fix: sysconf(_SC_NPROCESSORS_CONF) can be less than max cpu id
[urcu.git] / src / rculfhash.c
CommitLineData
5e28c532 1/*
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2 * rculfhash.c
3 *
1475579c 4 * Userspace RCU library - Lock-Free Resizable RCU Hash Table
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5 *
6 * Copyright 2010-2011 - Mathieu Desnoyers <mathieu.desnoyers@efficios.com>
0dcf4847 7 * Copyright 2011 - Lai Jiangshan <laijs@cn.fujitsu.com>
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8 *
9 * This library is free software; you can redistribute it and/or
10 * modify it under the terms of the GNU Lesser General Public
11 * License as published by the Free Software Foundation; either
12 * version 2.1 of the License, or (at your option) any later version.
13 *
14 * This library is distributed in the hope that it will be useful,
15 * but WITHOUT ANY WARRANTY; without even the implied warranty of
16 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
17 * Lesser General Public License for more details.
18 *
19 * You should have received a copy of the GNU Lesser General Public
20 * License along with this library; if not, write to the Free Software
21 * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
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22 */
23
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24/*
25 * Based on the following articles:
26 * - Ori Shalev and Nir Shavit. Split-ordered lists: Lock-free
27 * extensible hash tables. J. ACM 53, 3 (May 2006), 379-405.
28 * - Michael, M. M. High performance dynamic lock-free hash tables
29 * and list-based sets. In Proceedings of the fourteenth annual ACM
30 * symposium on Parallel algorithms and architectures, ACM Press,
31 * (2002), 73-82.
32 *
1475579c 33 * Some specificities of this Lock-Free Resizable RCU Hash Table
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34 * implementation:
35 *
36 * - RCU read-side critical section allows readers to perform hash
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37 * table lookups, as well as traversals, and use the returned objects
38 * safely by allowing memory reclaim to take place only after a grace
39 * period.
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40 * - Add and remove operations are lock-free, and do not need to
41 * allocate memory. They need to be executed within RCU read-side
42 * critical section to ensure the objects they read are valid and to
43 * deal with the cmpxchg ABA problem.
44 * - add and add_unique operations are supported. add_unique checks if
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45 * the node key already exists in the hash table. It ensures not to
46 * populate a duplicate key if the node key already exists in the hash
47 * table.
48 * - The resize operation executes concurrently with
49 * add/add_unique/add_replace/remove/lookup/traversal.
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50 * - Hash table nodes are contained within a split-ordered list. This
51 * list is ordered by incrementing reversed-bits-hash value.
1ee8f000 52 * - An index of bucket nodes is kept. These bucket nodes are the hash
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53 * table "buckets". These buckets are internal nodes that allow to
54 * perform a fast hash lookup, similarly to a skip list. These
55 * buckets are chained together in the split-ordered list, which
56 * allows recursive expansion by inserting new buckets between the
57 * existing buckets. The split-ordered list allows adding new buckets
58 * between existing buckets as the table needs to grow.
59 * - The resize operation for small tables only allows expanding the
60 * hash table. It is triggered automatically by detecting long chains
61 * in the add operation.
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62 * - The resize operation for larger tables (and available through an
63 * API) allows both expanding and shrinking the hash table.
4c42f1b8 64 * - Split-counters are used to keep track of the number of
1475579c 65 * nodes within the hash table for automatic resize triggering.
e753ff5a 66 * - Resize operation initiated by long chain detection is executed by a
d0ec0ed2 67 * worker thread, which keeps lock-freedom of add and remove.
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68 * - Resize operations are protected by a mutex.
69 * - The removal operation is split in two parts: first, a "removed"
70 * flag is set in the next pointer within the node to remove. Then,
71 * a "garbage collection" is performed in the bucket containing the
72 * removed node (from the start of the bucket up to the removed node).
73 * All encountered nodes with "removed" flag set in their next
74 * pointers are removed from the linked-list. If the cmpxchg used for
75 * removal fails (due to concurrent garbage-collection or concurrent
76 * add), we retry from the beginning of the bucket. This ensures that
77 * the node with "removed" flag set is removed from the hash table
78 * (not visible to lookups anymore) before the RCU read-side critical
79 * section held across removal ends. Furthermore, this ensures that
80 * the node with "removed" flag set is removed from the linked-list
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81 * before its memory is reclaimed. After setting the "removal" flag,
82 * only the thread which removal is the first to set the "removal
83 * owner" flag (with an xchg) into a node's next pointer is considered
84 * to have succeeded its removal (and thus owns the node to reclaim).
85 * Because we garbage-collect starting from an invariant node (the
86 * start-of-bucket bucket node) up to the "removed" node (or find a
87 * reverse-hash that is higher), we are sure that a successful
88 * traversal of the chain leads to a chain that is present in the
1f67ba50 89 * linked-list (the start node is never removed) and that it does not
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90 * contain the "removed" node anymore, even if concurrent delete/add
91 * operations are changing the structure of the list concurrently.
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92 * - The add operations perform garbage collection of buckets if they
93 * encounter nodes with removed flag set in the bucket where they want
94 * to add their new node. This ensures lock-freedom of add operation by
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95 * helping the remover unlink nodes from the list rather than to wait
96 * for it do to so.
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97 * - There are three memory backends for the hash table buckets: the
98 * "order table", the "chunks", and the "mmap".
99 * - These bucket containers contain a compact version of the hash table
100 * nodes.
101 * - The RCU "order table":
102 * - has a first level table indexed by log2(hash index) which is
103 * copied and expanded by the resize operation. This order table
104 * allows finding the "bucket node" tables.
105 * - There is one bucket node table per hash index order. The size of
106 * each bucket node table is half the number of hashes contained in
107 * this order (except for order 0).
108 * - The RCU "chunks" is best suited for close interaction with a page
109 * allocator. It uses a linear array as index to "chunks" containing
110 * each the same number of buckets.
111 * - The RCU "mmap" memory backend uses a single memory map to hold
112 * all buckets.
5f177b1c 113 * - synchronize_rcu is used to garbage-collect the old bucket node table.
93d46c39 114 *
7f949215 115 * Ordering Guarantees:
0f5543cb 116 *
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117 * To discuss these guarantees, we first define "read" operation as any
118 * of the the basic cds_lfht_lookup, cds_lfht_next_duplicate,
119 * cds_lfht_first, cds_lfht_next operation, as well as
67ecffc0 120 * cds_lfht_add_unique (failure).
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121 *
122 * We define "read traversal" operation as any of the following
123 * group of operations
0f5543cb 124 * - cds_lfht_lookup followed by iteration with cds_lfht_next_duplicate
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125 * (and/or cds_lfht_next, although less common).
126 * - cds_lfht_add_unique (failure) followed by iteration with
127 * cds_lfht_next_duplicate (and/or cds_lfht_next, although less
128 * common).
129 * - cds_lfht_first followed iteration with cds_lfht_next (and/or
130 * cds_lfht_next_duplicate, although less common).
0f5543cb 131 *
bf09adc7 132 * We define "write" operations as any of cds_lfht_add, cds_lfht_replace,
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133 * cds_lfht_add_unique (success), cds_lfht_add_replace, cds_lfht_del.
134 *
135 * When cds_lfht_add_unique succeeds (returns the node passed as
136 * parameter), it acts as a "write" operation. When cds_lfht_add_unique
137 * fails (returns a node different from the one passed as parameter), it
138 * acts as a "read" operation. A cds_lfht_add_unique failure is a
139 * cds_lfht_lookup "read" operation, therefore, any ordering guarantee
140 * referring to "lookup" imply any of "lookup" or cds_lfht_add_unique
141 * (failure).
142 *
143 * We define "prior" and "later" node as nodes observable by reads and
144 * read traversals respectively before and after a write or sequence of
145 * write operations.
146 *
147 * Hash-table operations are often cascaded, for example, the pointer
148 * returned by a cds_lfht_lookup() might be passed to a cds_lfht_next(),
149 * whose return value might in turn be passed to another hash-table
150 * operation. This entire cascaded series of operations must be enclosed
151 * by a pair of matching rcu_read_lock() and rcu_read_unlock()
152 * operations.
153 *
154 * The following ordering guarantees are offered by this hash table:
155 *
156 * A.1) "read" after "write": if there is ordering between a write and a
157 * later read, then the read is guaranteed to see the write or some
158 * later write.
159 * A.2) "read traversal" after "write": given that there is dependency
160 * ordering between reads in a "read traversal", if there is
161 * ordering between a write and the first read of the traversal,
162 * then the "read traversal" is guaranteed to see the write or
163 * some later write.
164 * B.1) "write" after "read": if there is ordering between a read and a
165 * later write, then the read will never see the write.
166 * B.2) "write" after "read traversal": given that there is dependency
167 * ordering between reads in a "read traversal", if there is
168 * ordering between the last read of the traversal and a later
169 * write, then the "read traversal" will never see the write.
170 * C) "write" while "read traversal": if a write occurs during a "read
171 * traversal", the traversal may, or may not, see the write.
172 * D.1) "write" after "write": if there is ordering between a write and
173 * a later write, then the later write is guaranteed to see the
174 * effects of the first write.
175 * D.2) Concurrent "write" pairs: The system will assign an arbitrary
176 * order to any pair of concurrent conflicting writes.
177 * Non-conflicting writes (for example, to different keys) are
178 * unordered.
179 * E) If a grace period separates a "del" or "replace" operation
180 * and a subsequent operation, then that subsequent operation is
181 * guaranteed not to see the removed item.
182 * F) Uniqueness guarantee: given a hash table that does not contain
183 * duplicate items for a given key, there will only be one item in
184 * the hash table after an arbitrary sequence of add_unique and/or
185 * add_replace operations. Note, however, that a pair of
186 * concurrent read operations might well access two different items
187 * with that key.
188 * G.1) If a pair of lookups for a given key are ordered (e.g. by a
189 * memory barrier), then the second lookup will return the same
190 * node as the previous lookup, or some later node.
191 * G.2) A "read traversal" that starts after the end of a prior "read
192 * traversal" (ordered by memory barriers) is guaranteed to see the
193 * same nodes as the previous traversal, or some later nodes.
194 * G.3) Concurrent "read" pairs: concurrent reads are unordered. For
195 * example, if a pair of reads to the same key run concurrently
196 * with an insertion of that same key, the reads remain unordered
197 * regardless of their return values. In other words, you cannot
198 * rely on the values returned by the reads to deduce ordering.
199 *
200 * Progress guarantees:
201 *
202 * * Reads are wait-free. These operations always move forward in the
203 * hash table linked list, and this list has no loop.
204 * * Writes are lock-free. Any retry loop performed by a write operation
205 * is triggered by progress made within another update operation.
0f5543cb 206 *
1ee8f000 207 * Bucket node tables:
93d46c39 208 *
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209 * hash table hash table the last all bucket node tables
210 * order size bucket node 0 1 2 3 4 5 6(index)
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211 * table size
212 * 0 1 1 1
213 * 1 2 1 1 1
214 * 2 4 2 1 1 2
215 * 3 8 4 1 1 2 4
216 * 4 16 8 1 1 2 4 8
217 * 5 32 16 1 1 2 4 8 16
218 * 6 64 32 1 1 2 4 8 16 32
219 *
1ee8f000 220 * When growing/shrinking, we only focus on the last bucket node table
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221 * which size is (!order ? 1 : (1 << (order -1))).
222 *
223 * Example for growing/shrinking:
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224 * grow hash table from order 5 to 6: init the index=6 bucket node table
225 * shrink hash table from order 6 to 5: fini the index=6 bucket node table
93d46c39 226 *
1475579c 227 * A bit of ascii art explanation:
67ecffc0 228 *
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229 * The order index is the off-by-one compared to the actual power of 2
230 * because we use index 0 to deal with the 0 special-case.
67ecffc0 231 *
1475579c 232 * This shows the nodes for a small table ordered by reversed bits:
67ecffc0 233 *
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234 * bits reverse
235 * 0 000 000
236 * 4 100 001
237 * 2 010 010
238 * 6 110 011
239 * 1 001 100
240 * 5 101 101
241 * 3 011 110
242 * 7 111 111
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243 *
244 * This shows the nodes in order of non-reversed bits, linked by
1475579c 245 * reversed-bit order.
