1 // SPDX-License-Identifier: GPL-2.0
2 /*
3 * xHCI host controller driver
4 *
5 * Copyright (C) 2008 Intel Corp.
6 *
7 * Author: Sarah Sharp
8 * Some code borrowed from the Linux EHCI driver.
9 */
10
11 #include <linux/usb.h>
12 #include <linux/overflow.h>
13 #include <linux/pci.h>
14 #include <linux/slab.h>
15 #include <linux/dmapool.h>
16 #include <linux/dma-mapping.h>
17 #include <linux/bitfield.h>
18
19 #include "xhci.h"
20 #include "xhci-trace.h"
21 #include "xhci-debugfs.h"
22
23 /*
24 * Allocates a generic ring segment from the ring pool, sets the dma address,
25 * initializes the segment to zero, and sets the private next pointer to NULL.
26 *
27 * Section 4.11.1.1:
28 * "All components of all Command and Transfer TRBs shall be initialized to '0'"
29 */
xhci_segment_alloc(struct xhci_hcd * xhci,unsigned int max_packet,unsigned int num,gfp_t flags)30 static struct xhci_segment *xhci_segment_alloc(struct xhci_hcd *xhci,
31 unsigned int max_packet,
32 unsigned int num,
33 gfp_t flags)
34 {
35 struct xhci_segment *seg;
36 dma_addr_t dma;
37 struct device *dev = xhci_to_hcd(xhci)->self.sysdev;
38
39 seg = kzalloc_node(sizeof(*seg), flags, dev_to_node(dev));
40 if (!seg)
41 return NULL;
42
43 seg->trbs = dma_pool_zalloc(xhci->segment_pool, flags, &dma);
44 if (!seg->trbs) {
45 kfree(seg);
46 return NULL;
47 }
48
49 if (max_packet) {
50 seg->bounce_buf = kzalloc_node(max_packet, flags,
51 dev_to_node(dev));
52 if (!seg->bounce_buf) {
53 dma_pool_free(xhci->segment_pool, seg->trbs, dma);
54 kfree(seg);
55 return NULL;
56 }
57 }
58 seg->num = num;
59 seg->dma = dma;
60 seg->next = NULL;
61
62 return seg;
63 }
64
xhci_segment_free(struct xhci_hcd * xhci,struct xhci_segment * seg)65 static void xhci_segment_free(struct xhci_hcd *xhci, struct xhci_segment *seg)
66 {
67 if (seg->trbs) {
68 dma_pool_free(xhci->segment_pool, seg->trbs, seg->dma);
69 seg->trbs = NULL;
70 }
71 kfree(seg->bounce_buf);
72 kfree(seg);
73 }
74
xhci_ring_segments_free(struct xhci_hcd * xhci,struct xhci_ring * ring)75 static void xhci_ring_segments_free(struct xhci_hcd *xhci, struct xhci_ring *ring)
76 {
77 struct xhci_segment *seg, *next;
78
79 ring->last_seg->next = NULL;
80 seg = ring->first_seg;
81
82 while (seg) {
83 next = seg->next;
84 xhci_segment_free(xhci, seg);
85 seg = next;
86 }
87 }
88
89 /*
90 * Only for transfer and command rings where driver is the producer, not for
91 * event rings.
92 *
93 * Change the last TRB in the segment to be a Link TRB which points to the
94 * DMA address of the next segment. The caller needs to set any Link TRB
95 * related flags, such as End TRB, Toggle Cycle, and no snoop.
96 */
xhci_set_link_trb(struct xhci_segment * seg,bool chain_links)97 static void xhci_set_link_trb(struct xhci_segment *seg, bool chain_links)
98 {
99 union xhci_trb *trb;
100 u32 val;
101
102 if (!seg || !seg->next)
103 return;
104
105 trb = &seg->trbs[TRBS_PER_SEGMENT - 1];
106
107 /* Set the last TRB in the segment to have a TRB type ID of Link TRB */
108 val = le32_to_cpu(trb->link.control);
109 val &= ~TRB_TYPE_BITMASK;
110 val |= TRB_TYPE(TRB_LINK);
111 if (chain_links)
112 val |= TRB_CHAIN;
113 trb->link.control = cpu_to_le32(val);
114 trb->link.segment_ptr = cpu_to_le64(seg->next->dma);
115 }
116
xhci_initialize_ring_segments(struct xhci_hcd * xhci,struct xhci_ring * ring)117 static void xhci_initialize_ring_segments(struct xhci_hcd *xhci, struct xhci_ring *ring)
118 {
119 struct xhci_segment *seg;
120 bool chain_links;
121
122 if (ring->type == TYPE_EVENT)
123 return;
124
125 chain_links = xhci_link_chain_quirk(xhci, ring->type);
126 xhci_for_each_ring_seg(ring->first_seg, seg)
127 xhci_set_link_trb(seg, chain_links);
128
129 /* See section 4.9.2.1 and 6.4.4.1 */
130 ring->last_seg->trbs[TRBS_PER_SEGMENT - 1].link.control |= cpu_to_le32(LINK_TOGGLE);
131 }
132
xhci_ring_init(struct xhci_hcd * xhci,struct xhci_ring * ring)133 void xhci_ring_init(struct xhci_hcd *xhci, struct xhci_ring *ring)
134 {
135 xhci_initialize_ring_segments(xhci, ring);
136 xhci_initialize_ring_info(ring);
137 trace_xhci_ring_alloc(ring);
138 }
139
140 /*
141 * Link the src ring segments to the dst ring.
142 * Set Toggle Cycle for the new ring if needed.
143 */
xhci_link_rings(struct xhci_hcd * xhci,struct xhci_ring * src,struct xhci_ring * dst)144 static void xhci_link_rings(struct xhci_hcd *xhci, struct xhci_ring *src, struct xhci_ring *dst)
145 {
146 struct xhci_segment *seg;
147 bool chain_links;
148
149 if (!src || !dst)
150 return;
151
152 /* If the cycle state is 0, set the cycle bit to 1 for all the TRBs */
153 if (dst->cycle_state == 0) {
154 xhci_for_each_ring_seg(src->first_seg, seg) {
155 for (int i = 0; i < TRBS_PER_SEGMENT; i++)
156 seg->trbs[i].link.control |= cpu_to_le32(TRB_CYCLE);
157 }
158 }
159
160 src->last_seg->next = dst->enq_seg->next;
161 dst->enq_seg->next = src->first_seg;
162 if (dst->type != TYPE_EVENT) {
163 chain_links = xhci_link_chain_quirk(xhci, dst->type);
164 xhci_set_link_trb(dst->enq_seg, chain_links);
165 xhci_set_link_trb(src->last_seg, chain_links);
166 }
167 dst->num_segs += src->num_segs;
168
169 if (dst->enq_seg == dst->last_seg) {
170 if (dst->type != TYPE_EVENT)
171 dst->last_seg->trbs[TRBS_PER_SEGMENT-1].link.control
172 &= ~cpu_to_le32(LINK_TOGGLE);
173
174 dst->last_seg = src->last_seg;
175 } else if (dst->type != TYPE_EVENT) {
176 src->last_seg->trbs[TRBS_PER_SEGMENT-1].link.control &= ~cpu_to_le32(LINK_TOGGLE);
177 }
178
179 for (seg = dst->enq_seg; seg != dst->last_seg; seg = seg->next)
180 seg->next->num = seg->num + 1;
181 }
182
183 /*
184 * We need a radix tree for mapping physical addresses of TRBs to which stream
185 * ID they belong to. We need to do this because the host controller won't tell
186 * us which stream ring the TRB came from. We could store the stream ID in an
187 * event data TRB, but that doesn't help us for the cancellation case, since the
188 * endpoint may stop before it reaches that event data TRB.
189 *
190 * The radix tree maps the upper portion of the TRB DMA address to a ring
191 * segment that has the same upper portion of DMA addresses. For example, say I
192 * have segments of size 1KB, that are always 1KB aligned. A segment may
193 * start at 0x10c91000 and end at 0x10c913f0. If I use the upper 10 bits, the
194 * key to the stream ID is 0x43244. I can use the DMA address of the TRB to
195 * pass the radix tree a key to get the right stream ID:
196 *
197 * 0x10c90fff >> 10 = 0x43243
198 * 0x10c912c0 >> 10 = 0x43244
199 * 0x10c91400 >> 10 = 0x43245
200 *
201 * Obviously, only those TRBs with DMA addresses that are within the segment
202 * will make the radix tree return the stream ID for that ring.
203 *
204 * Caveats for the radix tree:
205 *
206 * The radix tree uses an unsigned long as a key pair. On 32-bit systems, an
207 * unsigned long will be 32-bits; on a 64-bit system an unsigned long will be
208 * 64-bits. Since we only request 32-bit DMA addresses, we can use that as the
209 * key on 32-bit or 64-bit systems (it would also be fine if we asked for 64-bit
210 * PCI DMA addresses on a 64-bit system). There might be a problem on 32-bit
211 * extended systems (where the DMA address can be bigger than 32-bits),
212 * if we allow the PCI dma mask to be bigger than 32-bits. So don't do that.
213 */
xhci_insert_segment_mapping(struct radix_tree_root * trb_address_map,struct xhci_ring * ring,struct xhci_segment * seg,gfp_t mem_flags)214 static int xhci_insert_segment_mapping(struct radix_tree_root *trb_address_map,
215 struct xhci_ring *ring,
216 struct xhci_segment *seg,
217 gfp_t mem_flags)
218 {
219 unsigned long key;
220 int ret;
221
222 key = (unsigned long)(seg->dma >> TRB_SEGMENT_SHIFT);
223 /* Skip any segments that were already added. */
224 if (radix_tree_lookup(trb_address_map, key))
225 return 0;
226
227 ret = radix_tree_maybe_preload(mem_flags);
228 if (ret)
229 return ret;
230 ret = radix_tree_insert(trb_address_map,
231 key, ring);
232 radix_tree_preload_end();
233 return ret;
234 }
235
xhci_remove_segment_mapping(struct radix_tree_root * trb_address_map,struct xhci_segment * seg)236 static void xhci_remove_segment_mapping(struct radix_tree_root *trb_address_map,
237 struct xhci_segment *seg)
238 {
239 unsigned long key;
240
241 key = (unsigned long)(seg->dma >> TRB_SEGMENT_SHIFT);
242 if (radix_tree_lookup(trb_address_map, key))
243 radix_tree_delete(trb_address_map, key);
244 }
245
xhci_update_stream_segment_mapping(struct radix_tree_root * trb_address_map,struct xhci_ring * ring,struct xhci_segment * first_seg,gfp_t mem_flags)246 static int xhci_update_stream_segment_mapping(
247 struct radix_tree_root *trb_address_map,
248 struct xhci_ring *ring,
249 struct xhci_segment *first_seg,
250 gfp_t mem_flags)
251 {
252 struct xhci_segment *seg;
253 struct xhci_segment *failed_seg;
254 int ret;
255
256 if (WARN_ON_ONCE(trb_address_map == NULL))
257 return 0;
258
259 xhci_for_each_ring_seg(first_seg, seg) {
260 ret = xhci_insert_segment_mapping(trb_address_map,
261 ring, seg, mem_flags);
262 if (ret)
263 goto remove_streams;
264 }
265
266 return 0;
267
268 remove_streams:
269 failed_seg = seg;
270 xhci_for_each_ring_seg(first_seg, seg) {
271 xhci_remove_segment_mapping(trb_address_map, seg);
272 if (seg == failed_seg)
273 return ret;
274 }
275
276 return ret;
277 }
278
xhci_remove_stream_mapping(struct xhci_ring * ring)279 static void xhci_remove_stream_mapping(struct xhci_ring *ring)
280 {
281 struct xhci_segment *seg;
282
283 if (WARN_ON_ONCE(ring->trb_address_map == NULL))
284 return;
285
286 xhci_for_each_ring_seg(ring->first_seg, seg)
287 xhci_remove_segment_mapping(ring->trb_address_map, seg);
288 }
289
xhci_update_stream_mapping(struct xhci_ring * ring,gfp_t mem_flags)290 static int xhci_update_stream_mapping(struct xhci_ring *ring, gfp_t mem_flags)
291 {
292 return xhci_update_stream_segment_mapping(ring->trb_address_map, ring,
293 ring->first_seg, mem_flags);
294 }
295
296 /* XXX: Do we need the hcd structure in all these functions? */
xhci_ring_free(struct xhci_hcd * xhci,struct xhci_ring * ring)297 void xhci_ring_free(struct xhci_hcd *xhci, struct xhci_ring *ring)
298 {
299 if (!ring)
300 return;
301
302 trace_xhci_ring_free(ring);
303
304 if (ring->first_seg) {
305 if (ring->type == TYPE_STREAM)
306 xhci_remove_stream_mapping(ring);
307 xhci_ring_segments_free(xhci, ring);
308 }
309
310 kfree(ring);
311 }
312
xhci_initialize_ring_info(struct xhci_ring * ring)313 void xhci_initialize_ring_info(struct xhci_ring *ring)
314 {
315 /* The ring is empty, so the enqueue pointer == dequeue pointer */
316 ring->enqueue = ring->first_seg->trbs;
317 ring->enq_seg = ring->first_seg;
318 ring->dequeue = ring->enqueue;
319 ring->deq_seg = ring->first_seg;
320 /* The ring is initialized to 0. The producer must write 1 to the cycle
321 * bit to handover ownership of the TRB, so PCS = 1. The consumer must
322 * compare CCS to the cycle bit to check ownership, so CCS = 1.
323 *
324 * New rings are initialized with cycle state equal to 1; if we are
325 * handling ring expansion, set the cycle state equal to the old ring.
326 */
327 ring->cycle_state = 1;
328 }
329 EXPORT_SYMBOL_GPL(xhci_initialize_ring_info);
330
331 /* Allocate segments and link them for a ring */
xhci_alloc_segments_for_ring(struct xhci_hcd * xhci,struct xhci_ring * ring,gfp_t flags)332 static int xhci_alloc_segments_for_ring(struct xhci_hcd *xhci, struct xhci_ring *ring, gfp_t flags)
333 {
334 struct xhci_segment *prev;
335 unsigned int num = 0;
336
337 prev = xhci_segment_alloc(xhci, ring->bounce_buf_len, num, flags);
338 if (!prev)
339 return -ENOMEM;
340 num++;
341
342 ring->first_seg = prev;
343 while (num < ring->num_segs) {
344 struct xhci_segment *next;
345
346 next = xhci_segment_alloc(xhci, ring->bounce_buf_len, num, flags);
347 if (!next)
348 goto free_segments;
349
350 prev->next = next;
351 prev = next;
352 num++;
353 }
354 ring->last_seg = prev;
355
356 ring->last_seg->next = ring->first_seg;
357 return 0;
358
359 free_segments:
360 ring->last_seg = prev;
361 xhci_ring_segments_free(xhci, ring);
362 return -ENOMEM;
363 }
364
365 /*
366 * Create a new ring with zero or more segments.
