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1 /*
2 * Copyright (c) 2009-2010, Salvatore Sanfilippo <antirez at gmail dot com>
3 * All rights reserved.
4 *
5 * Redistribution and use in source and binary forms, with or without
6 * modification, are permitted provided that the following conditions are met:
7 *
8 * * Redistributions of source code must retain the above copyright notice,
9 * this list of conditions and the following disclaimer.
10 * * Redistributions in binary form must reproduce the above copyright
11 * notice, this list of conditions and the following disclaimer in the
12 * documentation and/or other materials provided with the distribution.
13 * * Neither the name of Redis nor the names of its contributors may be used
14 * to endorse or promote products derived from this software without
15 * specific prior written permission.
16 *
17 * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS "AS IS"
18 * AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
19 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
20 * ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT OWNER OR CONTRIBUTORS BE
21 * LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
22 * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
23 * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
24 * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
25 * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
26 * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
27 * POSSIBILITY OF SUCH DAMAGE.
28 */
29
30 #define REDIS_VERSION "2.1.1"
31
32 #include "fmacros.h"
33 #include "config.h"
34
35 #include <stdio.h>
36 #include <stdlib.h>
37 #include <string.h>
38 #include <time.h>
39 #include <unistd.h>
40 #include <signal.h>
41
42 #ifdef HAVE_BACKTRACE
43 #include <execinfo.h>
44 #include <ucontext.h>
45 #endif /* HAVE_BACKTRACE */
46
47 #include <sys/wait.h>
48 #include <errno.h>
49 #include <assert.h>
50 #include <ctype.h>
51 #include <stdarg.h>
52 #include <inttypes.h>
53 #include <arpa/inet.h>
54 #include <sys/stat.h>
55 #include <fcntl.h>
56 #include <sys/time.h>
57 #include <sys/resource.h>
58 #include <sys/uio.h>
59 #include <limits.h>
60 #include <float.h>
61 #include <math.h>
62 #include <pthread.h>
63
64 #if defined(__sun)
65 #include "solarisfixes.h"
66 #endif
67
68 #include "redis.h"
69 #include "ae.h" /* Event driven programming library */
70 #include "sds.h" /* Dynamic safe strings */
71 #include "anet.h" /* Networking the easy way */
72 #include "dict.h" /* Hash tables */
73 #include "adlist.h" /* Linked lists */
74 #include "zmalloc.h" /* total memory usage aware version of malloc/free */
75 #include "lzf.h" /* LZF compression library */
76 #include "pqsort.h" /* Partial qsort for SORT+LIMIT */
77 #include "zipmap.h" /* Compact dictionary-alike data structure */
78 #include "ziplist.h" /* Compact list data structure */
79 #include "sha1.h" /* SHA1 is used for DEBUG DIGEST */
80 #include "release.h" /* Release and/or git repository information */
81
82 /* Error codes */
83 #define REDIS_OK 0
84 #define REDIS_ERR -1
85
86 /* Static server configuration */
87 #define REDIS_SERVERPORT 6379 /* TCP port */
88 #define REDIS_MAXIDLETIME (60*5) /* default client timeout */
89 #define REDIS_IOBUF_LEN 1024
90 #define REDIS_LOADBUF_LEN 1024
91 #define REDIS_STATIC_ARGS 8
92 #define REDIS_DEFAULT_DBNUM 16
93 #define REDIS_CONFIGLINE_MAX 1024
94 #define REDIS_OBJFREELIST_MAX 1000000 /* Max number of objects to cache */
95 #define REDIS_MAX_SYNC_TIME 60 /* Slave can't take more to sync */
96 #define REDIS_EXPIRELOOKUPS_PER_CRON 10 /* lookup 10 expires per loop */
97 #define REDIS_MAX_WRITE_PER_EVENT (1024*64)
98 #define REDIS_REQUEST_MAX_SIZE (1024*1024*256) /* max bytes in inline command */
99
100 /* If more then REDIS_WRITEV_THRESHOLD write packets are pending use writev */
101 #define REDIS_WRITEV_THRESHOLD 3
102 /* Max number of iovecs used for each writev call */
103 #define REDIS_WRITEV_IOVEC_COUNT 256
104
105 /* Hash table parameters */
106 #define REDIS_HT_MINFILL 10 /* Minimal hash table fill 10% */
107
108 /* Command flags */
109 #define REDIS_CMD_BULK 1 /* Bulk write command */
110 #define REDIS_CMD_INLINE 2 /* Inline command */
111 /* REDIS_CMD_DENYOOM reserves a longer comment: all the commands marked with
112 this flags will return an error when the 'maxmemory' option is set in the
113 config file and the server is using more than maxmemory bytes of memory.
114 In short this commands are denied on low memory conditions. */
115 #define REDIS_CMD_DENYOOM 4
116 #define REDIS_CMD_FORCE_REPLICATION 8 /* Force replication even if dirty is 0 */
117
118 /* Object types */
119 #define REDIS_STRING 0
120 #define REDIS_LIST 1
121 #define REDIS_SET 2
122 #define REDIS_ZSET 3
123 #define REDIS_HASH 4
124
125 /* Objects encoding. Some kind of objects like Strings and Hashes can be
126 * internally represented in multiple ways. The 'encoding' field of the object
127 * is set to one of this fields for this object. */
128 #define REDIS_ENCODING_RAW 0 /* Raw representation */
129 #define REDIS_ENCODING_INT 1 /* Encoded as integer */
130 #define REDIS_ENCODING_HT 2 /* Encoded as hash table */
131 #define REDIS_ENCODING_ZIPMAP 3 /* Encoded as zipmap */
132 #define REDIS_ENCODING_LIST 4 /* Encoded as zipmap */
133 #define REDIS_ENCODING_ZIPLIST 5 /* Encoded as ziplist */
134
135 static char* strencoding[] = {
136 "raw", "int", "zipmap", "hashtable"
137 };
138
139 /* Object types only used for dumping to disk */
140 #define REDIS_EXPIRETIME 253
141 #define REDIS_SELECTDB 254
142 #define REDIS_EOF 255
143
144 /* Defines related to the dump file format. To store 32 bits lengths for short
145 * keys requires a lot of space, so we check the most significant 2 bits of
146 * the first byte to interpreter the length:
147 *
148 * 00|000000 => if the two MSB are 00 the len is the 6 bits of this byte
149 * 01|000000 00000000 => 01, the len is 14 byes, 6 bits + 8 bits of next byte
150 * 10|000000 [32 bit integer] => if it's 01, a full 32 bit len will follow
151 * 11|000000 this means: specially encoded object will follow. The six bits
152 * number specify the kind of object that follows.
153 * See the REDIS_RDB_ENC_* defines.
154 *
155 * Lenghts up to 63 are stored using a single byte, most DB keys, and may
156 * values, will fit inside. */
157 #define REDIS_RDB_6BITLEN 0
158 #define REDIS_RDB_14BITLEN 1
159 #define REDIS_RDB_32BITLEN 2
160 #define REDIS_RDB_ENCVAL 3
161 #define REDIS_RDB_LENERR UINT_MAX
162
163 /* When a length of a string object stored on disk has the first two bits
164 * set, the remaining two bits specify a special encoding for the object
165 * accordingly to the following defines: */
166 #define REDIS_RDB_ENC_INT8 0 /* 8 bit signed integer */
167 #define REDIS_RDB_ENC_INT16 1 /* 16 bit signed integer */
168 #define REDIS_RDB_ENC_INT32 2 /* 32 bit signed integer */
169 #define REDIS_RDB_ENC_LZF 3 /* string compressed with FASTLZ */
170
171 /* Virtual memory object->where field. */
172 #define REDIS_VM_MEMORY 0 /* The object is on memory */
173 #define REDIS_VM_SWAPPED 1 /* The object is on disk */
174 #define REDIS_VM_SWAPPING 2 /* Redis is swapping this object on disk */
175 #define REDIS_VM_LOADING 3 /* Redis is loading this object from disk */
176
177 /* Virtual memory static configuration stuff.
178 * Check vmFindContiguousPages() to know more about this magic numbers. */
179 #define REDIS_VM_MAX_NEAR_PAGES 65536
180 #define REDIS_VM_MAX_RANDOM_JUMP 4096
181 #define REDIS_VM_MAX_THREADS 32
182 #define REDIS_THREAD_STACK_SIZE (1024*1024*4)
183 /* The following is the *percentage* of completed I/O jobs to process when the
184 * handelr is called. While Virtual Memory I/O operations are performed by
185 * threads, this operations must be processed by the main thread when completed
186 * in order to take effect. */
187 #define REDIS_MAX_COMPLETED_JOBS_PROCESSED 1
188
189 /* Client flags */
190 #define REDIS_SLAVE 1 /* This client is a slave server */
191 #define REDIS_MASTER 2 /* This client is a master server */
192 #define REDIS_MONITOR 4 /* This client is a slave monitor, see MONITOR */
193 #define REDIS_MULTI 8 /* This client is in a MULTI context */
194 #define REDIS_BLOCKED 16 /* The client is waiting in a blocking operation */
195 #define REDIS_IO_WAIT 32 /* The client is waiting for Virtual Memory I/O */
196 #define REDIS_DIRTY_CAS 64 /* Watched keys modified. EXEC will fail. */
197
198 /* Slave replication state - slave side */
199 #define REDIS_REPL_NONE 0 /* No active replication */
200 #define REDIS_REPL_CONNECT 1 /* Must connect to master */
201 #define REDIS_REPL_CONNECTED 2 /* Connected to master */
202
203 /* Slave replication state - from the point of view of master
204 * Note that in SEND_BULK and ONLINE state the slave receives new updates
205 * in its output queue. In the WAIT_BGSAVE state instead the server is waiting
206 * to start the next background saving in order to send updates to it. */
207 #define REDIS_REPL_WAIT_BGSAVE_START 3 /* master waits bgsave to start feeding it */
208 #define REDIS_REPL_WAIT_BGSAVE_END 4 /* master waits bgsave to start bulk DB transmission */
209 #define REDIS_REPL_SEND_BULK 5 /* master is sending the bulk DB */
210 #define REDIS_REPL_ONLINE 6 /* bulk DB already transmitted, receive updates */
211
212 /* List related stuff */
213 #define REDIS_HEAD 0
214 #define REDIS_TAIL 1
215
216 /* Sort operations */
217 #define REDIS_SORT_GET 0
218 #define REDIS_SORT_ASC 1
219 #define REDIS_SORT_DESC 2
220 #define REDIS_SORTKEY_MAX 1024
221
222 /* Log levels */
223 #define REDIS_DEBUG 0
224 #define REDIS_VERBOSE 1
225 #define REDIS_NOTICE 2
226 #define REDIS_WARNING 3
227
228 /* Anti-warning macro... */
229 #define REDIS_NOTUSED(V) ((void) V)
230
231 #define ZSKIPLIST_MAXLEVEL 32 /* Should be enough for 2^32 elements */
232 #define ZSKIPLIST_P 0.25 /* Skiplist P = 1/4 */
233
234 /* Append only defines */
235 #define APPENDFSYNC_NO 0
236 #define APPENDFSYNC_ALWAYS 1
237 #define APPENDFSYNC_EVERYSEC 2
238
239 /* Hashes related defaults */
240 #define REDIS_HASH_MAX_ZIPMAP_ENTRIES 64
241 #define REDIS_HASH_MAX_ZIPMAP_VALUE 512
242
243 /* We can print the stacktrace, so our assert is defined this way: */
244 #define redisAssert(_e) ((_e)?(void)0 : (_redisAssert(#_e,__FILE__,__LINE__),_exit(1)))
245 #define redisPanic(_e) _redisPanic(#_e,__FILE__,__LINE__),_exit(1)
246 static void _redisAssert(char *estr, char *file, int line);
247 static void _redisPanic(char *msg, char *file, int line);
248
249 /*================================= Data types ============================== */
250
251 /* A redis object, that is a type able to hold a string / list / set */
252
253 /* The VM object structure */
254 struct redisObjectVM {
255 off_t page; /* the page at witch the object is stored on disk */
256 off_t usedpages; /* number of pages used on disk */
257 time_t atime; /* Last access time */
258 } vm;
259
260 /* The actual Redis Object */
261 typedef struct redisObject {
262 void *ptr;
263 unsigned char type;
264 unsigned char encoding;
265 unsigned char storage; /* If this object is a key, where is the value?
266 * REDIS_VM_MEMORY, REDIS_VM_SWAPPED, ... */
267 unsigned char vtype; /* If this object is a key, and value is swapped out,
268 * this is the type of the swapped out object. */
269 int refcount;
270 /* VM fields, this are only allocated if VM is active, otherwise the
271 * object allocation function will just allocate
272 * sizeof(redisObjct) minus sizeof(redisObjectVM), so using
273 * Redis without VM active will not have any overhead. */
274 struct redisObjectVM vm;
275 } robj;
276
277 /* Macro used to initalize a Redis object allocated on the stack.
278 * Note that this macro is taken near the structure definition to make sure
279 * we'll update it when the structure is changed, to avoid bugs like
280 * bug #85 introduced exactly in this way. */
281 #define initStaticStringObject(_var,_ptr) do { \
282 _var.refcount = 1; \
283 _var.type = REDIS_STRING; \
284 _var.encoding = REDIS_ENCODING_RAW; \
285 _var.ptr = _ptr; \
286 if (server.vm_enabled) _var.storage = REDIS_VM_MEMORY; \
287 } while(0);
288
289 typedef struct redisDb {
290 dict *dict; /* The keyspace for this DB */
291 dict *expires; /* Timeout of keys with a timeout set */
292 dict *blocking_keys; /* Keys with clients waiting for data (BLPOP) */
293 dict *io_keys; /* Keys with clients waiting for VM I/O */
294 dict *watched_keys; /* WATCHED keys for MULTI/EXEC CAS */
295 int id;
296 } redisDb;
297
298 /* Client MULTI/EXEC state */
299 typedef struct multiCmd {
300 robj **argv;
301 int argc;
302 struct redisCommand *cmd;
303 } multiCmd;
304
305 typedef struct multiState {
306 multiCmd *commands; /* Array of MULTI commands */
307 int count; /* Total number of MULTI commands */
308 } multiState;
309
310 /* With multiplexing we need to take per-clinet state.
311 * Clients are taken in a liked list. */
312 typedef struct redisClient {
313 int fd;
314 redisDb *db;
315 int dictid;
316 sds querybuf;
317 robj **argv, **mbargv;
318 int argc, mbargc;
319 int bulklen; /* bulk read len. -1 if not in bulk read mode */
320 int multibulk; /* multi bulk command format active */
321 list *reply;
322 int sentlen;
323 time_t lastinteraction; /* time of the last interaction, used for timeout */
324 int flags; /* REDIS_SLAVE | REDIS_MONITOR | REDIS_MULTI ... */
325 int slaveseldb; /* slave selected db, if this client is a slave */
326 int authenticated; /* when requirepass is non-NULL */
327 int replstate; /* replication state if this is a slave */
328 int repldbfd; /* replication DB file descriptor */
329 long repldboff; /* replication DB file offset */
330 off_t repldbsize; /* replication DB file size */
331 multiState mstate; /* MULTI/EXEC state */
332 robj **blocking_keys; /* The key we are waiting to terminate a blocking
333 * operation such as BLPOP. Otherwise NULL. */
334 int blocking_keys_num; /* Number of blocking keys */
335 time_t blockingto; /* Blocking operation timeout. If UNIX current time
336 * is >= blockingto then the operation timed out. */
337 list *io_keys; /* Keys this client is waiting to be loaded from the
338 * swap file in order to continue. */
339 list *watched_keys; /* Keys WATCHED for MULTI/EXEC CAS */
340 dict *pubsub_channels; /* channels a client is interested in (SUBSCRIBE) */
341 list *pubsub_patterns; /* patterns a client is interested in (SUBSCRIBE) */
342 } redisClient;
343
344 struct saveparam {
345 time_t seconds;
346 int changes;
347 };
348
349 /* Global server state structure */
350 struct redisServer {
351 int port;
352 int fd;
353 redisDb *db;
354 long long dirty; /* changes to DB from the last save */
355 list *clients;
356 list *slaves, *monitors;
357 char neterr[ANET_ERR_LEN];
358 aeEventLoop *el;
359 int cronloops; /* number of times the cron function run */
360 list *objfreelist; /* A list of freed objects to avoid malloc() */
361 time_t lastsave; /* Unix time of last save succeeede */
362 /* Fields used only for stats */
363 time_t stat_starttime; /* server start time */
364 long long stat_numcommands; /* number of processed commands */
365 long long stat_numconnections; /* number of connections received */
366 long long stat_expiredkeys; /* number of expired keys */
367 /* Configuration */
368 int verbosity;
369 int glueoutputbuf;
370 int maxidletime;
371 int dbnum;
372 int daemonize;
373 int appendonly;
374 int appendfsync;
375 int shutdown_asap;
376 time_t lastfsync;
377 int appendfd;
378 int appendseldb;
379 char *pidfile;
380 pid_t bgsavechildpid;
381 pid_t bgrewritechildpid;
382 sds bgrewritebuf; /* buffer taken by parent during oppend only rewrite */
383 sds aofbuf; /* AOF buffer, written before entering the event loop */
384 struct saveparam *saveparams;
385 int saveparamslen;
386 char *logfile;
387 char *bindaddr;
388 char *dbfilename;
389 char *appendfilename;
390 char *requirepass;
391 int rdbcompression;
392 int activerehashing;
393 /* Replication related */
394 int isslave;
395 char *masterauth;
396 char *masterhost;
397 int masterport;
398 redisClient *master; /* client that is master for this slave */
399 int replstate;
400 unsigned int maxclients;
401 unsigned long long maxmemory;
402 unsigned int blpop_blocked_clients;
403 unsigned int vm_blocked_clients;
404 /* Sort parameters - qsort_r() is only available under BSD so we
405 * have to take this state global, in order to pass it to sortCompare() */
406 int sort_desc;
407 int sort_alpha;
408 int sort_bypattern;
409 /* Virtual memory configuration */
410 int vm_enabled;
411 char *vm_swap_file;
412 off_t vm_page_size;
413 off_t vm_pages;
414 unsigned long long vm_max_memory;
415 /* Hashes config */
416 size_t hash_max_zipmap_entries;
417 size_t hash_max_zipmap_value;
418 /* Virtual memory state */
419 FILE *vm_fp;
420 int vm_fd;
421 off_t vm_next_page; /* Next probably empty page */
422 off_t vm_near_pages; /* Number of pages allocated sequentially */
423 unsigned char *vm_bitmap; /* Bitmap of free/used pages */
424 time_t unixtime; /* Unix time sampled every second. */
425 /* Virtual memory I/O threads stuff */
426 /* An I/O thread process an element taken from the io_jobs queue and
427 * put the result of the operation in the io_done list. While the
428 * job is being processed, it's put on io_processing queue. */
429 list *io_newjobs; /* List of VM I/O jobs yet to be processed */
430 list *io_processing; /* List of VM I/O jobs being processed */
431 list *io_processed; /* List of VM I/O jobs already processed */
432 list *io_ready_clients; /* Clients ready to be unblocked. All keys loaded */
433 pthread_mutex_t io_mutex; /* lock to access io_jobs/io_done/io_thread_job */
434 pthread_mutex_t obj_freelist_mutex; /* safe redis objects creation/free */
435 pthread_mutex_t io_swapfile_mutex; /* So we can lseek + write */
436 pthread_attr_t io_threads_attr; /* attributes for threads creation */
437 int io_active_threads; /* Number of running I/O threads */
438 int vm_max_threads; /* Max number of I/O threads running at the same time */
439 /* Our main thread is blocked on the event loop, locking for sockets ready
440 * to be read or written, so when a threaded I/O operation is ready to be
441 * processed by the main thread, the I/O thread will use a unix pipe to
442 * awake the main thread. The followings are the two pipe FDs. */
443 int io_ready_pipe_read;
444 int io_ready_pipe_write;
445 /* Virtual memory stats */
446 unsigned long long vm_stats_used_pages;
447 unsigned long long vm_stats_swapped_objects;
448 unsigned long long vm_stats_swapouts;
449 unsigned long long vm_stats_swapins;
450 /* Pubsub */
451 dict *pubsub_channels; /* Map channels to list of subscribed clients */
452 list *pubsub_patterns; /* A list of pubsub_patterns */
453 /* Misc */
454 FILE *devnull;
455 };
456
457 typedef struct pubsubPattern {
458 redisClient *client;
459 robj *pattern;
460 } pubsubPattern;
461
462 typedef void redisCommandProc(redisClient *c);
463 typedef void redisVmPreloadProc(redisClient *c, struct redisCommand *cmd, int argc, robj **argv);
464 struct redisCommand {
465 char *name;
466 redisCommandProc *proc;
467 int arity;
468 int flags;
469 /* Use a function to determine which keys need to be loaded
470 * in the background prior to executing this command. Takes precedence
471 * over vm_firstkey and others, ignored when NULL */
472 redisVmPreloadProc *vm_preload_proc;
473 /* What keys should be loaded in background when calling this command? */
474 int vm_firstkey; /* The first argument that's a key (0 = no keys) */
475 int vm_lastkey; /* THe last argument that's a key */
476 int vm_keystep; /* The step between first and last key */
477 };
478
479 struct redisFunctionSym {
480 char *name;
481 unsigned long pointer;
482 };
483
484 typedef struct _redisSortObject {
485 robj *obj;
486 union {
487 double score;
488 robj *cmpobj;
489 } u;
490 } redisSortObject;
491
492 typedef struct _redisSortOperation {
493 int type;
494 robj *pattern;
495 } redisSortOperation;
496
497 /* ZSETs use a specialized version of Skiplists */
498
499 typedef struct zskiplistNode {
500 struct zskiplistNode **forward;
501 struct zskiplistNode *backward;
502 unsigned int *span;
503 double score;
504 robj *obj;
505 } zskiplistNode;
506
507 typedef struct zskiplist {
508 struct zskiplistNode *header, *tail;
509 unsigned long length;
510 int level;
511 } zskiplist;
512
513 typedef struct zset {
514 dict *dict;
515 zskiplist *zsl;
516 } zset;
517
518 /* Our shared "common" objects */
519
520 #define REDIS_SHARED_INTEGERS 10000
521 struct sharedObjectsStruct {
522 robj *crlf, *ok, *err, *emptybulk, *czero, *cone, *pong, *space,
523 *colon, *nullbulk, *nullmultibulk, *queued,
524 *emptymultibulk, *wrongtypeerr, *nokeyerr, *syntaxerr, *sameobjecterr,
525 *outofrangeerr, *plus,
526 *select0, *select1, *select2, *select3, *select4,
527 *select5, *select6, *select7, *select8, *select9,
528 *messagebulk, *pmessagebulk, *subscribebulk, *unsubscribebulk, *mbulk3,
529 *mbulk4, *psubscribebulk, *punsubscribebulk,
530 *integers[REDIS_SHARED_INTEGERS];
531 } shared;
532
533 /* Global vars that are actally used as constants. The following double
534 * values are used for double on-disk serialization, and are initialized
535 * at runtime to avoid strange compiler optimizations. */
