xref: /linux/lib/xarray.c (revision 1b78070aaef63512688aebfbc82365ef9d6660f1)
1 // SPDX-License-Identifier: GPL-2.0+
2 /*
3  * XArray implementation
4  * Copyright (c) 2017-2018 Microsoft Corporation
5  * Copyright (c) 2018-2020 Oracle
6  * Author: Matthew Wilcox <willy@infradead.org>
7  */
8 
9 #include <linux/bitmap.h>
10 #include <linux/export.h>
11 #include <linux/list.h>
12 #include <linux/slab.h>
13 #include <linux/xarray.h>
14 
15 #include "radix-tree.h"
16 
17 /*
18  * Coding conventions in this file:
19  *
20  * @xa is used to refer to the entire xarray.
21  * @xas is the 'xarray operation state'.  It may be either a pointer to
22  * an xa_state, or an xa_state stored on the stack.  This is an unfortunate
23  * ambiguity.
24  * @index is the index of the entry being operated on
25  * @mark is an xa_mark_t; a small number indicating one of the mark bits.
26  * @node refers to an xa_node; usually the primary one being operated on by
27  * this function.
28  * @offset is the index into the slots array inside an xa_node.
29  * @parent refers to the @xa_node closer to the head than @node.
30  * @entry refers to something stored in a slot in the xarray
31  */
32 
33 static inline unsigned int xa_lock_type(const struct xarray *xa)
34 {
35 	return (__force unsigned int)xa->xa_flags & 3;
36 }
37 
38 static inline void xas_lock_type(struct xa_state *xas, unsigned int lock_type)
39 {
40 	if (lock_type == XA_LOCK_IRQ)
41 		xas_lock_irq(xas);
42 	else if (lock_type == XA_LOCK_BH)
43 		xas_lock_bh(xas);
44 	else
45 		xas_lock(xas);
46 }
47 
48 static inline void xas_unlock_type(struct xa_state *xas, unsigned int lock_type)
49 {
50 	if (lock_type == XA_LOCK_IRQ)
51 		xas_unlock_irq(xas);
52 	else if (lock_type == XA_LOCK_BH)
53 		xas_unlock_bh(xas);
54 	else
55 		xas_unlock(xas);
56 }
57 
58 static inline bool xa_track_free(const struct xarray *xa)
59 {
60 	return xa->xa_flags & XA_FLAGS_TRACK_FREE;
61 }
62 
63 static inline bool xa_zero_busy(const struct xarray *xa)
64 {
65 	return xa->xa_flags & XA_FLAGS_ZERO_BUSY;
66 }
67 
68 static inline void xa_mark_set(struct xarray *xa, xa_mark_t mark)
69 {
70 	if (!(xa->xa_flags & XA_FLAGS_MARK(mark)))
71 		xa->xa_flags |= XA_FLAGS_MARK(mark);
72 }
73 
74 static inline void xa_mark_clear(struct xarray *xa, xa_mark_t mark)
75 {
76 	if (xa->xa_flags & XA_FLAGS_MARK(mark))
77 		xa->xa_flags &= ~(XA_FLAGS_MARK(mark));
78 }
79 
80 static inline unsigned long *node_marks(struct xa_node *node, xa_mark_t mark)
81 {
82 	return node->marks[(__force unsigned)mark];
83 }
84 
85 static inline bool node_get_mark(struct xa_node *node,
86 		unsigned int offset, xa_mark_t mark)
87 {
88 	return test_bit(offset, node_marks(node, mark));
89 }
90 
91 /* returns true if the bit was set */
92 static inline bool node_set_mark(struct xa_node *node, unsigned int offset,
93 				xa_mark_t mark)
94 {
95 	return __test_and_set_bit(offset, node_marks(node, mark));
96 }
97 
98 /* returns true if the bit was set */
99 static inline bool node_clear_mark(struct xa_node *node, unsigned int offset,
100 				xa_mark_t mark)
101 {
102 	return __test_and_clear_bit(offset, node_marks(node, mark));
103 }
104 
105 static inline bool node_any_mark(struct xa_node *node, xa_mark_t mark)
106 {
107 	return !bitmap_empty(node_marks(node, mark), XA_CHUNK_SIZE);
108 }
109 
110 static inline void node_mark_all(struct xa_node *node, xa_mark_t mark)
111 {
112 	bitmap_fill(node_marks(node, mark), XA_CHUNK_SIZE);
113 }
114 
115 #define mark_inc(mark) do { \
116 	mark = (__force xa_mark_t)((__force unsigned)(mark) + 1); \
117 } while (0)
118 
119 /*
120  * xas_squash_marks() - Merge all marks to the first entry
121  * @xas: Array operation state.
122  *
123  * Set a mark on the first entry if any entry has it set.  Clear marks on
124  * all sibling entries.
125  */
126 static void xas_squash_marks(const struct xa_state *xas)
127 {
128 	xa_mark_t mark = 0;
129 	unsigned int limit = xas->xa_offset + xas->xa_sibs + 1;
130 
131 	for (;;) {
132 		unsigned long *marks = node_marks(xas->xa_node, mark);
133 
134 		if (find_next_bit(marks, limit, xas->xa_offset + 1) != limit) {
135 			__set_bit(xas->xa_offset, marks);
136 			bitmap_clear(marks, xas->xa_offset + 1, xas->xa_sibs);
137 		}
138 		if (mark == XA_MARK_MAX)
139 			break;
140 		mark_inc(mark);
141 	}
142 }
143 
144 /* extracts the offset within this node from the index */
145 static unsigned int get_offset(unsigned long index, struct xa_node *node)
146 {
147 	return (index >> node->shift) & XA_CHUNK_MASK;
148 }
149 
150 static void xas_set_offset(struct xa_state *xas)
151 {
152 	xas->xa_offset = get_offset(xas->xa_index, xas->xa_node);
153 }
154 
155 /* move the index either forwards (find) or backwards (sibling slot) */
156 static void xas_move_index(struct xa_state *xas, unsigned long offset)
157 {
158 	unsigned int shift = xas->xa_node->shift;
159 	xas->xa_index &= ~XA_CHUNK_MASK << shift;
160 	xas->xa_index += offset << shift;
161 }
162 
163 static void xas_next_offset(struct xa_state *xas)
164 {
165 	xas->xa_offset++;
166 	xas_move_index(xas, xas->xa_offset);
167 }
168 
169 static void *set_bounds(struct xa_state *xas)
170 {
171 	xas->xa_node = XAS_BOUNDS;
172 	return NULL;
173 }
174 
175 /*
176  * Starts a walk.  If the @xas is already valid, we assume that it's on
177  * the right path and just return where we've got to.  If we're in an
178  * error state, return NULL.  If the index is outside the current scope
179  * of the xarray, return NULL without changing @xas->xa_node.  Otherwise
180  * set @xas->xa_node to NULL and return the current head of the array.
181  */
182 static void *xas_start(struct xa_state *xas)
183 {
184 	void *entry;
185 
186 	if (xas_valid(xas))
187 		return xas_reload(xas);
188 	if (xas_error(xas))
189 		return NULL;
190 
191 	entry = xa_head(xas->xa);
192 	if (!xa_is_node(entry)) {
193 		if (xas->xa_index)
194 			return set_bounds(xas);
195 	} else {
196 		if ((xas->xa_index >> xa_to_node(entry)->shift) > XA_CHUNK_MASK)
197 			return set_bounds(xas);
198 	}
199 
200 	xas->xa_node = NULL;
201 	return entry;
202 }
203 
204 static __always_inline void *xas_descend(struct xa_state *xas,
205 					struct xa_node *node)
206 {
207 	unsigned int offset = get_offset(xas->xa_index, node);
208 	void *entry = xa_entry(xas->xa, node, offset);
209 
210 	xas->xa_node = node;
211 	while (xa_is_sibling(entry)) {
212 		offset = xa_to_sibling(entry);
213 		entry = xa_entry(xas->xa, node, offset);
214 		if (node->shift && xa_is_node(entry))
215 			entry = XA_RETRY_ENTRY;
216 	}
217 
218 	xas->xa_offset = offset;
219 	return entry;
220 }
221 
222 /**
223  * xas_load() - Load an entry from the XArray (advanced).
224  * @xas: XArray operation state.
225  *
226  * Usually walks the @xas to the appropriate state to load the entry
227  * stored at xa_index.  However, it will do nothing and return %NULL if
228  * @xas is in an error state.  xas_load() will never expand the tree.
229  *
230  * If the xa_state is set up to operate on a multi-index entry, xas_load()
231  * may return %NULL or an internal entry, even if there are entries
232  * present within the range specified by @xas.
233  *
234  * Context: Any context.  The caller should hold the xa_lock or the RCU lock.
235  * Return: Usually an entry in the XArray, but see description for exceptions.
236  */
237 void *xas_load(struct xa_state *xas)
238 {
239 	void *entry = xas_start(xas);
240 
241 	while (xa_is_node(entry)) {
242 		struct xa_node *node = xa_to_node(entry);
243 
244 		if (xas->xa_shift > node->shift)
245 			break;
246 		entry = xas_descend(xas, node);
247 		if (node->shift == 0)
248 			break;
249 	}
250 	return entry;
251 }
252 EXPORT_SYMBOL_GPL(xas_load);
253 
254 #define XA_RCU_FREE	((struct xarray *)1)
255 
256 static void xa_node_free(struct xa_node *node)
257 {
258 	XA_NODE_BUG_ON(node, !list_empty(&node->private_list));
259 	node->array = XA_RCU_FREE;
260 	call_rcu(&node->rcu_head, radix_tree_node_rcu_free);
261 }
262 
263 /*
264  * xas_destroy() - Free any resources allocated during the XArray operation.
265  * @xas: XArray operation state.
266  *
267  * Most users will not need to call this function; it is called for you
268  * by xas_nomem().
269  */
270 void xas_destroy(struct xa_state *xas)
271 {
272 	struct xa_node *next, *node = xas->xa_alloc;
273 
274 	while (node) {
275 		XA_NODE_BUG_ON(node, !list_empty(&node->private_list));
276 		next = rcu_dereference_raw(node->parent);
277 		radix_tree_node_rcu_free(&node->rcu_head);
278 		xas->xa_alloc = node = next;
279 	}
280 }
281 EXPORT_SYMBOL_GPL(xas_destroy);
282 
283 /**
284  * xas_nomem() - Allocate memory if needed.
285  * @xas: XArray operation state.
286  * @gfp: Memory allocation flags.
287  *
288  * If we need to add new nodes to the XArray, we try to allocate memory
289  * with GFP_NOWAIT while holding the lock, which will usually succeed.
290  * If it fails, @xas is flagged as needing memory to continue.  The caller
291  * should drop the lock and call xas_nomem().  If xas_nomem() succeeds,
292  * the caller should retry the operation.
293  *
294  * Forward progress is guaranteed as one node is allocated here and
295  * stored in the xa_state where it will be found by xas_alloc().  More
296  * nodes will likely be found in the slab allocator, but we do not tie
297  * them up here.
298  *
299  * Return: true if memory was needed, and was successfully allocated.
300  */
301 bool xas_nomem(struct xa_state *xas, gfp_t gfp)
302 {
303 	if (xas->xa_node != XA_ERROR(-ENOMEM)) {
304 		xas_destroy(xas);
305 		return false;
306 	}
307 	if (xas->xa->xa_flags & XA_FLAGS_ACCOUNT)
308 		gfp |= __GFP_ACCOUNT;
309 	xas->xa_alloc = kmem_cache_alloc_lru(radix_tree_node_cachep, xas->xa_lru, gfp);
310 	if (!xas->xa_alloc)
311 		return false;
312 	xas->xa_alloc->parent = NULL;
313 	XA_NODE_BUG_ON(xas->xa_alloc, !list_empty(&xas->xa_alloc->private_list));
314 	xas->xa_node = XAS_RESTART;
315 	return true;
316 }
317 EXPORT_SYMBOL_GPL(xas_nomem);
318 
319 /*
320  * __xas_nomem() - Drop locks and allocate memory if needed.