367 *
368 * Link each segment together into a ring.
369 * Set the end flag and the cycle toggle bit on the last segment.
370 * See section 4.9.1 and figures 15 and 16.
371 */
xhci_ring_alloc(struct xhci_hcd * xhci,unsigned int num_segs,enum xhci_ring_type type,unsigned int max_packet,gfp_t flags)372 struct xhci_ring *xhci_ring_alloc(struct xhci_hcd *xhci, unsigned int num_segs,
373 enum xhci_ring_type type, unsigned int max_packet, gfp_t flags)
374 {
375 struct xhci_ring *ring;
376 int ret;
377 struct device *dev = xhci_to_hcd(xhci)->self.sysdev;
378
379 ring = kzalloc_node(sizeof(*ring), flags, dev_to_node(dev));
380 if (!ring)
381 return NULL;
382
383 ring->num_segs = num_segs;
384 ring->bounce_buf_len = max_packet;
385 INIT_LIST_HEAD(&ring->td_list);
386 ring->type = type;
387 if (num_segs == 0)
388 return ring;
389
390 ret = xhci_alloc_segments_for_ring(xhci, ring, flags);
391 if (ret)
392 goto fail;
393
394 return ring;
395
396 fail:
397 kfree(ring);
398 return NULL;
399 }
400
xhci_free_endpoint_ring(struct xhci_hcd * xhci,struct xhci_virt_device * virt_dev,unsigned int ep_index)401 void xhci_free_endpoint_ring(struct xhci_hcd *xhci,
402 struct xhci_virt_device *virt_dev,
403 unsigned int ep_index)
404 {
405 xhci_ring_free(xhci, virt_dev->eps[ep_index].ring);
406 virt_dev->eps[ep_index].ring = NULL;
407 }
408
409 /*
410 * Expand an existing ring.
411 * Allocate a new ring which has same segment numbers and link the two rings.
412 */
xhci_ring_expansion(struct xhci_hcd * xhci,struct xhci_ring * ring,unsigned int num_new_segs,gfp_t flags)413 int xhci_ring_expansion(struct xhci_hcd *xhci, struct xhci_ring *ring,
414 unsigned int num_new_segs, gfp_t flags)
415 {
416 struct xhci_ring new_ring;
417 int ret;
418
419 if (num_new_segs == 0)
420 return 0;
421
422 new_ring.num_segs = num_new_segs;
423 new_ring.bounce_buf_len = ring->bounce_buf_len;
424 new_ring.type = ring->type;
425 ret = xhci_alloc_segments_for_ring(xhci, &new_ring, flags);
426 if (ret)
427 return -ENOMEM;
428
429 xhci_initialize_ring_segments(xhci, &new_ring);
430
431 if (ring->type == TYPE_STREAM) {
432 ret = xhci_update_stream_segment_mapping(ring->trb_address_map, ring,
433 new_ring.first_seg, flags);
434 if (ret)
435 goto free_segments;
436 }
437
438 xhci_link_rings(xhci, &new_ring, ring);
439 trace_xhci_ring_expansion(ring);
440 xhci_dbg_trace(xhci, trace_xhci_dbg_ring_expansion,
441 "ring expansion succeed, now has %d segments",
442 ring->num_segs);
443
444 return 0;
445
446 free_segments:
447 xhci_ring_segments_free(xhci, &new_ring);
448 return ret;
449 }
450
xhci_alloc_container_ctx(struct xhci_hcd * xhci,int type,gfp_t flags)451 struct xhci_container_ctx *xhci_alloc_container_ctx(struct xhci_hcd *xhci,
452 int type, gfp_t flags)
453 {
454 struct xhci_container_ctx *ctx;
455 struct device *dev = xhci_to_hcd(xhci)->self.sysdev;
456
457 if ((type != XHCI_CTX_TYPE_DEVICE) && (type != XHCI_CTX_TYPE_INPUT))
458 return NULL;
459
460 ctx = kzalloc_node(sizeof(*ctx), flags, dev_to_node(dev));
461 if (!ctx)
462 return NULL;
463
464 ctx->type = type;
465 ctx->size = xhci->hcc_params & HCC_64BYTE_CONTEXT ? 2048 : 1024;
466 if (type == XHCI_CTX_TYPE_INPUT)
467 ctx->size += CTX_SIZE(xhci->hcc_params);
468
469 ctx->bytes = dma_pool_zalloc(xhci->device_pool, flags, &ctx->dma);
470 if (!ctx->bytes) {
471 kfree(ctx);
472 return NULL;
473 }
474 return ctx;
475 }
476
xhci_free_container_ctx(struct xhci_hcd * xhci,struct xhci_container_ctx * ctx)477 void xhci_free_container_ctx(struct xhci_hcd *xhci,
478 struct xhci_container_ctx *ctx)
479 {
480 if (!ctx)
481 return;
482 dma_pool_free(xhci->device_pool, ctx->bytes, ctx->dma);
483 kfree(ctx);
484 }
485
xhci_alloc_port_bw_ctx(struct xhci_hcd * xhci,gfp_t flags)486 struct xhci_container_ctx *xhci_alloc_port_bw_ctx(struct xhci_hcd *xhci,
487 gfp_t flags)
488 {
489 struct xhci_container_ctx *ctx;
490 struct device *dev = xhci_to_hcd(xhci)->self.sysdev;
491
492 ctx = kzalloc_node(sizeof(*ctx), flags, dev_to_node(dev));
493 if (!ctx)
494 return NULL;
495
496 ctx->size = GET_PORT_BW_ARRAY_SIZE;
497
498 ctx->bytes = dma_pool_zalloc(xhci->port_bw_pool, flags, &ctx->dma);
499 if (!ctx->bytes) {
500 kfree(ctx);
501 return NULL;
502 }
503 return ctx;
504 }
505
xhci_free_port_bw_ctx(struct xhci_hcd * xhci,struct xhci_container_ctx * ctx)506 void xhci_free_port_bw_ctx(struct xhci_hcd *xhci,
507 struct xhci_container_ctx *ctx)
508 {
509 if (!ctx)
510 return;
511 dma_pool_free(xhci->port_bw_pool, ctx->bytes, ctx->dma);
512 kfree(ctx);
513 }
514
xhci_get_input_control_ctx(struct xhci_container_ctx * ctx)515 struct xhci_input_control_ctx *xhci_get_input_control_ctx(
516 struct xhci_container_ctx *ctx)
517 {
518 if (ctx->type != XHCI_CTX_TYPE_INPUT)
519 return NULL;
520
521 return (struct xhci_input_control_ctx *)ctx->bytes;
522 }
523
xhci_get_slot_ctx(struct xhci_hcd * xhci,struct xhci_container_ctx * ctx)524 struct xhci_slot_ctx *xhci_get_slot_ctx(struct xhci_hcd *xhci,
525 struct xhci_container_ctx *ctx)
526 {
527 if (ctx->type == XHCI_CTX_TYPE_DEVICE)
528 return (struct xhci_slot_ctx *)ctx->bytes;
529
530 return (struct xhci_slot_ctx *)
531 (ctx->bytes + CTX_SIZE(xhci->hcc_params));
532 }
533
xhci_get_ep_ctx(struct xhci_hcd * xhci,struct xhci_container_ctx * ctx,unsigned int ep_index)534 struct xhci_ep_ctx *xhci_get_ep_ctx(struct xhci_hcd *xhci,
535 struct xhci_container_ctx *ctx,
536 unsigned int ep_index)
537 {
538 /* increment ep index by offset of start of ep ctx array */
539 ep_index++;
540 if (ctx->type == XHCI_CTX_TYPE_INPUT)
541 ep_index++;
542
543 return (struct xhci_ep_ctx *)
544 (ctx->bytes + (ep_index * CTX_SIZE(xhci->hcc_params)));
545 }
546 EXPORT_SYMBOL_GPL(xhci_get_ep_ctx);
547
548 /***************** Streams structures manipulation *************************/
549
xhci_free_stream_ctx(struct xhci_hcd * xhci,unsigned int num_stream_ctxs,struct xhci_stream_ctx * stream_ctx,dma_addr_t dma)550 static void xhci_free_stream_ctx(struct xhci_hcd *xhci,
551 unsigned int num_stream_ctxs,
552 struct xhci_stream_ctx *stream_ctx, dma_addr_t dma)
553 {
554 struct device *dev = xhci_to_hcd(xhci)->self.sysdev;
555 size_t size = array_size(sizeof(struct xhci_stream_ctx), num_stream_ctxs);
556
557 if (size > MEDIUM_STREAM_ARRAY_SIZE)
558 dma_free_coherent(dev, size, stream_ctx, dma);
559 else if (size > SMALL_STREAM_ARRAY_SIZE)
560 dma_pool_free(xhci->medium_streams_pool, stream_ctx, dma);
561 else
562 dma_pool_free(xhci->small_streams_pool, stream_ctx, dma);
563 }
564
565 /*
566 * The stream context array for each endpoint with bulk streams enabled can
567 * vary in size, based on:
568 * - how many streams the endpoint supports,
569 * - the maximum primary stream array size the host controller supports,
570 * - and how many streams the device driver asks for.
571 *
572 * The stream context array must be a power of 2, and can be as small as
573 * 64 bytes or as large as 1MB.
574 */
xhci_alloc_stream_ctx(struct xhci_hcd * xhci,unsigned int num_stream_ctxs,dma_addr_t * dma,gfp_t mem_flags)575 static struct xhci_stream_ctx *xhci_alloc_stream_ctx(struct xhci_hcd *xhci,
576 unsigned int num_stream_ctxs, dma_addr_t *dma,
577 gfp_t mem_flags)
578 {
579 struct device *dev = xhci_to_hcd(xhci)->self.sysdev;
580 size_t size = array_size(sizeof(struct xhci_stream_ctx), num_stream_ctxs);
581
582 if (size > MEDIUM_STREAM_ARRAY_SIZE)
583 return dma_alloc_coherent(dev, size, dma, mem_flags);
584 if (size > SMALL_STREAM_ARRAY_SIZE)
585 return dma_pool_zalloc(xhci->medium_streams_pool, mem_flags, dma);
586 else
587 return dma_pool_zalloc(xhci->small_streams_pool, mem_flags, dma);
588 }
589
xhci_dma_to_transfer_ring(struct xhci_virt_ep * ep,u64 address)590 struct xhci_ring *xhci_dma_to_transfer_ring(
591 struct xhci_virt_ep *ep,
592 u64 address)
593 {
594 if (ep->ep_state & EP_HAS_STREAMS)
595 return radix_tree_lookup(&ep->stream_info->trb_address_map,
596 address >> TRB_SEGMENT_SHIFT);
597 return ep->ring;
598 }
599
600 /*
601 * Change an endpoint's internal structure so it supports stream IDs. The
602 * number of requested streams includes stream 0, which cannot be used by device
603 * drivers.
604 *
605 * The number of stream contexts in the stream context array may be bigger than
606 * the number of streams the driver wants to use. This is because the number of
607 * stream context array entries must be a power of two.
608 */
xhci_alloc_stream_info(struct xhci_hcd * xhci,unsigned int num_stream_ctxs,unsigned int num_streams,unsigned int max_packet,gfp_t mem_flags)609 struct xhci_stream_info *xhci_alloc_stream_info(struct xhci_hcd *xhci,
610 unsigned int num_stream_ctxs,
611 unsigned int num_streams,
612 unsigned int max_packet, gfp_t mem_flags)
613 {
614 struct xhci_stream_info *stream_info;
615 u32 cur_stream;
616 struct xhci_ring *cur_ring;
617 u64 addr;
618 int ret;
619 struct device *dev = xhci_to_hcd(xhci)->self.sysdev;
620
621 xhci_dbg(xhci, "Allocating %u streams and %u stream context array entries.\n",
622 num_streams, num_stream_ctxs);
623 if (xhci->cmd_ring_reserved_trbs == MAX_RSVD_CMD_TRBS) {
624 xhci_dbg(xhci, "Command ring has no reserved TRBs available\n");
625 return NULL;
626 }
627 xhci->cmd_ring_reserved_trbs++;
628
629 stream_info = kzalloc_node(sizeof(*stream_info), mem_flags,
630 dev_to_node(dev));
631 if (!stream_info)
632 goto cleanup_trbs;
633
634 stream_info->num_streams = num_streams;
635 stream_info->num_stream_ctxs = num_stream_ctxs;
636
637 /* Initialize the array of virtual pointers to stream rings. */
638 stream_info->stream_rings = kcalloc_node(
639 num_streams, sizeof(struct xhci_ring *), mem_flags,
640 dev_to_node(dev));
641 if (!stream_info->stream_rings)
642 goto cleanup_info;
643
644 /* Initialize the array of DMA addresses for stream rings for the HW. */
645 stream_info->stream_ctx_array = xhci_alloc_stream_ctx(xhci,
646 num_stream_ctxs, &stream_info->ctx_array_dma,
647 mem_flags);
648 if (!stream_info->stream_ctx_array)
649 goto cleanup_ring_array;
650
651 /* Allocate everything needed to free the stream rings later */
652 stream_info->free_streams_command =
653 xhci_alloc_command_with_ctx(xhci, true, mem_flags);
654 if (!stream_info->free_streams_command)
655 goto cleanup_ctx;
656
657 INIT_RADIX_TREE(&stream_info->trb_address_map, GFP_ATOMIC);
658
659 /* Allocate rings for all the streams that the driver will use,
660 * and add their segment DMA addresses to the radix tree.
661 * Stream 0 is reserved.