67ecffc0 246 *
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247 * order bits reverse
248 * 0 0 000 000
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249 * 1 | 1 001 100 <-
250 * 2 | | 2 010 010 <- |
f6fdd688 251 * | | | 3 011 110 | <- |
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252 * 3 -> | | | 4 100 001 | |
253 * -> | | 5 101 101 |
254 * -> | 6 110 011
255 * -> 7 111 111
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256 */
257
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258#define _LGPL_SOURCE
259#include <stdlib.h>
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260#include <errno.h>
261#include <assert.h>
262#include <stdio.h>
abc490a1 263#include <stdint.h>
f000907d 264#include <string.h>
125f41db 265#include <sched.h>
95747f9e 266#include <unistd.h>
e0ba718a 267
a47dd11c 268#include "compat-getcpu.h"
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269#include <urcu/pointer.h>
270#include <urcu/call-rcu.h>
271#include <urcu/flavor.h>
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272#include <urcu/arch.h>
273#include <urcu/uatomic.h>
a42cc659 274#include <urcu/compiler.h>
abc490a1 275#include <urcu/rculfhash.h>
1a990de3 276#include <urcu/static/urcu-signal-nr.h>
0b6aa001 277#include <rculfhash-internal.h>
5e28c532 278#include <stdio.h>
464a1ec9 279#include <pthread.h>
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280#include <signal.h>
281#include "workqueue.h"
282#include "urcu-die.h"
83e334d0 283#include "urcu-utils.h"
01730852 284#include "compat-smp.h"
44395fb7 285
f8994aee 286/*
4c42f1b8 287 * Split-counters lazily update the global counter each 1024
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288 * addition/removal. It automatically keeps track of resize required.
289 * We use the bucket length as indicator for need to expand for small
ffa11a18 290 * tables and machines lacking per-cpu data support.
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291 */
292#define COUNT_COMMIT_ORDER 10
4ddbb355 293#define DEFAULT_SPLIT_COUNT_MASK 0xFUL
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294#define CHAIN_LEN_TARGET 1
295#define CHAIN_LEN_RESIZE_THRESHOLD 3
2ed95849 296
cd95516d 297/*
76a73da8 298 * Define the minimum table size.
cd95516d 299 */
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300#define MIN_TABLE_ORDER 0
301#define MIN_TABLE_SIZE (1UL << MIN_TABLE_ORDER)
cd95516d 302
b7d619b0 303/*
1ee8f000 304 * Minimum number of bucket nodes to touch per thread to parallelize grow/shrink.
b7d619b0 305 */
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306#define MIN_PARTITION_PER_THREAD_ORDER 12
307#define MIN_PARTITION_PER_THREAD (1UL << MIN_PARTITION_PER_THREAD_ORDER)
b7d619b0 308
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309/*
310 * The removed flag needs to be updated atomically with the pointer.
48ed1c18 311 * It indicates that no node must attach to the node scheduled for
b198f0fd 312 * removal, and that node garbage collection must be performed.
1ee8f000 313 * The bucket flag does not require to be updated atomically with the
d95bd160 314 * pointer, but it is added as a pointer low bit flag to save space.
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315 * The "removal owner" flag is used to detect which of the "del"
316 * operation that has set the "removed flag" gets to return the removed
317 * node to its caller. Note that the replace operation does not need to
318 * iteract with the "removal owner" flag, because it validates that
319 * the "removed" flag is not set before performing its cmpxchg.
d95bd160 320 */
d37166c6 321#define REMOVED_FLAG (1UL << 0)
1ee8f000 322#define BUCKET_FLAG (1UL << 1)
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323#define REMOVAL_OWNER_FLAG (1UL << 2)
324#define FLAGS_MASK ((1UL << 3) - 1)
d37166c6 325
bb7b2f26 326/* Value of the end pointer. Should not interact with flags. */
f9c80341 327#define END_VALUE NULL
bb7b2f26 328
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329/*
330 * ht_items_count: Split-counters counting the number of node addition
331 * and removal in the table. Only used if the CDS_LFHT_ACCOUNTING flag
332 * is set at hash table creation.
333 *
334 * These are free-running counters, never reset to zero. They count the
335 * number of add/remove, and trigger every (1 << COUNT_COMMIT_ORDER)
336 * operations to update the global counter. We choose a power-of-2 value
337 * for the trigger to deal with 32 or 64-bit overflow of the counter.
338 */
df44348d 339struct ht_items_count {
860d07e8 340 unsigned long add, del;
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341} __attribute__((aligned(CAA_CACHE_LINE_SIZE)));
342
7f52427b 343/*
d0ec0ed2 344 * resize_work: Contains arguments passed to worker thread
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345 * responsible for performing lazy resize.
346 */
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347struct resize_work {
348 struct urcu_work work;
14044b37 349 struct cds_lfht *ht;
abc490a1 350};
2ed95849 351
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352/*
353 * partition_resize_work: Contains arguments passed to worker threads
354 * executing the hash table resize on partitions of the hash table
355 * assigned to each processor's worker thread.
356 */
b7d619b0 357struct partition_resize_work {
1af6e26e 358 pthread_t thread_id;
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359 struct cds_lfht *ht;
360 unsigned long i, start, len;
361 void (*fct)(struct cds_lfht *ht, unsigned long i,
362 unsigned long start, unsigned long len);
363};
364
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365static struct urcu_workqueue *cds_lfht_workqueue;
366static unsigned long cds_lfht_workqueue_user_count;
367
368/*
369 * Mutex ensuring mutual exclusion between workqueue initialization and
370 * fork handlers. cds_lfht_fork_mutex nests inside call_rcu_mutex.
371 */
372static pthread_mutex_t cds_lfht_fork_mutex = PTHREAD_MUTEX_INITIALIZER;
373
374static struct urcu_atfork cds_lfht_atfork;
375
376/*
377 * atfork handler nesting counters. Handle being registered to many urcu
378 * flavors, thus being possibly invoked more than once in the
379 * pthread_atfork list of callbacks.
380 */
381static int cds_lfht_workqueue_atfork_nesting;
382
383static void cds_lfht_init_worker(const struct rcu_flavor_struct *flavor);
384static void cds_lfht_fini_worker(const struct rcu_flavor_struct *flavor);
385
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386#ifdef CONFIG_CDS_LFHT_ITER_DEBUG
387
388static
389void cds_lfht_iter_debug_set_ht(struct cds_lfht *ht, struct cds_lfht_iter *iter)
390{
391 iter->lfht = ht;
392}
393
394#define cds_lfht_iter_debug_assert(...) assert(__VA_ARGS__)
395
396#else
397
398static
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399void cds_lfht_iter_debug_set_ht(struct cds_lfht *ht __attribute__((unused)),
400 struct cds_lfht_iter *iter __attribute__((unused)))
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401{
402}
403
404#define cds_lfht_iter_debug_assert(...)
405
406#endif
407
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408/*
409 * Algorithm to reverse bits in a word by lookup table, extended to
410 * 64-bit words.
f9830efd 411 * Source:
abc490a1 412 * http://graphics.stanford.edu/~seander/bithacks.html#BitReverseTable
f9830efd 413 * Originally from Public Domain.
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414 */
415
67ecffc0 416static const uint8_t BitReverseTable256[256] =
2ed95849 417{
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418#define R2(n) (n), (n) + 2*64, (n) + 1*64, (n) + 3*64
419#define R4(n) R2(n), R2((n) + 2*16), R2((n) + 1*16), R2((n) + 3*16)
420#define R6(n) R4(n), R4((n) + 2*4 ), R4((n) + 1*4 ), R4((n) + 3*4 )
421 R6(0), R6(2), R6(1), R6(3)
422};
423#undef R2
424#undef R4
425#undef R6
2ed95849 426
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427static
428uint8_t bit_reverse_u8(uint8_t v)
429{
430 return BitReverseTable256[v];
431}
ab7d5fc6 432
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433#if (CAA_BITS_PER_LONG == 32)
434static
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435uint32_t bit_reverse_u32(uint32_t v)
436{
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437 return ((uint32_t) bit_reverse_u8(v) << 24) |
438 ((uint32_t) bit_reverse_u8(v >> 8) << 16) |
439 ((uint32_t) bit_reverse_u8(v >> 16) << 8) |
abc490a1 440 ((uint32_t) bit_reverse_u8(v >> 24));
2ed95849 441}
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442#else
443static
abc490a1 444uint64_t bit_reverse_u64(uint64_t v)
2ed95849 445{
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446 return ((uint64_t) bit_reverse_u8(v) << 56) |
447 ((uint64_t) bit_reverse_u8(v >> 8) << 48) |
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448 ((uint64_t) bit_reverse_u8(v >> 16) << 40) |
449 ((uint64_t) bit_reverse_u8(v >> 24) << 32) |
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450 ((uint64_t) bit_reverse_u8(v >> 32) << 24) |
451 ((uint64_t) bit_reverse_u8(v >> 40) << 16) |
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452 ((uint64_t) bit_reverse_u8(v >> 48) << 8) |
453 ((uint64_t) bit_reverse_u8(v >> 56));
454}
95bc7fb9 455#endif
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456
457static
458unsigned long bit_reverse_ulong(unsigned long v)
459{
460#if (CAA_BITS_PER_LONG == 32)
461 return bit_reverse_u32(v);
462#else
463 return bit_reverse_u64(v);
464#endif
465}
466
f9830efd 467/*
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468 * fls: returns the position of the most significant bit.
469 * Returns 0 if no bit is set, else returns the position of the most
470 * significant bit (from 1 to 32 on 32-bit, from 1 to 64 on 64-bit).
f9830efd 471 */
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472#if defined(__i386) || defined(__x86_64)
473static inline
474unsigned int fls_u32(uint32_t x)
f9830efd 475{
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476 int r;
477
e1789ce2 478 __asm__ ("bsrl %1,%0\n\t"
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479 "jnz 1f\n\t"
480 "movl $-1,%0\n\t"
481 "1:\n\t"
482 : "=r" (r) : "rm" (x));
483 return r + 1;
484}
485#define HAS_FLS_U32
486#endif
487
488#if defined(__x86_64)
489static inline
490unsigned int fls_u64(uint64_t x)
491{
492 long r;
493
e1789ce2 494 __asm__ ("bsrq %1,%0\n\t"
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495 "jnz 1f\n\t"
496 "movq $-1,%0\n\t"
497 "1:\n\t"
498 : "=r" (r) : "rm" (x));
499 return r + 1;
500}
501#define HAS_FLS_U64
502#endif
503
504#ifndef HAS_FLS_U64
505static __attribute__((unused))
506unsigned int fls_u64(uint64_t x)
507{
508 unsigned int r = 64;
509
510 if (!x)
511 return 0;
512
513 if (!(x & 0xFFFFFFFF00000000ULL)) {
514 x <<= 32;
515 r -= 32;
516 }
517 if (!(x & 0xFFFF000000000000ULL)) {
518 x <<= 16;
519 r -= 16;
520 }
521 if (!(x & 0xFF00000000000000ULL)) {
522 x <<= 8;
523 r -= 8;
524 }
525 if (!(x & 0xF000000000000000ULL)) {
526 x <<= 4;
527 r -= 4;
528 }
529 if (!(x & 0xC000000000000000ULL)) {
530 x <<= 2;
531 r -= 2;
532 }
533 if (!(x & 0x8000000000000000ULL)) {
534 x <<= 1;
535 r -= 1;
536 }
537 return r;
538}
539#endif
540
541#ifndef HAS_FLS_U32
542static __attribute__((unused))
543unsigned int fls_u32(uint32_t x)
544{
545 unsigned int r = 32;
f9830efd 546
24365af7
MD
547 if (!x)
548 return 0;
549 if (!(x & 0xFFFF0000U)) {
550 x <<= 16;
551 r -= 16;
552 }
553 if (!(x & 0xFF000000U)) {
554 x <<= 8;
555 r -= 8;
556 }
557 if (!(x & 0xF0000000U)) {
558 x <<= 4;
559 r -= 4;
560 }
561 if (!(x & 0xC0000000U)) {
562 x <<= 2;
563 r -= 2;
564 }
565 if (!(x & 0x80000000U)) {
566 x <<= 1;
567 r -= 1;
568 }
569 return r;
570}
571#endif
572
5bc6b66f 573unsigned int cds_lfht_fls_ulong(unsigned long x)
f9830efd 574{
6887cc5e 575#if (CAA_BITS_PER_LONG == 32)
24365af7
MD
576 return fls_u32(x);
577#else
578 return fls_u64(x);
579#endif
580}
f9830efd 581
920f8ef6
LJ
582/*
583 * Return the minimum order for which x <= (1UL << order).
584 * Return -1 if x is 0.
