1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3 * Copyright (C) 2013 Red Hat
4 * Author: Rob Clark <robdclark@gmail.com>
5 *
6 * Copyright (c) 2014 The Linux Foundation. All rights reserved.
7 */
8
9 #include <linux/ascii85.h>
10 #include <linux/interconnect.h>
11 #include <linux/firmware/qcom/qcom_pas.h>
12 #include <linux/firmware/qcom/qcom_scm.h>
13 #include <linux/kernel.h>
14 #include <linux/of_reserved_mem.h>
15 #include <linux/pm_opp.h>
16 #include <linux/slab.h>
17 #include <linux/soc/qcom/mdt_loader.h>
18 #include <linux/nvmem-consumer.h>
19 #include <soc/qcom/ocmem.h>
20 #include "adreno_gpu.h"
21 #include "a6xx_gpu.h"
22 #include "msm_gem.h"
23 #include "msm_mmu.h"
24
25 static u64 address_space_size = 0;
26 MODULE_PARM_DESC(address_space_size, "Override for size of processes private GPU address space");
27 module_param(address_space_size, ullong, 0600);
28
29 static bool zap_available = true;
30
zap_shader_load_mdt(struct msm_gpu * gpu,const char * fwname,u32 pasid)31 static int zap_shader_load_mdt(struct msm_gpu *gpu, const char *fwname,
32 u32 pasid)
33 {
34 struct device *dev = &gpu->pdev->dev;
35 const struct firmware *fw;
36 const char *signed_fwname = NULL;
37 struct device_node *np;
38 struct resource r;
39 phys_addr_t mem_phys;
40 ssize_t mem_size;
41 void *mem_region = NULL;
42 int ret;
43
44 if (!IS_ENABLED(CONFIG_ARCH_QCOM)) {
45 zap_available = false;
46 return -EINVAL;
47 }
48
49 np = of_get_available_child_by_name(dev->of_node, "zap-shader");
50 if (!np) {
51 zap_available = false;
52 return -ENODEV;
53 }
54
55 /* We need PAS to be able to load the firmware */
56 if (!qcom_pas_is_available()) {
57 DRM_DEV_ERROR(dev, "PAS is not available\n");
58 return -EPROBE_DEFER;
59 }
60
61 ret = of_reserved_mem_region_to_resource(np, 0, &r);
62 if (ret) {
63 zap_available = false;
64 return ret;
65 }
66 mem_phys = r.start;
67
68 /*
69 * Check for a firmware-name property. This is the new scheme
70 * to handle firmware that may be signed with device specific
71 * keys, allowing us to have a different zap fw path for different
72 * devices.
73 *
74 * If the firmware-name property is found, we bypass the
75 * adreno_request_fw() mechanism, because we don't need to handle
76 * the /lib/firmware/qcom/... vs /lib/firmware/... case.
77 *
78 * If the firmware-name property is not found, for backwards
79 * compatibility we fall back to the fwname from the gpulist
80 * table.
81 */
82 of_property_read_string_index(np, "firmware-name", 0, &signed_fwname);
83 if (signed_fwname) {
84 fwname = signed_fwname;
85 ret = request_firmware_direct(&fw, fwname, gpu->dev->dev);
86 if (ret)
87 fw = ERR_PTR(ret);
88 } else if (fwname) {
89 /* Request the MDT file from the default location: */
90 fw = adreno_request_fw(to_adreno_gpu(gpu), fwname);
91 } else {
92 /*
93 * For new targets, we require the firmware-name property,
94 * if a zap-shader is required, rather than falling back
95 * to a firmware name specified in gpulist.
96 *
97 * Because the firmware is signed with a (potentially)
98 * device specific key, having the name come from gpulist
99 * was a bad idea, and is only provided for backwards
100 * compatibility for older targets.
101 */
102 return -ENOENT;
103 }
104
105 if (IS_ERR(fw)) {
106 DRM_DEV_ERROR(dev, "Unable to load %s\n", fwname);
107 return PTR_ERR(fw);
108 }
109
110 /* Figure out how much memory we need */
111 mem_size = qcom_mdt_get_size(fw);
112 if (mem_size < 0) {
113 ret = mem_size;
114 goto out;
115 }
116
117 if (mem_size > resource_size(&r)) {
118 DRM_DEV_ERROR(dev,
119 "memory region is too small to load the MDT\n");
120 ret = -E2BIG;
121 goto out;
122 }
123
124 /* Allocate memory for the firmware image */
125 mem_region = memremap(mem_phys, mem_size, MEMREMAP_WC);
126 if (!mem_region) {
127 ret = -ENOMEM;
128 goto out;
129 }
130
131 /*
132 * Load the rest of the MDT
133 *
134 * Note that we could be dealing with two different paths, since
135 * with upstream linux-firmware it would be in a qcom/ subdir..
