xref: /linux/drivers/iommu/iova.c (revision 9cebfe6504488198b012e746bc6b313f88b95439)
1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3  * Copyright © 2006-2009, Intel Corporation.
4  *
5  * Author: Anil S Keshavamurthy <anil.s.keshavamurthy@intel.com>
6  */
7 
8 #include <linux/iova.h>
9 #include <linux/kmemleak.h>
10 #include <linux/module.h>
11 #include <linux/slab.h>
12 #include <linux/smp.h>
13 #include <linux/bitops.h>
14 #include <linux/cpu.h>
15 #include <linux/workqueue.h>
16 
17 /* The anchor node sits above the top of the usable address space */
18 #define IOVA_ANCHOR	~0UL
19 
20 #define IOVA_RANGE_CACHE_MAX_SIZE 6	/* log of max cached IOVA range size (in pages) */
21 
22 static bool iova_rcache_insert(struct iova_domain *iovad,
23 			       unsigned long pfn,
24 			       unsigned long size);
25 static unsigned long iova_rcache_get(struct iova_domain *iovad,
26 				     unsigned long size,
27 				     unsigned long limit_pfn);
28 static void free_iova_rcaches(struct iova_domain *iovad);
29 static void free_cpu_cached_iovas(unsigned int cpu, struct iova_domain *iovad);
30 static void free_global_cached_iovas(struct iova_domain *iovad);
31 
32 static struct iova *to_iova(struct rb_node *node)
33 {
34 	return rb_entry(node, struct iova, node);
35 }
36 
37 void
38 init_iova_domain(struct iova_domain *iovad, unsigned long granule,
39 	unsigned long start_pfn)
40 {
41 	/*
42 	 * IOVA granularity will normally be equal to the smallest
43 	 * supported IOMMU page size; both *must* be capable of
44 	 * representing individual CPU pages exactly.
45 	 */
46 	BUG_ON((granule > PAGE_SIZE) || !is_power_of_2(granule));
47 
48 	spin_lock_init(&iovad->iova_rbtree_lock);
49 	iovad->rbroot = RB_ROOT;
50 	iovad->cached_node = &iovad->anchor.node;
51 	iovad->cached32_node = &iovad->anchor.node;
52 	iovad->granule = granule;
53 	iovad->start_pfn = start_pfn;
54 	iovad->dma_32bit_pfn = 1UL << (32 - iova_shift(iovad));
55 	iovad->max32_alloc_size = iovad->dma_32bit_pfn;
56 	iovad->anchor.pfn_lo = iovad->anchor.pfn_hi = IOVA_ANCHOR;
57 	rb_link_node(&iovad->anchor.node, NULL, &iovad->rbroot.rb_node);
58 	rb_insert_color(&iovad->anchor.node, &iovad->rbroot);
59 }
60 EXPORT_SYMBOL_GPL(init_iova_domain);
61 
62 static struct rb_node *
63 __get_cached_rbnode(struct iova_domain *iovad, unsigned long limit_pfn)
64 {
65 	if (limit_pfn <= iovad->dma_32bit_pfn)
66 		return iovad->cached32_node;
67 
68 	return iovad->cached_node;
69 }
70 
71 static void
72 __cached_rbnode_insert_update(struct iova_domain *iovad, struct iova *new)
73 {
74 	if (new->pfn_hi < iovad->dma_32bit_pfn)
75 		iovad->cached32_node = &new->node;
76 	else
77 		iovad->cached_node = &new->node;
78 }
79 
80 static void
81 __cached_rbnode_delete_update(struct iova_domain *iovad, struct iova *free)
82 {
83 	struct iova *cached_iova;
84 
85 	cached_iova = to_iova(iovad->cached32_node);
86 	if (free == cached_iova ||
87 	    (free->pfn_hi < iovad->dma_32bit_pfn &&
88 	     free->pfn_lo >= cached_iova->pfn_lo))
89 		iovad->cached32_node = rb_next(&free->node);
90 
91 	if (free->pfn_lo < iovad->dma_32bit_pfn)
92 		iovad->max32_alloc_size = iovad->dma_32bit_pfn;
93 
94 	cached_iova = to_iova(iovad->cached_node);
95 	if (free->pfn_lo >= cached_iova->pfn_lo)
96 		iovad->cached_node = rb_next(&free->node);
97 }
98 
99 static struct rb_node *iova_find_limit(struct iova_domain *iovad, unsigned long limit_pfn)
100 {
101 	struct rb_node *node, *next;
102 	/*
103 	 * Ideally what we'd like to judge here is whether limit_pfn is close
104 	 * enough to the highest-allocated IOVA that starting the allocation
105 	 * walk from the anchor node will be quicker than this initial work to
106 	 * find an exact starting point (especially if that ends up being the
107 	 * anchor node anyway). This is an incredibly crude approximation which
108 	 * only really helps the most likely case, but is at least trivially easy.