585 */
e3717dbc 586static
5bc6b66f 587int cds_lfht_get_count_order_u32(uint32_t x)
24365af7 588{
920f8ef6
LJ
589 if (!x)
590 return -1;
24365af7 591
920f8ef6 592 return fls_u32(x - 1);
24365af7
MD
593}
594
920f8ef6
LJ
595/*
596 * Return the minimum order for which x <= (1UL << order).
597 * Return -1 if x is 0.
598 */
5bc6b66f 599int cds_lfht_get_count_order_ulong(unsigned long x)
24365af7 600{
920f8ef6
LJ
601 if (!x)
602 return -1;
24365af7 603
5bc6b66f 604 return cds_lfht_fls_ulong(x - 1);
f9830efd
MD
605}
606
607static
ab65b890 608void cds_lfht_resize_lazy_grow(struct cds_lfht *ht, unsigned long size, int growth);
f9830efd 609
f8994aee 610static
4105056a 611void cds_lfht_resize_lazy_count(struct cds_lfht *ht, unsigned long size,
f8994aee
MD
612 unsigned long count);
613
5ffcaeef
MD
614static void mutex_lock(pthread_mutex_t *mutex)
615{
616 int ret;
617
618#ifndef DISTRUST_SIGNALS_EXTREME
619 ret = pthread_mutex_lock(mutex);
620 if (ret)
621 urcu_die(ret);
622#else /* #ifndef DISTRUST_SIGNALS_EXTREME */
623 while ((ret = pthread_mutex_trylock(mutex)) != 0) {
624 if (ret != EBUSY && ret != EINTR)
625 urcu_die(ret);
626 if (CMM_LOAD_SHARED(URCU_TLS(rcu_reader).need_mb)) {
627 cmm_smp_mb();
628 _CMM_STORE_SHARED(URCU_TLS(rcu_reader).need_mb, 0);
629 cmm_smp_mb();
630 }
631 (void) poll(NULL, 0, 10);
632 }
633#endif /* #else #ifndef DISTRUST_SIGNALS_EXTREME */
634}
635
636static void mutex_unlock(pthread_mutex_t *mutex)
637{
638 int ret;
639
640 ret = pthread_mutex_unlock(mutex);
641 if (ret)
642 urcu_die(ret);
643}
644
df44348d 645static long nr_cpus_mask = -1;
4c42f1b8 646static long split_count_mask = -1;
e53ab1eb 647static int split_count_order = -1;
4c42f1b8
LJ
648
649static void ht_init_nr_cpus_mask(void)
650{
651 long maxcpus;
652
01730852 653 maxcpus = get_possible_cpus_array_len();
4c42f1b8
LJ
654 if (maxcpus <= 0) {
655 nr_cpus_mask = -2;
656 return;
657 }
658 /*
659 * round up number of CPUs to next power of two, so we
660 * can use & for modulo.
661 */
5bc6b66f 662 maxcpus = 1UL << cds_lfht_get_count_order_ulong(maxcpus);
4c42f1b8
LJ
663 nr_cpus_mask = maxcpus - 1;
664}
df44348d
MD
665
666static
5afadd12 667void alloc_split_items_count(struct cds_lfht *ht)
df44348d 668{
4c42f1b8
LJ
669 if (nr_cpus_mask == -1) {
670 ht_init_nr_cpus_mask();
4ddbb355
LJ
671 if (nr_cpus_mask < 0)
672 split_count_mask = DEFAULT_SPLIT_COUNT_MASK;
673 else
674 split_count_mask = nr_cpus_mask;
e53ab1eb
MD
675 split_count_order =
676 cds_lfht_get_count_order_ulong(split_count_mask + 1);
df44348d 677 }
4c42f1b8 678
4ddbb355 679 assert(split_count_mask >= 0);
5afadd12
LJ
680
681 if (ht->flags & CDS_LFHT_ACCOUNTING) {
95bc7fb9
MD
682 ht->split_count = calloc(split_count_mask + 1,
683 sizeof(struct ht_items_count));
5afadd12
LJ
684 assert(ht->split_count);
685 } else {
686 ht->split_count = NULL;
687 }
df44348d
MD
688}
689
690static
5afadd12 691void free_split_items_count(struct cds_lfht *ht)
df44348d 692{
5afadd12 693 poison_free(ht->split_count);
df44348d
MD
694}
695
696static
14360f1c 697int ht_get_split_count_index(unsigned long hash)
df44348d
MD
698{
699 int cpu;
700
4c42f1b8 701 assert(split_count_mask >= 0);
a47dd11c 702 cpu = urcu_sched_getcpu();
8ed51e04 703 if (caa_unlikely(cpu < 0))
14360f1c 704 return hash & split_count_mask;
df44348d 705 else
4c42f1b8 706 return cpu & split_count_mask;
df44348d
MD
707}
708
709static
14360f1c 710void ht_count_add(struct cds_lfht *ht, unsigned long size, unsigned long hash)
df44348d 711{
83e334d0 712 unsigned long split_count, count;
4c42f1b8 713 int index;
df44348d 714
8ed51e04 715 if (caa_unlikely(!ht->split_count))
3171717f 716 return;
14360f1c 717 index = ht_get_split_count_index(hash);
4c42f1b8 718 split_count = uatomic_add_return(&ht->split_count[index].add, 1);
314558bf
MD
719 if (caa_likely(split_count & ((1UL << COUNT_COMMIT_ORDER) - 1)))
720 return;
721 /* Only if number of add multiple of 1UL << COUNT_COMMIT_ORDER */
722
723 dbg_printf("add split count %lu\n", split_count);
724 count = uatomic_add_return(&ht->count,
725 1UL << COUNT_COMMIT_ORDER);
4c299dcb 726 if (caa_likely(count & (count - 1)))
314558bf
MD
727 return;
728 /* Only if global count is power of 2 */
729
730 if ((count >> CHAIN_LEN_RESIZE_THRESHOLD) < size)
731 return;
83e334d0 732 dbg_printf("add set global %lu\n", count);
314558bf
MD
733 cds_lfht_resize_lazy_count(ht, size,
734 count >> (CHAIN_LEN_TARGET - 1));
df44348d
MD
735}
736
737static
14360f1c 738void ht_count_del(struct cds_lfht *ht, unsigned long size, unsigned long hash)
df44348d 739{
83e334d0 740 unsigned long split_count, count;
4c42f1b8 741 int index;
df44348d 742
8ed51e04 743 if (caa_unlikely(!ht->split_count))
3171717f 744 return;
14360f1c 745 index = ht_get_split_count_index(hash);
4c42f1b8 746 split_count = uatomic_add_return(&ht->split_count[index].del, 1);
314558bf
MD
747 if (caa_likely(split_count & ((1UL << COUNT_COMMIT_ORDER) - 1)))
748 return;
749 /* Only if number of deletes multiple of 1UL << COUNT_COMMIT_ORDER */
750
751 dbg_printf("del split count %lu\n", split_count);
752 count = uatomic_add_return(&ht->count,
753 -(1UL << COUNT_COMMIT_ORDER));
4c299dcb 754 if (caa_likely(count & (count - 1)))
314558bf
MD
755 return;
756 /* Only if global count is power of 2 */
757
758 if ((count >> CHAIN_LEN_RESIZE_THRESHOLD) >= size)
759 return;
ba9bda73 760 dbg_printf("del set global %lu\n", count);
314558bf
MD
761 /*
762 * Don't shrink table if the number of nodes is below a
763 * certain threshold.
764 */
765 if (count < (1UL << COUNT_COMMIT_ORDER) * (split_count_mask + 1))
766 return;
767 cds_lfht_resize_lazy_count(ht, size,
768 count >> (CHAIN_LEN_TARGET - 1));
df44348d
MD
769}
770
f9830efd 771static
4105056a 772void check_resize(struct cds_lfht *ht, unsigned long size, uint32_t chain_len)
f9830efd 773{
f8994aee
MD
774 unsigned long count;
775
b8af5011
MD
776 if (!(ht->flags & CDS_LFHT_AUTO_RESIZE))
777 return;
f8994aee
MD
778 count = uatomic_read(&ht->count);
779 /*
780 * Use bucket-local length for small table expand and for
781 * environments lacking per-cpu data support.
782 */
e53ab1eb 783 if (count >= (1UL << (COUNT_COMMIT_ORDER + split_count_order)))
f8994aee 784 return;
24365af7 785 if (chain_len > 100)
f0c29ed7 786 dbg_printf("WARNING: large chain length: %u.\n",
24365af7 787 chain_len);
e53ab1eb
MD
788 if (chain_len >= CHAIN_LEN_RESIZE_THRESHOLD) {
789 int growth;
790
791 /*
792 * Ideal growth calculated based on chain length.
793 */
794 growth = cds_lfht_get_count_order_u32(chain_len
795 - (CHAIN_LEN_TARGET - 1));
796 if ((ht->flags & CDS_LFHT_ACCOUNTING)
797 && (size << growth)
798 >= (1UL << (COUNT_COMMIT_ORDER
799 + split_count_order))) {
800 /*
801 * If ideal growth expands the hash table size
802 * beyond the "small hash table" sizes, use the
803 * maximum small hash table size to attempt
804 * expanding the hash table. This only applies
805 * when node accounting is available, otherwise
806 * the chain length is used to expand the hash
807 * table in every case.
808 */
809 growth = COUNT_COMMIT_ORDER + split_count_order
810 - cds_lfht_get_count_order_ulong(size);
811 if (growth <= 0)
812 return;
813 }
814 cds_lfht_resize_lazy_grow(ht, size, growth);
815 }
f9830efd
MD
816}
817
abc490a1 818static
14044b37 819struct cds_lfht_node *clear_flag(struct cds_lfht_node *node)
abc490a1 820{
14044b37 821 return (struct cds_lfht_node *) (((unsigned long) node) & ~FLAGS_MASK);
abc490a1
MD
822}
823
824static
afa5940d 825int is_removed(const struct cds_lfht_node *node)
abc490a1 826{
d37166c6 827 return ((unsigned long) node) & REMOVED_FLAG;
abc490a1
MD
828}
829
f5596c94 830static
1ee8f000 831int is_bucket(struct cds_lfht_node *node)
f5596c94 832{
1ee8f000 833 return ((unsigned long) node) & BUCKET_FLAG;
f5596c94
MD
834}
835
836static
1ee8f000 837struct cds_lfht_node *flag_bucket(struct cds_lfht_node *node)
f5596c94 838{
1ee8f000 839 return (struct cds_lfht_node *) (((unsigned long) node) | BUCKET_FLAG);
f5596c94 840}
bb7b2f26 841
db00ccc3
MD
842static
843int is_removal_owner(struct cds_lfht_node *node)
844{
845 return ((unsigned long) node) & REMOVAL_OWNER_FLAG;
846}
847
848static
849struct cds_lfht_node *flag_removal_owner(struct cds_lfht_node *node)
850{
851 return (struct cds_lfht_node *) (((unsigned long) node) | REMOVAL_OWNER_FLAG);
852}
853
71bb3aca
MD
854static
855struct cds_lfht_node *flag_removed_or_removal_owner(struct cds_lfht_node *node)
856{
857 return (struct cds_lfht_node *) (((unsigned long) node) | REMOVED_FLAG | REMOVAL_OWNER_FLAG);
858}
859
bb7b2f26
MD
860static
861struct cds_lfht_node *get_end(void)
862{
863 return (struct cds_lfht_node *) END_VALUE;
864}
865
866static
867int is_end(struct cds_lfht_node *node)
868{
869 return clear_flag(node) == (struct cds_lfht_node *) END_VALUE;
870}
871
abc490a1 872static
ab65b890
LJ
873unsigned long _uatomic_xchg_monotonic_increase(unsigned long *ptr,
874 unsigned long v)
abc490a1
MD
875{
876 unsigned long old1, old2;
877
878 old1 = uatomic_read(ptr);
879 do {
880 old2 = old1;
881 if (old2 >= v)
f9830efd 882 return old2;
abc490a1 883 } while ((old1 = uatomic_cmpxchg(ptr, old2, v)) != old2);
ab65b890 884 return old2;
abc490a1
MD
885}
886
48f1b16d
LJ
887static
888void cds_lfht_alloc_bucket_table(struct cds_lfht *ht, unsigned long order)
889{
0b6aa001 890 return ht->mm->alloc_bucket_table(ht, order);
48f1b16d
LJ
891}
892
893/*
894 * cds_lfht_free_bucket_table() should be called with decreasing order.
