xhci-ring.c 69.9 KB
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/*
 * xHCI host controller driver
 *
 * Copyright (C) 2008 Intel Corp.
 *
 * Author: Sarah Sharp
 * Some code borrowed from the Linux EHCI driver.
 *
 * This program is free software; you can redistribute it and/or modify
 * it under the terms of the GNU General Public License version 2 as
 * published by the Free Software Foundation.
 *
 * 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.
 */

/*
 * Ring initialization rules:
 * 1. Each segment is initialized to zero, except for link TRBs.
 * 2. Ring cycle state = 0.  This represents Producer Cycle State (PCS) or
 *    Consumer Cycle State (CCS), depending on ring function.
 * 3. Enqueue pointer = dequeue pointer = address of first TRB in the segment.
 *
 * Ring behavior rules:
 * 1. A ring is empty if enqueue == dequeue.  This means there will always be at
 *    least one free TRB in the ring.  This is useful if you want to turn that
 *    into a link TRB and expand the ring.
 * 2. When incrementing an enqueue or dequeue pointer, if the next TRB is a
 *    link TRB, then load the pointer with the address in the link TRB.  If the
 *    link TRB had its toggle bit set, you may need to update the ring cycle
 *    state (see cycle bit rules).  You may have to do this multiple times
 *    until you reach a non-link TRB.
 * 3. A ring is full if enqueue++ (for the definition of increment above)
 *    equals the dequeue pointer.
 *
 * Cycle bit rules:
 * 1. When a consumer increments a dequeue pointer and encounters a toggle bit
 *    in a link TRB, it must toggle the ring cycle state.
 * 2. When a producer increments an enqueue pointer and encounters a toggle bit
 *    in a link TRB, it must toggle the ring cycle state.
 *
 * Producer rules:
 * 1. Check if ring is full before you enqueue.
 * 2. Write the ring cycle state to the cycle bit in the TRB you're enqueuing.
 *    Update enqueue pointer between each write (which may update the ring
 *    cycle state).
 * 3. Notify consumer.  If SW is producer, it rings the doorbell for command
 *    and endpoint rings.  If HC is the producer for the event ring,
 *    and it generates an interrupt according to interrupt modulation rules.
 *
 * Consumer rules:
 * 1. Check if TRB belongs to you.  If the cycle bit == your ring cycle state,
 *    the TRB is owned by the consumer.
 * 2. Update dequeue pointer (which may update the ring cycle state) and
 *    continue processing TRBs until you reach a TRB which is not owned by you.
 * 3. Notify the producer.  SW is the consumer for the event ring, and it
 *   updates event ring dequeue pointer.  HC is the consumer for the command and
 *   endpoint rings; it generates events on the event ring for these.
 */

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#include <linux/scatterlist.h>
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#include "xhci.h"

/*
 * Returns zero if the TRB isn't in this segment, otherwise it returns the DMA
 * address of the TRB.
 */
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dma_addr_t xhci_trb_virt_to_dma(struct xhci_segment *seg,
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		union xhci_trb *trb)
{
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	unsigned long segment_offset;
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	if (!seg || !trb || trb < seg->trbs)
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		return 0;
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	/* offset in TRBs */
	segment_offset = trb - seg->trbs;
	if (segment_offset > TRBS_PER_SEGMENT)
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		return 0;
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	return seg->dma + (segment_offset * sizeof(*trb));
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}

/* Does this link TRB point to the first segment in a ring,
 * or was the previous TRB the last TRB on the last segment in the ERST?
 */
static inline bool last_trb_on_last_seg(struct xhci_hcd *xhci, struct xhci_ring *ring,
		struct xhci_segment *seg, union xhci_trb *trb)
{
	if (ring == xhci->event_ring)
		return (trb == &seg->trbs[TRBS_PER_SEGMENT]) &&
			(seg->next == xhci->event_ring->first_seg);
	else
		return trb->link.control & LINK_TOGGLE;
}

/* Is this TRB a link TRB or was the last TRB the last TRB in this event ring
 * segment?  I.e. would the updated event TRB pointer step off the end of the
 * event seg?
 */
static inline int last_trb(struct xhci_hcd *xhci, struct xhci_ring *ring,
		struct xhci_segment *seg, union xhci_trb *trb)
{
	if (ring == xhci->event_ring)
		return trb == &seg->trbs[TRBS_PER_SEGMENT];
	else
		return (trb->link.control & TRB_TYPE_BITMASK) == TRB_TYPE(TRB_LINK);
}

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/* Updates trb to point to the next TRB in the ring, and updates seg if the next
 * TRB is in a new segment.  This does not skip over link TRBs, and it does not
 * effect the ring dequeue or enqueue pointers.
 */
static void next_trb(struct xhci_hcd *xhci,
		struct xhci_ring *ring,
		struct xhci_segment **seg,
		union xhci_trb **trb)
{
	if (last_trb(xhci, ring, *seg, *trb)) {
		*seg = (*seg)->next;
		*trb = ((*seg)->trbs);
	} else {
		*trb = (*trb)++;
	}
}

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/*
 * See Cycle bit rules. SW is the consumer for the event ring only.
 * Don't make a ring full of link TRBs.  That would be dumb and this would loop.
 */
static void inc_deq(struct xhci_hcd *xhci, struct xhci_ring *ring, bool consumer)
{
	union xhci_trb *next = ++(ring->dequeue);
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	unsigned long long addr;
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	ring->deq_updates++;
	/* Update the dequeue pointer further if that was a link TRB or we're at
	 * the end of an event ring segment (which doesn't have link TRBS)
	 */
	while (last_trb(xhci, ring, ring->deq_seg, next)) {
		if (consumer && last_trb_on_last_seg(xhci, ring, ring->deq_seg, next)) {
			ring->cycle_state = (ring->cycle_state ? 0 : 1);
			if (!in_interrupt())
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				xhci_dbg(xhci, "Toggle cycle state for ring %p = %i\n",
						ring,
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						(unsigned int) ring->cycle_state);
		}
		ring->deq_seg = ring->deq_seg->next;
		ring->dequeue = ring->deq_seg->trbs;
		next = ring->dequeue;
	}
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	addr = (unsigned long long) xhci_trb_virt_to_dma(ring->deq_seg, ring->dequeue);
	if (ring == xhci->event_ring)
		xhci_dbg(xhci, "Event ring deq = 0x%llx (DMA)\n", addr);
	else if (ring == xhci->cmd_ring)
		xhci_dbg(xhci, "Command ring deq = 0x%llx (DMA)\n", addr);
	else
		xhci_dbg(xhci, "Ring deq = 0x%llx (DMA)\n", addr);
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}

/*
 * See Cycle bit rules. SW is the consumer for the event ring only.
 * Don't make a ring full of link TRBs.  That would be dumb and this would loop.
 *
 * If we've just enqueued a TRB that is in the middle of a TD (meaning the
 * chain bit is set), then set the chain bit in all the following link TRBs.
 * If we've enqueued the last TRB in a TD, make sure the following link TRBs
 * have their chain bit cleared (so that each Link TRB is a separate TD).
 *
 * Section 6.4.4.1 of the 0.95 spec says link TRBs cannot have the chain bit
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 * set, but other sections talk about dealing with the chain bit set.  This was
 * fixed in the 0.96 specification errata, but we have to assume that all 0.95
 * xHCI hardware can't handle the chain bit being cleared on a link TRB.
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 */
static void inc_enq(struct xhci_hcd *xhci, struct xhci_ring *ring, bool consumer)
{
	u32 chain;
	union xhci_trb *next;
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	unsigned long long addr;
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	chain = ring->enqueue->generic.field[3] & TRB_CHAIN;
	next = ++(ring->enqueue);

	ring->enq_updates++;
	/* Update the dequeue pointer further if that was a link TRB or we're at
	 * the end of an event ring segment (which doesn't have link TRBS)
	 */
	while (last_trb(xhci, ring, ring->enq_seg, next)) {
		if (!consumer) {
			if (ring != xhci->event_ring) {
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				/* If we're not dealing with 0.95 hardware,
				 * carry over the chain bit of the previous TRB
				 * (which may mean the chain bit is cleared).
				 */
				if (!xhci_link_trb_quirk(xhci)) {
					next->link.control &= ~TRB_CHAIN;
					next->link.control |= chain;
				}
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				/* Give this link TRB to the hardware */
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				wmb();
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				if (next->link.control & TRB_CYCLE)
					next->link.control &= (u32) ~TRB_CYCLE;
				else
					next->link.control |= (u32) TRB_CYCLE;
			}
			/* Toggle the cycle bit after the last ring segment. */
			if (last_trb_on_last_seg(xhci, ring, ring->enq_seg, next)) {
				ring->cycle_state = (ring->cycle_state ? 0 : 1);
				if (!in_interrupt())
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					xhci_dbg(xhci, "Toggle cycle state for ring %p = %i\n",
							ring,
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							(unsigned int) ring->cycle_state);
			}
		}
		ring->enq_seg = ring->enq_seg->next;
		ring->enqueue = ring->enq_seg->trbs;
		next = ring->enqueue;
	}
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	addr = (unsigned long long) xhci_trb_virt_to_dma(ring->enq_seg, ring->enqueue);
	if (ring == xhci->event_ring)
		xhci_dbg(xhci, "Event ring enq = 0x%llx (DMA)\n", addr);
	else if (ring == xhci->cmd_ring)
		xhci_dbg(xhci, "Command ring enq = 0x%llx (DMA)\n", addr);
	else
		xhci_dbg(xhci, "Ring enq = 0x%llx (DMA)\n", addr);
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}

/*
 * Check to see if there's room to enqueue num_trbs on the ring.  See rules
 * above.
 * FIXME: this would be simpler and faster if we just kept track of the number
 * of free TRBs in a ring.
 */
static int room_on_ring(struct xhci_hcd *xhci, struct xhci_ring *ring,
		unsigned int num_trbs)
{
	int i;
	union xhci_trb *enq = ring->enqueue;
	struct xhci_segment *enq_seg = ring->enq_seg;

	/* Check if ring is empty */
	if (enq == ring->dequeue)
		return 1;
	/* Make sure there's an extra empty TRB available */
	for (i = 0; i <= num_trbs; ++i) {
		if (enq == ring->dequeue)
			return 0;
		enq++;
		while (last_trb(xhci, ring, enq_seg, enq)) {
			enq_seg = enq_seg->next;
			enq = enq_seg->trbs;
		}
	}
	return 1;
}

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void xhci_set_hc_event_deq(struct xhci_hcd *xhci)
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{
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	u64 temp;
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	dma_addr_t deq;

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	deq = xhci_trb_virt_to_dma(xhci->event_ring->deq_seg,
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			xhci->event_ring->dequeue);
	if (deq == 0 && !in_interrupt())
		xhci_warn(xhci, "WARN something wrong with SW event ring "
				"dequeue ptr.\n");
	/* Update HC event ring dequeue pointer */
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	temp = xhci_read_64(xhci, &xhci->ir_set->erst_dequeue);
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	temp &= ERST_PTR_MASK;
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	/* Don't clear the EHB bit (which is RW1C) because
	 * there might be more events to service.
	 */
	temp &= ~ERST_EHB;
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	xhci_dbg(xhci, "// Write event ring dequeue pointer, preserving EHB bit\n");
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	xhci_write_64(xhci, ((u64) deq & (u64) ~ERST_PTR_MASK) | temp,
			&xhci->ir_set->erst_dequeue);
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}

/* Ring the host controller doorbell after placing a command on the ring */
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void xhci_ring_cmd_db(struct xhci_hcd *xhci)
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{
	u32 temp;

	xhci_dbg(xhci, "// Ding dong!\n");
	temp = xhci_readl(xhci, &xhci->dba->doorbell[0]) & DB_MASK;
	xhci_writel(xhci, temp | DB_TARGET_HOST, &xhci->dba->doorbell[0]);
	/* Flush PCI posted writes */
	xhci_readl(xhci, &xhci->dba->doorbell[0]);
}

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static void ring_ep_doorbell(struct xhci_hcd *xhci,
		unsigned int slot_id,
		unsigned int ep_index)
{
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	struct xhci_virt_ep *ep;
	unsigned int ep_state;
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	u32 field;
	__u32 __iomem *db_addr = &xhci->dba->doorbell[slot_id];