536
537 static double R_Zero, R_PosInf, R_NegInf, R_Nan;
538
539 /* VM threaded I/O request message */
540 #define REDIS_IOJOB_LOAD 0 /* Load from disk to memory */
541 #define REDIS_IOJOB_PREPARE_SWAP 1 /* Compute needed pages */
542 #define REDIS_IOJOB_DO_SWAP 2 /* Swap from memory to disk */
543 typedef struct iojob {
544 int type; /* Request type, REDIS_IOJOB_* */
545 redisDb *db;/* Redis database */
546 robj *key; /* This I/O request is about swapping this key */
547 robj *val; /* the value to swap for REDIS_IOREQ_*_SWAP, otherwise this
548 * field is populated by the I/O thread for REDIS_IOREQ_LOAD. */
549 off_t page; /* Swap page where to read/write the object */
550 off_t pages; /* Swap pages needed to save object. PREPARE_SWAP return val */
551 int canceled; /* True if this command was canceled by blocking side of VM */
552 pthread_t thread; /* ID of the thread processing this entry */
553 } iojob;
554
555 /*================================ Prototypes =============================== */
556
557 static void freeStringObject(robj *o);
558 static void freeListObject(robj *o);
559 static void freeSetObject(robj *o);
560 static void decrRefCount(void *o);
561 static robj *createObject(int type, void *ptr);
562 static void freeClient(redisClient *c);
563 static int rdbLoad(char *filename);
564 static void addReply(redisClient *c, robj *obj);
565 static void addReplySds(redisClient *c, sds s);
566 static void incrRefCount(robj *o);
567 static int rdbSaveBackground(char *filename);
568 static robj *createStringObject(char *ptr, size_t len);
569 static robj *dupStringObject(robj *o);
570 static void replicationFeedSlaves(list *slaves, int dictid, robj **argv, int argc);
571 static void replicationFeedMonitors(list *monitors, int dictid, robj **argv, int argc);
572 static void flushAppendOnlyFile(void);
573 static void feedAppendOnlyFile(struct redisCommand *cmd, int dictid, robj **argv, int argc);
574 static int syncWithMaster(void);
575 static robj *tryObjectEncoding(robj *o);
576 static robj *getDecodedObject(robj *o);
577 static int removeExpire(redisDb *db, robj *key);
578 static int expireIfNeeded(redisDb *db, robj *key);
579 static int deleteIfVolatile(redisDb *db, robj *key);
580 static int deleteIfSwapped(redisDb *db, robj *key);
581 static int deleteKey(redisDb *db, robj *key);
582 static time_t getExpire(redisDb *db, robj *key);
583 static int setExpire(redisDb *db, robj *key, time_t when);
584 static void updateSlavesWaitingBgsave(int bgsaveerr);
585 static void freeMemoryIfNeeded(void);
586 static int processCommand(redisClient *c);
587 static void setupSigSegvAction(void);
588 static void rdbRemoveTempFile(pid_t childpid);
589 static void aofRemoveTempFile(pid_t childpid);
590 static size_t stringObjectLen(robj *o);
591 static void processInputBuffer(redisClient *c);
592 static zskiplist *zslCreate(void);
593 static void zslFree(zskiplist *zsl);
594 static void zslInsert(zskiplist *zsl, double score, robj *obj);
595 static void sendReplyToClientWritev(aeEventLoop *el, int fd, void *privdata, int mask);
596 static void initClientMultiState(redisClient *c);
597 static void freeClientMultiState(redisClient *c);
598 static void queueMultiCommand(redisClient *c, struct redisCommand *cmd);
599 static void unblockClientWaitingData(redisClient *c);
600 static int handleClientsWaitingListPush(redisClient *c, robj *key, robj *ele);
601 static void vmInit(void);
602 static void vmMarkPagesFree(off_t page, off_t count);
603 static robj *vmLoadObject(robj *key);
604 static robj *vmPreviewObject(robj *key);
605 static int vmSwapOneObjectBlocking(void);
606 static int vmSwapOneObjectThreaded(void);
607 static int vmCanSwapOut(void);
608 static int tryFreeOneObjectFromFreelist(void);
609 static void acceptHandler(aeEventLoop *el, int fd, void *privdata, int mask);
610 static void vmThreadedIOCompletedJob(aeEventLoop *el, int fd, void *privdata, int mask);
611 static void vmCancelThreadedIOJob(robj *o);
612 static void lockThreadedIO(void);
613 static void unlockThreadedIO(void);
614 static int vmSwapObjectThreaded(robj *key, robj *val, redisDb *db);
615 static void freeIOJob(iojob *j);
616 static void queueIOJob(iojob *j);
617 static int vmWriteObjectOnSwap(robj *o, off_t page);
618 static robj *vmReadObjectFromSwap(off_t page, int type);
619 static void waitEmptyIOJobsQueue(void);
620 static void vmReopenSwapFile(void);
621 static int vmFreePage(off_t page);
622 static void zunionInterBlockClientOnSwappedKeys(redisClient *c, struct redisCommand *cmd, int argc, robj **argv);
623 static void execBlockClientOnSwappedKeys(redisClient *c, struct redisCommand *cmd, int argc, robj **argv);
624 static int blockClientOnSwappedKeys(redisClient *c, struct redisCommand *cmd);
625 static int dontWaitForSwappedKey(redisClient *c, robj *key);
626 static void handleClientsBlockedOnSwappedKey(redisDb *db, robj *key);
627 static void readQueryFromClient(aeEventLoop *el, int fd, void *privdata, int mask);
628 static struct redisCommand *lookupCommand(char *name);
629 static void call(redisClient *c, struct redisCommand *cmd);
630 static void resetClient(redisClient *c);
631 static void convertToRealHash(robj *o);
632 static int pubsubUnsubscribeAllChannels(redisClient *c, int notify);
633 static int pubsubUnsubscribeAllPatterns(redisClient *c, int notify);
634 static void freePubsubPattern(void *p);
635 static int listMatchPubsubPattern(void *a, void *b);
636 static int compareStringObjects(robj *a, robj *b);
637 static int equalStringObjects(robj *a, robj *b);
638 static void usage();
639 static int rewriteAppendOnlyFileBackground(void);
640 static int vmSwapObjectBlocking(robj *key, robj *val);
641 static int prepareForShutdown();
642 static void touchWatchedKey(redisDb *db, robj *key);
643 static void touchWatchedKeysOnFlush(int dbid);
644 static void unwatchAllKeys(redisClient *c);
645
646 static void authCommand(redisClient *c);
647 static void pingCommand(redisClient *c);
648 static void echoCommand(redisClient *c);
649 static void setCommand(redisClient *c);
650 static void setnxCommand(redisClient *c);
651 static void setexCommand(redisClient *c);
652 static void getCommand(redisClient *c);
653 static void delCommand(redisClient *c);
654 static void existsCommand(redisClient *c);
655 static void incrCommand(redisClient *c);
656 static void decrCommand(redisClient *c);
657 static void incrbyCommand(redisClient *c);
658 static void decrbyCommand(redisClient *c);
659 static void selectCommand(redisClient *c);
660 static void randomkeyCommand(redisClient *c);
661 static void keysCommand(redisClient *c);
662 static void dbsizeCommand(redisClient *c);
663 static void lastsaveCommand(redisClient *c);
664 static void saveCommand(redisClient *c);
665 static void bgsaveCommand(redisClient *c);
666 static void bgrewriteaofCommand(redisClient *c);
667 static void shutdownCommand(redisClient *c);
668 static void moveCommand(redisClient *c);
669 static void renameCommand(redisClient *c);
670 static void renamenxCommand(redisClient *c);
671 static void lpushCommand(redisClient *c);
672 static void rpushCommand(redisClient *c);
673 static void lpopCommand(redisClient *c);
674 static void rpopCommand(redisClient *c);
675 static void llenCommand(redisClient *c);
676 static void lindexCommand(redisClient *c);
677 static void lrangeCommand(redisClient *c);
678 static void ltrimCommand(redisClient *c);
679 static void typeCommand(redisClient *c);
680 static void lsetCommand(redisClient *c);
681 static void saddCommand(redisClient *c);
682 static void sremCommand(redisClient *c);
683 static void smoveCommand(redisClient *c);
684 static void sismemberCommand(redisClient *c);
685 static void scardCommand(redisClient *c);
686 static void spopCommand(redisClient *c);
687 static void srandmemberCommand(redisClient *c);
688 static void sinterCommand(redisClient *c);
689 static void sinterstoreCommand(redisClient *c);
690 static void sunionCommand(redisClient *c);
691 static void sunionstoreCommand(redisClient *c);
692 static void sdiffCommand(redisClient *c);
693 static void sdiffstoreCommand(redisClient *c);
694 static void syncCommand(redisClient *c);
695 static void flushdbCommand(redisClient *c);
696 static void flushallCommand(redisClient *c);
697 static void sortCommand(redisClient *c);
698 static void lremCommand(redisClient *c);
699 static void rpoplpushcommand(redisClient *c);
700 static void infoCommand(redisClient *c);
701 static void mgetCommand(redisClient *c);
702 static void monitorCommand(redisClient *c);
703 static void expireCommand(redisClient *c);
704 static void expireatCommand(redisClient *c);
705 static void getsetCommand(redisClient *c);
706 static void ttlCommand(redisClient *c);
707 static void slaveofCommand(redisClient *c);
708 static void debugCommand(redisClient *c);
709 static void msetCommand(redisClient *c);
710 static void msetnxCommand(redisClient *c);
711 static void zaddCommand(redisClient *c);
712 static void zincrbyCommand(redisClient *c);
713 static void zrangeCommand(redisClient *c);
714 static void zrangebyscoreCommand(redisClient *c);
715 static void zcountCommand(redisClient *c);
716 static void zrevrangeCommand(redisClient *c);
717 static void zcardCommand(redisClient *c);
718 static void zremCommand(redisClient *c);
719 static void zscoreCommand(redisClient *c);
720 static void zremrangebyscoreCommand(redisClient *c);
721 static void multiCommand(redisClient *c);
722 static void execCommand(redisClient *c);
723 static void discardCommand(redisClient *c);
724 static void blpopCommand(redisClient *c);
725 static void brpopCommand(redisClient *c);
726 static void appendCommand(redisClient *c);
727 static void substrCommand(redisClient *c);
728 static void zrankCommand(redisClient *c);
729 static void zrevrankCommand(redisClient *c);
730 static void hsetCommand(redisClient *c);
731 static void hsetnxCommand(redisClient *c);
732 static void hgetCommand(redisClient *c);
733 static void hmsetCommand(redisClient *c);
734 static void hmgetCommand(redisClient *c);
735 static void hdelCommand(redisClient *c);
736 static void hlenCommand(redisClient *c);
737 static void zremrangebyrankCommand(redisClient *c);
738 static void zunionstoreCommand(redisClient *c);
739 static void zinterstoreCommand(redisClient *c);
740 static void hkeysCommand(redisClient *c);
741 static void hvalsCommand(redisClient *c);
742 static void hgetallCommand(redisClient *c);
743 static void hexistsCommand(redisClient *c);
744 static void configCommand(redisClient *c);
745 static void hincrbyCommand(redisClient *c);
746 static void subscribeCommand(redisClient *c);
747 static void unsubscribeCommand(redisClient *c);
748 static void psubscribeCommand(redisClient *c);
749 static void punsubscribeCommand(redisClient *c);
750 static void publishCommand(redisClient *c);
751 static void watchCommand(redisClient *c);
752 static void unwatchCommand(redisClient *c);
753
754 /*================================= Globals ================================= */
755
756 /* Global vars */
757 static struct redisServer server; /* server global state */
758 static struct redisCommand *commandTable;
759 static struct redisCommand readonlyCommandTable[] = {
760 {"get",getCommand,2,REDIS_CMD_INLINE,NULL,1,1,1},
761 {"set",setCommand,3,REDIS_CMD_BULK|REDIS_CMD_DENYOOM,NULL,0,0,0},
762 {"setnx",setnxCommand,3,REDIS_CMD_BULK|REDIS_CMD_DENYOOM,NULL,0,0,0},
763 {"setex",setexCommand,4,REDIS_CMD_BULK|REDIS_CMD_DENYOOM,NULL,0,0,0},
764 {"append",appendCommand,3,REDIS_CMD_BULK|REDIS_CMD_DENYOOM,NULL,1,1,1},
765 {"substr",substrCommand,4,REDIS_CMD_INLINE,NULL,1,1,1},
766 {"del",delCommand,-2,REDIS_CMD_INLINE,NULL,0,0,0},
767 {"exists",existsCommand,2,REDIS_CMD_INLINE,NULL,1,1,1},
768 {"incr",incrCommand,2,REDIS_CMD_INLINE|REDIS_CMD_DENYOOM,NULL,1,1,1},
769 {"decr",decrCommand,2,REDIS_CMD_INLINE|REDIS_CMD_DENYOOM,NULL,1,1,1},
770 {"mget",mgetCommand,-2,REDIS_CMD_INLINE,NULL,1,-1,1},
771 {"rpush",rpushCommand,3,REDIS_CMD_BULK|REDIS_CMD_DENYOOM,NULL,1,1,1},
772 {"lpush",lpushCommand,3,REDIS_CMD_BULK|REDIS_CMD_DENYOOM,NULL,1,1,1},
773 {"rpop",rpopCommand,2,REDIS_CMD_INLINE,NULL,1,1,1},
774 {"lpop",lpopCommand,2,REDIS_CMD_INLINE,NULL,1,1,1},
775 {"brpop",brpopCommand,-3,REDIS_CMD_INLINE,NULL,1,1,1},
776 {"blpop",blpopCommand,-3,REDIS_CMD_INLINE,NULL,1,1,1},
777 {"llen",llenCommand,2,REDIS_CMD_INLINE,NULL,1,1,1},
778 {"lindex",lindexCommand,3,REDIS_CMD_INLINE,NULL,1,1,1},
779 {"lset",lsetCommand,4,REDIS_CMD_BULK|REDIS_CMD_DENYOOM,NULL,1,1,1},
780 {"lrange",lrangeCommand,4,REDIS_CMD_INLINE,NULL,1,1,1},
781 {"ltrim",ltrimCommand,4,REDIS_CMD_INLINE,NULL,1,1,1},
782 {"lrem",lremCommand,4,REDIS_CMD_BULK,NULL,1,1,1},
783 {"rpoplpush",rpoplpushcommand,3,REDIS_CMD_INLINE|REDIS_CMD_DENYOOM,NULL,1,2,1},
784 {"sadd",saddCommand,3,REDIS_CMD_BULK|REDIS_CMD_DENYOOM,NULL,1,1,1},
785 {"srem",sremCommand,3,REDIS_CMD_BULK,NULL,1,1,1},
786 {"smove",smoveCommand,4,REDIS_CMD_BULK,NULL,1,2,1},
787 {"sismember",sismemberCommand,3,REDIS_CMD_BULK,NULL,1,1,1},
788 {"scard",scardCommand,2,REDIS_CMD_INLINE,NULL,1,1,1},
789 {"spop",spopCommand,2,REDIS_CMD_INLINE,NULL,1,1,1},
790 {"srandmember",srandmemberCommand,2,REDIS_CMD_INLINE,NULL,1,1,1},
791 {"sinter",sinterCommand,-2,REDIS_CMD_INLINE|REDIS_CMD_DENYOOM,NULL,1,-1,1},
792 {"sinterstore",sinterstoreCommand,-3,REDIS_CMD_INLINE|REDIS_CMD_DENYOOM,NULL,2,-1,1},
793 {"sunion",sunionCommand,-2,REDIS_CMD_INLINE|REDIS_CMD_DENYOOM,NULL,1,-1,1},
794 {"sunionstore",sunionstoreCommand,-3,REDIS_CMD_INLINE|REDIS_CMD_DENYOOM,NULL,2,-1,1},
795 {"sdiff",sdiffCommand,-2,REDIS_CMD_INLINE|REDIS_CMD_DENYOOM,NULL,1,-1,1},
796 {"sdiffstore",sdiffstoreCommand,-3,REDIS_CMD_INLINE|REDIS_CMD_DENYOOM,NULL,2,-1,1},
797 {"smembers",sinterCommand,2,REDIS_CMD_INLINE,NULL,1,1,1},
798 {"zadd",zaddCommand,4,REDIS_CMD_BULK|REDIS_CMD_DENYOOM,NULL,1,1,1},
799 {"zincrby",zincrbyCommand,4,REDIS_CMD_BULK|REDIS_CMD_DENYOOM,NULL,1,1,1},
800 {"zrem",zremCommand,3,REDIS_CMD_BULK,NULL,1,1,1},
801 {"zremrangebyscore",zremrangebyscoreCommand,4,REDIS_CMD_INLINE,NULL,1,1,1},
802 {"zremrangebyrank",zremrangebyrankCommand,4,REDIS_CMD_INLINE,NULL,1,1,1},
803 {"zunionstore",zunionstoreCommand,-4,REDIS_CMD_INLINE|REDIS_CMD_DENYOOM,zunionInterBlockClientOnSwappedKeys,0,0,0},
804 {"zinterstore",zinterstoreCommand,-4,REDIS_CMD_INLINE|REDIS_CMD_DENYOOM,zunionInterBlockClientOnSwappedKeys,0,0,0},
805 {"zrange",zrangeCommand,-4,REDIS_CMD_INLINE,NULL,1,1,1},
806 {"zrangebyscore",zrangebyscoreCommand,-4,REDIS_CMD_INLINE,NULL,1,1,1},
807 {"zcount",zcountCommand,4,REDIS_CMD_INLINE,NULL,1,1,1},
808 {"zrevrange",zrevrangeCommand,-4,REDIS_CMD_INLINE,NULL,1,1,1},
809 {"zcard",zcardCommand,2,REDIS_CMD_INLINE,NULL,1,1,1},
810 {"zscore",zscoreCommand,3,REDIS_CMD_BULK|REDIS_CMD_DENYOOM,NULL,1,1,1},
811 {"zrank",zrankCommand,3,REDIS_CMD_BULK,NULL,1,1,1},
812 {"zrevrank",zrevrankCommand,3,REDIS_CMD_BULK,NULL,1,1,1},
813 {"hset",hsetCommand,4,REDIS_CMD_BULK|REDIS_CMD_DENYOOM,NULL,1,1,1},
814 {"hsetnx",hsetnxCommand,4,REDIS_CMD_BULK|REDIS_CMD_DENYOOM,NULL,1,1,1},
815 {"hget",hgetCommand,3,REDIS_CMD_BULK,NULL,1,1,1},
816 {"hmset",hmsetCommand,-4,REDIS_CMD_BULK|REDIS_CMD_DENYOOM,NULL,1,1,1},
817 {"hmget",hmgetCommand,-3,REDIS_CMD_BULK,NULL,1,1,1},
818 {"hincrby",hincrbyCommand,4,REDIS_CMD_INLINE|REDIS_CMD_DENYOOM,NULL,1,1,1},
819 {"hdel",hdelCommand,3,REDIS_CMD_BULK,NULL,1,1,1},
820 {"hlen",hlenCommand,2,REDIS_CMD_INLINE,NULL,1,1,1},
821 {"hkeys",hkeysCommand,2,REDIS_CMD_INLINE,NULL,1,1,1},
822 {"hvals",hvalsCommand,2,REDIS_CMD_INLINE,NULL,1,1,1},
823 {"hgetall",hgetallCommand,2,REDIS_CMD_INLINE,NULL,1,1,1},
824 {"hexists",hexistsCommand,3,REDIS_CMD_BULK,NULL,1,1,1},
825 {"incrby",incrbyCommand,3,REDIS_CMD_INLINE|REDIS_CMD_DENYOOM,NULL,1,1,1},
826 {"decrby",decrbyCommand,3,REDIS_CMD_INLINE|REDIS_CMD_DENYOOM,NULL,1,1,1},
827 {"getset",getsetCommand,3,REDIS_CMD_BULK|REDIS_CMD_DENYOOM,NULL,1,1,1},
828 {"mset",msetCommand,-3,REDIS_CMD_BULK|REDIS_CMD_DENYOOM,NULL,1,-1,2},
829 {"msetnx",msetnxCommand,-3,REDIS_CMD_BULK|REDIS_CMD_DENYOOM,NULL,1,-1,2},
830 {"randomkey",randomkeyCommand,1,REDIS_CMD_INLINE,NULL,0,0,0},
831 {"select",selectCommand,2,REDIS_CMD_INLINE,NULL,0,0,0},
832 {"move",moveCommand,3,REDIS_CMD_INLINE,NULL,1,1,1},
833 {"rename",renameCommand,3,REDIS_CMD_INLINE,NULL,1,1,1},
834 {"renamenx",renamenxCommand,3,REDIS_CMD_INLINE,NULL,1,1,1},
835 {"expire",expireCommand,3,REDIS_CMD_INLINE,NULL,0,0,0},
836 {"expireat",expireatCommand,3,REDIS_CMD_INLINE,NULL,0,0,0},
837 {"keys",keysCommand,2,REDIS_CMD_INLINE,NULL,0,0,0},
838 {"dbsize",dbsizeCommand,1,REDIS_CMD_INLINE,NULL,0,0,0},
839 {"auth",authCommand,2,REDIS_CMD_INLINE,NULL,0,0,0},
840 {"ping",pingCommand,1,REDIS_CMD_INLINE,NULL,0,0,0},
841 {"echo",echoCommand,2,REDIS_CMD_BULK,NULL,0,0,0},
842 {"save",saveCommand,1,REDIS_CMD_INLINE,NULL,0,0,0},
843 {"bgsave",bgsaveCommand,1,REDIS_CMD_INLINE,NULL,0,0,0},
844 {"bgrewriteaof",bgrewriteaofCommand,1,REDIS_CMD_INLINE,NULL,0,0,0},
845 {"shutdown",shutdownCommand,1,REDIS_CMD_INLINE,NULL,0,0,0},
846 {"lastsave",lastsaveCommand,1,REDIS_CMD_INLINE,NULL,0,0,0},
847 {"type",typeCommand,2,REDIS_CMD_INLINE,NULL,1,1,1},
848 {"multi",multiCommand,1,REDIS_CMD_INLINE,NULL,0,0,0},
849 {"exec",execCommand,1,REDIS_CMD_INLINE|REDIS_CMD_DENYOOM,execBlockClientOnSwappedKeys,0,0,0},
850 {"discard",discardCommand,1,REDIS_CMD_INLINE,NULL,0,0,0},
851 {"sync",syncCommand,1,REDIS_CMD_INLINE,NULL,0,0,0},
852 {"flushdb",flushdbCommand,1,REDIS_CMD_INLINE,NULL,0,0,0},
853 {"flushall",flushallCommand,1,REDIS_CMD_INLINE,NULL,0,0,0},
854 {"sort",sortCommand,-2,REDIS_CMD_INLINE|REDIS_CMD_DENYOOM,NULL,1,1,1},
855 {"info",infoCommand,1,REDIS_CMD_INLINE,NULL,0,0,0},
856 {"monitor",monitorCommand,1,REDIS_CMD_INLINE,NULL,0,0,0},
857 {"ttl",ttlCommand,2,REDIS_CMD_INLINE,NULL,1,1,1},
858 {"slaveof",slaveofCommand,3,REDIS_CMD_INLINE,NULL,0,0,0},
859 {"debug",debugCommand,-2,REDIS_CMD_INLINE,NULL,0,0,0},
860 {"config",configCommand,-2,REDIS_CMD_BULK,NULL,0,0,0},
861 {"subscribe",subscribeCommand,-2,REDIS_CMD_INLINE,NULL,0,0,0},
862 {"unsubscribe",unsubscribeCommand,-1,REDIS_CMD_INLINE,NULL,0,0,0},
863 {"psubscribe",psubscribeCommand,-2,REDIS_CMD_INLINE,NULL,0,0,0},
864 {"punsubscribe",punsubscribeCommand,-1,REDIS_CMD_INLINE,NULL,0,0,0},
865 {"publish",publishCommand,3,REDIS_CMD_BULK|REDIS_CMD_FORCE_REPLICATION,NULL,0,0,0},
866 {"watch",watchCommand,-2,REDIS_CMD_INLINE,NULL,0,0,0},
867 {"unwatch",unwatchCommand,1,REDIS_CMD_INLINE,NULL,0,0,0}
868 };
869
870 /*============================ Utility functions ============================ */
871
872 /* Glob-style pattern matching. */
873 static int stringmatchlen(const char *pattern, int patternLen,
874 const char *string, int stringLen, int nocase)
875 {
876 while(patternLen) {
877 switch(pattern[0]) {
878 case '*':
879 while (pattern[1] == '*') {
880 pattern++;
881 patternLen--;
882 }
883 if (patternLen == 1)
884 return 1; /* match */
885 while(stringLen) {
886 if (stringmatchlen(pattern+1, patternLen-1,
887 string, stringLen, nocase))
888 return 1; /* match */
889 string++;
890 stringLen--;
891 }
892 return 0; /* no match */
893 break;
894 case '?':
895 if (stringLen == 0)
896 return 0; /* no match */
897 string++;
898 stringLen--;
899 break;
900 case '[':
901 {
902 int not, match;
903
904 pattern++;
905 patternLen--;
906 not = pattern[0] == '^';
907 if (not) {
908 pattern++;
909 patternLen--;
910 }
911 match = 0;
912 while(1) {
913 if (pattern[0] == '\\') {
914 pattern++;
915 patternLen--;
916 if (pattern[0] == string[0])
917 match = 1;
918 } else if (pattern[0] == ']') {
919 break;
920 } else if (patternLen == 0) {
921 pattern--;
922 patternLen++;
923 break;
924 } else if (pattern[1] == '-' && patternLen >= 3) {
925 int start = pattern[0];
926 int end = pattern[2];
927 int c = string[0];
928 if (start > end) {
929 int t = start;
930 start = end;
931 end = t;
932 }
933 if (nocase) {
934 start = tolower(start);
935 end = tolower(end);
936 c = tolower(c);
937 }
938 pattern += 2;
939 patternLen -= 2;
940 if (c >= start && c <= end)
941 match = 1;
942 } else {
943 if (!nocase) {
944 if (pattern[0] == string[0])
945 match = 1;
946 } else {
947 if (tolower((int)pattern[0]) == tolower((int)string[0]))
948 match = 1;
949 }
950 }
951 pattern++;
952 patternLen--;
953 }
954 if (not)
955 match = !match;
956 if (!match)
957 return 0; /* no match */
958 string++;
959 stringLen--;
960 break;
961 }
962 case '\\':
963 if (patternLen >= 2) {
964 pattern++;
965 patternLen--;
966 }
967 /* fall through */
968 default:
969 if (!nocase) {
970 if (pattern[0] != string[0])
971 return 0; /* no match */
972 } else {
973 if (tolower((int)pattern[0]) != tolower((int)string[0]))
974 return 0; /* no match */
975 }
976 string++;
977 stringLen--;
978 break;
979 }
980 pattern++;
981 patternLen--;
982 if (stringLen == 0) {
983 while(*pattern == '*') {
984 pattern++;
985 patternLen--;
986 }
987 break;
988 }
989 }
990 if (patternLen == 0 && stringLen == 0)
991 return 1;
992 return 0;
993 }
994
995 static int stringmatch(const char *pattern, const char *string, int nocase) {
996 return stringmatchlen(pattern,strlen(pattern),string,strlen(string),nocase);
997 }
998
999 /* Convert a string representing an amount of memory into the number of
1000 * bytes, so for instance memtoll("1Gi") will return 1073741824 that is
1001 * (1024*1024*1024).
