1 // SPDX-License-Identifier: GPL-2.0
2 /*
3 * Cadence CDNSP DRD Driver.
4 *
5 * Copyright (C) 2020 Cadence.
6 *
7 * Author: Pawel Laszczak <pawell@cadence.com>
8 *
9 * Code based on Linux XHCI driver.
10 * Origin: Copyright (C) 2008 Intel Corp.
11 */
12
13 #include <linux/dma-mapping.h>
14 #include <linux/dmapool.h>
15 #include <linux/slab.h>
16 #include <linux/usb.h>
17
18 #include "cdnsp-gadget.h"
19 #include "cdnsp-trace.h"
20
21 static void cdnsp_free_stream_info(struct cdnsp_device *pdev,
22 struct cdnsp_ep *pep);
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 * "All components of all Command and Transfer TRBs shall be initialized to '0'"
28 */
cdnsp_segment_alloc(struct cdnsp_device * pdev,unsigned int cycle_state,unsigned int max_packet,gfp_t flags)29 static struct cdnsp_segment *cdnsp_segment_alloc(struct cdnsp_device *pdev,
30 unsigned int cycle_state,
31 unsigned int max_packet,
32 gfp_t flags)
33 {
34 struct cdnsp_segment *seg;
35 dma_addr_t dma;
36 int i;
37
38 seg = kzalloc_obj(*seg, flags);
39 if (!seg)
40 return NULL;
41
42 seg->trbs = dma_pool_zalloc(pdev->segment_pool, flags, &dma);
43 if (!seg->trbs) {
44 kfree(seg);
45 return NULL;
46 }
47
48 if (max_packet) {
49 seg->bounce_buf = kzalloc(max_packet, flags | GFP_DMA);
50 if (!seg->bounce_buf)
51 goto free_dma;
52 }
53
54 /* If the cycle state is 0, set the cycle bit to 1 for all the TRBs. */
55 if (cycle_state == 0) {
56 for (i = 0; i < TRBS_PER_SEGMENT; i++)
57 seg->trbs[i].link.control |= cpu_to_le32(TRB_CYCLE);
58 }
59 seg->dma = dma;
60 seg->next = NULL;
61
62 return seg;
63
64 free_dma:
65 dma_pool_free(pdev->segment_pool, seg->trbs, dma);
66 kfree(seg);
67
68 return NULL;
69 }
70
cdnsp_segment_free(struct cdnsp_device * pdev,struct cdnsp_segment * seg)71 static void cdnsp_segment_free(struct cdnsp_device *pdev,
72 struct cdnsp_segment *seg)
73 {
74 if (seg->trbs)
75 dma_pool_free(pdev->segment_pool, seg->trbs, seg->dma);
76
77 kfree(seg->bounce_buf);
78 kfree(seg);
79 }
80
cdnsp_free_segments_for_ring(struct cdnsp_device * pdev,struct cdnsp_segment * first)81 static void cdnsp_free_segments_for_ring(struct cdnsp_device *pdev,
82 struct cdnsp_segment *first)
83 {
84 struct cdnsp_segment *seg;
85
86 seg = first->next;
87
88 while (seg != first) {
89 struct cdnsp_segment *next = seg->next;
90
91 cdnsp_segment_free(pdev, seg);
92 seg = next;
93 }
94
95 cdnsp_segment_free(pdev, first);
96 }
97
98 /*
99 * Make the prev segment point to the next segment.
100 *
101 * Change the last TRB in the prev segment to be a Link TRB which points to the
102 * DMA address of the next segment. The caller needs to set any Link TRB
103 * related flags, such as End TRB, Toggle Cycle, and no snoop.
104 */
cdnsp_link_segments(struct cdnsp_device * pdev,struct cdnsp_segment * prev,struct cdnsp_segment * next,enum cdnsp_ring_type type)105 static void cdnsp_link_segments(struct cdnsp_device *pdev,
106 struct cdnsp_segment *prev,
107 struct cdnsp_segment *next,
108 enum cdnsp_ring_type type)
109 {
110 struct cdnsp_link_trb *link;
111 u32 val;
112
113 if (!prev || !next)
114 return;
115
116 prev->next = next;
117 if (type != TYPE_EVENT) {
118 link = &prev->trbs[TRBS_PER_SEGMENT - 1].link;
119 link->segment_ptr = cpu_to_le64(next->dma);
120
121 /*
122 * Set the last TRB in the segment to have a TRB type ID
123 * of Link TRB
124 */
125 val = le32_to_cpu(link->control);
126 val &= ~TRB_TYPE_BITMASK;
127 val |= TRB_TYPE(TRB_LINK);
128 link->control = cpu_to_le32(val);
129 }
130 }
131
132 /*
133 * Link the ring to the new segments.
134 * Set Toggle Cycle for the new ring if needed.
135 */
cdnsp_link_rings(struct cdnsp_device * pdev,struct cdnsp_ring * ring,struct cdnsp_segment * first,struct cdnsp_segment * last,unsigned int num_segs)136 static void cdnsp_link_rings(struct cdnsp_device *pdev,
137 struct cdnsp_ring *ring,
138 struct cdnsp_segment *first,
139 struct cdnsp_segment *last,
140 unsigned int num_segs)
141 {
142 struct cdnsp_segment *next;
143
144 if (!ring || !first || !last)
145 return;
146
147 next = ring->enq_seg->next;
148 cdnsp_link_segments(pdev, ring->enq_seg, first, ring->type);
149 cdnsp_link_segments(pdev, last, next, ring->type);
150 ring->num_segs += num_segs;
151 ring->num_trbs_free += (TRBS_PER_SEGMENT - 1) * num_segs;
152
153 if (ring->type != TYPE_EVENT && ring->enq_seg == ring->last_seg) {
154 ring->last_seg->trbs[TRBS_PER_SEGMENT - 1].link.control &=
155 ~cpu_to_le32(LINK_TOGGLE);
156 last->trbs[TRBS_PER_SEGMENT - 1].link.control |=
157 cpu_to_le32(LINK_TOGGLE);
158 ring->last_seg = last;
159 }
160 }
161
162 /*
163 * We need a radix tree for mapping physical addresses of TRBs to which stream
164 * ID they belong to. We need to do this because the device controller won't
165 * tell us which stream ring the TRB came from. We could store the stream ID
166 * in an event data TRB, but that doesn't help us for the cancellation case,
167 * since the endpoint may stop before it reaches that event data TRB.
168 *
169 * The radix tree maps the upper portion of the TRB DMA address to a ring
170 * segment that has the same upper portion of DMA addresses. For example,
171 * say I have segments of size 1KB, that are always 1KB aligned. A segment may
172 * start at 0x10c91000 and end at 0x10c913f0. If I use the upper 10 bits, the
173 * key to the stream ID is 0x43244. I can use the DMA address of the TRB to
174 * pass the radix tree a key to get the right stream ID:
175 *
176 * 0x10c90fff >> 10 = 0x43243
177 * 0x10c912c0 >> 10 = 0x43244
178 * 0x10c91400 >> 10 = 0x43245
179 *
180 * Obviously, only those TRBs with DMA addresses that are within the segment
181 * will make the radix tree return the stream ID for that ring.