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	ep = &xhci->devs[slot_id]->eps[ep_index];
	ep_state = ep->ep_state;
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	/* Don't ring the doorbell for this endpoint if there are pending
	 * cancellations because the we don't want to interrupt processing.
	 */
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	if (!(ep_state & EP_HALT_PENDING) && !(ep_state & SET_DEQ_PENDING)
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			&& !(ep_state & EP_HALTED)) {
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		field = xhci_readl(xhci, db_addr) & DB_MASK;
		xhci_writel(xhci, field | EPI_TO_DB(ep_index), db_addr);
		/* Flush PCI posted writes - FIXME Matthew Wilcox says this
		 * isn't time-critical and we shouldn't make the CPU wait for
		 * the flush.
		 */
		xhci_readl(xhci, db_addr);
	}
}

/*
 * Find the segment that trb is in.  Start searching in start_seg.
 * If we must move past a segment that has a link TRB with a toggle cycle state
 * bit set, then we will toggle the value pointed at by cycle_state.
 */
static struct xhci_segment *find_trb_seg(
		struct xhci_segment *start_seg,
		union xhci_trb	*trb, int *cycle_state)
{
	struct xhci_segment *cur_seg = start_seg;
	struct xhci_generic_trb *generic_trb;

	while (cur_seg->trbs > trb ||
			&cur_seg->trbs[TRBS_PER_SEGMENT - 1] < trb) {
		generic_trb = &cur_seg->trbs[TRBS_PER_SEGMENT - 1].generic;
		if (TRB_TYPE(generic_trb->field[3]) == TRB_LINK &&
				(generic_trb->field[3] & LINK_TOGGLE))
			*cycle_state = ~(*cycle_state) & 0x1;
		cur_seg = cur_seg->next;
		if (cur_seg == start_seg)
			/* Looped over the entire list.  Oops! */
			return 0;
	}
	return cur_seg;
}

/*
 * Move the xHC's endpoint ring dequeue pointer past cur_td.
 * Record the new state of the xHC's endpoint ring dequeue segment,
 * dequeue pointer, and new consumer cycle state in state.
 * Update our internal representation of the ring's dequeue pointer.
 *
 * We do this in three jumps:
 *  - First we update our new ring state to be the same as when the xHC stopped.
 *  - Then we traverse the ring to find the segment that contains
 *    the last TRB in the TD.  We toggle the xHC's new cycle state when we pass
 *    any link TRBs with the toggle cycle bit set.
 *  - Finally we move the dequeue state one TRB further, toggling the cycle bit
 *    if we've moved it past a link TRB with the toggle cycle bit set.
 */
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void xhci_find_new_dequeue_state(struct xhci_hcd *xhci,
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		unsigned int slot_id, unsigned int ep_index,
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		struct xhci_td *cur_td, struct xhci_dequeue_state *state)
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{
	struct xhci_virt_device *dev = xhci->devs[slot_id];
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	struct xhci_ring *ep_ring = dev->eps[ep_index].ring;
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	struct xhci_generic_trb *trb;
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	struct xhci_ep_ctx *ep_ctx;
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	dma_addr_t addr;
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	state->new_cycle_state = 0;
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	xhci_dbg(xhci, "Finding segment containing stopped TRB.\n");
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	state->new_deq_seg = find_trb_seg(cur_td->start_seg,
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			dev->eps[ep_index].stopped_trb,
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			&state->new_cycle_state);
	if (!state->new_deq_seg)
		BUG();
	/* Dig out the cycle state saved by the xHC during the stop ep cmd */
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	xhci_dbg(xhci, "Finding endpoint context\n");
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	ep_ctx = xhci_get_ep_ctx(xhci, dev->out_ctx, ep_index);
	state->new_cycle_state = 0x1 & ep_ctx->deq;
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	state->new_deq_ptr = cur_td->last_trb;
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	xhci_dbg(xhci, "Finding segment containing last TRB in TD.\n");
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	state->new_deq_seg = find_trb_seg(state->new_deq_seg,
			state->new_deq_ptr,
			&state->new_cycle_state);
	if (!state->new_deq_seg)
		BUG();

	trb = &state->new_deq_ptr->generic;
	if (TRB_TYPE(trb->field[3]) == TRB_LINK &&
				(trb->field[3] & LINK_TOGGLE))
		state->new_cycle_state = ~(state->new_cycle_state) & 0x1;
	next_trb(xhci, ep_ring, &state->new_deq_seg, &state->new_deq_ptr);

	/* Don't update the ring cycle state for the producer (us). */
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	xhci_dbg(xhci, "New dequeue segment = %p (virtual)\n",
			state->new_deq_seg);
	addr = xhci_trb_virt_to_dma(state->new_deq_seg, state->new_deq_ptr);
	xhci_dbg(xhci, "New dequeue pointer = 0x%llx (DMA)\n",
			(unsigned long long) addr);
	xhci_dbg(xhci, "Setting dequeue pointer in internal ring state.\n");
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	ep_ring->dequeue = state->new_deq_ptr;
	ep_ring->deq_seg = state->new_deq_seg;
}

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static void td_to_noop(struct xhci_hcd *xhci, struct xhci_ring *ep_ring,
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		struct xhci_td *cur_td)
{
	struct xhci_segment *cur_seg;
	union xhci_trb *cur_trb;

	for (cur_seg = cur_td->start_seg, cur_trb = cur_td->first_trb;
			true;
			next_trb(xhci, ep_ring, &cur_seg, &cur_trb)) {
		if ((cur_trb->generic.field[3] & TRB_TYPE_BITMASK) ==
				TRB_TYPE(TRB_LINK)) {
			/* Unchain any chained Link TRBs, but
			 * leave the pointers intact.
			 */
			cur_trb->generic.field[3] &= ~TRB_CHAIN;
			xhci_dbg(xhci, "Cancel (unchain) link TRB\n");
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			xhci_dbg(xhci, "Address = %p (0x%llx dma); "
					"in seg %p (0x%llx dma)\n",
					cur_trb,
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					(unsigned long long)xhci_trb_virt_to_dma(cur_seg, cur_trb),
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					cur_seg,
					(unsigned long long)cur_seg->dma);
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		} else {
			cur_trb->generic.field[0] = 0;
			cur_trb->generic.field[1] = 0;
			cur_trb->generic.field[2] = 0;
			/* Preserve only the cycle bit of this TRB */
			cur_trb->generic.field[3] &= TRB_CYCLE;
			cur_trb->generic.field[3] |= TRB_TYPE(TRB_TR_NOOP);
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			xhci_dbg(xhci, "Cancel TRB %p (0x%llx dma) "
					"in seg %p (0x%llx dma)\n",
					cur_trb,
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					(unsigned long long)xhci_trb_virt_to_dma(cur_seg, cur_trb),
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					cur_seg,
					(unsigned long long)cur_seg->dma);
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		}
		if (cur_trb == cur_td->last_trb)
			break;
	}
}

static int queue_set_tr_deq(struct xhci_hcd *xhci, int slot_id,
		unsigned int ep_index, struct xhci_segment *deq_seg,
		union xhci_trb *deq_ptr, u32 cycle_state);

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void xhci_queue_new_dequeue_state(struct xhci_hcd *xhci,
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		unsigned int slot_id, unsigned int ep_index,
		struct xhci_dequeue_state *deq_state)
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{
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	struct xhci_virt_ep *ep = &xhci->devs[slot_id]->eps[ep_index];

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	xhci_dbg(xhci, "Set TR Deq Ptr cmd, new deq seg = %p (0x%llx dma), "
			"new deq ptr = %p (0x%llx dma), new cycle = %u\n",
			deq_state->new_deq_seg,
			(unsigned long long)deq_state->new_deq_seg->dma,
			deq_state->new_deq_ptr,
			(unsigned long long)xhci_trb_virt_to_dma(deq_state->new_deq_seg, deq_state->new_deq_ptr),
			deq_state->new_cycle_state);
	queue_set_tr_deq(xhci, slot_id, ep_index,
			deq_state->new_deq_seg,
			deq_state->new_deq_ptr,
			(u32) deq_state->new_cycle_state);
	/* Stop the TD queueing code from ringing the doorbell until
	 * this command completes.  The HC won't set the dequeue pointer
	 * if the ring is running, and ringing the doorbell starts the
	 * ring running.
	 */
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	ep->ep_state |= SET_DEQ_PENDING;
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}

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static inline void xhci_stop_watchdog_timer_in_irq(struct xhci_hcd *xhci,
		struct xhci_virt_ep *ep)
{
	ep->ep_state &= ~EP_HALT_PENDING;
	/* Can't del_timer_sync in interrupt, so we attempt to cancel.  If the
	 * timer is running on another CPU, we don't decrement stop_cmds_pending
	 * (since we didn't successfully stop the watchdog timer).
	 */
	if (del_timer(&ep->stop_cmd_timer))
		ep->stop_cmds_pending--;
}

/* Must be called with xhci->lock held in interrupt context */
static void xhci_giveback_urb_in_irq(struct xhci_hcd *xhci,
		struct xhci_td *cur_td, int status, char *adjective)
{
	struct usb_hcd *hcd = xhci_to_hcd(xhci);

	cur_td->urb->hcpriv = NULL;
	usb_hcd_unlink_urb_from_ep(hcd, cur_td->urb);
	xhci_dbg(xhci, "Giveback %s URB %p\n", adjective, cur_td->urb);

	spin_unlock(&xhci->lock);
	usb_hcd_giveback_urb(hcd, cur_td->urb, status);
	kfree(cur_td);
	spin_lock(&xhci->lock);
	xhci_dbg(xhci, "%s URB given back\n", adjective);
}

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/*
 * When we get a command completion for a Stop Endpoint Command, we need to
 * unlink any cancelled TDs from the ring.  There are two ways to do that:
 *
 *  1. If the HW was in the middle of processing the TD that needs to be
 *     cancelled, then we must move the ring's dequeue pointer past the last TRB
 *     in the TD with a Set Dequeue Pointer Command.
 *  2. Otherwise, we turn all the TRBs in the TD into No-op TRBs (with the chain
 *     bit cleared) so that the HW will skip over them.
 */
static void handle_stopped_endpoint(struct xhci_hcd *xhci,
		union xhci_trb *trb)
{
	unsigned int slot_id;
	unsigned int ep_index;
	struct xhci_ring *ep_ring;
523
	struct xhci_virt_ep *ep;
524 525 526 527
	struct list_head *entry;
	struct xhci_td *cur_td = 0;
	struct xhci_td *last_unlinked_td;

528
	struct xhci_dequeue_state deq_state;
529 530 531 532

	memset(&deq_state, 0, sizeof(deq_state));
	slot_id = TRB_TO_SLOT_ID(trb->generic.field[3]);
	ep_index = TRB_TO_EP_INDEX(trb->generic.field[3]);
533 534
	ep = &xhci->devs[slot_id]->eps[ep_index];
	ep_ring = ep->ring;
535

536
	if (list_empty(&ep->cancelled_td_list)) {
537
		xhci_stop_watchdog_timer_in_irq(xhci, ep);
538
		ring_ep_doorbell(xhci, slot_id, ep_index);
539
		return;
540
	}
541 542 543 544 545 546

	/* Fix up the ep ring first, so HW stops executing cancelled TDs.
	 * We have the xHCI lock, so nothing can modify this list until we drop
	 * it.  We're also in the event handler, so we can't get re-interrupted
	 * if another Stop Endpoint command completes
	 */
547
	list_for_each(entry, &ep->cancelled_td_list) {
548
		cur_td = list_entry(entry, struct xhci_td, cancelled_td_list);
549 550
		xhci_dbg(xhci, "Cancelling TD starting at %p, 0x%llx (dma).\n",
				cur_td->first_trb,
551
				(unsigned long long)xhci_trb_virt_to_dma(cur_td->start_seg, cur_td->first_trb));
552 553 554 555
		/*
		 * If we stopped on the TD we need to cancel, then we have to
		 * move the xHC endpoint ring dequeue pointer past this TD.
		 */
556
		if (cur_td == ep->stopped_td)
557
			xhci_find_new_dequeue_state(xhci, slot_id, ep_index, cur_td,
558 559 560 561 562 563 564 565 566 567 568
					&deq_state);
		else
			td_to_noop(xhci, ep_ring, cur_td);
		/*
		 * The event handler won't see a completion for this TD anymore,
		 * so remove it from the endpoint ring's TD list.  Keep it in
		 * the cancelled TD list for URB completion later.
		 */
		list_del(&cur_td->td_list);
	}
	last_unlinked_td = cur_td;
569
	xhci_stop_watchdog_timer_in_irq(xhci, ep);
570 571 572