136 * adreno_request_fw() handles this, but qcom_mdt_load() does
137 * not. But since we've already gotten through adreno_request_fw()
138 * we know which of the two cases it is:
139 */
140 if (signed_fwname || (to_adreno_gpu(gpu)->fwloc == FW_LOCATION_LEGACY)) {
141 ret = qcom_mdt_load(dev, fw, fwname, pasid,
142 mem_region, mem_phys, mem_size, NULL);
143 } else {
144 char *newname;
145
146 newname = kasprintf(GFP_KERNEL, "qcom/%s", fwname);
147
148 ret = qcom_mdt_load(dev, fw, newname, pasid,
149 mem_region, mem_phys, mem_size, NULL);
150 kfree(newname);
151 }
152 if (ret)
153 goto out;
154
155 /* Send the image to the secure world */
156 ret = qcom_pas_auth_and_reset(pasid);
157
158 /*
159 * If the pas call returns -EOPNOTSUPP we assume that this target
160 * doesn't need/support the zap shader so quietly fail
161 */
162 if (ret == -EOPNOTSUPP)
163 zap_available = false;
164 else if (ret)
165 DRM_DEV_ERROR(dev, "Unable to authorize the image\n");
166
167 out:
168 if (mem_region)
169 memunmap(mem_region);
170
171 release_firmware(fw);
172
173 return ret;
174 }
175
adreno_zap_shader_load(struct msm_gpu * gpu,u32 pasid)176 int adreno_zap_shader_load(struct msm_gpu *gpu, u32 pasid)
177 {
178 struct adreno_gpu *adreno_gpu = to_adreno_gpu(gpu);
179
180 /* Short cut if we determine the zap shader isn't available/needed */
181 if (!zap_available)
182 return -ENODEV;
183
184 return zap_shader_load_mdt(gpu, adreno_gpu->info->zapfw, pasid);
185 }
186
187 struct drm_gpuvm *
adreno_create_vm(struct msm_gpu * gpu,struct platform_device * pdev)188 adreno_create_vm(struct msm_gpu *gpu,
189 struct platform_device *pdev)
190 {
191 return adreno_iommu_create_vm(gpu, pdev, 0);
192 }
193
194 struct drm_gpuvm *
adreno_iommu_create_vm(struct msm_gpu * gpu,struct platform_device * pdev,unsigned long quirks)195 adreno_iommu_create_vm(struct msm_gpu *gpu,
196 struct platform_device *pdev,
197 unsigned long quirks)
198 {
199 struct iommu_domain_geometry *geometry;
200 struct msm_mmu *mmu;
201 struct drm_gpuvm *vm;
202 u64 start, size;
203
204 mmu = msm_iommu_gpu_new(&pdev->dev, gpu, quirks);
205 if (IS_ERR(mmu))
206 return ERR_CAST(mmu);
207
208 geometry = msm_iommu_get_geometry(mmu);
209 if (IS_ERR(geometry))
210 return ERR_CAST(geometry);
211
212 /*
213 * Use the aperture start or SZ_16M, whichever is greater. This will
214 * ensure that we align with the allocated pagetable range while still
215 * allowing room in the lower 32 bits for GMEM and whatnot
216 */
217 start = max_t(u64, SZ_16M, geometry->aperture_start);
218 size = geometry->aperture_end - start + 1;
219
220 vm = msm_gem_vm_create(gpu->dev, mmu, "gpu", start & GENMASK_ULL(48, 0),
221 size, true);
222
223 if (IS_ERR(vm) && !IS_ERR(mmu))
224 mmu->funcs->destroy(mmu);
225
226 return vm;
227 }
228
adreno_private_vm_size(struct msm_gpu * gpu)229 u64 adreno_private_vm_size(struct msm_gpu *gpu)
230 {
231 struct adreno_gpu *adreno_gpu = to_adreno_gpu(gpu);
232 struct adreno_smmu_priv *adreno_smmu = dev_get_drvdata(&gpu->pdev->dev);
233 const struct io_pgtable_cfg *ttbr1_cfg;
234
235 if (address_space_size)
236 return address_space_size;
237
238 if (adreno_gpu->info->quirks & ADRENO_QUIRK_4GB_VA)
239 return SZ_4G;
240
241 if (!adreno_smmu || !adreno_smmu->get_ttbr1_cfg)
242 return SZ_4G;
243
244 ttbr1_cfg = adreno_smmu->get_ttbr1_cfg(adreno_smmu->cookie);
245
246 /*
247 * Userspace VM is actually using TTBR0, but both are the same size,
248 * with b48 (sign bit) selecting which TTBRn to use. So if IAS is
249 * 48, the total (kernel+user) address space size is effectively
250 * 49 bits. But what userspace is control of is the lower 48.
251 */
252 return BIT(ttbr1_cfg->ias) - ADRENO_VM_START;
253 }
254
adreno_check_and_reenable_stall(struct adreno_gpu * adreno_gpu)255 void adreno_check_and_reenable_stall(struct adreno_gpu *adreno_gpu)
256 {
257 struct msm_gpu *gpu = &adreno_gpu->base;
258 struct msm_drm_private *priv = gpu->dev->dev_private;
259 unsigned long flags;
260
261 /*
262 * Wait until the cooldown period has passed and we would actually
263 * collect a crashdump to re-enable stall-on-fault.
264 */
265 spin_lock_irqsave(&priv->fault_stall_lock, flags);
266 if (!priv->stall_enabled &&
267 ktime_after(ktime_get(), priv->stall_reenable_time) &&
268 !READ_ONCE(gpu->crashstate)) {
269 struct msm_mmu *mmu = to_msm_vm(gpu->vm)->mmu;
270
271 priv->stall_enabled = true;
272
273 mmu->funcs->set_stall(mmu, true);
274 }
275 spin_unlock_irqrestore(&priv->fault_stall_lock, flags);
276 }
277
278 #define ARM_SMMU_FSR_TF BIT(1)
279 #define ARM_SMMU_FSR_PF BIT(3)
280 #define ARM_SMMU_FSR_EF BIT(4)
281 #define ARM_SMMU_FSR_SS BIT(30)
282
adreno_fault_handler(struct msm_gpu * gpu,unsigned long iova,int flags,struct adreno_smmu_fault_info * info,const char * block,u32 scratch[4])283 int adreno_fault_handler(struct msm_gpu *gpu, unsigned long iova, int flags,
284 struct adreno_smmu_fault_info *info, const char *block,
285 u32 scratch[4])
286 {
287 struct adreno_gpu *adreno_gpu = container_of(gpu, struct adreno_gpu, base);
288 struct msm_drm_private *priv = gpu->dev->dev_private;
289 struct msm_mmu *mmu = to_msm_vm(gpu->vm)->mmu;
290 const char *type = "UNKNOWN";
291 bool do_devcoredump = info && (info->fsr & ARM_SMMU_FSR_SS) &&
292 !READ_ONCE(gpu->crashstate);
293 unsigned long irq_flags;
294
295 /*
296 * In case there is a subsequent storm of pagefaults, disable
297 * stall-on-fault for at least half a second.
298 */
299 spin_lock_irqsave(&priv->fault_stall_lock, irq_flags);
300 if (priv->stall_enabled) {
301 priv->stall_enabled = false;
302
303 mmu->funcs->set_stall(mmu, false);
304 }
305
306 priv->stall_reenable_time = ktime_add_ms(ktime_get(), 500);
307 spin_unlock_irqrestore(&priv->fault_stall_lock, irq_flags);
308
309 /*
310 * Print a default message if we couldn't get the data from the
311 * adreno-smmu-priv
312 */
313 if (!info) {
314 pr_warn_ratelimited("*** gpu fault: iova=%.16lx flags=%d (%u,%u,%u,%u)\n",
315 iova, flags,
316 scratch[0], scratch[1], scratch[2], scratch[3]);
317
318 return 0;
319 }
320
321 if (info->fsr & ARM_SMMU_FSR_TF)
322 type = "TRANSLATION";
323 else if (info->fsr & ARM_SMMU_FSR_PF)
324 type = "PERMISSION";
325 else if (info->fsr & ARM_SMMU_FSR_EF)
326 type = "EXTERNAL";
327
328 pr_warn_ratelimited("*** gpu fault: ttbr0=%.16llx iova=%.16lx dir=%s type=%s source=%s (%u,%u,%u,%u)\n",
329 info->ttbr0, iova,
330 flags & IOMMU_FAULT_WRITE ? "WRITE" : "READ",
331 type, block,
332 scratch[0], scratch[1], scratch[2], scratch[3]);
333
334 if (do_devcoredump) {
335 struct msm_gpu_fault_info fault_info = {};
336
337 /* Turn off the hangcheck timer to keep it from bothering us */
338 timer_delete(&gpu->hangcheck_timer);
339
340 /* Let any concurrent GMU transactions know that the MMU may be
341 * blocked for a while and they should wait on us.
