1 /*
2 * Intel SST Firmware Loader
3 *
4 * Copyright (C) 2013, Intel Corporation. All rights reserved.
5 *
6 * This program is free software; you can redistribute it and/or
7 * modify it under the terms of the GNU General Public License version
8 * 2 as published by the Free Software Foundation.
9 *
10 * This program is distributed in the hope that it will be useful,
11 * but WITHOUT ANY WARRANTY; without even the implied warranty of
12 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
13 * GNU General Public License for more details.
14 *
15 */
16
17 #include <linux/kernel.h>
18 #include <linux/slab.h>
19 #include <linux/sched.h>
20 #include <linux/firmware.h>
21 #include <linux/export.h>
22 #include <linux/platform_device.h>
23 #include <linux/dma-mapping.h>
24 #include <linux/dmaengine.h>
25 #include <linux/pci.h>
26 #include <linux/acpi.h>
27
28 /* supported DMA engine drivers */
29 #include <linux/dma/dw.h>
30
31 #include <asm/page.h>
32 #include <asm/pgtable.h>
33
34 #include "sst-dsp.h"
35 #include "sst-dsp-priv.h"
36
37 #define SST_DMA_RESOURCES 2
38 #define SST_DSP_DMA_MAX_BURST 0x3
39 #define SST_HSW_BLOCK_ANY 0xffffffff
40
41 #define SST_HSW_MASK_DMA_ADDR_DSP 0xfff00000
42
43 struct sst_dma {
44 struct sst_dsp *sst;
45
46 struct dw_dma_chip *chip;
47
48 struct dma_async_tx_descriptor *desc;
49 struct dma_chan *ch;
50 };
51
sst_memcpy32(volatile void __iomem * dest,void * src,u32 bytes)52 static inline void sst_memcpy32(volatile void __iomem *dest, void *src, u32 bytes)
53 {
54 /* __iowrite32_copy use 32bit size values so divide by 4 */
55 __iowrite32_copy((void *)dest, src, bytes/4);
56 }
57
sst_dma_transfer_complete(void * arg)58 static void sst_dma_transfer_complete(void *arg)
59 {
60 struct sst_dsp *sst = (struct sst_dsp *)arg;
61
62 dev_dbg(sst->dev, "DMA: callback\n");
63 }
64
sst_dsp_dma_copy(struct sst_dsp * sst,dma_addr_t dest_addr,dma_addr_t src_addr,size_t size)65 static int sst_dsp_dma_copy(struct sst_dsp *sst, dma_addr_t dest_addr,
66 dma_addr_t src_addr, size_t size)
67 {
68 struct dma_async_tx_descriptor *desc;
69 struct sst_dma *dma = sst->dma;
70
71 if (dma->ch == NULL) {
72 dev_err(sst->dev, "error: no DMA channel\n");
73 return -ENODEV;
74 }
75
76 dev_dbg(sst->dev, "DMA: src: 0x%lx dest 0x%lx size %zu\n",
77 (unsigned long)src_addr, (unsigned long)dest_addr, size);
78
79 desc = dma->ch->device->device_prep_dma_memcpy(dma->ch, dest_addr,
80 src_addr, size, DMA_CTRL_ACK);
81 if (!desc){
82 dev_err(sst->dev, "error: dma prep memcpy failed\n");
83 return -EINVAL;
84 }
85
86 desc->callback = sst_dma_transfer_complete;
87 desc->callback_param = sst;
88
89 desc->tx_submit(desc);
90 dma_wait_for_async_tx(desc);
91
92 return 0;
93 }
94
95 /* copy to DSP */
sst_dsp_dma_copyto(struct sst_dsp * sst,dma_addr_t dest_addr,dma_addr_t src_addr,size_t size)96 int sst_dsp_dma_copyto(struct sst_dsp *sst, dma_addr_t dest_addr,
97 dma_addr_t src_addr, size_t size)
98 {
99 return sst_dsp_dma_copy(sst, dest_addr | SST_HSW_MASK_DMA_ADDR_DSP,
100 src_addr, size);
101 }
102 EXPORT_SYMBOL_GPL(sst_dsp_dma_copyto);
103
104 /* copy from DSP */
sst_dsp_dma_copyfrom(struct sst_dsp * sst,dma_addr_t dest_addr,dma_addr_t src_addr,size_t size)105 int sst_dsp_dma_copyfrom(struct sst_dsp *sst, dma_addr_t dest_addr,
106 dma_addr_t src_addr, size_t size)
107 {
108 return sst_dsp_dma_copy(sst, dest_addr,
109 src_addr | SST_HSW_MASK_DMA_ADDR_DSP, size);
110 }
111 EXPORT_SYMBOL_GPL(sst_dsp_dma_copyfrom);
112
113 /* remove module from memory - callers hold locks */
block_list_remove(struct sst_dsp * dsp,struct list_head * block_list)114 static void block_list_remove(struct sst_dsp *dsp,
115 struct list_head *block_list)
116 {
117 struct sst_mem_block *block, *tmp;
118 int err;
119
120 /* disable each block */
121 list_for_each_entry(block, block_list, module_list) {
122
123 if (block->ops && block->ops->disable) {
124 err = block->ops->disable(block);
125 if (err < 0)
126 dev_err(dsp->dev,
127 "error: cant disable block %d:%d\n",
128 block->type, block->index);
129 }
130 }
131
132 /* mark each block as free */
133 list_for_each_entry_safe(block, tmp, block_list, module_list) {
134 list_del(&block->module_list);
135 list_move(&block->list, &dsp->free_block_list);
136 dev_dbg(dsp->dev, "block freed %d:%d at offset 0x%x\n",
137 block->type, block->index, block->offset);
138 }
139 }
140
141 /* prepare the memory block to receive data from host - callers hold locks */