1002 *
1003 * On parsing error, if *err is not NULL, it's set to 1, otherwise it's
1004 * set to 0 */
1005 static long long memtoll(const char *p, int *err) {
1006 const char *u;
1007 char buf[128];
1008 long mul; /* unit multiplier */
1009 long long val;
1010 unsigned int digits;
1011
1012 if (err) *err = 0;
1013 /* Search the first non digit character. */
1014 u = p;
1015 if (*u == '-') u++;
1016 while(*u && isdigit(*u)) u++;
1017 if (*u == '\0' || !strcasecmp(u,"b")) {
1018 mul = 1;
1019 } else if (!strcasecmp(u,"k")) {
1020 mul = 1000;
1021 } else if (!strcasecmp(u,"kb")) {
1022 mul = 1024;
1023 } else if (!strcasecmp(u,"m")) {
1024 mul = 1000*1000;
1025 } else if (!strcasecmp(u,"mb")) {
1026 mul = 1024*1024;
1027 } else if (!strcasecmp(u,"g")) {
1028 mul = 1000L*1000*1000;
1029 } else if (!strcasecmp(u,"gb")) {
1030 mul = 1024L*1024*1024;
1031 } else {
1032 if (err) *err = 1;
1033 mul = 1;
1034 }
1035 digits = u-p;
1036 if (digits >= sizeof(buf)) {
1037 if (err) *err = 1;
1038 return LLONG_MAX;
1039 }
1040 memcpy(buf,p,digits);
1041 buf[digits] = '\0';
1042 val = strtoll(buf,NULL,10);
1043 return val*mul;
1044 }
1045
1046 /* Convert a long long into a string. Returns the number of
1047 * characters needed to represent the number, that can be shorter if passed
1048 * buffer length is not enough to store the whole number. */
1049 static int ll2string(char *s, size_t len, long long value) {
1050 char buf[32], *p;
1051 unsigned long long v;
1052 size_t l;
1053
1054 if (len == 0) return 0;
1055 v = (value < 0) ? -value : value;
1056 p = buf+31; /* point to the last character */
1057 do {
1058 *p-- = '0'+(v%10);
1059 v /= 10;
1060 } while(v);
1061 if (value < 0) *p-- = '-';
1062 p++;
1063 l = 32-(p-buf);
1064 if (l+1 > len) l = len-1; /* Make sure it fits, including the nul term */
1065 memcpy(s,p,l);
1066 s[l] = '\0';
1067 return l;
1068 }
1069
1070 static void redisLog(int level, const char *fmt, ...) {
1071 va_list ap;
1072 FILE *fp;
1073
1074 fp = (server.logfile == NULL) ? stdout : fopen(server.logfile,"a");
1075 if (!fp) return;
1076
1077 va_start(ap, fmt);
1078 if (level >= server.verbosity) {
1079 char *c = ".-*#";
1080 char buf[64];
1081 time_t now;
1082
1083 now = time(NULL);
1084 strftime(buf,64,"%d %b %H:%M:%S",localtime(&now));
1085 fprintf(fp,"[%d] %s %c ",(int)getpid(),buf,c[level]);
1086 vfprintf(fp, fmt, ap);
1087 fprintf(fp,"\n");
1088 fflush(fp);
1089 }
1090 va_end(ap);
1091
1092 if (server.logfile) fclose(fp);
1093 }
1094
1095 /*====================== Hash table type implementation ==================== */
1096
1097 /* This is an hash table type that uses the SDS dynamic strings libary as
1098 * keys and radis objects as values (objects can hold SDS strings,
1099 * lists, sets). */
1100
1101 static void dictVanillaFree(void *privdata, void *val)
1102 {
1103 DICT_NOTUSED(privdata);
1104 zfree(val);
1105 }
1106
1107 static void dictListDestructor(void *privdata, void *val)
1108 {
1109 DICT_NOTUSED(privdata);
1110 listRelease((list*)val);
1111 }
1112
1113 static int sdsDictKeyCompare(void *privdata, const void *key1,
1114 const void *key2)
1115 {
1116 int l1,l2;
1117 DICT_NOTUSED(privdata);
1118
1119 l1 = sdslen((sds)key1);
1120 l2 = sdslen((sds)key2);
1121 if (l1 != l2) return 0;
1122 return memcmp(key1, key2, l1) == 0;
1123 }
1124
1125 static void dictRedisObjectDestructor(void *privdata, void *val)
1126 {
1127 DICT_NOTUSED(privdata);
1128
1129 if (val == NULL) return; /* Values of swapped out keys as set to NULL */
1130 decrRefCount(val);
1131 }
1132
1133 static int dictObjKeyCompare(void *privdata, const void *key1,
1134 const void *key2)
1135 {
1136 const robj *o1 = key1, *o2 = key2;
1137 return sdsDictKeyCompare(privdata,o1->ptr,o2->ptr);
1138 }
1139
1140 static unsigned int dictObjHash(const void *key) {
1141 const robj *o = key;
1142 return dictGenHashFunction(o->ptr, sdslen((sds)o->ptr));
1143 }
1144
1145 static int dictEncObjKeyCompare(void *privdata, const void *key1,
1146 const void *key2)
1147 {
1148 robj *o1 = (robj*) key1, *o2 = (robj*) key2;
1149 int cmp;
1150
1151 if (o1->encoding == REDIS_ENCODING_INT &&
1152 o2->encoding == REDIS_ENCODING_INT)
1153 return o1->ptr == o2->ptr;
1154
1155 o1 = getDecodedObject(o1);
1156 o2 = getDecodedObject(o2);
1157 cmp = sdsDictKeyCompare(privdata,o1->ptr,o2->ptr);
1158 decrRefCount(o1);
1159 decrRefCount(o2);
1160 return cmp;
1161 }
1162
1163 static unsigned int dictEncObjHash(const void *key) {
1164 robj *o = (robj*) key;
1165
1166 if (o->encoding == REDIS_ENCODING_RAW) {
1167 return dictGenHashFunction(o->ptr, sdslen((sds)o->ptr));
1168 } else {
1169 if (o->encoding == REDIS_ENCODING_INT) {
1170 char buf[32];
1171 int len;
1172
1173 len = ll2string(buf,32,(long)o->ptr);
1174 return dictGenHashFunction((unsigned char*)buf, len);
1175 } else {
1176 unsigned int hash;
1177
1178 o = getDecodedObject(o);
1179 hash = dictGenHashFunction(o->ptr, sdslen((sds)o->ptr));
1180 decrRefCount(o);
1181 return hash;
1182 }
1183 }
1184 }
1185
1186 /* Sets type and expires */
1187 static dictType setDictType = {
1188 dictEncObjHash, /* hash function */
1189 NULL, /* key dup */
1190 NULL, /* val dup */
1191 dictEncObjKeyCompare, /* key compare */
1192 dictRedisObjectDestructor, /* key destructor */
1193 NULL /* val destructor */
1194 };
1195
1196 /* Sorted sets hash (note: a skiplist is used in addition to the hash table) */
1197 static dictType zsetDictType = {
1198 dictEncObjHash, /* hash function */
1199 NULL, /* key dup */
1200 NULL, /* val dup */
1201 dictEncObjKeyCompare, /* key compare */
1202 dictRedisObjectDestructor, /* key destructor */
1203 dictVanillaFree /* val destructor of malloc(sizeof(double)) */
1204 };
1205
1206 /* Db->dict */
1207 static dictType dbDictType = {
1208 dictObjHash, /* hash function */
1209 NULL, /* key dup */
1210 NULL, /* val dup */
1211 dictObjKeyCompare, /* key compare */
1212 dictRedisObjectDestructor, /* key destructor */
1213 dictRedisObjectDestructor /* val destructor */
1214 };
1215
1216 /* Db->expires */
1217 static dictType keyptrDictType = {
1218 dictObjHash, /* hash function */
1219 NULL, /* key dup */
1220 NULL, /* val dup */
1221 dictObjKeyCompare, /* key compare */
1222 dictRedisObjectDestructor, /* key destructor */
1223 NULL /* val destructor */
1224 };
1225
1226 /* Hash type hash table (note that small hashes are represented with zimpaps) */
1227 static dictType hashDictType = {
1228 dictEncObjHash, /* hash function */
1229 NULL, /* key dup */
1230 NULL, /* val dup */
1231 dictEncObjKeyCompare, /* key compare */
1232 dictRedisObjectDestructor, /* key destructor */
1233 dictRedisObjectDestructor /* val destructor */
1234 };
1235
1236 /* Keylist hash table type has unencoded redis objects as keys and
1237 * lists as values. It's used for blocking operations (BLPOP) and to
1238 * map swapped keys to a list of clients waiting for this keys to be loaded. */
1239 static dictType keylistDictType = {
1240 dictObjHash, /* hash function */
1241 NULL, /* key dup */
1242 NULL, /* val dup */
1243 dictObjKeyCompare, /* key compare */
1244 dictRedisObjectDestructor, /* key destructor */
1245 dictListDestructor /* val destructor */
1246 };
1247
1248 static void version();
1249
1250 /* ========================= Random utility functions ======================= */
1251
1252 /* Redis generally does not try to recover from out of memory conditions
1253 * when allocating objects or strings, it is not clear if it will be possible
1254 * to report this condition to the client since the networking layer itself
1255 * is based on heap allocation for send buffers, so we simply abort.
1256 * At least the code will be simpler to read... */
1257 static void oom(const char *msg) {
1258 redisLog(REDIS_WARNING, "%s: Out of memory\n",msg);
1259 sleep(1);
1260 abort();
1261 }
1262
1263 /* ====================== Redis server networking stuff ===================== */
1264 static void closeTimedoutClients(void) {
1265 redisClient *c;
1266 listNode *ln;
1267 time_t now = time(NULL);
1268 listIter li;
1269
1270 listRewind(server.clients,&li);
1271 while ((ln = listNext(&li)) != NULL) {
1272 c = listNodeValue(ln);
1273 if (server.maxidletime &&
1274 !(c->flags & REDIS_SLAVE) && /* no timeout for slaves */
1275 !(c->flags & REDIS_MASTER) && /* no timeout for masters */
1276 dictSize(c->pubsub_channels) == 0 && /* no timeout for pubsub */
1277 listLength(c->pubsub_patterns) == 0 &&
1278 (now - c->lastinteraction > server.maxidletime))
1279 {
1280 redisLog(REDIS_VERBOSE,"Closing idle client");
1281 freeClient(c);
1282 } else if (c->flags & REDIS_BLOCKED) {
1283 if (c->blockingto != 0 && c->blockingto < now) {
1284 addReply(c,shared.nullmultibulk);
1285 unblockClientWaitingData(c);
1286 }
1287 }
1288 }
1289 }
1290
1291 static int htNeedsResize(dict *dict) {
1292 long long size, used;
1293
1294 size = dictSlots(dict);
1295 used = dictSize(dict);
1296 return (size && used && size > DICT_HT_INITIAL_SIZE &&
1297 (used*100/size < REDIS_HT_MINFILL));
1298 }
1299
1300 /* If the percentage of used slots in the HT reaches REDIS_HT_MINFILL
1301 * we resize the hash table to save memory */
1302 static void tryResizeHashTables(void) {
1303 int j;
1304
1305 for (j = 0; j < server.dbnum; j++) {
1306 if (htNeedsResize(server.db[j].dict))
1307 dictResize(server.db[j].dict);
1308 if (htNeedsResize(server.db[j].expires))
1309 dictResize(server.db[j].expires);
1310 }
1311 }
1312
1313 /* Our hash table implementation performs rehashing incrementally while
1314 * we write/read from the hash table. Still if the server is idle, the hash
1315 * table will use two tables for a long time. So we try to use 1 millisecond
1316 * of CPU time at every serverCron() loop in order to rehash some key. */
1317 static void incrementallyRehash(void) {
1318 int j;
1319
1320 for (j = 0; j < server.dbnum; j++) {
1321 if (dictIsRehashing(server.db[j].dict)) {
1322 dictRehashMilliseconds(server.db[j].dict,1);
1323 break; /* already used our millisecond for this loop... */
1324 }
1325 }
1326 }
1327
1328 /* A background saving child (BGSAVE) terminated its work. Handle this. */
1329 void backgroundSaveDoneHandler(int statloc) {
1330 int exitcode = WEXITSTATUS(statloc);
1331 int bysignal = WIFSIGNALED(statloc);
1332
1333 if (!bysignal && exitcode == 0) {
1334 redisLog(REDIS_NOTICE,
1335 "Background saving terminated with success");
1336 server.dirty = 0;
1337 server.lastsave = time(NULL);
1338 } else if (!bysignal && exitcode != 0) {
1339 redisLog(REDIS_WARNING, "Background saving error");
1340 } else {
1341 redisLog(REDIS_WARNING,
1342 "Background saving terminated by signal %d", WTERMSIG(statloc));
1343 rdbRemoveTempFile(server.bgsavechildpid);
1344 }
1345 server.bgsavechildpid = -1;
1346 /* Possibly there are slaves waiting for a BGSAVE in order to be served
1347 * (the first stage of SYNC is a bulk transfer of dump.rdb) */
1348 updateSlavesWaitingBgsave(exitcode == 0 ? REDIS_OK : REDIS_ERR);
1349 }
1350
1351 /* A background append only file rewriting (BGREWRITEAOF) terminated its work.
1352 * Handle this. */
1353 void backgroundRewriteDoneHandler(int statloc) {
1354 int exitcode = WEXITSTATUS(statloc);
1355 int bysignal = WIFSIGNALED(statloc);
1356
1357 if (!bysignal && exitcode == 0) {
1358 int fd;
1359 char tmpfile[256];
1360
1361 redisLog(REDIS_NOTICE,
1362 "Background append only file rewriting terminated with success");
1363 /* Now it's time to flush the differences accumulated by the parent */
1364 snprintf(tmpfile,256,"temp-rewriteaof-bg-%d.aof", (int) server.bgrewritechildpid);
1365 fd = open(tmpfile,O_WRONLY|O_APPEND);
1366 if (fd == -1) {
1367 redisLog(REDIS_WARNING, "Not able to open the temp append only file produced by the child: %s", strerror(errno));
1368 goto cleanup;
1369 }
1370 /* Flush our data... */
1371 if (write(fd,server.bgrewritebuf,sdslen(server.bgrewritebuf)) !=
1372 (signed) sdslen(server.bgrewritebuf)) {
1373 redisLog(REDIS_WARNING, "Error or short write trying to flush the parent diff of the append log file in the child temp file: %s", strerror(errno));
1374 close(fd);
1375 goto cleanup;
1376 }
1377 redisLog(REDIS_NOTICE,"Parent diff flushed into the new append log file with success (%lu bytes)",sdslen(server.bgrewritebuf));
1378 /* Now our work is to rename the temp file into the stable file. And
1379 * switch the file descriptor used by the server for append only. */
1380 if (rename(tmpfile,server.appendfilename) == -1) {
1381 redisLog(REDIS_WARNING,"Can't rename the temp append only file into the stable one: %s", strerror(errno));
1382 close(fd);
1383 goto cleanup;
1384 }
1385 /* Mission completed... almost */
1386 redisLog(REDIS_NOTICE,"Append only file successfully rewritten.");
1387 if (server.appendfd != -1) {
1388 /* If append only is actually enabled... */
1389 close(server.appendfd);
1390 server.appendfd = fd;
1391 fsync(fd);
1392 server.appendseldb = -1; /* Make sure it will issue SELECT */
1393 redisLog(REDIS_NOTICE,"The new append only file was selected for future appends.");
1394 } else {
1395 /* If append only is disabled we just generate a dump in this
1396 * format. Why not? */
1397 close(fd);
1398 }
1399 } else if (!bysignal && exitcode != 0) {
1400 redisLog(REDIS_WARNING, "Background append only file rewriting error");
1401 } else {
1402 redisLog(REDIS_WARNING,
1403 "Background append only file rewriting terminated by signal %d",
1404 WTERMSIG(statloc));
1405 }
1406 cleanup:
1407 sdsfree(server.bgrewritebuf);
1408 server.bgrewritebuf = sdsempty();
1409 aofRemoveTempFile(server.bgrewritechildpid);
1410 server.bgrewritechildpid = -1;
1411 }
1412
1413 /* This function is called once a background process of some kind terminates,
1414 * as we want to avoid resizing the hash tables when there is a child in order
1415 * to play well with copy-on-write (otherwise when a resize happens lots of
1416 * memory pages are copied). The goal of this function is to update the ability
1417 * for dict.c to resize the hash tables accordingly to the fact we have o not
1418 * running childs. */
1419 static void updateDictResizePolicy(void) {
1420 if (server.bgsavechildpid == -1 && server.bgrewritechildpid == -1)
1421 dictEnableResize();
1422 else
1423 dictDisableResize();
1424 }
1425
1426 static int serverCron(struct aeEventLoop *eventLoop, long long id, void *clientData) {
1427 int j, loops = server.cronloops++;
1428 REDIS_NOTUSED(eventLoop);
1429 REDIS_NOTUSED(id);
1430 REDIS_NOTUSED(clientData);
1431
1432 /* We take a cached value of the unix time in the global state because
1433 * with virtual memory and aging there is to store the current time
1434 * in objects at every object access, and accuracy is not needed.
1435 * To access a global var is faster than calling time(NULL) */
1436 server.unixtime = time(NULL);
1437
1438 /* We received a SIGTERM, shutting down here in a safe way, as it is
1439 * not ok doing so inside the signal handler. */
1440 if (server.shutdown_asap) {
1441 if (prepareForShutdown() == REDIS_OK) exit(0);
1442 redisLog(REDIS_WARNING,"SIGTERM received but errors trying to shut down the server, check the logs for more information");
1443 }
1444
1445 /* Show some info about non-empty databases */
1446 for (j = 0; j < server.dbnum; j++) {
1447 long long size, used, vkeys;
1448
1449 size = dictSlots(server.db[j].dict);
1450 used = dictSize(server.db[j].dict);
1451 vkeys = dictSize(server.db[j].expires);
1452 if (!(loops % 50) && (used || vkeys)) {
1453 redisLog(REDIS_VERBOSE,"DB %d: %lld keys (%lld volatile) in %lld slots HT.",j,used,vkeys,size);
1454 /* dictPrintStats(server.dict); */
1455 }
1456 }
1457
1458 /* We don't want to resize the hash tables while a bacground saving
1459 * is in progress: the saving child is created using fork() that is
1460 * implemented with a copy-on-write semantic in most modern systems, so
1461 * if we resize the HT while there is the saving child at work actually
1462 * a lot of memory movements in the parent will cause a lot of pages
1463 * copied. */
1464 if (server.bgsavechildpid == -1 && server.bgrewritechildpid == -1) {
1465 if (!(loops % 10)) tryResizeHashTables();
1466 if (server.activerehashing) incrementallyRehash();
1467 }
1468
1469 /* Show information about connected clients */
1470 if (!(loops % 50)) {
1471 redisLog(REDIS_VERBOSE,"%d clients connected (%d slaves), %zu bytes in use",
1472 listLength(server.clients)-listLength(server.slaves),
1473 listLength(server.slaves),
1474 zmalloc_used_memory());
1475 }
1476
1477 /* Close connections of timedout clients */
1478 if ((server.maxidletime && !(loops % 100)) || server.blpop_blocked_clients)
1479 closeTimedoutClients();
1480
1481 /* Check if a background saving or AOF rewrite in progress terminated */
1482 if (server.bgsavechildpid != -1 || server.bgrewritechildpid != -1) {
1483 int statloc;
1484 pid_t pid;
1485
1486 if ((pid = wait3(&statloc,WNOHANG,NULL)) != 0) {
1487 if (pid == server.bgsavechildpid) {
1488 backgroundSaveDoneHandler(statloc);
1489 } else {
1490 backgroundRewriteDoneHandler(statloc);
1491 }
1492 updateDictResizePolicy();
1493 }
1494 } else {
1495 /* If there is not a background saving in progress check if
1496 * we have to save now */
1497 time_t now = time(NULL);
1498 for (j = 0; j < server.saveparamslen; j++) {
1499 struct saveparam *sp = server.saveparams+j;
1500
1501 if (server.dirty >= sp->changes &&
1502 now-server.lastsave > sp->seconds) {
1503 redisLog(REDIS_NOTICE,"%d changes in %d seconds. Saving...",
1504 sp->changes, sp->seconds);
1505 rdbSaveBackground(server.dbfilename);
1506 break;
1507 }
1508 }
1509 }
1510
1511 /* Try to expire a few timed out keys. The algorithm used is adaptive and
1512 * will use few CPU cycles if there are few expiring keys, otherwise
1513 * it will get more aggressive to avoid that too much memory is used by
1514 * keys that can be removed from the keyspace. */
1515 for (j = 0; j < server.dbnum; j++) {
1516 int expired;
1517 redisDb *db = server.db+j;
1518
1519 /* Continue to expire if at the end of the cycle more than 25%
1520 * of the keys were expired. */
1521 do {
1522 long num = dictSize(db->expires);
1523 time_t now = time(NULL);
1524
1525 expired = 0;
1526 if (num > REDIS_EXPIRELOOKUPS_PER_CRON)
1527 num = REDIS_EXPIRELOOKUPS_PER_CRON;
1528 while (num--) {
1529 dictEntry *de;
1530 time_t t;
1531
1532 if ((de = dictGetRandomKey(db->expires)) == NULL) break;
1533 t = (time_t) dictGetEntryVal(de);
1534 if (now > t) {
1535 deleteKey(db,dictGetEntryKey(de));
1536 expired++;
1537 server.stat_expiredkeys++;
1538 }
1539 }
1540 } while (expired > REDIS_EXPIRELOOKUPS_PER_CRON/4);
1541 }
1542
1543 /* Swap a few keys on disk if we are over the memory limit and VM
1544 * is enbled. Try to free objects from the free list first. */
1545 if (vmCanSwapOut()) {
1546 while (server.vm_enabled && zmalloc_used_memory() >
1547 server.vm_max_memory)
1548 {
1549 int retval;
1550
1551 if (tryFreeOneObjectFromFreelist() == REDIS_OK) continue;
1552 retval = (server.vm_max_threads == 0) ?
1553 vmSwapOneObjectBlocking() :
1554 vmSwapOneObjectThreaded();
1555 if (retval == REDIS_ERR && !(loops % 300) &&
1556 zmalloc_used_memory() >
1557 (server.vm_max_memory+server.vm_max_memory/10))
1558 {
1559 redisLog(REDIS_WARNING,"WARNING: vm-max-memory limit exceeded by more than 10%% but unable to swap more objects out!");
1560 }
1561 /* Note that when using threade I/O we free just one object,
1562 * because anyway when the I/O thread in charge to swap this
1563 * object out will finish, the handler of completed jobs
1564 * will try to swap more objects if we are still out of memory. */
1565 if (retval == REDIS_ERR || server.vm_max_threads > 0) break;
1566 }
1567 }
1568
1569 /* Check if we should connect to a MASTER */
1570 if (server.replstate == REDIS_REPL_CONNECT && !(loops % 10)) {
1571 redisLog(REDIS_NOTICE,"Connecting to MASTER...");
1572 if (syncWithMaster() == REDIS_OK) {
1573 redisLog(REDIS_NOTICE,"MASTER <-> SLAVE sync succeeded");
1574 if (server.appendonly) rewriteAppendOnlyFileBackground();
1575 }
1576 }
1577 return 100;
1578 }
1579
1580 /* This function gets called every time Redis is entering the
1581 * main loop of the event driven library, that is, before to sleep
1582 * for ready file descriptors. */
1583 static void beforeSleep(struct aeEventLoop *eventLoop) {
1584 REDIS_NOTUSED(eventLoop);
1585
1586 /* Awake clients that got all the swapped keys they requested */
1587 if (server.vm_enabled && listLength(server.io_ready_clients)) {
1588 listIter li;
1589 listNode *ln;
1590
1591 listRewind(server.io_ready_clients,&li);
1592 while((ln = listNext(&li))) {
1593 redisClient *c = ln->value;
1594 struct redisCommand *cmd;
1595
1596 /* Resume the client. */
1597 listDelNode(server.io_ready_clients,ln);
1598 c->flags &= (~REDIS_IO_WAIT);
1599 server.vm_blocked_clients--;
1600 aeCreateFileEvent(server.el, c->fd, AE_READABLE,
1601 readQueryFromClient, c);
1602 cmd = lookupCommand(c->argv[0]->ptr);
1603 assert(cmd != NULL);
1604 call(c,cmd);
1605 resetClient(c);
1606 /* There may be more data to process in the input buffer. */
1607 if (c->querybuf && sdslen(c->querybuf) > 0)
1608 processInputBuffer(c);
1609 }
1610 }
1611 /* Write the AOF buffer on disk */
1612 flushAppendOnlyFile();
1613 }
1614
1615 static void createSharedObjects(void) {
1616 int j;
1617
1618 shared.crlf = createObject(REDIS_STRING,sdsnew("\r\n"));
1619 shared.ok = createObject(REDIS_STRING,sdsnew("+OK\r\n"));
1620 shared.err = createObject(REDIS_STRING,sdsnew("-ERR\r\n"));
1621 shared.emptybulk = createObject(REDIS_STRING,sdsnew("$0\r\n\r\n"));
1622 shared.czero = createObject(REDIS_STRING,sdsnew(":0\r\n"));
1623 shared.cone = createObject(REDIS_STRING,sdsnew(":1\r\n"));
1624 shared.nullbulk = createObject(REDIS_STRING,sdsnew("$-1\r\n"));
1625 shared.nullmultibulk = createObject(REDIS_STRING,sdsnew("*-1\r\n"));
1626 shared.emptymultibulk = createObject(REDIS_STRING,sdsnew("*0\r\n"));
1627 shared.pong = createObject(REDIS_STRING,sdsnew("+PONG\r\n"));
1628 shared.queued = createObject(REDIS_STRING,sdsnew("+QUEUED\r\n"));
1629 shared.wrongtypeerr = createObject(REDIS_STRING,sdsnew(
1630 "-ERR Operation against a key holding the wrong kind of value\r\n"));
1631 shared.nokeyerr = createObject(REDIS_STRING,sdsnew(
1632 "-ERR no such key\r\n"));
1633 shared.syntaxerr = createObject(REDIS_STRING,sdsnew(
1634 "-ERR syntax error\r\n"));
1635 shared.sameobjecterr = createObject(REDIS_STRING,sdsnew(
1636 "-ERR source and destination objects are the same\r\n"));
1637 shared.outofrangeerr = createObject(REDIS_STRING,sdsnew(
1638 "-ERR index out of range\r\n"));
1639 shared.space = createObject(REDIS_STRING,sdsnew(" "));
1640 shared.colon = createObject(REDIS_STRING,sdsnew(":"));
1641 shared.plus = createObject(REDIS_STRING,sdsnew("+"));
1642 shared.select0 = createStringObject("select 0\r\n",10);
1643 shared.select1 = createStringObject("select 1\r\n",10);
1644 shared.select2 = createStringObject("select 2\r\n",10);
1645 shared.select3 = createStringObject("select 3\r\n",10);
1646 shared.select4 = createStringObject("select 4\r\n",10);
1647 shared.select5 = createStringObject("select 5\r\n",10);
1648 shared.select6 = createStringObject("select 6\r\n",10);
1649 shared.select7 = createStringObject("select 7\r\n",10);
1650 shared.select8 = createStringObject("select 8\r\n",10);
1651 shared.select9 = createStringObject("select 9\r\n",10);
1652 shared.messagebulk = createStringObject("$7\r\nmessage\r\n",13);
1653 shared.pmessagebulk = createStringObject("$8\r\npmessage\r\n",14);
1654 shared.subscribebulk = createStringObject("$9\r\nsubscribe\r\n",15);
1655 shared.unsubscribebulk = createStringObject("$11\r\nunsubscribe\r\n",18);
1656 shared.psubscribebulk = createStringObject("$10\r\npsubscribe\r\n",17);
1657 shared.punsubscribebulk = createStringObject("$12\r\npunsubscribe\r\n",19);
1658 shared.mbulk3 = createStringObject("*3\r\n",4);
1659 shared.mbulk4 = createStringObject("*4\r\n",4);
1660 for (j = 0; j < REDIS_SHARED_INTEGERS; j++) {
1661 shared.integers[j] = createObject(REDIS_STRING,(void*)(long)j);
1662 shared.integers[j]->encoding = REDIS_ENCODING_INT;
1663 }
1664 }
1665
1666 static void appendServerSaveParams(time_t seconds, int changes) {
1667 server.saveparams = zrealloc(server.saveparams,sizeof(struct saveparam)*(server.saveparamslen+1));
1668 server.saveparams[server.saveparamslen].seconds = seconds;
1669 server.saveparams[server.saveparamslen].changes = changes;
1670 server.saveparamslen++;
1671 }
1672
1673 static void resetServerSaveParams() {
1674 zfree(server.saveparams);
1675 server.saveparams = NULL;
1676 server.saveparamslen = 0;
1677 }
1678
1679 static void initServerConfig() {
1680 server.dbnum = REDIS_DEFAULT_DBNUM;
1681 server.port = REDIS_SERVERPORT;
1682 server.verbosity = REDIS_VERBOSE;
1683 server.maxidletime = REDIS_MAXIDLETIME;
1684 server.saveparams = NULL;
1685 server.logfile = NULL; /* NULL = log on standard output */
1686 server.bindaddr = NULL;
1687 server.glueoutputbuf = 1;
1688 server.daemonize = 0;
1689 server.appendonly = 0;
1690 server.appendfsync = APPENDFSYNC_EVERYSEC;
1691 server.lastfsync = time(NULL);
1692 server.appendfd = -1;
1693 server.appendseldb = -1; /* Make sure the first time will not match */
1694 server.pidfile = zstrdup("/var/run/redis.pid");
1695 server.dbfilename = zstrdup("dump.rdb");
1696 server.appendfilename = zstrdup("appendonly.aof");
1697 server.requirepass = NULL;
1698 server.rdbcompression = 1;
1699 server.activerehashing = 1;
1700 server.maxclients = 0;
1701 server.blpop_blocked_clients = 0;
1702 server.maxmemory = 0;
1703 server.vm_enabled = 0;
1704 server.vm_swap_file = zstrdup("/tmp/redis-%p.vm");
1705 server.vm_page_size = 256; /* 256 bytes per page */
1706 server.vm_pages = 1024*1024*100; /* 104 millions of pages */
1707 server.vm_max_memory = 1024LL*1024*1024*1; /* 1 GB of RAM */
1708 server.vm_max_threads = 4;
1709 server.vm_blocked_clients = 0;
1710 server.hash_max_zipmap_entries = REDIS_HASH_MAX_ZIPMAP_ENTRIES;
1711 server.hash_max_zipmap_value = REDIS_HASH_MAX_ZIPMAP_VALUE;
1712 server.shutdown_asap = 0;
1713
1714 resetServerSaveParams();
1715
1716 appendServerSaveParams(60*60,1); /* save after 1 hour and 1 change */
1717 appendServerSaveParams(300,100); /* save after 5 minutes and 100 changes */
1718 appendServerSaveParams(60,10000); /* save after 1 minute and 10000 changes */
1719 /* Replication related */
1720 server.isslave = 0;
1721 server.masterauth = NULL;
1722 server.masterhost = NULL;
1723 server.masterport = 6379;
1724 server.master = NULL;
1725 server.replstate = REDIS_REPL_NONE;
1726
1727 /* Double constants initialization */
1728 R_Zero = 0.0;
1729 R_PosInf = 1.0/R_Zero;
1730 R_NegInf = -1.0/R_Zero;
1731 R_Nan = R_Zero/R_Zero;
1732 }
1733
1734 static void initServer() {
1735 int j;
1736
1737 signal(SIGHUP, SIG_IGN);
1738 signal(SIGPIPE, SIG_IGN);
1739 setupSigSegvAction();
1740
1741 server.devnull = fopen("/dev/null","w");
1742 if (server.devnull == NULL) {
1743 redisLog(REDIS_WARNING, "Can't open /dev/null: %s", server.neterr);
1744 exit(1);
1745 }
1746 server.clients = listCreate();
1747 server.slaves = listCreate();
1748 server.monitors = listCreate();
1749 server.objfreelist = listCreate();
1750 createSharedObjects();
1751 server.el = aeCreateEventLoop();
1752 server.db = zmalloc(sizeof(redisDb)*server.dbnum);
1753 server.fd = anetTcpServer(server.neterr, server.port, server.bindaddr);
1754 if (server.fd == -1) {
1755 redisLog(REDIS_WARNING, "Opening TCP port: %s", server.neterr);
1756 exit(1);
1757 }
1758 for (j = 0; j < server.dbnum; j++) {
1759 server.db[j].dict = dictCreate(&dbDictType,NULL);
1760 server.db[j].expires = dictCreate(&keyptrDictType,NULL);
1761 server.db[j].blocking_keys = dictCreate(&keylistDictType,NULL);
1762 server.db[j].watched_keys = dictCreate(&keylistDictType,NULL);
1763 if (server.vm_enabled)
1764 server.db[j].io_keys = dictCreate(&keylistDictType,NULL);
1765 server.db[j].id = j;
1766 }
1767 server.pubsub_channels = dictCreate(&keylistDictType,NULL);
1768 server.pubsub_patterns = listCreate();
1769 listSetFreeMethod(server.pubsub_patterns,freePubsubPattern);
1770 listSetMatchMethod(server.pubsub_patterns,listMatchPubsubPattern);
1771 server.cronloops = 0;
1772 server.bgsavechildpid = -1;
1773 server.bgrewritechildpid = -1;
1774 server.bgrewritebuf = sdsempty();
1775 server.aofbuf = sdsempty();
1776 server.lastsave = time(NULL);
1777 server.dirty = 0;
1778 server.stat_numcommands = 0;
1779 server.stat_numconnections = 0;
1780 server.stat_expiredkeys = 0;
1781 server.stat_starttime = time(NULL);
1782 server.unixtime = time(NULL);
1783 aeCreateTimeEvent(server.el, 1, serverCron, NULL, NULL);
1784 if (aeCreateFileEvent(server.el, server.fd, AE_READABLE,
1785 acceptHandler, NULL) == AE_ERR) oom("creating file event");
1786
1787 if (server.appendonly) {
1788 server.appendfd = open(server.appendfilename,O_WRONLY|O_APPEND|O_CREAT,0644);
1789 if (server.appendfd == -1) {
1790 redisLog(REDIS_WARNING, "Can't open the append-only file: %s",
1791 strerror(errno));
1792 exit(1);
1793 }
1794 }
1795
1796 if (server.vm_enabled) vmInit();
1797 }
1798
1799 /* Empty the whole database */
1800 static long long emptyDb() {
1801 int j;
1802 long long removed = 0;
1803
1804 for (j = 0; j < server.dbnum; j++) {
1805 removed += dictSize(server.db[j].dict);
1806 dictEmpty(server.db[j].dict);
1807 dictEmpty(server.db[j].expires);
1808 }
1809 return removed;
1810 }
1811
1812 static int yesnotoi(char *s) {
1813 if (!strcasecmp(s,"yes")) return 1;
1814 else if (!strcasecmp(s,"no")) return 0;
1815 else return -1;
1816 }
1817
1818 /* I agree, this is a very rudimental way to load a configuration...
