1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3 * OMAP Remote Processor driver
4 *
5 * Copyright (C) 2011-2020 Texas Instruments Incorporated - http://www.ti.com/
6 * Copyright (C) 2011 Google, Inc.
7 *
8 * Ohad Ben-Cohen <ohad@wizery.com>
9 * Brian Swetland <swetland@google.com>
10 * Fernando Guzman Lugo <fernando.lugo@ti.com>
11 * Mark Grosen <mgrosen@ti.com>
12 * Suman Anna <s-anna@ti.com>
13 * Hari Kanigeri <h-kanigeri2@ti.com>
14 */
15
16 #include <linux/kernel.h>
17 #include <linux/module.h>
18 #include <linux/clk.h>
19 #include <linux/clk/ti.h>
20 #include <linux/err.h>
21 #include <linux/io.h>
22 #include <linux/of.h>
23 #include <linux/of_platform.h>
24 #include <linux/of_reserved_mem.h>
25 #include <linux/platform_device.h>
26 #include <linux/pm_runtime.h>
27 #include <linux/dma-mapping.h>
28 #include <linux/interrupt.h>
29 #include <linux/remoteproc.h>
30 #include <linux/mailbox_client.h>
31 #include <linux/omap-iommu.h>
32 #include <linux/omap-mailbox.h>
33 #include <linux/regmap.h>
34 #include <linux/mfd/syscon.h>
35 #include <linux/reset.h>
36 #include <clocksource/timer-ti-dm.h>
37
38 #include <linux/platform_data/dmtimer-omap.h>
39
40 #ifdef CONFIG_ARM_DMA_USE_IOMMU
41 #include <asm/dma-iommu.h>
42 #endif
43
44 #include "omap_remoteproc.h"
45 #include "remoteproc_internal.h"
46
47 /* default auto-suspend delay (ms) */
48 #define DEFAULT_AUTOSUSPEND_DELAY 10000
49
50 /**
51 * struct omap_rproc_boot_data - boot data structure for the DSP omap rprocs
52 * @syscon: regmap handle for the system control configuration module
53 * @boot_reg: boot register offset within the @syscon regmap
54 * @boot_reg_shift: bit-field shift required for the boot address value in
55 * @boot_reg
56 */
57 struct omap_rproc_boot_data {
58 struct regmap *syscon;
59 unsigned int boot_reg;
60 unsigned int boot_reg_shift;
61 };
62
63 /**
64 * struct omap_rproc_mem - internal memory structure
65 * @cpu_addr: MPU virtual address of the memory region
66 * @bus_addr: bus address used to access the memory region
67 * @dev_addr: device address of the memory region from DSP view
68 * @size: size of the memory region
69 */
70 struct omap_rproc_mem {
71 void __iomem *cpu_addr;
72 phys_addr_t bus_addr;
73 u32 dev_addr;
74 size_t size;
75 };
76
77 /**
78 * struct omap_rproc_timer - data structure for a timer used by a omap rproc
79 * @odt: timer pointer
80 * @timer_ops: OMAP dmtimer ops for @odt timer
81 * @irq: timer irq
82 */
83 struct omap_rproc_timer {
84 struct omap_dm_timer *odt;
85 const struct omap_dm_timer_ops *timer_ops;
86 int irq;
87 };
88
89 /**
90 * struct omap_rproc - omap remote processor state
91 * @mbox: mailbox channel handle
92 * @client: mailbox client to request the mailbox channel
93 * @boot_data: boot data structure for setting processor boot address
94 * @mem: internal memory regions data
95 * @num_mems: number of internal memory regions
96 * @num_timers: number of rproc timer(s)
97 * @num_wd_timers: number of rproc watchdog timers
98 * @timers: timer(s) info used by rproc
99 * @autosuspend_delay: auto-suspend delay value to be used for runtime pm
100 * @need_resume: if true a resume is needed in the system resume callback
101 * @rproc: rproc handle
102 * @reset: reset handle
103 * @pm_comp: completion primitive to sync for suspend response
104 * @fck: functional clock for the remoteproc
105 * @suspend_acked: state machine flag to store the suspend request ack
106 */
107 struct omap_rproc {
108 struct mbox_chan *mbox;
109 struct mbox_client client;
110 struct omap_rproc_boot_data *boot_data;
111 struct omap_rproc_mem *mem;
112 int num_mems;
113 int num_timers;
114 int num_wd_timers;
115 struct omap_rproc_timer *timers;
116 int autosuspend_delay;
117 bool need_resume;
118 struct rproc *rproc;
119 struct reset_control *reset;
120 struct completion pm_comp;
121 struct clk *fck;
122 bool suspend_acked;
123 };
124
125 /**
126 * struct omap_rproc_mem_data - memory definitions for an omap remote processor
127 * @name: name for this memory entry
128 * @dev_addr: device address for the memory entry
129 */
130 struct omap_rproc_mem_data {
131 const char *name;
132 const u32 dev_addr;
133 };
134
135 /**
136 * struct omap_rproc_dev_data - device data for the omap remote processor
137 * @device_name: device name of the remote processor
138 * @mems: memory definitions for this remote processor
139 */
140 struct omap_rproc_dev_data {
141 const char *device_name;
142 const struct omap_rproc_mem_data *mems;
143 };
144
145 /**
146 * omap_rproc_request_timer() - request a timer for a remoteproc
147 * @dev: device requesting the timer
148 * @np: device node pointer to the desired timer
149 * @timer: handle to a struct omap_rproc_timer to return the timer handle
150 *
151 * This helper function is used primarily to request a timer associated with
152 * a remoteproc. The returned handle is stored in the .odt field of the
153 * @timer structure passed in, and is used to invoke other timer specific
154 * ops (like starting a timer either during device initialization or during
155 * a resume operation, or for stopping/freeing a timer).
156 *
157 * Return: 0 on success, otherwise an appropriate failure
158 */
omap_rproc_request_timer(struct device * dev,struct device_node * np,struct omap_rproc_timer * timer)159 static int omap_rproc_request_timer(struct device *dev, struct device_node *np,
160 struct omap_rproc_timer *timer)
161 {
162 int ret;
163
164 timer->odt = timer->timer_ops->request_by_node(np);
165 if (!timer->odt) {
166 dev_err(dev, "request for timer node %p failed\n", np);
167 return -EBUSY;
168 }
169
170 ret = timer->timer_ops->set_source(timer->odt, OMAP_TIMER_SRC_SYS_CLK);
171 if (ret) {
172 dev_err(dev, "error setting OMAP_TIMER_SRC_SYS_CLK as source for timer node %p\n",
173 np);
174 timer->timer_ops->free(timer->odt);
175 return ret;
176 }
177
178 /* clean counter, remoteproc code will set the value */
179 timer->timer_ops->set_load(timer->odt, 0);
180
181 return 0;
182 }
183
184 /**
185 * omap_rproc_start_timer() - start a timer for a remoteproc
186 * @timer: handle to a OMAP rproc timer
187 *
188 * This helper function is used to start a timer associated with a remoteproc,
189 * obtained using the request_timer ops. The helper function needs to be
190 * invoked by the driver to start the timer (during device initialization)
191 * or to just resume the timer.