109 	 */
110 	if (limit_pfn > iovad->dma_32bit_pfn)
111 		return &iovad->anchor.node;
112 
113 	node = iovad->rbroot.rb_node;
114 	while (to_iova(node)->pfn_hi < limit_pfn)
115 		node = node->rb_right;
116 
117 search_left:
118 	while (node->rb_left && to_iova(node->rb_left)->pfn_lo >= limit_pfn)
119 		node = node->rb_left;
120 
121 	if (!node->rb_left)
122 		return node;
123 
124 	next = node->rb_left;
125 	while (next->rb_right) {
126 		next = next->rb_right;
127 		if (to_iova(next)->pfn_lo >= limit_pfn) {
128 			node = next;
129 			goto search_left;
130 		}
131 	}
132 
133 	return node;
134 }
135 
136 /* Insert the iova into domain rbtree by holding writer lock */
137 static void
138 iova_insert_rbtree(struct rb_root *root, struct iova *iova,
139 		   struct rb_node *start)
140 {
141 	struct rb_node **new, *parent = NULL;
142 
143 	new = (start) ? &start : &(root->rb_node);
144 	/* Figure out where to put new node */
145 	while (*new) {
146 		struct iova *this = to_iova(*new);
147 
148 		parent = *new;
149 
150 		if (iova->pfn_lo < this->pfn_lo)
151 			new = &((*new)->rb_left);
152 		else if (iova->pfn_lo > this->pfn_lo)
153 			new = &((*new)->rb_right);
154 		else {
155 			WARN_ON(1); /* this should not happen */
156 			return;
157 		}
158 	}
159 	/* Add new node and rebalance tree. */
160 	rb_link_node(&iova->node, parent, new);
161 	rb_insert_color(&iova->node, root);
162 }
163 
164 static int __alloc_and_insert_iova_range(struct iova_domain *iovad,
165 		unsigned long size, unsigned long limit_pfn,
166 			struct iova *new, bool size_aligned)
167 {
168 	struct rb_node *curr, *prev;
169 	struct iova *curr_iova;
170 	unsigned long flags;
171 	unsigned long new_pfn, retry_pfn;
172 	unsigned long align_mask = ~0UL;
173 	unsigned long high_pfn = limit_pfn, low_pfn = iovad->start_pfn;
174 
175 	if (size_aligned)
176 		align_mask <<= fls_long(size - 1);
177 
178 	/* Walk the tree backwards */
179 	spin_lock_irqsave(&iovad->iova_rbtree_lock, flags);
180 	if (limit_pfn <= iovad->dma_32bit_pfn &&
181 			size >= iovad->max32_alloc_size)
182 		goto iova32_full;
183 
184 	curr = __get_cached_rbnode(iovad, limit_pfn);
185 	curr_iova = to_iova(curr);
186 	retry_pfn = curr_iova->pfn_hi;
187 
188 retry:
189 	do {
190 		high_pfn = min(high_pfn, curr_iova->pfn_lo);
191 		new_pfn = (high_pfn - size) & align_mask;
192 		prev = curr;
193 		curr = rb_prev(curr);
194 		curr_iova = to_iova(curr);
195 	} while (curr && new_pfn <= curr_iova->pfn_hi && new_pfn >= low_pfn);
196 
197 	if (high_pfn < size || new_pfn < low_pfn) {
198 		if (low_pfn == iovad->start_pfn && retry_pfn < limit_pfn) {
199 			high_pfn = limit_pfn;
200 			low_pfn = retry_pfn + 1;
201 			curr = iova_find_limit(iovad, limit_pfn);
202 			curr_iova = to_iova(curr);
203 			goto retry;
204 		}
205 		iovad->max32_alloc_size = size;
206 		goto iova32_full;
207 	}
208 
209 	/* pfn_lo will point to size aligned address if size_aligned is set */
210 	new->pfn_lo = new_pfn;
211 	new->pfn_hi = new->pfn_lo + size - 1;
212 
213 	/* If we have 'prev', it's a valid place to start the insertion. */
214 	iova_insert_rbtree(&iovad->rbroot, new, prev);
215 	__cached_rbnode_insert_update(iovad, new);
216 
217 	spin_unlock_irqrestore(&iovad->iova_rbtree_lock, flags);
218 	return 0;
219 
220 iova32_full:
221 	spin_unlock_irqrestore(&iovad->iova_rbtree_lock, flags);
222 	return -ENOMEM;
223 }
224 
225 static struct kmem_cache *iova_cache;
226 static unsigned int iova_cache_users;
227 static DEFINE_MUTEX(iova_cache_mutex);
228 
229 static struct iova *alloc_iova_mem(void)
230 {
231 	return kmem_cache_zalloc(iova_cache, GFP_ATOMIC | __GFP_NOWARN);
232 }
233 
234 static void free_iova_mem(struct iova *iova)
235 {
236 	if (iova->pfn_lo != IOVA_ANCHOR)
237 		kmem_cache_free(iova_cache, iova);
238 }
239 
240 /**
241  * alloc_iova - allocates an iova
242  * @iovad: - iova domain in question
243  * @size: - size of page frames to allocate
244  * @limit_pfn: - max limit address
245  * @size_aligned: - set if size_aligned address range is required
246  * This function allocates an iova in the range iovad->start_pfn to limit_pfn,
247  * searching top-down from limit_pfn to iovad->start_pfn. If the size_aligned
248  * flag is set then the allocated address iova->pfn_lo will be naturally
249  * aligned on roundup_power_of_two(size).