block_list_prepare(struct sst_dsp * dsp,struct list_head * block_list)142 static int block_list_prepare(struct sst_dsp *dsp,
143 struct list_head *block_list)
144 {
145 struct sst_mem_block *block;
146 int ret = 0;
147
148 /* enable each block so that's it'e ready for data */
149 list_for_each_entry(block, block_list, module_list) {
150
151 if (block->ops && block->ops->enable && !block->users) {
152 ret = block->ops->enable(block);
153 if (ret < 0) {
154 dev_err(dsp->dev,
155 "error: cant disable block %d:%d\n",
156 block->type, block->index);
157 goto err;
158 }
159 }
160 }
161 return ret;
162
163 err:
164 list_for_each_entry(block, block_list, module_list) {
165 if (block->ops && block->ops->disable)
166 block->ops->disable(block);
167 }
168 return ret;
169 }
170
dw_probe(struct device * dev,struct resource * mem,int irq)171 static struct dw_dma_chip *dw_probe(struct device *dev, struct resource *mem,
172 int irq)
173 {
174 struct dw_dma_chip *chip;
175 int err;
176
177 chip = devm_kzalloc(dev, sizeof(*chip), GFP_KERNEL);
178 if (!chip)
179 return ERR_PTR(-ENOMEM);
180
181 chip->irq = irq;
182 chip->regs = devm_ioremap_resource(dev, mem);
183 if (IS_ERR(chip->regs))
184 return ERR_CAST(chip->regs);
185
186 err = dma_coerce_mask_and_coherent(dev, DMA_BIT_MASK(31));
187 if (err)
188 return ERR_PTR(err);
189
190 chip->dev = dev;
191
192 err = dw_dma_probe(chip, NULL);
193 if (err)
194 return ERR_PTR(err);
195
196 return chip;
197 }
198
dw_remove(struct dw_dma_chip * chip)199 static void dw_remove(struct dw_dma_chip *chip)
200 {
201 dw_dma_remove(chip);
202 }
203
dma_chan_filter(struct dma_chan * chan,void * param)204 static bool dma_chan_filter(struct dma_chan *chan, void *param)
205 {
206 struct sst_dsp *dsp = (struct sst_dsp *)param;
207
208 return chan->device->dev == dsp->dma_dev;
209 }
210
sst_dsp_dma_get_channel(struct sst_dsp * dsp,int chan_id)211 int sst_dsp_dma_get_channel(struct sst_dsp *dsp, int chan_id)
212 {
213 struct sst_dma *dma = dsp->dma;
214 struct dma_slave_config slave;
215 dma_cap_mask_t mask;
216 int ret;
217
218 dma_cap_zero(mask);
219 dma_cap_set(DMA_SLAVE, mask);
220 dma_cap_set(DMA_MEMCPY, mask);
221
222 dma->ch = dma_request_channel(mask, dma_chan_filter, dsp);
223 if (dma->ch == NULL) {
224 dev_err(dsp->dev, "error: DMA request channel failed\n");
225 return -EIO;
226 }
227
228 memset(&slave, 0, sizeof(slave));
229 slave.direction = DMA_MEM_TO_DEV;
230 slave.src_addr_width =
231 slave.dst_addr_width = DMA_SLAVE_BUSWIDTH_4_BYTES;
232 slave.src_maxburst = slave.dst_maxburst = SST_DSP_DMA_MAX_BURST;
233
234 ret = dmaengine_slave_config(dma->ch, &slave);
235 if (ret) {
236 dev_err(dsp->dev, "error: unable to set DMA slave config %d\n",
237 ret);
238 dma_release_channel(dma->ch);
239 dma->ch = NULL;
240 }
241
242 return ret;
243 }
244 EXPORT_SYMBOL_GPL(sst_dsp_dma_get_channel);
245
sst_dsp_dma_put_channel(struct sst_dsp * dsp)246 void sst_dsp_dma_put_channel(struct sst_dsp *dsp)
247 {
248 struct sst_dma *dma = dsp->dma;
249
250 if (!dma->ch)
251 return;
252
253 dma_release_channel(dma->ch);
254 dma->ch = NULL;
255 }
256 EXPORT_SYMBOL_GPL(sst_dsp_dma_put_channel);
257
sst_dma_new(struct sst_dsp * sst)258 int sst_dma_new(struct sst_dsp *sst)
259 {
260 struct sst_pdata *sst_pdata = sst->pdata;
261 struct sst_dma *dma;
262 struct resource mem;
263 const char *dma_dev_name;
264 int ret = 0;
265
266 if (sst->pdata->resindex_dma_base == -1)
267 /* DMA is not used, return and squelsh error messages */
268 return 0;
269
270 /* configure the correct platform data for whatever DMA engine
271 * is attached to the ADSP IP. */
272 switch (sst->pdata->dma_engine) {
273 case SST_DMA_TYPE_DW:
274 dma_dev_name = "dw_dmac";
275 break;
276 default:
277 dev_err(sst->dev, "error: invalid DMA engine %d\n",
278 sst->pdata->dma_engine);
279 return -EINVAL;
280 }
281
282 dma = devm_kzalloc(sst->dev, sizeof(struct sst_dma), GFP_KERNEL);
283 if (!dma)
284 return -ENOMEM;
285
286 dma->sst = sst;
287
288 memset(&mem, 0, sizeof(mem));
289
290 mem.start = sst->addr.lpe_base + sst_pdata->dma_base;
291 mem.end = sst->addr.lpe_base + sst_pdata->dma_base + sst_pdata->dma_size - 1;
292 mem.flags = IORESOURCE_MEM;
293
294 /* now register DMA engine device */
295 dma->chip = dw_probe(sst->dma_dev, &mem, sst_pdata->irq);
296 if (IS_ERR(dma->chip)) {
297 dev_err(sst->dev, "error: DMA device register failed\n");
298 ret = PTR_ERR(dma->chip);
