1 /*
2  * xHCI host controller driver
3  *
4  * Copyright (C) 2008 Intel Corp.
5  *
6  * Author: Sarah Sharp
7  * Some code borrowed from the Linux EHCI driver.
8  *
9  * This program is free software; you can redistribute it and/or modify
10  * it under the terms of the GNU General Public License version 2 as
11  * published by the Free Software Foundation.
12  *
13  * This program is distributed in the hope that it will be useful, but
14  * WITHOUT ANY WARRANTY; without even the implied warranty of MERCHANTABILITY
15  * or FITNESS FOR A PARTICULAR PURPOSE.  See the GNU General Public License
16  * for more details.
17  *
18  * You should have received a copy of the GNU General Public License
19  * along with this program; if not, write to the Free Software Foundation,
20  * Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
21  */
22 
23 /*
24  * Ring initialization rules:
25  * 1. Each segment is initialized to zero, except for link TRBs.
26  * 2. Ring cycle state = 0.  This represents Producer Cycle State (PCS) or
27  *    Consumer Cycle State (CCS), depending on ring function.
28  * 3. Enqueue pointer = dequeue pointer = address of first TRB in the segment.
29  *
30  * Ring behavior rules:
31  * 1. A ring is empty if enqueue == dequeue.  This means there will always be at
32  *    least one free TRB in the ring.  This is useful if you want to turn that
33  *    into a link TRB and expand the ring.
34  * 2. When incrementing an enqueue or dequeue pointer, if the next TRB is a
35  *    link TRB, then load the pointer with the address in the link TRB.  If the
36  *    link TRB had its toggle bit set, you may need to update the ring cycle
37  *    state (see cycle bit rules).  You may have to do this multiple times
38  *    until you reach a non-link TRB.
39  * 3. A ring is full if enqueue++ (for the definition of increment above)
40  *    equals the dequeue pointer.
41  *
42  * Cycle bit rules:
43  * 1. When a consumer increments a dequeue pointer and encounters a toggle bit
44  *    in a link TRB, it must toggle the ring cycle state.
45  * 2. When a producer increments an enqueue pointer and encounters a toggle bit
46  *    in a link TRB, it must toggle the ring cycle state.
47  *
48  * Producer rules:
49  * 1. Check if ring is full before you enqueue.
50  * 2. Write the ring cycle state to the cycle bit in the TRB you're enqueuing.
51  *    Update enqueue pointer between each write (which may update the ring
52  *    cycle state).
53  * 3. Notify consumer.  If SW is producer, it rings the doorbell for command
54  *    and endpoint rings.  If HC is the producer for the event ring,
55  *    and it generates an interrupt according to interrupt modulation rules.
56  *
57  * Consumer rules:
58  * 1. Check if TRB belongs to you.  If the cycle bit == your ring cycle state,
59  *    the TRB is owned by the consumer.
60  * 2. Update dequeue pointer (which may update the ring cycle state) and
61  *    continue processing TRBs until you reach a TRB which is not owned by you.
62  * 3. Notify the producer.  SW is the consumer for the event ring, and it
63  *   updates event ring dequeue pointer.  HC is the consumer for the command and
64  *   endpoint rings; it generates events on the event ring for these.
65  */
66 
67 #include <linux/scatterlist.h>
68 #include <linux/slab.h>
69 #include "xhci.h"
70 
71 static int handle_cmd_in_cmd_wait_list(struct xhci_hcd *xhci,
72 		struct xhci_virt_device *virt_dev,
73 		struct xhci_event_cmd *event);
74 
75 /*
76  * Returns zero if the TRB isn't in this segment, otherwise it returns the DMA
77  * address of the TRB.
78  */
xhci_trb_virt_to_dma(struct xhci_segment * seg,union xhci_trb * trb)79 dma_addr_t xhci_trb_virt_to_dma(struct xhci_segment *seg,
80 		union xhci_trb *trb)
81 {
82 	unsigned long segment_offset;
83 
84 	if (!seg || !trb || trb < seg->trbs)
85 		return 0;
86 	/* offset in TRBs */
87 	segment_offset = trb - seg->trbs;
88 	if (segment_offset > TRBS_PER_SEGMENT)
89 		return 0;
90 	return seg->dma + (segment_offset * sizeof(*trb));
91 }
92 
93 /* Does this link TRB point to the first segment in a ring,
94  * or was the previous TRB the last TRB on the last segment in the ERST?
95  */
last_trb_on_last_seg(struct xhci_hcd * xhci,struct xhci_ring * ring,struct xhci_segment * seg,union xhci_trb * trb)96 static bool last_trb_on_last_seg(struct xhci_hcd *xhci, struct xhci_ring *ring,
97 		struct xhci_segment *seg, union xhci_trb *trb)
98 {
99 	if (ring == xhci->event_ring)
100 		return (trb == &seg->trbs[TRBS_PER_SEGMENT]) &&
101 			(seg->next == xhci->event_ring->first_seg);
102 	else
103 		return le32_to_cpu(trb->link.control) & LINK_TOGGLE;
104 }
105 
106 /* Is this TRB a link TRB or was the last TRB the last TRB in this event ring
107  * segment?  I.e. would the updated event TRB pointer step off the end of the
108  * event seg?
109  */
last_trb(struct xhci_hcd * xhci,struct xhci_ring * ring,struct xhci_segment * seg,union xhci_trb * trb)110 static int last_trb(struct xhci_hcd *xhci, struct xhci_ring *ring,
111 		struct xhci_segment *seg, union xhci_trb *trb)
112 {
113 	if (ring == xhci->event_ring)
114 		return trb == &seg->trbs[TRBS_PER_SEGMENT];
115 	else
116 		return TRB_TYPE_LINK_LE32(trb->link.control);
117 }
118 
enqueue_is_link_trb(struct xhci_ring * ring)119 static int enqueue_is_link_trb(struct xhci_ring *ring)
120 {
121 	struct xhci_link_trb *link = &ring->enqueue->link;
122 	return TRB_TYPE_LINK_LE32(link->control);
123 }
124 
125 /* Updates trb to point to the next TRB in the ring, and updates seg if the next
126  * TRB is in a new segment.  This does not skip over link TRBs, and it does not
127  * effect the ring dequeue or enqueue pointers.
128  */
next_trb(struct xhci_hcd * xhci,struct xhci_ring * ring,struct xhci_segment ** seg,union xhci_trb ** trb)129 static void next_trb(struct xhci_hcd *xhci,
130 		struct xhci_ring *ring,
131 		struct xhci_segment **seg,
132 		union xhci_trb **trb)
133 {
134 	if (last_trb(xhci, ring, *seg, *trb)) {
135 		*seg = (*seg)->next;
136 		*trb = ((*seg)->trbs);
137 	} else {
138 		(*trb)++;
139 	}
140 }
141 
142 /*
143  * See Cycle bit rules. SW is the consumer for the event ring only.
144  * Don't make a ring full of link TRBs.  That would be dumb and this would loop.
145  */
inc_deq(struct xhci_hcd * xhci,struct xhci_ring * ring,bool consumer)146 static void inc_deq(struct xhci_hcd *xhci, struct xhci_ring *ring, bool consumer)
147 {
148 	union xhci_trb *next = ++(ring->dequeue);
149 	unsigned long long addr;
150 
151 	ring->deq_updates++;
152 	/* Update the dequeue pointer further if that was a link TRB or we're at
153 	 * the end of an event ring segment (which doesn't have link TRBS)
154 	 */
155 	while (last_trb(xhci, ring, ring->deq_seg, next)) {
156 		if (consumer && last_trb_on_last_seg(xhci, ring, ring->deq_seg, next)) {
157 			ring->cycle_state = (ring->cycle_state ? 0 : 1);
158 		}
159 		ring->deq_seg = ring->deq_seg->next;
160 		ring->dequeue = ring->deq_seg->trbs;
161 		next = ring->dequeue;
162 	}
163 	addr = (unsigned long long) xhci_trb_virt_to_dma(ring->deq_seg, ring->dequeue);
164 }
165 
166 /*
167  * See Cycle bit rules. SW is the consumer for the event ring only.
168  * Don't make a ring full of link TRBs.  That would be dumb and this would loop.
169  *
170  * If we've just enqueued a TRB that is in the middle of a TD (meaning the
171  * chain bit is set), then set the chain bit in all the following link TRBs.
172  * If we've enqueued the last TRB in a TD, make sure the following link TRBs
173  * have their chain bit cleared (so that each Link TRB is a separate TD).
174  *
175  * Section 6.4.4.1 of the 0.95 spec says link TRBs cannot have the chain bit
176  * set, but other sections talk about dealing with the chain bit set.  This was
177  * fixed in the 0.96 specification errata, but we have to assume that all 0.95
178  * xHCI hardware can't handle the chain bit being cleared on a link TRB.
179  *
180  * @more_trbs_coming:	Will you enqueue more TRBs before calling
181  *			prepare_transfer()?
182  */
inc_enq(struct xhci_hcd * xhci,struct xhci_ring * ring,bool consumer,bool more_trbs_coming,bool isoc)183 static void inc_enq(struct xhci_hcd *xhci, struct xhci_ring *ring,
184 		bool consumer, bool more_trbs_coming, bool isoc)
185 {
186 	u32 chain;
187 	union xhci_trb *next;
188 	unsigned long long addr;
189 
190 	chain = le32_to_cpu(ring->enqueue->generic.field[3]) & TRB_CHAIN;
191 	next = ++(ring->enqueue);
192 
193 	ring->enq_updates++;
194 	/* Update the dequeue pointer further if that was a link TRB or we're at
195 	 * the end of an event ring segment (which doesn't have link TRBS)
196 	 */
197 	while (last_trb(xhci, ring, ring->enq_seg, next)) {
198 		if (!consumer) {
199 			if (ring != xhci->event_ring) {
200 				/*
201 				 * If the caller doesn't plan on enqueueing more
202 				 * TDs before ringing the doorbell, then we
203 				 * don't want to give the link TRB to the
204 				 * hardware just yet.  We'll give the link TRB
205 				 * back in prepare_ring() just before we enqueue
206 				 * the TD at the top of the ring.
207 				 */
208 				if (!chain && !more_trbs_coming)
209 					break;
210 
211 				/* If we're not dealing with 0.95 hardware or
212 				 * isoc rings on AMD 0.96 host,
213 				 * carry over the chain bit of the previous TRB
214 				 * (which may mean the chain bit is cleared).
215 				 */
216 				if (!(isoc && (xhci->quirks & XHCI_AMD_0x96_HOST))
217 						&& !xhci_link_trb_quirk(xhci)) {
218 					next->link.control &=
219 						cpu_to_le32(~TRB_CHAIN);
220 					next->link.control |=
221 						cpu_to_le32(chain);
222 				}
223 				/* Give this link TRB to the hardware */
224 				wmb();
225 				next->link.control ^= cpu_to_le32(TRB_CYCLE);
226 			}
227 			/* Toggle the cycle bit after the last ring segment. */
228 			if (last_trb_on_last_seg(xhci, ring, ring->enq_seg, next)) {
229 				ring->cycle_state = (ring->cycle_state ? 0 : 1);
230 			}
231 		}
232 		ring->enq_seg = ring->enq_seg->next;
233 		ring->enqueue = ring->enq_seg->trbs;
234 		next = ring->enqueue;
235 	}
236 	addr = (unsigned long long) xhci_trb_virt_to_dma(ring->enq_seg, ring->enqueue);
237 }
238 
239 /*
240  * Check to see if there's room to enqueue num_trbs on the ring.  See rules
241  * above.
242  * FIXME: this would be simpler and faster if we just kept track of the number
243  * of free TRBs in a ring.
244  */
room_on_ring(struct xhci_hcd * xhci,struct xhci_ring * ring,unsigned int num_trbs)245 static int room_on_ring(struct xhci_hcd *xhci, struct xhci_ring *ring,
246 		unsigned int num_trbs)
247 {
248 	int i;
249 	union xhci_trb *enq = ring->enqueue;
250 	struct xhci_segment *enq_seg = ring->enq_seg;
251 	struct xhci_segment *cur_seg;
252 	unsigned int left_on_ring;
253 
254 	/* If we are currently pointing to a link TRB, advance the
255 	 * enqueue pointer before checking for space */
256 	while (last_trb(xhci, ring, enq_seg, enq)) {
257 		enq_seg = enq_seg->next;
258 		enq = enq_seg->trbs;
259 	}
260 
261 	/* Check if ring is empty */
262 	if (enq == ring->dequeue) {
263 		/* Can't use link trbs */
264 		left_on_ring = TRBS_PER_SEGMENT - 1;
265 		for (cur_seg = enq_seg->next; cur_seg != enq_seg;
266 				cur_seg = cur_seg->next)
267 			left_on_ring += TRBS_PER_SEGMENT - 1;
268 
269 		/* Always need one TRB free in the ring. */
270 		left_on_ring -= 1;
271 		if (num_trbs > left_on_ring) {
272 			xhci_warn(xhci, "Not enough room on ring; "
273 					"need %u TRBs, %u TRBs left\n",
274 					num_trbs, left_on_ring);
275 			return 0;
276 		}
277 		return 1;
278 	}
279 	/* Make sure there's an extra empty TRB available */
280 	for (i = 0; i <= num_trbs; ++i) {
281 		if (enq == ring->dequeue)
282 			return 0;
283 		enq++;
284 		while (last_trb(xhci, ring, enq_seg, enq)) {
285 			enq_seg = enq_seg->next;
286 			enq = enq_seg->trbs;
287 		}
288 	}
289 	return 1;
290 }
291 
292 /* Ring the host controller doorbell after placing a command on the ring */
xhci_ring_cmd_db(struct xhci_hcd * xhci)293 void xhci_ring_cmd_db(struct xhci_hcd *xhci)
294 {
295 	xhci_dbg(xhci, "// Ding dong!\n");
296 	xhci_writel(xhci, DB_VALUE_HOST, &xhci->dba->doorbell[0]);
297 	/* Flush PCI posted writes */
298 	xhci_readl(xhci, &xhci->dba->doorbell[0]);
299 }
300 
xhci_ring_ep_doorbell(struct xhci_hcd * xhci,unsigned int slot_id,unsigned int ep_index,unsigned int stream_id)301 void xhci_ring_ep_doorbell(struct xhci_hcd *xhci,
302 		unsigned int slot_id,
303 		unsigned int ep_index,
304 		unsigned int stream_id)
305 {
306 	__le32 __iomem *db_addr = &xhci->dba->doorbell[slot_id];
307 	struct xhci_virt_ep *ep = &xhci->devs[slot_id]->eps[ep_index];
308 	unsigned int ep_state = ep->ep_state;
309 
310 	/* Don't ring the doorbell for this endpoint if there are pending
311 	 * cancellations because we don't want to interrupt processing.
312 	 * We don't want to restart any stream rings if there's a set dequeue
313 	 * pointer command pending because the device can choose to start any
314 	 * stream once the endpoint is on the HW schedule.
315 	 * FIXME - check all the stream rings for pending cancellations.
316 	 */
317 	if ((ep_state & EP_HALT_PENDING) || (ep_state & SET_DEQ_PENDING) ||
318 	    (ep_state & EP_HALTED))
319 		return;
320 	xhci_writel(xhci, DB_VALUE(ep_index, stream_id), db_addr);
321 	/* The CPU has better things to do at this point than wait for a
322 	 * write-posting flush.  It'll get there soon enough.
323 	 */
324 }
325 
326 /* Ring the doorbell for any rings with pending URBs */
ring_doorbell_for_active_rings(struct xhci_hcd * xhci,unsigned int slot_id,unsigned int ep_index)327 static void ring_doorbell_for_active_rings(struct xhci_hcd *xhci,
328 		unsigned int slot_id,
329 		unsigned int ep_index)
330 {
331 	unsigned int stream_id;
332 	struct xhci_virt_ep *ep;
333 
334 	ep = &xhci->devs[slot_id]->eps[ep_index];
335 
336 	/* A ring has pending URBs if its TD list is not empty */
337 	if (!(ep->ep_state & EP_HAS_STREAMS)) {
338 		if (!(list_empty(&ep->ring->td_list)))
339 			xhci_ring_ep_doorbell(xhci, slot_id, ep_index, 0);
340 		return;
341 	}
342 
343 	for (stream_id = 1; stream_id < ep->stream_info->num_streams;
344 			stream_id++) {
345 		struct xhci_stream_info *stream_info = ep->stream_info;
346 		if (!list_empty(&stream_info->stream_rings[stream_id]->td_list))
347 			xhci_ring_ep_doorbell(xhci, slot_id, ep_index,
348 						stream_id);
349 	}
350 }
351 
352 /*
353  * Find the segment that trb is in.  Start searching in start_seg.
354  * If we must move past a segment that has a link TRB with a toggle cycle state
355  * bit set, then we will toggle the value pointed at by cycle_state.
356  */
find_trb_seg(struct xhci_segment * start_seg,union xhci_trb * trb,int * cycle_state)357 static struct xhci_segment *find_trb_seg(
358 		struct xhci_segment *start_seg,
359 		union xhci_trb	*trb, int *cycle_state)
360 {
361 	struct xhci_segment *cur_seg = start_seg;
362 	struct xhci_generic_trb *generic_trb;
363 
364 	while (cur_seg->trbs > trb ||
365 			&cur_seg->trbs[TRBS_PER_SEGMENT - 1] < trb) {
366 		generic_trb = &cur_seg->trbs[TRBS_PER_SEGMENT - 1].generic;
367 		if (generic_trb->field[3] & cpu_to_le32(LINK_TOGGLE))
368 			*cycle_state ^= 0x1;
369 		cur_seg = cur_seg->next;
370 		if (cur_seg == start_seg)
371 			/* Looped over the entire list.  Oops! */
372 			return NULL;
373 	}
374 	return cur_seg;
375 }
376 
377 
xhci_triad_to_transfer_ring(struct xhci_hcd * xhci,unsigned int slot_id,unsigned int ep_index,unsigned int stream_id)378 static struct xhci_ring *xhci_triad_to_transfer_ring(struct xhci_hcd *xhci,
379 		unsigned int slot_id, unsigned int ep_index,
380 		unsigned int stream_id)
381 {
382 	struct xhci_virt_ep *ep;
383 
384 	ep = &xhci->devs[slot_id]->eps[ep_index];
385 	/* Common case: no streams */
386 	if (!(ep->ep_state & EP_HAS_STREAMS))
387 		return ep->ring;
388 
389 	if (stream_id == 0) {
390 		xhci_warn(xhci,
391 				"WARN: Slot ID %u, ep index %u has streams, "
392 				"but URB has no stream ID.\n",
393 				slot_id, ep_index);
394 		return NULL;
395 	}
396 
397 	if (stream_id < ep->stream_info->num_streams)
398 		return ep->stream_info->stream_rings[stream_id];
399 
400 	xhci_warn(xhci,
401 			"WARN: Slot ID %u, ep index %u has "
402 			"stream IDs 1 to %u allocated, "
403 			"but stream ID %u is requested.\n",
404 			slot_id, ep_index,
405 			ep->stream_info->num_streams - 1,
406 			stream_id);
407 	return NULL;
408 }
409 
410 /* Get the right ring for the given URB.
411  * If the endpoint supports streams, boundary check the URB's stream ID.
412  * If the endpoint doesn't support streams, return the singular endpoint ring.
413  */
xhci_urb_to_transfer_ring(struct xhci_hcd * xhci,struct urb * urb)414 static struct xhci_ring *xhci_urb_to_transfer_ring(struct xhci_hcd *xhci,
415 		struct urb *urb)
416 {
417 	return xhci_triad_to_transfer_ring(xhci, urb->dev->slot_id,
418 		xhci_get_endpoint_index(&urb->ep->desc), urb->stream_id);
419 }
420 
421 /*
422  * Move the xHC's endpoint ring dequeue pointer past cur_td.
423  * Record the new state of the xHC's endpoint ring dequeue segment,
424  * dequeue pointer, and new consumer cycle state in state.
425  * Update our internal representation of the ring's dequeue pointer.
426  *
427  * We do this in three jumps:
428  *  - First we update our new ring state to be the same as when the xHC stopped.
429  *  - Then we traverse the ring to find the segment that contains
430  *    the last TRB in the TD.  We toggle the xHC's new cycle state when we pass
431  *    any link TRBs with the toggle cycle bit set.
432  *  - Finally we move the dequeue state one TRB further, toggling the cycle bit
433  *    if we've moved it past a link TRB with the toggle cycle bit set.
434  *
435  * Some of the uses of xhci_generic_trb are grotty, but if they're done
436  * with correct __le32 accesses they should work fine.  Only users of this are
437  * in here.
