1 // SPDX-License-Identifier: GPL-2.0
2 /*
3 * gadget.c - DesignWare USB3 DRD Controller Gadget Framework Link
4 *
5 * Copyright (C) 2010-2011 Texas Instruments Incorporated - https://www.ti.com
6 *
7 * Authors: Felipe Balbi <balbi@ti.com>,
8 * Sebastian Andrzej Siewior <bigeasy@linutronix.de>
9 */
10
11 #include <linux/kernel.h>
12 #include <linux/delay.h>
13 #include <linux/slab.h>
14 #include <linux/spinlock.h>
15 #include <linux/platform_device.h>
16 #include <linux/pm_runtime.h>
17 #include <linux/interrupt.h>
18 #include <linux/io.h>
19 #include <linux/list.h>
20 #include <linux/dma-mapping.h>
21
22 #include <linux/usb/ch9.h>
23 #include <linux/usb/gadget.h>
24
25 #include "debug.h"
26 #include "core.h"
27 #include "gadget.h"
28 #include "io.h"
29
30 #define DWC3_ALIGN_FRAME(d, n) (((d)->frame_number + ((d)->interval * (n))) \
31 & ~((d)->interval - 1))
32
33 /**
34 * dwc3_gadget_set_test_mode - enables usb2 test modes
35 * @dwc: pointer to our context structure
36 * @mode: the mode to set (J, K SE0 NAK, Force Enable)
37 *
38 * Caller should take care of locking. This function will return 0 on
39 * success or -EINVAL if wrong Test Selector is passed.
40 */
dwc3_gadget_set_test_mode(struct dwc3 * dwc,int mode)41 int dwc3_gadget_set_test_mode(struct dwc3 *dwc, int mode)
42 {
43 u32 reg;
44
45 reg = dwc3_readl(dwc, DWC3_DCTL);
46 reg &= ~DWC3_DCTL_TSTCTRL_MASK;
47
48 switch (mode) {
49 case USB_TEST_J:
50 case USB_TEST_K:
51 case USB_TEST_SE0_NAK:
52 case USB_TEST_PACKET:
53 case USB_TEST_FORCE_ENABLE:
54 reg |= mode << 1;
55 break;
56 default:
57 return -EINVAL;
58 }
59
60 dwc3_gadget_dctl_write_safe(dwc, reg);
61
62 return 0;
63 }
64
65 /**
66 * dwc3_gadget_get_link_state - gets current state of usb link
67 * @dwc: pointer to our context structure
68 *
69 * Caller should take care of locking. This function will
70 * return the link state on success (>= 0) or -ETIMEDOUT.
71 */
dwc3_gadget_get_link_state(struct dwc3 * dwc)72 int dwc3_gadget_get_link_state(struct dwc3 *dwc)
73 {
74 u32 reg;
75
76 reg = dwc3_readl(dwc, DWC3_DSTS);
77
78 return DWC3_DSTS_USBLNKST(reg);
79 }
80
81 /**
82 * dwc3_gadget_set_link_state - sets usb link to a particular state
83 * @dwc: pointer to our context structure
84 * @state: the state to put link into
85 *
86 * Caller should take care of locking. This function will
87 * return 0 on success or -ETIMEDOUT.
88 */
dwc3_gadget_set_link_state(struct dwc3 * dwc,enum dwc3_link_state state)89 int dwc3_gadget_set_link_state(struct dwc3 *dwc, enum dwc3_link_state state)
90 {
91 int retries = 10000;
92 u32 reg;
93
94 /*
95 * Wait until device controller is ready. Only applies to 1.94a and
96 * later RTL.
97 */
98 if (!DWC3_VER_IS_PRIOR(DWC3, 194A)) {
99 while (--retries) {
100 reg = dwc3_readl(dwc, DWC3_DSTS);
101 if (reg & DWC3_DSTS_DCNRD)
102 udelay(5);
103 else
104 break;
105 }
106
107 if (retries <= 0)
108 return -ETIMEDOUT;
109 }
110
111 reg = dwc3_readl(dwc, DWC3_DCTL);
112 reg &= ~DWC3_DCTL_ULSTCHNGREQ_MASK;
113
114 /* set no action before sending new link state change */
115 dwc3_writel(dwc, DWC3_DCTL, reg);
116
117 /* set requested state */
118 reg |= DWC3_DCTL_ULSTCHNGREQ(state);
119 dwc3_writel(dwc, DWC3_DCTL, reg);
120
121 /*
122 * The following code is racy when called from dwc3_gadget_wakeup,
123 * and is not needed, at least on newer versions
124 */
125 if (!DWC3_VER_IS_PRIOR(DWC3, 194A))
126 return 0;
127
128 /* wait for a change in DSTS */
129 retries = 10000;
130 while (--retries) {
131 reg = dwc3_readl(dwc, DWC3_DSTS);
132
133 if (DWC3_DSTS_USBLNKST(reg) == state)
134 return 0;
135
136 udelay(5);
137 }
138
139 return -ETIMEDOUT;
140 }
141
dwc3_ep0_reset_state(struct dwc3 * dwc)142 static void dwc3_ep0_reset_state(struct dwc3 *dwc)
143 {
144 unsigned int dir;
145
146 if (dwc->ep0state != EP0_SETUP_PHASE) {
147 dir = !!dwc->ep0_expect_in;
148 if (dwc->ep0state == EP0_DATA_PHASE)
149 dwc3_ep0_end_control_data(dwc, dwc->eps[dir]);
150 else
151 dwc3_ep0_end_control_data(dwc, dwc->eps[!dir]);
152
153 dwc->eps[0]->trb_enqueue = 0;
154 dwc->eps[1]->trb_enqueue = 0;
155
156 dwc3_ep0_stall_and_restart(dwc);
157 }
158 }
159
160 /**
161 * dwc3_ep_inc_trb - increment a trb index.
162 * @index: Pointer to the TRB index to increment.
163 *
164 * The index should never point to the link TRB. After incrementing,
165 * if it is point to the link TRB, wrap around to the beginning. The
166 * link TRB is always at the last TRB entry.
167 */
dwc3_ep_inc_trb(u8 * index)168 static void dwc3_ep_inc_trb(u8 *index)
169 {
170 (*index)++;
171 if (*index == (DWC3_TRB_NUM - 1))
172 *index = 0;
173 }
174
175 /**
176 * dwc3_ep_inc_enq - increment endpoint's enqueue pointer
177 * @dep: The endpoint whose enqueue pointer we're incrementing
178 */
dwc3_ep_inc_enq(struct dwc3_ep * dep)179 static void dwc3_ep_inc_enq(struct dwc3_ep *dep)
180 {
181 dwc3_ep_inc_trb(&dep->trb_enqueue);
182 }
183
184 /**
185 * dwc3_ep_inc_deq - increment endpoint's dequeue pointer
186 * @dep: The endpoint whose enqueue pointer we're incrementing
187 */
dwc3_ep_inc_deq(struct dwc3_ep * dep)188 static void dwc3_ep_inc_deq(struct dwc3_ep *dep)
189 {
190 dwc3_ep_inc_trb(&dep->trb_dequeue);
191 }
192
dwc3_gadget_del_and_unmap_request(struct dwc3_ep * dep,struct dwc3_request * req,int status)193 static void dwc3_gadget_del_and_unmap_request(struct dwc3_ep *dep,
194 struct dwc3_request *req, int status)
195 {
196 struct dwc3 *dwc = dep->dwc;
197
198 list_del(&req->list);
199 req->remaining = 0;
200 req->num_trbs = 0;
201
202 if (req->request.status == -EINPROGRESS)
203 req->request.status = status;
204
205 if (req->trb)
206 usb_gadget_unmap_request_by_dev(dwc->sysdev,
207 &req->request, req->direction);
208
209 req->trb = NULL;
210 trace_dwc3_gadget_giveback(req);
211
212 if (dep->number > 1)
213 pm_runtime_put(dwc->dev);
214 }
215
216 /**
217 * dwc3_gadget_giveback - call struct usb_request's ->complete callback
218 * @dep: The endpoint to whom the request belongs to
219 * @req: The request we're giving back
220 * @status: completion code for the request
221 *
222 * Must be called with controller's lock held and interrupts disabled. This
223 * function will unmap @req and call its ->complete() callback to notify upper
224 * layers that it has completed.
225 */
dwc3_gadget_giveback(struct dwc3_ep * dep,struct dwc3_request * req,int status)226 void dwc3_gadget_giveback(struct dwc3_ep *dep, struct dwc3_request *req,
227 int status)
228 {
229 struct dwc3 *dwc = dep->dwc;
230
231 /*
232 * The request might have been processed and completed while the
233 * spinlock was released. Skip processing if already completed.
234 */
235 if (req->status == DWC3_REQUEST_STATUS_COMPLETED)
236 return;
237
238 dwc3_gadget_del_and_unmap_request(dep, req, status);
239 req->status = DWC3_REQUEST_STATUS_COMPLETED;
240
241 spin_unlock(&dwc->lock);
242 usb_gadget_giveback_request(&dep->endpoint, &req->request);
243 spin_lock(&dwc->lock);
244 }
245
246 /**
247 * dwc3_send_gadget_generic_command - issue a generic command for the controller
248 * @dwc: pointer to the controller context
249 * @cmd: the command to be issued
250 * @param: command parameter
251 *
252 * Caller should take care of locking. Issue @cmd with a given @param to @dwc
253 * and wait for its completion.
254 */
dwc3_send_gadget_generic_command(struct dwc3 * dwc,unsigned int cmd,u32 param)255 int dwc3_send_gadget_generic_command(struct dwc3 *dwc, unsigned int cmd,
256 u32 param)
257 {
258 u32 timeout = 500;
259 int status = 0;
260 int ret = 0;
261 u32 reg;
262
263 dwc3_writel(dwc, DWC3_DGCMDPAR, param);
264 dwc3_writel(dwc, DWC3_DGCMD, cmd | DWC3_DGCMD_CMDACT);
265
266 do {
267 reg = dwc3_readl(dwc, DWC3_DGCMD);
268 if (!(reg & DWC3_DGCMD_CMDACT)) {
269 status = DWC3_DGCMD_STATUS(reg);
270 if (status)
271 ret = -EINVAL;
272 break;
273 }
274 } while (--timeout);
275
276 if (!timeout) {
277 ret = -ETIMEDOUT;
278 status = -ETIMEDOUT;
279 }
280
281 trace_dwc3_gadget_generic_cmd(dwc, cmd, param, status);
282
283 return ret;
284 }
285
286 /**
287 * dwc3_send_gadget_ep_cmd - issue an endpoint command
288 * @dep: the endpoint to which the command is going to be issued
289 * @cmd: the command to be issued
290 * @params: parameters to the command
291 *
292 * Caller should handle locking. This function will issue @cmd with given
293 * @params to @dep and wait for its completion.
294 *
295 * According to the programming guide, if the link state is in L1/L2/U3,
296 * then sending the Start Transfer command may not complete. The
297 * programming guide suggested to bring the link state back to ON/U0 by
298 * performing remote wakeup prior to sending the command. However, don't
299 * initiate remote wakeup when the user/function does not send wakeup
300 * request via wakeup ops. Send the command when it's allowed.
301 *
302 * Notes:
303 * For L1 link state, issuing a command requires the clearing of
304 * GUSB2PHYCFG.SUSPENDUSB2, which turns on the signal required to complete
305 * the given command (usually within 50us). This should happen within the
306 * command timeout set by driver. No additional step is needed.
307 *
308 * For L2 or U3 link state, the gadget is in USB suspend. Care should be
309 * taken when sending Start Transfer command to ensure that it's done after
310 * USB resume.
311 */
dwc3_send_gadget_ep_cmd(struct dwc3_ep * dep,unsigned int cmd,struct dwc3_gadget_ep_cmd_params * params)312 int dwc3_send_gadget_ep_cmd(struct dwc3_ep *dep, unsigned int cmd,
313 struct dwc3_gadget_ep_cmd_params *params)
314 {
315 const struct usb_endpoint_descriptor *desc = dep->endpoint.desc;
316 struct dwc3 *dwc = dep->dwc;
317 u32 timeout = 5000;
318 u32 saved_config = 0;
319 u32 reg;
320
321 int cmd_status = 0;
322 int ret = -EINVAL;
323 u8 epnum = dep->number;
324
325 /*
326 * When operating in USB 2.0 speeds (HS/FS), if GUSB2PHYCFG.ENBLSLPM or
327 * GUSB2PHYCFG.SUSPHY is set, it must be cleared before issuing an
328 * endpoint command.
329 *
330 * Save and clear both GUSB2PHYCFG.ENBLSLPM and GUSB2PHYCFG.SUSPHY
331 * settings. Restore them after the command is completed.
332 *
333 * DWC_usb3 3.30a and DWC_usb31 1.90a programming guide section 3.2.2
334 */
335 if (dwc->gadget->speed <= USB_SPEED_HIGH ||
336 DWC3_DEPCMD_CMD(cmd) == DWC3_DEPCMD_ENDTRANSFER) {
337 reg = dwc3_readl(dwc, DWC3_GUSB2PHYCFG(0));
338 if (unlikely(reg & DWC3_GUSB2PHYCFG_SUSPHY)) {
339 saved_config |= DWC3_GUSB2PHYCFG_SUSPHY;
340 reg &= ~DWC3_GUSB2PHYCFG_SUSPHY;
341 }
342
343 if (reg & DWC3_GUSB2PHYCFG_ENBLSLPM) {
344 saved_config |= DWC3_GUSB2PHYCFG_ENBLSLPM;
345 reg &= ~DWC3_GUSB2PHYCFG_ENBLSLPM;
346 }
347
348 if (saved_config)
349 dwc3_writel(dwc, DWC3_GUSB2PHYCFG(0), reg);
350 }
351
352 /*
353 * For some commands such as Update Transfer command, DEPCMDPARn
354 * registers are reserved. Since the driver often sends Update Transfer
355 * command, don't write to DEPCMDPARn to avoid register write delays and
356 * improve performance.
357 */
358 if (DWC3_DEPCMD_CMD(cmd) != DWC3_DEPCMD_UPDATETRANSFER) {
359 dwc3_writel(dwc, DWC3_DEPCMDPAR0(epnum), params->param0);
360 dwc3_writel(dwc, DWC3_DEPCMDPAR1(epnum), params->param1);
361 dwc3_writel(dwc, DWC3_DEPCMDPAR2(epnum), params->param2);
362 }
363
364 /*
365 * Synopsys Databook 2.60a states in section 6.3.2.5.6 of that if we're
366 * not relying on XferNotReady, we can make use of a special "No
367 * Response Update Transfer" command where we should clear both CmdAct
368 * and CmdIOC bits.
369 *
370 * With this, we don't need to wait for command completion and can
371 * straight away issue further commands to the endpoint.
372 *
373 * NOTICE: We're making an assumption that control endpoints will never
374 * make use of Update Transfer command. This is a safe assumption
375 * because we can never have more than one request at a time with
376 * Control Endpoints. If anybody changes that assumption, this chunk
377 * needs to be updated accordingly.
378 */
379 if (DWC3_DEPCMD_CMD(cmd) == DWC3_DEPCMD_UPDATETRANSFER &&
380 !usb_endpoint_xfer_isoc(desc))
381 cmd &= ~(DWC3_DEPCMD_CMDIOC | DWC3_DEPCMD_CMDACT);
382 else
383 cmd |= DWC3_DEPCMD_CMDACT;
384
385 dwc3_writel(dwc, DWC3_DEPCMD(epnum), cmd);
386
387 if (!(cmd & DWC3_DEPCMD_CMDACT) ||
388 (DWC3_DEPCMD_CMD(cmd) == DWC3_DEPCMD_ENDTRANSFER &&
389 !(cmd & DWC3_DEPCMD_CMDIOC))) {
390 ret = 0;
391 goto skip_status;
392 }
393
394 do {
395 reg = dwc3_readl(dwc, DWC3_DEPCMD(epnum));
396 if (!(reg & DWC3_DEPCMD_CMDACT)) {
397 cmd_status = DWC3_DEPCMD_STATUS(reg);
398
399 switch (cmd_status) {
400 case 0:
401 ret = 0;
402 break;
403 case DEPEVT_TRANSFER_NO_RESOURCE:
404 dev_WARN(dwc->dev, "No resource for %s\n",
405 dep->name);
406 ret = -EINVAL;
407 break;
408 case DEPEVT_TRANSFER_BUS_EXPIRY:
409 /*
410 * SW issues START TRANSFER command to
411 * isochronous ep with future frame interval. If
412 * future interval time has already passed when
413 * core receives the command, it will respond
414 * with an error status of 'Bus Expiry'.
415 *
416 * Instead of always returning -EINVAL, let's
417 * give a hint to the gadget driver that this is
418 * the case by returning -EAGAIN.
419 */
420 ret = -EAGAIN;
421 break;
422 default:
423 dev_WARN(dwc->dev, "UNKNOWN cmd status\n");
424 }
425
426 break;
427 }
428 } while (--timeout);
429
430 if (timeout == 0) {
431 ret = -ETIMEDOUT;
432 cmd_status = -ETIMEDOUT;
433 }
434
435 skip_status:
436 trace_dwc3_gadget_ep_cmd(dep, cmd, params, cmd_status);
437
438 if (DWC3_DEPCMD_CMD(cmd) == DWC3_DEPCMD_STARTTRANSFER) {
439 if (ret == 0)
440 dep->flags |= DWC3_EP_TRANSFER_STARTED;
441
442 if (ret != -ETIMEDOUT)
443 dwc3_gadget_ep_get_transfer_index(dep);
444 }
445
446 if (DWC3_DEPCMD_CMD(cmd) == DWC3_DEPCMD_ENDTRANSFER &&
447 !(cmd & DWC3_DEPCMD_CMDIOC))
448 mdelay(1);
449
450 if (saved_config) {
451 reg = dwc3_readl(dwc, DWC3_GUSB2PHYCFG(0));
452 reg |= saved_config;
453 dwc3_writel(dwc, DWC3_GUSB2PHYCFG(0), reg);
454 }
455
456 return ret;
457 }
458
dwc3_send_clear_stall_ep_cmd(struct dwc3_ep * dep)459 static int dwc3_send_clear_stall_ep_cmd(struct dwc3_ep *dep)
460 {
461 struct dwc3 *dwc = dep->dwc;
462 struct dwc3_gadget_ep_cmd_params params;
463 u32 cmd = DWC3_DEPCMD_CLEARSTALL;
464
465 /*
466 * As of core revision 2.60a the recommended programming model
467 * is to set the ClearPendIN bit when issuing a Clear Stall EP
468 * command for IN endpoints. This is to prevent an issue where
469 * some (non-compliant) hosts may not send ACK TPs for pending
470 * IN transfers due to a mishandled error condition. Synopsys
471 * STAR 9000614252.
472 */
473 if (dep->direction &&
474 !DWC3_VER_IS_PRIOR(DWC3, 260A) &&
475 (dwc->gadget->speed >= USB_SPEED_SUPER))
476 cmd |= DWC3_DEPCMD_CLEARPENDIN;
477
478 memset(¶ms, 0, sizeof(params));
479
480 return dwc3_send_gadget_ep_cmd(dep, cmd, ¶ms);
481 }
482
dwc3_trb_dma_offset(struct dwc3_ep * dep,struct dwc3_trb * trb)483 static dma_addr_t dwc3_trb_dma_offset(struct dwc3_ep *dep,
484 struct dwc3_trb *trb)
485 {
486 u32 offset = (char *) trb - (char *) dep->trb_pool;
487
488 return dep->trb_pool_dma + offset;
489 }
490
dwc3_alloc_trb_pool(struct dwc3_ep * dep)491 static int dwc3_alloc_trb_pool(struct dwc3_ep *dep)
492 {
493 struct dwc3 *dwc = dep->dwc;
494
495 if (dep->trb_pool)
496 return 0;
497
498 dep->trb_pool = dma_alloc_coherent(dwc->sysdev,
499 sizeof(struct dwc3_trb) * DWC3_TRB_NUM,
500 &dep->trb_pool_dma, GFP_KERNEL);
501 if (!dep->trb_pool) {
502 dev_err(dep->dwc->dev, "failed to allocate trb pool for %s\n",
503 dep->name);
504 return -ENOMEM;
505 }
506
507 return 0;
508 }
509
dwc3_free_trb_pool(struct dwc3_ep * dep)510 static void dwc3_free_trb_pool(struct dwc3_ep *dep)
511 {
512 struct dwc3 *dwc = dep->dwc;
513
514 dma_free_coherent(dwc->sysdev, sizeof(struct dwc3_trb) * DWC3_TRB_NUM,
515 dep->trb_pool, dep->trb_pool_dma);
516
517 dep->trb_pool = NULL;
518 dep->trb_pool_dma = 0;
519 }
520
dwc3_gadget_set_xfer_resource(struct dwc3_ep * dep)521 static int dwc3_gadget_set_xfer_resource(struct dwc3_ep *dep)
522 {
523 struct dwc3_gadget_ep_cmd_params params;
524 int ret;
525
526 if (dep->flags & DWC3_EP_RESOURCE_ALLOCATED)
527 return 0;
528
529 memset(¶ms, 0x00, sizeof(params));
530
531 params.param0 = DWC3_DEPXFERCFG_NUM_XFER_RES(1);
532
533 ret = dwc3_send_gadget_ep_cmd(dep, DWC3_DEPCMD_SETTRANSFRESOURCE,
534 ¶ms);
535 if (ret)
536 return ret;
537
538 dep->flags |= DWC3_EP_RESOURCE_ALLOCATED;
539 return 0;
540 }
541
542 /**
543 * dwc3_gadget_start_config - reset endpoint resources
544 * @dwc: pointer to the DWC3 context
545 * @resource_index: DEPSTARTCFG.XferRscIdx value (must be 0 or 2)
546 *
547 * Set resource_index=0 to reset all endpoints' resources allocation. Do this as
548 * part of the power-on/soft-reset initialization.
549 *
550 * Set resource_index=2 to reset only non-control endpoints' resources. Do this
551 * on receiving the SET_CONFIGURATION request or hibernation resume.
552 */
dwc3_gadget_start_config(struct dwc3 * dwc,unsigned int resource_index)553 int dwc3_gadget_start_config(struct dwc3 *dwc, unsigned int resource_index)
554 {
555 struct dwc3_gadget_ep_cmd_params params;
556 struct dwc3_ep *dep;
557 u32 cmd;
558 int i;
559 int ret;
560
561 if (resource_index != 0 && resource_index != 2)
562 return -EINVAL;
563
564 memset(¶ms, 0x00, sizeof(params));
565 cmd = DWC3_DEPCMD_DEPSTARTCFG;
566 cmd |= DWC3_DEPCMD_PARAM(resource_index);
567
568 ret = dwc3_send_gadget_ep_cmd(dwc->eps[0], cmd, ¶ms);
569 if (ret)
570 return ret;
571
572 /* Reset resource allocation flags */
573 for (i = resource_index; i < dwc->num_eps; i++) {
574 dep = dwc->eps[i];
575 if (!dep)
576 continue;
577
578 dep->flags &= ~DWC3_EP_RESOURCE_ALLOCATED;
579 }
580
581 return 0;
582 }
583
dwc3_gadget_set_ep_config(struct dwc3_ep * dep,unsigned int action)584 static int dwc3_gadget_set_ep_config(struct dwc3_ep *dep, unsigned int action)
585 {
586 const struct usb_ss_ep_comp_descriptor *comp_desc;
587 const struct usb_endpoint_descriptor *desc;
588 struct dwc3_gadget_ep_cmd_params params;
589 struct dwc3 *dwc = dep->dwc;
590
591 comp_desc = dep->endpoint.comp_desc;
592 desc = dep->endpoint.desc;
593
594 memset(¶ms, 0x00, sizeof(params));
595
596 params.param0 = DWC3_DEPCFG_EP_TYPE(usb_endpoint_type(desc))
597 | DWC3_DEPCFG_MAX_PACKET_SIZE(usb_endpoint_maxp(desc));
598
599 /* Burst size is only needed in SuperSpeed mode */
600 if (dwc->gadget->speed >= USB_SPEED_SUPER) {
601 u32 burst = dep->endpoint.maxburst;
602
603 params.param0 |= DWC3_DEPCFG_BURST_SIZE(burst - 1);
604 }
605
606 params.param0 |= action;
607 if (action == DWC3_DEPCFG_ACTION_RESTORE)
608 params.param2 |= dep->saved_state;
609
610 if (usb_endpoint_xfer_control(desc))
611 params.param1 = DWC3_DEPCFG_XFER_COMPLETE_EN;
612
613 if (dep->number <= 1 || usb_endpoint_xfer_isoc(desc))
614 params.param1 |= DWC3_DEPCFG_XFER_NOT_READY_EN;
615
616 if (usb_ss_max_streams(comp_desc) && usb_endpoint_xfer_bulk(desc)) {
617 params.param1 |= DWC3_DEPCFG_STREAM_CAPABLE
618 | DWC3_DEPCFG_XFER_COMPLETE_EN
619 | DWC3_DEPCFG_STREAM_EVENT_EN;
620 dep->stream_capable = true;
621 }
622
623 if (!usb_endpoint_xfer_control(desc))
624 params.param1 |= DWC3_DEPCFG_XFER_IN_PROGRESS_EN;
625
626 /*
627 * We are doing 1:1 mapping for endpoints, meaning
628 * Physical Endpoints 2 maps to Logical Endpoint 2 and
629 * so on. We consider the direction bit as part of the physical
630 * endpoint number. So USB endpoint 0x81 is 0x03.
631 */
632 params.param1 |= DWC3_DEPCFG_EP_NUMBER(dep->number);
633
634 /*
635 * We must use the lower 16 TX FIFOs even though
636 * HW might have more
637 */
638 if (dep->direction)
639 params.param0 |= DWC3_DEPCFG_FIFO_NUMBER(dep->number >> 1);
640
641 if (desc->bInterval) {
642 u8 bInterval_m1;
643
644 /*
645 * Valid range for DEPCFG.bInterval_m1 is from 0 to 13.
