blob: dbe6178a53e943dd5d916c7c7289cc425a9c391d [file] [log] [blame]
Will Deacone1d3c0f2014-11-14 17:18:23 +00001/*
2 * CPU-agnostic ARM page table allocator.
3 *
4 * This program is free software; you can redistribute it and/or modify
5 * it under the terms of the GNU General Public License version 2 as
6 * published by the Free Software Foundation.
7 *
8 * This program is distributed in the hope that it will be useful,
9 * but WITHOUT ANY WARRANTY; without even the implied warranty of
10 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
11 * GNU General Public License for more details.
12 *
13 * You should have received a copy of the GNU General Public License
14 * along with this program. If not, see <http://www.gnu.org/licenses/>.
15 *
16 * Copyright (C) 2014 ARM Limited
17 *
18 * Author: Will Deacon <will.deacon@arm.com>
19 */
20
21#define pr_fmt(fmt) "arm-lpae io-pgtable: " fmt
22
23#include <linux/iommu.h>
24#include <linux/kernel.h>
25#include <linux/sizes.h>
26#include <linux/slab.h>
27#include <linux/types.h>
28
29#include "io-pgtable.h"
30
31#define ARM_LPAE_MAX_ADDR_BITS 48
32#define ARM_LPAE_S2_MAX_CONCAT_PAGES 16
33#define ARM_LPAE_MAX_LEVELS 4
34
35/* Struct accessors */
36#define io_pgtable_to_data(x) \
37 container_of((x), struct arm_lpae_io_pgtable, iop)
38
39#define io_pgtable_ops_to_pgtable(x) \
40 container_of((x), struct io_pgtable, ops)
41
42#define io_pgtable_ops_to_data(x) \
43 io_pgtable_to_data(io_pgtable_ops_to_pgtable(x))
44
45/*
46 * For consistency with the architecture, we always consider
47 * ARM_LPAE_MAX_LEVELS levels, with the walk starting at level n >=0
48 */
49#define ARM_LPAE_START_LVL(d) (ARM_LPAE_MAX_LEVELS - (d)->levels)
50
51/*
52 * Calculate the right shift amount to get to the portion describing level l
53 * in a virtual address mapped by the pagetable in d.
54 */
55#define ARM_LPAE_LVL_SHIFT(l,d) \
56 ((((d)->levels - ((l) - ARM_LPAE_START_LVL(d) + 1)) \
57 * (d)->bits_per_level) + (d)->pg_shift)
58
59#define ARM_LPAE_PAGES_PER_PGD(d) ((d)->pgd_size >> (d)->pg_shift)
60
61/*
62 * Calculate the index at level l used to map virtual address a using the
63 * pagetable in d.
64 */
65#define ARM_LPAE_PGD_IDX(l,d) \
66 ((l) == ARM_LPAE_START_LVL(d) ? ilog2(ARM_LPAE_PAGES_PER_PGD(d)) : 0)
67
68#define ARM_LPAE_LVL_IDX(a,l,d) \
69 (((a) >> ARM_LPAE_LVL_SHIFT(l,d)) & \
70 ((1 << ((d)->bits_per_level + ARM_LPAE_PGD_IDX(l,d))) - 1))
71
72/* Calculate the block/page mapping size at level l for pagetable in d. */
73#define ARM_LPAE_BLOCK_SIZE(l,d) \
74 (1 << (ilog2(sizeof(arm_lpae_iopte)) + \
75 ((ARM_LPAE_MAX_LEVELS - (l)) * (d)->bits_per_level)))
76
77/* Page table bits */
78#define ARM_LPAE_PTE_TYPE_SHIFT 0
79#define ARM_LPAE_PTE_TYPE_MASK 0x3
80
81#define ARM_LPAE_PTE_TYPE_BLOCK 1
82#define ARM_LPAE_PTE_TYPE_TABLE 3
83#define ARM_LPAE_PTE_TYPE_PAGE 3
84
85#define ARM_LPAE_PTE_XN (((arm_lpae_iopte)3) << 53)
86#define ARM_LPAE_PTE_AF (((arm_lpae_iopte)1) << 10)
87#define ARM_LPAE_PTE_SH_NS (((arm_lpae_iopte)0) << 8)
88#define ARM_LPAE_PTE_SH_OS (((arm_lpae_iopte)2) << 8)