438  */
xhci_find_new_dequeue_state(struct xhci_hcd * xhci,unsigned int slot_id,unsigned int ep_index,unsigned int stream_id,struct xhci_td * cur_td,struct xhci_dequeue_state * state)439 void xhci_find_new_dequeue_state(struct xhci_hcd *xhci,
440 		unsigned int slot_id, unsigned int ep_index,
441 		unsigned int stream_id, struct xhci_td *cur_td,
442 		struct xhci_dequeue_state *state)
443 {
444 	struct xhci_virt_device *dev = xhci->devs[slot_id];
445 	struct xhci_ring *ep_ring;
446 	struct xhci_generic_trb *trb;
447 	struct xhci_ep_ctx *ep_ctx;
448 	dma_addr_t addr;
449 
450 	ep_ring = xhci_triad_to_transfer_ring(xhci, slot_id,
451 			ep_index, stream_id);
452 	if (!ep_ring) {
453 		xhci_warn(xhci, "WARN can't find new dequeue state "
454 				"for invalid stream ID %u.\n",
455 				stream_id);
456 		return;
457 	}
458 	state->new_cycle_state = 0;
459 	xhci_dbg(xhci, "Finding segment containing stopped TRB.\n");
460 	state->new_deq_seg = find_trb_seg(cur_td->start_seg,
461 			dev->eps[ep_index].stopped_trb,
462 			&state->new_cycle_state);
463 	if (!state->new_deq_seg) {
464 		WARN_ON(1);
465 		return;
466 	}
467 
468 	/* Dig out the cycle state saved by the xHC during the stop ep cmd */
469 	xhci_dbg(xhci, "Finding endpoint context\n");
470 	ep_ctx = xhci_get_ep_ctx(xhci, dev->out_ctx, ep_index);
471 	state->new_cycle_state = 0x1 & le64_to_cpu(ep_ctx->deq);
472 
473 	state->new_deq_ptr = cur_td->last_trb;
474 	xhci_dbg(xhci, "Finding segment containing last TRB in TD.\n");
475 	state->new_deq_seg = find_trb_seg(state->new_deq_seg,
476 			state->new_deq_ptr,
477 			&state->new_cycle_state);
478 	if (!state->new_deq_seg) {
479 		WARN_ON(1);
480 		return;
481 	}
482 
483 	trb = &state->new_deq_ptr->generic;
484 	if (TRB_TYPE_LINK_LE32(trb->field[3]) &&
485 	    (trb->field[3] & cpu_to_le32(LINK_TOGGLE)))
486 		state->new_cycle_state ^= 0x1;
487 	next_trb(xhci, ep_ring, &state->new_deq_seg, &state->new_deq_ptr);
488 
489 	/*
490 	 * If there is only one segment in a ring, find_trb_seg()'s while loop
491 	 * will not run, and it will return before it has a chance to see if it
492 	 * needs to toggle the cycle bit.  It can't tell if the stalled transfer
493 	 * ended just before the link TRB on a one-segment ring, or if the TD
494 	 * wrapped around the top of the ring, because it doesn't have the TD in
495 	 * question.  Look for the one-segment case where stalled TRB's address
496 	 * is greater than the new dequeue pointer address.
497 	 */
498 	if (ep_ring->first_seg == ep_ring->first_seg->next &&
499 			state->new_deq_ptr < dev->eps[ep_index].stopped_trb)
500 		state->new_cycle_state ^= 0x1;
501 	xhci_dbg(xhci, "Cycle state = 0x%x\n", state->new_cycle_state);
502 
503 	/* Don't update the ring cycle state for the producer (us). */
504 	xhci_dbg(xhci, "New dequeue segment = %p (virtual)\n",
505 			state->new_deq_seg);
506 	addr = xhci_trb_virt_to_dma(state->new_deq_seg, state->new_deq_ptr);
507 	xhci_dbg(xhci, "New dequeue pointer = 0x%llx (DMA)\n",
508 			(unsigned long long) addr);
509 }
510 
511 /* flip_cycle means flip the cycle bit of all but the first and last TRB.
512  * (The last TRB actually points to the ring enqueue pointer, which is not part
513  * of this TD.)  This is used to remove partially enqueued isoc TDs from a ring.
514  */
td_to_noop(struct xhci_hcd * xhci,struct xhci_ring * ep_ring,struct xhci_td * cur_td,bool flip_cycle)515 static void td_to_noop(struct xhci_hcd *xhci, struct xhci_ring *ep_ring,
516 		struct xhci_td *cur_td, bool flip_cycle)
517 {
518 	struct xhci_segment *cur_seg;
519 	union xhci_trb *cur_trb;
520 
521 	for (cur_seg = cur_td->start_seg, cur_trb = cur_td->first_trb;
522 			true;
523 			next_trb(xhci, ep_ring, &cur_seg, &cur_trb)) {
524 		if (TRB_TYPE_LINK_LE32(cur_trb->generic.field[3])) {
525 			/* Unchain any chained Link TRBs, but
526 			 * leave the pointers intact.
527 			 */
528 			cur_trb->generic.field[3] &= cpu_to_le32(~TRB_CHAIN);
529 			/* Flip the cycle bit (link TRBs can't be the first
530 			 * or last TRB).
531 			 */
532 			if (flip_cycle)
533 				cur_trb->generic.field[3] ^=
534 					cpu_to_le32(TRB_CYCLE);
535 			xhci_dbg(xhci, "Cancel (unchain) link TRB\n");
536 			xhci_dbg(xhci, "Address = %p (0x%llx dma); "
537 					"in seg %p (0x%llx dma)\n",
538 					cur_trb,
539 					(unsigned long long)xhci_trb_virt_to_dma(cur_seg, cur_trb),
540 					cur_seg,
541 					(unsigned long long)cur_seg->dma);
542 		} else {
543 			cur_trb->generic.field[0] = 0;
544 			cur_trb->generic.field[1] = 0;
545 			cur_trb->generic.field[2] = 0;
546 			/* Preserve only the cycle bit of this TRB */
547 			cur_trb->generic.field[3] &= cpu_to_le32(TRB_CYCLE);
548 			/* Flip the cycle bit except on the first or last TRB */
549 			if (flip_cycle && cur_trb != cur_td->first_trb &&
550 					cur_trb != cur_td->last_trb)
551 				cur_trb->generic.field[3] ^=
552 					cpu_to_le32(TRB_CYCLE);
553 			cur_trb->generic.field[3] |= cpu_to_le32(
554 				TRB_TYPE(TRB_TR_NOOP));
555 			xhci_dbg(xhci, "TRB to noop at offset 0x%llx\n",
556 					(unsigned long long)
557 					xhci_trb_virt_to_dma(cur_seg, cur_trb));
558 		}
559 		if (cur_trb == cur_td->last_trb)
560 			break;
561 	}
562 }
563 
564 static int queue_set_tr_deq(struct xhci_hcd *xhci, int slot_id,
565 		unsigned int ep_index, unsigned int stream_id,
566 		struct xhci_segment *deq_seg,
567 		union xhci_trb *deq_ptr, u32 cycle_state);
568 
xhci_queue_new_dequeue_state(struct xhci_hcd * xhci,unsigned int slot_id,unsigned int ep_index,unsigned int stream_id,struct xhci_dequeue_state * deq_state)569 void xhci_queue_new_dequeue_state(struct xhci_hcd *xhci,
570 		unsigned int slot_id, unsigned int ep_index,
571 		unsigned int stream_id,
572 		struct xhci_dequeue_state *deq_state)
573 {
574 	struct xhci_virt_ep *ep = &xhci->devs[slot_id]->eps[ep_index];
575 
576 	xhci_dbg(xhci, "Set TR Deq Ptr cmd, new deq seg = %p (0x%llx dma), "
577 			"new deq ptr = %p (0x%llx dma), new cycle = %u\n",
578 			deq_state->new_deq_seg,
579 			(unsigned long long)deq_state->new_deq_seg->dma,
580 			deq_state->new_deq_ptr,
581 			(unsigned long long)xhci_trb_virt_to_dma(deq_state->new_deq_seg, deq_state->new_deq_ptr),
582 			deq_state->new_cycle_state);
583 	queue_set_tr_deq(xhci, slot_id, ep_index, stream_id,
584 			deq_state->new_deq_seg,
585 			deq_state->new_deq_ptr,
586 			(u32) deq_state->new_cycle_state);
587 	/* Stop the TD queueing code from ringing the doorbell until
588 	 * this command completes.  The HC won't set the dequeue pointer
589 	 * if the ring is running, and ringing the doorbell starts the
590 	 * ring running.
591 	 */
592 	ep->ep_state |= SET_DEQ_PENDING;
593 }
594 
xhci_stop_watchdog_timer_in_irq(struct xhci_hcd * xhci,struct xhci_virt_ep * ep)595 static void xhci_stop_watchdog_timer_in_irq(struct xhci_hcd *xhci,
596 		struct xhci_virt_ep *ep)
597 {
598 	ep->ep_state &= ~EP_HALT_PENDING;
599 	/* Can't del_timer_sync in interrupt, so we attempt to cancel.  If the
600 	 * timer is running on another CPU, we don't decrement stop_cmds_pending
601 	 * (since we didn't successfully stop the watchdog timer).
602 	 */
603 	if (del_timer(&ep->stop_cmd_timer))
604 		ep->stop_cmds_pending--;
605 }
606 
607 /* Must be called with xhci->lock held in interrupt context */
xhci_giveback_urb_in_irq(struct xhci_hcd * xhci,struct xhci_td * cur_td,int status,char * adjective)608 static void xhci_giveback_urb_in_irq(struct xhci_hcd *xhci,
609 		struct xhci_td *cur_td, int status, char *adjective)
610 {
611 	struct usb_hcd *hcd;
612 	struct urb	*urb;
613 	struct urb_priv	*urb_priv;
614 
615 	urb = cur_td->urb;
616 	urb_priv = urb->hcpriv;
617 	urb_priv->td_cnt++;
618 	hcd = bus_to_hcd(urb->dev->bus);
619 
620 	/* Only giveback urb when this is the last td in urb */
621 	if (urb_priv->td_cnt == urb_priv->length) {
622 		if (usb_pipetype(urb->pipe) == PIPE_ISOCHRONOUS) {
623 			xhci_to_hcd(xhci)->self.bandwidth_isoc_reqs--;
624 			if (xhci_to_hcd(xhci)->self.bandwidth_isoc_reqs	== 0) {
625 				if (xhci->quirks & XHCI_AMD_PLL_FIX)
626 					usb_amd_quirk_pll_enable();
627 			}
628 		}
629 		usb_hcd_unlink_urb_from_ep(hcd, urb);
630 
631 		spin_unlock(&xhci->lock);
632 		usb_hcd_giveback_urb(hcd, urb, status);
633 		xhci_urb_free_priv(xhci, urb_priv);
634 		spin_lock(&xhci->lock);
635 	}
636 }
637 
638 /*
639  * When we get a command completion for a Stop Endpoint Command, we need to
640  * unlink any cancelled TDs from the ring.  There are two ways to do that:
641  *
642  *  1. If the HW was in the middle of processing the TD that needs to be
643  *     cancelled, then we must move the ring's dequeue pointer past the last TRB
644  *     in the TD with a Set Dequeue Pointer Command.
645  *  2. Otherwise, we turn all the TRBs in the TD into No-op TRBs (with the chain
646  *     bit cleared) so that the HW will skip over them.
647  */
handle_stopped_endpoint(struct xhci_hcd * xhci,union xhci_trb * trb,struct xhci_event_cmd * event)648 static void handle_stopped_endpoint(struct xhci_hcd *xhci,
649 		union xhci_trb *trb, struct xhci_event_cmd *event)
650 {
651 	unsigned int slot_id;
652 	unsigned int ep_index;
653 	struct xhci_virt_device *virt_dev;
654 	struct xhci_ring *ep_ring;
655 	struct xhci_virt_ep *ep;
656 	struct list_head *entry;
657 	struct xhci_td *cur_td = NULL;
658 	struct xhci_td *last_unlinked_td;
659 
660 	struct xhci_dequeue_state deq_state;
661 
662 	if (unlikely(TRB_TO_SUSPEND_PORT(
663 			     le32_to_cpu(xhci->cmd_ring->dequeue->generic.field[3])))) {
664 		slot_id = TRB_TO_SLOT_ID(
665 			le32_to_cpu(xhci->cmd_ring->dequeue->generic.field[3]));
666 		virt_dev = xhci->devs[slot_id];
667 		if (virt_dev)
668 			handle_cmd_in_cmd_wait_list(xhci, virt_dev,
669 				event);
670 		else
671 			xhci_warn(xhci, "Stop endpoint command "
672 				"completion for disabled slot %u\n",
673 				slot_id);
674 		return;
675 	}
676 
677 	memset(&deq_state, 0, sizeof(deq_state));
678 	slot_id = TRB_TO_SLOT_ID(le32_to_cpu(trb->generic.field[3]));
679 	ep_index = TRB_TO_EP_INDEX(le32_to_cpu(trb->generic.field[3]));
680 	ep = &xhci->devs[slot_id]->eps[ep_index];
681 
682 	if (list_empty(&ep->cancelled_td_list)) {
683 		xhci_stop_watchdog_timer_in_irq(xhci, ep);
684 		ep->stopped_td = NULL;
685 		ep->stopped_trb = NULL;
686 		ring_doorbell_for_active_rings(xhci, slot_id, ep_index);
687 		return;
688 	}
689 
690 	/* Fix up the ep ring first, so HW stops executing cancelled TDs.
691 	 * We have the xHCI lock, so nothing can modify this list until we drop
692 	 * it.  We're also in the event handler, so we can't get re-interrupted
693 	 * if another Stop Endpoint command completes
694 	 */
695 	list_for_each(entry, &ep->cancelled_td_list) {
696 		cur_td = list_entry(entry, struct xhci_td, cancelled_td_list);
697 		xhci_dbg(xhci, "Removing canceled TD starting at 0x%llx (dma).\n",
698 				(unsigned long long)xhci_trb_virt_to_dma(
699 					cur_td->start_seg, cur_td->first_trb));
700 		ep_ring = xhci_urb_to_transfer_ring(xhci, cur_td->urb);
701 		if (!ep_ring) {
702 			/* This shouldn't happen unless a driver is mucking
703 			 * with the stream ID after submission.  This will
704 			 * leave the TD on the hardware ring, and the hardware
705 			 * will try to execute it, and may access a buffer
706 			 * that has already been freed.  In the best case, the
707 			 * hardware will execute it, and the event handler will
708 			 * ignore the completion event for that TD, since it was
709 			 * removed from the td_list for that endpoint.  In
710 			 * short, don't muck with the stream ID after
711 			 * submission.
712 			 */
713 			xhci_warn(xhci, "WARN Cancelled URB %p "
714 					"has invalid stream ID %u.\n",
715 					cur_td->urb,
716 					cur_td->urb->stream_id);
717 			goto remove_finished_td;
718 		}
719 		/*
720 		 * If we stopped on the TD we need to cancel, then we have to
721 		 * move the xHC endpoint ring dequeue pointer past this TD.
722 		 */
723 		if (cur_td == ep->stopped_td)
724 			xhci_find_new_dequeue_state(xhci, slot_id, ep_index,
725 					cur_td->urb->stream_id,
726 					cur_td, &deq_state);
727 		else
728 			td_to_noop(xhci, ep_ring, cur_td, false);
729 remove_finished_td:
730 		/*
731 		 * The event handler won't see a completion for this TD anymore,
732 		 * so remove it from the endpoint ring's TD list.  Keep it in
733 		 * the cancelled TD list for URB completion later.
734 		 */
735 		list_del_init(&cur_td->td_list);
736 	}
737 	last_unlinked_td = cur_td;
738 	xhci_stop_watchdog_timer_in_irq(xhci, ep);
739 
740 	/* If necessary, queue a Set Transfer Ring Dequeue Pointer command */
741 	if (deq_state.new_deq_ptr && deq_state.new_deq_seg) {
742 		xhci_queue_new_dequeue_state(xhci,
743 				slot_id, ep_index,
744 				ep->stopped_td->urb->stream_id,
745 				&deq_state);
746 		xhci_ring_cmd_db(xhci);
747 	} else {
748 		/* Otherwise ring the doorbell(s) to restart queued transfers */
749 		ring_doorbell_for_active_rings(xhci, slot_id, ep_index);
750 	}
751 	ep->stopped_td = NULL;
752 	ep->stopped_trb = NULL;
753 
754 	/*
755 	 * Drop the lock and complete the URBs in the cancelled TD list.
756 	 * New TDs to be cancelled might be added to the end of the list before
757 	 * we can complete all the URBs for the TDs we already unlinked.
758 	 * So stop when we've completed the URB for the last TD we unlinked.
759 	 */
760 	do {
761 		cur_td = list_entry(ep->cancelled_td_list.next,
762 				struct xhci_td, cancelled_td_list);
763 		list_del_init(&cur_td->cancelled_td_list);
764 
765 		/* Clean up the cancelled URB */
766 		/* Doesn't matter what we pass for status, since the core will
767 		 * just overwrite it (because the URB has been unlinked).
768 		 */
769 		xhci_giveback_urb_in_irq(xhci, cur_td, 0, "cancelled");
770 
771 		/* Stop processing the cancelled list if the watchdog timer is
772 		 * running.
773 		 */
774 		if (xhci->xhc_state & XHCI_STATE_DYING)
775 			return;
776 	} while (cur_td != last_unlinked_td);
777 
778 	/* Return to the event handler with xhci->lock re-acquired */
779 }
780 
781 /* Watchdog timer function for when a stop endpoint command fails to complete.
782  * In this case, we assume the host controller is broken or dying or dead.  The
783  * host may still be completing some other events, so we have to be careful to
784  * let the event ring handler and the URB dequeueing/enqueueing functions know
785  * through xhci->state.
786  *
787  * The timer may also fire if the host takes a very long time to respond to the
788  * command, and the stop endpoint command completion handler cannot delete the
789  * timer before the timer function is called.  Another endpoint cancellation may
790  * sneak in before the timer function can grab the lock, and that may queue
791  * another stop endpoint command and add the timer back.  So we cannot use a
792  * simple flag to say whether there is a pending stop endpoint command for a
793  * particular endpoint.
794  *
795  * Instead we use a combination of that flag and a counter for the number of
796  * pending stop endpoint commands.  If the timer is the tail end of the last
797  * stop endpoint command, and the endpoint's command is still pending, we assume
798  * the host is dying.
799  */
xhci_stop_endpoint_command_watchdog(unsigned long arg)800 void xhci_stop_endpoint_command_watchdog(unsigned long arg)
801 {
802 	struct xhci_hcd *xhci;
803 	struct xhci_virt_ep *ep;
804 	struct xhci_virt_ep *temp_ep;
805 	struct xhci_ring *ring;
806 	struct xhci_td *cur_td;
807 	int ret, i, j;
808 	unsigned long flags;
809 
810 	ep = (struct xhci_virt_ep *) arg;
811 	xhci = ep->xhci;
812 
813 	spin_lock_irqsave(&xhci->lock, flags);
814 
815 	ep->stop_cmds_pending--;
816 	if (xhci->xhc_state & XHCI_STATE_DYING) {
817 		xhci_dbg(xhci, "Stop EP timer ran, but another timer marked "
818 				"xHCI as DYING, exiting.\n");
819 		spin_unlock_irqrestore(&xhci->lock, flags);
820 		return;
821 	}
822 	if (!(ep->stop_cmds_pending == 0 && (ep->ep_state & EP_HALT_PENDING))) {
823 		xhci_dbg(xhci, "Stop EP timer ran, but no command pending, "
824 				"exiting.\n");
825 		spin_unlock_irqrestore(&xhci->lock, flags);
826 		return;
827 	}
828 
829 	xhci_warn(xhci, "xHCI host not responding to stop endpoint command.\n");
830 	xhci_warn(xhci, "Assuming host is dying, halting host.\n");
831 	/* Oops, HC is dead or dying or at least not responding to the stop
832 	 * endpoint command.
833 	 */
834 	xhci->xhc_state |= XHCI_STATE_DYING;
835 	/* Disable interrupts from the host controller and start halting it */
836 	xhci_quiesce(xhci);
837 	spin_unlock_irqrestore(&xhci->lock, flags);
838 
839 	ret = xhci_halt(xhci);
840 
841 	spin_lock_irqsave(&xhci->lock, flags);
842 	if (ret < 0) {
843 		/* This is bad; the host is not responding to commands and it's
844 		 * not allowing itself to be halted.  At least interrupts are
845 		 * disabled. If we call usb_hc_died(), it will attempt to
846 		 * disconnect all device drivers under this host.  Those
847 		 * disconnect() methods will wait for all URBs to be unlinked,
848 		 * so we must complete them.
849 		 */
850 		xhci_warn(xhci, "Non-responsive xHCI host is not halting.\n");
851 		xhci_warn(xhci, "Completing active URBs anyway.\n");
852 		/* We could turn all TDs on the rings to no-ops.  This won't
853 		 * help if the host has cached part of the ring, and is slow if
854 		 * we want to preserve the cycle bit.  Skip it and hope the host
855 		 * doesn't touch the memory.
856 		 */
857 	}
858 	for (i = 0; i < MAX_HC_SLOTS; i++) {
859 		if (!xhci->devs[i])
860 			continue;
861 		for (j = 0; j < 31; j++) {
862 			temp_ep = &xhci->devs[i]->eps[j];
863 			ring = temp_ep->ring;
864 			if (!ring)
865 				continue;
866 			xhci_dbg(xhci, "Killing URBs for slot ID %u, "
867 					"ep index %u\n", i, j);
868 			while (!list_empty(&ring->td_list)) {
869 				cur_td = list_first_entry(&ring->td_list,
870 						struct xhci_td,
871 						td_list);
872 				list_del_init(&cur_td->td_list);
873 				if (!list_empty(&cur_td->cancelled_td_list))
874 					list_del_init(&cur_td->cancelled_td_list);
875 				xhci_giveback_urb_in_irq(xhci, cur_td,
876 						-ESHUTDOWN, "killed");
877 			}
878 			while (!list_empty(&temp_ep->cancelled_td_list)) {
879 				cur_td = list_first_entry(
880 						&temp_ep->cancelled_td_list,
881 						struct xhci_td,
882 						cancelled_td_list);
883 				list_del_init(&cur_td->cancelled_td_list);
884 				xhci_giveback_urb_in_irq(xhci, cur_td,
885 						-ESHUTDOWN, "killed");
886 			}
887 		}
888 	}
889 	spin_unlock_irqrestore(&xhci->lock, flags);
890 	xhci_dbg(xhci, "Calling usb_hc_died()\n");
891 	usb_hc_died(xhci_to_hcd(xhci)->primary_hcd);
892 	xhci_dbg(xhci, "xHCI host controller is dead.\n");
893 }
894 
895 /*
896  * When we get a completion for a Set Transfer Ring Dequeue Pointer command,
897  * we need to clear the set deq pending flag in the endpoint ring state, so that
898  * the TD queueing code can ring the doorbell again.  We also need to ring the
899  * endpoint doorbell to restart the ring, but only if there aren't more
900  * cancellations pending.