182 *
183 * Caveats for the radix tree:
184 *
185 * The radix tree uses an unsigned long as a key pair. On 32-bit systems, an
186 * unsigned long will be 32-bits; on a 64-bit system an unsigned long will be
187 * 64-bits. Since we only request 32-bit DMA addresses, we can use that as the
188 * key on 32-bit or 64-bit systems (it would also be fine if we asked for 64-bit
189 * PCI DMA addresses on a 64-bit system). There might be a problem on 32-bit
190 * extended systems (where the DMA address can be bigger than 32-bits),
191 * if we allow the PCI dma mask to be bigger than 32-bits. So don't do that.
192 */
cdnsp_insert_segment_mapping(struct radix_tree_root * trb_address_map,struct cdnsp_ring * ring,struct cdnsp_segment * seg,gfp_t mem_flags)193 static int cdnsp_insert_segment_mapping(struct radix_tree_root *trb_address_map,
194 struct cdnsp_ring *ring,
195 struct cdnsp_segment *seg,
196 gfp_t mem_flags)
197 {
198 unsigned long key;
199 int ret;
200
201 key = (unsigned long)(seg->dma >> TRB_SEGMENT_SHIFT);
202
203 /* Skip any segments that were already added. */
204 if (radix_tree_lookup(trb_address_map, key))
205 return 0;
206
207 ret = radix_tree_maybe_preload(mem_flags);
208 if (ret)
209 return ret;
210
211 ret = radix_tree_insert(trb_address_map, key, ring);
212 radix_tree_preload_end();
213
214 return ret;
215 }
216
cdnsp_remove_segment_mapping(struct radix_tree_root * trb_address_map,struct cdnsp_segment * seg)217 static void cdnsp_remove_segment_mapping(struct radix_tree_root *trb_address_map,
218 struct cdnsp_segment *seg)
219 {
220 unsigned long key;
221
222 key = (unsigned long)(seg->dma >> TRB_SEGMENT_SHIFT);
223 if (radix_tree_lookup(trb_address_map, key))
224 radix_tree_delete(trb_address_map, key);
225 }
226
cdnsp_update_stream_segment_mapping(struct radix_tree_root * trb_address_map,struct cdnsp_ring * ring,struct cdnsp_segment * first_seg,struct cdnsp_segment * last_seg,gfp_t mem_flags)227 static int cdnsp_update_stream_segment_mapping(struct radix_tree_root *trb_address_map,
228 struct cdnsp_ring *ring,
229 struct cdnsp_segment *first_seg,
230 struct cdnsp_segment *last_seg,
231 gfp_t mem_flags)
232 {
233 struct cdnsp_segment *failed_seg;
234 struct cdnsp_segment *seg;
235 int ret;
236
237 seg = first_seg;
238 do {
239 ret = cdnsp_insert_segment_mapping(trb_address_map, ring, seg,
240 mem_flags);
241 if (ret)
242 goto remove_streams;
243 if (seg == last_seg)
244 return 0;
245 seg = seg->next;
246 } while (seg != first_seg);
247
248 return 0;
249
250 remove_streams:
251 failed_seg = seg;
252 seg = first_seg;
253 do {
254 cdnsp_remove_segment_mapping(trb_address_map, seg);
255 if (seg == failed_seg)
256 return ret;
257 seg = seg->next;
258 } while (seg != first_seg);
259
260 return ret;
261 }
262
cdnsp_remove_stream_mapping(struct cdnsp_ring * ring)263 static void cdnsp_remove_stream_mapping(struct cdnsp_ring *ring)
264 {
265 struct cdnsp_segment *seg;
266
267 seg = ring->first_seg;
268 do {
269 cdnsp_remove_segment_mapping(ring->trb_address_map, seg);
270 seg = seg->next;
271 } while (seg != ring->first_seg);
272 }
273
cdnsp_update_stream_mapping(struct cdnsp_ring * ring)274 static int cdnsp_update_stream_mapping(struct cdnsp_ring *ring)
275 {
276 return cdnsp_update_stream_segment_mapping(ring->trb_address_map, ring,
277 ring->first_seg, ring->last_seg, GFP_ATOMIC);
278 }
279
cdnsp_ring_free(struct cdnsp_device * pdev,struct cdnsp_ring * ring)280 static void cdnsp_ring_free(struct cdnsp_device *pdev, struct cdnsp_ring *ring)
281 {
282 if (!ring)
283 return;
284
285 trace_cdnsp_ring_free(ring);
286
287 if (ring->first_seg) {
288 if (ring->type == TYPE_STREAM)
289 cdnsp_remove_stream_mapping(ring);
290
291 cdnsp_free_segments_for_ring(pdev, ring->first_seg);
292 }
293
294 kfree(ring);
295 }
296
cdnsp_initialize_ring_info(struct cdnsp_ring * ring)297 void cdnsp_initialize_ring_info(struct cdnsp_ring *ring)
298 {
299 ring->enqueue = ring->first_seg->trbs;
300 ring->enq_seg = ring->first_seg;
301 ring->dequeue = ring->enqueue;
302 ring->deq_seg = ring->first_seg;
303
304 /*
305 * The ring is initialized to 0. The producer must write 1 to the cycle
306 * bit to handover ownership of the TRB, so PCS = 1. The consumer must
307 * compare CCS to the cycle bit to check ownership, so CCS = 1.
308 *
309 * New rings are initialized with cycle state equal to 1; if we are
310 * handling ring expansion, set the cycle state equal to the old ring.
311 */
312 ring->cycle_state = 1;
313
314 /*
315 * Each segment has a link TRB, and leave an extra TRB for SW
316 * accounting purpose
317 */
318 ring->num_trbs_free = ring->num_segs * (TRBS_PER_SEGMENT - 1) - 1;
319 }
320
321 /* Allocate segments and link them for a ring. */
cdnsp_alloc_segments_for_ring(struct cdnsp_device * pdev,struct cdnsp_segment ** first,struct cdnsp_segment ** last,unsigned int num_segs,unsigned int cycle_state,enum cdnsp_ring_type type,unsigned int max_packet,gfp_t flags)322 static int cdnsp_alloc_segments_for_ring(struct cdnsp_device *pdev,
323 struct cdnsp_segment **first,
324 struct cdnsp_segment **last,
325 unsigned int num_segs,
326 unsigned int cycle_state,
327 enum cdnsp_ring_type type,
328 unsigned int max_packet,
329 gfp_t flags)
330 {
331 struct cdnsp_segment *prev;
332
333 /* Allocate first segment. */
334 prev = cdnsp_segment_alloc(pdev, cycle_state, max_packet, flags);
335 if (!prev)
336 return -ENOMEM;
337
338 num_segs--;
339 *first = prev;
340
341 /* Allocate all other segments. */
342 while (num_segs > 0) {
343 struct cdnsp_segment *next;
344
345 next = cdnsp_segment_alloc(pdev, cycle_state,
346 max_packet, flags);
347 if (!next) {
348 cdnsp_free_segments_for_ring(pdev, *first);
349 return -ENOMEM;
350 }
351
352 cdnsp_link_segments(pdev, prev, next, type);
353
354 prev = next;
355 num_segs--;
356 }
357
358 cdnsp_link_segments(pdev, prev, *first, type);
359 *last = prev;
360
361 return 0;
362 }
363
364 /*
365 * Create a new ring with zero or more segments.
366 *
367 * Link each segment together into a ring.
368 * Set the end flag and the cycle toggle bit on the last segment.
