1 /* SPDX-License-Identifier: GPL-2.0+ */
2 #ifndef _LINUX_MAPLE_TREE_H
3 #define _LINUX_MAPLE_TREE_H
4 /*
5 * Maple Tree - An RCU-safe adaptive tree for storing ranges
6 * Copyright (c) 2018-2022 Oracle
7 * Authors: Liam R. Howlett <liam@infradead.org>
8 * Matthew Wilcox <willy@infradead.org>
9 */
10
11 #include <linux/kernel.h>
12 #include <linux/rcupdate.h>
13 #include <linux/spinlock.h>
14
15 /*
16 * Allocated nodes are mutable until they have been inserted into the tree,
17 * at which time they cannot change their type until they have been removed
18 * from the tree and an RCU grace period has passed.
19 *
20 * Removed nodes have their ->parent set to point to themselves. RCU readers
21 * check ->parent before relying on the value that they loaded from the
22 * slots array. This lets us reuse the slots array for the RCU head.
23 *
24 * Nodes in the tree point to their parent unless bit 0 is set.
25 */
26 #if defined(CONFIG_64BIT) || defined(BUILD_VDSO32_64)
27 /* 64bit sizes */
28 #define MAPLE_NODE_SLOTS 31 /* 256 bytes including ->parent */
29 #define MAPLE_RANGE64_SLOTS 16 /* 256 bytes */
30 #define MAPLE_ARANGE64_SLOTS 10 /* 240 bytes */
31 #else
32 /* 32bit sizes */
33 #define MAPLE_NODE_SLOTS 63 /* 256 bytes including ->parent */
34 #define MAPLE_RANGE64_SLOTS 32 /* 256 bytes */
35 #define MAPLE_ARANGE64_SLOTS 21 /* 240 bytes */
36 #endif /* defined(CONFIG_64BIT) || defined(BUILD_VDSO32_64) */
37
38 #define MAPLE_NODE_MASK 255UL
39
40 /*
41 * The node->parent of the root node has bit 0 set and the rest of the pointer
42 * is a pointer to the tree itself. No more bits are available in this pointer
43 * (on m68k, the data structure may only be 2-byte aligned).
44 *
45 * Internal non-root nodes can only have maple_range_* nodes as parents. The
46 * parent pointer is 256B aligned like all other tree nodes. When storing a 32
47 * or 64 bit values, the offset can fit into 4 bits. The 16 bit values need an
48 * extra bit to store the offset. This extra bit comes from a reuse of the last
49 * bit in the node type. This is possible by using bit 1 to indicate if bit 2
50 * is part of the type or the slot.
51 *
52 * Once the type is decided, the decision of an allocation range type or a
53 * range type is done by examining the immutable tree flag for the
54 * MT_FLAGS_ALLOC_RANGE flag.
55 *
56 * Node types:
57 * 0b??1 = Root
58 * 0b?00 = 16 bit nodes
59 * 0b010 = 32 bit nodes
60 * 0b110 = 64 bit nodes
61 *
62 * Slot size and location in the parent pointer:
63 * type : slot location
64 * 0b??1 : Root
65 * 0b?00 : 16 bit values, type in 0-1, slot in 2-6
66 * 0b010 : 32 bit values, type in 0-2, slot in 3-6
67 * 0b110 : 64 bit values, type in 0-2, slot in 3-6
68 */
69
70 /*
71 * This metadata is used to optimize the gap updating code and in reverse
72 * searching for gaps or any other code that needs to find the end of the data.
73 */
74 struct maple_metadata {
75 unsigned char end; /* end of data */
76 unsigned char gap; /* offset of largest gap */
77 };
78
79 /*
80 * Leaf nodes do not store pointers to nodes, they store user data. Users may
81 * store almost any bit pattern. As noted above, the optimisation of storing an
82 * entry at 0 in the root pointer cannot be done for data which have the bottom
83 * two bits set to '10'. We also reserve values with the bottom two bits set to
84 * '10' which are below 4096 (ie 2, 6, 10 .. 4094) for internal use. Some APIs
85 * return errnos as a negative errno shifted right by two bits and the bottom
86 * two bits set to '10', and while choosing to store these values in the array
87 * is not an error, it may lead to confusion if you're testing for an error with
88 * mas_is_err().
89 *
90 * Non-leaf nodes store the type of the node pointed to (enum maple_type in bits
91 * 3-6), bit 2 is reserved. That leaves bits 0-1 unused for now.
92 *
93 * In regular B-Tree terms, pivots are called keys. The term pivot is used to
94 * indicate that the tree is specifying ranges, Pivots may appear in the
95 * subtree with an entry attached to the value whereas keys are unique to a
96 * specific position of a B-tree. Pivot values are inclusive of the slot with
97 * the same index.