1819 will improve later if the config gets more complex */
1820 static void loadServerConfig(char *filename) {
1821 FILE *fp;
1822 char buf[REDIS_CONFIGLINE_MAX+1], *err = NULL;
1823 int linenum = 0;
1824 sds line = NULL;
1825
1826 if (filename[0] == '-' && filename[1] == '\0')
1827 fp = stdin;
1828 else {
1829 if ((fp = fopen(filename,"r")) == NULL) {
1830 redisLog(REDIS_WARNING, "Fatal error, can't open config file '%s'", filename);
1831 exit(1);
1832 }
1833 }
1834
1835 while(fgets(buf,REDIS_CONFIGLINE_MAX+1,fp) != NULL) {
1836 sds *argv;
1837 int argc, j;
1838
1839 linenum++;
1840 line = sdsnew(buf);
1841 line = sdstrim(line," \t\r\n");
1842
1843 /* Skip comments and blank lines*/
1844 if (line[0] == '#' || line[0] == '\0') {
1845 sdsfree(line);
1846 continue;
1847 }
1848
1849 /* Split into arguments */
1850 argv = sdssplitlen(line,sdslen(line)," ",1,&argc);
1851 sdstolower(argv[0]);
1852
1853 /* Execute config directives */
1854 if (!strcasecmp(argv[0],"timeout") && argc == 2) {
1855 server.maxidletime = atoi(argv[1]);
1856 if (server.maxidletime < 0) {
1857 err = "Invalid timeout value"; goto loaderr;
1858 }
1859 } else if (!strcasecmp(argv[0],"port") && argc == 2) {
1860 server.port = atoi(argv[1]);
1861 if (server.port < 1 || server.port > 65535) {
1862 err = "Invalid port"; goto loaderr;
1863 }
1864 } else if (!strcasecmp(argv[0],"bind") && argc == 2) {
1865 server.bindaddr = zstrdup(argv[1]);
1866 } else if (!strcasecmp(argv[0],"save") && argc == 3) {
1867 int seconds = atoi(argv[1]);
1868 int changes = atoi(argv[2]);
1869 if (seconds < 1 || changes < 0) {
1870 err = "Invalid save parameters"; goto loaderr;
1871 }
1872 appendServerSaveParams(seconds,changes);
1873 } else if (!strcasecmp(argv[0],"dir") && argc == 2) {
1874 if (chdir(argv[1]) == -1) {
1875 redisLog(REDIS_WARNING,"Can't chdir to '%s': %s",
1876 argv[1], strerror(errno));
1877 exit(1);
1878 }
1879 } else if (!strcasecmp(argv[0],"loglevel") && argc == 2) {
1880 if (!strcasecmp(argv[1],"debug")) server.verbosity = REDIS_DEBUG;
1881 else if (!strcasecmp(argv[1],"verbose")) server.verbosity = REDIS_VERBOSE;
1882 else if (!strcasecmp(argv[1],"notice")) server.verbosity = REDIS_NOTICE;
1883 else if (!strcasecmp(argv[1],"warning")) server.verbosity = REDIS_WARNING;
1884 else {
1885 err = "Invalid log level. Must be one of debug, notice, warning";
1886 goto loaderr;
1887 }
1888 } else if (!strcasecmp(argv[0],"logfile") && argc == 2) {
1889 FILE *logfp;
1890
1891 server.logfile = zstrdup(argv[1]);
1892 if (!strcasecmp(server.logfile,"stdout")) {
1893 zfree(server.logfile);
1894 server.logfile = NULL;
1895 }
1896 if (server.logfile) {
1897 /* Test if we are able to open the file. The server will not
1898 * be able to abort just for this problem later... */
1899 logfp = fopen(server.logfile,"a");
1900 if (logfp == NULL) {
1901 err = sdscatprintf(sdsempty(),
1902 "Can't open the log file: %s", strerror(errno));
1903 goto loaderr;
1904 }
1905 fclose(logfp);
1906 }
1907 } else if (!strcasecmp(argv[0],"databases") && argc == 2) {
1908 server.dbnum = atoi(argv[1]);
1909 if (server.dbnum < 1) {
1910 err = "Invalid number of databases"; goto loaderr;
1911 }
1912 } else if (!strcasecmp(argv[0],"include") && argc == 2) {
1913 loadServerConfig(argv[1]);
1914 } else if (!strcasecmp(argv[0],"maxclients") && argc == 2) {
1915 server.maxclients = atoi(argv[1]);
1916 } else if (!strcasecmp(argv[0],"maxmemory") && argc == 2) {
1917 server.maxmemory = memtoll(argv[1],NULL);
1918 } else if (!strcasecmp(argv[0],"slaveof") && argc == 3) {
1919 server.masterhost = sdsnew(argv[1]);
1920 server.masterport = atoi(argv[2]);
1921 server.replstate = REDIS_REPL_CONNECT;
1922 } else if (!strcasecmp(argv[0],"masterauth") && argc == 2) {
1923 server.masterauth = zstrdup(argv[1]);
1924 } else if (!strcasecmp(argv[0],"glueoutputbuf") && argc == 2) {
1925 if ((server.glueoutputbuf = yesnotoi(argv[1])) == -1) {
1926 err = "argument must be 'yes' or 'no'"; goto loaderr;
1927 }
1928 } else if (!strcasecmp(argv[0],"rdbcompression") && argc == 2) {
1929 if ((server.rdbcompression = yesnotoi(argv[1])) == -1) {
1930 err = "argument must be 'yes' or 'no'"; goto loaderr;
1931 }
1932 } else if (!strcasecmp(argv[0],"activerehashing") && argc == 2) {
1933 if ((server.activerehashing = yesnotoi(argv[1])) == -1) {
1934 err = "argument must be 'yes' or 'no'"; goto loaderr;
1935 }
1936 } else if (!strcasecmp(argv[0],"daemonize") && argc == 2) {
1937 if ((server.daemonize = yesnotoi(argv[1])) == -1) {
1938 err = "argument must be 'yes' or 'no'"; goto loaderr;
1939 }
1940 } else if (!strcasecmp(argv[0],"appendonly") && argc == 2) {
1941 if ((server.appendonly = yesnotoi(argv[1])) == -1) {
1942 err = "argument must be 'yes' or 'no'"; goto loaderr;
1943 }
1944 } else if (!strcasecmp(argv[0],"appendfilename") && argc == 2) {
1945 zfree(server.appendfilename);
1946 server.appendfilename = zstrdup(argv[1]);
1947 } else if (!strcasecmp(argv[0],"appendfsync") && argc == 2) {
1948 if (!strcasecmp(argv[1],"no")) {
1949 server.appendfsync = APPENDFSYNC_NO;
1950 } else if (!strcasecmp(argv[1],"always")) {
1951 server.appendfsync = APPENDFSYNC_ALWAYS;
1952 } else if (!strcasecmp(argv[1],"everysec")) {
1953 server.appendfsync = APPENDFSYNC_EVERYSEC;
1954 } else {
1955 err = "argument must be 'no', 'always' or 'everysec'";
1956 goto loaderr;
1957 }
1958 } else if (!strcasecmp(argv[0],"requirepass") && argc == 2) {
1959 server.requirepass = zstrdup(argv[1]);
1960 } else if (!strcasecmp(argv[0],"pidfile") && argc == 2) {
1961 zfree(server.pidfile);
1962 server.pidfile = zstrdup(argv[1]);
1963 } else if (!strcasecmp(argv[0],"dbfilename") && argc == 2) {
1964 zfree(server.dbfilename);
1965 server.dbfilename = zstrdup(argv[1]);
1966 } else if (!strcasecmp(argv[0],"vm-enabled") && argc == 2) {
1967 if ((server.vm_enabled = yesnotoi(argv[1])) == -1) {
1968 err = "argument must be 'yes' or 'no'"; goto loaderr;
1969 }
1970 } else if (!strcasecmp(argv[0],"vm-swap-file") && argc == 2) {
1971 zfree(server.vm_swap_file);
1972 server.vm_swap_file = zstrdup(argv[1]);
1973 } else if (!strcasecmp(argv[0],"vm-max-memory") && argc == 2) {
1974 server.vm_max_memory = memtoll(argv[1],NULL);
1975 } else if (!strcasecmp(argv[0],"vm-page-size") && argc == 2) {
1976 server.vm_page_size = memtoll(argv[1], NULL);
1977 } else if (!strcasecmp(argv[0],"vm-pages") && argc == 2) {
1978 server.vm_pages = memtoll(argv[1], NULL);
1979 } else if (!strcasecmp(argv[0],"vm-max-threads") && argc == 2) {
1980 server.vm_max_threads = strtoll(argv[1], NULL, 10);
1981 } else if (!strcasecmp(argv[0],"hash-max-zipmap-entries") && argc == 2){
1982 server.hash_max_zipmap_entries = memtoll(argv[1], NULL);
1983 } else if (!strcasecmp(argv[0],"hash-max-zipmap-value") && argc == 2){
1984 server.hash_max_zipmap_value = memtoll(argv[1], NULL);
1985 } else {
1986 err = "Bad directive or wrong number of arguments"; goto loaderr;
1987 }
1988 for (j = 0; j < argc; j++)
1989 sdsfree(argv[j]);
1990 zfree(argv);
1991 sdsfree(line);
1992 }
1993 if (fp != stdin) fclose(fp);
1994 return;
1995
1996 loaderr:
1997 fprintf(stderr, "\n*** FATAL CONFIG FILE ERROR ***\n");
1998 fprintf(stderr, "Reading the configuration file, at line %d\n", linenum);
1999 fprintf(stderr, ">>> '%s'\n", line);
2000 fprintf(stderr, "%s\n", err);
2001 exit(1);
2002 }
2003
2004 static void freeClientArgv(redisClient *c) {
2005 int j;
2006
2007 for (j = 0; j < c->argc; j++)
2008 decrRefCount(c->argv[j]);
2009 for (j = 0; j < c->mbargc; j++)
2010 decrRefCount(c->mbargv[j]);
2011 c->argc = 0;
2012 c->mbargc = 0;
2013 }
2014
2015 static void freeClient(redisClient *c) {
2016 listNode *ln;
2017
2018 /* Note that if the client we are freeing is blocked into a blocking
2019 * call, we have to set querybuf to NULL *before* to call
2020 * unblockClientWaitingData() to avoid processInputBuffer() will get
2021 * called. Also it is important to remove the file events after
2022 * this, because this call adds the READABLE event. */
2023 sdsfree(c->querybuf);
2024 c->querybuf = NULL;
2025 if (c->flags & REDIS_BLOCKED)
2026 unblockClientWaitingData(c);
2027
2028 /* UNWATCH all the keys */
2029 unwatchAllKeys(c);
2030 listRelease(c->watched_keys);
2031 /* Unsubscribe from all the pubsub channels */
2032 pubsubUnsubscribeAllChannels(c,0);
2033 pubsubUnsubscribeAllPatterns(c,0);
2034 dictRelease(c->pubsub_channels);
2035 listRelease(c->pubsub_patterns);
2036 /* Obvious cleanup */
2037 aeDeleteFileEvent(server.el,c->fd,AE_READABLE);
2038 aeDeleteFileEvent(server.el,c->fd,AE_WRITABLE);
2039 listRelease(c->reply);
2040 freeClientArgv(c);
2041 close(c->fd);
2042 /* Remove from the list of clients */
2043 ln = listSearchKey(server.clients,c);
2044 redisAssert(ln != NULL);
2045 listDelNode(server.clients,ln);
2046 /* Remove from the list of clients that are now ready to be restarted
2047 * after waiting for swapped keys */
2048 if (c->flags & REDIS_IO_WAIT && listLength(c->io_keys) == 0) {
2049 ln = listSearchKey(server.io_ready_clients,c);
2050 if (ln) {
2051 listDelNode(server.io_ready_clients,ln);
2052 server.vm_blocked_clients--;
2053 }
2054 }
2055 /* Remove from the list of clients waiting for swapped keys */
2056 while (server.vm_enabled && listLength(c->io_keys)) {
2057 ln = listFirst(c->io_keys);
2058 dontWaitForSwappedKey(c,ln->value);
2059 }
2060 listRelease(c->io_keys);
2061 /* Master/slave cleanup */
2062 if (c->flags & REDIS_SLAVE) {
2063 if (c->replstate == REDIS_REPL_SEND_BULK && c->repldbfd != -1)
2064 close(c->repldbfd);
2065 list *l = (c->flags & REDIS_MONITOR) ? server.monitors : server.slaves;
2066 ln = listSearchKey(l,c);
2067 redisAssert(ln != NULL);
2068 listDelNode(l,ln);
2069 }
2070 if (c->flags & REDIS_MASTER) {
2071 server.master = NULL;
2072 server.replstate = REDIS_REPL_CONNECT;
2073 }
2074 /* Release memory */
2075 zfree(c->argv);
2076 zfree(c->mbargv);
2077 freeClientMultiState(c);
2078 zfree(c);
2079 }
2080
2081 #define GLUEREPLY_UP_TO (1024)
2082 static void glueReplyBuffersIfNeeded(redisClient *c) {
2083 int copylen = 0;
2084 char buf[GLUEREPLY_UP_TO];
2085 listNode *ln;
2086 listIter li;
2087 robj *o;
2088
2089 listRewind(c->reply,&li);
2090 while((ln = listNext(&li))) {
2091 int objlen;
2092
2093 o = ln->value;
2094 objlen = sdslen(o->ptr);
2095 if (copylen + objlen <= GLUEREPLY_UP_TO) {
2096 memcpy(buf+copylen,o->ptr,objlen);
2097 copylen += objlen;
2098 listDelNode(c->reply,ln);
2099 } else {
2100 if (copylen == 0) return;
2101 break;
2102 }
2103 }
2104 /* Now the output buffer is empty, add the new single element */
2105 o = createObject(REDIS_STRING,sdsnewlen(buf,copylen));
2106 listAddNodeHead(c->reply,o);
2107 }
2108
2109 static void sendReplyToClient(aeEventLoop *el, int fd, void *privdata, int mask) {
2110 redisClient *c = privdata;
2111 int nwritten = 0, totwritten = 0, objlen;
2112 robj *o;
2113 REDIS_NOTUSED(el);
2114 REDIS_NOTUSED(mask);
2115
2116 /* Use writev() if we have enough buffers to send */
2117 if (!server.glueoutputbuf &&
2118 listLength(c->reply) > REDIS_WRITEV_THRESHOLD &&
2119 !(c->flags & REDIS_MASTER))
2120 {
2121 sendReplyToClientWritev(el, fd, privdata, mask);
2122 return;
2123 }
2124
2125 while(listLength(c->reply)) {
2126 if (server.glueoutputbuf && listLength(c->reply) > 1)
2127 glueReplyBuffersIfNeeded(c);
2128
2129 o = listNodeValue(listFirst(c->reply));
2130 objlen = sdslen(o->ptr);
2131
2132 if (objlen == 0) {
2133 listDelNode(c->reply,listFirst(c->reply));
2134 continue;
2135 }
2136
2137 if (c->flags & REDIS_MASTER) {
2138 /* Don't reply to a master */
2139 nwritten = objlen - c->sentlen;
2140 } else {
2141 nwritten = write(fd, ((char*)o->ptr)+c->sentlen, objlen - c->sentlen);
2142 if (nwritten <= 0) break;
2143 }
2144 c->sentlen += nwritten;
2145 totwritten += nwritten;
2146 /* If we fully sent the object on head go to the next one */
2147 if (c->sentlen == objlen) {
2148 listDelNode(c->reply,listFirst(c->reply));
2149 c->sentlen = 0;
2150 }
2151 /* Note that we avoid to send more thank REDIS_MAX_WRITE_PER_EVENT
2152 * bytes, in a single threaded server it's a good idea to serve
2153 * other clients as well, even if a very large request comes from
2154 * super fast link that is always able to accept data (in real world
2155 * scenario think about 'KEYS *' against the loopback interfae) */
2156 if (totwritten > REDIS_MAX_WRITE_PER_EVENT) break;
2157 }
2158 if (nwritten == -1) {
2159 if (errno == EAGAIN) {
2160 nwritten = 0;
2161 } else {
2162 redisLog(REDIS_VERBOSE,
2163 "Error writing to client: %s", strerror(errno));
2164 freeClient(c);
2165 return;
2166 }
2167 }
2168 if (totwritten > 0) c->lastinteraction = time(NULL);
2169 if (listLength(c->reply) == 0) {
2170 c->sentlen = 0;
2171 aeDeleteFileEvent(server.el,c->fd,AE_WRITABLE);
2172 }
2173 }
2174
2175 static void sendReplyToClientWritev(aeEventLoop *el, int fd, void *privdata, int mask)
2176 {
2177 redisClient *c = privdata;
2178 int nwritten = 0, totwritten = 0, objlen, willwrite;
2179 robj *o;
2180 struct iovec iov[REDIS_WRITEV_IOVEC_COUNT];
2181 int offset, ion = 0;
2182 REDIS_NOTUSED(el);
2183 REDIS_NOTUSED(mask);
2184
2185 listNode *node;
2186 while (listLength(c->reply)) {
2187 offset = c->sentlen;
2188 ion = 0;
2189 willwrite = 0;
2190
2191 /* fill-in the iov[] array */
2192 for(node = listFirst(c->reply); node; node = listNextNode(node)) {
2193 o = listNodeValue(node);
2194 objlen = sdslen(o->ptr);
2195
2196 if (totwritten + objlen - offset > REDIS_MAX_WRITE_PER_EVENT)
2197 break;
2198
2199 if(ion == REDIS_WRITEV_IOVEC_COUNT)
2200 break; /* no more iovecs */
2201
2202 iov[ion].iov_base = ((char*)o->ptr) + offset;
2203 iov[ion].iov_len = objlen - offset;
2204 willwrite += objlen - offset;
2205 offset = 0; /* just for the first item */
2206 ion++;
2207 }
2208
2209 if(willwrite == 0)
2210 break;
2211
2212 /* write all collected blocks at once */
2213 if((nwritten = writev(fd, iov, ion)) < 0) {
2214 if (errno != EAGAIN) {
2215 redisLog(REDIS_VERBOSE,
2216 "Error writing to client: %s", strerror(errno));
2217 freeClient(c);
2218 return;
2219 }
2220 break;
2221 }
2222
2223 totwritten += nwritten;
2224 offset = c->sentlen;
2225
2226 /* remove written robjs from c->reply */
2227 while (nwritten && listLength(c->reply)) {
2228 o = listNodeValue(listFirst(c->reply));
2229 objlen = sdslen(o->ptr);
2230
2231 if(nwritten >= objlen - offset) {
2232 listDelNode(c->reply, listFirst(c->reply));
2233 nwritten -= objlen - offset;
2234 c->sentlen = 0;
2235 } else {
2236 /* partial write */
2237 c->sentlen += nwritten;
2238 break;
2239 }
2240 offset = 0;
2241 }
2242 }
2243
2244 if (totwritten > 0)
2245 c->lastinteraction = time(NULL);
2246
2247 if (listLength(c->reply) == 0) {
2248 c->sentlen = 0;
2249 aeDeleteFileEvent(server.el,c->fd,AE_WRITABLE);
2250 }
2251 }
2252
2253 static int qsortRedisCommands(const void *r1, const void *r2) {
2254 return strcasecmp(
2255 ((struct redisCommand*)r1)->name,
2256 ((struct redisCommand*)r2)->name);
2257 }
2258
2259 static void sortCommandTable() {
2260 /* Copy and sort the read-only version of the command table */
2261 commandTable = (struct redisCommand*)malloc(sizeof(readonlyCommandTable));
2262 memcpy(commandTable,readonlyCommandTable,sizeof(readonlyCommandTable));
2263 qsort(commandTable,
2264 sizeof(readonlyCommandTable)/sizeof(struct redisCommand),
2265 sizeof(struct redisCommand),qsortRedisCommands);
2266 }
2267
2268 static struct redisCommand *lookupCommand(char *name) {
2269 struct redisCommand tmp = {name,NULL,0,0,NULL,0,0,0};
2270 return bsearch(
2271 &tmp,
2272 commandTable,
2273 sizeof(readonlyCommandTable)/sizeof(struct redisCommand),
2274 sizeof(struct redisCommand),
2275 qsortRedisCommands);
2276 }
2277
2278 /* resetClient prepare the client to process the next command */
2279 static void resetClient(redisClient *c) {
2280 freeClientArgv(c);
2281 c->bulklen = -1;
2282 c->multibulk = 0;
2283 }
2284
2285 /* Call() is the core of Redis execution of a command */
2286 static void call(redisClient *c, struct redisCommand *cmd) {
2287 long long dirty;
2288
2289 dirty = server.dirty;
2290 cmd->proc(c);
2291 dirty = server.dirty-dirty;
2292
2293 if (server.appendonly && dirty)
2294 feedAppendOnlyFile(cmd,c->db->id,c->argv,c->argc);
2295 if ((dirty || cmd->flags & REDIS_CMD_FORCE_REPLICATION) &&
2296 listLength(server.slaves))
2297 replicationFeedSlaves(server.slaves,c->db->id,c->argv,c->argc);
2298 if (listLength(server.monitors))
2299 replicationFeedMonitors(server.monitors,c->db->id,c->argv,c->argc);
2300 server.stat_numcommands++;
2301 }
2302
2303 /* If this function gets called we already read a whole
2304 * command, argments are in the client argv/argc fields.
2305 * processCommand() execute the command or prepare the
2306 * server for a bulk read from the client.
2307 *
2308 * If 1 is returned the client is still alive and valid and
2309 * and other operations can be performed by the caller. Otherwise
2310 * if 0 is returned the client was destroied (i.e. after QUIT). */
2311 static int processCommand(redisClient *c) {
2312 struct redisCommand *cmd;
2313
2314 /* Free some memory if needed (maxmemory setting) */
2315 if (server.maxmemory) freeMemoryIfNeeded();
2316
2317 /* Handle the multi bulk command type. This is an alternative protocol
2318 * supported by Redis in order to receive commands that are composed of
2319 * multiple binary-safe "bulk" arguments. The latency of processing is
2320 * a bit higher but this allows things like multi-sets, so if this
2321 * protocol is used only for MSET and similar commands this is a big win. */
2322 if (c->multibulk == 0 && c->argc == 1 && ((char*)(c->argv[0]->ptr))[0] == '*') {
2323 c->multibulk = atoi(((char*)c->argv[0]->ptr)+1);
2324 if (c->multibulk <= 0) {
2325 resetClient(c);
2326 return 1;
2327 } else {
2328 decrRefCount(c->argv[c->argc-1]);
2329 c->argc--;
2330 return 1;
2331 }
2332 } else if (c->multibulk) {
2333 if (c->bulklen == -1) {
2334 if (((char*)c->argv[0]->ptr)[0] != '$') {
2335 addReplySds(c,sdsnew("-ERR multi bulk protocol error\r\n"));
2336 resetClient(c);
2337 return 1;
2338 } else {
2339 int bulklen = atoi(((char*)c->argv[0]->ptr)+1);
2340 decrRefCount(c->argv[0]);
2341 if (bulklen < 0 || bulklen > 1024*1024*1024) {
2342 c->argc--;
2343 addReplySds(c,sdsnew("-ERR invalid bulk write count\r\n"));
2344 resetClient(c);
2345 return 1;
2346 }
2347 c->argc--;
2348 c->bulklen = bulklen+2; /* add two bytes for CR+LF */
2349 return 1;
2350 }
2351 } else {
2352 c->mbargv = zrealloc(c->mbargv,(sizeof(robj*))*(c->mbargc+1));
2353 c->mbargv[c->mbargc] = c->argv[0];
2354 c->mbargc++;
2355 c->argc--;
2356 c->multibulk--;
2357 if (c->multibulk == 0) {
2358 robj **auxargv;
2359 int auxargc;
2360
2361 /* Here we need to swap the multi-bulk argc/argv with the
2362 * normal argc/argv of the client structure. */
2363 auxargv = c->argv;
2364 c->argv = c->mbargv;
2365 c->mbargv = auxargv;
2366
2367 auxargc = c->argc;
2368 c->argc = c->mbargc;
2369 c->mbargc = auxargc;
2370
2371 /* We need to set bulklen to something different than -1
2372 * in order for the code below to process the command without
2373 * to try to read the last argument of a bulk command as
2374 * a special argument. */
2375 c->bulklen = 0;
2376 /* continue below and process the command */
2377 } else {
2378 c->bulklen = -1;
2379 return 1;
2380 }
2381 }
2382 }
2383 /* -- end of multi bulk commands processing -- */
2384
2385 /* The QUIT command is handled as a special case. Normal command
2386 * procs are unable to close the client connection safely */
2387 if (!strcasecmp(c->argv[0]->ptr,"quit")) {
2388 freeClient(c);
2389 return 0;
2390 }
2391
2392 /* Now lookup the command and check ASAP about trivial error conditions
2393 * such wrong arity, bad command name and so forth. */
2394 cmd = lookupCommand(c->argv[0]->ptr);
2395 if (!cmd) {
2396 addReplySds(c,
2397 sdscatprintf(sdsempty(), "-ERR unknown command '%s'\r\n",
2398 (char*)c->argv[0]->ptr));
2399 resetClient(c);
2400 return 1;
2401 } else if ((cmd->arity > 0 && cmd->arity != c->argc) ||
2402 (c->argc < -cmd->arity)) {
2403 addReplySds(c,
2404 sdscatprintf(sdsempty(),
2405 "-ERR wrong number of arguments for '%s' command\r\n",
2406 cmd->name));
2407 resetClient(c);
2408 return 1;
2409 } else if (cmd->flags & REDIS_CMD_BULK && c->bulklen == -1) {
2410 /* This is a bulk command, we have to read the last argument yet. */
2411 int bulklen = atoi(c->argv[c->argc-1]->ptr);
2412
2413 decrRefCount(c->argv[c->argc-1]);
2414 if (bulklen < 0 || bulklen > 1024*1024*1024) {
2415 c->argc--;
2416 addReplySds(c,sdsnew("-ERR invalid bulk write count\r\n"));
2417 resetClient(c);
2418 return 1;
2419 }
2420 c->argc--;
2421 c->bulklen = bulklen+2; /* add two bytes for CR+LF */
2422 /* It is possible that the bulk read is already in the
2423 * buffer. Check this condition and handle it accordingly.
