */
	qtd = ehci_qtd_alloc (ehci, flags);
	if (unlikely (!qtd))
		return NULL;
	list_add_tail (&qtd->qtd_list, head);
	qtd->urb = urb;

	token = QTD_STS_ACTIVE;
	token |= (EHCI_TUNE_CERR << 10);
	/* for split transactions, SplitXState initialized to zero */

	len = urb->transfer_buffer_length;
	is_input = usb_pipein (urb->pipe);
	if (usb_pipecontrol (urb->pipe)) {
		/* SETUP pid */
643 644 645
		qtd_fill(ehci, qtd, urb->setup_dma,
				sizeof (struct usb_ctrlrequest),
				token | (2 /* "setup" */ << 8), 8);
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		/* ... and always at least one more pid */
		token ^= QTD_TOGGLE;
		qtd_prev = qtd;
		qtd = ehci_qtd_alloc (ehci, flags);
		if (unlikely (!qtd))
			goto cleanup;
		qtd->urb = urb;
654
		qtd_prev->hw_next = QTD_NEXT(ehci, qtd->qtd_dma);
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		list_add_tail (&qtd->qtd_list, head);
656 657 658 659

		/* for zero length DATA stages, STATUS is always IN */
		if (len == 0)
			token |= (1 /* "in" */ << 8);
660
	}
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	/*
	 * data transfer stage:  buffer setup
	 */
665
	i = urb->num_mapped_sgs;
666
	if (len > 0 && i > 0) {
667
		sg = urb->sg;
668 669 670 671 672 673 674 675 676 677 678
		buf = sg_dma_address(sg);

		/* urb->transfer_buffer_length may be smaller than the
		 * size of the scatterlist (or vice versa)
		 */
		this_sg_len = min_t(int, sg_dma_len(sg), len);
	} else {
		sg = NULL;
		buf = urb->transfer_dma;
		this_sg_len = len;
	}
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680
	if (is_input)
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		token |= (1 /* "in" */ << 8);
	/* else it's already initted to "out" pid (0 << 8) */

	maxpacket = max_packet(usb_maxpacket(urb->dev, urb->pipe, !is_input));

	/*
	 * buffer gets wrapped in one or more qtds;
	 * last one may be "short" (including zero len)
	 * and may serve as a control status ack
	 */
	for (;;) {
		int this_qtd_len;

694 695 696
		this_qtd_len = qtd_fill(ehci, qtd, buf, this_sg_len, token,
				maxpacket);
		this_sg_len -= this_qtd_len;
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		len -= this_qtd_len;
		buf += this_qtd_len;
699 700 701 702 703 704

		/*
		 * short reads advance to a "magic" dummy instead of the next
		 * qtd ... that forces the queue to stop, for manual cleanup.
		 * (this will usually be overridden later.)
		 */
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		if (is_input)
706
			qtd->hw_alt_next = ehci->async->hw->hw_alt_next;
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		/* qh makes control packets use qtd toggle; maybe switch it */
		if ((maxpacket & (this_qtd_len + (maxpacket - 1))) == 0)
			token ^= QTD_TOGGLE;

712 713 714 715 716 717 718
		if (likely(this_sg_len <= 0)) {
			if (--i <= 0 || len <= 0)
				break;
			sg = sg_next(sg);
			buf = sg_dma_address(sg);
			this_sg_len = min_t(int, sg_dma_len(sg), len);
		}
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		qtd_prev = qtd;
		qtd = ehci_qtd_alloc (ehci, flags);
		if (unlikely (!qtd))
			goto cleanup;
		qtd->urb = urb;
725
		qtd_prev->hw_next = QTD_NEXT(ehci, qtd->qtd_dma);
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		list_add_tail (&qtd->qtd_list, head);
	}