299 goto err_dma_dev;
300 }
301
302 sst->dma = dma;
303 sst->fw_use_dma = true;
304 return 0;
305
306 err_dma_dev:
307 devm_kfree(sst->dev, dma);
308 return ret;
309 }
310 EXPORT_SYMBOL(sst_dma_new);
311
sst_dma_free(struct sst_dma * dma)312 void sst_dma_free(struct sst_dma *dma)
313 {
314
315 if (dma == NULL)
316 return;
317
318 if (dma->ch)
319 dma_release_channel(dma->ch);
320
321 if (dma->chip)
322 dw_remove(dma->chip);
323
324 }
325 EXPORT_SYMBOL(sst_dma_free);
326
327 /* create new generic firmware object */
sst_fw_new(struct sst_dsp * dsp,const struct firmware * fw,void * private)328 struct sst_fw *sst_fw_new(struct sst_dsp *dsp,
329 const struct firmware *fw, void *private)
330 {
331 struct sst_fw *sst_fw;
332 int err;
333
334 if (!dsp->ops->parse_fw)
335 return NULL;
336
337 sst_fw = kzalloc(sizeof(*sst_fw), GFP_KERNEL);
338 if (sst_fw == NULL)
339 return NULL;
340
341 sst_fw->dsp = dsp;
342 sst_fw->private = private;
343 sst_fw->size = fw->size;
344
345 /* allocate DMA buffer to store FW data */
346 sst_fw->dma_buf = dma_alloc_coherent(dsp->dma_dev, sst_fw->size,
347 &sst_fw->dmable_fw_paddr, GFP_DMA | GFP_KERNEL);
348 if (!sst_fw->dma_buf) {
349 dev_err(dsp->dev, "error: DMA alloc failed\n");
350 kfree(sst_fw);
351 return NULL;
352 }
353
354 /* copy FW data to DMA-able memory */
355 memcpy((void *)sst_fw->dma_buf, (void *)fw->data, fw->size);
356
357 if (dsp->fw_use_dma) {
358 err = sst_dsp_dma_get_channel(dsp, 0);
359 if (err < 0)
360 goto chan_err;
361 }
362
363 /* call core specific FW paser to load FW data into DSP */
364 err = dsp->ops->parse_fw(sst_fw);
365 if (err < 0) {
366 dev_err(dsp->dev, "error: parse fw failed %d\n", err);
367 goto parse_err;
368 }
369
370 if (dsp->fw_use_dma)
371 sst_dsp_dma_put_channel(dsp);
372
373 mutex_lock(&dsp->mutex);
374 list_add(&sst_fw->list, &dsp->fw_list);
375 mutex_unlock(&dsp->mutex);
376
377 return sst_fw;
378
379 parse_err:
380 if (dsp->fw_use_dma)
381 sst_dsp_dma_put_channel(dsp);
382 chan_err:
383 dma_free_coherent(dsp->dma_dev, sst_fw->size,
384 sst_fw->dma_buf,
385 sst_fw->dmable_fw_paddr);
386 sst_fw->dma_buf = NULL;
387 kfree(sst_fw);
388 return NULL;
389 }
390 EXPORT_SYMBOL_GPL(sst_fw_new);
391
sst_fw_reload(struct sst_fw * sst_fw)392 int sst_fw_reload(struct sst_fw *sst_fw)
393 {
394 struct sst_dsp *dsp = sst_fw->dsp;
395 int ret;
396
397 dev_dbg(dsp->dev, "reloading firmware\n");
398
399 /* call core specific FW paser to load FW data into DSP */
400 ret = dsp->ops->parse_fw(sst_fw);
401 if (ret < 0)
402 dev_err(dsp->dev, "error: parse fw failed %d\n", ret);
403
404 return ret;
405 }
406 EXPORT_SYMBOL_GPL(sst_fw_reload);
407
sst_fw_unload(struct sst_fw * sst_fw)408 void sst_fw_unload(struct sst_fw *sst_fw)
409 {
410 struct sst_dsp *dsp = sst_fw->dsp;
411 struct sst_module *module, *mtmp;
412 struct sst_module_runtime *runtime, *rtmp;
413
414 dev_dbg(dsp->dev, "unloading firmware\n");
415
416 mutex_lock(&dsp->mutex);
417
418 /* check module by module */
419 list_for_each_entry_safe(module, mtmp, &dsp->module_list, list) {
420 if (module->sst_fw == sst_fw) {
421
422 /* remove runtime modules */
423 list_for_each_entry_safe(runtime, rtmp, &module->runtime_list, list) {
424
425 block_list_remove(dsp, &runtime->block_list);
426 list_del(&runtime->list);
427 kfree(runtime);
428 }
429
430 /* now remove the module */
431 block_list_remove(dsp, &module->block_list);
432 list_del(&module->list);
433 kfree(module);
434 }
435 }
436
437 /* remove all scratch blocks */
438 block_list_remove(dsp, &dsp->scratch_block_list);
439
440 mutex_unlock(&dsp->mutex);
441 }
442 EXPORT_SYMBOL_GPL(sst_fw_unload);
443
444 /* free single firmware object */
sst_fw_free(struct sst_fw * sst_fw)445 void sst_fw_free(struct sst_fw *sst_fw)
446 {
447 struct sst_dsp *dsp = sst_fw->dsp;
448
449 mutex_lock(&dsp->mutex);
450 list_del(&sst_fw->list);
451 mutex_unlock(&dsp->mutex);
452
453 if (sst_fw->dma_buf)
454 dma_free_coherent(dsp->dma_dev, sst_fw->size, sst_fw->dma_buf,
455 sst_fw->dmable_fw_paddr);
456 kfree(sst_fw);
457 }
458 EXPORT_SYMBOL_GPL(sst_fw_free);
459
460 /* free all firmware objects */
sst_fw_free_all(struct sst_dsp * dsp)461 void sst_fw_free_all(struct sst_dsp *dsp)
462 {
463 struct sst_fw *sst_fw, *t;
464
465 mutex_lock(&dsp->mutex);
466 list_for_each_entry_safe(sst_fw, t, &dsp->fw_list, list) {
467
468 list_del(&sst_fw->list);
469 dma_free_coherent(dsp->dev, sst_fw->size, sst_fw->dma_buf,