895 * When cds_lfht_free_bucket_table(0) is called, it means the whole
896 * lfht is destroyed.
897 */
898static
899void cds_lfht_free_bucket_table(struct cds_lfht *ht, unsigned long order)
900{
0b6aa001 901 return ht->mm->free_bucket_table(ht, order);
48f1b16d
LJ
902}
903
9d72a73f
LJ
904static inline
905struct cds_lfht_node *bucket_at(struct cds_lfht *ht, unsigned long index)
f4a9cc0b 906{
0b6aa001 907 return ht->bucket_at(ht, index);
f4a9cc0b
LJ
908}
909
9d72a73f
LJ
910static inline
911struct cds_lfht_node *lookup_bucket(struct cds_lfht *ht, unsigned long size,
912 unsigned long hash)
913{
914 assert(size > 0);
915 return bucket_at(ht, hash & (size - 1));
916}
917
273399de
MD
918/*
919 * Remove all logically deleted nodes from a bucket up to a certain node key.
920 */
921static
1ee8f000 922void _cds_lfht_gc_bucket(struct cds_lfht_node *bucket, struct cds_lfht_node *node)
273399de 923{
14044b37 924 struct cds_lfht_node *iter_prev, *iter, *next, *new_next;
273399de 925
1ee8f000
LJ
926 assert(!is_bucket(bucket));
927 assert(!is_removed(bucket));
2f943cd7 928 assert(!is_removal_owner(bucket));
1ee8f000 929 assert(!is_bucket(node));
c90201ac 930 assert(!is_removed(node));
2f943cd7 931 assert(!is_removal_owner(node));
273399de 932 for (;;) {
1ee8f000
LJ
933 iter_prev = bucket;
934 /* We can always skip the bucket node initially */
04db56f8 935 iter = rcu_dereference(iter_prev->next);
b4cb483f 936 assert(!is_removed(iter));
2f943cd7 937 assert(!is_removal_owner(iter));
04db56f8 938 assert(iter_prev->reverse_hash <= node->reverse_hash);
bd4db153 939 /*
1ee8f000 940 * We should never be called with bucket (start of chain)
bd4db153
MD
941 * and logically removed node (end of path compression
942 * marker) being the actual same node. This would be a
943 * bug in the algorithm implementation.
944 */
1ee8f000 945 assert(bucket != node);
273399de 946 for (;;) {
8ed51e04 947 if (caa_unlikely(is_end(iter)))
f9c80341 948 return;
04db56f8 949 if (caa_likely(clear_flag(iter)->reverse_hash > node->reverse_hash))
f9c80341 950 return;
04db56f8 951 next = rcu_dereference(clear_flag(iter)->next);
8ed51e04 952 if (caa_likely(is_removed(next)))
273399de 953 break;
b453eae1 954 iter_prev = clear_flag(iter);
273399de
MD
955 iter = next;
956 }
b198f0fd 957 assert(!is_removed(iter));
2f943cd7 958 assert(!is_removal_owner(iter));
1ee8f000
LJ
959 if (is_bucket(iter))
960 new_next = flag_bucket(clear_flag(next));
f5596c94
MD
961 else
962 new_next = clear_flag(next);
04db56f8 963 (void) uatomic_cmpxchg(&iter_prev->next, iter, new_next);
273399de
MD
964 }
965}
966
9357c415
MD
967static
968int _cds_lfht_replace(struct cds_lfht *ht, unsigned long size,
969 struct cds_lfht_node *old_node,
3fb86f26 970 struct cds_lfht_node *old_next,
9357c415
MD
971 struct cds_lfht_node *new_node)
972{
04db56f8 973 struct cds_lfht_node *bucket, *ret_next;
9357c415
MD
974
975 if (!old_node) /* Return -ENOENT if asked to replace NULL node */
7801dadd 976 return -ENOENT;
9357c415
MD
977
978 assert(!is_removed(old_node));
2f943cd7 979 assert(!is_removal_owner(old_node));
1ee8f000 980 assert(!is_bucket(old_node));
9357c415 981 assert(!is_removed(new_node));
2f943cd7 982 assert(!is_removal_owner(new_node));
1ee8f000 983 assert(!is_bucket(new_node));
9357c415 984 assert(new_node != old_node);
3fb86f26 985 for (;;) {
9357c415 986 /* Insert after node to be replaced */
9357c415
MD
987 if (is_removed(old_next)) {
988 /*
989 * Too late, the old node has been removed under us
990 * between lookup and replace. Fail.
991 */
7801dadd 992 return -ENOENT;
9357c415 993 }
feda2722
LJ
994 assert(old_next == clear_flag(old_next));
995 assert(new_node != old_next);
71bb3aca
MD
996 /*
997 * REMOVAL_OWNER flag is _NEVER_ set before the REMOVED
998 * flag. It is either set atomically at the same time
999 * (replace) or after (del).
1000 */
1001 assert(!is_removal_owner(old_next));
feda2722 1002 new_node->next = old_next;
9357c415
MD
1003 /*
1004 * Here is the whole trick for lock-free replace: we add
1005 * the replacement node _after_ the node we want to
1006 * replace by atomically setting its next pointer at the
1007 * same time we set its removal flag. Given that
1008 * the lookups/get next use an iterator aware of the
1009 * next pointer, they will either skip the old node due
1010 * to the removal flag and see the new node, or use
1011 * the old node, but will not see the new one.
db00ccc3
MD
1012 * This is a replacement of a node with another node
1013 * that has the same value: we are therefore not
71bb3aca
MD
1014 * removing a value from the hash table. We set both the
1015 * REMOVED and REMOVAL_OWNER flags atomically so we own
1016 * the node after successful cmpxchg.
9357c415 1017 */
04db56f8 1018 ret_next = uatomic_cmpxchg(&old_node->next,
71bb3aca 1019 old_next, flag_removed_or_removal_owner(new_node));
3fb86f26 1020 if (ret_next == old_next)
7801dadd 1021 break; /* We performed the replacement. */
3fb86f26
LJ
1022 old_next = ret_next;
1023 }
9357c415 1024
9357c415
MD
1025 /*
1026 * Ensure that the old node is not visible to readers anymore:
1027 * lookup for the node, and remove it (along with any other
1028 * logically removed node) if found.
1029 */
04db56f8
LJ
1030 bucket = lookup_bucket(ht, size, bit_reverse_ulong(old_node->reverse_hash));
1031 _cds_lfht_gc_bucket(bucket, new_node);
7801dadd 1032
a85eff52 1033 assert(is_removed(CMM_LOAD_SHARED(old_node->next)));
7801dadd 1034 return 0;
9357c415
MD
1035}
1036
83beee94
MD
1037/*
1038 * A non-NULL unique_ret pointer uses the "add unique" (or uniquify) add
1039 * mode. A NULL unique_ret allows creation of duplicate keys.
1040 */
abc490a1 1041static
83beee94 1042void _cds_lfht_add(struct cds_lfht *ht,
91a75cc5 1043 unsigned long hash,
0422d92c 1044 cds_lfht_match_fct match,
996ff57c 1045 const void *key,
83beee94
MD
1046 unsigned long size,
1047 struct cds_lfht_node *node,
1048 struct cds_lfht_iter *unique_ret,
1ee8f000 1049 int bucket_flag)
abc490a1 1050{
14044b37 1051 struct cds_lfht_node *iter_prev, *iter, *next, *new_node, *new_next,
960c9e4f 1052 *return_node;
04db56f8 1053 struct cds_lfht_node *bucket;
abc490a1 1054
1ee8f000 1055 assert(!is_bucket(node));
c90201ac 1056 assert(!is_removed(node));
2f943cd7 1057 assert(!is_removal_owner(node));
91a75cc5 1058 bucket = lookup_bucket(ht, size, hash);
abc490a1 1059 for (;;) {
adc0de68 1060 uint32_t chain_len = 0;
abc490a1 1061
11519af6
MD
1062 /*
1063 * iter_prev points to the non-removed node prior to the
1064 * insert location.
11519af6 1065 */
04db56f8 1066 iter_prev = bucket;
1ee8f000 1067 /* We can always skip the bucket node initially */
04db56f8
LJ
1068 iter = rcu_dereference(iter_prev->next);
1069 assert(iter_prev->reverse_hash <= node->reverse_hash);
abc490a1 1070 for (;;) {
8ed51e04 1071 if (caa_unlikely(is_end(iter)))
273399de 1072 goto insert;
04db56f8 1073 if (caa_likely(clear_flag(iter)->reverse_hash > node->reverse_hash))
273399de 1074 goto insert;
238cc06e 1075
1ee8f000
LJ
1076 /* bucket node is the first node of the identical-hash-value chain */
1077 if (bucket_flag && clear_flag(iter)->reverse_hash == node->reverse_hash)
194fdbd1 1078 goto insert;
238cc06e 1079
04db56f8 1080 next = rcu_dereference(clear_flag(iter)->next);
8ed51e04 1081 if (caa_unlikely(is_removed(next)))
9dba85be 1082 goto gc_node;
238cc06e
LJ
1083
1084 /* uniquely add */
83beee94 1085 if (unique_ret
1ee8f000 1086 && !is_bucket(next)
04db56f8 1087 && clear_flag(iter)->reverse_hash == node->reverse_hash) {
d7c76f85
MD
1088 struct cds_lfht_iter d_iter = {
1089 .node = node,
1090 .next = iter,
1091#ifdef CONFIG_CDS_LFHT_ITER_DEBUG
1092 .lfht = ht,
1093#endif
1094 };
238cc06e
LJ
1095
1096 /*
1097 * uniquely adding inserts the node as the first
1098 * node of the identical-hash-value node chain.
1099 *
1100 * This semantic ensures no duplicated keys
1101 * should ever be observable in the table
1f67ba50
MD
1102 * (including traversing the table node by
1103 * node by forward iterations)
238cc06e 1104 */
04db56f8 1105 cds_lfht_next_duplicate(ht, match, key, &d_iter);
238cc06e
LJ
1106 if (!d_iter.node)
1107 goto insert;
1108
1109 *unique_ret = d_iter;
83beee94 1110 return;
48ed1c18 1111 }
238cc06e 1112
11519af6 1113 /* Only account for identical reverse hash once */
04db56f8 1114 if (iter_prev->reverse_hash != clear_flag(iter)->reverse_hash
1ee8f000 1115 && !is_bucket(next))
4105056a 1116 check_resize(ht, size, ++chain_len);
11519af6 1117 iter_prev = clear_flag(iter);
273399de 1118 iter = next;
abc490a1 1119 }
48ed1c18 1120
273399de 1121 insert:
7ec59d3b 1122 assert(node != clear_flag(iter));
11519af6 1123 assert(!is_removed(iter_prev));
2f943cd7 1124 assert(!is_removal_owner(iter_prev));
c90201ac 1125 assert(!is_removed(iter));
2f943cd7 1126 assert(!is_removal_owner(iter));
f000907d 1127 assert(iter_prev != node);
1ee8f000 1128 if (!bucket_flag)
04db56f8 1129 node->next = clear_flag(iter);
f9c80341 1130 else
1ee8f000
LJ
1131 node->next = flag_bucket(clear_flag(iter));
1132 if (is_bucket(iter))
1133 new_node = flag_bucket(node);
f5596c94
MD
1134 else
1135 new_node = node;
04db56f8 1136 if (uatomic_cmpxchg(&iter_prev->next, iter,
48ed1c18 1137 new_node) != iter) {
273399de 1138 continue; /* retry */
48ed1c18 1139 } else {
83beee94 1140 return_node = node;
960c9e4f 1141 goto end;
48ed1c18
MD
1142 }
1143
9dba85be
MD
1144 gc_node:
1145 assert(!is_removed(iter));
2f943cd7 1146 assert(!is_removal_owner(iter));
1ee8f000
LJ
1147 if (is_bucket(iter))
1148 new_next = flag_bucket(clear_flag(next));
f5596c94
MD
1149 else
1150 new_next = clear_flag(next);
04db56f8 1151 (void) uatomic_cmpxchg(&iter_prev->next, iter, new_next);
273399de 1152 /* retry */
464a1ec9 1153 }
9357c415 1154end:
83beee94
MD
1155 if (unique_ret) {
1156 unique_ret->node = return_node;
1157 /* unique_ret->next left unset, never used. */
1158 }
abc490a1 1159}
464a1ec9 1160
abc490a1 1161static
860d07e8 1162int _cds_lfht_del(struct cds_lfht *ht, unsigned long size,
b65ec430 1163 struct cds_lfht_node *node)
abc490a1 1164{
db00ccc3 1165 struct cds_lfht_node *bucket, *next;
5e28c532 1166
9357c415 1167 if (!node) /* Return -ENOENT if asked to delete NULL node */
743f9143 1168 return -ENOENT;
9357c415 1169
7ec59d3b 1170 /* logically delete the node */
1ee8f000 1171 assert(!is_bucket(node));
c90201ac 1172 assert(!is_removed(node));
db00ccc3 1173 assert(!is_removal_owner(node));
48ed1c18 1174
db00ccc3
MD
1175 /*
1176 * We are first checking if the node had previously been
1177 * logically removed (this check is not atomic with setting the
1178 * logical removal flag). Return -ENOENT if the node had
1179 * previously been removed.