729 730 731 732
	/*
	 * unless the caller requires manual cleanup after short reads,
	 * have the alt_next mechanism keep the queue running after the
	 * last data qtd (the only one, for control and most other cases).
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	 */
	if (likely ((urb->transfer_flags & URB_SHORT_NOT_OK) == 0
				|| usb_pipecontrol (urb->pipe)))
736
		qtd->hw_alt_next = EHCI_LIST_END(ehci);
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	/*
	 * control requests may need a terminating data "status" ack;
740 741
	 * other OUT ones may need a terminating short packet
	 * (zero length).
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	 */
743
	if (likely (urb->transfer_buffer_length != 0)) {
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		int	one_more = 0;

		if (usb_pipecontrol (urb->pipe)) {
			one_more = 1;
			token ^= 0x0100;	/* "in" <--> "out"  */
			token |= QTD_TOGGLE;	/* force DATA1 */
750
		} else if (usb_pipeout(urb->pipe)
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				&& (urb->transfer_flags & URB_ZERO_PACKET)
				&& !(urb->transfer_buffer_length % maxpacket)) {
			one_more = 1;
		}
		if (one_more) {
			qtd_prev = qtd;
			qtd = ehci_qtd_alloc (ehci, flags);
			if (unlikely (!qtd))
				goto cleanup;
			qtd->urb = urb;
761
			qtd_prev->hw_next = QTD_NEXT(ehci, qtd->qtd_dma);
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			list_add_tail (&qtd->qtd_list, head);

			/* never any data in such packets */
765
			qtd_fill(ehci, qtd, 0, 0, token, 0);
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		}
	}

	/* by default, enable interrupt on urb completion */
	if (likely (!(urb->transfer_flags & URB_NO_INTERRUPT)))
771
		qtd->hw_token |= cpu_to_hc32(ehci, QTD_IOC);
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	return head;

cleanup:
	qtd_list_free (ehci, urb, head);
	return NULL;
}

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

// Would be best to create all qh's from config descriptors,
// when each interface/altsetting is established.  Unlink
// any previous qh and cancel its urbs first; endpoints are
// implicitly reset then (data toggle too).
// That'd mean updating how usbcore talks to HCDs. (2.7?)


/*
 * Each QH holds a qtd list; a QH is used for everything except iso.
 *
 * For interrupt urbs, the scheduler must set the microframe scheduling
 * mask(s) each time the QH gets scheduled.  For highspeed, that's
 * just one microframe in the s-mask.  For split interrupt transactions
 * there are additional complications: c-mask, maybe FSTNs.
 */
static struct ehci_qh *
qh_make (
	struct ehci_hcd		*ehci,
	struct urb		*urb,
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	gfp_t			flags
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) {
	struct ehci_qh		*qh = ehci_qh_alloc (ehci, flags);
	u32			info1 = 0, info2 = 0;
	int			is_input, type;
	int			maxp = 0;
806
	struct usb_tt		*tt = urb->dev->tt;
807
	struct ehci_qh_hw	*hw;
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	if (!qh)
		return qh;

	/*
	 * init endpoint/device data for this QH
	 */
	info1 |= usb_pipeendpoint (urb->pipe) << 8;
	info1 |= usb_pipedevice (urb->pipe) << 0;

	is_input = usb_pipein (urb->pipe);
	type = usb_pipetype (urb->pipe);
	maxp = usb_maxpacket (urb->dev, urb->pipe, !is_input);

822 823 824 825 826 827 828 829
	/* 1024 byte maxpacket is a hardware ceiling.  High bandwidth
	 * acts like up to 3KB, but is built from smaller packets.
	 */
	if (max_packet(maxp) > 1024) {
		ehci_dbg(ehci, "bogus qh maxpacket %d\n", max_packet(maxp));
		goto done;
	}