	/* If necessary, queue a Set Transfer Ring Dequeue Pointer command */
	if (deq_state.new_deq_ptr && deq_state.new_deq_seg) {
573
		xhci_queue_new_dequeue_state(xhci,
574
				slot_id, ep_index, &deq_state);
575
		xhci_ring_cmd_db(xhci);
576 577 578 579 580 581 582 583 584 585 586 587
	} else {
		/* Otherwise just ring the doorbell to restart the ring */
		ring_ep_doorbell(xhci, slot_id, ep_index);
	}

	/*
	 * Drop the lock and complete the URBs in the cancelled TD list.
	 * New TDs to be cancelled might be added to the end of the list before
	 * we can complete all the URBs for the TDs we already unlinked.
	 * So stop when we've completed the URB for the last TD we unlinked.
	 */
	do {
588
		cur_td = list_entry(ep->cancelled_td_list.next,
589 590 591 592 593 594 595
				struct xhci_td, cancelled_td_list);
		list_del(&cur_td->cancelled_td_list);

		/* Clean up the cancelled URB */
		/* Doesn't matter what we pass for status, since the core will
		 * just overwrite it (because the URB has been unlinked).
		 */
596
		xhci_giveback_urb_in_irq(xhci, cur_td, 0, "cancelled");
597

598 599 600 601 602
		/* Stop processing the cancelled list if the watchdog timer is
		 * running.
		 */
		if (xhci->xhc_state & XHCI_STATE_DYING)
			return;
603 604 605 606 607
	} while (cur_td != last_unlinked_td);

	/* Return to the event handler with xhci->lock re-acquired */
}

608 609 610 611 612 613 614 615 616 617 618 619 620 621 622 623 624 625 626 627 628 629 630 631 632 633 634 635 636 637 638 639 640 641 642 643 644 645 646 647 648 649 650 651 652 653 654 655 656 657 658 659 660 661 662 663 664 665 666 667 668 669 670 671 672 673 674 675 676 677 678 679 680 681 682 683 684 685 686 687 688 689 690 691 692 693 694 695 696 697 698 699 700 701 702 703 704 705 706 707 708 709 710 711 712 713 714 715 716 717 718 719 720 721 722
/* Watchdog timer function for when a stop endpoint command fails to complete.
 * In this case, we assume the host controller is broken or dying or dead.  The
 * host may still be completing some other events, so we have to be careful to
 * let the event ring handler and the URB dequeueing/enqueueing functions know
 * through xhci->state.
 *
 * The timer may also fire if the host takes a very long time to respond to the
 * command, and the stop endpoint command completion handler cannot delete the
 * timer before the timer function is called.  Another endpoint cancellation may
 * sneak in before the timer function can grab the lock, and that may queue
 * another stop endpoint command and add the timer back.  So we cannot use a
 * simple flag to say whether there is a pending stop endpoint command for a
 * particular endpoint.
 *
 * Instead we use a combination of that flag and a counter for the number of
 * pending stop endpoint commands.  If the timer is the tail end of the last
 * stop endpoint command, and the endpoint's command is still pending, we assume
 * the host is dying.
 */
void xhci_stop_endpoint_command_watchdog(unsigned long arg)
{
	struct xhci_hcd *xhci;
	struct xhci_virt_ep *ep;
	struct xhci_virt_ep *temp_ep;
	struct xhci_ring *ring;
	struct xhci_td *cur_td;
	int ret, i, j;

	ep = (struct xhci_virt_ep *) arg;
	xhci = ep->xhci;

	spin_lock(&xhci->lock);

	ep->stop_cmds_pending--;
	if (xhci->xhc_state & XHCI_STATE_DYING) {
		xhci_dbg(xhci, "Stop EP timer ran, but another timer marked "
				"xHCI as DYING, exiting.\n");
		spin_unlock(&xhci->lock);
		return;
	}
	if (!(ep->stop_cmds_pending == 0 && (ep->ep_state & EP_HALT_PENDING))) {
		xhci_dbg(xhci, "Stop EP timer ran, but no command pending, "
				"exiting.\n");
		spin_unlock(&xhci->lock);
		return;
	}

	xhci_warn(xhci, "xHCI host not responding to stop endpoint command.\n");
	xhci_warn(xhci, "Assuming host is dying, halting host.\n");
	/* Oops, HC is dead or dying or at least not responding to the stop
	 * endpoint command.
	 */
	xhci->xhc_state |= XHCI_STATE_DYING;
	/* Disable interrupts from the host controller and start halting it */
	xhci_quiesce(xhci);
	spin_unlock(&xhci->lock);

	ret = xhci_halt(xhci);

	spin_lock(&xhci->lock);
	if (ret < 0) {
		/* This is bad; the host is not responding to commands and it's
		 * not allowing itself to be halted.  At least interrupts are
		 * disabled, so we can set HC_STATE_HALT and notify the
		 * USB core.  But if we call usb_hc_died(), it will attempt to
		 * disconnect all device drivers under this host.  Those
		 * disconnect() methods will wait for all URBs to be unlinked,
		 * so we must complete them.
		 */
		xhci_warn(xhci, "Non-responsive xHCI host is not halting.\n");
		xhci_warn(xhci, "Completing active URBs anyway.\n");
		/* We could turn all TDs on the rings to no-ops.  This won't
		 * help if the host has cached part of the ring, and is slow if
		 * we want to preserve the cycle bit.  Skip it and hope the host
		 * doesn't touch the memory.
		 */
	}
	for (i = 0; i < MAX_HC_SLOTS; i++) {
		if (!xhci->devs[i])
			continue;
		for (j = 0; j < 31; j++) {
			temp_ep = &xhci->devs[i]->eps[j];
			ring = temp_ep->ring;
			if (!ring)
				continue;
			xhci_dbg(xhci, "Killing URBs for slot ID %u, "
					"ep index %u\n", i, j);
			while (!list_empty(&ring->td_list)) {
				cur_td = list_first_entry(&ring->td_list,
						struct xhci_td,
						td_list);
				list_del(&cur_td->td_list);
				if (!list_empty(&cur_td->cancelled_td_list))
					list_del(&cur_td->cancelled_td_list);
				xhci_giveback_urb_in_irq(xhci, cur_td,
						-ESHUTDOWN, "killed");
			}
			while (!list_empty(&temp_ep->cancelled_td_list)) {
				cur_td = list_first_entry(
						&temp_ep->cancelled_td_list,
						struct xhci_td,
						cancelled_td_list);
				list_del(&cur_td->cancelled_td_list);
				xhci_giveback_urb_in_irq(xhci, cur_td,
						-ESHUTDOWN, "killed");
			}
		}
	}
	spin_unlock(&xhci->lock);
	xhci_to_hcd(xhci)->state = HC_STATE_HALT;
	xhci_dbg(xhci, "Calling usb_hc_died()\n");
	usb_hc_died(xhci_to_hcd(xhci));
	xhci_dbg(xhci, "xHCI host controller is dead.\n");
}

723 724 725 726 727 728 729 730 731 732 733 734 735 736 737
/*
 * When we get a completion for a Set Transfer Ring Dequeue Pointer command,
 * we need to clear the set deq pending flag in the endpoint ring state, so that
 * the TD queueing code can ring the doorbell again.  We also need to ring the
 * endpoint doorbell to restart the ring, but only if there aren't more
 * cancellations pending.
 */
static void handle_set_deq_completion(struct xhci_hcd *xhci,
		struct xhci_event_cmd *event,
		union xhci_trb *trb)
{
	unsigned int slot_id;
	unsigned int ep_index;
	struct xhci_ring *ep_ring;
	struct xhci_virt_device *dev;
738 739
	struct xhci_ep_ctx *ep_ctx;
	struct xhci_slot_ctx *slot_ctx;
740 741 742 743

	slot_id = TRB_TO_SLOT_ID(trb->generic.field[3]);
	ep_index = TRB_TO_EP_INDEX(trb->generic.field[3]);
	dev = xhci->devs[slot_id];
744
	ep_ring = dev->eps[ep_index].ring;
745 746
	ep_ctx = xhci_get_ep_ctx(xhci, dev->out_ctx, ep_index);
	slot_ctx = xhci_get_slot_ctx(xhci, dev->out_ctx);
747 748 749 750 751 752 753 754 755 756 757 758 759

	if (GET_COMP_CODE(event->status) != COMP_SUCCESS) {
		unsigned int ep_state;
		unsigned int slot_state;

		switch (GET_COMP_CODE(event->status)) {
		case COMP_TRB_ERR:
			xhci_warn(xhci, "WARN Set TR Deq Ptr cmd invalid because "
					"of stream ID configuration\n");
			break;
		case COMP_CTX_STATE:
			xhci_warn(xhci, "WARN Set TR Deq Ptr cmd failed due "
					"to incorrect slot or ep state.\n");
760
			ep_state = ep_ctx->ep_info;
761
			ep_state &= EP_STATE_MASK;
762
			slot_state = slot_ctx->dev_state;
763 764 765 766 767 768 769 770 771 772 773 774 775 776 777 778 779 780 781 782 783
			slot_state = GET_SLOT_STATE(slot_state);
			xhci_dbg(xhci, "Slot state = %u, EP state = %u\n",
					slot_state, ep_state);
			break;
		case COMP_EBADSLT:
			xhci_warn(xhci, "WARN Set TR Deq Ptr cmd failed because "
					"slot %u was not enabled.\n", slot_id);
			break;
		default:
			xhci_warn(xhci, "WARN Set TR Deq Ptr cmd with unknown "
					"completion code of %u.\n",
					GET_COMP_CODE(event->status));
			break;
		}
		/* OK what do we do now?  The endpoint state is hosed, and we
		 * should never get to this point if the synchronization between
		 * queueing, and endpoint state are correct.  This might happen
		 * if the device gets disconnected after we've finished
		 * cancelling URBs, which might not be an error...
		 */
	} else {
784
		xhci_dbg(xhci, "Successful Set TR Deq Ptr cmd, deq = @%08llx\n",
785
				ep_ctx->deq);
786 787
	}

788
	dev->eps[ep_index].ep_state &= ~SET_DEQ_PENDING;
789 790 791
	ring_ep_doorbell(xhci, slot_id, ep_index);
}

792 793 794 795 796 797
static void handle_reset_ep_completion(struct xhci_hcd *xhci,
		struct xhci_event_cmd *event,
		union xhci_trb *trb)
{
	int slot_id;
	unsigned int ep_index;
798
	struct xhci_ring *ep_ring;
799 800 801

	slot_id = TRB_TO_SLOT_ID(trb->generic.field[3]);
	ep_index = TRB_TO_EP_INDEX(trb->generic.field[3]);
802
	ep_ring = xhci->devs[slot_id]->eps[ep_index].ring;
803 804 805 806 807 808
	/* This command will only fail if the endpoint wasn't halted,
	 * but we don't care.
	 */
	xhci_dbg(xhci, "Ignoring reset ep completion code of %u\n",
			(unsigned int) GET_COMP_CODE(event->status));

809 810 811 812 813 814 815
	/* HW with the reset endpoint quirk needs to have a configure endpoint
	 * command complete before the endpoint can be used.  Queue that here
	 * because the HW can't handle two commands being queued in a row.
	 */
	if (xhci->quirks & XHCI_RESET_EP_QUIRK) {
		xhci_dbg(xhci, "Queueing configure endpoint command\n");
		xhci_queue_configure_endpoint(xhci,
816 817
				xhci->devs[slot_id]->in_ctx->dma, slot_id,
				false);
818 819 820
		xhci_ring_cmd_db(xhci);
	} else {
		/* Clear our internal halted state and restart the ring */
821
		xhci->devs[slot_id]->eps[ep_index].ep_state &= ~EP_HALTED;
822 823
		ring_ep_doorbell(xhci, slot_id, ep_index);
	}
824
}
825

826 827 828 829 830 831 832 833 834 835 836 837 838 839 840 841 842 843 844 845 846 847 848 849 850 851 852 853
/* Check to see if a command in the device's command queue matches this one.
 * Signal the completion or free the command, and return 1.  Return 0 if the
 * completed command isn't at the head of the command list.
 */
static int handle_cmd_in_cmd_wait_list(struct xhci_hcd *xhci,
		struct xhci_virt_device *virt_dev,
		struct xhci_event_cmd *event)
{
	struct xhci_command *command;

	if (list_empty(&virt_dev->cmd_list))
		return 0;

	command = list_entry(virt_dev->cmd_list.next,
			struct xhci_command, cmd_list);
	if (xhci->cmd_ring->dequeue != command->command_trb)
		return 0;

	command->status =
		GET_COMP_CODE(event->status);
	list_del(&command->cmd_list);
	if (command->completion)
		complete(command->completion);
	else
		xhci_free_command(xhci, command);
	return 1;
}