662 */
663
664 for (cur_stream = 1; cur_stream < num_streams; cur_stream++) {
665 stream_info->stream_rings[cur_stream] =
666 xhci_ring_alloc(xhci, 2, TYPE_STREAM, max_packet, mem_flags);
667 cur_ring = stream_info->stream_rings[cur_stream];
668 if (!cur_ring)
669 goto cleanup_rings;
670
671 xhci_ring_init(xhci, cur_ring);
672 cur_ring->stream_id = cur_stream;
673 cur_ring->trb_address_map = &stream_info->trb_address_map;
674 /* Set deq ptr, cycle bit, and stream context type */
675 addr = cur_ring->first_seg->dma |
676 SCT_FOR_CTX(SCT_PRI_TR) |
677 cur_ring->cycle_state;
678 stream_info->stream_ctx_array[cur_stream].stream_ring =
679 cpu_to_le64(addr);
680 xhci_dbg(xhci, "Setting stream %d ring ptr to 0x%08llx\n", cur_stream, addr);
681
682 ret = xhci_update_stream_mapping(cur_ring, mem_flags);
683
684 trace_xhci_alloc_stream_info_ctx(stream_info, cur_stream);
685 if (ret) {
686 xhci_ring_free(xhci, cur_ring);
687 stream_info->stream_rings[cur_stream] = NULL;
688 goto cleanup_rings;
689 }
690 }
691 /* Leave the other unused stream ring pointers in the stream context
692 * array initialized to zero. This will cause the xHC to give us an
693 * error if the device asks for a stream ID we don't have setup (if it
694 * was any other way, the host controller would assume the ring is
695 * "empty" and wait forever for data to be queued to that stream ID).
696 */
697
698 return stream_info;
699
700 cleanup_rings:
701 for (cur_stream = 1; cur_stream < num_streams; cur_stream++) {
702 cur_ring = stream_info->stream_rings[cur_stream];
703 if (cur_ring) {
704 xhci_ring_free(xhci, cur_ring);
705 stream_info->stream_rings[cur_stream] = NULL;
706 }
707 }
708 xhci_free_command(xhci, stream_info->free_streams_command);
709 cleanup_ctx:
710 xhci_free_stream_ctx(xhci,
711 stream_info->num_stream_ctxs,
712 stream_info->stream_ctx_array,
713 stream_info->ctx_array_dma);
714 cleanup_ring_array:
715 kfree(stream_info->stream_rings);
716 cleanup_info:
717 kfree(stream_info);
718 cleanup_trbs:
719 xhci->cmd_ring_reserved_trbs--;
720 return NULL;
721 }
722 /*
723 * Sets the MaxPStreams field and the Linear Stream Array field.
724 * Sets the dequeue pointer to the stream context array.
725 */
xhci_setup_streams_ep_input_ctx(struct xhci_hcd * xhci,struct xhci_ep_ctx * ep_ctx,struct xhci_stream_info * stream_info)726 void xhci_setup_streams_ep_input_ctx(struct xhci_hcd *xhci,
727 struct xhci_ep_ctx *ep_ctx,
728 struct xhci_stream_info *stream_info)
729 {
730 u32 max_primary_streams;
731 /* MaxPStreams is the number of stream context array entries, not the
732 * number we're actually using. Must be in 2^(MaxPstreams + 1) format.
733 * fls(0) = 0, fls(0x1) = 1, fls(0x10) = 2, fls(0x100) = 3, etc.
734 */
735 max_primary_streams = fls(stream_info->num_stream_ctxs) - 2;
736 xhci_dbg_trace(xhci, trace_xhci_dbg_context_change,
737 "Setting number of stream ctx array entries to %u",
738 1 << (max_primary_streams + 1));
739 ep_ctx->ep_info &= cpu_to_le32(~EP_MAXPSTREAMS_MASK);
740 ep_ctx->ep_info |= cpu_to_le32(EP_MAXPSTREAMS(max_primary_streams)
741 | EP_HAS_LSA);
742 ep_ctx->deq = cpu_to_le64(stream_info->ctx_array_dma);
743 }
744
745 /*
746 * Sets the MaxPStreams field and the Linear Stream Array field to 0.
747 * Reinstalls the "normal" endpoint ring (at its previous dequeue mark,
748 * not at the beginning of the ring).
749 */
xhci_setup_no_streams_ep_input_ctx(struct xhci_ep_ctx * ep_ctx,struct xhci_virt_ep * ep)750 void xhci_setup_no_streams_ep_input_ctx(struct xhci_ep_ctx *ep_ctx,
751 struct xhci_virt_ep *ep)
752 {
753 dma_addr_t addr;
754 ep_ctx->ep_info &= cpu_to_le32(~(EP_MAXPSTREAMS_MASK | EP_HAS_LSA));
755 addr = xhci_trb_virt_to_dma(ep->ring->deq_seg, ep->ring->dequeue);
756 ep_ctx->deq = cpu_to_le64(addr | ep->ring->cycle_state);
757 }
758
759 /* Frees all stream contexts associated with the endpoint,
760 *
761 * Caller should fix the endpoint context streams fields.
762 */
xhci_free_stream_info(struct xhci_hcd * xhci,struct xhci_stream_info * stream_info)763 void xhci_free_stream_info(struct xhci_hcd *xhci,
764 struct xhci_stream_info *stream_info)
765 {
766 int cur_stream;
767 struct xhci_ring *cur_ring;
768
769 if (!stream_info)
770 return;
771
772 for (cur_stream = 1; cur_stream < stream_info->num_streams;
773 cur_stream++) {
774 cur_ring = stream_info->stream_rings[cur_stream];
775 if (cur_ring) {
776 xhci_ring_free(xhci, cur_ring);
777 stream_info->stream_rings[cur_stream] = NULL;
778 }
779 }
780 xhci_free_command(xhci, stream_info->free_streams_command);
781 xhci->cmd_ring_reserved_trbs--;
782 if (stream_info->stream_ctx_array)
783 xhci_free_stream_ctx(xhci,
784 stream_info->num_stream_ctxs,
785 stream_info->stream_ctx_array,
786 stream_info->ctx_array_dma);
787
788 kfree(stream_info->stream_rings);
789 kfree(stream_info);
790 }
791
792
793 /***************** Device context manipulation *************************/
794
xhci_free_tt_info(struct xhci_hcd * xhci,struct xhci_virt_device * virt_dev,int slot_id)795 static void xhci_free_tt_info(struct xhci_hcd *xhci,
796 struct xhci_virt_device *virt_dev,
797 int slot_id)
798 {
799 struct list_head *tt_list_head;
800 struct xhci_tt_bw_info *tt_info, *next;
801 bool slot_found = false;
802
803 /* If the device never made it past the Set Address stage,
804 * it may not have the root hub port pointer set correctly.
805 */
806 if (!virt_dev->rhub_port) {
807 xhci_dbg(xhci, "Bad rhub port.\n");
808 return;
809 }
810
811 tt_list_head = &(xhci->rh_bw[virt_dev->rhub_port->hw_portnum].tts);
812 list_for_each_entry_safe(tt_info, next, tt_list_head, tt_list) {
813 /* Multi-TT hubs will have more than one entry */
814 if (tt_info->slot_id == slot_id) {
815 slot_found = true;
816 list_del(&tt_info->tt_list);
817 kfree(tt_info);
818 } else if (slot_found) {
819 break;
820 }
821 }
822 }
823
xhci_alloc_tt_info(struct xhci_hcd * xhci,struct xhci_virt_device * virt_dev,struct usb_device * hdev,struct usb_tt * tt,gfp_t mem_flags)824 int xhci_alloc_tt_info(struct xhci_hcd *xhci,
825 struct xhci_virt_device *virt_dev,
826 struct usb_device *hdev,
827 struct usb_tt *tt, gfp_t mem_flags)
828 {
829 struct xhci_tt_bw_info *tt_info;
830 unsigned int num_ports;
831 int i, j;
832 struct device *dev = xhci_to_hcd(xhci)->self.sysdev;
833
834 if (!tt->multi)
835 num_ports = 1;
836 else
837 num_ports = hdev->maxchild;
838
839 for (i = 0; i < num_ports; i++, tt_info++) {
840 struct xhci_interval_bw_table *bw_table;
841
842 tt_info = kzalloc_node(sizeof(*tt_info), mem_flags,
843 dev_to_node(dev));
844 if (!tt_info)
845 goto free_tts;
846 INIT_LIST_HEAD(&tt_info->tt_list);
847 list_add(&tt_info->tt_list,
848 &xhci->rh_bw[virt_dev->rhub_port->hw_portnum].tts);
849 tt_info->slot_id = virt_dev->udev->slot_id;
850 if (tt->multi)
851 tt_info->ttport = i+1;
852 bw_table = &tt_info->bw_table;
853 for (j = 0; j < XHCI_MAX_INTERVAL; j++)
854 INIT_LIST_HEAD(&bw_table->interval_bw[j].endpoints);
855 }
856 return 0;
857
858 free_tts:
859 xhci_free_tt_info(xhci, virt_dev, virt_dev->udev->slot_id);
860 return -ENOMEM;
861 }
862
863
864 /* All the xhci_tds in the ring's TD list should be freed at this point.
865 * Should be called with xhci->lock held if there is any chance the TT lists
866 * will be manipulated by the configure endpoint, allocate device, or update
867 * hub functions while this function is removing the TT entries from the list.
868 */
xhci_free_virt_device(struct xhci_hcd * xhci,struct xhci_virt_device * dev,int slot_id)869 void xhci_free_virt_device(struct xhci_hcd *xhci, struct xhci_virt_device *dev,
870 int slot_id)
871 {
872 int i;
873 int old_active_eps = 0;
874
875 /* Slot ID 0 is reserved */
876 if (slot_id == 0 || !dev)
877 return;
878
879 /* If device ctx array still points to _this_ device, clear it */
880 if (dev->out_ctx &&
881 xhci->dcbaa.ctx_array[slot_id] == cpu_to_le64(dev->out_ctx->dma))
882 xhci->dcbaa.ctx_array[slot_id] = 0;
883
884 trace_xhci_free_virt_device(dev);
885
886 if (dev->tt_info)
887 old_active_eps = dev->tt_info->active_eps;
888
889 for (i = 0; i < 31; i++) {
890 if (dev->eps[i].ring)
891 xhci_ring_free(xhci, dev->eps[i].ring);
892 if (dev->eps[i].stream_info)
893 xhci_free_stream_info(xhci,
894 dev->eps[i].stream_info);
895 /*
896 * Endpoints are normally deleted from the bandwidth list when
897 * endpoints are dropped, before device is freed.
898 * If host is dying or being removed then endpoints aren't
899 * dropped cleanly, so delete the endpoint from list here.
900 * Only applicable for hosts with software bandwidth checking.
901 */
902
903 if (!list_empty(&dev->eps[i].bw_endpoint_list)) {
904 list_del_init(&dev->eps[i].bw_endpoint_list);
905 xhci_dbg(xhci, "Slot %u endpoint %u not removed from BW list!\n",
906 slot_id, i);
907 }
908 }
909 /* If this is a hub, free the TT(s) from the TT list */
910 xhci_free_tt_info(xhci, dev, slot_id);
911 /* If necessary, update the number of active TTs on this root port */
912 xhci_update_tt_active_eps(xhci, dev, old_active_eps);
913
914 if (dev->in_ctx)
915 xhci_free_container_ctx(xhci, dev->in_ctx);
916 if (dev->out_ctx)
917 xhci_free_container_ctx(xhci, dev->out_ctx);
918
919 if (dev->udev && dev->udev->slot_id)
920 dev->udev->slot_id = 0;
921 if (dev->rhub_port && dev->rhub_port->slot_id == slot_id)
922 dev->rhub_port->slot_id = 0;
923 if (xhci->devs[slot_id] == dev)
924 xhci->devs[slot_id] = NULL;
925 kfree(dev);
926 }
927
928 /*
929 * Free a virt_device structure.
930 * If the virt_device added a tt_info (a hub) and has children pointing to
931 * that tt_info, then free the child first. Recursive.
932 * We can't rely on udev at this point to find child-parent relationships.