901  */
handle_set_deq_completion(struct xhci_hcd * xhci,struct xhci_event_cmd * event,union xhci_trb * trb)902 static void handle_set_deq_completion(struct xhci_hcd *xhci,
903 		struct xhci_event_cmd *event,
904 		union xhci_trb *trb)
905 {
906 	unsigned int slot_id;
907 	unsigned int ep_index;
908 	unsigned int stream_id;
909 	struct xhci_ring *ep_ring;
910 	struct xhci_virt_device *dev;
911 	struct xhci_ep_ctx *ep_ctx;
912 	struct xhci_slot_ctx *slot_ctx;
913 
914 	slot_id = TRB_TO_SLOT_ID(le32_to_cpu(trb->generic.field[3]));
915 	ep_index = TRB_TO_EP_INDEX(le32_to_cpu(trb->generic.field[3]));
916 	stream_id = TRB_TO_STREAM_ID(le32_to_cpu(trb->generic.field[2]));
917 	dev = xhci->devs[slot_id];
918 
919 	ep_ring = xhci_stream_id_to_ring(dev, ep_index, stream_id);
920 	if (!ep_ring) {
921 		xhci_warn(xhci, "WARN Set TR deq ptr command for "
922 				"freed stream ID %u\n",
923 				stream_id);
924 		/* XXX: Harmless??? */
925 		dev->eps[ep_index].ep_state &= ~SET_DEQ_PENDING;
926 		return;
927 	}
928 
929 	ep_ctx = xhci_get_ep_ctx(xhci, dev->out_ctx, ep_index);
930 	slot_ctx = xhci_get_slot_ctx(xhci, dev->out_ctx);
931 
932 	if (GET_COMP_CODE(le32_to_cpu(event->status)) != COMP_SUCCESS) {
933 		unsigned int ep_state;
934 		unsigned int slot_state;
935 
936 		switch (GET_COMP_CODE(le32_to_cpu(event->status))) {
937 		case COMP_TRB_ERR:
938 			xhci_warn(xhci, "WARN Set TR Deq Ptr cmd invalid because "
939 					"of stream ID configuration\n");
940 			break;
941 		case COMP_CTX_STATE:
942 			xhci_warn(xhci, "WARN Set TR Deq Ptr cmd failed due "
943 					"to incorrect slot or ep state.\n");
944 			ep_state = le32_to_cpu(ep_ctx->ep_info);
945 			ep_state &= EP_STATE_MASK;
946 			slot_state = le32_to_cpu(slot_ctx->dev_state);
947 			slot_state = GET_SLOT_STATE(slot_state);
948 			xhci_dbg(xhci, "Slot state = %u, EP state = %u\n",
949 					slot_state, ep_state);
950 			break;
951 		case COMP_EBADSLT:
952 			xhci_warn(xhci, "WARN Set TR Deq Ptr cmd failed because "
953 					"slot %u was not enabled.\n", slot_id);
954 			break;
955 		default:
956 			xhci_warn(xhci, "WARN Set TR Deq Ptr cmd with unknown "
957 					"completion code of %u.\n",
958 				  GET_COMP_CODE(le32_to_cpu(event->status)));
959 			break;
960 		}
961 		/* OK what do we do now?  The endpoint state is hosed, and we
962 		 * should never get to this point if the synchronization between
963 		 * queueing, and endpoint state are correct.  This might happen
964 		 * if the device gets disconnected after we've finished
965 		 * cancelling URBs, which might not be an error...
966 		 */
967 	} else {
968 		xhci_dbg(xhci, "Successful Set TR Deq Ptr cmd, deq = @%08llx\n",
969 			 le64_to_cpu(ep_ctx->deq));
970 		if (xhci_trb_virt_to_dma(dev->eps[ep_index].queued_deq_seg,
971 					 dev->eps[ep_index].queued_deq_ptr) ==
972 		    (le64_to_cpu(ep_ctx->deq) & ~(EP_CTX_CYCLE_MASK))) {
973 			/* Update the ring's dequeue segment and dequeue pointer
974 			 * to reflect the new position.
975 			 */
976 			ep_ring->deq_seg = dev->eps[ep_index].queued_deq_seg;
977 			ep_ring->dequeue = dev->eps[ep_index].queued_deq_ptr;
978 		} else {
979 			xhci_warn(xhci, "Mismatch between completed Set TR Deq "
980 					"Ptr command & xHCI internal state.\n");
981 			xhci_warn(xhci, "ep deq seg = %p, deq ptr = %p\n",
982 					dev->eps[ep_index].queued_deq_seg,
983 					dev->eps[ep_index].queued_deq_ptr);
984 		}
985 	}
986 
987 	dev->eps[ep_index].ep_state &= ~SET_DEQ_PENDING;
988 	dev->eps[ep_index].queued_deq_seg = NULL;
989 	dev->eps[ep_index].queued_deq_ptr = NULL;
990 	/* Restart any rings with pending URBs */
991 	ring_doorbell_for_active_rings(xhci, slot_id, ep_index);
992 }
993 
handle_reset_ep_completion(struct xhci_hcd * xhci,struct xhci_event_cmd * event,union xhci_trb * trb)994 static void handle_reset_ep_completion(struct xhci_hcd *xhci,
995 		struct xhci_event_cmd *event,
996 		union xhci_trb *trb)
997 {
998 	int slot_id;
999 	unsigned int ep_index;
1000 
1001 	slot_id = TRB_TO_SLOT_ID(le32_to_cpu(trb->generic.field[3]));
1002 	ep_index = TRB_TO_EP_INDEX(le32_to_cpu(trb->generic.field[3]));
1003 	/* This command will only fail if the endpoint wasn't halted,
1004 	 * but we don't care.
1005 	 */
1006 	xhci_dbg(xhci, "Ignoring reset ep completion code of %u\n",
1007 		 GET_COMP_CODE(le32_to_cpu(event->status)));
1008 
1009 	/* HW with the reset endpoint quirk needs to have a configure endpoint
1010 	 * command complete before the endpoint can be used.  Queue that here
1011 	 * because the HW can't handle two commands being queued in a row.
1012 	 */
1013 	if (xhci->quirks & XHCI_RESET_EP_QUIRK) {
1014 		xhci_dbg(xhci, "Queueing configure endpoint command\n");
1015 		xhci_queue_configure_endpoint(xhci,
1016 				xhci->devs[slot_id]->in_ctx->dma, slot_id,
1017 				false);
1018 		xhci_ring_cmd_db(xhci);
1019 	} else {
1020 		/* Clear our internal halted state and restart the ring(s) */
1021 		xhci->devs[slot_id]->eps[ep_index].ep_state &= ~EP_HALTED;
1022 		ring_doorbell_for_active_rings(xhci, slot_id, ep_index);
1023 	}
1024 }
1025 
1026 /* Check to see if a command in the device's command queue matches this one.
1027  * Signal the completion or free the command, and return 1.  Return 0 if the
1028  * completed command isn't at the head of the command list.
1029  */
handle_cmd_in_cmd_wait_list(struct xhci_hcd * xhci,struct xhci_virt_device * virt_dev,struct xhci_event_cmd * event)1030 static int handle_cmd_in_cmd_wait_list(struct xhci_hcd *xhci,
1031 		struct xhci_virt_device *virt_dev,
1032 		struct xhci_event_cmd *event)
1033 {
1034 	struct xhci_command *command;
1035 
1036 	if (list_empty(&virt_dev->cmd_list))
1037 		return 0;
1038 
1039 	command = list_entry(virt_dev->cmd_list.next,
1040 			struct xhci_command, cmd_list);
1041 	if (xhci->cmd_ring->dequeue != command->command_trb)
1042 		return 0;
1043 
1044 	command->status = GET_COMP_CODE(le32_to_cpu(event->status));
1045 	list_del(&command->cmd_list);
1046 	if (command->completion)
1047 		complete(command->completion);
1048 	else
1049 		xhci_free_command(xhci, command);
1050 	return 1;
1051 }
1052 
handle_cmd_completion(struct xhci_hcd * xhci,struct xhci_event_cmd * event)1053 static void handle_cmd_completion(struct xhci_hcd *xhci,
1054 		struct xhci_event_cmd *event)
1055 {
1056 	int slot_id = TRB_TO_SLOT_ID(le32_to_cpu(event->flags));
1057 	u64 cmd_dma;
1058 	dma_addr_t cmd_dequeue_dma;
1059 	struct xhci_input_control_ctx *ctrl_ctx;
1060 	struct xhci_virt_device *virt_dev;
1061 	unsigned int ep_index;
1062 	struct xhci_ring *ep_ring;
1063 	unsigned int ep_state;
1064 
1065 	cmd_dma = le64_to_cpu(event->cmd_trb);
1066 	cmd_dequeue_dma = xhci_trb_virt_to_dma(xhci->cmd_ring->deq_seg,
1067 			xhci->cmd_ring->dequeue);
1068 	/* Is the command ring deq ptr out of sync with the deq seg ptr? */
1069 	if (cmd_dequeue_dma == 0) {
1070 		xhci->error_bitmask |= 1 << 4;
1071 		return;
1072 	}
1073 	/* Does the DMA address match our internal dequeue pointer address? */
1074 	if (cmd_dma != (u64) cmd_dequeue_dma) {
1075 		xhci->error_bitmask |= 1 << 5;
1076 		return;
1077 	}
1078 	switch (le32_to_cpu(xhci->cmd_ring->dequeue->generic.field[3])
1079 		& TRB_TYPE_BITMASK) {
1080 	case TRB_TYPE(TRB_ENABLE_SLOT):
1081 		if (GET_COMP_CODE(le32_to_cpu(event->status)) == COMP_SUCCESS)
1082 			xhci->slot_id = slot_id;
1083 		else
1084 			xhci->slot_id = 0;
1085 		complete(&xhci->addr_dev);
1086 		break;
1087 	case TRB_TYPE(TRB_DISABLE_SLOT):
1088 		if (xhci->devs[slot_id]) {
1089 			if (xhci->quirks & XHCI_EP_LIMIT_QUIRK)
1090 				/* Delete default control endpoint resources */
1091 				xhci_free_device_endpoint_resources(xhci,
1092 						xhci->devs[slot_id], true);
1093 			xhci_free_virt_device(xhci, slot_id);
1094 		}
1095 		break;
1096 	case TRB_TYPE(TRB_CONFIG_EP):
1097 		virt_dev = xhci->devs[slot_id];
1098 		if (handle_cmd_in_cmd_wait_list(xhci, virt_dev, event))
1099 			break;
1100 		/*
1101 		 * Configure endpoint commands can come from the USB core
1102 		 * configuration or alt setting changes, or because the HW
1103 		 * needed an extra configure endpoint command after a reset
1104 		 * endpoint command or streams were being configured.
1105 		 * If the command was for a halted endpoint, the xHCI driver
1106 		 * is not waiting on the configure endpoint command.
1107 		 */
1108 		ctrl_ctx = xhci_get_input_control_ctx(xhci,
1109 				virt_dev->in_ctx);
1110 		/* Input ctx add_flags are the endpoint index plus one */
1111 		ep_index = xhci_last_valid_endpoint(le32_to_cpu(ctrl_ctx->add_flags)) - 1;
1112 		/* A usb_set_interface() call directly after clearing a halted
1113 		 * condition may race on this quirky hardware.  Not worth
1114 		 * worrying about, since this is prototype hardware.  Not sure
1115 		 * if this will work for streams, but streams support was
1116 		 * untested on this prototype.
1117 		 */
1118 		if (xhci->quirks & XHCI_RESET_EP_QUIRK &&
1119 				ep_index != (unsigned int) -1 &&
1120 		    le32_to_cpu(ctrl_ctx->add_flags) - SLOT_FLAG ==
1121 		    le32_to_cpu(ctrl_ctx->drop_flags)) {
1122 			ep_ring = xhci->devs[slot_id]->eps[ep_index].ring;
1123 			ep_state = xhci->devs[slot_id]->eps[ep_index].ep_state;
1124 			if (!(ep_state & EP_HALTED))
1125 				goto bandwidth_change;
1126 			xhci_dbg(xhci, "Completed config ep cmd - "
1127 					"last ep index = %d, state = %d\n",
1128 					ep_index, ep_state);
1129 			/* Clear internal halted state and restart ring(s) */
1130 			xhci->devs[slot_id]->eps[ep_index].ep_state &=
1131 				~EP_HALTED;
1132 			ring_doorbell_for_active_rings(xhci, slot_id, ep_index);
1133 			break;
1134 		}
1135 bandwidth_change:
1136 		xhci_dbg(xhci, "Completed config ep cmd\n");
1137 		xhci->devs[slot_id]->cmd_status =
1138 			GET_COMP_CODE(le32_to_cpu(event->status));
1139 		complete(&xhci->devs[slot_id]->cmd_completion);
1140 		break;
1141 	case TRB_TYPE(TRB_EVAL_CONTEXT):
1142 		virt_dev = xhci->devs[slot_id];
1143 		if (handle_cmd_in_cmd_wait_list(xhci, virt_dev, event))
1144 			break;
1145 		xhci->devs[slot_id]->cmd_status = GET_COMP_CODE(le32_to_cpu(event->status));
1146 		complete(&xhci->devs[slot_id]->cmd_completion);
1147 		break;
1148 	case TRB_TYPE(TRB_ADDR_DEV):
1149 		xhci->devs[slot_id]->cmd_status = GET_COMP_CODE(le32_to_cpu(event->status));
1150 		complete(&xhci->addr_dev);
1151 		break;
1152 	case TRB_TYPE(TRB_STOP_RING):
1153 		handle_stopped_endpoint(xhci, xhci->cmd_ring->dequeue, event);
1154 		break;
1155 	case TRB_TYPE(TRB_SET_DEQ):
1156 		handle_set_deq_completion(xhci, event, xhci->cmd_ring->dequeue);
1157 		break;
1158 	case TRB_TYPE(TRB_CMD_NOOP):
1159 		break;
1160 	case TRB_TYPE(TRB_RESET_EP):
1161 		handle_reset_ep_completion(xhci, event, xhci->cmd_ring->dequeue);
1162 		break;
1163 	case TRB_TYPE(TRB_RESET_DEV):
1164 		xhci_dbg(xhci, "Completed reset device command.\n");
1165 		slot_id = TRB_TO_SLOT_ID(
1166 			le32_to_cpu(xhci->cmd_ring->dequeue->generic.field[3]));
1167 		virt_dev = xhci->devs[slot_id];
1168 		if (virt_dev)
1169 			handle_cmd_in_cmd_wait_list(xhci, virt_dev, event);
1170 		else
1171 			xhci_warn(xhci, "Reset device command completion "
1172 					"for disabled slot %u\n", slot_id);
1173 		break;
1174 	case TRB_TYPE(TRB_NEC_GET_FW):
1175 		if (!(xhci->quirks & XHCI_NEC_HOST)) {
1176 			xhci->error_bitmask |= 1 << 6;
1177 			break;
1178 		}
1179 		xhci_dbg(xhci, "NEC firmware version %2x.%02x\n",
1180 			 NEC_FW_MAJOR(le32_to_cpu(event->status)),
1181 			 NEC_FW_MINOR(le32_to_cpu(event->status)));
1182 		break;
1183 	default:
1184 		/* Skip over unknown commands on the event ring */
1185 		xhci->error_bitmask |= 1 << 6;
1186 		break;
1187 	}
1188 	inc_deq(xhci, xhci->cmd_ring, false);
1189 }
1190 
handle_vendor_event(struct xhci_hcd * xhci,union xhci_trb * event)1191 static void handle_vendor_event(struct xhci_hcd *xhci,
1192 		union xhci_trb *event)
1193 {
1194 	u32 trb_type;
1195 
1196 	trb_type = TRB_FIELD_TO_TYPE(le32_to_cpu(event->generic.field[3]));
1197 	xhci_dbg(xhci, "Vendor specific event TRB type = %u\n", trb_type);
1198 	if (trb_type == TRB_NEC_CMD_COMP && (xhci->quirks & XHCI_NEC_HOST))
1199 		handle_cmd_completion(xhci, &event->event_cmd);
1200 }
1201 
1202 /* @port_id: the one-based port ID from the hardware (indexed from array of all
1203  * port registers -- USB 3.0 and USB 2.0).
1204  *
1205  * Returns a zero-based port number, which is suitable for indexing into each of
1206  * the split roothubs' port arrays and bus state arrays.
1207  * Add one to it in order to call xhci_find_slot_id_by_port.
1208  */
find_faked_portnum_from_hw_portnum(struct usb_hcd * hcd,struct xhci_hcd * xhci,u32 port_id)1209 static unsigned int find_faked_portnum_from_hw_portnum(struct usb_hcd *hcd,
1210 		struct xhci_hcd *xhci, u32 port_id)
1211 {
1212 	unsigned int i;
1213 	unsigned int num_similar_speed_ports = 0;
1214 
1215 	/* port_id from the hardware is 1-based, but port_array[], usb3_ports[],
1216 	 * and usb2_ports are 0-based indexes.  Count the number of similar
1217 	 * speed ports, up to 1 port before this port.
1218 	 */
1219 	for (i = 0; i < (port_id - 1); i++) {
1220 		u8 port_speed = xhci->port_array[i];
1221 
1222 		/*
1223 		 * Skip ports that don't have known speeds, or have duplicate
1224 		 * Extended Capabilities port speed entries.
1225 		 */
1226 		if (port_speed == 0 || port_speed == DUPLICATE_ENTRY)
1227 			continue;
1228 
1229 		/*
1230 		 * USB 3.0 ports are always under a USB 3.0 hub.  USB 2.0 and
1231 		 * 1.1 ports are under the USB 2.0 hub.  If the port speed
1232 		 * matches the device speed, it's a similar speed port.
1233 		 */
1234 		if ((port_speed == 0x03) == (hcd->speed == HCD_USB3))
1235 			num_similar_speed_ports++;
1236 	}
1237 	return num_similar_speed_ports;
1238 }
1239 
handle_port_status(struct xhci_hcd * xhci,union xhci_trb * event)1240 static void handle_port_status(struct xhci_hcd *xhci,
1241 		union xhci_trb *event)
1242 {
1243 	struct usb_hcd *hcd;
1244 	u32 port_id;
1245 	u32 temp, temp1;
1246 	int max_ports;
1247 	int slot_id;
1248 	unsigned int faked_port_index;
1249 	u8 major_revision;
1250 	struct xhci_bus_state *bus_state;
1251 	__le32 __iomem **port_array;
1252 	bool bogus_port_status = false;
1253 
1254 	/* Port status change events always have a successful completion code */
1255 	if (GET_COMP_CODE(le32_to_cpu(event->generic.field[2])) != COMP_SUCCESS) {
1256 		xhci_warn(xhci, "WARN: xHC returned failed port status event\n");
1257 		xhci->error_bitmask |= 1 << 8;
1258 	}
1259 	port_id = GET_PORT_ID(le32_to_cpu(event->generic.field[0]));
1260 	xhci_dbg(xhci, "Port Status Change Event for port %d\n", port_id);
1261 
1262 	max_ports = HCS_MAX_PORTS(xhci->hcs_params1);
1263 	if ((port_id <= 0) || (port_id > max_ports)) {
1264 		xhci_warn(xhci, "Invalid port id %d\n", port_id);
1265 		bogus_port_status = true;
1266 		goto cleanup;
1267 	}
1268 
1269 	/* Figure out which usb_hcd this port is attached to:
1270 	 * is it a USB 3.0 port or a USB 2.0/1.1 port?
1271 	 */
1272 	major_revision = xhci->port_array[port_id - 1];
1273 	if (major_revision == 0) {
1274 		xhci_warn(xhci, "Event for port %u not in "
1275 				"Extended Capabilities, ignoring.\n",
1276 				port_id);
1277 		bogus_port_status = true;
1278 		goto cleanup;
1279 	}
1280 	if (major_revision == DUPLICATE_ENTRY) {
1281 		xhci_warn(xhci, "Event for port %u duplicated in"
1282 				"Extended Capabilities, ignoring.\n",
1283 				port_id);
1284 		bogus_port_status = true;
1285 		goto cleanup;
1286 	}
1287 
1288 	/*
1289 	 * Hardware port IDs reported by a Port Status Change Event include USB
1290 	 * 3.0 and USB 2.0 ports.  We want to check if the port has reported a
1291 	 * resume event, but we first need to translate the hardware port ID
1292 	 * into the index into the ports on the correct split roothub, and the
1293 	 * correct bus_state structure.