854 855 856
static void handle_cmd_completion(struct xhci_hcd *xhci,
		struct xhci_event_cmd *event)
{
857
	int slot_id = TRB_TO_SLOT_ID(event->flags);
858 859
	u64 cmd_dma;
	dma_addr_t cmd_dequeue_dma;
860
	struct xhci_input_control_ctx *ctrl_ctx;
861
	struct xhci_virt_device *virt_dev;
862 863 864
	unsigned int ep_index;
	struct xhci_ring *ep_ring;
	unsigned int ep_state;
865

866
	cmd_dma = event->cmd_trb;
867
	cmd_dequeue_dma = xhci_trb_virt_to_dma(xhci->cmd_ring->deq_seg,
868 869 870 871 872 873 874 875 876 877 878 879
			xhci->cmd_ring->dequeue);
	/* Is the command ring deq ptr out of sync with the deq seg ptr? */
	if (cmd_dequeue_dma == 0) {
		xhci->error_bitmask |= 1 << 4;
		return;
	}
	/* Does the DMA address match our internal dequeue pointer address? */
	if (cmd_dma != (u64) cmd_dequeue_dma) {
		xhci->error_bitmask |= 1 << 5;
		return;
	}
	switch (xhci->cmd_ring->dequeue->generic.field[3] & TRB_TYPE_BITMASK) {
880 881 882 883 884 885 886 887 888 889 890
	case TRB_TYPE(TRB_ENABLE_SLOT):
		if (GET_COMP_CODE(event->status) == COMP_SUCCESS)
			xhci->slot_id = slot_id;
		else
			xhci->slot_id = 0;
		complete(&xhci->addr_dev);
		break;
	case TRB_TYPE(TRB_DISABLE_SLOT):
		if (xhci->devs[slot_id])
			xhci_free_virt_device(xhci, slot_id);
		break;
891
	case TRB_TYPE(TRB_CONFIG_EP):
892
		virt_dev = xhci->devs[slot_id];
893
		if (handle_cmd_in_cmd_wait_list(xhci, virt_dev, event))
894
			break;
895 896 897 898 899 900 901 902
		/*
		 * Configure endpoint commands can come from the USB core
		 * configuration or alt setting changes, or because the HW
		 * needed an extra configure endpoint command after a reset
		 * endpoint command.  In the latter case, the xHCI driver is
		 * not waiting on the configure endpoint command.
		 */
		ctrl_ctx = xhci_get_input_control_ctx(xhci,
903
				virt_dev->in_ctx);
904 905
		/* Input ctx add_flags are the endpoint index plus one */
		ep_index = xhci_last_valid_endpoint(ctrl_ctx->add_flags) - 1;
906
		ep_ring = xhci->devs[slot_id]->eps[ep_index].ring;
907 908 909 910 911 912 913
		if (!ep_ring) {
			/* This must have been an initial configure endpoint */
			xhci->devs[slot_id]->cmd_status =
				GET_COMP_CODE(event->status);
			complete(&xhci->devs[slot_id]->cmd_completion);
			break;
		}
914
		ep_state = xhci->devs[slot_id]->eps[ep_index].ep_state;
915 916 917 918 919
		xhci_dbg(xhci, "Completed config ep cmd - last ep index = %d, "
				"state = %d\n", ep_index, ep_state);
		if (xhci->quirks & XHCI_RESET_EP_QUIRK &&
				ep_state & EP_HALTED) {
			/* Clear our internal halted state and restart ring */
920
			xhci->devs[slot_id]->eps[ep_index].ep_state &=
921 922 923 924 925 926 927
				~EP_HALTED;
			ring_ep_doorbell(xhci, slot_id, ep_index);
		} else {
			xhci->devs[slot_id]->cmd_status =
				GET_COMP_CODE(event->status);
			complete(&xhci->devs[slot_id]->cmd_completion);
		}
928
		break;
929
	case TRB_TYPE(TRB_EVAL_CONTEXT):
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930 931 932
		virt_dev = xhci->devs[slot_id];
		if (handle_cmd_in_cmd_wait_list(xhci, virt_dev, event))
			break;
933 934 935
		xhci->devs[slot_id]->cmd_status = GET_COMP_CODE(event->status);
		complete(&xhci->devs[slot_id]->cmd_completion);
		break;
936 937 938 939
	case TRB_TYPE(TRB_ADDR_DEV):
		xhci->devs[slot_id]->cmd_status = GET_COMP_CODE(event->status);
		complete(&xhci->addr_dev);
		break;
940 941 942 943 944 945
	case TRB_TYPE(TRB_STOP_RING):
		handle_stopped_endpoint(xhci, xhci->cmd_ring->dequeue);
		break;
	case TRB_TYPE(TRB_SET_DEQ):
		handle_set_deq_completion(xhci, event, xhci->cmd_ring->dequeue);
		break;
946 947 948
	case TRB_TYPE(TRB_CMD_NOOP):
		++xhci->noops_handled;
		break;
949 950 951
	case TRB_TYPE(TRB_RESET_EP):
		handle_reset_ep_completion(xhci, event, xhci->cmd_ring->dequeue);
		break;
952 953 954 955 956 957 958 959
	default:
		/* Skip over unknown commands on the event ring */
		xhci->error_bitmask |= 1 << 6;
		break;
	}
	inc_deq(xhci, xhci->cmd_ring, false);
}

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static void handle_port_status(struct xhci_hcd *xhci,
		union xhci_trb *event)
{
	u32 port_id;

	/* Port status change events always have a successful completion code */
	if (GET_COMP_CODE(event->generic.field[2]) != COMP_SUCCESS) {
		xhci_warn(xhci, "WARN: xHC returned failed port status event\n");
		xhci->error_bitmask |= 1 << 8;
	}
	/* FIXME: core doesn't care about all port link state changes yet */
	port_id = GET_PORT_ID(event->generic.field[0]);
	xhci_dbg(xhci, "Port Status Change Event for port %d\n", port_id);

	/* Update event ring dequeue pointer before dropping the lock */
	inc_deq(xhci, xhci->event_ring, true);
976
	xhci_set_hc_event_deq(xhci);
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	spin_unlock(&xhci->lock);
	/* Pass this up to the core */
	usb_hcd_poll_rh_status(xhci_to_hcd(xhci));
	spin_lock(&xhci->lock);
}

984 985 986 987 988 989 990 991 992 993 994 995 996 997 998 999 1000
/*
 * This TD is defined by the TRBs starting at start_trb in start_seg and ending
 * at end_trb, which may be in another segment.  If the suspect DMA address is a
 * TRB in this TD, this function returns that TRB's segment.  Otherwise it
 * returns 0.
 */
static struct xhci_segment *trb_in_td(
		struct xhci_segment *start_seg,
		union xhci_trb	*start_trb,
		union xhci_trb	*end_trb,
		dma_addr_t	suspect_dma)
{
	dma_addr_t start_dma;
	dma_addr_t end_seg_dma;
	dma_addr_t end_trb_dma;
	struct xhci_segment *cur_seg;

1001
	start_dma = xhci_trb_virt_to_dma(start_seg, start_trb);
1002 1003 1004
	cur_seg = start_seg;

	do {
1005 1006
		if (start_dma == 0)
			return 0;
1007
		/* We may get an event for a Link TRB in the middle of a TD */
1008
		end_seg_dma = xhci_trb_virt_to_dma(cur_seg,
1009
				&cur_seg->trbs[TRBS_PER_SEGMENT - 1]);
1010
		/* If the end TRB isn't in this segment, this is set to 0 */
1011
		end_trb_dma = xhci_trb_virt_to_dma(cur_seg, end_trb);
1012 1013 1014 1015 1016 1017 1018 1019 1020 1021 1022 1023 1024 1025 1026 1027 1028 1029 1030 1031 1032 1033 1034

		if (end_trb_dma > 0) {
			/* The end TRB is in this segment, so suspect should be here */
			if (start_dma <= end_trb_dma) {
				if (suspect_dma >= start_dma && suspect_dma <= end_trb_dma)
					return cur_seg;
			} else {
				/* Case for one segment with
				 * a TD wrapped around to the top
				 */
				if ((suspect_dma >= start_dma &&
							suspect_dma <= end_seg_dma) ||
						(suspect_dma >= cur_seg->dma &&
						 suspect_dma <= end_trb_dma))
					return cur_seg;
			}
			return 0;
		} else {
			/* Might still be somewhere in this segment */
			if (suspect_dma >= start_dma && suspect_dma <= end_seg_dma)
				return cur_seg;
		}
		cur_seg = cur_seg->next;
1035
		start_dma = xhci_trb_virt_to_dma(cur_seg, &cur_seg->trbs[0]);
1036
	} while (cur_seg != start_seg);
1037

1038
	return 0;
1039 1040 1041 1042 1043 1044 1045 1046 1047 1048 1049
}

/*
 * If this function returns an error condition, it means it got a Transfer
 * event with a corrupted Slot ID, Endpoint ID, or TRB DMA address.
 * At this point, the host controller is probably hosed and should be reset.
 */
static int handle_tx_event(struct xhci_hcd *xhci,
		struct xhci_transfer_event *event)
{
	struct xhci_virt_device *xdev;
1050
	struct xhci_virt_ep *ep;
1051
	struct xhci_ring *ep_ring;
1052
	unsigned int slot_id;
1053 1054 1055 1056 1057
	int ep_index;
	struct xhci_td *td = 0;
	dma_addr_t event_dma;
	struct xhci_segment *event_seg;
	union xhci_trb *event_trb;
1058
	struct urb *urb = 0;
1059
	int status = -EINPROGRESS;
1060
	struct xhci_ep_ctx *ep_ctx;
1061
	u32 trb_comp_code;
1062

1063
	xhci_dbg(xhci, "In %s\n", __func__);
1064 1065
	slot_id = TRB_TO_SLOT_ID(event->flags);
	xdev = xhci->devs[slot_id];
1066 1067 1068 1069 1070 1071 1072
	if (!xdev) {
		xhci_err(xhci, "ERROR Transfer event pointed to bad slot\n");
		return -ENODEV;
	}

	/* Endpoint ID is 1 based, our index is zero based */
	ep_index = TRB_TO_EP_ID(event->flags) - 1;
1073
	xhci_dbg(xhci, "%s - ep index = %d\n", __func__, ep_index);
1074 1075
	ep = &xdev->eps[ep_index];
	ep_ring = ep->ring;
1076 1077
	ep_ctx = xhci_get_ep_ctx(xhci, xdev->out_ctx, ep_index);
	if (!ep_ring || (ep_ctx->ep_info & EP_STATE_MASK) == EP_STATE_DISABLED) {
1078 1079 1080 1081
		xhci_err(xhci, "ERROR Transfer event pointed to disabled endpoint\n");
		return -ENODEV;
	}

1082
	event_dma = event->buffer;
1083
	/* This TRB should be in the TD at the head of this ring's TD list */
1084
	xhci_dbg(xhci, "%s - checking for list empty\n", __func__);
1085 1086 1087 1088 1089 1090 1091 1092 1093
	if (list_empty(&ep_ring->td_list)) {
		xhci_warn(xhci, "WARN Event TRB for slot %d ep %d with no TDs queued?\n",
				TRB_TO_SLOT_ID(event->flags), ep_index);
		xhci_dbg(xhci, "Event TRB with TRB type ID %u\n",
				(unsigned int) (event->flags & TRB_TYPE_BITMASK)>>10);
		xhci_print_trb_offsets(xhci, (union xhci_trb *) event);
		urb = NULL;
		goto cleanup;
	}
1094
	xhci_dbg(xhci, "%s - getting list entry\n", __func__);
1095 1096 1097
	td = list_entry(ep_ring->td_list.next, struct xhci_td, td_list);

