1 /*
2 * Copyright 2017 Red Hat Inc.
3 *
4 * Permission is hereby granted, free of charge, to any person obtaining a
5 * copy of this software and associated documentation files (the "Software"),
6 * to deal in the Software without restriction, including without limitation
7 * the rights to use, copy, modify, merge, publish, distribute, sublicense,
8 * and/or sell copies of the Software, and to permit persons to whom the
9 * Software is furnished to do so, subject to the following conditions:
10 *
11 * The above copyright notice and this permission notice shall be included in
12 * all copies or substantial portions of the Software.
13 *
14 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
15 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
16 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL
17 * THE COPYRIGHT HOLDER(S) OR AUTHOR(S) BE LIABLE FOR ANY CLAIM, DAMAGES OR
18 * OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE,
19 * ARISING FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR
20 * OTHER DEALINGS IN THE SOFTWARE.
21 */
22 #define NVKM_VMM_LEVELS_MAX 6
23 #include "vmm.h"
24
25 #include <subdev/fb.h>
26
27 static void
nvkm_vmm_pt_del(struct nvkm_vmm_pt ** ppgt)28 nvkm_vmm_pt_del(struct nvkm_vmm_pt **ppgt)
29 {
30 struct nvkm_vmm_pt *pgt = *ppgt;
31 if (pgt) {
32 kvfree(pgt->pde);
33 kfree(pgt);
34 *ppgt = NULL;
35 }
36 }
37
38
39 static struct nvkm_vmm_pt *
nvkm_vmm_pt_new(const struct nvkm_vmm_desc * desc,bool sparse,const struct nvkm_vmm_page * page)40 nvkm_vmm_pt_new(const struct nvkm_vmm_desc *desc, bool sparse,
41 const struct nvkm_vmm_page *page)
42 {
43 const u32 pten = 1 << desc->bits;
44 struct nvkm_vmm_pt *pgt;
45 u32 lpte = 0;
46
47 if (desc->type > PGT) {
48 if (desc->type == SPT) {
49 const struct nvkm_vmm_desc *pair = page[-1].desc;
50 lpte = pten >> (desc->bits - pair->bits);
51 } else {
52 lpte = pten;
53 }
54 }
55
56 pgt = kzalloc_flex(*pgt, pte, lpte);
57 if (!pgt)
58 return NULL;
59 pgt->page = page ? page->shift : 0;
60 pgt->sparse = sparse;
61
62 if (desc->type == PGD) {
63 pgt->pde = kvzalloc_objs(*pgt->pde, pten);
64 if (!pgt->pde) {
65 kfree(pgt);
66 return NULL;
67 }
68 }
69
70 return pgt;
71 }
72
73 struct nvkm_vmm_iter {
74 const struct nvkm_vmm_page *page;
75 const struct nvkm_vmm_desc *desc;
76 struct nvkm_vmm *vmm;
77 u64 cnt;
78 u16 max, lvl;
79 u32 pte[NVKM_VMM_LEVELS_MAX];
80 struct nvkm_vmm_pt *pt[NVKM_VMM_LEVELS_MAX];
81 int flush;
82 };
83
84 #ifdef CONFIG_NOUVEAU_DEBUG_MMU
85 static const char *
nvkm_vmm_desc_type(const struct nvkm_vmm_desc * desc)86 nvkm_vmm_desc_type(const struct nvkm_vmm_desc *desc)
87 {
88 switch (desc->type) {
89 case PGD: return "PGD";
90 case PGT: return "PGT";
91 case SPT: return "SPT";
92 case LPT: return "LPT";
93 default:
94 return "UNKNOWN";
95 }
96 }
97
98 static void
nvkm_vmm_trace(struct nvkm_vmm_iter * it,char * buf)99 nvkm_vmm_trace(struct nvkm_vmm_iter *it, char *buf)
100 {
101 int lvl;
102 for (lvl = it->max; lvl >= 0; lvl--) {
103 if (lvl >= it->lvl)
104 buf += sprintf(buf, "%05x:", it->pte[lvl]);
105 else
106 buf += sprintf(buf, "xxxxx:");
107 }
108 }
109
110 #define TRA(i,f,a...) do { \
111 char _buf[NVKM_VMM_LEVELS_MAX * 7]; \
112 struct nvkm_vmm_iter *_it = (i); \
113 nvkm_vmm_trace(_it, _buf); \
114 VMM_TRACE(_it->vmm, "%s "f, _buf, ##a); \
115 } while(0)
116 #else
117 #define TRA(i,f,a...)
118 #endif
119
120 static inline void
nvkm_vmm_flush_mark(struct nvkm_vmm_iter * it)121 nvkm_vmm_flush_mark(struct nvkm_vmm_iter *it)
122 {
123 it->flush = min(it->flush, it->max - it->lvl);
124 }
125
126 static inline void
nvkm_vmm_flush(struct nvkm_vmm_iter * it)127 nvkm_vmm_flush(struct nvkm_vmm_iter *it)
128 {
129 if (it->flush != NVKM_VMM_LEVELS_MAX) {
130 if (it->vmm->func->flush) {
131 TRA(it, "flush: %d", it->flush);
132 it->vmm->func->flush(it->vmm, it->flush);
133 }
134 it->flush = NVKM_VMM_LEVELS_MAX;
135 }
136 }
137
138 static void
nvkm_vmm_unref_pdes(struct nvkm_vmm_iter * it)139 nvkm_vmm_unref_pdes(struct nvkm_vmm_iter *it)
140 {
141 const struct nvkm_vmm_desc *desc = it->desc;
142 const int type = desc[it->lvl].type == SPT;
143 struct nvkm_vmm_pt *pgd = it->pt[it->lvl + 1];
144 struct nvkm_vmm_pt *pgt = it->pt[it->lvl];
145 struct nvkm_mmu_pt *pt = pgt->pt[type];
146 struct nvkm_vmm *vmm = it->vmm;
147 u32 pdei = it->pte[it->lvl + 1];
148
149 /* Recurse up the tree, unreferencing/destroying unneeded PDs. */
150 it->lvl++;
151 if (--pgd->refs[0]) {
152 const struct nvkm_vmm_desc_func *func = desc[it->lvl].func;
153 /* PD has other valid PDEs, so we need a proper update. */
154 TRA(it, "PDE unmap %s", nvkm_vmm_desc_type(&desc[it->lvl - 1]));
155 pgt->pt[type] = NULL;
156 if (!pgt->refs[!type]) {
157 /* PDE no longer required. */
158 if (pgd->pt[0]) {
159 if (pgt->sparse) {
160 func->sparse(vmm, pgd->pt[0], pdei, 1);
161 pgd->pde[pdei] = NVKM_VMM_PDE_SPARSE;
162 } else {
163 func->unmap(vmm, pgd->pt[0], pdei, 1);
164 pgd->pde[pdei] = NULL;
165 }
166 } else {
167 /* Special handling for Tesla-class GPUs,
168 * where there's no central PD, but each
169 * instance has its own embedded PD.
170 */
171 func->pde(vmm, pgd, pdei);
172 pgd->pde[pdei] = NULL;
173 }
174 } else {
175 /* PDE was pointing at dual-PTs and we're removing
176 * one of them, leaving the other in place.
177 */
178 func->pde(vmm, pgd, pdei);
179 }
180
181 /* GPU may have cached the PTs, flush before freeing. */
182 nvkm_vmm_flush_mark(it);
183 nvkm_vmm_flush(it);
184 } else {
185 /* PD has no valid PDEs left, so we can just destroy it. */
186 nvkm_vmm_unref_pdes(it);
187 }
188
189 /* Destroy PD/PT. */
190 TRA(it, "PDE free %s", nvkm_vmm_desc_type(&desc[it->lvl - 1]));
191 nvkm_mmu_ptc_put(vmm->mmu, vmm->bootstrapped, &pt);
192 if (!pgt->refs[!type])
193 nvkm_vmm_pt_del(&pgt);
194 it->lvl--;
195 }
196
197 static void
nvkm_vmm_unref_sptes(struct nvkm_vmm_iter * it,struct nvkm_vmm_pt * pgt,const struct nvkm_vmm_desc * desc,u32 ptei,u32 ptes)198 nvkm_vmm_unref_sptes(struct nvkm_vmm_iter *it, struct nvkm_vmm_pt *pgt,
199 const struct nvkm_vmm_desc *desc, u32 ptei, u32 ptes)
200 {
201 const struct nvkm_vmm_desc *pair = it->page[-1].desc;
202 const u32 sptb = desc->bits - pair->bits;
203 const u32 sptn = 1 << sptb;
204 struct nvkm_vmm *vmm = it->vmm;
205 u32 spti = ptei & (sptn - 1), lpti, pteb;
206
207 /* Determine how many SPTEs are being touched under each LPTE,
208 * and drop reference counts.
209 */
210 for (lpti = ptei >> sptb; ptes; spti = 0, lpti++) {
211 const u32 pten = min(sptn - spti, ptes);
212 pgt->pte[lpti].s.sptes -= pten;
213 ptes -= pten;
214 }
215
216 /* We're done here if there's no corresponding LPT. */
217 if (!pgt->refs[0])
218 return;
219
220 for (ptei = pteb = ptei >> sptb; ptei < lpti; pteb = ptei) {
221 /* Skip over any LPTEs that still have valid SPTEs. */
222 if (pgt->pte[pteb].s.sptes) {
223 for (ptes = 1, ptei++; ptei < lpti; ptes++, ptei++) {
224 if (!(pgt->pte[ptei].s.sptes))
225 break;
226 }
227 continue;
228 }
229
230 /* As there's no more non-UNMAPPED SPTEs left in the range
231 * covered by a number of LPTEs, the LPTEs once again take
232 * control over their address range.
233 *
234 * Transition each LPTE individually as each may have a
235 * different target state (sparse, invalid, or valid).