89#define ARM_LPAE_PTE_SH_IS (((arm_lpae_iopte)3) << 8)
90#define ARM_LPAE_PTE_VALID (((arm_lpae_iopte)1) << 0)
91
92#define ARM_LPAE_PTE_ATTR_LO_MASK (((arm_lpae_iopte)0x3ff) << 2)
93/* Ignore the contiguous bit for block splitting */
94#define ARM_LPAE_PTE_ATTR_HI_MASK (((arm_lpae_iopte)6) << 52)
95#define ARM_LPAE_PTE_ATTR_MASK (ARM_LPAE_PTE_ATTR_LO_MASK | \
96 ARM_LPAE_PTE_ATTR_HI_MASK)
97
98/* Stage-1 PTE */
99#define ARM_LPAE_PTE_AP_UNPRIV (((arm_lpae_iopte)1) << 6)
100#define ARM_LPAE_PTE_AP_RDONLY (((arm_lpae_iopte)2) << 6)
101#define ARM_LPAE_PTE_ATTRINDX_SHIFT 2
102#define ARM_LPAE_PTE_nG (((arm_lpae_iopte)1) << 11)
103
104/* Stage-2 PTE */
105#define ARM_LPAE_PTE_HAP_FAULT (((arm_lpae_iopte)0) << 6)
106#define ARM_LPAE_PTE_HAP_READ (((arm_lpae_iopte)1) << 6)
107#define ARM_LPAE_PTE_HAP_WRITE (((arm_lpae_iopte)2) << 6)
108#define ARM_LPAE_PTE_MEMATTR_OIWB (((arm_lpae_iopte)0xf) << 2)
109#define ARM_LPAE_PTE_MEMATTR_NC (((arm_lpae_iopte)0x5) << 2)
110#define ARM_LPAE_PTE_MEMATTR_DEV (((arm_lpae_iopte)0x1) << 2)
111
112/* Register bits */
113#define ARM_32_LPAE_TCR_EAE (1 << 31)
114#define ARM_64_LPAE_S2_TCR_RES1 (1 << 31)
115
116#define ARM_LPAE_TCR_TG0_4K (0 << 14)
117#define ARM_LPAE_TCR_TG0_64K (1 << 14)
118#define ARM_LPAE_TCR_TG0_16K (2 << 14)
119
120#define ARM_LPAE_TCR_SH0_SHIFT 12
121#define ARM_LPAE_TCR_SH0_MASK 0x3
122#define ARM_LPAE_TCR_SH_NS 0
123#define ARM_LPAE_TCR_SH_OS 2
124#define ARM_LPAE_TCR_SH_IS 3
125
126#define ARM_LPAE_TCR_ORGN0_SHIFT 10
127#define ARM_LPAE_TCR_IRGN0_SHIFT 8
128#define ARM_LPAE_TCR_RGN_MASK 0x3
129#define ARM_LPAE_TCR_RGN_NC 0
130#define ARM_LPAE_TCR_RGN_WBWA 1
131#define ARM_LPAE_TCR_RGN_WT 2
132#define ARM_LPAE_TCR_RGN_WB 3
133
134#define ARM_LPAE_TCR_SL0_SHIFT 6
135#define ARM_LPAE_TCR_SL0_MASK 0x3
136
137#define ARM_LPAE_TCR_T0SZ_SHIFT 0
138#define ARM_LPAE_TCR_SZ_MASK 0xf
139
140#define ARM_LPAE_TCR_PS_SHIFT 16
141#define ARM_LPAE_TCR_PS_MASK 0x7
142
143#define ARM_LPAE_TCR_IPS_SHIFT 32
144#define ARM_LPAE_TCR_IPS_MASK 0x7
145
146#define ARM_LPAE_TCR_PS_32_BIT 0x0ULL
147#define ARM_LPAE_TCR_PS_36_BIT 0x1ULL
148#define ARM_LPAE_TCR_PS_40_BIT 0x2ULL
149#define ARM_LPAE_TCR_PS_42_BIT 0x3ULL
150#define ARM_LPAE_TCR_PS_44_BIT 0x4ULL
151#define ARM_LPAE_TCR_PS_48_BIT 0x5ULL
152
153#define ARM_LPAE_MAIR_ATTR_SHIFT(n) ((n) << 3)
154#define ARM_LPAE_MAIR_ATTR_MASK 0xff
155#define ARM_LPAE_MAIR_ATTR_DEVICE 0x04
156#define ARM_LPAE_MAIR_ATTR_NC 0x44
157#define ARM_LPAE_MAIR_ATTR_WBRWA 0xff
158#define ARM_LPAE_MAIR_ATTR_IDX_NC 0
159#define ARM_LPAE_MAIR_ATTR_IDX_CACHE 1
160#define ARM_LPAE_MAIR_ATTR_IDX_DEV 2
161
162/* IOPTE accessors */
163#define iopte_deref(pte,d) \
164 (__va((pte) & ((1ULL << ARM_LPAE_MAX_ADDR_BITS) - 1) \
165 & ~((1ULL << (d)->pg_shift) - 1)))
166
167#define iopte_type(pte,l) \
168 (((pte) >> ARM_LPAE_PTE_TYPE_SHIFT) & ARM_LPAE_PTE_TYPE_MASK)
169
170#define iopte_prot(pte) ((pte) & ARM_LPAE_PTE_ATTR_MASK)
171
172#define iopte_leaf(pte,l) \
173 (l == (ARM_LPAE_MAX_LEVELS - 1) ? \
174 (iopte_type(pte,l) == ARM_LPAE_PTE_TYPE_PAGE) : \