646 *
647 * NOTE: The programming guide incorrectly stated bInterval_m1
648 * must be set to 0 when operating in fullspeed. Internally the
649 * controller does not have this limitation. See DWC_usb3x
650 * programming guide section 3.2.2.1.
651 */
652 bInterval_m1 = min_t(u8, desc->bInterval - 1, 13);
653
654 if (usb_endpoint_type(desc) == USB_ENDPOINT_XFER_INT &&
655 dwc->gadget->speed == USB_SPEED_FULL)
656 dep->interval = desc->bInterval;
657 else
658 dep->interval = 1 << (desc->bInterval - 1);
659
660 params.param1 |= DWC3_DEPCFG_BINTERVAL_M1(bInterval_m1);
661 }
662
663 return dwc3_send_gadget_ep_cmd(dep, DWC3_DEPCMD_SETEPCONFIG, ¶ms);
664 }
665
666 /**
667 * dwc3_gadget_calc_tx_fifo_size - calculates the txfifo size value
668 * @dwc: pointer to the DWC3 context
669 * @mult: multiplier to be used when calculating the fifo_size
670 *
671 * Calculates the size value based on the equation below:
672 *
673 * DWC3 revision 280A and prior:
674 * fifo_size = mult * (max_packet / mdwidth) + 1;
675 *
676 * DWC3 revision 290A and onwards:
677 * fifo_size = mult * ((max_packet + mdwidth)/mdwidth + 1) + 1
678 *
679 * The max packet size is set to 1024, as the txfifo requirements mainly apply
680 * to super speed USB use cases. However, it is safe to overestimate the fifo
681 * allocations for other scenarios, i.e. high speed USB.
682 */
dwc3_gadget_calc_tx_fifo_size(struct dwc3 * dwc,int mult)683 static int dwc3_gadget_calc_tx_fifo_size(struct dwc3 *dwc, int mult)
684 {
685 int max_packet = 1024;
686 int fifo_size;
687 int mdwidth;
688
689 mdwidth = dwc3_mdwidth(dwc);
690
691 /* MDWIDTH is represented in bits, we need it in bytes */
692 mdwidth >>= 3;
693
694 if (DWC3_VER_IS_PRIOR(DWC3, 290A))
695 fifo_size = mult * (max_packet / mdwidth) + 1;
696 else
697 fifo_size = mult * ((max_packet + mdwidth) / mdwidth) + 1;
698 return fifo_size;
699 }
700
701 /**
702 * dwc3_gadget_calc_ram_depth - calculates the ram depth for txfifo
703 * @dwc: pointer to the DWC3 context
704 */
dwc3_gadget_calc_ram_depth(struct dwc3 * dwc)705 static int dwc3_gadget_calc_ram_depth(struct dwc3 *dwc)
706 {
707 int ram_depth;
708 int fifo_0_start;
709 bool is_single_port_ram;
710
711 /* Check supporting RAM type by HW */
712 is_single_port_ram = DWC3_SPRAM_TYPE(dwc->hwparams.hwparams1);
713
714 /*
715 * If a single port RAM is utilized, then allocate TxFIFOs from
716 * RAM0. otherwise, allocate them from RAM1.
717 */
718 ram_depth = is_single_port_ram ? DWC3_RAM0_DEPTH(dwc->hwparams.hwparams6) :
719 DWC3_RAM1_DEPTH(dwc->hwparams.hwparams7);
720
721 /*
722 * In a single port RAM configuration, the available RAM is shared
723 * between the RX and TX FIFOs. This means that the txfifo can begin
724 * at a non-zero address.
725 */
726 if (is_single_port_ram) {
727 u32 reg;
728
729 /* Check if TXFIFOs start at non-zero addr */
730 reg = dwc3_readl(dwc, DWC3_GTXFIFOSIZ(0));
731 fifo_0_start = DWC3_GTXFIFOSIZ_TXFSTADDR(reg);
732
733 ram_depth -= (fifo_0_start >> 16);
734 }
735
736 return ram_depth;
737 }
738
739 /**
740 * dwc3_gadget_clear_tx_fifos - Clears txfifo allocation
741 * @dwc: pointer to the DWC3 context
742 *
743 * Iterates through all the endpoint registers and clears the previous txfifo
744 * allocations.
745 */
dwc3_gadget_clear_tx_fifos(struct dwc3 * dwc)746 void dwc3_gadget_clear_tx_fifos(struct dwc3 *dwc)
747 {
748 struct dwc3_ep *dep;
749 int fifo_depth;
750 int size;
751 int num;
752
753 if (!dwc->do_fifo_resize)
754 return;
755
756 /* Read ep0IN related TXFIFO size */
757 dep = dwc->eps[1];
758 size = dwc3_readl(dwc, DWC3_GTXFIFOSIZ(0));
759 if (DWC3_IP_IS(DWC3))
760 fifo_depth = DWC3_GTXFIFOSIZ_TXFDEP(size);
761 else
762 fifo_depth = DWC31_GTXFIFOSIZ_TXFDEP(size);
763
764 dwc->last_fifo_depth = fifo_depth;
765 /* Clear existing TXFIFO for all IN eps except ep0 */
766 for (num = 3; num < min_t(int, dwc->num_eps, DWC3_ENDPOINTS_NUM); num += 2) {
767 dep = dwc->eps[num];
768 if (!dep)
769 continue;
770
771 /* Don't change TXFRAMNUM on usb31 version */
772 size = DWC3_IP_IS(DWC3) ? 0 :
773 dwc3_readl(dwc, DWC3_GTXFIFOSIZ(num >> 1)) &
774 DWC31_GTXFIFOSIZ_TXFRAMNUM;
775
776 dwc3_writel(dwc, DWC3_GTXFIFOSIZ(num >> 1), size);
777 dep->flags &= ~DWC3_EP_TXFIFO_RESIZED;
778 }
779 dwc->num_ep_resized = 0;
780 }
781
782 /*
783 * dwc3_gadget_resize_tx_fifos - reallocate fifo spaces for current use-case
784 * @dwc: pointer to our context structure
785 *
786 * This function will a best effort FIFO allocation in order
787 * to improve FIFO usage and throughput, while still allowing
788 * us to enable as many endpoints as possible.
789 *
790 * Keep in mind that this operation will be highly dependent
791 * on the configured size for RAM1 - which contains TxFifo -,
792 * the amount of endpoints enabled on coreConsultant tool, and
793 * the width of the Master Bus.
794 *
795 * In general, FIFO depths are represented with the following equation:
796 *
797 * fifo_size = mult * ((max_packet + mdwidth)/mdwidth + 1) + 1
798 *
799 * In conjunction with dwc3_gadget_check_config(), this resizing logic will
800 * ensure that all endpoints will have enough internal memory for one max
801 * packet per endpoint.
802 */
dwc3_gadget_resize_tx_fifos(struct dwc3_ep * dep)803 static int dwc3_gadget_resize_tx_fifos(struct dwc3_ep *dep)
804 {
805 struct dwc3 *dwc = dep->dwc;
806 int fifo_0_start;
807 int ram_depth;
808 int fifo_size;
809 int min_depth;
810 int num_in_ep;
811 int remaining;
812 int num_fifos = 1;
813 int fifo;
814 int tmp;
815
816 if (!dwc->do_fifo_resize)
817 return 0;
818
819 /* resize IN endpoints except ep0 */
820 if (!usb_endpoint_dir_in(dep->endpoint.desc) || dep->number <= 1)
821 return 0;
822
823 /* bail if already resized */
824 if (dep->flags & DWC3_EP_TXFIFO_RESIZED)
825 return 0;
826
827 ram_depth = dwc3_gadget_calc_ram_depth(dwc);
828
829 switch (dwc->gadget->speed) {
830 case USB_SPEED_SUPER_PLUS:
831 case USB_SPEED_SUPER:
832 if (usb_endpoint_xfer_bulk(dep->endpoint.desc) ||
833 usb_endpoint_xfer_isoc(dep->endpoint.desc))
834 num_fifos = min_t(unsigned int,
835 dep->endpoint.maxburst,
836 dwc->tx_fifo_resize_max_num);
837 break;
838 case USB_SPEED_HIGH:
839 if (usb_endpoint_xfer_isoc(dep->endpoint.desc)) {
840 num_fifos = min_t(unsigned int,
841 usb_endpoint_maxp_mult(dep->endpoint.desc) + 1,
842 dwc->tx_fifo_resize_max_num);
843 break;
844 }
845 fallthrough;
846 case USB_SPEED_FULL:
847 if (usb_endpoint_xfer_bulk(dep->endpoint.desc))
848 num_fifos = 2;
849 break;
850 default:
851 break;
852 }
853
854 /* FIFO size for a single buffer */
855 fifo = dwc3_gadget_calc_tx_fifo_size(dwc, 1);
856
857 /* Calculate the number of remaining EPs w/o any FIFO */
858 num_in_ep = dwc->max_cfg_eps;
859 num_in_ep -= dwc->num_ep_resized;
860
861 /* Reserve at least one FIFO for the number of IN EPs */
862 min_depth = num_in_ep * (fifo + 1);
863 remaining = ram_depth - min_depth - dwc->last_fifo_depth;
864 remaining = max_t(int, 0, remaining);
865 /*
866 * We've already reserved 1 FIFO per EP, so check what we can fit in
867 * addition to it. If there is not enough remaining space, allocate
868 * all the remaining space to the EP.
869 */
870 fifo_size = (num_fifos - 1) * fifo;
871 if (remaining < fifo_size)
872 fifo_size = remaining;
873
874 fifo_size += fifo;
875 /* Last increment according to the TX FIFO size equation */
876 fifo_size++;
877
878 /* Check if TXFIFOs start at non-zero addr */
879 tmp = dwc3_readl(dwc, DWC3_GTXFIFOSIZ(0));
880 fifo_0_start = DWC3_GTXFIFOSIZ_TXFSTADDR(tmp);
881
882 fifo_size |= (fifo_0_start + (dwc->last_fifo_depth << 16));
883 if (DWC3_IP_IS(DWC3))
884 dwc->last_fifo_depth += DWC3_GTXFIFOSIZ_TXFDEP(fifo_size);
885 else
886 dwc->last_fifo_depth += DWC31_GTXFIFOSIZ_TXFDEP(fifo_size);
887
888 /* Check fifo size allocation doesn't exceed available RAM size. */
889 if (dwc->last_fifo_depth >= ram_depth) {
890 dev_err(dwc->dev, "Fifosize(%d) > RAM size(%d) %s depth:%d\n",
891 dwc->last_fifo_depth, ram_depth,
892 dep->endpoint.name, fifo_size);
893 if (DWC3_IP_IS(DWC3))
894 fifo_size = DWC3_GTXFIFOSIZ_TXFDEP(fifo_size);
895 else
896 fifo_size = DWC31_GTXFIFOSIZ_TXFDEP(fifo_size);
897
898 dwc->last_fifo_depth -= fifo_size;
899 return -ENOMEM;
900 }
901
902 dwc3_writel(dwc, DWC3_GTXFIFOSIZ(dep->number >> 1), fifo_size);
903 dep->flags |= DWC3_EP_TXFIFO_RESIZED;
904 dwc->num_ep_resized++;
905
906 return 0;
907 }
908
909 /**
910 * __dwc3_gadget_ep_enable - initializes a hw endpoint
911 * @dep: endpoint to be initialized
912 * @action: one of INIT, MODIFY or RESTORE
913 *
914 * Caller should take care of locking. Execute all necessary commands to
915 * initialize a HW endpoint so it can be used by a gadget driver.
916 */
__dwc3_gadget_ep_enable(struct dwc3_ep * dep,unsigned int action)917 static int __dwc3_gadget_ep_enable(struct dwc3_ep *dep, unsigned int action)
918 {
919 const struct usb_endpoint_descriptor *desc = dep->endpoint.desc;
920 struct dwc3 *dwc = dep->dwc;
921
922 u32 reg;
923 int ret;
924
925 if (!(dep->flags & DWC3_EP_ENABLED)) {
926 ret = dwc3_gadget_resize_tx_fifos(dep);
927 if (ret)
928 return ret;
929 }
930
931 ret = dwc3_gadget_set_ep_config(dep, action);
932 if (ret)
933 return ret;
934
935 ret = dwc3_gadget_set_xfer_resource(dep);
936 if (ret)
937 return ret;
938
939 if (!(dep->flags & DWC3_EP_ENABLED)) {
940 struct dwc3_trb *trb_st_hw;
941 struct dwc3_trb *trb_link;
942
943 dep->type = usb_endpoint_type(desc);
944 dep->flags |= DWC3_EP_ENABLED;
945
946 reg = dwc3_readl(dwc, DWC3_DALEPENA);
947 reg |= DWC3_DALEPENA_EP(dep->number);
948 dwc3_writel(dwc, DWC3_DALEPENA, reg);
949
950 dep->trb_dequeue = 0;
951 dep->trb_enqueue = 0;
952
953 if (usb_endpoint_xfer_control(desc))
954 goto out;
955
956 /* Initialize the TRB ring */
957 memset(dep->trb_pool, 0,
958 sizeof(struct dwc3_trb) * DWC3_TRB_NUM);
959
960 /* Link TRB. The HWO bit is never reset */
961 trb_st_hw = &dep->trb_pool[0];
962
963 trb_link = &dep->trb_pool[DWC3_TRB_NUM - 1];
964 trb_link->bpl = lower_32_bits(dwc3_trb_dma_offset(dep, trb_st_hw));
965 trb_link->bph = upper_32_bits(dwc3_trb_dma_offset(dep, trb_st_hw));
966 trb_link->ctrl |= DWC3_TRBCTL_LINK_TRB;
967 trb_link->ctrl |= DWC3_TRB_CTRL_HWO;
968 }
969
970 /*
971 * Issue StartTransfer here with no-op TRB so we can always rely on No
972 * Response Update Transfer command.
973 */
974 if (usb_endpoint_xfer_bulk(desc) ||
975 usb_endpoint_xfer_int(desc)) {
976 struct dwc3_gadget_ep_cmd_params params;
977 struct dwc3_trb *trb;
978 dma_addr_t trb_dma;
979 u32 cmd;
980
981 memset(¶ms, 0, sizeof(params));
982 trb = &dep->trb_pool[0];
983 trb_dma = dwc3_trb_dma_offset(dep, trb);
984
985 params.param0 = upper_32_bits(trb_dma);
986 params.param1 = lower_32_bits(trb_dma);
987
988 cmd = DWC3_DEPCMD_STARTTRANSFER;
989
990 ret = dwc3_send_gadget_ep_cmd(dep, cmd, ¶ms);
991 if (ret < 0)
992 return ret;
993
994 if (dep->stream_capable) {
995 /*
996 * For streams, at start, there maybe a race where the
997 * host primes the endpoint before the function driver
998 * queues a request to initiate a stream. In that case,
999 * the controller will not see the prime to generate the
1000 * ERDY and start stream. To workaround this, issue a
1001 * no-op TRB as normal, but end it immediately. As a
1002 * result, when the function driver queues the request,
1003 * the next START_TRANSFER command will cause the
1004 * controller to generate an ERDY to initiate the
1005 * stream.
1006 */
1007 dwc3_stop_active_transfer(dep, false, true);
1008
1009 /*
1010 * All stream eps will reinitiate stream on NoStream
1011 * rejection.
1012 *
1013 * However, if the controller is capable of
1014 * TXF_FLUSH_BYPASS, then IN direction endpoints will
1015 * automatically restart the stream without the driver
1016 * initiation.
1017 */
1018 if (!dep->direction ||
1019 !(dwc->hwparams.hwparams9 &
1020 DWC3_GHWPARAMS9_DEV_TXF_FLUSH_BYPASS))
1021 dep->flags |= DWC3_EP_FORCE_RESTART_STREAM;
1022 }
1023 }
1024
1025 out:
1026 trace_dwc3_gadget_ep_enable(dep);
1027
1028 return 0;
1029 }
1030
dwc3_remove_requests(struct dwc3 * dwc,struct dwc3_ep * dep,int status)1031 void dwc3_remove_requests(struct dwc3 *dwc, struct dwc3_ep *dep, int status)
1032 {
1033 struct dwc3_request *req;
1034
1035 dwc3_stop_active_transfer(dep, false, false);
1036
1037 /* If endxfer is delayed, avoid unmapping requests */
1038 if (dep->flags & DWC3_EP_DELAY_STOP)
1039 return;
1040
1041 /* - giveback all requests to gadget driver */
1042 while (!list_empty(&dep->started_list)) {
1043 req = next_request(&dep->started_list);
1044
1045 dwc3_gadget_giveback(dep, req, status);
1046 }
1047
1048 while (!list_empty(&dep->pending_list)) {
1049 req = next_request(&dep->pending_list);
1050
1051 dwc3_gadget_giveback(dep, req, status);
1052 }
1053
1054 while (!list_empty(&dep->cancelled_list)) {
1055 req = next_request(&dep->cancelled_list);
1056
1057 dwc3_gadget_giveback(dep, req, status);
1058 }
1059 }
1060
1061 /**
1062 * __dwc3_gadget_ep_disable - disables a hw endpoint
1063 * @dep: the endpoint to disable
1064 *
1065 * This function undoes what __dwc3_gadget_ep_enable did and also removes
1066 * requests which are currently being processed by the hardware and those which
1067 * are not yet scheduled.
1068 *
1069 * Caller should take care of locking.
1070 */
__dwc3_gadget_ep_disable(struct dwc3_ep * dep)1071 static int __dwc3_gadget_ep_disable(struct dwc3_ep *dep)
1072 {
1073 struct dwc3 *dwc = dep->dwc;
1074 u32 reg;
1075 u32 mask;
1076
1077 trace_dwc3_gadget_ep_disable(dep);
1078
1079 /* make sure HW endpoint isn't stalled */
1080 if (dep->flags & DWC3_EP_STALL)
1081 __dwc3_gadget_ep_set_halt(dep, 0, false);
1082
1083 reg = dwc3_readl(dwc, DWC3_DALEPENA);
1084 reg &= ~DWC3_DALEPENA_EP(dep->number);
1085 dwc3_writel(dwc, DWC3_DALEPENA, reg);
1086
1087 dwc3_remove_requests(dwc, dep, -ESHUTDOWN);
1088
1089 dep->stream_capable = false;
1090 dep->type = 0;
1091 mask = DWC3_EP_TXFIFO_RESIZED | DWC3_EP_RESOURCE_ALLOCATED;
1092 /*
1093 * dwc3_remove_requests() can exit early if DWC3 EP delayed stop is
1094 * set. Do not clear DEP flags, so that the end transfer command will
1095 * be reattempted during the next SETUP stage.
1096 */
1097 if (dep->flags & DWC3_EP_DELAY_STOP)
1098 mask |= (DWC3_EP_DELAY_STOP | DWC3_EP_TRANSFER_STARTED);
1099 dep->flags &= mask;
1100
1101 /* Clear out the ep descriptors for non-ep0 */
1102 if (dep->number > 1) {
1103 dep->endpoint.comp_desc = NULL;
1104 dep->endpoint.desc = NULL;
1105 }
1106
1107 return 0;
1108 }
1109
1110 /* -------------------------------------------------------------------------- */
1111
dwc3_gadget_ep0_enable(struct usb_ep * ep,const struct usb_endpoint_descriptor * desc)1112 static int dwc3_gadget_ep0_enable(struct usb_ep *ep,
1113 const struct usb_endpoint_descriptor *desc)
1114 {
1115 return -EINVAL;
1116 }
1117
dwc3_gadget_ep0_disable(struct usb_ep * ep)1118 static int dwc3_gadget_ep0_disable(struct usb_ep *ep)
1119 {
1120 return -EINVAL;
1121 }
1122
1123 /* -------------------------------------------------------------------------- */
1124
dwc3_gadget_ep_enable(struct usb_ep * ep,const struct usb_endpoint_descriptor * desc)1125 static int dwc3_gadget_ep_enable(struct usb_ep *ep,
1126 const struct usb_endpoint_descriptor *desc)
1127 {
1128 struct dwc3_ep *dep;
1129 struct dwc3 *dwc;
1130 unsigned long flags;
1131 int ret;
1132
1133 if (!ep || !desc || desc->bDescriptorType != USB_DT_ENDPOINT) {
1134 pr_debug("dwc3: invalid parameters\n");
1135 return -EINVAL;
1136 }
1137
1138 if (!desc->wMaxPacketSize) {
1139 pr_debug("dwc3: missing wMaxPacketSize\n");
1140 return -EINVAL;
1141 }
1142
1143 dep = to_dwc3_ep(ep);
1144 dwc = dep->dwc;
1145
1146 if (dev_WARN_ONCE(dwc->dev, dep->flags & DWC3_EP_ENABLED,
1147 "%s is already enabled\n",
1148 dep->name))
1149 return 0;
1150
1151 spin_lock_irqsave(&dwc->lock, flags);
1152 ret = __dwc3_gadget_ep_enable(dep, DWC3_DEPCFG_ACTION_INIT);
1153 spin_unlock_irqrestore(&dwc->lock, flags);
1154
1155 return ret;
1156 }
1157
dwc3_gadget_ep_disable(struct usb_ep * ep)1158 static int dwc3_gadget_ep_disable(struct usb_ep *ep)
1159 {
1160 struct dwc3_ep *dep;
1161 struct dwc3 *dwc;
1162 unsigned long flags;
1163 int ret;
1164
1165 if (!ep) {
1166 pr_debug("dwc3: invalid parameters\n");
1167 return -EINVAL;
1168 }
1169
1170 dep = to_dwc3_ep(ep);
1171 dwc = dep->dwc;
1172
1173 if (dev_WARN_ONCE(dwc->dev, !(dep->flags & DWC3_EP_ENABLED),
1174 "%s is already disabled\n",
1175 dep->name))
1176 return 0;
1177
1178 spin_lock_irqsave(&dwc->lock, flags);
1179 ret = __dwc3_gadget_ep_disable(dep);
1180 spin_unlock_irqrestore(&dwc->lock, flags);
1181
1182 return ret;
1183 }
1184
dwc3_gadget_ep_alloc_request(struct usb_ep * ep,gfp_t gfp_flags)1185 static struct usb_request *dwc3_gadget_ep_alloc_request(struct usb_ep *ep,
1186 gfp_t gfp_flags)
1187 {
1188 struct dwc3_request *req;
1189 struct dwc3_ep *dep = to_dwc3_ep(ep);
1190
1191 req = kzalloc_obj(*req, gfp_flags);
1192 if (!req)
1193 return NULL;
1194
1195 req->direction = dep->direction;
1196 req->epnum = dep->number;
1197 req->dep = dep;
1198 req->status = DWC3_REQUEST_STATUS_UNKNOWN;
1199
1200 trace_dwc3_alloc_request(req);
1201
1202 return &req->request;
1203 }
1204
dwc3_gadget_ep_free_request(struct usb_ep * ep,struct usb_request * request)1205 static void dwc3_gadget_ep_free_request(struct usb_ep *ep,
1206 struct usb_request *request)
1207 {
1208 struct dwc3_request *req = to_dwc3_request(request);
1209
1210 trace_dwc3_free_request(req);
1211 kfree(req);
1212 }
1213
1214 /**
1215 * dwc3_ep_prev_trb - returns the previous TRB in the ring
1216 * @dep: The endpoint with the TRB ring
1217 * @index: The index of the current TRB in the ring
1218 *
1219 * Returns the TRB prior to the one pointed to by the index. If the
1220 * index is 0, we will wrap backwards, skip the link TRB, and return
1221 * the one just before that.
1222 */
dwc3_ep_prev_trb(struct dwc3_ep * dep,u8 index)1223 static struct dwc3_trb *dwc3_ep_prev_trb(struct dwc3_ep *dep, u8 index)
1224 {
1225 u8 tmp = index;
1226
1227 if (!tmp)
1228 tmp = DWC3_TRB_NUM - 1;
1229
1230 return &dep->trb_pool[tmp - 1];
1231 }
1232
dwc3_calc_trbs_left(struct dwc3_ep * dep)1233 static u32 dwc3_calc_trbs_left(struct dwc3_ep *dep)
1234 {
1235 u8 trbs_left;
1236
1237 /*
1238 * If the enqueue & dequeue are equal then the TRB ring is either full
1239 * or empty. It's considered full when there are DWC3_TRB_NUM-1 of TRBs
1240 * pending to be processed by the driver.
1241 */
1242 if (dep->trb_enqueue == dep->trb_dequeue) {
1243 struct dwc3_request *req;
1244
1245 /*
1246 * If there is any request remained in the started_list with
1247 * active TRBs at this point, then there is no TRB available.
1248 */
1249 req = next_request(&dep->started_list);
1250 if (req && req->num_trbs)
1251 return 0;
1252
1253 return DWC3_TRB_NUM - 1;
1254 }
1255
1256 trbs_left = dep->trb_dequeue - dep->trb_enqueue;
1257 trbs_left &= (DWC3_TRB_NUM - 1);
1258
1259 if (dep->trb_dequeue < dep->trb_enqueue)
1260 trbs_left--;
1261
1262 return trbs_left;
1263 }
1264
1265 /**
1266 * dwc3_prepare_one_trb - setup one TRB from one request
1267 * @dep: endpoint for which this request is prepared
1268 * @req: dwc3_request pointer
1269 * @trb_length: buffer size of the TRB
1270 * @chain: should this TRB be chained to the next?
1271 * @node: only for isochronous endpoints. First TRB needs different type.