192 *
193 * Return: 0 on success, otherwise a failure as returned by DMTimer ops
194 */
omap_rproc_start_timer(struct omap_rproc_timer * timer)195 static inline int omap_rproc_start_timer(struct omap_rproc_timer *timer)
196 {
197 return timer->timer_ops->start(timer->odt);
198 }
199
200 /**
201 * omap_rproc_stop_timer() - stop a timer for a remoteproc
202 * @timer: handle to a OMAP rproc timer
203 *
204 * This helper function is used to disable a timer associated with a
205 * remoteproc, and needs to be called either during a device shutdown
206 * or suspend operation. The separate helper function allows the driver
207 * to just stop a timer without having to release the timer during a
208 * suspend operation.
209 *
210 * Return: 0 on success, otherwise a failure as returned by DMTimer ops
211 */
omap_rproc_stop_timer(struct omap_rproc_timer * timer)212 static inline int omap_rproc_stop_timer(struct omap_rproc_timer *timer)
213 {
214 return timer->timer_ops->stop(timer->odt);
215 }
216
217 /**
218 * omap_rproc_release_timer() - release a timer for a remoteproc
219 * @timer: handle to a OMAP rproc timer
220 *
221 * This helper function is used primarily to release a timer associated
222 * with a remoteproc. The dmtimer will be available for other clients to
223 * use once released.
224 *
225 * Return: 0 on success, otherwise a failure as returned by DMTimer ops
226 */
omap_rproc_release_timer(struct omap_rproc_timer * timer)227 static inline int omap_rproc_release_timer(struct omap_rproc_timer *timer)
228 {
229 return timer->timer_ops->free(timer->odt);
230 }
231
232 /**
233 * omap_rproc_get_timer_irq() - get the irq for a timer
234 * @timer: handle to a OMAP rproc timer
235 *
236 * This function is used to get the irq associated with a watchdog timer. The
237 * function is called by the OMAP remoteproc driver to register a interrupt
238 * handler to handle watchdog events on the remote processor.
239 *
240 * Return: irq id on success, otherwise a failure as returned by DMTimer ops
241 */
omap_rproc_get_timer_irq(struct omap_rproc_timer * timer)242 static inline int omap_rproc_get_timer_irq(struct omap_rproc_timer *timer)
243 {
244 return timer->timer_ops->get_irq(timer->odt);
245 }
246
247 /**
248 * omap_rproc_ack_timer_irq() - acknowledge a timer irq
249 * @timer: handle to a OMAP rproc timer
250 *
251 * This function is used to clear the irq associated with a watchdog timer.
252 * The function is called by the OMAP remoteproc upon a watchdog event on the
253 * remote processor to clear the interrupt status of the watchdog timer.
254 */
omap_rproc_ack_timer_irq(struct omap_rproc_timer * timer)255 static inline void omap_rproc_ack_timer_irq(struct omap_rproc_timer *timer)
256 {
257 timer->timer_ops->write_status(timer->odt, OMAP_TIMER_INT_OVERFLOW);
258 }
259
260 /**
261 * omap_rproc_watchdog_isr() - Watchdog ISR handler for remoteproc device
262 * @irq: IRQ number associated with a watchdog timer
263 * @data: IRQ handler data
264 *
265 * This ISR routine executes the required necessary low-level code to
266 * acknowledge a watchdog timer interrupt. There can be multiple watchdog
267 * timers associated with a rproc (like IPUs which have 2 watchdog timers,
268 * one per Cortex M3/M4 core), so a lookup has to be performed to identify
269 * the timer to acknowledge its interrupt.
270 *
271 * The function also invokes rproc_report_crash to report the watchdog event
272 * to the remoteproc driver core, to trigger a recovery.
273 *
274 * Return: IRQ_HANDLED on success, otherwise IRQ_NONE
275 */
omap_rproc_watchdog_isr(int irq,void * data)276 static irqreturn_t omap_rproc_watchdog_isr(int irq, void *data)
277 {
278 struct rproc *rproc = data;
279 struct omap_rproc *oproc = rproc->priv;
280 struct device *dev = rproc->dev.parent;
281 struct omap_rproc_timer *timers = oproc->timers;
282 struct omap_rproc_timer *wd_timer = NULL;
283 int num_timers = oproc->num_timers + oproc->num_wd_timers;
284 int i;
285
286 for (i = oproc->num_timers; i < num_timers; i++) {
287 if (timers[i].irq > 0 && irq == timers[i].irq) {
288 wd_timer = &timers[i];
289 break;
290 }
291 }
292
293 if (!wd_timer) {
294 dev_err(dev, "invalid timer\n");
295 return IRQ_NONE;
296 }
297
298 omap_rproc_ack_timer_irq(wd_timer);
299
300 rproc_report_crash(rproc, RPROC_WATCHDOG);
301
302 return IRQ_HANDLED;
303 }
304
305 /**
306 * omap_rproc_enable_timers() - enable the timers for a remoteproc
307 * @rproc: handle of a remote processor
308 * @configure: boolean flag used to acquire and configure the timer handle
309 *
310 * This function is used primarily to enable the timers associated with
311 * a remoteproc. The configure flag is provided to allow the driver
312 * to either acquire and start a timer (during device initialization) or
313 * to just start a timer (during a resume operation).