369 */
cdnsp_ring_alloc(struct cdnsp_device * pdev,unsigned int num_segs,enum cdnsp_ring_type type,unsigned int max_packet,gfp_t flags)370 static struct cdnsp_ring *cdnsp_ring_alloc(struct cdnsp_device *pdev,
371 unsigned int num_segs,
372 enum cdnsp_ring_type type,
373 unsigned int max_packet,
374 gfp_t flags)
375 {
376 struct cdnsp_ring *ring;
377 int ret;
378
379 ring = kzalloc_obj(*(ring), flags);
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
388 if (num_segs == 0)
389 return ring;
390
391 ret = cdnsp_alloc_segments_for_ring(pdev, &ring->first_seg,
392 &ring->last_seg, num_segs,
393 1, type, max_packet, flags);
394 if (ret)
395 goto fail;
396
397 /* Only event ring does not use link TRB. */
398 if (type != TYPE_EVENT)
399 ring->last_seg->trbs[TRBS_PER_SEGMENT - 1].link.control |=
400 cpu_to_le32(LINK_TOGGLE);
401
402 cdnsp_initialize_ring_info(ring);
403 trace_cdnsp_ring_alloc(ring);
404 return ring;
405 fail:
406 kfree(ring);
407 return NULL;
408 }
409
cdnsp_free_endpoint_rings(struct cdnsp_device * pdev,struct cdnsp_ep * pep)410 void cdnsp_free_endpoint_rings(struct cdnsp_device *pdev, struct cdnsp_ep *pep)
411 {
412 cdnsp_ring_free(pdev, pep->ring);
413 pep->ring = NULL;
414 cdnsp_free_stream_info(pdev, pep);
415 }
416
417 /*
418 * Expand an existing ring.
419 * Allocate a new ring which has same segment numbers and link the two rings.
420 */
cdnsp_ring_expansion(struct cdnsp_device * pdev,struct cdnsp_ring * ring,unsigned int num_trbs,gfp_t flags)421 int cdnsp_ring_expansion(struct cdnsp_device *pdev,
422 struct cdnsp_ring *ring,
423 unsigned int num_trbs,
424 gfp_t flags)
425 {
426 unsigned int num_segs_needed;
427 struct cdnsp_segment *first;
428 struct cdnsp_segment *last;
429 unsigned int num_segs;
430 int ret;
431
432 num_segs_needed = (num_trbs + (TRBS_PER_SEGMENT - 1) - 1) /
433 (TRBS_PER_SEGMENT - 1);
434
435 /* Allocate number of segments we needed, or double the ring size. */
436 num_segs = max(ring->num_segs, num_segs_needed);
437
438 ret = cdnsp_alloc_segments_for_ring(pdev, &first, &last, num_segs,
439 ring->cycle_state, ring->type,
440 ring->bounce_buf_len, flags);
441 if (ret)
442 return -ENOMEM;
443
444 if (ring->type == TYPE_STREAM)
445 ret = cdnsp_update_stream_segment_mapping(ring->trb_address_map,
446 ring, first,
447 last, flags);
448
449 if (ret) {
450 cdnsp_free_segments_for_ring(pdev, first);
451
452 return ret;
453 }
454
455 cdnsp_link_rings(pdev, ring, first, last, num_segs);
456 trace_cdnsp_ring_expansion(ring);
457
458 return 0;
459 }
460
cdnsp_init_device_ctx(struct cdnsp_device * pdev)461 static int cdnsp_init_device_ctx(struct cdnsp_device *pdev)
462 {
463 int size = HCC_64BYTE_CONTEXT(pdev->hcc_params) ? 2048 : 1024;
464
465 pdev->out_ctx.type = CDNSP_CTX_TYPE_DEVICE;
466 pdev->out_ctx.size = size;
467 pdev->out_ctx.ctx_size = CTX_SIZE(pdev->hcc_params);
468 pdev->out_ctx.bytes = dma_pool_zalloc(pdev->device_pool, GFP_ATOMIC,
469 &pdev->out_ctx.dma);
470
471 if (!pdev->out_ctx.bytes)
472 return -ENOMEM;
473
474 pdev->in_ctx.type = CDNSP_CTX_TYPE_INPUT;
475 pdev->in_ctx.ctx_size = pdev->out_ctx.ctx_size;
476 pdev->in_ctx.size = size + pdev->out_ctx.ctx_size;
477 pdev->in_ctx.bytes = dma_pool_zalloc(pdev->device_pool, GFP_ATOMIC,
478 &pdev->in_ctx.dma);
479
480 if (!pdev->in_ctx.bytes) {
481 dma_pool_free(pdev->device_pool, pdev->out_ctx.bytes,
482 pdev->out_ctx.dma);
483 return -ENOMEM;
484 }
485
486 return 0;
487 }
488
489 struct cdnsp_input_control_ctx
cdnsp_get_input_control_ctx(struct cdnsp_container_ctx * ctx)490 *cdnsp_get_input_control_ctx(struct cdnsp_container_ctx *ctx)
491 {
492 if (ctx->type != CDNSP_CTX_TYPE_INPUT)
493 return NULL;
494
495 return (struct cdnsp_input_control_ctx *)ctx->bytes;
496 }
497
cdnsp_get_slot_ctx(struct cdnsp_container_ctx * ctx)498 struct cdnsp_slot_ctx *cdnsp_get_slot_ctx(struct cdnsp_container_ctx *ctx)
499 {
500 if (ctx->type == CDNSP_CTX_TYPE_DEVICE)
501 return (struct cdnsp_slot_ctx *)ctx->bytes;
502
503 return (struct cdnsp_slot_ctx *)(ctx->bytes + ctx->ctx_size);
504 }
505
cdnsp_get_ep_ctx(struct cdnsp_container_ctx * ctx,unsigned int ep_index)506 struct cdnsp_ep_ctx *cdnsp_get_ep_ctx(struct cdnsp_container_ctx *ctx,
507 unsigned int ep_index)
508 {
509 /* Increment ep index by offset of start of ep ctx array. */
510 ep_index++;
511 if (ctx->type == CDNSP_CTX_TYPE_INPUT)
512 ep_index++;
513
514 return (struct cdnsp_ep_ctx *)(ctx->bytes + (ep_index * ctx->ctx_size));
515 }
516
cdnsp_free_stream_ctx(struct cdnsp_device * pdev,struct cdnsp_ep * pep)517 static void cdnsp_free_stream_ctx(struct cdnsp_device *pdev,
518 struct cdnsp_ep *pep)
519 {
520 dma_pool_free(pdev->device_pool, pep->stream_info.stream_ctx_array,
521 pep->stream_info.ctx_array_dma);
522 }
523
524 /* The stream context array must be a power of 2. */
525 static struct cdnsp_stream_ctx
cdnsp_alloc_stream_ctx(struct cdnsp_device * pdev,struct cdnsp_ep * pep)526 *cdnsp_alloc_stream_ctx(struct cdnsp_device *pdev, struct cdnsp_ep *pep)
527 {
528 size_t size = sizeof(struct cdnsp_stream_ctx) *
529 pep->stream_info.num_stream_ctxs;
530
531 if (size > CDNSP_CTX_SIZE)
532 return NULL;
533
534 /**
535 * Driver uses intentionally the device_pool to allocated stream
536 * context array. Device Pool has 2048 bytes of size what gives us
537 * 128 entries.
