rculfhash: remove unused rcu_head in partition_resize_work
[urcu.git] / 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>
7 *
8 * This library is free software; you can redistribute it and/or
9 * modify it under the terms of the GNU Lesser General Public
10 * License as published by the Free Software Foundation; either
11 * version 2.1 of the License, or (at your option) any later version.
12 *
13 * This library is distributed in the hope that it will be useful,
14 * but WITHOUT ANY WARRANTY; without even the implied warranty of
15 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
16 * Lesser General Public License for more details.
17 *
18 * You should have received a copy of the GNU Lesser General Public
19 * License along with this library; if not, write to the Free Software
20 * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
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21 */
22
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23/*
24 * Based on the following articles:
25 * - Ori Shalev and Nir Shavit. Split-ordered lists: Lock-free
26 * extensible hash tables. J. ACM 53, 3 (May 2006), 379-405.
27 * - Michael, M. M. High performance dynamic lock-free hash tables
28 * and list-based sets. In Proceedings of the fourteenth annual ACM
29 * symposium on Parallel algorithms and architectures, ACM Press,
30 * (2002), 73-82.
31 *
1475579c 32 * Some specificities of this Lock-Free Resizable RCU Hash Table
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33 * implementation:
34 *
35 * - RCU read-side critical section allows readers to perform hash
36 * table lookups and use the returned objects safely by delaying
37 * memory reclaim of a grace period.
38 * - Add and remove operations are lock-free, and do not need to
39 * allocate memory. They need to be executed within RCU read-side
40 * critical section to ensure the objects they read are valid and to
41 * deal with the cmpxchg ABA problem.
42 * - add and add_unique operations are supported. add_unique checks if
43 * the node key already exists in the hash table. It ensures no key
44 * duplicata exists.
45 * - The resize operation executes concurrently with add/remove/lookup.
46 * - Hash table nodes are contained within a split-ordered list. This
47 * list is ordered by incrementing reversed-bits-hash value.
48 * - An index of dummy nodes is kept. These dummy nodes are the hash
49 * table "buckets", and they are also chained together in the
50 * split-ordered list, which allows recursive expansion.
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51 * - The resize operation for small tables only allows expanding the hash table.
52 * It is triggered automatically by detecting long chains in the add
53 * operation.
54 * - The resize operation for larger tables (and available through an
55 * API) allows both expanding and shrinking the hash table.
56 * - Per-CPU Split-counters are used to keep track of the number of
57 * nodes within the hash table for automatic resize triggering.
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58 * - Resize operation initiated by long chain detection is executed by a
59 * call_rcu thread, which keeps lock-freedom of add and remove.
60 * - Resize operations are protected by a mutex.
61 * - The removal operation is split in two parts: first, a "removed"
62 * flag is set in the next pointer within the node to remove. Then,
63 * a "garbage collection" is performed in the bucket containing the
64 * removed node (from the start of the bucket up to the removed node).
65 * All encountered nodes with "removed" flag set in their next
66 * pointers are removed from the linked-list. If the cmpxchg used for
67 * removal fails (due to concurrent garbage-collection or concurrent
68 * add), we retry from the beginning of the bucket. This ensures that
69 * the node with "removed" flag set is removed from the hash table
70 * (not visible to lookups anymore) before the RCU read-side critical
71 * section held across removal ends. Furthermore, this ensures that
72 * the node with "removed" flag set is removed from the linked-list
73 * before its memory is reclaimed. Only the thread which removal
74 * successfully set the "removed" flag (with a cmpxchg) into a node's
75 * next pointer is considered to have succeeded its removal (and thus
76 * owns the node to reclaim). Because we garbage-collect starting from
77 * an invariant node (the start-of-bucket dummy node) up to the
78 * "removed" node (or find a reverse-hash that is higher), we are sure
79 * that a successful traversal of the chain leads to a chain that is
80 * present in the linked-list (the start node is never removed) and
81 * that is does not contain the "removed" node anymore, even if
82 * concurrent delete/add operations are changing the structure of the
83 * list concurrently.
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84 * - The add operation performs gargage collection of buckets if it
85 * encounters nodes with removed flag set in the bucket where it wants
86 * to add its new node. This ensures lock-freedom of add operation by
87 * helping the remover unlink nodes from the list rather than to wait
88 * for it do to so.
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89 * - A RCU "order table" indexed by log2(hash index) is copied and
90 * expanded by the resize operation. This order table allows finding
91 * the "dummy node" tables.
92 * - There is one dummy node table per hash index order. The size of
93 * each dummy node table is half the number of hashes contained in
94 * this order.
95 * - call_rcu is used to garbage-collect the old order table.
96 * - The per-order dummy node tables contain a compact version of the
97 * hash table nodes. These tables are invariant after they are
98 * populated into the hash table.
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99 *
100 * A bit of ascii art explanation:
101 *
102 * Order index is the off-by-one compare to the actual power of 2 because
103 * we use index 0 to deal with the 0 special-case.
104 *
105 * This shows the nodes for a small table ordered by reversed bits:
106 *
107 * bits reverse
108 * 0 000 000
109 * 4 100 001
110 * 2 010 010
111 * 6 110 011
112 * 1 001 100
113 * 5 101 101
114 * 3 011 110
115 * 7 111 111
116 *
117 * This shows the nodes in order of non-reversed bits, linked by
118 * reversed-bit order.
119 *
120 * order bits reverse
121 * 0 0 000 000
122 * |
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123 * 1 | 1 001 100 <- <-
124 * | | | |
125 * 2 | | 2 010 010 | |
126 * | | | 3 011 110 | <- |
127 * | | | | | | |
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128 * 3 -> | | | 4 100 001 | |
129 * -> | | 5 101 101 |
130 * -> | 6 110 011
131 * -> 7 111 111
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132 */
133
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134#define _LGPL_SOURCE
135#include <stdlib.h>
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136#include <errno.h>
137#include <assert.h>
138#include <stdio.h>
abc490a1 139#include <stdint.h>
f000907d 140#include <string.h>
e0ba718a 141
15cfbec7 142#include "config.h"
2ed95849 143#include <urcu.h>
abc490a1 144#include <urcu-call-rcu.h>
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145#include <urcu/arch.h>
146#include <urcu/uatomic.h>
a42cc659 147#include <urcu/compiler.h>
abc490a1 148#include <urcu/rculfhash.h>
5e28c532 149#include <stdio.h>
464a1ec9 150#include <pthread.h>
44395fb7 151
f9830efd 152#ifdef DEBUG
f0c29ed7 153#define dbg_printf(fmt, args...) printf("[debug rculfhash] " fmt, ## args)
f9830efd 154#else
e753ff5a 155#define dbg_printf(fmt, args...)
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156#endif
157
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158/*
159 * Per-CPU split-counters lazily update the global counter each 1024
160 * addition/removal. It automatically keeps track of resize required.
161 * We use the bucket length as indicator for need to expand for small
162 * tables and machines lacking per-cpu data suppport.
163 */
164#define COUNT_COMMIT_ORDER 10
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165#define CHAIN_LEN_TARGET 1
166#define CHAIN_LEN_RESIZE_THRESHOLD 3
2ed95849 167
cd95516d 168/*
76a73da8 169 * Define the minimum table size.
cd95516d 170 */
c9edd44a 171#define MIN_TABLE_SIZE 1
cd95516d 172
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173#if (CAA_BITS_PER_LONG == 32)
174#define MAX_TABLE_ORDER 32
175#else
176#define MAX_TABLE_ORDER 64
177#endif
178
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179/*
180 * Minimum number of dummy nodes to touch per thread to parallelize grow/shrink.
181 */
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182#define MIN_PARTITION_PER_THREAD_ORDER 12
183#define MIN_PARTITION_PER_THREAD (1UL << MIN_PARTITION_PER_THREAD_ORDER)
b7d619b0 184
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185#ifndef min
186#define min(a, b) ((a) < (b) ? (a) : (b))
187#endif
188
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189#ifndef max
190#define max(a, b) ((a) > (b) ? (a) : (b))
191#endif
2ed95849 192
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193/*
194 * The removed flag needs to be updated atomically with the pointer.
48ed1c18 195 * It indicates that no node must attach to the node scheduled for
b198f0fd 196 * removal, and that node garbage collection must be performed.
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197 * The dummy flag does not require to be updated atomically with the
198 * pointer, but it is added as a pointer low bit flag to save space.
199 */
d37166c6 200#define REMOVED_FLAG (1UL << 0)
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201#define DUMMY_FLAG (1UL << 1)
202#define FLAGS_MASK ((1UL << 2) - 1)
d37166c6 203
bb7b2f26 204/* Value of the end pointer. Should not interact with flags. */
f9c80341 205#define END_VALUE NULL
bb7b2f26 206
df44348d 207struct ht_items_count {
860d07e8 208 unsigned long add, del;
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209} __attribute__((aligned(CAA_CACHE_LINE_SIZE)));
210
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211struct rcu_level {
212 struct rcu_head head;
213 struct _cds_lfht_node nodes[0];
214};
215
395270b6 216struct rcu_table {
4105056a 217 unsigned long size; /* always a power of 2, shared (RCU) */
f9830efd 218 unsigned long resize_target;
11519af6 219 int resize_initiated;
4105056a 220 struct rcu_level *tbl[MAX_TABLE_ORDER];
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221};
222
14044b37 223struct cds_lfht {
4105056a 224 struct rcu_table t;
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225 cds_lfht_hash_fct hash_fct;
226 cds_lfht_compare_fct compare_fct;
732ad076 227 unsigned long hash_seed;
b8af5011 228 int flags;
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229 /*
230 * We need to put the work threads offline (QSBR) when taking this
231 * mutex, because we use synchronize_rcu within this mutex critical
232 * section, which waits on read-side critical sections, and could
233 * therefore cause grace-period deadlock if we hold off RCU G.P.