470 sst_fw->dmable_fw_paddr);
471 kfree(sst_fw);
472 }
473 mutex_unlock(&dsp->mutex);
474 }
475 EXPORT_SYMBOL_GPL(sst_fw_free_all);
476
477 /* create a new SST generic module from FW template */
sst_module_new(struct sst_fw * sst_fw,struct sst_module_template * template,void * private)478 struct sst_module *sst_module_new(struct sst_fw *sst_fw,
479 struct sst_module_template *template, void *private)
480 {
481 struct sst_dsp *dsp = sst_fw->dsp;
482 struct sst_module *sst_module;
483
484 sst_module = kzalloc(sizeof(*sst_module), GFP_KERNEL);
485 if (sst_module == NULL)
486 return NULL;
487
488 sst_module->id = template->id;
489 sst_module->dsp = dsp;
490 sst_module->sst_fw = sst_fw;
491 sst_module->scratch_size = template->scratch_size;
492 sst_module->persistent_size = template->persistent_size;
493 sst_module->entry = template->entry;
494 sst_module->state = SST_MODULE_STATE_UNLOADED;
495
496 INIT_LIST_HEAD(&sst_module->block_list);
497 INIT_LIST_HEAD(&sst_module->runtime_list);
498
499 mutex_lock(&dsp->mutex);
500 list_add(&sst_module->list, &dsp->module_list);
501 mutex_unlock(&dsp->mutex);
502
503 return sst_module;
504 }
505 EXPORT_SYMBOL_GPL(sst_module_new);
506
507 /* free firmware module and remove from available list */
sst_module_free(struct sst_module * sst_module)508 void sst_module_free(struct sst_module *sst_module)
509 {
510 struct sst_dsp *dsp = sst_module->dsp;
511
512 mutex_lock(&dsp->mutex);
513 list_del(&sst_module->list);
514 mutex_unlock(&dsp->mutex);
515
516 kfree(sst_module);
517 }
518 EXPORT_SYMBOL_GPL(sst_module_free);
519
sst_module_runtime_new(struct sst_module * module,int id,void * private)520 struct sst_module_runtime *sst_module_runtime_new(struct sst_module *module,
521 int id, void *private)
522 {
523 struct sst_dsp *dsp = module->dsp;
524 struct sst_module_runtime *runtime;
525
526 runtime = kzalloc(sizeof(*runtime), GFP_KERNEL);
527 if (runtime == NULL)
528 return NULL;
529
530 runtime->id = id;
531 runtime->dsp = dsp;
532 runtime->module = module;
533 INIT_LIST_HEAD(&runtime->block_list);
534
535 mutex_lock(&dsp->mutex);
536 list_add(&runtime->list, &module->runtime_list);
537 mutex_unlock(&dsp->mutex);
538
539 return runtime;
540 }
541 EXPORT_SYMBOL_GPL(sst_module_runtime_new);
542
sst_module_runtime_free(struct sst_module_runtime * runtime)543 void sst_module_runtime_free(struct sst_module_runtime *runtime)
544 {
545 struct sst_dsp *dsp = runtime->dsp;
546
547 mutex_lock(&dsp->mutex);
548 list_del(&runtime->list);
549 mutex_unlock(&dsp->mutex);
550
551 kfree(runtime);
552 }
553 EXPORT_SYMBOL_GPL(sst_module_runtime_free);
554
find_block(struct sst_dsp * dsp,struct sst_block_allocator * ba)555 static struct sst_mem_block *find_block(struct sst_dsp *dsp,
556 struct sst_block_allocator *ba)
557 {
558 struct sst_mem_block *block;
559
560 list_for_each_entry(block, &dsp->free_block_list, list) {
561 if (block->type == ba->type && block->offset == ba->offset)
562 return block;
563 }
564
565 return NULL;
566 }
567
568 /* Block allocator must be on block boundary */
block_alloc_contiguous(struct sst_dsp * dsp,struct sst_block_allocator * ba,struct list_head * block_list)569 static int block_alloc_contiguous(struct sst_dsp *dsp,
570 struct sst_block_allocator *ba, struct list_head *block_list)
571 {
572 struct list_head tmp = LIST_HEAD_INIT(tmp);
573 struct sst_mem_block *block;
574 u32 block_start = SST_HSW_BLOCK_ANY;
575 int size = ba->size, offset = ba->offset;
576
577 while (ba->size > 0) {
578
579 block = find_block(dsp, ba);
580 if (!block) {
581 list_splice(&tmp, &dsp->free_block_list);
582
583 ba->size = size;
584 ba->offset = offset;
585 return -ENOMEM;
586 }
587
588 list_move_tail(&block->list, &tmp);
589 ba->offset += block->size;
590 ba->size -= block->size;
591 }
592 ba->size = size;
593 ba->offset = offset;
594
595 list_for_each_entry(block, &tmp, list) {
596
597 if (block->offset < block_start)
598 block_start = block->offset;
599
600 list_add(&block->module_list, block_list);
601
602 dev_dbg(dsp->dev, "block allocated %d:%d at offset 0x%x\n",
603 block->type, block->index, block->offset);
604 }
605
606 list_splice(&tmp, &dsp->used_block_list);
607 return 0;
608 }
609
610 /* allocate first free DSP blocks for data - callers hold locks */
block_alloc(struct sst_dsp * dsp,struct sst_block_allocator * ba,struct list_head * block_list)611 static int block_alloc(struct sst_dsp *dsp, struct sst_block_allocator *ba,