321  * @xas: XArray operation state.
322  * @gfp: Memory allocation flags.
323  *
324  * Internal variant of xas_nomem().
325  *
326  * Return: true if memory was needed, and was successfully allocated.
327  */
328 static bool __xas_nomem(struct xa_state *xas, gfp_t gfp)
329 	__must_hold(xas->xa->xa_lock)
330 {
331 	unsigned int lock_type = xa_lock_type(xas->xa);
332 
333 	if (xas->xa_node != XA_ERROR(-ENOMEM)) {
334 		xas_destroy(xas);
335 		return false;
336 	}
337 	if (xas->xa->xa_flags & XA_FLAGS_ACCOUNT)
338 		gfp |= __GFP_ACCOUNT;
339 	if (gfpflags_allow_blocking(gfp)) {
340 		xas_unlock_type(xas, lock_type);
341 		xas->xa_alloc = kmem_cache_alloc_lru(radix_tree_node_cachep, xas->xa_lru, gfp);
342 		xas_lock_type(xas, lock_type);
343 	} else {
344 		xas->xa_alloc = kmem_cache_alloc_lru(radix_tree_node_cachep, xas->xa_lru, gfp);
345 	}
346 	if (!xas->xa_alloc)
347 		return false;
348 	xas->xa_alloc->parent = NULL;
349 	XA_NODE_BUG_ON(xas->xa_alloc, !list_empty(&xas->xa_alloc->private_list));
350 	xas->xa_node = XAS_RESTART;
351 	return true;
352 }
353 
354 static void xas_update(struct xa_state *xas, struct xa_node *node)
355 {
356 	if (xas->xa_update)
357 		xas->xa_update(node);
358 	else
359 		XA_NODE_BUG_ON(node, !list_empty(&node->private_list));
360 }
361 
362 static void *xas_alloc(struct xa_state *xas, unsigned int shift)
363 {
364 	struct xa_node *parent = xas->xa_node;
365 	struct xa_node *node = xas->xa_alloc;
366 
367 	if (xas_invalid(xas))
368 		return NULL;
369 
370 	if (node) {
371 		xas->xa_alloc = NULL;
372 	} else {
373 		gfp_t gfp = GFP_NOWAIT;
374 
375 		if (xas->xa->xa_flags & XA_FLAGS_ACCOUNT)
376 			gfp |= __GFP_ACCOUNT;
377 
378 		node = kmem_cache_alloc_lru(radix_tree_node_cachep, xas->xa_lru, gfp);
379 		if (!node) {
380 			xas_set_err(xas, -ENOMEM);
381 			return NULL;
382 		}
383 	}
384 
385 	if (parent) {
386 		node->offset = xas->xa_offset;
387 		parent->count++;
388 		XA_NODE_BUG_ON(node, parent->count > XA_CHUNK_SIZE);
389 		xas_update(xas, parent);
390 	}
391 	XA_NODE_BUG_ON(node, shift > BITS_PER_LONG);
392 	XA_NODE_BUG_ON(node, !list_empty(&node->private_list));
393 	node->shift = shift;
394 	node->count = 0;
395 	node->nr_values = 0;
396 	RCU_INIT_POINTER(node->parent, xas->xa_node);
397 	node->array = xas->xa;
398 
399 	return node;
400 }
401 
402 #ifdef CONFIG_XARRAY_MULTI
403 /* Returns the number of indices covered by a given xa_state */
404 static unsigned long xas_size(const struct xa_state *xas)
405 {
406 	return (xas->xa_sibs + 1UL) << xas->xa_shift;
407 }
408 #endif
409 
410 /*
411  * Use this to calculate the maximum index that will need to be created
412  * in order to add the entry described by @xas.  Because we cannot store a
413  * multi-index entry at index 0, the calculation is a little more complex
414  * than you might expect.
415  */
416 static unsigned long xas_max(struct xa_state *xas)
417 {
418 	unsigned long max = xas->xa_index;
419 
420 #ifdef CONFIG_XARRAY_MULTI
421 	if (xas->xa_shift || xas->xa_sibs) {
422 		unsigned long mask = xas_size(xas) - 1;
423 		max |= mask;
424 		if (mask == max)
425 			max++;
426 	}
427 #endif
428 
429 	return max;
430 }
431 
432 /* The maximum index that can be contained in the array without expanding it */
433 static unsigned long max_index(void *entry)
434 {
435 	if (!xa_is_node(entry))
436 		return 0;
437 	return (XA_CHUNK_SIZE << xa_to_node(entry)->shift) - 1;
438 }
439 
440 static inline void *xa_zero_to_null(void *entry)
441 {
442 	return xa_is_zero(entry) ? NULL : entry;
443 }
444 
445 static void xas_shrink(struct xa_state *xas)
446 {
447 	struct xarray *xa = xas->xa;
448 	struct xa_node *node = xas->xa_node;
449 
450 	for (;;) {
451 		void *entry;
452 
453 		XA_NODE_BUG_ON(node, node->count > XA_CHUNK_SIZE);
454 		if (node->count != 1)
455 			break;
456 		entry = xa_entry_locked(xa, node, 0);
457 		if (!entry)
458 			break;
459 		if (!xa_is_node(entry) && node->shift)
460 			break;
461 		if (xa_zero_busy(xa))
462 			entry = xa_zero_to_null(entry);
463 		xas->xa_node = XAS_BOUNDS;
464 
465 		RCU_INIT_POINTER(xa->xa_head, entry);
466 		if (xa_track_free(xa) && !node_get_mark(node, 0, XA_FREE_MARK))
467 			xa_mark_clear(xa, XA_FREE_MARK);
468 
469 		node->count = 0;
470 		node->nr_values = 0;
471 		if (!xa_is_node(entry))
472 			RCU_INIT_POINTER(node->slots[0], XA_RETRY_ENTRY);
473 		xas_update(xas, node);
474 		xa_node_free(node);
475 		if (!xa_is_node(entry))
476 			break;
477 		node = xa_to_node(entry);
478 		node->parent = NULL;
479 	}
480 }
481 
482 /*
483  * xas_delete_node() - Attempt to delete an xa_node
484  * @xas: Array operation state.
485  *
486  * Attempts to delete the @xas->xa_node.  This will fail if xa->node has
487  * a non-zero reference count.
488  */
489 static void xas_delete_node(struct xa_state *xas)
490 {
491 	struct xa_node *node = xas->xa_node;
492 
493 	for (;;) {
494 		struct xa_node *parent;
495 
496 		XA_NODE_BUG_ON(node, node->count > XA_CHUNK_SIZE);
497 		if (node->count)
498 			break;
499 
500 		parent = xa_parent_locked(xas->xa, node);
501 		xas->xa_node = parent;
502 		xas->xa_offset = node->offset;
503 		xa_node_free(node);
504 
505 		if (!parent) {
506 			xas->xa->xa_head = NULL;
507 			xas->xa_node = XAS_BOUNDS;
508 			return;
509 		}
510 
511 		parent->slots[xas->xa_offset] = NULL;
512 		parent->count--;
513 		XA_NODE_BUG_ON(parent, parent->count > XA_CHUNK_SIZE);
514 		node = parent;
515 		xas_update(xas, node);
516 	}
517 
518 	if (!node->parent)
519 		xas_shrink(xas);
520 }
521 
522 /**
523  * xas_free_nodes() - Free this node and all nodes that it references
524  * @xas: Array operation state.
525  * @top: Node to free
526  *
527  * This node has been removed from the tree.  We must now free it and all
528  * of its subnodes.  There may be RCU walkers with references into the tree,
529  * so we must replace all entries with retry markers.
530  */
531 static void xas_free_nodes(struct xa_state *xas, struct xa_node *top)
532 {
533 	unsigned int offset = 0;
534 	struct xa_node *node = top;
535 
536 	for (;;) {
537 		void *entry = xa_entry_locked(xas->xa, node, offset);
538 
539 		if (node->shift && xa_is_node(entry)) {
540 			node = xa_to_node(entry);
541 			offset = 0;
542 			continue;
543 		}
544 		if (entry)
545 			RCU_INIT_POINTER(node->slots[offset], XA_RETRY_ENTRY);
546 		offset++;
547 		while (offset == XA_CHUNK_SIZE) {
548 			struct xa_node *parent;
549 
550 			parent = xa_parent_locked(xas->xa, node);
551 			offset = node->offset + 1;
552 			node->count = 0;
553 			node->nr_values = 0;
554 			xas_update(xas, node);
555 			xa_node_free(node);
556 			if (node == top)
557 				return;
558 			node = parent;
559 		}
560 	}
561 }
562 
563 /*
564  * xas_expand adds nodes to the head of the tree until it has reached
565  * sufficient height to be able to contain @xas->xa_index
566  */
567 static int xas_expand(struct xa_state *xas, void *head)
568 {
569 	struct xarray *xa = xas->xa;
570 	struct xa_node *node = NULL;
571 	unsigned int shift = 0;
572 	unsigned long max = xas_max(xas);
573 
574 	if (!head) {
575 		if (max == 0)
576 			return 0;
577 		while ((max >> shift) >= XA_CHUNK_SIZE)
578 			shift += XA_CHUNK_SHIFT;
579 		return shift + XA_CHUNK_SHIFT;
580 	} else if (xa_is_node(head)) {
581 		node = xa_to_node(head);
582 		shift = node->shift + XA_CHUNK_SHIFT;
583 	}
584 	xas->xa_node = NULL;
585 
586 	while (max > max_index(head)) {
587 		xa_mark_t mark = 0;
588 
589 		XA_NODE_BUG_ON(node, shift > BITS_PER_LONG);
590 		node = xas_alloc(xas, shift);
591 		if (!node)
592 			return -ENOMEM;
593 
594 		node->count = 1;
595 		if (xa_is_value(head))
596 			node->nr_values = 1;
597 		RCU_INIT_POINTER(node->slots[0], head);
598 
599 		/* Propagate the aggregated mark info to the new child */
600 		for (;;) {
601 			if (xa_track_free(xa) && mark == XA_FREE_MARK) {
602 				node_mark_all(node, XA_FREE_MARK);
603 				if (!xa_marked(xa, XA_FREE_MARK)) {
604 					node_clear_mark(node, 0, XA_FREE_MARK);
605 					xa_mark_set(xa, XA_FREE_MARK);
606 				}
607 			} else if (xa_marked(xa, mark)) {
608 				node_set_mark(node, 0, mark);
609 			}
610 			if (mark == XA_MARK_MAX)
611 				break;
612 			mark_inc(mark);
613 		}
614 
615 		/*
616 		 * Now that the new node is fully initialised, we can add
617 		 * it to the tree
618 		 */
619 		if (xa_is_node(head)) {
620 			xa_to_node(head)->offset = 0;
621 			rcu_assign_pointer(xa_to_node(head)->parent, node);
622 		}
623 		head = xa_mk_node(node);
624 		rcu_assign_pointer(xa->xa_head, head);
625 		xas_update(xas, node);
626 
627 		shift += XA_CHUNK_SHIFT;
628 	}
629 
630 	xas->xa_node = node;
631 	return shift;
632 }
633 
634 /*
635  * xas_create() - Create a slot to store an entry in.
636  * @xas: XArray operation state.
637  * @allow_root: %true if we can store the entry in the root directly
638  *
639  * Most users will not need to call this function directly, as it is called
640  * by xas_store().  It is useful for doing conditional store operations
641  * (see the xa_cmpxchg() implementation for an example).
642  *
643  * Return: If the slot already existed, returns the contents of this slot.
644  * If the slot was newly created, returns %NULL.  If it failed to create the
645  * slot, returns %NULL and indicates the error in @xas.