933 */
xhci_free_virt_devices_depth_first(struct xhci_hcd * xhci,int slot_id)934 void xhci_free_virt_devices_depth_first(struct xhci_hcd *xhci, int slot_id)
935 {
936 struct xhci_virt_device *vdev;
937 struct list_head *tt_list_head;
938 struct xhci_tt_bw_info *tt_info, *next;
939 int i;
940
941 vdev = xhci->devs[slot_id];
942 if (!vdev)
943 return;
944
945 if (!vdev->rhub_port) {
946 xhci_dbg(xhci, "Bad rhub port.\n");
947 goto out;
948 }
949
950 tt_list_head = &(xhci->rh_bw[vdev->rhub_port->hw_portnum].tts);
951 list_for_each_entry_safe(tt_info, next, tt_list_head, tt_list) {
952 /* is this a hub device that added a tt_info to the tts list */
953 if (tt_info->slot_id == slot_id) {
954 /* are any devices using this tt_info? */
955 for (i = 1; i < xhci->max_slots; i++) {
956 vdev = xhci->devs[i];
957 if (vdev && (vdev->tt_info == tt_info))
958 xhci_free_virt_devices_depth_first(
959 xhci, i);
960 }
961 }
962 }
963 out:
964 /* we are now at a leaf device */
965 xhci_debugfs_remove_slot(xhci, slot_id);
966 xhci_free_virt_device(xhci, xhci->devs[slot_id], slot_id);
967 }
968
xhci_alloc_virt_device(struct xhci_hcd * xhci,int slot_id,struct usb_device * udev,gfp_t flags)969 int xhci_alloc_virt_device(struct xhci_hcd *xhci, int slot_id,
970 struct usb_device *udev, gfp_t flags)
971 {
972 struct xhci_virt_device *dev;
973 int i;
974
975 /* Slot ID 0 is reserved */
976 if (slot_id == 0 || xhci->devs[slot_id]) {
977 xhci_warn(xhci, "Bad Slot ID %d\n", slot_id);
978 return 0;
979 }
980
981 dev = kzalloc_obj(*dev, flags);
982 if (!dev)
983 return 0;
984
985 dev->slot_id = slot_id;
986
987 /* Allocate the (output) device context that will be used in the HC. */
988 dev->out_ctx = xhci_alloc_container_ctx(xhci, XHCI_CTX_TYPE_DEVICE, flags);
989 if (!dev->out_ctx)
990 goto fail;
991
992 xhci_dbg(xhci, "Slot %d output ctx = %pad (dma)\n", slot_id, &dev->out_ctx->dma);
993
994 /* Allocate the (input) device context for address device command */
995 dev->in_ctx = xhci_alloc_container_ctx(xhci, XHCI_CTX_TYPE_INPUT, flags);
996 if (!dev->in_ctx)
997 goto fail;
998
999 xhci_dbg(xhci, "Slot %d input ctx = %pad (dma)\n", slot_id, &dev->in_ctx->dma);
1000
1001 /* Initialize the cancellation and bandwidth list for each ep */
1002 for (i = 0; i < 31; i++) {
1003 dev->eps[i].ep_index = i;
1004 dev->eps[i].vdev = dev;
1005 INIT_LIST_HEAD(&dev->eps[i].cancelled_td_list);
1006 INIT_LIST_HEAD(&dev->eps[i].bw_endpoint_list);
1007 }
1008
1009 /* Allocate endpoint 0 ring */
1010 dev->eps[0].ring = xhci_ring_alloc(xhci, 2, TYPE_CTRL, 0, flags);
1011 if (!dev->eps[0].ring)
1012 goto fail;
1013
1014 xhci_ring_init(xhci, dev->eps[0].ring);
1015
1016 dev->udev = udev;
1017
1018 /* Point to output device context in dcbaa. */
1019 xhci->dcbaa.ctx_array[slot_id] = cpu_to_le64(dev->out_ctx->dma);
1020 xhci_dbg(xhci, "Set slot id %d dcbaa entry %p to 0x%llx\n",
1021 slot_id,
1022 &xhci->dcbaa.ctx_array[slot_id],
1023 le64_to_cpu(xhci->dcbaa.ctx_array[slot_id]));
1024
1025 trace_xhci_alloc_virt_device(dev);
1026
1027 xhci->devs[slot_id] = dev;
1028
1029 return 1;
1030 fail:
1031
1032 if (dev->in_ctx)
1033 xhci_free_container_ctx(xhci, dev->in_ctx);
1034 if (dev->out_ctx)
1035 xhci_free_container_ctx(xhci, dev->out_ctx);
1036 kfree(dev);
1037
1038 return 0;
1039 }
1040
xhci_copy_ep0_dequeue_into_input_ctx(struct xhci_hcd * xhci,struct usb_device * udev)1041 void xhci_copy_ep0_dequeue_into_input_ctx(struct xhci_hcd *xhci,
1042 struct usb_device *udev)
1043 {
1044 struct xhci_virt_device *virt_dev;
1045 struct xhci_ep_ctx *ep0_ctx;
1046 struct xhci_ring *ep_ring;
1047
1048 virt_dev = xhci->devs[udev->slot_id];
1049 ep0_ctx = xhci_get_ep_ctx(xhci, virt_dev->in_ctx, 0);
1050 ep_ring = virt_dev->eps[0].ring;
1051 /*
1052 * FIXME we don't keep track of the dequeue pointer very well after a
1053 * Set TR dequeue pointer, so we're setting the dequeue pointer of the
1054 * host to our enqueue pointer. This should only be called after a
1055 * configured device has reset, so all control transfers should have
1056 * been completed or cancelled before the reset.
1057 */
1058 ep0_ctx->deq = cpu_to_le64(xhci_trb_virt_to_dma(ep_ring->enq_seg,
1059 ep_ring->enqueue)
1060 | ep_ring->cycle_state);
1061 }
1062
1063 /*
1064 * The xHCI roothub may have ports of differing speeds in any order in the port
1065 * status registers.
1066 *
1067 * The xHCI hardware wants to know the roothub port that the USB device
1068 * is attached to (or the roothub port its ancestor hub is attached to). All we
1069 * know is the index of that port under either the USB 2.0 or the USB 3.0
1070 * roothub, but that doesn't give us the real index into the HW port status
1071 * registers.
1072 */
xhci_find_rhub_port(struct xhci_hcd * xhci,struct usb_device * udev)1073 static struct xhci_port *xhci_find_rhub_port(struct xhci_hcd *xhci, struct usb_device *udev)
1074 {
1075 struct usb_device *top_dev;
1076 struct xhci_hub *rhub;
1077 struct usb_hcd *hcd;
1078
1079 if (udev->speed >= USB_SPEED_SUPER)
1080 hcd = xhci_get_usb3_hcd(xhci);
1081 else
1082 hcd = xhci->main_hcd;
1083
1084 for (top_dev = udev; top_dev->parent && top_dev->parent->parent;
1085 top_dev = top_dev->parent)
1086 /* Found device below root hub */;
1087
1088 rhub = xhci_get_rhub(hcd);
1089 return rhub->ports[top_dev->portnum - 1];
1090 }
1091
1092 /* Setup an xHCI virtual device for a Set Address command */
xhci_setup_addressable_virt_dev(struct xhci_hcd * xhci,struct usb_device * udev)1093 int xhci_setup_addressable_virt_dev(struct xhci_hcd *xhci, struct usb_device *udev)
1094 {
1095 struct xhci_virt_device *dev;
1096 struct xhci_ep_ctx *ep0_ctx;
1097 struct xhci_slot_ctx *slot_ctx;
1098 u32 max_packets;
1099
1100 dev = xhci->devs[udev->slot_id];
1101 /* Slot ID 0 is reserved */
1102 if (udev->slot_id == 0 || !dev) {
1103 xhci_warn(xhci, "Slot ID %d is not assigned to this device\n",
1104 udev->slot_id);
1105 return -EINVAL;
1106 }
1107 ep0_ctx = xhci_get_ep_ctx(xhci, dev->in_ctx, 0);
1108 slot_ctx = xhci_get_slot_ctx(xhci, dev->in_ctx);
1109
1110 /* 3) Only the control endpoint is valid - one endpoint context */
1111 slot_ctx->dev_info |= cpu_to_le32(LAST_CTX(1) | udev->route);
1112 switch (udev->speed) {
1113 case USB_SPEED_SUPER_PLUS:
1114 slot_ctx->dev_info |= cpu_to_le32(SLOT_SPEED_SSP);
1115 max_packets = MAX_PACKET(512);
1116 break;
1117 case USB_SPEED_SUPER:
1118 slot_ctx->dev_info |= cpu_to_le32(SLOT_SPEED_SS);
1119 max_packets = MAX_PACKET(512);
1120 break;
1121 case USB_SPEED_HIGH:
1122 slot_ctx->dev_info |= cpu_to_le32(SLOT_SPEED_HS);
1123 max_packets = MAX_PACKET(64);
1124 break;
1125 /* USB core guesses at a 64-byte max packet first for FS devices */
1126 case USB_SPEED_FULL:
1127 slot_ctx->dev_info |= cpu_to_le32(SLOT_SPEED_FS);
1128 max_packets = MAX_PACKET(64);
1129 break;
1130 case USB_SPEED_LOW:
1131 slot_ctx->dev_info |= cpu_to_le32(SLOT_SPEED_LS);
1132 max_packets = MAX_PACKET(8);
1133 break;
1134 default:
1135 /* Speed was set earlier, this shouldn't happen. */
1136 return -EINVAL;
1137 }
1138 /* Find the root hub port this device is under */
1139 dev->rhub_port = xhci_find_rhub_port(xhci, udev);
1140 if (!dev->rhub_port)
1141 return -EINVAL;
1142 /* Slot ID is set to the device directly below the root hub */
1143 if (!udev->parent->parent)
1144 dev->rhub_port->slot_id = udev->slot_id;
1145 slot_ctx->dev_info2 |= cpu_to_le32(ROOT_HUB_PORT(dev->rhub_port->hw_portnum + 1));
1146 xhci_dbg(xhci, "Slot ID %d: HW portnum %d, hcd portnum %d\n",
1147 udev->slot_id, dev->rhub_port->hw_portnum, dev->rhub_port->hcd_portnum);
1148
1149 /* Find the right bandwidth table that this device will be a part of.
1150 * If this is a full speed device attached directly to a root port (or a
1151 * decendent of one), it counts as a primary bandwidth domain, not a
1152 * secondary bandwidth domain under a TT. An xhci_tt_info structure
1153 * will never be created for the HS root hub.
1154 */
1155 if (!udev->tt || !udev->tt->hub->parent) {
1156 dev->bw_table = &xhci->rh_bw[dev->rhub_port->hw_portnum].bw_table;
1157 } else {
1158 struct xhci_root_port_bw_info *rh_bw;
1159 struct xhci_tt_bw_info *tt_bw;
1160
1161 rh_bw = &xhci->rh_bw[dev->rhub_port->hw_portnum];
1162 /* Find the right TT. */
1163 list_for_each_entry(tt_bw, &rh_bw->tts, tt_list) {
1164 if (tt_bw->slot_id != udev->tt->hub->slot_id)
1165 continue;
1166
1167 if (!dev->udev->tt->multi ||
1168 (udev->tt->multi &&
1169 tt_bw->ttport == dev->udev->ttport)) {
1170 dev->bw_table = &tt_bw->bw_table;
1171 dev->tt_info = tt_bw;
1172 break;
1173 }
1174 }
1175 if (!dev->tt_info)
1176 xhci_warn(xhci, "WARN: Didn't find a matching TT\n");
1177 }
1178
1179 /* Is this a LS/FS device under an external HS hub? */
1180 if (udev->tt && udev->tt->hub->parent) {
1181 slot_ctx->tt_info = cpu_to_le32(udev->tt->hub->slot_id |
1182 (udev->ttport << 8));
1183 if (udev->tt->multi)
1184 slot_ctx->dev_info |= cpu_to_le32(DEV_MTT);
1185 }
1186 xhci_dbg(xhci, "udev->tt = %p\n", udev->tt);
1187 xhci_dbg(xhci, "udev->ttport = 0x%x\n", udev->ttport);
1188
1189 /* Step 4 - ring already allocated */
1190 /* Step 5 */
1191 ep0_ctx->ep_info2 = cpu_to_le32(EP_TYPE(CTRL_EP));
1192
1193 /* EP 0 can handle "burst" sizes of 1, so Max Burst Size field is 0 */
1194 ep0_ctx->ep_info2 |= cpu_to_le32(MAX_BURST(0) | ERROR_COUNT(3) |
1195 max_packets);
1196
1197 ep0_ctx->deq = cpu_to_le64(dev->eps[0].ring->first_seg->dma |
1198 dev->eps[0].ring->cycle_state);
1199
1200 ep0_ctx->tx_info = cpu_to_le32(EP_AVG_TRB_LENGTH(8));
1201
1202 trace_xhci_setup_addressable_virt_device(dev);
1203
1204 /* Steps 7 and 8 were done in xhci_alloc_virt_device() */
1205
1206 return 0;
1207 }
1208
1209 /*
1210 * Convert interval expressed as 2^(bInterval - 1) == interval into
1211 * straight exponent value 2^n == interval.
1212 *
1213 */
xhci_parse_exponent_interval(struct usb_device * udev,struct usb_host_endpoint * ep)1214 static unsigned int xhci_parse_exponent_interval(struct usb_device *udev,
1215 struct usb_host_endpoint *ep)
1216 {
1217 unsigned int interval;
1218
1219 interval = clamp_val(ep->desc.bInterval, 1, 16) - 1;
1220 if (interval != ep->desc.bInterval - 1)
1221 dev_warn(&udev->dev,
1222 "ep %#x - rounding interval to %d %sframes\n",
1223 ep->desc.bEndpointAddress,
1224 1 << interval,
1225 udev->speed == USB_SPEED_FULL ? "" : "micro");
1226
1227 if (udev->speed == USB_SPEED_FULL) {
1228 /*
1229 * Full speed isoc endpoints specify interval in frames,
1230 * not microframes. We are using microframes everywhere,
1231 * so adjust accordingly.
1232 */
1233 interval += 3; /* 1 frame = 2^3 uframes */
1234 }
1235
1236 return interval;
1237 }
1238
1239 /*
1240 * Convert bInterval expressed in microframes (in 1-255 range) to exponent of
1241 * microframes, rounded down to nearest power of 2.
1242 */
xhci_microframes_to_exponent(struct usb_device * udev,struct usb_host_endpoint * ep,unsigned int desc_interval,unsigned int min_exponent,unsigned int max_exponent)1243 static unsigned int xhci_microframes_to_exponent(struct usb_device *udev,
1244 struct usb_host_endpoint *ep, unsigned int desc_interval,
1245 unsigned int min_exponent, unsigned int max_exponent)
1246 {
1247 unsigned int interval;
1248
1249 interval = fls(desc_interval) - 1;
1250 interval = clamp_val(interval, min_exponent, max_exponent);
1251 if ((1 << interval) != desc_interval)
1252 dev_dbg(&udev->dev,
1253 "ep %#x - rounding interval to %d microframes, ep desc says %d microframes\n",
1254 ep->desc.bEndpointAddress,
1255 1 << interval,
1256 desc_interval);
1257
1258 return interval;
1259 }
1260
xhci_parse_microframe_interval(struct usb_device * udev,struct usb_host_endpoint * ep)1261 static unsigned int xhci_parse_microframe_interval(struct usb_device *udev,
1262 struct usb_host_endpoint *ep)
1263 {
1264 if (ep->desc.bInterval == 0)
1265 return 0;
1266 return xhci_microframes_to_exponent(udev, ep,
1267 ep->desc.bInterval, 0, 15);
1268 }
1269
1270
xhci_parse_frame_interval(struct usb_device * udev,struct usb_host_endpoint * ep)1271 static unsigned int xhci_parse_frame_interval(struct usb_device *udev,
1272 struct usb_host_endpoint *ep)
1273 {
1274 return xhci_microframes_to_exponent(udev, ep,
1275 ep->desc.bInterval * 8, 3, 10);
1276 }
1277
1278 /* Return the polling or NAK interval.
1279 *
1280 * The polling interval is expressed in "microframes". If xHCI's Interval field
1281 * is set to N, it will service the endpoint every 2^(Interval)*125us.
1282 *
1283 * The NAK interval is one NAK per 1 to 255 microframes, or no NAKs if interval
1284 * is set to 0.
