1 // SPDX-License-Identifier: GPL-2.0-only 2 /* 3 * Copyright (C) 2013 Red Hat 4 * Author: Rob Clark <robdclark@gmail.com> 5 */ 6 7 #include <linux/adreno-smmu-priv.h> 8 #include <linux/io-pgtable.h> 9 #include <linux/kmemleak.h> 10 #include "msm_drv.h" 11 #include "msm_gpu_trace.h" 12 #include "msm_mmu.h" 13 14 struct msm_iommu { 15 struct msm_mmu base; 16 struct iommu_domain *domain; 17 18 struct mutex init_lock; /* protects pagetables counter and prr_page */ 19 int pagetables; 20 struct page *prr_page; 21 22 struct kmem_cache *pt_cache; 23 }; 24 25 #define to_msm_iommu(x) container_of(x, struct msm_iommu, base) 26 27 struct msm_iommu_pagetable { 28 struct msm_mmu base; 29 struct msm_mmu *parent; 30 struct io_pgtable_ops *pgtbl_ops; 31 const struct iommu_flush_ops *tlb; 32 struct device *iommu_dev; 33 unsigned long pgsize_bitmap; /* Bitmap of page sizes in use */ 34 phys_addr_t ttbr; 35 u32 asid; 36 37 /** @root_page_table: Stores the root page table pointer. */ 38 void *root_page_table; 39 }; 40 static struct msm_iommu_pagetable *to_pagetable(struct msm_mmu *mmu) 41 { 42 return container_of(mmu, struct msm_iommu_pagetable, base); 43 } 44 45 /* based on iommu_pgsize() in iommu.c: */ 46 static size_t calc_pgsize(struct msm_iommu_pagetable *pagetable, 47 unsigned long iova, phys_addr_t paddr, 48 size_t size, size_t *count) 49 { 50 unsigned int pgsize_idx, pgsize_idx_next; 51 unsigned long pgsizes; 52 size_t offset, pgsize, pgsize_next; 53 unsigned long addr_merge = paddr | iova; 54 55 /* Page sizes supported by the hardware and small enough for @size */ 56 pgsizes = pagetable->pgsize_bitmap & GENMASK(__fls(size), 0); 57 58 /* Constrain the page sizes further based on the maximum alignment */ 59 if (likely(addr_merge)) 60 pgsizes &= GENMASK(__ffs(addr_merge), 0); 61 62 /* Make sure we have at least one suitable page size */ 63 BUG_ON(!pgsizes); 64 65 /* Pick the biggest page size remaining */ 66 pgsize_idx = __fls(pgsizes); 67 pgsize = BIT(pgsize_idx); 68 if (!count) 69 return pgsize; 70 71 /* Find the next biggest support page size, if it exists */ 72 pgsizes = pagetable->pgsize_bitmap & ~GENMASK(pgsize_idx, 0); 73 if (!pgsizes) 74 goto out_set_count; 75 76 pgsize_idx_next = __ffs(pgsizes); 77 pgsize_next = BIT(pgsize_idx_next); 78 79 /* 80 * There's no point trying a bigger page size unless the virtual 81 * and physical addresses are similarly offset within the larger page. 82 */ 83 if ((iova ^ paddr) & (pgsize_next - 1)) 84 goto out_set_count; 85 86 /* Calculate the offset to the next page size alignment boundary */ 87 offset = pgsize_next - (addr_merge & (pgsize_next - 1)); 88 89 /* 90 * If size is big enough to accommodate the larger page, reduce 91 * the number of smaller pages. 92 */ 93 if (offset + pgsize_next <= size) 94 size = offset; 95 96 out_set_count: 97 *count = size >> pgsize_idx; 98 return pgsize; 99 } 100 101 static int msm_iommu_pagetable_unmap(struct msm_mmu *mmu, u64 iova, 102 size_t size) 103 { 104 struct msm_iommu_pagetable *pagetable = to_pagetable(mmu); 105 struct io_pgtable_ops *ops = pagetable->pgtbl_ops; 106 int ret = 0; 107 108 while (size) { 109 size_t pgsize, count; 110 ssize_t unmapped; 111 112 pgsize = calc_pgsize(pagetable, iova, iova, size, &count); 113 114 unmapped = ops->unmap_pages(ops, iova, pgsize, count, NULL); 115 