234 * completion.
235 */
464a1ec9 236 pthread_mutex_t resize_mutex; /* resize mutex: add/del mutex */
33c7c748 237 unsigned int in_progress_resize, in_progress_destroy;
14044b37 238 void (*cds_lfht_call_rcu)(struct rcu_head *head,
abc490a1 239 void (*func)(struct rcu_head *head));
1475579c 240 void (*cds_lfht_synchronize_rcu)(void);
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241 void (*cds_lfht_rcu_read_lock)(void);
242 void (*cds_lfht_rcu_read_unlock)(void);
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243 void (*cds_lfht_rcu_thread_offline)(void);
244 void (*cds_lfht_rcu_thread_online)(void);
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245 void (*cds_lfht_rcu_register_thread)(void);
246 void (*cds_lfht_rcu_unregister_thread)(void);
247 pthread_attr_t *resize_attr; /* Resize threads attributes */
7de5ccfd 248 long count; /* global approximate item count */
df44348d 249 struct ht_items_count *percpu_count; /* per-cpu item count */
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250};
251
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252struct rcu_resize_work {
253 struct rcu_head head;
14044b37 254 struct cds_lfht *ht;
abc490a1 255};
2ed95849 256
b7d619b0 257struct partition_resize_work {
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258 struct cds_lfht *ht;
259 unsigned long i, start, len;
260 void (*fct)(struct cds_lfht *ht, unsigned long i,
261 unsigned long start, unsigned long len);
262};
263
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264enum add_mode {
265 ADD_DEFAULT = 0,
266 ADD_UNIQUE = 1,
267 ADD_REPLACE = 2,
268};
269
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270static
271struct cds_lfht_node *_cds_lfht_add(struct cds_lfht *ht,
272 unsigned long size,
273 struct cds_lfht_node *node,
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274 enum add_mode mode, int dummy);
275
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276/*
277 * Algorithm to reverse bits in a word by lookup table, extended to
278 * 64-bit words.
f9830efd 279 * Source:
abc490a1 280 * http://graphics.stanford.edu/~seander/bithacks.html#BitReverseTable
f9830efd 281 * Originally from Public Domain.
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282 */
283
284static const uint8_t BitReverseTable256[256] =
2ed95849 285{
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286#define R2(n) (n), (n) + 2*64, (n) + 1*64, (n) + 3*64
287#define R4(n) R2(n), R2((n) + 2*16), R2((n) + 1*16), R2((n) + 3*16)
288#define R6(n) R4(n), R4((n) + 2*4 ), R4((n) + 1*4 ), R4((n) + 3*4 )
289 R6(0), R6(2), R6(1), R6(3)
290};
291#undef R2
292#undef R4
293#undef R6
2ed95849 294
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295static
296uint8_t bit_reverse_u8(uint8_t v)
297{
298 return BitReverseTable256[v];
299}
ab7d5fc6 300
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301static __attribute__((unused))
302uint32_t bit_reverse_u32(uint32_t v)
303{
304 return ((uint32_t) bit_reverse_u8(v) << 24) |
305 ((uint32_t) bit_reverse_u8(v >> 8) << 16) |
306 ((uint32_t) bit_reverse_u8(v >> 16) << 8) |
307 ((uint32_t) bit_reverse_u8(v >> 24));
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308}
309
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310static __attribute__((unused))
311uint64_t bit_reverse_u64(uint64_t v)
2ed95849 312{
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313 return ((uint64_t) bit_reverse_u8(v) << 56) |
314 ((uint64_t) bit_reverse_u8(v >> 8) << 48) |
315 ((uint64_t) bit_reverse_u8(v >> 16) << 40) |
316 ((uint64_t) bit_reverse_u8(v >> 24) << 32) |
317 ((uint64_t) bit_reverse_u8(v >> 32) << 24) |
318 ((uint64_t) bit_reverse_u8(v >> 40) << 16) |
319 ((uint64_t) bit_reverse_u8(v >> 48) << 8) |
320 ((uint64_t) bit_reverse_u8(v >> 56));
321}
322
323static
324unsigned long bit_reverse_ulong(unsigned long v)
325{
326#if (CAA_BITS_PER_LONG == 32)
327 return bit_reverse_u32(v);
328#else
329 return bit_reverse_u64(v);
330#endif
331}
332
f9830efd 333/*
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334 * fls: returns the position of the most significant bit.
335 * Returns 0 if no bit is set, else returns the position of the most
336 * significant bit (from 1 to 32 on 32-bit, from 1 to 64 on 64-bit).
f9830efd 337 */
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338#if defined(__i386) || defined(__x86_64)
339static inline
340unsigned int fls_u32(uint32_t x)
f9830efd 341{
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342 int r;
343
344 asm("bsrl %1,%0\n\t"
345 "jnz 1f\n\t"
346 "movl $-1,%0\n\t"
347 "1:\n\t"
348 : "=r" (r) : "rm" (x));
349 return r + 1;
350}
351#define HAS_FLS_U32
352#endif
353
354#if defined(__x86_64)
355static inline
356unsigned int fls_u64(uint64_t x)
357{
358 long r;
359
360 asm("bsrq %1,%0\n\t"
361 "jnz 1f\n\t"
362 "movq $-1,%0\n\t"
363 "1:\n\t"
364 : "=r" (r) : "rm" (x));
365 return r + 1;
366}
367#define HAS_FLS_U64
368#endif
369
370#ifndef HAS_FLS_U64
371static __attribute__((unused))
372unsigned int fls_u64(uint64_t x)
373{
374 unsigned int r = 64;
375
376 if (!x)
377 return 0;
378
379 if (!(x & 0xFFFFFFFF00000000ULL)) {
380 x <<= 32;
381 r -= 32;
382 }
383 if (!(x & 0xFFFF000000000000ULL)) {
384 x <<= 16;
385 r -= 16;
386 }
387 if (!(x & 0xFF00000000000000ULL)) {
388 x <<= 8;
389 r -= 8;
390 }
391 if (!(x & 0xF000000000000000ULL)) {
392 x <<= 4;
393 r -= 4;
394 }
395 if (!(x & 0xC000000000000000ULL)) {
396 x <<= 2;
397 r -= 2;
398 }
399 if (!(x & 0x8000000000000000ULL)) {
400 x <<= 1;
401 r -= 1;
402 }
403 return r;
404}
405#endif
406
407#ifndef HAS_FLS_U32
408static __attribute__((unused))
409unsigned int fls_u32(uint32_t x)
410{
411 unsigned int r = 32;
f9830efd 412
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413 if (!x)
414 return 0;
415 if (!(x & 0xFFFF0000U)) {
416 x <<= 16;
417 r -= 16;
418 }
419 if (!(x & 0xFF000000U)) {
420 x <<= 8;
421 r -= 8;
422 }
423 if (!(x & 0xF0000000U)) {
424 x <<= 4;
425 r -= 4;
426 }
427 if (!(x & 0xC0000000U)) {
428 x <<= 2;
429 r -= 2;
430 }
431 if (!(x & 0x80000000U)) {
432 x <<= 1;
433 r -= 1;
434 }
435 return r;
436}
437#endif
438
439unsigned int fls_ulong(unsigned long x)
f9830efd 440{
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441#if (CAA_BITS_PER_lONG == 32)
442 return fls_u32(x);
443#else
444 return fls_u64(x);
445#endif
446}
f9830efd 447
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448int get_count_order_u32(uint32_t x)
449{
450 int order;
451
452 order = fls_u32(x) - 1;
453 if (x & (x - 1))
454 order++;
455 return order;
456}
457
458int get_count_order_ulong(unsigned long x)
459{
460 int order;
461
462 order = fls_ulong(x) - 1;
463 if (x & (x - 1))
464 order++;
465 return order;
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466}
467
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468#ifdef POISON_FREE
469#define poison_free(ptr) \
470 do { \
471 memset(ptr, 0x42, sizeof(*(ptr))); \
472 free(ptr); \
473 } while (0)
474#else
475#define poison_free(ptr) free(ptr)
476#endif
477
f9830efd 478static
4105056a 479void cds_lfht_resize_lazy(struct cds_lfht *ht, unsigned long size, int growth);
f9830efd 480
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481/*
482 * If the sched_getcpu() and sysconf(_SC_NPROCESSORS_CONF) calls are
483 * available, then we support hash table item accounting.
484 * In the unfortunate event the number of CPUs reported would be
485 * inaccurate, we use modulo arithmetic on the number of CPUs we got.
486 */
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487#if defined(HAVE_SCHED_GETCPU) && defined(HAVE_SYSCONF)
488
f8994aee 489static
4105056a 490void cds_lfht_resize_lazy_count(struct cds_lfht *ht, unsigned long size,
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491 unsigned long count);
492
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493static long nr_cpus_mask = -1;
494
495static
496struct ht_items_count *alloc_per_cpu_items_count(void)
497{
498 struct ht_items_count *count;
499
500 switch (nr_cpus_mask) {
501 case -2:
502 return NULL;
503 case -1:
504 {
505 long maxcpus;
506
507 maxcpus = sysconf(_SC_NPROCESSORS_CONF);
508 if (maxcpus <= 0) {
509 nr_cpus_mask = -2;
510 return NULL;
511 }
512 /*
513 * round up number of CPUs to next power of two, so we
514 * can use & for modulo.