342 */
343 reinit_completion(&adreno_gpu->fault_coredump_done);
344
345 fault_info.ttbr0 = info->ttbr0;
346 fault_info.iova = iova;
347 fault_info.flags = flags;
348 fault_info.type = type;
349 fault_info.block = block;
350
351 msm_gpu_fault_crashstate_capture(gpu, &fault_info);
352
353 complete_all(&adreno_gpu->fault_coredump_done);
354 }
355
356 return 0;
357 }
358
359 static bool
valid_per_process_vm(struct msm_gpu * gpu,struct drm_gpuvm * vm)360 valid_per_process_vm(struct msm_gpu *gpu, struct drm_gpuvm *vm)
361 {
362 return vm && (vm != gpu->vm);
363 }
364
adreno_get_param(struct msm_gpu * gpu,struct msm_context * ctx,uint32_t param,uint64_t * value,uint32_t * len)365 int adreno_get_param(struct msm_gpu *gpu, struct msm_context *ctx,
366 uint32_t param, uint64_t *value, uint32_t *len)
367 {
368 struct adreno_gpu *adreno_gpu = to_adreno_gpu(gpu);
369 struct drm_device *drm = gpu->dev;
370 /* Note ctx can be NULL when called from rd_open(): */
371 struct drm_gpuvm *vm = ctx ? msm_context_vm(drm, ctx) : NULL;
372
373 /* No pointer params yet */
374 if (*len != 0)
375 return UERR(EINVAL, drm, "invalid len");
376
377 switch (param) {
378 case MSM_PARAM_GPU_ID:
379 *value = adreno_gpu->info->revn;
380 return 0;
381 case MSM_PARAM_GMEM_SIZE:
382 *value = adreno_gpu->info->gmem;
383 return 0;
384 case MSM_PARAM_GMEM_BASE:
385 if (adreno_gpu->info->family >= ADRENO_6XX_GEN3)
386 *value = 0;
387 else
388 *value = 0x100000;
389 return 0;
390 case MSM_PARAM_CHIP_ID:
391 *value = adreno_gpu->chip_id;
392 if (!adreno_gpu->info->revn)
393 *value |= ((uint64_t) adreno_gpu->speedbin) << 32;
394 return 0;
395 case MSM_PARAM_MAX_FREQ:
396 *value = adreno_gpu->base.fast_rate;
397 return 0;
398 case MSM_PARAM_TIMESTAMP:
399 if (adreno_gpu->funcs->get_timestamp) {
400 pm_runtime_get_sync(&gpu->pdev->dev);
401 *value = adreno_gpu->funcs->get_timestamp(gpu);
402 pm_runtime_put_autosuspend(&gpu->pdev->dev);
403
404 return 0;
405 }
406 return -EINVAL;
407 case MSM_PARAM_PRIORITIES:
408 *value = gpu->nr_rings * NR_SCHED_PRIORITIES;
409 return 0;
410 case MSM_PARAM_PP_PGTABLE:
411 *value = 0;
412 return 0;
413 case MSM_PARAM_FAULTS:
414 if (vm)
415 *value = gpu->global_faults + to_msm_vm(vm)->faults;
416 else
417 *value = gpu->global_faults;
418 return 0;
419 case MSM_PARAM_SUSPENDS:
420 *value = gpu->suspend_count;
421 return 0;
422 case MSM_PARAM_VA_START:
423 if (!valid_per_process_vm(gpu, vm))
424 return UERR(EINVAL, drm, "requires per-process pgtables");
425 *value = vm->mm_start;
426 return 0;
427 case MSM_PARAM_VA_SIZE:
428 if (!valid_per_process_vm(gpu, vm))
429 return UERR(EINVAL, drm, "requires per-process pgtables");
430 *value = vm->mm_range;
431 return 0;
432 case MSM_PARAM_HIGHEST_BANK_BIT:
433 if (!adreno_gpu->ubwc_config)
434 return UERR(ENOENT, drm, "no UBWC on this platform");
435 *value = adreno_gpu->ubwc_config->highest_bank_bit;
436 return 0;
437 case MSM_PARAM_RAYTRACING:
438 *value = adreno_gpu->has_ray_tracing;
439 return 0;
440 case MSM_PARAM_UBWC_SWIZZLE:
441 if (!adreno_gpu->ubwc_config)
442 return UERR(ENOENT, drm, "no UBWC on this platform");
443 *value = qcom_ubwc_swizzle(adreno_gpu->ubwc_config);
444 return 0;
445 case MSM_PARAM_MACROTILE_MODE:
446 if (!adreno_gpu->ubwc_config)
447 return UERR(ENOENT, drm, "no UBWC on this platform");
448 *value = qcom_ubwc_macrotile_mode(adreno_gpu->ubwc_config);
449 return 0;
450 case MSM_PARAM_UCHE_TRAP_BASE:
451 *value = adreno_gpu->uche_trap_base;
452 return 0;
453 case MSM_PARAM_HAS_PRR:
454 *value = adreno_smmu_has_prr(gpu);
455 return 0;
456 case MSM_PARAM_AQE:
457 *value = !!(adreno_gpu->funcs->aqe_is_enabled &&
458 adreno_gpu->funcs->aqe_is_enabled(adreno_gpu));
459 return 0;
460 default:
461 return UERR(EINVAL, drm, "%s: invalid param: %u", gpu->name, param);
462 }
463 }
464
adreno_set_param(struct msm_gpu * gpu,struct msm_context * ctx,uint32_t param,uint64_t value,uint32_t len)465 int adreno_set_param(struct msm_gpu *gpu, struct msm_context *ctx,
466 uint32_t param, uint64_t value, uint32_t len)
467 {
468 struct drm_device *drm = gpu->dev;
469
470 switch (param) {
471 case MSM_PARAM_COMM:
472 case MSM_PARAM_CMDLINE:
473 /* kstrdup_quotable_cmdline() limits to PAGE_SIZE, so
474 * that should be a reasonable upper bound
475 */
476 if (len > PAGE_SIZE)
477 return UERR(EINVAL, drm, "invalid len");
478 break;
479 default:
480 if (len != 0)
481 return UERR(EINVAL, drm, "invalid len");
482 }
483
484 switch (param) {
485 case MSM_PARAM_COMM:
486 case MSM_PARAM_CMDLINE: {
487 char *str, **paramp;
488
489 str = memdup_user_nul(u64_to_user_ptr(value), len);
490 if (IS_ERR(str))
491 return PTR_ERR(str);
492
493 mutex_lock(&gpu->lock);
494
495 if (param == MSM_PARAM_COMM) {
496 paramp = &ctx->comm;
497 } else {
498 paramp = &ctx->cmdline;
499 }
500
501 kfree(*paramp);
502 *paramp = str;
503
504 mutex_unlock(&gpu->lock);
505
506 return 0;
507 }
508 case MSM_PARAM_SYSPROF:
509 if (!perfmon_capable())
510 return UERR(EPERM, drm, "invalid permissions");
511 return msm_context_set_sysprof(ctx, gpu, value);
512 case MSM_PARAM_EN_VM_BIND: {
513 guard(rwsem_read)(&ctx->ctxlock);