1272 * @use_bounce_buffer: set to use bounce buffer
1273 * @must_interrupt: set to interrupt on TRB completion
1274 */
dwc3_prepare_one_trb(struct dwc3_ep * dep,struct dwc3_request * req,unsigned int trb_length,unsigned int chain,unsigned int node,bool use_bounce_buffer,bool must_interrupt)1275 static void dwc3_prepare_one_trb(struct dwc3_ep *dep,
1276 struct dwc3_request *req, unsigned int trb_length,
1277 unsigned int chain, unsigned int node, bool use_bounce_buffer,
1278 bool must_interrupt)
1279 {
1280 struct dwc3_trb *trb;
1281 dma_addr_t dma;
1282 unsigned int stream_id = req->request.stream_id;
1283 unsigned int short_not_ok = req->request.short_not_ok;
1284 unsigned int no_interrupt = req->request.no_interrupt;
1285 unsigned int is_last = req->request.is_last;
1286 struct dwc3 *dwc = dep->dwc;
1287 struct usb_gadget *gadget = dwc->gadget;
1288 enum usb_device_speed speed = gadget->speed;
1289
1290 if (use_bounce_buffer)
1291 dma = dep->dwc->bounce_addr;
1292 else if (req->request.num_sgs > 0)
1293 dma = sg_dma_address(req->start_sg);
1294 else
1295 dma = req->request.dma;
1296
1297 trb = &dep->trb_pool[dep->trb_enqueue];
1298
1299 if (!req->trb) {
1300 dwc3_gadget_move_started_request(req);
1301 req->trb = trb;
1302 req->trb_dma = dwc3_trb_dma_offset(dep, trb);
1303 }
1304
1305 req->num_trbs++;
1306
1307 trb->size = DWC3_TRB_SIZE_LENGTH(trb_length);
1308 trb->bpl = lower_32_bits(dma);
1309 trb->bph = upper_32_bits(dma);
1310
1311 switch (usb_endpoint_type(dep->endpoint.desc)) {
1312 case USB_ENDPOINT_XFER_CONTROL:
1313 trb->ctrl = DWC3_TRBCTL_CONTROL_SETUP;
1314 break;
1315
1316 case USB_ENDPOINT_XFER_ISOC:
1317 if (!node) {
1318 trb->ctrl = DWC3_TRBCTL_ISOCHRONOUS_FIRST;
1319
1320 /*
1321 * USB Specification 2.0 Section 5.9.2 states that: "If
1322 * there is only a single transaction in the microframe,
1323 * only a DATA0 data packet PID is used. If there are
1324 * two transactions per microframe, DATA1 is used for
1325 * the first transaction data packet and DATA0 is used
1326 * for the second transaction data packet. If there are
1327 * three transactions per microframe, DATA2 is used for
1328 * the first transaction data packet, DATA1 is used for
1329 * the second, and DATA0 is used for the third."
1330 *
1331 * IOW, we should satisfy the following cases:
1332 *
1333 * 1) length <= maxpacket
1334 * - DATA0
1335 *
1336 * 2) maxpacket < length <= (2 * maxpacket)
1337 * - DATA1, DATA0
1338 *
1339 * 3) (2 * maxpacket) < length <= (3 * maxpacket)
1340 * - DATA2, DATA1, DATA0
1341 */
1342 if (speed == USB_SPEED_HIGH) {
1343 struct usb_ep *ep = &dep->endpoint;
1344 unsigned int mult = 2;
1345 unsigned int maxp = usb_endpoint_maxp(ep->desc);
1346
1347 if (req->request.length <= (2 * maxp))
1348 mult--;
1349
1350 if (req->request.length <= maxp)
1351 mult--;
1352
1353 trb->size |= DWC3_TRB_SIZE_PCM1(mult);
1354 }
1355 } else {
1356 trb->ctrl = DWC3_TRBCTL_ISOCHRONOUS;
1357 }
1358
1359 if (!no_interrupt && !chain)
1360 trb->ctrl |= DWC3_TRB_CTRL_ISP_IMI;
1361 break;
1362
1363 case USB_ENDPOINT_XFER_BULK:
1364 case USB_ENDPOINT_XFER_INT:
1365 trb->ctrl = DWC3_TRBCTL_NORMAL;
1366 break;
1367 default:
1368 /*
1369 * This is only possible with faulty memory because we
1370 * checked it already :)
1371 */
1372 dev_WARN(dwc->dev, "Unknown endpoint type %d\n",
1373 usb_endpoint_type(dep->endpoint.desc));
1374 }
1375
1376 /*
1377 * Enable Continue on Short Packet
1378 * when endpoint is not a stream capable
1379 */
1380 if (usb_endpoint_dir_out(dep->endpoint.desc)) {
1381 if (!dep->stream_capable)
1382 trb->ctrl |= DWC3_TRB_CTRL_CSP;
1383
1384 if (short_not_ok)
1385 trb->ctrl |= DWC3_TRB_CTRL_ISP_IMI;
1386 }
1387
1388 /* All TRBs setup for MST must set CSP=1 when LST=0 */
1389 if (dep->stream_capable && DWC3_MST_CAPABLE(&dwc->hwparams))
1390 trb->ctrl |= DWC3_TRB_CTRL_CSP;
1391
1392 if ((!no_interrupt && !chain) || must_interrupt)
1393 trb->ctrl |= DWC3_TRB_CTRL_IOC;
1394
1395 if (chain)
1396 trb->ctrl |= DWC3_TRB_CTRL_CHN;
1397 else if (dep->stream_capable && is_last &&
1398 !DWC3_MST_CAPABLE(&dwc->hwparams))
1399 trb->ctrl |= DWC3_TRB_CTRL_LST;
1400
1401 if (usb_endpoint_xfer_bulk(dep->endpoint.desc) && dep->stream_capable)
1402 trb->ctrl |= DWC3_TRB_CTRL_SID_SOFN(stream_id);
1403
1404 /*
1405 * As per data book 4.2.3.2TRB Control Bit Rules section
1406 *
1407 * The controller autonomously checks the HWO field of a TRB to determine if the
1408 * entire TRB is valid. Therefore, software must ensure that the rest of the TRB
1409 * is valid before setting the HWO field to '1'. In most systems, this means that
1410 * software must update the fourth DWORD of a TRB last.
1411 *
1412 * However there is a possibility of CPU re-ordering here which can cause
1413 * controller to observe the HWO bit set prematurely.
1414 * Add a write memory barrier to prevent CPU re-ordering.
1415 */
1416 wmb();
1417 trb->ctrl |= DWC3_TRB_CTRL_HWO;
1418
1419 dwc3_ep_inc_enq(dep);
1420
1421 trace_dwc3_prepare_trb(dep, trb);
1422 }
1423
dwc3_needs_extra_trb(struct dwc3_ep * dep,struct dwc3_request * req)1424 static bool dwc3_needs_extra_trb(struct dwc3_ep *dep, struct dwc3_request *req)
1425 {
1426 unsigned int maxp = usb_endpoint_maxp(dep->endpoint.desc);
1427 unsigned int rem = req->request.length % maxp;
1428
1429 if ((req->request.length && req->request.zero && !rem &&
1430 !usb_endpoint_xfer_isoc(dep->endpoint.desc)) ||
1431 (!req->direction && rem))
1432 return true;
1433
1434 return false;
1435 }
1436
1437 /**
1438 * dwc3_prepare_last_sg - prepare TRBs for the last SG entry
1439 * @dep: The endpoint that the request belongs to
1440 * @req: The request to prepare
1441 * @entry_length: The last SG entry size
1442 * @node: Indicates whether this is not the first entry (for isoc only)
1443 *
1444 * Return the number of TRBs prepared.
1445 */
dwc3_prepare_last_sg(struct dwc3_ep * dep,struct dwc3_request * req,unsigned int entry_length,unsigned int node)1446 static int dwc3_prepare_last_sg(struct dwc3_ep *dep,
1447 struct dwc3_request *req, unsigned int entry_length,
1448 unsigned int node)
1449 {
1450 unsigned int maxp = usb_endpoint_maxp(dep->endpoint.desc);
1451 unsigned int rem = req->request.length % maxp;
1452 unsigned int num_trbs = 1;
1453 bool needs_extra_trb;
1454
1455 if (dwc3_needs_extra_trb(dep, req))
1456 num_trbs++;
1457
1458 if (dwc3_calc_trbs_left(dep) < num_trbs)
1459 return 0;
1460
1461 needs_extra_trb = num_trbs > 1;
1462
1463 /* Prepare a normal TRB */
1464 if (req->direction || req->request.length)
1465 dwc3_prepare_one_trb(dep, req, entry_length,
1466 needs_extra_trb, node, false, false);
1467
1468 /* Prepare extra TRBs for ZLP and MPS OUT transfer alignment */
1469 if ((!req->direction && !req->request.length) || needs_extra_trb)
1470 dwc3_prepare_one_trb(dep, req,
1471 req->direction ? 0 : maxp - rem,
1472 false, 1, true, false);
1473
1474 return num_trbs;
1475 }
1476
dwc3_prepare_trbs_sg(struct dwc3_ep * dep,struct dwc3_request * req)1477 static int dwc3_prepare_trbs_sg(struct dwc3_ep *dep,
1478 struct dwc3_request *req)
1479 {
1480 struct scatterlist *sg = req->start_sg;
1481 struct scatterlist *s;
1482 int i;
1483 unsigned int length = req->request.length;
1484 unsigned int remaining = req->num_pending_sgs;
1485 unsigned int num_queued_sgs = req->request.num_mapped_sgs - remaining;
1486 unsigned int num_trbs = req->num_trbs;
1487 bool needs_extra_trb = dwc3_needs_extra_trb(dep, req);
1488
1489 /*
1490 * If we resume preparing the request, then get the remaining length of
1491 * the request and resume where we left off.
1492 */
1493 for_each_sg(req->request.sg, s, num_queued_sgs, i)
1494 length -= sg_dma_len(s);
1495
1496 for_each_sg(sg, s, remaining, i) {
1497 unsigned int num_trbs_left = dwc3_calc_trbs_left(dep);
1498 unsigned int trb_length;
1499 bool must_interrupt = false;
1500 bool last_sg = false;
1501
1502 trb_length = min_t(unsigned int, length, sg_dma_len(s));
1503
1504 length -= trb_length;
1505
1506 /*
1507 * IOMMU driver is coalescing the list of sgs which shares a
1508 * page boundary into one and giving it to USB driver. With
1509 * this the number of sgs mapped is not equal to the number of
1510 * sgs passed. So mark the chain bit to false if it isthe last
1511 * mapped sg.
1512 */
1513 if ((i == remaining - 1) || !length)
1514 last_sg = true;
1515
1516 if (!num_trbs_left)
1517 break;
1518
1519 if (last_sg) {
1520 if (!dwc3_prepare_last_sg(dep, req, trb_length, i))
1521 break;
1522 } else {
1523 /*
1524 * Look ahead to check if we have enough TRBs for the
1525 * next SG entry. If not, set interrupt on this TRB to
1526 * resume preparing the next SG entry when more TRBs are
1527 * free.
1528 */
1529 if (num_trbs_left == 1 || (needs_extra_trb &&
1530 num_trbs_left <= 2 &&
1531 sg_dma_len(sg_next(s)) >= length)) {
1532 struct dwc3_request *r;
1533
1534 /* Check if previous requests already set IOC */
1535 list_for_each_entry(r, &dep->started_list, list) {
1536 if (r != req && !r->request.no_interrupt)
1537 break;
1538
1539 if (r == req)
1540 must_interrupt = true;
1541 }
1542 }
1543
1544 dwc3_prepare_one_trb(dep, req, trb_length, 1, i, false,
1545 must_interrupt);
1546 }
1547
1548 /*
1549 * There can be a situation where all sgs in sglist are not
1550 * queued because of insufficient trb number. To handle this
1551 * case, update start_sg to next sg to be queued, so that
1552 * we have free trbs we can continue queuing from where we
1553 * previously stopped
1554 */
1555 if (!last_sg)
1556 req->start_sg = sg_next(s);
1557
1558 req->num_pending_sgs--;
1559
1560 /*
1561 * The number of pending SG entries may not correspond to the
1562 * number of mapped SG entries. If all the data are queued, then
1563 * don't include unused SG entries.
1564 */
1565 if (length == 0) {
1566 req->num_pending_sgs = 0;
1567 break;
1568 }
1569
1570 if (must_interrupt)
1571 break;
1572 }
1573
1574 return req->num_trbs - num_trbs;
1575 }
1576
dwc3_prepare_trbs_linear(struct dwc3_ep * dep,struct dwc3_request * req)1577 static int dwc3_prepare_trbs_linear(struct dwc3_ep *dep,
1578 struct dwc3_request *req)
1579 {
1580 return dwc3_prepare_last_sg(dep, req, req->request.length, 0);
1581 }
1582
1583 /*
1584 * dwc3_prepare_trbs - setup TRBs from requests
1585 * @dep: endpoint for which requests are being prepared
1586 *
1587 * The function goes through the requests list and sets up TRBs for the
1588 * transfers. The function returns once there are no more TRBs available or
1589 * it runs out of requests.
1590 *
1591 * Returns the number of TRBs prepared or negative errno.
1592 */
dwc3_prepare_trbs(struct dwc3_ep * dep)1593 static int dwc3_prepare_trbs(struct dwc3_ep *dep)
1594 {
1595 struct dwc3_request *req, *n;
1596 int ret = 0;
1597
1598 BUILD_BUG_ON_NOT_POWER_OF_2(DWC3_TRB_NUM);
1599
1600 /*
1601 * We can get in a situation where there's a request in the started list
1602 * but there weren't enough TRBs to fully kick it in the first time
1603 * around, so it has been waiting for more TRBs to be freed up.
1604 *
1605 * In that case, we should check if we have a request with pending_sgs
1606 * in the started list and prepare TRBs for that request first,
1607 * otherwise we will prepare TRBs completely out of order and that will
1608 * break things.
1609 */
1610 list_for_each_entry(req, &dep->started_list, list) {
1611 if (req->num_pending_sgs > 0) {
1612 ret = dwc3_prepare_trbs_sg(dep, req);
1613 if (!ret || req->num_pending_sgs)
1614 return ret;
1615 }
1616
1617 if (!dwc3_calc_trbs_left(dep))
1618 return ret;
1619
1620 /*
1621 * Don't prepare beyond a transfer. In DWC_usb32, its transfer
1622 * burst capability may try to read and use TRBs beyond the
1623 * active transfer instead of stopping.
1624 */
1625 if (dep->stream_capable && req->request.is_last &&
1626 !DWC3_MST_CAPABLE(&dep->dwc->hwparams))
1627 return ret;
1628 }
1629
1630 list_for_each_entry_safe(req, n, &dep->pending_list, list) {
1631 struct dwc3 *dwc = dep->dwc;
1632
1633 ret = usb_gadget_map_request_by_dev(dwc->sysdev, &req->request,
1634 dep->direction);
1635 if (ret)
1636 return ret;
1637
1638 req->start_sg = req->request.sg;
1639 req->num_pending_sgs = req->request.num_mapped_sgs;
1640
1641 if (req->num_pending_sgs > 0) {
1642 ret = dwc3_prepare_trbs_sg(dep, req);
1643 if (req->num_pending_sgs)
1644 return ret;
1645 } else {
1646 ret = dwc3_prepare_trbs_linear(dep, req);
1647 }
1648
1649 if (!ret || !dwc3_calc_trbs_left(dep))
1650 return ret;
1651
1652 /*
1653 * Don't prepare beyond a transfer. In DWC_usb32, its transfer
1654 * burst capability may try to read and use TRBs beyond the
1655 * active transfer instead of stopping.
1656 */
1657 if (dep->stream_capable && req->request.is_last &&
1658 !DWC3_MST_CAPABLE(&dwc->hwparams))
1659 return ret;
1660 }
1661
1662 return ret;
1663 }
1664
1665 static void dwc3_gadget_ep_cleanup_cancelled_requests(struct dwc3_ep *dep);
1666
__dwc3_gadget_kick_transfer(struct dwc3_ep * dep)1667 static int __dwc3_gadget_kick_transfer(struct dwc3_ep *dep)
1668 {
1669 struct dwc3_gadget_ep_cmd_params params;
1670 struct dwc3_request *req;
1671 int starting;
1672 int ret;
1673 u32 cmd;
1674
1675 /*
1676 * Note that it's normal to have no new TRBs prepared (i.e. ret == 0).
1677 * This happens when we need to stop and restart a transfer such as in
1678 * the case of reinitiating a stream or retrying an isoc transfer.
1679 */
1680 ret = dwc3_prepare_trbs(dep);
1681 if (ret < 0)
1682 return ret;
1683
1684 starting = !(dep->flags & DWC3_EP_TRANSFER_STARTED);
1685
1686 /*
1687 * If there's no new TRB prepared and we don't need to restart a
1688 * transfer, there's no need to update the transfer.
1689 */
1690 if (!ret && !starting)
1691 return 0;
1692
1693 req = next_request(&dep->started_list);
1694 if (!req) {
1695 dep->flags |= DWC3_EP_PENDING_REQUEST;
1696 return 0;
1697 }
1698
1699 memset(¶ms, 0, sizeof(params));
1700
1701 if (starting) {
1702 params.param0 = upper_32_bits(req->trb_dma);
1703 params.param1 = lower_32_bits(req->trb_dma);
1704 cmd = DWC3_DEPCMD_STARTTRANSFER;
1705
1706 if (dep->stream_capable)
1707 cmd |= DWC3_DEPCMD_PARAM(req->request.stream_id);
1708
1709 if (usb_endpoint_xfer_isoc(dep->endpoint.desc))
1710 cmd |= DWC3_DEPCMD_PARAM(dep->frame_number);
1711 } else {
1712 cmd = DWC3_DEPCMD_UPDATETRANSFER |
1713 DWC3_DEPCMD_PARAM(dep->resource_index);
1714 }
1715
1716 ret = dwc3_send_gadget_ep_cmd(dep, cmd, ¶ms);
1717 if (ret < 0) {
1718 struct dwc3_request *tmp;
1719
1720 if (ret == -EAGAIN)
1721 return ret;
1722
1723 dwc3_stop_active_transfer(dep, false, true);
1724
1725 list_for_each_entry_safe(req, tmp, &dep->started_list, list)
1726 dwc3_gadget_move_cancelled_request(req, DWC3_REQUEST_STATUS_DEQUEUED);
1727
1728 /* If ep isn't started, then there's no end transfer pending */
1729 if (!(dep->flags & DWC3_EP_END_TRANSFER_PENDING))
1730 dwc3_gadget_ep_cleanup_cancelled_requests(dep);
1731
1732 return ret;
1733 }
1734
1735 if (dep->stream_capable && req->request.is_last &&
1736 !DWC3_MST_CAPABLE(&dep->dwc->hwparams))
1737 dep->flags |= DWC3_EP_WAIT_TRANSFER_COMPLETE;
1738
1739 return 0;
1740 }
1741
__dwc3_gadget_get_frame(struct dwc3 * dwc)1742 static int __dwc3_gadget_get_frame(struct dwc3 *dwc)
1743 {
1744 u32 reg;
1745
1746 reg = dwc3_readl(dwc, DWC3_DSTS);
1747 return DWC3_DSTS_SOFFN(reg);
1748 }
1749
1750 /**
1751 * __dwc3_stop_active_transfer - stop the current active transfer
1752 * @dep: isoc endpoint
1753 * @force: set forcerm bit in the command
1754 * @interrupt: command complete interrupt after End Transfer command
1755 *
1756 * When setting force, the ForceRM bit will be set. In that case
1757 * the controller won't update the TRB progress on command
1758 * completion. It also won't clear the HWO bit in the TRB.
1759 * The command will also not complete immediately in that case.
1760 *
1761 * Older programming guide revisions recommended setting ForceRM to 1
1762 * when ending a transfer. Newer programming guide revisions now
1763 * recommend keeping ForceRM cleared, and TRBs are properly updated
1764 * on command completion.
1765 */
__dwc3_stop_active_transfer(struct dwc3_ep * dep,bool force,bool interrupt)1766 static int __dwc3_stop_active_transfer(struct dwc3_ep *dep, bool force, bool interrupt)
1767 {
1768 struct dwc3_gadget_ep_cmd_params params;
1769 u32 cmd;
1770 int ret;
1771
1772 cmd = DWC3_DEPCMD_ENDTRANSFER;
1773 cmd |= force ? DWC3_DEPCMD_HIPRI_FORCERM : 0;
1774 cmd |= interrupt ? DWC3_DEPCMD_CMDIOC : 0;
1775 cmd |= DWC3_DEPCMD_PARAM(dep->resource_index);
1776 memset(¶ms, 0, sizeof(params));
1777 ret = dwc3_send_gadget_ep_cmd(dep, cmd, ¶ms);
1778 /*
1779 * If the End Transfer command was timed out while the device is
1780 * not in SETUP phase, it's possible that an incoming Setup packet
1781 * may prevent the command's completion. Let's retry when the
1782 * ep0state returns to EP0_SETUP_PHASE.
1783 */
1784 if (ret == -ETIMEDOUT && dep->dwc->ep0state != EP0_SETUP_PHASE) {
1785 dep->flags |= DWC3_EP_DELAY_STOP;
1786 return 0;
1787 }
1788
1789 if (ret)
1790 dev_err_ratelimited(dep->dwc->dev,
1791 "end transfer failed: %d\n", ret);
1792
1793 dep->resource_index = 0;
1794
1795 if (!interrupt)
1796 dep->flags &= ~DWC3_EP_TRANSFER_STARTED;
1797 else if (!ret)
1798 dep->flags |= DWC3_EP_END_TRANSFER_PENDING;
1799
1800 dep->flags &= ~DWC3_EP_DELAY_STOP;
1801 return ret;
1802 }
1803
1804 /**
1805 * dwc3_gadget_start_isoc_quirk - workaround invalid frame number
1806 * @dep: isoc endpoint
1807 *
1808 * This function tests for the correct combination of BIT[15:14] from the 16-bit
1809 * microframe number reported by the XferNotReady event for the future frame
1810 * number to start the isoc transfer.
1811 *
1812 * In DWC_usb31 version 1.70a-ea06 and prior, for highspeed and fullspeed
1813 * isochronous IN, BIT[15:14] of the 16-bit microframe number reported by the
1814 * XferNotReady event are invalid. The driver uses this number to schedule the
1815 * isochronous transfer and passes it to the START TRANSFER command. Because
1816 * this number is invalid, the command may fail. If BIT[15:14] matches the
1817 * internal 16-bit microframe, the START TRANSFER command will pass and the
1818 * transfer will start at the scheduled time, if it is off by 1, the command
1819 * will still pass, but the transfer will start 2 seconds in the future. For all
1820 * other conditions, the START TRANSFER command will fail with bus-expiry.
1821 *
1822 * In order to workaround this issue, we can test for the correct combination of
1823 * BIT[15:14] by sending START TRANSFER commands with different values of
1824 * BIT[15:14]: 'b00, 'b01, 'b10, and 'b11. Each combination is 2^14 uframe apart
1825 * (or 2 seconds). 4 seconds into the future will result in a bus-expiry status.
1826 * As the result, within the 4 possible combinations for BIT[15:14], there will
1827 * be 2 successful and 2 failure START COMMAND status. One of the 2 successful
1828 * command status will result in a 2-second delay start. The smaller BIT[15:14]
1829 * value is the correct combination.
1830 *
1831 * Since there are only 4 outcomes and the results are ordered, we can simply
1832 * test 2 START TRANSFER commands with BIT[15:14] combinations 'b00 and 'b01 to
1833 * deduce the smaller successful combination.
1834 *
1835 * Let test0 = test status for combination 'b00 and test1 = test status for 'b01
1836 * of BIT[15:14]. The correct combination is as follow:
1837 *
1838 * if test0 fails and test1 passes, BIT[15:14] is 'b01
1839 * if test0 fails and test1 fails, BIT[15:14] is 'b10
1840 * if test0 passes and test1 fails, BIT[15:14] is 'b11
1841 * if test0 passes and test1 passes, BIT[15:14] is 'b00
1842 *
1843 * Synopsys STAR 9001202023: Wrong microframe number for isochronous IN
1844 * endpoints.