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	/* Compute interrupt scheduling parameters just once, and save.
	 * - allowing for high bandwidth, how many nsec/uframe are used?
	 * - split transactions need a second CSPLIT uframe; same question
	 * - splits also need a schedule gap (for full/low speed I/O)
	 * - qh has a polling interval
	 *
	 * For control/bulk requests, the HC or TT handles these.
	 */
	if (type == PIPE_INTERRUPT) {
839 840 841
		qh->usecs = NS_TO_US(usb_calc_bus_time(USB_SPEED_HIGH,
				is_input, 0,
				hb_mult(maxp) * max_packet(maxp)));
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		qh->start = NO_FRAME;

		if (urb->dev->speed == USB_SPEED_HIGH) {
			qh->c_usecs = 0;
			qh->gap_uf = 0;

			qh->period = urb->interval >> 3;
			if (qh->period == 0 && urb->interval != 1) {
				/* NOTE interval 2 or 4 uframes could work.
				 * But interval 1 scheduling is simpler, and
				 * includes high bandwidth.
				 */
854 855 856 857
				urb->interval = 1;
			} else if (qh->period > ehci->periodic_size) {
				qh->period = ehci->periodic_size;
				urb->interval = qh->period << 3;
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			}
		} else {
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			int		think_time;

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			/* gap is f(FS/LS transfer times) */
			qh->gap_uf = 1 + usb_calc_bus_time (urb->dev->speed,
					is_input, 0, maxp) / (125 * 1000);

			/* FIXME this just approximates SPLIT/CSPLIT times */
			if (is_input) {		// SPLIT, gap, CSPLIT+DATA
				qh->c_usecs = qh->usecs + HS_USECS (0);
				qh->usecs = HS_USECS (1);
			} else {		// SPLIT+DATA, gap, CSPLIT
				qh->usecs += HS_USECS (1);
				qh->c_usecs = HS_USECS (0);
			}

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			think_time = tt ? tt->think_time : 0;
			qh->tt_usecs = NS_TO_US (think_time +
					usb_calc_bus_time (urb->dev->speed,
					is_input, 0, max_packet (maxp)));
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			qh->period = urb->interval;
880 881 882 883
			if (qh->period > ehci->periodic_size) {
				qh->period = ehci->periodic_size;
				urb->interval = qh->period;
			}
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		}
	}

	/* support for tt scheduling, and access to toggles */
888
	qh->dev = urb->dev;
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	/* using TT? */
	switch (urb->dev->speed) {
	case USB_SPEED_LOW:
893
		info1 |= QH_LOW_SPEED;
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		/* FALL THROUGH */

	case USB_SPEED_FULL:
		/* EPS 0 means "full" */
		if (type != PIPE_INTERRUPT)
			info1 |= (EHCI_TUNE_RL_TT << 28);
		if (type == PIPE_CONTROL) {
901 902
			info1 |= QH_CONTROL_EP;		/* for TT */
			info1 |= QH_TOGGLE_CTL;		/* toggle from qtd */
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		}
		info1 |= maxp << 16;

		info2 |= (EHCI_TUNE_MULT_TT << 30);
907 908 909 910 911 912 913 914

		/* Some Freescale processors have an erratum in which the
		 * port number in the queue head was 0..N-1 instead of 1..N.
		 */
		if (ehci_has_fsl_portno_bug(ehci))
			info2 |= (urb->dev->ttport-1) << 23;
		else
			info2 |= urb->dev->ttport << 23;
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		/* set the address of the TT; for TDI's integrated
		 * root hub tt, leave it zeroed.
		 */
919 920
		if (tt && tt->hub != ehci_to_hcd(ehci)->self.root_hub)
			info2 |= tt->hub->devnum << 16;
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		/* NOTE:  if (PIPE_INTERRUPT) { scheduler sets c-mask } */

		break;