236 */
237 for (ptei++; ptei < lpti; ptei++) {
238 if (pgt->pte[ptei].s.sptes)
239 break;
240 }
241
242 while (pteb < ptei) {
243 pgt->pte[pteb].s.spte_valid = false;
244 if (pgt->pte[pteb].s.sparse) {
245 TRA(it, "LPTE %05x: U -> S", pteb);
246 pair->func->sparse(vmm, pgt->pt[0], pteb, 1);
247 } else if (!pgt->pte[pteb].s.lpte_valid) {
248 if (pair->func->invalid) {
249 TRA(it, "LPTE %05x: U -> I", pteb);
250 pair->func->invalid(vmm, pgt->pt[0], pteb, 1);
251 }
252 }
253 pteb++;
254 }
255 }
256 }
257
258 static bool
nvkm_vmm_unref_ptes(struct nvkm_vmm_iter * it,bool pfn,u32 ptei,u32 ptes)259 nvkm_vmm_unref_ptes(struct nvkm_vmm_iter *it, bool pfn, u32 ptei, u32 ptes)
260 {
261 const struct nvkm_vmm_desc *desc = it->desc;
262 const int type = desc->type == SPT;
263 struct nvkm_vmm_pt *pgt = it->pt[0];
264 bool dma;
265
266 if (pfn) {
267 /* Need to clear PTE valid bits before we dma_unmap_page(). */
268 dma = desc->func->pfn_clear(it->vmm, pgt->pt[type], ptei, ptes);
269 if (dma) {
270 /* GPU may have cached the PT, flush before unmap. */
271 nvkm_vmm_flush_mark(it);
272 nvkm_vmm_flush(it);
273 desc->func->pfn_unmap(it->vmm, pgt->pt[type], ptei, ptes);
274 }
275 }
276
277 /* Drop PTE references. */
278 pgt->refs[type] -= ptes;
279
280 /* Dual-PTs need special handling, unless PDE becoming invalid. */
281 if (desc->type == SPT && (pgt->refs[0] || pgt->refs[1]))
282 nvkm_vmm_unref_sptes(it, pgt, desc, ptei, ptes);
283
284 if (desc->type == LPT && (pgt->refs[0] || pgt->refs[1])) {
285 for (u32 lpti = ptei; ptes; lpti++) {
286 pgt->pte[lpti].s.lptes--;
287 if (pgt->pte[lpti].s.lptes == 0)
288 pgt->pte[lpti].s.lpte_valid = false;
289 ptes--;
290 }
291 }
292
293 /* PT no longer needed? Destroy it. */
294 if (!pgt->refs[type]) {
295 it->lvl++;
296 TRA(it, "%s empty", nvkm_vmm_desc_type(desc));
297 it->lvl--;
298 nvkm_vmm_unref_pdes(it);
299 return false; /* PTE writes for unmap() not necessary. */
300 }
301
302 return true;
303 }
304
305 static void
nvkm_vmm_ref_sptes(struct nvkm_vmm_iter * it,struct nvkm_vmm_pt * pgt,const struct nvkm_vmm_desc * desc,u32 ptei,u32 ptes)306 nvkm_vmm_ref_sptes(struct nvkm_vmm_iter *it, struct nvkm_vmm_pt *pgt,
307 const struct nvkm_vmm_desc *desc, u32 ptei, u32 ptes)
308 {
309 const struct nvkm_vmm_desc *pair = it->page[-1].desc;
310 const u32 sptb = desc->bits - pair->bits;
311 const u32 sptn = 1 << sptb;
312 struct nvkm_vmm *vmm = it->vmm;
313 u32 spti = ptei & (sptn - 1), lpti, pteb;
314
315 /* Determine how many SPTEs are being touched under each LPTE,
316 * and increase reference counts.
317 */
318 for (lpti = ptei >> sptb; ptes; spti = 0, lpti++) {
319 const u32 pten = min(sptn - spti, ptes);
320 pgt->pte[lpti].s.sptes += pten;
321 ptes -= pten;
322 }
323
324 /* We're done here if there's no corresponding LPT. */
325 if (!pgt->refs[0])
326 return;
327
328 for (ptei = pteb = ptei >> sptb; ptei < lpti; pteb = ptei) {
329 /* Skip over any LPTEs that already have valid SPTEs. */
330 if (pgt->pte[pteb].s.spte_valid) {
331 for (ptes = 1, ptei++; ptei < lpti; ptes++, ptei++) {
332 if (!pgt->pte[ptei].s.spte_valid)
333 break;
334 }
335 continue;
336 }
337
338 /* As there are now non-UNMAPPED SPTEs in the range covered
339 * by a number of LPTEs, we need to transfer control of the
340 * address range to the SPTEs.
341 *
342 * Determine how many LPTEs need to transition state.
343 */
344 pgt->pte[ptei].s.spte_valid = true;
345 pgt->pte[ptei].s.lpte_valid = false;
346 for (ptes = 1, ptei++; ptei < lpti; ptes++, ptei++) {
347 if (pgt->pte[ptei].s.spte_valid)
348 break;
349 pgt->pte[ptei].s.spte_valid = true;
350 pgt->pte[ptei].s.lpte_valid = false;
351 }
352
353 if (pgt->pte[pteb].s.sparse) {
354 const u32 spti = pteb * sptn;
355 const u32 sptc = ptes * sptn;
356 /* The entire LPTE is marked as sparse, we need
357 * to make sure that the SPTEs are too.
358 */
359 TRA(it, "SPTE %05x: U -> S %d PTEs", spti, sptc);
360 desc->func->sparse(vmm, pgt->pt[1], spti, sptc);
361 /* Sparse LPTEs prevent SPTEs from being accessed. */
362 TRA(it, "LPTE %05x: S -> U %d PTEs", pteb, ptes);
363 pair->func->unmap(vmm, pgt->pt[0], pteb, ptes);
364 } else
365 if (pair->func->invalid) {
366 /* MMU supports blocking SPTEs by marking an LPTE
367 * as INVALID. We need to reverse that here.
368 */
369 TRA(it, "LPTE %05x: I -> U %d PTEs", pteb, ptes);
370 pair->func->unmap(vmm, pgt->pt[0], pteb, ptes);
371 }
372 }
373 }
374
375 static bool
nvkm_vmm_ref_ptes(struct nvkm_vmm_iter * it,bool pfn,u32 ptei,u32 ptes)376 nvkm_vmm_ref_ptes(struct nvkm_vmm_iter *it, bool pfn, u32 ptei, u32 ptes)
377 {
378 const struct nvkm_vmm_desc *desc = it->desc;
379 const int type = desc->type == SPT;
380 struct nvkm_vmm_pt *pgt = it->pt[0];
381
382 /* Take PTE references. */
383 pgt->refs[type] += ptes;
384
385 /* Dual-PTs need special handling. */
386 if (desc->type == SPT)
387 nvkm_vmm_ref_sptes(it, pgt, desc, ptei, ptes);
388
389 if (desc->type == LPT) {
390 for (u32 lpti = ptei; ptes; lpti++) {
391 pgt->pte[lpti].s.spte_valid = false;
392 pgt->pte[lpti].s.lpte_valid = true;
393 pgt->pte[lpti].s.lptes++;
394 ptes--;
395 }
396 }
397
398 return true;
399 }
400
401 static void
nvkm_vmm_sparse_ptes(const struct nvkm_vmm_desc * desc,struct nvkm_vmm_pt * pgt,u32 ptei,u32 ptes)402 nvkm_vmm_sparse_ptes(const struct nvkm_vmm_desc *desc,
403 struct nvkm_vmm_pt *pgt, u32 ptei, u32 ptes)
404 {
405 if (desc->type == PGD) {
406 while (ptes--)
407 pgt->pde[ptei++] = NVKM_VMM_PDE_SPARSE;
408 } else
409 if (desc->type == LPT) {
410 union nvkm_pte_tracker sparse = { .s.sparse = 1 };
411 memset32(&pgt->pte[ptei].u, sparse.u, ptes);
412 }
413 }
414
415 static bool
nvkm_vmm_sparse_unref_ptes(struct nvkm_vmm_iter * it,bool pfn,u32 ptei,u32 ptes)416 nvkm_vmm_sparse_unref_ptes(struct nvkm_vmm_iter *it, bool pfn, u32 ptei, u32 ptes)
417 {
418 struct nvkm_vmm_pt *pt = it->pt[0];
419 if (it->desc->type == PGD)
420 memset(&pt->pde[ptei], 0x00, sizeof(pt->pde[0]) * ptes);
421 else
422 if (it->desc->type == LPT)
423 memset32(&pt->pte[ptei].u, 0x00, ptes);
424 return nvkm_vmm_unref_ptes(it, pfn, ptei, ptes);
425 }
426
427 static bool
nvkm_vmm_sparse_ref_ptes(struct nvkm_vmm_iter * it,bool pfn,u32 ptei,u32 ptes)428 nvkm_vmm_sparse_ref_ptes(struct nvkm_vmm_iter *it, bool pfn, u32 ptei, u32 ptes)
429 {
430 nvkm_vmm_sparse_ptes(it->desc, it->pt[0], ptei, ptes);
431 return nvkm_vmm_ref_ptes(it, pfn, ptei, ptes);
432 }
433
434 static bool
nvkm_vmm_ref_hwpt(struct nvkm_vmm_iter * it,struct nvkm_vmm_pt * pgd,u32 pdei)435 nvkm_vmm_ref_hwpt(struct nvkm_vmm_iter *it, struct nvkm_vmm_pt *pgd, u32 pdei)
436 {
437 const struct nvkm_vmm_desc *desc = &it->desc[it->lvl - 1];
438 const int type = desc->type == SPT;
439 struct nvkm_vmm_pt *pgt = pgd->pde[pdei];
440 const bool zero = !pgt->sparse && !desc->func->invalid;
441 struct nvkm_vmm *vmm = it->vmm;
442 struct nvkm_mmu *mmu = vmm->mmu;
443 struct nvkm_mmu_pt *pt;
444 u32 pten = 1 << desc->bits;
445 u32 pteb, ptei, ptes;
446 u32 size = desc->size * pten;
447
448 pgd->refs[0]++;
449
450 pgt->pt[type] = nvkm_mmu_ptc_get(mmu, size, desc->align, zero);
451 if (!pgt->pt[type]) {
452 it->lvl--;
453 nvkm_vmm_unref_pdes(it);
454 return false;
455 }
456
457 if (zero)
458 goto done;
459
460 pt = pgt->pt[type];
461
462 if (desc->type == LPT && pgt->refs[1]) {
463 /* SPT already exists covering the same range as this LPT,
464 * which means we need to be careful that any LPTEs which
465 * overlap valid SPTEs are unmapped as opposed to invalid
466 * or sparse, which would prevent the MMU from looking at
467 * the SPTEs on some GPUs.