514
515 /* We can only support VM_BIND with per-process pgtables: */
516 if (!gpu->funcs->create_private_vm)
517 return UERR(EINVAL, drm, "requires per-process pgtables");
518
519 /*
520 * We can only swtich to VM_BIND mode if the VM has not yet
521 * been created:
522 */
523 if (ctx->vm)
524 return UERR(EBUSY, drm, "VM already created");
525
526 ctx->userspace_managed_vm = value;
527
528 return 0;
529 }
530 default:
531 return UERR(EINVAL, drm, "%s: invalid param: %u", gpu->name, param);
532 }
533 }
534
535 const struct firmware *
adreno_request_fw(struct adreno_gpu * adreno_gpu,const char * fwname)536 adreno_request_fw(struct adreno_gpu *adreno_gpu, const char *fwname)
537 {
538 struct drm_device *drm = adreno_gpu->base.dev;
539 const struct firmware *fw = NULL;
540 char *newname;
541 int ret;
542
543 newname = kasprintf(GFP_KERNEL, "qcom/%s", fwname);
544 if (!newname)
545 return ERR_PTR(-ENOMEM);
546
547 /*
548 * Try first to load from qcom/$fwfile using a direct load (to avoid
549 * a potential timeout waiting for usermode helper)
550 */
551 if ((adreno_gpu->fwloc == FW_LOCATION_UNKNOWN) ||
552 (adreno_gpu->fwloc == FW_LOCATION_NEW)) {
553
554 ret = request_firmware_direct(&fw, newname, drm->dev);
555 if (!ret) {
556 DRM_DEV_INFO(drm->dev, "loaded %s from new location\n",
557 newname);
558 adreno_gpu->fwloc = FW_LOCATION_NEW;
559 goto out;
560 } else if (adreno_gpu->fwloc != FW_LOCATION_UNKNOWN) {
561 DRM_DEV_ERROR(drm->dev, "failed to load %s: %d\n",
562 newname, ret);
563 fw = ERR_PTR(ret);
564 goto out;
565 }
566 }
567
568 /*
569 * Then try the legacy location without qcom/ prefix
570 */
571 if ((adreno_gpu->fwloc == FW_LOCATION_UNKNOWN) ||
572 (adreno_gpu->fwloc == FW_LOCATION_LEGACY)) {
573
574 ret = request_firmware_direct(&fw, fwname, drm->dev);
575 if (!ret) {
576 DRM_DEV_INFO(drm->dev, "loaded %s from legacy location\n",
577 fwname);
578 adreno_gpu->fwloc = FW_LOCATION_LEGACY;
579 goto out;
580 } else if (adreno_gpu->fwloc != FW_LOCATION_UNKNOWN) {
581 DRM_DEV_ERROR(drm->dev, "failed to load %s: %d\n",
582 fwname, ret);
583 fw = ERR_PTR(ret);
584 goto out;
585 }
586 }
587
588 /*
589 * Finally fall back to request_firmware() for cases where the
590 * usermode helper is needed (I think mainly android)
591 */
592 if ((adreno_gpu->fwloc == FW_LOCATION_UNKNOWN) ||
593 (adreno_gpu->fwloc == FW_LOCATION_HELPER)) {
594
595 ret = request_firmware(&fw, newname, drm->dev);
596 if (!ret) {
597 DRM_DEV_INFO(drm->dev, "loaded %s with helper\n",
598 newname);
599 adreno_gpu->fwloc = FW_LOCATION_HELPER;
600 goto out;
601 } else if (adreno_gpu->fwloc != FW_LOCATION_UNKNOWN) {
602 DRM_DEV_ERROR(drm->dev, "failed to load %s: %d\n",
603 newname, ret);
604 fw = ERR_PTR(ret);
605 goto out;
606 }
607 }
608
609 DRM_DEV_ERROR(drm->dev, "failed to load %s\n", fwname);
610 fw = ERR_PTR(-ENOENT);
611 out:
612 kfree(newname);
613 return fw;
614 }
615
adreno_load_fw(struct adreno_gpu * adreno_gpu)616 int adreno_load_fw(struct adreno_gpu *adreno_gpu)
617 {
618 int i;
619
620 for (i = 0; i < ARRAY_SIZE(adreno_gpu->info->fw); i++) {
621 const struct firmware *fw;
622
623 if (!adreno_gpu->info->fw[i])
624 continue;
625
626 /* Skip loading GMU firmware with GMU Wrapper */
627 if (adreno_has_gmu_wrapper(adreno_gpu) && i == ADRENO_FW_GMU)
628 continue;
629
630 /* Skip if the firmware has already been loaded */
631 if (adreno_gpu->fw[i])
632 continue;
633
634 fw = adreno_request_fw(adreno_gpu, adreno_gpu->info->fw[i]);
635 if (IS_ERR(fw))
636 return PTR_ERR(fw);
637
638 adreno_gpu->fw[i] = fw;
639 }
640
641 return 0;
642 }
643
adreno_fw_create_bo(struct msm_gpu * gpu,const struct firmware * fw,u64 * iova)644 struct drm_gem_object *adreno_fw_create_bo(struct msm_gpu *gpu,
645 const struct firmware *fw, u64 *iova)
646 {
647 struct drm_gem_object *bo;
648 void *ptr;
649
650 ptr = msm_gem_kernel_new(gpu->dev, fw->size - 4,
651 MSM_BO_WC | MSM_BO_GPU_READONLY, gpu->vm, &bo, iova);
652
653 if (IS_ERR(ptr))
654 return ERR_CAST(ptr);
655
656 memcpy(ptr, &fw->data[4], fw->size - 4);
657
658 msm_gem_put_vaddr(bo);
659
660 return bo;
661 }
662
adreno_hw_init(struct msm_gpu * gpu)663 int adreno_hw_init(struct msm_gpu *gpu)
664 {
665 struct adreno_gpu *adreno_gpu = to_adreno_gpu(gpu);
666 int ret;
667
668 VERB("%s", gpu->name);
669
670 if (adreno_gpu->info->family >= ADRENO_6XX_GEN1 &&
671 qcom_scm_set_gpu_smmu_aperture_is_available()) {
672 /* We currently always use context bank 0, so hard code this */
673 ret = qcom_scm_set_gpu_smmu_aperture(0);
674 if (ret)
675 DRM_DEV_ERROR(gpu->dev->dev, "unable to set SMMU aperture: %d\n", ret);
676 }
677
678 for (int i = 0; i < gpu->nr_rings; i++) {
679 struct msm_ringbuffer *ring = gpu->rb[i];
680
681 if (!ring)
682 continue;
683
684 ring->cur = ring->start;
685 ring->next = ring->start;
686 ring->memptrs->rptr = 0;
687 ring->memptrs->bv_fence = ring->fctx->completed_fence;
688
689 /* Detect and clean up an impossible fence, ie. if GPU managed
690 * to scribble something invalid, we don't want that to confuse
691 * us into mistakingly believing that submits have completed.