612 struct list_head *block_list)
613 {
614 struct sst_mem_block *block, *tmp;
615 int ret = 0;
616
617 if (ba->size == 0)
618 return 0;
619
620 /* find first free whole blocks that can hold module */
621 list_for_each_entry_safe(block, tmp, &dsp->free_block_list, list) {
622
623 /* ignore blocks with wrong type */
624 if (block->type != ba->type)
625 continue;
626
627 if (ba->size > block->size)
628 continue;
629
630 ba->offset = block->offset;
631 block->bytes_used = ba->size % block->size;
632 list_add(&block->module_list, block_list);
633 list_move(&block->list, &dsp->used_block_list);
634 dev_dbg(dsp->dev, "block allocated %d:%d at offset 0x%x\n",
635 block->type, block->index, block->offset);
636 return 0;
637 }
638
639 /* then find free multiple blocks that can hold module */
640 list_for_each_entry_safe(block, tmp, &dsp->free_block_list, list) {
641
642 /* ignore blocks with wrong type */
643 if (block->type != ba->type)
644 continue;
645
646 /* do we span > 1 blocks */
647 if (ba->size > block->size) {
648
649 /* align ba to block boundary */
650 ba->offset = block->offset;
651
652 ret = block_alloc_contiguous(dsp, ba, block_list);
653 if (ret == 0)
654 return ret;
655
656 }
657 }
658
659 /* not enough free block space */
660 return -ENOMEM;
661 }
662
sst_alloc_blocks(struct sst_dsp * dsp,struct sst_block_allocator * ba,struct list_head * block_list)663 int sst_alloc_blocks(struct sst_dsp *dsp, struct sst_block_allocator *ba,
664 struct list_head *block_list)
665 {
666 int ret;
667
668 dev_dbg(dsp->dev, "block request 0x%x bytes at offset 0x%x type %d\n",
669 ba->size, ba->offset, ba->type);
670
671 mutex_lock(&dsp->mutex);
672
673 ret = block_alloc(dsp, ba, block_list);
674 if (ret < 0) {
675 dev_err(dsp->dev, "error: can't alloc blocks %d\n", ret);
676 goto out;
677 }
678
679 /* prepare DSP blocks for module usage */
680 ret = block_list_prepare(dsp, block_list);
681 if (ret < 0)
682 dev_err(dsp->dev, "error: prepare failed\n");
683
684 out:
685 mutex_unlock(&dsp->mutex);
686 return ret;
687 }
688 EXPORT_SYMBOL_GPL(sst_alloc_blocks);
689
sst_free_blocks(struct sst_dsp * dsp,struct list_head * block_list)690 int sst_free_blocks(struct sst_dsp *dsp, struct list_head *block_list)
691 {
692 mutex_lock(&dsp->mutex);
693 block_list_remove(dsp, block_list);
694 mutex_unlock(&dsp->mutex);
695 return 0;
696 }
697 EXPORT_SYMBOL_GPL(sst_free_blocks);
698
699 /* allocate memory blocks for static module addresses - callers hold locks */
block_alloc_fixed(struct sst_dsp * dsp,struct sst_block_allocator * ba,struct list_head * block_list)700 static int block_alloc_fixed(struct sst_dsp *dsp, struct sst_block_allocator *ba,
701 struct list_head *block_list)
702 {
703 struct sst_mem_block *block, *tmp;
704 struct sst_block_allocator ba_tmp = *ba;
705 u32 end = ba->offset + ba->size, block_end;
706 int err;
707
708 /* only IRAM/DRAM blocks are managed */
709 if (ba->type != SST_MEM_IRAM && ba->type != SST_MEM_DRAM)
710 return 0;
711
712 /* are blocks already attached to this module */
713 list_for_each_entry_safe(block, tmp, block_list, module_list) {
714
715 /* ignore blocks with wrong type */
716 if (block->type != ba->type)
717 continue;
718
719 block_end = block->offset + block->size;
720
721 /* find block that holds section */
722 if (ba->offset >= block->offset && end <= block_end)
723 return 0;
724
725 /* does block span more than 1 section */
726 if (ba->offset >= block->offset && ba->offset < block_end) {
727
728 /* align ba to block boundary */
729 ba_tmp.size -= block_end - ba->offset;
730 ba_tmp.offset = block_end;
731 err = block_alloc_contiguous(dsp, &ba_tmp, block_list);
732 if (err < 0)
733 return -ENOMEM;
734
735 /* module already owns blocks */
736 return 0;
737 }
738 }
739
740 /* find first free blocks that can hold section in free list */
741 list_for_each_entry_safe(block, tmp, &dsp->free_block_list, list) {
742 block_end = block->offset + block->size;
743
744 /* ignore blocks with wrong type */
745 if (block->type != ba->type)
746 continue;
747
748 /* find block that holds section */
749 if (ba->offset >= block->offset && end <= block_end) {
750
751 /* add block */
752 list_move(&block->list, &dsp->used_block_list);
753 list_add(&block->module_list, block_list);
754 dev_dbg(dsp->dev, "block allocated %d:%d at offset 0x%x\n",
755 block->type, block->index, block->offset);
756 return 0;
757 }
758