468 */
469 for (ptei = pteb = 0; ptei < pten; pteb = ptei) {
470 bool spte = !!pgt->pte[ptei].s.sptes;
471 for (ptes = 1, ptei++; ptei < pten; ptes++, ptei++) {
472 bool next = !!pgt->pte[ptei].s.sptes;
473 if (spte != next)
474 break;
475 }
476
477 if (!spte) {
478 if (pgt->sparse)
479 desc->func->sparse(vmm, pt, pteb, ptes);
480 else
481 desc->func->invalid(vmm, pt, pteb, ptes);
482 memset32(&pgt->pte[pteb].u, 0x00, ptes);
483 } else {
484 desc->func->unmap(vmm, pt, pteb, ptes);
485 while (ptes--)
486 pgt->pte[pteb++].s.spte_valid = true;
487 }
488 }
489 } else {
490 if (pgt->sparse) {
491 nvkm_vmm_sparse_ptes(desc, pgt, 0, pten);
492 desc->func->sparse(vmm, pt, 0, pten);
493 } else {
494 desc->func->invalid(vmm, pt, 0, pten);
495 }
496 }
497
498 done:
499 TRA(it, "PDE write %s", nvkm_vmm_desc_type(desc));
500 it->desc[it->lvl].func->pde(it->vmm, pgd, pdei);
501 nvkm_vmm_flush_mark(it);
502 return true;
503 }
504
505 static bool
nvkm_vmm_ref_swpt(struct nvkm_vmm_iter * it,struct nvkm_vmm_pt * pgd,u32 pdei)506 nvkm_vmm_ref_swpt(struct nvkm_vmm_iter *it, struct nvkm_vmm_pt *pgd, u32 pdei)
507 {
508 const struct nvkm_vmm_desc *desc = &it->desc[it->lvl - 1];
509 struct nvkm_vmm_pt *pgt = pgd->pde[pdei];
510
511 pgt = nvkm_vmm_pt_new(desc, NVKM_VMM_PDE_SPARSED(pgt), it->page);
512 if (!pgt) {
513 if (!pgd->refs[0])
514 nvkm_vmm_unref_pdes(it);
515 return false;
516 }
517
518 pgd->pde[pdei] = pgt;
519 return true;
520 }
521
522 static inline u64
nvkm_vmm_iter(struct nvkm_vmm * vmm,const struct nvkm_vmm_page * page,u64 addr,u64 size,const char * name,bool ref,bool pfn,bool (* REF_PTES)(struct nvkm_vmm_iter *,bool pfn,u32,u32),nvkm_vmm_pte_func MAP_PTES,struct nvkm_vmm_map * map,nvkm_vmm_pxe_func CLR_PTES)523 nvkm_vmm_iter(struct nvkm_vmm *vmm, const struct nvkm_vmm_page *page,
524 u64 addr, u64 size, const char *name, bool ref, bool pfn,
525 bool (*REF_PTES)(struct nvkm_vmm_iter *, bool pfn, u32, u32),
526 nvkm_vmm_pte_func MAP_PTES, struct nvkm_vmm_map *map,
527 nvkm_vmm_pxe_func CLR_PTES)
528 {
529 const struct nvkm_vmm_desc *desc = page->desc;
530 struct nvkm_vmm_iter it;
531 u64 bits = addr >> page->shift;
532
533 it.page = page;
534 it.desc = desc;
535 it.vmm = vmm;
536 it.cnt = size >> page->shift;
537 it.flush = NVKM_VMM_LEVELS_MAX;
538
539 /* Deconstruct address into PTE indices for each mapping level. */
540 for (it.lvl = 0; desc[it.lvl].bits; it.lvl++) {
541 it.pte[it.lvl] = bits & ((1 << desc[it.lvl].bits) - 1);
542 bits >>= desc[it.lvl].bits;
543 }
544 it.max = --it.lvl;
545 it.pt[it.max] = vmm->pd;
546
547 it.lvl = 0;
548 TRA(&it, "%s: %016llx %016llx %d %lld PTEs", name,
549 addr, size, page->shift, it.cnt);
550 it.lvl = it.max;
551
552 /* Depth-first traversal of page tables. */
553 while (it.cnt) {
554 struct nvkm_vmm_pt *pgt = it.pt[it.lvl];
555 const int type = desc->type == SPT;
556 const u32 pten = 1 << desc->bits;
557 const u32 ptei = it.pte[0];
558 const u32 ptes = min_t(u64, it.cnt, pten - ptei);
559
560 /* Walk down the tree, finding page tables for each level. */
561 for (; it.lvl; it.lvl--) {
562 const u32 pdei = it.pte[it.lvl];
563 struct nvkm_vmm_pt *pgd = pgt;
564
565 /* Software PT. */
566 if (ref && NVKM_VMM_PDE_INVALID(pgd->pde[pdei])) {
567 if (!nvkm_vmm_ref_swpt(&it, pgd, pdei))
568 goto fail;
569 }
570 it.pt[it.lvl - 1] = pgt = pgd->pde[pdei];
571
572 /* Hardware PT.
573 *
574 * This is a separate step from above due to GF100 and
575 * newer having dual page tables at some levels, which
576 * are refcounted independently.
577 */
578 if (ref && !pgt->refs[desc[it.lvl - 1].type == SPT]) {
579 if (!nvkm_vmm_ref_hwpt(&it, pgd, pdei))
580 goto fail;
581 }
582 }
583
584 /* Handle PTE updates. */
585 if (!REF_PTES || REF_PTES(&it, pfn, ptei, ptes)) {
586 struct nvkm_mmu_pt *pt = pgt->pt[type];
587 if (MAP_PTES || CLR_PTES) {
588 if (MAP_PTES)
589 MAP_PTES(vmm, pt, ptei, ptes, map);
590 else
591 CLR_PTES(vmm, pt, ptei, ptes);
592 nvkm_vmm_flush_mark(&it);
593 }
594 }
595
596 /* Walk back up the tree to the next position. */
597 it.pte[it.lvl] += ptes;
598 it.cnt -= ptes;
599 if (it.cnt) {
600 while (it.pte[it.lvl] == (1 << desc[it.lvl].bits)) {
601 it.pte[it.lvl++] = 0;
602 it.pte[it.lvl]++;
603 }
604 }
605 }
606
607 nvkm_vmm_flush(&it);
608 return ~0ULL;
609
610 fail:
611 /* Reconstruct the failure address so the caller is able to
612 * reverse any partially completed operations.
613 */
614 addr = it.pte[it.max--];
615 do {
616 addr = addr << desc[it.max].bits;
617 addr |= it.pte[it.max];
618 } while (it.max--);
619
620 return addr << page->shift;
621 }
622
623 static void
nvkm_vmm_ptes_sparse_put(struct nvkm_vmm * vmm,const struct nvkm_vmm_page * page,u64 addr,u64 size)624 nvkm_vmm_ptes_sparse_put(struct nvkm_vmm *vmm, const struct nvkm_vmm_page *page,
625 u64 addr, u64 size)
626 {
627 nvkm_vmm_iter(vmm, page, addr, size, "sparse unref", false, false,
628 nvkm_vmm_sparse_unref_ptes, NULL, NULL,
629 page->desc->func->invalid ?
630 page->desc->func->invalid : page->desc->func->unmap);
631 }
632
633 static int
nvkm_vmm_ptes_sparse_get(struct nvkm_vmm * vmm,const struct nvkm_vmm_page * page,u64 addr,u64 size)634 nvkm_vmm_ptes_sparse_get(struct nvkm_vmm *vmm, const struct nvkm_vmm_page *page,
635 u64 addr, u64 size)
636 {
637 if ((page->type & NVKM_VMM_PAGE_SPARSE)) {
638 u64 fail = nvkm_vmm_iter(vmm, page, addr, size, "sparse ref",
639 true, false, nvkm_vmm_sparse_ref_ptes,
640 NULL, NULL, page->desc->func->sparse);
641 if (fail != ~0ULL) {
642 if ((size = fail - addr))
643 nvkm_vmm_ptes_sparse_put(vmm, page, addr, size);
644 return -ENOMEM;
645 }
646 return 0;
647 }
648 return -EINVAL;
649 }
650
651 static int
nvkm_vmm_ptes_sparse(struct nvkm_vmm * vmm,u64 addr,u64 size,bool ref)652 nvkm_vmm_ptes_sparse(struct nvkm_vmm *vmm, u64 addr, u64 size, bool ref)
653 {
654 const struct nvkm_vmm_page *page = vmm->func->page;
655 int m = 0, i;
656 u64 start = addr;
657 u64 block;
658
659 while (size) {
660 /* Limit maximum page size based on remaining size. */
661 while (size < (1ULL << page[m].shift))
662 m++;
663 i = m;
664
665 /* Find largest page size suitable for alignment. */
666 while (!IS_ALIGNED(addr, 1ULL << page[i].shift))
667 i++;
668
669 /* Determine number of PTEs at this page size. */
670 if (i != m) {
671 /* Limited to alignment boundary of next page size. */
672 u64 next = 1ULL << page[i - 1].shift;
673 u64 part = ALIGN(addr, next) - addr;
674 if (size - part >= next)
675 block = (part >> page[i].shift) << page[i].shift;
676 else
677 block = (size >> page[i].shift) << page[i].shift;
678 } else {
679 block = (size >> page[i].shift) << page[i].shift;
680 }
681
682 /* Perform operation. */
683 if (ref) {
684 int ret = nvkm_vmm_ptes_sparse_get(vmm, &page[i], addr, block);
685 if (ret) {
686 if ((size = addr - start))
687 nvkm_vmm_ptes_sparse(vmm, start, size, false);
688 return ret;
689 }
690 } else {
691 nvkm_vmm_ptes_sparse_put(vmm, &page[i], addr, block);
692 }
693
694 size -= block;
695 addr += block;
696 }
697
698 return 0;
699 }
700
701 static void
nvkm_vmm_ptes_unmap(struct nvkm_vmm * vmm,const struct nvkm_vmm_page * page,u64 addr,u64 size,bool sparse,bool pfn)702 nvkm_vmm_ptes_unmap(struct nvkm_vmm *vmm, const struct nvkm_vmm_page *page,
703 u64 addr, u64 size, bool sparse, bool pfn)
704 {
705 const struct nvkm_vmm_desc_func *func = page->desc->func;
706
707 mutex_lock(&vmm->mutex.map);
708 nvkm_vmm_iter(vmm, page, addr, size, "unmap", false, pfn,
709 NULL, NULL, NULL,
710 sparse ? func->sparse : func->invalid ? func->invalid :
711 func->unmap);
712 mutex_unlock(&vmm->mutex.map);
713 }
714
715 static void
nvkm_vmm_ptes_map(struct nvkm_vmm * vmm,const struct nvkm_vmm_page * page,u64 addr,u64 size,struct nvkm_vmm_map * map,nvkm_vmm_pte_func func)716 nvkm_vmm_ptes_map(struct nvkm_vmm *vmm, const struct nvkm_vmm_page *page,
717 u64 addr, u64 size, struct nvkm_vmm_map *map,
718 nvkm_vmm_pte_func func)
719 {
720 mutex_lock(&vmm->mutex.map);
721 nvkm_vmm_iter(vmm, page, addr, size, "map", false, false,
722 NULL, func, map, NULL);
723 mutex_unlock(&vmm->mutex.map);
724 }
725
726 static void
nvkm_vmm_ptes_put_locked(struct nvkm_vmm * vmm,const struct nvkm_vmm_page * page,u64 addr,u64 size)727 nvkm_vmm_ptes_put_locked(struct nvkm_vmm *vmm, const struct nvkm_vmm_page *page,
728 u64 addr, u64 size)
729 {
730 nvkm_vmm_iter(vmm, page, addr, size, "unref", false, false,
731 nvkm_vmm_unref_ptes, NULL, NULL, NULL);
732 }
733
734 static void
nvkm_vmm_ptes_put(struct nvkm_vmm * vmm,const struct nvkm_vmm_page * page,u64 addr,u64 size)735 nvkm_vmm_ptes_put(struct nvkm_vmm *vmm, const struct nvkm_vmm_page *page,