314 *
315 * Return: 0 on success, otherwise an appropriate failure
316 */
omap_rproc_enable_timers(struct rproc * rproc,bool configure)317 static int omap_rproc_enable_timers(struct rproc *rproc, bool configure)
318 {
319 int i;
320 int ret = 0;
321 struct platform_device *tpdev;
322 struct dmtimer_platform_data *tpdata;
323 const struct omap_dm_timer_ops *timer_ops;
324 struct omap_rproc *oproc = rproc->priv;
325 struct omap_rproc_timer *timers = oproc->timers;
326 struct device *dev = rproc->dev.parent;
327 struct device_node *np = NULL;
328 int num_timers = oproc->num_timers + oproc->num_wd_timers;
329
330 if (!num_timers)
331 return 0;
332
333 if (!configure)
334 goto start_timers;
335
336 for (i = 0; i < num_timers; i++) {
337 if (i < oproc->num_timers)
338 np = of_parse_phandle(dev->of_node, "ti,timers", i);
339 else
340 np = of_parse_phandle(dev->of_node,
341 "ti,watchdog-timers",
342 (i - oproc->num_timers));
343 if (!np) {
344 ret = -ENXIO;
345 dev_err(dev, "device node lookup for timer at index %d failed: %d\n",
346 i < oproc->num_timers ? i :
347 i - oproc->num_timers, ret);
348 goto free_timers;
349 }
350
351 tpdev = of_find_device_by_node(np);
352 if (!tpdev) {
353 ret = -ENODEV;
354 dev_err(dev, "could not get timer platform device\n");
355 goto put_node;
356 }
357
358 tpdata = dev_get_platdata(&tpdev->dev);
359 put_device(&tpdev->dev);
360 if (!tpdata) {
361 ret = -EINVAL;
362 dev_err(dev, "dmtimer pdata structure NULL\n");
363 goto put_node;
364 }
365
366 timer_ops = tpdata->timer_ops;
367 if (!timer_ops || !timer_ops->request_by_node ||
368 !timer_ops->set_source || !timer_ops->set_load ||
369 !timer_ops->free || !timer_ops->start ||
370 !timer_ops->stop || !timer_ops->get_irq ||
371 !timer_ops->write_status) {
372 ret = -EINVAL;
373 dev_err(dev, "device does not have required timer ops\n");
374 goto put_node;
375 }
376
377 timers[i].irq = -1;
378 timers[i].timer_ops = timer_ops;
379 ret = omap_rproc_request_timer(dev, np, &timers[i]);
380 if (ret) {
381 dev_err(dev, "request for timer %p failed: %d\n", np,
382 ret);
383 goto put_node;
384 }
385 of_node_put(np);
386
387 if (i >= oproc->num_timers) {
388 timers[i].irq = omap_rproc_get_timer_irq(&timers[i]);
389 if (timers[i].irq < 0) {
390 dev_err(dev, "get_irq for timer %p failed: %d\n",
391 np, timers[i].irq);
392 ret = -EBUSY;
393 goto free_timers;
394 }
395
396 ret = request_irq(timers[i].irq,
397 omap_rproc_watchdog_isr, IRQF_SHARED,
398 "rproc-wdt", rproc);
399 if (ret) {
400 dev_err(dev, "error requesting irq for timer %p\n",
401 np);
402 omap_rproc_release_timer(&timers[i]);
403 timers[i].odt = NULL;
404 timers[i].timer_ops = NULL;
405 timers[i].irq = -1;
406 goto free_timers;
407 }
408 }
409 }
410
411 start_timers:
412 for (i = 0; i < num_timers; i++) {
413 ret = omap_rproc_start_timer(&timers[i]);
414 if (ret) {
415 dev_err(dev, "start timer %p failed failed: %d\n", np,
416 ret);
417 break;
418 }
419 }
420 if (ret) {
421 while (i >= 0) {
422 omap_rproc_stop_timer(&timers[i]);
423 i--;
424 }
425 goto put_node;
426 }
427 return 0;
428
429 put_node:
430 if (configure)
431 of_node_put(np);
432 free_timers:
433 while (i--) {
434 if (i >= oproc->num_timers)
435 free_irq(timers[i].irq, rproc);
436 omap_rproc_release_timer(&timers[i]);
437 timers[i].odt = NULL;
438 timers[i].timer_ops = NULL;
439 timers[i].irq = -1;
440 }
441
442 return ret;
443 }
444
445 /**
446 * omap_rproc_disable_timers() - disable the timers for a remoteproc
447 * @rproc: handle of a remote processor
448 * @configure: boolean flag used to release the timer handle
449 *
450 * This function is used primarily to disable the timers associated with
451 * a remoteproc. The configure flag is provided to allow the driver
452 * to either stop and release a timer (during device shutdown) or to just
453 * stop a timer (during a suspend operation).
454 *
455 * Return: 0 on success or no timers
456 */
omap_rproc_disable_timers(struct rproc * rproc,bool configure)457 static int omap_rproc_disable_timers(struct rproc *rproc, bool configure)
458 {
459 int i;
460 struct omap_rproc *oproc = rproc->priv;
461 struct omap_rproc_timer *timers = oproc->timers;
462 int num_timers = oproc->num_timers + oproc->num_wd_timers;
463
464 if (!num_timers)
465 return 0;
466
467 for (i = 0; i < num_timers; i++) {
468 omap_rproc_stop_timer(&timers[i]);
469 if (configure) {
470 if (i >= oproc->num_timers)
471 free_irq(timers[i].irq, rproc);
472 omap_rproc_release_timer(&timers[i]);
473 timers[i].odt = NULL;
474 timers[i].timer_ops = NULL;
475 timers[i].irq = -1;
476 }
477 }
478
479 return 0;
480 }
481
482 /**
483 * omap_rproc_mbox_callback() - inbound mailbox message handler
484 * @client: mailbox client pointer used for requesting the mailbox channel
485 * @data: mailbox payload
486 *
487 * This handler is invoked by omap's mailbox driver whenever a mailbox
488 * message is received. Usually, the mailbox payload simply contains
489 * the index of the virtqueue that is kicked by the remote processor,
490 * and we let remoteproc core handle it.
491 *
492 * In addition to virtqueue indices, we also have some out-of-band values
493 * that indicates different events. Those values are deliberately very
494 * big so they don't coincide with virtqueue indices.
495 */
omap_rproc_mbox_callback(struct mbox_client * client,void * data)496 static void omap_rproc_mbox_callback(struct mbox_client *client, void *data)
497 {
498 struct omap_rproc *oproc = container_of(client, struct omap_rproc,
499 client);
500 struct device *dev = oproc->rproc->dev.parent;
501 const char *name = oproc->rproc->name;
502 u32 msg = (u32)data;
503
504 dev_dbg(dev, "mbox msg: 0x%x\n", msg);
505
506 switch (msg) {
507 case RP_MBOX_CRASH:
508 /*
509 * remoteproc detected an exception, notify the rproc core.
510 * The remoteproc core will handle the recovery.