98 */
99
100 struct maple_range_64 {
101 struct maple_pnode *parent;
102 unsigned long pivot[MAPLE_RANGE64_SLOTS - 1];
103 union {
104 void __rcu *slot[MAPLE_RANGE64_SLOTS];
105 struct {
106 void __rcu *pad[MAPLE_RANGE64_SLOTS - 1];
107 struct maple_metadata meta;
108 };
109 };
110 };
111
112 /*
113 * At tree creation time, the user can specify that they're willing to trade off
114 * storing fewer entries in a tree in return for storing more information in
115 * each node.
116 *
117 * The maple tree supports recording the largest range of NULL entries available
118 * in this node, also called gaps. This optimises the tree for allocating a
119 * range.
120 */
121 struct maple_arange_64 {
122 struct maple_pnode *parent;
123 unsigned long pivot[MAPLE_ARANGE64_SLOTS - 1];
124 void __rcu *slot[MAPLE_ARANGE64_SLOTS];
125 unsigned long gap[MAPLE_ARANGE64_SLOTS];
126 struct maple_metadata meta;
127 };
128
129 struct maple_topiary {
130 struct maple_pnode *parent;
131 struct maple_enode *next; /* Overlaps the pivot */
132 };
133
134 enum maple_type {
135 maple_dense,
136 maple_leaf_64,
137 maple_range_64,
138 maple_arange_64,
139 maple_copy,
140 };
141
142 enum store_type {
143 wr_invalid,
144 wr_new_root,
145 wr_store_root,
146 wr_exact_fit,
147 wr_spanning_store,
148 wr_split_store,
149 wr_rebalance,
150 wr_append,
151 wr_node_store,
152 wr_slot_store,
153 };
154
155 struct maple_copy {
156 /*
157 * min, max, and pivots are values
158 * start, end, split are indexes into arrays
159 * data is a size
160 */
161
162 struct {
163 struct maple_node *node;
164 unsigned long max;
165 enum maple_type mt;
166 } dst[3];
167 struct {
168 struct maple_node *node;
169 unsigned long max;
170 unsigned char start;
171 unsigned char end;
172 enum maple_type mt;
173 } src[4];
174 /* Simulated node */
175 void __rcu *slot[3];
176 unsigned long gap[3];
177 unsigned long min;
178 union {
179 unsigned long pivot[3];
180 struct {
181 void *_pad[2];
182 unsigned long max;
183 };
184 };
185 unsigned char end;
186
187 /*Avoid passing these around */
188 unsigned char s_count;
189 unsigned char d_count;
190 unsigned char split;
191 unsigned char data;
192 unsigned char height;
193 };
194
195 /**
196 * DOC: Maple tree flags
197 *
198 * * MT_FLAGS_ALLOC_RANGE - Track gaps in this tree
199 * * MT_FLAGS_USE_RCU - Operate in RCU mode
200 * * MT_FLAGS_HEIGHT_OFFSET - The position of the tree height in the flags
201 * * MT_FLAGS_HEIGHT_MASK - The mask for the maple tree height value
202 * * MT_FLAGS_LOCK_MASK - How the mt_lock is used
203 * * MT_FLAGS_LOCK_IRQ - Acquired irq-safe
204 * * MT_FLAGS_LOCK_BH - Acquired bh-safe
205 * * MT_FLAGS_LOCK_EXTERN - mt_lock is not used
206 *
207 * MAPLE_HEIGHT_MAX The largest height that can be stored
208 */
209 #define MT_FLAGS_ALLOC_RANGE 0x01
210 #define MT_FLAGS_USE_RCU 0x02
211 #define MT_FLAGS_HEIGHT_OFFSET 0x02
212 #define MT_FLAGS_HEIGHT_MASK 0x7C
213 #define MT_FLAGS_LOCK_MASK 0x300
214 #define MT_FLAGS_LOCK_IRQ 0x100
215 #define MT_FLAGS_LOCK_BH 0x200
216 #define MT_FLAGS_LOCK_EXTERN 0x300
217 #define MT_FLAGS_ALLOC_WRAPPED 0x0800
218
219 #define MAPLE_HEIGHT_MAX 31
220
221
222 #define MAPLE_NODE_TYPE_MASK 0x0F
223 #define MAPLE_NODE_TYPE_SHIFT 0x03
224
225 #define MAPLE_RESERVED_RANGE 4096
226
227 #ifdef CONFIG_LOCKDEP
228 #define mt_lock_is_held(mt) \
229 (!(mt)->ma_external_lock || lock_is_held((mt)->ma_external_lock))
230
231 #define mt_write_lock_is_held(mt) \
232 (!(mt)->ma_external_lock || \
233 lock_is_held_type((mt)->ma_external_lock, 0))
234
235 #define mt_set_external_lock(mt, lock) \
236 (mt)->ma_external_lock = &(lock)->dep_map
237
238 #define mt_on_stack(mt) (mt).ma_external_lock = NULL
239 #else
240 #define mt_lock_is_held(mt) 1
241 #define mt_write_lock_is_held(mt) 1
242 #define mt_set_external_lock(mt, lock) do { } while (0)
243 #define mt_on_stack(mt) do { } while (0)
244 #endif
245
246 /*
247 * If the tree contains a single entry at index 0, it is usually stored in
248 * tree->ma_root. To optimise for the page cache, an entry which ends in '00',
249 * '01' or '11' is stored in the root, but an entry which ends in '10' will be
250 * stored in a node. Bits 3-6 are used to store enum maple_type.