646  */
647 static void *xas_create(struct xa_state *xas, bool allow_root)
648 {
649 	struct xarray *xa = xas->xa;
650 	void *entry;
651 	void __rcu **slot;
652 	struct xa_node *node = xas->xa_node;
653 	int shift;
654 	unsigned int order = xas->xa_shift;
655 
656 	if (xas_top(node)) {
657 		entry = xa_head_locked(xa);
658 		xas->xa_node = NULL;
659 		if (!entry && xa_zero_busy(xa))
660 			entry = XA_ZERO_ENTRY;
661 		shift = xas_expand(xas, entry);
662 		if (shift < 0)
663 			return NULL;
664 		if (!shift && !allow_root)
665 			shift = XA_CHUNK_SHIFT;
666 		entry = xa_head_locked(xa);
667 		slot = &xa->xa_head;
668 	} else if (xas_error(xas)) {
669 		return NULL;
670 	} else if (node) {
671 		unsigned int offset = xas->xa_offset;
672 
673 		shift = node->shift;
674 		entry = xa_entry_locked(xa, node, offset);
675 		slot = &node->slots[offset];
676 	} else {
677 		shift = 0;
678 		entry = xa_head_locked(xa);
679 		slot = &xa->xa_head;
680 	}
681 
682 	while (shift > order) {
683 		shift -= XA_CHUNK_SHIFT;
684 		if (!entry) {
685 			node = xas_alloc(xas, shift);
686 			if (!node)
687 				break;
688 			if (xa_track_free(xa))
689 				node_mark_all(node, XA_FREE_MARK);
690 			rcu_assign_pointer(*slot, xa_mk_node(node));
691 		} else if (xa_is_node(entry)) {
692 			node = xa_to_node(entry);
693 		} else {
694 			break;
695 		}
696 		entry = xas_descend(xas, node);
697 		slot = &node->slots[xas->xa_offset];
698 	}
699 
700 	return entry;
701 }
702 
703 /**
704  * xas_create_range() - Ensure that stores to this range will succeed
705  * @xas: XArray operation state.
706  *
707  * Creates all of the slots in the range covered by @xas.  Sets @xas to
708  * create single-index entries and positions it at the beginning of the
709  * range.  This is for the benefit of users which have not yet been
710  * converted to use multi-index entries.
711  */
712 void xas_create_range(struct xa_state *xas)
713 {
714 	unsigned long index = xas->xa_index;
715 	unsigned char shift = xas->xa_shift;
716 	unsigned char sibs = xas->xa_sibs;
717 
718 	xas->xa_index |= ((sibs + 1UL) << shift) - 1;
719 	if (xas_is_node(xas) && xas->xa_node->shift == xas->xa_shift)
720 		xas->xa_offset |= sibs;
721 	xas->xa_shift = 0;
722 	xas->xa_sibs = 0;
723 
724 	for (;;) {
725 		xas_create(xas, true);
726 		if (xas_error(xas))
727 			goto restore;
728 		if (xas->xa_index <= (index | XA_CHUNK_MASK))
729 			goto success;
730 		xas->xa_index -= XA_CHUNK_SIZE;
731 
732 		for (;;) {
733 			struct xa_node *node = xas->xa_node;
734 			if (node->shift >= shift)
735 				break;
736 			xas->xa_node = xa_parent_locked(xas->xa, node);
737 			xas->xa_offset = node->offset - 1;
738 			if (node->offset != 0)
739 				break;
740 		}
741 	}
742 
743 restore:
744 	xas->xa_shift = shift;
745 	xas->xa_sibs = sibs;
746 	xas->xa_index = index;
747 	return;
748 success:
749 	xas->xa_index = index;
750 	if (xas->xa_node)
751 		xas_set_offset(xas);
752 }
753 EXPORT_SYMBOL_GPL(xas_create_range);
754 
755 static void update_node(struct xa_state *xas, struct xa_node *node,
756 		int count, int values)
757 {
758 	if (!node || (!count && !values))
759 		return;
760 
761 	node->count += count;
762 	node->nr_values += values;
763 	XA_NODE_BUG_ON(node, node->count > XA_CHUNK_SIZE);
764 	XA_NODE_BUG_ON(node, node->nr_values > XA_CHUNK_SIZE);
765 	xas_update(xas, node);
766 	if (count < 0)
767 		xas_delete_node(xas);
768 }
769 
770 /**
771  * xas_store() - Store this entry in the XArray.
772  * @xas: XArray operation state.
773  * @entry: New entry.
774  *
775  * If @xas is operating on a multi-index entry, the entry returned by this
776  * function is essentially meaningless (it may be an internal entry or it
777  * may be %NULL, even if there are non-NULL entries at some of the indices
778  * covered by the range).  This is not a problem for any current users,
779  * and can be changed if needed.
780  *
781  * Return: The old entry at this index.
782  */
783 void *xas_store(struct xa_state *xas, void *entry)
784 {
785 	struct xa_node *node;
786 	void __rcu **slot = &xas->xa->xa_head;
787 	unsigned int offset, max;
788 	int count = 0;
789 	int values = 0;
790 	void *first, *next;
791 	bool value = xa_is_value(entry);
792 
793 	if (entry) {
794 		bool allow_root = !xa_is_node(entry) && !xa_is_zero(entry);
795 		first = xas_create(xas, allow_root);
796 	} else {
797 		first = xas_load(xas);
798 	}
799 
800 	if (xas_invalid(xas))
801 		return first;
802 	node = xas->xa_node;
803 	if (node && (xas->xa_shift < node->shift))
804 		xas->xa_sibs = 0;
805 	if ((first == entry) && !xas->xa_sibs)
806 		return first;
807 
808 	next = first;
809 	offset = xas->xa_offset;
810 	max = xas->xa_offset + xas->xa_sibs;
811 	if (node) {
812 		slot = &node->slots[offset];
813 		if (xas->xa_sibs)
814 			xas_squash_marks(xas);
815 	}
816 	if (!entry)
817 		xas_init_marks(xas);
818 
819 	for (;;) {
820 		/*
821 		 * Must clear the marks before setting the entry to NULL,
822 		 * otherwise xas_for_each_marked may find a NULL entry and
823 		 * stop early.  rcu_assign_pointer contains a release barrier
824 		 * so the mark clearing will appear to happen before the
825 		 * entry is set to NULL.
826 		 */
827 		rcu_assign_pointer(*slot, entry);
828 		if (xa_is_node(next) && (!node || node->shift))
829 			xas_free_nodes(xas, xa_to_node(next));
830 		if (!node)
831 			break;
832 		count += !next - !entry;
833 		values += !xa_is_value(first) - !value;
834 		if (entry) {
835 			if (offset == max)
836 				break;
837 			if (!xa_is_sibling(entry))
838 				entry = xa_mk_sibling(xas->xa_offset);
839 		} else {
840 			if (offset == XA_CHUNK_MASK)
841 				break;
842 		}
843 		next = xa_entry_locked(xas->xa, node, ++offset);
844 		if (!xa_is_sibling(next)) {
845 			if (!entry && (offset > max))
846 				break;
847 			first = next;
848 		}
849 		slot++;
850 	}
851 
852 	update_node(xas, node, count, values);
853 	return first;
854 }
855 EXPORT_SYMBOL_GPL(xas_store);
856 
857 /**
858  * xas_get_mark() - Returns the state of this mark.
859  * @xas: XArray operation state.
860  * @mark: Mark number.
861  *
862  * Return: true if the mark is set, false if the mark is clear or @xas
863  * is in an error state.
864  */
865 bool xas_get_mark(const struct xa_state *xas, xa_mark_t mark)
866 {
867 	if (xas_invalid(xas))
868 		return false;
869 	if (!xas->xa_node)
870 		return xa_marked(xas->xa, mark);
871 	return node_get_mark(xas->xa_node, xas->xa_offset, mark);
872 }
873 EXPORT_SYMBOL_GPL(xas_get_mark);
874 
875 /**
876  * xas_set_mark() - Sets the mark on this entry and its parents.
877  * @xas: XArray operation state.
878  * @mark: Mark number.
879  *
880  * Sets the specified mark on this entry, and walks up the tree setting it
881  * on all the ancestor entries.  Does nothing if @xas has not been walked to
882  * an entry, or is in an error state.
883  */
884 void xas_set_mark(const struct xa_state *xas, xa_mark_t mark)
885 {
886 	struct xa_node *node = xas->xa_node;
887 	unsigned int offset = xas->xa_offset;
888 
889 	if (xas_invalid(xas))
890 		return;
891 
892 	while (node) {
893 		if (node_set_mark(node, offset, mark))
894 			return;
895 		offset = node->offset;
896 		node = xa_parent_locked(xas->xa, node);
897 	}
898 
899 	if (!xa_marked(xas->xa, mark))
900 		xa_mark_set(xas->xa, mark);
901 }
902 EXPORT_SYMBOL_GPL(xas_set_mark);
903 
904 /**
905  * xas_clear_mark() - Clears the mark on this entry and its parents.
906  * @xas: XArray operation state.
907  * @mark: Mark number.
908  *
909  * Clears the specified mark on this entry, and walks back to the head
910  * attempting to clear it on all the ancestor entries.  Does nothing if
911  * @xas has not been walked to an entry, or is in an error state.
912  */
913 void xas_clear_mark(const struct xa_state *xas, xa_mark_t mark)
914 {
915 	struct xa_node *node = xas->xa_node;
916 	unsigned int offset = xas->xa_offset;
917 
918 	if (xas_invalid(xas))
919 		return;
920 
921 	while (node) {
922 		if (!node_clear_mark(node, offset, mark))
923 			return;
924 		if (node_any_mark(node, mark))
925 			return;
926 
927 		offset = node->offset;
928 		node = xa_parent_locked(xas->xa, node);
929 	}
930 
931 	if (xa_marked(xas->xa, mark))
932 		xa_mark_clear(xas->xa, mark);
933 }
934 EXPORT_SYMBOL_GPL(xas_clear_mark);
935 
936 /**
937  * xas_init_marks() - Initialise all marks for the entry
938  * @xas: Array operations state.
939  *
940  * Initialise all marks for the entry specified by @xas.  If we're tracking
941  * free entries with a mark, we need to set it on all entries.  All other
942  * marks are cleared.
943  *
944  * This implementation is not as efficient as it could be; we may walk
945  * up the tree multiple times.
946  */
947 void xas_init_marks(const struct xa_state *xas)
948 {
949 	xa_mark_t mark = 0;
950 
951 	for (;;) {
952 		if (xa_track_free(xas->xa) && mark == XA_FREE_MARK)
953 			xas_set_mark(xas, mark);
954 		else
955 			xas_clear_mark(xas, mark);
956 		if (mark == XA_MARK_MAX)
957 			break;
958 		mark_inc(mark);
959 	}
960 }
961 EXPORT_SYMBOL_GPL(xas_init_marks);
962 
963 #ifdef CONFIG_XARRAY_MULTI
964 static unsigned int node_get_marks(struct xa_node *node, unsigned int offset)
965 {
966 	unsigned int marks = 0;
967 	xa_mark_t mark = XA_MARK_0;
968 
969 	for (;;) {
970 		if (node_get_mark(node, offset, mark))
971 			marks |= 1 << (__force unsigned int)mark;
972 		if (mark == XA_MARK_MAX)
973 			break;
974 		mark_inc(mark);
975 	}
976 
977 	return marks;
978 }
979 
980 static inline void node_mark_slots(struct xa_node *node, unsigned int sibs,
981 		xa_mark_t mark)
982 {
983 	int i;
984 
985 	if (sibs == 0)
986 		node_mark_all(node, mark);
987 	else {
988 		for (i = 0; i < XA_CHUNK_SIZE; i += sibs + 1)
989 			node_set_mark(node, i, mark);
990 	}
991 }
992 
993 static void node_set_marks(struct xa_node *node, unsigned int offset,
994 			struct xa_node *child, unsigned int sibs,
995 			unsigned int marks)
996 {
997 	xa_mark_t mark = XA_MARK_0;
998 
999 	for (;;) {
1000 		if (marks & (1 << (__force unsigned int)mark)) {
1001 			node_set_mark(node, offset, mark);
1002 			if (child)
1003 				node_mark_slots(child, sibs, mark);
1004 		}
1005 		if (mark == XA_MARK_MAX)
1006 			break;
1007 		mark_inc(mark);
1008 	}
1009 }
1010 
1011 static void __xas_init_node_for_split(struct xa_state *xas,
1012 		struct xa_node *node, void *entry)
1013 {
1014 	unsigned int i;
1015 	void *sibling = NULL;
1016 	unsigned int mask = xas->xa_sibs;
1017 
1018 	if (!node)
1019 		return;
1020 	node->array = xas->xa;
1021 	for (i = 0; i < XA_CHUNK_SIZE; i++) {
1022 		if ((i & mask) == 0) {
1023 			RCU_INIT_POINTER(node->slots[i], entry);
1024 			sibling = xa_mk_sibling(i);
1025 		} else {
1026 			RCU_INIT_POINTER(node->slots[i], sibling);
1027 		}
1028 	}
1029 }
1030 
1031 /**
1032  * xas_split_alloc() - Allocate memory for splitting an entry.