250  */
251 struct iova *
252 alloc_iova(struct iova_domain *iovad, unsigned long size,
253 	unsigned long limit_pfn,
254 	bool size_aligned)
255 {
256 	struct iova *new_iova;
257 	int ret;
258 
259 	new_iova = alloc_iova_mem();
260 	if (!new_iova)
261 		return NULL;
262 
263 	ret = __alloc_and_insert_iova_range(iovad, size, limit_pfn + 1,
264 			new_iova, size_aligned);
265 
266 	if (ret) {
267 		free_iova_mem(new_iova);
268 		return NULL;
269 	}
270 
271 	return new_iova;
272 }
273 EXPORT_SYMBOL_GPL(alloc_iova);
274 
275 static struct iova *
276 private_find_iova(struct iova_domain *iovad, unsigned long pfn)
277 {
278 	struct rb_node *node = iovad->rbroot.rb_node;
279 
280 	assert_spin_locked(&iovad->iova_rbtree_lock);
281 
282 	while (node) {
283 		struct iova *iova = to_iova(node);
284 
285 		if (pfn < iova->pfn_lo)
286 			node = node->rb_left;
287 		else if (pfn > iova->pfn_hi)
288 			node = node->rb_right;
289 		else
290 			return iova;	/* pfn falls within iova's range */
291 	}
292 
293 	return NULL;
294 }
295 
296 static void remove_iova(struct iova_domain *iovad, struct iova *iova)
297 {
298 	assert_spin_locked(&iovad->iova_rbtree_lock);
299 	__cached_rbnode_delete_update(iovad, iova);
300 	rb_erase(&iova->node, &iovad->rbroot);
301 }
302 
303 /**
304  * find_iova - finds an iova for a given pfn
305  * @iovad: - iova domain in question.
306  * @pfn: - page frame number
307  * This function finds and returns an iova belonging to the
308  * given domain which matches the given pfn.
309  */
310 struct iova *find_iova(struct iova_domain *iovad, unsigned long pfn)
311 {
312 	unsigned long flags;
313 	struct iova *iova;
314 
315 	/* Take the lock so that no other thread is manipulating the rbtree */
316 	spin_lock_irqsave(&iovad->iova_rbtree_lock, flags);
317 	iova = private_find_iova(iovad, pfn);
318 	spin_unlock_irqrestore(&iovad->iova_rbtree_lock, flags);
319 	return iova;
320 }
321 EXPORT_SYMBOL_GPL(find_iova);
322 
323 /**
324  * __free_iova - frees the given iova
325  * @iovad: iova domain in question.
326  * @iova: iova in question.
327  * Frees the given iova belonging to the giving domain
328  */
329 void
330 __free_iova(struct iova_domain *iovad, struct iova *iova)
331 {
332 	unsigned long flags;
333 
334 	spin_lock_irqsave(&iovad->iova_rbtree_lock, flags);
335 	remove_iova(iovad, iova);
336 	spin_unlock_irqrestore(&iovad->iova_rbtree_lock, flags);
337 	free_iova_mem(iova);
338 }
339 EXPORT_SYMBOL_GPL(__free_iova);
340 
341 /**
342  * free_iova - finds and frees the iova for a given pfn
343  * @iovad: - iova domain in question.
344  * @pfn: - pfn that is allocated previously
345  * This functions finds an iova for a given pfn and then
346  * frees the iova from that domain.
347  */
348 void
349 free_iova(struct iova_domain *iovad, unsigned long pfn)
350 {
351 	unsigned long flags;
352 	struct iova *iova;
353 
354 	spin_lock_irqsave(&iovad->iova_rbtree_lock, flags);
355 	iova = private_find_iova(iovad, pfn);
356 	if (!iova) {
357 		spin_unlock_irqrestore(&iovad->iova_rbtree_lock, flags);
358 		return;
359 	}
360 	remove_iova(iovad, iova);
361 	spin_unlock_irqrestore(&iovad->iova_rbtree_lock, flags);
362 	free_iova_mem(iova);
363 }
364 EXPORT_SYMBOL_GPL(free_iova);
365 
366 /**
367  * alloc_iova_fast - allocates an iova from rcache
368  * @iovad: - iova domain in question
369  * @size: - size of page frames to allocate
370  * @limit_pfn: - max limit address
371  * @flush_rcache: - set to flush rcache on regular allocation failure
372  * This function tries to satisfy an iova allocation from the rcache,
373  * and falls back to regular allocation on failure. If regular allocation
374  * fails too and the flush_rcache flag is set then the rcache will be flushed.