251 *
252 * The flags are used both to store some immutable information about this tree
253 * (set at tree creation time) and dynamic information set under the spinlock.
254 *
255 * Another use of flags are to indicate global states of the tree. This is the
256 * case with the MT_FLAGS_USE_RCU flag, which indicates the tree is currently in
257 * RCU mode. This mode was added to allow the tree to reuse nodes instead of
258 * re-allocating and RCU freeing nodes when there is a single user.
259 */
260 struct maple_tree {
261 union {
262 spinlock_t ma_lock;
263 #ifdef CONFIG_LOCKDEP
264 struct lockdep_map *ma_external_lock;
265 #endif
266 };
267 unsigned int ma_flags;
268 void __rcu *ma_root;
269 };
270
271 /**
272 * MTREE_INIT() - Initialize a maple tree
273 * @name: The maple tree name
274 * @__flags: The maple tree flags
275 *
276 */
277 #define MTREE_INIT(name, __flags) { \
278 .ma_lock = __SPIN_LOCK_UNLOCKED((name).ma_lock), \
279 .ma_flags = __flags, \
280 .ma_root = NULL, \
281 }
282
283 /**
284 * MTREE_INIT_EXT() - Initialize a maple tree with an external lock.
285 * @name: The tree name
286 * @__flags: The maple tree flags
287 * @__lock: The external lock
288 */
289 #ifdef CONFIG_LOCKDEP
290 #define MTREE_INIT_EXT(name, __flags, __lock) { \
291 .ma_external_lock = &(__lock).dep_map, \
292 .ma_flags = (__flags), \
293 .ma_root = NULL, \
294 }
295 #else
296 #define MTREE_INIT_EXT(name, __flags, __lock) MTREE_INIT(name, __flags)
297 #endif
298
299 #define DEFINE_MTREE(name) \
300 struct maple_tree name = MTREE_INIT(name, 0)
301
302 #define mtree_lock(mt) spin_lock((&(mt)->ma_lock))
303 #define mtree_lock_nested(mas, subclass) \
304 spin_lock_nested((&(mt)->ma_lock), subclass)
305 #define mtree_unlock(mt) spin_unlock((&(mt)->ma_lock))
306
307 /*
308 * The Maple Tree squeezes various bits in at various points which aren't
309 * necessarily obvious. Usually, this is done by observing that pointers are
310 * N-byte aligned and thus the bottom log_2(N) bits are available for use. We
311 * don't use the high bits of pointers to store additional information because
312 * we don't know what bits are unused on any given architecture.
313 *
314 * Nodes are 256 bytes in size and are also aligned to 256 bytes, giving us 8
315 * low bits for our own purposes. Nodes are currently of 4 types:
316 * 1. Single pointer (Range is 0-0)
317 * 2. Non-leaf Allocation Range nodes
318 * 3. Non-leaf Range nodes
319 * 4. Leaf Range nodes All nodes consist of a number of node slots,
320 * pivots, and a parent pointer.
321 */
322
323 struct maple_node {
324 union {
325 struct {
326 struct maple_pnode *parent;
327 void __rcu *slot[MAPLE_NODE_SLOTS];
328 };
329 struct {
330 void *pad;
331 struct rcu_head rcu;
332 struct maple_enode *piv_parent;
333 unsigned char parent_slot;
334 enum maple_type type;
335 unsigned char slot_len;
336 unsigned int ma_flags;
337 };
338 struct maple_range_64 mr64;
339 struct maple_arange_64 ma64;
340 struct maple_copy cp;
341 };
342 };
343
344 /*
345 * More complicated stores can cause two nodes to become one or three and
346 * potentially alter the height of the tree. Either half of the tree may need
347 * to be rebalanced against the other. The ma_topiary struct is used to track
348 * which nodes have been 'cut' from the tree so that the change can be done
349 * safely at a later date. This is done to support RCU.