1033  * @xas: XArray operation state.
1034  * @entry: New entry which will be stored in the array.
1035  * @order: Current entry order.
1036  * @gfp: Memory allocation flags.
1037  *
1038  * This function should be called before calling xas_split().
1039  * If necessary, it will allocate new nodes (and fill them with @entry)
1040  * to prepare for the upcoming split of an entry of @order size into
1041  * entries of the order stored in the @xas.
1042  *
1043  * Context: May sleep if @gfp flags permit.
1044  */
1045 void xas_split_alloc(struct xa_state *xas, void *entry, unsigned int order,
1046 		gfp_t gfp)
1047 {
1048 	unsigned int sibs = (1 << (order % XA_CHUNK_SHIFT)) - 1;
1049 
1050 	/* XXX: no support for splitting really large entries yet */
1051 	if (WARN_ON(xas->xa_shift + 2 * XA_CHUNK_SHIFT <= order))
1052 		goto nomem;
1053 	if (xas->xa_shift + XA_CHUNK_SHIFT > order)
1054 		return;
1055 
1056 	if (xas->xa->xa_flags & XA_FLAGS_ACCOUNT)
1057 		gfp |= __GFP_ACCOUNT;
1058 
1059 	do {
1060 		struct xa_node *node;
1061 
1062 		node = kmem_cache_alloc_lru(radix_tree_node_cachep, xas->xa_lru, gfp);
1063 		if (!node)
1064 			goto nomem;
1065 
1066 		__xas_init_node_for_split(xas, node, entry);
1067 		RCU_INIT_POINTER(node->parent, xas->xa_alloc);
1068 		xas->xa_alloc = node;
1069 	} while (sibs-- > 0);
1070 
1071 	return;
1072 nomem:
1073 	xas_destroy(xas);
1074 	xas_set_err(xas, -ENOMEM);
1075 }
1076 EXPORT_SYMBOL_GPL(xas_split_alloc);
1077 
1078 /**
1079  * xas_split() - Split a multi-index entry into smaller entries.
1080  * @xas: XArray operation state.
1081  * @entry: New entry to store in the array.
1082  * @order: Current entry order.
1083  *
1084  * The size of the new entries is set in @xas.  The value in @entry is
1085  * copied to all the replacement entries.
1086  *
1087  * Context: Any context.  The caller should hold the xa_lock.
1088  */
1089 void xas_split(struct xa_state *xas, void *entry, unsigned int order)
1090 {
1091 	unsigned int sibs = (1 << (order % XA_CHUNK_SHIFT)) - 1;
1092 	unsigned int offset, marks;
1093 	struct xa_node *node;
1094 	void *curr = xas_load(xas);
1095 	int values = 0;
1096 
1097 	node = xas->xa_node;
1098 	if (xas_top(node))
1099 		return;
1100 
1101 	marks = node_get_marks(node, xas->xa_offset);
1102 
1103 	offset = xas->xa_offset + sibs;
1104 	do {
1105 		if (xas->xa_shift < node->shift) {
1106 			struct xa_node *child = xas->xa_alloc;
1107 
1108 			xas->xa_alloc = rcu_dereference_raw(child->parent);
1109 			child->shift = node->shift - XA_CHUNK_SHIFT;
1110 			child->offset = offset;
1111 			child->count = XA_CHUNK_SIZE;
1112 			child->nr_values = xa_is_value(entry) ?
1113 					XA_CHUNK_SIZE : 0;
1114 			RCU_INIT_POINTER(child->parent, node);
1115 			node_set_marks(node, offset, child, xas->xa_sibs,
1116 					marks);
1117 			rcu_assign_pointer(node->slots[offset],
1118 					xa_mk_node(child));
1119 			if (xa_is_value(curr))
1120 				values--;
1121 			xas_update(xas, child);
1122 		} else {
1123 			unsigned int canon = offset - xas->xa_sibs;
1124 
1125 			node_set_marks(node, canon, NULL, 0, marks);
1126 			rcu_assign_pointer(node->slots[canon], entry);
1127 			while (offset > canon)
1128 				rcu_assign_pointer(node->slots[offset--],
1129 						xa_mk_sibling(canon));
1130 			values += (xa_is_value(entry) - xa_is_value(curr)) *
1131 					(xas->xa_sibs + 1);
1132 		}
1133 	} while (offset-- > xas->xa_offset);
1134 
1135 	node->nr_values += values;
1136 	xas_update(xas, node);
1137 }
1138 EXPORT_SYMBOL_GPL(xas_split);
1139 
1140 /**
1141  * xas_try_split_min_order() - Minimal split order xas_try_split() can accept
1142  * @order: Current entry order.
1143  *
1144  * xas_try_split() can split a multi-index entry to smaller than @order - 1 if
1145  * no new xa_node is needed. This function provides the minimal order
1146  * xas_try_split() supports.
1147  *
1148  * Return: the minimal order xas_try_split() supports
1149  *
1150  * Context: Any context.
1151  *
1152  */
1153 unsigned int xas_try_split_min_order(unsigned int order)
1154 {
1155 	if (order % XA_CHUNK_SHIFT == 0)
1156 		return order == 0 ? 0 : order - 1;
1157 
1158 	return order - (order % XA_CHUNK_SHIFT);
1159 }
1160 EXPORT_SYMBOL_GPL(xas_try_split_min_order);
1161 
1162 /**
1163  * xas_try_split() - Try to split a multi-index entry.
1164  * @xas: XArray operation state.
1165  * @entry: New entry to store in the array.
1166  * @order: Current entry order.
1167  *
1168  * The size of the new entries is set in @xas.  The value in @entry is
1169  * copied to all the replacement entries. If and only if one new xa_node is
1170  * needed, the function will use GFP_NOWAIT to get one if xas->xa_alloc is
1171  * NULL. If more new xa_node are needed, the function gives EINVAL error.
1172  *
1173  * NOTE: use xas_try_split_min_order() to get next split order instead of
1174  * @order - 1 if you want to minmize xas_try_split() calls.
1175  *
1176  * Context: Any context.  The caller should hold the xa_lock.
1177  */
1178 void xas_try_split(struct xa_state *xas, void *entry, unsigned int order)
1179 {
1180 	unsigned int sibs = (1 << (order % XA_CHUNK_SHIFT)) - 1;
1181 	unsigned int offset, marks;
1182 	struct xa_node *node;
1183 	void *curr = xas_load(xas);
1184 	int values = 0;
1185 	gfp_t gfp = GFP_NOWAIT;
1186 
1187 	node = xas->xa_node;
1188 	if (xas_top(node))
1189 		return;
1190 
1191 	if (xas->xa->xa_flags & XA_FLAGS_ACCOUNT)
1192 		gfp |= __GFP_ACCOUNT;
1193 
1194 	marks = node_get_marks(node, xas->xa_offset);
1195 
1196 	offset = xas->xa_offset + sibs;
1197 
1198 	if (xas->xa_shift < node->shift) {
1199 		struct xa_node *child = xas->xa_alloc;
1200 		unsigned int expected_sibs =
1201 			(1 << ((order - 1) % XA_CHUNK_SHIFT)) - 1;
1202 
1203 		/*
1204 		 * No support for splitting sibling entries
1205 		 * (horizontally) or cascade split (vertically), which
1206 		 * requires two or more new xa_nodes.
1207 		 * Since if one xa_node allocation fails,
1208 		 * it is hard to free the prior allocations.
1209 		 */
1210 		if (sibs || xas->xa_sibs != expected_sibs) {
1211 			xas_destroy(xas);
1212 			xas_set_err(xas, -EINVAL);
1213 			return;
1214 		}
1215 
1216 		if (!child) {
1217 			child = kmem_cache_alloc_lru(radix_tree_node_cachep,
1218 						     xas->xa_lru, gfp);
1219 			if (!child) {
1220 				xas_destroy(xas);
1221 				xas_set_err(xas, -ENOMEM);
1222 				return;
1223 			}
1224 			RCU_INIT_POINTER(child->parent, xas->xa_alloc);
1225 		}
1226 		__xas_init_node_for_split(xas, child, entry);
1227 
1228 		xas->xa_alloc = rcu_dereference_raw(child->parent);
1229 		child->shift = node->shift - XA_CHUNK_SHIFT;
1230 		child->offset = offset;
1231 		child->count = XA_CHUNK_SIZE;
1232 		child->nr_values = xa_is_value(entry) ?
1233 				XA_CHUNK_SIZE : 0;
1234 		RCU_INIT_POINTER(child->parent, node);
1235 		node_set_marks(node, offset, child, xas->xa_sibs,
1236 				marks);
1237 		rcu_assign_pointer(node->slots[offset],
1238 				xa_mk_node(child));
1239 		if (xa_is_value(curr))
1240 			values--;
1241 		xas_update(xas, child);
1242 
1243 	} else {
1244 		do {
1245 			unsigned int canon = offset - xas->xa_sibs;
1246 
1247 			node_set_marks(node, canon, NULL, 0, marks);
1248 			rcu_assign_pointer(node->slots[canon], entry);
1249 			while (offset > canon)
1250 				rcu_assign_pointer(node->slots[offset--],
1251 						xa_mk_sibling(canon));
1252 			values += (xa_is_value(entry) - xa_is_value(curr)) *
1253 					(xas->xa_sibs + 1);
1254 		} while (offset-- > xas->xa_offset);
1255 	}
1256 
1257 	node->nr_values += values;
1258 	xas_update(xas, node);
1259 }
1260 EXPORT_SYMBOL_GPL(xas_try_split);
1261 #endif
1262 
1263 /**
1264  * xas_pause() - Pause a walk to drop a lock.
1265  * @xas: XArray operation state.
1266  *
1267  * Some users need to pause a walk and drop the lock they're holding in
1268  * order to yield to a higher priority thread or carry out an operation
1269  * on an entry.  Those users should call this function before they drop
1270  * the lock.  It resets the @xas to be suitable for the next iteration
1271  * of the loop after the user has reacquired the lock.  If most entries
1272  * found during a walk require you to call xas_pause(), the xa_for_each()
1273  * iterator may be more appropriate.
1274  *
1275  * Note that xas_pause() only works for forward iteration.  If a user needs
1276  * to pause a reverse iteration, we will need a xas_pause_rev().