1294 	 */
1295 	/* Find the right roothub. */
1296 	hcd = xhci_to_hcd(xhci);
1297 	if ((major_revision == 0x03) != (hcd->speed == HCD_USB3))
1298 		hcd = xhci->shared_hcd;
1299 	bus_state = &xhci->bus_state[hcd_index(hcd)];
1300 	if (hcd->speed == HCD_USB3)
1301 		port_array = xhci->usb3_ports;
1302 	else
1303 		port_array = xhci->usb2_ports;
1304 	/* Find the faked port hub number */
1305 	faked_port_index = find_faked_portnum_from_hw_portnum(hcd, xhci,
1306 			port_id);
1307 
1308 	temp = xhci_readl(xhci, port_array[faked_port_index]);
1309 	if (hcd->state == HC_STATE_SUSPENDED) {
1310 		xhci_dbg(xhci, "resume root hub\n");
1311 		usb_hcd_resume_root_hub(hcd);
1312 	}
1313 
1314 	if ((temp & PORT_PLC) && (temp & PORT_PLS_MASK) == XDEV_RESUME) {
1315 		xhci_dbg(xhci, "port resume event for port %d\n", port_id);
1316 
1317 		temp1 = xhci_readl(xhci, &xhci->op_regs->command);
1318 		if (!(temp1 & CMD_RUN)) {
1319 			xhci_warn(xhci, "xHC is not running.\n");
1320 			goto cleanup;
1321 		}
1322 
1323 		if (DEV_SUPERSPEED(temp)) {
1324 			xhci_dbg(xhci, "resume SS port %d\n", port_id);
1325 			xhci_set_link_state(xhci, port_array, faked_port_index,
1326 						XDEV_U0);
1327 			slot_id = xhci_find_slot_id_by_port(hcd, xhci,
1328 					faked_port_index + 1);
1329 			if (!slot_id) {
1330 				xhci_dbg(xhci, "slot_id is zero\n");
1331 				goto cleanup;
1332 			}
1333 			xhci_ring_device(xhci, slot_id);
1334 			xhci_dbg(xhci, "resume SS port %d finished\n", port_id);
1335 			/* Clear PORT_PLC */
1336 			xhci_test_and_clear_bit(xhci, port_array,
1337 						faked_port_index, PORT_PLC);
1338 		} else {
1339 			xhci_dbg(xhci, "resume HS port %d\n", port_id);
1340 			bus_state->resume_done[faked_port_index] = jiffies +
1341 				msecs_to_jiffies(20);
1342 			mod_timer(&hcd->rh_timer,
1343 				  bus_state->resume_done[faked_port_index]);
1344 			/* Do the rest in GetPortStatus */
1345 		}
1346 	}
1347 
1348 	if (hcd->speed != HCD_USB3)
1349 		xhci_test_and_clear_bit(xhci, port_array, faked_port_index,
1350 					PORT_PLC);
1351 
1352 cleanup:
1353 	/* Update event ring dequeue pointer before dropping the lock */
1354 	inc_deq(xhci, xhci->event_ring, true);
1355 
1356 	/* Don't make the USB core poll the roothub if we got a bad port status
1357 	 * change event.  Besides, at that point we can't tell which roothub
1358 	 * (USB 2.0 or USB 3.0) to kick.
1359 	 */
1360 	if (bogus_port_status)
1361 		return;
1362 
1363 	spin_unlock(&xhci->lock);
1364 	/* Pass this up to the core */
1365 	usb_hcd_poll_rh_status(hcd);
1366 	spin_lock(&xhci->lock);
1367 }
1368 
1369 /*
1370  * This TD is defined by the TRBs starting at start_trb in start_seg and ending
1371  * at end_trb, which may be in another segment.  If the suspect DMA address is a
1372  * TRB in this TD, this function returns that TRB's segment.  Otherwise it
1373  * returns 0.
1374  */
trb_in_td(struct xhci_segment * start_seg,union xhci_trb * start_trb,union xhci_trb * end_trb,dma_addr_t suspect_dma)1375 struct xhci_segment *trb_in_td(struct xhci_segment *start_seg,
1376 		union xhci_trb	*start_trb,
1377 		union xhci_trb	*end_trb,
1378 		dma_addr_t	suspect_dma)
1379 {
1380 	dma_addr_t start_dma;
1381 	dma_addr_t end_seg_dma;
1382 	dma_addr_t end_trb_dma;
1383 	struct xhci_segment *cur_seg;
1384 
1385 	start_dma = xhci_trb_virt_to_dma(start_seg, start_trb);
1386 	cur_seg = start_seg;
1387 
1388 	do {
1389 		if (start_dma == 0)
1390 			return NULL;
1391 		/* We may get an event for a Link TRB in the middle of a TD */
1392 		end_seg_dma = xhci_trb_virt_to_dma(cur_seg,
1393 				&cur_seg->trbs[TRBS_PER_SEGMENT - 1]);
1394 		/* If the end TRB isn't in this segment, this is set to 0 */
1395 		end_trb_dma = xhci_trb_virt_to_dma(cur_seg, end_trb);
1396 
1397 		if (end_trb_dma > 0) {
1398 			/* The end TRB is in this segment, so suspect should be here */
1399 			if (start_dma <= end_trb_dma) {
1400 				if (suspect_dma >= start_dma && suspect_dma <= end_trb_dma)
1401 					return cur_seg;
1402 			} else {
1403 				/* Case for one segment with
1404 				 * a TD wrapped around to the top
1405 				 */
1406 				if ((suspect_dma >= start_dma &&
1407 							suspect_dma <= end_seg_dma) ||
1408 						(suspect_dma >= cur_seg->dma &&
1409 						 suspect_dma <= end_trb_dma))
1410 					return cur_seg;
1411 			}
1412 			return NULL;
1413 		} else {
1414 			/* Might still be somewhere in this segment */
1415 			if (suspect_dma >= start_dma && suspect_dma <= end_seg_dma)
1416 				return cur_seg;
1417 		}
1418 		cur_seg = cur_seg->next;
1419 		start_dma = xhci_trb_virt_to_dma(cur_seg, &cur_seg->trbs[0]);
1420 	} while (cur_seg != start_seg);
1421 
1422 	return NULL;
1423 }
1424 
xhci_cleanup_halted_endpoint(struct xhci_hcd * xhci,unsigned int slot_id,unsigned int ep_index,unsigned int stream_id,struct xhci_td * td,union xhci_trb * event_trb)1425 static void xhci_cleanup_halted_endpoint(struct xhci_hcd *xhci,
1426 		unsigned int slot_id, unsigned int ep_index,
1427 		unsigned int stream_id,
1428 		struct xhci_td *td, union xhci_trb *event_trb)
1429 {
1430 	struct xhci_virt_ep *ep = &xhci->devs[slot_id]->eps[ep_index];
1431 	ep->ep_state |= EP_HALTED;
1432 	ep->stopped_td = td;
1433 	ep->stopped_trb = event_trb;
1434 	ep->stopped_stream = stream_id;
1435 
1436 	xhci_queue_reset_ep(xhci, slot_id, ep_index);
1437 	xhci_cleanup_stalled_ring(xhci, td->urb->dev, ep_index);
1438 
1439 	ep->stopped_td = NULL;
1440 	ep->stopped_trb = NULL;
1441 	ep->stopped_stream = 0;
1442 
1443 	xhci_ring_cmd_db(xhci);
1444 }
1445 
1446 /* Check if an error has halted the endpoint ring.  The class driver will
1447  * cleanup the halt for a non-default control endpoint if we indicate a stall.
1448  * However, a babble and other errors also halt the endpoint ring, and the class
1449  * driver won't clear the halt in that case, so we need to issue a Set Transfer
1450  * Ring Dequeue Pointer command manually.
1451  */
xhci_requires_manual_halt_cleanup(struct xhci_hcd * xhci,struct xhci_ep_ctx * ep_ctx,unsigned int trb_comp_code)1452 static int xhci_requires_manual_halt_cleanup(struct xhci_hcd *xhci,
1453 		struct xhci_ep_ctx *ep_ctx,
1454 		unsigned int trb_comp_code)
1455 {
1456 	/* TRB completion codes that may require a manual halt cleanup */
1457 	if (trb_comp_code == COMP_TX_ERR ||
1458 			trb_comp_code == COMP_BABBLE ||
1459 			trb_comp_code == COMP_SPLIT_ERR)
1460 		/* The 0.96 spec says a babbling control endpoint
1461 		 * is not halted. The 0.96 spec says it is.  Some HW
1462 		 * claims to be 0.95 compliant, but it halts the control
1463 		 * endpoint anyway.  Check if a babble halted the
1464 		 * endpoint.
1465 		 */
1466 		if ((ep_ctx->ep_info & cpu_to_le32(EP_STATE_MASK)) ==
1467 		    cpu_to_le32(EP_STATE_HALTED))
1468 			return 1;
1469 
1470 	return 0;
1471 }
1472 
xhci_is_vendor_info_code(struct xhci_hcd * xhci,unsigned int trb_comp_code)1473 int xhci_is_vendor_info_code(struct xhci_hcd *xhci, unsigned int trb_comp_code)
1474 {
1475 	if (trb_comp_code >= 224 && trb_comp_code <= 255) {
1476 		/* Vendor defined "informational" completion code,
1477 		 * treat as not-an-error.
1478 		 */
1479 		xhci_dbg(xhci, "Vendor defined info completion code %u\n",
1480 				trb_comp_code);
1481 		xhci_dbg(xhci, "Treating code as success.\n");
1482 		return 1;
1483 	}
1484 	return 0;
1485 }
1486 
1487 /*
1488  * Finish the td processing, remove the td from td list;
1489  * Return 1 if the urb can be given back.
1490  */
finish_td(struct xhci_hcd * xhci,struct xhci_td * td,union xhci_trb * event_trb,struct xhci_transfer_event * event,struct xhci_virt_ep * ep,int * status,bool skip)1491 static int finish_td(struct xhci_hcd *xhci, struct xhci_td *td,
1492 	union xhci_trb *event_trb, struct xhci_transfer_event *event,
1493 	struct xhci_virt_ep *ep, int *status, bool skip)
1494 {
1495 	struct xhci_virt_device *xdev;
1496 	struct xhci_ring *ep_ring;
1497 	unsigned int slot_id;
1498 	int ep_index;
1499 	struct urb *urb = NULL;
1500 	struct xhci_ep_ctx *ep_ctx;
1501 	int ret = 0;
1502 	struct urb_priv	*urb_priv;
1503 	u32 trb_comp_code;
1504 
1505 	slot_id = TRB_TO_SLOT_ID(le32_to_cpu(event->flags));
1506 	xdev = xhci->devs[slot_id];
1507 	ep_index = TRB_TO_EP_ID(le32_to_cpu(event->flags)) - 1;
1508 	ep_ring = xhci_dma_to_transfer_ring(ep, le64_to_cpu(event->buffer));
1509 	ep_ctx = xhci_get_ep_ctx(xhci, xdev->out_ctx, ep_index);
1510 	trb_comp_code = GET_COMP_CODE(le32_to_cpu(event->transfer_len));
1511 
1512 	if (skip)
1513 		goto td_cleanup;
1514 
1515 	if (trb_comp_code == COMP_STOP_INVAL ||
1516 			trb_comp_code == COMP_STOP) {
1517 		/* The Endpoint Stop Command completion will take care of any
1518 		 * stopped TDs.  A stopped TD may be restarted, so don't update
1519 		 * the ring dequeue pointer or take this TD off any lists yet.
1520 		 */
1521 		ep->stopped_td = td;
1522 		ep->stopped_trb = event_trb;
1523 		return 0;
1524 	} else {
1525 		if (trb_comp_code == COMP_STALL) {
1526 			/* The transfer is completed from the driver's
1527 			 * perspective, but we need to issue a set dequeue
1528 			 * command for this stalled endpoint to move the dequeue
1529 			 * pointer past the TD.  We can't do that here because
1530 			 * the halt condition must be cleared first.  Let the
1531 			 * USB class driver clear the stall later.
1532 			 */
1533 			ep->stopped_td = td;
1534 			ep->stopped_trb = event_trb;
1535 			ep->stopped_stream = ep_ring->stream_id;
1536 		} else if (xhci_requires_manual_halt_cleanup(xhci,
1537 					ep_ctx, trb_comp_code)) {
1538 			/* Other types of errors halt the endpoint, but the
1539 			 * class driver doesn't call usb_reset_endpoint() unless
1540 			 * the error is -EPIPE.  Clear the halted status in the
1541 			 * xHCI hardware manually.
1542 			 */
1543 			xhci_cleanup_halted_endpoint(xhci,
1544 					slot_id, ep_index, ep_ring->stream_id,
1545 					td, event_trb);
1546 		} else {
1547 			/* Update ring dequeue pointer */
1548 			while (ep_ring->dequeue != td->last_trb)
1549 				inc_deq(xhci, ep_ring, false);
1550 			inc_deq(xhci, ep_ring, false);
1551 		}
1552 
1553 td_cleanup:
1554 		/* Clean up the endpoint's TD list */
1555 		urb = td->urb;
1556 		urb_priv = urb->hcpriv;
1557 
1558 		/* Do one last check of the actual transfer length.
1559 		 * If the host controller said we transferred more data than
1560 		 * the buffer length, urb->actual_length will be a very big
1561 		 * number (since it's unsigned).  Play it safe and say we didn't
1562 		 * transfer anything.
1563 		 */
1564 		if (urb->actual_length > urb->transfer_buffer_length) {
1565 			xhci_warn(xhci, "URB transfer length is wrong, "
1566 					"xHC issue? req. len = %u, "
1567 					"act. len = %u\n",
1568 					urb->transfer_buffer_length,
1569 					urb->actual_length);
1570 			urb->actual_length = 0;
1571 			if (td->urb->transfer_flags & URB_SHORT_NOT_OK)
1572 				*status = -EREMOTEIO;
1573 			else
1574 				*status = 0;
1575 		}
1576 		list_del_init(&td->td_list);
1577 		/* Was this TD slated to be cancelled but completed anyway? */
1578 		if (!list_empty(&td->cancelled_td_list))
1579 			list_del_init(&td->cancelled_td_list);
1580 
1581 		urb_priv->td_cnt++;
1582 		/* Giveback the urb when all the tds are completed */
1583 		if (urb_priv->td_cnt == urb_priv->length) {
1584 			ret = 1;
1585 			if (usb_pipetype(urb->pipe) == PIPE_ISOCHRONOUS) {
1586 				xhci_to_hcd(xhci)->self.bandwidth_isoc_reqs--;
1587 				if (xhci_to_hcd(xhci)->self.bandwidth_isoc_reqs
1588 					== 0) {
1589 					if (xhci->quirks & XHCI_AMD_PLL_FIX)
1590 						usb_amd_quirk_pll_enable();
1591 				}
1592 			}
1593 		}
1594 	}
1595 
1596 	return ret;
1597 }
1598 
1599 /*
1600  * Process control tds, update urb status and actual_length.
1601  */
process_ctrl_td(struct xhci_hcd * xhci,struct xhci_td * td,union xhci_trb * event_trb,struct xhci_transfer_event * event,struct xhci_virt_ep * ep,int * status)1602 static int process_ctrl_td(struct xhci_hcd *xhci, struct xhci_td *td,
1603 	union xhci_trb *event_trb, struct xhci_transfer_event *event,
1604 	struct xhci_virt_ep *ep, int *status)
1605 {
1606 	struct xhci_virt_device *xdev;
1607 	struct xhci_ring *ep_ring;
1608 	unsigned int slot_id;
1609 	int ep_index;
1610 	struct xhci_ep_ctx *ep_ctx;
1611 	u32 trb_comp_code;
1612 
1613 	slot_id = TRB_TO_SLOT_ID(le32_to_cpu(event->flags));
1614 	xdev = xhci->devs[slot_id];
1615 	ep_index = TRB_TO_EP_ID(le32_to_cpu(event->flags)) - 1;
1616 	ep_ring = xhci_dma_to_transfer_ring(ep, le64_to_cpu(event->buffer));
1617 	ep_ctx = xhci_get_ep_ctx(xhci, xdev->out_ctx, ep_index);
1618 	trb_comp_code = GET_COMP_CODE(le32_to_cpu(event->transfer_len));
1619 
1620 	switch (trb_comp_code) {
1621 	case COMP_SUCCESS:
1622 		if (event_trb == ep_ring->dequeue) {
1623 			xhci_warn(xhci, "WARN: Success on ctrl setup TRB "
1624 					"without IOC set??\n");
1625 			*status = -ESHUTDOWN;
1626 		} else if (event_trb != td->last_trb) {
1627 			xhci_warn(xhci, "WARN: Success on ctrl data TRB "
1628 					"without IOC set??\n");
1629 			*status = -ESHUTDOWN;
1630 		} else {
1631 			*status = 0;
1632 		}
1633 		break;
1634 	case COMP_SHORT_TX:
1635 		if (td->urb->transfer_flags & URB_SHORT_NOT_OK)
1636 			*status = -EREMOTEIO;
1637 		else
1638 			*status = 0;
1639 		break;
1640 	case COMP_STOP_INVAL:
1641 	case COMP_STOP:
1642 		return finish_td(xhci, td, event_trb, event, ep, status, false);
1643 	default:
1644 		if (!xhci_requires_manual_halt_cleanup(xhci,
1645 					ep_ctx, trb_comp_code))
1646 			break;
1647 		xhci_dbg(xhci, "TRB error code %u, "
1648 				"halted endpoint index = %u\n",
1649 				trb_comp_code, ep_index);
1650 		/* else fall through */
1651 	case COMP_STALL:
1652 		/* Did we transfer part of the data (middle) phase? */
1653 		if (event_trb != ep_ring->dequeue &&
1654 				event_trb != td->last_trb)
1655 			td->urb->actual_length =
1656 				td->urb->transfer_buffer_length
1657 				- TRB_LEN(le32_to_cpu(event->transfer_len));
1658 		else
1659 			td->urb->actual_length = 0;
1660 
1661 		xhci_cleanup_halted_endpoint(xhci,
1662 			slot_id, ep_index, 0, td, event_trb);
1663 		return finish_td(xhci, td, event_trb, event, ep, status, true);
1664 	}
1665 	/*
1666 	 * Did we transfer any data, despite the errors that might have
1667 	 * happened?  I.e. did we get past the setup stage?
1668 	 */
1669 	if (event_trb != ep_ring->dequeue) {
1670 		/* The event was for the status stage */
1671 		if (event_trb == td->last_trb) {
1672 			if (td->urb->actual_length != 0) {
1673 				/* Don't overwrite a previously set error code
1674 				 */
1675 				if ((*status == -EINPROGRESS || *status == 0) &&
1676 						(td->urb->transfer_flags
1677 						 & URB_SHORT_NOT_OK))
1678 					/* Did we already see a short data
1679 					 * stage? */
1680 					*status = -EREMOTEIO;
1681 			} else {
1682 				td->urb->actual_length =
1683 					td->urb->transfer_buffer_length;
1684 			}
1685 		} else {
1686 		/* Maybe the event was for the data stage? */
1687 			td->urb->actual_length =
1688 				td->urb->transfer_buffer_length -
1689 				TRB_LEN(le32_to_cpu(event->transfer_len));
1690 			xhci_dbg(xhci, "Waiting for status "
1691 					"stage event\n");
1692 			return 0;
1693 		}
1694 	}
1695 
1696 	return finish_td(xhci, td, event_trb, event, ep, status, false);
1697 }
1698 
1699 /*
1700  * Process isochronous tds, update urb packet status and actual_length.
1701  */
process_isoc_td(struct xhci_hcd * xhci,struct xhci_td * td,union xhci_trb * event_trb,struct xhci_transfer_event * event,struct xhci_virt_ep * ep,int * status)1702 static int process_isoc_td(struct xhci_hcd *xhci, struct xhci_td *td,
1703 	union xhci_trb *event_trb, struct xhci_transfer_event *event,
1704 	struct xhci_virt_ep *ep, int *status)
1705 {
1706 	struct xhci_ring *ep_ring;
1707 	struct urb_priv *urb_priv;
1708 	int idx;
1709 	int len = 0;
1710 	union xhci_trb *cur_trb;
1711 	struct xhci_segment *cur_seg;
1712 	struct usb_iso_packet_descriptor *frame;
1713 	u32 trb_comp_code;
1714 	bool skip_td = false;
1715 
1716 	ep_ring = xhci_dma_to_transfer_ring(ep, le64_to_cpu(event->buffer));
1717 	trb_comp_code = GET_COMP_CODE(le32_to_cpu(event->transfer_len));
1718 	urb_priv = td->urb->hcpriv;
1719 	idx = urb_priv->td_cnt;
1720 	frame = &td->urb->iso_frame_desc[idx];
1721 
1722 	/* handle completion code */
1723 	switch (trb_comp_code) {
1724 	case COMP_SUCCESS:
1725 		frame->status = 0;
1726 		break;
1727 	case COMP_SHORT_TX:
1728 		frame->status = td->urb->transfer_flags & URB_SHORT_NOT_OK ?