1285 */
xhci_get_endpoint_interval(struct usb_device * udev,struct usb_host_endpoint * ep)1286 static unsigned int xhci_get_endpoint_interval(struct usb_device *udev,
1287 struct usb_host_endpoint *ep)
1288 {
1289 unsigned int interval = 0;
1290
1291 switch (udev->speed) {
1292 case USB_SPEED_HIGH:
1293 /* Max NAK rate */
1294 if (usb_endpoint_xfer_control(&ep->desc) ||
1295 usb_endpoint_xfer_bulk(&ep->desc)) {
1296 interval = xhci_parse_microframe_interval(udev, ep);
1297 break;
1298 }
1299 fallthrough; /* SS and HS isoc/int have same decoding */
1300
1301 case USB_SPEED_SUPER_PLUS:
1302 case USB_SPEED_SUPER:
1303 if (usb_endpoint_xfer_int(&ep->desc) ||
1304 usb_endpoint_xfer_isoc(&ep->desc)) {
1305 interval = xhci_parse_exponent_interval(udev, ep);
1306 }
1307 break;
1308
1309 case USB_SPEED_FULL:
1310 if (usb_endpoint_xfer_isoc(&ep->desc)) {
1311 interval = xhci_parse_exponent_interval(udev, ep);
1312 break;
1313 }
1314 /*
1315 * Fall through for interrupt endpoint interval decoding
1316 * since it uses the same rules as low speed interrupt
1317 * endpoints.
1318 */
1319 fallthrough;
1320
1321 case USB_SPEED_LOW:
1322 if (usb_endpoint_xfer_int(&ep->desc) ||
1323 usb_endpoint_xfer_isoc(&ep->desc)) {
1324
1325 interval = xhci_parse_frame_interval(udev, ep);
1326 }
1327 break;
1328
1329 default:
1330 BUG();
1331 }
1332 return interval;
1333 }
1334
1335 /*
1336 * xHCs without LEC use the "Mult" field in the endpoint context for SuperSpeed
1337 * isoc eps, and High speed isoc eps that support bandwidth doubling. Standard
1338 * High speed endpoint descriptors can define "the number of additional
1339 * transaction opportunities per microframe", but that goes in the Max Burst
1340 * endpoint context field.
1341 */
xhci_get_endpoint_mult(struct xhci_hcd * xhci,struct usb_device * udev,struct usb_host_endpoint * ep)1342 static u32 xhci_get_endpoint_mult(struct xhci_hcd *xhci,
1343 struct usb_device *udev,
1344 struct usb_host_endpoint *ep)
1345 {
1346 bool lec;
1347
1348 /* xHCI 1.1 with LEC set does not use mult field, except intel eUSB2 */
1349 lec = xhci->hci_version > 0x100 && (xhci->hcc_params2 & HCC2_LEC);
1350
1351 /* eUSB2 double isoc bw devices are the only USB2 devices using mult */
1352 if (usb_endpoint_is_hs_isoc_double(udev, ep) &&
1353 (!lec || xhci->quirks & XHCI_INTEL_HOST))
1354 return 1;
1355
1356 /* SuperSpeed isoc transfers on hosts without LEC uses mult field */
1357 if (udev->speed >= USB_SPEED_SUPER &&
1358 usb_endpoint_xfer_isoc(&ep->desc) && !lec)
1359 return ep->ss_ep_comp.bmAttributes;
1360
1361 return 0;
1362 }
1363
xhci_get_endpoint_max_burst(struct usb_device * udev,struct usb_host_endpoint * ep)1364 static u32 xhci_get_endpoint_max_burst(struct usb_device *udev,
1365 struct usb_host_endpoint *ep)
1366 {
1367 /* Super speed and Plus have max burst in ep companion desc */
1368 if (udev->speed >= USB_SPEED_SUPER)
1369 return ep->ss_ep_comp.bMaxBurst;
1370
1371 if (udev->speed == USB_SPEED_HIGH &&
1372 (usb_endpoint_xfer_isoc(&ep->desc) ||
1373 usb_endpoint_xfer_int(&ep->desc))) {
1374 /*
1375 * USB 2 Isochronous Double IN Bandwidth ECN uses fixed burst
1376 * size and max packets bits 12:11 are invalid.
1377 */
1378 if (usb_endpoint_is_hs_isoc_double(udev, ep))
1379 return 2;
1380
1381 return usb_endpoint_maxp_mult(&ep->desc) - 1;
1382 }
1383
1384 return 0;
1385 }
1386
xhci_get_endpoint_type(struct usb_host_endpoint * ep)1387 static u32 xhci_get_endpoint_type(struct usb_host_endpoint *ep)
1388 {
1389 int in;
1390
1391 in = usb_endpoint_dir_in(&ep->desc);
1392
1393 switch (usb_endpoint_type(&ep->desc)) {
1394 case USB_ENDPOINT_XFER_CONTROL:
1395 return CTRL_EP;
1396 case USB_ENDPOINT_XFER_BULK:
1397 return in ? BULK_IN_EP : BULK_OUT_EP;
1398 case USB_ENDPOINT_XFER_ISOC:
1399 return in ? ISOC_IN_EP : ISOC_OUT_EP;
1400 case USB_ENDPOINT_XFER_INT:
1401 return in ? INT_IN_EP : INT_OUT_EP;
1402 }
1403 return 0;
1404 }
1405
1406 /* Set up an endpoint with one ring segment. Do not allocate stream rings.
1407 * Drivers will have to call usb_alloc_streams() to do that.
1408 */
xhci_endpoint_init(struct xhci_hcd * xhci,struct xhci_virt_device * virt_dev,struct usb_device * udev,struct usb_host_endpoint * ep,gfp_t mem_flags)1409 int xhci_endpoint_init(struct xhci_hcd *xhci,
1410 struct xhci_virt_device *virt_dev,
1411 struct usb_device *udev,
1412 struct usb_host_endpoint *ep,
1413 gfp_t mem_flags)
1414 {
1415 unsigned int ep_index;
1416 struct xhci_ep_ctx *ep_ctx;
1417 struct xhci_ring *ep_ring;
1418 unsigned int max_packet;
1419 enum xhci_ring_type ring_type;
1420 u32 max_esit_payload;
1421 u32 endpoint_type;
1422 unsigned int max_burst;
1423 unsigned int interval;
1424 unsigned int mult;
1425 unsigned int avg_trb_len;
1426 unsigned int err_count = 0;
1427
1428 ep_index = xhci_get_endpoint_index(&ep->desc);
1429 ep_ctx = xhci_get_ep_ctx(xhci, virt_dev->in_ctx, ep_index);
1430
1431 endpoint_type = xhci_get_endpoint_type(ep);
1432 if (!endpoint_type)
1433 return -EINVAL;
1434
1435 ring_type = usb_endpoint_type(&ep->desc);
1436
1437 /* Ensure host supports double isoc bandwidth for eUSB2 devices */
1438 if (usb_endpoint_is_hs_isoc_double(udev, ep) && !(xhci->hcc_params2 & HCC2_EUSB2_DIC)) {
1439 dev_dbg(&udev->dev, "Double Isoc Bandwidth not supported by xhci\n");
1440 return -EINVAL;
1441 }
1442
1443 /*
1444 * Get values to fill the endpoint context, mostly from ep descriptor.
1445 * The average TRB buffer lengt for bulk endpoints is unclear as we
1446 * have no clue on scatter gather list entry size. For Isoc and Int,
1447 * set it to max available. See xHCI 1.1 spec 4.14.1.1 for details.
1448 */
1449 max_esit_payload = usb_endpoint_max_periodic_payload(udev, ep);
1450 interval = xhci_get_endpoint_interval(udev, ep);
1451
1452 /* Periodic endpoint bInterval limit quirk */
1453 if (usb_endpoint_xfer_int(&ep->desc) ||
1454 usb_endpoint_xfer_isoc(&ep->desc)) {
1455 if ((xhci->quirks & XHCI_LIMIT_ENDPOINT_INTERVAL_9) &&
1456 interval >= 9) {
1457 interval = 8;
1458 }
1459 if ((xhci->quirks & XHCI_LIMIT_ENDPOINT_INTERVAL_7) &&
1460 udev->speed >= USB_SPEED_HIGH &&
1461 interval >= 7) {
1462 interval = 6;
1463 }
1464 }
1465
1466 mult = xhci_get_endpoint_mult(xhci, udev, ep);
1467 max_packet = xhci_usb_endpoint_maxp(udev, ep);
1468 max_burst = xhci_get_endpoint_max_burst(udev, ep);
1469 avg_trb_len = max_esit_payload;
1470
1471 /* FIXME dig Mult and streams info out of ep companion desc */
1472
1473 /* Allow 3 retries for everything but isoc, set CErr = 3 */
1474 if (!usb_endpoint_xfer_isoc(&ep->desc))
1475 err_count = 3;
1476 /* HS bulk max packet should be 512, FS bulk supports 8, 16, 32 or 64 */
1477 if (usb_endpoint_xfer_bulk(&ep->desc)) {
1478 if (udev->speed == USB_SPEED_HIGH)
1479 max_packet = 512;
1480 if (udev->speed == USB_SPEED_FULL) {
1481 max_packet = rounddown_pow_of_two(max_packet);
1482 max_packet = clamp_val(max_packet, 8, 64);
1483 }
1484 }
1485 /* xHCI 1.0 and 1.1 indicates that ctrl ep avg TRB Length should be 8 */
1486 if (usb_endpoint_xfer_control(&ep->desc) && xhci->hci_version >= 0x100)
1487 avg_trb_len = 8;
1488
1489 /* Set up the endpoint ring */
1490 virt_dev->eps[ep_index].new_ring =
1491 xhci_ring_alloc(xhci, 2, ring_type, max_packet, mem_flags);
1492 if (!virt_dev->eps[ep_index].new_ring)
1493 return -ENOMEM;
1494
1495 virt_dev->eps[ep_index].skip = false;
1496 virt_dev->eps[ep_index].next_uframe = -1;
1497 ep_ring = virt_dev->eps[ep_index].new_ring;
1498 xhci_ring_init(xhci, ep_ring);
1499
1500 /* Fill the endpoint context */
1501 ep_ctx->ep_info = cpu_to_le32(EP_MAX_ESIT_PAYLOAD_HI(max_esit_payload) |
1502 EP_INTERVAL(interval) |
1503 EP_MULT(mult));
1504 ep_ctx->ep_info2 = cpu_to_le32(EP_TYPE(endpoint_type) |
1505 MAX_PACKET(max_packet) |
1506 MAX_BURST(max_burst) |
1507 ERROR_COUNT(err_count));
1508 ep_ctx->deq = cpu_to_le64(ep_ring->first_seg->dma |
1509 ep_ring->cycle_state);
1510
1511 ep_ctx->tx_info = cpu_to_le32(EP_MAX_ESIT_PAYLOAD_LO(max_esit_payload) |
1512 EP_AVG_TRB_LENGTH(avg_trb_len));
1513
1514 return 0;
1515 }
1516
xhci_endpoint_zero(struct xhci_hcd * xhci,struct xhci_virt_device * virt_dev,struct usb_host_endpoint * ep)1517 void xhci_endpoint_zero(struct xhci_hcd *xhci,
1518 struct xhci_virt_device *virt_dev,
1519 struct usb_host_endpoint *ep)
1520 {
1521 unsigned int ep_index;
1522 struct xhci_ep_ctx *ep_ctx;
1523
1524 ep_index = xhci_get_endpoint_index(&ep->desc);
1525 ep_ctx = xhci_get_ep_ctx(xhci, virt_dev->in_ctx, ep_index);
1526
1527 ep_ctx->ep_info = 0;
1528 ep_ctx->ep_info2 = 0;
1529 ep_ctx->deq = 0;
1530 ep_ctx->tx_info = 0;
1531 /* Don't free the endpoint ring until the set interface or configuration
1532 * request succeeds.
1533 */
1534 }
1535
xhci_clear_endpoint_bw_info(struct xhci_bw_info * bw_info)1536 void xhci_clear_endpoint_bw_info(struct xhci_bw_info *bw_info)
1537 {
1538 bw_info->ep_interval = 0;
1539 bw_info->mult = 0;
1540 bw_info->num_packets = 0;
1541 bw_info->max_packet_size = 0;
1542 bw_info->type = 0;
1543 bw_info->max_esit_payload = 0;
1544 }
1545
xhci_update_bw_info(struct xhci_hcd * xhci,struct xhci_container_ctx * in_ctx,struct xhci_input_control_ctx * ctrl_ctx,struct xhci_virt_device * virt_dev)1546 void xhci_update_bw_info(struct xhci_hcd *xhci,
1547 struct xhci_container_ctx *in_ctx,
1548 struct xhci_input_control_ctx *ctrl_ctx,
1549 struct xhci_virt_device *virt_dev)
1550 {
1551 struct xhci_bw_info *bw_info;
1552 struct xhci_ep_ctx *ep_ctx;
1553 unsigned int ep_type;
1554 int i;
1555
1556 for (i = 1; i < 31; i++) {
1557 bw_info = &virt_dev->eps[i].bw_info;
1558
1559 /* We can't tell what endpoint type is being dropped, but
1560 * unconditionally clearing the bandwidth info for non-periodic
1561 * endpoints should be harmless because the info will never be
1562 * set in the first place.
1563 */
1564 if (!EP_IS_ADDED(ctrl_ctx, i) && EP_IS_DROPPED(ctrl_ctx, i)) {
1565 /* Dropped endpoint */
1566 xhci_clear_endpoint_bw_info(bw_info);
1567 continue;
1568 }
1569
1570 if (EP_IS_ADDED(ctrl_ctx, i)) {
1571 ep_ctx = xhci_get_ep_ctx(xhci, in_ctx, i);
1572 ep_type = CTX_TO_EP_TYPE(le32_to_cpu(ep_ctx->ep_info2));
1573
1574 /* Ignore non-periodic endpoints */
1575 if (ep_type != ISOC_OUT_EP && ep_type != INT_OUT_EP &&
1576 ep_type != ISOC_IN_EP &&
1577 ep_type != INT_IN_EP)
1578 continue;
1579
1580 /* Added or changed endpoint */
1581 bw_info->ep_interval = CTX_TO_EP_INTERVAL(
1582 le32_to_cpu(ep_ctx->ep_info));
1583 /* Number of packets and mult are zero-based in the
1584 * input context, but we want one-based for the
1585 * interval table.
1586 */
1587 bw_info->mult = CTX_TO_EP_MULT(
1588 le32_to_cpu(ep_ctx->ep_info)) + 1;
1589 bw_info->num_packets = CTX_TO_MAX_BURST(
1590 le32_to_cpu(ep_ctx->ep_info2)) + 1;
1591 bw_info->max_packet_size = MAX_PACKET_DECODED(
1592 le32_to_cpu(ep_ctx->ep_info2));
1593 bw_info->type = ep_type;
1594 bw_info->max_esit_payload = CTX_TO_MAX_ESIT_PAYLOAD(
1595 le32_to_cpu(ep_ctx->tx_info));
1596 }
1597 }
1598 }
1599
1600 /* Copy output xhci_ep_ctx to the input xhci_ep_ctx copy.