if (unmapped <= 0) { 116 ret = -EINVAL; 117 /* 118 * Continue attempting to unamp the remained of the 119 * range, so we don't end up with some dangling 120 * mapped pages 121 */ 122 unmapped = PAGE_SIZE; 123 } 124 125 iova += unmapped; 126 size -= unmapped; 127 } 128 129 iommu_flush_iotlb_all(to_msm_iommu(pagetable->parent)->domain); 130 131 return ret; 132 } 133 134 static int msm_iommu_pagetable_map_prr(struct msm_mmu *mmu, u64 iova, size_t len, int prot) 135 { 136 struct msm_iommu_pagetable *pagetable = to_pagetable(mmu); 137 struct io_pgtable_ops *ops = pagetable->pgtbl_ops; 138 struct msm_iommu *iommu = to_msm_iommu(pagetable->parent); 139 phys_addr_t phys = page_to_phys(iommu->prr_page); 140 u64 addr = iova; 141 142 while (len) { 143 size_t mapped = 0; 144 size_t size = PAGE_SIZE; 145 int ret; 146 147 ret = ops->map_pages(ops, addr, phys, size, 1, prot, GFP_KERNEL, &mapped); 148 149 /* map_pages could fail after mapping some of the pages, 150 * so update the counters before error handling. 151 */ 152 addr += mapped; 153 len -= mapped; 154 155 if (ret) { 156 msm_iommu_pagetable_unmap(mmu, iova, addr - iova); 157 return -EINVAL; 158 } 159 } 160 161 return 0; 162 } 163 164 static int msm_iommu_pagetable_map(struct msm_mmu *mmu, u64 iova, 165 struct sg_table *sgt, size_t off, size_t len, 166 int prot) 167 { 168 struct msm_iommu_pagetable *pagetable = to_pagetable(mmu); 169 struct io_pgtable_ops *ops = pagetable->pgtbl_ops; 170 struct scatterlist *sg; 171 u64 addr = iova; 172 unsigned int i; 173 174 if (!sgt) 175 return msm_iommu_pagetable_map_prr(mmu, iova, len, prot); 176 177 for_each_sgtable_sg(sgt, sg, i) { 178 size_t size = sg->length; 179 phys_addr_t phys = sg_phys(sg); 180 181 if (!len) 182 break; 183 184 if (size <= off) { 185 off -= size; 186 continue; 187 } 188 189 phys += off; 190 size -= off; 191 size = min_t(size_t, size, len); 192 off = 0; 193 194 while (size) { 195 size_t pgsize, count, mapped = 0; 196 int ret; 197 198 pgsize = calc_pgsize(pagetable, addr, phys, size, &count); 199 200 ret = ops->map_pages(ops, addr, phys, pgsize, count, 201 prot, GFP_KERNEL, &mapped); 202 203 /* map_pages could fail after mapping some of the pages, 204 * so update the counters before error handling. 205 */ 206 phys += mapped; 207 addr += mapped; 208 size -= mapped; 209 len -= mapped; 210 211 if (ret) { 212 msm_iommu_pagetable_unmap(mmu, iova, addr - iova); 213 return -EINVAL; 214 } 215 } 216 } 217 218 return 0; 219 } 220 221 static void msm_iommu_pagetable_destroy(struct msm_mmu *mmu) 222 { 223 struct msm_iommu_pagetable *pagetable = to_pagetable(mmu); 224 struct msm_iommu *iommu = to_msm_iommu(pagetable->parent); 225 struct adreno_smmu_priv *adreno_smmu = 226 dev_get_drvdata(pagetable->parent->dev); 227 228 /* 229 * If this is the last attached pagetable for the parent, 230 * disable TTBR0 in the arm-smmu driver 231 */ 232 mutex_lock(&iommu->init_lock); 233 if (--iommu->pagetables == 0) { 234 adreno_smmu->set_ttbr0_cfg(adreno_smmu->cookie, NULL); 235 236 if (adreno_smmu->set_prr_bit) { 237 adreno_smmu->set_prr_bit(adreno_smmu->cookie, false); 238 __free_page(iommu->prr_page); 239 iommu->prr_page = NULL; 240 } 241 } 242 mutex_unlock(&iommu->init_lock); 243 244 free_io_pgtable_ops(pagetable->pgtbl_ops); 245 kfree(pagetable); 246 } 247 248 int