	/* Is this a TRB in the currently executing TD? */
1098
	xhci_dbg(xhci, "%s - looking for TD\n", __func__);
1099 1100
	event_seg = trb_in_td(ep_ring->deq_seg, ep_ring->dequeue,
			td->last_trb, event_dma);
1101
	xhci_dbg(xhci, "%s - found event_seg = %p\n", __func__, event_seg);
1102 1103 1104 1105 1106 1107
	if (!event_seg) {
		/* HC is busted, give up! */
		xhci_err(xhci, "ERROR Transfer event TRB DMA ptr not part of current TD\n");
		return -ESHUTDOWN;
	}
	event_trb = &event_seg->trbs[(event_dma - event_seg->dma) / sizeof(*event_trb)];
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1108 1109
	xhci_dbg(xhci, "Event TRB with TRB type ID %u\n",
			(unsigned int) (event->flags & TRB_TYPE_BITMASK)>>10);
1110 1111 1112 1113
	xhci_dbg(xhci, "Offset 0x00 (buffer lo) = 0x%x\n",
			lower_32_bits(event->buffer));
	xhci_dbg(xhci, "Offset 0x04 (buffer hi) = 0x%x\n",
			upper_32_bits(event->buffer));
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1114 1115 1116 1117 1118 1119
	xhci_dbg(xhci, "Offset 0x08 (transfer length) = 0x%x\n",
			(unsigned int) event->transfer_len);
	xhci_dbg(xhci, "Offset 0x0C (flags) = 0x%x\n",
			(unsigned int) event->flags);

	/* Look for common error cases */
1120 1121
	trb_comp_code = GET_COMP_CODE(event->transfer_len);
	switch (trb_comp_code) {
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1122 1123 1124 1125 1126 1127
	/* Skip codes that require special handling depending on
	 * transfer type
	 */
	case COMP_SUCCESS:
	case COMP_SHORT_TX:
		break;
1128 1129 1130 1131 1132 1133
	case COMP_STOP:
		xhci_dbg(xhci, "Stopped on Transfer TRB\n");
		break;
	case COMP_STOP_INVAL:
		xhci_dbg(xhci, "Stopped on No-op or Link TRB\n");
		break;
S
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1134 1135
	case COMP_STALL:
		xhci_warn(xhci, "WARN: Stalled endpoint\n");
1136
		ep->ep_state |= EP_HALTED;
S
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1137 1138 1139 1140 1141 1142 1143 1144 1145 1146
		status = -EPIPE;
		break;
	case COMP_TRB_ERR:
		xhci_warn(xhci, "WARN: TRB error on endpoint\n");
		status = -EILSEQ;
		break;
	case COMP_TX_ERR:
		xhci_warn(xhci, "WARN: transfer error on endpoint\n");
		status = -EPROTO;
		break;
1147 1148 1149 1150
	case COMP_BABBLE:
		xhci_warn(xhci, "WARN: babble error on endpoint\n");
		status = -EOVERFLOW;
		break;
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1151 1152 1153 1154 1155 1156 1157 1158 1159
	case COMP_DB_ERR:
		xhci_warn(xhci, "WARN: HC couldn't access mem fast enough\n");
		status = -ENOSR;
		break;
	default:
		xhci_warn(xhci, "ERROR Unknown event condition, HC probably busted\n");
		urb = NULL;
		goto cleanup;
	}
1160 1161 1162 1163
	/* Now update the urb's actual_length and give back to the core */
	/* Was this a control transfer? */
	if (usb_endpoint_xfer_control(&td->urb->ep->desc)) {
		xhci_debug_trb(xhci, xhci->event_ring->dequeue);
1164
		switch (trb_comp_code) {
1165 1166 1167 1168 1169 1170 1171 1172 1173 1174 1175 1176 1177 1178
		case COMP_SUCCESS:
			if (event_trb == ep_ring->dequeue) {
				xhci_warn(xhci, "WARN: Success on ctrl setup TRB without IOC set??\n");
				status = -ESHUTDOWN;
			} else if (event_trb != td->last_trb) {
				xhci_warn(xhci, "WARN: Success on ctrl data TRB without IOC set??\n");
				status = -ESHUTDOWN;
			} else {
				xhci_dbg(xhci, "Successful control transfer!\n");
				status = 0;
			}
			break;
		case COMP_SHORT_TX:
			xhci_warn(xhci, "WARN: short transfer on control ep\n");
1179 1180 1181 1182
			if (td->urb->transfer_flags & URB_SHORT_NOT_OK)
				status = -EREMOTEIO;
			else
				status = 0;
1183
			break;
1184 1185 1186 1187 1188 1189 1190 1191 1192 1193
		case COMP_BABBLE:
			/* The 0.96 spec says a babbling control endpoint
			 * is not halted. The 0.96 spec says it is.  Some HW
			 * claims to be 0.95 compliant, but it halts the control
			 * endpoint anyway.  Check if a babble halted the
			 * endpoint.
			 */
			if (ep_ctx->ep_info != EP_STATE_HALTED)
				break;
			/* else fall through */
1194 1195 1196 1197 1198 1199 1200 1201 1202 1203
		case COMP_STALL:
			/* Did we transfer part of the data (middle) phase? */
			if (event_trb != ep_ring->dequeue &&
					event_trb != td->last_trb)
				td->urb->actual_length =
					td->urb->transfer_buffer_length
					- TRB_LEN(event->transfer_len);
			else
				td->urb->actual_length = 0;

1204 1205
			ep->stopped_td = td;
			ep->stopped_trb = event_trb;
1206
			xhci_queue_reset_ep(xhci, slot_id, ep_index);
1207
			xhci_cleanup_stalled_ring(xhci, td->urb->dev, ep_index);
1208 1209
			xhci_ring_cmd_db(xhci);
			goto td_cleanup;
1210
		default:
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1211 1212
			/* Others already handled above */
			break;
1213 1214 1215 1216 1217 1218 1219 1220
		}
		/*
		 * Did we transfer any data, despite the errors that might have
		 * happened?  I.e. did we get past the setup stage?
		 */
		if (event_trb != ep_ring->dequeue) {
			/* The event was for the status stage */
			if (event_trb == td->last_trb) {
1221 1222
				if (td->urb->actual_length != 0) {
					/* Don't overwrite a previously set error code */
1223 1224 1225 1226
					if ((status == -EINPROGRESS ||
								status == 0) &&
							(td->urb->transfer_flags
							 & URB_SHORT_NOT_OK))
1227 1228 1229
						/* Did we already see a short data stage? */
						status = -EREMOTEIO;
				} else {
1230 1231
					td->urb->actual_length =
						td->urb->transfer_buffer_length;
1232
				}
1233
			} else {
1234
			/* Maybe the event was for the data stage? */
1235
				if (trb_comp_code != COMP_STOP_INVAL) {
1236 1237 1238 1239
					/* We didn't stop on a link TRB in the middle */
					td->urb->actual_length =
						td->urb->transfer_buffer_length -
						TRB_LEN(event->transfer_len);
1240 1241 1242 1243
					xhci_dbg(xhci, "Waiting for status stage event\n");
					urb = NULL;
					goto cleanup;
				}
1244 1245 1246
			}
		}
	} else {
1247
		switch (trb_comp_code) {
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1248 1249 1250 1251 1252 1253 1254 1255 1256 1257
		case COMP_SUCCESS:
			/* Double check that the HW transferred everything. */
			if (event_trb != td->last_trb) {
				xhci_warn(xhci, "WARN Successful completion "
						"on short TX\n");
				if (td->urb->transfer_flags & URB_SHORT_NOT_OK)
					status = -EREMOTEIO;
				else
					status = 0;
			} else {
1258 1259 1260 1261 1262 1263
				if (usb_endpoint_xfer_bulk(&td->urb->ep->desc))
					xhci_dbg(xhci, "Successful bulk "
							"transfer!\n");
				else
					xhci_dbg(xhci, "Successful interrupt "
							"transfer!\n");
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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
				status = 0;
			}
			break;
		case COMP_SHORT_TX:
			if (td->urb->transfer_flags & URB_SHORT_NOT_OK)
				status = -EREMOTEIO;
			else
				status = 0;
			break;
		default:
			/* Others already handled above */
			break;
		}
		dev_dbg(&td->urb->dev->dev,
				"ep %#x - asked for %d bytes, "
				"%d bytes untransferred\n",
				td->urb->ep->desc.bEndpointAddress,
				td->urb->transfer_buffer_length,
				TRB_LEN(event->transfer_len));
		/* Fast path - was this the last TRB in the TD for this URB? */
		if (event_trb == td->last_trb) {
			if (TRB_LEN(event->transfer_len) != 0) {
				td->urb->actual_length =
					td->urb->transfer_buffer_length -
					TRB_LEN(event->transfer_len);
1289 1290
				if (td->urb->transfer_buffer_length <
						td->urb->actual_length) {
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1291 1292 1293 1294
					xhci_warn(xhci, "HC gave bad length "
							"of %d bytes left\n",
							TRB_LEN(event->transfer_len));
					td->urb->actual_length = 0;
1295 1296 1297 1298 1299
					if (td->urb->transfer_flags &
							URB_SHORT_NOT_OK)
						status = -EREMOTEIO;
					else
						status = 0;
S
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1300
				}
1301 1302 1303 1304 1305 1306 1307
				/* Don't overwrite a previously set error code */
				if (status == -EINPROGRESS) {
					if (td->urb->transfer_flags & URB_SHORT_NOT_OK)
						status = -EREMOTEIO;
					else
						status = 0;
				}
S
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1308 1309 1310 1311 1312
			} else {
				td->urb->actual_length = td->urb->transfer_buffer_length;
				/* Ignore a short packet completion if the
				 * untransferred length was zero.
				 */
1313 1314
				if (status == -EREMOTEIO)
					status = 0;
S
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1315 1316
			}
		} else {
1317 1318
			/* Slow path - walk the list, starting from the dequeue
			 * pointer, to get the actual length transferred.
S
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1319
			 */
1320 1321 1322
			union xhci_trb *cur_trb;
			struct xhci_segment *cur_seg;

S
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1323
			td->urb->actual_length = 0;
1324 1325 1326 1327 1328 1329 1330
			for (cur_trb = ep_ring->dequeue, cur_seg = ep_ring->deq_seg;
					cur_trb != event_trb;
					next_trb(xhci, ep_ring, &cur_seg, &cur_trb)) {
				if (TRB_TYPE(cur_trb->generic.field[3]) != TRB_TR_NOOP &&
						TRB_TYPE(cur_trb->generic.field[3]) != TRB_LINK)
					td->urb->actual_length +=
						TRB_LEN(cur_trb->generic.field[2]);
S
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1331
			}
1332 1333 1334
			/* If the ring didn't stop on a Link or No-op TRB, add
			 * in the actual bytes transferred from the Normal TRB
			 */
1335
			if (trb_comp_code != COMP_STOP_INVAL)
1336 1337 1338
				td->urb->actual_length +=
					TRB_LEN(cur_trb->generic.field[2]) -
					TRB_LEN(event->transfer_len);
S
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1339
		}
1340
	}
1341 1342
	if (trb_comp_code == COMP_STOP_INVAL ||
			trb_comp_code == COMP_STOP) {
1343 1344 1345 1346
		/* The Endpoint Stop Command completion will take care of any
		 * stopped TDs.  A stopped TD may be restarted, so don't update
		 * the ring dequeue pointer or take this TD off any lists yet.
		 */
1347 1348
		ep->stopped_td = td;
		ep->stopped_trb = event_trb;
1349
	} else {
1350 1351
		if (trb_comp_code == COMP_STALL ||
				trb_comp_code == COMP_BABBLE) {
1352 1353 1354 1355 1356 1357
			/* The transfer is completed from the driver's
			 * perspective, but we need to issue a set dequeue
			 * command for this stalled endpoint to move the dequeue
			 * pointer past the TD.  We can't do that here because
			 * the halt condition must be cleared first.
			 */
1358 1359
			ep->stopped_td = td;
			ep->stopped_trb = event_trb;
1360 1361 1362 1363
		} else {
			/* Update ring dequeue pointer */
			while (ep_ring->dequeue != td->last_trb)
				inc_deq(xhci, ep_ring, false);
1364
			inc_deq(xhci, ep_ring, false);
1365
		}
S
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1366