2424 * This is just a fast path, alternative to call processInputBuffer().
2425 * It's a good idea since the code is small and this condition
2426 * happens most of the times. */
2427 if ((signed)sdslen(c->querybuf) >= c->bulklen) {
2428 c->argv[c->argc] = createStringObject(c->querybuf,c->bulklen-2);
2429 c->argc++;
2430 c->querybuf = sdsrange(c->querybuf,c->bulklen,-1);
2431 } else {
2432 /* Otherwise return... there is to read the last argument
2433 * from the socket. */
2434 return 1;
2435 }
2436 }
2437 /* Let's try to encode the bulk object to save space. */
2438 if (cmd->flags & REDIS_CMD_BULK)
2439 c->argv[c->argc-1] = tryObjectEncoding(c->argv[c->argc-1]);
2440
2441 /* Check if the user is authenticated */
2442 if (server.requirepass && !c->authenticated && cmd->proc != authCommand) {
2443 addReplySds(c,sdsnew("-ERR operation not permitted\r\n"));
2444 resetClient(c);
2445 return 1;
2446 }
2447
2448 /* Handle the maxmemory directive */
2449 if (server.maxmemory && (cmd->flags & REDIS_CMD_DENYOOM) &&
2450 zmalloc_used_memory() > server.maxmemory)
2451 {
2452 addReplySds(c,sdsnew("-ERR command not allowed when used memory > 'maxmemory'\r\n"));
2453 resetClient(c);
2454 return 1;
2455 }
2456
2457 /* Only allow SUBSCRIBE and UNSUBSCRIBE in the context of Pub/Sub */
2458 if ((dictSize(c->pubsub_channels) > 0 || listLength(c->pubsub_patterns) > 0)
2459 &&
2460 cmd->proc != subscribeCommand && cmd->proc != unsubscribeCommand &&
2461 cmd->proc != psubscribeCommand && cmd->proc != punsubscribeCommand) {
2462 addReplySds(c,sdsnew("-ERR only (P)SUBSCRIBE / (P)UNSUBSCRIBE / QUIT allowed in this context\r\n"));
2463 resetClient(c);
2464 return 1;
2465 }
2466
2467 /* Exec the command */
2468 if (c->flags & REDIS_MULTI &&
2469 cmd->proc != execCommand && cmd->proc != discardCommand &&
2470 cmd->proc != multiCommand && cmd->proc != watchCommand)
2471 {
2472 queueMultiCommand(c,cmd);
2473 addReply(c,shared.queued);
2474 } else {
2475 if (server.vm_enabled && server.vm_max_threads > 0 &&
2476 blockClientOnSwappedKeys(c,cmd)) return 1;
2477 call(c,cmd);
2478 }
2479
2480 /* Prepare the client for the next command */
2481 resetClient(c);
2482 return 1;
2483 }
2484
2485 static void replicationFeedSlaves(list *slaves, int dictid, robj **argv, int argc) {
2486 listNode *ln;
2487 listIter li;
2488 int outc = 0, j;
2489 robj **outv;
2490 /* We need 1+(ARGS*3) objects since commands are using the new protocol
2491 * and we one 1 object for the first "*<count>\r\n" multibulk count, then
2492 * for every additional object we have "$<count>\r\n" + object + "\r\n". */
2493 robj *static_outv[REDIS_STATIC_ARGS*3+1];
2494 robj *lenobj;
2495
2496 if (argc <= REDIS_STATIC_ARGS) {
2497 outv = static_outv;
2498 } else {
2499 outv = zmalloc(sizeof(robj*)*(argc*3+1));
2500 }
2501
2502 lenobj = createObject(REDIS_STRING,
2503 sdscatprintf(sdsempty(), "*%d\r\n", argc));
2504 lenobj->refcount = 0;
2505 outv[outc++] = lenobj;
2506 for (j = 0; j < argc; j++) {
2507 lenobj = createObject(REDIS_STRING,
2508 sdscatprintf(sdsempty(),"$%lu\r\n",
2509 (unsigned long) stringObjectLen(argv[j])));
2510 lenobj->refcount = 0;
2511 outv[outc++] = lenobj;
2512 outv[outc++] = argv[j];
2513 outv[outc++] = shared.crlf;
2514 }
2515
2516 /* Increment all the refcounts at start and decrement at end in order to
2517 * be sure to free objects if there is no slave in a replication state
2518 * able to be feed with commands */
2519 for (j = 0; j < outc; j++) incrRefCount(outv[j]);
2520 listRewind(slaves,&li);
2521 while((ln = listNext(&li))) {
2522 redisClient *slave = ln->value;
2523
2524 /* Don't feed slaves that are still waiting for BGSAVE to start */
2525 if (slave->replstate == REDIS_REPL_WAIT_BGSAVE_START) continue;
2526
2527 /* Feed all the other slaves, MONITORs and so on */
2528 if (slave->slaveseldb != dictid) {
2529 robj *selectcmd;
2530
2531 switch(dictid) {
2532 case 0: selectcmd = shared.select0; break;
2533 case 1: selectcmd = shared.select1; break;
2534 case 2: selectcmd = shared.select2; break;
2535 case 3: selectcmd = shared.select3; break;
2536 case 4: selectcmd = shared.select4; break;
2537 case 5: selectcmd = shared.select5; break;
2538 case 6: selectcmd = shared.select6; break;
2539 case 7: selectcmd = shared.select7; break;
2540 case 8: selectcmd = shared.select8; break;
2541 case 9: selectcmd = shared.select9; break;
2542 default:
2543 selectcmd = createObject(REDIS_STRING,
2544 sdscatprintf(sdsempty(),"select %d\r\n",dictid));
2545 selectcmd->refcount = 0;
2546 break;
2547 }
2548 addReply(slave,selectcmd);
2549 slave->slaveseldb = dictid;
2550 }
2551 for (j = 0; j < outc; j++) addReply(slave,outv[j]);
2552 }
2553 for (j = 0; j < outc; j++) decrRefCount(outv[j]);
2554 if (outv != static_outv) zfree(outv);
2555 }
2556
2557 static sds sdscatrepr(sds s, char *p, size_t len) {
2558 s = sdscatlen(s,"\"",1);
2559 while(len--) {
2560 switch(*p) {
2561 case '\\':
2562 case '"':
2563 s = sdscatprintf(s,"\\%c",*p);
2564 break;
2565 case '\n': s = sdscatlen(s,"\\n",1); break;
2566 case '\r': s = sdscatlen(s,"\\r",1); break;
2567 case '\t': s = sdscatlen(s,"\\t",1); break;
2568 case '\a': s = sdscatlen(s,"\\a",1); break;
2569 case '\b': s = sdscatlen(s,"\\b",1); break;
2570 default:
2571 if (isprint(*p))
2572 s = sdscatprintf(s,"%c",*p);
2573 else
2574 s = sdscatprintf(s,"\\x%02x",(unsigned char)*p);
2575 break;
2576 }
2577 p++;
2578 }
2579 return sdscatlen(s,"\"",1);
2580 }
2581
2582 static void replicationFeedMonitors(list *monitors, int dictid, robj **argv, int argc) {
2583 listNode *ln;
2584 listIter li;
2585 int j;
2586 sds cmdrepr = sdsnew("+");
2587 robj *cmdobj;
2588 struct timeval tv;
2589
2590 gettimeofday(&tv,NULL);
2591 cmdrepr = sdscatprintf(cmdrepr,"%ld.%ld ",(long)tv.tv_sec,(long)tv.tv_usec);
2592 if (dictid != 0) cmdrepr = sdscatprintf(cmdrepr,"(db %d) ", dictid);
2593
2594 for (j = 0; j < argc; j++) {
2595 if (argv[j]->encoding == REDIS_ENCODING_INT) {
2596 cmdrepr = sdscatprintf(cmdrepr, "%ld", (long)argv[j]->ptr);
2597 } else {
2598 cmdrepr = sdscatrepr(cmdrepr,(char*)argv[j]->ptr,
2599 sdslen(argv[j]->ptr));
2600 }
2601 if (j != argc-1)
2602 cmdrepr = sdscatlen(cmdrepr," ",1);
2603 }
2604 cmdrepr = sdscatlen(cmdrepr,"\r\n",2);
2605 cmdobj = createObject(REDIS_STRING,cmdrepr);
2606
2607 listRewind(monitors,&li);
2608 while((ln = listNext(&li))) {
2609 redisClient *monitor = ln->value;
2610 addReply(monitor,cmdobj);
2611 }
2612 decrRefCount(cmdobj);
2613 }
2614
2615 static void processInputBuffer(redisClient *c) {
2616 again:
2617 /* Before to process the input buffer, make sure the client is not
2618 * waitig for a blocking operation such as BLPOP. Note that the first
2619 * iteration the client is never blocked, otherwise the processInputBuffer
2620 * would not be called at all, but after the execution of the first commands
2621 * in the input buffer the client may be blocked, and the "goto again"
2622 * will try to reiterate. The following line will make it return asap. */
2623 if (c->flags & REDIS_BLOCKED || c->flags & REDIS_IO_WAIT) return;
2624 if (c->bulklen == -1) {
2625 /* Read the first line of the query */
2626 char *p = strchr(c->querybuf,'\n');
2627 size_t querylen;
2628
2629 if (p) {
2630 sds query, *argv;
2631 int argc, j;
2632
2633 query = c->querybuf;
2634 c->querybuf = sdsempty();
2635 querylen = 1+(p-(query));
2636 if (sdslen(query) > querylen) {
2637 /* leave data after the first line of the query in the buffer */
2638 c->querybuf = sdscatlen(c->querybuf,query+querylen,sdslen(query)-querylen);
2639 }
2640 *p = '\0'; /* remove "\n" */
2641 if (*(p-1) == '\r') *(p-1) = '\0'; /* and "\r" if any */
2642 sdsupdatelen(query);
2643
2644 /* Now we can split the query in arguments */
2645 argv = sdssplitlen(query,sdslen(query)," ",1,&argc);
2646 sdsfree(query);
2647
2648 if (c->argv) zfree(c->argv);
2649 c->argv = zmalloc(sizeof(robj*)*argc);
2650
2651 for (j = 0; j < argc; j++) {
2652 if (sdslen(argv[j])) {
2653 c->argv[c->argc] = createObject(REDIS_STRING,argv[j]);
2654 c->argc++;
2655 } else {
2656 sdsfree(argv[j]);
2657 }
2658 }
2659 zfree(argv);
2660 if (c->argc) {
2661 /* Execute the command. If the client is still valid
2662 * after processCommand() return and there is something
2663 * on the query buffer try to process the next command. */
2664 if (processCommand(c) && sdslen(c->querybuf)) goto again;
2665 } else {
2666 /* Nothing to process, argc == 0. Just process the query
2667 * buffer if it's not empty or return to the caller */
2668 if (sdslen(c->querybuf)) goto again;
2669 }
2670 return;
2671 } else if (sdslen(c->querybuf) >= REDIS_REQUEST_MAX_SIZE) {
2672 redisLog(REDIS_VERBOSE, "Client protocol error");
2673 freeClient(c);
2674 return;
2675 }
2676 } else {
2677 /* Bulk read handling. Note that if we are at this point
2678 the client already sent a command terminated with a newline,
2679 we are reading the bulk data that is actually the last
2680 argument of the command. */
2681 int qbl = sdslen(c->querybuf);
2682
2683 if (c->bulklen <= qbl) {
2684 /* Copy everything but the final CRLF as final argument */
2685 c->argv[c->argc] = createStringObject(c->querybuf,c->bulklen-2);
2686 c->argc++;
2687 c->querybuf = sdsrange(c->querybuf,c->bulklen,-1);
2688 /* Process the command. If the client is still valid after
2689 * the processing and there is more data in the buffer
2690 * try to parse it. */
2691 if (processCommand(c) && sdslen(c->querybuf)) goto again;
2692 return;
2693 }
2694 }
2695 }
2696
2697 static void readQueryFromClient(aeEventLoop *el, int fd, void *privdata, int mask) {
2698 redisClient *c = (redisClient*) privdata;
2699 char buf[REDIS_IOBUF_LEN];
2700 int nread;
2701 REDIS_NOTUSED(el);
2702 REDIS_NOTUSED(mask);
2703
2704 nread = read(fd, buf, REDIS_IOBUF_LEN);
2705 if (nread == -1) {
2706 if (errno == EAGAIN) {
2707 nread = 0;
2708 } else {
2709 redisLog(REDIS_VERBOSE, "Reading from client: %s",strerror(errno));
2710 freeClient(c);
2711 return;
2712 }
2713 } else if (nread == 0) {
2714 redisLog(REDIS_VERBOSE, "Client closed connection");
2715 freeClient(c);
2716 return;
2717 }
2718 if (nread) {
2719 c->querybuf = sdscatlen(c->querybuf, buf, nread);
2720 c->lastinteraction = time(NULL);
2721 } else {
2722 return;
2723 }
2724 processInputBuffer(c);
2725 }
2726
2727 static int selectDb(redisClient *c, int id) {
2728 if (id < 0 || id >= server.dbnum)
2729 return REDIS_ERR;
2730 c->db = &server.db[id];
2731 return REDIS_OK;
2732 }
2733
2734 static void *dupClientReplyValue(void *o) {
2735 incrRefCount((robj*)o);
2736 return o;
2737 }
2738
2739 static int listMatchObjects(void *a, void *b) {
2740 return equalStringObjects(a,b);
2741 }
2742
2743 static redisClient *createClient(int fd) {
2744 redisClient *c = zmalloc(sizeof(*c));
2745
2746 anetNonBlock(NULL,fd);
2747 anetTcpNoDelay(NULL,fd);
2748 if (!c) return NULL;
2749 selectDb(c,0);
2750 c->fd = fd;
2751 c->querybuf = sdsempty();
2752 c->argc = 0;
2753 c->argv = NULL;
2754 c->bulklen = -1;
2755 c->multibulk = 0;
2756 c->mbargc = 0;
2757 c->mbargv = NULL;
2758 c->sentlen = 0;
2759 c->flags = 0;
2760 c->lastinteraction = time(NULL);
2761 c->authenticated = 0;
2762 c->replstate = REDIS_REPL_NONE;
2763 c->reply = listCreate();
2764 listSetFreeMethod(c->reply,decrRefCount);
2765 listSetDupMethod(c->reply,dupClientReplyValue);
2766 c->blocking_keys = NULL;
2767 c->blocking_keys_num = 0;
2768 c->io_keys = listCreate();
2769 c->watched_keys = listCreate();
2770 listSetFreeMethod(c->io_keys,decrRefCount);
2771 c->pubsub_channels = dictCreate(&setDictType,NULL);
2772 c->pubsub_patterns = listCreate();
2773 listSetFreeMethod(c->pubsub_patterns,decrRefCount);
2774 listSetMatchMethod(c->pubsub_patterns,listMatchObjects);
2775 if (aeCreateFileEvent(server.el, c->fd, AE_READABLE,
2776 readQueryFromClient, c) == AE_ERR) {
2777 freeClient(c);
2778 return NULL;
2779 }
2780 listAddNodeTail(server.clients,c);
2781 initClientMultiState(c);
2782 return c;
2783 }
2784
2785 static void addReply(redisClient *c, robj *obj) {
2786 if (listLength(c->reply) == 0 &&
2787 (c->replstate == REDIS_REPL_NONE ||
2788 c->replstate == REDIS_REPL_ONLINE) &&
2789 aeCreateFileEvent(server.el, c->fd, AE_WRITABLE,
2790 sendReplyToClient, c) == AE_ERR) return;
2791
2792 if (server.vm_enabled && obj->storage != REDIS_VM_MEMORY) {
2793 obj = dupStringObject(obj);
2794 obj->refcount = 0; /* getDecodedObject() will increment the refcount */
2795 }
2796 listAddNodeTail(c->reply,getDecodedObject(obj));
2797 }
2798
2799 static void addReplySds(redisClient *c, sds s) {
2800 robj *o = createObject(REDIS_STRING,s);
2801 addReply(c,o);
2802 decrRefCount(o);
2803 }
2804
2805 static void addReplyDouble(redisClient *c, double d) {
2806 char buf[128];
2807
2808 snprintf(buf,sizeof(buf),"%.17g",d);
2809 addReplySds(c,sdscatprintf(sdsempty(),"$%lu\r\n%s\r\n",
2810 (unsigned long) strlen(buf),buf));
2811 }
2812
2813 static void addReplyLongLong(redisClient *c, long long ll) {
2814 char buf[128];
2815 size_t len;
2816
2817 if (ll == 0) {
2818 addReply(c,shared.czero);
2819 return;
2820 } else if (ll == 1) {
2821 addReply(c,shared.cone);
2822 return;
2823 }
2824 buf[0] = ':';
2825 len = ll2string(buf+1,sizeof(buf)-1,ll);
2826 buf[len+1] = '\r';
2827 buf[len+2] = '\n';
2828 addReplySds(c,sdsnewlen(buf,len+3));
2829 }
2830
2831 static void addReplyUlong(redisClient *c, unsigned long ul) {
2832 char buf[128];
2833 size_t len;
2834
2835 if (ul == 0) {
2836 addReply(c,shared.czero);
2837 return;
2838 } else if (ul == 1) {
2839 addReply(c,shared.cone);
2840 return;
2841 }
2842 len = snprintf(buf,sizeof(buf),":%lu\r\n",ul);
2843 addReplySds(c,sdsnewlen(buf,len));
2844 }
2845
2846 static void addReplyBulkLen(redisClient *c, robj *obj) {
2847 size_t len, intlen;
2848 char buf[128];
2849
2850 if (obj->encoding == REDIS_ENCODING_RAW) {
2851 len = sdslen(obj->ptr);
2852 } else {
2853 long n = (long)obj->ptr;
2854
2855 /* Compute how many bytes will take this integer as a radix 10 string */
2856 len = 1;
2857 if (n < 0) {
2858 len++;
2859 n = -n;
2860 }
2861 while((n = n/10) != 0) {
2862 len++;
2863 }
2864 }
2865 buf[0] = '$';
2866 intlen = ll2string(buf+1,sizeof(buf)-1,(long long)len);
2867 buf[intlen+1] = '\r';
2868 buf[intlen+2] = '\n';
2869 addReplySds(c,sdsnewlen(buf,intlen+3));
2870 }
2871
2872 static void addReplyBulk(redisClient *c, robj *obj) {
2873 addReplyBulkLen(c,obj);
2874 addReply(c,obj);
2875 addReply(c,shared.crlf);
2876 }
2877
2878 /* In the CONFIG command we need to add vanilla C string as bulk replies */
2879 static void addReplyBulkCString(redisClient *c, char *s) {
2880 if (s == NULL) {
2881 addReply(c,shared.nullbulk);
2882 } else {
2883 robj *o = createStringObject(s,strlen(s));
2884 addReplyBulk(c,o);
2885 decrRefCount(o);
2886 }
2887 }
2888
2889 static void acceptHandler(aeEventLoop *el, int fd, void *privdata, int mask) {
2890 int cport, cfd;
2891 char cip[128];
2892 redisClient *c;
2893 REDIS_NOTUSED(el);
2894 REDIS_NOTUSED(mask);
2895 REDIS_NOTUSED(privdata);
2896
2897 cfd = anetAccept(server.neterr, fd, cip, &cport);
2898 if (cfd == AE_ERR) {
2899 redisLog(REDIS_VERBOSE,"Accepting client connection: %s", server.neterr);
2900 return;
2901 }
2902 redisLog(REDIS_VERBOSE,"Accepted %s:%d", cip, cport);
2903 if ((c = createClient(cfd)) == NULL) {
2904 redisLog(REDIS_WARNING,"Error allocating resoures for the client");
2905 close(cfd); /* May be already closed, just ingore errors */
2906 return;
2907 }
2908 /* If maxclient directive is set and this is one client more... close the
2909 * connection. Note that we create the client instead to check before
2910 * for this condition, since now the socket is already set in nonblocking
2911 * mode and we can send an error for free using the Kernel I/O */
2912 if (server.maxclients && listLength(server.clients) > server.maxclients) {
2913 char *err = "-ERR max number of clients reached\r\n";
2914
2915 /* That's a best effort error message, don't check write errors */
2916 if (write(c->fd,err,strlen(err)) == -1) {
2917 /* Nothing to do, Just to avoid the warning... */
2918 }
2919 freeClient(c);
2920 return;
2921 }
2922 server.stat_numconnections++;
2923 }
2924
2925 /* ======================= Redis objects implementation ===================== */
2926
2927 static robj *createObject(int type, void *ptr) {
2928 robj *o;
2929
2930 if (server.vm_enabled) pthread_mutex_lock(&server.obj_freelist_mutex);
2931 if (listLength(server.objfreelist)) {
2932 listNode *head = listFirst(server.objfreelist);
2933 o = listNodeValue(head);
2934 listDelNode(server.objfreelist,head);
2935 if (server.vm_enabled) pthread_mutex_unlock(&server.obj_freelist_mutex);
2936 } else {
2937 if (server.vm_enabled) {
2938 pthread_mutex_unlock(&server.obj_freelist_mutex);
2939 o = zmalloc(sizeof(*o));
2940 } else {
2941 o = zmalloc(sizeof(*o)-sizeof(struct redisObjectVM));
2942 }
2943 }
2944 o->type = type;
2945 o->encoding = REDIS_ENCODING_RAW;
2946 o->ptr = ptr;
2947 o->refcount = 1;
2948 if (server.vm_enabled) {
2949 /* Note that this code may run in the context of an I/O thread
2950 * and accessing to server.unixtime in theory is an error
2951 * (no locks). But in practice this is safe, and even if we read
2952 * garbage Redis will not fail, as it's just a statistical info */
2953 o->vm.atime = server.unixtime;
2954 o->storage = REDIS_VM_MEMORY;
2955 }
2956 return o;
2957 }
2958
2959 static robj *createStringObject(char *ptr, size_t len) {
2960 return createObject(REDIS_STRING,sdsnewlen(ptr,len));
2961 }
2962
2963 static robj *createStringObjectFromLongLong(long long value) {
2964 robj *o;
2965 if (value >= 0 && value < REDIS_SHARED_INTEGERS) {
2966 incrRefCount(shared.integers[value]);
2967 o = shared.integers[value];
2968 } else {
2969 if (value >= LONG_MIN && value <= LONG_MAX) {
2970 o = createObject(REDIS_STRING, NULL);
2971 o->encoding = REDIS_ENCODING_INT;
2972 o->ptr = (void*)((long)value);
2973 } else {
2974 o = createObject(REDIS_STRING,sdsfromlonglong(value));
2975 }
2976 }
2977 return o;
2978 }
2979
2980 static robj *dupStringObject(robj *o) {
2981 assert(o->encoding == REDIS_ENCODING_RAW);
2982 return createStringObject(o->ptr,sdslen(o->ptr));
2983 }
2984
2985 static robj *createListObject(void) {
2986 list *l = listCreate();
2987
2988 listSetFreeMethod(l,decrRefCount);
2989 return createObject(REDIS_LIST,l);
2990 }
2991
2992 static robj *createSetObject(void) {
2993 dict *d = dictCreate(&setDictType,NULL);
2994 return createObject(REDIS_SET,d);
2995 }
2996
2997 static robj *createHashObject(void) {
2998 /* All the Hashes start as zipmaps. Will be automatically converted
2999 * into hash tables if there are enough elements or big elements
3000 * inside. */
3001 unsigned char *zm = zipmapNew();
3002 robj *o = createObject(REDIS_HASH,zm);
3003 o->encoding = REDIS_ENCODING_ZIPMAP;
3004 return o;
3005 }
3006
3007 static robj *createZsetObject(void) {
3008 zset *zs = zmalloc(sizeof(*zs));
3009
3010 zs->dict = dictCreate(&zsetDictType,NULL);
3011 zs->zsl = zslCreate();
3012 return createObject(REDIS_ZSET,zs);
3013 }
3014
3015 static void freeStringObject(robj *o) {
3016 if (o->encoding == REDIS_ENCODING_RAW) {
3017 sdsfree(o->ptr);
3018 }
3019 }
3020
3021 static void freeListObject(robj *o) {
3022 switch (o->encoding) {
3023 case REDIS_ENCODING_LIST:
3024 listRelease((list*) o->ptr);
3025 break;
3026 case REDIS_ENCODING_ZIPLIST:
3027 zfree(o->ptr);
3028 break;
3029 default:
3030 redisPanic("Unknown list encoding type");
3031 }
3032 }
3033
3034 static void freeSetObject(robj *o) {
3035 dictRelease((dict*) o->ptr);
3036 }
3037
3038 static void freeZsetObject(robj *o) {
3039 zset *zs = o->ptr;
3040
3041 dictRelease(zs->dict);
3042 zslFree(zs->zsl);
3043 zfree(zs);
3044 }
3045
3046 static void freeHashObject(robj *o) {
3047 switch (o->encoding) {
3048 case REDIS_ENCODING_HT:
3049 dictRelease((dict*) o->ptr);
3050 break;
3051 case REDIS_ENCODING_ZIPMAP:
3052 zfree(o->ptr);
3053 break;
3054 default:
3055 redisPanic("Unknown hash encoding type");
3056 break;
3057 }
3058 }
3059
3060 static void incrRefCount(robj *o) {
3061 o->refcount++;
3062 }
3063
3064 static void decrRefCount(void *obj) {
3065 robj *o = obj;
3066
3067 if (o->refcount <= 0) redisPanic("decrRefCount against refcount <= 0");
3068 /* Object is a key of a swapped out value, or in the process of being
3069 * loaded. */
3070 if (server.vm_enabled &&
3071 (o->storage == REDIS_VM_SWAPPED || o->storage == REDIS_VM_LOADING))
3072 {
3073 if (o->storage == REDIS_VM_LOADING) vmCancelThreadedIOJob(obj);
3074 redisAssert(o->type == REDIS_STRING);
3075 freeStringObject(o);
3076 vmMarkPagesFree(o->vm.page,o->vm.usedpages);
3077 pthread_mutex_lock(&server.obj_freelist_mutex);
3078 if (listLength(server.objfreelist) > REDIS_OBJFREELIST_MAX ||
3079 !listAddNodeHead(server.objfreelist,o))
3080 zfree(o);
3081 pthread_mutex_unlock(&server.obj_freelist_mutex);
3082 server.vm_stats_swapped_objects--;
3083 return;
3084 }
3085 /* Object is in memory, or in the process of being swapped out. */
3086 if (--(o->refcount) == 0) {
3087 if (server.vm_enabled && o->storage == REDIS_VM_SWAPPING)
3088 vmCancelThreadedIOJob(obj);
3089 switch(o->type) {
3090 case REDIS_STRING: freeStringObject(o); break;
3091 case REDIS_LIST: freeListObject(o); break;
3092 case REDIS_SET: freeSetObject(o); break;
3093 case REDIS_ZSET: freeZsetObject(o); break;
3094 case REDIS_HASH: freeHashObject(o); break;
3095 default: redisPanic("Unknown object type"); break;
3096 }
3097 if (server.vm_enabled) pthread_mutex_lock(&server.obj_freelist_mutex);
3098 if (listLength(server.objfreelist) > REDIS_OBJFREELIST_MAX ||
3099 !listAddNodeHead(server.objfreelist,o))
3100 zfree(o);
3101 if (server.vm_enabled) pthread_mutex_unlock(&server.obj_freelist_mutex);
3102 }
3103 }
3104
3105 static robj *lookupKey(redisDb *db, robj *key) {
3106 dictEntry *de = dictFind(db->dict,key);
3107 if (de) {
3108 robj *key = dictGetEntryKey(de);
3109 robj *val = dictGetEntryVal(de);
3110
3111 if (server.vm_enabled) {
3112 if (key->storage == REDIS_VM_MEMORY ||
3113 key->storage == REDIS_VM_SWAPPING)
3114 {
3115 /* If we were swapping the object out, stop it, this key
3116 * was requested. */
3117 if (key->storage == REDIS_VM_SWAPPING)
3118 vmCancelThreadedIOJob(key);
3119 /* Update the access time of the key for the aging algorithm. */
3120 key->vm.atime = server.unixtime;
3121 } else {
3122 int notify = (key->storage == REDIS_VM_LOADING);
3123
3124 /* Our value was swapped on disk. Bring it at home. */
3125 redisAssert(val == NULL);
3126 val = vmLoadObject(key);
3127 dictGetEntryVal(de) = val;
3128
3129 /* Clients blocked by the VM subsystem may be waiting for
3130 * this key... */
3131 if (notify) handleClientsBlockedOnSwappedKey(db,key);
3132 }
3133 }
3134 return val;
3135 } else {
3136 return NULL;
3137 }
3138 }
3139
3140 static robj *lookupKeyRead(redisDb *db, robj *key) {
3141 expireIfNeeded(db,key);
3142 return lookupKey(db,key);
3143 }
3144
3145 static robj *lookupKeyWrite(redisDb *db, robj *key) {
3146 deleteIfVolatile(db,key);
3147 touchWatchedKey(db,key);
3148 return lookupKey(db,key);
3149 }
3150
3151 static robj *lookupKeyReadOrReply(redisClient *c, robj *key, robj *reply) {
3152 robj *o = lookupKeyRead(c->db, key);
3153 if (!o) addReply(c,reply);
3154 return o;
3155 }
3156
3157 static robj *lookupKeyWriteOrReply(redisClient *c, robj *key, robj *reply) {
3158 robj *o = lookupKeyWrite(c->db, key);
3159 if (!o) addReply(c,reply);
3160 return o;
3161 }
3162
3163 static int checkType(redisClient *c, robj *o, int type) {
3164 if (o->type != type) {
3165 addReply(c,shared.wrongtypeerr);
3166 return 1;
3167 }
3168 return 0;
3169 }
3170
3171 static int deleteKey(redisDb *db, robj *key) {
3172 int retval;
3173
3174 /* We need to protect key from destruction: after the first dictDelete()
3175 * it may happen that 'key' is no longer valid if we don't increment
3176 * it's count. This may happen when we get the object reference directly
3177 * from the hash table with dictRandomKey() or dict iterators */
3178 incrRefCount(key);
3179 if (dictSize(db->expires)) dictDelete(db->expires,key);
3180 retval = dictDelete(db->dict,key);
3181 decrRefCount(key);
3182
3183 return retval == DICT_OK;
3184 }
3185
3186 /* Check if the nul-terminated string 's' can be represented by a long
3187 * (that is, is a number that fits into long without any other space or
3188 * character before or after the digits).