1729 				-EREMOTEIO : 0;
1730 		break;
1731 	case COMP_BW_OVER:
1732 		frame->status = -ECOMM;
1733 		skip_td = true;
1734 		break;
1735 	case COMP_BUFF_OVER:
1736 	case COMP_BABBLE:
1737 		frame->status = -EOVERFLOW;
1738 		skip_td = true;
1739 		break;
1740 	case COMP_DEV_ERR:
1741 	case COMP_STALL:
1742 		frame->status = -EPROTO;
1743 		skip_td = true;
1744 		break;
1745 	case COMP_STOP:
1746 	case COMP_STOP_INVAL:
1747 		break;
1748 	default:
1749 		frame->status = -1;
1750 		break;
1751 	}
1752 
1753 	if (trb_comp_code == COMP_SUCCESS || skip_td) {
1754 		frame->actual_length = frame->length;
1755 		td->urb->actual_length += frame->length;
1756 	} else {
1757 		for (cur_trb = ep_ring->dequeue,
1758 		     cur_seg = ep_ring->deq_seg; cur_trb != event_trb;
1759 		     next_trb(xhci, ep_ring, &cur_seg, &cur_trb)) {
1760 			if (!TRB_TYPE_NOOP_LE32(cur_trb->generic.field[3]) &&
1761 			    !TRB_TYPE_LINK_LE32(cur_trb->generic.field[3]))
1762 				len += TRB_LEN(le32_to_cpu(cur_trb->generic.field[2]));
1763 		}
1764 		len += TRB_LEN(le32_to_cpu(cur_trb->generic.field[2])) -
1765 			TRB_LEN(le32_to_cpu(event->transfer_len));
1766 
1767 		if (trb_comp_code != COMP_STOP_INVAL) {
1768 			frame->actual_length = len;
1769 			td->urb->actual_length += len;
1770 		}
1771 	}
1772 
1773 	return finish_td(xhci, td, event_trb, event, ep, status, false);
1774 }
1775 
skip_isoc_td(struct xhci_hcd * xhci,struct xhci_td * td,struct xhci_transfer_event * event,struct xhci_virt_ep * ep,int * status)1776 static int skip_isoc_td(struct xhci_hcd *xhci, struct xhci_td *td,
1777 			struct xhci_transfer_event *event,
1778 			struct xhci_virt_ep *ep, int *status)
1779 {
1780 	struct xhci_ring *ep_ring;
1781 	struct urb_priv *urb_priv;
1782 	struct usb_iso_packet_descriptor *frame;
1783 	int idx;
1784 
1785 	ep_ring = xhci_dma_to_transfer_ring(ep, le64_to_cpu(event->buffer));
1786 	urb_priv = td->urb->hcpriv;
1787 	idx = urb_priv->td_cnt;
1788 	frame = &td->urb->iso_frame_desc[idx];
1789 
1790 	/* The transfer is partly done. */
1791 	frame->status = -EXDEV;
1792 
1793 	/* calc actual length */
1794 	frame->actual_length = 0;
1795 
1796 	/* Update ring dequeue pointer */
1797 	while (ep_ring->dequeue != td->last_trb)
1798 		inc_deq(xhci, ep_ring, false);
1799 	inc_deq(xhci, ep_ring, false);
1800 
1801 	return finish_td(xhci, td, NULL, event, ep, status, true);
1802 }
1803 
1804 /*
1805  * Process bulk and interrupt tds, update urb status and actual_length.
1806  */
process_bulk_intr_td(struct xhci_hcd * xhci,struct xhci_td * td,union xhci_trb * event_trb,struct xhci_transfer_event * event,struct xhci_virt_ep * ep,int * status)1807 static int process_bulk_intr_td(struct xhci_hcd *xhci, struct xhci_td *td,
1808 	union xhci_trb *event_trb, struct xhci_transfer_event *event,
1809 	struct xhci_virt_ep *ep, int *status)
1810 {
1811 	struct xhci_ring *ep_ring;
1812 	union xhci_trb *cur_trb;
1813 	struct xhci_segment *cur_seg;
1814 	u32 trb_comp_code;
1815 
1816 	ep_ring = xhci_dma_to_transfer_ring(ep, le64_to_cpu(event->buffer));
1817 	trb_comp_code = GET_COMP_CODE(le32_to_cpu(event->transfer_len));
1818 
1819 	switch (trb_comp_code) {
1820 	case COMP_SUCCESS:
1821 		/* Double check that the HW transferred everything. */
1822 		if (event_trb != td->last_trb) {
1823 			xhci_warn(xhci, "WARN Successful completion "
1824 					"on short TX\n");
1825 			if (td->urb->transfer_flags & URB_SHORT_NOT_OK)
1826 				*status = -EREMOTEIO;
1827 			else
1828 				*status = 0;
1829 		} else {
1830 			*status = 0;
1831 		}
1832 		break;
1833 	case COMP_SHORT_TX:
1834 		if (td->urb->transfer_flags & URB_SHORT_NOT_OK)
1835 			*status = -EREMOTEIO;
1836 		else
1837 			*status = 0;
1838 		break;
1839 	default:
1840 		/* Others already handled above */
1841 		break;
1842 	}
1843 	if (trb_comp_code == COMP_SHORT_TX)
1844 		xhci_dbg(xhci, "ep %#x - asked for %d bytes, "
1845 				"%d bytes untransferred\n",
1846 				td->urb->ep->desc.bEndpointAddress,
1847 				td->urb->transfer_buffer_length,
1848 				TRB_LEN(le32_to_cpu(event->transfer_len)));
1849 	/* Fast path - was this the last TRB in the TD for this URB? */
1850 	if (event_trb == td->last_trb) {
1851 		if (TRB_LEN(le32_to_cpu(event->transfer_len)) != 0) {
1852 			td->urb->actual_length =
1853 				td->urb->transfer_buffer_length -
1854 				TRB_LEN(le32_to_cpu(event->transfer_len));
1855 			if (td->urb->transfer_buffer_length <
1856 					td->urb->actual_length) {
1857 				xhci_warn(xhci, "HC gave bad length "
1858 						"of %d bytes left\n",
1859 					  TRB_LEN(le32_to_cpu(event->transfer_len)));
1860 				td->urb->actual_length = 0;
1861 				if (td->urb->transfer_flags & URB_SHORT_NOT_OK)
1862 					*status = -EREMOTEIO;
1863 				else
1864 					*status = 0;
1865 			}
1866 			/* Don't overwrite a previously set error code */
1867 			if (*status == -EINPROGRESS) {
1868 				if (td->urb->transfer_flags & URB_SHORT_NOT_OK)
1869 					*status = -EREMOTEIO;
1870 				else
1871 					*status = 0;
1872 			}
1873 		} else {
1874 			td->urb->actual_length =
1875 				td->urb->transfer_buffer_length;
1876 			/* Ignore a short packet completion if the
1877 			 * untransferred length was zero.
1878 			 */
1879 			if (*status == -EREMOTEIO)
1880 				*status = 0;
1881 		}
1882 	} else {
1883 		/* Slow path - walk the list, starting from the dequeue
1884 		 * pointer, to get the actual length transferred.
1885 		 */
1886 		td->urb->actual_length = 0;
1887 		for (cur_trb = ep_ring->dequeue, cur_seg = ep_ring->deq_seg;
1888 				cur_trb != event_trb;
1889 				next_trb(xhci, ep_ring, &cur_seg, &cur_trb)) {
1890 			if (!TRB_TYPE_NOOP_LE32(cur_trb->generic.field[3]) &&
1891 			    !TRB_TYPE_LINK_LE32(cur_trb->generic.field[3]))
1892 				td->urb->actual_length +=
1893 					TRB_LEN(le32_to_cpu(cur_trb->generic.field[2]));
1894 		}
1895 		/* If the ring didn't stop on a Link or No-op TRB, add
1896 		 * in the actual bytes transferred from the Normal TRB
1897 		 */
1898 		if (trb_comp_code != COMP_STOP_INVAL)
1899 			td->urb->actual_length +=
1900 				TRB_LEN(le32_to_cpu(cur_trb->generic.field[2])) -
1901 				TRB_LEN(le32_to_cpu(event->transfer_len));
1902 	}
1903 
1904 	return finish_td(xhci, td, event_trb, event, ep, status, false);
1905 }
1906 
1907 /*
1908  * If this function returns an error condition, it means it got a Transfer
1909  * event with a corrupted Slot ID, Endpoint ID, or TRB DMA address.
1910  * At this point, the host controller is probably hosed and should be reset.
1911  */
handle_tx_event(struct xhci_hcd * xhci,struct xhci_transfer_event * event)1912 static int handle_tx_event(struct xhci_hcd *xhci,
1913 		struct xhci_transfer_event *event)
1914 {
1915 	struct xhci_virt_device *xdev;
1916 	struct xhci_virt_ep *ep;
1917 	struct xhci_ring *ep_ring;
1918 	unsigned int slot_id;
1919 	int ep_index;
1920 	struct xhci_td *td = NULL;
1921 	dma_addr_t event_dma;
1922 	struct xhci_segment *event_seg;
1923 	union xhci_trb *event_trb;
1924 	struct urb *urb = NULL;
1925 	int status = -EINPROGRESS;
1926 	struct urb_priv *urb_priv;
1927 	struct xhci_ep_ctx *ep_ctx;
1928 	struct list_head *tmp;
1929 	u32 trb_comp_code;
1930 	int ret = 0;
1931 	int td_num = 0;
1932 
1933 	slot_id = TRB_TO_SLOT_ID(le32_to_cpu(event->flags));
1934 	xdev = xhci->devs[slot_id];
1935 	if (!xdev) {
1936 		xhci_err(xhci, "ERROR Transfer event pointed to bad slot\n");
1937 		xhci_err(xhci, "@%016llx %08x %08x %08x %08x\n",
1938 			 (unsigned long long) xhci_trb_virt_to_dma(
1939 				 xhci->event_ring->deq_seg,
1940 				 xhci->event_ring->dequeue),
1941 			 lower_32_bits(le64_to_cpu(event->buffer)),
1942 			 upper_32_bits(le64_to_cpu(event->buffer)),
1943 			 le32_to_cpu(event->transfer_len),
1944 			 le32_to_cpu(event->flags));
1945 		xhci_dbg(xhci, "Event ring:\n");
1946 		xhci_debug_segment(xhci, xhci->event_ring->deq_seg);
1947 		return -ENODEV;
1948 	}
1949 
1950 	/* Endpoint ID is 1 based, our index is zero based */
1951 	ep_index = TRB_TO_EP_ID(le32_to_cpu(event->flags)) - 1;
1952 	ep = &xdev->eps[ep_index];
1953 	ep_ring = xhci_dma_to_transfer_ring(ep, le64_to_cpu(event->buffer));
1954 	ep_ctx = xhci_get_ep_ctx(xhci, xdev->out_ctx, ep_index);
1955 	if (!ep_ring ||
1956 	    (le32_to_cpu(ep_ctx->ep_info) & EP_STATE_MASK) ==
1957 	    EP_STATE_DISABLED) {
1958 		xhci_err(xhci, "ERROR Transfer event for disabled endpoint "
1959 				"or incorrect stream ring\n");
1960 		xhci_err(xhci, "@%016llx %08x %08x %08x %08x\n",
1961 			 (unsigned long long) xhci_trb_virt_to_dma(
1962 				 xhci->event_ring->deq_seg,
1963 				 xhci->event_ring->dequeue),
1964 			 lower_32_bits(le64_to_cpu(event->buffer)),
1965 			 upper_32_bits(le64_to_cpu(event->buffer)),
1966 			 le32_to_cpu(event->transfer_len),
1967 			 le32_to_cpu(event->flags));
1968 		xhci_dbg(xhci, "Event ring:\n");
1969 		xhci_debug_segment(xhci, xhci->event_ring->deq_seg);
1970 		return -ENODEV;
1971 	}
1972 
1973 	/* Count current td numbers if ep->skip is set */
1974 	if (ep->skip) {
1975 		list_for_each(tmp, &ep_ring->td_list)
1976 			td_num++;
1977 	}
1978 
1979 	event_dma = le64_to_cpu(event->buffer);
1980 	trb_comp_code = GET_COMP_CODE(le32_to_cpu(event->transfer_len));
1981 	/* Look for common error cases */
1982 	switch (trb_comp_code) {
1983 	/* Skip codes that require special handling depending on
1984 	 * transfer type
1985 	 */
1986 	case COMP_SUCCESS:
1987 	case COMP_SHORT_TX:
1988 		break;
1989 	case COMP_STOP:
1990 		xhci_dbg(xhci, "Stopped on Transfer TRB\n");
1991 		break;
1992 	case COMP_STOP_INVAL:
1993 		xhci_dbg(xhci, "Stopped on No-op or Link TRB\n");
1994 		break;
1995 	case COMP_STALL:
1996 		xhci_dbg(xhci, "Stalled endpoint\n");
1997 		ep->ep_state |= EP_HALTED;
1998 		status = -EPIPE;
1999 		break;
2000 	case COMP_TRB_ERR:
2001 		xhci_warn(xhci, "WARN: TRB error on endpoint\n");
2002 		status = -EILSEQ;
2003 		break;
2004 	case COMP_SPLIT_ERR:
2005 	case COMP_TX_ERR:
2006 		xhci_dbg(xhci, "Transfer error on endpoint\n");
2007 		status = -EPROTO;
2008 		break;
2009 	case COMP_BABBLE:
2010 		xhci_dbg(xhci, "Babble error on endpoint\n");
2011 		status = -EOVERFLOW;
2012 		break;
2013 	case COMP_DB_ERR:
2014 		xhci_warn(xhci, "WARN: HC couldn't access mem fast enough\n");
2015 		status = -ENOSR;
2016 		break;
2017 	case COMP_BW_OVER:
2018 		xhci_warn(xhci, "WARN: bandwidth overrun event on endpoint\n");
2019 		break;
2020 	case COMP_BUFF_OVER:
2021 		xhci_warn(xhci, "WARN: buffer overrun event on endpoint\n");
2022 		break;
2023 	case COMP_UNDERRUN:
2024 		/*
2025 		 * When the Isoch ring is empty, the xHC will generate
2026 		 * a Ring Overrun Event for IN Isoch endpoint or Ring
2027 		 * Underrun Event for OUT Isoch endpoint.
2028 		 */
2029 		xhci_dbg(xhci, "underrun event on endpoint\n");
2030 		if (!list_empty(&ep_ring->td_list))
2031 			xhci_dbg(xhci, "Underrun Event for slot %d ep %d "
2032 					"still with TDs queued?\n",
2033 				 TRB_TO_SLOT_ID(le32_to_cpu(event->flags)),
2034 				 ep_index);
2035 		goto cleanup;
2036 	case COMP_OVERRUN:
2037 		xhci_dbg(xhci, "overrun event on endpoint\n");
2038 		if (!list_empty(&ep_ring->td_list))
2039 			xhci_dbg(xhci, "Overrun Event for slot %d ep %d "
2040 					"still with TDs queued?\n",
2041 				 TRB_TO_SLOT_ID(le32_to_cpu(event->flags)),
2042 				 ep_index);
2043 		goto cleanup;
2044 	case COMP_DEV_ERR:
2045 		xhci_warn(xhci, "WARN: detect an incompatible device");
2046 		status = -EPROTO;
2047 		break;
2048 	case COMP_MISSED_INT:
2049 		/*
2050 		 * When encounter missed service error, one or more isoc tds
2051 		 * may be missed by xHC.
2052 		 * Set skip flag of the ep_ring; Complete the missed tds as
2053 		 * short transfer when process the ep_ring next time.
2054 		 */
2055 		ep->skip = true;
2056 		xhci_dbg(xhci, "Miss service interval error, set skip flag\n");
2057 		goto cleanup;
2058 	default:
2059 		if (xhci_is_vendor_info_code(xhci, trb_comp_code)) {
2060 			status = 0;
2061 			break;
2062 		}
2063 		xhci_warn(xhci, "ERROR Unknown event condition, HC probably "
2064 				"busted\n");
2065 		goto cleanup;
2066 	}
2067 
2068 	do {
2069 		/* This TRB should be in the TD at the head of this ring's
2070 		 * TD list.
2071 		 */
2072 		if (list_empty(&ep_ring->td_list)) {
2073 			xhci_warn(xhci, "WARN Event TRB for slot %d ep %d "
2074 					"with no TDs queued?\n",
2075 				  TRB_TO_SLOT_ID(le32_to_cpu(event->flags)),
2076 				  ep_index);
2077 			xhci_dbg(xhci, "Event TRB with TRB type ID %u\n",
2078 				 (le32_to_cpu(event->flags) &
2079 				  TRB_TYPE_BITMASK)>>10);
2080 			xhci_print_trb_offsets(xhci, (union xhci_trb *) event);
2081 			if (ep->skip) {
2082 				ep->skip = false;
2083 				xhci_dbg(xhci, "td_list is empty while skip "
2084 						"flag set. Clear skip flag.\n");
2085 			}
2086 			ret = 0;
2087 			goto cleanup;
2088 		}
2089 
2090 		/* We've skipped all the TDs on the ep ring when ep->skip set */
2091 		if (ep->skip && td_num == 0) {
2092 			ep->skip = false;
2093 			xhci_dbg(xhci, "All tds on the ep_ring skipped. "
2094 						"Clear skip flag.\n");
2095 			ret = 0;
2096 			goto cleanup;
2097 		}
2098 
2099 		td = list_entry(ep_ring->td_list.next, struct xhci_td, td_list);
2100 		if (ep->skip)
2101 			td_num--;
2102 
2103 		/* Is this a TRB in the currently executing TD? */
2104 		event_seg = trb_in_td(ep_ring->deq_seg, ep_ring->dequeue,
2105 				td->last_trb, event_dma);
2106 
2107 		/*
2108 		 * Skip the Force Stopped Event. The event_trb(event_dma) of FSE
2109 		 * is not in the current TD pointed by ep_ring->dequeue because
2110 		 * that the hardware dequeue pointer still at the previous TRB
2111 		 * of the current TD. The previous TRB maybe a Link TD or the
2112 		 * last TRB of the previous TD. The command completion handle
2113 		 * will take care the rest.
2114 		 */
2115 		if (!event_seg && trb_comp_code == COMP_STOP_INVAL) {
2116 			ret = 0;
2117 			goto cleanup;
2118 		}
2119 
2120 		if (!event_seg) {
2121 			if (!ep->skip ||
2122 			    !usb_endpoint_xfer_isoc(&td->urb->ep->desc)) {
2123 				/* Some host controllers give a spurious
2124 				 * successful event after a short transfer.
2125 				 * Ignore it.
2126 				 */
2127 				if ((xhci->quirks & XHCI_SPURIOUS_SUCCESS) &&
2128 						ep_ring->last_td_was_short) {
2129 					ep_ring->last_td_was_short = false;
2130 					ret = 0;
2131 					goto cleanup;
2132 				}
2133 				/* HC is busted, give up! */
2134 				xhci_err(xhci,
2135 					"ERROR Transfer event TRB DMA ptr not "
2136 					"part of current TD\n");
2137 				return -ESHUTDOWN;
2138 			}
2139 
2140 			ret = skip_isoc_td(xhci, td, event, ep, &status);
2141 			goto cleanup;
2142 		}
2143 		if (trb_comp_code == COMP_SHORT_TX)
2144 			ep_ring->last_td_was_short = true;
2145 		else
2146 			ep_ring->last_td_was_short = false;
2147 
2148 		if (ep->skip) {
2149 			xhci_dbg(xhci, "Found td. Clear skip flag.\n");
2150 			ep->skip = false;
2151 		}
2152 
2153 		event_trb = &event_seg->trbs[(event_dma - event_seg->dma) /
2154 						sizeof(*event_trb)];
2155 		/*
2156 		 * No-op TRB should not trigger interrupts.
2157 		 * If event_trb is a no-op TRB, it means the
2158 		 * corresponding TD has been cancelled. Just ignore
2159 		 * the TD.
2160 		 */
2161 		if (TRB_TYPE_NOOP_LE32(event_trb->generic.field[3])) {
2162 			xhci_dbg(xhci,
2163 				 "event_trb is a no-op TRB. Skip it\n");
2164 			goto cleanup;
2165 		}
2166 
2167 		/* Now update the urb's actual_length and give back to
2168 		 * the core
2169 		 */
2170 		if (usb_endpoint_xfer_control(&td->urb->ep->desc))
2171 			ret = process_ctrl_td(xhci, td, event_trb, event, ep,
2172 						 &status);
2173 		else if (usb_endpoint_xfer_isoc(&td->urb->ep->desc))
2174 			ret = process_isoc_td(xhci, td, event_trb, event, ep,
2175 						 &status);
2176 		else
2177 			ret = process_bulk_intr_td(xhci, td, event_trb, event,
2178 						 ep, &status);
2179 
2180 cleanup:
2181 		/*
2182 		 * Do not update event ring dequeue pointer if ep->skip is set.
2183 		 * Will roll back to continue process missed tds.
2184 		 */
2185 		if (trb_comp_code == COMP_MISSED_INT || !ep->skip) {
2186 			inc_deq(xhci, xhci->event_ring, true);
2187 		}
2188 
2189 		if (ret) {
2190 			urb = td->urb;
2191 			urb_priv = urb->hcpriv;
2192 			/* Leave the TD around for the reset endpoint function
2193 			 * to use(but only if it's not a control endpoint,
2194 			 * since we already queued the Set TR dequeue pointer
2195 			 * command for stalled control endpoints).
2196 			 */
2197 			if (usb_endpoint_xfer_control(&urb->ep->desc) ||
2198 				(trb_comp_code != COMP_STALL &&
2199 					trb_comp_code != COMP_BABBLE))
2200 				xhci_urb_free_priv(xhci, urb_priv);
2201 
2202 			usb_hcd_unlink_urb_from_ep(bus_to_hcd(urb->dev->bus), urb);
2203 			if ((urb->actual_length != urb->transfer_buffer_length &&
2204 						(urb->transfer_flags &
2205 						 URB_SHORT_NOT_OK)) ||
2206 					(status != 0 &&
2207 					 !usb_endpoint_xfer_isoc(&urb->ep->desc)))
2208 				xhci_dbg(xhci, "Giveback URB %p, len = %d, "
2209 						"expected = %x, status = %d\n",
2210 						urb, urb->actual_length,
2211 						urb->transfer_buffer_length,
2212 						status);
2213 			spin_unlock(&xhci->lock);
2214 			/* EHCI, UHCI, and OHCI always unconditionally set the
2215 			 * urb->status of an isochronous endpoint to 0.
2216 			 */
2217 			if (usb_pipetype(urb->pipe) == PIPE_ISOCHRONOUS)
2218 				status = 0;
2219 			usb_hcd_giveback_urb(bus_to_hcd(urb->dev->bus), urb, status);
2220 			spin_lock(&xhci->lock);
2221 		}
2222 
2223 	/*
2224 	 * If ep->skip is set, it means there are missed tds on the
2225 	 * endpoint ring need to take care of.