1845 */
dwc3_gadget_start_isoc_quirk(struct dwc3_ep * dep)1846 static int dwc3_gadget_start_isoc_quirk(struct dwc3_ep *dep)
1847 {
1848 int cmd_status = 0;
1849 bool test0;
1850 bool test1;
1851
1852 while (dep->combo_num < 2) {
1853 struct dwc3_gadget_ep_cmd_params params;
1854 u32 test_frame_number;
1855 u32 cmd;
1856
1857 /*
1858 * Check if we can start isoc transfer on the next interval or
1859 * 4 uframes in the future with BIT[15:14] as dep->combo_num
1860 */
1861 test_frame_number = dep->frame_number & DWC3_FRNUMBER_MASK;
1862 test_frame_number |= dep->combo_num << 14;
1863 test_frame_number += max_t(u32, 4, dep->interval);
1864
1865 params.param0 = upper_32_bits(dep->dwc->bounce_addr);
1866 params.param1 = lower_32_bits(dep->dwc->bounce_addr);
1867
1868 cmd = DWC3_DEPCMD_STARTTRANSFER;
1869 cmd |= DWC3_DEPCMD_PARAM(test_frame_number);
1870 cmd_status = dwc3_send_gadget_ep_cmd(dep, cmd, ¶ms);
1871
1872 /* Redo if some other failure beside bus-expiry is received */
1873 if (cmd_status && cmd_status != -EAGAIN) {
1874 dep->start_cmd_status = 0;
1875 dep->combo_num = 0;
1876 return 0;
1877 }
1878
1879 /* Store the first test status */
1880 if (dep->combo_num == 0)
1881 dep->start_cmd_status = cmd_status;
1882
1883 dep->combo_num++;
1884
1885 /*
1886 * End the transfer if the START_TRANSFER command is successful
1887 * to wait for the next XferNotReady to test the command again
1888 */
1889 if (cmd_status == 0) {
1890 dwc3_stop_active_transfer(dep, false, true);
1891 return 0;
1892 }
1893 }
1894
1895 /* test0 and test1 are both completed at this point */
1896 test0 = (dep->start_cmd_status == 0);
1897 test1 = (cmd_status == 0);
1898
1899 if (!test0 && test1)
1900 dep->combo_num = 1;
1901 else if (!test0 && !test1)
1902 dep->combo_num = 2;
1903 else if (test0 && !test1)
1904 dep->combo_num = 3;
1905 else if (test0 && test1)
1906 dep->combo_num = 0;
1907
1908 dep->frame_number &= DWC3_FRNUMBER_MASK;
1909 dep->frame_number |= dep->combo_num << 14;
1910 dep->frame_number += max_t(u32, 4, dep->interval);
1911
1912 /* Reinitialize test variables */
1913 dep->start_cmd_status = 0;
1914 dep->combo_num = 0;
1915
1916 return __dwc3_gadget_kick_transfer(dep);
1917 }
1918
__dwc3_gadget_start_isoc(struct dwc3_ep * dep)1919 static int __dwc3_gadget_start_isoc(struct dwc3_ep *dep)
1920 {
1921 const struct usb_endpoint_descriptor *desc = dep->endpoint.desc;
1922 struct dwc3 *dwc = dep->dwc;
1923 int ret;
1924 int i;
1925
1926 if (list_empty(&dep->pending_list) &&
1927 list_empty(&dep->started_list)) {
1928 dep->flags |= DWC3_EP_PENDING_REQUEST;
1929 return -EAGAIN;
1930 }
1931
1932 if (!dwc->dis_start_transfer_quirk &&
1933 (DWC3_VER_IS_PRIOR(DWC31, 170A) ||
1934 DWC3_VER_TYPE_IS_WITHIN(DWC31, 170A, EA01, EA06))) {
1935 if (dwc->gadget->speed <= USB_SPEED_HIGH && dep->direction)
1936 return dwc3_gadget_start_isoc_quirk(dep);
1937 }
1938
1939 if (desc->bInterval <= 14 &&
1940 dwc->gadget->speed >= USB_SPEED_HIGH) {
1941 u32 frame = __dwc3_gadget_get_frame(dwc);
1942 bool rollover = frame <
1943 (dep->frame_number & DWC3_FRNUMBER_MASK);
1944
1945 /*
1946 * frame_number is set from XferNotReady and may be already
1947 * out of date. DSTS only provides the lower 14 bit of the
1948 * current frame number. So add the upper two bits of
1949 * frame_number and handle a possible rollover.
1950 * This will provide the correct frame_number unless more than
1951 * rollover has happened since XferNotReady.
1952 */
1953
1954 dep->frame_number = (dep->frame_number & ~DWC3_FRNUMBER_MASK) |
1955 frame;
1956 if (rollover)
1957 dep->frame_number += BIT(14);
1958 }
1959
1960 for (i = 0; i < DWC3_ISOC_MAX_RETRIES; i++) {
1961 int future_interval = i + 1;
1962
1963 /* Give the controller at least 500us to schedule transfers */
1964 if (desc->bInterval < 3)
1965 future_interval += 3 - desc->bInterval;
1966
1967 dep->frame_number = DWC3_ALIGN_FRAME(dep, future_interval);
1968
1969 ret = __dwc3_gadget_kick_transfer(dep);
1970 if (ret != -EAGAIN)
1971 break;
1972 }
1973
1974 /*
1975 * After a number of unsuccessful start attempts due to bus-expiry
1976 * status, issue END_TRANSFER command and retry on the next XferNotReady
1977 * event.
1978 */
1979 if (ret == -EAGAIN)
1980 ret = __dwc3_stop_active_transfer(dep, false, true);
1981
1982 return ret;
1983 }
1984
__dwc3_gadget_ep_queue(struct dwc3_ep * dep,struct dwc3_request * req)1985 static int __dwc3_gadget_ep_queue(struct dwc3_ep *dep, struct dwc3_request *req)
1986 {
1987 struct dwc3 *dwc = dep->dwc;
1988
1989 if (!dep->endpoint.desc || !dwc->pullups_connected || !dwc->connected) {
1990 dev_dbg(dwc->dev, "%s: can't queue to disabled endpoint\n",
1991 dep->name);
1992 return -ESHUTDOWN;
1993 }
1994
1995 if (WARN(req->dep != dep, "request %p belongs to '%s'\n",
1996 &req->request, req->dep->name))
1997 return -EINVAL;
1998
1999 if (WARN(req->status < DWC3_REQUEST_STATUS_COMPLETED,
2000 "%s: request %p already in flight\n",
2001 dep->name, &req->request))
2002 return -EINVAL;
2003
2004 pm_runtime_get(dwc->dev);
2005
2006 req->request.actual = 0;
2007 req->request.status = -EINPROGRESS;
2008
2009 trace_dwc3_ep_queue(req);
2010
2011 list_add_tail(&req->list, &dep->pending_list);
2012 req->status = DWC3_REQUEST_STATUS_QUEUED;
2013
2014 if (dep->flags & DWC3_EP_WAIT_TRANSFER_COMPLETE)
2015 return 0;
2016
2017 /*
2018 * Start the transfer only after the END_TRANSFER is completed
2019 * and endpoint STALL is cleared.
2020 */
2021 if ((dep->flags & DWC3_EP_END_TRANSFER_PENDING) ||
2022 (dep->flags & DWC3_EP_WEDGE) ||
2023 (dep->flags & DWC3_EP_DELAY_STOP) ||
2024 (dep->flags & DWC3_EP_STALL)) {
2025 dep->flags |= DWC3_EP_DELAY_START;
2026 return 0;
2027 }
2028
2029 /*
2030 * NOTICE: Isochronous endpoints should NEVER be prestarted. We must
2031 * wait for a XferNotReady event so we will know what's the current
2032 * (micro-)frame number.
2033 *
2034 * Without this trick, we are very, very likely gonna get Bus Expiry
2035 * errors which will force us issue EndTransfer command.
2036 */
2037 if (usb_endpoint_xfer_isoc(dep->endpoint.desc)) {
2038 if (!(dep->flags & DWC3_EP_TRANSFER_STARTED)) {
2039 if ((dep->flags & DWC3_EP_PENDING_REQUEST))
2040 return __dwc3_gadget_start_isoc(dep);
2041
2042 return 0;
2043 }
2044 }
2045
2046 __dwc3_gadget_kick_transfer(dep);
2047
2048 return 0;
2049 }
2050
dwc3_gadget_ep_queue(struct usb_ep * ep,struct usb_request * request,gfp_t gfp_flags)2051 static int dwc3_gadget_ep_queue(struct usb_ep *ep, struct usb_request *request,
2052 gfp_t gfp_flags)
2053 {
2054 struct dwc3_request *req = to_dwc3_request(request);
2055 struct dwc3_ep *dep = to_dwc3_ep(ep);
2056 struct dwc3 *dwc = dep->dwc;
2057
2058 unsigned long flags;
2059
2060 int ret;
2061
2062 spin_lock_irqsave(&dwc->lock, flags);
2063 ret = __dwc3_gadget_ep_queue(dep, req);
2064 spin_unlock_irqrestore(&dwc->lock, flags);
2065
2066 return ret;
2067 }
2068
dwc3_gadget_ep_skip_trbs(struct dwc3_ep * dep,struct dwc3_request * req)2069 static void dwc3_gadget_ep_skip_trbs(struct dwc3_ep *dep, struct dwc3_request *req)
2070 {
2071 int i;
2072
2073 /* If req->trb is not set, then the request has not started */
2074 if (!req->trb)
2075 return;
2076
2077 /*
2078 * If request was already started, this means we had to
2079 * stop the transfer. With that we also need to ignore
2080 * all TRBs used by the request, however TRBs can only
2081 * be modified after completion of END_TRANSFER
2082 * command. So what we do here is that we wait for
2083 * END_TRANSFER completion and only after that, we jump
2084 * over TRBs by clearing HWO and incrementing dequeue
2085 * pointer.
2086 */
2087 for (i = 0; i < req->num_trbs; i++) {
2088 struct dwc3_trb *trb;
2089
2090 trb = &dep->trb_pool[dep->trb_dequeue];
2091 trb->ctrl &= ~DWC3_TRB_CTRL_HWO;
2092 dwc3_ep_inc_deq(dep);
2093 }
2094
2095 req->num_trbs = 0;
2096 }
2097
dwc3_gadget_ep_cleanup_cancelled_requests(struct dwc3_ep * dep)2098 static void dwc3_gadget_ep_cleanup_cancelled_requests(struct dwc3_ep *dep)
2099 {
2100 struct dwc3_request *req;
2101 struct dwc3 *dwc = dep->dwc;
2102
2103 while (!list_empty(&dep->cancelled_list)) {
2104 req = next_request(&dep->cancelled_list);
2105 dwc3_gadget_ep_skip_trbs(dep, req);
2106 switch (req->status) {
2107 case DWC3_REQUEST_STATUS_DISCONNECTED:
2108 dwc3_gadget_giveback(dep, req, -ESHUTDOWN);
2109 break;
2110 case DWC3_REQUEST_STATUS_DEQUEUED:
2111 dwc3_gadget_giveback(dep, req, -ECONNRESET);
2112 break;
2113 case DWC3_REQUEST_STATUS_STALLED:
2114 dwc3_gadget_giveback(dep, req, -EPIPE);
2115 break;
2116 default:
2117 dev_err(dwc->dev, "request cancelled with wrong reason:%d\n", req->status);
2118 dwc3_gadget_giveback(dep, req, -ECONNRESET);
2119 break;
2120 }
2121 /*
2122 * The endpoint is disabled, let the dwc3_remove_requests()
2123 * handle the cleanup.
2124 */
2125 if (!dep->endpoint.desc)
2126 break;
2127 }
2128 }
2129
dwc3_gadget_ep_dequeue(struct usb_ep * ep,struct usb_request * request)2130 static int dwc3_gadget_ep_dequeue(struct usb_ep *ep,
2131 struct usb_request *request)
2132 {
2133 struct dwc3_request *req = to_dwc3_request(request);
2134 struct dwc3_request *r = NULL;
2135
2136 struct dwc3_ep *dep = to_dwc3_ep(ep);
2137 struct dwc3 *dwc = dep->dwc;
2138
2139 unsigned long flags;
2140 int ret = 0;
2141
2142 trace_dwc3_ep_dequeue(req);
2143
2144 spin_lock_irqsave(&dwc->lock, flags);
2145
2146 list_for_each_entry(r, &dep->cancelled_list, list) {
2147 if (r == req)
2148 goto out;
2149 }
2150
2151 list_for_each_entry(r, &dep->pending_list, list) {
2152 if (r == req) {
2153 /*
2154 * Explicitly check for EP0/1 as dequeue for those
2155 * EPs need to be handled differently. Control EP
2156 * only deals with one USB req, and giveback will
2157 * occur during dwc3_ep0_stall_and_restart(). EP0
2158 * requests are never added to started_list.
2159 */
2160 if (dep->number > 1)
2161 dwc3_gadget_giveback(dep, req, -ECONNRESET);
2162 else
2163 dwc3_ep0_reset_state(dwc);
2164 goto out;
2165 }
2166 }
2167
2168 list_for_each_entry(r, &dep->started_list, list) {
2169 if (r == req) {
2170 struct dwc3_request *t;
2171
2172 /* wait until it is processed */
2173 dwc3_stop_active_transfer(dep, false, true);
2174
2175 /*
2176 * Remove any started request if the transfer is
2177 * cancelled.
2178 */
2179 list_for_each_entry_safe(r, t, &dep->started_list, list)
2180 dwc3_gadget_move_cancelled_request(r,
2181 DWC3_REQUEST_STATUS_DEQUEUED);
2182
2183 dep->flags &= ~DWC3_EP_WAIT_TRANSFER_COMPLETE;
2184
2185 goto out;
2186 }
2187 }
2188
2189 dev_err(dwc->dev, "request %p was not queued to %s\n",
2190 request, ep->name);
2191 ret = -EINVAL;
2192 out:
2193 spin_unlock_irqrestore(&dwc->lock, flags);
2194
2195 return ret;
2196 }
2197
__dwc3_gadget_ep_set_halt(struct dwc3_ep * dep,int value,int protocol)2198 int __dwc3_gadget_ep_set_halt(struct dwc3_ep *dep, int value, int protocol)
2199 {
2200 struct dwc3_gadget_ep_cmd_params params;
2201 struct dwc3 *dwc = dep->dwc;
2202 struct dwc3_request *req;
2203 struct dwc3_request *tmp;
2204 int ret;
2205
2206 if (usb_endpoint_xfer_isoc(dep->endpoint.desc)) {
2207 dev_err(dwc->dev, "%s is of Isochronous type\n", dep->name);
2208 return -EINVAL;
2209 }
2210
2211 memset(¶ms, 0x00, sizeof(params));
2212
2213 if (value) {
2214 struct dwc3_trb *trb;
2215
2216 unsigned int transfer_in_flight;
2217 unsigned int started;
2218
2219 if (dep->number > 1)
2220 trb = dwc3_ep_prev_trb(dep, dep->trb_enqueue);
2221 else
2222 trb = &dwc->ep0_trb[dep->trb_enqueue];
2223
2224 transfer_in_flight = trb->ctrl & DWC3_TRB_CTRL_HWO;
2225 started = !list_empty(&dep->started_list);
2226
2227 if (!protocol && ((dep->direction && transfer_in_flight) ||
2228 (!dep->direction && started))) {
2229 return -EAGAIN;
2230 }
2231
2232 ret = dwc3_send_gadget_ep_cmd(dep, DWC3_DEPCMD_SETSTALL,
2233 ¶ms);
2234 if (ret)
2235 dev_err(dwc->dev, "failed to set STALL on %s\n",
2236 dep->name);
2237 else
2238 dep->flags |= DWC3_EP_STALL;
2239 } else {
2240 /*
2241 * Don't issue CLEAR_STALL command to control endpoints. The
2242 * controller automatically clears the STALL when it receives
2243 * the SETUP token.
2244 */
2245 if (dep->number <= 1) {
2246 dep->flags &= ~(DWC3_EP_STALL | DWC3_EP_WEDGE);
2247 return 0;
2248 }
2249
2250 dwc3_stop_active_transfer(dep, false, true);
2251
2252 list_for_each_entry_safe(req, tmp, &dep->started_list, list)
2253 dwc3_gadget_move_cancelled_request(req, DWC3_REQUEST_STATUS_STALLED);
2254
2255 if (dep->flags & DWC3_EP_END_TRANSFER_PENDING ||
2256 (dep->flags & DWC3_EP_DELAY_STOP)) {
2257 dep->flags |= DWC3_EP_PENDING_CLEAR_STALL;
2258 if (protocol)
2259 dwc->clear_stall_protocol = dep->number;
2260
2261 return 0;
2262 }
2263
2264 dwc3_gadget_ep_cleanup_cancelled_requests(dep);
2265
2266 ret = dwc3_send_clear_stall_ep_cmd(dep);
2267 if (ret) {
2268 dev_err(dwc->dev, "failed to clear STALL on %s\n",
2269 dep->name);
2270 return ret;
2271 }
2272
2273 dep->flags &= ~(DWC3_EP_STALL | DWC3_EP_WEDGE);
2274
2275 if ((dep->flags & DWC3_EP_DELAY_START) &&
2276 !usb_endpoint_xfer_isoc(dep->endpoint.desc))
2277 __dwc3_gadget_kick_transfer(dep);
2278
2279 dep->flags &= ~DWC3_EP_DELAY_START;
2280 }
2281
2282 return ret;
2283 }
2284
dwc3_gadget_ep_set_halt(struct usb_ep * ep,int value)2285 static int dwc3_gadget_ep_set_halt(struct usb_ep *ep, int value)
2286 {
2287 struct dwc3_ep *dep = to_dwc3_ep(ep);
2288 struct dwc3 *dwc = dep->dwc;
2289
2290 unsigned long flags;
2291
2292 int ret;
2293
2294 spin_lock_irqsave(&dwc->lock, flags);
2295 ret = __dwc3_gadget_ep_set_halt(dep, value, false);
2296 spin_unlock_irqrestore(&dwc->lock, flags);
2297
2298 return ret;
2299 }
2300
dwc3_gadget_ep_set_wedge(struct usb_ep * ep)2301 static int dwc3_gadget_ep_set_wedge(struct usb_ep *ep)
2302 {
2303 struct dwc3_ep *dep = to_dwc3_ep(ep);
2304 struct dwc3 *dwc = dep->dwc;
2305 unsigned long flags;
2306 int ret;
2307
2308 spin_lock_irqsave(&dwc->lock, flags);
2309 dep->flags |= DWC3_EP_WEDGE;
2310
2311 if (dep->number == 0 || dep->number == 1)
2312 ret = __dwc3_gadget_ep0_set_halt(ep, 1);
2313 else
2314 ret = __dwc3_gadget_ep_set_halt(dep, 1, false);
2315 spin_unlock_irqrestore(&dwc->lock, flags);
2316
2317 return ret;
2318 }
2319
2320 /* -------------------------------------------------------------------------- */
2321
2322 static struct usb_endpoint_descriptor dwc3_gadget_ep0_desc = {
2323 .bLength = USB_DT_ENDPOINT_SIZE,
2324 .bDescriptorType = USB_DT_ENDPOINT,
2325 .bmAttributes = USB_ENDPOINT_XFER_CONTROL,
2326 };
2327
2328 static const struct usb_ep_ops dwc3_gadget_ep0_ops = {
2329 .enable = dwc3_gadget_ep0_enable,
2330 .disable = dwc3_gadget_ep0_disable,
2331 .alloc_request = dwc3_gadget_ep_alloc_request,
2332 .free_request = dwc3_gadget_ep_free_request,
2333 .queue = dwc3_gadget_ep0_queue,
2334 .dequeue = dwc3_gadget_ep_dequeue,
2335 .set_halt = dwc3_gadget_ep0_set_halt,
2336 .set_wedge = dwc3_gadget_ep_set_wedge,
2337 };
2338
2339 static const struct usb_ep_ops dwc3_gadget_ep_ops = {
2340 .enable = dwc3_gadget_ep_enable,
2341 .disable = dwc3_gadget_ep_disable,
2342 .alloc_request = dwc3_gadget_ep_alloc_request,
2343 .free_request = dwc3_gadget_ep_free_request,
2344 .queue = dwc3_gadget_ep_queue,
2345 .dequeue = dwc3_gadget_ep_dequeue,
2346 .set_halt = dwc3_gadget_ep_set_halt,
2347 .set_wedge = dwc3_gadget_ep_set_wedge,
2348 };
2349
2350 /* -------------------------------------------------------------------------- */
2351
dwc3_gadget_enable_linksts_evts(struct dwc3 * dwc,bool set)2352 static void dwc3_gadget_enable_linksts_evts(struct dwc3 *dwc, bool set)
2353 {
2354 u32 reg;
2355
2356 if (DWC3_VER_IS_PRIOR(DWC3, 250A))
2357 return;
2358
2359 reg = dwc3_readl(dwc, DWC3_DEVTEN);
2360 if (set)
2361 reg |= DWC3_DEVTEN_ULSTCNGEN;
2362 else
2363 reg &= ~DWC3_DEVTEN_ULSTCNGEN;
2364
2365 dwc3_writel(dwc, DWC3_DEVTEN, reg);
2366 }
2367
dwc3_gadget_get_frame(struct usb_gadget * g)2368 static int dwc3_gadget_get_frame(struct usb_gadget *g)
2369 {
2370 struct dwc3 *dwc = gadget_to_dwc(g);
2371
2372 return __dwc3_gadget_get_frame(dwc);
2373 }
2374
__dwc3_gadget_wakeup(struct dwc3 * dwc)2375 static int __dwc3_gadget_wakeup(struct dwc3 *dwc)
2376 {
2377 int ret;
2378 u32 reg;
2379
2380 u8 link_state;
2381
2382 /*
2383 * According to the Databook Remote wakeup request should
2384 * be issued only when the device is in early suspend state.
2385 *
2386 * We can check that via USB Link State bits in DSTS register.
2387 */
2388 reg = dwc3_readl(dwc, DWC3_DSTS);
2389
2390 link_state = DWC3_DSTS_USBLNKST(reg);
2391
2392 switch (link_state) {
2393 case DWC3_LINK_STATE_RESET:
2394 case DWC3_LINK_STATE_RX_DET: /* in HS, means Early Suspend */
2395 case DWC3_LINK_STATE_U3: /* in HS, means SUSPEND */
2396 case DWC3_LINK_STATE_U2: /* in HS, means Sleep (L1) */
2397 case DWC3_LINK_STATE_U1:
2398 case DWC3_LINK_STATE_RESUME:
2399 break;
2400 default:
2401 return -EINVAL;
2402 }
2403
2404 dwc3_gadget_enable_linksts_evts(dwc, true);
2405
2406 ret = dwc3_gadget_set_link_state(dwc, DWC3_LINK_STATE_RECOV);
2407 if (ret < 0) {
2408 dev_err(dwc->dev, "failed to put link in Recovery\n");
2409 dwc3_gadget_enable_linksts_evts(dwc, false);
2410 return ret;
2411 }
2412
2413 /* Recent versions do this automatically */
2414 if (DWC3_VER_IS_PRIOR(DWC3, 194A)) {
2415 /* write zeroes to Link Change Request */
2416 reg = dwc3_readl(dwc, DWC3_DCTL);
2417 reg &= ~DWC3_DCTL_ULSTCHNGREQ_MASK;
2418 dwc3_writel(dwc, DWC3_DCTL, reg);
2419 }
2420
2421 /*
2422 * Since link status change events are enabled we will receive
2423 * an U0 event when wakeup is successful.
2424 */
2425 return 0;
2426 }
2427
dwc3_gadget_wakeup(struct usb_gadget * g)2428 static int dwc3_gadget_wakeup(struct usb_gadget *g)
2429 {
2430 struct dwc3 *dwc = gadget_to_dwc(g);
2431 unsigned long flags;
2432 int ret;
2433
2434 if (!dwc->wakeup_configured) {
2435 dev_err(dwc->dev, "remote wakeup not configured\n");
2436 return -EINVAL;
2437 }
2438
2439 spin_lock_irqsave(&dwc->lock, flags);
2440 if (!dwc->gadget->wakeup_armed) {
2441 dev_err(dwc->dev, "not armed for remote wakeup\n");
2442 spin_unlock_irqrestore(&dwc->lock, flags);
2443 return -EINVAL;
2444 }
2445 ret = __dwc3_gadget_wakeup(dwc);
2446
2447 spin_unlock_irqrestore(&dwc->lock, flags);
2448
2449 return ret;
2450 }
2451
2452 static void dwc3_resume_gadget(struct dwc3 *dwc);
2453
dwc3_gadget_func_wakeup(struct usb_gadget * g,int intf_id)2454 static int dwc3_gadget_func_wakeup(struct usb_gadget *g, int intf_id)
2455 {
2456 struct dwc3 *dwc = gadget_to_dwc(g);
2457 unsigned long flags;
2458 int ret;
2459 int link_state;
2460
2461 if (!dwc->wakeup_configured) {
2462 dev_err(dwc->dev, "remote wakeup not configured\n");
2463 return -EINVAL;
2464 }
2465
2466 spin_lock_irqsave(&dwc->lock, flags);
2467 /*
2468 * If the link is in U3, signal for remote wakeup and wait for the
2469 * link to transition to U0 before sending device notification.