175 (iopte_type(pte,l) == ARM_LPAE_PTE_TYPE_BLOCK))
176
177#define iopte_to_pfn(pte,d) \
178 (((pte) & ((1ULL << ARM_LPAE_MAX_ADDR_BITS) - 1)) >> (d)->pg_shift)
179
180#define pfn_to_iopte(pfn,d) \
181 (((pfn) << (d)->pg_shift) & ((1ULL << ARM_LPAE_MAX_ADDR_BITS) - 1))
182
183struct arm_lpae_io_pgtable {
184 struct io_pgtable iop;
185
186 int levels;
187 size_t pgd_size;
188 unsigned long pg_shift;
189 unsigned long bits_per_level;
190
191 void *pgd;
192};
193
194typedef u64 arm_lpae_iopte;
195
196static int arm_lpae_init_pte(struct arm_lpae_io_pgtable *data,
197 unsigned long iova, phys_addr_t paddr,
198 arm_lpae_iopte prot, int lvl,
199 arm_lpae_iopte *ptep)
200{
201 arm_lpae_iopte pte = prot;
202
203 /* We require an unmap first */
204 if (WARN_ON(iopte_leaf(*ptep, lvl)))
205 return -EEXIST;
206
207 if (lvl == ARM_LPAE_MAX_LEVELS - 1)
208 pte |= ARM_LPAE_PTE_TYPE_PAGE;
209 else
210 pte |= ARM_LPAE_PTE_TYPE_BLOCK;
211
212 pte |= ARM_LPAE_PTE_AF | ARM_LPAE_PTE_SH_IS;
213 pte |= pfn_to_iopte(paddr >> data->pg_shift, data);
214
215 *ptep = pte;
216 data->iop.cfg.tlb->flush_pgtable(ptep, sizeof(*ptep), data->iop.cookie);
217 return 0;
218}
219
220static int __arm_lpae_map(struct arm_lpae_io_pgtable *data, unsigned long iova,
221 phys_addr_t paddr, size_t size, arm_lpae_iopte prot,
222 int lvl, arm_lpae_iopte *ptep)
223{
224 arm_lpae_iopte *cptep, pte;
225 void *cookie = data->iop.cookie;
226 size_t block_size = ARM_LPAE_BLOCK_SIZE(lvl, data);
227
228 /* Find our entry at the current level */
229 ptep += ARM_LPAE_LVL_IDX(iova, lvl, data);
230
231 /* If we can install a leaf entry at this level, then do so */
232 if (size == block_size && (size & data->iop.cfg.pgsize_bitmap))
233 return arm_lpae_init_pte(data, iova, paddr, prot, lvl, ptep);
234
235 /* We can't allocate tables at the final level */
236 if (WARN_ON(lvl >= ARM_LPAE_MAX_LEVELS - 1))
237 return -EINVAL;
238
239 /* Grab a pointer to the next level */
240 pte = *ptep;
241 if (!pte) {
242 cptep = alloc_pages_exact(1UL << data->pg_shift,
243 GFP_ATOMIC | __GFP_ZERO);
244 if (!cptep)
245 return -ENOMEM;
246
247 data->iop.cfg.tlb->flush_pgtable(cptep, 1UL << data->pg_shift,
248 cookie);
249 pte = __pa(cptep) | ARM_LPAE_PTE_TYPE_TABLE;
250 *ptep = pte;
251 data->iop.cfg.tlb->flush_pgtable(ptep, sizeof(*ptep), cookie);
252 } else {
253 cptep = iopte_deref(pte, data);
254 }
255
256 /* Rinse, repeat */
257 return __arm_lpae_map(data, iova, paddr, size, prot, lvl + 1, cptep);
258}
259
260static arm_lpae_iopte arm_lpae_prot_to_pte(struct arm_lpae_io_pgtable *data,
261 int prot)
262{
263 arm_lpae_iopte pte;
264
265 if (data->iop.fmt == ARM_64_LPAE_S1 ||
266 data->iop.fmt == ARM_32_LPAE_S1) {
267 pte = ARM_LPAE_PTE_AP_UNPRIV | ARM_LPAE_PTE_nG;
268
269 if (!(prot & IOMMU_WRITE) && (prot & IOMMU_READ))
270 pte |= ARM_LPAE_PTE_AP_RDONLY;
271
272 if (prot & IOMMU_CACHE)
273 pte |= (ARM_LPAE_MAIR_ATTR_IDX_CACHE
274 << ARM_LPAE_PTE_ATTRINDX_SHIFT);
275 } else {
276 pte = ARM_LPAE_PTE_HAP_FAULT;
277 if (prot & IOMMU_READ)
278 pte |= ARM_LPAE_PTE_HAP_READ;
279 if (prot & IOMMU_WRITE)