1277  */
1278 void xas_pause(struct xa_state *xas)
1279 {
1280 	struct xa_node *node = xas->xa_node;
1281 
1282 	if (xas_invalid(xas))
1283 		return;
1284 
1285 	xas->xa_node = XAS_RESTART;
1286 	if (node) {
1287 		unsigned long offset = xas->xa_offset;
1288 		while (++offset < XA_CHUNK_SIZE) {
1289 			if (!xa_is_sibling(xa_entry(xas->xa, node, offset)))
1290 				break;
1291 		}
1292 		xas->xa_index &= ~0UL << node->shift;
1293 		xas->xa_index += (offset - xas->xa_offset) << node->shift;
1294 		if (xas->xa_index == 0)
1295 			xas->xa_node = XAS_BOUNDS;
1296 	} else {
1297 		xas->xa_index++;
1298 	}
1299 }
1300 EXPORT_SYMBOL_GPL(xas_pause);
1301 
1302 /*
1303  * __xas_prev() - Find the previous entry in the XArray.
1304  * @xas: XArray operation state.
1305  *
1306  * Helper function for xas_prev() which handles all the complex cases
1307  * out of line.
1308  */
1309 void *__xas_prev(struct xa_state *xas)
1310 {
1311 	void *entry;
1312 
1313 	if (!xas_frozen(xas->xa_node))
1314 		xas->xa_index--;
1315 	if (!xas->xa_node)
1316 		return set_bounds(xas);
1317 	if (xas_not_node(xas->xa_node))
1318 		return xas_load(xas);
1319 
1320 	if (xas->xa_offset != get_offset(xas->xa_index, xas->xa_node))
1321 		xas->xa_offset--;
1322 
1323 	while (xas->xa_offset == 255) {
1324 		xas->xa_offset = xas->xa_node->offset - 1;
1325 		xas->xa_node = xa_parent(xas->xa, xas->xa_node);
1326 		if (!xas->xa_node)
1327 			return set_bounds(xas);
1328 	}
1329 
1330 	for (;;) {
1331 		entry = xa_entry(xas->xa, xas->xa_node, xas->xa_offset);
1332 		if (!xa_is_node(entry))
1333 			return entry;
1334 
1335 		xas->xa_node = xa_to_node(entry);
1336 		xas_set_offset(xas);
1337 	}
1338 }
1339 EXPORT_SYMBOL_GPL(__xas_prev);
1340 
1341 /*
1342  * __xas_next() - Find the next entry in the XArray.
1343  * @xas: XArray operation state.
1344  *
1345  * Helper function for xas_next() which handles all the complex cases
1346  * out of line.
1347  */
1348 void *__xas_next(struct xa_state *xas)
1349 {
1350 	void *entry;
1351 
1352 	if (!xas_frozen(xas->xa_node))
1353 		xas->xa_index++;
1354 	if (!xas->xa_node)
1355 		return set_bounds(xas);
1356 	if (xas_not_node(xas->xa_node))
1357 		return xas_load(xas);
1358 
1359 	if (xas->xa_offset != get_offset(xas->xa_index, xas->xa_node))
1360 		xas->xa_offset++;
1361 
1362 	while (xas->xa_offset == XA_CHUNK_SIZE) {
1363 		xas->xa_offset = xas->xa_node->offset + 1;
1364 		xas->xa_node = xa_parent(xas->xa, xas->xa_node);
1365 		if (!xas->xa_node)
1366 			return set_bounds(xas);
1367 	}
1368 
1369 	for (;;) {
1370 		entry = xa_entry(xas->xa, xas->xa_node, xas->xa_offset);
1371 		if (!xa_is_node(entry))
1372 			return entry;
1373 
1374 		xas->xa_node = xa_to_node(entry);
1375 		xas_set_offset(xas);
1376 	}
1377 }
1378 EXPORT_SYMBOL_GPL(__xas_next);
1379 
1380 /**
1381  * xas_find() - Find the next present entry in the XArray.
1382  * @xas: XArray operation state.
1383  * @max: Highest index to return.
1384  *
1385  * If the @xas has not yet been walked to an entry, return the entry
1386  * which has an index >= xas.xa_index.  If it has been walked, the entry
1387  * currently being pointed at has been processed, and so we move to the
1388  * next entry.
1389  *
1390  * If no entry is found and the array is smaller than @max, the iterator
1391  * is set to the smallest index not yet in the array.  This allows @xas
1392  * to be immediately passed to xas_store().
1393  *
1394  * Return: The entry, if found, otherwise %NULL.
1395  */
1396 void *xas_find(struct xa_state *xas, unsigned long max)
1397 {
1398 	void *entry;
1399 
1400 	if (xas_error(xas) || xas->xa_node == XAS_BOUNDS)
1401 		return NULL;
1402 	if (xas->xa_index > max)
1403 		return set_bounds(xas);
1404 
1405 	if (!xas->xa_node) {
1406 		xas->xa_index = 1;
1407 		return set_bounds(xas);
1408 	} else if (xas->xa_node == XAS_RESTART) {
1409 		entry = xas_load(xas);
1410 		if (entry || xas_not_node(xas->xa_node))
1411 			return entry;
1412 	} else if (!xas->xa_node->shift &&
1413 		    xas->xa_offset != (xas->xa_index & XA_CHUNK_MASK)) {
1414 		xas->xa_offset = ((xas->xa_index - 1) & XA_CHUNK_MASK) + 1;
1415 	}
1416 
1417 	xas_next_offset(xas);
1418 
1419 	while (xas->xa_node && (xas->xa_index <= max)) {
1420 		if (unlikely(xas->xa_offset == XA_CHUNK_SIZE)) {
1421 			xas->xa_offset = xas->xa_node->offset + 1;
1422 			xas->xa_node = xa_parent(xas->xa, xas->xa_node);
1423 			continue;
1424 		}
1425 
1426 		entry = xa_entry(xas->xa, xas->xa_node, xas->xa_offset);
1427 		if (xa_is_node(entry)) {
1428 			xas->xa_node = xa_to_node(entry);
1429 			xas->xa_offset = 0;
1430 			continue;
1431 		}
1432 		if (entry && !xa_is_sibling(entry))
1433 			return entry;
1434 
1435 		xas_next_offset(xas);
1436 	}
1437 
1438 	if (!xas->xa_node)
1439 		xas->xa_node = XAS_BOUNDS;
1440 	return NULL;
1441 }
1442 EXPORT_SYMBOL_GPL(xas_find);
1443 
1444 /**
1445  * xas_find_marked() - Find the next marked entry in the XArray.
1446  * @xas: XArray operation state.
1447  * @max: Highest index to return.
1448  * @mark: Mark number to search for.
1449  *
1450  * If the @xas has not yet been walked to an entry, return the marked entry
1451  * which has an index >= xas.xa_index.  If it has been walked, the entry
1452  * currently being pointed at has been processed, and so we return the
1453  * first marked entry with an index > xas.xa_index.
1454  *
1455  * If no marked entry is found and the array is smaller than @max, @xas is
1456  * set to the bounds state and xas->xa_index is set to the smallest index
1457  * not yet in the array.  This allows @xas to be immediately passed to
1458  * xas_store().
1459  *
1460  * If no entry is found before @max is reached, @xas is set to the restart
1461  * state.
1462  *
1463  * Return: The entry, if found, otherwise %NULL.
1464  */
1465 void *xas_find_marked(struct xa_state *xas, unsigned long max, xa_mark_t mark)
1466 {
1467 	bool advance = true;
1468 	unsigned int offset;
1469 	void *entry;
1470 
1471 	if (xas_error(xas))
1472 		return NULL;
1473 	if (xas->xa_index > max)
1474 		goto max;
1475 
1476 	if (!xas->xa_node) {
1477 		xas->xa_index = 1;
1478 		goto out;
1479 	} else if (xas_top(xas->xa_node)) {
1480 		advance = false;
1481 		entry = xa_head(xas->xa);
1482 		xas->xa_node = NULL;
1483 		if (xas->xa_index > max_index(entry))
1484 			goto out;
1485 		if (!xa_is_node(entry)) {
1486 			if (xa_marked(xas->xa, mark))
1487 				return entry;
1488 			xas->xa_index = 1;
1489 			goto out;
1490 		}
1491 		xas->xa_node = xa_to_node(entry);
1492 		xas->xa_offset = xas->xa_index >> xas->xa_node->shift;
1493 	}
1494 
1495 	while (xas->xa_index <= max) {
1496 		if (unlikely(xas->xa_offset == XA_CHUNK_SIZE)) {
1497 			xas->xa_offset = xas->xa_node->offset + 1;
1498 			xas->xa_node = xa_parent(xas->xa, xas->xa_node);
1499 			if (!xas->xa_node)
1500 				break;
1501 			advance = false;
1502 			continue;
1503 		}
1504 
1505 		if (!advance) {
1506 			entry = xa_entry(xas->xa, xas->xa_node, xas->xa_offset);
1507 			if (xa_is_sibling(entry)) {
1508 				xas->xa_offset = xa_to_sibling(entry);
1509 				xas_move_index(xas, xas->xa_offset);
1510 			}
1511 		}
1512 
1513 		offset = xas_find_chunk(xas, advance, mark);
1514 		if (offset > xas->xa_offset) {
1515 			advance = false;
1516 			xas_move_index(xas, offset);
1517 			/* Mind the wrap */
1518 			if ((xas->xa_index - 1) >= max)
1519 				goto max;
1520 			xas->xa_offset = offset;
1521 			if (offset == XA_CHUNK_SIZE)
1522 				continue;
1523 		}
1524 
1525 		entry = xa_entry(xas->xa, xas->xa_node, xas->xa_offset);
1526 		if (!entry && !(xa_track_free(xas->xa) && mark == XA_FREE_MARK))
1527 			continue;
1528 		if (xa_is_sibling(entry))
1529 			continue;
1530 		if (!xa_is_node(entry))
1531 			return entry;
1532 		xas->xa_node = xa_to_node(entry);
1533 		xas_set_offset(xas);
1534 	}
1535 
1536 out:
1537 	if (xas->xa_index > max)
1538 		goto max;
1539 	return set_bounds(xas);
1540 max:
1541 	xas->xa_node = XAS_RESTART;
1542 	return NULL;
1543 }
1544 EXPORT_SYMBOL_GPL(xas_find_marked);
1545 
1546 /**
1547  * xas_find_conflict() - Find the next present entry in a range.
1548  * @xas: XArray operation state.
1549  *
1550  * The @xas describes both a range and a position within that range.
1551  *
1552  * Context: Any context.  Expects xa_lock to be held.
1553  * Return: The next entry in the range covered by @xas or %NULL.
1554  */
1555 void *xas_find_conflict(struct xa_state *xas)
1556 {
1557 	void *curr;
1558 
1559 	if (xas_error(xas))
1560 		return NULL;
1561 
1562 	if (!xas->xa_node)
1563 		return NULL;
1564 
1565 	if (xas_top(xas->xa_node)) {
1566 		curr = xas_start(xas);
1567 		if (!curr)
1568 			return NULL;
1569 		while (xa_is_node(curr)) {
1570 			struct xa_node *node = xa_to_node(curr);
1571 			curr = xas_descend(xas, node);
1572 		}
1573 		if (curr)
1574 			return curr;
1575 	}
1576 
1577 	if (xas->xa_node->shift > xas->xa_shift)
1578 		return NULL;
1579 
1580 	for (;;) {
1581 		if (xas->xa_node->shift == xas->xa_shift) {
1582 			if ((xas->xa_offset & xas->xa_sibs) == xas->xa_sibs)
1583 				break;
1584 		} else if (xas->xa_offset == XA_CHUNK_MASK) {
1585 			xas->xa_offset = xas->xa_node->offset;
1586 			xas->xa_node = xa_parent_locked(xas->xa, xas->xa_node);
1587 			if (!xas->xa_node)
1588 				break;
1589 			continue;
1590 		}
1591 		curr = xa_entry_locked(xas->xa, xas->xa_node, ++xas->xa_offset);
1592 		if (xa_is_sibling(curr))
1593 			continue;
1594 		while (xa_is_node(curr)) {
1595 			xas->xa_node = xa_to_node(curr);
1596 			xas->xa_offset = 0;
1597 			curr = xa_entry_locked(xas->xa, xas->xa_node, 0);
1598 		}
1599 		if (curr)
1600 			return curr;
1601 	}
1602 	xas->xa_offset -= xas->xa_sibs;
1603 	return NULL;
1604 }
1605 EXPORT_SYMBOL_GPL(xas_find_conflict);
1606 
1607 /**
1608  * xa_load() - Load an entry from an XArray.