736 u64 addr, u64 size)
737 {
738 mutex_lock(&vmm->mutex.ref);
739 nvkm_vmm_ptes_put_locked(vmm, page, addr, size);
740 mutex_unlock(&vmm->mutex.ref);
741 }
742
743 static int
nvkm_vmm_ptes_get(struct nvkm_vmm * vmm,const struct nvkm_vmm_page * page,u64 addr,u64 size)744 nvkm_vmm_ptes_get(struct nvkm_vmm *vmm, const struct nvkm_vmm_page *page,
745 u64 addr, u64 size)
746 {
747 u64 fail;
748
749 mutex_lock(&vmm->mutex.ref);
750 fail = nvkm_vmm_iter(vmm, page, addr, size, "ref", true, false,
751 nvkm_vmm_ref_ptes, NULL, NULL, NULL);
752 if (fail != ~0ULL) {
753 if (fail != addr)
754 nvkm_vmm_ptes_put_locked(vmm, page, addr, fail - addr);
755 mutex_unlock(&vmm->mutex.ref);
756 return -ENOMEM;
757 }
758 mutex_unlock(&vmm->mutex.ref);
759 return 0;
760 }
761
762 static void
__nvkm_vmm_ptes_unmap_put(struct nvkm_vmm * vmm,const struct nvkm_vmm_page * page,u64 addr,u64 size,bool sparse,bool pfn)763 __nvkm_vmm_ptes_unmap_put(struct nvkm_vmm *vmm, const struct nvkm_vmm_page *page,
764 u64 addr, u64 size, bool sparse, bool pfn)
765 {
766 const struct nvkm_vmm_desc_func *func = page->desc->func;
767
768 nvkm_vmm_iter(vmm, page, addr, size, "unmap + unref",
769 false, pfn, nvkm_vmm_unref_ptes, NULL, NULL,
770 sparse ? func->sparse : func->invalid ? func->invalid :
771 func->unmap);
772 }
773
774 static void
nvkm_vmm_ptes_unmap_put(struct nvkm_vmm * vmm,const struct nvkm_vmm_page * page,u64 addr,u64 size,bool sparse,bool pfn)775 nvkm_vmm_ptes_unmap_put(struct nvkm_vmm *vmm, const struct nvkm_vmm_page *page,
776 u64 addr, u64 size, bool sparse, bool pfn)
777 {
778 if (vmm->managed.raw) {
779 nvkm_vmm_ptes_unmap(vmm, page, addr, size, sparse, pfn);
780 nvkm_vmm_ptes_put(vmm, page, addr, size);
781 } else {
782 __nvkm_vmm_ptes_unmap_put(vmm, page, addr, size, sparse, pfn);
783 }
784 }
785
786 static int
__nvkm_vmm_ptes_get_map(struct nvkm_vmm * vmm,const struct nvkm_vmm_page * page,u64 addr,u64 size,struct nvkm_vmm_map * map,nvkm_vmm_pte_func func)787 __nvkm_vmm_ptes_get_map(struct nvkm_vmm *vmm, const struct nvkm_vmm_page *page,
788 u64 addr, u64 size, struct nvkm_vmm_map *map,
789 nvkm_vmm_pte_func func)
790 {
791 u64 fail = nvkm_vmm_iter(vmm, page, addr, size, "ref + map", true,
792 false, nvkm_vmm_ref_ptes, func, map, NULL);
793 if (fail != ~0ULL) {
794 if ((size = fail - addr))
795 nvkm_vmm_ptes_unmap_put(vmm, page, addr, size, false, false);
796 return -ENOMEM;
797 }
798 return 0;
799 }
800
801 static int
nvkm_vmm_ptes_get_map(struct nvkm_vmm * vmm,const struct nvkm_vmm_page * page,u64 addr,u64 size,struct nvkm_vmm_map * map,nvkm_vmm_pte_func func)802 nvkm_vmm_ptes_get_map(struct nvkm_vmm *vmm, const struct nvkm_vmm_page *page,
803 u64 addr, u64 size, struct nvkm_vmm_map *map,
804 nvkm_vmm_pte_func func)
805 {
806 int ret;
807
808 if (vmm->managed.raw) {
809 ret = nvkm_vmm_ptes_get(vmm, page, addr, size);
810 if (ret)
811 return ret;
812
813 nvkm_vmm_ptes_map(vmm, page, addr, size, map, func);
814
815 return 0;
816 } else {
817 return __nvkm_vmm_ptes_get_map(vmm, page, addr, size, map, func);
818 }
819 }
820
821 struct nvkm_vma *
nvkm_vma_new(u64 addr,u64 size)822 nvkm_vma_new(u64 addr, u64 size)
823 {
824 struct nvkm_vma *vma = kzalloc_obj(*vma);
825 if (vma) {
826 vma->addr = addr;
827 vma->size = size;
828 vma->page = NVKM_VMA_PAGE_NONE;
829 vma->refd = NVKM_VMA_PAGE_NONE;
830 }
831 return vma;
832 }
833
834 struct nvkm_vma *
nvkm_vma_tail(struct nvkm_vma * vma,u64 tail)835 nvkm_vma_tail(struct nvkm_vma *vma, u64 tail)
836 {
837 struct nvkm_vma *new;
838
839 BUG_ON(vma->size == tail);
840
841 if (!(new = nvkm_vma_new(vma->addr + (vma->size - tail), tail)))
842 return NULL;
843 vma->size -= tail;
844
845 new->mapref = vma->mapref;
846 new->sparse = vma->sparse;
847 new->page = vma->page;
848 new->refd = vma->refd;
849 new->used = vma->used;
850 new->part = vma->part;
851 new->busy = vma->busy;
852 new->mapped = vma->mapped;
853 list_add(&new->head, &vma->head);
854 return new;
855 }
856
857 static inline void
nvkm_vmm_free_remove(struct nvkm_vmm * vmm,struct nvkm_vma * vma)858 nvkm_vmm_free_remove(struct nvkm_vmm *vmm, struct nvkm_vma *vma)
859 {
860 rb_erase(&vma->tree, &vmm->free);
861 }
862
863 static inline void
nvkm_vmm_free_delete(struct nvkm_vmm * vmm,struct nvkm_vma * vma)864 nvkm_vmm_free_delete(struct nvkm_vmm *vmm, struct nvkm_vma *vma)
865 {
866 nvkm_vmm_free_remove(vmm, vma);
867 list_del(&vma->head);
868 kfree(vma);
869 }
870
871 static void
nvkm_vmm_free_insert(struct nvkm_vmm * vmm,struct nvkm_vma * vma)872 nvkm_vmm_free_insert(struct nvkm_vmm *vmm, struct nvkm_vma *vma)
873 {
874 struct rb_node **ptr = &vmm->free.rb_node;
875 struct rb_node *parent = NULL;
876
877 while (*ptr) {
878 struct nvkm_vma *this = rb_entry(*ptr, typeof(*this), tree);
879 parent = *ptr;
880 if (vma->size < this->size)
881 ptr = &parent->rb_left;
882 else
883 if (vma->size > this->size)
884 ptr = &parent->rb_right;
885 else
886 if (vma->addr < this->addr)
887 ptr = &parent->rb_left;
888 else
889 if (vma->addr > this->addr)
890 ptr = &parent->rb_right;
891 else
892 BUG();
893 }
894
895 rb_link_node(&vma->tree, parent, ptr);
896 rb_insert_color(&vma->tree, &vmm->free);
897 }
898
899 static inline void
nvkm_vmm_node_remove(struct nvkm_vmm * vmm,struct nvkm_vma * vma)900 nvkm_vmm_node_remove(struct nvkm_vmm *vmm, struct nvkm_vma *vma)
901 {
902 rb_erase(&vma->tree, &vmm->root);
903 }
904
905 static inline void
nvkm_vmm_node_delete(struct nvkm_vmm * vmm,struct nvkm_vma * vma)906 nvkm_vmm_node_delete(struct nvkm_vmm *vmm, struct nvkm_vma *vma)
907 {
908 nvkm_vmm_node_remove(vmm, vma);
909 list_del(&vma->head);
910 kfree(vma);
911 }
912
913 static void
nvkm_vmm_node_insert(struct nvkm_vmm * vmm,struct nvkm_vma * vma)914 nvkm_vmm_node_insert(struct nvkm_vmm *vmm, struct nvkm_vma *vma)
915 {
916 struct rb_node **ptr = &vmm->root.rb_node;
917 struct rb_node *parent = NULL;
918
919 while (*ptr) {
920 struct nvkm_vma *this = rb_entry(*ptr, typeof(*this), tree);
921 parent = *ptr;
922 if (vma->addr < this->addr)
923 ptr = &parent->rb_left;
924 else
925 if (vma->addr > this->addr)
926 ptr = &parent->rb_right;
927 else
928 BUG();
929 }
930
931 rb_link_node(&vma->tree, parent, ptr);
932 rb_insert_color(&vma->tree, &vmm->root);
933 }
934
935 struct nvkm_vma *
nvkm_vmm_node_search(struct nvkm_vmm * vmm,u64 addr)936 nvkm_vmm_node_search(struct nvkm_vmm *vmm, u64 addr)
937 {
938 struct rb_node *node = vmm->root.rb_node;
939 while (node) {
940 struct nvkm_vma *vma = rb_entry(node, typeof(*vma), tree);
941 if (addr < vma->addr)
942 node = node->rb_left;
943 else
944 if (addr >= vma->addr + vma->size)
945 node = node->rb_right;
946 else
947 return vma;
948 }
949 return NULL;
950 }
951
952 #define node(root, dir) (((root)->head.dir == &vmm->list) ? NULL : \
953 list_entry((root)->head.dir, struct nvkm_vma, head))
954
955 static struct nvkm_vma *
nvkm_vmm_node_merge(struct nvkm_vmm * vmm,struct nvkm_vma * prev,struct nvkm_vma * vma,struct nvkm_vma * next,u64 size)956 nvkm_vmm_node_merge(struct nvkm_vmm *vmm, struct nvkm_vma *prev,
957 struct nvkm_vma *vma, struct nvkm_vma *next, u64 size)
958 {
959 if (next) {
960 if (vma->size == size) {
961 vma->size += next->size;
962 nvkm_vmm_node_delete(vmm, next);
963 if (prev) {
964 prev->size += vma->size;
965 nvkm_vmm_node_delete(vmm, vma);
966 return prev;
967 }
968 return vma;
969 }
970 BUG_ON(prev);
971
972 nvkm_vmm_node_remove(vmm, next);
973 vma->size -= size;
974 next->addr -= size;
975 next->size += size;
976 nvkm_vmm_node_insert(vmm, next);
977 return next;
978 }
979
980 if (prev) {
981 if (vma->size != size) {
982 nvkm_vmm_node_remove(vmm, vma);
983 prev->size += size;
984 vma->addr += size;
985 vma->size -= size;
986 nvkm_vmm_node_insert(vmm, vma);
987 } else {
988 prev->size += vma->size;
989 nvkm_vmm_node_delete(vmm, vma);
990 }
991 return prev;
992 }
993
994 return vma;
995 }
996
997 struct nvkm_vma *
nvkm_vmm_node_split(struct nvkm_vmm * vmm,struct nvkm_vma * vma,u64 addr,u64 size)998 nvkm_vmm_node_split(struct nvkm_vmm *vmm,
999 struct nvkm_vma *vma, u64 addr, u64 size)
1000 {
1001 struct nvkm_vma *prev = NULL;
1002
1003 if (vma->addr != addr) {
1004 prev = vma;
1005 if (!(vma = nvkm_vma_tail(vma, vma->size + vma->addr - addr)))
1006 return NULL;
1007 vma->part = true;
1008 nvkm_vmm_node_insert(vmm, vma);
1009 }
1010
1011 if (vma->size != size) {
1012 struct nvkm_vma *tmp;
1013 if (!(tmp = nvkm_vma_tail(vma, vma->size - size))) {