280 pte |= ARM_LPAE_PTE_HAP_WRITE;
281 if (prot & IOMMU_CACHE)
282 pte |= ARM_LPAE_PTE_MEMATTR_OIWB;
283 else
284 pte |= ARM_LPAE_PTE_MEMATTR_NC;
285 }
286
287 if (prot & IOMMU_NOEXEC)
288 pte |= ARM_LPAE_PTE_XN;
289
290 return pte;
291}
292
293static int arm_lpae_map(struct io_pgtable_ops *ops, unsigned long iova,
294 phys_addr_t paddr, size_t size, int iommu_prot)
295{
296 struct arm_lpae_io_pgtable *data = io_pgtable_ops_to_data(ops);
297 arm_lpae_iopte *ptep = data->pgd;
298 int lvl = ARM_LPAE_START_LVL(data);
299 arm_lpae_iopte prot;
300
301 /* If no access, then nothing to do */
302 if (!(iommu_prot & (IOMMU_READ | IOMMU_WRITE)))
303 return 0;
304
305 prot = arm_lpae_prot_to_pte(data, iommu_prot);
306 return __arm_lpae_map(data, iova, paddr, size, prot, lvl, ptep);
307}
308
309static void __arm_lpae_free_pgtable(struct arm_lpae_io_pgtable *data, int lvl,
310 arm_lpae_iopte *ptep)
311{
312 arm_lpae_iopte *start, *end;
313 unsigned long table_size;
314
315 /* Only leaf entries at the last level */
316 if (lvl == ARM_LPAE_MAX_LEVELS - 1)
317 return;
318
319 if (lvl == ARM_LPAE_START_LVL(data))
320 table_size = data->pgd_size;
321 else
322 table_size = 1UL << data->pg_shift;
323
324 start = ptep;
325 end = (void *)ptep + table_size;
326
327 while (ptep != end) {
328 arm_lpae_iopte pte = *ptep++;
329
330 if (!pte || iopte_leaf(pte, lvl))
331 continue;
332
333 __arm_lpae_free_pgtable(data, lvl + 1, iopte_deref(pte, data));
334 }
335
336 free_pages_exact(start, table_size);
337}
338
339static void arm_lpae_free_pgtable(struct io_pgtable *iop)
340{
341 struct arm_lpae_io_pgtable *data = io_pgtable_to_data(iop);
342
343 __arm_lpae_free_pgtable(data, ARM_LPAE_START_LVL(data), data->pgd);
344 kfree(data);
345}
346
347static int arm_lpae_split_blk_unmap(struct arm_lpae_io_pgtable *data,
348 unsigned long iova, size_t size,
349 arm_lpae_iopte prot, int lvl,
350 arm_lpae_iopte *ptep, size_t blk_size)
351{
352 unsigned long blk_start, blk_end;
353 phys_addr_t blk_paddr;
354 arm_lpae_iopte table = 0;
355 void *cookie = data->iop.cookie;
356 const struct iommu_gather_ops *tlb = data->iop.cfg.tlb;
357
358 blk_start = iova & ~(blk_size - 1);
359 blk_end = blk_start + blk_size;
360 blk_paddr = iopte_to_pfn(*ptep, data) << data->pg_shift;
361
362 for (; blk_start < blk_end; blk_start += size, blk_paddr += size) {
363 arm_lpae_iopte *tablep;
364
365 /* Unmap! */
366 if (blk_start == iova)
367 continue;
368
369 /* __arm_lpae_map expects a pointer to the start of the table */
370 tablep = &table - ARM_LPAE_LVL_IDX(blk_start, lvl, data);
371 if (__arm_lpae_map(data, blk_start, blk_paddr, size, prot, lvl,
372 tablep) < 0) {
373 if (table) {
374 /* Free the table we allocated */
375 tablep = iopte_deref(table, data);
376 __arm_lpae_free_pgtable(data, lvl + 1, tablep);
377 }
378 return 0; /* Bytes unmapped */
379 }
380 }
381
382 *ptep = table;
383 tlb->flush_pgtable(ptep, sizeof(*ptep), cookie);
384 iova &= ~(blk_size - 1);
385 tlb->tlb_add_flush(iova, blk_size, true, cookie);
386 return size;
387}
388
389static int __arm_lpae_unmap(struct arm_lpae_io_pgtable *data,