350 */
351 struct ma_topiary {
352 struct maple_enode *head;
353 struct maple_enode *tail;
354 struct maple_tree *mtree;
355 };
356
357 void *mtree_load(struct maple_tree *mt, unsigned long index);
358
359 int mtree_insert(struct maple_tree *mt, unsigned long index,
360 void *entry, gfp_t gfp);
361 int mtree_insert_range(struct maple_tree *mt, unsigned long first,
362 unsigned long last, void *entry, gfp_t gfp);
363 int mtree_alloc_range(struct maple_tree *mt, unsigned long *startp,
364 void *entry, unsigned long size, unsigned long min,
365 unsigned long max, gfp_t gfp);
366 int mtree_alloc_cyclic(struct maple_tree *mt, unsigned long *startp,
367 void *entry, unsigned long range_lo, unsigned long range_hi,
368 unsigned long *next, gfp_t gfp);
369 int mtree_alloc_rrange(struct maple_tree *mt, unsigned long *startp,
370 void *entry, unsigned long size, unsigned long min,
371 unsigned long max, gfp_t gfp);
372
373 int mtree_store_range(struct maple_tree *mt, unsigned long first,
374 unsigned long last, void *entry, gfp_t gfp);
375 int mtree_store(struct maple_tree *mt, unsigned long index,
376 void *entry, gfp_t gfp);
377 void *mtree_erase(struct maple_tree *mt, unsigned long index);
378
379 int mtree_dup(struct maple_tree *mt, struct maple_tree *new, gfp_t gfp);
380 int __mt_dup(struct maple_tree *mt, struct maple_tree *new, gfp_t gfp);
381
382 void mtree_destroy(struct maple_tree *mt);
383 void __mt_destroy(struct maple_tree *mt);
384
385 /**
386 * mtree_empty() - Determine if a tree has any present entries.
387 * @mt: Maple Tree.
388 *
389 * Context: Any context.
390 * Return: %true if the tree contains only NULL pointers.
391 */
mtree_empty(const struct maple_tree * mt)392 static inline bool mtree_empty(const struct maple_tree *mt)
393 {
394 return mt->ma_root == NULL;
395 }
396
397 /* Advanced API */
398
399 /*
400 * Maple State Status
401 * ma_active means the maple state is pointing to a node and offset and can
402 * continue operating on the tree.
403 * ma_start means we have not searched the tree.
404 * ma_root means we have searched the tree and the entry we found lives in
405 * the root of the tree (ie it has index 0, length 1 and is the only entry in
406 * the tree).
407 * ma_none means we have searched the tree and there is no node in the
408 * tree for this entry. For example, we searched for index 1 in an empty
409 * tree. Or we have a tree which points to a full leaf node and we
410 * searched for an entry which is larger than can be contained in that
411 * leaf node.
412 * ma_pause means the data within the maple state may be stale, restart the
413 * operation
414 * ma_overflow means the search has reached the upper limit of the search
415 * ma_underflow means the search has reached the lower limit of the search
416 * ma_error means there was an error, check the node for the error number.
417 */
418 enum maple_status {
419 ma_active,
420 ma_start,
421 ma_root,
422 ma_none,
423 ma_pause,
424 ma_overflow,
425 ma_underflow,
426 ma_error,
427 };
428
429 /*
430 * The maple state is defined in the struct ma_state and is used to keep track
431 * of information during operations, and even between operations when using the
432 * advanced API.
433 *
434 * If state->node has bit 0 set then it references a tree location which is not
435 * a node (eg the root). If bit 1 is set, the rest of the bits are a negative
436 * errno. Bit 2 (the 'unallocated slots' bit) is clear. Bits 3-6 indicate the
437 * node type.
438 *
439 * state->alloc either has a request number of nodes or an allocated node. If
440 * stat->alloc has a requested number of nodes, the first bit will be set (0x1)
441 * and the remaining bits are the value. If state->alloc is a node, then the
442 * node will be of type maple_alloc. maple_alloc has MAPLE_NODE_SLOTS - 1 for
443 * storing more allocated nodes, a total number of nodes allocated, and the
444 * node_count in this node. node_count is the number of allocated nodes in this
445 * node. The scaling beyond MAPLE_NODE_SLOTS - 1 is handled by storing further
446 * nodes into state->alloc->slot[0]'s node. Nodes are taken from state->alloc
447 * by removing a node from the state->alloc node until state->alloc->node_count
448 * is 1, when state->alloc is returned and the state->alloc->slot[0] is promoted
449 * to state->alloc. Nodes are pushed onto state->alloc by putting the current
450 * state->alloc into the pushed node's slot[0].
451 *
452 * The state also contains the implied min/max of the state->node, the depth of
453 * this search, and the offset. The implied min/max are either from the parent
454 * node or are 0-oo for the root node. The depth is incremented or decremented
455 * every time a node is walked down or up. The offset is the slot/pivot of
456 * interest in the node - either for reading or writing.
457 *
458 * When returning a value the maple state index and last respectively contain
459 * the start and end of the range for the entry. Ranges are inclusive in the
460 * Maple Tree.
461 *
462 * The status of the state is used to determine how the next action should treat
463 * the state. For instance, if the status is ma_start then the next action
464 * should start at the root of the tree and walk down. If the status is
465 * ma_pause then the node may be stale data and should be discarded. If the
466 * status is ma_overflow, then the last action hit the upper limit.