515 */
516 maxcpus = 1UL << get_count_order_ulong(maxcpus);
517 nr_cpus_mask = maxcpus - 1;
518 }
519 /* Fall-through */
520 default:
521 return calloc(nr_cpus_mask + 1, sizeof(*count));
522 }
523}
524
525static
526void free_per_cpu_items_count(struct ht_items_count *count)
527{
98808fb1 528 poison_free(count);
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529}
530
531static
532int ht_get_cpu(void)
533{
534 int cpu;
535
536 assert(nr_cpus_mask >= 0);
537 cpu = sched_getcpu();
538 if (unlikely(cpu < 0))
539 return cpu;
540 else
541 return cpu & nr_cpus_mask;
542}
543
544static
4105056a 545void ht_count_add(struct cds_lfht *ht, unsigned long size)
df44348d 546{
3171717f 547 unsigned long percpu_count;
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548 int cpu;
549
550 if (unlikely(!ht->percpu_count))
3171717f 551 return;
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552 cpu = ht_get_cpu();
553 if (unlikely(cpu < 0))
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554 return;
555 percpu_count = uatomic_add_return(&ht->percpu_count[cpu].add, 1);
df44348d 556 if (unlikely(!(percpu_count & ((1UL << COUNT_COMMIT_ORDER) - 1)))) {
e3ecefd6 557 long count;
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558
559 dbg_printf("add percpu %lu\n", percpu_count);
560 count = uatomic_add_return(&ht->count,
561 1UL << COUNT_COMMIT_ORDER);
562 /* If power of 2 */
563 if (!(count & (count - 1))) {
4105056a 564 if ((count >> CHAIN_LEN_RESIZE_THRESHOLD) < size)
f8994aee 565 return;
e3ecefd6 566 dbg_printf("add set global %ld\n", count);
4105056a 567 cds_lfht_resize_lazy_count(ht, size,
6ea6bc67 568 count >> (CHAIN_LEN_TARGET - 1));
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569 }
570 }
571}
572
573static
860d07e8 574void ht_count_del(struct cds_lfht *ht, unsigned long size)
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575{
576 unsigned long percpu_count;
3171717f 577 int cpu;
df44348d 578
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579 if (unlikely(!ht->percpu_count))
580 return;
581 cpu = ht_get_cpu();
582 if (unlikely(cpu < 0))
583 return;
80d90c06 584 percpu_count = uatomic_add_return(&ht->percpu_count[cpu].del, 1);
df44348d 585 if (unlikely(!(percpu_count & ((1UL << COUNT_COMMIT_ORDER) - 1)))) {
e3ecefd6 586 long count;
df44348d 587
860d07e8 588 dbg_printf("del percpu %lu\n", percpu_count);
df44348d 589 count = uatomic_add_return(&ht->count,
3171717f 590 -(1UL << COUNT_COMMIT_ORDER));
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591 /* If power of 2 */
592 if (!(count & (count - 1))) {
4105056a 593 if ((count >> CHAIN_LEN_RESIZE_THRESHOLD) >= size)
f8994aee 594 return;
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595 dbg_printf("del set global %ld\n", count);
596 /*
c941bb9e 597 * Don't shrink table if the number of nodes is below a
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598 * certain threshold.
599 */
c941bb9e 600 if (count < (1UL << COUNT_COMMIT_ORDER) * (nr_cpus_mask + 1))
e3ecefd6 601 return;
4105056a 602 cds_lfht_resize_lazy_count(ht, size,
6ea6bc67 603 count >> (CHAIN_LEN_TARGET - 1));
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604 }
605 }
606}
607
608#else /* #if defined(HAVE_SCHED_GETCPU) && defined(HAVE_SYSCONF) */
609
91452a6a 610static const long nr_cpus_mask = -2;
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611
612static
613struct ht_items_count *alloc_per_cpu_items_count(void)
614{
615 return NULL;
616}
617
618static
619void free_per_cpu_items_count(struct ht_items_count *count)
620{
621}
622
623static
4105056a 624void ht_count_add(struct cds_lfht *ht, unsigned long size)
df44348d
MD
625{
626}
627
628static
860d07e8 629void ht_count_del(struct cds_lfht *ht, unsigned long size)
df44348d
MD
630{
631}
632
633#endif /* #else #if defined(HAVE_SCHED_GETCPU) && defined(HAVE_SYSCONF) */
634
635
f9830efd 636static
4105056a 637void check_resize(struct cds_lfht *ht, unsigned long size, uint32_t chain_len)
f9830efd 638{
f8994aee
MD
639 unsigned long count;
640
b8af5011
MD
641 if (!(ht->flags & CDS_LFHT_AUTO_RESIZE))
642 return;
f8994aee
MD
643 count = uatomic_read(&ht->count);
644 /*
645 * Use bucket-local length for small table expand and for
646 * environments lacking per-cpu data support.
647 */
648 if (count >= (1UL << COUNT_COMMIT_ORDER))
649 return;
24365af7 650 if (chain_len > 100)
f0c29ed7 651 dbg_printf("WARNING: large chain length: %u.\n",
24365af7 652 chain_len);
3390d470 653 if (chain_len >= CHAIN_LEN_RESIZE_THRESHOLD)
4105056a 654 cds_lfht_resize_lazy(ht, size,
01370f0b 655 get_count_order_u32(chain_len - (CHAIN_LEN_TARGET - 1)));
f9830efd
MD
656}
657
abc490a1 658static
14044b37 659struct cds_lfht_node *clear_flag(struct cds_lfht_node *node)
abc490a1 660{
14044b37 661 return (struct cds_lfht_node *) (((unsigned long) node) & ~FLAGS_MASK);
abc490a1
MD
662}
663
664static
14044b37 665int is_removed(struct cds_lfht_node *node)
abc490a1 666{
d37166c6 667 return ((unsigned long) node) & REMOVED_FLAG;
abc490a1
MD
668}
669
670static
14044b37 671struct cds_lfht_node *flag_removed(struct cds_lfht_node *node)
abc490a1 672{
14044b37 673 return (struct cds_lfht_node *) (((unsigned long) node) | REMOVED_FLAG);
abc490a1
MD
674}
675
f5596c94 676static
14044b37 677int is_dummy(struct cds_lfht_node *node)
f5596c94
MD
678{
679 return ((unsigned long) node) & DUMMY_FLAG;
680}
681
682static
14044b37 683struct cds_lfht_node *flag_dummy(struct cds_lfht_node *node)
f5596c94 684{
14044b37 685 return (struct cds_lfht_node *) (((unsigned long) node) | DUMMY_FLAG);
f5596c94 686}
bb7b2f26
MD
687
688static
689struct cds_lfht_node *get_end(void)
690{
691 return (struct cds_lfht_node *) END_VALUE;
692}
693
694static
695int is_end(struct cds_lfht_node *node)
696{
697 return clear_flag(node) == (struct cds_lfht_node *) END_VALUE;
698}
699
abc490a1 700static
f9830efd 701unsigned long _uatomic_max(unsigned long *ptr, unsigned long v)
abc490a1
MD
702{
703 unsigned long old1, old2;
704
705 old1 = uatomic_read(ptr);
706 do {
707 old2 = old1;
708 if (old2 >= v)
f9830efd 709 return old2;
abc490a1 710 } while ((old1 = uatomic_cmpxchg(ptr, old2, v)) != old2);
f9830efd 711 return v;
abc490a1
MD
712}
713
1475579c
MD
714static
715void cds_lfht_free_level(struct rcu_head *head)
716{
717 struct rcu_level *l =
718 caa_container_of(head, struct rcu_level, head);
98808fb1 719 poison_free(l);
1475579c
MD
720}
721
273399de
MD
722/*
723 * Remove all logically deleted nodes from a bucket up to a certain node key.
724 */
725static
f9c80341 726void _cds_lfht_gc_bucket(struct cds_lfht_node *dummy, struct cds_lfht_node *node)
273399de 727{
14044b37 728 struct cds_lfht_node *iter_prev, *iter, *next, *new_next;
273399de 729
c90201ac
MD
730 assert(!is_dummy(dummy));
731 assert(!is_removed(dummy));
732 assert(!is_dummy(node));
733 assert(!is_removed(node));
273399de
MD
734 for (;;) {
735 iter_prev = dummy;
736 /* We can always skip the dummy node initially */
cc4fcb10
MD
737 iter = rcu_dereference(iter_prev->p.next);
738 assert(iter_prev->p.reverse_hash <= node->p.reverse_hash);
bd4db153
MD
739 /*
740 * We should never be called with dummy (start of chain)
741 * and logically removed node (end of path compression
742 * marker) being the actual same node. This would be a
743 * bug in the algorithm implementation.