1601 * Useful when you want to change one particular aspect of the endpoint and then
1602 * issue a configure endpoint command.
1603 */
xhci_endpoint_copy(struct xhci_hcd * xhci,struct xhci_container_ctx * in_ctx,struct xhci_container_ctx * out_ctx,unsigned int ep_index)1604 void xhci_endpoint_copy(struct xhci_hcd *xhci,
1605 struct xhci_container_ctx *in_ctx,
1606 struct xhci_container_ctx *out_ctx,
1607 unsigned int ep_index)
1608 {
1609 struct xhci_ep_ctx *out_ep_ctx;
1610 struct xhci_ep_ctx *in_ep_ctx;
1611
1612 out_ep_ctx = xhci_get_ep_ctx(xhci, out_ctx, ep_index);
1613 in_ep_ctx = xhci_get_ep_ctx(xhci, in_ctx, ep_index);
1614
1615 in_ep_ctx->ep_info = out_ep_ctx->ep_info;
1616 in_ep_ctx->ep_info2 = out_ep_ctx->ep_info2;
1617 in_ep_ctx->deq = out_ep_ctx->deq;
1618 in_ep_ctx->tx_info = out_ep_ctx->tx_info;
1619 if (xhci->quirks & XHCI_MTK_HOST) {
1620 in_ep_ctx->reserved[0] = out_ep_ctx->reserved[0];
1621 in_ep_ctx->reserved[1] = out_ep_ctx->reserved[1];
1622 }
1623 }
1624
1625 /* Copy output xhci_slot_ctx to the input xhci_slot_ctx.
1626 * Useful when you want to change one particular aspect of the endpoint and then
1627 * issue a configure endpoint command. Only the context entries field matters,
1628 * but we'll copy the whole thing anyway.
1629 */
xhci_slot_copy(struct xhci_hcd * xhci,struct xhci_container_ctx * in_ctx,struct xhci_container_ctx * out_ctx)1630 void xhci_slot_copy(struct xhci_hcd *xhci,
1631 struct xhci_container_ctx *in_ctx,
1632 struct xhci_container_ctx *out_ctx)
1633 {
1634 struct xhci_slot_ctx *in_slot_ctx;
1635 struct xhci_slot_ctx *out_slot_ctx;
1636
1637 in_slot_ctx = xhci_get_slot_ctx(xhci, in_ctx);
1638 out_slot_ctx = xhci_get_slot_ctx(xhci, out_ctx);
1639
1640 in_slot_ctx->dev_info = out_slot_ctx->dev_info;
1641 in_slot_ctx->dev_info2 = out_slot_ctx->dev_info2;
1642 in_slot_ctx->tt_info = out_slot_ctx->tt_info;
1643 in_slot_ctx->dev_state = out_slot_ctx->dev_state;
1644 }
1645
1646 /* Set up the scratchpad buffer array and scratchpad buffers, if needed. */
scratchpad_alloc(struct xhci_hcd * xhci,gfp_t flags)1647 static int scratchpad_alloc(struct xhci_hcd *xhci, gfp_t flags)
1648 {
1649 int i;
1650 struct device *dev = xhci_to_hcd(xhci)->self.sysdev;
1651 int num_sp = HCS_MAX_SCRATCHPAD(xhci->hcs_params2);
1652
1653 xhci_dbg_trace(xhci, trace_xhci_dbg_init,
1654 "Allocating %d scratchpad buffers", num_sp);
1655
1656 if (!num_sp)
1657 return 0;
1658
1659 xhci->scratchpad = kzalloc_node(sizeof(*xhci->scratchpad), flags,
1660 dev_to_node(dev));
1661 if (!xhci->scratchpad)
1662 goto fail_sp;
1663
1664 xhci->scratchpad->sp_array = dma_alloc_coherent(dev,
1665 array_size(sizeof(u64), num_sp),
1666 &xhci->scratchpad->sp_dma, flags);
1667 if (!xhci->scratchpad->sp_array)
1668 goto fail_sp2;
1669
1670 xhci->scratchpad->sp_buffers = kcalloc_node(num_sp, sizeof(void *),
1671 flags, dev_to_node(dev));
1672 if (!xhci->scratchpad->sp_buffers)
1673 goto fail_sp3;
1674
1675 xhci->dcbaa.ctx_array[0] = cpu_to_le64(xhci->scratchpad->sp_dma);
1676 for (i = 0; i < num_sp; i++) {
1677 dma_addr_t dma;
1678 void *buf = dma_alloc_coherent(dev, xhci->page_size, &dma,
1679 flags);
1680 if (!buf)
1681 goto fail_sp4;
1682
1683 xhci->scratchpad->sp_array[i] = dma;
1684 xhci->scratchpad->sp_buffers[i] = buf;
1685 }
1686
1687 return 0;
1688
1689 fail_sp4:
1690 while (i--)
1691 dma_free_coherent(dev, xhci->page_size,
1692 xhci->scratchpad->sp_buffers[i],
1693 xhci->scratchpad->sp_array[i]);
1694
1695 kfree(xhci->scratchpad->sp_buffers);
1696
1697 fail_sp3:
1698 dma_free_coherent(dev, array_size(sizeof(u64), num_sp),
1699 xhci->scratchpad->sp_array,
1700 xhci->scratchpad->sp_dma);
1701
1702 fail_sp2:
1703 kfree(xhci->scratchpad);
1704 xhci->scratchpad = NULL;
1705
1706 fail_sp:
1707 return -ENOMEM;
1708 }
1709
scratchpad_free(struct xhci_hcd * xhci)1710 static void scratchpad_free(struct xhci_hcd *xhci)
1711 {
1712 int num_sp;
1713 int i;
1714 struct device *dev = xhci_to_hcd(xhci)->self.sysdev;
1715
1716 if (!xhci->scratchpad)
1717 return;
1718
1719 num_sp = HCS_MAX_SCRATCHPAD(xhci->hcs_params2);
1720
1721 for (i = 0; i < num_sp; i++) {
1722 dma_free_coherent(dev, xhci->page_size,
1723 xhci->scratchpad->sp_buffers[i],
1724 xhci->scratchpad->sp_array[i]);
1725 }
1726 kfree(xhci->scratchpad->sp_buffers);
1727 dma_free_coherent(dev, array_size(sizeof(u64), num_sp),
1728 xhci->scratchpad->sp_array,
1729 xhci->scratchpad->sp_dma);
1730 kfree(xhci->scratchpad);
1731 xhci->scratchpad = NULL;
1732 }
1733
xhci_alloc_command(struct xhci_hcd * xhci,bool allocate_completion,gfp_t mem_flags)1734 struct xhci_command *xhci_alloc_command(struct xhci_hcd *xhci,
1735 bool allocate_completion, gfp_t mem_flags)
1736 {
1737 struct xhci_command *command;
1738 struct device *dev = xhci_to_hcd(xhci)->self.sysdev;
1739
1740 command = kzalloc_node(sizeof(*command), mem_flags, dev_to_node(dev));
1741 if (!command)
1742 return NULL;
1743
1744 if (allocate_completion) {
1745 command->completion =
1746 kzalloc_node(sizeof(struct completion), mem_flags,
1747 dev_to_node(dev));
1748 if (!command->completion) {
1749 kfree(command);
1750 return NULL;
1751 }
1752 init_completion(command->completion);
1753 }
1754
1755 command->status = 0;
1756 /* set default timeout to 5000 ms */
1757 command->timeout_ms = XHCI_CMD_DEFAULT_TIMEOUT;
1758 INIT_LIST_HEAD(&command->cmd_list);
1759 return command;
1760 }
1761
xhci_alloc_command_with_ctx(struct xhci_hcd * xhci,bool allocate_completion,gfp_t mem_flags)1762 struct xhci_command *xhci_alloc_command_with_ctx(struct xhci_hcd *xhci,
1763 bool allocate_completion, gfp_t mem_flags)
1764 {
1765 struct xhci_command *command;
1766
1767 command = xhci_alloc_command(xhci, allocate_completion, mem_flags);
1768 if (!command)
1769 return NULL;
1770
1771 command->in_ctx = xhci_alloc_container_ctx(xhci, XHCI_CTX_TYPE_INPUT,
1772 mem_flags);
1773 if (!command->in_ctx) {
1774 kfree(command->completion);
1775 kfree(command);
1776 return NULL;
1777 }
1778 return command;
1779 }
1780
xhci_urb_free_priv(struct urb_priv * urb_priv)1781 void xhci_urb_free_priv(struct urb_priv *urb_priv)
1782 {
1783 kfree(urb_priv);
1784 }
1785
xhci_free_command(struct xhci_hcd * xhci,struct xhci_command * command)1786 void xhci_free_command(struct xhci_hcd *xhci,
1787 struct xhci_command *command)
1788 {
1789 xhci_free_container_ctx(xhci,
1790 command->in_ctx);
1791 kfree(command->completion);
1792 kfree(command);
1793 }
1794
xhci_alloc_erst(struct xhci_hcd * xhci,struct xhci_ring * evt_ring,struct xhci_erst * erst,gfp_t flags)1795 static int xhci_alloc_erst(struct xhci_hcd *xhci,
1796 struct xhci_ring *evt_ring,
1797 struct xhci_erst *erst,
1798 gfp_t flags)
1799 {
1800 size_t size;
1801 unsigned int val;
1802 struct xhci_segment *seg;
1803 struct xhci_erst_entry *entry;
1804
1805 size = array_size(sizeof(struct xhci_erst_entry), evt_ring->num_segs);
1806 erst->entries = dma_alloc_coherent(xhci_to_hcd(xhci)->self.sysdev,
1807 size, &erst->erst_dma_addr, flags);
1808 if (!erst->entries)
1809 return -ENOMEM;
1810
1811 erst->num_entries = evt_ring->num_segs;
1812
1813 seg = evt_ring->first_seg;
1814 for (val = 0; val < evt_ring->num_segs; val++) {
1815 entry = &erst->entries[val];
1816 entry->seg_addr = cpu_to_le64(seg->dma);
1817 entry->seg_size = cpu_to_le32(TRBS_PER_SEGMENT);
1818 entry->rsvd = 0;
1819 seg = seg->next;
1820 }
1821
1822 return 0;
1823 }
1824
1825 static void
xhci_remove_interrupter(struct xhci_hcd * xhci,struct xhci_interrupter * ir)1826 xhci_remove_interrupter(struct xhci_hcd *xhci, struct xhci_interrupter *ir)
1827 {
1828 u32 tmp;
1829
1830 if (!ir)
1831 return;
1832
1833 /*
1834 * Clean out interrupter registers except ERSTBA. Clearing either the
1835 * low or high 32 bits of ERSTBA immediately causes the controller to
1836 * dereference the partially cleared 64 bit address, causing IOMMU error.
1837 */
1838 if (ir->ir_set) {
1839 tmp = readl(&ir->ir_set->erst_size);
1840 tmp &= ~ERST_SIZE_MASK;
1841 writel(tmp, &ir->ir_set->erst_size);
1842
1843 xhci_update_erst_dequeue(xhci, ir, true);
1844 }
1845 }
1846
1847 static void
xhci_free_interrupter(struct xhci_hcd * xhci,struct xhci_interrupter * ir)1848 xhci_free_interrupter(struct xhci_hcd *xhci, struct xhci_interrupter *ir)
1849 {
1850 struct device *dev = xhci_to_hcd(xhci)->self.sysdev;
1851 size_t erst_size;
1852
1853 if (!ir)
1854 return;
1855
1856 erst_size = array_size(sizeof(struct xhci_erst_entry), ir->erst.num_entries);
1857 if (ir->erst.entries)
1858 dma_free_coherent(dev, erst_size,
1859 ir->erst.entries,
1860 ir->erst.erst_dma_addr);
1861 ir->erst.entries = NULL;
1862
1863 /* free interrupter event ring */
1864 if (ir->event_ring)
1865 xhci_ring_free(xhci, ir->event_ring);
1866
1867 ir->event_ring = NULL;
1868
1869 kfree(ir);
1870 }
1871
xhci_remove_secondary_interrupter(struct usb_hcd * hcd,struct xhci_interrupter * ir)1872 void xhci_remove_secondary_interrupter(struct usb_hcd *hcd, struct xhci_interrupter *ir)
1873 {
1874 struct xhci_hcd *xhci = hcd_to_xhci(hcd);
1875 unsigned int intr_num;
1876
1877 spin_lock_irq(&xhci->lock);
1878
1879 /* interrupter 0 is primary interrupter, don't touch it */
1880 if (!ir || !ir->intr_num || ir->intr_num >= xhci->max_interrupters) {
1881 xhci_dbg(xhci, "Invalid secondary interrupter, can't remove\n");
1882 spin_unlock_irq(&xhci->lock);
1883 return;
1884 }
1885
1886 /*
1887 * Cleanup secondary interrupter to ensure there are no pending events.
1888 * This also updates event ring dequeue pointer back to the start.