538 */
539 return dma_pool_zalloc(pdev->device_pool, GFP_DMA32 | GFP_ATOMIC,
540 &pep->stream_info.ctx_array_dma);
541 }
542
cdnsp_dma_to_transfer_ring(struct cdnsp_ep * pep,u64 address)543 struct cdnsp_ring *cdnsp_dma_to_transfer_ring(struct cdnsp_ep *pep, u64 address)
544 {
545 if (pep->ep_state & EP_HAS_STREAMS)
546 return radix_tree_lookup(&pep->stream_info.trb_address_map,
547 address >> TRB_SEGMENT_SHIFT);
548
549 return pep->ring;
550 }
551
552 /*
553 * Change an endpoint's internal structure so it supports stream IDs.
554 * The number of requested streams includes stream 0, which cannot be used by
555 * driver.
556 *
557 * The number of stream contexts in the stream context array may be bigger than
558 * the number of streams the driver wants to use. This is because the number of
559 * stream context array entries must be a power of two.
560 */
cdnsp_alloc_stream_info(struct cdnsp_device * pdev,struct cdnsp_ep * pep,unsigned int num_stream_ctxs,unsigned int num_streams)561 int cdnsp_alloc_stream_info(struct cdnsp_device *pdev,
562 struct cdnsp_ep *pep,
563 unsigned int num_stream_ctxs,
564 unsigned int num_streams)
565 {
566 struct cdnsp_stream_info *stream_info;
567 struct cdnsp_ring *cur_ring;
568 u32 cur_stream;
569 u64 addr;
570 int ret;
571 int mps;
572
573 stream_info = &pep->stream_info;
574 stream_info->num_streams = num_streams;
575 stream_info->num_stream_ctxs = num_stream_ctxs;
576
577 /* Initialize the array of virtual pointers to stream rings. */
578 stream_info->stream_rings = kzalloc_objs(struct cdnsp_ring *,
579 num_streams, GFP_ATOMIC);
580 if (!stream_info->stream_rings)
581 return -ENOMEM;
582
583 /* Initialize the array of DMA addresses for stream rings for the HW. */
584 stream_info->stream_ctx_array = cdnsp_alloc_stream_ctx(pdev, pep);
585 if (!stream_info->stream_ctx_array)
586 goto cleanup_stream_rings;
587
588 memset(stream_info->stream_ctx_array, 0,
589 sizeof(struct cdnsp_stream_ctx) * num_stream_ctxs);
590 INIT_RADIX_TREE(&stream_info->trb_address_map, GFP_ATOMIC);
591 mps = usb_endpoint_maxp(pep->endpoint.desc);
592
593 /*
594 * Allocate rings for all the streams that the driver will use,
595 * and add their segment DMA addresses to the radix tree.
596 * Stream 0 is reserved.
597 */
598 for (cur_stream = 1; cur_stream < num_streams; cur_stream++) {
599 cur_ring = cdnsp_ring_alloc(pdev, 2, TYPE_STREAM, mps,
600 GFP_ATOMIC);
601 stream_info->stream_rings[cur_stream] = cur_ring;
602
603 if (!cur_ring)
604 goto cleanup_rings;
605
606 cur_ring->stream_id = cur_stream;
607 cur_ring->trb_address_map = &stream_info->trb_address_map;
608
609 /* Set deq ptr, cycle bit, and stream context type. */
610 addr = cur_ring->first_seg->dma | SCT_FOR_CTX(SCT_PRI_TR) |
611 cur_ring->cycle_state;
612
613 stream_info->stream_ctx_array[cur_stream].stream_ring =
614 cpu_to_le64(addr);
615
616 trace_cdnsp_set_stream_ring(cur_ring);
617
618 ret = cdnsp_update_stream_mapping(cur_ring);
619 if (ret)
620 goto cleanup_rings;
621 }
622
623 return 0;
624
625 cleanup_rings:
626 for (cur_stream = 1; cur_stream < num_streams; cur_stream++) {
627 cur_ring = stream_info->stream_rings[cur_stream];
628 if (cur_ring) {
629 cdnsp_ring_free(pdev, cur_ring);
630 stream_info->stream_rings[cur_stream] = NULL;
631 }
632 }
633
634 cdnsp_free_stream_ctx(pdev, pep);
635
636 cleanup_stream_rings:
637 kfree(pep->stream_info.stream_rings);
638
639 return -ENOMEM;
640 }
641
642 /* Frees all stream contexts associated with the endpoint. */
cdnsp_free_stream_info(struct cdnsp_device * pdev,struct cdnsp_ep * pep)643 static void cdnsp_free_stream_info(struct cdnsp_device *pdev,
644 struct cdnsp_ep *pep)
645 {
646 struct cdnsp_stream_info *stream_info = &pep->stream_info;
647 struct cdnsp_ring *cur_ring;
648 int cur_stream;
649
650 if (!(pep->ep_state & EP_HAS_STREAMS))
651 return;
652
653 for (cur_stream = 1; cur_stream < stream_info->num_streams;
654 cur_stream++) {
655 cur_ring = stream_info->stream_rings[cur_stream];
656 if (cur_ring) {
657 cdnsp_ring_free(pdev, cur_ring);
658 stream_info->stream_rings[cur_stream] = NULL;
659 }
660 }
661
662 if (stream_info->stream_ctx_array)
663 cdnsp_free_stream_ctx(pdev, pep);
664
665 kfree(stream_info->stream_rings);
666 pep->ep_state &= ~EP_HAS_STREAMS;
667 }
668
669 /* All the cdnsp_tds in the ring's TD list should be freed at this point.*/
cdnsp_free_priv_device(struct cdnsp_device * pdev)670 static void cdnsp_free_priv_device(struct cdnsp_device *pdev)
671 {
672 pdev->dcbaa->dev_context_ptrs[1] = 0;
673
674 cdnsp_free_endpoint_rings(pdev, &pdev->eps[0]);
675
676 if (pdev->in_ctx.bytes)
677 dma_pool_free(pdev->device_pool, pdev->in_ctx.bytes,
678 pdev->in_ctx.dma);
679
680 if (pdev->out_ctx.bytes)
681 dma_pool_free(pdev->device_pool, pdev->out_ctx.bytes,
682 pdev->out_ctx.dma);
683
684 pdev->in_ctx.bytes = NULL;
685 pdev->out_ctx.bytes = NULL;
686 }
687
cdnsp_alloc_priv_device(struct cdnsp_device * pdev)688 static int cdnsp_alloc_priv_device(struct cdnsp_device *pdev)
689 {
690 int ret;
691
692 ret = cdnsp_init_device_ctx(pdev);
693 if (ret)
694 return ret;
695
696 /* Allocate endpoint 0 ring. */
697 pdev->eps[0].ring = cdnsp_ring_alloc(pdev, 2, TYPE_CTRL, 0, GFP_ATOMIC);
698 if (!pdev->eps[0].ring)
699 goto fail;
700
701 /* Point to output device context in dcbaa. */
702 pdev->dcbaa->dev_context_ptrs[1] = cpu_to_le64(pdev->out_ctx.dma);
703 pdev->cmd.in_ctx = &pdev->in_ctx;
704
705 trace_cdnsp_alloc_priv_device(pdev);