692 */
693 if (fence_before(ring->fctx->last_fence, ring->memptrs->fence)) {
694 ring->memptrs->fence = ring->fctx->last_fence;
695 }
696 }
697
698 return 0;
699 }
700
701 /* Use this helper to read rptr, since a430 doesn't update rptr in memory */
get_rptr(struct adreno_gpu * adreno_gpu,struct msm_ringbuffer * ring)702 static uint32_t get_rptr(struct adreno_gpu *adreno_gpu,
703 struct msm_ringbuffer *ring)
704 {
705 struct msm_gpu *gpu = &adreno_gpu->base;
706
707 return gpu->funcs->get_rptr(gpu, ring);
708 }
709
adreno_active_ring(struct msm_gpu * gpu)710 struct msm_ringbuffer *adreno_active_ring(struct msm_gpu *gpu)
711 {
712 return gpu->rb[0];
713 }
714
adreno_recover(struct msm_gpu * gpu)715 void adreno_recover(struct msm_gpu *gpu)
716 {
717 struct drm_device *dev = gpu->dev;
718 int ret;
719
720 msm_perfcntr_suspend(gpu);
721 gpu->funcs->pm_suspend(gpu);
722 gpu->funcs->pm_resume(gpu);
723 msm_perfcntr_resume(gpu);
724
725 ret = msm_gpu_hw_init(gpu);
726 if (ret) {
727 DRM_DEV_ERROR(dev->dev, "gpu hw init failed: %d\n", ret);
728 /* hmm, oh well? */
729 }
730 }
731
adreno_flush(struct msm_gpu * gpu,struct msm_ringbuffer * ring,u32 reg)732 void adreno_flush(struct msm_gpu *gpu, struct msm_ringbuffer *ring, u32 reg)
733 {
734 uint32_t wptr;
735
736 /* Copy the shadow to the actual register */
737 ring->cur = ring->next;
738
739 /*
740 * Mask wptr value that we calculate to fit in the HW range. This is
741 * to account for the possibility that the last command fit exactly into
742 * the ringbuffer and rb->next hasn't wrapped to zero yet
743 */
744 wptr = get_wptr(ring);
745
746 /* ensure writes to ringbuffer have hit system memory: */
747 mb();
748
749 gpu_write(gpu, reg, wptr);
750 }
751
adreno_idle(struct msm_gpu * gpu,struct msm_ringbuffer * ring)752 bool adreno_idle(struct msm_gpu *gpu, struct msm_ringbuffer *ring)
753 {
754 struct adreno_gpu *adreno_gpu = to_adreno_gpu(gpu);
755 uint32_t wptr = get_wptr(ring);
756
757 /* wait for CP to drain ringbuffer: */
758 if (!spin_until(get_rptr(adreno_gpu, ring) == wptr))
759 return true;
760
761 /* TODO maybe we need to reset GPU here to recover from hang? */
762 DRM_ERROR("%s: timeout waiting to drain ringbuffer %d rptr/wptr = %X/%X\n",
763 gpu->name, ring->id, get_rptr(adreno_gpu, ring), wptr);
764
765 return false;
766 }
767
adreno_gpu_state_get(struct msm_gpu * gpu,struct msm_gpu_state * state)768 int adreno_gpu_state_get(struct msm_gpu *gpu, struct msm_gpu_state *state)
769 {
770 struct adreno_gpu *adreno_gpu = to_adreno_gpu(gpu);
771 int i, count = 0;
772
773 WARN_ON(!mutex_is_locked(&gpu->lock));
774
775 kref_init(&state->ref);
776
777 ktime_get_real_ts64(&state->time);
778
779 for (i = 0; i < gpu->nr_rings; i++) {
780 int size = 0, j;
781
782 state->ring[i].fence = gpu->rb[i]->memptrs->fence;
783 state->ring[i].iova = gpu->rb[i]->iova;
784 state->ring[i].seqno = gpu->rb[i]->fctx->last_fence;
785 state->ring[i].rptr = get_rptr(adreno_gpu, gpu->rb[i]);
786 state->ring[i].wptr = get_wptr(gpu->rb[i]);
787
788 /* Copy at least 'wptr' dwords of the data */
789 size = state->ring[i].wptr;
790
791 /* After wptr find the last non zero dword to save space */
792 for (j = state->ring[i].wptr; j < MSM_GPU_RINGBUFFER_SZ >> 2; j++)
793 if (gpu->rb[i]->start[j])
794 size = j + 1;
795
796 if (size) {
797 state->ring[i].data = kvmemdup(gpu->rb[i]->start, size << 2, GFP_KERNEL);
798 if (state->ring[i].data)
799 state->ring[i].data_size = size << 2;
800 }
801 }
802
803 /* Some targets prefer to collect their own registers */
804 if (!adreno_gpu->registers)
805 return 0;
806
807 /* Count the number of registers */
808 for (i = 0; adreno_gpu->registers[i] != ~0; i += 2)
809 count += adreno_gpu->registers[i + 1] -
810 adreno_gpu->registers[i] + 1;
811
812 state->registers = kcalloc(count * 2, sizeof(u32), GFP_KERNEL);
813 if (state->registers) {
814 int pos = 0;
815
816 for (i = 0; adreno_gpu->registers[i] != ~0; i += 2) {
817 u32 start = adreno_gpu->registers[i];
818 u32 end = adreno_gpu->registers[i + 1];
819 u32 addr;
820
821 for (addr = start; addr <= end; addr++) {
822 state->registers[pos++] = addr;
823 state->registers[pos++] = gpu_read(gpu, addr);
824 }
825 }
826
827 state->nr_registers = count;