744 */
745 assert(dummy != node);
273399de 746 for (;;) {
bb7b2f26 747 if (unlikely(is_end(iter)))
f9c80341 748 return;
76412f24 749 if (likely(clear_flag(iter)->p.reverse_hash > node->p.reverse_hash))
f9c80341 750 return;
cc4fcb10 751 next = rcu_dereference(clear_flag(iter)->p.next);
b198f0fd 752 if (likely(is_removed(next)))
273399de 753 break;
b453eae1 754 iter_prev = clear_flag(iter);
273399de
MD
755 iter = next;
756 }
b198f0fd 757 assert(!is_removed(iter));
f5596c94
MD
758 if (is_dummy(iter))
759 new_next = flag_dummy(clear_flag(next));
760 else
761 new_next = clear_flag(next);
48ed1c18
MD
762 if (is_removed(iter))
763 new_next = flag_removed(new_next);
f5596c94 764 (void) uatomic_cmpxchg(&iter_prev->p.next, iter, new_next);
273399de 765 }
f9c80341 766 return;
273399de
MD
767}
768
9357c415
MD
769static
770int _cds_lfht_replace(struct cds_lfht *ht, unsigned long size,
771 struct cds_lfht_node *old_node,
772 struct cds_lfht_node *ret_next,
773 struct cds_lfht_node *new_node)
774{
775 struct cds_lfht_node *dummy, *old_next;
776 struct _cds_lfht_node *lookup;
777 int flagged = 0;
778 unsigned long hash, index, order;
779
780 if (!old_node) /* Return -ENOENT if asked to replace NULL node */
781 goto end;
782
783 assert(!is_removed(old_node));
784 assert(!is_dummy(old_node));
785 assert(!is_removed(new_node));
786 assert(!is_dummy(new_node));
787 assert(new_node != old_node);
788 do {
789 /* Insert after node to be replaced */
790 old_next = ret_next;
791 if (is_removed(old_next)) {
792 /*
793 * Too late, the old node has been removed under us
794 * between lookup and replace. Fail.
795 */
796 goto end;
797 }
798 assert(!is_dummy(old_next));
799 assert(new_node != clear_flag(old_next));
800 new_node->p.next = clear_flag(old_next);
801 /*
802 * Here is the whole trick for lock-free replace: we add
803 * the replacement node _after_ the node we want to
804 * replace by atomically setting its next pointer at the
805 * same time we set its removal flag. Given that
806 * the lookups/get next use an iterator aware of the
807 * next pointer, they will either skip the old node due
808 * to the removal flag and see the new node, or use
809 * the old node, but will not see the new one.
810 */
811 ret_next = uatomic_cmpxchg(&old_node->p.next,
812 old_next, flag_removed(new_node));
813 } while (ret_next != old_next);
814
815 /* We performed the replacement. */
816 flagged = 1;
817
818 /*
819 * Ensure that the old node is not visible to readers anymore:
820 * lookup for the node, and remove it (along with any other
821 * logically removed node) if found.
822 */
823 hash = bit_reverse_ulong(old_node->p.reverse_hash);
824 assert(size > 0);
825 index = hash & (size - 1);
826 order = get_count_order_ulong(index + 1);
827 lookup = &ht->t.tbl[order]->nodes[index & (!order ? 0 : ((1UL << (order - 1)) - 1))];
828 dummy = (struct cds_lfht_node *) lookup;
829 _cds_lfht_gc_bucket(dummy, new_node);
830end:
831 /*
832 * Only the flagging action indicated that we (and no other)
833 * replaced the node from the hash table.
834 */
835 if (flagged) {
836 assert(is_removed(rcu_dereference(old_node->p.next)));
837 return 0;
838 } else {
839 return -ENOENT;
840 }
841}
842
abc490a1 843static
4105056a
MD
844struct cds_lfht_node *_cds_lfht_add(struct cds_lfht *ht,
845 unsigned long size,
846 struct cds_lfht_node *node,
48ed1c18 847 enum add_mode mode, int dummy)
abc490a1 848{
14044b37 849 struct cds_lfht_node *iter_prev, *iter, *next, *new_node, *new_next,
adc0de68 850 *dummy_node, *return_node;
14044b37 851 struct _cds_lfht_node *lookup;
24365af7 852 unsigned long hash, index, order;
abc490a1 853
c90201ac
MD
854 assert(!is_dummy(node));
855 assert(!is_removed(node));
4105056a 856 if (!size) {
f5596c94 857 assert(dummy);
bb7b2f26 858 node->p.next = flag_dummy(get_end());
18117871
MD
859 return node; /* Initial first add (head) */
860 }
cc4fcb10 861 hash = bit_reverse_ulong(node->p.reverse_hash);
abc490a1 862 for (;;) {
adc0de68 863 uint32_t chain_len = 0;
abc490a1 864
11519af6
MD
865 /*
866 * iter_prev points to the non-removed node prior to the
867 * insert location.
11519af6 868 */
4105056a 869 index = hash & (size - 1);
24365af7 870 order = get_count_order_ulong(index + 1);
4105056a 871 lookup = &ht->t.tbl[order]->nodes[index & ((!order ? 0 : (1UL << (order - 1))) - 1)];
14044b37 872 iter_prev = (struct cds_lfht_node *) lookup;
11519af6 873 /* We can always skip the dummy node initially */
cc4fcb10
MD
874 iter = rcu_dereference(iter_prev->p.next);
875 assert(iter_prev->p.reverse_hash <= node->p.reverse_hash);
abc490a1 876 for (;;) {
bb7b2f26 877 if (unlikely(is_end(iter)))
273399de 878 goto insert;
76412f24 879 if (likely(clear_flag(iter)->p.reverse_hash > node->p.reverse_hash))
273399de 880 goto insert;
cc4fcb10 881 next = rcu_dereference(clear_flag(iter)->p.next);
b198f0fd 882 if (unlikely(is_removed(next)))
9dba85be 883 goto gc_node;
48ed1c18 884 if ((mode == ADD_UNIQUE || mode == ADD_REPLACE)
1b81fe1a 885 && !is_dummy(next)
e43f23f8
MD
886 && !ht->compare_fct(node->key, node->key_len,
887 clear_flag(iter)->key,
48ed1c18
MD
888 clear_flag(iter)->key_len)) {
889 if (mode == ADD_UNIQUE)
890 return clear_flag(iter);
891 else /* mode == ADD_REPLACE */
892 goto replace;
893 }
11519af6 894 /* Only account for identical reverse hash once */
24365af7
MD
895 if (iter_prev->p.reverse_hash != clear_flag(iter)->p.reverse_hash
896 && !is_dummy(next))
4105056a 897 check_resize(ht, size, ++chain_len);
11519af6 898 iter_prev = clear_flag(iter);
273399de 899 iter = next;
abc490a1 900 }
48ed1c18 901
273399de 902 insert:
7ec59d3b 903 assert(node != clear_flag(iter));
11519af6 904 assert(!is_removed(iter_prev));
c90201ac 905 assert(!is_removed(iter));
f000907d 906 assert(iter_prev != node);
f9c80341 907 if (!dummy)
1b81fe1a 908 node->p.next = clear_flag(iter);
f9c80341
MD
909 else
910 node->p.next = flag_dummy(clear_flag(iter));
f5596c94
MD
911 if (is_dummy(iter))
912 new_node = flag_dummy(node);
913 else
914 new_node = node;
cc4fcb10 915 if (uatomic_cmpxchg(&iter_prev->p.next, iter,
48ed1c18 916 new_node) != iter) {
273399de 917 continue; /* retry */
48ed1c18
MD
918 } else {
919 if (mode == ADD_REPLACE)
920 return_node = NULL;
921 else /* ADD_DEFAULT and ADD_UNIQUE */
922 return_node = node;
273399de 923 goto gc_end;
48ed1c18
MD
924 }
925
926 replace:
9357c415
MD
927
928 if (!_cds_lfht_replace(ht, size, clear_flag(iter), next,
929 node)) {
930 return_node = clear_flag(iter);
931 goto end; /* gc already done */
48ed1c18 932 } else {
9357c415 933 continue; /* retry */
48ed1c18
MD
934 }
935
9dba85be
MD
936 gc_node:
937 assert(!is_removed(iter));
f5596c94
MD
938 if (is_dummy(iter))
939 new_next = flag_dummy(clear_flag(next));
940 else
941 new_next = clear_flag(next);
942 (void) uatomic_cmpxchg(&iter_prev->p.next, iter, new_next);
273399de 943 /* retry */
464a1ec9 944 }
273399de
MD
945gc_end:
946 /* Garbage collect logically removed nodes in the bucket */
4105056a 947 index = hash & (size - 1);
24365af7 948 order = get_count_order_ulong(index + 1);
4105056a 949 lookup = &ht->t.tbl[order]->nodes[index & (!order ? 0 : ((1UL << (order - 1)) - 1))];
14044b37 950 dummy_node = (struct cds_lfht_node *) lookup;
f9c80341 951 _cds_lfht_gc_bucket(dummy_node, node);
9357c415 952end:
48ed1c18 953 return return_node;
abc490a1 954}
464a1ec9 955
abc490a1 956static
860d07e8 957int _cds_lfht_del(struct cds_lfht *ht, unsigned long size,
4105056a 958 struct cds_lfht_node *node,
b198f0fd 959 int dummy_removal)
abc490a1 960{
14044b37
MD
961 struct cds_lfht_node *dummy, *next, *old;
962 struct _cds_lfht_node *lookup;
abc490a1 963 int flagged = 0;
24365af7 964 unsigned long hash, index, order;
5e28c532 965
9357c415
MD
966 if (!node) /* Return -ENOENT if asked to delete NULL node */
967 goto end;
968
7ec59d3b 969 /* logically delete the node */
c90201ac
MD
970 assert(!is_dummy(node));
971 assert(!is_removed(node));
cc4fcb10 972 old = rcu_dereference(node->p.next);
7ec59d3b 973 do {
48ed1c18
MD
974 struct cds_lfht_node *new_next;
975
7ec59d3b 976 next = old;
76412f24 977 if (unlikely(is_removed(next)))
7ec59d3b 978 goto end;
1475579c
MD
979 if (dummy_removal)
980 assert(is_dummy(next));
981 else
982 assert(!is_dummy(next));
48ed1c18 983 new_next = flag_removed(next);
48ed1c18 984 old = uatomic_cmpxchg(&node->p.next, next, new_next);
7ec59d3b
MD
985 } while (old != next);
986
987 /* We performed the (logical) deletion. */
988 flagged = 1;
989
990 /*
991 * Ensure that the node is not visible to readers anymore: lookup for
273399de
MD
992 * the node, and remove it (along with any other logically removed node)
993 * if found.