467 *
468 */
469 struct ma_state {
470 struct maple_tree *tree; /* The tree we're operating in */
471 unsigned long index; /* The index we're operating on - range start */
472 unsigned long last; /* The last index we're operating on - range end */
473 struct maple_enode *node; /* The node containing this entry */
474 unsigned long min; /* The minimum index of this node - implied pivot min */
475 unsigned long max; /* The maximum index of this node - implied pivot max */
476 struct slab_sheaf *sheaf; /* Allocated nodes for this operation */
477 struct maple_node *alloc; /* A single allocated node for fast path writes */
478 unsigned long node_request; /* The number of nodes to allocate for this operation */
479 enum maple_status status; /* The status of the state (active, start, none, etc) */
480 unsigned char depth; /* depth of tree descent during write */
481 unsigned char offset;
482 unsigned char mas_flags;
483 unsigned char end; /* The end of the node */
484 enum store_type store_type; /* The type of store needed for this operation */
485 #ifdef CONFIG_LOCKDEP
486 u32 ld_seq;
487 #ifdef CONFIG_RCU_STRICT_GRACE_PERIOD
488 unsigned long rcu_gp;
489 #endif /* CONFIG_RCU_STRICT_GRACE_PERIOD */
490 #endif /* CONFIG_LOCKDEP */
491 };
492
493 struct ma_wr_state {
494 struct ma_state *mas;
495 struct maple_node *node; /* Decoded mas->node */
496 unsigned long r_min; /* range min */
497 unsigned long r_max; /* range max */
498 enum maple_type type; /* mas->node type */
499 unsigned char offset_end; /* The offset where the write ends */
500 unsigned long *pivots; /* mas->node->pivots pointer */
501 unsigned long end_piv; /* The pivot at the offset end */
502 void __rcu **slots; /* mas->node->slots pointer */
503 void *entry; /* The entry to write */
504 void *content; /* The existing entry that is being overwritten */
505 unsigned char vacant_height; /* Height of lowest node with free space */
506 unsigned char sufficient_height;/* Height of lowest node with min sufficiency + 1 nodes */
507 };
508
509 #define mas_lock(mas) spin_lock(&((mas)->tree->ma_lock))
510 #define mas_lock_nested(mas, subclass) \
511 spin_lock_nested(&((mas)->tree->ma_lock), subclass)
512 #define mas_unlock(mas) spin_unlock(&((mas)->tree->ma_lock))
513
514 /*
515 * Special values for ma_state.node.
516 * MA_ERROR represents an errno. After dropping the lock and attempting
517 * to resolve the error, the walk would have to be restarted from the
518 * top of the tree as the tree may have been modified.
519 */
520 #define MA_ERROR(err) \
521 ((struct maple_enode *)(((unsigned long)err << 2) | 2UL))
522
523 /*
524 * When changing MA_STATE, remember to also change rust/kernel/maple_tree.rs
525 */
526 #define MA_STATE(name, mt, first, end) \
527 struct ma_state name = { \
528 .tree = mt, \
529 .index = first, \
530 .last = end, \
531 .node = NULL, \
532 .status = ma_start, \
533 .min = 0, \
534 .max = ULONG_MAX, \
535 .sheaf = NULL, \
536 .alloc = NULL, \
537 .node_request = 0, \
538 .mas_flags = 0, \
539 .store_type = wr_invalid, \
540 }
541
542 #define MA_WR_STATE(name, ma_state, wr_entry) \
543 struct ma_wr_state name = { \
544 .mas = ma_state, \
545 .content = NULL, \
546 .entry = wr_entry, \
547 .vacant_height = 0, \
548 .sufficient_height = 0 \
549 }
550
551 #define MA_TOPIARY(name, tree) \
552 struct ma_topiary name = { \
553 .head = NULL, \
554 .tail = NULL, \
555 .mtree = tree, \
556 }
557
558 void *mas_walk(struct ma_state *mas);
559 void *mas_store(struct ma_state *mas, void *entry);
560 void *mas_erase(struct ma_state *mas);
561 int mas_store_gfp(struct ma_state *mas, void *entry, gfp_t gfp);
562 void mas_store_prealloc(struct ma_state *mas, void *entry);
563 void *mas_find(struct ma_state *mas, unsigned long max);
564 void *mas_find_range(struct ma_state *mas, unsigned long max);
565 void *mas_find_rev(struct ma_state *mas, unsigned long min);
566 void *mas_find_range_rev(struct ma_state *mas, unsigned long max);
567 int mas_preallocate(struct ma_state *mas, void *entry, gfp_t gfp);
568 int mas_alloc_cyclic(struct ma_state *mas, unsigned long *startp,
569 void *entry, unsigned long range_lo, unsigned long range_hi,
570 unsigned long *next, gfp_t gfp);
571
572 bool mas_nomem(struct ma_state *mas, gfp_t gfp);
573 bool mas_nomem_nofail(struct ma_state *mas, unsigned long index,
574 unsigned long last);
575 void mas_pause(struct ma_state *mas);
576 void maple_tree_init(void);
577 void mas_destroy(struct ma_state *mas);
578
579 void *mas_prev(struct ma_state *mas, unsigned long min);
580 void *mas_prev_range(struct ma_state *mas, unsigned long min);
581 void *mas_next(struct ma_state *mas, unsigned long max);
582 void *mas_next_range(struct ma_state *mas, unsigned long max);
583
584 int mas_empty_area(struct ma_state *mas, unsigned long min, unsigned long max,
585 unsigned long size);
586 /*
587 * This finds an empty area from the highest address to the lowest.