2470 */
2471 link_state = dwc3_gadget_get_link_state(dwc);
2472 if (link_state == DWC3_LINK_STATE_U3) {
2473 dwc->wakeup_pending_funcs |= BIT(intf_id);
2474 ret = __dwc3_gadget_wakeup(dwc);
2475 spin_unlock_irqrestore(&dwc->lock, flags);
2476 return ret;
2477 }
2478
2479 ret = dwc3_send_gadget_generic_command(dwc, DWC3_DGCMD_DEV_NOTIFICATION,
2480 DWC3_DGCMDPAR_DN_FUNC_WAKE |
2481 DWC3_DGCMDPAR_INTF_SEL(intf_id));
2482 if (ret)
2483 dev_err(dwc->dev, "function remote wakeup failed, ret:%d\n", ret);
2484
2485 spin_unlock_irqrestore(&dwc->lock, flags);
2486
2487 return ret;
2488 }
2489
dwc3_gadget_set_remote_wakeup(struct usb_gadget * g,int set)2490 static int dwc3_gadget_set_remote_wakeup(struct usb_gadget *g, int set)
2491 {
2492 struct dwc3 *dwc = gadget_to_dwc(g);
2493 unsigned long flags;
2494
2495 spin_lock_irqsave(&dwc->lock, flags);
2496 dwc->wakeup_configured = !!set;
2497 spin_unlock_irqrestore(&dwc->lock, flags);
2498
2499 return 0;
2500 }
2501
dwc3_gadget_set_selfpowered(struct usb_gadget * g,int is_selfpowered)2502 static int dwc3_gadget_set_selfpowered(struct usb_gadget *g,
2503 int is_selfpowered)
2504 {
2505 struct dwc3 *dwc = gadget_to_dwc(g);
2506 unsigned long flags;
2507
2508 spin_lock_irqsave(&dwc->lock, flags);
2509 g->is_selfpowered = !!is_selfpowered;
2510 spin_unlock_irqrestore(&dwc->lock, flags);
2511
2512 return 0;
2513 }
2514
dwc3_stop_active_transfers(struct dwc3 * dwc)2515 static void dwc3_stop_active_transfers(struct dwc3 *dwc)
2516 {
2517 u32 epnum;
2518
2519 for (epnum = 2; epnum < dwc->num_eps; epnum++) {
2520 struct dwc3_ep *dep;
2521
2522 dep = dwc->eps[epnum];
2523 if (!dep)
2524 continue;
2525
2526 dwc3_remove_requests(dwc, dep, -ESHUTDOWN);
2527 }
2528 }
2529
__dwc3_gadget_set_ssp_rate(struct dwc3 * dwc)2530 static void __dwc3_gadget_set_ssp_rate(struct dwc3 *dwc)
2531 {
2532 enum usb_ssp_rate ssp_rate = dwc->gadget_ssp_rate;
2533 u32 reg;
2534
2535 if (ssp_rate == USB_SSP_GEN_UNKNOWN)
2536 ssp_rate = dwc->max_ssp_rate;
2537
2538 reg = dwc3_readl(dwc, DWC3_DCFG);
2539 reg &= ~DWC3_DCFG_SPEED_MASK;
2540 reg &= ~DWC3_DCFG_NUMLANES(~0);
2541
2542 if (ssp_rate == USB_SSP_GEN_1x2)
2543 reg |= DWC3_DCFG_SUPERSPEED;
2544 else if (dwc->max_ssp_rate != USB_SSP_GEN_1x2)
2545 reg |= DWC3_DCFG_SUPERSPEED_PLUS;
2546
2547 if (ssp_rate != USB_SSP_GEN_2x1 &&
2548 dwc->max_ssp_rate != USB_SSP_GEN_2x1)
2549 reg |= DWC3_DCFG_NUMLANES(1);
2550
2551 dwc3_writel(dwc, DWC3_DCFG, reg);
2552 }
2553
__dwc3_gadget_set_speed(struct dwc3 * dwc)2554 static void __dwc3_gadget_set_speed(struct dwc3 *dwc)
2555 {
2556 enum usb_device_speed speed;
2557 u32 reg;
2558
2559 speed = dwc->gadget_max_speed;
2560 if (speed == USB_SPEED_UNKNOWN || speed > dwc->maximum_speed)
2561 speed = dwc->maximum_speed;
2562
2563 if (speed == USB_SPEED_SUPER_PLUS &&
2564 DWC3_IP_IS(DWC32)) {
2565 __dwc3_gadget_set_ssp_rate(dwc);
2566 return;
2567 }
2568
2569 reg = dwc3_readl(dwc, DWC3_DCFG);
2570 reg &= ~(DWC3_DCFG_SPEED_MASK);
2571
2572 /*
2573 * WORKAROUND: DWC3 revision < 2.20a have an issue
2574 * which would cause metastability state on Run/Stop
2575 * bit if we try to force the IP to USB2-only mode.
2576 *
2577 * Because of that, we cannot configure the IP to any
2578 * speed other than the SuperSpeed
2579 *
2580 * Refers to:
2581 *
2582 * STAR#9000525659: Clock Domain Crossing on DCTL in
2583 * USB 2.0 Mode
2584 */
2585 if (DWC3_VER_IS_PRIOR(DWC3, 220A) &&
2586 !dwc->dis_metastability_quirk) {
2587 reg |= DWC3_DCFG_SUPERSPEED;
2588 } else {
2589 switch (speed) {
2590 case USB_SPEED_FULL:
2591 reg |= DWC3_DCFG_FULLSPEED;
2592 break;
2593 case USB_SPEED_HIGH:
2594 reg |= DWC3_DCFG_HIGHSPEED;
2595 break;
2596 case USB_SPEED_SUPER:
2597 reg |= DWC3_DCFG_SUPERSPEED;
2598 break;
2599 case USB_SPEED_SUPER_PLUS:
2600 if (DWC3_IP_IS(DWC3))
2601 reg |= DWC3_DCFG_SUPERSPEED;
2602 else
2603 reg |= DWC3_DCFG_SUPERSPEED_PLUS;
2604 break;
2605 default:
2606 dev_err(dwc->dev, "invalid speed (%d)\n", speed);
2607
2608 if (DWC3_IP_IS(DWC3))
2609 reg |= DWC3_DCFG_SUPERSPEED;
2610 else
2611 reg |= DWC3_DCFG_SUPERSPEED_PLUS;
2612 }
2613 }
2614
2615 if (DWC3_IP_IS(DWC32) &&
2616 speed > USB_SPEED_UNKNOWN &&
2617 speed < USB_SPEED_SUPER_PLUS)
2618 reg &= ~DWC3_DCFG_NUMLANES(~0);
2619
2620 dwc3_writel(dwc, DWC3_DCFG, reg);
2621 }
2622
dwc3_gadget_run_stop(struct dwc3 * dwc,int is_on)2623 static int dwc3_gadget_run_stop(struct dwc3 *dwc, int is_on)
2624 {
2625 u32 reg;
2626 u32 timeout = 2000;
2627 u32 saved_config = 0;
2628
2629 if (pm_runtime_suspended(dwc->dev))
2630 return 0;
2631
2632 /*
2633 * When operating in USB 2.0 speeds (HS/FS), ensure that
2634 * GUSB2PHYCFG.ENBLSLPM and GUSB2PHYCFG.SUSPHY are cleared before starting
2635 * or stopping the controller. This resolves timeout issues that occur
2636 * during frequent role switches between host and device modes.
2637 *
2638 * Save and clear these settings, then restore them after completing the
2639 * controller start or stop sequence.
2640 *
2641 * This solution was discovered through experimentation as it is not
2642 * mentioned in the dwc3 programming guide. It has been tested on an
2643 * Exynos platforms.
2644 */
2645 reg = dwc3_readl(dwc, DWC3_GUSB2PHYCFG(0));
2646 if (reg & DWC3_GUSB2PHYCFG_SUSPHY) {
2647 saved_config |= DWC3_GUSB2PHYCFG_SUSPHY;
2648 reg &= ~DWC3_GUSB2PHYCFG_SUSPHY;
2649 }
2650
2651 if (reg & DWC3_GUSB2PHYCFG_ENBLSLPM) {
2652 saved_config |= DWC3_GUSB2PHYCFG_ENBLSLPM;
2653 reg &= ~DWC3_GUSB2PHYCFG_ENBLSLPM;
2654 }
2655
2656 if (saved_config)
2657 dwc3_writel(dwc, DWC3_GUSB2PHYCFG(0), reg);
2658
2659 reg = dwc3_readl(dwc, DWC3_DCTL);
2660 if (is_on) {
2661 if (DWC3_VER_IS_WITHIN(DWC3, ANY, 187A)) {
2662 reg &= ~DWC3_DCTL_TRGTULST_MASK;
2663 reg |= DWC3_DCTL_TRGTULST_RX_DET;
2664 }
2665
2666 if (!DWC3_VER_IS_PRIOR(DWC3, 194A))
2667 reg &= ~DWC3_DCTL_KEEP_CONNECT;
2668 reg |= DWC3_DCTL_RUN_STOP;
2669
2670 __dwc3_gadget_set_speed(dwc);
2671 dwc->pullups_connected = true;
2672 } else {
2673 reg &= ~DWC3_DCTL_RUN_STOP;
2674
2675 dwc->pullups_connected = false;
2676 }
2677
2678 dwc3_pre_run_stop(dwc, is_on);
2679 dwc3_gadget_dctl_write_safe(dwc, reg);
2680
2681 do {
2682 usleep_range(1000, 2000);
2683 reg = dwc3_readl(dwc, DWC3_DSTS);
2684 reg &= DWC3_DSTS_DEVCTRLHLT;
2685 } while (--timeout && !(!is_on ^ !reg));
2686
2687 if (saved_config) {
2688 reg = dwc3_readl(dwc, DWC3_GUSB2PHYCFG(0));
2689 reg |= saved_config;
2690 dwc3_writel(dwc, DWC3_GUSB2PHYCFG(0), reg);
2691 }
2692
2693 if (!timeout)
2694 return -ETIMEDOUT;
2695
2696 return 0;
2697 }
2698
2699 static void dwc3_gadget_disable_irq(struct dwc3 *dwc);
2700 static void __dwc3_gadget_stop(struct dwc3 *dwc);
2701 static int __dwc3_gadget_start(struct dwc3 *dwc);
2702
dwc3_gadget_soft_disconnect(struct dwc3 * dwc)2703 static int dwc3_gadget_soft_disconnect(struct dwc3 *dwc)
2704 {
2705 unsigned long flags;
2706 int ret;
2707
2708 spin_lock_irqsave(&dwc->lock, flags);
2709 if (!dwc->pullups_connected) {
2710 spin_unlock_irqrestore(&dwc->lock, flags);
2711 return 0;
2712 }
2713
2714 dwc->connected = false;
2715
2716 /*
2717 * Attempt to end pending SETUP status phase, and not wait for the
2718 * function to do so.
2719 */
2720 if (dwc->delayed_status)
2721 dwc3_ep0_send_delayed_status(dwc);
2722
2723 /*
2724 * In the Synopsys DesignWare Cores USB3 Databook Rev. 3.30a
2725 * Section 4.1.8 Table 4-7, it states that for a device-initiated
2726 * disconnect, the SW needs to ensure that it sends "a DEPENDXFER
2727 * command for any active transfers" before clearing the RunStop
2728 * bit.
2729 */
2730 dwc3_stop_active_transfers(dwc);
2731 spin_unlock_irqrestore(&dwc->lock, flags);
2732
2733 /*
2734 * Per databook, when we want to stop the gadget, if a control transfer
2735 * is still in process, complete it and get the core into setup phase.
2736 * In case the host is unresponsive to a SETUP transaction, forcefully
2737 * stall the transfer, and move back to the SETUP phase, so that any
2738 * pending endxfers can be executed.
2739 */
2740 if (dwc->ep0state != EP0_SETUP_PHASE) {
2741 reinit_completion(&dwc->ep0_in_setup);
2742
2743 ret = wait_for_completion_timeout(&dwc->ep0_in_setup,
2744 msecs_to_jiffies(DWC3_PULL_UP_TIMEOUT));
2745 if (ret == 0) {
2746 dev_warn(dwc->dev, "wait for SETUP phase timed out\n");
2747 spin_lock_irqsave(&dwc->lock, flags);
2748 dwc3_ep0_reset_state(dwc);
2749 spin_unlock_irqrestore(&dwc->lock, flags);
2750 }
2751 }
2752
2753 /*
2754 * Note: if the GEVNTCOUNT indicates events in the event buffer, the
2755 * driver needs to acknowledge them before the controller can halt.
2756 * Simply let the interrupt handler acknowledges and handle the
2757 * remaining event generated by the controller while polling for
2758 * DSTS.DEVCTLHLT.
2759 */
2760 ret = dwc3_gadget_run_stop(dwc, false);
2761
2762 /*
2763 * Stop the gadget after controller is halted, so that if needed, the
2764 * events to update EP0 state can still occur while the run/stop
2765 * routine polls for the halted state. DEVTEN is cleared as part of
2766 * gadget stop.
2767 */
2768 spin_lock_irqsave(&dwc->lock, flags);
2769 __dwc3_gadget_stop(dwc);
2770 spin_unlock_irqrestore(&dwc->lock, flags);
2771
2772 usb_gadget_set_state(dwc->gadget, USB_STATE_NOTATTACHED);
2773
2774 return ret;
2775 }
2776
dwc3_gadget_soft_connect(struct dwc3 * dwc)2777 static int dwc3_gadget_soft_connect(struct dwc3 *dwc)
2778 {
2779 int ret;
2780
2781 /*
2782 * In the Synopsys DWC_usb31 1.90a programming guide section
2783 * 4.1.9, it specifies that for a reconnect after a
2784 * device-initiated disconnect requires a core soft reset
2785 * (DCTL.CSftRst) before enabling the run/stop bit.
2786 */
2787 ret = dwc3_core_soft_reset(dwc);
2788 if (ret)
2789 return ret;
2790
2791 dwc3_event_buffers_setup(dwc);
2792 __dwc3_gadget_start(dwc);
2793 return dwc3_gadget_run_stop(dwc, true);
2794 }
2795
dwc3_gadget_pullup(struct usb_gadget * g,int is_on)2796 static int dwc3_gadget_pullup(struct usb_gadget *g, int is_on)
2797 {
2798 struct dwc3 *dwc = gadget_to_dwc(g);
2799 int ret;
2800
2801 is_on = !!is_on;
2802
2803 dwc->softconnect = is_on;
2804
2805 /*
2806 * Avoid issuing a runtime resume if the device is already in the
2807 * suspended state during gadget disconnect. DWC3 gadget was already
2808 * halted/stopped during runtime suspend.
2809 */
2810 if (!is_on) {
2811 pm_runtime_barrier(dwc->dev);
2812 if (pm_runtime_suspended(dwc->dev))
2813 return 0;
2814 }
2815
2816 /*
2817 * Check the return value for successful resume, or error. For a
2818 * successful resume, the DWC3 runtime PM resume routine will handle
2819 * the run stop sequence, so avoid duplicate operations here.
2820 */
2821 ret = pm_runtime_get_sync(dwc->dev);
2822 if (!ret || ret < 0) {
2823 pm_runtime_put(dwc->dev);
2824 if (ret < 0)
2825 pm_runtime_set_suspended(dwc->dev);
2826 return ret;
2827 }
2828
2829 if (dwc->pullups_connected == is_on) {
2830 pm_runtime_put(dwc->dev);
2831 return 0;
2832 }
2833
2834 synchronize_irq(dwc->irq_gadget);
2835
2836 if (!is_on)
2837 ret = dwc3_gadget_soft_disconnect(dwc);
2838 else
2839 ret = dwc3_gadget_soft_connect(dwc);
2840
2841 pm_runtime_put(dwc->dev);
2842
2843 return ret;
2844 }
2845
dwc3_gadget_enable_irq(struct dwc3 * dwc)2846 static void dwc3_gadget_enable_irq(struct dwc3 *dwc)
2847 {
2848 u32 reg;
2849
2850 /* Enable all but Start and End of Frame IRQs */
2851 reg = (DWC3_DEVTEN_EVNTOVERFLOWEN |
2852 DWC3_DEVTEN_CMDCMPLTEN |
2853 DWC3_DEVTEN_ERRTICERREN |
2854 DWC3_DEVTEN_WKUPEVTEN |
2855 DWC3_DEVTEN_CONNECTDONEEN |
2856 DWC3_DEVTEN_USBRSTEN |
2857 DWC3_DEVTEN_DISCONNEVTEN);
2858
2859 if (DWC3_VER_IS_PRIOR(DWC3, 250A))
2860 reg |= DWC3_DEVTEN_ULSTCNGEN;
2861
2862 /* On 2.30a and above this bit enables U3/L2-L1 Suspend Events */
2863 if (!DWC3_VER_IS_PRIOR(DWC3, 230A))
2864 reg |= DWC3_DEVTEN_U3L2L1SUSPEN;
2865
2866 dwc3_writel(dwc, DWC3_DEVTEN, reg);
2867 }
2868
dwc3_gadget_disable_irq(struct dwc3 * dwc)2869 static void dwc3_gadget_disable_irq(struct dwc3 *dwc)
2870 {
2871 /* mask all interrupts */
2872 dwc3_writel(dwc, DWC3_DEVTEN, 0x00);
2873 }
2874
2875 static irqreturn_t dwc3_interrupt(int irq, void *_dwc);
2876 static irqreturn_t dwc3_thread_interrupt(int irq, void *_dwc);
2877
2878 /**
2879 * dwc3_gadget_setup_nump - calculate and initialize NUMP field of %DWC3_DCFG
2880 * @dwc: pointer to our context structure
2881 *
2882 * The following looks like complex but it's actually very simple. In order to
2883 * calculate the number of packets we can burst at once on OUT transfers, we're
2884 * gonna use RxFIFO size.
2885 *
2886 * To calculate RxFIFO size we need two numbers:
2887 * MDWIDTH = size, in bits, of the internal memory bus
2888 * RAM2_DEPTH = depth, in MDWIDTH, of internal RAM2 (where RxFIFO sits)
2889 *
2890 * Given these two numbers, the formula is simple:
2891 *
2892 * RxFIFO Size = (RAM2_DEPTH * MDWIDTH / 8) - 24 - 16;
2893 *
2894 * 24 bytes is for 3x SETUP packets
2895 * 16 bytes is a clock domain crossing tolerance
2896 *
2897 * Given RxFIFO Size, NUMP = RxFIFOSize / 1024;
2898 */
dwc3_gadget_setup_nump(struct dwc3 * dwc)2899 static void dwc3_gadget_setup_nump(struct dwc3 *dwc)
2900 {
2901 u32 ram2_depth;
2902 u32 mdwidth;
2903 u32 nump;
2904 u32 reg;
2905
2906 ram2_depth = DWC3_GHWPARAMS7_RAM2_DEPTH(dwc->hwparams.hwparams7);
2907 mdwidth = dwc3_mdwidth(dwc);
2908
2909 nump = ((ram2_depth * mdwidth / 8) - 24 - 16) / 1024;
2910 nump = min_t(u32, nump, 16);
2911
2912 /* update NumP */
2913 reg = dwc3_readl(dwc, DWC3_DCFG);
2914 reg &= ~DWC3_DCFG_NUMP_MASK;
2915 reg |= nump << DWC3_DCFG_NUMP_SHIFT;
2916 dwc3_writel(dwc, DWC3_DCFG, reg);
2917 }
2918
__dwc3_gadget_start(struct dwc3 * dwc)2919 static int __dwc3_gadget_start(struct dwc3 *dwc)
2920 {
2921 struct dwc3_ep *dep;
2922 int ret = 0;
2923 u32 reg;
2924
2925 /*
2926 * Use IMOD if enabled via dwc->imod_interval. Otherwise, if
2927 * the core supports IMOD, disable it.
2928 */
2929 if (dwc->imod_interval) {
2930 dwc3_writel(dwc, DWC3_DEV_IMOD(0), dwc->imod_interval);
2931 dwc3_writel(dwc, DWC3_GEVNTCOUNT(0), DWC3_GEVNTCOUNT_EHB);
2932 } else if (dwc3_has_imod(dwc)) {
2933 dwc3_writel(dwc, DWC3_DEV_IMOD(0), 0);
2934 }
2935
2936 /*
2937 * We are telling dwc3 that we want to use DCFG.NUMP as ACK TP's NUMP
2938 * field instead of letting dwc3 itself calculate that automatically.
2939 *
2940 * This way, we maximize the chances that we'll be able to get several
2941 * bursts of data without going through any sort of endpoint throttling.
2942 */
2943 reg = dwc3_readl(dwc, DWC3_GRXTHRCFG);
2944 if (DWC3_IP_IS(DWC3))
2945 reg &= ~DWC3_GRXTHRCFG_PKTCNTSEL;
2946 else
2947 reg &= ~DWC31_GRXTHRCFG_PKTCNTSEL;
2948
2949 dwc3_writel(dwc, DWC3_GRXTHRCFG, reg);
2950
2951 dwc3_gadget_setup_nump(dwc);
2952
2953 /*
2954 * Currently the controller handles single stream only. So, Ignore
2955 * Packet Pending bit for stream selection and don't search for another
2956 * stream if the host sends Data Packet with PP=0 (for OUT direction) or
2957 * ACK with NumP=0 and PP=0 (for IN direction). This slightly improves
2958 * the stream performance.
2959 */
2960 reg = dwc3_readl(dwc, DWC3_DCFG);
2961 reg |= DWC3_DCFG_IGNSTRMPP;
2962 dwc3_writel(dwc, DWC3_DCFG, reg);
2963
2964 /* Enable MST by default if the device is capable of MST */
2965 if (DWC3_MST_CAPABLE(&dwc->hwparams)) {
2966 reg = dwc3_readl(dwc, DWC3_DCFG1);
2967 reg &= ~DWC3_DCFG1_DIS_MST_ENH;
2968 dwc3_writel(dwc, DWC3_DCFG1, reg);
2969 }
2970
2971 /* Start with SuperSpeed Default */
2972 dwc3_gadget_ep0_desc.wMaxPacketSize = cpu_to_le16(512);
2973
2974 ret = dwc3_gadget_start_config(dwc, 0);
2975 if (ret) {
2976 dev_err(dwc->dev, "failed to config endpoints\n");
2977 return ret;
2978 }
2979
2980 dep = dwc->eps[0];
2981 dep->flags = 0;
2982 ret = __dwc3_gadget_ep_enable(dep, DWC3_DEPCFG_ACTION_INIT);
2983 if (ret) {
2984 dev_err(dwc->dev, "failed to enable %s\n", dep->name);
2985 goto err0;
2986 }
2987
2988 dep = dwc->eps[1];
2989 dep->flags = 0;
2990 ret = __dwc3_gadget_ep_enable(dep, DWC3_DEPCFG_ACTION_INIT);
2991 if (ret) {
2992 dev_err(dwc->dev, "failed to enable %s\n", dep->name);
2993 goto err1;
2994 }
2995
2996 /* begin to receive SETUP packets */
2997 dwc->ep0state = EP0_SETUP_PHASE;
2998 dwc->ep0_bounced = false;
2999 dwc->link_state = DWC3_LINK_STATE_SS_DIS;
3000 dwc->delayed_status = false;
3001 dwc3_ep0_out_start(dwc);
3002
3003 dwc3_gadget_enable_irq(dwc);
3004 dwc3_enable_susphy(dwc, true);
3005
3006 return 0;
3007
3008 err1:
3009 __dwc3_gadget_ep_disable(dwc->eps[0]);
3010
3011 err0:
3012 return ret;
3013 }
3014
dwc3_gadget_start(struct usb_gadget * g,struct usb_gadget_driver * driver)3015 static int dwc3_gadget_start(struct usb_gadget *g,
3016 struct usb_gadget_driver *driver)
3017 {
3018 struct dwc3 *dwc = gadget_to_dwc(g);
3019 unsigned long flags;
3020 int ret;
3021 int irq;
3022
3023 irq = dwc->irq_gadget;
3024 ret = request_threaded_irq(irq, dwc3_interrupt, dwc3_thread_interrupt,
3025 IRQF_SHARED, "dwc3", dwc->ev_buf);
3026 if (ret) {
3027 dev_err(dwc->dev, "failed to request irq #%d --> %d\n",
3028 irq, ret);
3029 return ret;
3030 }
3031
3032 spin_lock_irqsave(&dwc->lock, flags);
3033 dwc->gadget_driver = driver;
3034 spin_unlock_irqrestore(&dwc->lock, flags);
3035
3036 if (dwc->sys_wakeup)
3037 device_wakeup_enable(dwc->sysdev);
3038
3039 return 0;
3040 }
3041
__dwc3_gadget_stop(struct dwc3 * dwc)3042 static void __dwc3_gadget_stop(struct dwc3 *dwc)
3043 {
3044 dwc3_gadget_disable_irq(dwc);
3045 __dwc3_gadget_ep_disable(dwc->eps[0]);
3046 __dwc3_gadget_ep_disable(dwc->eps[1]);
3047 }
3048
dwc3_gadget_stop(struct usb_gadget * g)3049 static int dwc3_gadget_stop(struct usb_gadget *g)
3050 {
3051 struct dwc3 *dwc = gadget_to_dwc(g);
3052 unsigned long flags;
3053
3054 if (dwc->sys_wakeup)
3055 device_wakeup_disable(dwc->sysdev);
3056
3057 spin_lock_irqsave(&dwc->lock, flags);
3058 dwc->gadget_driver = NULL;
3059 dwc->max_cfg_eps = 0;
3060 spin_unlock_irqrestore(&dwc->lock, flags);
3061
3062 free_irq(dwc->irq_gadget, dwc->ev_buf);
3063
3064 return 0;
3065 }
3066
dwc3_gadget_config_params(struct usb_gadget * g,struct usb_dcd_config_params * params)3067 static void dwc3_gadget_config_params(struct usb_gadget *g,
3068 struct usb_dcd_config_params *params)
3069 {
3070 struct dwc3 *dwc = gadget_to_dwc(g);
3071
3072 params->besl_baseline = USB_DEFAULT_BESL_UNSPECIFIED;
3073 params->besl_deep = USB_DEFAULT_BESL_UNSPECIFIED;
3074
3075 /* Recommended BESL */
3076 if (!dwc->dis_enblslpm_quirk) {
3077 /*
3078 * If the recommended BESL baseline is 0 or if the BESL deep is
3079 * less than 2, Microsoft's Windows 10 host usb stack will issue
3080 * a usb reset immediately after it receives the extended BOS
3081 * descriptor and the enumeration will fail. To maintain
3082 * compatibility with the Windows' usb stack, let's set the
3083 * recommended BESL baseline to 1 and clamp the BESL deep to be
3084 * within 2 to 15.