706 return 0;
707 fail:
708 dma_pool_free(pdev->device_pool, pdev->out_ctx.bytes,
709 pdev->out_ctx.dma);
710 dma_pool_free(pdev->device_pool, pdev->in_ctx.bytes,
711 pdev->in_ctx.dma);
712
713 return ret;
714 }
715
cdnsp_copy_ep0_dequeue_into_input_ctx(struct cdnsp_device * pdev)716 void cdnsp_copy_ep0_dequeue_into_input_ctx(struct cdnsp_device *pdev)
717 {
718 struct cdnsp_ep_ctx *ep0_ctx = pdev->eps[0].in_ctx;
719 struct cdnsp_ring *ep_ring = pdev->eps[0].ring;
720 dma_addr_t dma;
721
722 dma = cdnsp_trb_virt_to_dma(ep_ring->enq_seg, ep_ring->enqueue);
723 ep0_ctx->deq = cpu_to_le64(dma | ep_ring->cycle_state);
724 }
725
726 /* Setup an controller private device for a Set Address command. */
cdnsp_setup_addressable_priv_dev(struct cdnsp_device * pdev)727 int cdnsp_setup_addressable_priv_dev(struct cdnsp_device *pdev)
728 {
729 struct cdnsp_slot_ctx *slot_ctx;
730 struct cdnsp_ep_ctx *ep0_ctx;
731 u32 max_packets, port;
732
733 ep0_ctx = cdnsp_get_ep_ctx(&pdev->in_ctx, 0);
734 slot_ctx = cdnsp_get_slot_ctx(&pdev->in_ctx);
735
736 /* Only the control endpoint is valid - one endpoint context. */
737 slot_ctx->dev_info |= cpu_to_le32(LAST_CTX(1));
738
739 switch (pdev->gadget.speed) {
740 case USB_SPEED_SUPER_PLUS:
741 slot_ctx->dev_info |= cpu_to_le32(SLOT_SPEED_SSP);
742 max_packets = MAX_PACKET(512);
743 break;
744 case USB_SPEED_SUPER:
745 slot_ctx->dev_info |= cpu_to_le32(SLOT_SPEED_SS);
746 max_packets = MAX_PACKET(512);
747 break;
748 case USB_SPEED_HIGH:
749 slot_ctx->dev_info |= cpu_to_le32(SLOT_SPEED_HS);
750 max_packets = MAX_PACKET(64);
751 break;
752 case USB_SPEED_FULL:
753 slot_ctx->dev_info |= cpu_to_le32(SLOT_SPEED_FS);
754 max_packets = MAX_PACKET(64);
755 break;
756 default:
757 /* Speed was not set , this shouldn't happen. */
758 return -EINVAL;
759 }
760
761 port = DEV_PORT(pdev->active_port->port_num);
762 slot_ctx->dev_port |= cpu_to_le32(port);
763 slot_ctx->dev_state = cpu_to_le32((pdev->device_address &
764 DEV_ADDR_MASK));
765 ep0_ctx->tx_info = cpu_to_le32(EP_AVG_TRB_LENGTH(0x8));
766 ep0_ctx->ep_info2 = cpu_to_le32(EP_TYPE(CTRL_EP));
767 ep0_ctx->ep_info2 |= cpu_to_le32(MAX_BURST(0) | ERROR_COUNT(3) |
768 max_packets);
769
770 ep0_ctx->deq = cpu_to_le64(pdev->eps[0].ring->first_seg->dma |
771 pdev->eps[0].ring->cycle_state);
772
773 trace_cdnsp_setup_addressable_priv_device(pdev);
774
775 return 0;
776 }
777
778 /*
779 * Convert interval expressed as 2^(bInterval - 1) == interval into
780 * straight exponent value 2^n == interval.
781 */
cdnsp_parse_exponent_interval(struct usb_gadget * g,struct cdnsp_ep * pep)782 static unsigned int cdnsp_parse_exponent_interval(struct usb_gadget *g,
783 struct cdnsp_ep *pep)
784 {
785 unsigned int interval;
786
787 interval = clamp_val(pep->endpoint.desc->bInterval, 1, 16) - 1;
788 if (interval != pep->endpoint.desc->bInterval - 1)
789 dev_warn(&g->dev, "ep %s - rounding interval to %d %sframes\n",
790 pep->name, 1 << interval,
791 g->speed == USB_SPEED_FULL ? "" : "micro");
792
793 /*
794 * Full speed isoc endpoints specify interval in frames,
795 * not microframes. We are using microframes everywhere,
796 * so adjust accordingly.
797 */
798 if (g->speed == USB_SPEED_FULL)
799 interval += 3; /* 1 frame = 2^3 uframes */
800
801 /* Controller handles only up to 512ms (2^12). */
802 if (interval > 12)
803 interval = 12;
804
805 return interval;
806 }
807
808 /*
809 * Convert bInterval expressed in microframes (in 1-255 range) to exponent of
810 * microframes, rounded down to nearest power of 2.
811 */
cdnsp_microframes_to_exponent(struct usb_gadget * g,struct cdnsp_ep * pep,unsigned int desc_interval,unsigned int min_exponent,unsigned int max_exponent)812 static unsigned int cdnsp_microframes_to_exponent(struct usb_gadget *g,
813 struct cdnsp_ep *pep,
814 unsigned int desc_interval,
815 unsigned int min_exponent,
816 unsigned int max_exponent)
817 {
818 unsigned int interval;
819
820 interval = fls(desc_interval) - 1;
821 return clamp_val(interval, min_exponent, max_exponent);
822 }
823
824 /*
825 * Return the polling interval.
826 *
827 * The polling interval is expressed in "microframes". If controllers's Interval
828 * field is set to N, it will service the endpoint every 2^(Interval)*125us.
829 */
cdnsp_get_endpoint_interval(struct usb_gadget * g,struct cdnsp_ep * pep)830 static unsigned int cdnsp_get_endpoint_interval(struct usb_gadget *g,
831 struct cdnsp_ep *pep)
832 {
833 unsigned int interval = 0;
834
835 switch (g->speed) {
836 case USB_SPEED_HIGH:
837 case USB_SPEED_SUPER_PLUS:
838 case USB_SPEED_SUPER:
839 if (usb_endpoint_xfer_int(pep->endpoint.desc) ||
840 usb_endpoint_xfer_isoc(pep->endpoint.desc))
841 interval = cdnsp_parse_exponent_interval(g, pep);
842 break;
843 case USB_SPEED_FULL:
844 if (usb_endpoint_xfer_isoc(pep->endpoint.desc)) {
845 interval = cdnsp_parse_exponent_interval(g, pep);
846 } else if (usb_endpoint_xfer_int(pep->endpoint.desc)) {
847 interval = pep->endpoint.desc->bInterval << 3;
848 interval = cdnsp_microframes_to_exponent(g, pep,
849 interval,
850 3, 10);
851 }
852
853 break;
854 default:
855 WARN_ON(1);
856 }
857
858 return interval;
859 }
860
861 /*
862 * The "Mult" field in the endpoint context is only set for SuperSpeed isoc eps.
863 * High speed endpoint descriptors can define "the number of additional
864 * transaction opportunities per microframe", but that goes in the Max Burst
865 * endpoint context field.