511 */
512 dev_err(dev, "omap rproc %s crashed\n", name);
513 rproc_report_crash(oproc->rproc, RPROC_FATAL_ERROR);
514 break;
515 case RP_MBOX_ECHO_REPLY:
516 dev_info(dev, "received echo reply from %s\n", name);
517 break;
518 case RP_MBOX_SUSPEND_ACK:
519 case RP_MBOX_SUSPEND_CANCEL:
520 oproc->suspend_acked = msg == RP_MBOX_SUSPEND_ACK;
521 complete(&oproc->pm_comp);
522 break;
523 default:
524 if (msg >= RP_MBOX_READY && msg < RP_MBOX_END_MSG)
525 return;
526 if (msg > oproc->rproc->max_notifyid) {
527 dev_dbg(dev, "dropping unknown message 0x%x", msg);
528 return;
529 }
530 /* msg contains the index of the triggered vring */
531 if (rproc_vq_interrupt(oproc->rproc, msg) == IRQ_NONE)
532 dev_dbg(dev, "no message was found in vqid %d\n", msg);
533 }
534 }
535
536 /* kick a virtqueue */
omap_rproc_kick(struct rproc * rproc,int vqid)537 static void omap_rproc_kick(struct rproc *rproc, int vqid)
538 {
539 struct omap_rproc *oproc = rproc->priv;
540 struct device *dev = rproc->dev.parent;
541 int ret;
542
543 /* wake up the rproc before kicking it */
544 ret = pm_runtime_get_sync(dev);
545 if (WARN_ON(ret < 0)) {
546 dev_err(dev, "pm_runtime_get_sync() failed during kick, ret = %d\n",
547 ret);
548 pm_runtime_put_noidle(dev);
549 return;
550 }
551
552 /* send the index of the triggered virtqueue in the mailbox payload */
553 ret = mbox_send_message(oproc->mbox, (void *)vqid);
554 if (ret < 0)
555 dev_err(dev, "failed to send mailbox message, status = %d\n",
556 ret);
557
558 pm_runtime_mark_last_busy(dev);
559 pm_runtime_put_autosuspend(dev);
560 }
561
562 /**
563 * omap_rproc_write_dsp_boot_addr() - set boot address for DSP remote processor
564 * @rproc: handle of a remote processor
565 *
566 * Set boot address for a supported DSP remote processor.
567 *
568 * Return: 0 on success, or -EINVAL if boot address is not aligned properly
569 */
omap_rproc_write_dsp_boot_addr(struct rproc * rproc)570 static int omap_rproc_write_dsp_boot_addr(struct rproc *rproc)
571 {
572 struct device *dev = rproc->dev.parent;
573 struct omap_rproc *oproc = rproc->priv;
574 struct omap_rproc_boot_data *bdata = oproc->boot_data;
575 u32 offset = bdata->boot_reg;
576 u32 value;
577 u32 mask;
578
579 if (rproc->bootaddr & (SZ_1K - 1)) {
580 dev_err(dev, "invalid boot address 0x%llx, must be aligned on a 1KB boundary\n",
581 rproc->bootaddr);
582 return -EINVAL;
583 }
584
585 value = rproc->bootaddr >> bdata->boot_reg_shift;
586 mask = ~(SZ_1K - 1) >> bdata->boot_reg_shift;
587
588 return regmap_update_bits(bdata->syscon, offset, mask, value);
589 }
590
591 /*
592 * Power up the remote processor.
593 *
594 * This function will be invoked only after the firmware for this rproc
595 * was loaded, parsed successfully, and all of its resource requirements
596 * were met.
597 */
omap_rproc_start(struct rproc * rproc)598 static int omap_rproc_start(struct rproc *rproc)
599 {
600 struct omap_rproc *oproc = rproc->priv;
601 struct device *dev = rproc->dev.parent;
602 int ret;
603 struct mbox_client *client = &oproc->client;
604
605 if (oproc->boot_data) {
606 ret = omap_rproc_write_dsp_boot_addr(rproc);
607 if (ret)
608 return ret;
609 }
610
611 client->dev = dev;
612 client->tx_done = NULL;
613 client->rx_callback = omap_rproc_mbox_callback;
614 client->tx_block = false;
615 client->knows_txdone = false;
616
617 oproc->mbox = mbox_request_channel(client, 0);
618 if (IS_ERR(oproc->mbox)) {
619 ret = -EBUSY;
620 dev_err(dev, "mbox_request_channel failed: %ld\n",
621 PTR_ERR(oproc->mbox));
622 return ret;
623 }
624
625 /*
626 * Ping the remote processor. this is only for sanity-sake;
627 * there is no functional effect whatsoever.
628 *
629 * Note that the reply will _not_ arrive immediately: this message
630 * will wait in the mailbox fifo until the remote processor is booted.
631 */
632 ret = mbox_send_message(oproc->mbox, (void *)RP_MBOX_ECHO_REQUEST);
633 if (ret < 0) {
634 dev_err(dev, "mbox_send_message failed: %d\n", ret);
635 goto put_mbox;
636 }
637
638 ret = omap_rproc_enable_timers(rproc, true);
639 if (ret) {
640 dev_err(dev, "omap_rproc_enable_timers failed: %d\n", ret);
641 goto put_mbox;
642 }
643
644 ret = reset_control_deassert(oproc->reset);
645 if (ret) {
646 dev_err(dev, "reset control deassert failed: %d\n", ret);
647 goto disable_timers;
648 }
649
650 /*
651 * remote processor is up, so update the runtime pm status and
652 * enable the auto-suspend. The device usage count is incremented
653 * manually for balancing it for auto-suspend
654 */
655 pm_runtime_set_active(dev);
656 pm_runtime_use_autosuspend(dev);
657 pm_runtime_get_noresume(dev);
658 pm_runtime_enable(dev);
659 pm_runtime_mark_last_busy(dev);
660 pm_runtime_put_autosuspend(dev);
661
662 return 0;
663
664 disable_timers:
665 omap_rproc_disable_timers(rproc, true);
666 put_mbox:
667 mbox_free_channel(oproc->mbox);
668 return ret;
669 }
670
671 /* power off the remote processor */
omap_rproc_stop(struct rproc * rproc)672 static int omap_rproc_stop(struct rproc *rproc)
673 {
674 struct device *dev = rproc->dev.parent;
675 struct omap_rproc *oproc = rproc->priv;
676 int ret;
677
678 /*
679 * cancel any possible scheduled runtime suspend by incrementing
680 * the device usage count, and resuming the device. The remoteproc
681 * also needs to be woken up if suspended, to avoid the remoteproc
682 * OS to continue to remember any context that it has saved, and
683 * avoid potential issues in misindentifying a subsequent device
684 * reboot as a power restore boot
685 */
686 ret = pm_runtime_get_sync(dev);
687 if (ret < 0) {
688 pm_runtime_put_noidle(dev);
689 return ret;
690 }
691
692 ret = reset_control_assert(oproc->reset);
693 if (ret)
694 goto out;
695
696 ret = omap_rproc_disable_timers(rproc, true);
697 if (ret)
698 goto enable_device;
699
700 mbox_free_channel(oproc->mbox);
701
702 /*
703 * update the runtime pm states and status now that the remoteproc
704 * has stopped
705 */
706 pm_runtime_disable(dev);
707 pm_runtime_dont_use_autosuspend(dev);
708 pm_runtime_put_noidle(dev);
709 pm_runtime_set_suspended(dev);
710
711 return 0;
712
713 enable_device:
714 reset_control_deassert(oproc->reset);
715 out:
716 /* schedule the next auto-suspend */
717 pm_runtime_mark_last_busy(dev);
718 pm_runtime_put_autosuspend(dev);
719 return ret;
720 }
721
722 /**
723 * omap_rproc_da_to_va() - internal memory translation helper
724 * @rproc: remote processor to apply the address translation for
725 * @da: device address to translate
726 * @len: length of the memory buffer
727 * @is_iomem: pointer filled in to indicate if @da is iomapped memory
728 *
729 * Custom function implementing the rproc .da_to_va ops to provide address
730 * translation (device address to kernel virtual address) for internal RAMs
731 * present in a DSP or IPU device). The translated addresses can be used
732 * either by the remoteproc core for loading, or by any rpmsg bus drivers.