	case USB_SPEED_HIGH:		/* no TT involved */
927
		info1 |= QH_HIGH_SPEED;
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		if (type == PIPE_CONTROL) {
			info1 |= (EHCI_TUNE_RL_HS << 28);
			info1 |= 64 << 16;	/* usb2 fixed maxpacket */
931
			info1 |= QH_TOGGLE_CTL;	/* toggle from qtd */
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			info2 |= (EHCI_TUNE_MULT_HS << 30);
		} else if (type == PIPE_BULK) {
			info1 |= (EHCI_TUNE_RL_HS << 28);
935 936 937 938 939 940 941
			/* The USB spec says that high speed bulk endpoints
			 * always use 512 byte maxpacket.  But some device
			 * vendors decided to ignore that, and MSFT is happy
			 * to help them do so.  So now people expect to use
			 * such nonconformant devices with Linux too; sigh.
			 */
			info1 |= max_packet(maxp) << 16;
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			info2 |= (EHCI_TUNE_MULT_HS << 30);
		} else {		/* PIPE_INTERRUPT */
			info1 |= max_packet (maxp) << 16;
			info2 |= hb_mult (maxp) << 30;
		}
		break;
	default:
949 950
		ehci_dbg(ehci, "bogus dev %p speed %d\n", urb->dev,
			urb->dev->speed);
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done:
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		qh_destroy(ehci, qh);
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		return NULL;
	}

	/* NOTE:  if (PIPE_INTERRUPT) { scheduler sets s-mask } */

	/* init as live, toggle clear, advance to dummy */
	qh->qh_state = QH_STATE_IDLE;
960 961 962
	hw = qh->hw;
	hw->hw_info1 = cpu_to_hc32(ehci, info1);
	hw->hw_info2 = cpu_to_hc32(ehci, info2);
963
	qh->is_out = !is_input;
964
	usb_settoggle (urb->dev, usb_pipeendpoint (urb->pipe), !is_input, 1);
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	qh_refresh (ehci, qh);
	return qh;
}

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

971 972 973 974 975 976 977 978 979 980
static void enable_async(struct ehci_hcd *ehci)
{
	if (ehci->async_count++)
		return;

	/* Stop waiting to turn off the async schedule */
	ehci->enabled_hrtimer_events &= ~BIT(EHCI_HRTIMER_DISABLE_ASYNC);

	/* Don't start the schedule until ASS is 0 */
	ehci_poll_ASS(ehci);
981
	turn_on_io_watchdog(ehci);
982 983 984 985 986 987 988 989 990 991 992 993 994 995
}

static void disable_async(struct ehci_hcd *ehci)
{
	if (--ehci->async_count)
		return;

	/* The async schedule and async_unlink list are supposed to be empty */
	WARN_ON(ehci->async->qh_next.qh || ehci->async_unlink);

	/* Don't turn off the schedule until ASS is 1 */
	ehci_poll_ASS(ehci);
}

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/* move qh (and its qtds) onto async queue; maybe enable queue.  */

static void qh_link_async (struct ehci_hcd *ehci, struct ehci_qh *qh)
{
1000
	__hc32		dma = QH_NEXT(ehci, qh->qh_dma);
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	struct ehci_qh	*head;

1003 1004 1005 1006
	/* Don't link a QH if there's a Clear-TT-Buffer pending */
	if (unlikely(qh->clearing_tt))
		return;

1007 1008
	WARN_ON(qh->qh_state != QH_STATE_IDLE);

1009
	/* clear halt and/or toggle; and maybe recover from silicon quirk */
1010
	qh_refresh(ehci, qh);
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	/* splice right after start */
1013
	head = ehci->async;
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	qh->qh_next = head->qh_next;
1015
	qh->hw->hw_next = head->hw->hw_next;
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	wmb ();

	head->qh_next.qh = qh;
1019
	head->hw->hw_next = dma;
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1021
	qh->xacterrs = 0;
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	qh->qh_state = QH_STATE_LINKED;
	/* qtd completions reported later by interrupt */
1024 1025