375 */
376 unsigned long
377 alloc_iova_fast(struct iova_domain *iovad, unsigned long size,
378 		unsigned long limit_pfn, bool flush_rcache)
379 {
380 	unsigned long iova_pfn;
381 	struct iova *new_iova;
382 
383 	/*
384 	 * Freeing non-power-of-two-sized allocations back into the IOVA caches
385 	 * will come back to bite us badly, so we have to waste a bit of space
386 	 * rounding up anything cacheable to make sure that can't happen. The
387 	 * order of the unadjusted size will still match upon freeing.
388 	 */
389 	if (size < (1 << (IOVA_RANGE_CACHE_MAX_SIZE - 1)))
390 		size = roundup_pow_of_two(size);
391 
392 	iova_pfn = iova_rcache_get(iovad, size, limit_pfn + 1);
393 	if (iova_pfn)
394 		return iova_pfn;
395 
396 retry:
397 	new_iova = alloc_iova(iovad, size, limit_pfn, true);
398 	if (!new_iova) {
399 		unsigned int cpu;
400 
401 		if (!flush_rcache)
402 			return 0;
403 
404 		/* Try replenishing IOVAs by flushing rcache. */
405 		flush_rcache = false;
406 		for_each_online_cpu(cpu)
407 			free_cpu_cached_iovas(cpu, iovad);
408 		free_global_cached_iovas(iovad);
409 		goto retry;
410 	}
411 
412 	return new_iova->pfn_lo;
413 }
414 EXPORT_SYMBOL_GPL(alloc_iova_fast);
415 
416 /**
417  * free_iova_fast - free iova pfn range into rcache
418  * @iovad: - iova domain in question.
419  * @pfn: - pfn that is allocated previously
420  * @size: - # of pages in range
421  * This functions frees an iova range by trying to put it into the rcache,
422  * falling back to regular iova deallocation via free_iova() if this fails.
423  */
424 void
425 free_iova_fast(struct iova_domain *iovad, unsigned long pfn, unsigned long size)
426 {
427 	if (iova_rcache_insert(iovad, pfn, size))
428 		return;
429 
430 	free_iova(iovad, pfn);
431 }
432 EXPORT_SYMBOL_GPL(free_iova_fast);
433 
434 static void iova_domain_free_rcaches(struct iova_domain *iovad)
435 {
436 	cpuhp_state_remove_instance_nocalls(CPUHP_IOMMU_IOVA_DEAD,
437 					    &iovad->cpuhp_dead);
438 	free_iova_rcaches(iovad);
439 }
440 
441 /**
442  * put_iova_domain - destroys the iova domain
443  * @iovad: - iova domain in question.
444  * All the iova's in that domain are destroyed.
445  */
446 void put_iova_domain(struct iova_domain *iovad)
447 {
448 	struct iova *iova, *tmp;
449 
450 	if (iovad->rcaches)
451 		iova_domain_free_rcaches(iovad);
452 
453 	rbtree_postorder_for_each_entry_safe(iova, tmp, &iovad->rbroot, node)
454 		free_iova_mem(iova);
455 }
456 EXPORT_SYMBOL_GPL(put_iova_domain);
457 
458 static int
459 __is_range_overlap(struct rb_node *node,
460 	unsigned long pfn_lo, unsigned long pfn_hi)
461 {
462 	struct iova *iova = to_iova(node);
463 
464 	if ((pfn_lo <= iova->pfn_hi) && (pfn_hi >= iova->pfn_lo))
465 		return 1;
466 	return 0;
467 }
468 
469 static inline struct iova *
470 alloc_and_init_iova(unsigned long pfn_lo, unsigned long pfn_hi)
471 {
472 	struct iova *iova;
473 
474 	iova = alloc_iova_mem();
475 	if (iova) {
476 		iova->pfn_lo = pfn_lo;
477 		iova->pfn_hi = pfn_hi;
478 	}
479 
480 	return iova;
481 }
482 
483 static struct iova *
484 __insert_new_range(struct iova_domain *iovad,
485 	unsigned long pfn_lo, unsigned long pfn_hi)
486 {
487 	struct iova *iova;
488 
489 	iova = alloc_and_init_iova(pfn_lo, pfn_hi);
490 	if (iova)
491 		iova_insert_rbtree(&iovad->rbroot, iova, NULL);
492 
493 	return iova;
494 }
495 
496 static void
497 __adjust_overlap_range(struct iova *iova,
498 	unsigned long *pfn_lo, unsigned long *pfn_hi)
499 {
500 	if (*pfn_lo < iova->pfn_lo)
501 		iova->pfn_lo = *pfn_lo;
502 	if (*pfn_hi > iova->pfn_hi)
503 		*pfn_lo = iova->pfn_hi + 1;
504 }
505 
506 /**
507  * reserve_iova - reserves an iova in the given range
508  * @iovad: - iova domain pointer
509  * @pfn_lo: - lower page frame address
510  * @pfn_hi:- higher pfn address
511  * This function allocates reserves the address range from pfn_lo to pfn_hi so
512  * that this address is not dished out as part of alloc_iova.