1180 */
a85eff52 1181 next = CMM_LOAD_SHARED(node->next); /* next is not dereferenced */
db00ccc3
MD
1182 if (caa_unlikely(is_removed(next)))
1183 return -ENOENT;
b65ec430 1184 assert(!is_bucket(next));
196f4fab
MD
1185 /*
1186 * The del operation semantic guarantees a full memory barrier
1187 * before the uatomic_or atomic commit of the deletion flag.
1188 */
1189 cmm_smp_mb__before_uatomic_or();
db00ccc3
MD
1190 /*
1191 * We set the REMOVED_FLAG unconditionally. Note that there may
1192 * be more than one concurrent thread setting this flag.
1193 * Knowing which wins the race will be known after the garbage
1194 * collection phase, stay tuned!
1195 */
1196 uatomic_or(&node->next, REMOVED_FLAG);
7ec59d3b 1197 /* We performed the (logical) deletion. */
7ec59d3b
MD
1198
1199 /*
1200 * Ensure that the node is not visible to readers anymore: lookup for
273399de
MD
1201 * the node, and remove it (along with any other logically removed node)
1202 * if found.
11519af6 1203 */
04db56f8
LJ
1204 bucket = lookup_bucket(ht, size, bit_reverse_ulong(node->reverse_hash));
1205 _cds_lfht_gc_bucket(bucket, node);
743f9143 1206
a85eff52 1207 assert(is_removed(CMM_LOAD_SHARED(node->next)));
db00ccc3
MD
1208 /*
1209 * Last phase: atomically exchange node->next with a version
1210 * having "REMOVAL_OWNER_FLAG" set. If the returned node->next
1211 * pointer did _not_ have "REMOVAL_OWNER_FLAG" set, we now own
1212 * the node and win the removal race.
1213 * It is interesting to note that all "add" paths are forbidden
1214 * to change the next pointer starting from the point where the
1215 * REMOVED_FLAG is set, so here using a read, followed by a
1216 * xchg() suffice to guarantee that the xchg() will ever only
1217 * set the "REMOVAL_OWNER_FLAG" (or change nothing if the flag
1218 * was already set).
1219 */
1220 if (!is_removal_owner(uatomic_xchg(&node->next,
1221 flag_removal_owner(node->next))))
1222 return 0;
1223 else
1224 return -ENOENT;
abc490a1 1225}
2ed95849 1226
b7d619b0
MD
1227static
1228void *partition_resize_thread(void *arg)
1229{
1230 struct partition_resize_work *work = arg;
1231
7b17c13e 1232 work->ht->flavor->register_thread();
b7d619b0 1233 work->fct(work->ht, work->i, work->start, work->len);
7b17c13e 1234 work->ht->flavor->unregister_thread();
b7d619b0
MD
1235 return NULL;
1236}
1237
1238static
1239void partition_resize_helper(struct cds_lfht *ht, unsigned long i,
1240 unsigned long len,
1241 void (*fct)(struct cds_lfht *ht, unsigned long i,
1242 unsigned long start, unsigned long len))
1243{
e54ec2f5 1244 unsigned long partition_len, start = 0;
b7d619b0 1245 struct partition_resize_work *work;
83e334d0
MJ
1246 int ret;
1247 unsigned long thread, nr_threads;
b7d619b0 1248
d7f3ba4c
EW
1249 assert(nr_cpus_mask != -1);
1250 if (nr_cpus_mask < 0 || len < 2 * MIN_PARTITION_PER_THREAD)
1251 goto fallback;
1252
6083a889
MD
1253 /*
1254 * Note: nr_cpus_mask + 1 is always power of 2.
1255 * We spawn just the number of threads we need to satisfy the minimum
1256 * partition size, up to the number of CPUs in the system.
1257 */
91452a6a 1258 if (nr_cpus_mask > 0) {
83e334d0 1259 nr_threads = min_t(unsigned long, nr_cpus_mask + 1,
91452a6a
MD
1260 len >> MIN_PARTITION_PER_THREAD_ORDER);
1261 } else {
1262 nr_threads = 1;
1263 }
5bc6b66f 1264 partition_len = len >> cds_lfht_get_count_order_ulong(nr_threads);
6083a889 1265 work = calloc(nr_threads, sizeof(*work));
7c75d498
EW
1266 if (!work) {
1267 dbg_printf("error allocating for resize, single-threading\n");
1268 goto fallback;
1269 }
6083a889
MD
1270 for (thread = 0; thread < nr_threads; thread++) {
1271 work[thread].ht = ht;
1272 work[thread].i = i;
1273 work[thread].len = partition_len;
1274 work[thread].start = thread * partition_len;
1275 work[thread].fct = fct;
1af6e26e 1276 ret = pthread_create(&(work[thread].thread_id), ht->resize_attr,
6083a889 1277 partition_resize_thread, &work[thread]);
e54ec2f5
EW
1278 if (ret == EAGAIN) {
1279 /*
1280 * Out of resources: wait and join the threads
1281 * we've created, then handle leftovers.
1282 */
1283 dbg_printf("error spawning for resize, single-threading\n");
1284 start = work[thread].start;
1285 len -= start;
1286 nr_threads = thread;
1287 break;
1288 }
b7d619b0
MD
1289 assert(!ret);
1290 }
6083a889 1291 for (thread = 0; thread < nr_threads; thread++) {
1af6e26e 1292 ret = pthread_join(work[thread].thread_id, NULL);
b7d619b0
MD
1293 assert(!ret);
1294 }
1295 free(work);
e54ec2f5
EW
1296
1297 /*
1298 * A pthread_create failure above will either lead in us having
1299 * no threads to join or starting at a non-zero offset,
1300 * fallback to single thread processing of leftovers.
1301 */
1302 if (start == 0 && nr_threads > 0)
1303 return;
7c75d498 1304fallback:
e54ec2f5 1305 fct(ht, i, start, len);
b7d619b0
MD
1306}
1307
e8de508e
MD
1308/*
1309 * Holding RCU read lock to protect _cds_lfht_add against memory
d0ec0ed2 1310 * reclaim that could be performed by other worker threads (ABA
e8de508e 1311 * problem).
9ee0fc9a 1312 *
b7d619b0 1313 * When we reach a certain length, we can split this population phase over
9ee0fc9a
MD
1314 * many worker threads, based on the number of CPUs available in the system.
1315 * This should therefore take care of not having the expand lagging behind too
1316 * many concurrent insertion threads by using the scheduler's ability to
1ee8f000 1317 * schedule bucket node population fairly with insertions.
e8de508e 1318 */
4105056a 1319static
b7d619b0
MD
1320void init_table_populate_partition(struct cds_lfht *ht, unsigned long i,
1321 unsigned long start, unsigned long len)
4105056a 1322{
9d72a73f 1323 unsigned long j, size = 1UL << (i - 1);
4105056a 1324
d0d8f9aa 1325 assert(i > MIN_TABLE_ORDER);
7b17c13e 1326 ht->flavor->read_lock();
9d72a73f
LJ
1327 for (j = size + start; j < size + start + len; j++) {
1328 struct cds_lfht_node *new_node = bucket_at(ht, j);
1329
1330 assert(j >= size && j < (size << 1));
1331 dbg_printf("init populate: order %lu index %lu hash %lu\n",
1332 i, j, j);
1333 new_node->reverse_hash = bit_reverse_ulong(j);
91a75cc5 1334 _cds_lfht_add(ht, j, NULL, NULL, size, new_node, NULL, 1);
4105056a 1335 }
7b17c13e 1336 ht->flavor->read_unlock();
b7d619b0
MD
1337}
1338
1339static
1340void init_table_populate(struct cds_lfht *ht, unsigned long i,
1341 unsigned long len)
1342{
b7d619b0 1343 partition_resize_helper(ht, i, len, init_table_populate_partition);
4105056a
MD
1344}
1345
abc490a1 1346static
4105056a 1347void init_table(struct cds_lfht *ht,
93d46c39 1348 unsigned long first_order, unsigned long last_order)
24365af7 1349{
93d46c39 1350 unsigned long i;
24365af7 1351
93d46c39
LJ
1352 dbg_printf("init table: first_order %lu last_order %lu\n",
1353 first_order, last_order);
d0d8f9aa 1354 assert(first_order > MIN_TABLE_ORDER);
93d46c39 1355 for (i = first_order; i <= last_order; i++) {
4105056a 1356 unsigned long len;
24365af7 1357
4f6e90b7 1358 len = 1UL << (i - 1);
f0c29ed7 1359 dbg_printf("init order %lu len: %lu\n", i, len);
4d676753
MD
1360
1361 /* Stop expand if the resize target changes under us */
7b3893e4 1362 if (CMM_LOAD_SHARED(ht->resize_target) < (1UL << i))
4d676753
MD
1363 break;
1364
48f1b16d 1365 cds_lfht_alloc_bucket_table(ht, i);
4105056a 1366
4105056a 1367 /*
1ee8f000
LJ
1368 * Set all bucket nodes reverse hash values for a level and
1369 * link all bucket nodes into the table.
4105056a 1370 */
dc1da8f6 1371 init_table_populate(ht, i, len);
4105056a 1372
f9c80341
MD
1373 /*
1374 * Update table size.
1375 */
1376 cmm_smp_wmb(); /* populate data before RCU size */
7b3893e4 1377 CMM_STORE_SHARED(ht->size, 1UL << i);
f9c80341 1378
4f6e90b7 1379 dbg_printf("init new size: %lu\n", 1UL << i);
4105056a
MD
1380 if (CMM_LOAD_SHARED(ht->in_progress_destroy))
1381 break;
1382 }
1383}
1384
e8de508e
MD
1385/*
1386 * Holding RCU read lock to protect _cds_lfht_remove against memory
d0ec0ed2 1387 * reclaim that could be performed by other worker threads (ABA
e8de508e
MD
1388 * problem).
1389 * For a single level, we logically remove and garbage collect each node.
1390 *
1391 * As a design choice, we perform logical removal and garbage collection on a
1392 * node-per-node basis to simplify this algorithm. We also assume keeping good
1393 * cache locality of the operation would overweight possible performance gain
1394 * that could be achieved by batching garbage collection for multiple levels.
1395 * However, this would have to be justified by benchmarks.
1396 *
1397 * Concurrent removal and add operations are helping us perform garbage
1398 * collection of logically removed nodes. We guarantee that all logically
d0ec0ed2
MD
1399 * removed nodes have been garbage-collected (unlinked) before work
1400 * enqueue is invoked to free a hole level of bucket nodes (after a
1401 * grace period).
e8de508e 1402 *
1f67ba50
MD
1403 * Logical removal and garbage collection can therefore be done in batch
1404 * or on a node-per-node basis, as long as the guarantee above holds.