	enable_async(ehci);
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}

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

/*
 * For control/bulk/interrupt, return QH with these TDs appended.
 * Allocates and initializes the QH if necessary.
 * Returns null if it can't allocate a QH it needs to.
 * If the QH has TDs (urbs) already, that's great.
 */
static struct ehci_qh *qh_append_tds (
	struct ehci_hcd		*ehci,
	struct urb		*urb,
	struct list_head	*qtd_list,
	int			epnum,
	void			**ptr
)
{
	struct ehci_qh		*qh = NULL;
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	__hc32			qh_addr_mask = cpu_to_hc32(ehci, 0x7f);
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	qh = (struct ehci_qh *) *ptr;
	if (unlikely (qh == NULL)) {
		/* can't sleep here, we have ehci->lock... */
		qh = qh_make (ehci, urb, GFP_ATOMIC);
		*ptr = qh;
	}
	if (likely (qh != NULL)) {
		struct ehci_qtd	*qtd;

		if (unlikely (list_empty (qtd_list)))
			qtd = NULL;
		else
			qtd = list_entry (qtd_list->next, struct ehci_qtd,
					qtd_list);

		/* control qh may need patching ... */
		if (unlikely (epnum == 0)) {

                        /* usb_reset_device() briefly reverts to address 0 */
                        if (usb_pipedevice (urb->pipe) == 0)
1067
				qh->hw->hw_info1 &= ~qh_addr_mask;
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		}

		/* just one way to queue requests: swap with the dummy qtd.
		 * only hc or qh_refresh() ever modify the overlay.
		 */
		if (likely (qtd != NULL)) {
			struct ehci_qtd		*dummy;
			dma_addr_t		dma;
1076
			__hc32			token;
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			/* to avoid racing the HC, use the dummy td instead of
			 * the first td of our list (becomes new dummy).  both
			 * tds stay deactivated until we're done, when the
			 * HC is allowed to fetch the old dummy (4.10.2).
			 */
			token = qtd->hw_token;
1084
			qtd->hw_token = HALT_BIT(ehci);
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			dummy = qh->dummy;

			dma = dummy->qtd_dma;
			*dummy = *qtd;
			dummy->qtd_dma = dma;

			list_del (&qtd->qtd_list);
			list_add (&dummy->qtd_list, qtd_list);
1094
			list_splice_tail(qtd_list, &qh->qtd_list);
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1096
			ehci_qtd_init(ehci, qtd, qtd->qtd_dma);
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			qh->dummy = qtd;

			/* hc must see the new dummy at list end */
			dma = qtd->qtd_dma;
			qtd = list_entry (qh->qtd_list.prev,
					struct ehci_qtd, qtd_list);
1103
			qtd->hw_next = QTD_NEXT(ehci, dma);
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			/* let the hc process these next qtds */
			wmb ();
			dummy->hw_token = token;

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			urb->hcpriv = qh;
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		}
	}
	return qh;
}

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

static int
submit_async (
	struct ehci_hcd		*ehci,
	struct urb		*urb,
	struct list_head	*qtd_list,
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	gfp_t			mem_flags
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) {
	int			epnum;
	unsigned long		flags;
	struct ehci_qh		*qh = NULL;
1127
	int			rc;
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	epnum = urb->ep->desc.bEndpointAddress;
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#ifdef EHCI_URB_TRACE
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	{
		struct ehci_qtd *qtd;
		qtd = list_entry(qtd_list->next, struct ehci_qtd, qtd_list);
		ehci_dbg(ehci,
			 "%s %s urb %p ep%d%s len %d, qtd %p [qh %p]\n",
			 __func__, urb->dev->devpath, urb,
			 epnum & 0x0f, (epnum & USB_DIR_IN) ? "in" : "out",
			 urb->transfer_buffer_length,
			 qtd, urb->ep->hcpriv);
	}
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#endif

	spin_lock_irqsave (&ehci->lock, flags);
1145
	if (unlikely(!HCD_HW_ACCESSIBLE(ehci_to_hcd(ehci)))) {
1146 1147 1148
		rc = -ESHUTDOWN;
		goto done;
	}
1149 1150 1151
	rc = usb_hcd_link_urb_to_ep(ehci_to_hcd(ehci), urb);
	if (unlikely(rc))
		goto done;
1152