513  */
514 struct iova *
515 reserve_iova(struct iova_domain *iovad,
516 	unsigned long pfn_lo, unsigned long pfn_hi)
517 {
518 	struct rb_node *node;
519 	unsigned long flags;
520 	struct iova *iova;
521 	unsigned int overlap = 0;
522 
523 	/* Don't allow nonsensical pfns */
524 	if (WARN_ON((pfn_hi | pfn_lo) > (ULLONG_MAX >> iova_shift(iovad))))
525 		return NULL;
526 
527 	spin_lock_irqsave(&iovad->iova_rbtree_lock, flags);
528 	for (node = rb_first(&iovad->rbroot); node; node = rb_next(node)) {
529 		if (__is_range_overlap(node, pfn_lo, pfn_hi)) {
530 			iova = to_iova(node);
531 			__adjust_overlap_range(iova, &pfn_lo, &pfn_hi);
532 			if ((pfn_lo >= iova->pfn_lo) &&
533 				(pfn_hi <= iova->pfn_hi))
534 				goto finish;
535 			overlap = 1;
536 
537 		} else if (overlap)
538 				break;
539 	}
540 
541 	/* We are here either because this is the first reserved node
542 	 * or need to insert remaining non overlap addr range
543 	 */
544 	iova = __insert_new_range(iovad, pfn_lo, pfn_hi);
545 finish:
546 
547 	spin_unlock_irqrestore(&iovad->iova_rbtree_lock, flags);
548 	return iova;
549 }
550 EXPORT_SYMBOL_GPL(reserve_iova);
551 
552 /*
553  * Magazine caches for IOVA ranges.  For an introduction to magazines,
554  * see the USENIX 2001 paper "Magazines and Vmem: Extending the Slab
555  * Allocator to Many CPUs and Arbitrary Resources" by Bonwick and Adams.
556  * For simplicity, we use a static magazine size and don't implement the
557  * dynamic size tuning described in the paper.
558  */
559 
560 /*
561  * As kmalloc's buffer size is fixed to power of 2, 127 is chosen to
562  * assure size of 'iova_magazine' to be 1024 bytes, so that no memory
563  * will be wasted. Since only full magazines are inserted into the depot,
564  * we don't need to waste PFN capacity on a separate list head either.
565  */
566 #define IOVA_MAG_SIZE 127
567 
568 #define IOVA_DEPOT_DELAY msecs_to_jiffies(100)
569 
570 struct iova_magazine {
571 	union {
572 		unsigned long size;
573 		struct iova_magazine *next;
574 	};
575 	unsigned long pfns[IOVA_MAG_SIZE];
576 };
577 static_assert(!(sizeof(struct iova_magazine) & (sizeof(struct iova_magazine) - 1)));
578 
579 struct iova_cpu_rcache {
580 	spinlock_t lock;
581 	struct iova_magazine *loaded;
582 	struct iova_magazine *prev;
583 };
584 
585 struct iova_rcache {
586 	spinlock_t lock;
587 	unsigned int depot_size;
588 	struct iova_magazine *depot;
589 	struct iova_cpu_rcache __percpu *cpu_rcaches;
590 	struct iova_domain *iovad;
591 	struct delayed_work work;
592 };
593 
594 static struct kmem_cache *iova_magazine_cache;
595 
596 unsigned long iova_rcache_range(void)
597 {
598 	return PAGE_SIZE << (IOVA_RANGE_CACHE_MAX_SIZE - 1);
599 }
600 
601 static struct iova_magazine *iova_magazine_alloc(gfp_t flags)
602 {
603 	struct iova_magazine *mag;
604 
605 	mag = kmem_cache_alloc(iova_magazine_cache, flags);
606 	if (mag)
607 		mag->size = 0;
608 
609 	return mag;
610 }
611 
612 static void iova_magazine_free(struct iova_magazine *mag)
613 {
614 	if (mag)
615 		kmem_cache_free(iova_magazine_cache, mag);
616 }
617 
618 static void
619 iova_magazine_free_pfns(struct iova_magazine *mag, struct iova_domain *iovad)
620 {
621 	unsigned long flags;
622 	int i;
623 
624 	if (!mag)
625 		return;
626 
627 	spin_lock_irqsave(&iovad->iova_rbtree_lock, flags);
628 
629 	for (i = 0 ; i < mag->size; ++i) {
630 		struct iova *iova = private_find_iova(iovad, mag->pfns[i]);
631 
632 		if (WARN_ON(!iova))
633 			continue;
634 
635 		remove_iova(iovad, iova);
636 		free_iova_mem(iova);
637 	}
638 
639 	spin_unlock_irqrestore(&iovad->iova_rbtree_lock, flags);
640 
641 	mag->size = 0;
642 }
643 
644 static bool iova_magazine_full(struct iova_magazine *mag)
645 {
646 	return mag->size == IOVA_MAG_SIZE;
647 }
648 
649 static bool iova_magazine_empty(struct iova_magazine *mag)
650 {
651 	return mag->size == 0;
652 }
653 
654 static unsigned long iova_magazine_pop(struct iova_magazine *mag,
655 				       unsigned long limit_pfn)
656 {
657 	int i;
658 	unsigned long pfn;
659 
660 	/* Only fall back to the rbtree if we have no suitable pfns at all */
661 	for (i = mag->size - 1; mag->pfns[i] > limit_pfn; i--)
662 		if (i == 0)
663 			return 0;
664 
665 	/* Swap it to pop it */
666 	pfn = mag->pfns[i];
667 	mag->pfns[i] = mag->pfns[--mag->size];
668 
669 	return pfn;
670 }
671 
672 static void iova_magazine_push(struct iova_magazine *mag, unsigned long pfn)
673 {
674 	mag->pfns[mag->size++] = pfn;
675 }
676 
677 static struct iova_magazine *iova_depot_pop(struct iova_rcache *rcache)
678 {
679 	struct iova_magazine *mag = rcache->depot;
680 
681 	/*
682 	 * As the mag->next pointer is moved to rcache->depot and reset via
683 	 * the mag->size assignment, mark it as a transient false positive.