733 *
734 * Return: translated virtual address in kernel memory space on success,
735 * or NULL on failure.
736 */
omap_rproc_da_to_va(struct rproc * rproc,u64 da,size_t len,bool * is_iomem)737 static void *omap_rproc_da_to_va(struct rproc *rproc, u64 da, size_t len, bool *is_iomem)
738 {
739 struct omap_rproc *oproc = rproc->priv;
740 int i;
741 u32 offset;
742
743 if (len <= 0)
744 return NULL;
745
746 if (!oproc->num_mems)
747 return NULL;
748
749 for (i = 0; i < oproc->num_mems; i++) {
750 if (da >= oproc->mem[i].dev_addr && da + len <=
751 oproc->mem[i].dev_addr + oproc->mem[i].size) {
752 offset = da - oproc->mem[i].dev_addr;
753 /* __force to make sparse happy with type conversion */
754 return (__force void *)(oproc->mem[i].cpu_addr +
755 offset);
756 }
757 }
758
759 return NULL;
760 }
761
762 static const struct rproc_ops omap_rproc_ops = {
763 .start = omap_rproc_start,
764 .stop = omap_rproc_stop,
765 .kick = omap_rproc_kick,
766 .da_to_va = omap_rproc_da_to_va,
767 };
768
769 #ifdef CONFIG_PM
_is_rproc_in_standby(struct omap_rproc * oproc)770 static bool _is_rproc_in_standby(struct omap_rproc *oproc)
771 {
772 return ti_clk_is_in_standby(oproc->fck);
773 }
774
775 /* 1 sec is long enough time to let the remoteproc side suspend the device */
776 #define DEF_SUSPEND_TIMEOUT 1000
_omap_rproc_suspend(struct rproc * rproc,bool auto_suspend)777 static int _omap_rproc_suspend(struct rproc *rproc, bool auto_suspend)
778 {
779 struct device *dev = rproc->dev.parent;
780 struct omap_rproc *oproc = rproc->priv;
781 unsigned long to = msecs_to_jiffies(DEF_SUSPEND_TIMEOUT);
782 unsigned long ta = jiffies + to;
783 u32 suspend_msg = auto_suspend ?
784 RP_MBOX_SUSPEND_AUTO : RP_MBOX_SUSPEND_SYSTEM;
785 int ret;
786
787 reinit_completion(&oproc->pm_comp);
788 oproc->suspend_acked = false;
789 ret = mbox_send_message(oproc->mbox, (void *)suspend_msg);
790 if (ret < 0) {
791 dev_err(dev, "PM mbox_send_message failed: %d\n", ret);
792 return ret;
793 }
794
795 ret = wait_for_completion_timeout(&oproc->pm_comp, to);
796 if (!oproc->suspend_acked)
797 return -EBUSY;
798
799 /*
800 * The remoteproc side is returning the ACK message before saving the
801 * context, because the context saving is performed within a SYS/BIOS
802 * function, and it cannot have any inter-dependencies against the IPC
803 * layer. Also, as the SYS/BIOS needs to preserve properly the processor
804 * register set, sending this ACK or signalling the completion of the
805 * context save through a shared memory variable can never be the
806 * absolute last thing to be executed on the remoteproc side, and the
807 * MPU cannot use the ACK message as a sync point to put the remoteproc
808 * into reset. The only way to ensure that the remote processor has
809 * completed saving the context is to check that the module has reached
810 * STANDBY state (after saving the context, the SYS/BIOS executes the
811 * appropriate target-specific WFI instruction causing the module to
812 * enter STANDBY).
813 */
814 while (!_is_rproc_in_standby(oproc)) {
815 if (time_after(jiffies, ta))
816 return -ETIME;
817 schedule();
818 }
819
820 ret = reset_control_assert(oproc->reset);
821 if (ret) {
822 dev_err(dev, "reset assert during suspend failed %d\n", ret);
823 return ret;
824 }
825
826 ret = omap_rproc_disable_timers(rproc, false);
827 if (ret) {
828 dev_err(dev, "disabling timers during suspend failed %d\n",
829 ret);
830 goto enable_device;
831 }
832
833 /*
834 * IOMMUs would have to be disabled specifically for runtime suspend.
835 * They are handled automatically through System PM callbacks for
836 * regular system suspend
837 */
838 if (auto_suspend) {
839 ret = omap_iommu_domain_deactivate(rproc->domain);
840 if (ret) {
841 dev_err(dev, "iommu domain deactivate failed %d\n",
842 ret);
843 goto enable_timers;
844 }
845 }
846
847 return 0;
848
849 enable_timers:
850 /* ignore errors on re-enabling code */
851 omap_rproc_enable_timers(rproc, false);
852 enable_device:
853 reset_control_deassert(oproc->reset);
854 return ret;
855 }
856
_omap_rproc_resume(struct rproc * rproc,bool auto_suspend)857 static int _omap_rproc_resume(struct rproc *rproc, bool auto_suspend)
858 {
859 struct device *dev = rproc->dev.parent;
860 struct omap_rproc *oproc = rproc->priv;
861 int ret;
862
863 /*
864 * IOMMUs would have to be enabled specifically for runtime resume.