1153
	qh = qh_append_tds(ehci, urb, qtd_list, epnum, &urb->ep->hcpriv);
1154
	if (unlikely(qh == NULL)) {
1155
		usb_hcd_unlink_urb_from_ep(ehci_to_hcd(ehci), urb);
1156 1157 1158
		rc = -ENOMEM;
		goto done;
	}
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	/* Control/bulk operations through TTs don't need scheduling,
	 * the HC and TT handle it when the TT has a buffer ready.
	 */
1163
	if (likely (qh->qh_state == QH_STATE_IDLE))
1164
		qh_link_async(ehci, qh);
1165
 done:
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	spin_unlock_irqrestore (&ehci->lock, flags);
1167
	if (unlikely (qh == NULL))
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		qtd_list_free (ehci, urb, qtd_list);
1169
	return rc;
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}

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

1174
static void single_unlink_async(struct ehci_hcd *ehci, struct ehci_qh *qh)
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{
1176
	struct ehci_qh		*prev;
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1178 1179 1180 1181 1182 1183 1184 1185 1186 1187 1188 1189 1190 1191 1192 1193 1194 1195
	/* Add to the end of the list of QHs waiting for the next IAAD */
	qh->qh_state = QH_STATE_UNLINK;
	if (ehci->async_unlink)
		ehci->async_unlink_last->unlink_next = qh;
	else
		ehci->async_unlink = qh;
	ehci->async_unlink_last = qh;

	/* Unlink it from the schedule */
	prev = ehci->async;
	while (prev->qh_next.qh != qh)
		prev = prev->qh_next.qh;

	prev->hw->hw_next = qh->hw->hw_next;
	prev->qh_next = qh->qh_next;
	if (ehci->qh_scan_next == qh)
		ehci->qh_scan_next = qh->qh_next.qh;
}
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static void start_iaa_cycle(struct ehci_hcd *ehci, bool nested)
{
	/*
	 * Do nothing if an IAA cycle is already running or
	 * if one will be started shortly.
	 */
	if (ehci->async_iaa || ehci->async_unlinking)
		return;
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	/* Do all the waiting QHs at once */
	ehci->async_iaa = ehci->async_unlink;
	ehci->async_unlink = NULL;
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	/* If the controller isn't running, we don't have to wait for it */
	if (unlikely(ehci->rh_state < EHCI_RH_RUNNING)) {
		if (!nested)		/* Avoid recursion */
			end_unlink_async(ehci);
1214

1215
	/* Otherwise start a new IAA cycle */
1216
	} else if (likely(ehci->rh_state == EHCI_RH_RUNNING)) {
1217 1218
		/* Make sure the unlinks are all visible to the hardware */
		wmb();
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		ehci_writel(ehci, ehci->command | CMD_IAAD,
				&ehci->regs->command);
		ehci_readl(ehci, &ehci->regs->command);
		ehci_enable_event(ehci, EHCI_HRTIMER_IAA_WATCHDOG, true);
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	}
1225 1226 1227 1228 1229 1230 1231
}

/* the async qh for the qtds being unlinked are now gone from the HC */

static void end_unlink_async(struct ehci_hcd *ehci)
{
	struct ehci_qh		*qh;
1232 1233 1234 1235

	if (ehci->has_synopsys_hc_bug)
		ehci_writel(ehci, (u32) ehci->async->qh_dma,
			    &ehci->regs->async_next);
1236 1237 1238 1239 1240 1241 1242 1243 1244 1245 1246 1247 1248 1249 1250 1251 1252 1253 1254 1255 1256 1257 1258 1259 1260 1261

	/* Process the idle QHs */
 restart:
	ehci->async_unlinking = true;
	while (ehci->async_iaa) {
		qh = ehci->async_iaa;
		ehci->async_iaa = qh->unlink_next;
		qh->unlink_next = NULL;

		qh->qh_state = QH_STATE_IDLE;
		qh->qh_next.qh = NULL;

		qh_completions(ehci, qh);
		if (!list_empty(&qh->qtd_list) &&
				ehci->rh_state == EHCI_RH_RUNNING)
			qh_link_async(ehci, qh);
		disable_async(ehci);
	}
	ehci->async_unlinking = false;