684 	 */
685 	kmemleak_transient_leak(mag->next);
686 	rcache->depot = mag->next;
687 	mag->size = IOVA_MAG_SIZE;
688 	rcache->depot_size--;
689 	return mag;
690 }
691 
692 static void iova_depot_push(struct iova_rcache *rcache, struct iova_magazine *mag)
693 {
694 	mag->next = rcache->depot;
695 	rcache->depot = mag;
696 	rcache->depot_size++;
697 }
698 
699 static void iova_depot_work_func(struct work_struct *work)
700 {
701 	struct iova_rcache *rcache = container_of(work, typeof(*rcache), work.work);
702 	struct iova_magazine *mag = NULL;
703 	unsigned long flags;
704 
705 	spin_lock_irqsave(&rcache->lock, flags);
706 	if (rcache->depot_size > num_online_cpus())
707 		mag = iova_depot_pop(rcache);
708 	spin_unlock_irqrestore(&rcache->lock, flags);
709 
710 	if (mag) {
711 		iova_magazine_free_pfns(mag, rcache->iovad);
712 		iova_magazine_free(mag);
713 		schedule_delayed_work(&rcache->work, IOVA_DEPOT_DELAY);
714 	}
715 }
716 
717 int iova_domain_init_rcaches(struct iova_domain *iovad)
718 {
719 	unsigned int cpu;
720 	int i, ret;
721 
722 	iovad->rcaches = kzalloc_objs(struct iova_rcache,
723 				      IOVA_RANGE_CACHE_MAX_SIZE);
724 	if (!iovad->rcaches)
725 		return -ENOMEM;
726 
727 	for (i = 0; i < IOVA_RANGE_CACHE_MAX_SIZE; ++i) {
728 		struct iova_cpu_rcache *cpu_rcache;
729 		struct iova_rcache *rcache;
730 
731 		rcache = &iovad->rcaches[i];
732 		spin_lock_init(&rcache->lock);
733 		rcache->iovad = iovad;
734 		INIT_DELAYED_WORK(&rcache->work, iova_depot_work_func);
735 		rcache->cpu_rcaches = __alloc_percpu(sizeof(*cpu_rcache),
736 						     cache_line_size());
737 		if (!rcache->cpu_rcaches) {
738 			ret = -ENOMEM;
739 			goto out_err;
740 		}
741 		for_each_possible_cpu(cpu) {
742 			cpu_rcache = per_cpu_ptr(rcache->cpu_rcaches, cpu);
743 
744 			spin_lock_init(&cpu_rcache->lock);
745 		}
746 	}
747 
748 	ret = cpuhp_state_add_instance_nocalls(CPUHP_IOMMU_IOVA_DEAD,
749 					       &iovad->cpuhp_dead);
750 	if (ret)
751 		goto out_err;
752 	return 0;
753 
754 out_err:
755 	free_iova_rcaches(iovad);
756 	return ret;
757 }
758 EXPORT_SYMBOL_GPL(iova_domain_init_rcaches);
759 
760 /*
761  * Try inserting IOVA range starting with 'iova_pfn' into 'rcache', and
762  * return true on success.  Can fail if rcache is full and we can't free
763  * space, and free_iova() (our only caller) will then return the IOVA
764  * range to the rbtree instead.