9ee0fc9a 1405 *
b7d619b0
MD
1406 * When we reach a certain length, we can split this removal over many worker
1407 * threads, based on the number of CPUs available in the system. This should
1408 * take care of not letting resize process lag behind too many concurrent
9ee0fc9a 1409 * updater threads actively inserting into the hash table.
e8de508e 1410 */
4105056a 1411static
b7d619b0
MD
1412void remove_table_partition(struct cds_lfht *ht, unsigned long i,
1413 unsigned long start, unsigned long len)
4105056a 1414{
9d72a73f 1415 unsigned long j, size = 1UL << (i - 1);
4105056a 1416
d0d8f9aa 1417 assert(i > MIN_TABLE_ORDER);
7b17c13e 1418 ht->flavor->read_lock();
9d72a73f 1419 for (j = size + start; j < size + start + len; j++) {
2e2ce1e9
LJ
1420 struct cds_lfht_node *fini_bucket = bucket_at(ht, j);
1421 struct cds_lfht_node *parent_bucket = bucket_at(ht, j - size);
9d72a73f
LJ
1422
1423 assert(j >= size && j < (size << 1));
1424 dbg_printf("remove entry: order %lu index %lu hash %lu\n",
1425 i, j, j);
2e2ce1e9
LJ
1426 /* Set the REMOVED_FLAG to freeze the ->next for gc */
1427 uatomic_or(&fini_bucket->next, REMOVED_FLAG);
1428 _cds_lfht_gc_bucket(parent_bucket, fini_bucket);
abc490a1 1429 }
7b17c13e 1430 ht->flavor->read_unlock();
b7d619b0
MD
1431}
1432
1433static
1434void remove_table(struct cds_lfht *ht, unsigned long i, unsigned long len)
1435{
b7d619b0 1436 partition_resize_helper(ht, i, len, remove_table_partition);
2ed95849
MD
1437}
1438
61adb337
MD
1439/*
1440 * fini_table() is never called for first_order == 0, which is why
1441 * free_by_rcu_order == 0 can be used as criterion to know if free must
1442 * be called.
1443 */
1475579c 1444static
4105056a 1445void fini_table(struct cds_lfht *ht,
93d46c39 1446 unsigned long first_order, unsigned long last_order)
1475579c 1447{
83e334d0 1448 unsigned long free_by_rcu_order = 0, i;
1475579c 1449
93d46c39
LJ
1450 dbg_printf("fini table: first_order %lu last_order %lu\n",
1451 first_order, last_order);
d0d8f9aa 1452 assert(first_order > MIN_TABLE_ORDER);
93d46c39 1453 for (i = last_order; i >= first_order; i--) {
4105056a 1454 unsigned long len;
1475579c 1455
4f6e90b7 1456 len = 1UL << (i - 1);
e15df1cc 1457 dbg_printf("fini order %ld len: %lu\n", i, len);
4105056a 1458
4d676753 1459 /* Stop shrink if the resize target changes under us */
7b3893e4 1460 if (CMM_LOAD_SHARED(ht->resize_target) > (1UL << (i - 1)))
4d676753
MD
1461 break;
1462
1463 cmm_smp_wmb(); /* populate data before RCU size */
7b3893e4 1464 CMM_STORE_SHARED(ht->size, 1UL << (i - 1));
4d676753
MD
1465
1466 /*
1467 * We need to wait for all add operations to reach Q.S. (and
1468 * thus use the new table for lookups) before we can start
1ee8f000 1469 * releasing the old bucket nodes. Otherwise their lookup will
4d676753
MD
1470 * return a logically removed node as insert position.
1471 */
7b17c13e 1472 ht->flavor->update_synchronize_rcu();
48f1b16d
LJ
1473 if (free_by_rcu_order)
1474 cds_lfht_free_bucket_table(ht, free_by_rcu_order);
4d676753 1475
21263e21 1476 /*
1ee8f000
LJ
1477 * Set "removed" flag in bucket nodes about to be removed.
1478 * Unlink all now-logically-removed bucket node pointers.
4105056a
MD
1479 * Concurrent add/remove operation are helping us doing
1480 * the gc.
21263e21 1481 */
4105056a
MD
1482 remove_table(ht, i, len);
1483
48f1b16d 1484 free_by_rcu_order = i;
4105056a
MD
1485
1486 dbg_printf("fini new size: %lu\n", 1UL << i);
1475579c
MD
1487 if (CMM_LOAD_SHARED(ht->in_progress_destroy))
1488 break;
1489 }
0d14ceb2 1490
48f1b16d 1491 if (free_by_rcu_order) {
7b17c13e 1492 ht->flavor->update_synchronize_rcu();
48f1b16d 1493 cds_lfht_free_bucket_table(ht, free_by_rcu_order);
0d14ceb2 1494 }
1475579c
MD
1495}
1496
83e334d0
MJ
1497/*
1498 * Never called with size < 1.
1499 */
ff0d69de 1500static
1ee8f000 1501void cds_lfht_create_bucket(struct cds_lfht *ht, unsigned long size)
ff0d69de 1502{
04db56f8 1503 struct cds_lfht_node *prev, *node;
9d72a73f 1504 unsigned long order, len, i;
83e334d0 1505 int bucket_order;
ff0d69de 1506
48f1b16d 1507 cds_lfht_alloc_bucket_table(ht, 0);
ff0d69de 1508
9d72a73f
LJ
1509 dbg_printf("create bucket: order 0 index 0 hash 0\n");
1510 node = bucket_at(ht, 0);
1511 node->next = flag_bucket(get_end());
1512 node->reverse_hash = 0;
ff0d69de 1513
83e334d0
MJ
1514 bucket_order = cds_lfht_get_count_order_ulong(size);
1515 assert(bucket_order >= 0);
1516
1517 for (order = 1; order < (unsigned long) bucket_order + 1; order++) {
ff0d69de 1518 len = 1UL << (order - 1);
48f1b16d 1519 cds_lfht_alloc_bucket_table(ht, order);
ff0d69de 1520
9d72a73f
LJ
1521 for (i = 0; i < len; i++) {
1522 /*
1523 * Now, we are trying to init the node with the
1524 * hash=(len+i) (which is also a bucket with the
1525 * index=(len+i)) and insert it into the hash table,
1526 * so this node has to be inserted after the bucket
1527 * with the index=(len+i)&(len-1)=i. And because there
1528 * is no other non-bucket node nor bucket node with
1529 * larger index/hash inserted, so the bucket node
1530 * being inserted should be inserted directly linked
1531 * after the bucket node with index=i.
1532 */
1533 prev = bucket_at(ht, i);
1534 node = bucket_at(ht, len + i);
ff0d69de 1535
1ee8f000 1536 dbg_printf("create bucket: order %lu index %lu hash %lu\n",
9d72a73f
LJ
1537 order, len + i, len + i);
1538 node->reverse_hash = bit_reverse_ulong(len + i);
1539
1540 /* insert after prev */
1541 assert(is_bucket(prev->next));
ff0d69de 1542 node->next = prev->next;
1ee8f000 1543 prev->next = flag_bucket(node);
ff0d69de
LJ
1544 }
1545 }
1546}
1547
99ab1528
MJ
1548#if (CAA_BITS_PER_LONG > 32)
1549/*
1550 * For 64-bit architectures, with max number of buckets small enough not to
1551 * use the entire 64-bit memory mapping space (and allowing a fair number of
1552 * hash table instances), use the mmap allocator, which is faster. Otherwise,
1553 * fallback to the order allocator.
1554 */
1555static
1556const struct cds_lfht_mm_type *get_mm_type(unsigned long max_nr_buckets)
1557{
1558 if (max_nr_buckets && max_nr_buckets <= (1ULL << 32))
1559 return &cds_lfht_mm_mmap;
1560 else
1561 return &cds_lfht_mm_order;
1562}
1563#else
1564/*
1565 * For 32-bit architectures, use the order allocator.
1566 */
1567static
17a8f206
MJ
1568const struct cds_lfht_mm_type *get_mm_type(
1569 unsigned long max_nr_buckets __attribute__((unused)))
99ab1528
MJ
1570{
1571 return &cds_lfht_mm_order;
1572}
1573#endif
1574
0422d92c 1575struct cds_lfht *_cds_lfht_new(unsigned long init_size,
0722081a 1576 unsigned long min_nr_alloc_buckets,
747d725c 1577 unsigned long max_nr_buckets,
b8af5011 1578 int flags,
0b6aa001 1579 const struct cds_lfht_mm_type *mm,
7b17c13e 1580 const struct rcu_flavor_struct *flavor,
b7d619b0 1581 pthread_attr_t *attr)
abc490a1 1582{
14044b37 1583 struct cds_lfht *ht;
24365af7 1584 unsigned long order;
abc490a1 1585
0722081a
LJ
1586 /* min_nr_alloc_buckets must be power of two */
1587 if (!min_nr_alloc_buckets || (min_nr_alloc_buckets & (min_nr_alloc_buckets - 1)))
5488222b 1588 return NULL;
747d725c 1589
8129be4e 1590 /* init_size must be power of two */
5488222b 1591 if (!init_size || (init_size & (init_size - 1)))
8129be4e 1592 return NULL;
747d725c 1593
c1888f3a
MD
1594 /*
1595 * Memory management plugin default.
1596 */
99ab1528
MJ
1597 if (!mm)
1598 mm = get_mm_type(max_nr_buckets);
c1888f3a 1599
0b6aa001
LJ
1600 /* max_nr_buckets == 0 for order based mm means infinite */
1601 if (mm == &cds_lfht_mm_order && !max_nr_buckets)
747d725c
LJ
1602 max_nr_buckets = 1UL << (MAX_TABLE_ORDER - 1);
1603
1604 /* max_nr_buckets must be power of two */
1605 if (!max_nr_buckets || (max_nr_buckets & (max_nr_buckets - 1)))
1606 return NULL;
1607
d0ec0ed2
MD
1608 if (flags & CDS_LFHT_AUTO_RESIZE)
1609 cds_lfht_init_worker(flavor);
1610
0722081a 1611 min_nr_alloc_buckets = max(min_nr_alloc_buckets, MIN_TABLE_SIZE);
d0d8f9aa 1612 init_size = max(init_size, MIN_TABLE_SIZE);
747d725c
LJ
1613 max_nr_buckets = max(max_nr_buckets, min_nr_alloc_buckets);
1614 init_size = min(init_size, max_nr_buckets);
0b6aa001
LJ
1615
1616 ht = mm->alloc_cds_lfht(min_nr_alloc_buckets, max_nr_buckets);
b7d619b0 1617 assert(ht);
0b6aa001
LJ
1618 assert(ht->mm == mm);
1619 assert(ht->bucket_at == mm->bucket_at);
1620
b5d6b20f 1621 ht->flags = flags;
7b17c13e 1622 ht->flavor = flavor;
b7d619b0 1623 ht->resize_attr = attr;
5afadd12 1624 alloc_split_items_count(ht);
abc490a1
MD
1625 /* this mutex should not nest in read-side C.S. */
1626 pthread_mutex_init(&ht->resize_mutex, NULL);
5bc6b66f 1627 order = cds_lfht_get_count_order_ulong(init_size);
7b3893e4 1628 ht->resize_target = 1UL << order;
1ee8f000 1629 cds_lfht_create_bucket(ht, 1UL << order);
7b3893e4 1630 ht->size = 1UL << order;
abc490a1
MD
1631 return ht;
1632}
1633
6f554439 1634void cds_lfht_lookup(struct cds_lfht *ht, unsigned long hash,
996ff57c 1635 cds_lfht_match_fct match, const void *key,
6f554439 1636 struct cds_lfht_iter *iter)
2ed95849 1637{
04db56f8 1638 struct cds_lfht_node *node, *next, *bucket;
0422d92c 1639 unsigned long reverse_hash, size;
2ed95849 1640
d7c76f85
MD
1641 cds_lfht_iter_debug_set_ht(ht, iter);
1642
abc490a1 1643 reverse_hash = bit_reverse_ulong(hash);
464a1ec9 1644
7b3893e4 1645 size = rcu_dereference(ht->size);
04db56f8 1646 bucket = lookup_bucket(ht, size, hash);
1ee8f000 1647 /* We can always skip the bucket node initially */
04db56f8 1648 node = rcu_dereference(bucket->next);
bb7b2f26 1649 node = clear_flag(node);
2ed95849 1650 for (;;) {
8ed51e04 1651 if (caa_unlikely(is_end(node))) {
96ad1112 1652 node = next = NULL;
abc490a1 1653 break;
bb7b2f26 1654 }
04db56f8 1655 if (caa_unlikely(node->reverse_hash > reverse_hash)) {
96ad1112 1656 node = next = NULL;
abc490a1 1657 break;
2ed95849 1658 }
04db56f8 1659 next = rcu_dereference(node->next);
7f52427b 1660 assert(node == clear_flag(node));
8ed51e04 1661 if (caa_likely(!is_removed(next))
1ee8f000 1662 && !is_bucket(next)
04db56f8 1663 && node->reverse_hash == reverse_hash
0422d92c 1664 && caa_likely(match(node, key))) {
273399de 1665 break;
2ed95849 1666 }
1b81fe1a 1667 node = clear_flag(next);
2ed95849 1668 }
a85eff52 1669 assert(!node || !is_bucket(CMM_LOAD_SHARED(node->next)));
adc0de68
MD
1670 iter->node = node;
1671 iter->next = next;
abc490a1 1672}
e0ba718a 1673
17a8f206
MJ
1674void cds_lfht_next_duplicate(struct cds_lfht *ht __attribute__((unused)),
1675 cds_lfht_match_fct match,
996ff57c 1676 const void *key, struct cds_lfht_iter *iter)
a481e5ff 1677{
adc0de68 1678 struct cds_lfht_node *node, *next;
a481e5ff 1679 unsigned long reverse_hash;
a481e5ff 1680
d7c76f85 1681 cds_lfht_iter_debug_assert(ht == iter->lfht);
adc0de68 1682 node = iter->node;
04db56f8 1683 reverse_hash = node->reverse_hash;
adc0de68 1684 next = iter->next;
a481e5ff
MD
1685 node = clear_flag(next);
1686
1687 for (;;) {
8ed51e04 1688 if (caa_unlikely(is_end(node))) {
96ad1112 1689 node = next = NULL;
a481e5ff 1690 break;
bb7b2f26 1691 }
04db56f8 1692 if (caa_unlikely(node->reverse_hash > reverse_hash)) {
96ad1112 1693 node = next = NULL;
a481e5ff
MD
1694 break;
1695 }
04db56f8 1696 next = rcu_dereference(node->next);
8ed51e04 1697 if (caa_likely(!is_removed(next))
1ee8f000 1698 && !is_bucket(next)
04db56f8 1699 && caa_likely(match(node, key))) {
a481e5ff
MD
1700 break;
1701 }
1702 node = clear_flag(next);
1703 }
a85eff52 1704 assert(!node || !is_bucket(CMM_LOAD_SHARED(node->next)));
adc0de68
MD
1705 iter->node = node;
1706 iter->next = next;
a481e5ff
MD
1707}
1708
17a8f206
MJ
1709void cds_lfht_next(struct cds_lfht *ht __attribute__((unused)),
1710 struct cds_lfht_iter *iter)
4e9b9fbf
MD
1711{
1712 struct cds_lfht_node *node, *next;
1713
d7c76f85 1714 cds_lfht_iter_debug_assert(ht == iter->lfht);
853395e1 1715 node = clear_flag(iter->next);
4e9b9fbf 1716 for (;;) {
8ed51e04 1717 if (caa_unlikely(is_end(node))) {
4e9b9fbf
MD
1718 node = next = NULL;
1719 break;
1720 }
04db56f8 1721 next = rcu_dereference(node->next);
8ed51e04 1722 if (caa_likely(!is_removed(next))
1ee8f000 1723 && !is_bucket(next)) {
4e9b9fbf
MD
1724 break;
1725 }
1726 node = clear_flag(next);
1727 }
a85eff52 1728 assert(!node || !is_bucket(CMM_LOAD_SHARED(node->next)));
4e9b9fbf
MD
1729 iter->node = node;
1730 iter->next = next;
1731}
1732
1733void cds_lfht_first(struct cds_lfht *ht, struct cds_lfht_iter *iter)
1734{
d7c76f85 1735 cds_lfht_iter_debug_set_ht(ht, iter);
4e9b9fbf 1736 /*
1ee8f000 1737 * Get next after first bucket node. The first bucket node is the
4e9b9fbf
MD
1738 * first node of the linked list.