3189 *
3190 * If so, the function returns REDIS_OK and *longval is set to the value
3191 * of the number. Otherwise REDIS_ERR is returned */
3192 static int isStringRepresentableAsLong(sds s, long *longval) {
3193 char buf[32], *endptr;
3194 long value;
3195 int slen;
3196
3197 value = strtol(s, &endptr, 10);
3198 if (endptr[0] != '\0') return REDIS_ERR;
3199 slen = ll2string(buf,32,value);
3200
3201 /* If the number converted back into a string is not identical
3202 * then it's not possible to encode the string as integer */
3203 if (sdslen(s) != (unsigned)slen || memcmp(buf,s,slen)) return REDIS_ERR;
3204 if (longval) *longval = value;
3205 return REDIS_OK;
3206 }
3207
3208 /* Try to encode a string object in order to save space */
3209 static robj *tryObjectEncoding(robj *o) {
3210 long value;
3211 sds s = o->ptr;
3212
3213 if (o->encoding != REDIS_ENCODING_RAW)
3214 return o; /* Already encoded */
3215
3216 /* It's not safe to encode shared objects: shared objects can be shared
3217 * everywhere in the "object space" of Redis. Encoded objects can only
3218 * appear as "values" (and not, for instance, as keys) */
3219 if (o->refcount > 1) return o;
3220
3221 /* Currently we try to encode only strings */
3222 redisAssert(o->type == REDIS_STRING);
3223
3224 /* Check if we can represent this string as a long integer */
3225 if (isStringRepresentableAsLong(s,&value) == REDIS_ERR) return o;
3226
3227 /* Ok, this object can be encoded */
3228 if (value >= 0 && value < REDIS_SHARED_INTEGERS) {
3229 decrRefCount(o);
3230 incrRefCount(shared.integers[value]);
3231 return shared.integers[value];
3232 } else {
3233 o->encoding = REDIS_ENCODING_INT;
3234 sdsfree(o->ptr);
3235 o->ptr = (void*) value;
3236 return o;
3237 }
3238 }
3239
3240 /* Get a decoded version of an encoded object (returned as a new object).
3241 * If the object is already raw-encoded just increment the ref count. */
3242 static robj *getDecodedObject(robj *o) {
3243 robj *dec;
3244
3245 if (o->encoding == REDIS_ENCODING_RAW) {
3246 incrRefCount(o);
3247 return o;
3248 }
3249 if (o->type == REDIS_STRING && o->encoding == REDIS_ENCODING_INT) {
3250 char buf[32];
3251
3252 ll2string(buf,32,(long)o->ptr);
3253 dec = createStringObject(buf,strlen(buf));
3254 return dec;
3255 } else {
3256 redisPanic("Unknown encoding type");
3257 }
3258 }
3259
3260 /* Compare two string objects via strcmp() or alike.
3261 * Note that the objects may be integer-encoded. In such a case we
3262 * use ll2string() to get a string representation of the numbers on the stack
3263 * and compare the strings, it's much faster than calling getDecodedObject().
3264 *
3265 * Important note: if objects are not integer encoded, but binary-safe strings,
3266 * sdscmp() from sds.c will apply memcmp() so this function ca be considered
3267 * binary safe. */
3268 static int compareStringObjects(robj *a, robj *b) {
3269 redisAssert(a->type == REDIS_STRING && b->type == REDIS_STRING);
3270 char bufa[128], bufb[128], *astr, *bstr;
3271 int bothsds = 1;
3272
3273 if (a == b) return 0;
3274 if (a->encoding != REDIS_ENCODING_RAW) {
3275 ll2string(bufa,sizeof(bufa),(long) a->ptr);
3276 astr = bufa;
3277 bothsds = 0;
3278 } else {
3279 astr = a->ptr;
3280 }
3281 if (b->encoding != REDIS_ENCODING_RAW) {
3282 ll2string(bufb,sizeof(bufb),(long) b->ptr);
3283 bstr = bufb;
3284 bothsds = 0;
3285 } else {
3286 bstr = b->ptr;
3287 }
3288 return bothsds ? sdscmp(astr,bstr) : strcmp(astr,bstr);
3289 }
3290
3291 /* Equal string objects return 1 if the two objects are the same from the
3292 * point of view of a string comparison, otherwise 0 is returned. Note that
3293 * this function is faster then checking for (compareStringObject(a,b) == 0)
3294 * because it can perform some more optimization. */
3295 static int equalStringObjects(robj *a, robj *b) {
3296 if (a->encoding != REDIS_ENCODING_RAW && b->encoding != REDIS_ENCODING_RAW){
3297 return a->ptr == b->ptr;
3298 } else {
3299 return compareStringObjects(a,b) == 0;
3300 }
3301 }
3302
3303 static size_t stringObjectLen(robj *o) {
3304 redisAssert(o->type == REDIS_STRING);
3305 if (o->encoding == REDIS_ENCODING_RAW) {
3306 return sdslen(o->ptr);
3307 } else {
3308 char buf[32];
3309
3310 return ll2string(buf,32,(long)o->ptr);
3311 }
3312 }
3313
3314 static int getDoubleFromObject(robj *o, double *target) {
3315 double value;
3316 char *eptr;
3317
3318 if (o == NULL) {
3319 value = 0;
3320 } else {
3321 redisAssert(o->type == REDIS_STRING);
3322 if (o->encoding == REDIS_ENCODING_RAW) {
3323 value = strtod(o->ptr, &eptr);
3324 if (eptr[0] != '\0') return REDIS_ERR;
3325 } else if (o->encoding == REDIS_ENCODING_INT) {
3326 value = (long)o->ptr;
3327 } else {
3328 redisPanic("Unknown string encoding");
3329 }
3330 }
3331
3332 *target = value;
3333 return REDIS_OK;
3334 }
3335
3336 static int getDoubleFromObjectOrReply(redisClient *c, robj *o, double *target, const char *msg) {
3337 double value;
3338 if (getDoubleFromObject(o, &value) != REDIS_OK) {
3339 if (msg != NULL) {
3340 addReplySds(c, sdscatprintf(sdsempty(), "-ERR %s\r\n", msg));
3341 } else {
3342 addReplySds(c, sdsnew("-ERR value is not a double\r\n"));
3343 }
3344 return REDIS_ERR;
3345 }
3346
3347 *target = value;
3348 return REDIS_OK;
3349 }
3350
3351 static int getLongLongFromObject(robj *o, long long *target) {
3352 long long value;
3353 char *eptr;
3354
3355 if (o == NULL) {
3356 value = 0;
3357 } else {
3358 redisAssert(o->type == REDIS_STRING);
3359 if (o->encoding == REDIS_ENCODING_RAW) {
3360 value = strtoll(o->ptr, &eptr, 10);
3361 if (eptr[0] != '\0') return REDIS_ERR;
3362 } else if (o->encoding == REDIS_ENCODING_INT) {
3363 value = (long)o->ptr;
3364 } else {
3365 redisPanic("Unknown string encoding");
3366 }
3367 }
3368
3369 *target = value;
3370 return REDIS_OK;
3371 }
3372
3373 static int getLongLongFromObjectOrReply(redisClient *c, robj *o, long long *target, const char *msg) {
3374 long long value;
3375 if (getLongLongFromObject(o, &value) != REDIS_OK) {
3376 if (msg != NULL) {
3377 addReplySds(c, sdscatprintf(sdsempty(), "-ERR %s\r\n", msg));
3378 } else {
3379 addReplySds(c, sdsnew("-ERR value is not an integer\r\n"));
3380 }
3381 return REDIS_ERR;
3382 }
3383
3384 *target = value;
3385 return REDIS_OK;
3386 }
3387
3388 static int getLongFromObjectOrReply(redisClient *c, robj *o, long *target, const char *msg) {
3389 long long value;
3390
3391 if (getLongLongFromObjectOrReply(c, o, &value, msg) != REDIS_OK) return REDIS_ERR;
3392 if (value < LONG_MIN || value > LONG_MAX) {
3393 if (msg != NULL) {
3394 addReplySds(c, sdscatprintf(sdsempty(), "-ERR %s\r\n", msg));
3395 } else {
3396 addReplySds(c, sdsnew("-ERR value is out of range\r\n"));
3397 }
3398 return REDIS_ERR;
3399 }
3400
3401 *target = value;
3402 return REDIS_OK;
3403 }
3404
3405 /*============================ RDB saving/loading =========================== */
3406
3407 static int rdbSaveType(FILE *fp, unsigned char type) {
3408 if (fwrite(&type,1,1,fp) == 0) return -1;
3409 return 0;
3410 }
3411
3412 static int rdbSaveTime(FILE *fp, time_t t) {
3413 int32_t t32 = (int32_t) t;
3414 if (fwrite(&t32,4,1,fp) == 0) return -1;
3415 return 0;
3416 }
3417
3418 /* check rdbLoadLen() comments for more info */
3419 static int rdbSaveLen(FILE *fp, uint32_t len) {
3420 unsigned char buf[2];
3421
3422 if (len < (1<<6)) {
3423 /* Save a 6 bit len */
3424 buf[0] = (len&0xFF)|(REDIS_RDB_6BITLEN<<6);
3425 if (fwrite(buf,1,1,fp) == 0) return -1;
3426 } else if (len < (1<<14)) {
3427 /* Save a 14 bit len */
3428 buf[0] = ((len>>8)&0xFF)|(REDIS_RDB_14BITLEN<<6);
3429 buf[1] = len&0xFF;
3430 if (fwrite(buf,2,1,fp) == 0) return -1;
3431 } else {
3432 /* Save a 32 bit len */
3433 buf[0] = (REDIS_RDB_32BITLEN<<6);
3434 if (fwrite(buf,1,1,fp) == 0) return -1;
3435 len = htonl(len);
3436 if (fwrite(&len,4,1,fp) == 0) return -1;
3437 }
3438 return 0;
3439 }
3440
3441 /* Encode 'value' as an integer if possible (if integer will fit the
3442 * supported range). If the function sucessful encoded the integer
3443 * then the (up to 5 bytes) encoded representation is written in the
3444 * string pointed by 'enc' and the length is returned. Otherwise
3445 * 0 is returned. */
3446 static int rdbEncodeInteger(long long value, unsigned char *enc) {
3447 /* Finally check if it fits in our ranges */
3448 if (value >= -(1<<7) && value <= (1<<7)-1) {
3449 enc[0] = (REDIS_RDB_ENCVAL<<6)|REDIS_RDB_ENC_INT8;
3450 enc[1] = value&0xFF;
3451 return 2;
3452 } else if (value >= -(1<<15) && value <= (1<<15)-1) {
3453 enc[0] = (REDIS_RDB_ENCVAL<<6)|REDIS_RDB_ENC_INT16;
3454 enc[1] = value&0xFF;
3455 enc[2] = (value>>8)&0xFF;
3456 return 3;
3457 } else if (value >= -((long long)1<<31) && value <= ((long long)1<<31)-1) {
3458 enc[0] = (REDIS_RDB_ENCVAL<<6)|REDIS_RDB_ENC_INT32;
3459 enc[1] = value&0xFF;
3460 enc[2] = (value>>8)&0xFF;
3461 enc[3] = (value>>16)&0xFF;
3462 enc[4] = (value>>24)&0xFF;
3463 return 5;
3464 } else {
3465 return 0;
3466 }
3467 }
3468
3469 /* String objects in the form "2391" "-100" without any space and with a
3470 * range of values that can fit in an 8, 16 or 32 bit signed value can be
3471 * encoded as integers to save space */
3472 static int rdbTryIntegerEncoding(char *s, size_t len, unsigned char *enc) {
3473 long long value;
3474 char *endptr, buf[32];
3475
3476 /* Check if it's possible to encode this value as a number */
3477 value = strtoll(s, &endptr, 10);
3478 if (endptr[0] != '\0') return 0;
3479 ll2string(buf,32,value);
3480
3481 /* If the number converted back into a string is not identical
3482 * then it's not possible to encode the string as integer */
3483 if (strlen(buf) != len || memcmp(buf,s,len)) return 0;
3484
3485 return rdbEncodeInteger(value,enc);
3486 }
3487
3488 static int rdbSaveLzfStringObject(FILE *fp, unsigned char *s, size_t len) {
3489 size_t comprlen, outlen;
3490 unsigned char byte;
3491 void *out;
3492
3493 /* We require at least four bytes compression for this to be worth it */
3494 if (len <= 4) return 0;
3495 outlen = len-4;
3496 if ((out = zmalloc(outlen+1)) == NULL) return 0;
3497 comprlen = lzf_compress(s, len, out, outlen);
3498 if (comprlen == 0) {
3499 zfree(out);
3500 return 0;
3501 }
3502 /* Data compressed! Let's save it on disk */
3503 byte = (REDIS_RDB_ENCVAL<<6)|REDIS_RDB_ENC_LZF;
3504 if (fwrite(&byte,1,1,fp) == 0) goto writeerr;
3505 if (rdbSaveLen(fp,comprlen) == -1) goto writeerr;
3506 if (rdbSaveLen(fp,len) == -1) goto writeerr;
3507 if (fwrite(out,comprlen,1,fp) == 0) goto writeerr;
3508 zfree(out);
3509 return comprlen;
3510
3511 writeerr:
3512 zfree(out);
3513 return -1;
3514 }
3515
3516 /* Save a string objet as [len][data] on disk. If the object is a string
3517 * representation of an integer value we try to safe it in a special form */
3518 static int rdbSaveRawString(FILE *fp, unsigned char *s, size_t len) {
3519 int enclen;
3520
3521 /* Try integer encoding */
3522 if (len <= 11) {
3523 unsigned char buf[5];
3524 if ((enclen = rdbTryIntegerEncoding((char*)s,len,buf)) > 0) {
3525 if (fwrite(buf,enclen,1,fp) == 0) return -1;
3526 return 0;
3527 }
3528 }
3529
3530 /* Try LZF compression - under 20 bytes it's unable to compress even
3531 * aaaaaaaaaaaaaaaaaa so skip it */
3532 if (server.rdbcompression && len > 20) {
3533 int retval;
3534
3535 retval = rdbSaveLzfStringObject(fp,s,len);
3536 if (retval == -1) return -1;
3537 if (retval > 0) return 0;
3538 /* retval == 0 means data can't be compressed, save the old way */
3539 }
3540
3541 /* Store verbatim */
3542 if (rdbSaveLen(fp,len) == -1) return -1;
3543 if (len && fwrite(s,len,1,fp) == 0) return -1;
3544 return 0;
3545 }
3546
3547 /* Like rdbSaveStringObjectRaw() but handle encoded objects */
3548 static int rdbSaveStringObject(FILE *fp, robj *obj) {
3549 int retval;
3550
3551 /* Avoid to decode the object, then encode it again, if the
3552 * object is alrady integer encoded. */
3553 if (obj->encoding == REDIS_ENCODING_INT) {
3554 long val = (long) obj->ptr;
3555 unsigned char buf[5];
3556 int enclen;
3557
3558 if ((enclen = rdbEncodeInteger(val,buf)) > 0) {
3559 if (fwrite(buf,enclen,1,fp) == 0) return -1;
3560 return 0;
3561 }
3562 /* otherwise... fall throught and continue with the usual
3563 * code path. */
3564 }
3565
3566 /* Avoid incr/decr ref count business when possible.
3567 * This plays well with copy-on-write given that we are probably
3568 * in a child process (BGSAVE). Also this makes sure key objects
3569 * of swapped objects are not incRefCount-ed (an assert does not allow
3570 * this in order to avoid bugs) */
3571 if (obj->encoding != REDIS_ENCODING_RAW) {
3572 obj = getDecodedObject(obj);
3573 retval = rdbSaveRawString(fp,obj->ptr,sdslen(obj->ptr));
3574 decrRefCount(obj);
3575 } else {
3576 retval = rdbSaveRawString(fp,obj->ptr,sdslen(obj->ptr));
3577 }
3578 return retval;
3579 }
3580
3581 /* Save a double value. Doubles are saved as strings prefixed by an unsigned
3582 * 8 bit integer specifing the length of the representation.
3583 * This 8 bit integer has special values in order to specify the following
3584 * conditions:
3585 * 253: not a number
3586 * 254: + inf
3587 * 255: - inf
3588 */
3589 static int rdbSaveDoubleValue(FILE *fp, double val) {
3590 unsigned char buf[128];
3591 int len;
3592
3593 if (isnan(val)) {
3594 buf[0] = 253;
3595 len = 1;
3596 } else if (!isfinite(val)) {
3597 len = 1;
3598 buf[0] = (val < 0) ? 255 : 254;
3599 } else {
3600 #if (DBL_MANT_DIG >= 52) && (LLONG_MAX == 0x7fffffffffffffffLL)
3601 /* Check if the float is in a safe range to be casted into a
3602 * long long. We are assuming that long long is 64 bit here.
3603 * Also we are assuming that there are no implementations around where
3604 * double has precision < 52 bit.