765  */
766 static bool __iova_rcache_insert(struct iova_domain *iovad,
767 				 struct iova_rcache *rcache,
768 				 unsigned long iova_pfn)
769 {
770 	struct iova_cpu_rcache *cpu_rcache;
771 	bool can_insert = false;
772 	unsigned long flags;
773 
774 	cpu_rcache = raw_cpu_ptr(rcache->cpu_rcaches);
775 	spin_lock_irqsave(&cpu_rcache->lock, flags);
776 
777 	if (cpu_rcache->loaded && !iova_magazine_full(cpu_rcache->loaded)) {
778 		can_insert = true;
779 	} else if (cpu_rcache->prev && !iova_magazine_full(cpu_rcache->prev)) {
780 		swap(cpu_rcache->prev, cpu_rcache->loaded);
781 		can_insert = true;
782 	} else {
783 		struct iova_magazine *new_mag = iova_magazine_alloc(GFP_ATOMIC);
784 
785 		if (new_mag) {
786 			if (cpu_rcache->loaded && !cpu_rcache->prev) {
787 				cpu_rcache->prev = cpu_rcache->loaded;
788 			} else if (cpu_rcache->loaded) {
789 				spin_lock(&rcache->lock);
790 				iova_depot_push(rcache, cpu_rcache->loaded);
791 				spin_unlock(&rcache->lock);
792 				schedule_delayed_work(&rcache->work, IOVA_DEPOT_DELAY);
793 			}
794 
795 			cpu_rcache->loaded = new_mag;
796 			can_insert = true;
797 		}
798 	}
799 
800 	if (can_insert)
801 		iova_magazine_push(cpu_rcache->loaded, iova_pfn);
802 
803 	spin_unlock_irqrestore(&cpu_rcache->lock, flags);
804 
805 	return can_insert;
806 }
807 
808 static bool iova_rcache_insert(struct iova_domain *iovad, unsigned long pfn,
809 			       unsigned long size)
810 {
811 	unsigned int log_size = order_base_2(size);
812 
813 	if (log_size >= IOVA_RANGE_CACHE_MAX_SIZE)
814 		return false;
815 
816 	return __iova_rcache_insert(iovad, &iovad->rcaches[log_size], pfn);
817 }
818 
819 /*
820  * Caller wants to allocate a new IOVA range from 'rcache'.  If we can
821  * satisfy the request, return a matching non-NULL range and remove
822  * it from the 'rcache'.
823  */
824 static unsigned long __iova_rcache_get(struct iova_rcache *rcache,
825 				       unsigned long limit_pfn)
826 {
827 	struct iova_cpu_rcache *cpu_rcache;
828 	unsigned long iova_pfn = 0;
829 	bool has_pfn = false;
830 	unsigned long flags;
831 
832 	cpu_rcache = raw_cpu_ptr(rcache->cpu_rcaches);
833 	spin_lock_irqsave(&cpu_rcache->lock, flags);
834 
835 	if (cpu_rcache->loaded && !iova_magazine_empty(cpu_rcache->loaded)) {
836 		has_pfn = true;
837 	} else if (cpu_rcache->prev && !iova_magazine_empty(cpu_rcache->prev)) {
838 		swap(cpu_rcache->prev, cpu_rcache->loaded);
839 		has_pfn = true;
840 	} else {
841 		spin_lock(&rcache->lock);
842 		if (rcache->depot) {
843 			iova_magazine_free(cpu_rcache->loaded);
844 			cpu_rcache->loaded = iova_depot_pop(rcache);
845 			has_pfn = true;
846 		}
847 		spin_unlock(&rcache->lock);
848 	}
849 
850 	if (has_pfn)
851 		iova_pfn = iova_magazine_pop(cpu_rcache->loaded, limit_pfn);
852 
853 	spin_unlock_irqrestore(&cpu_rcache->lock, flags);
854 
855 	return iova_pfn;
856 }
857 
858 /*
859  * Try to satisfy IOVA allocation range from rcache.  Fail if requested
860  * size is too big or the DMA limit we are given isn't satisfied by the
861  * top element in the magazine.
862  */
863 static unsigned long iova_rcache_get(struct iova_domain *iovad,
864 				     unsigned long size,
865 				     unsigned long limit_pfn)
866 {
867 	unsigned int log_size = order_base_2(size);
868 
869 	if (log_size >= IOVA_RANGE_CACHE_MAX_SIZE)
870 		return 0;
871 
872 	return __iova_rcache_get(&iovad->rcaches[log_size], limit_pfn - size);
873 }
874 
875 /*
876  * free rcache data structures.