2226 	 * Process them as short transfer until reach the td pointed by
2227 	 * the event.
2228 	 */
2229 	} while (ep->skip && trb_comp_code != COMP_MISSED_INT);
2230 
2231 	return 0;
2232 }
2233 
2234 /*
2235  * This function handles all OS-owned events on the event ring.  It may drop
2236  * xhci->lock between event processing (e.g. to pass up port status changes).
2237  * Returns >0 for "possibly more events to process" (caller should call again),
2238  * otherwise 0 if done.  In future, <0 returns should indicate error code.
2239  */
xhci_handle_event(struct xhci_hcd * xhci)2240 static int xhci_handle_event(struct xhci_hcd *xhci)
2241 {
2242 	union xhci_trb *event;
2243 	int update_ptrs = 1;
2244 	int ret;
2245 
2246 	if (!xhci->event_ring || !xhci->event_ring->dequeue) {
2247 		xhci->error_bitmask |= 1 << 1;
2248 		return 0;
2249 	}
2250 
2251 	event = xhci->event_ring->dequeue;
2252 	/* Does the HC or OS own the TRB? */
2253 	if ((le32_to_cpu(event->event_cmd.flags) & TRB_CYCLE) !=
2254 	    xhci->event_ring->cycle_state) {
2255 		xhci->error_bitmask |= 1 << 2;
2256 		return 0;
2257 	}
2258 
2259 	/*
2260 	 * Barrier between reading the TRB_CYCLE (valid) flag above and any
2261 	 * speculative reads of the event's flags/data below.
2262 	 */
2263 	rmb();
2264 	/* FIXME: Handle more event types. */
2265 	switch ((le32_to_cpu(event->event_cmd.flags) & TRB_TYPE_BITMASK)) {
2266 	case TRB_TYPE(TRB_COMPLETION):
2267 		handle_cmd_completion(xhci, &event->event_cmd);
2268 		break;
2269 	case TRB_TYPE(TRB_PORT_STATUS):
2270 		handle_port_status(xhci, event);
2271 		update_ptrs = 0;
2272 		break;
2273 	case TRB_TYPE(TRB_TRANSFER):
2274 		ret = handle_tx_event(xhci, &event->trans_event);
2275 		if (ret < 0)
2276 			xhci->error_bitmask |= 1 << 9;
2277 		else
2278 			update_ptrs = 0;
2279 		break;
2280 	default:
2281 		if ((le32_to_cpu(event->event_cmd.flags) & TRB_TYPE_BITMASK) >=
2282 		    TRB_TYPE(48))
2283 			handle_vendor_event(xhci, event);
2284 		else
2285 			xhci->error_bitmask |= 1 << 3;
2286 	}
2287 	/* Any of the above functions may drop and re-acquire the lock, so check
2288 	 * to make sure a watchdog timer didn't mark the host as non-responsive.
2289 	 */
2290 	if (xhci->xhc_state & XHCI_STATE_DYING) {
2291 		xhci_dbg(xhci, "xHCI host dying, returning from "
2292 				"event handler.\n");
2293 		return 0;
2294 	}
2295 
2296 	if (update_ptrs)
2297 		/* Update SW event ring dequeue pointer */
2298 		inc_deq(xhci, xhci->event_ring, true);
2299 
2300 	/* Are there more items on the event ring?  Caller will call us again to
2301 	 * check.
2302 	 */
2303 	return 1;
2304 }
2305 
2306 /*
2307  * xHCI spec says we can get an interrupt, and if the HC has an error condition,
2308  * we might get bad data out of the event ring.  Section 4.10.2.7 has a list of
2309  * indicators of an event TRB error, but we check the status *first* to be safe.
2310  */
xhci_irq(struct usb_hcd * hcd)2311 irqreturn_t xhci_irq(struct usb_hcd *hcd)
2312 {
2313 	struct xhci_hcd *xhci = hcd_to_xhci(hcd);
2314 	u32 status;
2315 	union xhci_trb *trb;
2316 	u64 temp_64;
2317 	union xhci_trb *event_ring_deq;
2318 	dma_addr_t deq;
2319 
2320 	spin_lock(&xhci->lock);
2321 	trb = xhci->event_ring->dequeue;
2322 	/* Check if the xHC generated the interrupt, or the irq is shared */
2323 	status = xhci_readl(xhci, &xhci->op_regs->status);
2324 	if (status == 0xffffffff)
2325 		goto hw_died;
2326 
2327 	if (!(status & STS_EINT)) {
2328 		spin_unlock(&xhci->lock);
2329 		return IRQ_NONE;
2330 	}
2331 	if (status & STS_FATAL) {
2332 		xhci_warn(xhci, "WARNING: Host System Error\n");
2333 		xhci_halt(xhci);
2334 hw_died:
2335 		spin_unlock(&xhci->lock);
2336 		return -ESHUTDOWN;
2337 	}
2338 
2339 	/*
2340 	 * Clear the op reg interrupt status first,
2341 	 * so we can receive interrupts from other MSI-X interrupters.
2342 	 * Write 1 to clear the interrupt status.
2343 	 */
2344 	status |= STS_EINT;
2345 	xhci_writel(xhci, status, &xhci->op_regs->status);
2346 	/* FIXME when MSI-X is supported and there are multiple vectors */
2347 	/* Clear the MSI-X event interrupt status */
2348 
2349 	if (hcd->irq != -1) {
2350 		u32 irq_pending;
2351 		/* Acknowledge the PCI interrupt */
2352 		irq_pending = xhci_readl(xhci, &xhci->ir_set->irq_pending);
2353 		irq_pending |= 0x3;
2354 		xhci_writel(xhci, irq_pending, &xhci->ir_set->irq_pending);
2355 	}
2356 
2357 	if (xhci->xhc_state & XHCI_STATE_DYING) {
2358 		xhci_dbg(xhci, "xHCI dying, ignoring interrupt. "
2359 				"Shouldn't IRQs be disabled?\n");
2360 		/* Clear the event handler busy flag (RW1C);
2361 		 * the event ring should be empty.
2362 		 */
2363 		temp_64 = xhci_read_64(xhci, &xhci->ir_set->erst_dequeue);
2364 		xhci_write_64(xhci, temp_64 | ERST_EHB,
2365 				&xhci->ir_set->erst_dequeue);
2366 		spin_unlock(&xhci->lock);
2367 
2368 		return IRQ_HANDLED;
2369 	}
2370 
2371 	event_ring_deq = xhci->event_ring->dequeue;
2372 	/* FIXME this should be a delayed service routine
2373 	 * that clears the EHB.
2374 	 */
2375 	while (xhci_handle_event(xhci) > 0) {}
2376 
2377 	temp_64 = xhci_read_64(xhci, &xhci->ir_set->erst_dequeue);
2378 	/* If necessary, update the HW's version of the event ring deq ptr. */
2379 	if (event_ring_deq != xhci->event_ring->dequeue) {
2380 		deq = xhci_trb_virt_to_dma(xhci->event_ring->deq_seg,
2381 				xhci->event_ring->dequeue);
2382 		if (deq == 0)
2383 			xhci_warn(xhci, "WARN something wrong with SW event "
2384 					"ring dequeue ptr.\n");
2385 		/* Update HC event ring dequeue pointer */
2386 		temp_64 &= ERST_PTR_MASK;
2387 		temp_64 |= ((u64) deq & (u64) ~ERST_PTR_MASK);
2388 	}
2389 
2390 	/* Clear the event handler busy flag (RW1C); event ring is empty. */
2391 	temp_64 |= ERST_EHB;
2392 	xhci_write_64(xhci, temp_64, &xhci->ir_set->erst_dequeue);
2393 
2394 	spin_unlock(&xhci->lock);
2395 
2396 	return IRQ_HANDLED;
2397 }
2398 
xhci_msi_irq(int irq,struct usb_hcd * hcd)2399 irqreturn_t xhci_msi_irq(int irq, struct usb_hcd *hcd)
2400 {
2401 	return xhci_irq(hcd);
2402 }
2403 
2404 /****		Endpoint Ring Operations	****/
2405 
2406 /*
2407  * Generic function for queueing a TRB on a ring.
2408  * The caller must have checked to make sure there's room on the ring.
2409  *
2410  * @more_trbs_coming:	Will you enqueue more TRBs before calling
2411  *			prepare_transfer()?
2412  */
queue_trb(struct xhci_hcd * xhci,struct xhci_ring * ring,bool consumer,bool more_trbs_coming,bool isoc,u32 field1,u32 field2,u32 field3,u32 field4)2413 static void queue_trb(struct xhci_hcd *xhci, struct xhci_ring *ring,
2414 		bool consumer, bool more_trbs_coming, bool isoc,
2415 		u32 field1, u32 field2, u32 field3, u32 field4)
2416 {
2417 	struct xhci_generic_trb *trb;
2418 
2419 	trb = &ring->enqueue->generic;
2420 	trb->field[0] = cpu_to_le32(field1);
2421 	trb->field[1] = cpu_to_le32(field2);
2422 	trb->field[2] = cpu_to_le32(field3);
2423 	trb->field[3] = cpu_to_le32(field4);
2424 	inc_enq(xhci, ring, consumer, more_trbs_coming, isoc);
2425 }
2426 
2427 /*
2428  * Does various checks on the endpoint ring, and makes it ready to queue num_trbs.
2429  * FIXME allocate segments if the ring is full.
2430  */
prepare_ring(struct xhci_hcd * xhci,struct xhci_ring * ep_ring,u32 ep_state,unsigned int num_trbs,bool isoc,gfp_t mem_flags)2431 static int prepare_ring(struct xhci_hcd *xhci, struct xhci_ring *ep_ring,
2432 		u32 ep_state, unsigned int num_trbs, bool isoc, gfp_t mem_flags)
2433 {
2434 	/* Make sure the endpoint has been added to xHC schedule */
2435 	switch (ep_state) {
2436 	case EP_STATE_DISABLED:
2437 		/*
2438 		 * USB core changed config/interfaces without notifying us,
2439 		 * or hardware is reporting the wrong state.
2440 		 */
2441 		xhci_warn(xhci, "WARN urb submitted to disabled ep\n");
2442 		return -ENOENT;
2443 	case EP_STATE_ERROR:
2444 		xhci_warn(xhci, "WARN waiting for error on ep to be cleared\n");
2445 		/* FIXME event handling code for error needs to clear it */
2446 		/* XXX not sure if this should be -ENOENT or not */
2447 		return -EINVAL;
2448 	case EP_STATE_HALTED:
2449 		xhci_dbg(xhci, "WARN halted endpoint, queueing URB anyway.\n");
2450 	case EP_STATE_STOPPED:
2451 	case EP_STATE_RUNNING:
2452 		break;
2453 	default:
2454 		xhci_err(xhci, "ERROR unknown endpoint state for ep\n");
2455 		/*
2456 		 * FIXME issue Configure Endpoint command to try to get the HC
2457 		 * back into a known state.
2458 		 */
2459 		return -EINVAL;
2460 	}
2461 	if (!room_on_ring(xhci, ep_ring, num_trbs)) {
2462 		/* FIXME allocate more room */
2463 		xhci_err(xhci, "ERROR no room on ep ring\n");
2464 		return -ENOMEM;
2465 	}
2466 
2467 	if (enqueue_is_link_trb(ep_ring)) {
2468 		struct xhci_ring *ring = ep_ring;
2469 		union xhci_trb *next;
2470 
2471 		next = ring->enqueue;
2472 
2473 		while (last_trb(xhci, ring, ring->enq_seg, next)) {
2474 			/* If we're not dealing with 0.95 hardware or isoc rings
2475 			 * on AMD 0.96 host, clear the chain bit.
2476 			 */
2477 			if (!xhci_link_trb_quirk(xhci) && !(isoc &&
2478 					(xhci->quirks & XHCI_AMD_0x96_HOST)))
2479 				next->link.control &= cpu_to_le32(~TRB_CHAIN);
2480 			else
2481 				next->link.control |= cpu_to_le32(TRB_CHAIN);
2482 
2483 			wmb();
2484 			next->link.control ^= cpu_to_le32(TRB_CYCLE);
2485 
2486 			/* Toggle the cycle bit after the last ring segment. */
2487 			if (last_trb_on_last_seg(xhci, ring, ring->enq_seg, next)) {
2488 				ring->cycle_state = (ring->cycle_state ? 0 : 1);
2489 			}
2490 			ring->enq_seg = ring->enq_seg->next;
2491 			ring->enqueue = ring->enq_seg->trbs;
2492 			next = ring->enqueue;
2493 		}
2494 	}
2495 
2496 	return 0;
2497 }
2498 
prepare_transfer(struct xhci_hcd * xhci,struct xhci_virt_device * xdev,unsigned int ep_index,unsigned int stream_id,unsigned int num_trbs,struct urb * urb,unsigned int td_index,bool isoc,gfp_t mem_flags)2499 static int prepare_transfer(struct xhci_hcd *xhci,
2500 		struct xhci_virt_device *xdev,
2501 		unsigned int ep_index,
2502 		unsigned int stream_id,
2503 		unsigned int num_trbs,
2504 		struct urb *urb,
2505 		unsigned int td_index,
2506 		bool isoc,
2507 		gfp_t mem_flags)
2508 {
2509 	int ret;
2510 	struct urb_priv *urb_priv;
2511 	struct xhci_td	*td;
2512 	struct xhci_ring *ep_ring;
2513 	struct xhci_ep_ctx *ep_ctx = xhci_get_ep_ctx(xhci, xdev->out_ctx, ep_index);
2514 
2515 	ep_ring = xhci_stream_id_to_ring(xdev, ep_index, stream_id);
2516 	if (!ep_ring) {
2517 		xhci_dbg(xhci, "Can't prepare ring for bad stream ID %u\n",
2518 				stream_id);
2519 		return -EINVAL;
2520 	}
2521 
2522 	ret = prepare_ring(xhci, ep_ring,
2523 			   le32_to_cpu(ep_ctx->ep_info) & EP_STATE_MASK,
2524 			   num_trbs, isoc, mem_flags);
2525 	if (ret)
2526 		return ret;
2527 
2528 	urb_priv = urb->hcpriv;
2529 	td = urb_priv->td[td_index];
2530 
2531 	INIT_LIST_HEAD(&td->td_list);
2532 	INIT_LIST_HEAD(&td->cancelled_td_list);
2533 
2534 	if (td_index == 0) {
2535 		ret = usb_hcd_link_urb_to_ep(bus_to_hcd(urb->dev->bus), urb);
2536 		if (unlikely(ret))
2537 			return ret;
2538 	}
2539 
2540 	td->urb = urb;
2541 	/* Add this TD to the tail of the endpoint ring's TD list */
2542 	list_add_tail(&td->td_list, &ep_ring->td_list);
2543 	td->start_seg = ep_ring->enq_seg;
2544 	td->first_trb = ep_ring->enqueue;
2545 
2546 	urb_priv->td[td_index] = td;
2547 
2548 	return 0;
2549 }
2550 
count_sg_trbs_needed(struct xhci_hcd * xhci,struct urb * urb)2551 static unsigned int count_sg_trbs_needed(struct xhci_hcd *xhci, struct urb *urb)
2552 {
2553 	int num_sgs, num_trbs, running_total, temp, i;
2554 	struct scatterlist *sg;
2555 
2556 	sg = NULL;
2557 	num_sgs = urb->num_mapped_sgs;
2558 	temp = urb->transfer_buffer_length;
2559 
2560 	num_trbs = 0;
2561 	for_each_sg(urb->sg, sg, num_sgs, i) {
2562 		unsigned int len = sg_dma_len(sg);
2563 
2564 		/* Scatter gather list entries may cross 64KB boundaries */
2565 		running_total = TRB_MAX_BUFF_SIZE -
2566 			(sg_dma_address(sg) & (TRB_MAX_BUFF_SIZE - 1));
2567 		running_total &= TRB_MAX_BUFF_SIZE - 1;
2568 		if (running_total != 0)
2569 			num_trbs++;
2570 
2571 		/* How many more 64KB chunks to transfer, how many more TRBs? */
2572 		while (running_total < sg_dma_len(sg) && running_total < temp) {
2573 			num_trbs++;
2574 			running_total += TRB_MAX_BUFF_SIZE;
2575 		}
2576 		len = min_t(int, len, temp);
2577 		temp -= len;
2578 		if (temp == 0)
2579 			break;
2580 	}
2581 	return num_trbs;
2582 }
2583 
check_trb_math(struct urb * urb,int num_trbs,int running_total)2584 static void check_trb_math(struct urb *urb, int num_trbs, int running_total)
2585 {
2586 	if (num_trbs != 0)
2587 		dev_err(&urb->dev->dev, "%s - ep %#x - Miscalculated number of "
2588 				"TRBs, %d left\n", __func__,
2589 				urb->ep->desc.bEndpointAddress, num_trbs);
2590 	if (running_total != urb->transfer_buffer_length)
2591 		dev_err(&urb->dev->dev, "%s - ep %#x - Miscalculated tx length, "
2592 				"queued %#x (%d), asked for %#x (%d)\n",
2593 				__func__,
2594 				urb->ep->desc.bEndpointAddress,
2595 				running_total, running_total,
2596 				urb->transfer_buffer_length,
2597 				urb->transfer_buffer_length);
2598 }
2599 
giveback_first_trb(struct xhci_hcd * xhci,int slot_id,unsigned int ep_index,unsigned int stream_id,int start_cycle,struct xhci_generic_trb * start_trb)2600 static void giveback_first_trb(struct xhci_hcd *xhci, int slot_id,
2601 		unsigned int ep_index, unsigned int stream_id, int start_cycle,
2602 		struct xhci_generic_trb *start_trb)
2603 {
2604 	/*
2605 	 * Pass all the TRBs to the hardware at once and make sure this write
2606 	 * isn't reordered.
2607 	 */
2608 	wmb();
2609 	if (start_cycle)
2610 		start_trb->field[3] |= cpu_to_le32(start_cycle);
2611 	else
2612 		start_trb->field[3] &= cpu_to_le32(~TRB_CYCLE);
2613 	xhci_ring_ep_doorbell(xhci, slot_id, ep_index, stream_id);
2614 }
2615 
2616 /*
2617  * xHCI uses normal TRBs for both bulk and interrupt.  When the interrupt
2618  * endpoint is to be serviced, the xHC will consume (at most) one TD.  A TD
2619  * (comprised of sg list entries) can take several service intervals to
2620  * transmit.
2621  */
xhci_queue_intr_tx(struct xhci_hcd * xhci,gfp_t mem_flags,struct urb * urb,int slot_id,unsigned int ep_index)2622 int xhci_queue_intr_tx(struct xhci_hcd *xhci, gfp_t mem_flags,
2623 		struct urb *urb, int slot_id, unsigned int ep_index)
2624 {
2625 	struct xhci_ep_ctx *ep_ctx = xhci_get_ep_ctx(xhci,
2626 			xhci->devs[slot_id]->out_ctx, ep_index);
2627 	int xhci_interval;
2628 	int ep_interval;
2629 
2630 	xhci_interval = EP_INTERVAL_TO_UFRAMES(le32_to_cpu(ep_ctx->ep_info));
2631 	ep_interval = urb->interval;
2632 	/* Convert to microframes */
2633 	if (urb->dev->speed == USB_SPEED_LOW ||
2634 			urb->dev->speed == USB_SPEED_FULL)
2635 		ep_interval *= 8;
2636 	/* FIXME change this to a warning and a suggestion to use the new API
2637 	 * to set the polling interval (once the API is added).
2638 	 */
2639 	if (xhci_interval != ep_interval) {
2640 		if (printk_ratelimit())
2641 			dev_dbg(&urb->dev->dev, "Driver uses different interval"
2642 					" (%d microframe%s) than xHCI "
2643 					"(%d microframe%s)\n",
2644 					ep_interval,
2645 					ep_interval == 1 ? "" : "s",
2646 					xhci_interval,
2647 					xhci_interval == 1 ? "" : "s");
2648 		urb->interval = xhci_interval;
2649 		/* Convert back to frames for LS/FS devices */
2650 		if (urb->dev->speed == USB_SPEED_LOW ||
2651 				urb->dev->speed == USB_SPEED_FULL)
2652 			urb->interval /= 8;
2653 	}
2654 	return xhci_queue_bulk_tx(xhci, GFP_ATOMIC, urb, slot_id, ep_index);
2655 }
2656 
2657 /*
2658  * The TD size is the number of bytes remaining in the TD (including this TRB),
2659  * right shifted by 10.
2660  * It must fit in bits 21:17, so it can't be bigger than 31.
2661  */
xhci_td_remainder(unsigned int remainder)2662 static u32 xhci_td_remainder(unsigned int remainder)
2663 {
2664 	u32 max = (1 << (21 - 17 + 1)) - 1;
2665 
2666 	if ((remainder >> 10) >= max)
2667 		return max << 17;
2668 	else
2669 		return (remainder >> 10) << 17;
2670 }
2671 
2672 /*
2673  * For xHCI 1.0 host controllers, TD size is the number of packets remaining in
2674  * the TD (*not* including this TRB).
2675  *
2676  * Total TD packet count = total_packet_count =
2677  *     roundup(TD size in bytes / wMaxPacketSize)
2678  *
2679  * Packets transferred up to and including this TRB = packets_transferred =
2680  *     rounddown(total bytes transferred including this TRB / wMaxPacketSize)
2681  *
2682  * TD size = total_packet_count - packets_transferred
2683  *
2684  * It must fit in bits 21:17, so it can't be bigger than 31.