msm_iommu_pagetable_params(struct msm_mmu *mmu, 249 phys_addr_t *ttbr, int *asid) 250 { 251 struct msm_iommu_pagetable *pagetable; 252 253 if (mmu->type != MSM_MMU_IOMMU_PAGETABLE) 254 return -EINVAL; 255 256 pagetable = to_pagetable(mmu); 257 258 if (ttbr) 259 *ttbr = pagetable->ttbr; 260 261 if (asid) 262 *asid = pagetable->asid; 263 264 return 0; 265 } 266 267 struct iommu_domain_geometry *msm_iommu_get_geometry(struct msm_mmu *mmu) 268 { 269 struct msm_iommu *iommu = to_msm_iommu(mmu); 270 271 return &iommu->domain->geometry; 272 } 273 274 int 275 msm_iommu_pagetable_walk(struct msm_mmu *mmu, unsigned long iova, uint64_t ptes[4]) 276 { 277 struct msm_iommu_pagetable *pagetable; 278 struct arm_lpae_io_pgtable_walk_data wd = {}; 279 280 if (mmu->type != MSM_MMU_IOMMU_PAGETABLE) 281 return -EINVAL; 282 283 pagetable = to_pagetable(mmu); 284 285 if (!pagetable->pgtbl_ops->pgtable_walk) 286 return -EINVAL; 287 288 pagetable->pgtbl_ops->pgtable_walk(pagetable->pgtbl_ops, iova, &wd); 289 290 for (int i = 0; i < ARRAY_SIZE(wd.ptes); i++) 291 ptes[i] = wd.ptes[i]; 292 293 return 0; 294 } 295 296 static void 297 msm_iommu_pagetable_prealloc_count(struct msm_mmu *mmu, struct msm_mmu_prealloc *p, 298 uint64_t iova, size_t len) 299 { 300 u64 pt_count; 301 302 /* 303 * L1, L2 and L3 page tables. 304 * 305 * We could optimize L3 allocation by iterating over the sgt and merging 306 * 2M contiguous blocks, but it's simpler to over-provision and return 307 * the pages if they're not used. 308 * 309 * The first level descriptor (v8 / v7-lpae page table format) encodes 310 * 30 bits of address. The second level encodes 29. For the 3rd it is 311 * 39. 312 * 313 * https://developer.arm.com/documentation/ddi0406/c/System-Level-Architecture/Virtual-Memory-System-Architecture--VMSA-/Long-descriptor-translation-table-format/Long-descriptor-translation-table-format-descriptors?lang=en#BEIHEFFB 314 */ 315 pt_count = ((ALIGN(iova + len, 1ull << 39) - ALIGN_DOWN(iova, 1ull << 39)) >> 39) + 316 ((ALIGN(iova + len, 1ull << 30) - ALIGN_DOWN(iova, 1ull << 30)) >> 30) + 317 ((ALIGN(iova + len, 1ull << 21) - ALIGN_DOWN(iova, 1ull << 21)) >> 21); 318 319 p->count += pt_count; 320 } 321 322 static struct kmem_cache * 323 get_pt_cache(struct msm_mmu *mmu) 324 { 325 struct msm_iommu_pagetable *pagetable = to_pagetable(mmu); 326 return to_msm_iommu(pagetable->parent)->pt_cache; 327 } 328 329 static int 330 msm_iommu_pagetable_prealloc_allocate(struct msm_mmu *mmu, struct msm_mmu_prealloc *p) 331 { 332 struct kmem_cache *pt_cache = get_pt_cache(mmu); 333 int ret; 334 335 p->pages = kvmalloc_array(p->count, sizeof(p->pages), GFP_KERNEL); 336 if (!p->pages) 337 return -ENOMEM; 338 339 ret = kmem_cache_alloc_bulk(pt_cache, GFP_KERNEL, p->count, p->pages); 340 if (ret != p->count) { 341 kfree(p->pages); 342 p->pages = NULL; 343 p->count = ret; 344 return -ENOMEM; 345 } 346 347 return 0; 348 } 349 350 static void 351 msm_iommu_pagetable_prealloc_cleanup(struct msm_mmu *mmu, struct msm_mmu_prealloc *p) 352 { 353 struct kmem_cache *pt_cache = get_pt_cache(mmu); 354 uint32_t remaining_pt_count = p->count - p->ptr; 355 356 if (!p->pages) 357 return; 358 359 if (p->count > 0) 360 trace_msm_mmu_prealloc_cleanup(p->count, remaining_pt_count); 361 362 kmem_cache_free_bulk(pt_cache, remaining_pt_count, &p->pages[p->ptr]); 363 kvfree(p->pages); 364 } 365 366 /** 367 * alloc_pt() - Custom page table allocator 368 * @cookie: Cookie passed at page table allocation time. 369 * @size: Size of the page table. This size should be fixed, 370 * and determined at creation time based on the granule size. 371 * @gfp: GFP flags. 