759 /* does block span more than 1 section */
760 if (ba->offset >= block->offset && ba->offset < block_end) {
761
762 /* add block */
763 list_move(&block->list, &dsp->used_block_list);
764 list_add(&block->module_list, block_list);
765 /* align ba to block boundary */
766 ba_tmp.size -= block_end - ba->offset;
767 ba_tmp.offset = block_end;
768
769 err = block_alloc_contiguous(dsp, &ba_tmp, block_list);
770 if (err < 0)
771 return -ENOMEM;
772
773 return 0;
774 }
775 }
776
777 return -ENOMEM;
778 }
779
780 /* Load fixed module data into DSP memory blocks */
sst_module_alloc_blocks(struct sst_module * module)781 int sst_module_alloc_blocks(struct sst_module *module)
782 {
783 struct sst_dsp *dsp = module->dsp;
784 struct sst_fw *sst_fw = module->sst_fw;
785 struct sst_block_allocator ba;
786 int ret;
787
788 memset(&ba, 0, sizeof(ba));
789 ba.size = module->size;
790 ba.type = module->type;
791 ba.offset = module->offset;
792
793 dev_dbg(dsp->dev, "block request 0x%x bytes at offset 0x%x type %d\n",
794 ba.size, ba.offset, ba.type);
795
796 mutex_lock(&dsp->mutex);
797
798 /* alloc blocks that includes this section */
799 ret = block_alloc_fixed(dsp, &ba, &module->block_list);
800 if (ret < 0) {
801 dev_err(dsp->dev,
802 "error: no free blocks for section at offset 0x%x size 0x%x\n",
803 module->offset, module->size);
804 mutex_unlock(&dsp->mutex);
805 return -ENOMEM;
806 }
807
808 /* prepare DSP blocks for module copy */
809 ret = block_list_prepare(dsp, &module->block_list);
810 if (ret < 0) {
811 dev_err(dsp->dev, "error: fw module prepare failed\n");
812 goto err;
813 }
814
815 /* copy partial module data to blocks */
816 if (dsp->fw_use_dma) {
817 ret = sst_dsp_dma_copyto(dsp,
818 dsp->addr.lpe_base + module->offset,
819 sst_fw->dmable_fw_paddr + module->data_offset,
820 module->size);
821 if (ret < 0) {
822 dev_err(dsp->dev, "error: module copy failed\n");
823 goto err;
824 }
825 } else
826 sst_memcpy32(dsp->addr.lpe + module->offset, module->data,
827 module->size);
828
829 mutex_unlock(&dsp->mutex);
830 return ret;
831
832 err:
833 block_list_remove(dsp, &module->block_list);
834 mutex_unlock(&dsp->mutex);
835 return ret;
836 }
837 EXPORT_SYMBOL_GPL(sst_module_alloc_blocks);
838
839 /* Unload entire module from DSP memory */
sst_module_free_blocks(struct sst_module * module)840 int sst_module_free_blocks(struct sst_module *module)
841 {
842 struct sst_dsp *dsp = module->dsp;
843
844 mutex_lock(&dsp->mutex);
845 block_list_remove(dsp, &module->block_list);
846 mutex_unlock(&dsp->mutex);
847 return 0;
848 }
849 EXPORT_SYMBOL_GPL(sst_module_free_blocks);
850
sst_module_runtime_alloc_blocks(struct sst_module_runtime * runtime,int offset)851 int sst_module_runtime_alloc_blocks(struct sst_module_runtime *runtime,
852 int offset)
853 {
854 struct sst_dsp *dsp = runtime->dsp;
855 struct sst_module *module = runtime->module;
856 struct sst_block_allocator ba;
857 int ret;
858
859 if (module->persistent_size == 0)
860 return 0;
861
862 memset(&ba, 0, sizeof(ba));
863 ba.size = module->persistent_size;
864 ba.type = SST_MEM_DRAM;
865
866 mutex_lock(&dsp->mutex);
867
868 /* do we need to allocate at a fixed address ? */
869 if (offset != 0) {
870
871 ba.offset = offset;
872
873 dev_dbg(dsp->dev, "persistent fixed block request 0x%x bytes type %d offset 0x%x\n",
874 ba.size, ba.type, ba.offset);
875
876 /* alloc blocks that includes this section */
877 ret = block_alloc_fixed(dsp, &ba, &runtime->block_list);
878
879 } else {
880 dev_dbg(dsp->dev, "persistent block request 0x%x bytes type %d\n",
881 ba.size, ba.type);
882
883 /* alloc blocks that includes this section */
884 ret = block_alloc(dsp, &ba, &runtime->block_list);
885 }
886 if (ret < 0) {
887 dev_err(dsp->dev,
888 "error: no free blocks for runtime module size 0x%x\n",
889 module->persistent_size);
890 mutex_unlock(&dsp->mutex);
891 return -ENOMEM;
892 }
893 runtime->persistent_offset = ba.offset;
894
895 /* prepare DSP blocks for module copy */
896 ret = block_list_prepare(dsp, &runtime->block_list);
897 if (ret < 0) {
898 dev_err(dsp->dev, "error: runtime block prepare failed\n");
899 goto err;
900 }
901
902 mutex_unlock(&dsp->mutex);
903 return ret;
904
905 err:
906 block_list_remove(dsp, &module->block_list);
907 mutex_unlock(&dsp->mutex);
908 return ret;
909 }
910 EXPORT_SYMBOL_GPL(sst_module_runtime_alloc_blocks);
911