588 * AKA "Topdown" version,
589 */
590 int mas_empty_area_rev(struct ma_state *mas, unsigned long min,
591 unsigned long max, unsigned long size);
592
mas_init(struct ma_state * mas,struct maple_tree * tree,unsigned long addr)593 static inline void mas_init(struct ma_state *mas, struct maple_tree *tree,
594 unsigned long addr)
595 {
596 memset(mas, 0, sizeof(struct ma_state));
597 mas->tree = tree;
598 mas->index = mas->last = addr;
599 mas->max = ULONG_MAX;
600 mas->status = ma_start;
601 mas->node = NULL;
602 }
603
mas_is_active(struct ma_state * mas)604 static inline bool mas_is_active(struct ma_state *mas)
605 {
606 return mas->status == ma_active;
607 }
608
mas_is_err(struct ma_state * mas)609 static inline bool mas_is_err(struct ma_state *mas)
610 {
611 return mas->status == ma_error;
612 }
613
614 /**
615 * mas_reset() - Reset a Maple Tree operation state.
616 * @mas: Maple Tree operation state.
617 *
618 * Resets the error or walk state of the @mas so future walks of the
619 * array will start from the root. Use this if you have dropped the
620 * lock and want to reuse the ma_state.
621 *
622 * Context: Any context.
623 */
mas_reset(struct ma_state * mas)624 static __always_inline void mas_reset(struct ma_state *mas)
625 {
626 mas->status = ma_start;
627 mas->node = NULL;
628 }
629
630 /**
631 * mas_for_each() - Iterate over a range of the maple tree.
632 * @__mas: Maple Tree operation state (maple_state)
633 * @__entry: Entry retrieved from the tree
634 * @__max: maximum index to retrieve from the tree
635 *
636 * When returned, mas->index and mas->last will hold the entire range for the
637 * entry.
638 *
639 * Note: may return the zero entry.
640 */
641 #define mas_for_each(__mas, __entry, __max) \
642 while (((__entry) = mas_find((__mas), (__max))) != NULL)
643
644 /**
645 * mas_for_each_rev() - Iterate over a range of the maple tree in reverse order.
646 * @__mas: Maple Tree operation state (maple_state)
647 * @__entry: Entry retrieved from the tree
648 * @__min: minimum index to retrieve from the tree
649 *
650 * When returned, mas->index and mas->last will hold the entire range for the
651 * entry.
652 *
653 * Note: may return the zero entry.
654 */
655 #define mas_for_each_rev(__mas, __entry, __min) \
656 while (((__entry) = mas_find_rev((__mas), (__min))) != NULL)
657
658 #ifdef CONFIG_DEBUG_MAPLE_TREE
659 enum mt_dump_format {
660 mt_dump_dec,
661 mt_dump_hex,
662 };
663
664 extern atomic_t maple_tree_tests_run;
665 extern atomic_t maple_tree_tests_passed;
666
667 void mt_dump(const struct maple_tree *mt, enum mt_dump_format format);
668 void mas_dump(const struct ma_state *mas);
669 void mas_wr_dump(const struct ma_wr_state *wr_mas);
670 void mt_validate(struct maple_tree *mt);
671 void mt_cache_shrink(void);
672 #define MT_BUG_ON(__tree, __x) do { \
673 atomic_inc(&maple_tree_tests_run); \
674 if (__x) { \
675 pr_info("BUG at %s:%d (%u)\n", \
676 __func__, __LINE__, __x); \
677 mt_dump(__tree, mt_dump_hex); \
678 pr_info("Pass: %u Run:%u\n", \
679 atomic_read(&maple_tree_tests_passed), \
680 atomic_read(&maple_tree_tests_run)); \
681 dump_stack(); \
682 } else { \
683 atomic_inc(&maple_tree_tests_passed); \
684 } \
685 } while (0)
686
687 #define MAS_BUG_ON(__mas, __x) do { \
688 atomic_inc(&maple_tree_tests_run); \
689 if (__x) { \
690 pr_info("BUG at %s:%d (%u)\n", \
691 __func__, __LINE__, __x); \
692 mas_dump(__mas); \
693 mt_dump((__mas)->tree, mt_dump_hex); \
694 pr_info("Pass: %u Run:%u\n", \
695 atomic_read(&maple_tree_tests_passed), \
696 atomic_read(&maple_tree_tests_run)); \
697 dump_stack(); \
698 } else { \
699 atomic_inc(&maple_tree_tests_passed); \
700 } \
701 } while (0)
702
703 #define MAS_WR_BUG_ON(__wrmas, __x) do { \
704 atomic_inc(&maple_tree_tests_run); \
705 if (__x) { \
706 pr_info("BUG at %s:%d (%u)\n", \