866 */
cdnsp_get_endpoint_mult(struct usb_gadget * g,struct cdnsp_ep * pep)867 static u32 cdnsp_get_endpoint_mult(struct usb_gadget *g, struct cdnsp_ep *pep)
868 {
869 if (g->speed < USB_SPEED_SUPER ||
870 !usb_endpoint_xfer_isoc(pep->endpoint.desc))
871 return 0;
872
873 return pep->endpoint.comp_desc->bmAttributes;
874 }
875
cdnsp_get_endpoint_max_burst(struct usb_gadget * g,struct cdnsp_ep * pep)876 static u32 cdnsp_get_endpoint_max_burst(struct usb_gadget *g,
877 struct cdnsp_ep *pep)
878 {
879 /* Super speed and Plus have max burst in ep companion desc */
880 if (g->speed >= USB_SPEED_SUPER)
881 return pep->endpoint.comp_desc->bMaxBurst;
882
883 if (g->speed == USB_SPEED_HIGH &&
884 (usb_endpoint_xfer_isoc(pep->endpoint.desc) ||
885 usb_endpoint_xfer_int(pep->endpoint.desc)))
886 return usb_endpoint_maxp_mult(pep->endpoint.desc) - 1;
887
888 return 0;
889 }
890
cdnsp_get_endpoint_type(const struct usb_endpoint_descriptor * desc)891 static u32 cdnsp_get_endpoint_type(const struct usb_endpoint_descriptor *desc)
892 {
893 int in;
894
895 in = usb_endpoint_dir_in(desc);
896
897 switch (usb_endpoint_type(desc)) {
898 case USB_ENDPOINT_XFER_CONTROL:
899 return CTRL_EP;
900 case USB_ENDPOINT_XFER_BULK:
901 return in ? BULK_IN_EP : BULK_OUT_EP;
902 case USB_ENDPOINT_XFER_ISOC:
903 return in ? ISOC_IN_EP : ISOC_OUT_EP;
904 case USB_ENDPOINT_XFER_INT:
905 return in ? INT_IN_EP : INT_OUT_EP;
906 }
907
908 return 0;
909 }
910
911 /*
912 * Return the maximum endpoint service interval time (ESIT) payload.
913 * Basically, this is the maxpacket size, multiplied by the burst size
914 * and mult size.
915 */
cdnsp_get_max_esit_payload(struct usb_gadget * g,struct cdnsp_ep * pep)916 static u32 cdnsp_get_max_esit_payload(struct usb_gadget *g,
917 struct cdnsp_ep *pep)
918 {
919 int max_packet;
920 int max_burst;
921
922 /* Only applies for interrupt or isochronous endpoints*/
923 if (usb_endpoint_xfer_control(pep->endpoint.desc) ||
924 usb_endpoint_xfer_bulk(pep->endpoint.desc))
925 return 0;
926
927 /* SuperSpeedPlus Isoc ep sending over 48k per EIST. */
928 if (g->speed >= USB_SPEED_SUPER_PLUS &&
929 USB_SS_SSP_ISOC_COMP(pep->endpoint.desc->bmAttributes))
930 return le16_to_cpu(pep->endpoint.comp_desc->wBytesPerInterval);
931 /* SuperSpeed or SuperSpeedPlus Isoc ep with less than 48k per esit */
932 else if (g->speed >= USB_SPEED_SUPER)
933 return le16_to_cpu(pep->endpoint.comp_desc->wBytesPerInterval);
934
935 max_packet = usb_endpoint_maxp(pep->endpoint.desc);
936 max_burst = usb_endpoint_maxp_mult(pep->endpoint.desc);
937
938 /* A 0 in max burst means 1 transfer per ESIT */
939 return max_packet * max_burst;
940 }
941
cdnsp_endpoint_init(struct cdnsp_device * pdev,struct cdnsp_ep * pep,gfp_t mem_flags)942 int cdnsp_endpoint_init(struct cdnsp_device *pdev,
943 struct cdnsp_ep *pep,
944 gfp_t mem_flags)
945 {
946 enum cdnsp_ring_type ring_type;
947 struct cdnsp_ep_ctx *ep_ctx;
948 unsigned int err_count = 0;
949 unsigned int avg_trb_len;
950 unsigned int max_packet;
951 unsigned int max_burst;
952 unsigned int interval;
953 u32 max_esit_payload;
954 unsigned int mult;
955 u32 endpoint_type;
956 int ret;
957
958 ep_ctx = pep->in_ctx;
959
960 endpoint_type = cdnsp_get_endpoint_type(pep->endpoint.desc);
961 if (!endpoint_type)
962 return -EINVAL;
963
964 ring_type = usb_endpoint_type(pep->endpoint.desc);
965
966 /*
967 * Get values to fill the endpoint context, mostly from ep descriptor.
968 * The average TRB buffer length for bulk endpoints is unclear as we
969 * have no clue on scatter gather list entry size. For Isoc and Int,
970 * set it to max available.
971 */
972 max_esit_payload = cdnsp_get_max_esit_payload(&pdev->gadget, pep);
973 interval = cdnsp_get_endpoint_interval(&pdev->gadget, pep);
974 mult = cdnsp_get_endpoint_mult(&pdev->gadget, pep);
975 max_packet = usb_endpoint_maxp(pep->endpoint.desc);
976 max_burst = cdnsp_get_endpoint_max_burst(&pdev->gadget, pep);
977 avg_trb_len = max_esit_payload;
978
979 /* Allow 3 retries for everything but isoc, set CErr = 3. */
980 if (!usb_endpoint_xfer_isoc(pep->endpoint.desc))
981 err_count = 3;
982 if (usb_endpoint_xfer_bulk(pep->endpoint.desc) &&
983 pdev->gadget.speed == USB_SPEED_HIGH)
984 max_packet = 512;
985 /* Controller spec indicates that ctrl ep avg TRB Length should be 8. */
986 if (usb_endpoint_xfer_control(pep->endpoint.desc))
987 avg_trb_len = 8;
988
989 /* Set up the endpoint ring. */
990 pep->ring = cdnsp_ring_alloc(pdev, 2, ring_type, max_packet, mem_flags);
991 if (!pep->ring)
992 return -ENOMEM;
993
994 pep->skip = false;
995
996 /* Fill the endpoint context */
997 ep_ctx->ep_info = cpu_to_le32(EP_MAX_ESIT_PAYLOAD_HI(max_esit_payload) |
998 EP_INTERVAL(interval) | EP_MULT(mult));
999 ep_ctx->ep_info2 = cpu_to_le32(EP_TYPE(endpoint_type) |
1000 MAX_PACKET(max_packet) | MAX_BURST(max_burst) |
1001 ERROR_COUNT(err_count));
1002 ep_ctx->deq = cpu_to_le64(pep->ring->first_seg->dma |
1003 pep->ring->cycle_state);
1004
1005 ep_ctx->tx_info = cpu_to_le32(EP_MAX_ESIT_PAYLOAD_LO(max_esit_payload) |
1006 EP_AVG_TRB_LENGTH(avg_trb_len));
1007
1008 if (usb_endpoint_xfer_bulk(pep->endpoint.desc) &&
1009 pdev->gadget.speed > USB_SPEED_HIGH) {
1010 ret = cdnsp_alloc_streams(pdev, pep);
1011 if (ret < 0)
1012 return ret;
1013 }
1014
1015 return 0;
1016 }
1017
cdnsp_endpoint_zero(struct cdnsp_device * pdev,struct cdnsp_ep * pep)1018 void cdnsp_endpoint_zero(struct cdnsp_device *pdev, struct cdnsp_ep *pep)
1019 {
1020 pep->in_ctx->ep_info = 0;
1021 pep->in_ctx->ep_info2 = 0;
1022 pep->in_ctx->deq = 0;
1023 pep->in_ctx->tx_info = 0;
1024 }
1025
cdnsp_alloc_erst(struct cdnsp_device * pdev,struct cdnsp_ring * evt_ring,struct cdnsp_erst * erst)1026 static int cdnsp_alloc_erst(struct cdnsp_device *pdev,
1027 struct cdnsp_ring *evt_ring,
1028 struct cdnsp_erst *erst)
1029 {
1030 struct cdnsp_erst_entry *entry;
1031 struct cdnsp_segment *seg;
1032 unsigned int val;
1033 size_t size;