11519af6 994 */
cc4fcb10 995 hash = bit_reverse_ulong(node->p.reverse_hash);
4105056a
MD
996 assert(size > 0);
997 index = hash & (size - 1);
24365af7 998 order = get_count_order_ulong(index + 1);
4105056a 999 lookup = &ht->t.tbl[order]->nodes[index & (!order ? 0 : ((1UL << (order - 1)) - 1))];
14044b37 1000 dummy = (struct cds_lfht_node *) lookup;
f9c80341 1001 _cds_lfht_gc_bucket(dummy, node);
2ed95849 1002end:
11519af6
MD
1003 /*
1004 * Only the flagging action indicated that we (and no other)
1005 * removed the node from the hash.
1006 */
7ec59d3b 1007 if (flagged) {
cc4fcb10 1008 assert(is_removed(rcu_dereference(node->p.next)));
11519af6 1009 return 0;
9357c415 1010 } else {
11519af6 1011 return -ENOENT;
9357c415 1012 }
abc490a1 1013}
2ed95849 1014
b7d619b0
MD
1015static
1016void *partition_resize_thread(void *arg)
1017{
1018 struct partition_resize_work *work = arg;
1019
1020 work->ht->cds_lfht_rcu_register_thread();
1021 work->fct(work->ht, work->i, work->start, work->len);
1022 work->ht->cds_lfht_rcu_unregister_thread();
1023 return NULL;
1024}
1025
1026static
1027void partition_resize_helper(struct cds_lfht *ht, unsigned long i,
1028 unsigned long len,
1029 void (*fct)(struct cds_lfht *ht, unsigned long i,
1030 unsigned long start, unsigned long len))
1031{
1032 unsigned long partition_len;
1033 struct partition_resize_work *work;
6083a889
MD
1034 int thread, ret;
1035 unsigned long nr_threads;
b7d619b0
MD
1036 pthread_t *thread_id;
1037
6083a889
MD
1038 /*
1039 * Note: nr_cpus_mask + 1 is always power of 2.
1040 * We spawn just the number of threads we need to satisfy the minimum
1041 * partition size, up to the number of CPUs in the system.
1042 */
91452a6a
MD
1043 if (nr_cpus_mask > 0) {
1044 nr_threads = min(nr_cpus_mask + 1,
1045 len >> MIN_PARTITION_PER_THREAD_ORDER);
1046 } else {
1047 nr_threads = 1;
1048 }
6083a889
MD
1049 partition_len = len >> get_count_order_ulong(nr_threads);
1050 work = calloc(nr_threads, sizeof(*work));
1051 thread_id = calloc(nr_threads, sizeof(*thread_id));
b7d619b0 1052 assert(work);
6083a889
MD
1053 for (thread = 0; thread < nr_threads; thread++) {
1054 work[thread].ht = ht;
1055 work[thread].i = i;
1056 work[thread].len = partition_len;
1057 work[thread].start = thread * partition_len;
1058 work[thread].fct = fct;
1059 ret = pthread_create(&thread_id[thread], ht->resize_attr,
1060 partition_resize_thread, &work[thread]);
b7d619b0
MD
1061 assert(!ret);
1062 }
6083a889
MD
1063 for (thread = 0; thread < nr_threads; thread++) {
1064 ret = pthread_join(thread_id[thread], NULL);
b7d619b0
MD
1065 assert(!ret);
1066 }
1067 free(work);
1068 free(thread_id);
1069}
1070
e8de508e
MD
1071/*
1072 * Holding RCU read lock to protect _cds_lfht_add against memory
1073 * reclaim that could be performed by other call_rcu worker threads (ABA
1074 * problem).
9ee0fc9a 1075 *
b7d619b0 1076 * When we reach a certain length, we can split this population phase over
9ee0fc9a
MD
1077 * many worker threads, based on the number of CPUs available in the system.
1078 * This should therefore take care of not having the expand lagging behind too
1079 * many concurrent insertion threads by using the scheduler's ability to
1080 * schedule dummy node population fairly with insertions.
e8de508e 1081 */
4105056a 1082static
b7d619b0
MD
1083void init_table_populate_partition(struct cds_lfht *ht, unsigned long i,
1084 unsigned long start, unsigned long len)
4105056a
MD
1085{
1086 unsigned long j;
1087
1088 ht->cds_lfht_rcu_read_lock();
b7d619b0 1089 for (j = start; j < start + len; j++) {
4105056a
MD
1090 struct cds_lfht_node *new_node =
1091 (struct cds_lfht_node *) &ht->t.tbl[i]->nodes[j];
1092
dc1da8f6 1093 dbg_printf("init populate: i %lu j %lu hash %lu\n",
4105056a 1094 i, j, !i ? 0 : (1UL << (i - 1)) + j);
dc1da8f6
MD
1095 new_node->p.reverse_hash =
1096 bit_reverse_ulong(!i ? 0 : (1UL << (i - 1)) + j);
4105056a 1097 (void) _cds_lfht_add(ht, !i ? 0 : (1UL << (i - 1)),
48ed1c18 1098 new_node, ADD_DEFAULT, 1);
4105056a
MD
1099 }
1100 ht->cds_lfht_rcu_read_unlock();
b7d619b0
MD
1101}
1102
1103static
1104void init_table_populate(struct cds_lfht *ht, unsigned long i,
1105 unsigned long len)
1106{
1107 assert(nr_cpus_mask != -1);
6083a889 1108 if (nr_cpus_mask < 0 || len < 2 * MIN_PARTITION_PER_THREAD) {
b7d619b0
MD
1109 ht->cds_lfht_rcu_thread_online();
1110 init_table_populate_partition(ht, i, 0, len);
1111 ht->cds_lfht_rcu_thread_offline();
1112 return;
1113 }
1114 partition_resize_helper(ht, i, len, init_table_populate_partition);
4105056a
MD
1115}
1116
abc490a1 1117static
4105056a 1118void init_table(struct cds_lfht *ht,
24365af7
MD
1119 unsigned long first_order, unsigned long len_order)
1120{
1121 unsigned long i, end_order;
1122
f0c29ed7 1123 dbg_printf("init table: first_order %lu end_order %lu\n",
24365af7
MD
1124 first_order, first_order + len_order);
1125 end_order = first_order + len_order;
24365af7 1126 for (i = first_order; i < end_order; i++) {
4105056a 1127 unsigned long len;
24365af7
MD
1128
1129 len = !i ? 1 : 1UL << (i - 1);
f0c29ed7 1130 dbg_printf("init order %lu len: %lu\n", i, len);
4d676753
MD
1131
1132 /* Stop expand if the resize target changes under us */
1133 if (CMM_LOAD_SHARED(ht->t.resize_target) < (!i ? 1 : (1UL << i)))
1134 break;
1135
4105056a 1136 ht->t.tbl[i] = calloc(1, sizeof(struct rcu_level)
1475579c 1137 + (len * sizeof(struct _cds_lfht_node)));
b7d619b0 1138 assert(ht->t.tbl[i]);
4105056a 1139
4105056a 1140 /*
dc1da8f6
MD
1141 * Set all dummy nodes reverse hash values for a level and
1142 * link all dummy nodes into the table.
4105056a 1143 */
dc1da8f6 1144 init_table_populate(ht, i, len);
4105056a 1145
f9c80341
MD
1146 /*
1147 * Update table size.
1148 */
1149 cmm_smp_wmb(); /* populate data before RCU size */
1150 CMM_STORE_SHARED(ht->t.size, !i ? 1 : (1UL << i));
1151
4105056a
MD
1152 dbg_printf("init new size: %lu\n", !i ? 1 : (1UL << i));
1153 if (CMM_LOAD_SHARED(ht->in_progress_destroy))
1154 break;
1155 }
1156}
1157
e8de508e
MD
1158/*
1159 * Holding RCU read lock to protect _cds_lfht_remove against memory
1160 * reclaim that could be performed by other call_rcu worker threads (ABA
1161 * problem).
1162 * For a single level, we logically remove and garbage collect each node.
1163 *
1164 * As a design choice, we perform logical removal and garbage collection on a
1165 * node-per-node basis to simplify this algorithm. We also assume keeping good
1166 * cache locality of the operation would overweight possible performance gain
1167 * that could be achieved by batching garbage collection for multiple levels.
1168 * However, this would have to be justified by benchmarks.
1169 *
1170 * Concurrent removal and add operations are helping us perform garbage
1171 * collection of logically removed nodes. We guarantee that all logically
1172 * removed nodes have been garbage-collected (unlinked) before call_rcu is
1173 * invoked to free a hole level of dummy nodes (after a grace period).
1174 *
1175 * Logical removal and garbage collection can therefore be done in batch or on a
1176 * node-per-node basis, as long as the guarantee above holds.