1889 */
1890 xhci_skip_sec_intr_events(xhci, ir->event_ring, ir);
1891 intr_num = ir->intr_num;
1892
1893 xhci_remove_interrupter(xhci, ir);
1894 xhci->interrupters[intr_num] = NULL;
1895
1896 spin_unlock_irq(&xhci->lock);
1897
1898 xhci_free_interrupter(xhci, ir);
1899 }
1900 EXPORT_SYMBOL_GPL(xhci_remove_secondary_interrupter);
1901
1902 /* Cleanup roothub bandwidth data */
xhci_rh_bw_cleanup(struct xhci_hcd * xhci)1903 void xhci_rh_bw_cleanup(struct xhci_hcd *xhci)
1904 {
1905 struct xhci_root_port_bw_info *rh_bw;
1906 struct xhci_tt_bw_info *tt_info, *tt_next;
1907 struct list_head *eps, *ep, *ep_next;
1908
1909 for (int i = 0; i < xhci->max_ports; i++) {
1910 rh_bw = &xhci->rh_bw[i];
1911
1912 /* Clear and free all TT bandwidth entries */
1913 list_for_each_entry_safe(tt_info, tt_next, &rh_bw->tts, tt_list) {
1914 list_del(&tt_info->tt_list);
1915 kfree(tt_info);
1916 }
1917
1918 /* Clear per-interval endpoint lists */
1919 for (int j = 0; j < XHCI_MAX_INTERVAL; j++) {
1920 eps = &rh_bw->bw_table.interval_bw[j].endpoints;
1921
1922 list_for_each_safe(ep, ep_next, eps)
1923 list_del_init(ep);
1924 }
1925 }
1926 }
1927
xhci_mem_cleanup(struct xhci_hcd * xhci)1928 void xhci_mem_cleanup(struct xhci_hcd *xhci)
1929 {
1930 struct device *dev = xhci_to_hcd(xhci)->self.sysdev;
1931 struct xhci_device_context_array *dcbaa;
1932 int i;
1933
1934 cancel_delayed_work_sync(&xhci->cmd_timer);
1935
1936 for (i = 0; xhci->interrupters && i < xhci->max_interrupters; i++) {
1937 if (xhci->interrupters[i]) {
1938 xhci_remove_interrupter(xhci, xhci->interrupters[i]);
1939 xhci_free_interrupter(xhci, xhci->interrupters[i]);
1940 xhci->interrupters[i] = NULL;
1941 }
1942 }
1943 xhci_dbg_trace(xhci, trace_xhci_dbg_init, "Freed interrupters");
1944
1945 if (xhci->cmd_ring)
1946 xhci_ring_free(xhci, xhci->cmd_ring);
1947 xhci->cmd_ring = NULL;
1948 xhci_dbg_trace(xhci, trace_xhci_dbg_init, "Freed command ring");
1949 xhci_cleanup_command_queue(xhci);
1950
1951 if (xhci->devs) {
1952 for (i = xhci->max_slots; i > 0; i--)
1953 xhci_free_virt_devices_depth_first(xhci, i);
1954 kfree(xhci->devs);
1955 }
1956
1957 dma_pool_destroy(xhci->segment_pool);
1958 xhci->segment_pool = NULL;
1959 xhci_dbg_trace(xhci, trace_xhci_dbg_init, "Freed segment pool");
1960
1961 dma_pool_destroy(xhci->device_pool);
1962 xhci->device_pool = NULL;
1963 xhci_dbg_trace(xhci, trace_xhci_dbg_init, "Freed device context pool");
1964
1965 dma_pool_destroy(xhci->small_streams_pool);
1966 xhci->small_streams_pool = NULL;
1967 xhci_dbg_trace(xhci, trace_xhci_dbg_init,
1968 "Freed small stream array pool");
1969
1970 dma_pool_destroy(xhci->port_bw_pool);
1971 xhci->port_bw_pool = NULL;
1972 xhci_dbg_trace(xhci, trace_xhci_dbg_init,
1973 "Freed xhci port bw array pool");
1974
1975 dma_pool_destroy(xhci->medium_streams_pool);
1976 xhci->medium_streams_pool = NULL;
1977 xhci_dbg_trace(xhci, trace_xhci_dbg_init,
1978 "Freed medium stream array pool");
1979
1980 dcbaa = &xhci->dcbaa;
1981 if (dcbaa->ctx_array) {
1982 dma_free_coherent(dev, array_size(sizeof(*dcbaa->ctx_array), xhci->max_slots + 1),
1983 dcbaa->ctx_array, dcbaa->dma);
1984 dcbaa->ctx_array = NULL;
1985 }
1986
1987 scratchpad_free(xhci);
1988
1989 if (xhci->rh_bw)
1990 xhci_rh_bw_cleanup(xhci);
1991
1992 xhci->cmd_ring_reserved_trbs = 0;
1993 xhci->usb2_rhub.num_ports = 0;
1994 xhci->usb3_rhub.num_ports = 0;
1995 xhci->num_active_eps = 0;
1996 kfree(xhci->usb2_rhub.ports);
1997 kfree(xhci->usb3_rhub.ports);
1998 kfree(xhci->hw_ports);
1999 kfree(xhci->rh_bw);
2000 for (i = 0; i < xhci->num_port_caps; i++)
2001 kfree(xhci->port_caps[i].psi);
2002 kfree(xhci->port_caps);
2003 kfree(xhci->interrupters);
2004 xhci->num_port_caps = 0;
2005
2006 xhci->usb2_rhub.ports = NULL;
2007 xhci->usb3_rhub.ports = NULL;
2008 xhci->hw_ports = NULL;
2009 xhci->rh_bw = NULL;
2010 xhci->port_caps = NULL;
2011 xhci->interrupters = NULL;
2012 xhci->devs = NULL;
2013
2014 xhci->usb2_rhub.bus_state.bus_suspended = 0;
2015 xhci->usb3_rhub.bus_state.bus_suspended = 0;
2016 }
2017
xhci_set_hc_event_deq(struct xhci_hcd * xhci,struct xhci_interrupter * ir)2018 static void xhci_set_hc_event_deq(struct xhci_hcd *xhci, struct xhci_interrupter *ir)
2019 {
2020 dma_addr_t deq;
2021
2022 deq = xhci_trb_virt_to_dma(ir->event_ring->deq_seg,
2023 ir->event_ring->dequeue);
2024 if (!deq)
2025 xhci_warn(xhci, "WARN something wrong with SW event ring dequeue ptr.\n");
2026 /* Update HC event ring dequeue pointer */
2027 /* Don't clear the EHB bit (which is RW1C) because
2028 * there might be more events to service.
2029 */
2030 xhci_dbg_trace(xhci, trace_xhci_dbg_init,
2031 "// Write event ring dequeue pointer, preserving EHB bit");
2032 xhci_write_64(xhci, deq & ERST_PTR_MASK, &ir->ir_set->erst_dequeue);
2033 }
2034
xhci_add_in_port(struct xhci_hcd * xhci,unsigned int num_ports,__le32 __iomem * addr,int max_caps)2035 static void xhci_add_in_port(struct xhci_hcd *xhci, unsigned int num_ports,
2036 __le32 __iomem *addr, int max_caps)
2037 {
2038 u32 temp, port_offset, port_count;
2039 int i;
2040 u8 major_revision, minor_revision, tmp_minor_revision;
2041 struct xhci_hub *rhub;
2042 struct device *dev = xhci_to_hcd(xhci)->self.sysdev;
2043 struct xhci_port_cap *port_cap;
2044
2045 temp = readl(addr);
2046 major_revision = XHCI_EXT_PORT_MAJOR(temp);
2047 minor_revision = XHCI_EXT_PORT_MINOR(temp);
2048
2049 if (major_revision == 0x03) {
2050 rhub = &xhci->usb3_rhub;
2051 /*
2052 * Some hosts incorrectly use sub-minor version for minor
2053 * version (i.e. 0x02 instead of 0x20 for bcdUSB 0x320 and 0x01
2054 * for bcdUSB 0x310). Since there is no USB release with sub
2055 * minor version 0x301 to 0x309, we can assume that they are
2056 * incorrect and fix it here.
2057 */
2058 if (minor_revision > 0x00 && minor_revision < 0x10)
2059 minor_revision <<= 4;
2060 /*
2061 * Some zhaoxin's xHCI controller that follow usb3.1 spec
2062 * but only support Gen1.
2063 */
2064 if (xhci->quirks & XHCI_ZHAOXIN_HOST) {
2065 tmp_minor_revision = minor_revision;
2066 minor_revision = 0;
2067 }
2068
2069 } else if (major_revision <= 0x02) {
2070 rhub = &xhci->usb2_rhub;
2071 } else {
2072 xhci_warn(xhci, "Ignoring unknown port speed, Ext Cap %p, revision = 0x%x\n",
2073 addr, major_revision);
2074 /* Ignoring port protocol we can't understand. FIXME */
2075 return;
2076 }
2077
2078 /* Port offset and count in the third dword, see section 7.2 */
2079 temp = readl(addr + 2);
2080 port_offset = XHCI_EXT_PORT_OFF(temp);
2081 port_count = XHCI_EXT_PORT_COUNT(temp);
2082 xhci_dbg_trace(xhci, trace_xhci_dbg_init,
2083 "Ext Cap %p, port offset = %u, count = %u, revision = 0x%x",
2084 addr, port_offset, port_count, major_revision);
2085 /* Port count includes the current port offset */
2086 if (port_offset == 0 || (port_offset + port_count - 1) > num_ports)
2087 /* WTF? "Valid values are '1' to MaxPorts" */
2088 return;
2089
2090 port_cap = &xhci->port_caps[xhci->num_port_caps++];
2091 if (xhci->num_port_caps > max_caps)
2092 return;
2093
2094 port_cap->psi_count = XHCI_EXT_PORT_PSIC(temp);
2095
2096 if (port_cap->psi_count) {
2097 port_cap->psi = kcalloc_node(port_cap->psi_count,
2098 sizeof(*port_cap->psi),
2099 GFP_KERNEL, dev_to_node(dev));
2100 if (!port_cap->psi)
2101 port_cap->psi_count = 0;
2102
2103 port_cap->psi_uid_count++;
2104 for (i = 0; i < port_cap->psi_count; i++) {
2105 port_cap->psi[i] = readl(addr + 4 + i);
2106
2107 /* count unique ID values, two consecutive entries can
2108 * have the same ID if link is assymetric
2109 */
2110 if (i && (XHCI_EXT_PORT_PSIV(port_cap->psi[i]) !=
2111 XHCI_EXT_PORT_PSIV(port_cap->psi[i - 1])))
2112 port_cap->psi_uid_count++;
2113
2114 if (xhci->quirks & XHCI_ZHAOXIN_HOST &&
2115 major_revision == 0x03 &&
2116 XHCI_EXT_PORT_PSIV(port_cap->psi[i]) >= 5)
2117 minor_revision = tmp_minor_revision;
2118
2119 xhci_dbg(xhci, "PSIV:%d PSIE:%d PLT:%d PFD:%d LP:%d PSIM:%d\n",
2120 XHCI_EXT_PORT_PSIV(port_cap->psi[i]),
2121 XHCI_EXT_PORT_PSIE(port_cap->psi[i]),
2122 XHCI_EXT_PORT_PLT(port_cap->psi[i]),
2123 XHCI_EXT_PORT_PFD(port_cap->psi[i]),
2124 XHCI_EXT_PORT_LP(port_cap->psi[i]),
2125 XHCI_EXT_PORT_PSIM(port_cap->psi[i]));
2126 }
2127 }
2128
2129 rhub->maj_rev = major_revision;
2130
2131 if (rhub->min_rev < minor_revision)
2132 rhub->min_rev = minor_revision;
2133
2134 port_cap->maj_rev = major_revision;
2135 port_cap->min_rev = minor_revision;
2136 port_cap->protocol_caps = temp;
2137
2138 if ((xhci->hci_version >= 0x100) && (major_revision != 0x03) &&
2139 (temp & XHCI_HLC)) {
2140 xhci_dbg_trace(xhci, trace_xhci_dbg_init,
2141 "xHCI 1.0: support USB2 hardware lpm");
2142 xhci->hw_lpm_support = 1;
2143 }
2144
2145 port_offset--;
2146 for (i = port_offset; i < (port_offset + port_count); i++) {
2147 struct xhci_port *hw_port = &xhci->hw_ports[i];
2148 /* Duplicate entry. Ignore the port if the revisions differ. */
2149 if (hw_port->rhub) {
2150 xhci_warn(xhci, "Duplicate port entry, Ext Cap %p, port %u\n", addr, i);
2151 xhci_warn(xhci, "Port was marked as USB %u, duplicated as USB %u\n",
2152 hw_port->rhub->maj_rev, major_revision);
2153 /* Only adjust the roothub port counts if we haven't
2154 * found a similar duplicate.
2155 */
2156 if (hw_port->rhub != rhub &&
2157 hw_port->hcd_portnum != DUPLICATE_ENTRY) {
2158 hw_port->rhub->num_ports--;
2159 hw_port->hcd_portnum = DUPLICATE_ENTRY;
2160 }
2161 continue;
2162 }
2163 hw_port->rhub = rhub;
2164 hw_port->port_cap = port_cap;
2165 rhub->num_ports++;
2166 }
2167 /* FIXME: Should we disable ports not in the Extended Capabilities? */
2168 }
2169
xhci_create_rhub_port_array(struct xhci_hcd * xhci,struct xhci_hub * rhub,unsigned int max_ports,gfp_t flags)2170 static void xhci_create_rhub_port_array(struct xhci_hcd *xhci, struct xhci_hub *rhub,
2171 unsigned int max_ports, gfp_t flags)
2172 {
2173 int port_index = 0;
2174 int i;
2175 struct device *dev = xhci_to_hcd(xhci)->self.sysdev;
2176
2177 if (!rhub->num_ports) {
2178 xhci_info(xhci, "USB%u root hub has no ports\n", rhub->maj_rev);
2179 return;
2180 }
2181
2182 /*
2183 * Place limits on the number of roothub ports so that the hub
2184 * descriptors aren't longer than the USB core will allocate.
2185 */
2186 if (rhub->num_ports > max_ports) {
2187 xhci->usb3_rhub.num_ports = max_ports;
2188 xhci_dbg_trace(xhci, trace_xhci_dbg_init, "Limiting USB%u root hub ports to %u",
2189 rhub->maj_rev, max_ports);
2190 }
2191
2192 rhub->ports = kcalloc_node(rhub->num_ports, sizeof(*rhub->ports),
2193 flags, dev_to_node(dev));
2194 if (!rhub->ports)
2195 return;
2196
2197 for (i = 0; i < xhci->max_ports; i++) {
2198 if (xhci->hw_ports[i].rhub != rhub ||
2199 xhci->hw_ports[i].hcd_portnum == DUPLICATE_ENTRY)
2200 continue;
2201 xhci->hw_ports[i].hcd_portnum = port_index;
2202 rhub->ports[port_index] = &xhci->hw_ports[i];
2203 port_index++;
2204 if (port_index == rhub->num_ports)
2205 break;
2206 }
2207 }
2208
2209 /*
2210 * Scan the Extended Capabilities for the "Supported Protocol Capabilities" that
2211 * specify what speeds each port is supposed to be. We can't count on the port
2212 * speed bits in the PORTSC register being correct until a device is connected,
2213 * but we need to set up the two fake roothubs with the correct number of USB
2214 * 3.0 and USB 2.0 ports at host controller initialization time.