sst_module_runtime_free_blocks(struct sst_module_runtime * runtime)912 int sst_module_runtime_free_blocks(struct sst_module_runtime *runtime)
913 {
914 struct sst_dsp *dsp = runtime->dsp;
915
916 mutex_lock(&dsp->mutex);
917 block_list_remove(dsp, &runtime->block_list);
918 mutex_unlock(&dsp->mutex);
919 return 0;
920 }
921 EXPORT_SYMBOL_GPL(sst_module_runtime_free_blocks);
922
sst_module_runtime_save(struct sst_module_runtime * runtime,struct sst_module_runtime_context * context)923 int sst_module_runtime_save(struct sst_module_runtime *runtime,
924 struct sst_module_runtime_context *context)
925 {
926 struct sst_dsp *dsp = runtime->dsp;
927 struct sst_module *module = runtime->module;
928 int ret = 0;
929
930 dev_dbg(dsp->dev, "saving runtime %d memory at 0x%x size 0x%x\n",
931 runtime->id, runtime->persistent_offset,
932 module->persistent_size);
933
934 context->buffer = dma_alloc_coherent(dsp->dma_dev,
935 module->persistent_size,
936 &context->dma_buffer, GFP_DMA | GFP_KERNEL);
937 if (!context->buffer) {
938 dev_err(dsp->dev, "error: DMA context alloc failed\n");
939 return -ENOMEM;
940 }
941
942 mutex_lock(&dsp->mutex);
943
944 if (dsp->fw_use_dma) {
945
946 ret = sst_dsp_dma_get_channel(dsp, 0);
947 if (ret < 0)
948 goto err;
949
950 ret = sst_dsp_dma_copyfrom(dsp, context->dma_buffer,
951 dsp->addr.lpe_base + runtime->persistent_offset,
952 module->persistent_size);
953 sst_dsp_dma_put_channel(dsp);
954 if (ret < 0) {
955 dev_err(dsp->dev, "error: context copy failed\n");
956 goto err;
957 }
958 } else
959 sst_memcpy32(context->buffer, dsp->addr.lpe +
960 runtime->persistent_offset,
961 module->persistent_size);
962
963 err:
964 mutex_unlock(&dsp->mutex);
965 return ret;
966 }
967 EXPORT_SYMBOL_GPL(sst_module_runtime_save);
968
sst_module_runtime_restore(struct sst_module_runtime * runtime,struct sst_module_runtime_context * context)969 int sst_module_runtime_restore(struct sst_module_runtime *runtime,
970 struct sst_module_runtime_context *context)
971 {
972 struct sst_dsp *dsp = runtime->dsp;
973 struct sst_module *module = runtime->module;
974 int ret = 0;
975
976 dev_dbg(dsp->dev, "restoring runtime %d memory at 0x%x size 0x%x\n",
977 runtime->id, runtime->persistent_offset,
978 module->persistent_size);
979
980 mutex_lock(&dsp->mutex);
981
982 if (!context->buffer) {
983 dev_info(dsp->dev, "no context buffer need to restore!\n");
984 goto err;
985 }
986
987 if (dsp->fw_use_dma) {
988
989 ret = sst_dsp_dma_get_channel(dsp, 0);
990 if (ret < 0)
991 goto err;
992
993 ret = sst_dsp_dma_copyto(dsp,
994 dsp->addr.lpe_base + runtime->persistent_offset,
995 context->dma_buffer, module->persistent_size);
996 sst_dsp_dma_put_channel(dsp);
997 if (ret < 0) {
998 dev_err(dsp->dev, "error: module copy failed\n");
999 goto err;
1000 }
1001 } else
1002 sst_memcpy32(dsp->addr.lpe + runtime->persistent_offset,
1003 context->buffer, module->persistent_size);
1004
1005 dma_free_coherent(dsp->dma_dev, module->persistent_size,
1006 context->buffer, context->dma_buffer);
1007 context->buffer = NULL;
1008
1009 err:
1010 mutex_unlock(&dsp->mutex);
1011 return ret;
1012 }
1013 EXPORT_SYMBOL_GPL(sst_module_runtime_restore);
1014
1015 /* register a DSP memory block for use with FW based modules */
sst_mem_block_register(struct sst_dsp * dsp,u32 offset,u32 size,enum sst_mem_type type,struct sst_block_ops * ops,u32 index,void * private)1016 struct sst_mem_block *sst_mem_block_register(struct sst_dsp *dsp, u32 offset,
1017 u32 size, enum sst_mem_type type, struct sst_block_ops *ops, u32 index,
1018 void *private)
1019 {
1020 struct sst_mem_block *block;
1021
1022 block = kzalloc(sizeof(*block), GFP_KERNEL);
1023 if (block == NULL)
1024 return NULL;
1025
1026 block->offset = offset;
1027 block->size = size;
1028 block->index = index;
1029 block->type = type;
1030 block->dsp = dsp;
1031 block->private = private;
1032 block->ops = ops;
1033
1034 mutex_lock(&dsp->mutex);
1035 list_add(&block->list, &dsp->free_block_list);
1036 mutex_unlock(&dsp->mutex);
1037
1038 return block;
1039 }
1040 EXPORT_SYMBOL_GPL(sst_mem_block_register);
1041
1042 /* unregister all DSP memory blocks */
sst_mem_block_unregister_all(struct sst_dsp * dsp)1043 void sst_mem_block_unregister_all(struct sst_dsp *dsp)
1044 {
1045 struct sst_mem_block *block, *tmp;
1046
1047 mutex_lock(&dsp->mutex);
1048
1049 /* unregister used blocks */
1050 list_for_each_entry_safe(block, tmp, &dsp->used_block_list, list) {
1051 list_del(&block->list);
1052 kfree(block);