828 }
829
830 return 0;
831 }
832
adreno_gpu_state_destroy(struct msm_gpu_state * state)833 void adreno_gpu_state_destroy(struct msm_gpu_state *state)
834 {
835 int i;
836
837 for (i = 0; i < ARRAY_SIZE(state->ring); i++)
838 kvfree(state->ring[i].data);
839
840 for (i = 0; state->bos && i < state->nr_bos; i++)
841 kvfree(state->bos[i].data);
842
843 kfree(state->vm_logs);
844 kfree(state->bos);
845 kfree(state->comm);
846 kfree(state->cmd);
847 kfree(state->registers);
848 }
849
adreno_gpu_state_kref_destroy(struct kref * kref)850 static void adreno_gpu_state_kref_destroy(struct kref *kref)
851 {
852 struct msm_gpu_state *state = container_of(kref,
853 struct msm_gpu_state, ref);
854
855 adreno_gpu_state_destroy(state);
856 kfree(state);
857 }
858
adreno_gpu_state_put(struct msm_gpu_state * state)859 int adreno_gpu_state_put(struct msm_gpu_state *state)
860 {
861 if (IS_ERR_OR_NULL(state))
862 return 1;
863
864 return kref_put(&state->ref, adreno_gpu_state_kref_destroy);
865 }
866
867 #if defined(CONFIG_DEBUG_FS) || defined(CONFIG_DEV_COREDUMP)
868
adreno_gpu_ascii85_encode(u32 * src,size_t len)869 static char *adreno_gpu_ascii85_encode(u32 *src, size_t len)
870 {
871 void *buf;
872 size_t buf_itr = 0, buffer_size;
873 char out[ASCII85_BUFSZ];
874 long l;
875 int i;
876
877 if (!src || !len)
878 return NULL;
879
880 l = ascii85_encode_len(len);
881
882 /*
883 * Ascii85 outputs either a 5 byte string or a 1 byte string. So we
884 * account for the worst case of 5 bytes per dword plus the 1 for '\0'
885 */
886 buffer_size = (l * 5) + 1;
887
888 buf = kvmalloc(buffer_size, GFP_KERNEL);
889 if (!buf)
890 return NULL;
891
892 for (i = 0; i < l; i++)
893 buf_itr += scnprintf(buf + buf_itr, buffer_size - buf_itr, "%s",
894 ascii85_encode(src[i], out));
895
896 return buf;
897 }
898
899 /* len is expected to be in bytes
900 *
901 * WARNING: *ptr should be allocated with kvmalloc or friends. It can be free'd
902 * with kvfree() and replaced with a newly kvmalloc'd buffer on the first call
903 * when the unencoded raw data is encoded
904 */
adreno_show_object(struct drm_printer * p,void ** ptr,int len,bool * encoded)905 void adreno_show_object(struct drm_printer *p, void **ptr, int len,
906 bool *encoded)
907 {
908 if (!*ptr || !len)
909 return;
910
911 if (!*encoded) {
912 long datalen, i;
913 u32 *buf = *ptr;
914
915 /*
916 * Only dump the non-zero part of the buffer - rarely will
917 * any data completely fill the entire allocated size of
918 * the buffer.
919 */
920 for (datalen = 0, i = 0; i < len >> 2; i++)
921 if (buf[i])
922 datalen = ((i + 1) << 2);
923
924 /*
925 * If we reach here, then the originally captured binary buffer
926 * will be replaced with the ascii85 encoded string
927 */
928 *ptr = adreno_gpu_ascii85_encode(buf, datalen);
929
930 kvfree(buf);
931
932 *encoded = true;
933 }
934
935 if (!*ptr)
936 return;
937
938 drm_puts(p, " data: !!ascii85 |\n");
939 drm_puts(p, " ");
940
941 drm_puts(p, *ptr);
942
943 drm_puts(p, "\n");
944 }
945
adreno_show(struct msm_gpu * gpu,struct msm_gpu_state * state,struct drm_printer * p)946 void adreno_show(struct msm_gpu *gpu, struct msm_gpu_state *state,
947 struct drm_printer *p)
948 {
949 struct adreno_gpu *adreno_gpu = to_adreno_gpu(gpu);
950 int i;
951
952 if (IS_ERR_OR_NULL(state))
953 return;
954
955 drm_printf(p, "revision: %u (%"ADRENO_CHIPID_FMT")\n",
956 adreno_gpu->info->revn,
957 ADRENO_CHIPID_ARGS(adreno_gpu->chip_id));
958 /*
959 * If this is state collected due to iova fault, so fault related info
960 *
961 * TTBR0 would not be zero, so this is a good way to distinguish
962 */
963 if (state->fault_info.ttbr0) {
964 const struct msm_gpu_fault_info *info = &state->fault_info;
965
966 drm_puts(p, "fault-info:\n");
967 drm_printf(p, " - ttbr0=%.16llx\n", info->ttbr0);
968 drm_printf(p, " - iova=%.16lx\n", info->iova);
969 drm_printf(p, " - dir=%s\n", info->flags & IOMMU_FAULT_WRITE ? "WRITE" : "READ");
970 drm_printf(p, " - type=%s\n", info->type);
971 drm_printf(p, " - source=%s\n", info->block);
972
973 /* Information extracted from what we think are the current
974 * pgtables. Hopefully the TTBR0 matches what we've extracted
975 * from the SMMU registers in smmu_info!