390 unsigned long iova, size_t size, int lvl,
391 arm_lpae_iopte *ptep)
392{
393 arm_lpae_iopte pte;
394 const struct iommu_gather_ops *tlb = data->iop.cfg.tlb;
395 void *cookie = data->iop.cookie;
396 size_t blk_size = ARM_LPAE_BLOCK_SIZE(lvl, data);
397
398 ptep += ARM_LPAE_LVL_IDX(iova, lvl, data);
399 pte = *ptep;
400
401 /* Something went horribly wrong and we ran out of page table */
402 if (WARN_ON(!pte || (lvl == ARM_LPAE_MAX_LEVELS)))
403 return 0;
404
405 /* If the size matches this level, we're in the right place */
406 if (size == blk_size) {
407 *ptep = 0;
408 tlb->flush_pgtable(ptep, sizeof(*ptep), cookie);
409
410 if (!iopte_leaf(pte, lvl)) {
411 /* Also flush any partial walks */
412 tlb->tlb_add_flush(iova, size, false, cookie);
413 tlb->tlb_sync(data->iop.cookie);
414 ptep = iopte_deref(pte, data);
415 __arm_lpae_free_pgtable(data, lvl + 1, ptep);
416 } else {
417 tlb->tlb_add_flush(iova, size, true, cookie);
418 }
419
420 return size;
421 } else if (iopte_leaf(pte, lvl)) {
422 /*
423 * Insert a table at the next level to map the old region,
424 * minus the part we want to unmap
425 */
426 return arm_lpae_split_blk_unmap(data, iova, size,
427 iopte_prot(pte), lvl, ptep,
428 blk_size);
429 }
430
431 /* Keep on walkin' */
432 ptep = iopte_deref(pte, data);
433 return __arm_lpae_unmap(data, iova, size, lvl + 1, ptep);
434}
435
436static int arm_lpae_unmap(struct io_pgtable_ops *ops, unsigned long iova,
437 size_t size)
438{
439 size_t unmapped;
440 struct arm_lpae_io_pgtable *data = io_pgtable_ops_to_data(ops);
441 struct io_pgtable *iop = &data->iop;
442 arm_lpae_iopte *ptep = data->pgd;
443 int lvl = ARM_LPAE_START_LVL(data);
444
445 unmapped = __arm_lpae_unmap(data, iova, size, lvl, ptep);
446 if (unmapped)
447 iop->cfg.tlb->tlb_sync(iop->cookie);
448
449 return unmapped;
450}
451
452static phys_addr_t arm_lpae_iova_to_phys(struct io_pgtable_ops *ops,
453 unsigned long iova)
454{
455 struct arm_lpae_io_pgtable *data = io_pgtable_ops_to_data(ops);
456 arm_lpae_iopte pte, *ptep = data->pgd;
457 int lvl = ARM_LPAE_START_LVL(data);
458
459 do {
460 /* Valid IOPTE pointer? */
461 if (!ptep)
462 return 0;
463
464 /* Grab the IOPTE we're interested in */
465 pte = *(ptep + ARM_LPAE_LVL_IDX(iova, lvl, data));
466
467 /* Valid entry? */
468 if (!pte)
469 return 0;
470
471 /* Leaf entry? */
472 if (iopte_leaf(pte,lvl))
473 goto found_translation;
474
475 /* Take it to the next level */
476 ptep = iopte_deref(pte, data);
477 } while (++lvl < ARM_LPAE_MAX_LEVELS);
478
479 /* Ran out of page tables to walk */
480 return 0;
481
482found_translation:
483 iova &= ((1 << data->pg_shift) - 1);
484 return ((phys_addr_t)iopte_to_pfn(pte,data) << data->pg_shift) | iova;
485}
486
487static void arm_lpae_restrict_pgsizes(struct io_pgtable_cfg *cfg)
488{
489 unsigned long granule;
490
491 /*
492 * We need to restrict the supported page sizes to match the
493 * translation regime for a particular granule. Aim to match
494 * the CPU page size if possible, otherwise prefer smaller sizes.