9ee0fc9a 1177 *
b7d619b0
MD
1178 * When we reach a certain length, we can split this removal over many worker
1179 * threads, based on the number of CPUs available in the system. This should
1180 * take care of not letting resize process lag behind too many concurrent
9ee0fc9a 1181 * updater threads actively inserting into the hash table.
e8de508e 1182 */
4105056a 1183static
b7d619b0
MD
1184void remove_table_partition(struct cds_lfht *ht, unsigned long i,
1185 unsigned long start, unsigned long len)
4105056a
MD
1186{
1187 unsigned long j;
1188
1189 ht->cds_lfht_rcu_read_lock();
b7d619b0 1190 for (j = start; j < start + len; j++) {
4105056a
MD
1191 struct cds_lfht_node *fini_node =
1192 (struct cds_lfht_node *) &ht->t.tbl[i]->nodes[j];
1193
1194 dbg_printf("remove entry: i %lu j %lu hash %lu\n",
1195 i, j, !i ? 0 : (1UL << (i - 1)) + j);
1196 fini_node->p.reverse_hash =
1197 bit_reverse_ulong(!i ? 0 : (1UL << (i - 1)) + j);
860d07e8 1198 (void) _cds_lfht_del(ht, !i ? 0 : (1UL << (i - 1)),
b198f0fd 1199 fini_node, 1);
abc490a1 1200 }
4105056a 1201 ht->cds_lfht_rcu_read_unlock();
b7d619b0
MD
1202}
1203
1204static
1205void remove_table(struct cds_lfht *ht, unsigned long i, unsigned long len)
1206{
1207
1208 assert(nr_cpus_mask != -1);
6083a889 1209 if (nr_cpus_mask < 0 || len < 2 * MIN_PARTITION_PER_THREAD) {
b7d619b0
MD
1210 ht->cds_lfht_rcu_thread_online();
1211 remove_table_partition(ht, i, 0, len);
1212 ht->cds_lfht_rcu_thread_offline();
1213 return;
1214 }
1215 partition_resize_helper(ht, i, len, remove_table_partition);
2ed95849
MD
1216}
1217
1475579c 1218static
4105056a 1219void fini_table(struct cds_lfht *ht,
1475579c
MD
1220 unsigned long first_order, unsigned long len_order)
1221{
1222 long i, end_order;
1223
1224 dbg_printf("fini table: first_order %lu end_order %lu\n",
1225 first_order, first_order + len_order);
1226 end_order = first_order + len_order;
1227 assert(first_order > 0);
1475579c 1228 for (i = end_order - 1; i >= first_order; i--) {
4105056a 1229 unsigned long len;
1475579c
MD
1230
1231 len = !i ? 1 : 1UL << (i - 1);
1232 dbg_printf("fini order %lu len: %lu\n", i, len);
4105056a 1233
4d676753
MD
1234 /* Stop shrink if the resize target changes under us */
1235 if (CMM_LOAD_SHARED(ht->t.resize_target) > (1UL << (i - 1)))
1236 break;
1237
1238 cmm_smp_wmb(); /* populate data before RCU size */
1239 CMM_STORE_SHARED(ht->t.size, 1UL << (i - 1));
1240
1241 /*
1242 * We need to wait for all add operations to reach Q.S. (and
1243 * thus use the new table for lookups) before we can start
1244 * releasing the old dummy nodes. Otherwise their lookup will
1245 * return a logically removed node as insert position.
1246 */
1247 ht->cds_lfht_synchronize_rcu();
1248
21263e21 1249 /*
4105056a
MD
1250 * Set "removed" flag in dummy nodes about to be removed.
1251 * Unlink all now-logically-removed dummy node pointers.
1252 * Concurrent add/remove operation are helping us doing
1253 * the gc.
21263e21 1254 */
4105056a
MD
1255 remove_table(ht, i, len);
1256
1257 ht->cds_lfht_call_rcu(&ht->t.tbl[i]->head, cds_lfht_free_level);
1258
1259 dbg_printf("fini new size: %lu\n", 1UL << i);
1475579c
MD
1260 if (CMM_LOAD_SHARED(ht->in_progress_destroy))
1261 break;
1262 }
1475579c
MD
1263}
1264
7a9dcf9b 1265struct cds_lfht *_cds_lfht_new(cds_lfht_hash_fct hash_fct,
14044b37
MD
1266 cds_lfht_compare_fct compare_fct,
1267 unsigned long hash_seed,
1268 unsigned long init_size,
b8af5011 1269 int flags,
14044b37 1270 void (*cds_lfht_call_rcu)(struct rcu_head *head,
1475579c 1271 void (*func)(struct rcu_head *head)),
01dbfa62
MD
1272 void (*cds_lfht_synchronize_rcu)(void),
1273 void (*cds_lfht_rcu_read_lock)(void),
5f511391
MD
1274 void (*cds_lfht_rcu_read_unlock)(void),
1275 void (*cds_lfht_rcu_thread_offline)(void),
b7d619b0
MD
1276 void (*cds_lfht_rcu_thread_online)(void),
1277 void (*cds_lfht_rcu_register_thread)(void),
1278 void (*cds_lfht_rcu_unregister_thread)(void),
1279 pthread_attr_t *attr)
abc490a1 1280{
14044b37 1281 struct cds_lfht *ht;
24365af7 1282 unsigned long order;
abc490a1 1283
8129be4e 1284 /* init_size must be power of two */
49619ea0 1285 if (init_size && (init_size & (init_size - 1)))
8129be4e 1286 return NULL;
14044b37 1287 ht = calloc(1, sizeof(struct cds_lfht));
b7d619b0 1288 assert(ht);
abc490a1 1289 ht->hash_fct = hash_fct;
732ad076
MD
1290 ht->compare_fct = compare_fct;
1291 ht->hash_seed = hash_seed;
14044b37 1292 ht->cds_lfht_call_rcu = cds_lfht_call_rcu;
1475579c 1293 ht->cds_lfht_synchronize_rcu = cds_lfht_synchronize_rcu;
01dbfa62
MD
1294 ht->cds_lfht_rcu_read_lock = cds_lfht_rcu_read_lock;
1295 ht->cds_lfht_rcu_read_unlock = cds_lfht_rcu_read_unlock;
5f511391
MD
1296 ht->cds_lfht_rcu_thread_offline = cds_lfht_rcu_thread_offline;
1297 ht->cds_lfht_rcu_thread_online = cds_lfht_rcu_thread_online;
b7d619b0
MD
1298 ht->cds_lfht_rcu_register_thread = cds_lfht_rcu_register_thread;
1299 ht->cds_lfht_rcu_unregister_thread = cds_lfht_rcu_unregister_thread;
1300 ht->resize_attr = attr;
df44348d 1301 ht->percpu_count = alloc_per_cpu_items_count();
abc490a1
MD
1302 /* this mutex should not nest in read-side C.S. */
1303 pthread_mutex_init(&ht->resize_mutex, NULL);
cd95516d 1304 order = get_count_order_ulong(max(init_size, MIN_TABLE_SIZE)) + 1;
b8af5011 1305 ht->flags = flags;
5f511391 1306 ht->cds_lfht_rcu_thread_offline();
f000907d 1307 pthread_mutex_lock(&ht->resize_mutex);
4d676753 1308 ht->t.resize_target = 1UL << (order - 1);
4105056a 1309 init_table(ht, 0, order);
f000907d 1310 pthread_mutex_unlock(&ht->resize_mutex);
5f511391 1311 ht->cds_lfht_rcu_thread_online();
abc490a1
MD
1312 return ht;
1313}
1314
adc0de68
MD
1315void cds_lfht_lookup(struct cds_lfht *ht, void *key, size_t key_len,
1316 struct cds_lfht_iter *iter)
2ed95849 1317{
bb7b2f26 1318 struct cds_lfht_node *node, *next, *dummy_node;
14044b37 1319 struct _cds_lfht_node *lookup;
4105056a 1320 unsigned long hash, reverse_hash, index, order, size;
2ed95849 1321
732ad076 1322 hash = ht->hash_fct(key, key_len, ht->hash_seed);
abc490a1 1323 reverse_hash = bit_reverse_ulong(hash);
464a1ec9 1324
4105056a
MD
1325 size = rcu_dereference(ht->t.size);
1326 index = hash & (size - 1);
24365af7 1327 order = get_count_order_ulong(index + 1);
4105056a 1328 lookup = &ht->t.tbl[order]->nodes[index & (!order ? 0 : ((1UL << (order - 1))) - 1)];
f0c29ed7 1329 dbg_printf("lookup hash %lu index %lu order %lu aridx %lu\n",
554c284e 1330 hash, index, order, index & (!order ? 0 : ((1UL << (order - 1)) - 1)));
bb7b2f26
MD
1331 dummy_node = (struct cds_lfht_node *) lookup;
1332 /* We can always skip the dummy node initially */
1333 node = rcu_dereference(dummy_node->p.next);
bb7b2f26 1334 node = clear_flag(node);
2ed95849 1335 for (;;) {
bb7b2f26 1336 if (unlikely(is_end(node))) {
96ad1112 1337 node = next = NULL;
abc490a1 1338 break;
bb7b2f26 1339 }
cc4fcb10 1340 if (unlikely(node->p.reverse_hash > reverse_hash)) {
96ad1112 1341 node = next = NULL;
abc490a1 1342 break;
2ed95849 1343 }
1b81fe1a 1344 next = rcu_dereference(node->p.next);
adc0de68 1345 if (likely(!is_removed(next))
1b81fe1a 1346 && !is_dummy(next)
49c2e2d6 1347 && likely(!ht->compare_fct(node->key, node->key_len, key, key_len))) {
273399de 1348 break;
2ed95849 1349 }
1b81fe1a 1350 node = clear_flag(next);
2ed95849 1351 }
1b81fe1a 1352 assert(!node || !is_dummy(rcu_dereference(node->p.next)));
adc0de68
MD
1353 iter->node = node;
1354 iter->next = next;
abc490a1 1355}
e0ba718a 1356
3883c0e5 1357void cds_lfht_next_duplicate(struct cds_lfht *ht, struct cds_lfht_iter *iter)
a481e5ff 1358{
adc0de68 1359 struct cds_lfht_node *node, *next;
a481e5ff
MD
1360 unsigned long reverse_hash;
1361 void *key;
1362 size_t key_len;
1363
adc0de68 1364 node = iter->node;
a481e5ff
MD
1365 reverse_hash = node->p.reverse_hash;
1366 key = node->key;
1367 key_len = node->key_len;
adc0de68 1368 next = iter->next;
a481e5ff
MD
1369 node = clear_flag(next);
1370
1371 for (;;) {
bb7b2f26 1372 if (unlikely(is_end(node))) {
96ad1112 1373 node = next = NULL;
a481e5ff 1374 break;
bb7b2f26 1375 }
a481e5ff 1376 if (unlikely(node->p.reverse_hash > reverse_hash)) {
96ad1112 1377 node = next = NULL;
a481e5ff
MD
1378 break;
1379 }
1380 next = rcu_dereference(node->p.next);
adc0de68 1381 if (likely(!is_removed(next))
a481e5ff
MD
1382 && !is_dummy(next)
1383 && likely(!ht->compare_fct(node->key, node->key_len, key, key_len))) {
1384 break;
1385 }
1386 node = clear_flag(next);
1387 }
1388 assert(!node || !is_dummy(rcu_dereference(node->p.next)));
adc0de68
MD
1389 iter->node = node;
1390 iter->next = next;
a481e5ff
MD
1391}
1392
4e9b9fbf
MD
1393void cds_lfht_next(struct cds_lfht *ht, struct cds_lfht_iter *iter)
1394{
1395 struct cds_lfht_node *node, *next;
1396
853395e1 1397 node = clear_flag(iter->next);
4e9b9fbf
MD
1398 for (;;) {
1399 if (unlikely(is_end(node))) {
1400 node = next = NULL;
1401 break;
1402 }
1403 next = rcu_dereference(node->p.next);
1404 if (likely(!is_removed(next))
1405 && !is_dummy(next)) {
1406 break;
1407 }
1408 node = clear_flag(next);
1409 }
1410 assert(!node || !is_dummy(rcu_dereference(node->p.next)));
1411 iter->node = node;
1412 iter->next = next;
1413}
1414
1415void cds_lfht_first(struct cds_lfht *ht, struct cds_lfht_iter *iter)
1416{
1417 struct _cds_lfht_node *lookup;
1418
1419 /*
1420 * Get next after first dummy node. The first dummy node is the
1421 * first node of the linked list.