865 * They would have been already enabled automatically through System
866 * PM callbacks for regular system resume
867 */
868 if (auto_suspend) {
869 ret = omap_iommu_domain_activate(rproc->domain);
870 if (ret) {
871 dev_err(dev, "omap_iommu activate failed %d\n", ret);
872 goto out;
873 }
874 }
875
876 /* boot address could be lost after suspend, so restore it */
877 if (oproc->boot_data) {
878 ret = omap_rproc_write_dsp_boot_addr(rproc);
879 if (ret) {
880 dev_err(dev, "boot address restore failed %d\n", ret);
881 goto suspend_iommu;
882 }
883 }
884
885 ret = omap_rproc_enable_timers(rproc, false);
886 if (ret) {
887 dev_err(dev, "enabling timers during resume failed %d\n", ret);
888 goto suspend_iommu;
889 }
890
891 ret = reset_control_deassert(oproc->reset);
892 if (ret) {
893 dev_err(dev, "reset deassert during resume failed %d\n", ret);
894 goto disable_timers;
895 }
896
897 return 0;
898
899 disable_timers:
900 omap_rproc_disable_timers(rproc, false);
901 suspend_iommu:
902 if (auto_suspend)
903 omap_iommu_domain_deactivate(rproc->domain);
904 out:
905 return ret;
906 }
907
omap_rproc_suspend(struct device * dev)908 static int __maybe_unused omap_rproc_suspend(struct device *dev)
909 {
910 struct rproc *rproc = dev_get_drvdata(dev);
911 struct omap_rproc *oproc = rproc->priv;
912 int ret = 0;
913
914 mutex_lock(&rproc->lock);
915 if (rproc->state == RPROC_OFFLINE)
916 goto out;
917
918 if (rproc->state == RPROC_SUSPENDED)
919 goto out;
920
921 if (rproc->state != RPROC_RUNNING) {
922 ret = -EBUSY;
923 goto out;
924 }
925
926 ret = _omap_rproc_suspend(rproc, false);
927 if (ret) {
928 dev_err(dev, "suspend failed %d\n", ret);
929 goto out;
930 }
931
932 /*
933 * remoteproc is running at the time of system suspend, so remember
934 * it so as to wake it up during system resume
935 */
936 oproc->need_resume = true;
937 rproc->state = RPROC_SUSPENDED;
938
939 out:
940 mutex_unlock(&rproc->lock);
941 return ret;
942 }
943
omap_rproc_resume(struct device * dev)944 static int __maybe_unused omap_rproc_resume(struct device *dev)
945 {
946 struct rproc *rproc = dev_get_drvdata(dev);
947 struct omap_rproc *oproc = rproc->priv;
948 int ret = 0;
949
950 mutex_lock(&rproc->lock);
951 if (rproc->state == RPROC_OFFLINE)
952 goto out;
953
954 if (rproc->state != RPROC_SUSPENDED) {
955 ret = -EBUSY;
956 goto out;
957 }
958
959 /*
960 * remoteproc was auto-suspended at the time of system suspend,
961 * so no need to wake-up the processor (leave it in suspended
962 * state, will be woken up during a subsequent runtime_resume)
963 */
964 if (!oproc->need_resume)
965 goto out;
966
967 ret = _omap_rproc_resume(rproc, false);
968 if (ret) {
969 dev_err(dev, "resume failed %d\n", ret);
970 goto out;
971 }
972
973 oproc->need_resume = false;
974 rproc->state = RPROC_RUNNING;
975
976 pm_runtime_mark_last_busy(dev);
977 out:
978 mutex_unlock(&rproc->lock);
979 return ret;
980 }
981
omap_rproc_runtime_suspend(struct device * dev)982 static int omap_rproc_runtime_suspend(struct device *dev)
983 {
984 struct rproc *rproc = dev_get_drvdata(dev);
985 struct omap_rproc *oproc = rproc->priv;
986 int ret;
987
988 mutex_lock(&rproc->lock);
989 if (rproc->state == RPROC_CRASHED) {
990 dev_dbg(dev, "rproc cannot be runtime suspended when crashed!\n");
991 ret = -EBUSY;
992 goto out;
993 }
994
995 if (WARN_ON(rproc->state != RPROC_RUNNING)) {
996 dev_err(dev, "rproc cannot be runtime suspended when not running!\n");
997 ret = -EBUSY;
998 goto out;
999 }
1000
1001 /*
1002 * do not even attempt suspend if the remote processor is not
1003 * idled for runtime auto-suspend
1004 */
1005 if (!_is_rproc_in_standby(oproc)) {
1006 ret = -EBUSY;
1007 goto abort;
1008 }
1009
1010 ret = _omap_rproc_suspend(rproc, true);
1011 if (ret)
1012 goto abort;
1013
1014 rproc->state = RPROC_SUSPENDED;
1015 mutex_unlock(&rproc->lock);
1016 return 0;
1017
1018 abort:
1019 pm_runtime_mark_last_busy(dev);
1020 out:
1021 mutex_unlock(&rproc->lock);
1022 return ret;
1023 }
1024
omap_rproc_runtime_resume(struct device * dev)1025 static int omap_rproc_runtime_resume(struct device *dev)
1026 {
1027 struct rproc *rproc = dev_get_drvdata(dev);
1028 int ret;
1029
1030 mutex_lock(&rproc->lock);
1031 if (WARN_ON(rproc->state != RPROC_SUSPENDED)) {
1032 dev_err(dev, "rproc cannot be runtime resumed if not suspended! state=%d\n",
1033 rproc->state);
1034 ret = -EBUSY;
1035 goto out;
1036 }
1037
1038 ret = _omap_rproc_resume(rproc, true);
1039 if (ret) {
1040 dev_err(dev, "runtime resume failed %d\n", ret);
1041 goto out;
1042 }
1043
1044 rproc->state = RPROC_RUNNING;
1045 out:
1046 mutex_unlock(&rproc->lock);
1047 return ret;
1048 }
1049 #endif /* CONFIG_PM */
1050
1051 static const struct omap_rproc_mem_data ipu_mems[] = {
1052 { .name = "l2ram", .dev_addr = 0x20000000 },
1053 { },
1054 };
1055
1056 static const struct omap_rproc_mem_data dra7_dsp_mems[] = {
1057 { .name = "l2ram", .dev_addr = 0x800000 },
1058 { .name = "l1pram", .dev_addr = 0xe00000 },
1059 { .name = "l1dram", .dev_addr = 0xf00000 },