1609  * @xa: XArray.
1610  * @index: index into array.
1611  *
1612  * Context: Any context.  Takes and releases the RCU lock.
1613  * Return: The entry at @index in @xa.
1614  */
1615 void *xa_load(struct xarray *xa, unsigned long index)
1616 {
1617 	XA_STATE(xas, xa, index);
1618 	void *entry;
1619 
1620 	rcu_read_lock();
1621 	do {
1622 		entry = xa_zero_to_null(xas_load(&xas));
1623 	} while (xas_retry(&xas, entry));
1624 	rcu_read_unlock();
1625 
1626 	return entry;
1627 }
1628 EXPORT_SYMBOL(xa_load);
1629 
1630 static void *xas_result(struct xa_state *xas, void *curr)
1631 {
1632 	if (xas_error(xas))
1633 		curr = xas->xa_node;
1634 	return curr;
1635 }
1636 
1637 /**
1638  * __xa_erase() - Erase this entry from the XArray while locked.
1639  * @xa: XArray.
1640  * @index: Index into array.
1641  *
1642  * After this function returns, loading from @index will return %NULL.
1643  * If the index is part of a multi-index entry, all indices will be erased
1644  * and none of the entries will be part of a multi-index entry.
1645  *
1646  * Context: Any context.  Expects xa_lock to be held on entry.
1647  * Return: The entry which used to be at this index.
1648  */
1649 void *__xa_erase(struct xarray *xa, unsigned long index)
1650 {
1651 	XA_STATE(xas, xa, index);
1652 	return xas_result(&xas, xa_zero_to_null(xas_store(&xas, NULL)));
1653 }
1654 EXPORT_SYMBOL(__xa_erase);
1655 
1656 /**
1657  * xa_erase() - Erase this entry from the XArray.
1658  * @xa: XArray.
1659  * @index: Index of entry.
1660  *
1661  * After this function returns, loading from @index will return %NULL.
1662  * If the index is part of a multi-index entry, all indices will be erased
1663  * and none of the entries will be part of a multi-index entry.
1664  *
1665  * Context: Any context.  Takes and releases the xa_lock.
1666  * Return: The entry which used to be at this index.
1667  */
1668 void *xa_erase(struct xarray *xa, unsigned long index)
1669 {
1670 	void *entry;
1671 
1672 	xa_lock(xa);
1673 	entry = __xa_erase(xa, index);
1674 	xa_unlock(xa);
1675 
1676 	return entry;
1677 }
1678 EXPORT_SYMBOL(xa_erase);
1679 
1680 /**
1681  * __xa_store() - Store this entry in the XArray.
1682  * @xa: XArray.
1683  * @index: Index into array.
1684  * @entry: New entry.
1685  * @gfp: Memory allocation flags.
1686  *
1687  * You must already be holding the xa_lock when calling this function.
1688  * It will drop the lock if needed to allocate memory, and then reacquire
1689  * it afterwards.
1690  *
1691  * Context: Any context.  Expects xa_lock to be held on entry.  May
1692  * release and reacquire xa_lock if @gfp flags permit.
1693  * Return: The old entry at this index or xa_err() if an error happened.
1694  */
1695 void *__xa_store(struct xarray *xa, unsigned long index, void *entry, gfp_t gfp)
1696 {
1697 	XA_STATE(xas, xa, index);
1698 	void *curr;
1699 
1700 	if (WARN_ON_ONCE(xa_is_advanced(entry)))
1701 		return XA_ERROR(-EINVAL);
1702 	if (xa_track_free(xa) && !entry)
1703 		entry = XA_ZERO_ENTRY;
1704 
1705 	do {
1706 		curr = xas_store(&xas, entry);
1707 		if (xa_track_free(xa))
1708 			xas_clear_mark(&xas, XA_FREE_MARK);
1709 	} while (__xas_nomem(&xas, gfp));
1710 
1711 	return xas_result(&xas, xa_zero_to_null(curr));
1712 }
1713 EXPORT_SYMBOL(__xa_store);
1714 
1715 /**
1716  * xa_store() - Store this entry in the XArray.
1717  * @xa: XArray.
1718  * @index: Index into array.
1719  * @entry: New entry.
1720  * @gfp: Memory allocation flags.
1721  *
1722  * After this function returns, loads from this index will return @entry.
1723  * Storing into an existing multi-index entry updates the entry of every index.
1724  * The marks associated with @index are unaffected unless @entry is %NULL.
1725  *
1726  * Context: Any context.  Takes and releases the xa_lock.
1727  * May sleep if the @gfp flags permit.
1728  * Return: The old entry at this index on success, xa_err(-EINVAL) if @entry
1729  * cannot be stored in an XArray, or xa_err(-ENOMEM) if memory allocation
1730  * failed.
1731  */
1732 void *xa_store(struct xarray *xa, unsigned long index, void *entry, gfp_t gfp)
1733 {
1734 	void *curr;
1735 
1736 	xa_lock(xa);
1737 	curr = __xa_store(xa, index, entry, gfp);
1738 	xa_unlock(xa);
1739 
1740 	return curr;
1741 }
1742 EXPORT_SYMBOL(xa_store);
1743 
1744 static inline void *__xa_cmpxchg_raw(struct xarray *xa, unsigned long index,
1745 			void *old, void *entry, gfp_t gfp);
1746 
1747 /**
1748  * __xa_cmpxchg() - Conditionally replace an entry in the XArray.
1749  * @xa: XArray.
1750  * @index: Index into array.
1751  * @old: Old value to test against.
1752  * @entry: New value to place in array.
1753  * @gfp: Memory allocation flags.
1754  *
1755  * You must already be holding the xa_lock when calling this function.
1756  * It will drop the lock if needed to allocate memory, and then reacquire
1757  * it afterwards.
1758  *
1759  * If the entry at @index is the same as @old, replace it with @entry.
1760  * If the return value is equal to @old, then the exchange was successful.
1761  *
1762  * Context: Any context.  Expects xa_lock to be held on entry.  May
1763  * release and reacquire xa_lock if @gfp flags permit.
1764  * Return: The old value at this index or xa_err() if an error happened.
1765  */
1766 void *__xa_cmpxchg(struct xarray *xa, unsigned long index,
1767 			void *old, void *entry, gfp_t gfp)
1768 {
1769 	return xa_zero_to_null(__xa_cmpxchg_raw(xa, index, old, entry, gfp));
1770 }
1771 EXPORT_SYMBOL(__xa_cmpxchg);
1772 
1773 static inline void *__xa_cmpxchg_raw(struct xarray *xa, unsigned long index,
1774 			void *old, void *entry, gfp_t gfp)
1775 {
1776 	XA_STATE(xas, xa, index);
1777 	void *curr;
1778 
1779 	if (WARN_ON_ONCE(xa_is_advanced(entry)))
1780 		return XA_ERROR(-EINVAL);
1781 
1782 	do {
1783 		curr = xas_load(&xas);
1784 		if (curr == old) {
1785 			xas_store(&xas, entry);
1786 			if (xa_track_free(xa) && entry && !curr)
1787 				xas_clear_mark(&xas, XA_FREE_MARK);
1788 		}
1789 	} while (__xas_nomem(&xas, gfp));
1790 
1791 	return xas_result(&xas, curr);
1792 }
1793 
1794 /**
1795  * __xa_insert() - Store this entry in the XArray if no entry is present.
1796  * @xa: XArray.
1797  * @index: Index into array.
1798  * @entry: New entry.
1799  * @gfp: Memory allocation flags.
1800  *
1801  * Inserting a NULL entry will store a reserved entry (like xa_reserve())
1802  * if no entry is present.  Inserting will fail if a reserved entry is
1803  * present, even though loading from this index will return NULL.
1804  *
1805  * Context: Any context.  Expects xa_lock to be held on entry.  May
1806  * release and reacquire xa_lock if @gfp flags permit.
1807  * Return: 0 if the store succeeded.  -EBUSY if another entry was present.
1808  * -ENOMEM if memory could not be allocated.
1809  */
1810 int __xa_insert(struct xarray *xa, unsigned long index, void *entry, gfp_t gfp)
1811 {
1812 	void *curr;
1813 	int errno;
1814 
1815 	if (!entry)
1816 		entry = XA_ZERO_ENTRY;
1817 	curr = __xa_cmpxchg_raw(xa, index, NULL, entry, gfp);
1818 	errno = xa_err(curr);
1819 	if (errno)
1820 		return errno;
1821 	return (curr != NULL) ? -EBUSY : 0;
1822 }
1823 EXPORT_SYMBOL(__xa_insert);
1824 
1825 #ifdef CONFIG_XARRAY_MULTI
1826 static void xas_set_range(struct xa_state *xas, unsigned long first,
1827 		unsigned long last)
1828 {
1829 	unsigned int shift = 0;
1830 	unsigned long sibs = last - first;
1831 	unsigned int offset = XA_CHUNK_MASK;
1832 
1833 	xas_set(xas, first);
1834 
1835 	while ((first & XA_CHUNK_MASK) == 0) {
1836 		if (sibs < XA_CHUNK_MASK)
1837 			break;
1838 		if ((sibs == XA_CHUNK_MASK) && (offset < XA_CHUNK_MASK))
1839 			break;
1840 		shift += XA_CHUNK_SHIFT;
1841 		if (offset == XA_CHUNK_MASK)
1842 			offset = sibs & XA_CHUNK_MASK;
1843 		sibs >>= XA_CHUNK_SHIFT;
1844 		first >>= XA_CHUNK_SHIFT;
1845 	}
1846 
1847 	offset = first & XA_CHUNK_MASK;
1848 	if (offset + sibs > XA_CHUNK_MASK)
1849 		sibs = XA_CHUNK_MASK - offset;
1850 	if ((((first + sibs + 1) << shift) - 1) > last)
1851 		sibs -= 1;
1852 
1853 	xas->xa_shift = shift;
1854 	xas->xa_sibs = sibs;
1855 }
1856 
1857 /**
1858  * xa_store_range() - Store this entry at a range of indices in the XArray.
1859  * @xa: XArray.
1860  * @first: First index to affect.
1861  * @last: Last index to affect.
1862  * @entry: New entry.
1863  * @gfp: Memory allocation flags.
1864  *
1865  * After this function returns, loads from any index between @first and @last,
1866  * inclusive will return @entry.
1867  * Storing into an existing multi-index entry updates the entry of every index.
1868  * The marks associated with @index are unaffected unless @entry is %NULL.
1869  *
1870  * Context: Process context.  Takes and releases the xa_lock.  May sleep
1871  * if the @gfp flags permit.
1872  * Return: %NULL on success, xa_err(-EINVAL) if @entry cannot be stored in
1873  * an XArray, or xa_err(-ENOMEM) if memory allocation failed.