1422 */
1423 lookup = &ht->t.tbl[0]->nodes[0];
853395e1 1424 iter->next = lookup->next;
4e9b9fbf
MD
1425 cds_lfht_next(ht, iter);
1426}
1427
14044b37 1428void cds_lfht_add(struct cds_lfht *ht, struct cds_lfht_node *node)
abc490a1 1429{
4105056a 1430 unsigned long hash, size;
ab7d5fc6 1431
49c2e2d6 1432 hash = ht->hash_fct(node->key, node->key_len, ht->hash_seed);
cc4fcb10 1433 node->p.reverse_hash = bit_reverse_ulong((unsigned long) hash);
2ed95849 1434
4105056a 1435 size = rcu_dereference(ht->t.size);
48ed1c18 1436 (void) _cds_lfht_add(ht, size, node, ADD_DEFAULT, 0);
4105056a 1437 ht_count_add(ht, size);
3eca1b8c
MD
1438}
1439
14044b37 1440struct cds_lfht_node *cds_lfht_add_unique(struct cds_lfht *ht,
48ed1c18 1441 struct cds_lfht_node *node)
3eca1b8c 1442{
4105056a 1443 unsigned long hash, size;
df44348d 1444 struct cds_lfht_node *ret;
3eca1b8c 1445
49c2e2d6 1446 hash = ht->hash_fct(node->key, node->key_len, ht->hash_seed);
cc4fcb10 1447 node->p.reverse_hash = bit_reverse_ulong((unsigned long) hash);
3eca1b8c 1448
4105056a 1449 size = rcu_dereference(ht->t.size);
48ed1c18 1450 ret = _cds_lfht_add(ht, size, node, ADD_UNIQUE, 0);
17f31d1b 1451 if (ret == node)
4105056a 1452 ht_count_add(ht, size);
df44348d 1453 return ret;
2ed95849
MD
1454}
1455
9357c415 1456struct cds_lfht_node *cds_lfht_add_replace(struct cds_lfht *ht,
48ed1c18
MD
1457 struct cds_lfht_node *node)
1458{
1459 unsigned long hash, size;
1460 struct cds_lfht_node *ret;
1461
1462 hash = ht->hash_fct(node->key, node->key_len, ht->hash_seed);
1463 node->p.reverse_hash = bit_reverse_ulong((unsigned long) hash);
1464
1465 size = rcu_dereference(ht->t.size);
1466 ret = _cds_lfht_add(ht, size, node, ADD_REPLACE, 0);
1467 if (ret == NULL)
1468 ht_count_add(ht, size);
1469 return ret;
1470}
1471
9357c415
MD
1472int cds_lfht_replace(struct cds_lfht *ht, struct cds_lfht_iter *old_iter,
1473 struct cds_lfht_node *new_node)
1474{
1475 unsigned long size;
1476
1477 size = rcu_dereference(ht->t.size);
1478 return _cds_lfht_replace(ht, size, old_iter->node, old_iter->next,
1479 new_node);
1480}
1481
1482int cds_lfht_del(struct cds_lfht *ht, struct cds_lfht_iter *iter)
2ed95849 1483{
4105056a 1484 unsigned long size;
df44348d 1485 int ret;
abc490a1 1486
4105056a 1487 size = rcu_dereference(ht->t.size);
9357c415 1488 ret = _cds_lfht_del(ht, size, iter->node, 0);
df44348d 1489 if (!ret)
860d07e8 1490 ht_count_del(ht, size);
df44348d 1491 return ret;
2ed95849 1492}
ab7d5fc6 1493
abc490a1 1494static
14044b37 1495int cds_lfht_delete_dummy(struct cds_lfht *ht)
674f7a69 1496{
14044b37
MD
1497 struct cds_lfht_node *node;
1498 struct _cds_lfht_node *lookup;
4105056a 1499 unsigned long order, i, size;
674f7a69 1500
abc490a1 1501 /* Check that the table is empty */
4105056a 1502 lookup = &ht->t.tbl[0]->nodes[0];
14044b37 1503 node = (struct cds_lfht_node *) lookup;
abc490a1 1504 do {
1b81fe1a
MD
1505 node = clear_flag(node)->p.next;
1506 if (!is_dummy(node))
abc490a1 1507 return -EPERM;
273399de 1508 assert(!is_removed(node));
bb7b2f26 1509 } while (!is_end(node));
4105056a
MD
1510 /*
1511 * size accessed without rcu_dereference because hash table is
1512 * being destroyed.
1513 */
1514 size = ht->t.size;
abc490a1 1515 /* Internal sanity check: all nodes left should be dummy */
4105056a 1516 for (order = 0; order < get_count_order_ulong(size) + 1; order++) {
24365af7
MD
1517 unsigned long len;
1518
1519 len = !order ? 1 : 1UL << (order - 1);
1520 for (i = 0; i < len; i++) {
f0c29ed7 1521 dbg_printf("delete order %lu i %lu hash %lu\n",
24365af7 1522 order, i,
4105056a
MD
1523 bit_reverse_ulong(ht->t.tbl[order]->nodes[i].reverse_hash));
1524 assert(is_dummy(ht->t.tbl[order]->nodes[i].next));
24365af7 1525 }
4105056a 1526 poison_free(ht->t.tbl[order]);
674f7a69 1527 }
abc490a1 1528 return 0;
674f7a69
MD
1529}
1530
1531/*
1532 * Should only be called when no more concurrent readers nor writers can
1533 * possibly access the table.