1034
1035 size = sizeof(struct cdnsp_erst_entry) * evt_ring->num_segs;
1036 erst->entries = dma_alloc_coherent(pdev->dev, size,
1037 &erst->erst_dma_addr, GFP_KERNEL);
1038 if (!erst->entries)
1039 return -ENOMEM;
1040
1041 erst->num_entries = evt_ring->num_segs;
1042
1043 seg = evt_ring->first_seg;
1044 for (val = 0; val < evt_ring->num_segs; val++) {
1045 entry = &erst->entries[val];
1046 entry->seg_addr = cpu_to_le64(seg->dma);
1047 entry->seg_size = cpu_to_le32(TRBS_PER_SEGMENT);
1048 entry->rsvd = 0;
1049 seg = seg->next;
1050 }
1051
1052 return 0;
1053 }
1054
cdnsp_free_erst(struct cdnsp_device * pdev,struct cdnsp_erst * erst)1055 static void cdnsp_free_erst(struct cdnsp_device *pdev, struct cdnsp_erst *erst)
1056 {
1057 size_t size = sizeof(struct cdnsp_erst_entry) * (erst->num_entries);
1058 struct device *dev = pdev->dev;
1059
1060 if (erst->entries)
1061 dma_free_coherent(dev, size, erst->entries,
1062 erst->erst_dma_addr);
1063
1064 erst->entries = NULL;
1065 }
1066
cdnsp_mem_cleanup(struct cdnsp_device * pdev)1067 void cdnsp_mem_cleanup(struct cdnsp_device *pdev)
1068 {
1069 struct device *dev = pdev->dev;
1070
1071 cdnsp_free_priv_device(pdev);
1072 cdnsp_free_erst(pdev, &pdev->erst);
1073
1074 if (pdev->event_ring)
1075 cdnsp_ring_free(pdev, pdev->event_ring);
1076
1077 pdev->event_ring = NULL;
1078
1079 if (pdev->cmd_ring)
1080 cdnsp_ring_free(pdev, pdev->cmd_ring);
1081
1082 pdev->cmd_ring = NULL;
1083
1084 dma_pool_destroy(pdev->segment_pool);
1085 pdev->segment_pool = NULL;
1086 dma_pool_destroy(pdev->device_pool);
1087 pdev->device_pool = NULL;
1088
1089 dma_free_coherent(dev, sizeof(*pdev->dcbaa),
1090 pdev->dcbaa, pdev->dcbaa->dma);
1091
1092 pdev->dcbaa = NULL;
1093 memset(&pdev->usb2_port, 0, sizeof(struct cdnsp_port));
1094 memset(&pdev->eusb_port, 0, sizeof(struct cdnsp_port));
1095 memset(&pdev->usb3_port, 0, sizeof(struct cdnsp_port));
1096 pdev->active_port = NULL;
1097 }
1098
cdnsp_set_event_deq(struct cdnsp_device * pdev)1099 static void cdnsp_set_event_deq(struct cdnsp_device *pdev)
1100 {
1101 dma_addr_t deq;
1102 u64 temp;
1103
1104 deq = cdnsp_trb_virt_to_dma(pdev->event_ring->deq_seg,
1105 pdev->event_ring->dequeue);
1106
1107 /* Update controller event ring dequeue pointer */
1108 temp = cdnsp_read_64(&pdev->ir_set->erst_dequeue);
1109 temp &= ERST_PTR_MASK;
1110
1111 /*
1112 * Don't clear the EHB bit (which is RW1C) because
1113 * there might be more events to service.
1114 */
1115 temp &= ~ERST_EHB;
1116
1117 cdnsp_write_64(((u64)deq & (u64)~ERST_PTR_MASK) | temp,
1118 &pdev->ir_set->erst_dequeue);
1119 }
1120
cdnsp_add_in_port(struct cdnsp_device * pdev,struct cdnsp_port * port,__le32 __iomem * addr)1121 static void cdnsp_add_in_port(struct cdnsp_device *pdev,
1122 struct cdnsp_port *port,
1123 __le32 __iomem *addr)
1124 {
1125 u32 temp, port_offset, port_count;
1126
1127 temp = readl(addr);
1128 port->maj_rev = CDNSP_EXT_PORT_MAJOR(temp);
1129 port->min_rev = CDNSP_EXT_PORT_MINOR(temp);
1130
1131 /* Port offset and count in the third dword.*/
1132 temp = readl(addr + 2);
1133 port_offset = CDNSP_EXT_PORT_OFF(temp);
1134 port_count = CDNSP_EXT_PORT_COUNT(temp);
1135
1136 if (port == &pdev->eusb_port) {
1137 /*
1138 * If controller has usb2 + eusb port then eusb is as
1139 * second port
1140 */
1141 if (port_count == 2)
1142 port_offset++;
1143
1144 if (port_count == 1 && pdev->usb2_port.exist)
1145 return;
1146 }
1147
1148 trace_cdnsp_port_info(addr, port_offset, port_count, port->maj_rev);
1149
1150 port->port_num = port_offset;
1151 port->exist = 1;
1152 }
1153
1154 /*
1155 * Scan the Extended Capabilities for the "Supported Protocol Capabilities" that
1156 * specify what speeds each port is supposed to be.
1157 */
cdnsp_setup_port_arrays(struct cdnsp_device * pdev)1158 static int cdnsp_setup_port_arrays(struct cdnsp_device *pdev)
1159 {
1160 void __iomem *base;
1161 u32 offset;
1162 int i;
1163
1164 base = &pdev->cap_regs->hc_capbase;
1165 offset = cdnsp_find_next_ext_cap(base, 0,
1166 EXT_CAP_CFG_DEV_20PORT_CAP_ID);
1167 if (offset)
1168 pdev->port20_regs = base + offset;
1169
1170 offset = 0;
1171
1172 /* Driver expects max 2 extended protocol capability. */
1173 for (i = 0; i < 2; i++) {
1174 u32 temp;
1175
1176 offset = cdnsp_find_next_ext_cap(base, offset,
1177 EXT_CAPS_PROTOCOL);
1178 temp = readl(base + offset);
1179
1180 if (CDNSP_EXT_PORT_MAJOR(temp) == 0x03 &&
1181 !pdev->usb3_port.port_num)
1182 cdnsp_add_in_port(pdev, &pdev->usb3_port,
1183 base + offset);
1184
1185 if (CDNSP_EXT_PORT_MAJOR(temp) == 0x02) {
1186 if (!pdev->usb2_port.port_num && pdev->port20_regs)
1187 cdnsp_add_in_port(pdev, &pdev->usb2_port,
1188 base + offset);
1189
1190 if (!pdev->eusb_port.port_num)
1191 cdnsp_add_in_port(pdev, &pdev->eusb_port,
1192 base + offset);
1193 }
1194 }
1195
1196 if (!pdev->usb2_port.exist && !pdev->eusb_port.exist &&
1197 !pdev->usb3_port.exist) {
1198 dev_err(pdev->dev, "Error: No port detected\n");
1199 return -ENODEV;
1200 }
1201
1202 if (pdev->usb2_port.exist) {
1203 pdev->usb2_port.regs = (struct cdnsp_port_regs __iomem *)
1204 (&pdev->op_regs->port_reg_base + NUM_PORT_REGS *
1205 (pdev->usb2_port.port_num - 1));
1206 trace_cdnsp_init("Found USB 2.0 port.");
1207 }
1208
1209 if (pdev->eusb_port.exist) {
1210 pdev->eusb_port.regs = (struct cdnsp_port_regs __iomem *)
1211 (&pdev->op_regs->port_reg_base + NUM_PORT_REGS *
1212 (pdev->eusb_port.port_num - 1));
1213 trace_cdnsp_init("Found eUSB 2.0 port.");
1214 }
1215
1216 if (pdev->usb3_port.exist) {
1217 offset = cdnsp_find_next_ext_cap(base, 0, D_XEC_CFG_3XPORT_CAP);
1218 pdev->port3x_regs = base + offset;
1219
1220 pdev->usb3_port.regs = (struct cdnsp_port_regs __iomem *)
1221 (&pdev->op_regs->port_reg_base + NUM_PORT_REGS *
1222 (pdev->usb3_port.port_num - 1));
1223 trace_cdnsp_init("Found USB 3.x port.");
1224 }
1225
1226 return 0;
1227 }
1228
1229 /*
1230 * Initialize memory for CDNSP (one-time init).