1874  */
1875 void *xa_store_range(struct xarray *xa, unsigned long first,
1876 		unsigned long last, void *entry, gfp_t gfp)
1877 {
1878 	XA_STATE(xas, xa, 0);
1879 
1880 	if (WARN_ON_ONCE(xa_is_internal(entry)))
1881 		return XA_ERROR(-EINVAL);
1882 	if (last < first)
1883 		return XA_ERROR(-EINVAL);
1884 
1885 	do {
1886 		xas_lock(&xas);
1887 		if (entry) {
1888 			unsigned int order = BITS_PER_LONG;
1889 			if (last + 1)
1890 				order = __ffs(last + 1);
1891 			xas_set_order(&xas, last, order);
1892 			xas_create(&xas, true);
1893 			if (xas_error(&xas))
1894 				goto unlock;
1895 		}
1896 		do {
1897 			xas_set_range(&xas, first, last);
1898 			xas_store(&xas, entry);
1899 			if (xas_error(&xas))
1900 				goto unlock;
1901 			first += xas_size(&xas);
1902 		} while (first <= last);
1903 unlock:
1904 		xas_unlock(&xas);
1905 	} while (xas_nomem(&xas, gfp));
1906 
1907 	return xas_result(&xas, NULL);
1908 }
1909 EXPORT_SYMBOL(xa_store_range);
1910 
1911 /**
1912  * xas_get_order() - Get the order of an entry.
1913  * @xas: XArray operation state.
1914  *
1915  * Called after xas_load, the xas should not be in an error state.
1916  * The xas should not be pointing to a sibling entry.
1917  *
1918  * Return: A number between 0 and 63 indicating the order of the entry.
1919  */
1920 int xas_get_order(struct xa_state *xas)
1921 {
1922 	int order = 0;
1923 
1924 	if (!xas->xa_node)
1925 		return 0;
1926 
1927 	XA_NODE_BUG_ON(xas->xa_node, xa_is_sibling(xa_entry(xas->xa,
1928 		       xas->xa_node, xas->xa_offset)));
1929 	for (;;) {
1930 		unsigned int slot = xas->xa_offset + (1 << order);
1931 
1932 		if (slot >= XA_CHUNK_SIZE)
1933 			break;
1934 		if (!xa_is_sibling(xa_entry(xas->xa, xas->xa_node, slot)))
1935 			break;
1936 		order++;
1937 	}
1938 
1939 	order += xas->xa_node->shift;
1940 	return order;
1941 }
1942 EXPORT_SYMBOL_GPL(xas_get_order);
1943 
1944 /**
1945  * xa_get_order() - Get the order of an entry.
1946  * @xa: XArray.
1947  * @index: Index of the entry.
1948  *
1949  * Return: A number between 0 and 63 indicating the order of the entry.
1950  */
1951 int xa_get_order(struct xarray *xa, unsigned long index)
1952 {
1953 	XA_STATE(xas, xa, index);
1954 	int order = 0;
1955 	void *entry;
1956 
1957 	rcu_read_lock();
1958 	entry = xas_load(&xas);
1959 	if (entry)
1960 		order = xas_get_order(&xas);
1961 	rcu_read_unlock();
1962 
1963 	return order;
1964 }
1965 EXPORT_SYMBOL(xa_get_order);
1966 #endif /* CONFIG_XARRAY_MULTI */
1967 
1968 /**
1969  * __xa_alloc() - Find somewhere to store this entry in the XArray.
1970  * @xa: XArray.
1971  * @id: Pointer to ID.
1972  * @limit: Range for allocated ID.
1973  * @entry: New entry.
1974  * @gfp: Memory allocation flags.
1975  *
1976  * Finds an empty entry in @xa between @limit.min and @limit.max,
1977  * stores the index into the @id pointer, then stores the entry at
1978  * that index.  A concurrent lookup will not see an uninitialised @id.
1979  *
1980  * Must only be operated on an xarray initialized with flag XA_FLAGS_ALLOC set
1981  * in xa_init_flags().
1982  *
1983  * Context: Any context.  Expects xa_lock to be held on entry.  May
1984  * release and reacquire xa_lock if @gfp flags permit.
1985  * Return: 0 on success, -ENOMEM if memory could not be allocated or
1986  * -EBUSY if there are no free entries in @limit.
1987  */
1988 int __xa_alloc(struct xarray *xa, u32 *id, void *entry,
1989 		struct xa_limit limit, gfp_t gfp)
1990 {
1991 	XA_STATE(xas, xa, 0);
1992 
1993 	if (WARN_ON_ONCE(xa_is_advanced(entry)))
1994 		return -EINVAL;
1995 	if (WARN_ON_ONCE(!xa_track_free(xa)))
1996 		return -EINVAL;
1997 
1998 	if (!entry)
1999 		entry = XA_ZERO_ENTRY;
2000 
2001 	do {
2002 		xas.xa_index = limit.min;
2003 		xas_find_marked(&xas, limit.max, XA_FREE_MARK);
2004 		if (xas.xa_node == XAS_RESTART)
2005 			xas_set_err(&xas, -EBUSY);
2006 		else
2007 			*id = xas.xa_index;
2008 		xas_store(&xas, entry);
2009 		xas_clear_mark(&xas, XA_FREE_MARK);
2010 	} while (__xas_nomem(&xas, gfp));
2011 
2012 	return xas_error(&xas);
2013 }
2014 EXPORT_SYMBOL(__xa_alloc);
2015 
2016 /**
2017  * __xa_alloc_cyclic() - Find somewhere to store this entry in the XArray.
2018  * @xa: XArray.
2019  * @id: Pointer to ID.
2020  * @entry: New entry.
2021  * @limit: Range of allocated ID.
2022  * @next: Pointer to next ID to allocate.
2023  * @gfp: Memory allocation flags.
2024  *
2025  * Finds an empty entry in @xa between @limit.min and @limit.max,
2026  * stores the index into the @id pointer, then stores the entry at
2027  * that index.  A concurrent lookup will not see an uninitialised @id.
2028  * The search for an empty entry will start at @next and will wrap
2029  * around if necessary.
2030  *
2031  * Must only be operated on an xarray initialized with flag XA_FLAGS_ALLOC set
2032  * in xa_init_flags().
2033  *
2034  * Context: Any context.  Expects xa_lock to be held on entry.  May
2035  * release and reacquire xa_lock if @gfp flags permit.
2036  * Return: 0 if the allocation succeeded without wrapping.  1 if the
2037  * allocation succeeded after wrapping, -ENOMEM if memory could not be
2038  * allocated or -EBUSY if there are no free entries in @limit.
2039  */
2040 int __xa_alloc_cyclic(struct xarray *xa, u32 *id, void *entry,
2041 		struct xa_limit limit, u32 *next, gfp_t gfp)
2042 {
2043 	u32 min = limit.min;
2044 	int ret;
2045 
2046 	limit.min = max(min, *next);
2047 	ret = __xa_alloc(xa, id, entry, limit, gfp);
2048 	if ((xa->xa_flags & XA_FLAGS_ALLOC_WRAPPED) && ret == 0) {
2049 		xa->xa_flags &= ~XA_FLAGS_ALLOC_WRAPPED;
2050 		ret = 1;
2051 	}
2052 
2053 	if (ret < 0 && limit.min > min) {
2054 		limit.min = min;
2055 		ret = __xa_alloc(xa, id, entry, limit, gfp);
2056 		if (ret == 0)
2057 			ret = 1;
2058 	}
2059 
2060 	if (ret >= 0) {
2061 		*next = *id + 1;
2062 		if (*next == 0)
2063 			xa->xa_flags |= XA_FLAGS_ALLOC_WRAPPED;
2064 	}
2065 	return ret;
2066 }
2067 EXPORT_SYMBOL(__xa_alloc_cyclic);
2068 
2069 /**
2070  * __xa_set_mark() - Set this mark on this entry while locked.
2071  * @xa: XArray.
2072  * @index: Index of entry.
2073  * @mark: Mark number.
2074  *
2075  * Attempting to set a mark on a %NULL entry does not succeed.
2076  *
2077  * Context: Any context.  Expects xa_lock to be held on entry.
2078  */
2079 void __xa_set_mark(struct xarray *xa, unsigned long index, xa_mark_t mark)
2080 {
2081 	XA_STATE(xas, xa, index);
2082 	void *entry = xas_load(&xas);
2083 
2084 	if (entry)
2085 		xas_set_mark(&xas, mark);
2086 }
2087 EXPORT_SYMBOL(__xa_set_mark);
2088 
2089 /**
2090  * __xa_clear_mark() - Clear this mark on this entry while locked.
2091  * @xa: XArray.
2092  * @index: Index of entry.
2093  * @mark: Mark number.
2094  *
2095  * Context: Any context.  Expects xa_lock to be held on entry.
2096  */
2097 void __xa_clear_mark(struct xarray *xa, unsigned long index, xa_mark_t mark)
2098 {
2099 	XA_STATE(xas, xa, index);
2100 	void *entry = xas_load(&xas);
2101 
2102 	if (entry)
2103 		xas_clear_mark(&xas, mark);
2104 }
2105 EXPORT_SYMBOL(__xa_clear_mark);
2106 
2107 /**
2108  * xa_get_mark() - Inquire whether this mark is set on this entry.
2109  * @xa: XArray.
2110  * @index: Index of entry.
2111  * @mark: Mark number.
2112  *
2113  * This function uses the RCU read lock, so the result may be out of date
2114  * by the time it returns.  If you need the result to be stable, use a lock.
2115  *
2116  * Context: Any context.  Takes and releases the RCU lock.
2117  * Return: True if the entry at @index has this mark set, false if it doesn't.
2118  */
2119 bool xa_get_mark(struct xarray *xa, unsigned long index, xa_mark_t mark)
2120 {
2121 	XA_STATE(xas, xa, index);
2122 	void *entry;
2123 
2124 	rcu_read_lock();
2125 	entry = xas_start(&xas);
2126 	while (xas_get_mark(&xas, mark)) {
2127 		if (!xa_is_node(entry))
2128 			goto found;
2129 		entry = xas_descend(&xas, xa_to_node(entry));
2130 	}
2131 	rcu_read_unlock();
2132 	return false;
2133  found:
2134 	rcu_read_unlock();
2135 	return true;
2136 }
2137 EXPORT_SYMBOL(xa_get_mark);
2138 
2139 /**
2140  * xa_set_mark() - Set this mark on this entry.
2141  * @xa: XArray.
2142  * @index: Index of entry.
2143  * @mark: Mark number.
2144  *
2145  * Attempting to set a mark on a %NULL entry does not succeed.
2146  *
2147  * Context: Process context.  Takes and releases the xa_lock.
2148  */
2149 void xa_set_mark(struct xarray *xa, unsigned long index, xa_mark_t mark)
2150 {
2151 	xa_lock(xa);
2152 	__xa_set_mark(xa, index, mark);
2153 	xa_unlock(xa);
2154 }
2155 EXPORT_SYMBOL(xa_set_mark);
2156 
2157 /**
2158  * xa_clear_mark() - Clear this mark on this entry.
2159  * @xa: XArray.
2160  * @index: Index of entry.
2161  * @mark: Mark number.
2162  *
2163  * Clearing a mark always succeeds.
2164  *
2165  * Context: Process context.  Takes and releases the xa_lock.
2166  */
2167 void xa_clear_mark(struct xarray *xa, unsigned long index, xa_mark_t mark)
2168 {
2169 	xa_lock(xa);
2170 	__xa_clear_mark(xa, index, mark);
2171 	xa_unlock(xa);
2172 }
2173 EXPORT_SYMBOL(xa_clear_mark);
2174 
2175 /**
2176  * xa_find() - Search the XArray for an entry.
2177  * @xa: XArray.
2178  * @indexp: Pointer to an index.
2179  * @max: Maximum index to search to.
2180  * @filter: Selection criterion.
2181  *
2182  * Finds the entry in @xa which matches the @filter, and has the lowest
2183  * index that is at least @indexp and no more than @max.
2184  * If an entry is found, @indexp is updated to be the index of the entry.
2185  * This function is protected by the RCU read lock, so it may not find
2186  * entries which are being simultaneously added.  It will not return an
2187  * %XA_RETRY_ENTRY; if you need to see retry entries, use xas_find().
2188  *
2189  * Context: Any context.  Takes and releases the RCU lock.