1014 nvkm_vmm_node_merge(vmm, prev, vma, NULL, vma->size);
1015 return NULL;
1016 }
1017 tmp->part = true;
1018 nvkm_vmm_node_insert(vmm, tmp);
1019 }
1020
1021 return vma;
1022 }
1023
1024 static void
nvkm_vma_dump(struct nvkm_vma * vma)1025 nvkm_vma_dump(struct nvkm_vma *vma)
1026 {
1027 printk(KERN_ERR "%016llx %016llx %c%c%c%c%c%c%c%c %p\n",
1028 vma->addr, (u64)vma->size,
1029 vma->used ? '-' : 'F',
1030 vma->mapref ? 'R' : '-',
1031 vma->sparse ? 'S' : '-',
1032 vma->page != NVKM_VMA_PAGE_NONE ? '0' + vma->page : '-',
1033 vma->refd != NVKM_VMA_PAGE_NONE ? '0' + vma->refd : '-',
1034 vma->part ? 'P' : '-',
1035 vma->busy ? 'B' : '-',
1036 vma->mapped ? 'M' : '-',
1037 vma->memory);
1038 }
1039
1040 static void
nvkm_vmm_dump(struct nvkm_vmm * vmm)1041 nvkm_vmm_dump(struct nvkm_vmm *vmm)
1042 {
1043 struct nvkm_vma *vma;
1044 list_for_each_entry(vma, &vmm->list, head) {
1045 nvkm_vma_dump(vma);
1046 }
1047 }
1048
1049 static void
nvkm_vmm_dtor(struct nvkm_vmm * vmm)1050 nvkm_vmm_dtor(struct nvkm_vmm *vmm)
1051 {
1052 struct nvkm_vma *vma;
1053 struct rb_node *node;
1054
1055 if (vmm->rm.client.gsp)
1056 r535_mmu_vaspace_del(vmm);
1057
1058 if (0)
1059 nvkm_vmm_dump(vmm);
1060
1061 while ((node = rb_first(&vmm->root))) {
1062 struct nvkm_vma *vma = rb_entry(node, typeof(*vma), tree);
1063 nvkm_vmm_put(vmm, &vma);
1064 }
1065
1066 if (vmm->bootstrapped) {
1067 const struct nvkm_vmm_page *page = vmm->func->page;
1068 const u64 limit = vmm->limit - vmm->start;
1069
1070 while (page[1].shift)
1071 page++;
1072
1073 nvkm_mmu_ptc_dump(vmm->mmu);
1074 nvkm_vmm_ptes_put(vmm, page, vmm->start, limit);
1075 }
1076
1077 vma = list_first_entry(&vmm->list, typeof(*vma), head);
1078 list_del(&vma->head);
1079 kfree(vma);
1080 WARN_ON(!list_empty(&vmm->list));
1081
1082 if (vmm->nullp) {
1083 dma_free_coherent(vmm->mmu->subdev.device->dev, 16 * 1024,
1084 vmm->nullp, vmm->null);
1085 }
1086
1087 if (vmm->pd) {
1088 nvkm_mmu_ptc_put(vmm->mmu, true, &vmm->pd->pt[0]);
1089 nvkm_vmm_pt_del(&vmm->pd);
1090 }
1091 }
1092
1093 static int
nvkm_vmm_ctor_managed(struct nvkm_vmm * vmm,u64 addr,u64 size)1094 nvkm_vmm_ctor_managed(struct nvkm_vmm *vmm, u64 addr, u64 size)
1095 {
1096 struct nvkm_vma *vma;
1097 if (!(vma = nvkm_vma_new(addr, size)))
1098 return -ENOMEM;
1099 vma->mapref = true;
1100 vma->sparse = false;
1101 vma->used = true;
1102 nvkm_vmm_node_insert(vmm, vma);
1103 list_add_tail(&vma->head, &vmm->list);
1104 return 0;
1105 }
1106
1107 static int
nvkm_vmm_ctor(const struct nvkm_vmm_func * func,struct nvkm_mmu * mmu,u32 pd_header,bool managed,u64 addr,u64 size,struct lock_class_key * key,const char * name,struct nvkm_vmm * vmm)1108 nvkm_vmm_ctor(const struct nvkm_vmm_func *func, struct nvkm_mmu *mmu,
1109 u32 pd_header, bool managed, u64 addr, u64 size,
1110 struct lock_class_key *key, const char *name,
1111 struct nvkm_vmm *vmm)
1112 {
1113 static struct lock_class_key _key;
1114 const struct nvkm_vmm_page *page = func->page;
1115 const struct nvkm_vmm_desc *desc;
1116 struct nvkm_vma *vma;
1117 int levels, bits = 0, ret;
1118
1119 vmm->func = func;
1120 vmm->mmu = mmu;
1121 vmm->name = name;
1122 vmm->debug = mmu->subdev.debug;
1123 kref_init(&vmm->kref);
1124
1125 __mutex_init(&vmm->mutex.vmm, "&vmm->mutex.vmm", key ? key : &_key);
1126 mutex_init(&vmm->mutex.ref);
1127 mutex_init(&vmm->mutex.map);
1128
1129 /* Locate the smallest page size supported by the backend, it will
1130 * have the deepest nesting of page tables.
1131 */
1132 while (page[1].shift)
1133 page++;
1134
1135 /* Locate the structure that describes the layout of the top-level
1136 * page table, and determine the number of valid bits in a virtual
1137 * address.
1138 */
1139 for (levels = 0, desc = page->desc; desc->bits; desc++, levels++)
1140 bits += desc->bits;
1141 bits += page->shift;
1142 desc--;
1143
1144 if (WARN_ON(levels > NVKM_VMM_LEVELS_MAX))
1145 return -EINVAL;
1146
1147 /* Allocate top-level page table. */
1148 vmm->pd = nvkm_vmm_pt_new(desc, false, NULL);
1149 if (!vmm->pd)
1150 return -ENOMEM;
1151 vmm->pd->refs[0] = 1;
1152 INIT_LIST_HEAD(&vmm->join);
1153
1154 /* ... and the GPU storage for it, except on Tesla-class GPUs that
1155 * have the PD embedded in the instance structure.
1156 */
1157 if (desc->size) {
1158 const u32 size = pd_header + desc->size * (1 << desc->bits);
1159 vmm->pd->pt[0] = nvkm_mmu_ptc_get(mmu, size, desc->align, true);
1160 if (!vmm->pd->pt[0])
1161 return -ENOMEM;
1162 }
1163
1164 /* Initialise address-space MM. */
1165 INIT_LIST_HEAD(&vmm->list);
1166 vmm->free = RB_ROOT;
1167 vmm->root = RB_ROOT;
1168
1169 if (managed) {
1170 /* Address-space will be managed by the client for the most
1171 * part, except for a specified area where NVKM allocations
1172 * are allowed to be placed.
1173 */
1174 vmm->start = 0;
1175 vmm->limit = 1ULL << bits;
1176 if (addr + size < addr || addr + size > vmm->limit)
1177 return -EINVAL;
1178
1179 /* Client-managed area before the NVKM-managed area. */
1180 if (addr && (ret = nvkm_vmm_ctor_managed(vmm, 0, addr)))
1181 return ret;
1182
1183 vmm->managed.p.addr = 0;
1184 vmm->managed.p.size = addr;
1185
1186 /* NVKM-managed area. */
1187 if (size) {
1188 if (!(vma = nvkm_vma_new(addr, size)))
1189 return -ENOMEM;
1190 nvkm_vmm_free_insert(vmm, vma);
1191 list_add_tail(&vma->head, &vmm->list);
1192 }
1193
1194 /* Client-managed area after the NVKM-managed area. */
1195 addr = addr + size;
1196 size = vmm->limit - addr;
1197 if (size && (ret = nvkm_vmm_ctor_managed(vmm, addr, size)))
1198 return ret;
1199
1200 vmm->managed.n.addr = addr;
1201 vmm->managed.n.size = size;
1202 } else {
1203 /* Address-space fully managed by NVKM, requiring calls to
1204 * nvkm_vmm_get()/nvkm_vmm_put() to allocate address-space.
1205 */
1206 vmm->start = addr;
1207 vmm->limit = size ? (addr + size) : (1ULL << bits);
1208 if (vmm->start > vmm->limit || vmm->limit > (1ULL << bits))
1209 return -EINVAL;
1210
1211 if (!(vma = nvkm_vma_new(vmm->start, vmm->limit - vmm->start)))
1212 return -ENOMEM;
1213
1214 nvkm_vmm_free_insert(vmm, vma);
1215 list_add(&vma->head, &vmm->list);
1216 }
1217
1218 return 0;
1219 }
1220
1221 int
nvkm_vmm_new_(const struct nvkm_vmm_func * func,struct nvkm_mmu * mmu,u32 hdr,bool managed,u64 addr,u64 size,struct lock_class_key * key,const char * name,struct nvkm_vmm ** pvmm)1222 nvkm_vmm_new_(const struct nvkm_vmm_func *func, struct nvkm_mmu *mmu,
1223 u32 hdr, bool managed, u64 addr, u64 size,
1224 struct lock_class_key *key, const char *name,
1225 struct nvkm_vmm **pvmm)
1226 {
1227 if (!(*pvmm = kzalloc_obj(**pvmm)))
1228 return -ENOMEM;
1229 return nvkm_vmm_ctor(func, mmu, hdr, managed, addr, size, key, name, *pvmm);
1230 }
1231
1232 static struct nvkm_vma *
nvkm_vmm_pfn_split_merge(struct nvkm_vmm * vmm,struct nvkm_vma * vma,u64 addr,u64 size,u8 page,bool map)1233 nvkm_vmm_pfn_split_merge(struct nvkm_vmm *vmm, struct nvkm_vma *vma,
1234 u64 addr, u64 size, u8 page, bool map)
1235 {
1236 struct nvkm_vma *prev = NULL;
1237 struct nvkm_vma *next = NULL;
1238
1239 if (vma->addr == addr && vma->part && (prev = node(vma, prev))) {
1240 if (prev->memory || prev->mapped != map)
1241 prev = NULL;
1242 }
1243
1244 if (vma->addr + vma->size == addr + size && (next = node(vma, next))) {
1245 if (!next->part ||
1246 next->memory || next->mapped != map)
1247 next = NULL;
1248 }
1249
1250 if (prev || next)
1251 return nvkm_vmm_node_merge(vmm, prev, vma, next, size);
1252 return nvkm_vmm_node_split(vmm, vma, addr, size);
1253 }
1254
1255 int
nvkm_vmm_pfn_unmap(struct nvkm_vmm * vmm,u64 addr,u64 size)1256 nvkm_vmm_pfn_unmap(struct nvkm_vmm *vmm, u64 addr, u64 size)
1257 {
1258 struct nvkm_vma *vma = nvkm_vmm_node_search(vmm, addr);
1259 struct nvkm_vma *next;
1260 u64 limit = addr + size;
1261 u64 start = addr;
1262
1263 if (!vma)
1264 return -EINVAL;
1265
1266 do {
1267 if (!vma->mapped || vma->memory)
1268 continue;
1269
1270 size = min(limit - start, vma->size - (start - vma->addr));
1271
1272 nvkm_vmm_ptes_unmap_put(vmm, &vmm->func->page[vma->refd],
1273 start, size, false, true);
1274
1275 next = nvkm_vmm_pfn_split_merge(vmm, vma, start, size, 0, false);
1276 if (!WARN_ON(!next)) {
1277 vma = next;
1278 vma->refd = NVKM_VMA_PAGE_NONE;
1279 vma->mapped = false;
1280 }
1281 } while ((vma = node(vma, next)) && (start = vma->addr) < limit);
1282
1283 return 0;
1284 }
1285
1286 /*TODO:
1287 * - Avoid PT readback (for dma_unmap etc), this might end up being dealt
1288 * with inside HMM, which would be a lot nicer for us to deal with.