707 __func__, __LINE__, __x); \
708 mas_wr_dump(__wrmas); \
709 mas_dump((__wrmas)->mas); \
710 mt_dump((__wrmas)->mas->tree, mt_dump_hex); \
711 pr_info("Pass: %u Run:%u\n", \
712 atomic_read(&maple_tree_tests_passed), \
713 atomic_read(&maple_tree_tests_run)); \
714 dump_stack(); \
715 } else { \
716 atomic_inc(&maple_tree_tests_passed); \
717 } \
718 } while (0)
719
720 #define MT_WARN_ON(__tree, __x) ({ \
721 int ret = !!(__x); \
722 atomic_inc(&maple_tree_tests_run); \
723 if (ret) { \
724 pr_info("WARN at %s:%d (%u)\n", \
725 __func__, __LINE__, __x); \
726 mt_dump(__tree, mt_dump_hex); \
727 pr_info("Pass: %u Run:%u\n", \
728 atomic_read(&maple_tree_tests_passed), \
729 atomic_read(&maple_tree_tests_run)); \
730 dump_stack(); \
731 } else { \
732 atomic_inc(&maple_tree_tests_passed); \
733 } \
734 unlikely(ret); \
735 })
736
737 #define MAS_WARN_ON(__mas, __x) ({ \
738 int ret = !!(__x); \
739 atomic_inc(&maple_tree_tests_run); \
740 if (ret) { \
741 pr_info("WARN at %s:%d (%u)\n", \
742 __func__, __LINE__, __x); \
743 mas_dump(__mas); \
744 mt_dump((__mas)->tree, mt_dump_hex); \
745 pr_info("Pass: %u Run:%u\n", \
746 atomic_read(&maple_tree_tests_passed), \
747 atomic_read(&maple_tree_tests_run)); \
748 dump_stack(); \
749 } else { \
750 atomic_inc(&maple_tree_tests_passed); \
751 } \
752 unlikely(ret); \
753 })
754
755 #define MAS_WR_WARN_ON(__wrmas, __x) ({ \
756 int ret = !!(__x); \
757 atomic_inc(&maple_tree_tests_run); \
758 if (ret) { \
759 pr_info("WARN at %s:%d (%u)\n", \
760 __func__, __LINE__, __x); \
761 mas_wr_dump(__wrmas); \
762 mas_dump((__wrmas)->mas); \
763 mt_dump((__wrmas)->mas->tree, mt_dump_hex); \
764 pr_info("Pass: %u Run:%u\n", \
765 atomic_read(&maple_tree_tests_passed), \
766 atomic_read(&maple_tree_tests_run)); \
767 dump_stack(); \
768 } else { \
769 atomic_inc(&maple_tree_tests_passed); \
770 } \
771 unlikely(ret); \
772 })
773 #else
774 #define MT_BUG_ON(__tree, __x) BUG_ON(__x)
775 #define MAS_BUG_ON(__mas, __x) BUG_ON(__x)
776 #define MAS_WR_BUG_ON(__mas, __x) BUG_ON(__x)
777 #define MT_WARN_ON(__tree, __x) WARN_ON(__x)
778 #define MAS_WARN_ON(__mas, __x) WARN_ON(__x)
779 #define MAS_WR_WARN_ON(__mas, __x) WARN_ON(__x)
780 #endif /* CONFIG_DEBUG_MAPLE_TREE */
781
782 /**
783 * __mas_set_range() - Set up Maple Tree operation state to a sub-range of the
784 * current location.
785 * @mas: Maple Tree operation state.
786 * @start: New start of range in the Maple Tree.
787 * @last: New end of range in the Maple Tree.
788 *
789 * set the internal maple state values to a sub-range.
790 * Please use mas_set_range() if you do not know where you are in the tree.
791 */
__mas_set_range(struct ma_state * mas,unsigned long start,unsigned long last)792 static inline void __mas_set_range(struct ma_state *mas, unsigned long start,
793 unsigned long last)
794 {
795 /* Ensure the range starts within the current slot */
796 MAS_WARN_ON(mas, mas_is_active(mas) &&
797 (mas->index > start || mas->last < start));
798 mas->index = start;
799 mas->last = last;
800 }
801
802 /**
803 * mas_set_range() - Set up Maple Tree operation state for a different index.
804 * @mas: Maple Tree operation state.
805 * @start: New start of range in the Maple Tree.
806 * @last: New end of range in the Maple Tree.
807 *
808 * Move the operation state to refer to a different range. This will
809 * have the effect of starting a walk from the top; see mas_next()
810 * to move to an adjacent index.
811 */
812 static inline
mas_set_range(struct ma_state * mas,unsigned long start,unsigned long last)813 void mas_set_range(struct ma_state *mas, unsigned long start, unsigned long last)
814 {
815 mas_reset(mas);
816 __mas_set_range(mas, start, last);
817 }
818
819 /**
820 * mas_set() - Set up Maple Tree operation state for a different index.