495 * While we're at it, restrict the block sizes to match the
496 * chosen granule.
497 */
498 if (cfg->pgsize_bitmap & PAGE_SIZE)
499 granule = PAGE_SIZE;
500 else if (cfg->pgsize_bitmap & ~PAGE_MASK)
501 granule = 1UL << __fls(cfg->pgsize_bitmap & ~PAGE_MASK);
502 else if (cfg->pgsize_bitmap & PAGE_MASK)
503 granule = 1UL << __ffs(cfg->pgsize_bitmap & PAGE_MASK);
504 else
505 granule = 0;
506
507 switch (granule) {
508 case SZ_4K:
509 cfg->pgsize_bitmap &= (SZ_4K | SZ_2M | SZ_1G);
510 break;
511 case SZ_16K:
512 cfg->pgsize_bitmap &= (SZ_16K | SZ_32M);
513 break;
514 case SZ_64K:
515 cfg->pgsize_bitmap &= (SZ_64K | SZ_512M);
516 break;
517 default:
518 cfg->pgsize_bitmap = 0;
519 }
520}
521
522static struct arm_lpae_io_pgtable *
523arm_lpae_alloc_pgtable(struct io_pgtable_cfg *cfg)
524{
525 unsigned long va_bits, pgd_bits;
526 struct arm_lpae_io_pgtable *data;
527
528 arm_lpae_restrict_pgsizes(cfg);
529
530 if (!(cfg->pgsize_bitmap & (SZ_4K | SZ_16K | SZ_64K)))
531 return NULL;
532
533 if (cfg->ias > ARM_LPAE_MAX_ADDR_BITS)
534 return NULL;
535
536 if (cfg->oas > ARM_LPAE_MAX_ADDR_BITS)
537 return NULL;
538
539 data = kmalloc(sizeof(*data), GFP_KERNEL);
540 if (!data)
541 return NULL;
542
543 data->pg_shift = __ffs(cfg->pgsize_bitmap);
544 data->bits_per_level = data->pg_shift - ilog2(sizeof(arm_lpae_iopte));
545
546 va_bits = cfg->ias - data->pg_shift;
547 data->levels = DIV_ROUND_UP(va_bits, data->bits_per_level);
548
549 /* Calculate the actual size of our pgd (without concatenation) */
550 pgd_bits = va_bits - (data->bits_per_level * (data->levels - 1));
551 data->pgd_size = 1UL << (pgd_bits + ilog2(sizeof(arm_lpae_iopte)));
552
553 data->iop.ops = (struct io_pgtable_ops) {
554 .map = arm_lpae_map,
555 .unmap = arm_lpae_unmap,
556 .iova_to_phys = arm_lpae_iova_to_phys,
557 };
558
559 return data;
560}
561
562static struct io_pgtable *
563arm_64_lpae_alloc_pgtable_s1(struct io_pgtable_cfg *cfg, void *cookie)
564{
565 u64 reg;
566 struct arm_lpae_io_pgtable *data = arm_lpae_alloc_pgtable(cfg);
567
568 if (!data)
569 return NULL;
570
571 /* TCR */
572 reg = (ARM_LPAE_TCR_SH_IS << ARM_LPAE_TCR_SH0_SHIFT) |