3085 */
3086 params->besl_baseline = 1;
3087 if (dwc->is_utmi_l1_suspend)
3088 params->besl_deep =
3089 clamp_t(u8, dwc->hird_threshold, 2, 15);
3090 }
3091
3092 /* U1 Device exit Latency */
3093 if (dwc->dis_u1_entry_quirk)
3094 params->bU1devExitLat = 0;
3095 else
3096 params->bU1devExitLat = DWC3_DEFAULT_U1_DEV_EXIT_LAT;
3097
3098 /* U2 Device exit Latency */
3099 if (dwc->dis_u2_entry_quirk)
3100 params->bU2DevExitLat = 0;
3101 else
3102 params->bU2DevExitLat =
3103 cpu_to_le16(DWC3_DEFAULT_U2_DEV_EXIT_LAT);
3104 }
3105
dwc3_gadget_set_speed(struct usb_gadget * g,enum usb_device_speed speed)3106 static void dwc3_gadget_set_speed(struct usb_gadget *g,
3107 enum usb_device_speed speed)
3108 {
3109 struct dwc3 *dwc = gadget_to_dwc(g);
3110 unsigned long flags;
3111
3112 spin_lock_irqsave(&dwc->lock, flags);
3113 dwc->gadget_max_speed = speed;
3114 spin_unlock_irqrestore(&dwc->lock, flags);
3115 }
3116
dwc3_gadget_set_ssp_rate(struct usb_gadget * g,enum usb_ssp_rate rate)3117 static void dwc3_gadget_set_ssp_rate(struct usb_gadget *g,
3118 enum usb_ssp_rate rate)
3119 {
3120 struct dwc3 *dwc = gadget_to_dwc(g);
3121 unsigned long flags;
3122
3123 spin_lock_irqsave(&dwc->lock, flags);
3124 dwc->gadget_max_speed = USB_SPEED_SUPER_PLUS;
3125 dwc->gadget_ssp_rate = rate;
3126 spin_unlock_irqrestore(&dwc->lock, flags);
3127 }
3128
dwc3_gadget_vbus_draw(struct usb_gadget * g,unsigned int mA)3129 static int dwc3_gadget_vbus_draw(struct usb_gadget *g, unsigned int mA)
3130 {
3131 struct dwc3 *dwc = gadget_to_dwc(g);
3132 unsigned long flags;
3133
3134 if (dwc->usb2_phy)
3135 return usb_phy_set_power(dwc->usb2_phy, mA);
3136
3137 spin_lock_irqsave(&dwc->lock, flags);
3138 if (!dwc->usb_psy) {
3139 if (!dwc->psy_nb.notifier_call) {
3140 spin_unlock_irqrestore(&dwc->lock, flags);
3141 return -EOPNOTSUPP;
3142 }
3143 dwc->current_limit = mA;
3144 spin_unlock_irqrestore(&dwc->lock, flags);
3145 dev_dbg(dwc->dev, "Stored VBUS draw: %u mA (power supply not ready)\n", mA);
3146 return 0;
3147 }
3148
3149 dwc->current_limit = mA;
3150 schedule_work(&dwc->vbus_draw_work);
3151 spin_unlock_irqrestore(&dwc->lock, flags);
3152
3153 return 0;
3154 }
3155
3156 /**
3157 * dwc3_gadget_check_config - ensure dwc3 can support the USB configuration
3158 * @g: pointer to the USB gadget
3159 *
3160 * Used to record the maximum number of endpoints being used in a USB composite
3161 * device. (across all configurations) This is to be used in the calculation
3162 * of the TXFIFO sizes when resizing internal memory for individual endpoints.
3163 * It will help ensured that the resizing logic reserves enough space for at
3164 * least one max packet.
3165 */
dwc3_gadget_check_config(struct usb_gadget * g)3166 static int dwc3_gadget_check_config(struct usb_gadget *g)
3167 {
3168 struct dwc3 *dwc = gadget_to_dwc(g);
3169 struct usb_ep *ep;
3170 int fifo_size = 0;
3171 int ram_depth;
3172 int ep_num = 0;
3173
3174 if (!dwc->do_fifo_resize)
3175 return 0;
3176
3177 list_for_each_entry(ep, &g->ep_list, ep_list) {
3178 /* Only interested in the IN endpoints */
3179 if (ep->claimed && (ep->address & USB_DIR_IN))
3180 ep_num++;
3181 }
3182
3183 if (ep_num <= dwc->max_cfg_eps)
3184 return 0;
3185
3186 /* Update the max number of eps in the composition */
3187 dwc->max_cfg_eps = ep_num;
3188
3189 fifo_size = dwc3_gadget_calc_tx_fifo_size(dwc, dwc->max_cfg_eps);
3190 /* Based on the equation, increment by one for every ep */
3191 fifo_size += dwc->max_cfg_eps;
3192
3193 /* Check if we can fit a single fifo per endpoint */
3194 ram_depth = dwc3_gadget_calc_ram_depth(dwc);
3195 if (fifo_size > ram_depth)
3196 return -ENOMEM;
3197
3198 return 0;
3199 }
3200
dwc3_gadget_async_callbacks(struct usb_gadget * g,bool enable)3201 static void dwc3_gadget_async_callbacks(struct usb_gadget *g, bool enable)
3202 {
3203 struct dwc3 *dwc = gadget_to_dwc(g);
3204 unsigned long flags;
3205
3206 spin_lock_irqsave(&dwc->lock, flags);
3207 dwc->async_callbacks = enable;
3208 spin_unlock_irqrestore(&dwc->lock, flags);
3209 }
3210
3211 static const struct usb_gadget_ops dwc3_gadget_ops = {
3212 .get_frame = dwc3_gadget_get_frame,
3213 .wakeup = dwc3_gadget_wakeup,
3214 .func_wakeup = dwc3_gadget_func_wakeup,
3215 .set_remote_wakeup = dwc3_gadget_set_remote_wakeup,
3216 .set_selfpowered = dwc3_gadget_set_selfpowered,
3217 .pullup = dwc3_gadget_pullup,
3218 .udc_start = dwc3_gadget_start,
3219 .udc_stop = dwc3_gadget_stop,
3220 .udc_set_speed = dwc3_gadget_set_speed,
3221 .udc_set_ssp_rate = dwc3_gadget_set_ssp_rate,
3222 .get_config_params = dwc3_gadget_config_params,
3223 .vbus_draw = dwc3_gadget_vbus_draw,
3224 .check_config = dwc3_gadget_check_config,
3225 .udc_async_callbacks = dwc3_gadget_async_callbacks,
3226 };
3227
3228 /* -------------------------------------------------------------------------- */
3229
dwc3_gadget_init_control_endpoint(struct dwc3_ep * dep)3230 static int dwc3_gadget_init_control_endpoint(struct dwc3_ep *dep)
3231 {
3232 struct dwc3 *dwc = dep->dwc;
3233
3234 usb_ep_set_maxpacket_limit(&dep->endpoint, 512);
3235 dep->endpoint.maxburst = 1;
3236 dep->endpoint.ops = &dwc3_gadget_ep0_ops;
3237 if (!dep->direction)
3238 dwc->gadget->ep0 = &dep->endpoint;
3239
3240 dep->endpoint.caps.type_control = true;
3241
3242 return 0;
3243 }
3244
dwc3_gadget_init_in_endpoint(struct dwc3_ep * dep)3245 static int dwc3_gadget_init_in_endpoint(struct dwc3_ep *dep)
3246 {
3247 struct dwc3 *dwc = dep->dwc;
3248 u32 mdwidth;
3249 int size;
3250 int maxpacket;
3251
3252 mdwidth = dwc3_mdwidth(dwc);
3253
3254 /* MDWIDTH is represented in bits, we need it in bytes */
3255 mdwidth /= 8;
3256
3257 size = dwc3_readl(dwc, DWC3_GTXFIFOSIZ(dep->number >> 1));
3258 if (DWC3_IP_IS(DWC3))
3259 size = DWC3_GTXFIFOSIZ_TXFDEP(size);
3260 else
3261 size = DWC31_GTXFIFOSIZ_TXFDEP(size);
3262
3263 /*
3264 * maxpacket size is determined as part of the following, after assuming
3265 * a mult value of one maxpacket:
3266 * DWC3 revision 280A and prior:
3267 * fifo_size = mult * (max_packet / mdwidth) + 1;
3268 * maxpacket = mdwidth * (fifo_size - 1);
3269 *
3270 * DWC3 revision 290A and onwards:
3271 * fifo_size = mult * ((max_packet + mdwidth)/mdwidth + 1) + 1
3272 * maxpacket = mdwidth * ((fifo_size - 1) - 1) - mdwidth;
3273 */
3274 if (DWC3_VER_IS_PRIOR(DWC3, 290A))
3275 maxpacket = mdwidth * (size - 1);
3276 else
3277 maxpacket = mdwidth * ((size - 1) - 1) - mdwidth;
3278
3279 /* Functionally, space for one max packet is sufficient */
3280 size = min_t(int, maxpacket, 1024);
3281 usb_ep_set_maxpacket_limit(&dep->endpoint, size);
3282
3283 dep->endpoint.max_streams = 16;
3284 dep->endpoint.ops = &dwc3_gadget_ep_ops;
3285 list_add_tail(&dep->endpoint.ep_list,
3286 &dwc->gadget->ep_list);
3287 dep->endpoint.caps.type_iso = true;
3288 dep->endpoint.caps.type_bulk = true;
3289 dep->endpoint.caps.type_int = true;
3290
3291 return dwc3_alloc_trb_pool(dep);
3292 }
3293
dwc3_gadget_init_out_endpoint(struct dwc3_ep * dep)3294 static int dwc3_gadget_init_out_endpoint(struct dwc3_ep *dep)
3295 {
3296 struct dwc3 *dwc = dep->dwc;
3297 u32 mdwidth;
3298 int size;
3299
3300 mdwidth = dwc3_mdwidth(dwc);
3301
3302 /* MDWIDTH is represented in bits, convert to bytes */
3303 mdwidth /= 8;
3304
3305 /* All OUT endpoints share a single RxFIFO space */
3306 size = dwc3_readl(dwc, DWC3_GRXFIFOSIZ(0));
3307 if (DWC3_IP_IS(DWC3))
3308 size = DWC3_GRXFIFOSIZ_RXFDEP(size);
3309 else
3310 size = DWC31_GRXFIFOSIZ_RXFDEP(size);
3311
3312 /* FIFO depth is in MDWDITH bytes */
3313 size *= mdwidth;
3314
3315 /*
3316 * To meet performance requirement, a minimum recommended RxFIFO size
3317 * is defined as follow:
3318 * RxFIFO size >= (3 x MaxPacketSize) +
3319 * (3 x 8 bytes setup packets size) + (16 bytes clock crossing margin)
3320 *
3321 * Then calculate the max packet limit as below.
3322 */
3323 size -= (3 * 8) + 16;
3324 if (size < 0)
3325 size = 0;
3326 else
3327 size /= 3;
3328
3329 usb_ep_set_maxpacket_limit(&dep->endpoint, size);
3330 dep->endpoint.max_streams = 16;
3331 dep->endpoint.ops = &dwc3_gadget_ep_ops;
3332 list_add_tail(&dep->endpoint.ep_list,
3333 &dwc->gadget->ep_list);
3334 dep->endpoint.caps.type_iso = true;
3335 dep->endpoint.caps.type_bulk = true;
3336 dep->endpoint.caps.type_int = true;
3337
3338 return dwc3_alloc_trb_pool(dep);
3339 }
3340
3341 #define nostream_work_to_dep(w) (container_of(to_delayed_work(w), struct dwc3_ep, nostream_work))
dwc3_nostream_work(struct work_struct * work)3342 static void dwc3_nostream_work(struct work_struct *work)
3343 {
3344 struct dwc3_ep *dep = nostream_work_to_dep(work);
3345 struct dwc3 *dwc = dep->dwc;
3346 unsigned long flags;
3347
3348 spin_lock_irqsave(&dwc->lock, flags);
3349 if (dep->flags & DWC3_EP_STREAM_PRIMED)
3350 goto out;
3351
3352 if ((dep->flags & DWC3_EP_IGNORE_NEXT_NOSTREAM) ||
3353 (!DWC3_MST_CAPABLE(&dwc->hwparams) &&
3354 !(dep->flags & DWC3_EP_WAIT_TRANSFER_COMPLETE)))
3355 goto out;
3356 /*
3357 * If the host rejects a stream due to no active stream, by the
3358 * USB and xHCI spec, the endpoint will be put back to idle
3359 * state. When the host is ready (buffer added/updated), it will
3360 * prime the endpoint to inform the usb device controller. This
3361 * triggers the device controller to issue ERDY to restart the
3362 * stream. However, some hosts don't follow this and keep the
3363 * endpoint in the idle state. No prime will come despite host
3364 * streams are updated, and the device controller will not be
3365 * triggered to generate ERDY to move the next stream data. To
3366 * workaround this and maintain compatibility with various
3367 * hosts, force to reinitiate the stream until the host is ready
3368 * instead of waiting for the host to prime the endpoint.
3369 */
3370 if (DWC3_VER_IS_WITHIN(DWC32, 100A, ANY)) {
3371 unsigned int cmd = DWC3_DGCMD_SET_ENDPOINT_PRIME;
3372
3373 dwc3_send_gadget_generic_command(dwc, cmd, dep->number);
3374 } else {
3375 dep->flags |= DWC3_EP_DELAY_START;
3376 dwc3_stop_active_transfer(dep, false, true);
3377 spin_unlock_irqrestore(&dwc->lock, flags);
3378 return;
3379 }
3380 out:
3381 dep->flags &= ~DWC3_EP_IGNORE_NEXT_NOSTREAM;
3382 spin_unlock_irqrestore(&dwc->lock, flags);
3383 }
3384
dwc3_gadget_init_endpoint(struct dwc3 * dwc,u8 epnum)3385 static int dwc3_gadget_init_endpoint(struct dwc3 *dwc, u8 epnum)
3386 {
3387 struct dwc3_ep *dep;
3388 bool direction = epnum & 1;
3389 int ret;
3390 u8 num = epnum >> 1;
3391
3392 dep = kzalloc_obj(*dep);
3393 if (!dep)
3394 return -ENOMEM;
3395
3396 dep->dwc = dwc;
3397 dep->number = epnum;
3398 dep->direction = direction;
3399 dwc->eps[epnum] = dep;
3400 dep->combo_num = 0;
3401 dep->start_cmd_status = 0;
3402
3403 snprintf(dep->name, sizeof(dep->name), "ep%u%s", num,
3404 direction ? "in" : "out");
3405
3406 dep->endpoint.name = dep->name;
3407
3408 if (!(dep->number > 1)) {
3409 dep->endpoint.desc = &dwc3_gadget_ep0_desc;
3410 dep->endpoint.comp_desc = NULL;
3411 }
3412
3413 if (num == 0)
3414 ret = dwc3_gadget_init_control_endpoint(dep);
3415 else if (direction)
3416 ret = dwc3_gadget_init_in_endpoint(dep);
3417 else
3418 ret = dwc3_gadget_init_out_endpoint(dep);
3419
3420 if (ret)
3421 return ret;
3422
3423 dep->endpoint.caps.dir_in = direction;
3424 dep->endpoint.caps.dir_out = !direction;
3425
3426 INIT_LIST_HEAD(&dep->pending_list);
3427 INIT_LIST_HEAD(&dep->started_list);
3428 INIT_LIST_HEAD(&dep->cancelled_list);
3429 INIT_DELAYED_WORK(&dep->nostream_work, dwc3_nostream_work);
3430
3431 dwc3_debugfs_create_endpoint_dir(dep);
3432
3433 return 0;
3434 }
3435
dwc3_gadget_get_reserved_endpoints(struct dwc3 * dwc,const char * propname,u8 * eps,u8 num)3436 static int dwc3_gadget_get_reserved_endpoints(struct dwc3 *dwc, const char *propname,
3437 u8 *eps, u8 num)
3438 {
3439 u8 count;
3440 int ret;
3441
3442 if (!device_property_present(dwc->dev, propname))
3443 return 0;
3444
3445 ret = device_property_count_u8(dwc->dev, propname);
3446 if (ret < 0)
3447 return ret;
3448 count = ret;
3449
3450 ret = device_property_read_u8_array(dwc->dev, propname, eps, min(num, count));
3451 if (ret)
3452 return ret;
3453
3454 return count;
3455 }
3456
dwc3_gadget_init_endpoints(struct dwc3 * dwc,u8 total)3457 static int dwc3_gadget_init_endpoints(struct dwc3 *dwc, u8 total)
3458 {
3459 const char *propname = "snps,reserved-endpoints";
3460 u8 epnum;
3461 u8 reserved_eps[DWC3_ENDPOINTS_NUM];
3462 u8 count;
3463 u8 num;
3464 int ret;
3465
3466 INIT_LIST_HEAD(&dwc->gadget->ep_list);
3467
3468 ret = dwc3_gadget_get_reserved_endpoints(dwc, propname,
3469 reserved_eps, ARRAY_SIZE(reserved_eps));
3470 if (ret < 0) {
3471 dev_err(dwc->dev, "failed to read %s\n", propname);
3472 return ret;
3473 }
3474 count = ret;
3475
3476 for (epnum = 0; epnum < total; epnum++) {
3477 for (num = 0; num < count; num++) {
3478 if (epnum == reserved_eps[num])
3479 break;
3480 }
3481 if (num < count)
3482 continue;
3483
3484 ret = dwc3_gadget_init_endpoint(dwc, epnum);
3485 if (ret)
3486 return ret;
3487 }
3488
3489 return 0;
3490 }
3491
dwc3_gadget_free_endpoints(struct dwc3 * dwc)3492 static void dwc3_gadget_free_endpoints(struct dwc3 *dwc)
3493 {
3494 struct dwc3_ep *dep;
3495 u8 epnum;
3496
3497 for (epnum = 0; epnum < DWC3_ENDPOINTS_NUM; epnum++) {
3498 dep = dwc->eps[epnum];
3499 if (!dep)
3500 continue;
3501 /*
3502 * Physical endpoints 0 and 1 are special; they form the
3503 * bi-directional USB endpoint 0.
3504 *
3505 * For those two physical endpoints, we don't allocate a TRB
3506 * pool nor do we add them the endpoints list. Due to that, we
3507 * shouldn't do these two operations otherwise we would end up
3508 * with all sorts of bugs when removing dwc3.ko.
3509 */
3510 if (epnum != 0 && epnum != 1) {
3511 dwc3_free_trb_pool(dep);
3512 list_del(&dep->endpoint.ep_list);
3513 }
3514
3515 dwc3_debugfs_remove_endpoint_dir(dep);
3516 cancel_delayed_work_sync(&dep->nostream_work);
3517 kfree(dep);
3518 }
3519 }
3520
3521 /* -------------------------------------------------------------------------- */
3522
dwc3_gadget_ep_reclaim_completed_trb(struct dwc3_ep * dep,struct dwc3_request * req,struct dwc3_trb * trb,const struct dwc3_event_depevt * event,int status)3523 static int dwc3_gadget_ep_reclaim_completed_trb(struct dwc3_ep *dep,
3524 struct dwc3_request *req, struct dwc3_trb *trb,
3525 const struct dwc3_event_depevt *event, int status)
3526 {
3527 unsigned int count;
3528
3529 dwc3_ep_inc_deq(dep);
3530
3531 trace_dwc3_complete_trb(dep, trb);
3532 req->num_trbs--;
3533
3534 /*
3535 * If we're in the middle of series of chained TRBs and we
3536 * receive a short transfer along the way, DWC3 will skip
3537 * through all TRBs including the last TRB in the chain (the
3538 * where CHN bit is zero. DWC3 will also avoid clearing HWO
3539 * bit and SW has to do it manually.
3540 *
3541 * We're going to do that here to avoid problems of HW trying
3542 * to use bogus TRBs for transfers.
3543 */
3544 if (trb->ctrl & DWC3_TRB_CTRL_HWO)
3545 trb->ctrl &= ~DWC3_TRB_CTRL_HWO;
3546
3547 /*
3548 * For isochronous transfers, the first TRB in a service interval must
3549 * have the Isoc-First type. Track and report its interval frame number.
3550 */
3551 if (usb_endpoint_xfer_isoc(dep->endpoint.desc) &&
3552 (trb->ctrl & DWC3_TRBCTL_ISOCHRONOUS_FIRST)) {
3553 unsigned int frame_number;
3554
3555 frame_number = DWC3_TRB_CTRL_GET_SID_SOFN(trb->ctrl);
3556 frame_number &= ~(dep->interval - 1);
3557 req->request.frame_number = frame_number;
3558 }
3559
3560 /*
3561 * We use bounce buffer for requests that needs extra TRB or OUT ZLP. If
3562 * this TRB points to the bounce buffer address, it's a MPS alignment
3563 * TRB. Don't add it to req->remaining calculation.
3564 */
3565 if (trb->bpl == lower_32_bits(dep->dwc->bounce_addr) &&
3566 trb->bph == upper_32_bits(dep->dwc->bounce_addr)) {
3567 trb->ctrl &= ~DWC3_TRB_CTRL_HWO;
3568 return 1;
3569 }
3570
3571 count = trb->size & DWC3_TRB_SIZE_MASK;
3572 req->remaining += count;
3573
3574 if ((trb->ctrl & DWC3_TRB_CTRL_HWO) && status != -ESHUTDOWN)
3575 return 1;
3576
3577 if (event->status & DEPEVT_STATUS_SHORT &&
3578 !(trb->ctrl & DWC3_TRB_CTRL_CHN))
3579 return 1;
3580
3581 if ((trb->ctrl & DWC3_TRB_CTRL_ISP_IMI) &&
3582 DWC3_TRB_SIZE_TRBSTS(trb->size) == DWC3_TRBSTS_MISSED_ISOC)
3583 return 1;
3584
3585 if ((trb->ctrl & DWC3_TRB_CTRL_IOC) ||
3586 (trb->ctrl & DWC3_TRB_CTRL_LST))
3587 return 1;
3588
3589 return 0;
3590 }
3591
dwc3_gadget_ep_reclaim_trb_sg(struct dwc3_ep * dep,struct dwc3_request * req,const struct dwc3_event_depevt * event,int status)3592 static int dwc3_gadget_ep_reclaim_trb_sg(struct dwc3_ep *dep,
3593 struct dwc3_request *req, const struct dwc3_event_depevt *event,
3594 int status)
3595 {
3596 struct dwc3_trb *trb;
3597 unsigned int num_completed_trbs = req->num_trbs;
3598 unsigned int i;
3599 int ret = 0;
3600
3601 for (i = 0; i < num_completed_trbs; i++) {
3602 trb = &dep->trb_pool[dep->trb_dequeue];
3603
3604 ret = dwc3_gadget_ep_reclaim_completed_trb(dep, req,
3605 trb, event, status);
3606 if (ret)
3607 break;
3608 }
3609
3610 return ret;
3611 }
3612
dwc3_gadget_ep_request_completed(struct dwc3_request * req)3613 static bool dwc3_gadget_ep_request_completed(struct dwc3_request *req)
3614 {
3615 return req->num_pending_sgs == 0 && req->num_trbs == 0;
3616 }
3617
dwc3_gadget_ep_cleanup_completed_request(struct dwc3_ep * dep,const struct dwc3_event_depevt * event,struct dwc3_request * req,int status)3618 static int dwc3_gadget_ep_cleanup_completed_request(struct dwc3_ep *dep,
3619 const struct dwc3_event_depevt *event,
3620 struct dwc3_request *req, int status)
3621 {
3622 int request_status;
3623 int ret;
3624
3625 ret = dwc3_gadget_ep_reclaim_trb_sg(dep, req, event, status);
3626
3627 req->request.actual = req->request.length - req->remaining;
3628
3629 if (!dwc3_gadget_ep_request_completed(req))
3630 goto out;
3631
3632 /*
3633 * The event status only reflects the status of the TRB with IOC set.
3634 * For the requests that don't set interrupt on completion, the driver
3635 * needs to check and return the status of the completed TRBs associated
3636 * with the request. Use the status of the last TRB of the request.
3637 */
3638 if (req->request.no_interrupt) {
3639 struct dwc3_trb *trb;
3640
3641 trb = dwc3_ep_prev_trb(dep, dep->trb_dequeue);
3642 switch (DWC3_TRB_SIZE_TRBSTS(trb->size)) {
3643 case DWC3_TRBSTS_MISSED_ISOC:
3644 /* Isoc endpoint only */
3645 request_status = -EXDEV;
3646 break;
3647 case DWC3_TRB_STS_XFER_IN_PROG:
3648 /* Applicable when End Transfer with ForceRM=0 */
3649 case DWC3_TRBSTS_SETUP_PENDING:
3650 /* Control endpoint only */
3651 case DWC3_TRBSTS_OK:
3652 default:
3653 request_status = 0;
3654 break;
3655 }
3656 } else {
3657 request_status = status;
3658 }
3659
3660 dwc3_gadget_giveback(dep, req, request_status);
3661
3662 out:
3663 return ret;
3664 }
3665
dwc3_gadget_ep_cleanup_completed_requests(struct dwc3_ep * dep,const struct dwc3_event_depevt * event,int status)3666 static void dwc3_gadget_ep_cleanup_completed_requests(struct dwc3_ep *dep,
3667 const struct dwc3_event_depevt *event, int status)
3668 {
3669 struct dwc3_request *req;
3670
3671 while (!list_empty(&dep->started_list)) {
3672 int ret;
3673
3674 req = next_request(&dep->started_list);
3675 ret = dwc3_gadget_ep_cleanup_completed_request(dep, event,
3676 req, status);
3677 if (ret)
3678 break;
3679 /*
3680 * The endpoint is disabled, let the dwc3_remove_requests()
3681 * handle the cleanup.
3682 */
3683 if (!dep->endpoint.desc)
3684 break;
3685 }
3686 }
3687
dwc3_gadget_ep_should_continue(struct dwc3_ep * dep)3688 static bool dwc3_gadget_ep_should_continue(struct dwc3_ep *dep)
3689 {
3690 struct dwc3_request *req;
3691 struct dwc3 *dwc = dep->dwc;
3692
3693 if (!dep->endpoint.desc || !dwc->pullups_connected ||
3694 !dwc->connected)
3695 return false;
3696
3697 if (!list_empty(&dep->pending_list))
3698 return true;
3699
3700 /*
3701 * We only need to check the first entry of the started list. We can
3702 * assume the completed requests are removed from the started list.