1739 */
9d72a73f 1740 iter->next = bucket_at(ht, 0)->next;
4e9b9fbf
MD
1741 cds_lfht_next(ht, iter);
1742}
1743
0422d92c
MD
1744void cds_lfht_add(struct cds_lfht *ht, unsigned long hash,
1745 struct cds_lfht_node *node)
abc490a1 1746{
0422d92c 1747 unsigned long size;
ab7d5fc6 1748
709bacf9 1749 node->reverse_hash = bit_reverse_ulong(hash);
7b3893e4 1750 size = rcu_dereference(ht->size);
91a75cc5 1751 _cds_lfht_add(ht, hash, NULL, NULL, size, node, NULL, 0);
14360f1c 1752 ht_count_add(ht, size, hash);
3eca1b8c
MD
1753}
1754
14044b37 1755struct cds_lfht_node *cds_lfht_add_unique(struct cds_lfht *ht,
6f554439 1756 unsigned long hash,
0422d92c 1757 cds_lfht_match_fct match,
996ff57c 1758 const void *key,
48ed1c18 1759 struct cds_lfht_node *node)
3eca1b8c 1760{
0422d92c 1761 unsigned long size;
83beee94 1762 struct cds_lfht_iter iter;
3eca1b8c 1763
709bacf9 1764 node->reverse_hash = bit_reverse_ulong(hash);
7b3893e4 1765 size = rcu_dereference(ht->size);
91a75cc5 1766 _cds_lfht_add(ht, hash, match, key, size, node, &iter, 0);
83beee94 1767 if (iter.node == node)
14360f1c 1768 ht_count_add(ht, size, hash);
83beee94 1769 return iter.node;
2ed95849
MD
1770}
1771
9357c415 1772struct cds_lfht_node *cds_lfht_add_replace(struct cds_lfht *ht,
6f554439 1773 unsigned long hash,
0422d92c 1774 cds_lfht_match_fct match,
996ff57c 1775 const void *key,
48ed1c18
MD
1776 struct cds_lfht_node *node)
1777{
0422d92c 1778 unsigned long size;
83beee94 1779 struct cds_lfht_iter iter;
48ed1c18 1780
709bacf9 1781 node->reverse_hash = bit_reverse_ulong(hash);
7b3893e4 1782 size = rcu_dereference(ht->size);
83beee94 1783 for (;;) {
91a75cc5 1784 _cds_lfht_add(ht, hash, match, key, size, node, &iter, 0);
83beee94 1785 if (iter.node == node) {
14360f1c 1786 ht_count_add(ht, size, hash);
83beee94
MD
1787 return NULL;
1788 }
1789
1790 if (!_cds_lfht_replace(ht, size, iter.node, iter.next, node))
1791 return iter.node;
1792 }
48ed1c18
MD
1793}
1794
2e79c445
MD
1795int cds_lfht_replace(struct cds_lfht *ht,
1796 struct cds_lfht_iter *old_iter,
1797 unsigned long hash,
1798 cds_lfht_match_fct match,
1799 const void *key,
9357c415
MD
1800 struct cds_lfht_node *new_node)
1801{
1802 unsigned long size;
1803
709bacf9 1804 new_node->reverse_hash = bit_reverse_ulong(hash);
2e79c445
MD
1805 if (!old_iter->node)
1806 return -ENOENT;
1807 if (caa_unlikely(old_iter->node->reverse_hash != new_node->reverse_hash))
1808 return -EINVAL;
1809 if (caa_unlikely(!match(old_iter->node, key)))
1810 return -EINVAL;
7b3893e4 1811 size = rcu_dereference(ht->size);
9357c415
MD
1812 return _cds_lfht_replace(ht, size, old_iter->node, old_iter->next,
1813 new_node);
1814}
1815
bc8c3c74 1816int cds_lfht_del(struct cds_lfht *ht, struct cds_lfht_node *node)
2ed95849 1817{
95bc7fb9 1818 unsigned long size;
df44348d 1819 int ret;
abc490a1 1820
7b3893e4 1821 size = rcu_dereference(ht->size);
bc8c3c74 1822 ret = _cds_lfht_del(ht, size, node);
14360f1c 1823 if (!ret) {
95bc7fb9
MD
1824 unsigned long hash;
1825
bc8c3c74 1826 hash = bit_reverse_ulong(node->reverse_hash);
14360f1c
LJ
1827 ht_count_del(ht, size, hash);
1828 }
df44348d 1829 return ret;
2ed95849 1830}
ab7d5fc6 1831
afa5940d 1832int cds_lfht_is_node_deleted(const struct cds_lfht_node *node)
df55172a 1833{
a85eff52 1834 return is_removed(CMM_LOAD_SHARED(node->next));
df55172a
MD
1835}
1836
abc490a1 1837static
1ee8f000 1838int cds_lfht_delete_bucket(struct cds_lfht *ht)
674f7a69 1839{
14044b37 1840 struct cds_lfht_node *node;
4105056a 1841 unsigned long order, i, size;
674f7a69 1842
abc490a1 1843 /* Check that the table is empty */
9d72a73f 1844 node = bucket_at(ht, 0);
abc490a1 1845 do {
04db56f8 1846 node = clear_flag(node)->next;
1ee8f000 1847 if (!is_bucket(node))
abc490a1 1848 return -EPERM;
273399de 1849 assert(!is_removed(node));
2f943cd7 1850 assert(!is_removal_owner(node));
bb7b2f26 1851 } while (!is_end(node));
4105056a
MD
1852 /*
1853 * size accessed without rcu_dereference because hash table is
1854 * being destroyed.
1855 */
7b3893e4 1856 size = ht->size;
1f67ba50 1857 /* Internal sanity check: all nodes left should be buckets */
48f1b16d
LJ
1858 for (i = 0; i < size; i++) {
1859 node = bucket_at(ht, i);
1860 dbg_printf("delete bucket: index %lu expected hash %lu hash %lu\n",
1861 i, i, bit_reverse_ulong(node->reverse_hash));
1862 assert(is_bucket(node->next));
1863 }
24365af7 1864
5bc6b66f 1865 for (order = cds_lfht_get_count_order_ulong(size); (long)order >= 0; order--)
48f1b16d 1866 cds_lfht_free_bucket_table(ht, order);
5488222b 1867
abc490a1 1868 return 0;
674f7a69
MD
1869}
1870
1871/*
1872 * Should only be called when no more concurrent readers nor writers can
1873 * possibly access the table.
1874 */
b7d619b0 1875int cds_lfht_destroy(struct cds_lfht *ht, pthread_attr_t **attr)
674f7a69 1876{
d0ec0ed2
MD
1877 int ret;
1878
1879 if (ht->flags & CDS_LFHT_AUTO_RESIZE) {
1880 /* Cancel ongoing resize operations. */
1881 _CMM_STORE_SHARED(ht->in_progress_destroy, 1);
1882 /* Wait for in-flight resize operations to complete */
1883 urcu_workqueue_flush_queued_work(cds_lfht_workqueue);
10e68472 1884 }
1ee8f000 1885 ret = cds_lfht_delete_bucket(ht);
abc490a1
MD
1886 if (ret)
1887 return ret;
5afadd12 1888 free_split_items_count(ht);
b7d619b0
MD
1889 if (attr)
1890 *attr = ht->resize_attr;
59629f09
MD
1891 ret = pthread_mutex_destroy(&ht->resize_mutex);
1892 if (ret)
1893 ret = -EBUSY;
d0ec0ed2
MD
1894 if (ht->flags & CDS_LFHT_AUTO_RESIZE)
1895 cds_lfht_fini_worker(ht->flavor);
98808fb1 1896 poison_free(ht);
5e28c532 1897 return ret;
674f7a69
MD
1898}
1899
14044b37 1900void cds_lfht_count_nodes(struct cds_lfht *ht,
d933dd0e 1901 long *approx_before,
273399de 1902 unsigned long *count,
d933dd0e 1903 long *approx_after)
273399de 1904{
14044b37 1905 struct cds_lfht_node *node, *next;
caf3653d 1906 unsigned long nr_bucket = 0, nr_removed = 0;
273399de 1907
7ed7682f 1908 *approx_before = 0;
5afadd12 1909 if (ht->split_count) {
973e5e1b
MD
1910 int i;
1911
4c42f1b8
LJ
1912 for (i = 0; i < split_count_mask + 1; i++) {
1913 *approx_before += uatomic_read(&ht->split_count[i].add);
1914 *approx_before -= uatomic_read(&ht->split_count[i].del);
973e5e1b
MD
1915 }
1916 }
1917
273399de 1918 *count = 0;
273399de 1919
1ee8f000 1920 /* Count non-bucket nodes in the table */
9d72a73f 1921 node = bucket_at(ht, 0);
273399de 1922 do {
04db56f8 1923 next = rcu_dereference(node->next);
b198f0fd 1924 if (is_removed(next)) {
1ee8f000 1925 if (!is_bucket(next))
caf3653d 1926 (nr_removed)++;
973e5e1b 1927 else
1ee8f000
LJ
1928 (nr_bucket)++;
1929 } else if (!is_bucket(next))
273399de 1930 (*count)++;
24365af7 1931 else
1ee8f000 1932 (nr_bucket)++;
273399de 1933 node = clear_flag(next);
bb7b2f26 1934 } while (!is_end(node));
caf3653d 1935 dbg_printf("number of logically removed nodes: %lu\n", nr_removed);
1ee8f000 1936 dbg_printf("number of bucket nodes: %lu\n", nr_bucket);
7ed7682f 1937 *approx_after = 0;
5afadd12 1938 if (ht->split_count) {
973e5e1b
MD
1939 int i;
1940
4c42f1b8
LJ
1941 for (i = 0; i < split_count_mask + 1; i++) {
1942 *approx_after += uatomic_read(&ht->split_count[i].add);
1943 *approx_after -= uatomic_read(&ht->split_count[i].del);
973e5e1b
MD
1944 }
1945 }
273399de
MD
1946}
1947
1475579c 1948/* called with resize mutex held */
abc490a1 1949static
4105056a 1950void _do_cds_lfht_grow(struct cds_lfht *ht,
1475579c 1951 unsigned long old_size, unsigned long new_size)
abc490a1 1952{
1475579c 1953 unsigned long old_order, new_order;
1475579c 1954
5bc6b66f
MD
1955 old_order = cds_lfht_get_count_order_ulong(old_size);
1956 new_order = cds_lfht_get_count_order_ulong(new_size);
1a401918
LJ
1957 dbg_printf("resize from %lu (order %lu) to %lu (order %lu) buckets\n",
1958 old_size, old_order, new_size, new_order);
1475579c 1959 assert(new_size > old_size);
93d46c39 1960 init_table(ht, old_order + 1, new_order);
abc490a1
MD
1961}
1962
1963/* called with resize mutex held */
1964static
4105056a 1965void _do_cds_lfht_shrink(struct cds_lfht *ht,
1475579c 1966 unsigned long old_size, unsigned long new_size)
464a1ec9 1967{
1475579c 1968 unsigned long old_order, new_order;
464a1ec9 1969
d0d8f9aa 1970 new_size = max(new_size, MIN_TABLE_SIZE);
5bc6b66f
MD
1971 old_order = cds_lfht_get_count_order_ulong(old_size);
1972 new_order = cds_lfht_get_count_order_ulong(new_size);
1a401918
LJ
1973 dbg_printf("resize from %lu (order %lu) to %lu (order %lu) buckets\n",
1974 old_size, old_order, new_size, new_order);
1475579c 1975 assert(new_size < old_size);
1475579c 1976
1ee8f000 1977 /* Remove and unlink all bucket nodes to remove. */
93d46c39 1978 fini_table(ht, new_order + 1, old_order);
464a1ec9
MD
1979}
1980
1475579c
MD
1981
1982/* called with resize mutex held */
1983static
1984void _do_cds_lfht_resize(struct cds_lfht *ht)
1985{
1986 unsigned long new_size, old_size;
4105056a
MD
1987
1988 /*
1989 * Resize table, re-do if the target size has changed under us.