573 (ARM_LPAE_TCR_RGN_WBWA << ARM_LPAE_TCR_IRGN0_SHIFT) |
574 (ARM_LPAE_TCR_RGN_WBWA << ARM_LPAE_TCR_ORGN0_SHIFT);
575
576 switch (1 << data->pg_shift) {
577 case SZ_4K:
578 reg |= ARM_LPAE_TCR_TG0_4K;
579 break;
580 case SZ_16K:
581 reg |= ARM_LPAE_TCR_TG0_16K;
582 break;
583 case SZ_64K:
584 reg |= ARM_LPAE_TCR_TG0_64K;
585 break;
586 }
587
588 switch (cfg->oas) {
589 case 32:
590 reg |= (ARM_LPAE_TCR_PS_32_BIT << ARM_LPAE_TCR_IPS_SHIFT);
591 break;
592 case 36:
593 reg |= (ARM_LPAE_TCR_PS_36_BIT << ARM_LPAE_TCR_IPS_SHIFT);
594 break;
595 case 40:
596 reg |= (ARM_LPAE_TCR_PS_40_BIT << ARM_LPAE_TCR_IPS_SHIFT);
597 break;
598 case 42:
599 reg |= (ARM_LPAE_TCR_PS_42_BIT << ARM_LPAE_TCR_IPS_SHIFT);
600 break;
601 case 44:
602 reg |= (ARM_LPAE_TCR_PS_44_BIT << ARM_LPAE_TCR_IPS_SHIFT);
603 break;
604 case 48:
605 reg |= (ARM_LPAE_TCR_PS_48_BIT << ARM_LPAE_TCR_IPS_SHIFT);
606 break;
607 default:
608 goto out_free_data;
609 }
610
611 reg |= (64ULL - cfg->ias) << ARM_LPAE_TCR_T0SZ_SHIFT;
612 cfg->arm_lpae_s1_cfg.tcr = reg;
613
614 /* MAIRs */
615 reg = (ARM_LPAE_MAIR_ATTR_NC
616 << ARM_LPAE_MAIR_ATTR_SHIFT(ARM_LPAE_MAIR_ATTR_IDX_NC)) |
617 (ARM_LPAE_MAIR_ATTR_WBRWA
618 << ARM_LPAE_MAIR_ATTR_SHIFT(ARM_LPAE_MAIR_ATTR_IDX_CACHE)) |
619 (ARM_LPAE_MAIR_ATTR_DEVICE
620 << ARM_LPAE_MAIR_ATTR_SHIFT(ARM_LPAE_MAIR_ATTR_IDX_DEV));
621
622 cfg->arm_lpae_s1_cfg.mair[0] = reg;
623 cfg->arm_lpae_s1_cfg.mair[1] = 0;
624
625 /* Looking good; allocate a pgd */
626 data->pgd = alloc_pages_exact(data->pgd_size, GFP_KERNEL | __GFP_ZERO);
627 if (!data->pgd)
628 goto out_free_data;
629
630 cfg->tlb->flush_pgtable(data->pgd, data->pgd_size, cookie);
631
632 /* TTBRs */
633 cfg->arm_lpae_s1_cfg.ttbr[0] = virt_to_phys(data->pgd);
634 cfg->arm_lpae_s1_cfg.ttbr[1] = 0;
635 return &data->iop;
636
637out_free_data:
638 kfree(data);
639 return NULL;
640}
641
642static struct io_pgtable *
643arm_64_lpae_alloc_pgtable_s2(struct io_pgtable_cfg *cfg, void *cookie)
644{
645 u64 reg, sl;
646 struct arm_lpae_io_pgtable *data = arm_lpae_alloc_pgtable(cfg);
647
648 if (!data)
649 return NULL;
650
651 /*
652 * Concatenate PGDs at level 1 if possible in order to reduce
653 * the depth of the stage-2 walk.