877  */
878 static void free_iova_rcaches(struct iova_domain *iovad)
879 {
880 	struct iova_rcache *rcache;
881 	struct iova_cpu_rcache *cpu_rcache;
882 	unsigned int cpu;
883 
884 	for (int i = 0; i < IOVA_RANGE_CACHE_MAX_SIZE; ++i) {
885 		rcache = &iovad->rcaches[i];
886 		if (!rcache->cpu_rcaches)
887 			break;
888 		for_each_possible_cpu(cpu) {
889 			cpu_rcache = per_cpu_ptr(rcache->cpu_rcaches, cpu);
890 			iova_magazine_free(cpu_rcache->loaded);
891 			iova_magazine_free(cpu_rcache->prev);
892 		}
893 		free_percpu(rcache->cpu_rcaches);
894 		cancel_delayed_work_sync(&rcache->work);
895 		while (rcache->depot)
896 			iova_magazine_free(iova_depot_pop(rcache));
897 	}
898 
899 	kfree(iovad->rcaches);
900 	iovad->rcaches = NULL;
901 }
902 
903 /*
904  * free all the IOVA ranges cached by a cpu (used when cpu is unplugged)
905  */
906 static void free_cpu_cached_iovas(unsigned int cpu, struct iova_domain *iovad)
907 {
908 	struct iova_cpu_rcache *cpu_rcache;
909 	struct iova_rcache *rcache;
910 	unsigned long flags;
911 	int i;
912 
913 	for (i = 0; i < IOVA_RANGE_CACHE_MAX_SIZE; ++i) {
914 		rcache = &iovad->rcaches[i];
915 		cpu_rcache = per_cpu_ptr(rcache->cpu_rcaches, cpu);
916 		spin_lock_irqsave(&cpu_rcache->lock, flags);
917 		iova_magazine_free_pfns(cpu_rcache->loaded, iovad);
918 		iova_magazine_free_pfns(cpu_rcache->prev, iovad);
919 		spin_unlock_irqrestore(&cpu_rcache->lock, flags);
920 	}
921 }
922 
923 /*
924  * free all the IOVA ranges of global cache
925  */
926 static void free_global_cached_iovas(struct iova_domain *iovad)
927 {
928 	struct iova_rcache *rcache;
929 	unsigned long flags;
930 
931 	for (int i = 0; i < IOVA_RANGE_CACHE_MAX_SIZE; ++i) {
932 		rcache = &iovad->rcaches[i];
933 		spin_lock_irqsave(&rcache->lock, flags);
934 		while (rcache->depot) {
935 			struct iova_magazine *mag = iova_depot_pop(rcache);
936 
937 			iova_magazine_free_pfns(mag, iovad);
938 			iova_magazine_free(mag);
939 		}
940 		spin_unlock_irqrestore(&rcache->lock, flags);
941 	}
942 }
943 
944 static int iova_cpuhp_dead(unsigned int cpu, struct hlist_node *node)
945 {
946 	struct iova_domain *iovad;
947 
948 	iovad = hlist_entry_safe(node, struct iova_domain, cpuhp_dead);
949 
950 	free_cpu_cached_iovas(cpu, iovad);
951 	return 0;
952 }
953 
954 int iova_cache_get(void)
955 {
956 	int err = -ENOMEM;
957 
958 	mutex_lock(&iova_cache_mutex);
959 	if (!iova_cache_users) {
960 		iova_cache = kmem_cache_create("iommu_iova", sizeof(struct iova), 0,
961 					       SLAB_HWCACHE_ALIGN, NULL);
962 		if (!iova_cache)
963 			goto out_err;
964 
965 		iova_magazine_cache = kmem_cache_create("iommu_iova_magazine",
966 							sizeof(struct iova_magazine),
967 							0, SLAB_HWCACHE_ALIGN, NULL);
968 		if (!iova_magazine_cache)
969 			goto out_err;
970 
971 		err = cpuhp_setup_state_multi(CPUHP_IOMMU_IOVA_DEAD, "iommu/iova:dead",
972 					      NULL, iova_cpuhp_dead);
973 		if (err) {
974 			pr_err("IOVA: Couldn't register cpuhp handler: %pe\n", ERR_PTR(err));
975 			goto out_err;
976 		}
977 	}
978 
979 	iova_cache_users++;
980 	mutex_unlock(&iova_cache_mutex);
981 
982 	return 0;
983 
984 out_err:
985 	kmem_cache_destroy(iova_cache);
986 	kmem_cache_destroy(iova_magazine_cache);
987 	mutex_unlock(&iova_cache_mutex);
988 	return err;
989 }
990 EXPORT_SYMBOL_GPL(iova_cache_get);
991 
992 void iova_cache_put(void)
993 {
994 	mutex_lock(&iova_cache_mutex);
995 	if (WARN_ON(!iova_cache_users)) {
996 		mutex_unlock(&iova_cache_mutex);
997 		return;
998 	}
999 	iova_cache_users--;
1000 	if (!iova_cache_users) {
1001 		cpuhp_remove_multi_state(CPUHP_IOMMU_IOVA_DEAD);
1002 		kmem_cache_destroy(iova_cache);
1003 		kmem_cache_destroy(iova_magazine_cache);
1004 	}
1005 	mutex_unlock(&iova_cache_mutex);
1006 }
1007 EXPORT_SYMBOL_GPL(iova_cache_put);
1008 
1009 MODULE_AUTHOR("Anil S Keshavamurthy <anil.s.keshavamurthy@intel.com>");
1010 MODULE_DESCRIPTION("IOMMU I/O Virtual Address management");
1011 MODULE_LICENSE("GPL");
1012