1990 */
1991 do {
d2be3620
MD
1992 if (CMM_LOAD_SHARED(ht->in_progress_destroy))
1993 break;
7b3893e4
LJ
1994 ht->resize_initiated = 1;
1995 old_size = ht->size;
1996 new_size = CMM_LOAD_SHARED(ht->resize_target);
4105056a
MD
1997 if (old_size < new_size)
1998 _do_cds_lfht_grow(ht, old_size, new_size);
1999 else if (old_size > new_size)
2000 _do_cds_lfht_shrink(ht, old_size, new_size);
7b3893e4 2001 ht->resize_initiated = 0;
4105056a
MD
2002 /* write resize_initiated before read resize_target */
2003 cmm_smp_mb();
7b3893e4 2004 } while (ht->size != CMM_LOAD_SHARED(ht->resize_target));
1475579c
MD
2005}
2006
abc490a1 2007static
ab65b890 2008unsigned long resize_target_grow(struct cds_lfht *ht, unsigned long new_size)
464a1ec9 2009{
7b3893e4 2010 return _uatomic_xchg_monotonic_increase(&ht->resize_target, new_size);
464a1ec9
MD
2011}
2012
1475579c 2013static
4105056a 2014void resize_target_update_count(struct cds_lfht *ht,
b8af5011 2015 unsigned long count)
1475579c 2016{
d0d8f9aa 2017 count = max(count, MIN_TABLE_SIZE);
747d725c 2018 count = min(count, ht->max_nr_buckets);
7b3893e4 2019 uatomic_set(&ht->resize_target, count);
1475579c
MD
2020}
2021
2022void cds_lfht_resize(struct cds_lfht *ht, unsigned long new_size)
464a1ec9 2023{
10e68472
MD
2024 resize_target_update_count(ht, new_size);
2025 CMM_STORE_SHARED(ht->resize_initiated, 1);
5ffcaeef 2026 mutex_lock(&ht->resize_mutex);
1475579c 2027 _do_cds_lfht_resize(ht);
5ffcaeef 2028 mutex_unlock(&ht->resize_mutex);
abc490a1 2029}
464a1ec9 2030
abc490a1 2031static
d0ec0ed2 2032void do_resize_cb(struct urcu_work *work)
abc490a1 2033{
d0ec0ed2
MD
2034 struct resize_work *resize_work =
2035 caa_container_of(work, struct resize_work, work);
2036 struct cds_lfht *ht = resize_work->ht;
abc490a1 2037
d0ec0ed2 2038 ht->flavor->register_thread();
5ffcaeef 2039 mutex_lock(&ht->resize_mutex);
14044b37 2040 _do_cds_lfht_resize(ht);
5ffcaeef 2041 mutex_unlock(&ht->resize_mutex);
d0ec0ed2 2042 ht->flavor->unregister_thread();
98808fb1 2043 poison_free(work);
464a1ec9
MD
2044}
2045
abc490a1 2046static
f1f119ee 2047void __cds_lfht_resize_lazy_launch(struct cds_lfht *ht)
ab7d5fc6 2048{
d0ec0ed2 2049 struct resize_work *work;
abc490a1 2050
4105056a
MD
2051 /* Store resize_target before read resize_initiated */
2052 cmm_smp_mb();
7b3893e4 2053 if (!CMM_LOAD_SHARED(ht->resize_initiated)) {
ed35e6d8 2054 if (CMM_LOAD_SHARED(ht->in_progress_destroy)) {
59290e9d 2055 return;
ed35e6d8 2056 }
f9830efd 2057 work = malloc(sizeof(*work));
741f378e
MD
2058 if (work == NULL) {
2059 dbg_printf("error allocating resize work, bailing out\n");
741f378e
MD
2060 return;
2061 }
f9830efd 2062 work->ht = ht;
d0ec0ed2
MD
2063 urcu_workqueue_queue_work(cds_lfht_workqueue,
2064 &work->work, do_resize_cb);
7b3893e4 2065 CMM_STORE_SHARED(ht->resize_initiated, 1);
f9830efd 2066 }
ab7d5fc6 2067}
3171717f 2068
f1f119ee
LJ
2069static
2070void cds_lfht_resize_lazy_grow(struct cds_lfht *ht, unsigned long size, int growth)
2071{
2072 unsigned long target_size = size << growth;
2073
747d725c 2074 target_size = min(target_size, ht->max_nr_buckets);
f1f119ee
LJ
2075 if (resize_target_grow(ht, target_size) >= target_size)
2076 return;
2077
2078 __cds_lfht_resize_lazy_launch(ht);
2079}
2080
89bb121d
LJ
2081/*
2082 * We favor grow operations over shrink. A shrink operation never occurs
2083 * if a grow operation is queued for lazy execution. A grow operation
2084 * cancels any pending shrink lazy execution.
2085 */
3171717f 2086static
4105056a 2087void cds_lfht_resize_lazy_count(struct cds_lfht *ht, unsigned long size,
3171717f
MD
2088 unsigned long count)
2089{
b8af5011
MD
2090 if (!(ht->flags & CDS_LFHT_AUTO_RESIZE))
2091 return;
d0d8f9aa 2092 count = max(count, MIN_TABLE_SIZE);
747d725c 2093 count = min(count, ht->max_nr_buckets);
89bb121d
LJ
2094 if (count == size)
2095 return; /* Already the right size, no resize needed */
2096 if (count > size) { /* lazy grow */
2097 if (resize_target_grow(ht, count) >= count)
2098 return;
2099 } else { /* lazy shrink */
2100 for (;;) {
2101 unsigned long s;
2102
7b3893e4 2103 s = uatomic_cmpxchg(&ht->resize_target, size, count);
89bb121d
LJ
2104 if (s == size)
2105 break; /* no resize needed */
2106 if (s > size)
2107 return; /* growing is/(was just) in progress */
2108 if (s <= count)
2109 return; /* some other thread do shrink */
2110 size = s;
2111 }
2112 }
f1f119ee 2113 __cds_lfht_resize_lazy_launch(ht);
3171717f 2114}
d0ec0ed2 2115
17a8f206 2116static void cds_lfht_before_fork(void *priv __attribute__((unused)))
d0ec0ed2
MD
2117{
2118 if (cds_lfht_workqueue_atfork_nesting++)
2119 return;
2120 mutex_lock(&cds_lfht_fork_mutex);
2121 if (!cds_lfht_workqueue)
2122 return;
2123 urcu_workqueue_pause_worker(cds_lfht_workqueue);
2124}
2125
17a8f206 2126static void cds_lfht_after_fork_parent(void *priv __attribute__((unused)))
d0ec0ed2
MD
2127{
2128 if (--cds_lfht_workqueue_atfork_nesting)
2129 return;
2130 if (!cds_lfht_workqueue)
2131 goto end;
2132 urcu_workqueue_resume_worker(cds_lfht_workqueue);
2133end:
2134 mutex_unlock(&cds_lfht_fork_mutex);
2135}
2136
17a8f206 2137static void cds_lfht_after_fork_child(void *priv __attribute__((unused)))
d0ec0ed2
MD
2138{
2139 if (--cds_lfht_workqueue_atfork_nesting)
2140 return;
2141 if (!cds_lfht_workqueue)
2142 goto end;
2143 urcu_workqueue_create_worker(cds_lfht_workqueue);
2144end:
2145 mutex_unlock(&cds_lfht_fork_mutex);
2146}
2147
2148static struct urcu_atfork cds_lfht_atfork = {
2149 .before_fork = cds_lfht_before_fork,
2150 .after_fork_parent = cds_lfht_after_fork_parent,
2151 .after_fork_child = cds_lfht_after_fork_child,
2152};
2153
1a990de3 2154/*
2155 * Block all signals for the workqueue worker thread to ensure we don't
2156 * disturb the application. The SIGRCU signal needs to be unblocked for
2157 * the urcu-signal flavor.
2158 */
17a8f206
MJ
2159static void cds_lfht_worker_init(
2160 struct urcu_workqueue *workqueue __attribute__((unused)),
2161 void *priv __attribute__((unused)))
d0ec0ed2
MD
2162{
2163 int ret;
2164 sigset_t mask;
2165
d0ec0ed2
MD
2166 ret = sigfillset(&mask);
2167 if (ret)
2168 urcu_die(errno);
1a990de3 2169 ret = sigdelset(&mask, SIGRCU);
2170 if (ret)
9fd30396 2171 urcu_die(errno);
1a990de3 2172 ret = pthread_sigmask(SIG_SETMASK, &mask, NULL);
d0ec0ed2
MD
2173 if (ret)
2174 urcu_die(ret);
2175}
2176
2177static void cds_lfht_init_worker(const struct rcu_flavor_struct *flavor)
2178{
2179 flavor->register_rculfhash_atfork(&cds_lfht_atfork);
2180
2181 mutex_lock(&cds_lfht_fork_mutex);
2182 if (cds_lfht_workqueue_user_count++)
2183 goto end;
2184 cds_lfht_workqueue = urcu_workqueue_create(0, -1, NULL,
2185 NULL, cds_lfht_worker_init, NULL, NULL, NULL, NULL, NULL);
2186end:
2187 mutex_unlock(&cds_lfht_fork_mutex);
2188}
2189
2190static void cds_lfht_fini_worker(const struct rcu_flavor_struct *flavor)
2191{
2192 mutex_lock(&cds_lfht_fork_mutex);
2193 if (--cds_lfht_workqueue_user_count)
2194 goto end;
2195 urcu_workqueue_destroy(cds_lfht_workqueue);
2196 cds_lfht_workqueue = NULL;
2197end:
2198 mutex_unlock(&cds_lfht_fork_mutex);
2199
2200 flavor->unregister_rculfhash_atfork(&cds_lfht_atfork);
2201}
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