1053 }
1054
1055 /* unregister free blocks */
1056 list_for_each_entry_safe(block, tmp, &dsp->free_block_list, list) {
1057 list_del(&block->list);
1058 kfree(block);
1059 }
1060
1061 mutex_unlock(&dsp->mutex);
1062 }
1063 EXPORT_SYMBOL_GPL(sst_mem_block_unregister_all);
1064
1065 /* allocate scratch buffer blocks */
sst_block_alloc_scratch(struct sst_dsp * dsp)1066 int sst_block_alloc_scratch(struct sst_dsp *dsp)
1067 {
1068 struct sst_module *module;
1069 struct sst_block_allocator ba;
1070 int ret;
1071
1072 mutex_lock(&dsp->mutex);
1073
1074 /* calculate required scratch size */
1075 dsp->scratch_size = 0;
1076 list_for_each_entry(module, &dsp->module_list, list) {
1077 dev_dbg(dsp->dev, "module %d scratch req 0x%x bytes\n",
1078 module->id, module->scratch_size);
1079 if (dsp->scratch_size < module->scratch_size)
1080 dsp->scratch_size = module->scratch_size;
1081 }
1082
1083 dev_dbg(dsp->dev, "scratch buffer required is 0x%x bytes\n",
1084 dsp->scratch_size);
1085
1086 if (dsp->scratch_size == 0) {
1087 dev_info(dsp->dev, "no modules need scratch buffer\n");
1088 mutex_unlock(&dsp->mutex);
1089 return 0;
1090 }
1091
1092 /* allocate blocks for module scratch buffers */
1093 dev_dbg(dsp->dev, "allocating scratch blocks\n");
1094
1095 ba.size = dsp->scratch_size;
1096 ba.type = SST_MEM_DRAM;
1097
1098 /* do we need to allocate at fixed offset */
1099 if (dsp->scratch_offset != 0) {
1100
1101 dev_dbg(dsp->dev, "block request 0x%x bytes type %d at 0x%x\n",
1102 ba.size, ba.type, ba.offset);
1103
1104 ba.offset = dsp->scratch_offset;
1105
1106 /* alloc blocks that includes this section */
1107 ret = block_alloc_fixed(dsp, &ba, &dsp->scratch_block_list);
1108
1109 } else {
1110 dev_dbg(dsp->dev, "block request 0x%x bytes type %d\n",
1111 ba.size, ba.type);
1112
1113 ba.offset = 0;
1114 ret = block_alloc(dsp, &ba, &dsp->scratch_block_list);
1115 }
1116 if (ret < 0) {
1117 dev_err(dsp->dev, "error: can't alloc scratch blocks\n");
1118 mutex_unlock(&dsp->mutex);
1119 return ret;
1120 }
1121
1122 ret = block_list_prepare(dsp, &dsp->scratch_block_list);
1123 if (ret < 0) {
1124 dev_err(dsp->dev, "error: scratch block prepare failed\n");
1125 mutex_unlock(&dsp->mutex);
1126 return ret;
1127 }
1128
1129 /* assign the same offset of scratch to each module */
1130 dsp->scratch_offset = ba.offset;
1131 mutex_unlock(&dsp->mutex);
1132 return dsp->scratch_size;
1133 }
1134 EXPORT_SYMBOL_GPL(sst_block_alloc_scratch);
1135
1136 /* free all scratch blocks */
sst_block_free_scratch(struct sst_dsp * dsp)1137 void sst_block_free_scratch(struct sst_dsp *dsp)
1138 {
1139 mutex_lock(&dsp->mutex);
1140 block_list_remove(dsp, &dsp->scratch_block_list);
1141 mutex_unlock(&dsp->mutex);
1142 }
1143 EXPORT_SYMBOL_GPL(sst_block_free_scratch);
1144
1145 /* get a module from it's unique ID */
sst_module_get_from_id(struct sst_dsp * dsp,u32 id)1146 struct sst_module *sst_module_get_from_id(struct sst_dsp *dsp, u32 id)
1147 {
1148 struct sst_module *module;
1149
1150 mutex_lock(&dsp->mutex);
1151
1152 list_for_each_entry(module, &dsp->module_list, list) {
1153 if (module->id == id) {
1154 mutex_unlock(&dsp->mutex);
1155 return module;
1156 }
1157 }
1158
1159 mutex_unlock(&dsp->mutex);
1160 return NULL;
1161 }
1162 EXPORT_SYMBOL_GPL(sst_module_get_from_id);
1163
sst_module_runtime_get_from_id(struct sst_module * module,u32 id)1164 struct sst_module_runtime *sst_module_runtime_get_from_id(
1165 struct sst_module *module, u32 id)
1166 {
1167 struct sst_module_runtime *runtime;
1168 struct sst_dsp *dsp = module->dsp;
1169
1170 mutex_lock(&dsp->mutex);
1171
1172 list_for_each_entry(runtime, &module->runtime_list, list) {
1173 if (runtime->id == id) {
1174 mutex_unlock(&dsp->mutex);
1175 return runtime;
1176 }
1177 }
1178
1179 mutex_unlock(&dsp->mutex);
1180 return NULL;
1181 }
1182 EXPORT_SYMBOL_GPL(sst_module_runtime_get_from_id);
1183
1184 /* returns block address in DSP address space */
sst_dsp_get_offset(struct sst_dsp * dsp,u32 offset,enum sst_mem_type type)1185 u32 sst_dsp_get_offset(struct sst_dsp *dsp, u32 offset,
1186 enum sst_mem_type type)
1187 {
1188 switch (type) {
1189 case SST_MEM_IRAM:
1190 return offset - dsp->addr.iram_offset +
1191 dsp->addr.dsp_iram_offset;
1192 case SST_MEM_DRAM:
1193 return offset - dsp->addr.dram_offset +
1194 dsp->addr.dsp_dram_offset;
1195 default:
1196 return 0;
1197 }
1198 }
1199 EXPORT_SYMBOL_GPL(sst_dsp_get_offset);
1200