1289 * - Support for systems without a 4KiB page size.
1290 */
1291 int
nvkm_vmm_pfn_map(struct nvkm_vmm * vmm,u8 shift,u64 addr,u64 size,u64 * pfn)1292 nvkm_vmm_pfn_map(struct nvkm_vmm *vmm, u8 shift, u64 addr, u64 size, u64 *pfn)
1293 {
1294 const struct nvkm_vmm_page *page = vmm->func->page;
1295 struct nvkm_vma *vma, *tmp;
1296 u64 limit = addr + size;
1297 u64 start = addr;
1298 int pm = size >> shift;
1299 int pi = 0;
1300
1301 /* Only support mapping where the page size of the incoming page
1302 * array matches a page size available for direct mapping.
1303 */
1304 while (page->shift && (page->shift != shift ||
1305 page->desc->func->pfn == NULL))
1306 page++;
1307
1308 if (!page->shift || !IS_ALIGNED(addr, 1ULL << shift) ||
1309 !IS_ALIGNED(size, 1ULL << shift) ||
1310 addr + size < addr || addr + size > vmm->limit) {
1311 VMM_DEBUG(vmm, "paged map %d %d %016llx %016llx\n",
1312 shift, page->shift, addr, size);
1313 return -EINVAL;
1314 }
1315
1316 if (!(vma = nvkm_vmm_node_search(vmm, addr)))
1317 return -ENOENT;
1318
1319 do {
1320 bool map = !!(pfn[pi] & NVKM_VMM_PFN_V);
1321 bool mapped = vma->mapped;
1322 u64 size = limit - start;
1323 u64 addr = start;
1324 int pn, ret = 0;
1325
1326 /* Narrow the operation window to cover a single action (page
1327 * should be mapped or not) within a single VMA.
1328 */
1329 for (pn = 0; pi + pn < pm; pn++) {
1330 if (map != !!(pfn[pi + pn] & NVKM_VMM_PFN_V))
1331 break;
1332 }
1333 size = min_t(u64, size, pn << page->shift);
1334 size = min_t(u64, size, vma->size + vma->addr - addr);
1335
1336 /* Reject any operation to unmanaged regions, and areas that
1337 * have nvkm_memory objects mapped in them already.
1338 */
1339 if (!vma->mapref || vma->memory) {
1340 ret = -EINVAL;
1341 goto next;
1342 }
1343
1344 /* In order to both properly refcount GPU page tables, and
1345 * prevent "normal" mappings and these direct mappings from
1346 * interfering with each other, we need to track contiguous
1347 * ranges that have been mapped with this interface.
1348 *
1349 * Here we attempt to either split an existing VMA so we're
1350 * able to flag the region as either unmapped/mapped, or to
1351 * merge with adjacent VMAs that are already compatible.
1352 *
1353 * If the region is already compatible, nothing is required.
1354 */
1355 if (map != mapped) {
1356 tmp = nvkm_vmm_pfn_split_merge(vmm, vma, addr, size,
1357 page -
1358 vmm->func->page, map);
1359 if (WARN_ON(!tmp)) {
1360 ret = -ENOMEM;
1361 goto next;
1362 }
1363
1364 if ((tmp->mapped = map))
1365 tmp->refd = page - vmm->func->page;
1366 else
1367 tmp->refd = NVKM_VMA_PAGE_NONE;
1368 vma = tmp;
1369 }
1370
1371 /* Update HW page tables. */
1372 if (map) {
1373 struct nvkm_vmm_map args;
1374 args.page = page;
1375 args.pfn = &pfn[pi];
1376
1377 if (!mapped) {
1378 ret = nvkm_vmm_ptes_get_map(vmm, page, addr,
1379 size, &args, page->
1380 desc->func->pfn);
1381 } else {
1382 nvkm_vmm_ptes_map(vmm, page, addr, size, &args,
1383 page->desc->func->pfn);
1384 }
1385 } else {
1386 if (mapped) {
1387 nvkm_vmm_ptes_unmap_put(vmm, page, addr, size,
1388 false, true);
1389 }
1390 }
1391
1392 next:
1393 /* Iterate to next operation. */
1394 if (vma->addr + vma->size == addr + size)
1395 vma = node(vma, next);
1396 start += size;
1397
1398 if (ret) {
1399 /* Failure is signalled by clearing the valid bit on
1400 * any PFN that couldn't be modified as requested.
1401 */
1402 while (size) {
1403 pfn[pi++] = NVKM_VMM_PFN_NONE;
1404 size -= 1 << page->shift;
1405 }
1406 } else {
1407 pi += size >> page->shift;
1408 }
1409 } while (vma && start < limit);
1410
1411 return 0;
1412 }
1413
1414 void
nvkm_vmm_unmap_region(struct nvkm_vmm * vmm,struct nvkm_vma * vma)1415 nvkm_vmm_unmap_region(struct nvkm_vmm *vmm, struct nvkm_vma *vma)
1416 {
1417 struct nvkm_vma *prev = NULL;
1418 struct nvkm_vma *next;
1419
1420 nvkm_memory_tags_put(vma->memory, vmm->mmu->subdev.device, &vma->tags);
1421 nvkm_memory_unref(&vma->memory);
1422 vma->mapped = false;
1423
1424 if (vma->part && (prev = node(vma, prev)) && prev->mapped)
1425 prev = NULL;
1426 if ((next = node(vma, next)) && (!next->part || next->mapped))
1427 next = NULL;
1428 nvkm_vmm_node_merge(vmm, prev, vma, next, vma->size);
1429 }
1430
1431 void
nvkm_vmm_unmap_locked(struct nvkm_vmm * vmm,struct nvkm_vma * vma,bool pfn)1432 nvkm_vmm_unmap_locked(struct nvkm_vmm *vmm, struct nvkm_vma *vma, bool pfn)
1433 {
1434 const struct nvkm_vmm_page *page = &vmm->func->page[vma->refd];
1435
1436 if (vma->mapref) {
1437 nvkm_vmm_ptes_unmap_put(vmm, page, vma->addr, vma->size, vma->sparse, pfn);
1438 vma->refd = NVKM_VMA_PAGE_NONE;
1439 } else {
1440 nvkm_vmm_ptes_unmap(vmm, page, vma->addr, vma->size, vma->sparse, pfn);
1441 }
1442
1443 nvkm_vmm_unmap_region(vmm, vma);
1444 }
1445
1446 void
nvkm_vmm_unmap(struct nvkm_vmm * vmm,struct nvkm_vma * vma)1447 nvkm_vmm_unmap(struct nvkm_vmm *vmm, struct nvkm_vma *vma)
1448 {
1449 if (vma->memory) {
1450 mutex_lock(&vmm->mutex.vmm);
1451 nvkm_vmm_unmap_locked(vmm, vma, false);
1452 mutex_unlock(&vmm->mutex.vmm);
1453 }
1454 }
1455
1456 static int
nvkm_vmm_map_valid(struct nvkm_vmm * vmm,struct nvkm_vma * vma,void * argv,u32 argc,struct nvkm_vmm_map * map)1457 nvkm_vmm_map_valid(struct nvkm_vmm *vmm, struct nvkm_vma *vma,
1458 void *argv, u32 argc, struct nvkm_vmm_map *map)
1459 {
1460 switch (nvkm_memory_target(map->memory)) {
1461 case NVKM_MEM_TARGET_VRAM:
1462 if (!(map->page->type & NVKM_VMM_PAGE_VRAM)) {
1463 VMM_DEBUG(vmm, "%d !VRAM", map->page->shift);
1464 return -EINVAL;
1465 }
1466 break;
1467 case NVKM_MEM_TARGET_HOST:
1468 case NVKM_MEM_TARGET_NCOH:
1469 if (!(map->page->type & NVKM_VMM_PAGE_HOST)) {
1470 VMM_DEBUG(vmm, "%d !HOST", map->page->shift);
1471 return -EINVAL;
1472 }
1473 break;
1474 default:
1475 WARN_ON(1);
1476 return -ENOSYS;
1477 }
1478
1479 if (!IS_ALIGNED( vma->addr, 1ULL << map->page->shift) ||
1480 !IS_ALIGNED((u64)vma->size, 1ULL << map->page->shift) ||
1481 !IS_ALIGNED( map->offset, 1ULL << map->page->shift) ||
1482 nvkm_memory_page(map->memory) < map->page->shift) {
1483 VMM_DEBUG(vmm, "alignment %016llx %016llx %016llx %d %d",
1484 vma->addr, (u64)vma->size, map->offset, map->page->shift,
1485 nvkm_memory_page(map->memory));
1486 return -EINVAL;
1487 }
1488
1489 return vmm->func->valid(vmm, argv, argc, map);
1490 }
1491
1492 static int
nvkm_vmm_map_choose(struct nvkm_vmm * vmm,struct nvkm_vma * vma,void * argv,u32 argc,struct nvkm_vmm_map * map)1493 nvkm_vmm_map_choose(struct nvkm_vmm *vmm, struct nvkm_vma *vma,
1494 void *argv, u32 argc, struct nvkm_vmm_map *map)
1495 {
1496 for (map->page = vmm->func->page; map->page->shift; map->page++) {
1497 VMM_DEBUG(vmm, "trying %d", map->page->shift);
1498 if (!nvkm_vmm_map_valid(vmm, vma, argv, argc, map))
1499 return 0;
1500 }
1501 return -EINVAL;
1502 }
1503
1504 static int
nvkm_vmm_map_locked(struct nvkm_vmm * vmm,struct nvkm_vma * vma,void * argv,u32 argc,struct nvkm_vmm_map * map)1505 nvkm_vmm_map_locked(struct nvkm_vmm *vmm, struct nvkm_vma *vma,
1506 void *argv, u32 argc, struct nvkm_vmm_map *map)
1507 {
1508 nvkm_vmm_pte_func func;
1509 int ret;
1510
1511 map->no_comp = vma->no_comp;
1512
1513 /* Make sure we won't overrun the end of the memory object. */
1514 if (unlikely(nvkm_memory_size(map->memory) < map->offset + vma->size)) {
1515 VMM_DEBUG(vmm, "overrun %016llx %016llx %016llx",
1516 nvkm_memory_size(map->memory),
1517 map->offset, (u64)vma->size);
1518 return -EINVAL;
1519 }
1520