2685  */
2686 
xhci_v1_0_td_remainder(int running_total,int trb_buff_len,unsigned int total_packet_count,struct urb * urb)2687 static u32 xhci_v1_0_td_remainder(int running_total, int trb_buff_len,
2688 		unsigned int total_packet_count, struct urb *urb)
2689 {
2690 	int packets_transferred;
2691 
2692 	/* One TRB with a zero-length data packet. */
2693 	if (running_total == 0 && trb_buff_len == 0)
2694 		return 0;
2695 
2696 	/* All the TRB queueing functions don't count the current TRB in
2697 	 * running_total.
2698 	 */
2699 	packets_transferred = (running_total + trb_buff_len) /
2700 		usb_endpoint_maxp(&urb->ep->desc);
2701 
2702 	return xhci_td_remainder(total_packet_count - packets_transferred);
2703 }
2704 
queue_bulk_sg_tx(struct xhci_hcd * xhci,gfp_t mem_flags,struct urb * urb,int slot_id,unsigned int ep_index)2705 static int queue_bulk_sg_tx(struct xhci_hcd *xhci, gfp_t mem_flags,
2706 		struct urb *urb, int slot_id, unsigned int ep_index)
2707 {
2708 	struct xhci_ring *ep_ring;
2709 	unsigned int num_trbs;
2710 	struct urb_priv *urb_priv;
2711 	struct xhci_td *td;
2712 	struct scatterlist *sg;
2713 	int num_sgs;
2714 	int trb_buff_len, this_sg_len, running_total;
2715 	unsigned int total_packet_count;
2716 	bool first_trb;
2717 	u64 addr;
2718 	bool more_trbs_coming;
2719 
2720 	struct xhci_generic_trb *start_trb;
2721 	int start_cycle;
2722 
2723 	ep_ring = xhci_urb_to_transfer_ring(xhci, urb);
2724 	if (!ep_ring)
2725 		return -EINVAL;
2726 
2727 	num_trbs = count_sg_trbs_needed(xhci, urb);
2728 	num_sgs = urb->num_mapped_sgs;
2729 	total_packet_count = roundup(urb->transfer_buffer_length,
2730 			usb_endpoint_maxp(&urb->ep->desc));
2731 
2732 	trb_buff_len = prepare_transfer(xhci, xhci->devs[slot_id],
2733 			ep_index, urb->stream_id,
2734 			num_trbs, urb, 0, false, mem_flags);
2735 	if (trb_buff_len < 0)
2736 		return trb_buff_len;
2737 
2738 	urb_priv = urb->hcpriv;
2739 	td = urb_priv->td[0];
2740 
2741 	/*
2742 	 * Don't give the first TRB to the hardware (by toggling the cycle bit)
2743 	 * until we've finished creating all the other TRBs.  The ring's cycle
2744 	 * state may change as we enqueue the other TRBs, so save it too.
2745 	 */
2746 	start_trb = &ep_ring->enqueue->generic;
2747 	start_cycle = ep_ring->cycle_state;
2748 
2749 	running_total = 0;
2750 	/*
2751 	 * How much data is in the first TRB?
2752 	 *
2753 	 * There are three forces at work for TRB buffer pointers and lengths:
2754 	 * 1. We don't want to walk off the end of this sg-list entry buffer.
2755 	 * 2. The transfer length that the driver requested may be smaller than
2756 	 *    the amount of memory allocated for this scatter-gather list.
2757 	 * 3. TRBs buffers can't cross 64KB boundaries.
2758 	 */
2759 	sg = urb->sg;
2760 	addr = (u64) sg_dma_address(sg);
2761 	this_sg_len = sg_dma_len(sg);
2762 	trb_buff_len = TRB_MAX_BUFF_SIZE - (addr & (TRB_MAX_BUFF_SIZE - 1));
2763 	trb_buff_len = min_t(int, trb_buff_len, this_sg_len);
2764 	if (trb_buff_len > urb->transfer_buffer_length)
2765 		trb_buff_len = urb->transfer_buffer_length;
2766 
2767 	first_trb = true;
2768 	/* Queue the first TRB, even if it's zero-length */
2769 	do {
2770 		u32 field = 0;
2771 		u32 length_field = 0;
2772 		u32 remainder = 0;
2773 
2774 		/* Don't change the cycle bit of the first TRB until later */
2775 		if (first_trb) {
2776 			first_trb = false;
2777 			if (start_cycle == 0)
2778 				field |= 0x1;
2779 		} else
2780 			field |= ep_ring->cycle_state;
2781 
2782 		/* Chain all the TRBs together; clear the chain bit in the last
2783 		 * TRB to indicate it's the last TRB in the chain.
2784 		 */
2785 		if (num_trbs > 1) {
2786 			field |= TRB_CHAIN;
2787 		} else {
2788 			/* FIXME - add check for ZERO_PACKET flag before this */
2789 			td->last_trb = ep_ring->enqueue;
2790 			field |= TRB_IOC;
2791 		}
2792 
2793 		/* Only set interrupt on short packet for IN endpoints */
2794 		if (usb_urb_dir_in(urb))
2795 			field |= TRB_ISP;
2796 
2797 		if (TRB_MAX_BUFF_SIZE -
2798 				(addr & (TRB_MAX_BUFF_SIZE - 1)) < trb_buff_len) {
2799 			xhci_warn(xhci, "WARN: sg dma xfer crosses 64KB boundaries!\n");
2800 			xhci_dbg(xhci, "Next boundary at %#x, end dma = %#x\n",
2801 					(unsigned int) (addr + TRB_MAX_BUFF_SIZE) & ~(TRB_MAX_BUFF_SIZE - 1),
2802 					(unsigned int) addr + trb_buff_len);
2803 		}
2804 
2805 		/* Set the TRB length, TD size, and interrupter fields. */
2806 		if (xhci->hci_version < 0x100) {
2807 			remainder = xhci_td_remainder(
2808 					urb->transfer_buffer_length -
2809 					running_total);
2810 		} else {
2811 			remainder = xhci_v1_0_td_remainder(running_total,
2812 					trb_buff_len, total_packet_count, urb);
2813 		}
2814 		length_field = TRB_LEN(trb_buff_len) |
2815 			remainder |
2816 			TRB_INTR_TARGET(0);
2817 
2818 		if (num_trbs > 1)
2819 			more_trbs_coming = true;
2820 		else
2821 			more_trbs_coming = false;
2822 		queue_trb(xhci, ep_ring, false, more_trbs_coming, false,
2823 				lower_32_bits(addr),
2824 				upper_32_bits(addr),
2825 				length_field,
2826 				field | TRB_TYPE(TRB_NORMAL));
2827 		--num_trbs;
2828 		running_total += trb_buff_len;
2829 
2830 		/* Calculate length for next transfer --
2831 		 * Are we done queueing all the TRBs for this sg entry?
2832 		 */
2833 		this_sg_len -= trb_buff_len;
2834 		if (this_sg_len == 0) {
2835 			--num_sgs;
2836 			if (num_sgs == 0)
2837 				break;
2838 			sg = sg_next(sg);
2839 			addr = (u64) sg_dma_address(sg);
2840 			this_sg_len = sg_dma_len(sg);
2841 		} else {
2842 			addr += trb_buff_len;
2843 		}
2844 
2845 		trb_buff_len = TRB_MAX_BUFF_SIZE -
2846 			(addr & (TRB_MAX_BUFF_SIZE - 1));
2847 		trb_buff_len = min_t(int, trb_buff_len, this_sg_len);
2848 		if (running_total + trb_buff_len > urb->transfer_buffer_length)
2849 			trb_buff_len =
2850 				urb->transfer_buffer_length - running_total;
2851 	} while (running_total < urb->transfer_buffer_length);
2852 
2853 	check_trb_math(urb, num_trbs, running_total);
2854 	giveback_first_trb(xhci, slot_id, ep_index, urb->stream_id,
2855 			start_cycle, start_trb);
2856 	return 0;
2857 }
2858 
2859 /* This is very similar to what ehci-q.c qtd_fill() does */
xhci_queue_bulk_tx(struct xhci_hcd * xhci,gfp_t mem_flags,struct urb * urb,int slot_id,unsigned int ep_index)2860 int xhci_queue_bulk_tx(struct xhci_hcd *xhci, gfp_t mem_flags,
2861 		struct urb *urb, int slot_id, unsigned int ep_index)
2862 {
2863 	struct xhci_ring *ep_ring;
2864 	struct urb_priv *urb_priv;
2865 	struct xhci_td *td;
2866 	int num_trbs;
2867 	struct xhci_generic_trb *start_trb;
2868 	bool first_trb;
2869 	bool more_trbs_coming;
2870 	int start_cycle;
2871 	u32 field, length_field;
2872 
2873 	int running_total, trb_buff_len, ret;
2874 	unsigned int total_packet_count;
2875 	u64 addr;
2876 
2877 	if (urb->num_sgs)
2878 		return queue_bulk_sg_tx(xhci, mem_flags, urb, slot_id, ep_index);
2879 
2880 	ep_ring = xhci_urb_to_transfer_ring(xhci, urb);
2881 	if (!ep_ring)
2882 		return -EINVAL;
2883 
2884 	num_trbs = 0;
2885 	/* How much data is (potentially) left before the 64KB boundary? */
2886 	running_total = TRB_MAX_BUFF_SIZE -
2887 		(urb->transfer_dma & (TRB_MAX_BUFF_SIZE - 1));
2888 	running_total &= TRB_MAX_BUFF_SIZE - 1;
2889 
2890 	/* If there's some data on this 64KB chunk, or we have to send a
2891 	 * zero-length transfer, we need at least one TRB
2892 	 */
2893 	if (running_total != 0 || urb->transfer_buffer_length == 0)
2894 		num_trbs++;
2895 	/* How many more 64KB chunks to transfer, how many more TRBs? */
2896 	while (running_total < urb->transfer_buffer_length) {
2897 		num_trbs++;
2898 		running_total += TRB_MAX_BUFF_SIZE;
2899 	}
2900 	/* FIXME: this doesn't deal with URB_ZERO_PACKET - need one more */
2901 
2902 	ret = prepare_transfer(xhci, xhci->devs[slot_id],
2903 			ep_index, urb->stream_id,
2904 			num_trbs, urb, 0, false, mem_flags);
2905 	if (ret < 0)
2906 		return ret;
2907 
2908 	urb_priv = urb->hcpriv;
2909 	td = urb_priv->td[0];
2910 
2911 	/*
2912 	 * Don't give the first TRB to the hardware (by toggling the cycle bit)
2913 	 * until we've finished creating all the other TRBs.  The ring's cycle
2914 	 * state may change as we enqueue the other TRBs, so save it too.
2915 	 */
2916 	start_trb = &ep_ring->enqueue->generic;
2917 	start_cycle = ep_ring->cycle_state;
2918 
2919 	running_total = 0;
2920 	total_packet_count = roundup(urb->transfer_buffer_length,
2921 			usb_endpoint_maxp(&urb->ep->desc));
2922 	/* How much data is in the first TRB? */
2923 	addr = (u64) urb->transfer_dma;
2924 	trb_buff_len = TRB_MAX_BUFF_SIZE -
2925 		(urb->transfer_dma & (TRB_MAX_BUFF_SIZE - 1));
2926 	if (trb_buff_len > urb->transfer_buffer_length)
2927 		trb_buff_len = urb->transfer_buffer_length;
2928 
2929 	first_trb = true;
2930 
2931 	/* Queue the first TRB, even if it's zero-length */
2932 	do {
2933 		u32 remainder = 0;
2934 		field = 0;
2935 
2936 		/* Don't change the cycle bit of the first TRB until later */
2937 		if (first_trb) {
2938 			first_trb = false;
2939 			if (start_cycle == 0)
2940 				field |= 0x1;
2941 		} else
2942 			field |= ep_ring->cycle_state;
2943 
2944 		/* Chain all the TRBs together; clear the chain bit in the last
2945 		 * TRB to indicate it's the last TRB in the chain.
2946 		 */
2947 		if (num_trbs > 1) {
2948 			field |= TRB_CHAIN;
2949 		} else {
2950 			/* FIXME - add check for ZERO_PACKET flag before this */
2951 			td->last_trb = ep_ring->enqueue;
2952 			field |= TRB_IOC;
2953 		}
2954 
2955 		/* Only set interrupt on short packet for IN endpoints */
2956 		if (usb_urb_dir_in(urb))
2957 			field |= TRB_ISP;
2958 
2959 		/* Set the TRB length, TD size, and interrupter fields. */
2960 		if (xhci->hci_version < 0x100) {
2961 			remainder = xhci_td_remainder(
2962 					urb->transfer_buffer_length -
2963 					running_total);
2964 		} else {
2965 			remainder = xhci_v1_0_td_remainder(running_total,
2966 					trb_buff_len, total_packet_count, urb);
2967 		}
2968 		length_field = TRB_LEN(trb_buff_len) |
2969 			remainder |
2970 			TRB_INTR_TARGET(0);
2971 
2972 		if (num_trbs > 1)
2973 			more_trbs_coming = true;
2974 		else
2975 			more_trbs_coming = false;
2976 		queue_trb(xhci, ep_ring, false, more_trbs_coming, false,
2977 				lower_32_bits(addr),
2978 				upper_32_bits(addr),
2979 				length_field,
2980 				field | TRB_TYPE(TRB_NORMAL));
2981 		--num_trbs;
2982 		running_total += trb_buff_len;
2983 
2984 		/* Calculate length for next transfer */
2985 		addr += trb_buff_len;
2986 		trb_buff_len = urb->transfer_buffer_length - running_total;
2987 		if (trb_buff_len > TRB_MAX_BUFF_SIZE)
2988 			trb_buff_len = TRB_MAX_BUFF_SIZE;
2989 	} while (running_total < urb->transfer_buffer_length);
2990 
2991 	check_trb_math(urb, num_trbs, running_total);
2992 	giveback_first_trb(xhci, slot_id, ep_index, urb->stream_id,
2993 			start_cycle, start_trb);
2994 	return 0;
2995 }
2996 
2997 /* Caller must have locked xhci->lock */
xhci_queue_ctrl_tx(struct xhci_hcd * xhci,gfp_t mem_flags,struct urb * urb,int slot_id,unsigned int ep_index)2998 int xhci_queue_ctrl_tx(struct xhci_hcd *xhci, gfp_t mem_flags,
2999 		struct urb *urb, int slot_id, unsigned int ep_index)
3000 {
3001 	struct xhci_ring *ep_ring;
3002 	int num_trbs;
3003 	int ret;
3004 	struct usb_ctrlrequest *setup;
3005 	struct xhci_generic_trb *start_trb;
3006 	int start_cycle;
3007 	u32 field, length_field;
3008 	struct urb_priv *urb_priv;
3009 	struct xhci_td *td;
3010 
3011 	ep_ring = xhci_urb_to_transfer_ring(xhci, urb);
3012 	if (!ep_ring)
3013 		return -EINVAL;
3014 
3015 	/*
3016 	 * Need to copy setup packet into setup TRB, so we can't use the setup
3017 	 * DMA address.
3018 	 */
3019 	if (!urb->setup_packet)
3020 		return -EINVAL;
3021 
3022 	/* 1 TRB for setup, 1 for status */
3023 	num_trbs = 2;
3024 	/*
3025 	 * Don't need to check if we need additional event data and normal TRBs,
3026 	 * since data in control transfers will never get bigger than 16MB
3027 	 * XXX: can we get a buffer that crosses 64KB boundaries?
3028 	 */
3029 	if (urb->transfer_buffer_length > 0)
3030 		num_trbs++;
3031 	ret = prepare_transfer(xhci, xhci->devs[slot_id],
3032 			ep_index, urb->stream_id,
3033 			num_trbs, urb, 0, false, mem_flags);
3034 	if (ret < 0)
3035 		return ret;
3036 
3037 	urb_priv = urb->hcpriv;
3038 	td = urb_priv->td[0];
3039 
3040 	/*
3041 	 * Don't give the first TRB to the hardware (by toggling the cycle bit)
3042 	 * until we've finished creating all the other TRBs.  The ring's cycle
3043 	 * state may change as we enqueue the other TRBs, so save it too.
3044 	 */
3045 	start_trb = &ep_ring->enqueue->generic;
3046 	start_cycle = ep_ring->cycle_state;
3047 
3048 	/* Queue setup TRB - see section 6.4.1.2.1 */
3049 	/* FIXME better way to translate setup_packet into two u32 fields? */
3050 	setup = (struct usb_ctrlrequest *) urb->setup_packet;
3051 	field = 0;
3052 	field |= TRB_IDT | TRB_TYPE(TRB_SETUP);
3053 	if (start_cycle == 0)
3054 		field |= 0x1;
3055 
3056 	/* xHCI 1.0 6.4.1.2.1: Transfer Type field */
3057 	if (xhci->hci_version == 0x100) {
3058 		if (urb->transfer_buffer_length > 0) {
3059 			if (setup->bRequestType & USB_DIR_IN)
3060 				field |= TRB_TX_TYPE(TRB_DATA_IN);
3061 			else
3062 				field |= TRB_TX_TYPE(TRB_DATA_OUT);
3063 		}
3064 	}
3065 
3066 	queue_trb(xhci, ep_ring, false, true, false,
3067 		  setup->bRequestType | setup->bRequest << 8 | le16_to_cpu(setup->wValue) << 16,
3068 		  le16_to_cpu(setup->wIndex) | le16_to_cpu(setup->wLength) << 16,
3069 		  TRB_LEN(8) | TRB_INTR_TARGET(0),
3070 		  /* Immediate data in pointer */
3071 		  field);
3072 
3073 	/* If there's data, queue data TRBs */
3074 	/* Only set interrupt on short packet for IN endpoints */
3075 	if (usb_urb_dir_in(urb))
3076 		field = TRB_ISP | TRB_TYPE(TRB_DATA);
3077 	else
3078 		field = TRB_TYPE(TRB_DATA);
3079 
3080 	length_field = TRB_LEN(urb->transfer_buffer_length) |
3081 		xhci_td_remainder(urb->transfer_buffer_length) |
3082 		TRB_INTR_TARGET(0);
3083 	if (urb->transfer_buffer_length > 0) {
3084 		if (setup->bRequestType & USB_DIR_IN)
3085 			field |= TRB_DIR_IN;
3086 		queue_trb(xhci, ep_ring, false, true, false,
3087 				lower_32_bits(urb->transfer_dma),
3088 				upper_32_bits(urb->transfer_dma),
3089 				length_field,
3090 				field | ep_ring->cycle_state);
3091 	}
3092 
3093 	/* Save the DMA address of the last TRB in the TD */
3094 	td->last_trb = ep_ring->enqueue;
3095 
3096 	/* Queue status TRB - see Table 7 and sections 4.11.2.2 and 6.4.1.2.3 */
3097 	/* If the device sent data, the status stage is an OUT transfer */
3098 	if (urb->transfer_buffer_length > 0 && setup->bRequestType & USB_DIR_IN)
3099 		field = 0;
3100 	else
3101 		field = TRB_DIR_IN;
3102 	queue_trb(xhci, ep_ring, false, false, false,
3103 			0,
3104 			0,
3105 			TRB_INTR_TARGET(0),
3106 			/* Event on completion */
3107 			field | TRB_IOC | TRB_TYPE(TRB_STATUS) | ep_ring->cycle_state);
3108 
3109 	giveback_first_trb(xhci, slot_id, ep_index, 0,
3110 			start_cycle, start_trb);
3111 	return 0;
3112 }
3113 
count_isoc_trbs_needed(struct xhci_hcd * xhci,struct urb * urb,int i)3114 static int count_isoc_trbs_needed(struct xhci_hcd *xhci,
3115 		struct urb *urb, int i)
3116 {
3117 	int num_trbs = 0;
3118 	u64 addr, td_len;
3119 
3120 	addr = (u64) (urb->transfer_dma + urb->iso_frame_desc[i].offset);
3121 	td_len = urb->iso_frame_desc[i].length;
3122 
3123 	num_trbs = DIV_ROUND_UP(td_len + (addr & (TRB_MAX_BUFF_SIZE - 1)),
3124 			TRB_MAX_BUFF_SIZE);
3125 	if (num_trbs == 0)
3126 		num_trbs++;
3127 
3128 	return num_trbs;
3129 }
3130 
3131 /*
3132  * The transfer burst count field of the isochronous TRB defines the number of
3133  * bursts that are required to move all packets in this TD.  Only SuperSpeed
3134  * devices can burst up to bMaxBurst number of packets per service interval.
3135  * This field is zero based, meaning a value of zero in the field means one
3136  * burst.  Basically, for everything but SuperSpeed devices, this field will be
3137  * zero.  Only xHCI 1.0 host controllers support this field.
3138  */
xhci_get_burst_count(struct xhci_hcd * xhci,struct usb_device * udev,struct urb * urb,unsigned int total_packet_count)3139 static unsigned int xhci_get_burst_count(struct xhci_hcd *xhci,
3140 		struct usb_device *udev,
3141 		struct urb *urb, unsigned int total_packet_count)
3142 {
3143 	unsigned int max_burst;
3144 
3145 	if (xhci->hci_version < 0x100 || udev->speed != USB_SPEED_SUPER)
3146 		return 0;
3147 
3148 	max_burst = urb->ep->ss_ep_comp.bMaxBurst;
3149 	return roundup(total_packet_count, max_burst + 1) - 1;
3150 }
3151 
3152 /*
3153  * Returns the number of packets in the last "burst" of packets.  This field is
3154  * valid for all speeds of devices.  USB 2.0 devices can only do one "burst", so
3155  * the last burst packet count is equal to the total number of packets in the
3156  * TD.  SuperSpeed endpoints can have up to 3 bursts.  All but the last burst
3157  * must contain (bMaxBurst + 1) number of packets, but the last burst can
3158  * contain 1 to (bMaxBurst + 1) packets.