1367
td_cleanup:
1368 1369
		/* Clean up the endpoint's TD list */
		urb = td->urb;
1370 1371 1372 1373 1374 1375 1376 1377 1378 1379 1380 1381 1382
		/* Do one last check of the actual transfer length.
		 * If the host controller said we transferred more data than
		 * the buffer length, urb->actual_length will be a very big
		 * number (since it's unsigned).  Play it safe and say we didn't
		 * transfer anything.
		 */
		if (urb->actual_length > urb->transfer_buffer_length) {
			xhci_warn(xhci, "URB transfer length is wrong, "
					"xHC issue? req. len = %u, "
					"act. len = %u\n",
					urb->transfer_buffer_length,
					urb->actual_length);
			urb->actual_length = 0;
1383 1384 1385 1386
			if (td->urb->transfer_flags & URB_SHORT_NOT_OK)
				status = -EREMOTEIO;
			else
				status = 0;
1387
		}
1388 1389
		list_del(&td->td_list);
		/* Was this TD slated to be cancelled but completed anyway? */
1390
		if (!list_empty(&td->cancelled_td_list))
1391
			list_del(&td->cancelled_td_list);
1392

1393 1394 1395 1396 1397 1398
		/* Leave the TD around for the reset endpoint function to use
		 * (but only if it's not a control endpoint, since we already
		 * queued the Set TR dequeue pointer command for stalled
		 * control endpoints).
		 */
		if (usb_endpoint_xfer_control(&urb->ep->desc) ||
1399 1400
			(trb_comp_code != COMP_STALL &&
				trb_comp_code != COMP_BABBLE)) {
1401 1402
			kfree(td);
		}
1403 1404
		urb->hcpriv = NULL;
	}
1405 1406
cleanup:
	inc_deq(xhci, xhci->event_ring, true);
1407
	xhci_set_hc_event_deq(xhci);
1408

S
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1409
	/* FIXME for multi-TD URBs (who have buffers bigger than 64MB) */
1410 1411
	if (urb) {
		usb_hcd_unlink_urb_from_ep(xhci_to_hcd(xhci), urb);
1412
		xhci_dbg(xhci, "Giveback URB %p, len = %d, status = %d\n",
1413
				urb, urb->actual_length, status);
1414 1415 1416 1417 1418 1419 1420
		spin_unlock(&xhci->lock);
		usb_hcd_giveback_urb(xhci_to_hcd(xhci), urb, status);
		spin_lock(&xhci->lock);
	}
	return 0;
}

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1421 1422 1423 1424
/*
 * This function handles all OS-owned events on the event ring.  It may drop
 * xhci->lock between event processing (e.g. to pass up port status changes).
 */
1425
void xhci_handle_event(struct xhci_hcd *xhci)
1426 1427
{
	union xhci_trb *event;
S
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1428
	int update_ptrs = 1;
1429
	int ret;
1430

1431
	xhci_dbg(xhci, "In %s\n", __func__);
1432 1433 1434 1435 1436 1437 1438 1439 1440 1441 1442 1443
	if (!xhci->event_ring || !xhci->event_ring->dequeue) {
		xhci->error_bitmask |= 1 << 1;
		return;
	}

	event = xhci->event_ring->dequeue;
	/* Does the HC or OS own the TRB? */
	if ((event->event_cmd.flags & TRB_CYCLE) !=
			xhci->event_ring->cycle_state) {
		xhci->error_bitmask |= 1 << 2;
		return;
	}
1444
	xhci_dbg(xhci, "%s - OS owns TRB\n", __func__);
1445

S
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1446
	/* FIXME: Handle more event types. */
1447 1448
	switch ((event->event_cmd.flags & TRB_TYPE_BITMASK)) {
	case TRB_TYPE(TRB_COMPLETION):
1449
		xhci_dbg(xhci, "%s - calling handle_cmd_completion\n", __func__);
1450
		handle_cmd_completion(xhci, &event->event_cmd);
1451
		xhci_dbg(xhci, "%s - returned from handle_cmd_completion\n", __func__);
1452
		break;
S
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1453
	case TRB_TYPE(TRB_PORT_STATUS):
1454
		xhci_dbg(xhci, "%s - calling handle_port_status\n", __func__);
S
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1455
		handle_port_status(xhci, event);
1456
		xhci_dbg(xhci, "%s - returned from handle_port_status\n", __func__);
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1457 1458
		update_ptrs = 0;
		break;
1459
	case TRB_TYPE(TRB_TRANSFER):
1460
		xhci_dbg(xhci, "%s - calling handle_tx_event\n", __func__);
1461
		ret = handle_tx_event(xhci, &event->trans_event);
1462
		xhci_dbg(xhci, "%s - returned from handle_tx_event\n", __func__);
1463 1464 1465 1466 1467
		if (ret < 0)
			xhci->error_bitmask |= 1 << 9;
		else
			update_ptrs = 0;
		break;
1468 1469 1470
	default:
		xhci->error_bitmask |= 1 << 3;
	}
1471 1472 1473 1474 1475 1476 1477 1478
	/* Any of the above functions may drop and re-acquire the lock, so check
	 * to make sure a watchdog timer didn't mark the host as non-responsive.
	 */
	if (xhci->xhc_state & XHCI_STATE_DYING) {
		xhci_dbg(xhci, "xHCI host dying, returning from "
				"event handler.\n");
		return;
	}
1479

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1480 1481 1482
	if (update_ptrs) {
		/* Update SW and HC event ring dequeue pointer */
		inc_deq(xhci, xhci->event_ring, true);
1483
		xhci_set_hc_event_deq(xhci);
S
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1484
	}
1485
	/* Are there more items on the event ring? */
1486
	xhci_handle_event(xhci);
1487 1488
}

1489 1490
/****		Endpoint Ring Operations	****/

1491 1492 1493 1494 1495 1496 1497 1498 1499 1500 1501 1502 1503 1504 1505 1506 1507 1508
/*
 * Generic function for queueing a TRB on a ring.
 * The caller must have checked to make sure there's room on the ring.
 */
static void queue_trb(struct xhci_hcd *xhci, struct xhci_ring *ring,
		bool consumer,
		u32 field1, u32 field2, u32 field3, u32 field4)
{
	struct xhci_generic_trb *trb;

	trb = &ring->enqueue->generic;
	trb->field[0] = field1;
	trb->field[1] = field2;
	trb->field[2] = field3;
	trb->field[3] = field4;
	inc_enq(xhci, ring, consumer);
}

1509 1510 1511 1512 1513 1514 1515 1516 1517 1518 1519 1520 1521 1522 1523 1524 1525 1526
/*
 * Does various checks on the endpoint ring, and makes it ready to queue num_trbs.
 * FIXME allocate segments if the ring is full.
 */
static int prepare_ring(struct xhci_hcd *xhci, struct xhci_ring *ep_ring,
		u32 ep_state, unsigned int num_trbs, gfp_t mem_flags)
{
	/* Make sure the endpoint has been added to xHC schedule */
	xhci_dbg(xhci, "Endpoint state = 0x%x\n", ep_state);
	switch (ep_state) {
	case EP_STATE_DISABLED:
		/*
		 * USB core changed config/interfaces without notifying us,
		 * or hardware is reporting the wrong state.
		 */
		xhci_warn(xhci, "WARN urb submitted to disabled ep\n");
		return -ENOENT;
	case EP_STATE_ERROR:
1527
		xhci_warn(xhci, "WARN waiting for error on ep to be cleared\n");
1528 1529 1530
		/* FIXME event handling code for error needs to clear it */
		/* XXX not sure if this should be -ENOENT or not */
		return -EINVAL;
1531 1532
	case EP_STATE_HALTED:
		xhci_dbg(xhci, "WARN halted endpoint, queueing URB anyway.\n");
1533 1534 1535 1536 1537 1538 1539 1540 1541 1542 1543 1544 1545 1546 1547 1548 1549 1550 1551
	case EP_STATE_STOPPED:
	case EP_STATE_RUNNING:
		break;
	default:
		xhci_err(xhci, "ERROR unknown endpoint state for ep\n");
		/*
		 * FIXME issue Configure Endpoint command to try to get the HC
		 * back into a known state.
		 */
		return -EINVAL;
	}
	if (!room_on_ring(xhci, ep_ring, num_trbs)) {
		/* FIXME allocate more room */
		xhci_err(xhci, "ERROR no room on ep ring\n");
		return -ENOMEM;
	}
	return 0;
}

1552
static int prepare_transfer(struct xhci_hcd *xhci,
1553 1554 1555 1556 1557 1558 1559 1560
		struct xhci_virt_device *xdev,
		unsigned int ep_index,
		unsigned int num_trbs,
		struct urb *urb,
		struct xhci_td **td,
		gfp_t mem_flags)
{
	int ret;
1561
	struct xhci_ep_ctx *ep_ctx = xhci_get_ep_ctx(xhci, xdev->out_ctx, ep_index);
1562
	ret = prepare_ring(xhci, xdev->eps[ep_index].ring,
1563
			ep_ctx->ep_info & EP_STATE_MASK,
1564 1565 1566 1567 1568 1569 1570
			num_trbs, mem_flags);
	if (ret)
		return ret;
	*td = kzalloc(sizeof(struct xhci_td), mem_flags);
	if (!*td)
		return -ENOMEM;
	INIT_LIST_HEAD(&(*td)->td_list);
1571
	INIT_LIST_HEAD(&(*td)->cancelled_td_list);
1572 1573 1574 1575 1576 1577 1578 1579 1580 1581

	ret = usb_hcd_link_urb_to_ep(xhci_to_hcd(xhci), urb);
	if (unlikely(ret)) {
		kfree(*td);
		return ret;
	}

	(*td)->urb = urb;
	urb->hcpriv = (void *) (*td);
	/* Add this TD to the tail of the endpoint ring's TD list */
1582 1583 1584
	list_add_tail(&(*td)->td_list, &xdev->eps[ep_index].ring->td_list);
	(*td)->start_seg = xdev->eps[ep_index].ring->enq_seg;
	(*td)->first_trb = xdev->eps[ep_index].ring->enqueue;
1585 1586 1587 1588

	return 0;
}

1589
static unsigned int count_sg_trbs_needed(struct xhci_hcd *xhci, struct urb *urb)
1590 1591 1592 1593 1594 1595 1596 1597 1598 1599 1600 1601 1602 1603 1604 1605 1606 1607 1608 1609 1610 1611 1612 1613 1614
{
	int num_sgs, num_trbs, running_total, temp, i;
	struct scatterlist *sg;

	sg = NULL;
	num_sgs = urb->num_sgs;
	temp = urb->transfer_buffer_length;

	xhci_dbg(xhci, "count sg list trbs: \n");
	num_trbs = 0;
	for_each_sg(urb->sg->sg, sg, num_sgs, i) {
		unsigned int previous_total_trbs = num_trbs;
		unsigned int len = sg_dma_len(sg);

		/* Scatter gather list entries may cross 64KB boundaries */
		running_total = TRB_MAX_BUFF_SIZE -
			(sg_dma_address(sg) & ((1 << TRB_MAX_BUFF_SHIFT) - 1));
		if (running_total != 0)
			num_trbs++;

		/* How many more 64KB chunks to transfer, how many more TRBs? */
		while (running_total < sg_dma_len(sg)) {
			num_trbs++;
			running_total += TRB_MAX_BUFF_SIZE;
		}
1615 1616 1617
		xhci_dbg(xhci, " sg #%d: dma = %#llx, len = %#x (%d), num_trbs = %d\n",
				i, (unsigned long long)sg_dma_address(sg),
				len, len, num_trbs - previous_total_trbs);
1618 1619 1620 1621 1622 1623 1624 1625 1626 1627 1628 1629 1630 1631 1632

		len = min_t(int, len, temp);
		temp -= len;
		if (temp == 0)
			break;
	}
	xhci_dbg(xhci, "\n");
	if (!in_interrupt())
		dev_dbg(&urb->dev->dev, "ep %#x - urb len = %d, sglist used, num_trbs = %d\n",
				urb->ep->desc.bEndpointAddress,
				urb->transfer_buffer_length,
				num_trbs);
	return num_trbs;
}

1633
static void check_trb_math(struct urb *urb, int num_trbs, int running_total)
1634 1635 1636 1637 1638 1639 1640 1641 1642 1643 1644 1645 1646 1647 1648
{
	if (num_trbs != 0)
		dev_dbg(&urb->dev->dev, "%s - ep %#x - Miscalculated number of "
				"TRBs, %d left\n", __func__,
				urb->ep->desc.bEndpointAddress, num_trbs);
	if (running_total != urb->transfer_buffer_length)
		dev_dbg(&urb->dev->dev, "%s - ep %#x - Miscalculated tx length, "
				"queued %#x (%d), asked for %#x (%d)\n",
				__func__,
				urb->ep->desc.bEndpointAddress,
				running_total, running_total,
				urb->transfer_buffer_length,
				urb->transfer_buffer_length);
}