3605 *
3606 * Under this assumptions we test if a double is inside an interval
3607 * where casting to long long is safe. Then using two castings we
3608 * make sure the decimal part is zero. If all this is true we use
3609 * integer printing function that is much faster. */
3610 double min = -4503599627370495; /* (2^52)-1 */
3611 double max = 4503599627370496; /* -(2^52) */
3612 if (val > min && val < max && val == ((double)((long long)val)))
3613 ll2string((char*)buf+1,sizeof(buf),(long long)val);
3614 else
3615 #endif
3616 snprintf((char*)buf+1,sizeof(buf)-1,"%.17g",val);
3617 buf[0] = strlen((char*)buf+1);
3618 len = buf[0]+1;
3619 }
3620 if (fwrite(buf,len,1,fp) == 0) return -1;
3621 return 0;
3622 }
3623
3624 /* Save a Redis object. */
3625 static int rdbSaveObject(FILE *fp, robj *o) {
3626 if (o->type == REDIS_STRING) {
3627 /* Save a string value */
3628 if (rdbSaveStringObject(fp,o) == -1) return -1;
3629 } else if (o->type == REDIS_LIST) {
3630 /* Save a list value */
3631 list *list = o->ptr;
3632 listIter li;
3633 listNode *ln;
3634
3635 if (rdbSaveLen(fp,listLength(list)) == -1) return -1;
3636 listRewind(list,&li);
3637 while((ln = listNext(&li))) {
3638 robj *eleobj = listNodeValue(ln);
3639
3640 if (rdbSaveStringObject(fp,eleobj) == -1) return -1;
3641 }
3642 } else if (o->type == REDIS_SET) {
3643 /* Save a set value */
3644 dict *set = o->ptr;
3645 dictIterator *di = dictGetIterator(set);
3646 dictEntry *de;
3647
3648 if (rdbSaveLen(fp,dictSize(set)) == -1) return -1;
3649 while((de = dictNext(di)) != NULL) {
3650 robj *eleobj = dictGetEntryKey(de);
3651
3652 if (rdbSaveStringObject(fp,eleobj) == -1) return -1;
3653 }
3654 dictReleaseIterator(di);
3655 } else if (o->type == REDIS_ZSET) {
3656 /* Save a set value */
3657 zset *zs = o->ptr;
3658 dictIterator *di = dictGetIterator(zs->dict);
3659 dictEntry *de;
3660
3661 if (rdbSaveLen(fp,dictSize(zs->dict)) == -1) return -1;
3662 while((de = dictNext(di)) != NULL) {
3663 robj *eleobj = dictGetEntryKey(de);
3664 double *score = dictGetEntryVal(de);
3665
3666 if (rdbSaveStringObject(fp,eleobj) == -1) return -1;
3667 if (rdbSaveDoubleValue(fp,*score) == -1) return -1;
3668 }
3669 dictReleaseIterator(di);
3670 } else if (o->type == REDIS_HASH) {
3671 /* Save a hash value */
3672 if (o->encoding == REDIS_ENCODING_ZIPMAP) {
3673 unsigned char *p = zipmapRewind(o->ptr);
3674 unsigned int count = zipmapLen(o->ptr);
3675 unsigned char *key, *val;
3676 unsigned int klen, vlen;
3677
3678 if (rdbSaveLen(fp,count) == -1) return -1;
3679 while((p = zipmapNext(p,&key,&klen,&val,&vlen)) != NULL) {
3680 if (rdbSaveRawString(fp,key,klen) == -1) return -1;
3681 if (rdbSaveRawString(fp,val,vlen) == -1) return -1;
3682 }
3683 } else {
3684 dictIterator *di = dictGetIterator(o->ptr);
3685 dictEntry *de;
3686
3687 if (rdbSaveLen(fp,dictSize((dict*)o->ptr)) == -1) return -1;
3688 while((de = dictNext(di)) != NULL) {
3689 robj *key = dictGetEntryKey(de);
3690 robj *val = dictGetEntryVal(de);
3691
3692 if (rdbSaveStringObject(fp,key) == -1) return -1;
3693 if (rdbSaveStringObject(fp,val) == -1) return -1;
3694 }
3695 dictReleaseIterator(di);
3696 }
3697 } else {
3698 redisPanic("Unknown object type");
3699 }
3700 return 0;
3701 }
3702
3703 /* Return the length the object will have on disk if saved with
3704 * the rdbSaveObject() function. Currently we use a trick to get
3705 * this length with very little changes to the code. In the future
3706 * we could switch to a faster solution. */
3707 static off_t rdbSavedObjectLen(robj *o, FILE *fp) {
3708 if (fp == NULL) fp = server.devnull;
3709 rewind(fp);
3710 assert(rdbSaveObject(fp,o) != 1);
3711 return ftello(fp);
3712 }
3713
3714 /* Return the number of pages required to save this object in the swap file */
3715 static off_t rdbSavedObjectPages(robj *o, FILE *fp) {
3716 off_t bytes = rdbSavedObjectLen(o,fp);
3717
3718 return (bytes+(server.vm_page_size-1))/server.vm_page_size;
3719 }
3720
3721 /* Save the DB on disk. Return REDIS_ERR on error, REDIS_OK on success */
3722 static int rdbSave(char *filename) {
3723 dictIterator *di = NULL;
3724 dictEntry *de;
3725 FILE *fp;
3726 char tmpfile[256];
3727 int j;
3728 time_t now = time(NULL);
3729
3730 /* Wait for I/O therads to terminate, just in case this is a
3731 * foreground-saving, to avoid seeking the swap file descriptor at the
3732 * same time. */
3733 if (server.vm_enabled)
3734 waitEmptyIOJobsQueue();
3735
3736 snprintf(tmpfile,256,"temp-%d.rdb", (int) getpid());
3737 fp = fopen(tmpfile,"w");
3738 if (!fp) {
3739 redisLog(REDIS_WARNING, "Failed saving the DB: %s", strerror(errno));
3740 return REDIS_ERR;
3741 }
3742 if (fwrite("REDIS0001",9,1,fp) == 0) goto werr;
3743 for (j = 0; j < server.dbnum; j++) {
3744 redisDb *db = server.db+j;
3745 dict *d = db->dict;
3746 if (dictSize(d) == 0) continue;
3747 di = dictGetIterator(d);
3748 if (!di) {
3749 fclose(fp);
3750 return REDIS_ERR;
3751 }
3752
3753 /* Write the SELECT DB opcode */
3754 if (rdbSaveType(fp,REDIS_SELECTDB) == -1) goto werr;
3755 if (rdbSaveLen(fp,j) == -1) goto werr;
3756
3757 /* Iterate this DB writing every entry */
3758 while((de = dictNext(di)) != NULL) {
3759 robj *key = dictGetEntryKey(de);
3760 robj *o = dictGetEntryVal(de);
3761 time_t expiretime = getExpire(db,key);
3762
3763 /* Save the expire time */
3764 if (expiretime != -1) {
3765 /* If this key is already expired skip it */
3766 if (expiretime < now) continue;
3767 if (rdbSaveType(fp,REDIS_EXPIRETIME) == -1) goto werr;
3768 if (rdbSaveTime(fp,expiretime) == -1) goto werr;
3769 }
3770 /* Save the key and associated value. This requires special
3771 * handling if the value is swapped out. */
3772 if (!server.vm_enabled || key->storage == REDIS_VM_MEMORY ||
3773 key->storage == REDIS_VM_SWAPPING) {
3774 /* Save type, key, value */
3775 if (rdbSaveType(fp,o->type) == -1) goto werr;
3776 if (rdbSaveStringObject(fp,key) == -1) goto werr;
3777 if (rdbSaveObject(fp,o) == -1) goto werr;
3778 } else {
3779 /* REDIS_VM_SWAPPED or REDIS_VM_LOADING */
3780 robj *po;
3781 /* Get a preview of the object in memory */
3782 po = vmPreviewObject(key);
3783 /* Save type, key, value */
3784 if (rdbSaveType(fp,key->vtype) == -1) goto werr;
3785 if (rdbSaveStringObject(fp,key) == -1) goto werr;
3786 if (rdbSaveObject(fp,po) == -1) goto werr;
3787 /* Remove the loaded object from memory */
3788 decrRefCount(po);
3789 }
3790 }
3791 dictReleaseIterator(di);
3792 }
3793 /* EOF opcode */
3794 if (rdbSaveType(fp,REDIS_EOF) == -1) goto werr;
3795
3796 /* Make sure data will not remain on the OS's output buffers */
3797 fflush(fp);
3798 fsync(fileno(fp));
3799 fclose(fp);
3800
3801 /* Use RENAME to make sure the DB file is changed atomically only
3802 * if the generate DB file is ok. */
3803 if (rename(tmpfile,filename) == -1) {
3804 redisLog(REDIS_WARNING,"Error moving temp DB file on the final destination: %s", strerror(errno));
3805 unlink(tmpfile);
3806 return REDIS_ERR;
3807 }
3808 redisLog(REDIS_NOTICE,"DB saved on disk");
3809 server.dirty = 0;
3810 server.lastsave = time(NULL);
3811 return REDIS_OK;
3812
3813 werr:
3814 fclose(fp);
3815 unlink(tmpfile);
3816 redisLog(REDIS_WARNING,"Write error saving DB on disk: %s", strerror(errno));
3817 if (di) dictReleaseIterator(di);
3818 return REDIS_ERR;
3819 }
3820
3821 static int rdbSaveBackground(char *filename) {
3822 pid_t childpid;
3823
3824 if (server.bgsavechildpid != -1) return REDIS_ERR;
3825 if (server.vm_enabled) waitEmptyIOJobsQueue();
3826 if ((childpid = fork()) == 0) {
3827 /* Child */
3828 if (server.vm_enabled) vmReopenSwapFile();
3829 close(server.fd);
3830 if (rdbSave(filename) == REDIS_OK) {
3831 _exit(0);
3832 } else {
3833 _exit(1);
3834 }
3835 } else {
3836 /* Parent */
3837 if (childpid == -1) {
3838 redisLog(REDIS_WARNING,"Can't save in background: fork: %s",
3839 strerror(errno));
3840 return REDIS_ERR;
3841 }
3842 redisLog(REDIS_NOTICE,"Background saving started by pid %d",childpid);
3843 server.bgsavechildpid = childpid;
3844 updateDictResizePolicy();
3845 return REDIS_OK;
3846 }
3847 return REDIS_OK; /* unreached */
3848 }
3849
3850 static void rdbRemoveTempFile(pid_t childpid) {
3851 char tmpfile[256];
3852
3853 snprintf(tmpfile,256,"temp-%d.rdb", (int) childpid);
3854 unlink(tmpfile);
3855 }
3856
3857 static int rdbLoadType(FILE *fp) {
3858 unsigned char type;
3859 if (fread(&type,1,1,fp) == 0) return -1;
3860 return type;
3861 }
3862
3863 static time_t rdbLoadTime(FILE *fp) {
3864 int32_t t32;
3865 if (fread(&t32,4,1,fp) == 0) return -1;
3866 return (time_t) t32;
3867 }
3868
3869 /* Load an encoded length from the DB, see the REDIS_RDB_* defines on the top
3870 * of this file for a description of how this are stored on disk.
3871 *
3872 * isencoded is set to 1 if the readed length is not actually a length but
3873 * an "encoding type", check the above comments for more info */
3874 static uint32_t rdbLoadLen(FILE *fp, int *isencoded) {
3875 unsigned char buf[2];
3876 uint32_t len;
3877 int type;
3878
3879 if (isencoded) *isencoded = 0;
3880 if (fread(buf,1,1,fp) == 0) return REDIS_RDB_LENERR;
3881 type = (buf[0]&0xC0)>>6;
3882 if (type == REDIS_RDB_6BITLEN) {
3883 /* Read a 6 bit len */
3884 return buf[0]&0x3F;
3885 } else if (type == REDIS_RDB_ENCVAL) {
3886 /* Read a 6 bit len encoding type */
3887 if (isencoded) *isencoded = 1;
3888 return buf[0]&0x3F;
3889 } else if (type == REDIS_RDB_14BITLEN) {
3890 /* Read a 14 bit len */
3891 if (fread(buf+1,1,1,fp) == 0) return REDIS_RDB_LENERR;
3892 return ((buf[0]&0x3F)<<8)|buf[1];
3893 } else {
3894 /* Read a 32 bit len */
3895 if (fread(&len,4,1,fp) == 0) return REDIS_RDB_LENERR;
3896 return ntohl(len);
3897 }
3898 }
3899
3900 /* Load an integer-encoded object from file 'fp', with the specified
3901 * encoding type 'enctype'. If encode is true the function may return
3902 * an integer-encoded object as reply, otherwise the returned object
3903 * will always be encoded as a raw string. */
3904 static robj *rdbLoadIntegerObject(FILE *fp, int enctype, int encode) {
3905 unsigned char enc[4];
3906 long long val;
3907
3908 if (enctype == REDIS_RDB_ENC_INT8) {
3909 if (fread(enc,1,1,fp) == 0) return NULL;
3910 val = (signed char)enc[0];
3911 } else if (enctype == REDIS_RDB_ENC_INT16) {
3912 uint16_t v;
3913 if (fread(enc,2,1,fp) == 0) return NULL;
3914 v = enc[0]|(enc[1]<<8);
3915 val = (int16_t)v;
3916 } else if (enctype == REDIS_RDB_ENC_INT32) {
3917 uint32_t v;
3918 if (fread(enc,4,1,fp) == 0) return NULL;
3919 v = enc[0]|(enc[1]<<8)|(enc[2]<<16)|(enc[3]<<24);
3920 val = (int32_t)v;
3921 } else {
3922 val = 0; /* anti-warning */
3923 redisPanic("Unknown RDB integer encoding type");
3924 }
3925 if (encode)
3926 return createStringObjectFromLongLong(val);
3927 else
3928 return createObject(REDIS_STRING,sdsfromlonglong(val));
3929 }
3930
3931 static robj *rdbLoadLzfStringObject(FILE*fp) {
3932 unsigned int len, clen;
3933 unsigned char *c = NULL;
3934 sds val = NULL;
3935
3936 if ((clen = rdbLoadLen(fp,NULL)) == REDIS_RDB_LENERR) return NULL;
3937 if ((len = rdbLoadLen(fp,NULL)) == REDIS_RDB_LENERR) return NULL;
3938 if ((c = zmalloc(clen)) == NULL) goto err;
3939 if ((val = sdsnewlen(NULL,len)) == NULL) goto err;
3940 if (fread(c,clen,1,fp) == 0) goto err;
3941 if (lzf_decompress(c,clen,val,len) == 0) goto err;
3942 zfree(c);
3943 return createObject(REDIS_STRING,val);
3944 err:
3945 zfree(c);
3946 sdsfree(val);
3947 return NULL;
3948 }
3949
3950 static robj *rdbGenericLoadStringObject(FILE*fp, int encode) {
3951 int isencoded;
3952 uint32_t len;
3953 sds val;
3954
3955 len = rdbLoadLen(fp,&isencoded);
3956 if (isencoded) {
3957 switch(len) {
3958 case REDIS_RDB_ENC_INT8:
3959 case REDIS_RDB_ENC_INT16:
3960 case REDIS_RDB_ENC_INT32:
3961 return rdbLoadIntegerObject(fp,len,encode);
3962 case REDIS_RDB_ENC_LZF:
3963 return rdbLoadLzfStringObject(fp);
3964 default:
3965 redisPanic("Unknown RDB encoding type");
3966 }
3967 }
3968
3969 if (len == REDIS_RDB_LENERR) return NULL;
3970 val = sdsnewlen(NULL,len);
3971 if (len && fread(val,len,1,fp) == 0) {
3972 sdsfree(val);
3973 return NULL;
3974 }
3975 return createObject(REDIS_STRING,val);
3976 }
3977
3978 static robj *rdbLoadStringObject(FILE *fp) {
3979 return rdbGenericLoadStringObject(fp,0);
3980 }
3981
3982 static robj *rdbLoadEncodedStringObject(FILE *fp) {
3983 return rdbGenericLoadStringObject(fp,1);
3984 }
3985
3986 /* For information about double serialization check rdbSaveDoubleValue() */
3987 static int rdbLoadDoubleValue(FILE *fp, double *val) {
3988 char buf[128];
3989 unsigned char len;
3990
3991 if (fread(&len,1,1,fp) == 0) return -1;
3992 switch(len) {
3993 case 255: *val = R_NegInf; return 0;
3994 case 254: *val = R_PosInf; return 0;
3995 case 253: *val = R_Nan; return 0;
3996 default:
3997 if (fread(buf,len,1,fp) == 0) return -1;
3998 buf[len] = '\0';
3999 sscanf(buf, "%lg", val);
4000 return 0;
4001 }
4002 }
4003
4004 /* Load a Redis object of the specified type from the specified file.
4005 * On success a newly allocated object is returned, otherwise NULL. */
4006 static robj *rdbLoadObject(int type, FILE *fp) {
4007 robj *o;
4008
4009 redisLog(REDIS_DEBUG,"LOADING OBJECT %d (at %d)\n",type,ftell(fp));
4010 if (type == REDIS_STRING) {
4011 /* Read string value */
4012 if ((o = rdbLoadEncodedStringObject(fp)) == NULL) return NULL;
4013 o = tryObjectEncoding(o);
4014 } else if (type == REDIS_LIST || type == REDIS_SET) {
4015 /* Read list/set value */
4016 uint32_t listlen;
4017
4018 if ((listlen = rdbLoadLen(fp,NULL)) == REDIS_RDB_LENERR) return NULL;
4019 o = (type == REDIS_LIST) ? createListObject() : createSetObject();
4020 /* It's faster to expand the dict to the right size asap in order
4021 * to avoid rehashing */
4022 if (type == REDIS_SET && listlen > DICT_HT_INITIAL_SIZE)
4023 dictExpand(o->ptr,listlen);
4024 /* Load every single element of the list/set */
4025 while(listlen--) {
4026 robj *ele;
4027
4028 if ((ele = rdbLoadEncodedStringObject(fp)) == NULL) return NULL;
4029 ele = tryObjectEncoding(ele);
4030 if (type == REDIS_LIST) {
4031 listAddNodeTail((list*)o->ptr,ele);
4032 } else {
4033 dictAdd((dict*)o->ptr,ele,NULL);
4034 }
4035 }
4036 } else if (type == REDIS_ZSET) {
4037 /* Read list/set value */
4038 size_t zsetlen;
4039 zset *zs;
4040
4041 if ((zsetlen = rdbLoadLen(fp,NULL)) == REDIS_RDB_LENERR) return NULL;
4042 o = createZsetObject();
4043 zs = o->ptr;
4044 /* Load every single element of the list/set */
4045 while(zsetlen--) {
4046 robj *ele;
4047 double *score = zmalloc(sizeof(double));
4048
4049 if ((ele = rdbLoadEncodedStringObject(fp)) == NULL) return NULL;
4050 ele = tryObjectEncoding(ele);
4051 if (rdbLoadDoubleValue(fp,score) == -1) return NULL;
4052 dictAdd(zs->dict,ele,score);
4053 zslInsert(zs->zsl,*score,ele);
4054 incrRefCount(ele); /* added to skiplist */
4055 }
4056 } else if (type == REDIS_HASH) {
4057 size_t hashlen;
4058
4059 if ((hashlen = rdbLoadLen(fp,NULL)) == REDIS_RDB_LENERR) return NULL;
4060 o = createHashObject();
4061 /* Too many entries? Use an hash table. */
4062 if (hashlen > server.hash_max_zipmap_entries)
4063 convertToRealHash(o);
4064 /* Load every key/value, then set it into the zipmap or hash
4065 * table, as needed. */
4066 while(hashlen--) {
4067 robj *key, *val;
4068
4069 if ((key = rdbLoadStringObject(fp)) == NULL) return NULL;
4070 if ((val = rdbLoadStringObject(fp)) == NULL) return NULL;
4071 /* If we are using a zipmap and there are too big values
4072 * the object is converted to real hash table encoding. */
4073 if (o->encoding != REDIS_ENCODING_HT &&
4074 (sdslen(key->ptr) > server.hash_max_zipmap_value ||
4075 sdslen(val->ptr) > server.hash_max_zipmap_value))
4076 {
4077 convertToRealHash(o);
4078 }
4079
4080 if (o->encoding == REDIS_ENCODING_ZIPMAP) {
4081 unsigned char *zm = o->ptr;
4082
4083 zm = zipmapSet(zm,key->ptr,sdslen(key->ptr),
4084 val->ptr,sdslen(val->ptr),NULL);
4085 o->ptr = zm;
4086 decrRefCount(key);
4087 decrRefCount(val);
4088 } else {
4089 key = tryObjectEncoding(key);
4090 val = tryObjectEncoding(val);
4091 dictAdd((dict*)o->ptr,key,val);
4092 }
4093 }
4094 } else {
4095 redisPanic("Unknown object type");
4096 }
4097 return o;
4098 }
4099
4100 static int rdbLoad(char *filename) {
4101 FILE *fp;
4102 uint32_t dbid;
4103 int type, retval, rdbver;
4104 int swap_all_values = 0;
4105 dict *d = server.db[0].dict;
4106 redisDb *db = server.db+0;
4107 char buf[1024];
4108 time_t expiretime, now = time(NULL);
4109 long long loadedkeys = 0;
4110
4111 fp = fopen(filename,"r");
4112 if (!fp) return REDIS_ERR;
4113 if (fread(buf,9,1,fp) == 0) goto eoferr;
4114 buf[9] = '\0';
4115 if (memcmp(buf,"REDIS",5) != 0) {
4116 fclose(fp);
4117 redisLog(REDIS_WARNING,"Wrong signature trying to load DB from file");
4118 return REDIS_ERR;
4119 }
4120 rdbver = atoi(buf+5);
4121 if (rdbver != 1) {
4122 fclose(fp);
4123 redisLog(REDIS_WARNING,"Can't handle RDB format version %d",rdbver);
4124 return REDIS_ERR;
4125 }
4126 while(1) {
4127 robj *key, *val;
4128
4129 expiretime = -1;
4130 /* Read type. */
4131 if ((type = rdbLoadType(fp)) == -1) goto eoferr;
4132 if (type == REDIS_EXPIRETIME) {
4133 if ((expiretime = rdbLoadTime(fp)) == -1) goto eoferr;
4134 /* We read the time so we need to read the object type again */
4135 if ((type = rdbLoadType(fp)) == -1) goto eoferr;
4136 }
4137 if (type == REDIS_EOF) break;
4138 /* Handle SELECT DB opcode as a special case */
4139 if (type == REDIS_SELECTDB) {
4140 if ((dbid = rdbLoadLen(fp,NULL)) == REDIS_RDB_LENERR)
4141 goto eoferr;
4142 if (dbid >= (unsigned)server.dbnum) {
4143 redisLog(REDIS_WARNING,"FATAL: Data file was created with a Redis server configured to handle more than %d databases. Exiting\n", server.dbnum);
4144 exit(1);
4145 }
4146 db = server.db+dbid;
4147 d = db->dict;
4148 continue;
4149 }
4150 /* Read key */
4151 if ((key = rdbLoadStringObject(fp)) == NULL) goto eoferr;
4152 /* Read value */
4153 if ((val = rdbLoadObject(type,fp)) == NULL) goto eoferr;
4154 /* Check if the key already expired */
4155 if (expiretime != -1 && expiretime < now) {
4156 decrRefCount(key);
4157 decrRefCount(val);
4158 continue;
4159 }
4160 /* Add the new object in the hash table */
4161 retval = dictAdd(d,key,val);
4162 if (retval == DICT_ERR) {
4163 redisLog(REDIS_WARNING,"Loading DB, duplicated key (%s) found! Unrecoverable error, exiting now.", key->ptr);
4164 exit(1);
4165 }
4166 loadedkeys++;
4167 /* Set the expire time if needed */
4168 if (expiretime != -1) setExpire(db,key,expiretime);
4169
4170 /* Handle swapping while loading big datasets when VM is on */
4171
4172 /* If we detecter we are hopeless about fitting something in memory
4173 * we just swap every new key on disk. Directly...
4174 * Note that's important to check for this condition before resorting
4175 * to random sampling, otherwise we may try to swap already
4176 * swapped keys. */
4177 if (swap_all_values) {
4178 dictEntry *de = dictFind(d,key);
4179
4180 /* de may be NULL since the key already expired */
4181 if (de) {
4182 key = dictGetEntryKey(de);
4183 val = dictGetEntryVal(de);
4184
4185 if (vmSwapObjectBlocking(key,val) == REDIS_OK) {
4186 dictGetEntryVal(de) = NULL;
4187 }
4188 }
4189 continue;
4190 }
4191
4192 /* If we have still some hope of having some value fitting memory
4193 * then we try random sampling. */
4194 if (!swap_all_values && server.vm_enabled && (loadedkeys % 5000) == 0) {
4195 while (zmalloc_used_memory() > server.vm_max_memory) {
4196 if (vmSwapOneObjectBlocking() == REDIS_ERR) break;
4197 }
4198 if (zmalloc_used_memory() > server.vm_max_memory)
4199 swap_all_values = 1; /* We are already using too much mem */
4200 }
4201 }
4202 fclose(fp);
4203 return REDIS_OK;
4204
4205 eoferr: /* unexpected end of file is handled here with a fatal exit */
4206 redisLog(REDIS_WARNING,"Short read or OOM loading DB. Unrecoverable error, aborting now.");
4207 exit(1);
4208 return REDIS_ERR; /* Just to avoid warning */
4209 }
4210
4211 /*================================== Shutdown =============================== */
4212 static int prepareForShutdown() {
4213 redisLog(REDIS_WARNING,"User requested shutdown, saving DB...");
4214 /* Kill the saving child if there is a background saving in progress.
4215 We want to avoid race conditions, for instance our saving child may
4216 overwrite the synchronous saving did by SHUTDOWN. */
4217 if (server.bgsavechildpid != -1) {
4218 redisLog(REDIS_WARNING,"There is a live saving child. Killing it!");
4219 kill(server.bgsavechildpid,SIGKILL);
4220 rdbRemoveTempFile(server.bgsavechildpid);
4221 }
4222 if (server.appendonly) {
4223 /* Append only file: fsync() the AOF and exit */
4224 fsync(server.appendfd);
4225 if (server.vm_enabled) unlink(server.vm_swap_file);
4226 } else {
4227 /* Snapshotting. Perform a SYNC SAVE and exit */
4228 if (rdbSave(server.dbfilename) == REDIS_OK) {
4229 if (server.daemonize)
4230 unlink(server.pidfile);
4231 redisLog(REDIS_WARNING,"%zu bytes used at exit",zmalloc_used_memory());
4232 } else {
4233 /* Ooops.. error saving! The best we can do is to continue
4234 * operating. Note that if there was a background saving process,
4235 * in the next cron() Redis will be notified that the background
4236 * saving aborted, handling special stuff like slaves pending for
4237 * synchronization... */
4238 redisLog(REDIS_WARNING,"Error trying to save the DB, can't exit");
4239 return REDIS_ERR;
4240 }
4241 }
4242 redisLog(REDIS_WARNING,"Server exit now, bye bye...");
4243 return REDIS_OK;
4244 }
4245
4246 /*================================== Commands =============================== */
4247
4248 static void authCommand(redisClient *c) {
4249 if (!server.requirepass || !strcmp(c->argv[1]->ptr, server.requirepass)) {
4250 c->authenticated = 1;
4251 addReply(c,shared.ok);
4252 } else {
4253 c->authenticated = 0;
4254 addReplySds(c,sdscatprintf(sdsempty(),"-ERR invalid password\r\n"));
4255 }
4256 }
4257
4258 static void pingCommand(redisClient *c) {
4259 addReply(c,shared.pong);
4260 }
4261
4262 static void echoCommand(redisClient *c) {
4263 addReplyBulk(c,c->argv[1]);
4264 }
4265
4266 /*=================================== Strings =============================== */
4267
4268 static void setGenericCommand(redisClient *c, int nx, robj *key, robj *val, robj *expire) {
4269 int retval;
4270 long seconds = 0; /* initialized to avoid an harmness warning */
4271
4272 if (expire) {
4273 if (getLongFromObjectOrReply(c, expire, &seconds, NULL) != REDIS_OK)
4274 return;
4275 if (seconds <= 0) {
4276 addReplySds(c,sdsnew("-ERR invalid expire time in SETEX\r\n"));
4277 return;
4278 }
4279 }
4280
4281 touchWatchedKey(c->db,key);
4282 if (nx) deleteIfVolatile(c->db,key);
4283 retval = dictAdd(c->db->dict,key,val);
4284 if (retval == DICT_ERR) {
4285 if (!nx) {
4286 /* If the key is about a swapped value, we want a new key object
4287 * to overwrite the old. So we delete the old key in the database.