821 * @mas: Maple Tree operation state.
822 * @index: New index into the Maple Tree.
823 *
824 * Move the operation state to refer to a different index. This will
825 * have the effect of starting a walk from the top; see mas_next()
826 * to move to an adjacent index.
827 */
mas_set(struct ma_state * mas,unsigned long index)828 static inline void mas_set(struct ma_state *mas, unsigned long index)
829 {
830
831 mas_set_range(mas, index, index);
832 }
833
mt_external_lock(const struct maple_tree * mt)834 static inline bool mt_external_lock(const struct maple_tree *mt)
835 {
836 return (mt->ma_flags & MT_FLAGS_LOCK_MASK) == MT_FLAGS_LOCK_EXTERN;
837 }
838
839 /**
840 * mt_init_flags() - Initialise an empty maple tree with flags.
841 * @mt: Maple Tree
842 * @flags: maple tree flags.
843 *
844 * If you need to initialise a Maple Tree with special flags (eg, an
845 * allocation tree), use this function.
846 *
847 * Context: Any context.
848 */
mt_init_flags(struct maple_tree * mt,unsigned int flags)849 static inline void mt_init_flags(struct maple_tree *mt, unsigned int flags)
850 {
851 mt->ma_flags = flags;
852 if (!mt_external_lock(mt))
853 spin_lock_init(&mt->ma_lock);
854 rcu_assign_pointer(mt->ma_root, NULL);
855 }
856
857 /**
858 * mt_init() - Initialise an empty maple tree.
859 * @mt: Maple Tree
860 *
861 * An empty Maple Tree.
862 *
863 * Context: Any context.
864 */
mt_init(struct maple_tree * mt)865 static inline void mt_init(struct maple_tree *mt)
866 {
867 mt_init_flags(mt, 0);
868 }
869
mt_in_rcu(struct maple_tree * mt)870 static inline bool mt_in_rcu(struct maple_tree *mt)
871 {
872 return mt->ma_flags & MT_FLAGS_USE_RCU;
873 }
874
875 /**
876 * mt_clear_in_rcu() - Switch the tree to non-RCU mode.
877 * @mt: The Maple Tree
878 */
mt_clear_in_rcu(struct maple_tree * mt)879 static inline void mt_clear_in_rcu(struct maple_tree *mt)
880 {
881 if (!mt_in_rcu(mt))
882 return;
883
884 if (mt_external_lock(mt)) {
885 WARN_ON(!mt_lock_is_held(mt));
886 mt->ma_flags &= ~MT_FLAGS_USE_RCU;
887 } else {
888 mtree_lock(mt);
889 mt->ma_flags &= ~MT_FLAGS_USE_RCU;
890 mtree_unlock(mt);
891 }
892 }
893
894 /**
895 * mt_set_in_rcu() - Switch the tree to RCU safe mode.
896 * @mt: The Maple Tree
897 */
mt_set_in_rcu(struct maple_tree * mt)898 static inline void mt_set_in_rcu(struct maple_tree *mt)
899 {
900 if (mt_in_rcu(mt))
901 return;
902
903 if (mt_external_lock(mt)) {
904 WARN_ON(!mt_lock_is_held(mt));
905 mt->ma_flags |= MT_FLAGS_USE_RCU;
906 } else {
907 mtree_lock(mt);
908 mt->ma_flags |= MT_FLAGS_USE_RCU;
909 mtree_unlock(mt);
910 }
911 }
912
mt_height(const struct maple_tree * mt)913 static inline unsigned int mt_height(const struct maple_tree *mt)
914 {
915 return (mt->ma_flags & MT_FLAGS_HEIGHT_MASK) >> MT_FLAGS_HEIGHT_OFFSET;
916 }
917
918 void *mt_find(struct maple_tree *mt, unsigned long *index, unsigned long max);
919 void *mt_find_after(struct maple_tree *mt, unsigned long *index,
920 unsigned long max);
921 void *mt_prev(struct maple_tree *mt, unsigned long index, unsigned long min);
922 void *mt_next(struct maple_tree *mt, unsigned long index, unsigned long max);
923
924 /**
925 * mt_for_each - Iterate over each entry starting at index until max.
926 * @__tree: The Maple Tree
927 * @__entry: The current entry
928 * @__index: The index to start the search from. Subsequently used as iterator.
929 * @__max: The maximum limit for @index
930 *
931 * This iterator skips all entries, which resolve to a NULL pointer,
932 * e.g. entries which has been reserved with XA_ZERO_ENTRY.
933 */
934 #define mt_for_each(__tree, __entry, __index, __max) \
935 for (__entry = mt_find(__tree, &(__index), __max); \
936 __entry; __entry = mt_find_after(__tree, &(__index), __max))
937
938 #endif /*_LINUX_MAPLE_TREE_H */
939