2215 */
xhci_setup_port_arrays(struct xhci_hcd * xhci,gfp_t flags)2216 static int xhci_setup_port_arrays(struct xhci_hcd *xhci, gfp_t flags)
2217 {
2218 void __iomem *base;
2219 u32 offset;
2220 int i, j;
2221 int cap_count = 0;
2222 u32 cap_start;
2223 struct device *dev = xhci_to_hcd(xhci)->self.sysdev;
2224
2225 xhci->hw_ports = kcalloc_node(xhci->max_ports, sizeof(*xhci->hw_ports),
2226 flags, dev_to_node(dev));
2227 if (!xhci->hw_ports)
2228 return -ENOMEM;
2229
2230 for (i = 0; i < xhci->max_ports; i++) {
2231 xhci->hw_ports[i].port_reg = &xhci->op_regs->port_regs[i];
2232 xhci->hw_ports[i].hw_portnum = i;
2233
2234 init_completion(&xhci->hw_ports[i].rexit_done);
2235 init_completion(&xhci->hw_ports[i].u3exit_done);
2236 }
2237
2238 xhci->rh_bw = kcalloc_node(xhci->max_ports, sizeof(*xhci->rh_bw), flags, dev_to_node(dev));
2239 if (!xhci->rh_bw)
2240 return -ENOMEM;
2241 for (i = 0; i < xhci->max_ports; i++) {
2242 struct xhci_interval_bw_table *bw_table;
2243
2244 INIT_LIST_HEAD(&xhci->rh_bw[i].tts);
2245 bw_table = &xhci->rh_bw[i].bw_table;
2246 for (j = 0; j < XHCI_MAX_INTERVAL; j++)
2247 INIT_LIST_HEAD(&bw_table->interval_bw[j].endpoints);
2248 }
2249 base = &xhci->cap_regs->hc_capbase;
2250
2251 cap_start = xhci_find_next_ext_cap(base, 0, XHCI_EXT_CAPS_PROTOCOL);
2252 if (!cap_start) {
2253 xhci_err(xhci, "No Extended Capability registers, unable to set up roothub\n");
2254 return -ENODEV;
2255 }
2256
2257 offset = cap_start;
2258 /* count extended protocol capability entries for later caching */
2259 while (offset) {
2260 cap_count++;
2261 offset = xhci_find_next_ext_cap(base, offset,
2262 XHCI_EXT_CAPS_PROTOCOL);
2263 }
2264
2265 xhci->port_caps = kcalloc_node(cap_count, sizeof(*xhci->port_caps),
2266 flags, dev_to_node(dev));
2267 if (!xhci->port_caps)
2268 return -ENOMEM;
2269
2270 offset = cap_start;
2271
2272 while (offset) {
2273 xhci_add_in_port(xhci, xhci->max_ports, base + offset, cap_count);
2274 if (xhci->usb2_rhub.num_ports + xhci->usb3_rhub.num_ports == xhci->max_ports)
2275 break;
2276 offset = xhci_find_next_ext_cap(base, offset,
2277 XHCI_EXT_CAPS_PROTOCOL);
2278 }
2279 if (xhci->usb2_rhub.num_ports == 0 && xhci->usb3_rhub.num_ports == 0) {
2280 xhci_warn(xhci, "No ports on the roothubs?\n");
2281 return -ENODEV;
2282 }
2283 xhci_dbg_trace(xhci, trace_xhci_dbg_init,
2284 "Found %u USB 2.0 ports and %u USB 3.0 ports.",
2285 xhci->usb2_rhub.num_ports, xhci->usb3_rhub.num_ports);
2286
2287 xhci_create_rhub_port_array(xhci, &xhci->usb2_rhub, USB_MAXCHILDREN, flags);
2288 xhci_create_rhub_port_array(xhci, &xhci->usb3_rhub, USB_SS_MAXPORTS, flags);
2289
2290 return 0;
2291 }
2292
2293 static struct xhci_interrupter *
xhci_alloc_interrupter(struct xhci_hcd * xhci,unsigned int segs,gfp_t flags)2294 xhci_alloc_interrupter(struct xhci_hcd *xhci, unsigned int segs, gfp_t flags)
2295 {
2296 struct device *dev = xhci_to_hcd(xhci)->self.sysdev;
2297 struct xhci_interrupter *ir;
2298 unsigned int max_segs;
2299 int ret;
2300
2301 if (!segs)
2302 segs = ERST_DEFAULT_SEGS;
2303
2304 max_segs = BIT(FIELD_GET(HCS_ERST_MAX, xhci->hcs_params2));
2305 segs = min(segs, max_segs);
2306
2307 ir = kzalloc_node(sizeof(*ir), flags, dev_to_node(dev));
2308 if (!ir)
2309 return NULL;
2310
2311 ir->event_ring = xhci_ring_alloc(xhci, segs, TYPE_EVENT, 0, flags);
2312 if (!ir->event_ring) {
2313 xhci_warn(xhci, "Failed to allocate interrupter event ring\n");
2314 kfree(ir);
2315 return NULL;
2316 }
2317
2318 ret = xhci_alloc_erst(xhci, ir->event_ring, &ir->erst, flags);
2319 if (ret) {
2320 xhci_warn(xhci, "Failed to allocate interrupter erst\n");
2321 xhci_ring_free(xhci, ir->event_ring);
2322 kfree(ir);
2323 return NULL;
2324 }
2325
2326 return ir;
2327 }
2328
xhci_add_interrupter(struct xhci_hcd * xhci,unsigned int intr_num)2329 void xhci_add_interrupter(struct xhci_hcd *xhci, unsigned int intr_num)
2330 {
2331 struct xhci_interrupter *ir;
2332 u64 erst_base;
2333 u32 erst_size;
2334
2335 ir = xhci->interrupters[intr_num];
2336 ir->intr_num = intr_num;
2337 ir->ir_set = &xhci->run_regs->ir_set[intr_num];
2338
2339 /* set ERST count with the number of entries in the segment table */
2340 erst_size = readl(&ir->ir_set->erst_size);
2341 erst_size &= ~ERST_SIZE_MASK;
2342 erst_size |= ir->event_ring->num_segs;
2343 writel(erst_size, &ir->ir_set->erst_size);
2344
2345 erst_base = xhci_read_64(xhci, &ir->ir_set->erst_base);
2346 erst_base &= ~ERST_BASE_ADDRESS_MASK;
2347 erst_base |= ir->erst.erst_dma_addr & ERST_BASE_ADDRESS_MASK;
2348 if (xhci->quirks & XHCI_WRITE_64_HI_LO)
2349 hi_lo_writeq(erst_base, &ir->ir_set->erst_base);
2350 else
2351 xhci_write_64(xhci, erst_base, &ir->ir_set->erst_base);
2352
2353 /* Set the event ring dequeue address of this interrupter */
2354 xhci_set_hc_event_deq(xhci, ir);
2355 }
2356
2357 struct xhci_interrupter *
xhci_create_secondary_interrupter(struct usb_hcd * hcd,unsigned int segs,u32 imod_interval,unsigned int intr_num)2358 xhci_create_secondary_interrupter(struct usb_hcd *hcd, unsigned int segs,
2359 u32 imod_interval, unsigned int intr_num)
2360 {
2361 struct xhci_hcd *xhci = hcd_to_xhci(hcd);
2362 struct xhci_interrupter *ir;
2363 unsigned int i;
2364 int err = -ENOSPC;
2365
2366 if (!xhci->interrupters || xhci->max_interrupters <= 1 ||
2367 intr_num >= xhci->max_interrupters)
2368 return NULL;
2369
2370 ir = xhci_alloc_interrupter(xhci, segs, GFP_KERNEL);
2371 if (!ir)
2372 return NULL;
2373
2374 xhci_ring_init(xhci, ir->event_ring);
2375
2376 spin_lock_irq(&xhci->lock);
2377 if (!intr_num) {
2378 /* Find available secondary interrupter, interrupter 0 is reserved for primary */
2379 for (i = 1; i < xhci->max_interrupters; i++) {
2380 if (!xhci->interrupters[i]) {
2381 xhci->interrupters[i] = ir;
2382 xhci_add_interrupter(xhci, i);
2383 err = 0;
2384 break;
2385 }
2386 }
2387 } else {
2388 if (!xhci->interrupters[intr_num]) {
2389 xhci->interrupters[intr_num] = ir;
2390 xhci_add_interrupter(xhci, intr_num);
2391 err = 0;
2392 }
2393 }
2394 spin_unlock_irq(&xhci->lock);
2395
2396 if (err) {
2397 xhci_warn(xhci, "Failed to add secondary interrupter, max interrupters %d\n",
2398 xhci->max_interrupters);
2399 xhci_free_interrupter(xhci, ir);
2400 return NULL;
2401 }
2402
2403 xhci_set_interrupter_moderation(ir, imod_interval);
2404
2405 xhci_dbg(xhci, "Add secondary interrupter %d, max interrupters %d\n",
2406 ir->intr_num, xhci->max_interrupters);
2407
2408 return ir;
2409 }
2410 EXPORT_SYMBOL_GPL(xhci_create_secondary_interrupter);
2411
xhci_mem_init(struct xhci_hcd * xhci,gfp_t flags)2412 int xhci_mem_init(struct xhci_hcd *xhci, gfp_t flags)
2413 {
2414 struct device *dev = xhci_to_hcd(xhci)->self.sysdev;
2415 struct xhci_device_context_array *dcbaa = &xhci->dcbaa;
2416
2417 xhci_dbg_trace(xhci, trace_xhci_dbg_init, "Starting %s", __func__);
2418
2419 xhci_dbg_trace(xhci, trace_xhci_dbg_init, "Allocating internal virtual device array");
2420 xhci->devs = kcalloc_node(xhci->max_slots + 1, sizeof(*xhci->devs), flags,
2421 dev_to_node(dev));
2422 if (!xhci->devs)
2423 goto fail;
2424
2425 xhci->dcbaa.ctx_array =
2426 dma_alloc_coherent(dev, array_size(sizeof(*dcbaa->ctx_array), xhci->max_slots + 1),
2427 &dcbaa->dma, flags);
2428 if (!dcbaa->ctx_array)
2429 goto fail;
2430
2431 xhci_dbg_trace(xhci, trace_xhci_dbg_init,
2432 "Device context base array address = %pad (DMA), %p (virt)",
2433 &dcbaa->dma, dcbaa->ctx_array);
2434
2435 /*
2436 * Initialize the ring segment pool. The ring must be a contiguous
2437 * structure comprised of TRBs. The TRBs must be 16 byte aligned,
2438 * however, the command ring segment needs 64-byte aligned segments
2439 * and our use of dma addresses in the trb_address_map radix tree needs
2440 * TRB_SEGMENT_SIZE alignment, so we pick the greater alignment need.
2441 */
2442 if (xhci->quirks & XHCI_TRB_OVERFETCH)
2443 /* Buggy HC prefetches beyond segment bounds - allocate dummy space at the end */
2444 xhci->segment_pool = dma_pool_create("xHCI ring segments", dev,
2445 TRB_SEGMENT_SIZE * 2, TRB_SEGMENT_SIZE * 2, xhci->page_size * 2);
2446 else
2447 xhci->segment_pool = dma_pool_create("xHCI ring segments", dev,
2448 TRB_SEGMENT_SIZE, TRB_SEGMENT_SIZE, xhci->page_size);
2449 if (!xhci->segment_pool)
2450 goto fail;
2451
2452 /* See Table 46 and Note on Figure 55 */
2453 xhci->device_pool = dma_pool_create("xHCI input/output contexts", dev, 2112, 64,
2454 xhci->page_size);
2455 if (!xhci->device_pool)
2456 goto fail;
2457
2458 /*
2459 * Linear stream context arrays don't have any boundary restrictions,
2460 * and only need to be 16-byte aligned.
2461 */
2462 xhci->small_streams_pool = dma_pool_create("xHCI 256 byte stream ctx arrays",
2463 dev, SMALL_STREAM_ARRAY_SIZE, 16, 0);
2464 if (!xhci->small_streams_pool)
2465 goto fail;
2466
2467 /*
2468 * Any stream context array bigger than MEDIUM_STREAM_ARRAY_SIZE will be
2469 * allocated with dma_alloc_coherent().
2470 */
2471
2472 xhci->medium_streams_pool = dma_pool_create("xHCI 1KB stream ctx arrays",
2473 dev, MEDIUM_STREAM_ARRAY_SIZE, 16, 0);
2474 if (!xhci->medium_streams_pool)
2475 goto fail;
2476
2477 /*
2478 * refer to xhci rev1_2 protocol 5.3.3 max ports is 255.
2479 * refer to xhci rev1_2 protocol 6.4.3.14 port bandwidth buffer need
2480 * to be 16-byte aligned.
2481 */
2482 xhci->port_bw_pool = dma_pool_create("xHCI 256 port bw ctx arrays",
2483 dev, GET_PORT_BW_ARRAY_SIZE, 16, 0);
2484 if (!xhci->port_bw_pool)
2485 goto fail;
2486
2487 /* Set up the command ring to have one segments for now. */
2488 xhci->cmd_ring = xhci_ring_alloc(xhci, 1, TYPE_COMMAND, 0, flags);
2489 if (!xhci->cmd_ring)
2490 goto fail;
2491
2492 xhci_dbg_trace(xhci, trace_xhci_dbg_init, "Allocated command ring at %p", xhci->cmd_ring);
2493
2494 /* Allocate and set up primary interrupter 0 with an event ring. */
2495 xhci_dbg_trace(xhci, trace_xhci_dbg_init, "Allocating primary event ring");
2496 xhci->interrupters = kcalloc_node(xhci->max_interrupters, sizeof(*xhci->interrupters),
2497 flags, dev_to_node(dev));
2498 if (!xhci->interrupters)
2499 goto fail;
2500
2501 xhci->interrupters[0] = xhci_alloc_interrupter(xhci, 0, flags);
2502 if (!xhci->interrupters[0])
2503 goto fail;
2504
2505 if (scratchpad_alloc(xhci, flags))
2506 goto fail;
2507
2508 if (xhci_setup_port_arrays(xhci, flags))
2509 goto fail;
2510
2511 xhci_dbg_trace(xhci, trace_xhci_dbg_init, "Finished %s", __func__);
2512 return 0;
2513
2514 fail:
2515 xhci_halt(xhci);
2516 xhci_reset(xhci, XHCI_RESET_SHORT_USEC);
2517 xhci_mem_cleanup(xhci);
2518 return -ENOMEM;
2519 }
2520