976 */
977 drm_puts(p, "pgtable-fault-info:\n");
978 drm_printf(p, " - ttbr0: %.16llx\n", (u64)info->pgtbl_ttbr0);
979 drm_printf(p, " - asid: %d\n", info->asid);
980 drm_printf(p, " - ptes: %.16llx %.16llx %.16llx %.16llx\n",
981 info->ptes[0], info->ptes[1], info->ptes[2], info->ptes[3]);
982 }
983
984 if (state->vm_logs) {
985 drm_puts(p, "vm-log:\n");
986 for (i = 0; i < state->nr_vm_logs; i++) {
987 struct msm_gem_vm_log_entry *e = &state->vm_logs[i];
988 drm_printf(p, " - %s:%d: 0x%016llx-0x%016llx\n",
989 e->op, e->queue_id, e->iova,
990 e->iova + e->range);
991 }
992 }
993
994 drm_printf(p, "rbbm-status: 0x%08x\n", state->rbbm_status);
995
996 drm_puts(p, "ringbuffer:\n");
997
998 for (i = 0; i < gpu->nr_rings; i++) {
999 drm_printf(p, " - id: %d\n", i);
1000 drm_printf(p, " iova: 0x%016llx\n", state->ring[i].iova);
1001 drm_printf(p, " last-fence: %u\n", state->ring[i].seqno);
1002 drm_printf(p, " retired-fence: %u\n", state->ring[i].fence);
1003 drm_printf(p, " rptr: %u\n", state->ring[i].rptr);
1004 drm_printf(p, " wptr: %u\n", state->ring[i].wptr);
1005 drm_printf(p, " size: %u\n", MSM_GPU_RINGBUFFER_SZ);
1006
1007 adreno_show_object(p, &state->ring[i].data,
1008 state->ring[i].data_size, &state->ring[i].encoded);
1009 }
1010
1011 if (state->bos) {
1012 drm_puts(p, "bos:\n");
1013
1014 for (i = 0; i < state->nr_bos; i++) {
1015 drm_printf(p, " - iova: 0x%016llx\n",
1016 state->bos[i].iova);
1017 drm_printf(p, " size: %zd\n", state->bos[i].size);
1018 drm_printf(p, " flags: 0x%x\n", state->bos[i].flags);
1019 drm_printf(p, " name: %-32s\n", state->bos[i].name);
1020
1021 adreno_show_object(p, &state->bos[i].data,
1022 state->bos[i].size, &state->bos[i].encoded);
1023 }
1024 }
1025
1026 if (state->nr_registers) {
1027 drm_puts(p, "registers:\n");
1028
1029 for (i = 0; i < state->nr_registers; i++) {
1030 drm_printf(p, " - { offset: 0x%04x, value: 0x%08x }\n",
1031 state->registers[i * 2] << 2,
1032 state->registers[(i * 2) + 1]);
1033 }
1034 }
1035 }
1036 #endif
1037
1038 /* Dump common gpu status and scratch registers on any hang, to make
1039 * the hangcheck logs more useful. The scratch registers seem always
1040 * safe to read when GPU has hung (unlike some other regs, depending
1041 * on how the GPU hung), and they are useful to match up to cmdstream
1042 * dumps when debugging hangs:
1043 */
adreno_dump_info(struct msm_gpu * gpu)1044 void adreno_dump_info(struct msm_gpu *gpu)
1045 {
1046 struct adreno_gpu *adreno_gpu = to_adreno_gpu(gpu);
1047 int i;
1048
1049 printk("revision: %u (%"ADRENO_CHIPID_FMT")\n",
1050 adreno_gpu->info->revn,
1051 ADRENO_CHIPID_ARGS(adreno_gpu->chip_id));
1052
1053 for (i = 0; i < gpu->nr_rings; i++) {
1054 struct msm_ringbuffer *ring = gpu->rb[i];
1055
1056 printk("rb %d: fence: %d/%d\n", i,
1057 ring->memptrs->fence,
1058 ring->fctx->last_fence);
1059
1060 printk("rptr: %d\n", get_rptr(adreno_gpu, ring));
1061 printk("rb wptr: %d\n", get_wptr(ring));
1062 }
1063 }
1064
1065 /* would be nice to not have to duplicate the _show() stuff with printk(): */
adreno_dump(struct msm_gpu * gpu)1066 void adreno_dump(struct msm_gpu *gpu)
1067 {
1068 struct adreno_gpu *adreno_gpu = to_adreno_gpu(gpu);
1069 int i;
1070
1071 if (!adreno_gpu->registers)
1072 return;
1073
1074 /* dump these out in a form that can be parsed by demsm: */
1075 printk("IO:region %s 00000000 00020000\n", gpu->name);
1076 for (i = 0; adreno_gpu->registers[i] != ~0; i += 2) {
1077 uint32_t start = adreno_gpu->registers[i];
1078 uint32_t end = adreno_gpu->registers[i+1];
1079 uint32_t addr;
1080
1081 for (addr = start; addr <= end; addr++) {
1082 uint32_t val = gpu_read(gpu, addr);
1083 printk("IO:R %08x %08x\n", addr<<2, val);
1084 }
1085 }
1086 }
1087
ring_freewords(struct msm_ringbuffer * ring)1088 static uint32_t ring_freewords(struct msm_ringbuffer *ring)
1089 {
1090 struct adreno_gpu *adreno_gpu = to_adreno_gpu(ring->gpu);
1091 uint32_t size = MSM_GPU_RINGBUFFER_SZ >> 2;
1092 /* Use ring->next to calculate free size */
1093 uint32_t wptr = ring->next - ring->start;
1094 uint32_t rptr = get_rptr(adreno_gpu, ring);
1095 return (rptr + (size - 1) - wptr) % size;
1096 }
1097
adreno_wait_ring(struct msm_ringbuffer * ring,uint32_t ndwords)1098 void adreno_wait_ring(struct msm_ringbuffer *ring, uint32_t ndwords)
1099 {
1100 if (spin_until(ring_freewords(ring) >= ndwords))
1101 DRM_DEV_ERROR(ring->gpu->dev->dev,
1102 "timeout waiting for space in ringbuffer %d\n",
1103 ring->id);
1104 }
1105
adreno_get_pwrlevels(struct device * dev,struct msm_gpu * gpu)1106 static int adreno_get_pwrlevels(struct device *dev,
1107 struct msm_gpu *gpu)
1108 {
1109 struct adreno_gpu *adreno_gpu = to_adreno_gpu(gpu);
1110 unsigned long freq = ULONG_MAX;
1111 struct dev_pm_opp *opp;
1112 int ret;
1113
1114 gpu->fast_rate = 0;
1115
1116 /* devm_pm_opp_of_add_table may error out but will still create an OPP table */
1117 ret = devm_pm_opp_of_add_table(dev);
1118 if (ret == -ENODEV) {
1119 /* Special cases for ancient hw with ancient DT bindings */
1120 if (adreno_is_a2xx(adreno_gpu)) {
1121 dev_warn(dev, "Unable to find the OPP table. Falling back to 200 MHz.\n");
1122 dev_pm_opp_add(dev, 200000000, 0);
1123 } else if (adreno_is_a320(adreno_gpu)) {
1124 dev_warn(dev, "Unable to find the OPP table. Falling back to 450 MHz.\n");
1125 dev_pm_opp_add(dev, 450000000, 0);
1126 } else {
1127 DRM_DEV_ERROR(dev, "Unable to find the OPP table\n");
1128 return -ENODEV;
1129 }
1130 } else if (ret) {
1131 DRM_DEV_ERROR(dev, "Unable to set the OPP table\n");
1132 return ret;
1133 }
1134
1135 /* Find the fastest defined rate */
1136 opp = dev_pm_opp_find_freq_floor(dev, &freq);
1137 if (IS_ERR(opp))
1138 return PTR_ERR(opp);
1139
1140 gpu->fast_rate = freq;
1141 dev_pm_opp_put(opp);
1142
1143 DBG("fast_rate=%u, slow_rate=27000000", gpu->fast_rate);
1144
1145 return 0;
1146 }
1147
adreno_gpu_ocmem_init(struct device * dev,struct adreno_gpu * adreno_gpu,struct adreno_ocmem * adreno_ocmem)1148 int adreno_gpu_ocmem_init(struct device *dev, struct adreno_gpu *adreno_gpu,
1149 struct adreno_ocmem *adreno_ocmem)
1150 {
1151 struct ocmem_buf *ocmem_hdl;
1152 struct ocmem *ocmem;
1153
1154 ocmem = of_get_ocmem(dev);
1155 if (IS_ERR(ocmem)) {
1156 if (PTR_ERR(ocmem) == -ENODEV) {
1157 /*
1158 * Return success since either the ocmem property was
1159 * not specified in device tree, or ocmem support is
1160 * not compiled into the kernel.