	/* Start a new IAA cycle if any QHs are waiting for it */
	if (ehci->async_unlink) {
		start_iaa_cycle(ehci, true);
		if (unlikely(ehci->rh_state < EHCI_RH_RUNNING))
			goto restart;
	}
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}

1264 1265 1266 1267 1268 1269 1270 1271 1272 1273 1274 1275 1276 1277 1278 1279 1280 1281 1282 1283 1284 1285 1286 1287 1288 1289 1290 1291 1292 1293 1294 1295 1296
static void unlink_empty_async(struct ehci_hcd *ehci)
{
	struct ehci_qh		*qh, *next;
	bool			stopped = (ehci->rh_state < EHCI_RH_RUNNING);
	bool			check_unlinks_later = false;

	/* Unlink all the async QHs that have been empty for a timer cycle */
	next = ehci->async->qh_next.qh;
	while (next) {
		qh = next;
		next = qh->qh_next.qh;

		if (list_empty(&qh->qtd_list) &&
				qh->qh_state == QH_STATE_LINKED) {
			if (!stopped && qh->unlink_cycle ==
					ehci->async_unlink_cycle)
				check_unlinks_later = true;
			else
				single_unlink_async(ehci, qh);
		}
	}

	/* Start a new IAA cycle if any QHs are waiting for it */
	if (ehci->async_unlink)
		start_iaa_cycle(ehci, false);

	/* QHs that haven't been empty for long enough will be handled later */
	if (check_unlinks_later) {
		ehci_enable_event(ehci, EHCI_HRTIMER_ASYNC_UNLINKS, true);
		++ehci->async_unlink_cycle;
	}
}

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/* makes sure the async qh will become idle */
/* caller must own ehci->lock */

1300
static void start_unlink_async(struct ehci_hcd *ehci, struct ehci_qh *qh)
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{
1302 1303 1304 1305 1306 1307 1308 1309
	/*
	 * 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;
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		return;
	}

1313 1314
	single_unlink_async(ehci, qh);
	start_iaa_cycle(ehci, false);
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}

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

1319
static void scan_async (struct ehci_hcd *ehci)
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{
	struct ehci_qh		*qh;
1322
	bool			check_unlinks_later = false;
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1324 1325 1326 1327 1328 1329 1330 1331 1332 1333 1334 1335 1336 1337
	ehci->qh_scan_next = ehci->async->qh_next.qh;
	while (ehci->qh_scan_next) {
		qh = ehci->qh_scan_next;
		ehci->qh_scan_next = qh->qh_next.qh;
 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
1338
			 * in single_unlink_async().
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			 */
1340
			temp = qh_completions(ehci, qh);
1341
			if (qh->needs_rescan) {
1342
				start_unlink_async(ehci, qh);
1343 1344 1345 1346 1347
			} else if (list_empty(&qh->qtd_list)
					&& qh->qh_state == QH_STATE_LINKED) {
				qh->unlink_cycle = ehci->async_unlink_cycle;
				check_unlinks_later = true;
			} else if (temp != 0)
1348 1349
				goto rescan;
		}
1350
	}
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1352 1353 1354 1355 1356 1357 1358 1359 1360 1361 1362
	/*
	 * Unlink empty entries, reducing DMA usage as well
	 * as HCD schedule-scanning costs.  Delay for any qh
	 * we just scanned, there's a not-unusual case that it
	 * doesn't stay idle for long.
	 */
	if (check_unlinks_later && ehci->rh_state == EHCI_RH_RUNNING &&
			!(ehci->enabled_hrtimer_events &
				BIT(EHCI_HRTIMER_ASYNC_UNLINKS))) {
		ehci_enable_event(ehci, EHCI_HRTIMER_ASYNC_UNLINKS, true);
		++ehci->async_unlink_cycle;
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	}
}