3703 */
3704 req = next_request(&dep->started_list);
3705 if (!req)
3706 return false;
3707
3708 return !dwc3_gadget_ep_request_completed(req);
3709 }
3710
dwc3_gadget_endpoint_frame_from_event(struct dwc3_ep * dep,const struct dwc3_event_depevt * event)3711 static void dwc3_gadget_endpoint_frame_from_event(struct dwc3_ep *dep,
3712 const struct dwc3_event_depevt *event)
3713 {
3714 dep->frame_number = event->parameters;
3715 }
3716
dwc3_gadget_endpoint_trbs_complete(struct dwc3_ep * dep,const struct dwc3_event_depevt * event,int status)3717 static bool dwc3_gadget_endpoint_trbs_complete(struct dwc3_ep *dep,
3718 const struct dwc3_event_depevt *event, int status)
3719 {
3720 struct dwc3 *dwc = dep->dwc;
3721 bool no_started_trb = true;
3722
3723 dwc3_gadget_ep_cleanup_completed_requests(dep, event, status);
3724
3725 if (dep->flags & DWC3_EP_END_TRANSFER_PENDING)
3726 goto out;
3727
3728 if (!dep->endpoint.desc)
3729 return no_started_trb;
3730
3731 if (usb_endpoint_xfer_isoc(dep->endpoint.desc) &&
3732 list_empty(&dep->started_list) &&
3733 (list_empty(&dep->pending_list) || status == -EXDEV))
3734 dwc3_stop_active_transfer(dep, false, true);
3735 else if (dwc3_gadget_ep_should_continue(dep))
3736 if (__dwc3_gadget_kick_transfer(dep) == 0)
3737 no_started_trb = false;
3738
3739 out:
3740 /*
3741 * WORKAROUND: This is the 2nd half of U1/U2 -> U0 workaround.
3742 * See dwc3_gadget_linksts_change_interrupt() for 1st half.
3743 */
3744 if (DWC3_VER_IS_PRIOR(DWC3, 183A)) {
3745 u32 reg;
3746 int i;
3747
3748 for (i = 0; i < DWC3_ENDPOINTS_NUM; i++) {
3749 dep = dwc->eps[i];
3750 if (!dep)
3751 continue;
3752
3753 if (!(dep->flags & DWC3_EP_ENABLED))
3754 continue;
3755
3756 if (!list_empty(&dep->started_list))
3757 return no_started_trb;
3758 }
3759
3760 reg = dwc3_readl(dwc, DWC3_DCTL);
3761 reg |= dwc->u1u2;
3762 dwc3_writel(dwc, DWC3_DCTL, reg);
3763
3764 dwc->u1u2 = 0;
3765 }
3766
3767 return no_started_trb;
3768 }
3769
dwc3_gadget_endpoint_transfer_in_progress(struct dwc3_ep * dep,const struct dwc3_event_depevt * event)3770 static void dwc3_gadget_endpoint_transfer_in_progress(struct dwc3_ep *dep,
3771 const struct dwc3_event_depevt *event)
3772 {
3773 int status = 0;
3774
3775 if (!dep->endpoint.desc)
3776 return;
3777
3778 if (usb_endpoint_xfer_isoc(dep->endpoint.desc))
3779 dwc3_gadget_endpoint_frame_from_event(dep, event);
3780
3781 if (event->status & DEPEVT_STATUS_BUSERR)
3782 status = -ECONNRESET;
3783
3784 if (event->status & DEPEVT_STATUS_MISSED_ISOC)
3785 status = -EXDEV;
3786
3787 dwc3_gadget_endpoint_trbs_complete(dep, event, status);
3788 }
3789
dwc3_gadget_endpoint_transfer_complete(struct dwc3_ep * dep,const struct dwc3_event_depevt * event)3790 static void dwc3_gadget_endpoint_transfer_complete(struct dwc3_ep *dep,
3791 const struct dwc3_event_depevt *event)
3792 {
3793 int status = 0;
3794
3795 dep->flags &= ~DWC3_EP_TRANSFER_STARTED;
3796
3797 if (event->status & DEPEVT_STATUS_BUSERR)
3798 status = -ECONNRESET;
3799
3800 if (dwc3_gadget_endpoint_trbs_complete(dep, event, status))
3801 dep->flags &= ~DWC3_EP_WAIT_TRANSFER_COMPLETE;
3802 }
3803
dwc3_gadget_endpoint_transfer_not_ready(struct dwc3_ep * dep,const struct dwc3_event_depevt * event)3804 static void dwc3_gadget_endpoint_transfer_not_ready(struct dwc3_ep *dep,
3805 const struct dwc3_event_depevt *event)
3806 {
3807 /*
3808 * During a device-initiated disconnect, a late xferNotReady event can
3809 * be generated after the End Transfer command resets the event filter,
3810 * but before the controller is halted. Ignore it to prevent a new
3811 * transfer from starting.
3812 */
3813 if (!dep->dwc->connected)
3814 return;
3815
3816 dwc3_gadget_endpoint_frame_from_event(dep, event);
3817
3818 /*
3819 * The XferNotReady event is generated only once before the endpoint
3820 * starts. It will be generated again when END_TRANSFER command is
3821 * issued. For some controller versions, the XferNotReady event may be
3822 * generated while the END_TRANSFER command is still in process. Ignore
3823 * it and wait for the next XferNotReady event after the command is
3824 * completed.
3825 */
3826 if (dep->flags & DWC3_EP_END_TRANSFER_PENDING)
3827 return;
3828
3829 (void) __dwc3_gadget_start_isoc(dep);
3830 }
3831
dwc3_gadget_endpoint_command_complete(struct dwc3_ep * dep,const struct dwc3_event_depevt * event)3832 static void dwc3_gadget_endpoint_command_complete(struct dwc3_ep *dep,
3833 const struct dwc3_event_depevt *event)
3834 {
3835 u8 cmd = DEPEVT_PARAMETER_CMD(event->parameters);
3836
3837 if (cmd != DWC3_DEPCMD_ENDTRANSFER)
3838 return;
3839
3840 /*
3841 * The END_TRANSFER command will cause the controller to generate a
3842 * NoStream Event, and it's not due to the host DP NoStream rejection.
3843 * Ignore the next NoStream event.
3844 */
3845 if (dep->stream_capable)
3846 dep->flags |= DWC3_EP_IGNORE_NEXT_NOSTREAM;
3847
3848 dep->flags &= ~DWC3_EP_END_TRANSFER_PENDING;
3849 dep->flags &= ~DWC3_EP_TRANSFER_STARTED;
3850 dwc3_gadget_ep_cleanup_cancelled_requests(dep);
3851
3852 if (dep->flags & DWC3_EP_PENDING_CLEAR_STALL) {
3853 struct dwc3 *dwc = dep->dwc;
3854
3855 dep->flags &= ~DWC3_EP_PENDING_CLEAR_STALL;
3856 if (dwc3_send_clear_stall_ep_cmd(dep)) {
3857 struct usb_ep *ep0 = &dwc->eps[0]->endpoint;
3858
3859 dev_err(dwc->dev, "failed to clear STALL on %s\n", dep->name);
3860 if (dwc->delayed_status)
3861 __dwc3_gadget_ep0_set_halt(ep0, 1);
3862 return;
3863 }
3864
3865 dep->flags &= ~(DWC3_EP_STALL | DWC3_EP_WEDGE);
3866 if (dwc->clear_stall_protocol == dep->number)
3867 dwc3_ep0_send_delayed_status(dwc);
3868 }
3869
3870 if ((dep->flags & DWC3_EP_DELAY_START) &&
3871 !usb_endpoint_xfer_isoc(dep->endpoint.desc))
3872 __dwc3_gadget_kick_transfer(dep);
3873
3874 dep->flags &= ~DWC3_EP_DELAY_START;
3875 }
3876
dwc3_gadget_endpoint_stream_event(struct dwc3_ep * dep,const struct dwc3_event_depevt * event)3877 static void dwc3_gadget_endpoint_stream_event(struct dwc3_ep *dep,
3878 const struct dwc3_event_depevt *event)
3879 {
3880 if (event->status == DEPEVT_STREAMEVT_FOUND) {
3881 cancel_delayed_work(&dep->nostream_work);
3882 dep->flags |= DWC3_EP_STREAM_PRIMED;
3883 dep->flags &= ~DWC3_EP_IGNORE_NEXT_NOSTREAM;
3884 return;
3885 }
3886
3887 /* Note: NoStream rejection event param value is 0 and not 0xFFFF */
3888 switch (event->parameters) {
3889 case DEPEVT_STREAM_PRIME:
3890 cancel_delayed_work(&dep->nostream_work);
3891 dep->flags |= DWC3_EP_STREAM_PRIMED;
3892 dep->flags &= ~DWC3_EP_IGNORE_NEXT_NOSTREAM;
3893 break;
3894 case DEPEVT_STREAM_NOSTREAM:
3895 dep->flags &= ~DWC3_EP_STREAM_PRIMED;
3896 if (dep->flags & DWC3_EP_FORCE_RESTART_STREAM)
3897 queue_delayed_work(system_percpu_wq, &dep->nostream_work,
3898 msecs_to_jiffies(100));
3899 break;
3900 }
3901 }
3902
dwc3_endpoint_interrupt(struct dwc3 * dwc,const struct dwc3_event_depevt * event)3903 static void dwc3_endpoint_interrupt(struct dwc3 *dwc,
3904 const struct dwc3_event_depevt *event)
3905 {
3906 struct dwc3_ep *dep;
3907 u8 epnum = event->endpoint_number;
3908
3909 dep = dwc->eps[epnum];
3910 if (!dep) {
3911 dev_warn(dwc->dev, "spurious event, endpoint %u is not allocated\n", epnum);
3912 return;
3913 }
3914
3915 if (!(dep->flags & DWC3_EP_ENABLED)) {
3916 if ((epnum > 1) && !(dep->flags & DWC3_EP_TRANSFER_STARTED))
3917 return;
3918
3919 /* Handle only EPCMDCMPLT when EP disabled */
3920 if ((event->endpoint_event != DWC3_DEPEVT_EPCMDCMPLT) &&
3921 !(epnum <= 1 && event->endpoint_event == DWC3_DEPEVT_XFERCOMPLETE))
3922 return;
3923 }
3924
3925 if (epnum == 0 || epnum == 1) {
3926 dwc3_ep0_interrupt(dwc, event);
3927 return;
3928 }
3929
3930 switch (event->endpoint_event) {
3931 case DWC3_DEPEVT_XFERINPROGRESS:
3932 dwc3_gadget_endpoint_transfer_in_progress(dep, event);
3933 break;
3934 case DWC3_DEPEVT_XFERNOTREADY:
3935 dwc3_gadget_endpoint_transfer_not_ready(dep, event);
3936 break;
3937 case DWC3_DEPEVT_EPCMDCMPLT:
3938 dwc3_gadget_endpoint_command_complete(dep, event);
3939 break;
3940 case DWC3_DEPEVT_XFERCOMPLETE:
3941 dwc3_gadget_endpoint_transfer_complete(dep, event);
3942 break;
3943 case DWC3_DEPEVT_STREAMEVT:
3944 dwc3_gadget_endpoint_stream_event(dep, event);
3945 break;
3946 case DWC3_DEPEVT_RXTXFIFOEVT:
3947 break;
3948 default:
3949 dev_err(dwc->dev, "unknown endpoint event %d\n", event->endpoint_event);
3950 break;
3951 }
3952 }
3953
dwc3_prepare_disconnect_gadget(struct dwc3 * dwc,struct usb_gadget_driver ** driver,struct usb_gadget ** gadget)3954 static bool dwc3_prepare_disconnect_gadget(struct dwc3 *dwc,
3955 struct usb_gadget_driver **driver,
3956 struct usb_gadget **gadget)
3957 {
3958 if (!dwc->async_callbacks || !dwc->gadget_driver ||
3959 !dwc->gadget_driver->disconnect)
3960 return false;
3961
3962 *driver = dwc->gadget_driver;
3963 *gadget = dwc->gadget;
3964
3965 return true;
3966 }
3967
dwc3_disconnect_gadget(struct dwc3 * dwc)3968 static void dwc3_disconnect_gadget(struct dwc3 *dwc)
3969 {
3970 struct usb_gadget_driver *driver;
3971 struct usb_gadget *gadget;
3972
3973 if (dwc3_prepare_disconnect_gadget(dwc, &driver, &gadget)) {
3974 spin_unlock(&dwc->lock);
3975 driver->disconnect(gadget);
3976 spin_lock(&dwc->lock);
3977 }
3978 }
3979
dwc3_disconnect_gadget_sleepable(struct dwc3 * dwc)3980 static void dwc3_disconnect_gadget_sleepable(struct dwc3 *dwc)
3981 {
3982 struct usb_gadget_driver *driver;
3983 struct usb_gadget *gadget;
3984 unsigned long flags;
3985
3986 spin_lock_irqsave(&dwc->lock, flags);
3987 if (!dwc3_prepare_disconnect_gadget(dwc, &driver, &gadget)) {
3988 spin_unlock_irqrestore(&dwc->lock, flags);
3989 return;
3990 }
3991
3992 spin_unlock_irqrestore(&dwc->lock, flags);
3993 driver->disconnect(gadget);
3994 }
3995
dwc3_suspend_gadget(struct dwc3 * dwc)3996 static void dwc3_suspend_gadget(struct dwc3 *dwc)
3997 {
3998 if (dwc->async_callbacks && dwc->gadget_driver->suspend) {
3999 spin_unlock(&dwc->lock);
4000 dwc->gadget_driver->suspend(dwc->gadget);
4001 spin_lock(&dwc->lock);
4002 }
4003 }
4004
dwc3_resume_gadget(struct dwc3 * dwc)4005 static void dwc3_resume_gadget(struct dwc3 *dwc)
4006 {
4007 if (dwc->async_callbacks && dwc->gadget_driver->resume) {
4008 spin_unlock(&dwc->lock);
4009 dwc->gadget_driver->resume(dwc->gadget);
4010 spin_lock(&dwc->lock);
4011 }
4012 }
4013
dwc3_reset_gadget(struct dwc3 * dwc)4014 static void dwc3_reset_gadget(struct dwc3 *dwc)
4015 {
4016 if (!dwc->gadget_driver)
4017 return;
4018
4019 if (dwc->async_callbacks && dwc->gadget->speed != USB_SPEED_UNKNOWN) {
4020 spin_unlock(&dwc->lock);
4021 usb_gadget_udc_reset(dwc->gadget, dwc->gadget_driver);
4022 spin_lock(&dwc->lock);
4023 }
4024 }
4025
dwc3_stop_active_transfer(struct dwc3_ep * dep,bool force,bool interrupt)4026 void dwc3_stop_active_transfer(struct dwc3_ep *dep, bool force,
4027 bool interrupt)
4028 {
4029 struct dwc3 *dwc = dep->dwc;
4030
4031 /*
4032 * Only issue End Transfer command to the control endpoint of a started
4033 * Data Phase. Typically we should only do so in error cases such as
4034 * invalid/unexpected direction as described in the control transfer
4035 * flow of the programming guide.
4036 */
4037 if (dep->number <= 1 && dwc->ep0state != EP0_DATA_PHASE)
4038 return;
4039
4040 if (interrupt && (dep->flags & DWC3_EP_DELAY_STOP))
4041 return;
4042
4043 if (!(dep->flags & DWC3_EP_TRANSFER_STARTED) ||
4044 (dep->flags & DWC3_EP_END_TRANSFER_PENDING))
4045 return;
4046
4047 /*
4048 * If a Setup packet is received but yet to DMA out, the controller will
4049 * not process the End Transfer command of any endpoint. Polling of its
4050 * DEPCMD.CmdAct may block setting up TRB for Setup packet, causing a
4051 * timeout. Delay issuing the End Transfer command until the Setup TRB is
4052 * prepared.
4053 */
4054 if (dwc->ep0state != EP0_SETUP_PHASE && !dwc->delayed_status) {
4055 dep->flags |= DWC3_EP_DELAY_STOP;
4056 return;
4057 }
4058
4059 /*
4060 * NOTICE: We are violating what the Databook says about the
4061 * EndTransfer command. Ideally we would _always_ wait for the
4062 * EndTransfer Command Completion IRQ, but that's causing too
4063 * much trouble synchronizing between us and gadget driver.
4064 *
4065 * We have discussed this with the IP Provider and it was
4066 * suggested to giveback all requests here.
4067 *
4068 * Note also that a similar handling was tested by Synopsys
4069 * (thanks a lot Paul) and nothing bad has come out of it.
4070 * In short, what we're doing is issuing EndTransfer with
4071 * CMDIOC bit set and delay kicking transfer until the
4072 * EndTransfer command had completed.
4073 *
4074 * As of IP version 3.10a of the DWC_usb3 IP, the controller
4075 * supports a mode to work around the above limitation. The
4076 * software can poll the CMDACT bit in the DEPCMD register
4077 * after issuing a EndTransfer command. This mode is enabled
4078 * by writing GUCTL2[14]. This polling is already done in the
4079 * dwc3_send_gadget_ep_cmd() function so if the mode is
4080 * enabled, the EndTransfer command will have completed upon
4081 * returning from this function.
4082 *
4083 * This mode is NOT available on the DWC_usb31 IP. In this
4084 * case, if the IOC bit is not set, then delay by 1ms
4085 * after issuing the EndTransfer command. This allows for the
4086 * controller to handle the command completely before DWC3
4087 * remove requests attempts to unmap USB request buffers.
4088 */
4089
4090 __dwc3_stop_active_transfer(dep, force, interrupt);
4091 }
4092
dwc3_clear_stall_all_ep(struct dwc3 * dwc)4093 static void dwc3_clear_stall_all_ep(struct dwc3 *dwc)
4094 {
4095 u32 epnum;
4096
4097 for (epnum = 1; epnum < DWC3_ENDPOINTS_NUM; epnum++) {
4098 struct dwc3_ep *dep;
4099 int ret;
4100
4101 dep = dwc->eps[epnum];
4102 if (!dep)
4103 continue;
4104
4105 if (!(dep->flags & DWC3_EP_STALL))
4106 continue;
4107
4108 dep->flags &= ~DWC3_EP_STALL;
4109
4110 ret = dwc3_send_clear_stall_ep_cmd(dep);
4111 if (ret)
4112 dev_err_ratelimited(dwc->dev,
4113 "failed to clear STALL on %s\n", dep->name);
4114 }
4115 }
4116
dwc3_gadget_disconnect_interrupt(struct dwc3 * dwc)4117 static void dwc3_gadget_disconnect_interrupt(struct dwc3 *dwc)
4118 {
4119 int reg;
4120
4121 dwc->suspended = false;
4122
4123 dwc3_gadget_set_link_state(dwc, DWC3_LINK_STATE_RX_DET);
4124
4125 reg = dwc3_readl(dwc, DWC3_DCTL);
4126 reg &= ~DWC3_DCTL_INITU1ENA;
4127 reg &= ~DWC3_DCTL_INITU2ENA;
4128 dwc3_gadget_dctl_write_safe(dwc, reg);
4129
4130 dwc->connected = false;
4131
4132 dwc3_disconnect_gadget(dwc);
4133
4134 dwc->gadget->speed = USB_SPEED_UNKNOWN;
4135 dwc->setup_packet_pending = false;
4136 dwc->gadget->wakeup_armed = false;
4137 dwc3_gadget_enable_linksts_evts(dwc, false);
4138 usb_gadget_set_state(dwc->gadget, USB_STATE_NOTATTACHED);
4139
4140 dwc3_ep0_reset_state(dwc);
4141
4142 /*
4143 * Request PM idle to address condition where usage count is
4144 * already decremented to zero, but waiting for the disconnect
4145 * interrupt to set dwc->connected to FALSE.
4146 */
4147 pm_request_idle(dwc->dev);
4148 }
4149
dwc3_gadget_reset_interrupt(struct dwc3 * dwc)4150 static void dwc3_gadget_reset_interrupt(struct dwc3 *dwc)
4151 {
4152 u32 reg;
4153
4154 dwc->suspended = false;
4155
4156 /*
4157 * Ideally, dwc3_reset_gadget() would trigger the function
4158 * drivers to stop any active transfers through ep disable.
4159 * However, for functions which defer ep disable, such as mass
4160 * storage, we will need to rely on the call to stop active
4161 * transfers here, and avoid allowing of request queuing.
4162 */
4163 dwc->connected = false;
4164
4165 /*
4166 * WORKAROUND: DWC3 revisions <1.88a have an issue which
4167 * would cause a missing Disconnect Event if there's a
4168 * pending Setup Packet in the FIFO.
4169 *
4170 * There's no suggested workaround on the official Bug
4171 * report, which states that "unless the driver/application
4172 * is doing any special handling of a disconnect event,
4173 * there is no functional issue".
4174 *
4175 * Unfortunately, it turns out that we _do_ some special
4176 * handling of a disconnect event, namely complete all
4177 * pending transfers, notify gadget driver of the
4178 * disconnection, and so on.
4179 *
4180 * Our suggested workaround is to follow the Disconnect
4181 * Event steps here, instead, based on a setup_packet_pending
4182 * flag. Such flag gets set whenever we have a SETUP_PENDING
4183 * status for EP0 TRBs and gets cleared on XferComplete for the
4184 * same endpoint.
4185 *
4186 * Refers to:
4187 *
4188 * STAR#9000466709: RTL: Device : Disconnect event not
4189 * generated if setup packet pending in FIFO
4190 */
4191 if (DWC3_VER_IS_PRIOR(DWC3, 188A)) {
4192 if (dwc->setup_packet_pending)
4193 dwc3_gadget_disconnect_interrupt(dwc);
4194 }
4195
4196 dwc3_reset_gadget(dwc);
4197
4198 /*
4199 * From SNPS databook section 8.1.2, the EP0 should be in setup
4200 * phase. So ensure that EP0 is in setup phase by issuing a stall
4201 * and restart if EP0 is not in setup phase.
4202 */
4203 dwc3_ep0_reset_state(dwc);
4204
4205 /*
4206 * In the Synopsis DesignWare Cores USB3 Databook Rev. 3.30a
4207 * Section 4.1.2 Table 4-2, it states that during a USB reset, the SW
4208 * needs to ensure that it sends "a DEPENDXFER command for any active
4209 * transfers."
4210 */
4211 dwc3_stop_active_transfers(dwc);
4212 dwc->connected = true;
4213
4214 reg = dwc3_readl(dwc, DWC3_DCTL);
4215 reg &= ~DWC3_DCTL_TSTCTRL_MASK;
4216 dwc3_gadget_dctl_write_safe(dwc, reg);
4217 dwc->test_mode = false;
4218 dwc->gadget->wakeup_armed = false;
4219 dwc3_gadget_enable_linksts_evts(dwc, false);
4220 dwc3_clear_stall_all_ep(dwc);
4221
4222 /* Reset device address to zero */
4223 reg = dwc3_readl(dwc, DWC3_DCFG);
4224 reg &= ~(DWC3_DCFG_DEVADDR_MASK);
4225 dwc3_writel(dwc, DWC3_DCFG, reg);
4226 }
4227
dwc3_gadget_conndone_interrupt(struct dwc3 * dwc)4228 static void dwc3_gadget_conndone_interrupt(struct dwc3 *dwc)
4229 {
4230 struct dwc3_ep *dep;
4231 int ret;
4232 u32 reg;
4233 u8 lanes = 1;
4234 u8 speed;
4235
4236 if (!dwc->softconnect)
4237 return;
4238
4239 reg = dwc3_readl(dwc, DWC3_DSTS);
4240 speed = reg & DWC3_DSTS_CONNECTSPD;
4241 dwc->speed = speed;
4242
4243 if (DWC3_IP_IS(DWC32))
4244 lanes = DWC3_DSTS_CONNLANES(reg) + 1;
4245
4246 dwc->gadget->ssp_rate = USB_SSP_GEN_UNKNOWN;
4247
4248 /*
4249 * RAMClkSel is reset to 0 after USB reset, so it must be reprogrammed
4250 * each time on Connect Done.
4251 *
4252 * Currently we always use the reset value. If any platform
4253 * wants to set this to a different value, we need to add a
4254 * setting and update GCTL.RAMCLKSEL here.
4255 */
4256
4257 switch (speed) {
4258 case DWC3_DSTS_SUPERSPEED_PLUS:
4259 dwc3_gadget_ep0_desc.wMaxPacketSize = cpu_to_le16(512);
4260 dwc->gadget->ep0->maxpacket = 512;
4261 dwc->gadget->speed = USB_SPEED_SUPER_PLUS;
4262
4263 if (lanes > 1)
4264 dwc->gadget->ssp_rate = USB_SSP_GEN_2x2;
4265 else
4266 dwc->gadget->ssp_rate = USB_SSP_GEN_2x1;
4267 break;
4268 case DWC3_DSTS_SUPERSPEED:
4269 /*
4270 * WORKAROUND: DWC3 revisions <1.90a have an issue which
4271 * would cause a missing USB3 Reset event.
4272 *
4273 * In such situations, we should force a USB3 Reset
4274 * event by calling our dwc3_gadget_reset_interrupt()
4275 * routine.
4276 *
4277 * Refers to:
4278 *
4279 * STAR#9000483510: RTL: SS : USB3 reset event may
4280 * not be generated always when the link enters poll
4281 */
4282 if (DWC3_VER_IS_PRIOR(DWC3, 190A))
4283 dwc3_gadget_reset_interrupt(dwc);
4284
4285 dwc3_gadget_ep0_desc.wMaxPacketSize = cpu_to_le16(512);
4286 dwc->gadget->ep0->maxpacket = 512;
4287 dwc->gadget->speed = USB_SPEED_SUPER;
4288
4289 if (lanes > 1) {
4290 dwc->gadget->speed = USB_SPEED_SUPER_PLUS;
4291 dwc->gadget->ssp_rate = USB_SSP_GEN_1x2;
4292 }
4293 break;
4294 case DWC3_DSTS_HIGHSPEED:
4295 dwc3_gadget_ep0_desc.wMaxPacketSize = cpu_to_le16(64);
4296 dwc->gadget->ep0->maxpacket = 64;
4297 dwc->gadget->speed = USB_SPEED_HIGH;
4298 break;
4299 case DWC3_DSTS_FULLSPEED:
4300 dwc3_gadget_ep0_desc.wMaxPacketSize = cpu_to_le16(64);
4301 dwc->gadget->ep0->maxpacket = 64;
4302 dwc->gadget->speed = USB_SPEED_FULL;
4303 break;
4304 }
4305
4306 dwc->eps[1]->endpoint.maxpacket = dwc->gadget->ep0->maxpacket;
4307
4308 /* Enable USB2 LPM Capability */
4309
4310 if (!DWC3_VER_IS_WITHIN(DWC3, ANY, 194A) &&
4311 !dwc->usb2_gadget_lpm_disable &&
4312 (speed != DWC3_DSTS_SUPERSPEED) &&
4313 (speed != DWC3_DSTS_SUPERSPEED_PLUS)) {
4314 reg = dwc3_readl(dwc, DWC3_DCFG);
4315 reg |= DWC3_DCFG_LPM_CAP;
4316 dwc3_writel(dwc, DWC3_DCFG, reg);
4317
4318 reg = dwc3_readl(dwc, DWC3_DCTL);
4319 reg &= ~(DWC3_DCTL_HIRD_THRES_MASK | DWC3_DCTL_L1_HIBER_EN);
4320
4321 reg |= DWC3_DCTL_HIRD_THRES(dwc->hird_threshold |
4322 (dwc->is_utmi_l1_suspend << 4));
4323
4324 /*
4325 * When dwc3 revisions >= 2.40a, LPM Erratum is enabled and
4326 * DCFG.LPMCap is set, core responses with an ACK and the
4327 * BESL value in the LPM token is less than or equal to LPM
4328 * NYET threshold.