372 * 373 * We want a custom allocator so we can use a cache for page table 374 * allocations and amortize the cost of the over-reservation that's 375 * done to allow asynchronous VM operations. 376 * 377 * Return: non-NULL on success, NULL if the allocation failed for any 378 * reason. 379 */ 380 static void * 381 msm_iommu_pagetable_alloc_pt(void *cookie, size_t size, gfp_t gfp) 382 { 383 struct msm_iommu_pagetable *pagetable = cookie; 384 struct msm_mmu_prealloc *p = pagetable->base.prealloc; 385 void *page; 386 387 /* Allocation of the root page table happening during init. */ 388 if (unlikely(!pagetable->root_page_table)) { 389 struct page *p; 390 391 p = alloc_pages_node(dev_to_node(pagetable->iommu_dev), 392 gfp | __GFP_ZERO, get_order(size)); 393 page = p ? page_address(p) : NULL; 394 pagetable->root_page_table = page; 395 return page; 396 } 397 398 if (WARN_ON(!p) || WARN_ON(p->ptr >= p->count)) 399 return NULL; 400 401 page = p->pages[p->ptr++]; 402 memset(page, 0, size); 403 404 /* 405 * Page table entries don't use virtual addresses, which trips out 406 * kmemleak. kmemleak_alloc_phys() might work, but physical addresses 407 * are mixed with other fields, and I fear kmemleak won't detect that 408 * either. 409 * 410 * Let's just ignore memory passed to the page-table driver for now. 411 */ 412 kmemleak_ignore(page); 413 414 return page; 415 } 416 417 418 /** 419 * free_pt() - Custom page table free function 420 * @cookie: Cookie passed at page table allocation time. 421 * @data: Page table to free. 422 * @size: Size of the page table. This size should be fixed, 423 * and determined at creation time based on the granule size. 424 */ 425 static void 426 msm_iommu_pagetable_free_pt(void *cookie, void *data, size_t size) 427 { 428 struct msm_iommu_pagetable *pagetable = cookie; 429 430 if (unlikely(pagetable->root_page_table == data)) { 431 free_pages((unsigned long)data, get_order(size)); 432 pagetable->root_page_table = NULL; 433 return; 434 } 435 436 kmem_cache_free(get_pt_cache(&pagetable->base), data); 437 } 438 439 static const struct msm_mmu_funcs pagetable_funcs = { 440 .prealloc_count = msm_iommu_pagetable_prealloc_count, 441 .prealloc_allocate = msm_iommu_pagetable_prealloc_allocate, 442 .prealloc_cleanup = msm_iommu_pagetable_prealloc_cleanup, 443 .map = msm_iommu_pagetable_map, 444 .unmap = msm_iommu_pagetable_unmap, 445 .destroy = msm_iommu_pagetable_destroy, 446 }; 447 448 static void msm_iommu_tlb_flush_all(void *cookie) 449 { 450 struct msm_iommu_pagetable *pagetable = cookie; 451 struct adreno_smmu_priv *adreno_smmu; 452 453 if (!pm_runtime_get_if_in_use(pagetable->iommu_dev)) 454 return; 455 456 adreno_smmu = dev_get_drvdata(pagetable->parent->dev); 457 458 pagetable->tlb->tlb_flush_all((void *)adreno_smmu->cookie); 459 460 pm_runtime_put_autosuspend(pagetable->iommu_dev); 461 } 462 463 static void msm_iommu_tlb_flush_walk(unsigned long iova, size_t size, 464 size_t granule, void *cookie) 465 { 466 struct msm_iommu_pagetable *pagetable = cookie; 467 struct adreno_smmu_priv *adreno_smmu; 468 469 if (!pm_runtime_get_if_in_use(pagetable->iommu_dev)) 470 return; 471 472 adreno_smmu = dev_get_drvdata(pagetable->parent->dev); 473 474 pagetable->tlb->tlb_flush_walk(iova, size, granule, (void *)adreno_smmu->cookie); 475 476 pm_runtime_put_autosuspend(pagetable->iommu_dev); 477 } 478 479 static void msm_iommu_tlb_add_page(struct iommu_iotlb_gather *gather, 480 unsigned long iova, size_t granule, void *cookie) 481 { 482 } 483 484 static const struct iommu_flush_ops tlb_ops = { 485 .tlb_flush_all = msm_iommu_tlb_flush_all, 486 .tlb_flush_walk = msm_iommu_tlb_flush_walk, 487 .tlb_add_page = msm_iommu_tlb_add_page, 488 }; 489 490 static int msm_gpu_fault_handler(struct iommu_domain *domain, struct device *dev, 491 unsigned long iova, int flags, void *arg); 492 493 static size_t get_tblsz(const struct io_pgtable_cfg *cfg) 494 { 495 int pg_shift, bits_per_level; 496 497 pg_shift = __ffs(cfg->pgsize_bitmap); 498 /* arm_lpae_iopte is u64: */ 499 bits_per_level = pg_shift - ilog2(sizeof(u64)); 500 501 return sizeof(u64) << bits_per_level; 502 } 503 504 struct msm_mmu *msm_iommu_pagetable_create(struct msm_mmu *parent, bool kernel_managed) 505 { 506 struct adreno_smmu_priv *adreno_smmu = dev_get_drvdata(parent->dev); 507 struct msm_iommu *iommu = to_msm_iommu(parent); 508 struct msm_iommu_pagetable *pagetable; 509 const struct io_pgtable_cfg *ttbr1_cfg = NULL; 510 struct io_pgtable_cfg ttbr0_cfg; 511 int ret; 512 513 /* Get the pagetable configuration from the domain */ 514 if (adreno_smmu->cookie) 515 ttbr1_cfg = adreno_smmu->get_ttbr1_cfg(adreno_smmu->cookie); 516 517 /* 518 * If you hit this WARN_ONCE() you are probably missing an entry in 519 * qcom_smmu_impl_of_match[] in arm-smmu-qcom.c 520 */ 521 if (WARN_ONCE(!ttbr1_cfg, "No per-process page tables")) 522 return ERR_PTR(-ENODEV); 523 524 pagetable = kzalloc(sizeof(*pagetable), GFP_KERNEL); 525 if (!pagetable) 526 return ERR_PTR(-ENOMEM); 527 528 msm_mmu_init(&pagetable->base, parent->dev, &pagetable_funcs, 529 MSM_MMU_IOMMU_PAGETABLE); 530 531 /* Clone the TTBR1 cfg as starting point for TTBR0 cfg: */ 532 ttbr0_cfg = *ttbr1_cfg; 533 534 /* The incoming cfg will have the TTBR1 quirk enabled */ 535 ttbr0_cfg.quirks &= ~IO_PGTABLE_QUIRK_ARM_TTBR1; 536 ttbr0_cfg.tlb = &tlb_ops; 537 538 if (!kernel_managed) { 539 ttbr0_cfg.quirks |= IO_PGTABLE_QUIRK_NO_WARN; 540 541 /* 542 * With userspace managed VM (aka VM_BIND), we need to pre- 543 * allocate pages ahead of time for map/unmap operations, 544 * handing them to io-pgtable via custom alloc/free ops as 545 * needed: 546 */ 547 ttbr0_cfg.alloc = msm_iommu_pagetable_alloc_pt; 548 ttbr0_cfg.free = msm_iommu_pagetable_free_pt; 549 550 /* 551 * Restrict to single page granules. Otherwise we may run 552 * into a situation where userspace wants to unmap/remap 553 * only a part of a larger block mapping, which is not 554 * possible without unmapping the entire block. Which in 555 * turn could cause faults if the GPU is accessing other 556 * parts of the block mapping. 557 * 558 * Note that prior to commit 33729a5fc0ca ("iommu/io-pgtable-arm: 559 * Remove split on unmap behavior)" this was handled in 560 * io-pgtable-arm. But this apparently does not work 561 * correctly on SMMUv3. 562 */ 563 WARN_ON(!