2190  * Return: The entry, if found, otherwise %NULL.
2191  */
2192 void *xa_find(struct xarray *xa, unsigned long *indexp,
2193 			unsigned long max, xa_mark_t filter)
2194 {
2195 	XA_STATE(xas, xa, *indexp);
2196 	void *entry;
2197 
2198 	rcu_read_lock();
2199 	do {
2200 		if ((__force unsigned int)filter < XA_MAX_MARKS)
2201 			entry = xas_find_marked(&xas, max, filter);
2202 		else
2203 			entry = xas_find(&xas, max);
2204 	} while (xas_retry(&xas, entry));
2205 	rcu_read_unlock();
2206 
2207 	if (entry)
2208 		*indexp = xas.xa_index;
2209 	return entry;
2210 }
2211 EXPORT_SYMBOL(xa_find);
2212 
2213 static bool xas_sibling(struct xa_state *xas)
2214 {
2215 	struct xa_node *node = xas->xa_node;
2216 	unsigned long mask;
2217 
2218 	if (!IS_ENABLED(CONFIG_XARRAY_MULTI) || !node)
2219 		return false;
2220 	mask = (XA_CHUNK_SIZE << node->shift) - 1;
2221 	return (xas->xa_index & mask) >
2222 		((unsigned long)xas->xa_offset << node->shift);
2223 }
2224 
2225 /**
2226  * xa_find_after() - Search the XArray for a present entry.
2227  * @xa: XArray.
2228  * @indexp: Pointer to an index.
2229  * @max: Maximum index to search to.
2230  * @filter: Selection criterion.
2231  *
2232  * Finds the entry in @xa which matches the @filter and has the lowest
2233  * index that is above @indexp and no more than @max.
2234  * If an entry is found, @indexp is updated to be the index of the entry.
2235  * This function is protected by the RCU read lock, so it may miss entries
2236  * which are being simultaneously added.  It will not return an
2237  * %XA_RETRY_ENTRY; if you need to see retry entries, use xas_find().
2238  *
2239  * Context: Any context.  Takes and releases the RCU lock.
2240  * Return: The pointer, if found, otherwise %NULL.
2241  */
2242 void *xa_find_after(struct xarray *xa, unsigned long *indexp,
2243 			unsigned long max, xa_mark_t filter)
2244 {
2245 	XA_STATE(xas, xa, *indexp + 1);
2246 	void *entry;
2247 
2248 	if (xas.xa_index == 0)
2249 		return NULL;
2250 
2251 	rcu_read_lock();
2252 	for (;;) {
2253 		if ((__force unsigned int)filter < XA_MAX_MARKS)
2254 			entry = xas_find_marked(&xas, max, filter);
2255 		else
2256 			entry = xas_find(&xas, max);
2257 
2258 		if (xas_invalid(&xas))
2259 			break;
2260 		if (xas_sibling(&xas))
2261 			continue;
2262 		if (!xas_retry(&xas, entry))
2263 			break;
2264 	}
2265 	rcu_read_unlock();
2266 
2267 	if (entry)
2268 		*indexp = xas.xa_index;
2269 	return entry;
2270 }
2271 EXPORT_SYMBOL(xa_find_after);
2272 
2273 static unsigned int xas_extract_present(struct xa_state *xas, void **dst,
2274 			unsigned long max, unsigned int n)
2275 {
2276 	void *entry;
2277 	unsigned int i = 0;
2278 
2279 	rcu_read_lock();
2280 	xas_for_each(xas, entry, max) {
2281 		if (xas_retry(xas, entry))
2282 			continue;
2283 		dst[i++] = entry;
2284 		if (i == n)
2285 			break;
2286 	}
2287 	rcu_read_unlock();
2288 
2289 	return i;
2290 }
2291 
2292 static unsigned int xas_extract_marked(struct xa_state *xas, void **dst,
2293 			unsigned long max, unsigned int n, xa_mark_t mark)
2294 {
2295 	void *entry;
2296 	unsigned int i = 0;
2297 
2298 	rcu_read_lock();
2299 	xas_for_each_marked(xas, entry, max, mark) {
2300 		if (xas_retry(xas, entry))
2301 			continue;
2302 		dst[i++] = entry;
2303 		if (i == n)
2304 			break;
2305 	}
2306 	rcu_read_unlock();
2307 
2308 	return i;
2309 }
2310 
2311 /**
2312  * xa_extract() - Copy selected entries from the XArray into a normal array.
2313  * @xa: The source XArray to copy from.
2314  * @dst: The buffer to copy entries into.
2315  * @start: The first index in the XArray eligible to be selected.
2316  * @max: The last index in the XArray eligible to be selected.
2317  * @n: The maximum number of entries to copy.
2318  * @filter: Selection criterion.
2319  *
2320  * Copies up to @n entries that match @filter from the XArray.  The
2321  * copied entries will have indices between @start and @max, inclusive.
2322  *
2323  * The @filter may be an XArray mark value, in which case entries which are
2324  * marked with that mark will be copied.  It may also be %XA_PRESENT, in
2325  * which case all entries which are not %NULL will be copied.
2326  *
2327  * The entries returned may not represent a snapshot of the XArray at a
2328  * moment in time.  For example, if another thread stores to index 5, then
2329  * index 10, calling xa_extract() may return the old contents of index 5
2330  * and the new contents of index 10.  Indices not modified while this
2331  * function is running will not be skipped.
2332  *
2333  * If you need stronger guarantees, holding the xa_lock across calls to this
2334  * function will prevent concurrent modification.
2335  *
2336  * Context: Any context.  Takes and releases the RCU lock.
2337  * Return: The number of entries copied.
2338  */
2339 unsigned int xa_extract(struct xarray *xa, void **dst, unsigned long start,
2340 			unsigned long max, unsigned int n, xa_mark_t filter)
2341 {
2342 	XA_STATE(xas, xa, start);
2343 
2344 	if (!n)
2345 		return 0;
2346 
2347 	if ((__force unsigned int)filter < XA_MAX_MARKS)
2348 		return xas_extract_marked(&xas, dst, max, n, filter);
2349 	return xas_extract_present(&xas, dst, max, n);
2350 }
2351 EXPORT_SYMBOL(xa_extract);
2352 
2353 /**
2354  * xa_delete_node() - Private interface for workingset code.
2355  * @node: Node to be removed from the tree.
2356  * @update: Function to call to update ancestor nodes.
2357  *
2358  * Context: xa_lock must be held on entry and will not be released.
2359  */
2360 void xa_delete_node(struct xa_node *node, xa_update_node_t update)
2361 {
2362 	struct xa_state xas = {
2363 		.xa = node->array,
2364 		.xa_index = (unsigned long)node->offset <<
2365 				(node->shift + XA_CHUNK_SHIFT),
2366 		.xa_shift = node->shift + XA_CHUNK_SHIFT,
2367 		.xa_offset = node->offset,
2368 		.xa_node = xa_parent_locked(node->array, node),
2369 		.xa_update = update,
2370 	};
2371 
2372 	xas_store(&xas, NULL);
2373 }
2374 EXPORT_SYMBOL_GPL(xa_delete_node);	/* For the benefit of the test suite */
2375 
2376 /**
2377  * xa_destroy() - Free all internal data structures.
2378  * @xa: XArray.
2379  *
2380  * After calling this function, the XArray is empty and has freed all memory
2381  * allocated for its internal data structures.  You are responsible for
2382  * freeing the objects referenced by the XArray.
2383  *
2384  * Context: Any context.  Takes and releases the xa_lock, interrupt-safe.
2385  */
2386 void xa_destroy(struct xarray *xa)
2387 {
2388 	XA_STATE(xas, xa, 0);
2389 	unsigned long flags;
2390 	void *entry;
2391 
2392 	xas.xa_node = NULL;
2393 	xas_lock_irqsave(&xas, flags);
2394 	entry = xa_head_locked(xa);
2395 	RCU_INIT_POINTER(xa->xa_head, NULL);
2396 	xas_init_marks(&xas);
2397 	if (xa_zero_busy(xa))
2398 		xa_mark_clear(xa, XA_FREE_MARK);
2399 	/* lockdep checks we're still holding the lock in xas_free_nodes() */
2400 	if (xa_is_node(entry))
2401 		xas_free_nodes(&xas, xa_to_node(entry));
2402 	xas_unlock_irqrestore(&xas, flags);
2403 }
2404 EXPORT_SYMBOL(xa_destroy);
2405 
2406 #ifdef XA_DEBUG
2407 void xa_dump_node(const struct xa_node *node)
2408 {
2409 	unsigned i, j;
2410 
2411 	if (!node)
2412 		return;
2413 	if ((unsigned long)node & 3) {
2414 		pr_cont("node %px\n", node);
2415 		return;
2416 	}
2417 
2418 	pr_cont("node %px %s %d parent %px shift %d count %d values %d "
2419 		"array %px list %px %px marks",
2420 		node, node->parent ? "offset" : "max", node->offset,
2421 		node->parent, node->shift, node->count, node->nr_values,
2422 		node->array, node->private_list.prev, node->private_list.next);
2423 	for (i = 0; i < XA_MAX_MARKS; i++)
2424 		for (j = 0; j < XA_MARK_LONGS; j++)
2425 			pr_cont(" %lx", node->marks[i][j]);
2426 	pr_cont("\n");
2427 }
2428 
2429 void xa_dump_index(unsigned long index, unsigned int shift)
2430 {
2431 	if (!shift)
2432 		pr_info("%lu: ", index);
2433 	else if (shift >= BITS_PER_LONG)
2434 		pr_info("0-%lu: ", ~0UL);
2435 	else
2436 		pr_info("%lu-%lu: ", index, index | ((1UL << shift) - 1));
2437 }
2438 
2439 void xa_dump_entry(const void *entry, unsigned long index, unsigned long shift)
2440 {
2441 	if (!entry)
2442 		return;
2443 
2444 	xa_dump_index(index, shift);
2445 
2446 	if (xa_is_node(entry)) {
2447 		if (shift == 0) {
2448 			pr_cont("%px\n", entry);
2449 		} else {
2450 			unsigned long i;
2451 			struct xa_node *node = xa_to_node(entry);
2452 			xa_dump_node(node);
2453 			for (i = 0; i < XA_CHUNK_SIZE; i++)
2454 				xa_dump_entry(node->slots[i],
2455 				      index + (i << node->shift), node->shift);
2456 		}
2457 	} else if (xa_is_value(entry))
2458 		pr_cont("value %ld (0x%lx) [%px]\n", xa_to_value(entry),
2459 						xa_to_value(entry), entry);
2460 	else if (!xa_is_internal(entry))
2461 		pr_cont("%px\n", entry);
2462 	else if (xa_is_retry(entry))
2463 		pr_cont("retry (%ld)\n", xa_to_internal(entry));
2464 	else if (xa_is_sibling(entry))
2465 		pr_cont("sibling (slot %ld)\n", xa_to_sibling(entry));
2466 	else if (xa_is_zero(entry))
2467 		pr_cont("zero (%ld)\n", xa_to_internal(entry));
2468 	else
2469 		pr_cont("UNKNOWN ENTRY (%px)\n", entry);
2470 }
2471 
2472 void xa_dump(const struct xarray *xa)
2473 {
2474 	void *entry = xa->xa_head;
2475 	unsigned int shift = 0;
2476 
2477 	pr_info("xarray: %px head %px flags %x marks %d %d %d\n", xa, entry,
2478 			xa->xa_flags, xa_marked(xa, XA_MARK_0),
2479 			xa_marked(xa, XA_MARK_1), xa_marked(xa, XA_MARK_2));
2480 	if (xa_is_node(entry))
2481 		shift = xa_to_node(entry)->shift + XA_CHUNK_SHIFT;
2482 	xa_dump_entry(entry, 0, shift);
2483 }
2484 #endif
2485