4329 */
4330 WARN_ONCE(DWC3_VER_IS_PRIOR(DWC3, 240A) && dwc->has_lpm_erratum,
4331 "LPM Erratum not available on dwc3 revisions < 2.40a\n");
4332
4333 if (dwc->has_lpm_erratum && !DWC3_VER_IS_PRIOR(DWC3, 240A)) {
4334 reg &= ~DWC3_DCTL_NYET_THRES_MASK;
4335 reg |= DWC3_DCTL_NYET_THRES(dwc->lpm_nyet_threshold);
4336 }
4337
4338 dwc3_gadget_dctl_write_safe(dwc, reg);
4339 } else {
4340 if (dwc->usb2_gadget_lpm_disable) {
4341 reg = dwc3_readl(dwc, DWC3_DCFG);
4342 reg &= ~DWC3_DCFG_LPM_CAP;
4343 dwc3_writel(dwc, DWC3_DCFG, reg);
4344 }
4345
4346 reg = dwc3_readl(dwc, DWC3_DCTL);
4347 reg &= ~DWC3_DCTL_HIRD_THRES_MASK;
4348 dwc3_gadget_dctl_write_safe(dwc, reg);
4349 }
4350
4351 dep = dwc->eps[0];
4352 ret = __dwc3_gadget_ep_enable(dep, DWC3_DEPCFG_ACTION_MODIFY);
4353 if (ret) {
4354 dev_err(dwc->dev, "failed to enable %s\n", dep->name);
4355 return;
4356 }
4357
4358 dep = dwc->eps[1];
4359 ret = __dwc3_gadget_ep_enable(dep, DWC3_DEPCFG_ACTION_MODIFY);
4360 if (ret) {
4361 dev_err(dwc->dev, "failed to enable %s\n", dep->name);
4362 return;
4363 }
4364
4365 /*
4366 * Configure PHY via GUSB3PIPECTLn if required.
4367 *
4368 * Update GTXFIFOSIZn
4369 *
4370 * In both cases reset values should be sufficient.
4371 */
4372 }
4373
dwc3_gadget_wakeup_interrupt(struct dwc3 * dwc,unsigned int evtinfo)4374 static void dwc3_gadget_wakeup_interrupt(struct dwc3 *dwc, unsigned int evtinfo)
4375 {
4376 dwc->suspended = false;
4377
4378 /*
4379 * TODO take core out of low power mode when that's
4380 * implemented.
4381 */
4382
4383 if (dwc->async_callbacks && dwc->gadget_driver->resume) {
4384 spin_unlock(&dwc->lock);
4385 dwc->gadget_driver->resume(dwc->gadget);
4386 spin_lock(&dwc->lock);
4387 }
4388
4389 dwc->link_state = evtinfo & DWC3_LINK_STATE_MASK;
4390 }
4391
dwc3_gadget_linksts_change_interrupt(struct dwc3 * dwc,unsigned int evtinfo)4392 static void dwc3_gadget_linksts_change_interrupt(struct dwc3 *dwc,
4393 unsigned int evtinfo)
4394 {
4395 enum dwc3_link_state next = evtinfo & DWC3_LINK_STATE_MASK;
4396 unsigned int pwropt;
4397 int ret;
4398 int intf_id;
4399
4400 /*
4401 * WORKAROUND: DWC3 < 2.50a have an issue when configured without
4402 * Hibernation mode enabled which would show up when device detects
4403 * host-initiated U3 exit.
4404 *
4405 * In that case, device will generate a Link State Change Interrupt
4406 * from U3 to RESUME which is only necessary if Hibernation is
4407 * configured in.
4408 *
4409 * There are no functional changes due to such spurious event and we
4410 * just need to ignore it.
4411 *
4412 * Refers to:
4413 *
4414 * STAR#9000570034 RTL: SS Resume event generated in non-Hibernation
4415 * operational mode
4416 */
4417 pwropt = DWC3_GHWPARAMS1_EN_PWROPT(dwc->hwparams.hwparams1);
4418 if (DWC3_VER_IS_PRIOR(DWC3, 250A) &&
4419 (pwropt != DWC3_GHWPARAMS1_EN_PWROPT_HIB)) {
4420 if ((dwc->link_state == DWC3_LINK_STATE_U3) &&
4421 (next == DWC3_LINK_STATE_RESUME)) {
4422 return;
4423 }
4424 }
4425
4426 /*
4427 * WORKAROUND: DWC3 Revisions <1.83a have an issue which, depending
4428 * on the link partner, the USB session might do multiple entry/exit
4429 * of low power states before a transfer takes place.
4430 *
4431 * Due to this problem, we might experience lower throughput. The
4432 * suggested workaround is to disable DCTL[12:9] bits if we're
4433 * transitioning from U1/U2 to U0 and enable those bits again
4434 * after a transfer completes and there are no pending transfers
4435 * on any of the enabled endpoints.
4436 *
4437 * This is the first half of that workaround.
4438 *
4439 * Refers to:
4440 *
4441 * STAR#9000446952: RTL: Device SS : if U1/U2 ->U0 takes >128us
4442 * core send LGO_Ux entering U0
4443 */
4444 if (DWC3_VER_IS_PRIOR(DWC3, 183A)) {
4445 if (next == DWC3_LINK_STATE_U0) {
4446 u32 u1u2;
4447 u32 reg;
4448
4449 switch (dwc->link_state) {
4450 case DWC3_LINK_STATE_U1:
4451 case DWC3_LINK_STATE_U2:
4452 reg = dwc3_readl(dwc, DWC3_DCTL);
4453 u1u2 = reg & (DWC3_DCTL_INITU2ENA
4454 | DWC3_DCTL_ACCEPTU2ENA
4455 | DWC3_DCTL_INITU1ENA
4456 | DWC3_DCTL_ACCEPTU1ENA);
4457
4458 if (!dwc->u1u2)
4459 dwc->u1u2 = reg & u1u2;
4460
4461 reg &= ~u1u2;
4462
4463 dwc3_gadget_dctl_write_safe(dwc, reg);
4464 break;
4465 default:
4466 /* do nothing */
4467 break;
4468 }
4469 }
4470 }
4471
4472 switch (next) {
4473 case DWC3_LINK_STATE_U0:
4474 if (dwc->gadget->wakeup_armed || dwc->wakeup_pending_funcs) {
4475 dwc3_gadget_enable_linksts_evts(dwc, false);
4476 dwc3_resume_gadget(dwc);
4477 dwc->suspended = false;
4478 }
4479 break;
4480 case DWC3_LINK_STATE_U1:
4481 if (dwc->speed == USB_SPEED_SUPER)
4482 dwc3_suspend_gadget(dwc);
4483 break;
4484 case DWC3_LINK_STATE_U2:
4485 case DWC3_LINK_STATE_U3:
4486 dwc3_suspend_gadget(dwc);
4487 break;
4488 case DWC3_LINK_STATE_RESUME:
4489 dwc3_resume_gadget(dwc);
4490 break;
4491 default:
4492 /* do nothing */
4493 break;
4494 }
4495
4496 dwc->link_state = next;
4497
4498 /* Proceed with func wakeup if any interfaces that has requested */
4499 while (dwc->wakeup_pending_funcs && (next == DWC3_LINK_STATE_U0)) {
4500 intf_id = ffs(dwc->wakeup_pending_funcs) - 1;
4501 ret = dwc3_send_gadget_generic_command(dwc, DWC3_DGCMD_DEV_NOTIFICATION,
4502 DWC3_DGCMDPAR_DN_FUNC_WAKE |
4503 DWC3_DGCMDPAR_INTF_SEL(intf_id));
4504 if (ret)
4505 dev_err(dwc->dev, "Failed to send DN wake for intf %d\n", intf_id);
4506
4507 dwc->wakeup_pending_funcs &= ~BIT(intf_id);
4508 }
4509 }
4510
dwc3_gadget_suspend_interrupt(struct dwc3 * dwc,unsigned int evtinfo)4511 static void dwc3_gadget_suspend_interrupt(struct dwc3 *dwc,
4512 unsigned int evtinfo)
4513 {
4514 enum dwc3_link_state next = evtinfo & DWC3_LINK_STATE_MASK;
4515
4516 if (!dwc->suspended && next == DWC3_LINK_STATE_U3) {
4517 dwc->suspended = true;
4518 dwc3_suspend_gadget(dwc);
4519 }
4520
4521 dwc->link_state = next;
4522 }
4523
dwc3_gadget_interrupt(struct dwc3 * dwc,const struct dwc3_event_devt * event)4524 static void dwc3_gadget_interrupt(struct dwc3 *dwc,
4525 const struct dwc3_event_devt *event)
4526 {
4527 switch (event->type) {
4528 case DWC3_DEVICE_EVENT_DISCONNECT:
4529 dwc3_gadget_disconnect_interrupt(dwc);
4530 break;
4531 case DWC3_DEVICE_EVENT_RESET:
4532 dwc3_gadget_reset_interrupt(dwc);
4533 break;
4534 case DWC3_DEVICE_EVENT_CONNECT_DONE:
4535 dwc3_gadget_conndone_interrupt(dwc);
4536 break;
4537 case DWC3_DEVICE_EVENT_WAKEUP:
4538 dwc3_gadget_wakeup_interrupt(dwc, event->event_info);
4539 break;
4540 case DWC3_DEVICE_EVENT_HIBER_REQ:
4541 dev_WARN_ONCE(dwc->dev, true, "unexpected hibernation event\n");
4542 break;
4543 case DWC3_DEVICE_EVENT_LINK_STATUS_CHANGE:
4544 dwc3_gadget_linksts_change_interrupt(dwc, event->event_info);
4545 break;
4546 case DWC3_DEVICE_EVENT_SUSPEND:
4547 /* It changed to be suspend event for version 2.30a and above */
4548 if (!DWC3_VER_IS_PRIOR(DWC3, 230A))
4549 dwc3_gadget_suspend_interrupt(dwc, event->event_info);
4550 break;
4551 case DWC3_DEVICE_EVENT_SOF:
4552 case DWC3_DEVICE_EVENT_ERRATIC_ERROR:
4553 case DWC3_DEVICE_EVENT_CMD_CMPL:
4554 case DWC3_DEVICE_EVENT_OVERFLOW:
4555 break;
4556 default:
4557 dev_WARN(dwc->dev, "UNKNOWN IRQ %d\n", event->type);
4558 }
4559 }
4560
dwc3_process_event_entry(struct dwc3 * dwc,const union dwc3_event * event)4561 static void dwc3_process_event_entry(struct dwc3 *dwc,
4562 const union dwc3_event *event)
4563 {
4564 trace_dwc3_event(event->raw, dwc);
4565
4566 if (!event->type.is_devspec)
4567 dwc3_endpoint_interrupt(dwc, &event->depevt);
4568 else if (event->type.type == DWC3_EVENT_TYPE_DEV)
4569 dwc3_gadget_interrupt(dwc, &event->devt);
4570 else
4571 dev_err(dwc->dev, "UNKNOWN IRQ type %d\n", event->raw);
4572 }
4573
dwc3_process_event_buf(struct dwc3_event_buffer * evt)4574 static irqreturn_t dwc3_process_event_buf(struct dwc3_event_buffer *evt)
4575 {
4576 struct dwc3 *dwc = evt->dwc;
4577 irqreturn_t ret = IRQ_NONE;
4578 int left;
4579
4580 left = evt->count;
4581
4582 if (!(evt->flags & DWC3_EVENT_PENDING))
4583 return IRQ_NONE;
4584
4585 while (left > 0) {
4586 union dwc3_event event;
4587
4588 event.raw = *(u32 *) (evt->cache + evt->lpos);
4589
4590 dwc3_process_event_entry(dwc, &event);
4591
4592 /*
4593 * FIXME we wrap around correctly to the next entry as
4594 * almost all entries are 4 bytes in size. There is one
4595 * entry which has 12 bytes which is a regular entry
4596 * followed by 8 bytes data. ATM I don't know how
4597 * things are organized if we get next to the a
4598 * boundary so I worry about that once we try to handle
4599 * that.
4600 */
4601 evt->lpos = (evt->lpos + 4) % evt->length;
4602 left -= 4;
4603 }
4604
4605 evt->count = 0;
4606 ret = IRQ_HANDLED;
4607
4608 /* Unmask interrupt */
4609 dwc3_writel(dwc, DWC3_GEVNTSIZ(0),
4610 DWC3_GEVNTSIZ_SIZE(evt->length));
4611
4612 evt->flags &= ~DWC3_EVENT_PENDING;
4613 /*
4614 * Add an explicit write memory barrier to make sure that the update of
4615 * clearing DWC3_EVENT_PENDING is observed in dwc3_check_event_buf()
4616 */
4617 wmb();
4618
4619 if (dwc->imod_interval) {
4620 dwc3_writel(dwc, DWC3_GEVNTCOUNT(0), DWC3_GEVNTCOUNT_EHB);
4621 dwc3_writel(dwc, DWC3_DEV_IMOD(0), dwc->imod_interval);
4622 }
4623
4624 return ret;
4625 }
4626
dwc3_thread_interrupt(int irq,void * _evt)4627 static irqreturn_t dwc3_thread_interrupt(int irq, void *_evt)
4628 {
4629 struct dwc3_event_buffer *evt = _evt;
4630 struct dwc3 *dwc = evt->dwc;
4631 unsigned long flags;
4632 irqreturn_t ret = IRQ_NONE;
4633
4634 local_bh_disable();
4635 spin_lock_irqsave(&dwc->lock, flags);
4636 ret = dwc3_process_event_buf(evt);
4637 spin_unlock_irqrestore(&dwc->lock, flags);
4638 local_bh_enable();
4639
4640 return ret;
4641 }
4642
dwc3_check_event_buf(struct dwc3_event_buffer * evt)4643 static irqreturn_t dwc3_check_event_buf(struct dwc3_event_buffer *evt)
4644 {
4645 struct dwc3 *dwc = evt->dwc;
4646 u32 amount;
4647 u32 count;
4648
4649 if (pm_runtime_suspended(dwc->dev)) {
4650 dwc->pending_events = true;
4651 /*
4652 * Trigger runtime resume. The get() function will be balanced
4653 * after processing the pending events in dwc3_process_pending
4654 * events().
4655 */
4656 pm_runtime_get(dwc->dev);
4657 disable_irq_nosync(dwc->irq_gadget);
4658 return IRQ_HANDLED;
4659 }
4660
4661 /*
4662 * With PCIe legacy interrupt, test shows that top-half irq handler can
4663 * be called again after HW interrupt deassertion. Check if bottom-half
4664 * irq event handler completes before caching new event to prevent
4665 * losing events.
4666 */
4667 if (evt->flags & DWC3_EVENT_PENDING)
4668 return IRQ_HANDLED;
4669
4670 count = dwc3_readl(dwc, DWC3_GEVNTCOUNT(0));
4671 count &= DWC3_GEVNTCOUNT_MASK;
4672 if (!count)
4673 return IRQ_NONE;
4674
4675 if (count > evt->length) {
4676 dev_err_ratelimited(dwc->dev, "invalid count(%u) > evt->length(%u)\n",
4677 count, evt->length);
4678 return IRQ_NONE;
4679 }
4680
4681 evt->count = count;
4682 evt->flags |= DWC3_EVENT_PENDING;
4683
4684 /* Mask interrupt */
4685 dwc3_writel(dwc, DWC3_GEVNTSIZ(0),
4686 DWC3_GEVNTSIZ_INTMASK | DWC3_GEVNTSIZ_SIZE(evt->length));
4687
4688 amount = min(count, evt->length - evt->lpos);
4689 memcpy(evt->cache + evt->lpos, evt->buf + evt->lpos, amount);
4690
4691 if (amount < count)
4692 memcpy(evt->cache, evt->buf, count - amount);
4693
4694 dwc3_writel(dwc, DWC3_GEVNTCOUNT(0), count);
4695
4696 return IRQ_WAKE_THREAD;
4697 }
4698
dwc3_interrupt(int irq,void * _evt)4699 static irqreturn_t dwc3_interrupt(int irq, void *_evt)
4700 {
4701 struct dwc3_event_buffer *evt = _evt;
4702
4703 return dwc3_check_event_buf(evt);
4704 }
4705
dwc3_gadget_get_irq(struct dwc3 * dwc)4706 static int dwc3_gadget_get_irq(struct dwc3 *dwc)
4707 {
4708 struct platform_device *dwc3_pdev = to_platform_device(dwc->dev);
4709 int irq;
4710
4711 irq = platform_get_irq_byname_optional(dwc3_pdev, "peripheral");
4712 if (irq > 0)
4713 goto out;
4714
4715 if (irq == -EPROBE_DEFER)
4716 goto out;
4717
4718 irq = platform_get_irq_byname_optional(dwc3_pdev, "dwc_usb3");
4719 if (irq > 0)
4720 goto out;
4721
4722 if (irq == -EPROBE_DEFER)
4723 goto out;
4724
4725 irq = platform_get_irq(dwc3_pdev, 0);
4726
4727 out:
4728 return irq;
4729 }
4730
dwc_gadget_release(struct device * dev)4731 static void dwc_gadget_release(struct device *dev)
4732 {
4733 struct usb_gadget *gadget = container_of(dev, struct usb_gadget, dev);
4734
4735 kfree(gadget);
4736 }
4737
4738 /**
4739 * dwc3_gadget_init - initializes gadget related registers
4740 * @dwc: pointer to our controller context structure
4741 *
4742 * Returns 0 on success otherwise negative errno.
4743 */
dwc3_gadget_init(struct dwc3 * dwc)4744 int dwc3_gadget_init(struct dwc3 *dwc)
4745 {
4746 int ret;
4747 int irq;
4748 struct device *dev;
4749
4750 irq = dwc3_gadget_get_irq(dwc);
4751 if (irq < 0) {
4752 ret = irq;
4753 goto err0;
4754 }
4755
4756 dwc->irq_gadget = irq;
4757
4758 dwc->ep0_trb = dma_alloc_coherent(dwc->sysdev,
4759 sizeof(*dwc->ep0_trb) * 2,
4760 &dwc->ep0_trb_addr, GFP_KERNEL);
4761 if (!dwc->ep0_trb) {
4762 dev_err(dwc->dev, "failed to allocate ep0 trb\n");
4763 ret = -ENOMEM;
4764 goto err0;
4765 }
4766
4767 dwc->setup_buf = kzalloc(DWC3_EP0_SETUP_SIZE, GFP_KERNEL);
4768 if (!dwc->setup_buf) {
4769 ret = -ENOMEM;
4770 goto err1;
4771 }
4772
4773 dwc->bounce = dma_alloc_coherent(dwc->sysdev, DWC3_BOUNCE_SIZE,
4774 &dwc->bounce_addr, GFP_KERNEL);
4775 if (!dwc->bounce) {
4776 ret = -ENOMEM;
4777 goto err2;
4778 }
4779
4780 init_completion(&dwc->ep0_in_setup);
4781 dwc->gadget = kzalloc_obj(struct usb_gadget);
4782 if (!dwc->gadget) {
4783 ret = -ENOMEM;
4784 goto err3;
4785 }
4786
4787
4788 usb_initialize_gadget(dwc->dev, dwc->gadget, dwc_gadget_release);
4789 dev = &dwc->gadget->dev;
4790 dev->platform_data = dwc;
4791 dwc->gadget->ops = &dwc3_gadget_ops;
4792 dwc->gadget->speed = USB_SPEED_UNKNOWN;
4793 dwc->gadget->ssp_rate = USB_SSP_GEN_UNKNOWN;
4794 dwc->gadget->sg_supported = true;
4795 dwc->gadget->name = "dwc3-gadget";
4796 dwc->gadget->lpm_capable = !dwc->usb2_gadget_lpm_disable;
4797 dwc->gadget->wakeup_capable = true;
4798
4799 /*
4800 * FIXME We might be setting max_speed to <SUPER, however versions
4801 * <2.20a of dwc3 have an issue with metastability (documented
4802 * elsewhere in this driver) which tells us we can't set max speed to
4803 * anything lower than SUPER.
4804 *
4805 * Because gadget.max_speed is only used by composite.c and function
4806 * drivers (i.e. it won't go into dwc3's registers) we are allowing this
4807 * to happen so we avoid sending SuperSpeed Capability descriptor
4808 * together with our BOS descriptor as that could confuse host into
4809 * thinking we can handle super speed.
4810 *
4811 * Note that, in fact, we won't even support GetBOS requests when speed
4812 * is less than super speed because we don't have means, yet, to tell
4813 * composite.c that we are USB 2.0 + LPM ECN.
4814 */
4815 if (DWC3_VER_IS_PRIOR(DWC3, 220A) &&
4816 !dwc->dis_metastability_quirk)
4817 dev_info(dwc->dev, "changing max_speed on rev %08x\n",
4818 dwc->revision);
4819
4820 dwc->gadget->max_speed = dwc->maximum_speed;
4821 dwc->gadget->max_ssp_rate = dwc->max_ssp_rate;
4822
4823 /*
4824 * REVISIT: Here we should clear all pending IRQs to be
4825 * sure we're starting from a well known location.
4826 */
4827
4828 ret = dwc3_gadget_init_endpoints(dwc, dwc->num_eps);
4829 if (ret)
4830 goto err4;
4831
4832 ret = usb_add_gadget(dwc->gadget);
4833 if (ret) {
4834 dev_err(dwc->dev, "failed to add gadget\n");
4835 goto err5;
4836 }
4837
4838 if (DWC3_IP_IS(DWC32) && dwc->maximum_speed == USB_SPEED_SUPER_PLUS)
4839 dwc3_gadget_set_ssp_rate(dwc->gadget, dwc->max_ssp_rate);
4840 else
4841 dwc3_gadget_set_speed(dwc->gadget, dwc->maximum_speed);
4842
4843 /* No system wakeup if no gadget driver bound */
4844 if (dwc->sys_wakeup)
4845 device_wakeup_disable(dwc->sysdev);
4846
4847 return 0;
4848
4849 err5:
4850 dwc3_gadget_free_endpoints(dwc);
4851 err4:
4852 usb_put_gadget(dwc->gadget);
4853 dwc->gadget = NULL;
4854 err3:
4855 dma_free_coherent(dwc->sysdev, DWC3_BOUNCE_SIZE, dwc->bounce,
4856 dwc->bounce_addr);
4857
4858 err2:
4859 kfree(dwc->setup_buf);
4860
4861 err1:
4862 dma_free_coherent(dwc->sysdev, sizeof(*dwc->ep0_trb) * 2,
4863 dwc->ep0_trb, dwc->ep0_trb_addr);
4864
4865 err0:
4866 return ret;
4867 }
4868 EXPORT_SYMBOL_GPL(dwc3_gadget_init);
4869
4870 /* -------------------------------------------------------------------------- */
4871
dwc3_gadget_exit(struct dwc3 * dwc)4872 void dwc3_gadget_exit(struct dwc3 *dwc)
4873 {
4874 if (!dwc->gadget)
4875 return;
4876
4877 dwc3_enable_susphy(dwc, true);
4878 usb_del_gadget(dwc->gadget);
4879 dwc3_gadget_free_endpoints(dwc);
4880 usb_put_gadget(dwc->gadget);
4881 dma_free_coherent(dwc->sysdev, DWC3_BOUNCE_SIZE, dwc->bounce,
4882 dwc->bounce_addr);
4883 kfree(dwc->setup_buf);
4884 dma_free_coherent(dwc->sysdev, sizeof(*dwc->ep0_trb) * 2,
4885 dwc->ep0_trb, dwc->ep0_trb_addr);
4886 }
4887 EXPORT_SYMBOL_GPL(dwc3_gadget_exit);
4888
dwc3_gadget_suspend(struct dwc3 * dwc)4889 int dwc3_gadget_suspend(struct dwc3 *dwc)
4890 {
4891 int ret;
4892
4893 ret = dwc3_gadget_soft_disconnect(dwc);
4894 /*
4895 * Attempt to reset the controller's state. Likely no
4896 * communication can be established until the host
4897 * performs a port reset.
4898 */
4899 if (ret && dwc->softconnect) {
4900 dwc3_gadget_soft_connect(dwc);
4901 return -EAGAIN;
4902 }
4903
4904 dwc3_disconnect_gadget_sleepable(dwc);
4905
4906 return 0;
4907 }
4908
dwc3_gadget_resume(struct dwc3 * dwc)4909 int dwc3_gadget_resume(struct dwc3 *dwc)
4910 {
4911 if (!dwc->gadget_driver || !dwc->softconnect)
4912 return 0;
4913
4914 return dwc3_gadget_soft_connect(dwc);
4915 }
4916