1649
static void giveback_first_trb(struct xhci_hcd *xhci, int slot_id,
1650 1651 1652 1653 1654 1655 1656 1657 1658
		unsigned int ep_index, int start_cycle,
		struct xhci_generic_trb *start_trb, struct xhci_td *td)
{
	/*
	 * Pass all the TRBs to the hardware at once and make sure this write
	 * isn't reordered.
	 */
	wmb();
	start_trb->field[3] |= start_cycle;
1659
	ring_ep_doorbell(xhci, slot_id, ep_index);
1660 1661
}

1662 1663 1664 1665 1666 1667 1668 1669 1670 1671 1672 1673 1674 1675 1676 1677 1678 1679 1680 1681 1682 1683 1684 1685 1686 1687 1688 1689 1690 1691 1692 1693 1694 1695 1696 1697 1698 1699 1700 1701 1702
/*
 * xHCI uses normal TRBs for both bulk and interrupt.  When the interrupt
 * endpoint is to be serviced, the xHC will consume (at most) one TD.  A TD
 * (comprised of sg list entries) can take several service intervals to
 * transmit.
 */
int xhci_queue_intr_tx(struct xhci_hcd *xhci, gfp_t mem_flags,
		struct urb *urb, int slot_id, unsigned int ep_index)
{
	struct xhci_ep_ctx *ep_ctx = xhci_get_ep_ctx(xhci,
			xhci->devs[slot_id]->out_ctx, ep_index);
	int xhci_interval;
	int ep_interval;

	xhci_interval = EP_INTERVAL_TO_UFRAMES(ep_ctx->ep_info);
	ep_interval = urb->interval;
	/* Convert to microframes */
	if (urb->dev->speed == USB_SPEED_LOW ||
			urb->dev->speed == USB_SPEED_FULL)
		ep_interval *= 8;
	/* FIXME change this to a warning and a suggestion to use the new API
	 * to set the polling interval (once the API is added).
	 */
	if (xhci_interval != ep_interval) {
		if (!printk_ratelimit())
			dev_dbg(&urb->dev->dev, "Driver uses different interval"
					" (%d microframe%s) than xHCI "
					"(%d microframe%s)\n",
					ep_interval,
					ep_interval == 1 ? "" : "s",
					xhci_interval,
					xhci_interval == 1 ? "" : "s");
		urb->interval = xhci_interval;
		/* Convert back to frames for LS/FS devices */
		if (urb->dev->speed == USB_SPEED_LOW ||
				urb->dev->speed == USB_SPEED_FULL)
			urb->interval /= 8;
	}
	return xhci_queue_bulk_tx(xhci, GFP_ATOMIC, urb, slot_id, ep_index);
}

1703
static int queue_bulk_sg_tx(struct xhci_hcd *xhci, gfp_t mem_flags,
1704 1705 1706 1707 1708 1709 1710 1711 1712 1713 1714 1715 1716 1717
		struct urb *urb, int slot_id, unsigned int ep_index)
{
	struct xhci_ring *ep_ring;
	unsigned int num_trbs;
	struct xhci_td *td;
	struct scatterlist *sg;
	int num_sgs;
	int trb_buff_len, this_sg_len, running_total;
	bool first_trb;
	u64 addr;

	struct xhci_generic_trb *start_trb;
	int start_cycle;

1718
	ep_ring = xhci->devs[slot_id]->eps[ep_index].ring;
1719 1720 1721
	num_trbs = count_sg_trbs_needed(xhci, urb);
	num_sgs = urb->num_sgs;

1722
	trb_buff_len = prepare_transfer(xhci, xhci->devs[slot_id],
1723 1724 1725 1726 1727 1728 1729 1730 1731 1732 1733 1734 1735 1736 1737 1738 1739 1740 1741 1742 1743 1744 1745 1746 1747 1748 1749 1750 1751 1752 1753 1754 1755 1756 1757 1758
			ep_index, num_trbs, urb, &td, mem_flags);
	if (trb_buff_len < 0)
		return trb_buff_len;
	/*
	 * Don't give the first TRB to the hardware (by toggling the cycle bit)
	 * until we've finished creating all the other TRBs.  The ring's cycle
	 * state may change as we enqueue the other TRBs, so save it too.
	 */
	start_trb = &ep_ring->enqueue->generic;
	start_cycle = ep_ring->cycle_state;

	running_total = 0;
	/*
	 * How much data is in the first TRB?
	 *
	 * There are three forces at work for TRB buffer pointers and lengths:
	 * 1. We don't want to walk off the end of this sg-list entry buffer.
	 * 2. The transfer length that the driver requested may be smaller than
	 *    the amount of memory allocated for this scatter-gather list.
	 * 3. TRBs buffers can't cross 64KB boundaries.
	 */
	sg = urb->sg->sg;
	addr = (u64) sg_dma_address(sg);
	this_sg_len = sg_dma_len(sg);
	trb_buff_len = TRB_MAX_BUFF_SIZE -
		(addr & ((1 << TRB_MAX_BUFF_SHIFT) - 1));
	trb_buff_len = min_t(int, trb_buff_len, this_sg_len);
	if (trb_buff_len > urb->transfer_buffer_length)
		trb_buff_len = urb->transfer_buffer_length;
	xhci_dbg(xhci, "First length to xfer from 1st sglist entry = %u\n",
			trb_buff_len);

	first_trb = true;
	/* Queue the first TRB, even if it's zero-length */
	do {
		u32 field = 0;
1759
		u32 length_field = 0;
1760 1761 1762 1763 1764 1765 1766 1767 1768 1769 1770 1771 1772 1773 1774 1775 1776 1777 1778 1779 1780 1781 1782 1783 1784 1785 1786 1787 1788

		/* Don't change the cycle bit of the first TRB until later */
		if (first_trb)
			first_trb = false;
		else
			field |= ep_ring->cycle_state;

		/* Chain all the TRBs together; clear the chain bit in the last
		 * TRB to indicate it's the last TRB in the chain.
		 */
		if (num_trbs > 1) {
			field |= TRB_CHAIN;
		} else {
			/* FIXME - add check for ZERO_PACKET flag before this */
			td->last_trb = ep_ring->enqueue;
			field |= TRB_IOC;
		}
		xhci_dbg(xhci, " sg entry: dma = %#x, len = %#x (%d), "
				"64KB boundary at %#x, end dma = %#x\n",
				(unsigned int) addr, trb_buff_len, trb_buff_len,
				(unsigned int) (addr + TRB_MAX_BUFF_SIZE) & ~(TRB_MAX_BUFF_SIZE - 1),
				(unsigned int) addr + trb_buff_len);
		if (TRB_MAX_BUFF_SIZE -
				(addr & ((1 << TRB_MAX_BUFF_SHIFT) - 1)) < trb_buff_len) {
			xhci_warn(xhci, "WARN: sg dma xfer crosses 64KB boundaries!\n");
			xhci_dbg(xhci, "Next boundary at %#x, end dma = %#x\n",
					(unsigned int) (addr + TRB_MAX_BUFF_SIZE) & ~(TRB_MAX_BUFF_SIZE - 1),
					(unsigned int) addr + trb_buff_len);
		}
1789 1790 1791
		length_field = TRB_LEN(trb_buff_len) |
			TD_REMAINDER(urb->transfer_buffer_length - running_total) |
			TRB_INTR_TARGET(0);
1792
		queue_trb(xhci, ep_ring, false,
1793 1794
				lower_32_bits(addr),
				upper_32_bits(addr),
1795
				length_field,
1796 1797 1798 1799 1800 1801 1802 1803 1804 1805 1806 1807 1808 1809 1810 1811 1812 1813 1814 1815 1816 1817 1818 1819 1820 1821 1822 1823 1824 1825 1826 1827 1828 1829 1830 1831 1832
				/* We always want to know if the TRB was short,
				 * or we won't get an event when it completes.
				 * (Unless we use event data TRBs, which are a
				 * waste of space and HC resources.)
				 */
				field | TRB_ISP | TRB_TYPE(TRB_NORMAL));
		--num_trbs;
		running_total += trb_buff_len;

		/* Calculate length for next transfer --
		 * Are we done queueing all the TRBs for this sg entry?
		 */
		this_sg_len -= trb_buff_len;
		if (this_sg_len == 0) {
			--num_sgs;
			if (num_sgs == 0)
				break;
			sg = sg_next(sg);
			addr = (u64) sg_dma_address(sg);
			this_sg_len = sg_dma_len(sg);
		} else {
			addr += trb_buff_len;
		}

		trb_buff_len = TRB_MAX_BUFF_SIZE -
			(addr & ((1 << TRB_MAX_BUFF_SHIFT) - 1));
		trb_buff_len = min_t(int, trb_buff_len, this_sg_len);
		if (running_total + trb_buff_len > urb->transfer_buffer_length)
			trb_buff_len =
				urb->transfer_buffer_length - running_total;
	} while (running_total < urb->transfer_buffer_length);

	check_trb_math(urb, num_trbs, running_total);
	giveback_first_trb(xhci, slot_id, ep_index, start_cycle, start_trb, td);
	return 0;
}

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/* This is very similar to what ehci-q.c qtd_fill() does */
1834
int xhci_queue_bulk_tx(struct xhci_hcd *xhci, gfp_t mem_flags,
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		struct urb *urb, int slot_id, unsigned int ep_index)
{
	struct xhci_ring *ep_ring;
	struct xhci_td *td;
	int num_trbs;
	struct xhci_generic_trb *start_trb;
	bool first_trb;
	int start_cycle;
1843
	u32 field, length_field;
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	int running_total, trb_buff_len, ret;
	u64 addr;

1848 1849 1850
	if (urb->sg)
		return queue_bulk_sg_tx(xhci, mem_flags, urb, slot_id, ep_index);

1851
	ep_ring = xhci->devs[slot_id]->eps[ep_index].ring;
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	num_trbs = 0;
	/* How much data is (potentially) left before the 64KB boundary? */
	running_total = TRB_MAX_BUFF_SIZE -
		(urb->transfer_dma & ((1 << TRB_MAX_BUFF_SHIFT) - 1));

	/* If there's some data on this 64KB chunk, or we have to send a
	 * zero-length transfer, we need at least one TRB
	 */
	if (running_total != 0 || urb->transfer_buffer_length == 0)
		num_trbs++;
	/* How many more 64KB chunks to transfer, how many more TRBs? */
	while (running_total < urb->transfer_buffer_length) {
		num_trbs++;
		running_total += TRB_MAX_BUFF_SIZE;
	}
	/* FIXME: this doesn't deal with URB_ZERO_PACKET - need one more */

	if (!in_interrupt())
1871
		dev_dbg(&urb->dev->dev, "ep %#x - urb len = %#x (%d), addr = %#llx, num_trbs = %d\n",
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				urb->ep->desc.bEndpointAddress,
1873 1874
				urb->transfer_buffer_length,
				urb->transfer_buffer_length,
1875
				(unsigned long long)urb->transfer_dma,
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				num_trbs);
1877

1878
	ret = prepare_transfer(xhci, xhci->devs[slot_id], ep_index,
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			num_trbs, urb, &td, mem_flags);
	if (ret < 0)
		return ret;

	/*
	 * Don't give the first TRB to the hardware (by toggling the cycle bit)
	 * until we've finished creating all the other TRBs.  The ring's cycle
	 * state may change as we enqueue the other TRBs, so save it too.
	 */
	start_trb = &ep_ring->enqueue->generic;
	start_cycle = ep_ring->cycle_state;

	running_total = 0;
	/* How much data is in the first TRB? */
	addr = (u64) urb->transfer_dma;
	trb_buff_len = TRB_MAX_BUFF_SIZE -
		(urb->transfer_dma & ((1 << TRB_MAX_BUFF_SHIFT) - 1));
	if (urb->transfer_buffer_length < trb_buff_len)
		trb_buff_len = urb->transfer_buffer_length;

	first_trb = true;

	/* Queue the first TRB, even if it's zero-length */
	do {
		field = 0;

		/* Don't change the cycle bit of the first TRB until later */
		if (first_trb)
			first_trb = false;
		else
			field |= ep_ring->cycle_state;