1060 { },
1061 };
1062
1063 static const struct omap_rproc_dev_data omap4_dsp_dev_data = {
1064 .device_name = "dsp",
1065 };
1066
1067 static const struct omap_rproc_dev_data omap4_ipu_dev_data = {
1068 .device_name = "ipu",
1069 .mems = ipu_mems,
1070 };
1071
1072 static const struct omap_rproc_dev_data omap5_dsp_dev_data = {
1073 .device_name = "dsp",
1074 };
1075
1076 static const struct omap_rproc_dev_data omap5_ipu_dev_data = {
1077 .device_name = "ipu",
1078 .mems = ipu_mems,
1079 };
1080
1081 static const struct omap_rproc_dev_data dra7_dsp_dev_data = {
1082 .device_name = "dsp",
1083 .mems = dra7_dsp_mems,
1084 };
1085
1086 static const struct omap_rproc_dev_data dra7_ipu_dev_data = {
1087 .device_name = "ipu",
1088 .mems = ipu_mems,
1089 };
1090
1091 static const struct of_device_id omap_rproc_of_match[] = {
1092 {
1093 .compatible = "ti,omap4-dsp",
1094 .data = &omap4_dsp_dev_data,
1095 },
1096 {
1097 .compatible = "ti,omap4-ipu",
1098 .data = &omap4_ipu_dev_data,
1099 },
1100 {
1101 .compatible = "ti,omap5-dsp",
1102 .data = &omap5_dsp_dev_data,
1103 },
1104 {
1105 .compatible = "ti,omap5-ipu",
1106 .data = &omap5_ipu_dev_data,
1107 },
1108 {
1109 .compatible = "ti,dra7-dsp",
1110 .data = &dra7_dsp_dev_data,
1111 },
1112 {
1113 .compatible = "ti,dra7-ipu",
1114 .data = &dra7_ipu_dev_data,
1115 },
1116 {
1117 /* end */
1118 },
1119 };
1120 MODULE_DEVICE_TABLE(of, omap_rproc_of_match);
1121
omap_rproc_get_firmware(struct platform_device * pdev)1122 static const char *omap_rproc_get_firmware(struct platform_device *pdev)
1123 {
1124 const char *fw_name;
1125 int ret;
1126
1127 ret = of_property_read_string(pdev->dev.of_node, "firmware-name",
1128 &fw_name);
1129 if (ret)
1130 return ERR_PTR(ret);
1131
1132 return fw_name;
1133 }
1134
omap_rproc_get_boot_data(struct platform_device * pdev,struct rproc * rproc)1135 static int omap_rproc_get_boot_data(struct platform_device *pdev,
1136 struct rproc *rproc)
1137 {
1138 struct device_node *np = pdev->dev.of_node;
1139 struct omap_rproc *oproc = rproc->priv;
1140 const struct omap_rproc_dev_data *data;
1141
1142 data = of_device_get_match_data(&pdev->dev);
1143 if (!data)
1144 return -ENODEV;
1145
1146 if (!of_property_read_bool(np, "ti,bootreg"))
1147 return 0;
1148
1149 oproc->boot_data = devm_kzalloc(&pdev->dev, sizeof(*oproc->boot_data),
1150 GFP_KERNEL);
1151 if (!oproc->boot_data)
1152 return -ENOMEM;
1153
1154 oproc->boot_data->syscon =
1155 syscon_regmap_lookup_by_phandle(np, "ti,bootreg");
1156 if (IS_ERR(oproc->boot_data->syscon))
1157 return PTR_ERR(oproc->boot_data->syscon);
1158
1159 if (of_property_read_u32_index(np, "ti,bootreg", 1,
1160 &oproc->boot_data->boot_reg)) {
1161 dev_err(&pdev->dev, "couldn't get the boot register\n");
1162 return -EINVAL;
1163 }
1164
1165 of_property_read_u32_index(np, "ti,bootreg", 2,
1166 &oproc->boot_data->boot_reg_shift);
1167
1168 return 0;
1169 }
1170
omap_rproc_of_get_internal_memories(struct platform_device * pdev,struct rproc * rproc)1171 static int omap_rproc_of_get_internal_memories(struct platform_device *pdev,
1172 struct rproc *rproc)
1173 {
1174 struct omap_rproc *oproc = rproc->priv;
1175 struct device *dev = &pdev->dev;
1176 const struct omap_rproc_dev_data *data;
1177 struct resource *res;
1178 int num_mems;
1179 int i;
1180
1181 data = of_device_get_match_data(dev);
1182 if (!data)
1183 return -ENODEV;
1184
1185 if (!data->mems)
1186 return 0;
1187
1188 num_mems = of_property_count_elems_of_size(dev->of_node, "reg",
1189 sizeof(u32)) / 2;
1190
1191 oproc->mem = devm_kcalloc(dev, num_mems, sizeof(*oproc->mem),
1192 GFP_KERNEL);
1193 if (!oproc->mem)
1194 return -ENOMEM;
1195
1196 for (i = 0; data->mems[i].name; i++) {
1197 res = platform_get_resource_byname(pdev, IORESOURCE_MEM,
1198 data->mems[i].name);
1199 if (!res) {
1200 dev_err(dev, "no memory defined for %s\n",
1201 data->mems[i].name);
1202 return -ENOMEM;
1203 }
1204 oproc->mem[i].cpu_addr = devm_ioremap_resource(dev, res);
1205 if (IS_ERR(oproc->mem[i].cpu_addr)) {
1206 dev_err(dev, "failed to parse and map %s memory\n",
1207 data->mems[i].name);
1208 return PTR_ERR(oproc->mem[i].cpu_addr);
1209 }
1210 oproc->mem[i].bus_addr = res->start;
1211 oproc->mem[i].dev_addr = data->mems[i].dev_addr;
1212 oproc->mem[i].size = resource_size(res);
1213
1214 dev_dbg(dev, "memory %8s: bus addr %pa size 0x%x va %p da 0x%x\n",
1215 data->mems[i].name, &oproc->mem[i].bus_addr,
1216 oproc->mem[i].size, oproc->mem[i].cpu_addr,
1217 oproc->mem[i].dev_addr);
1218 }
1219 oproc->num_mems = num_mems;
1220
1221 return 0;
1222 }
1223
1224 #ifdef CONFIG_OMAP_REMOTEPROC_WATCHDOG
omap_rproc_count_wdog_timers(struct device * dev)1225 static int omap_rproc_count_wdog_timers(struct device *dev)
1226 {
1227 struct device_node *np = dev->of_node;
1228 int ret;
1229
1230 ret = of_count_phandle_with_args(np, "ti,watchdog-timers", NULL);
1231 if (ret <= 0) {
1232 dev_dbg(dev, "device does not have watchdog timers, status = %d\n",
1233 ret);
1234 ret = 0;