1521 /* Check remaining arguments for validity. */
1522 if (vma->page == NVKM_VMA_PAGE_NONE &&
1523 vma->refd == NVKM_VMA_PAGE_NONE) {
1524 /* Find the largest page size we can perform the mapping at. */
1525 const u32 debug = vmm->debug;
1526 vmm->debug = 0;
1527 ret = nvkm_vmm_map_choose(vmm, vma, argv, argc, map);
1528 vmm->debug = debug;
1529 if (ret) {
1530 VMM_DEBUG(vmm, "invalid at any page size");
1531 nvkm_vmm_map_choose(vmm, vma, argv, argc, map);
1532 return -EINVAL;
1533 }
1534 } else {
1535 /* Page size of the VMA is already pre-determined. */
1536 if (vma->refd != NVKM_VMA_PAGE_NONE)
1537 map->page = &vmm->func->page[vma->refd];
1538 else
1539 map->page = &vmm->func->page[vma->page];
1540
1541 ret = nvkm_vmm_map_valid(vmm, vma, argv, argc, map);
1542 if (ret) {
1543 VMM_DEBUG(vmm, "invalid %d\n", ret);
1544 return ret;
1545 }
1546 }
1547
1548 /* Deal with the 'offset' argument, and fetch the backend function. */
1549 map->off = map->offset;
1550 if (map->mem) {
1551 for (; map->off; map->mem = map->mem->next) {
1552 u64 size = (u64)map->mem->length << NVKM_RAM_MM_SHIFT;
1553 if (size > map->off)
1554 break;
1555 map->off -= size;
1556 }
1557 func = map->page->desc->func->mem;
1558 } else
1559 if (map->sgl) {
1560 for (; map->off; map->sgl = sg_next(map->sgl)) {
1561 u64 size = sg_dma_len(map->sgl);
1562 if (size > map->off)
1563 break;
1564 map->off -= size;
1565 }
1566 func = map->page->desc->func->sgl;
1567 } else {
1568 map->dma += map->offset >> PAGE_SHIFT;
1569 map->off = map->offset & PAGE_MASK;
1570 func = map->page->desc->func->dma;
1571 }
1572
1573 /* Perform the map. */
1574 if (vma->refd == NVKM_VMA_PAGE_NONE) {
1575 ret = nvkm_vmm_ptes_get_map(vmm, map->page, vma->addr, vma->size, map, func);
1576 if (ret)
1577 return ret;
1578
1579 vma->refd = map->page - vmm->func->page;
1580 } else {
1581 nvkm_vmm_ptes_map(vmm, map->page, vma->addr, vma->size, map, func);
1582 }
1583
1584 nvkm_memory_tags_put(vma->memory, vmm->mmu->subdev.device, &vma->tags);
1585 nvkm_memory_unref(&vma->memory);
1586 vma->memory = nvkm_memory_ref(map->memory);
1587 vma->mapped = true;
1588 vma->tags = map->tags;
1589 return 0;
1590 }
1591
1592 int
nvkm_vmm_map(struct nvkm_vmm * vmm,struct nvkm_vma * vma,void * argv,u32 argc,struct nvkm_vmm_map * map)1593 nvkm_vmm_map(struct nvkm_vmm *vmm, struct nvkm_vma *vma, void *argv, u32 argc,
1594 struct nvkm_vmm_map *map)
1595 {
1596 int ret;
1597
1598 if (nvkm_vmm_in_managed_range(vmm, vma->addr, vma->size) &&
1599 vmm->managed.raw)
1600 return nvkm_vmm_map_locked(vmm, vma, argv, argc, map);
1601
1602 mutex_lock(&vmm->mutex.vmm);
1603 ret = nvkm_vmm_map_locked(vmm, vma, argv, argc, map);
1604 vma->busy = false;
1605 mutex_unlock(&vmm->mutex.vmm);
1606 return ret;
1607 }
1608
1609 static void
nvkm_vmm_put_region(struct nvkm_vmm * vmm,struct nvkm_vma * vma)1610 nvkm_vmm_put_region(struct nvkm_vmm *vmm, struct nvkm_vma *vma)
1611 {
1612 struct nvkm_vma *prev, *next;
1613
1614 if ((prev = node(vma, prev)) && !prev->used) {
1615 vma->addr = prev->addr;
1616 vma->size += prev->size;
1617 nvkm_vmm_free_delete(vmm, prev);
1618 }
1619
1620 if ((next = node(vma, next)) && !next->used) {
1621 vma->size += next->size;
1622 nvkm_vmm_free_delete(vmm, next);
1623 }
1624
1625 nvkm_vmm_free_insert(vmm, vma);
1626 }
1627
1628 void
nvkm_vmm_put_locked(struct nvkm_vmm * vmm,struct nvkm_vma * vma)1629 nvkm_vmm_put_locked(struct nvkm_vmm *vmm, struct nvkm_vma *vma)
1630 {
1631 const struct nvkm_vmm_page *page = vmm->func->page;
1632 struct nvkm_vma *next = vma;
1633
1634 BUG_ON(vma->part);
1635
1636 if (vma->mapref || !vma->sparse) {
1637 do {
1638 const bool mem = next->memory != NULL;
1639 const bool map = next->mapped;
1640 const u8 refd = next->refd;
1641 const u64 addr = next->addr;
1642 u64 size = next->size;
1643
1644 /* Merge regions that are in the same state. */
1645 while ((next = node(next, next)) && next->part &&
1646 (next->mapped == map) &&
1647 (next->memory != NULL) == mem &&
1648 (next->refd == refd))
1649 size += next->size;
1650
1651 if (map) {
1652 /* Region(s) are mapped, merge the unmap
1653 * and dereference into a single walk of
1654 * the page tree.
1655 */
1656 nvkm_vmm_ptes_unmap_put(vmm, &page[refd], addr,
1657 size, vma->sparse,
1658 !mem);
1659 } else
1660 if (refd != NVKM_VMA_PAGE_NONE) {
1661 /* Drop allocation-time PTE references. */
1662 nvkm_vmm_ptes_put(vmm, &page[refd], addr, size);
1663 }
1664 } while (next && next->part);
1665 }
1666
1667 /* Merge any mapped regions that were split from the initial
1668 * address-space allocation back into the allocated VMA, and
1669 * release memory/compression resources.
1670 */
1671 next = vma;
1672 do {
1673 if (next->mapped)
1674 nvkm_vmm_unmap_region(vmm, next);
1675 } while ((next = node(vma, next)) && next->part);
1676
1677 if (vma->sparse && !vma->mapref) {
1678 /* Sparse region that was allocated with a fixed page size,
1679 * meaning all relevant PTEs were referenced once when the
1680 * region was allocated, and remained that way, regardless
1681 * of whether memory was mapped into it afterwards.
1682 *
1683 * The process of unmapping, unsparsing, and dereferencing
1684 * PTEs can be done in a single page tree walk.
1685 */
1686 nvkm_vmm_ptes_sparse_put(vmm, &page[vma->refd], vma->addr, vma->size);
1687 } else
1688 if (vma->sparse) {
1689 /* Sparse region that wasn't allocated with a fixed page size,
1690 * PTE references were taken both at allocation time (to make
1691 * the GPU see the region as sparse), and when mapping memory
1692 * into the region.
1693 *
1694 * The latter was handled above, and the remaining references
1695 * are dealt with here.
1696 */
1697 nvkm_vmm_ptes_sparse(vmm, vma->addr, vma->size, false);
1698 }
1699
1700 /* Remove VMA from the list of allocated nodes. */
1701 nvkm_vmm_node_remove(vmm, vma);
1702
1703 /* Merge VMA back into the free list. */
1704 vma->page = NVKM_VMA_PAGE_NONE;
1705 vma->refd = NVKM_VMA_PAGE_NONE;
1706 vma->used = false;
1707 nvkm_vmm_put_region(vmm, vma);
1708 }
1709
1710 void
nvkm_vmm_put(struct nvkm_vmm * vmm,struct nvkm_vma ** pvma)1711 nvkm_vmm_put(struct nvkm_vmm *vmm, struct nvkm_vma **pvma)
1712 {
1713 struct nvkm_vma *vma = *pvma;
1714 if (vma) {
1715 mutex_lock(&vmm->mutex.vmm);
1716 nvkm_vmm_put_locked(vmm, vma);
1717 mutex_unlock(&vmm->mutex.vmm);
1718 *pvma = NULL;
1719 }
1720 }
1721
1722 int
nvkm_vmm_get_locked(struct nvkm_vmm * vmm,bool getref,bool mapref,bool sparse,u8 shift,u8 align,u64 size,struct nvkm_vma ** pvma)1723 nvkm_vmm_get_locked(struct nvkm_vmm *vmm, bool getref, bool mapref, bool sparse,
1724 u8 shift, u8 align, u64 size, struct nvkm_vma **pvma)
1725 {
1726 const struct nvkm_vmm_page *page = &vmm->func->page[NVKM_VMA_PAGE_NONE];
1727 struct rb_node *node = NULL, *temp;
1728 struct nvkm_vma *vma = NULL, *tmp;
1729 u64 addr, tail;
1730 int ret;
1731
1732 VMM_TRACE(vmm, "getref %d mapref %d sparse %d "
1733 "shift: %d align: %d size: %016llx",
1734 getref, mapref, sparse, shift, align, size);
1735
1736 /* Zero-sized, or lazily-allocated sparse VMAs, make no sense. */
1737 if (unlikely(!size || (!getref && !mapref && sparse))) {
1738 VMM_DEBUG(vmm, "args %016llx %d %d %d",
1739 size, getref, mapref, sparse);
1740 return -EINVAL;
1741 }
1742
1743 /* Tesla-class GPUs can only select page size per-PDE, which means
1744 * we're required to know the mapping granularity up-front to find
1745 * a suitable region of address-space.
1746 *
1747 * The same goes if we're requesting up-front allocation of PTES.