654 */
655 if (data->levels == ARM_LPAE_MAX_LEVELS) {
656 unsigned long pgd_pages;
657
658 pgd_pages = data->pgd_size >> ilog2(sizeof(arm_lpae_iopte));
659 if (pgd_pages <= ARM_LPAE_S2_MAX_CONCAT_PAGES) {
660 data->pgd_size = pgd_pages << data->pg_shift;
661 data->levels--;
662 }
663 }
664
665 /* VTCR */
666 reg = ARM_64_LPAE_S2_TCR_RES1 |
667 (ARM_LPAE_TCR_SH_IS << ARM_LPAE_TCR_SH0_SHIFT) |
668 (ARM_LPAE_TCR_RGN_WBWA << ARM_LPAE_TCR_IRGN0_SHIFT) |
669 (ARM_LPAE_TCR_RGN_WBWA << ARM_LPAE_TCR_ORGN0_SHIFT);
670
671 sl = ARM_LPAE_START_LVL(data);
672
673 switch (1 << data->pg_shift) {
674 case SZ_4K:
675 reg |= ARM_LPAE_TCR_TG0_4K;
676 sl++; /* SL0 format is different for 4K granule size */
677 break;
678 case SZ_16K:
679 reg |= ARM_LPAE_TCR_TG0_16K;
680 break;
681 case SZ_64K:
682 reg |= ARM_LPAE_TCR_TG0_64K;
683 break;
684 }
685
686 switch (cfg->oas) {
687 case 32:
688 reg |= (ARM_LPAE_TCR_PS_32_BIT << ARM_LPAE_TCR_PS_SHIFT);
689 break;
690 case 36:
691 reg |= (ARM_LPAE_TCR_PS_36_BIT << ARM_LPAE_TCR_PS_SHIFT);
692 break;
693 case 40:
694 reg |= (ARM_LPAE_TCR_PS_40_BIT << ARM_LPAE_TCR_PS_SHIFT);
695 break;
696 case 42:
697 reg |= (ARM_LPAE_TCR_PS_42_BIT << ARM_LPAE_TCR_PS_SHIFT);
698 break;
699 case 44:
700 reg |= (ARM_LPAE_TCR_PS_44_BIT << ARM_LPAE_TCR_PS_SHIFT);
701 break;
702 case 48:
703 reg |= (ARM_LPAE_TCR_PS_48_BIT << ARM_LPAE_TCR_PS_SHIFT);
704 break;
705 default:
706 goto out_free_data;
707 }
708
709 reg |= (64ULL - cfg->ias) << ARM_LPAE_TCR_T0SZ_SHIFT;
710 reg |= (~sl & ARM_LPAE_TCR_SL0_MASK) << ARM_LPAE_TCR_SL0_SHIFT;
711 cfg->arm_lpae_s2_cfg.vtcr = reg;
712
713 /* Allocate pgd pages */
714 data->pgd = alloc_pages_exact(data->pgd_size, GFP_KERNEL | __GFP_ZERO);
715 if (!data->pgd)
716 goto out_free_data;
717
718 cfg->tlb->flush_pgtable(data->pgd, data->pgd_size, cookie);
719
720 /* VTTBR */
721 cfg->arm_lpae_s2_cfg.vttbr = virt_to_phys(data->pgd);
722 return &data->iop;
723
724out_free_data:
725 kfree(data);
726 return NULL;
727}
728
729static struct io_pgtable *
730arm_32_lpae_alloc_pgtable_s1(struct io_pgtable_cfg *cfg, void *cookie)
731{
732 struct io_pgtable *iop;
733
734 if (cfg->ias > 32 || cfg->oas > 40)
735 return NULL;
736
737 cfg->pgsize_bitmap &= (SZ_4K | SZ_2M | SZ_1G);
738 iop = arm_64_lpae_alloc_pgtable_s1(cfg, cookie);
739 if (iop) {
740 cfg->arm_lpae_s1_cfg.tcr |= ARM_32_LPAE_TCR_EAE;
741 cfg->arm_lpae_s1_cfg.tcr &= 0xffffffff;
742 }
743
744 return iop;
745}
746
747static struct io_pgtable *
748arm_32_lpae_alloc_pgtable_s2(struct io_pgtable_cfg *cfg, void *cookie)
749{
750 struct io_pgtable *iop;
751
752 if (cfg->ias > 40 || cfg->oas > 40)
753 return NULL;
754
755 cfg->pgsize_bitmap &= (SZ_4K | SZ_2M | SZ_1G);
756 iop = arm_64_lpae_alloc_pgtable_s2(cfg, cookie);
757 if (iop)
758 cfg->arm_lpae_s2_cfg.vtcr &= 0xffffffff;
759
760 return iop;
761}
762
763struct io_pgtable_init_fns io_pgtable_arm_64_lpae_s1_init_fns = {
764 .alloc = arm_64_lpae_alloc_pgtable_s1,
765 .free = arm_lpae_free_pgtable,
766};
767
768struct io_pgtable_init_fns io_pgtable_arm_64_lpae_s2_init_fns = {
769 .alloc = arm_64_lpae_alloc_pgtable_s2,
770 .free = arm_lpae_free_pgtable,
771};
772
773struct io_pgtable_init_fns io_pgtable_arm_32_lpae_s1_init_fns = {
774 .alloc = arm_32_lpae_alloc_pgtable_s1,
775 .free = arm_lpae_free_pgtable,
776};
777
778struct io_pgtable_init_fns io_pgtable_arm_32_lpae_s2_init_fns = {
779 .alloc = arm_32_lpae_alloc_pgtable_s2,
780 .free = arm_lpae_free_pgtable,
781};