1161 */
1162 return 0;
1163 }
1164
1165 return PTR_ERR(ocmem);
1166 }
1167
1168 ocmem_hdl = ocmem_allocate(ocmem, OCMEM_GRAPHICS, adreno_gpu->info->gmem);
1169 if (IS_ERR(ocmem_hdl))
1170 return PTR_ERR(ocmem_hdl);
1171
1172 adreno_ocmem->ocmem = ocmem;
1173 adreno_ocmem->base = ocmem_hdl->addr;
1174 adreno_ocmem->hdl = ocmem_hdl;
1175
1176 if (WARN_ON(ocmem_hdl->len != adreno_gpu->info->gmem))
1177 return -ENOMEM;
1178
1179 return 0;
1180 }
1181
adreno_gpu_ocmem_cleanup(struct adreno_ocmem * adreno_ocmem)1182 void adreno_gpu_ocmem_cleanup(struct adreno_ocmem *adreno_ocmem)
1183 {
1184 if (adreno_ocmem && adreno_ocmem->base)
1185 ocmem_free(adreno_ocmem->ocmem, OCMEM_GRAPHICS,
1186 adreno_ocmem->hdl);
1187 }
1188
adreno_read_speedbin(struct device * dev,u32 * speedbin)1189 int adreno_read_speedbin(struct device *dev, u32 *speedbin)
1190 {
1191 return nvmem_cell_read_variable_le_u32(dev, "speed_bin", speedbin);
1192 }
1193
adreno_gpu_init(struct drm_device * drm,struct platform_device * pdev,struct adreno_gpu * adreno_gpu,const struct adreno_gpu_funcs * funcs,int nr_rings)1194 int adreno_gpu_init(struct drm_device *drm, struct platform_device *pdev,
1195 struct adreno_gpu *adreno_gpu,
1196 const struct adreno_gpu_funcs *funcs, int nr_rings)
1197 {
1198 struct device *dev = &pdev->dev;
1199 struct adreno_platform_config *config = dev->platform_data;
1200 struct msm_gpu_config adreno_gpu_config = { 0 };
1201 struct msm_gpu *gpu = &adreno_gpu->base;
1202 const char *gpu_name;
1203 int ret;
1204
1205 adreno_gpu->funcs = funcs;
1206 adreno_gpu->info = config->info;
1207 adreno_gpu->chip_id = config->chip_id;
1208
1209 gpu->allow_relocs = config->info->family < ADRENO_6XX_GEN1;
1210 gpu->pdev = pdev;
1211
1212 /* Only handle the core clock when GMU is not in use (or is absent). */
1213 if (adreno_has_gmu_wrapper(adreno_gpu) ||
1214 adreno_has_rgmu(adreno_gpu) ||
1215 adreno_gpu->info->family < ADRENO_6XX_GEN1) {
1216 /*
1217 * This can only be done before devm_pm_opp_of_add_table(), or
1218 * dev_pm_opp_set_config() will WARN_ON()
1219 */
1220 if (IS_ERR(devm_clk_get(dev, "core"))) {
1221 /*
1222 * If "core" is absent, go for the legacy clock name.
1223 * If we got this far in probing, it's a given one of
1224 * them exists.
1225 */
1226 devm_pm_opp_set_clkname(dev, "core_clk");
1227 } else
1228 devm_pm_opp_set_clkname(dev, "core");
1229 }
1230
1231 gpu_name = devm_kasprintf(dev, GFP_KERNEL, "%"ADRENO_CHIPID_FMT,
1232 ADRENO_CHIPID_ARGS(config->chip_id));
1233 if (!gpu_name)
1234 return -ENOMEM;
1235
1236 adreno_gpu_config.ioname = "kgsl_3d0_reg_memory";
1237
1238 adreno_gpu_config.nr_rings = nr_rings;
1239
1240 ret = adreno_get_pwrlevels(dev, gpu);
1241 if (ret)
1242 return ret;
1243
1244 init_completion(&adreno_gpu->fault_coredump_done);
1245 complete_all(&adreno_gpu->fault_coredump_done);
1246
1247 pm_runtime_set_autosuspend_delay(dev,
1248 adreno_gpu->info->inactive_period);
1249 pm_runtime_use_autosuspend(dev);
1250
1251 return msm_gpu_init(drm, pdev, &adreno_gpu->base, &funcs->base,
1252 gpu_name, &adreno_gpu_config);
1253 }
1254
adreno_gpu_cleanup(struct adreno_gpu * adreno_gpu)1255 void adreno_gpu_cleanup(struct adreno_gpu *adreno_gpu)
1256 {
1257 struct msm_gpu *gpu = &adreno_gpu->base;
1258 struct msm_drm_private *priv = gpu->dev ? gpu->dev->dev_private : NULL;
1259 unsigned int i;
1260
1261 for (i = 0; i < ARRAY_SIZE(adreno_gpu->info->fw); i++)
1262 release_firmware(adreno_gpu->fw[i]);
1263
1264 pm_runtime_dont_use_autosuspend(&gpu->pdev->dev);
1265
1266 if (priv && pm_runtime_enabled(&priv->gpu_pdev->dev))
1267 pm_runtime_disable(&priv->gpu_pdev->dev);
1268
1269 msm_gpu_cleanup(&adreno_gpu->base);
1270 }
1271