1231 *
1232 * Program the PAGESIZE register, initialize the device context array, create
1233 * device contexts, set up a command ring segment, create event
1234 * ring (one for now).
1235 */
cdnsp_mem_init(struct cdnsp_device * pdev)1236 int cdnsp_mem_init(struct cdnsp_device *pdev)
1237 {
1238 struct device *dev = pdev->dev;
1239 int ret = -ENOMEM;
1240 unsigned int val;
1241 dma_addr_t dma;
1242 u32 page_size;
1243 u64 val_64;
1244
1245 /*
1246 * Use 4K pages, since that's common and the minimum the
1247 * controller supports
1248 */
1249 page_size = 1 << 12;
1250
1251 val = readl(&pdev->op_regs->config_reg);
1252 val |= ((val & ~MAX_DEVS) | CDNSP_DEV_MAX_SLOTS) | CONFIG_U3E;
1253 writel(val, &pdev->op_regs->config_reg);
1254
1255 /*
1256 * Doorbell array must be physically contiguous
1257 * and 64-byte (cache line) aligned.
1258 */
1259 pdev->dcbaa = dma_alloc_coherent(dev, sizeof(*pdev->dcbaa),
1260 &dma, GFP_KERNEL);
1261 if (!pdev->dcbaa)
1262 return -ENOMEM;
1263
1264 pdev->dcbaa->dma = dma;
1265
1266 cdnsp_write_64(dma, &pdev->op_regs->dcbaa_ptr);
1267
1268 /*
1269 * Initialize the ring segment pool. The ring must be a contiguous
1270 * structure comprised of TRBs. The TRBs must be 16 byte aligned,
1271 * however, the command ring segment needs 64-byte aligned segments
1272 * and our use of dma addresses in the trb_address_map radix tree needs
1273 * TRB_SEGMENT_SIZE alignment, so driver pick the greater alignment
1274 * need.
1275 */
1276 pdev->segment_pool = dma_pool_create("CDNSP ring segments", dev,
1277 TRB_SEGMENT_SIZE, TRB_SEGMENT_SIZE,
1278 page_size);
1279 if (!pdev->segment_pool)
1280 goto release_dcbaa;
1281
1282 pdev->device_pool = dma_pool_create("CDNSP input/output contexts", dev,
1283 CDNSP_CTX_SIZE, 64, page_size);
1284 if (!pdev->device_pool)
1285 goto destroy_segment_pool;
1286
1287
1288 /* Set up the command ring to have one segments for now. */
1289 pdev->cmd_ring = cdnsp_ring_alloc(pdev, 1, TYPE_COMMAND, 0, GFP_KERNEL);
1290 if (!pdev->cmd_ring)
1291 goto destroy_device_pool;
1292
1293 /* Set the address in the Command Ring Control register */
1294 val_64 = cdnsp_read_64(&pdev->op_regs->cmd_ring);
1295 val_64 = (val_64 & (u64)CMD_RING_RSVD_BITS) |
1296 (pdev->cmd_ring->first_seg->dma & (u64)~CMD_RING_RSVD_BITS) |
1297 pdev->cmd_ring->cycle_state;
1298 cdnsp_write_64(val_64, &pdev->op_regs->cmd_ring);
1299
1300 val = readl(&pdev->cap_regs->db_off);
1301 val &= DBOFF_MASK;
1302 pdev->dba = (void __iomem *)pdev->cap_regs + val;
1303
1304 /* Set ir_set to interrupt register set 0 */
1305 pdev->ir_set = &pdev->run_regs->ir_set[0];
1306
1307 /*
1308 * Event ring setup: Allocate a normal ring, but also setup
1309 * the event ring segment table (ERST).
1310 */
1311 pdev->event_ring = cdnsp_ring_alloc(pdev, ERST_NUM_SEGS, TYPE_EVENT,
1312 0, GFP_KERNEL);
1313 if (!pdev->event_ring)
1314 goto free_cmd_ring;
1315
1316 ret = cdnsp_alloc_erst(pdev, pdev->event_ring, &pdev->erst);
1317 if (ret)
1318 goto free_event_ring;
1319
1320 /* Set ERST count with the number of entries in the segment table. */
1321 val = readl(&pdev->ir_set->erst_size);
1322 val &= ERST_SIZE_MASK;
1323 val |= ERST_NUM_SEGS;
1324 writel(val, &pdev->ir_set->erst_size);
1325
1326 /* Set the segment table base address. */
1327 val_64 = cdnsp_read_64(&pdev->ir_set->erst_base);
1328 val_64 &= ERST_PTR_MASK;
1329 val_64 |= (pdev->erst.erst_dma_addr & (u64)~ERST_PTR_MASK);
1330 cdnsp_write_64(val_64, &pdev->ir_set->erst_base);
1331
1332 /* Set the event ring dequeue address. */
1333 cdnsp_set_event_deq(pdev);
1334
1335 ret = cdnsp_setup_port_arrays(pdev);
1336 if (ret)
1337 goto free_erst;
1338
1339 ret = cdnsp_alloc_priv_device(pdev);
1340 if (ret) {
1341 dev_err(pdev->dev,
1342 "Could not allocate cdnsp_device data structures\n");
1343 goto free_erst;
1344 }
1345
1346 return 0;
1347
1348 free_erst:
1349 cdnsp_free_erst(pdev, &pdev->erst);
1350 free_event_ring:
1351 cdnsp_ring_free(pdev, pdev->event_ring);
1352 free_cmd_ring:
1353 cdnsp_ring_free(pdev, pdev->cmd_ring);
1354 destroy_device_pool:
1355 dma_pool_destroy(pdev->device_pool);
1356 destroy_segment_pool:
1357 dma_pool_destroy(pdev->segment_pool);
1358 release_dcbaa:
1359 dma_free_coherent(dev, sizeof(*pdev->dcbaa), pdev->dcbaa,
1360 pdev->dcbaa->dma);
1361
1362 cdnsp_reset(pdev);
1363
1364 return ret;
1365 }
1366