(ttbr0_cfg.pgsize_bitmap & PAGE_SIZE)); 564 ttbr0_cfg.pgsize_bitmap = PAGE_SIZE; 565 } 566 567 pagetable->iommu_dev = ttbr1_cfg->iommu_dev; 568 pagetable->pgtbl_ops = alloc_io_pgtable_ops(ARM_64_LPAE_S1, 569 &ttbr0_cfg, pagetable); 570 571 if (!pagetable->pgtbl_ops) { 572 kfree(pagetable); 573 return ERR_PTR(-ENOMEM); 574 } 575 576 /* 577 * If this is the first pagetable that we've allocated, send it back to 578 * the arm-smmu driver as a trigger to set up TTBR0 579 */ 580 mutex_lock(&iommu->init_lock); 581 if (iommu->pagetables++ == 0) { 582 ret = adreno_smmu->set_ttbr0_cfg(adreno_smmu->cookie, &ttbr0_cfg); 583 if (ret) { 584 iommu->pagetables--; 585 mutex_unlock(&iommu->init_lock); 586 free_io_pgtable_ops(pagetable->pgtbl_ops); 587 kfree(pagetable); 588 return ERR_PTR(ret); 589 } 590 591 BUG_ON(iommu->prr_page); 592 if (adreno_smmu->set_prr_bit) { 593 /* 594 * We need a zero'd page for two reasons: 595 * 596 * 1) Reserve a known physical address to use when 597 * mapping NULL / sparsely resident regions 598 * 2) Read back zero 599 * 600 * It appears the hw drops writes to the PRR region 601 * on the floor, but reads actually return whatever 602 * is in the PRR page. 603 */ 604 iommu->prr_page = alloc_page(GFP_KERNEL | __GFP_ZERO); 605 adreno_smmu->set_prr_addr(adreno_smmu->cookie, 606 page_to_phys(iommu->prr_page)); 607 adreno_smmu->set_prr_bit(adreno_smmu->cookie, true); 608 } 609 } 610 mutex_unlock(&iommu->init_lock); 611 612 /* Needed later for TLB flush */ 613 pagetable->parent = parent; 614 pagetable->tlb = ttbr1_cfg->tlb; 615 pagetable->pgsize_bitmap = ttbr0_cfg.pgsize_bitmap; 616 pagetable->ttbr = ttbr0_cfg.arm_lpae_s1_cfg.ttbr; 617 618 /* 619 * TODO we would like each set of page tables to have a unique ASID 620 * to optimize TLB invalidation. But iommu_flush_iotlb_all() will 621 * end up flushing the ASID used for TTBR1 pagetables, which is not 622 * what we want. So for now just use the same ASID as TTBR1. 623 */ 624 pagetable->asid = 0; 625 626 return &pagetable->base; 627 } 628 629 static int msm_gpu_fault_handler(struct iommu_domain *domain, struct device *dev, 630 unsigned long iova, int flags, void *arg) 631 { 632 struct msm_iommu *iommu = arg; 633 struct adreno_smmu_priv *adreno_smmu = dev_get_drvdata(iommu->base.dev); 634 struct adreno_smmu_fault_info info, *ptr = NULL; 635 636 if (adreno_smmu->get_fault_info) { 637 adreno_smmu->get_fault_info(adreno_smmu->cookie, &info); 638 ptr = &info; 639 } 640 641 if (iommu->base.handler) 642 return iommu->base.handler(iommu->base.arg, iova, flags, ptr); 643 644 pr_warn_ratelimited("*** fault: iova=%16lx, flags=%d\n", iova, flags); 645 646 return 0; 647 } 648 649 static int msm_disp_fault_handler(struct iommu_domain *domain, struct device *dev, 650 unsigned long iova, int flags, void *arg) 651 { 652 struct msm_iommu *iommu = arg; 653 654 if (iommu->base.handler) 655 return iommu->base.handler(iommu->base.arg, iova, flags, NULL); 656 657 return -ENOSYS; 658 } 659 660 static void msm_iommu_set_stall(struct msm_mmu *mmu, bool enable) 661 { 662 struct adreno_smmu_priv *adreno_smmu = dev_get_drvdata(mmu->dev); 663 664 if (adreno_smmu->set_stall) 665 adreno_smmu->set_stall(adreno_smmu->cookie, enable); 666 } 667 668 static void msm_iommu_detach(struct msm_mmu *mmu) 669 { 670 struct msm_iommu *iommu = to_msm_iommu(mmu); 671 672 iommu_detach_device(iommu->domain, mmu->dev); 673 } 674 675 static int msm_iommu_map(struct msm_mmu *mmu, uint64_t iova, 676 struct sg_table *sgt, size_t off, size_t len, 677 int prot) 678 { 679 struct msm_iommu *iommu = to_msm_iommu(mmu); 680 size_t ret; 681 682 WARN_ON(off != 0); 683 684 /* The arm-smmu driver expects the addresses to be sign extended */ 685 if (iova & BIT_ULL(48)) 686 iova |= GENMASK_ULL(63, 49); 687 688 ret = iommu_map_sgtable(iommu->domain, iova, sgt, prot); 689 WARN_ON(!ret); 690 691 return (ret == len) ? 0 : -EINVAL; 692 } 693 694 static int msm_iommu_unmap(struct msm_mmu *mmu, uint64_t iova, size_t len) 695 { 696 struct msm_iommu *iommu = to_msm_iommu(mmu); 697 698 if (iova & BIT_ULL(48)) 699 iova |= GENMASK_ULL(63, 49); 700 701 iommu_unmap(iommu->domain, iova, len); 702 703 return 0; 704 } 705 706 static void msm_iommu_destroy(struct msm_mmu *mmu) 707 { 708 struct msm_iommu *iommu = to_msm_iommu(mmu); 709 iommu_domain_free(iommu->domain); 710 kmem_cache_destroy(iommu->pt_cache); 711 kfree(iommu); 712 } 713 714 static const struct msm_mmu_funcs funcs = { 715 .detach = msm_iommu_detach, 716 .map = msm_iommu_map, 717 .unmap = msm_iommu_unmap, 718 .destroy = msm_iommu_destroy, 719 .set_stall = msm_iommu_set_stall, 720 }; 721 722 struct msm_mmu *msm_iommu_new(struct device *dev, unsigned long quirks) 723 { 724 struct iommu_domain *domain; 725 struct msm_iommu *iommu; 726 int ret; 727 728 if (!device_iommu_mapped(dev)) 729 return ERR_PTR(-ENODEV); 730 731 domain = iommu_paging_domain_alloc(dev); 732 if (IS_ERR(domain)) 733 return ERR_CAST(domain); 734 735 iommu_set_pgtable_quirks(domain, quirks); 736 737 iommu = kzalloc(sizeof(*iommu), GFP_KERNEL); 738 if (!iommu) { 739 iommu_domain_free(domain); 740 return ERR_PTR(-ENOMEM); 741 } 742 743 iommu->domain = domain; 744 msm_mmu_init(&iommu->base, dev, &funcs, MSM_MMU_IOMMU); 745 746 mutex_init(&iommu->init_lock); 747 748 ret = iommu_attach_device(iommu->domain, dev); 749 if (ret) { 750 iommu_domain_free(domain); 751 kfree(iommu); 752 return ERR_PTR(ret); 753 } 754 755 return &iommu->base; 756 } 757 758 struct msm_mmu *msm_iommu_disp_new(struct device *dev, unsigned long quirks) 759 { 760 struct msm_iommu *iommu; 761 struct msm_mmu *mmu; 762 763 mmu = msm_iommu_new(dev, quirks); 764 if (IS_ERR(mmu)) 765 return mmu; 766 767 iommu = to_msm_iommu(mmu); 768 iommu_set_fault_handler(iommu->domain, msm_disp_fault_handler, iommu); 769 770 return mmu; 771 } 772 773 struct msm_mmu *msm_iommu_gpu_new(struct device *dev, struct msm_gpu *gpu, unsigned long quirks) 774 { 775 struct adreno_smmu_priv *adreno_smmu = dev_get_drvdata(dev); 776 struct msm_iommu *iommu; 777 struct msm_mmu *mmu; 778 779 mmu = msm_iommu_new(dev, quirks); 780 if (IS_ERR(mmu)) 781 return mmu; 782 783 iommu = to_msm_iommu(mmu); 784 if (adreno_smmu->cookie) { 785 const struct io_pgtable_cfg *cfg = 786 adreno_smmu->get_ttbr1_cfg(adreno_smmu->cookie); 787 size_t tblsz = get_tblsz(cfg); 788 789 iommu->pt_cache = 790 kmem_cache_create("msm-mmu-pt", tblsz, tblsz, 0, NULL); 791 } 792 iommu_set_fault_handler(iommu->domain, msm_gpu_fault_handler, iommu); 793 794 /* Enable stall on iommu fault: */ 795 if (adreno_smmu->set_stall) 796 adreno_smmu->set_stall(adreno_smmu->cookie, true); 797 798 return mmu; 799 } 800