1748 */
1749 if (unlikely((getref || vmm->func->page_block) && !shift)) {
1750 VMM_DEBUG(vmm, "page size required: %d %016llx",
1751 getref, vmm->func->page_block);
1752 return -EINVAL;
1753 }
1754
1755 /* If a specific page size was requested, determine its index and
1756 * make sure the requested size is a multiple of the page size.
1757 */
1758 if (shift) {
1759 for (page = vmm->func->page; page->shift; page++) {
1760 if (shift == page->shift)
1761 break;
1762 }
1763
1764 if (!page->shift || !IS_ALIGNED(size, 1ULL << page->shift)) {
1765 VMM_DEBUG(vmm, "page %d %016llx", shift, size);
1766 return -EINVAL;
1767 }
1768 align = max_t(u8, align, shift);
1769 } else {
1770 align = max_t(u8, align, 12);
1771 }
1772
1773 /* Locate smallest block that can possibly satisfy the allocation. */
1774 temp = vmm->free.rb_node;
1775 while (temp) {
1776 struct nvkm_vma *this = rb_entry(temp, typeof(*this), tree);
1777 if (this->size < size) {
1778 temp = temp->rb_right;
1779 } else {
1780 node = temp;
1781 temp = temp->rb_left;
1782 }
1783 }
1784
1785 if (unlikely(!node))
1786 return -ENOSPC;
1787
1788 /* Take into account alignment restrictions, trying larger blocks
1789 * in turn until we find a suitable free block.
1790 */
1791 do {
1792 struct nvkm_vma *this = rb_entry(node, typeof(*this), tree);
1793 struct nvkm_vma *prev = node(this, prev);
1794 struct nvkm_vma *next = node(this, next);
1795 const int p = page - vmm->func->page;
1796
1797 addr = this->addr;
1798 if (vmm->func->page_block && prev && prev->page != p)
1799 addr = ALIGN(addr, vmm->func->page_block);
1800 addr = ALIGN(addr, 1ULL << align);
1801
1802 tail = this->addr + this->size;
1803 if (vmm->func->page_block && next && next->page != p)
1804 tail = ALIGN_DOWN(tail, vmm->func->page_block);
1805
1806 if (addr <= tail && tail - addr >= size) {
1807 nvkm_vmm_free_remove(vmm, this);
1808 vma = this;
1809 break;
1810 }
1811 } while ((node = rb_next(node)));
1812
1813 if (unlikely(!vma))
1814 return -ENOSPC;
1815
1816 /* If the VMA we found isn't already exactly the requested size,
1817 * it needs to be split, and the remaining free blocks returned.
1818 */
1819 if (addr != vma->addr) {
1820 if (!(tmp = nvkm_vma_tail(vma, vma->size + vma->addr - addr))) {
1821 nvkm_vmm_put_region(vmm, vma);
1822 return -ENOMEM;
1823 }
1824 nvkm_vmm_free_insert(vmm, vma);
1825 vma = tmp;
1826 }
1827
1828 if (size != vma->size) {
1829 if (!(tmp = nvkm_vma_tail(vma, vma->size - size))) {
1830 nvkm_vmm_put_region(vmm, vma);
1831 return -ENOMEM;
1832 }
1833 nvkm_vmm_free_insert(vmm, tmp);
1834 }
1835
1836 /* Pre-allocate page tables and/or setup sparse mappings. */
1837 if (sparse && getref)
1838 ret = nvkm_vmm_ptes_sparse_get(vmm, page, vma->addr, vma->size);
1839 else if (sparse)
1840 ret = nvkm_vmm_ptes_sparse(vmm, vma->addr, vma->size, true);
1841 else if (getref)
1842 ret = nvkm_vmm_ptes_get(vmm, page, vma->addr, vma->size);
1843 else
1844 ret = 0;
1845 if (ret) {
1846 nvkm_vmm_put_region(vmm, vma);
1847 return ret;
1848 }
1849
1850 vma->mapref = mapref && !getref;
1851 vma->sparse = sparse;
1852 vma->page = page - vmm->func->page;
1853 vma->refd = getref ? vma->page : NVKM_VMA_PAGE_NONE;
1854 vma->used = true;
1855 nvkm_vmm_node_insert(vmm, vma);
1856 *pvma = vma;
1857 return 0;
1858 }
1859
1860 int
nvkm_vmm_get(struct nvkm_vmm * vmm,u8 page,u64 size,struct nvkm_vma ** pvma)1861 nvkm_vmm_get(struct nvkm_vmm *vmm, u8 page, u64 size, struct nvkm_vma **pvma)
1862 {
1863 int ret;
1864 mutex_lock(&vmm->mutex.vmm);
1865 ret = nvkm_vmm_get_locked(vmm, false, true, false, page, 0, size, pvma);
1866 mutex_unlock(&vmm->mutex.vmm);
1867 return ret;
1868 }
1869
1870 void
nvkm_vmm_raw_unmap(struct nvkm_vmm * vmm,u64 addr,u64 size,bool sparse,u8 refd)1871 nvkm_vmm_raw_unmap(struct nvkm_vmm *vmm, u64 addr, u64 size,
1872 bool sparse, u8 refd)
1873 {
1874 const struct nvkm_vmm_page *page = &vmm->func->page[refd];
1875
1876 nvkm_vmm_ptes_unmap(vmm, page, addr, size, sparse, false);
1877 }
1878
1879 void
nvkm_vmm_raw_put(struct nvkm_vmm * vmm,u64 addr,u64 size,u8 refd)1880 nvkm_vmm_raw_put(struct nvkm_vmm *vmm, u64 addr, u64 size, u8 refd)
1881 {
1882 const struct nvkm_vmm_page *page = vmm->func->page;
1883
1884 nvkm_vmm_ptes_put(vmm, &page[refd], addr, size);
1885 }
1886
1887 int
nvkm_vmm_raw_get(struct nvkm_vmm * vmm,u64 addr,u64 size,u8 refd)1888 nvkm_vmm_raw_get(struct nvkm_vmm *vmm, u64 addr, u64 size, u8 refd)
1889 {
1890 const struct nvkm_vmm_page *page = vmm->func->page;
1891
1892 if (unlikely(!size))
1893 return -EINVAL;
1894
1895 return nvkm_vmm_ptes_get(vmm, &page[refd], addr, size);
1896 }
1897
1898 int
nvkm_vmm_raw_sparse(struct nvkm_vmm * vmm,u64 addr,u64 size,bool ref)1899 nvkm_vmm_raw_sparse(struct nvkm_vmm *vmm, u64 addr, u64 size, bool ref)
1900 {
1901 int ret;
1902
1903 mutex_lock(&vmm->mutex.ref);
1904 ret = nvkm_vmm_ptes_sparse(vmm, addr, size, ref);
1905 mutex_unlock(&vmm->mutex.ref);
1906
1907 return ret;
1908 }
1909
1910 void
nvkm_vmm_part(struct nvkm_vmm * vmm,struct nvkm_memory * inst)1911 nvkm_vmm_part(struct nvkm_vmm *vmm, struct nvkm_memory *inst)
1912 {
1913 if (inst && vmm && vmm->func->part) {
1914 mutex_lock(&vmm->mutex.vmm);
1915 vmm->func->part(vmm, inst);
1916 mutex_unlock(&vmm->mutex.vmm);
1917 }
1918 }
1919
1920 int
nvkm_vmm_join(struct nvkm_vmm * vmm,struct nvkm_memory * inst)1921 nvkm_vmm_join(struct nvkm_vmm *vmm, struct nvkm_memory *inst)
1922 {
1923 int ret = 0;
1924 if (vmm->func->join) {
1925 mutex_lock(&vmm->mutex.vmm);
1926 ret = vmm->func->join(vmm, inst);
1927 mutex_unlock(&vmm->mutex.vmm);
1928 }
1929 return ret;
1930 }
1931
1932 static bool
nvkm_vmm_boot_ptes(struct nvkm_vmm_iter * it,bool pfn,u32 ptei,u32 ptes)1933 nvkm_vmm_boot_ptes(struct nvkm_vmm_iter *it, bool pfn, u32 ptei, u32 ptes)
1934 {
1935 const struct nvkm_vmm_desc *desc = it->desc;
1936 const int type = desc->type == SPT;
1937 nvkm_memory_boot(it->pt[0]->pt[type]->memory, it->vmm);
1938 return false;
1939 }
1940
1941 int
nvkm_vmm_boot(struct nvkm_vmm * vmm)1942 nvkm_vmm_boot(struct nvkm_vmm *vmm)
1943 {
1944 const struct nvkm_vmm_page *page = vmm->func->page;
1945 const u64 limit = vmm->limit - vmm->start;
1946 int ret;
1947
1948 while (page[1].shift)
1949 page++;
1950
1951 ret = nvkm_vmm_ptes_get(vmm, page, vmm->start, limit);
1952 if (ret)
1953 return ret;
1954
1955 nvkm_vmm_iter(vmm, page, vmm->start, limit, "bootstrap", false, false,
1956 nvkm_vmm_boot_ptes, NULL, NULL, NULL);
1957 vmm->bootstrapped = true;
1958 return 0;
1959 }
1960
1961 static void
nvkm_vmm_del(struct kref * kref)1962 nvkm_vmm_del(struct kref *kref)
1963 {
1964 struct nvkm_vmm *vmm = container_of(kref, typeof(*vmm), kref);
1965 nvkm_vmm_dtor(vmm);
1966 kfree(vmm);
1967 }
1968
1969 void
nvkm_vmm_unref(struct nvkm_vmm ** pvmm)1970 nvkm_vmm_unref(struct nvkm_vmm **pvmm)
1971 {
1972 struct nvkm_vmm *vmm = *pvmm;
1973 if (vmm) {
1974 kref_put(&vmm->kref, nvkm_vmm_del);
1975 *pvmm = NULL;
1976 }
1977 }
1978
1979 struct nvkm_vmm *
nvkm_vmm_ref(struct nvkm_vmm * vmm)1980 nvkm_vmm_ref(struct nvkm_vmm *vmm)
1981 {
1982 if (vmm)
1983 kref_get(&vmm->kref);
1984 return vmm;
1985 }
1986
1987 int
nvkm_vmm_new(struct nvkm_device * device,u64 addr,u64 size,void * argv,u32 argc,struct lock_class_key * key,const char * name,struct nvkm_vmm ** pvmm)1988 nvkm_vmm_new(struct nvkm_device *device, u64 addr, u64 size, void *argv,
1989 u32 argc, struct lock_class_key *key, const char *name,
1990 struct nvkm_vmm **pvmm)
1991 {
1992 struct nvkm_mmu *mmu = device->mmu;
1993 struct nvkm_vmm *vmm = NULL;
1994 int ret;
1995 ret = mmu->func->vmm.ctor(mmu, false, addr, size, argv, argc,
1996 key, name, &vmm);
1997 if (ret)
1998 nvkm_vmm_unref(&vmm);
1999 *pvmm = vmm;
2000 return ret;
2001 }
2002