1534 */
b7d619b0 1535int cds_lfht_destroy(struct cds_lfht *ht, pthread_attr_t **attr)
674f7a69 1536{
5e28c532
MD
1537 int ret;
1538
848d4088 1539 /* Wait for in-flight resize operations to complete */
24953e08
MD
1540 _CMM_STORE_SHARED(ht->in_progress_destroy, 1);
1541 cmm_smp_mb(); /* Store destroy before load resize */
848d4088
MD
1542 while (uatomic_read(&ht->in_progress_resize))
1543 poll(NULL, 0, 100); /* wait for 100ms */
14044b37 1544 ret = cds_lfht_delete_dummy(ht);
abc490a1
MD
1545 if (ret)
1546 return ret;
df44348d 1547 free_per_cpu_items_count(ht->percpu_count);
b7d619b0
MD
1548 if (attr)
1549 *attr = ht->resize_attr;
98808fb1 1550 poison_free(ht);
5e28c532 1551 return ret;
674f7a69
MD
1552}
1553
14044b37 1554void cds_lfht_count_nodes(struct cds_lfht *ht,
d933dd0e 1555 long *approx_before,
273399de 1556 unsigned long *count,
973e5e1b 1557 unsigned long *removed,
d933dd0e 1558 long *approx_after)
273399de 1559{
14044b37
MD
1560 struct cds_lfht_node *node, *next;
1561 struct _cds_lfht_node *lookup;
24365af7 1562 unsigned long nr_dummy = 0;
273399de 1563
7ed7682f 1564 *approx_before = 0;
973e5e1b
MD
1565 if (nr_cpus_mask >= 0) {
1566 int i;
1567
1568 for (i = 0; i < nr_cpus_mask + 1; i++) {
1569 *approx_before += uatomic_read(&ht->percpu_count[i].add);
1570 *approx_before -= uatomic_read(&ht->percpu_count[i].del);
1571 }
1572 }
1573
273399de
MD
1574 *count = 0;
1575 *removed = 0;
1576
24365af7 1577 /* Count non-dummy nodes in the table */
4105056a 1578 lookup = &ht->t.tbl[0]->nodes[0];
14044b37 1579 node = (struct cds_lfht_node *) lookup;
273399de 1580 do {
cc4fcb10 1581 next = rcu_dereference(node->p.next);
b198f0fd 1582 if (is_removed(next)) {
973e5e1b
MD
1583 if (!is_dummy(next))
1584 (*removed)++;
1585 else
1586 (nr_dummy)++;
1b81fe1a 1587 } else if (!is_dummy(next))
273399de 1588 (*count)++;
24365af7
MD
1589 else
1590 (nr_dummy)++;
273399de 1591 node = clear_flag(next);
bb7b2f26 1592 } while (!is_end(node));
f0c29ed7 1593 dbg_printf("number of dummy nodes: %lu\n", nr_dummy);
7ed7682f 1594 *approx_after = 0;
973e5e1b
MD
1595 if (nr_cpus_mask >= 0) {
1596 int i;
1597
1598 for (i = 0; i < nr_cpus_mask + 1; i++) {
1599 *approx_after += uatomic_read(&ht->percpu_count[i].add);
1600 *approx_after -= uatomic_read(&ht->percpu_count[i].del);
1601 }
1602 }
273399de
MD
1603}
1604
1475579c 1605/* called with resize mutex held */
abc490a1 1606static
4105056a 1607void _do_cds_lfht_grow(struct cds_lfht *ht,
1475579c 1608 unsigned long old_size, unsigned long new_size)
abc490a1 1609{
1475579c 1610 unsigned long old_order, new_order;
1475579c
MD
1611
1612 old_order = get_count_order_ulong(old_size) + 1;
1613 new_order = get_count_order_ulong(new_size) + 1;
1614 printf("resize from %lu (order %lu) to %lu (order %lu) buckets\n",
1615 old_size, old_order, new_size, new_order);
1475579c 1616 assert(new_size > old_size);
4105056a 1617 init_table(ht, old_order, new_order - old_order);
abc490a1
MD
1618}
1619
1620/* called with resize mutex held */
1621static
4105056a 1622void _do_cds_lfht_shrink(struct cds_lfht *ht,
1475579c 1623 unsigned long old_size, unsigned long new_size)
464a1ec9 1624{
1475579c 1625 unsigned long old_order, new_order;
464a1ec9 1626
cd95516d 1627 new_size = max(new_size, MIN_TABLE_SIZE);
24365af7 1628 old_order = get_count_order_ulong(old_size) + 1;
24365af7 1629 new_order = get_count_order_ulong(new_size) + 1;
df44348d 1630 printf("resize from %lu (order %lu) to %lu (order %lu) buckets\n",
df03fab8 1631 old_size, old_order, new_size, new_order);
1475579c 1632 assert(new_size < old_size);
1475579c 1633
4105056a
MD
1634 /* Remove and unlink all dummy nodes to remove. */
1635 fini_table(ht, new_order, old_order - new_order);
464a1ec9
MD
1636}
1637
1475579c
MD
1638
1639/* called with resize mutex held */
1640static
1641void _do_cds_lfht_resize(struct cds_lfht *ht)
1642{
1643 unsigned long new_size, old_size;
4105056a
MD
1644
1645 /*
1646 * Resize table, re-do if the target size has changed under us.
1647 */
1648 do {
d2be3620
MD
1649 assert(uatomic_read(&ht->in_progress_resize));
1650 if (CMM_LOAD_SHARED(ht->in_progress_destroy))
1651 break;
4105056a
MD
1652 ht->t.resize_initiated = 1;
1653 old_size = ht->t.size;
1654 new_size = CMM_LOAD_SHARED(ht->t.resize_target);
1655 if (old_size < new_size)
1656 _do_cds_lfht_grow(ht, old_size, new_size);
1657 else if (old_size > new_size)
1658 _do_cds_lfht_shrink(ht, old_size, new_size);
1659 ht->t.resize_initiated = 0;
1660 /* write resize_initiated before read resize_target */
1661 cmm_smp_mb();
4d676753 1662 } while (ht->t.size != CMM_LOAD_SHARED(ht->t.resize_target));
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1663}
1664
abc490a1 1665static
4105056a 1666unsigned long resize_target_update(struct cds_lfht *ht, unsigned long size,
f9830efd 1667 int growth_order)
464a1ec9 1668{
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1669 return _uatomic_max(&ht->t.resize_target,
1670 size << growth_order);
464a1ec9
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1671}
1672
1475579c 1673static
4105056a 1674void resize_target_update_count(struct cds_lfht *ht,
b8af5011 1675 unsigned long count)
1475579c 1676{
cd95516d 1677 count = max(count, MIN_TABLE_SIZE);
4105056a 1678 uatomic_set(&ht->t.resize_target, count);
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1679}
1680
1681void cds_lfht_resize(struct cds_lfht *ht, unsigned long new_size)
464a1ec9 1682{
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1683 resize_target_update_count(ht, new_size);
1684 CMM_STORE_SHARED(ht->t.resize_initiated, 1);
5f511391 1685 ht->cds_lfht_rcu_thread_offline();
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1686 pthread_mutex_lock(&ht->resize_mutex);
1687 _do_cds_lfht_resize(ht);
1688 pthread_mutex_unlock(&ht->resize_mutex);
5f511391 1689 ht->cds_lfht_rcu_thread_online();
abc490a1 1690}
464a1ec9 1691
abc490a1
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1692static
1693void do_resize_cb(struct rcu_head *head)
1694{
1695 struct rcu_resize_work *work =
1696 caa_container_of(head, struct rcu_resize_work, head);
14044b37 1697 struct cds_lfht *ht = work->ht;
abc490a1 1698
5f511391 1699 ht->cds_lfht_rcu_thread_offline();
abc490a1 1700 pthread_mutex_lock(&ht->resize_mutex);
14044b37 1701 _do_cds_lfht_resize(ht);
abc490a1 1702 pthread_mutex_unlock(&ht->resize_mutex);
5f511391 1703 ht->cds_lfht_rcu_thread_online();
98808fb1 1704 poison_free(work);
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1705 cmm_smp_mb(); /* finish resize before decrement */
1706 uatomic_dec(&ht->in_progress_resize);
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1707}
1708
abc490a1 1709static
4105056a 1710void cds_lfht_resize_lazy(struct cds_lfht *ht, unsigned long size, int growth)
ab7d5fc6 1711{
abc490a1 1712 struct rcu_resize_work *work;
f9830efd 1713 unsigned long target_size;
abc490a1 1714
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1715 target_size = resize_target_update(ht, size, growth);
1716 /* Store resize_target before read resize_initiated */
1717 cmm_smp_mb();
1718 if (!CMM_LOAD_SHARED(ht->t.resize_initiated) && size < target_size) {
848d4088 1719 uatomic_inc(&ht->in_progress_resize);
59290e9d 1720 cmm_smp_mb(); /* increment resize count before load destroy */
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1721 if (CMM_LOAD_SHARED(ht->in_progress_destroy)) {
1722 uatomic_dec(&ht->in_progress_resize);
59290e9d 1723 return;
ed35e6d8 1724 }
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1725 work = malloc(sizeof(*work));
1726 work->ht = ht;
14044b37 1727 ht->cds_lfht_call_rcu(&work->head, do_resize_cb);
4105056a 1728 CMM_STORE_SHARED(ht->t.resize_initiated, 1);
f9830efd 1729 }
ab7d5fc6 1730}
3171717f 1731
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1732#if defined(HAVE_SCHED_GETCPU) && defined(HAVE_SYSCONF)
1733
3171717f 1734static
4105056a 1735void cds_lfht_resize_lazy_count(struct cds_lfht *ht, unsigned long size,
3171717f
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1736 unsigned long count)
1737{
1738 struct rcu_resize_work *work;
3171717f 1739
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1740 if (!(ht->flags & CDS_LFHT_AUTO_RESIZE))
1741 return;
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1742 resize_target_update_count(ht, count);
1743 /* Store resize_target before read resize_initiated */
1744 cmm_smp_mb();
1745 if (!CMM_LOAD_SHARED(ht->t.resize_initiated)) {
3171717f 1746 uatomic_inc(&ht->in_progress_resize);
59290e9d 1747 cmm_smp_mb(); /* increment resize count before load destroy */
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MD
1748 if (CMM_LOAD_SHARED(ht->in_progress_destroy)) {
1749 uatomic_dec(&ht->in_progress_resize);
59290e9d 1750 return;
ed35e6d8 1751 }
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1752 work = malloc(sizeof(*work));
1753 work->ht = ht;
1754 ht->cds_lfht_call_rcu(&work->head, do_resize_cb);
4105056a 1755 CMM_STORE_SHARED(ht->t.resize_initiated, 1);
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1756 }
1757}
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1758
1759#endif
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