3159  */
xhci_get_last_burst_packet_count(struct xhci_hcd * xhci,struct usb_device * udev,struct urb * urb,unsigned int total_packet_count)3160 static unsigned int xhci_get_last_burst_packet_count(struct xhci_hcd *xhci,
3161 		struct usb_device *udev,
3162 		struct urb *urb, unsigned int total_packet_count)
3163 {
3164 	unsigned int max_burst;
3165 	unsigned int residue;
3166 
3167 	if (xhci->hci_version < 0x100)
3168 		return 0;
3169 
3170 	switch (udev->speed) {
3171 	case USB_SPEED_SUPER:
3172 		/* bMaxBurst is zero based: 0 means 1 packet per burst */
3173 		max_burst = urb->ep->ss_ep_comp.bMaxBurst;
3174 		residue = total_packet_count % (max_burst + 1);
3175 		/* If residue is zero, the last burst contains (max_burst + 1)
3176 		 * number of packets, but the TLBPC field is zero-based.
3177 		 */
3178 		if (residue == 0)
3179 			return max_burst;
3180 		return residue - 1;
3181 	default:
3182 		if (total_packet_count == 0)
3183 			return 0;
3184 		return total_packet_count - 1;
3185 	}
3186 }
3187 
3188 /* This is for isoc transfer */
xhci_queue_isoc_tx(struct xhci_hcd * xhci,gfp_t mem_flags,struct urb * urb,int slot_id,unsigned int ep_index)3189 static int xhci_queue_isoc_tx(struct xhci_hcd *xhci, gfp_t mem_flags,
3190 		struct urb *urb, int slot_id, unsigned int ep_index)
3191 {
3192 	struct xhci_ring *ep_ring;
3193 	struct urb_priv *urb_priv;
3194 	struct xhci_td *td;
3195 	int num_tds, trbs_per_td;
3196 	struct xhci_generic_trb *start_trb;
3197 	bool first_trb;
3198 	int start_cycle;
3199 	u32 field, length_field;
3200 	int running_total, trb_buff_len, td_len, td_remain_len, ret;
3201 	u64 start_addr, addr;
3202 	int i, j;
3203 	bool more_trbs_coming;
3204 
3205 	ep_ring = xhci->devs[slot_id]->eps[ep_index].ring;
3206 
3207 	num_tds = urb->number_of_packets;
3208 	if (num_tds < 1) {
3209 		xhci_dbg(xhci, "Isoc URB with zero packets?\n");
3210 		return -EINVAL;
3211 	}
3212 
3213 	start_addr = (u64) urb->transfer_dma;
3214 	start_trb = &ep_ring->enqueue->generic;
3215 	start_cycle = ep_ring->cycle_state;
3216 
3217 	urb_priv = urb->hcpriv;
3218 	/* Queue the first TRB, even if it's zero-length */
3219 	for (i = 0; i < num_tds; i++) {
3220 		unsigned int total_packet_count;
3221 		unsigned int burst_count;
3222 		unsigned int residue;
3223 
3224 		first_trb = true;
3225 		running_total = 0;
3226 		addr = start_addr + urb->iso_frame_desc[i].offset;
3227 		td_len = urb->iso_frame_desc[i].length;
3228 		td_remain_len = td_len;
3229 		total_packet_count = roundup(td_len,
3230 				usb_endpoint_maxp(&urb->ep->desc));
3231 		/* A zero-length transfer still involves at least one packet. */
3232 		if (total_packet_count == 0)
3233 			total_packet_count++;
3234 		burst_count = xhci_get_burst_count(xhci, urb->dev, urb,
3235 				total_packet_count);
3236 		residue = xhci_get_last_burst_packet_count(xhci,
3237 				urb->dev, urb, total_packet_count);
3238 
3239 		trbs_per_td = count_isoc_trbs_needed(xhci, urb, i);
3240 
3241 		ret = prepare_transfer(xhci, xhci->devs[slot_id], ep_index,
3242 				urb->stream_id, trbs_per_td, urb, i, true,
3243 				mem_flags);
3244 		if (ret < 0) {
3245 			if (i == 0)
3246 				return ret;
3247 			goto cleanup;
3248 		}
3249 
3250 		td = urb_priv->td[i];
3251 		for (j = 0; j < trbs_per_td; j++) {
3252 			u32 remainder = 0;
3253 			field = TRB_TBC(burst_count) | TRB_TLBPC(residue);
3254 
3255 			if (first_trb) {
3256 				/* Queue the isoc TRB */
3257 				field |= TRB_TYPE(TRB_ISOC);
3258 				/* Assume URB_ISO_ASAP is set */
3259 				field |= TRB_SIA;
3260 				if (i == 0) {
3261 					if (start_cycle == 0)
3262 						field |= 0x1;
3263 				} else
3264 					field |= ep_ring->cycle_state;
3265 				first_trb = false;
3266 			} else {
3267 				/* Queue other normal TRBs */
3268 				field |= TRB_TYPE(TRB_NORMAL);
3269 				field |= ep_ring->cycle_state;
3270 			}
3271 
3272 			/* Only set interrupt on short packet for IN EPs */
3273 			if (usb_urb_dir_in(urb))
3274 				field |= TRB_ISP;
3275 
3276 			/* Chain all the TRBs together; clear the chain bit in
3277 			 * the last TRB to indicate it's the last TRB in the
3278 			 * chain.
3279 			 */
3280 			if (j < trbs_per_td - 1) {
3281 				field |= TRB_CHAIN;
3282 				more_trbs_coming = true;
3283 			} else {
3284 				td->last_trb = ep_ring->enqueue;
3285 				field |= TRB_IOC;
3286 				if (xhci->hci_version == 0x100) {
3287 					/* Set BEI bit except for the last td */
3288 					if (i < num_tds - 1)
3289 						field |= TRB_BEI;
3290 				}
3291 				more_trbs_coming = false;
3292 			}
3293 
3294 			/* Calculate TRB length */
3295 			trb_buff_len = TRB_MAX_BUFF_SIZE -
3296 				(addr & ((1 << TRB_MAX_BUFF_SHIFT) - 1));
3297 			if (trb_buff_len > td_remain_len)
3298 				trb_buff_len = td_remain_len;
3299 
3300 			/* Set the TRB length, TD size, & interrupter fields. */
3301 			if (xhci->hci_version < 0x100) {
3302 				remainder = xhci_td_remainder(
3303 						td_len - running_total);
3304 			} else {
3305 				remainder = xhci_v1_0_td_remainder(
3306 						running_total, trb_buff_len,
3307 						total_packet_count, urb);
3308 			}
3309 			length_field = TRB_LEN(trb_buff_len) |
3310 				remainder |
3311 				TRB_INTR_TARGET(0);
3312 
3313 			queue_trb(xhci, ep_ring, false, more_trbs_coming, true,
3314 				lower_32_bits(addr),
3315 				upper_32_bits(addr),
3316 				length_field,
3317 				field);
3318 			running_total += trb_buff_len;
3319 
3320 			addr += trb_buff_len;
3321 			td_remain_len -= trb_buff_len;
3322 		}
3323 
3324 		/* Check TD length */
3325 		if (running_total != td_len) {
3326 			xhci_err(xhci, "ISOC TD length unmatch\n");
3327 			ret = -EINVAL;
3328 			goto cleanup;
3329 		}
3330 	}
3331 
3332 	if (xhci_to_hcd(xhci)->self.bandwidth_isoc_reqs == 0) {
3333 		if (xhci->quirks & XHCI_AMD_PLL_FIX)
3334 			usb_amd_quirk_pll_disable();
3335 	}
3336 	xhci_to_hcd(xhci)->self.bandwidth_isoc_reqs++;
3337 
3338 	giveback_first_trb(xhci, slot_id, ep_index, urb->stream_id,
3339 			start_cycle, start_trb);
3340 	return 0;
3341 cleanup:
3342 	/* Clean up a partially enqueued isoc transfer. */
3343 
3344 	for (i--; i >= 0; i--)
3345 		list_del_init(&urb_priv->td[i]->td_list);
3346 
3347 	/* Use the first TD as a temporary variable to turn the TDs we've queued
3348 	 * into No-ops with a software-owned cycle bit. That way the hardware
3349 	 * won't accidentally start executing bogus TDs when we partially
3350 	 * overwrite them.  td->first_trb and td->start_seg are already set.
3351 	 */
3352 	urb_priv->td[0]->last_trb = ep_ring->enqueue;
3353 	/* Every TRB except the first & last will have its cycle bit flipped. */
3354 	td_to_noop(xhci, ep_ring, urb_priv->td[0], true);
3355 
3356 	/* Reset the ring enqueue back to the first TRB and its cycle bit. */
3357 	ep_ring->enqueue = urb_priv->td[0]->first_trb;
3358 	ep_ring->enq_seg = urb_priv->td[0]->start_seg;
3359 	ep_ring->cycle_state = start_cycle;
3360 	usb_hcd_unlink_urb_from_ep(bus_to_hcd(urb->dev->bus), urb);
3361 	return ret;
3362 }
3363 
3364 /*
3365  * Check transfer ring to guarantee there is enough room for the urb.
3366  * Update ISO URB start_frame and interval.
3367  * Update interval as xhci_queue_intr_tx does. Just use xhci frame_index to
3368  * update the urb->start_frame by now.
3369  * Always assume URB_ISO_ASAP set, and NEVER use urb->start_frame as input.
3370  */
xhci_queue_isoc_tx_prepare(struct xhci_hcd * xhci,gfp_t mem_flags,struct urb * urb,int slot_id,unsigned int ep_index)3371 int xhci_queue_isoc_tx_prepare(struct xhci_hcd *xhci, gfp_t mem_flags,
3372 		struct urb *urb, int slot_id, unsigned int ep_index)
3373 {
3374 	struct xhci_virt_device *xdev;
3375 	struct xhci_ring *ep_ring;
3376 	struct xhci_ep_ctx *ep_ctx;
3377 	int start_frame;
3378 	int xhci_interval;
3379 	int ep_interval;
3380 	int num_tds, num_trbs, i;
3381 	int ret;
3382 
3383 	xdev = xhci->devs[slot_id];
3384 	ep_ring = xdev->eps[ep_index].ring;
3385 	ep_ctx = xhci_get_ep_ctx(xhci, xdev->out_ctx, ep_index);
3386 
3387 	num_trbs = 0;
3388 	num_tds = urb->number_of_packets;
3389 	for (i = 0; i < num_tds; i++)
3390 		num_trbs += count_isoc_trbs_needed(xhci, urb, i);
3391 
3392 	/* Check the ring to guarantee there is enough room for the whole urb.
3393 	 * Do not insert any td of the urb to the ring if the check failed.
3394 	 */
3395 	ret = prepare_ring(xhci, ep_ring, le32_to_cpu(ep_ctx->ep_info) & EP_STATE_MASK,
3396 			   num_trbs, true, mem_flags);
3397 	if (ret)
3398 		return ret;
3399 
3400 	start_frame = xhci_readl(xhci, &xhci->run_regs->microframe_index);
3401 	start_frame &= 0x3fff;
3402 
3403 	urb->start_frame = start_frame;
3404 	if (urb->dev->speed == USB_SPEED_LOW ||
3405 			urb->dev->speed == USB_SPEED_FULL)
3406 		urb->start_frame >>= 3;
3407 
3408 	xhci_interval = EP_INTERVAL_TO_UFRAMES(le32_to_cpu(ep_ctx->ep_info));
3409 	ep_interval = urb->interval;
3410 	/* Convert to microframes */
3411 	if (urb->dev->speed == USB_SPEED_LOW ||
3412 			urb->dev->speed == USB_SPEED_FULL)
3413 		ep_interval *= 8;
3414 	/* FIXME change this to a warning and a suggestion to use the new API
3415 	 * to set the polling interval (once the API is added).
3416 	 */
3417 	if (xhci_interval != ep_interval) {
3418 		if (printk_ratelimit())
3419 			dev_dbg(&urb->dev->dev, "Driver uses different interval"
3420 					" (%d microframe%s) than xHCI "
3421 					"(%d microframe%s)\n",
3422 					ep_interval,
3423 					ep_interval == 1 ? "" : "s",
3424 					xhci_interval,
3425 					xhci_interval == 1 ? "" : "s");
3426 		urb->interval = xhci_interval;
3427 		/* Convert back to frames for LS/FS devices */
3428 		if (urb->dev->speed == USB_SPEED_LOW ||
3429 				urb->dev->speed == USB_SPEED_FULL)
3430 			urb->interval /= 8;
3431 	}
3432 	return xhci_queue_isoc_tx(xhci, GFP_ATOMIC, urb, slot_id, ep_index);
3433 }
3434 
3435 /****		Command Ring Operations		****/
3436 
3437 /* Generic function for queueing a command TRB on the command ring.
3438  * Check to make sure there's room on the command ring for one command TRB.
3439  * Also check that there's room reserved for commands that must not fail.
3440  * If this is a command that must not fail, meaning command_must_succeed = TRUE,
3441  * then only check for the number of reserved spots.
3442  * Don't decrement xhci->cmd_ring_reserved_trbs after we've queued the TRB
3443  * because the command event handler may want to resubmit a failed command.
3444  */
queue_command(struct xhci_hcd * xhci,u32 field1,u32 field2,u32 field3,u32 field4,bool command_must_succeed)3445 static int queue_command(struct xhci_hcd *xhci, u32 field1, u32 field2,
3446 		u32 field3, u32 field4, bool command_must_succeed)
3447 {
3448 	int reserved_trbs = xhci->cmd_ring_reserved_trbs;
3449 	int ret;
3450 
3451 	if (!command_must_succeed)
3452 		reserved_trbs++;
3453 
3454 	ret = prepare_ring(xhci, xhci->cmd_ring, EP_STATE_RUNNING,
3455 			reserved_trbs, false, GFP_ATOMIC);
3456 	if (ret < 0) {
3457 		xhci_err(xhci, "ERR: No room for command on command ring\n");
3458 		if (command_must_succeed)
3459 			xhci_err(xhci, "ERR: Reserved TRB counting for "
3460 					"unfailable commands failed.\n");
3461 		return ret;
3462 	}
3463 	queue_trb(xhci, xhci->cmd_ring, false, false, false, field1, field2,
3464 			field3,	field4 | xhci->cmd_ring->cycle_state);
3465 	return 0;
3466 }
3467 
3468 /* Queue a slot enable or disable request on the command ring */
xhci_queue_slot_control(struct xhci_hcd * xhci,u32 trb_type,u32 slot_id)3469 int xhci_queue_slot_control(struct xhci_hcd *xhci, u32 trb_type, u32 slot_id)
3470 {
3471 	return queue_command(xhci, 0, 0, 0,
3472 			TRB_TYPE(trb_type) | SLOT_ID_FOR_TRB(slot_id), false);
3473 }
3474 
3475 /* Queue an address device command TRB */
xhci_queue_address_device(struct xhci_hcd * xhci,dma_addr_t in_ctx_ptr,u32 slot_id)3476 int xhci_queue_address_device(struct xhci_hcd *xhci, dma_addr_t in_ctx_ptr,
3477 		u32 slot_id)
3478 {
3479 	return queue_command(xhci, lower_32_bits(in_ctx_ptr),
3480 			upper_32_bits(in_ctx_ptr), 0,
3481 			TRB_TYPE(TRB_ADDR_DEV) | SLOT_ID_FOR_TRB(slot_id),
3482 			false);
3483 }
3484 
xhci_queue_vendor_command(struct xhci_hcd * xhci,u32 field1,u32 field2,u32 field3,u32 field4)3485 int xhci_queue_vendor_command(struct xhci_hcd *xhci,
3486 		u32 field1, u32 field2, u32 field3, u32 field4)
3487 {
3488 	return queue_command(xhci, field1, field2, field3, field4, false);
3489 }
3490 
3491 /* Queue a reset device command TRB */
xhci_queue_reset_device(struct xhci_hcd * xhci,u32 slot_id)3492 int xhci_queue_reset_device(struct xhci_hcd *xhci, u32 slot_id)
3493 {
3494 	return queue_command(xhci, 0, 0, 0,
3495 			TRB_TYPE(TRB_RESET_DEV) | SLOT_ID_FOR_TRB(slot_id),
3496 			false);
3497 }
3498 
3499 /* Queue a configure endpoint command TRB */
xhci_queue_configure_endpoint(struct xhci_hcd * xhci,dma_addr_t in_ctx_ptr,u32 slot_id,bool command_must_succeed)3500 int xhci_queue_configure_endpoint(struct xhci_hcd *xhci, dma_addr_t in_ctx_ptr,
3501 		u32 slot_id, bool command_must_succeed)
3502 {
3503 	return queue_command(xhci, lower_32_bits(in_ctx_ptr),
3504 			upper_32_bits(in_ctx_ptr), 0,
3505 			TRB_TYPE(TRB_CONFIG_EP) | SLOT_ID_FOR_TRB(slot_id),
3506 			command_must_succeed);
3507 }
3508 
3509 /* Queue an evaluate context command TRB */
xhci_queue_evaluate_context(struct xhci_hcd * xhci,dma_addr_t in_ctx_ptr,u32 slot_id)3510 int xhci_queue_evaluate_context(struct xhci_hcd *xhci, dma_addr_t in_ctx_ptr,
3511 		u32 slot_id)
3512 {
3513 	return queue_command(xhci, lower_32_bits(in_ctx_ptr),
3514 			upper_32_bits(in_ctx_ptr), 0,
3515 			TRB_TYPE(TRB_EVAL_CONTEXT) | SLOT_ID_FOR_TRB(slot_id),
3516 			false);
3517 }
3518 
3519 /*
3520  * Suspend is set to indicate "Stop Endpoint Command" is being issued to stop
3521  * activity on an endpoint that is about to be suspended.
3522  */
xhci_queue_stop_endpoint(struct xhci_hcd * xhci,int slot_id,unsigned int ep_index,int suspend)3523 int xhci_queue_stop_endpoint(struct xhci_hcd *xhci, int slot_id,
3524 		unsigned int ep_index, int suspend)
3525 {
3526 	u32 trb_slot_id = SLOT_ID_FOR_TRB(slot_id);
3527 	u32 trb_ep_index = EP_ID_FOR_TRB(ep_index);
3528 	u32 type = TRB_TYPE(TRB_STOP_RING);
3529 	u32 trb_suspend = SUSPEND_PORT_FOR_TRB(suspend);
3530 
3531 	return queue_command(xhci, 0, 0, 0,
3532 			trb_slot_id | trb_ep_index | type | trb_suspend, false);
3533 }
3534 
3535 /* Set Transfer Ring Dequeue Pointer command.
3536  * This should not be used for endpoints that have streams enabled.
3537  */
queue_set_tr_deq(struct xhci_hcd * xhci,int slot_id,unsigned int ep_index,unsigned int stream_id,struct xhci_segment * deq_seg,union xhci_trb * deq_ptr,u32 cycle_state)3538 static int queue_set_tr_deq(struct xhci_hcd *xhci, int slot_id,
3539 		unsigned int ep_index, unsigned int stream_id,
3540 		struct xhci_segment *deq_seg,
3541 		union xhci_trb *deq_ptr, u32 cycle_state)
3542 {
3543 	dma_addr_t addr;
3544 	u32 trb_slot_id = SLOT_ID_FOR_TRB(slot_id);
3545 	u32 trb_ep_index = EP_ID_FOR_TRB(ep_index);
3546 	u32 trb_stream_id = STREAM_ID_FOR_TRB(stream_id);
3547 	u32 type = TRB_TYPE(TRB_SET_DEQ);
3548 	struct xhci_virt_ep *ep;
3549 
3550 	addr = xhci_trb_virt_to_dma(deq_seg, deq_ptr);
3551 	if (addr == 0) {
3552 		xhci_warn(xhci, "WARN Cannot submit Set TR Deq Ptr\n");
3553 		xhci_warn(xhci, "WARN deq seg = %p, deq pt = %p\n",
3554 				deq_seg, deq_ptr);
3555 		return 0;
3556 	}
3557 	ep = &xhci->devs[slot_id]->eps[ep_index];
3558 	if ((ep->ep_state & SET_DEQ_PENDING)) {
3559 		xhci_warn(xhci, "WARN Cannot submit Set TR Deq Ptr\n");
3560 		xhci_warn(xhci, "A Set TR Deq Ptr command is pending.\n");
3561 		return 0;
3562 	}
3563 	ep->queued_deq_seg = deq_seg;
3564 	ep->queued_deq_ptr = deq_ptr;
3565 	return queue_command(xhci, lower_32_bits(addr) | cycle_state,
3566 			upper_32_bits(addr), trb_stream_id,
3567 			trb_slot_id | trb_ep_index | type, false);
3568 }
3569 
xhci_queue_reset_ep(struct xhci_hcd * xhci,int slot_id,unsigned int ep_index)3570 int xhci_queue_reset_ep(struct xhci_hcd *xhci, int slot_id,
3571 		unsigned int ep_index)
3572 {
3573 	u32 trb_slot_id = SLOT_ID_FOR_TRB(slot_id);
3574 	u32 trb_ep_index = EP_ID_FOR_TRB(ep_index);
3575 	u32 type = TRB_TYPE(TRB_RESET_EP);
3576 
3577 	return queue_command(xhci, 0, 0, 0, trb_slot_id | trb_ep_index | type,
3578 			false);
3579 }
3580