1235 }
1236
1237 return ret;
1238 }
1239 #else
omap_rproc_count_wdog_timers(struct device * dev)1240 static int omap_rproc_count_wdog_timers(struct device *dev)
1241 {
1242 return 0;
1243 }
1244 #endif
1245
omap_rproc_of_get_timers(struct platform_device * pdev,struct rproc * rproc)1246 static int omap_rproc_of_get_timers(struct platform_device *pdev,
1247 struct rproc *rproc)
1248 {
1249 struct device_node *np = pdev->dev.of_node;
1250 struct omap_rproc *oproc = rproc->priv;
1251 struct device *dev = &pdev->dev;
1252 int num_timers;
1253
1254 /*
1255 * Timer nodes are directly used in client nodes as phandles, so
1256 * retrieve the count using appropriate size
1257 */
1258 oproc->num_timers = of_count_phandle_with_args(np, "ti,timers", NULL);
1259 if (oproc->num_timers <= 0) {
1260 dev_dbg(dev, "device does not have timers, status = %d\n",
1261 oproc->num_timers);
1262 oproc->num_timers = 0;
1263 }
1264
1265 oproc->num_wd_timers = omap_rproc_count_wdog_timers(dev);
1266
1267 num_timers = oproc->num_timers + oproc->num_wd_timers;
1268 if (num_timers) {
1269 oproc->timers = devm_kcalloc(dev, num_timers,
1270 sizeof(*oproc->timers),
1271 GFP_KERNEL);
1272 if (!oproc->timers)
1273 return -ENOMEM;
1274
1275 dev_dbg(dev, "device has %d tick timers and %d watchdog timers\n",
1276 oproc->num_timers, oproc->num_wd_timers);
1277 }
1278
1279 return 0;
1280 }
1281
omap_rproc_mem_release(void * data)1282 static void omap_rproc_mem_release(void *data)
1283 {
1284 struct device *dev = data;
1285
1286 of_reserved_mem_device_release(dev);
1287 }
1288
omap_rproc_probe(struct platform_device * pdev)1289 static int omap_rproc_probe(struct platform_device *pdev)
1290 {
1291 struct device_node *np = pdev->dev.of_node;
1292 struct omap_rproc *oproc;
1293 struct rproc *rproc;
1294 const char *firmware;
1295 int ret;
1296 struct reset_control *reset;
1297
1298 if (!np) {
1299 dev_err(&pdev->dev, "only DT-based devices are supported\n");
1300 return -ENODEV;
1301 }
1302
1303 reset = devm_reset_control_array_get_exclusive(&pdev->dev);
1304 if (IS_ERR(reset))
1305 return PTR_ERR(reset);
1306
1307 firmware = omap_rproc_get_firmware(pdev);
1308 if (IS_ERR(firmware))
1309 return PTR_ERR(firmware);
1310
1311 ret = dma_set_coherent_mask(&pdev->dev, DMA_BIT_MASK(32));
1312 if (ret) {
1313 dev_err(&pdev->dev, "dma_set_coherent_mask: %d\n", ret);
1314 return ret;
1315 }
1316
1317 rproc = devm_rproc_alloc(&pdev->dev, dev_name(&pdev->dev), &omap_rproc_ops,
1318 firmware, sizeof(*oproc));
1319 if (!rproc)
1320 return -ENOMEM;
1321
1322 oproc = rproc->priv;
1323 oproc->rproc = rproc;
1324 oproc->reset = reset;
1325 /* All existing OMAP IPU and DSP processors have an MMU */
1326 rproc->has_iommu = true;
1327
1328 #ifdef CONFIG_ARM_DMA_USE_IOMMU
1329 /*
1330 * Throw away the ARM DMA mapping that we'll never use, so it doesn't
1331 * interfere with the core rproc->domain and we get the right DMA ops.
1332 */
1333 if (pdev->dev.archdata.mapping) {
1334 struct dma_iommu_mapping *mapping = to_dma_iommu_mapping(&pdev->dev);
1335
1336 arm_iommu_detach_device(&pdev->dev);
1337 arm_iommu_release_mapping(mapping);
1338 }
1339 #endif
1340
1341 ret = omap_rproc_of_get_internal_memories(pdev, rproc);
1342 if (ret)
1343 return ret;
1344
1345 ret = omap_rproc_get_boot_data(pdev, rproc);
1346 if (ret)
1347 return ret;
1348
1349 ret = omap_rproc_of_get_timers(pdev, rproc);
1350 if (ret)
1351 return ret;
1352
1353 init_completion(&oproc->pm_comp);
1354 oproc->autosuspend_delay = DEFAULT_AUTOSUSPEND_DELAY;
1355
1356 of_property_read_u32(pdev->dev.of_node, "ti,autosuspend-delay-ms",
1357 &oproc->autosuspend_delay);
1358
1359 pm_runtime_set_autosuspend_delay(&pdev->dev, oproc->autosuspend_delay);
1360
1361 oproc->fck = devm_clk_get(&pdev->dev, 0);
1362 if (IS_ERR(oproc->fck))
1363 return PTR_ERR(oproc->fck);
1364
1365 ret = of_reserved_mem_device_init(&pdev->dev);
1366 if (ret) {
1367 dev_warn(&pdev->dev, "device does not have specific CMA pool.\n");
1368 dev_warn(&pdev->dev, "Typically this should be provided,\n");
1369 dev_warn(&pdev->dev, "only omit if you know what you are doing.\n");
1370 }
1371 ret = devm_add_action_or_reset(&pdev->dev, omap_rproc_mem_release, &pdev->dev);
1372 if (ret)
1373 return ret;
1374
1375 platform_set_drvdata(pdev, rproc);
1376
1377 ret = devm_rproc_add(&pdev->dev, rproc);
1378 if (ret)
1379 return ret;
1380
1381 return 0;
1382 }
1383
1384 static const struct dev_pm_ops omap_rproc_pm_ops = {
1385 SET_SYSTEM_SLEEP_PM_OPS(omap_rproc_suspend, omap_rproc_resume)
1386 SET_RUNTIME_PM_OPS(omap_rproc_runtime_suspend,
1387 omap_rproc_runtime_resume, NULL)
1388 };
1389
1390 static struct platform_driver omap_rproc_driver = {
1391 .probe = omap_rproc_probe,
1392 .driver = {
1393 .name = "omap-rproc",
1394 .pm = &omap_rproc_pm_ops,
1395 .of_match_table = omap_rproc_of_match,
1396 },
1397 };
1398
1399 module_platform_driver(omap_rproc_driver);
1400
1401 MODULE_LICENSE("GPL v2");
1402 MODULE_DESCRIPTION("OMAP Remote Processor control driver");
1403