		/* Chain all the TRBs together; clear the chain bit in the last
		 * TRB to indicate it's the last TRB in the chain.
		 */
		if (num_trbs > 1) {
			field |= TRB_CHAIN;
		} else {
			/* FIXME - add check for ZERO_PACKET flag before this */
			td->last_trb = ep_ring->enqueue;
			field |= TRB_IOC;
		}
1921 1922 1923
		length_field = TRB_LEN(trb_buff_len) |
			TD_REMAINDER(urb->transfer_buffer_length - running_total) |
			TRB_INTR_TARGET(0);
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		queue_trb(xhci, ep_ring, false,
1925 1926
				lower_32_bits(addr),
				upper_32_bits(addr),
1927
				length_field,
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				/* We always want to know if the TRB was short,
				 * or we won't get an event when it completes.
				 * (Unless we use event data TRBs, which are a
				 * waste of space and HC resources.)
				 */
				field | TRB_ISP | TRB_TYPE(TRB_NORMAL));
		--num_trbs;
		running_total += trb_buff_len;

		/* Calculate length for next transfer */
		addr += trb_buff_len;
		trb_buff_len = urb->transfer_buffer_length - running_total;
		if (trb_buff_len > TRB_MAX_BUFF_SIZE)
			trb_buff_len = TRB_MAX_BUFF_SIZE;
	} while (running_total < urb->transfer_buffer_length);

1944 1945
	check_trb_math(urb, num_trbs, running_total);
	giveback_first_trb(xhci, slot_id, ep_index, start_cycle, start_trb, td);
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	return 0;
}

1949
/* Caller must have locked xhci->lock */
1950
int xhci_queue_ctrl_tx(struct xhci_hcd *xhci, gfp_t mem_flags,
1951 1952 1953 1954 1955 1956 1957 1958
		struct urb *urb, int slot_id, unsigned int ep_index)
{
	struct xhci_ring *ep_ring;
	int num_trbs;
	int ret;
	struct usb_ctrlrequest *setup;
	struct xhci_generic_trb *start_trb;
	int start_cycle;
1959
	u32 field, length_field;
1960 1961
	struct xhci_td *td;

1962
	ep_ring = xhci->devs[slot_id]->eps[ep_index].ring;
1963 1964 1965 1966 1967 1968 1969 1970 1971 1972 1973 1974 1975 1976 1977 1978 1979 1980 1981 1982

	/*
	 * Need to copy setup packet into setup TRB, so we can't use the setup
	 * DMA address.
	 */
	if (!urb->setup_packet)
		return -EINVAL;

	if (!in_interrupt())
		xhci_dbg(xhci, "Queueing ctrl tx for slot id %d, ep %d\n",
				slot_id, ep_index);
	/* 1 TRB for setup, 1 for status */
	num_trbs = 2;
	/*
	 * Don't need to check if we need additional event data and normal TRBs,
	 * since data in control transfers will never get bigger than 16MB
	 * XXX: can we get a buffer that crosses 64KB boundaries?
	 */
	if (urb->transfer_buffer_length > 0)
		num_trbs++;
1983
	ret = prepare_transfer(xhci, xhci->devs[slot_id], ep_index, num_trbs,
1984 1985 1986 1987 1988 1989 1990 1991 1992 1993 1994 1995 1996 1997 1998 1999 2000 2001 2002 2003 2004 2005 2006 2007 2008
			urb, &td, mem_flags);
	if (ret < 0)
		return ret;

	/*
	 * Don't give the first TRB to the hardware (by toggling the cycle bit)
	 * until we've finished creating all the other TRBs.  The ring's cycle
	 * state may change as we enqueue the other TRBs, so save it too.
	 */
	start_trb = &ep_ring->enqueue->generic;
	start_cycle = ep_ring->cycle_state;

	/* Queue setup TRB - see section 6.4.1.2.1 */
	/* FIXME better way to translate setup_packet into two u32 fields? */
	setup = (struct usb_ctrlrequest *) urb->setup_packet;
	queue_trb(xhci, ep_ring, false,
			/* FIXME endianness is probably going to bite my ass here. */
			setup->bRequestType | setup->bRequest << 8 | setup->wValue << 16,
			setup->wIndex | setup->wLength << 16,
			TRB_LEN(8) | TRB_INTR_TARGET(0),
			/* Immediate data in pointer */
			TRB_IDT | TRB_TYPE(TRB_SETUP));

	/* If there's data, queue data TRBs */
	field = 0;
2009 2010 2011
	length_field = TRB_LEN(urb->transfer_buffer_length) |
		TD_REMAINDER(urb->transfer_buffer_length) |
		TRB_INTR_TARGET(0);
2012 2013 2014 2015 2016 2017
	if (urb->transfer_buffer_length > 0) {
		if (setup->bRequestType & USB_DIR_IN)
			field |= TRB_DIR_IN;
		queue_trb(xhci, ep_ring, false,
				lower_32_bits(urb->transfer_dma),
				upper_32_bits(urb->transfer_dma),
2018
				length_field,
2019 2020 2021 2022 2023 2024 2025 2026 2027 2028 2029 2030 2031 2032 2033 2034 2035 2036 2037 2038
				/* Event on short tx */
				field | TRB_ISP | TRB_TYPE(TRB_DATA) | ep_ring->cycle_state);
	}

	/* Save the DMA address of the last TRB in the TD */
	td->last_trb = ep_ring->enqueue;

	/* Queue status TRB - see Table 7 and sections 4.11.2.2 and 6.4.1.2.3 */
	/* If the device sent data, the status stage is an OUT transfer */
	if (urb->transfer_buffer_length > 0 && setup->bRequestType & USB_DIR_IN)
		field = 0;
	else
		field = TRB_DIR_IN;
	queue_trb(xhci, ep_ring, false,
			0,
			0,
			TRB_INTR_TARGET(0),
			/* Event on completion */
			field | TRB_IOC | TRB_TYPE(TRB_STATUS) | ep_ring->cycle_state);

2039
	giveback_first_trb(xhci, slot_id, ep_index, start_cycle, start_trb, td);
2040 2041 2042 2043 2044
	return 0;
}

/****		Command Ring Operations		****/

2045 2046 2047 2048 2049 2050 2051 2052 2053 2054
/* Generic function for queueing a command TRB on the command ring.
 * Check to make sure there's room on the command ring for one command TRB.
 * Also check that there's room reserved for commands that must not fail.
 * If this is a command that must not fail, meaning command_must_succeed = TRUE,
 * then only check for the number of reserved spots.
 * Don't decrement xhci->cmd_ring_reserved_trbs after we've queued the TRB
 * because the command event handler may want to resubmit a failed command.
 */
static int queue_command(struct xhci_hcd *xhci, u32 field1, u32 field2,
		u32 field3, u32 field4, bool command_must_succeed)
2055
{
2056 2057 2058 2059 2060
	int reserved_trbs = xhci->cmd_ring_reserved_trbs;
	if (!command_must_succeed)
		reserved_trbs++;

	if (!room_on_ring(xhci, xhci->cmd_ring, reserved_trbs)) {
2061 2062
		if (!in_interrupt())
			xhci_err(xhci, "ERR: No room for command on command ring\n");
2063 2064 2065
		if (command_must_succeed)
			xhci_err(xhci, "ERR: Reserved TRB counting for "
					"unfailable commands failed.\n");
2066 2067 2068 2069 2070 2071 2072 2073 2074 2075
		return -ENOMEM;
	}
	queue_trb(xhci, xhci->cmd_ring, false, field1, field2, field3,
			field4 | xhci->cmd_ring->cycle_state);
	return 0;
}

/* Queue a no-op command on the command ring */
static int queue_cmd_noop(struct xhci_hcd *xhci)
{
2076
	return queue_command(xhci, 0, 0, 0, TRB_TYPE(TRB_CMD_NOOP), false);
2077 2078 2079 2080 2081 2082
}

/*
 * Place a no-op command on the command ring to test the command and
 * event ring.
 */
2083
void *xhci_setup_one_noop(struct xhci_hcd *xhci)
2084 2085 2086 2087
{
	if (queue_cmd_noop(xhci) < 0)
		return NULL;
	xhci->noops_submitted++;
2088
	return xhci_ring_cmd_db;
2089
}
2090 2091

/* Queue a slot enable or disable request on the command ring */
2092
int xhci_queue_slot_control(struct xhci_hcd *xhci, u32 trb_type, u32 slot_id)
2093 2094
{
	return queue_command(xhci, 0, 0, 0,
2095
			TRB_TYPE(trb_type) | SLOT_ID_FOR_TRB(slot_id), false);
2096 2097 2098
}

/* Queue an address device command TRB */
2099 2100
int xhci_queue_address_device(struct xhci_hcd *xhci, dma_addr_t in_ctx_ptr,
		u32 slot_id)
2101
{
2102 2103
	return queue_command(xhci, lower_32_bits(in_ctx_ptr),
			upper_32_bits(in_ctx_ptr), 0,
2104 2105
			TRB_TYPE(TRB_ADDR_DEV) | SLOT_ID_FOR_TRB(slot_id),
			false);
2106
}
2107 2108

/* Queue a configure endpoint command TRB */
2109
int xhci_queue_configure_endpoint(struct xhci_hcd *xhci, dma_addr_t in_ctx_ptr,
2110
		u32 slot_id, bool command_must_succeed)
2111
{
2112 2113
	return queue_command(xhci, lower_32_bits(in_ctx_ptr),
			upper_32_bits(in_ctx_ptr), 0,
2114 2115
			TRB_TYPE(TRB_CONFIG_EP) | SLOT_ID_FOR_TRB(slot_id),
			command_must_succeed);
2116
}
2117

2118 2119 2120 2121 2122 2123
/* Queue an evaluate context command TRB */
int xhci_queue_evaluate_context(struct xhci_hcd *xhci, dma_addr_t in_ctx_ptr,
		u32 slot_id)
{
	return queue_command(xhci, lower_32_bits(in_ctx_ptr),
			upper_32_bits(in_ctx_ptr), 0,
2124 2125
			TRB_TYPE(TRB_EVAL_CONTEXT) | SLOT_ID_FOR_TRB(slot_id),
			false);
2126 2127
}

2128
int xhci_queue_stop_endpoint(struct xhci_hcd *xhci, int slot_id,
2129 2130 2131 2132 2133 2134 2135
		unsigned int ep_index)
{
	u32 trb_slot_id = SLOT_ID_FOR_TRB(slot_id);
	u32 trb_ep_index = EP_ID_FOR_TRB(ep_index);
	u32 type = TRB_TYPE(TRB_STOP_RING);

	return queue_command(xhci, 0, 0, 0,
2136
			trb_slot_id | trb_ep_index | type, false);
2137 2138 2139 2140 2141 2142 2143 2144 2145 2146 2147 2148 2149 2150
}

/* Set Transfer Ring Dequeue Pointer command.
 * This should not be used for endpoints that have streams enabled.
 */
static int queue_set_tr_deq(struct xhci_hcd *xhci, int slot_id,
		unsigned int ep_index, struct xhci_segment *deq_seg,
		union xhci_trb *deq_ptr, u32 cycle_state)
{
	dma_addr_t addr;
	u32 trb_slot_id = SLOT_ID_FOR_TRB(slot_id);
	u32 trb_ep_index = EP_ID_FOR_TRB(ep_index);
	u32 type = TRB_TYPE(TRB_SET_DEQ);

2151
	addr = xhci_trb_virt_to_dma(deq_seg, deq_ptr);
2152
	if (addr == 0) {
2153
		xhci_warn(xhci, "WARN Cannot submit Set TR Deq Ptr\n");
2154 2155
		xhci_warn(xhci, "WARN deq seg = %p, deq pt = %p\n",
				deq_seg, deq_ptr);
2156 2157
		return 0;
	}
2158 2159
	return queue_command(xhci, lower_32_bits(addr) | cycle_state,
			upper_32_bits(addr), 0,
2160
			trb_slot_id | trb_ep_index | type, false);
2161
}
2162 2163 2164 2165 2166 2167 2168 2169

int xhci_queue_reset_ep(struct xhci_hcd *xhci, int slot_id,
		unsigned int ep_index)
{
	u32 trb_slot_id = SLOT_ID_FOR_TRB(slot_id);
	u32 trb_ep_index = EP_ID_FOR_TRB(ep_index);
	u32 type = TRB_TYPE(TRB_RESET_EP);

2170 2171
	return queue_command(xhci, 0, 0, 0, trb_slot_id | trb_ep_index | type,
			false);
2172
}