4288 * This will also make sure that swap pages about the old object
4289 * will be marked as free. */
4290 if (server.vm_enabled && deleteIfSwapped(c->db,key))
4291 incrRefCount(key);
4292 dictReplace(c->db->dict,key,val);
4293 incrRefCount(val);
4294 } else {
4295 addReply(c,shared.czero);
4296 return;
4297 }
4298 } else {
4299 incrRefCount(key);
4300 incrRefCount(val);
4301 }
4302 server.dirty++;
4303 removeExpire(c->db,key);
4304 if (expire) setExpire(c->db,key,time(NULL)+seconds);
4305 addReply(c, nx ? shared.cone : shared.ok);
4306 }
4307
4308 static void setCommand(redisClient *c) {
4309 setGenericCommand(c,0,c->argv[1],c->argv[2],NULL);
4310 }
4311
4312 static void setnxCommand(redisClient *c) {
4313 setGenericCommand(c,1,c->argv[1],c->argv[2],NULL);
4314 }
4315
4316 static void setexCommand(redisClient *c) {
4317 setGenericCommand(c,0,c->argv[1],c->argv[3],c->argv[2]);
4318 }
4319
4320 static int getGenericCommand(redisClient *c) {
4321 robj *o;
4322
4323 if ((o = lookupKeyReadOrReply(c,c->argv[1],shared.nullbulk)) == NULL)
4324 return REDIS_OK;
4325
4326 if (o->type != REDIS_STRING) {
4327 addReply(c,shared.wrongtypeerr);
4328 return REDIS_ERR;
4329 } else {
4330 addReplyBulk(c,o);
4331 return REDIS_OK;
4332 }
4333 }
4334
4335 static void getCommand(redisClient *c) {
4336 getGenericCommand(c);
4337 }
4338
4339 static void getsetCommand(redisClient *c) {
4340 if (getGenericCommand(c) == REDIS_ERR) return;
4341 if (dictAdd(c->db->dict,c->argv[1],c->argv[2]) == DICT_ERR) {
4342 dictReplace(c->db->dict,c->argv[1],c->argv[2]);
4343 } else {
4344 incrRefCount(c->argv[1]);
4345 }
4346 incrRefCount(c->argv[2]);
4347 server.dirty++;
4348 removeExpire(c->db,c->argv[1]);
4349 }
4350
4351 static void mgetCommand(redisClient *c) {
4352 int j;
4353
4354 addReplySds(c,sdscatprintf(sdsempty(),"*%d\r\n",c->argc-1));
4355 for (j = 1; j < c->argc; j++) {
4356 robj *o = lookupKeyRead(c->db,c->argv[j]);
4357 if (o == NULL) {
4358 addReply(c,shared.nullbulk);
4359 } else {
4360 if (o->type != REDIS_STRING) {
4361 addReply(c,shared.nullbulk);
4362 } else {
4363 addReplyBulk(c,o);
4364 }
4365 }
4366 }
4367 }
4368
4369 static void msetGenericCommand(redisClient *c, int nx) {
4370 int j, busykeys = 0;
4371
4372 if ((c->argc % 2) == 0) {
4373 addReplySds(c,sdsnew("-ERR wrong number of arguments for MSET\r\n"));
4374 return;
4375 }
4376 /* Handle the NX flag. The MSETNX semantic is to return zero and don't
4377 * set nothing at all if at least one already key exists. */
4378 if (nx) {
4379 for (j = 1; j < c->argc; j += 2) {
4380 if (lookupKeyWrite(c->db,c->argv[j]) != NULL) {
4381 busykeys++;
4382 }
4383 }
4384 }
4385 if (busykeys) {
4386 addReply(c, shared.czero);
4387 return;
4388 }
4389
4390 for (j = 1; j < c->argc; j += 2) {
4391 int retval;
4392
4393 c->argv[j+1] = tryObjectEncoding(c->argv[j+1]);
4394 retval = dictAdd(c->db->dict,c->argv[j],c->argv[j+1]);
4395 if (retval == DICT_ERR) {
4396 dictReplace(c->db->dict,c->argv[j],c->argv[j+1]);
4397 incrRefCount(c->argv[j+1]);
4398 } else {
4399 incrRefCount(c->argv[j]);
4400 incrRefCount(c->argv[j+1]);
4401 }
4402 removeExpire(c->db,c->argv[j]);
4403 }
4404 server.dirty += (c->argc-1)/2;
4405 addReply(c, nx ? shared.cone : shared.ok);
4406 }
4407
4408 static void msetCommand(redisClient *c) {
4409 msetGenericCommand(c,0);
4410 }
4411
4412 static void msetnxCommand(redisClient *c) {
4413 msetGenericCommand(c,1);
4414 }
4415
4416 static void incrDecrCommand(redisClient *c, long long incr) {
4417 long long value;
4418 int retval;
4419 robj *o;
4420
4421 o = lookupKeyWrite(c->db,c->argv[1]);
4422 if (o != NULL && checkType(c,o,REDIS_STRING)) return;
4423 if (getLongLongFromObjectOrReply(c,o,&value,NULL) != REDIS_OK) return;
4424
4425 value += incr;
4426 o = createStringObjectFromLongLong(value);
4427 retval = dictAdd(c->db->dict,c->argv[1],o);
4428 if (retval == DICT_ERR) {
4429 dictReplace(c->db->dict,c->argv[1],o);
4430 removeExpire(c->db,c->argv[1]);
4431 } else {
4432 incrRefCount(c->argv[1]);
4433 }
4434 server.dirty++;
4435 addReply(c,shared.colon);
4436 addReply(c,o);
4437 addReply(c,shared.crlf);
4438 }
4439
4440 static void incrCommand(redisClient *c) {
4441 incrDecrCommand(c,1);
4442 }
4443
4444 static void decrCommand(redisClient *c) {
4445 incrDecrCommand(c,-1);
4446 }
4447
4448 static void incrbyCommand(redisClient *c) {
4449 long long incr;
4450
4451 if (getLongLongFromObjectOrReply(c, c->argv[2], &incr, NULL) != REDIS_OK) return;
4452 incrDecrCommand(c,incr);
4453 }
4454
4455 static void decrbyCommand(redisClient *c) {
4456 long long incr;
4457
4458 if (getLongLongFromObjectOrReply(c, c->argv[2], &incr, NULL) != REDIS_OK) return;
4459 incrDecrCommand(c,-incr);
4460 }
4461
4462 static void appendCommand(redisClient *c) {
4463 int retval;
4464 size_t totlen;
4465 robj *o;
4466
4467 o = lookupKeyWrite(c->db,c->argv[1]);
4468 if (o == NULL) {
4469 /* Create the key */
4470 retval = dictAdd(c->db->dict,c->argv[1],c->argv[2]);
4471 incrRefCount(c->argv[1]);
4472 incrRefCount(c->argv[2]);
4473 totlen = stringObjectLen(c->argv[2]);
4474 } else {
4475 dictEntry *de;
4476
4477 de = dictFind(c->db->dict,c->argv[1]);
4478 assert(de != NULL);
4479
4480 o = dictGetEntryVal(de);
4481 if (o->type != REDIS_STRING) {
4482 addReply(c,shared.wrongtypeerr);
4483 return;
4484 }
4485 /* If the object is specially encoded or shared we have to make
4486 * a copy */
4487 if (o->refcount != 1 || o->encoding != REDIS_ENCODING_RAW) {
4488 robj *decoded = getDecodedObject(o);
4489
4490 o = createStringObject(decoded->ptr, sdslen(decoded->ptr));
4491 decrRefCount(decoded);
4492 dictReplace(c->db->dict,c->argv[1],o);
4493 }
4494 /* APPEND! */
4495 if (c->argv[2]->encoding == REDIS_ENCODING_RAW) {
4496 o->ptr = sdscatlen(o->ptr,
4497 c->argv[2]->ptr, sdslen(c->argv[2]->ptr));
4498 } else {
4499 o->ptr = sdscatprintf(o->ptr, "%ld",
4500 (unsigned long) c->argv[2]->ptr);
4501 }
4502 totlen = sdslen(o->ptr);
4503 }
4504 server.dirty++;
4505 addReplySds(c,sdscatprintf(sdsempty(),":%lu\r\n",(unsigned long)totlen));
4506 }
4507
4508 static void substrCommand(redisClient *c) {
4509 robj *o;
4510 long start = atoi(c->argv[2]->ptr);
4511 long end = atoi(c->argv[3]->ptr);
4512 size_t rangelen, strlen;
4513 sds range;
4514
4515 if ((o = lookupKeyReadOrReply(c,c->argv[1],shared.nullbulk)) == NULL ||
4516 checkType(c,o,REDIS_STRING)) return;
4517
4518 o = getDecodedObject(o);
4519 strlen = sdslen(o->ptr);
4520
4521 /* convert negative indexes */
4522 if (start < 0) start = strlen+start;
4523 if (end < 0) end = strlen+end;
4524 if (start < 0) start = 0;
4525 if (end < 0) end = 0;
4526
4527 /* indexes sanity checks */
4528 if (start > end || (size_t)start >= strlen) {
4529 /* Out of range start or start > end result in null reply */
4530 addReply(c,shared.nullbulk);
4531 decrRefCount(o);
4532 return;
4533 }
4534 if ((size_t)end >= strlen) end = strlen-1;
4535 rangelen = (end-start)+1;
4536
4537 /* Return the result */
4538 addReplySds(c,sdscatprintf(sdsempty(),"$%zu\r\n",rangelen));
4539 range = sdsnewlen((char*)o->ptr+start,rangelen);
4540 addReplySds(c,range);
4541 addReply(c,shared.crlf);
4542 decrRefCount(o);
4543 }
4544
4545 /* ========================= Type agnostic commands ========================= */
4546
4547 static void delCommand(redisClient *c) {
4548 int deleted = 0, j;
4549
4550 for (j = 1; j < c->argc; j++) {
4551 if (deleteKey(c->db,c->argv[j])) {
4552 touchWatchedKey(c->db,c->argv[j]);
4553 server.dirty++;
4554 deleted++;
4555 }
4556 }
4557 addReplyLongLong(c,deleted);
4558 }
4559
4560 static void existsCommand(redisClient *c) {
4561 expireIfNeeded(c->db,c->argv[1]);
4562 if (dictFind(c->db->dict,c->argv[1])) {
4563 addReply(c, shared.cone);
4564 } else {
4565 addReply(c, shared.czero);
4566 }
4567 }
4568
4569 static void selectCommand(redisClient *c) {
4570 int id = atoi(c->argv[1]->ptr);
4571
4572 if (selectDb(c,id) == REDIS_ERR) {
4573 addReplySds(c,sdsnew("-ERR invalid DB index\r\n"));
4574 } else {
4575 addReply(c,shared.ok);
4576 }
4577 }
4578
4579 static void randomkeyCommand(redisClient *c) {
4580 dictEntry *de;
4581 robj *key;
4582
4583 while(1) {
4584 de = dictGetRandomKey(c->db->dict);
4585 if (!de || expireIfNeeded(c->db,dictGetEntryKey(de)) == 0) break;
4586 }
4587
4588 if (de == NULL) {
4589 addReply(c,shared.nullbulk);
4590 return;
4591 }
4592
4593 key = dictGetEntryKey(de);
4594 if (server.vm_enabled) {
4595 key = dupStringObject(key);
4596 addReplyBulk(c,key);
4597 decrRefCount(key);
4598 } else {
4599 addReplyBulk(c,key);
4600 }
4601 }
4602
4603 static void keysCommand(redisClient *c) {
4604 dictIterator *di;
4605 dictEntry *de;
4606 sds pattern = c->argv[1]->ptr;
4607 int plen = sdslen(pattern);
4608 unsigned long numkeys = 0;
4609 robj *lenobj = createObject(REDIS_STRING,NULL);
4610
4611 di = dictGetIterator(c->db->dict);
4612 addReply(c,lenobj);
4613 decrRefCount(lenobj);
4614 while((de = dictNext(di)) != NULL) {
4615 robj *keyobj = dictGetEntryKey(de);
4616
4617 sds key = keyobj->ptr;
4618 if ((pattern[0] == '*' && pattern[1] == '\0') ||
4619 stringmatchlen(pattern,plen,key,sdslen(key),0)) {
4620 if (expireIfNeeded(c->db,keyobj) == 0) {
4621 addReplyBulk(c,keyobj);
4622 numkeys++;
4623 }
4624 }
4625 }
4626 dictReleaseIterator(di);
4627 lenobj->ptr = sdscatprintf(sdsempty(),"*%lu\r\n",numkeys);
4628 }
4629
4630 static void dbsizeCommand(redisClient *c) {
4631 addReplySds(c,
4632 sdscatprintf(sdsempty(),":%lu\r\n",dictSize(c->db->dict)));
4633 }
4634
4635 static void lastsaveCommand(redisClient *c) {
4636 addReplySds(c,
4637 sdscatprintf(sdsempty(),":%lu\r\n",server.lastsave));
4638 }
4639
4640 static void typeCommand(redisClient *c) {
4641 robj *o;
4642 char *type;
4643
4644 o = lookupKeyRead(c->db,c->argv[1]);
4645 if (o == NULL) {
4646 type = "+none";
4647 } else {
4648 switch(o->type) {
4649 case REDIS_STRING: type = "+string"; break;
4650 case REDIS_LIST: type = "+list"; break;
4651 case REDIS_SET: type = "+set"; break;
4652 case REDIS_ZSET: type = "+zset"; break;
4653 case REDIS_HASH: type = "+hash"; break;
4654 default: type = "+unknown"; break;
4655 }
4656 }
4657 addReplySds(c,sdsnew(type));
4658 addReply(c,shared.crlf);
4659 }
4660
4661 static void saveCommand(redisClient *c) {
4662 if (server.bgsavechildpid != -1) {
4663 addReplySds(c,sdsnew("-ERR background save in progress\r\n"));
4664 return;
4665 }
4666 if (rdbSave(server.dbfilename) == REDIS_OK) {
4667 addReply(c,shared.ok);
4668 } else {
4669 addReply(c,shared.err);
4670 }
4671 }
4672
4673 static void bgsaveCommand(redisClient *c) {
4674 if (server.bgsavechildpid != -1) {
4675 addReplySds(c,sdsnew("-ERR background save already in progress\r\n"));
4676 return;
4677 }
4678 if (rdbSaveBackground(server.dbfilename) == REDIS_OK) {
4679 char *status = "+Background saving started\r\n";
4680 addReplySds(c,sdsnew(status));
4681 } else {
4682 addReply(c,shared.err);
4683 }
4684 }
4685
4686 static void shutdownCommand(redisClient *c) {
4687 if (prepareForShutdown() == REDIS_OK)
4688 exit(0);
4689 addReplySds(c, sdsnew("-ERR Errors trying to SHUTDOWN. Check logs.\r\n"));
4690 }
4691
4692 static void renameGenericCommand(redisClient *c, int nx) {
4693 robj *o;
4694
4695 /* To use the same key as src and dst is probably an error */
4696 if (sdscmp(c->argv[1]->ptr,c->argv[2]->ptr) == 0) {
4697 addReply(c,shared.sameobjecterr);
4698 return;
4699 }
4700
4701 if ((o = lookupKeyWriteOrReply(c,c->argv[1],shared.nokeyerr)) == NULL)
4702 return;
4703
4704 incrRefCount(o);
4705 deleteIfVolatile(c->db,c->argv[2]);
4706 if (dictAdd(c->db->dict,c->argv[2],o) == DICT_ERR) {
4707 if (nx) {
4708 decrRefCount(o);
4709 addReply(c,shared.czero);
4710 return;
4711 }
4712 dictReplace(c->db->dict,c->argv[2],o);
4713 } else {
4714 incrRefCount(c->argv[2]);
4715 }
4716 deleteKey(c->db,c->argv[1]);
4717 touchWatchedKey(c->db,c->argv[2]);
4718 server.dirty++;
4719 addReply(c,nx ? shared.cone : shared.ok);
4720 }
4721
4722 static void renameCommand(redisClient *c) {
4723 renameGenericCommand(c,0);
4724 }
4725
4726 static void renamenxCommand(redisClient *c) {
4727 renameGenericCommand(c,1);
4728 }
4729
4730 static void moveCommand(redisClient *c) {
4731 robj *o;
4732 redisDb *src, *dst;
4733 int srcid;
4734
4735 /* Obtain source and target DB pointers */
4736 src = c->db;
4737 srcid = c->db->id;
4738 if (selectDb(c,atoi(c->argv[2]->ptr)) == REDIS_ERR) {
4739 addReply(c,shared.outofrangeerr);
4740 return;
4741 }
4742 dst = c->db;
4743 selectDb(c,srcid); /* Back to the source DB */
4744
4745 /* If the user is moving using as target the same
4746 * DB as the source DB it is probably an error. */
4747 if (src == dst) {
4748 addReply(c,shared.sameobjecterr);
4749 return;
4750 }
4751
4752 /* Check if the element exists and get a reference */
4753 o = lookupKeyWrite(c->db,c->argv[1]);
4754 if (!o) {
4755 addReply(c,shared.czero);
4756 return;
4757 }
4758
4759 /* Try to add the element to the target DB */
4760 deleteIfVolatile(dst,c->argv[1]);
4761 if (dictAdd(dst->dict,c->argv[1],o) == DICT_ERR) {
4762 addReply(c,shared.czero);
4763 return;
4764 }
4765 incrRefCount(c->argv[1]);
4766 incrRefCount(o);
4767
4768 /* OK! key moved, free the entry in the source DB */
4769 deleteKey(src,c->argv[1]);
4770 server.dirty++;
4771 addReply(c,shared.cone);
4772 }
4773
4774 /* =================================== Lists ================================ */
4775 static void lPush(robj *subject, robj *value, int where) {
4776 if (subject->encoding == REDIS_ENCODING_ZIPLIST) {
4777 int pos = (where == REDIS_HEAD) ? ZIPLIST_HEAD : ZIPLIST_TAIL;
4778 value = getDecodedObject(value);
4779 subject->ptr = ziplistPush(subject->ptr,value->ptr,sdslen(value->ptr),pos);
4780 decrRefCount(value);
4781 } else if (subject->encoding == REDIS_ENCODING_LIST) {
4782 if (where == REDIS_HEAD) {
4783 listAddNodeHead(subject->ptr,value);
4784 } else {
4785 listAddNodeTail(subject->ptr,value);
4786 }
4787 incrRefCount(value);
4788 } else {
4789 redisPanic("Unknown list encoding");
4790 }
4791 }
4792
4793 static robj *lPop(robj *subject, int where) {
4794 robj *value = NULL;
4795 if (subject->encoding == REDIS_ENCODING_ZIPLIST) {
4796 unsigned char *p;
4797 char *v;
4798 unsigned int vlen;
4799 long long vval;
4800 int pos = (where == REDIS_HEAD) ? 0 : -1;
4801 p = ziplistIndex(subject->ptr,pos);
4802 if (ziplistGet(p,&v,&vlen,&vval)) {
4803 if (v) {
4804 value = createStringObject(v,vlen);
4805 } else {
4806 value = createStringObjectFromLongLong(vval);
4807 }
4808 }
4809 subject->ptr = ziplistDelete(subject->ptr,&p);
4810 } else if (subject->encoding == REDIS_ENCODING_LIST) {
4811 list *list = subject->ptr;
4812 listNode *ln;
4813 if (where == REDIS_HEAD) {
4814 ln = listFirst(list);
4815 } else {
4816 ln = listLast(list);
4817 }
4818 if (ln != NULL) {
4819 value = listNodeValue(ln);
4820 incrRefCount(value);
4821 listDelNode(list,ln);
4822 }
4823 } else {
4824 redisPanic("Unknown list encoding");
4825 }
4826 return value;
4827 }
4828
4829 static unsigned long lLength(robj *subject) {
4830 if (subject->encoding == REDIS_ENCODING_ZIPLIST) {
4831 return ziplistLen(subject->ptr);
4832 } else if (subject->encoding == REDIS_ENCODING_LIST) {
4833 return listLength((list*)subject->ptr);
4834 } else {
4835 redisPanic("Unknown list encoding");
4836 }
4837 }
4838
4839 /* Structure to hold set iteration abstraction. */
4840 typedef struct {
4841 robj *subject;
4842 unsigned char encoding;
4843 unsigned char direction; /* Iteration direction */
4844 unsigned char *zi;
4845 listNode *ln;
4846 } lIterator;
4847
4848 /* Structure for an entry while iterating over a list. */
4849 typedef struct {
4850 lIterator *li;
4851 unsigned char *zi; /* Entry in ziplist */
4852 listNode *ln; /* Entry in linked list */
4853 } lEntry;
4854
4855 /* Initialize an iterator at the specified index. */
4856 static lIterator *lInitIterator(robj *subject, int index, unsigned char direction) {
4857 lIterator *li = zmalloc(sizeof(lIterator));
4858 li->subject = subject;
4859 li->encoding = subject->encoding;
4860 li->direction = direction;
4861 if (li->encoding == REDIS_ENCODING_ZIPLIST) {
4862 li->zi = ziplistIndex(subject->ptr,index);
4863 } else if (li->encoding == REDIS_ENCODING_LIST) {
4864 li->ln = listIndex(subject->ptr,index);
4865 } else {
4866 redisPanic("Unknown list encoding");
4867 }
4868 return li;
4869 }
4870
4871 /* Clean up the iterator. */
4872 static void lReleaseIterator(lIterator *li) {
4873 zfree(li);
4874 }
4875
4876 /* Stores pointer to current the entry in the provided entry structure
4877 * and advances the position of the iterator. Returns 1 when the current
4878 * entry is in fact an entry, 0 otherwise. */
4879 static int lNext(lIterator *li, lEntry *entry) {
4880 entry->li = li;
4881 if (li->encoding == REDIS_ENCODING_ZIPLIST) {
4882 entry->zi = li->zi;
4883 if (entry->zi != NULL) {
4884 if (li->direction == REDIS_TAIL)
4885 li->zi = ziplistNext(li->subject->ptr,li->zi);
4886 else
4887 li->zi = ziplistPrev(li->subject->ptr,li->zi);
4888 return 1;
4889 }
4890 } else if (li->encoding == REDIS_ENCODING_LIST) {
4891 entry->ln = li->ln;
4892 if (entry->ln != NULL) {
4893 if (li->direction == REDIS_TAIL)
4894 li->ln = li->ln->next;
4895 else
4896 li->ln = li->ln->prev;
4897 return 1;
4898 }
4899 } else {
4900 redisPanic("Unknown list encoding");
4901 }
4902 return 0;
4903 }
4904
4905 /* Return entry or NULL at the current position of the iterator. */
4906 static robj *lGet(lEntry *entry) {
4907 lIterator *li = entry->li;
4908 robj *value = NULL;
4909 if (li->encoding == REDIS_ENCODING_ZIPLIST) {
4910 char *v;
4911 unsigned int vlen;
4912 long long vval;
4913 redisAssert(entry->zi != NULL);
4914 if (ziplistGet(entry->zi,&v,&vlen,&vval)) {
4915 if (v) {
4916 value = createStringObject(v,vlen);
4917 } else {
4918 value = createStringObjectFromLongLong(vval);
4919 }
4920 }
4921 } else if (li->encoding == REDIS_ENCODING_LIST) {
4922 redisAssert(entry->ln != NULL);
4923 value = listNodeValue(entry->ln);
4924 incrRefCount(value);
4925 } else {
4926 redisPanic("Unknown list encoding");
4927 }
4928 return value;
4929 }
4930
4931 /* Compare the given object with the entry at the current position. */
4932 static int lEqual(lEntry *entry, robj *o) {
4933 lIterator *li = entry->li;
4934 if (li->encoding == REDIS_ENCODING_ZIPLIST) {
4935 redisAssert(o->encoding == REDIS_ENCODING_RAW);
4936 return ziplistCompare(entry->zi,o->ptr,sdslen(o->ptr));
4937 } else if (li->encoding == REDIS_ENCODING_LIST) {
4938 return equalStringObjects(o,listNodeValue(entry->ln));
4939 } else {
4940 redisPanic("Unknown list encoding");
4941 }
4942 }
4943
4944 /* Delete the element pointed to. */
4945 static void lDelete(lEntry *entry) {
4946 lIterator *li = entry->li;
4947 if (li->encoding == REDIS_ENCODING_ZIPLIST) {
4948 unsigned char *p = entry->zi;
4949 li->subject->ptr = ziplistDelete(li->subject->ptr,&p);
4950
4951 /* Update position of the iterator depending on the direction */
4952 if (li->direction == REDIS_TAIL)
4953 li->zi = p;
4954 else
4955 li->zi = ziplistPrev(li->subject->ptr,p);
4956 } else if (entry->li->encoding == REDIS_ENCODING_LIST) {
4957 listNode *next;
4958 if (li->direction == REDIS_TAIL)
4959 next = entry->ln->next;
4960 else
4961 next = entry->ln->prev;
4962 listDelNode(li->subject->ptr,entry->ln);
4963 li->ln = next;
4964 } else {
4965 redisPanic("Unknown list encoding");
4966 }
4967 }
4968
4969 static void pushGenericCommand(redisClient *c, int where) {
4970 robj *lobj = lookupKeyWrite(c->db,c->argv[1]);
4971 if (lobj == NULL) {
4972 if (handleClientsWaitingListPush(c,c->argv[1],c->argv[2])) {
4973 addReply(c,shared.cone);
4974 return;
4975 }
4976 lobj = createObject(REDIS_LIST,ziplistNew());
4977 lobj->encoding = REDIS_ENCODING_ZIPLIST;
4978 dictAdd(c->db->dict,c->argv[1],lobj);
4979 incrRefCount(c->argv[1]);
4980 } else {
4981 if (lobj->type != REDIS_LIST) {
4982 addReply(c,shared.wrongtypeerr);
4983 return;
4984 }
4985 if (handleClientsWaitingListPush(c,c->argv[1],c->argv[2])) {
4986 addReply(c,shared.cone);
4987 return;
4988 }
4989 }
4990 lPush(lobj,c->argv[2],where);
4991 addReplyLongLong(c,lLength(lobj));
4992 server.dirty++;
4993 }
4994
4995 static void lpushCommand(redisClient *c) {
4996 pushGenericCommand(c,REDIS_HEAD);
4997 }
4998
4999 static void rpushCommand(redisClient *c) {
5000 pushGenericCommand(c,REDIS_TAIL);
5001 }
5002
5003 static void llenCommand(redisClient *c) {
5004 robj *o = lookupKeyReadOrReply(c,c->argv[1],shared.czero);
5005 if (o == NULL || checkType(c,o,REDIS_LIST)) return;
5006 addReplyUlong(c,lLength(o));
5007 }
5008
5009 static void lindexCommand(redisClient *c) {
5010 robj *o = lookupKeyReadOrReply(c,c->argv[1],shared.nullbulk);
5011 if (o == NULL || checkType(c,o,REDIS_LIST)) return;
5012 int index = atoi(c->argv[2]->ptr);
5013 robj *value = NULL;
5014
5015 if (o->encoding == REDIS_ENCODING_ZIPLIST) {
5016 unsigned char *p;
5017 char *v;
5018 unsigned int vlen;
5019 long long vval;
5020 p = ziplistIndex(o->ptr,index);
5021 if (ziplistGet(p,&v,&vlen,&vval)) {
5022 if (v) {
5023 value = createStringObject(v,vlen);
5024 } else {
5025 value = createStringObjectFromLongLong(vval);
5026 }
5027 addReplyBulk(c,value);
5028 decrRefCount(value);
5029 } else {
5030 addReply(c,shared.nullbulk);
5031 }
5032 } else if (o->encoding == REDIS_ENCODING_LIST) {
5033 listNode *ln = listIndex(o->ptr,index);
5034 if (ln != NULL) {
5035 value = listNodeValue(ln);
5036 addReplyBulk(c,value);
5037 } else {
5038 addReply(c,shared.nullbulk);
5039 }
5040 } else {
5041 redisPanic("Unknown list encoding");
5042 }
5043 }
5044
5045 static void lsetCommand(redisClient *c) {
5046 robj *o = lookupKeyWriteOrReply(c,c->argv[1],shared.nokeyerr);
5047 if (o == NULL || checkType(c,o,REDIS_LIST)) return;
5048 int index = atoi(c->argv[2]->ptr);
5049 robj *value = c->argv[3];
5050
5051 if (o->encoding == REDIS_ENCODING_ZIPLIST) {
5052 unsigned char *p, *zl = o->ptr;
5053 p = ziplistIndex(zl,index);
5054 if (p == NULL) {
5055 addReply(c,shared.outofrangeerr);
5056 } else {
5057 o->ptr = ziplistDelete(o->ptr,&p);
5058 value = getDecodedObject(value);
5059 o->ptr = ziplistInsert(o->ptr,p,value->ptr,sdslen(value->ptr));
5060 decrRefCount(value);
5061 addReply(c,shared.ok);
5062 server.dirty++;
5063 }
5064 } else if (o->encoding == REDIS_ENCODING_LIST) {
5065 listNode *ln = listIndex(o->ptr,index);
5066 if (ln == NULL) {
5067 addReply(c,shared.outofrangeerr);
5068 } else {
5069 decrRefCount((robj*)listNodeValue(ln));
5070 listNodeValue(ln) = value;
5071 incrRefCount(value);
5072 addReply(c,shared.ok);
5073 server.dirty++;
5074 }
5075 } else {
5076 redisPanic("Unknown list encoding");
5077 }
5078 }
5079
5080 static void popGenericCommand(redisClient *c, int where) {
5081 robj *o = lookupKeyWriteOrReply(c,c->argv[1],shared.nullbulk);
5082 if (o == NULL || checkType(c,o,REDIS_LIST)) return;
5083
5084 robj *value = lPop(o,where);
5085 if (value == NULL) {
5086 addReply(c,shared.nullbulk);
5087 } else {
5088 addReplyBulk(c,value);
5089 decrRefCount(value);
5090 if (lLength(o) == 0) deleteKey(c->db,c->argv[1]);
5091 server.dirty++;
5092 }
5093 }
5094
5095 static void lpopCommand(redisClient *c) {
5096 popGenericCommand(c,REDIS_HEAD);
5097 }
5098
5099 static void rpopCommand(redisClient *c) {
5100 popGenericCommand(c,REDIS_TAIL);
5101 }
5102
5103 static void lrangeCommand(redisClient *c) {
5104 robj *o, *value;
5105 int start = atoi(c->argv[2]->ptr);
5106 int end = atoi(c->argv[3]->ptr);
5107 int llen;
5108 int rangelen, j;
5109 lEntry entry;
5110
5111 if ((o = lookupKeyReadOrReply(c,c->argv[1],shared.emptymultibulk)) == NULL
5112 || checkType(c,o,REDIS_LIST)) return;
5113 llen = lLength(o);
5114
5115 /* convert negative indexes */
5116 if (start < 0) start = llen+start;
5117 if (end < 0) end = llen+end;
5118 if (start < 0) start = 0;
5119 if (end < 0) end = 0;
5120
5121 /* indexes sanity checks */
5122 if (start > end || start >= llen) {
5123 /* Out of range start or start > end result in empty list */
5124 addReply(c,shared.emptymultibulk);
5125 return;
5126 }
5127 if (end >= llen) end = llen-1;
5128 rangelen = (end-start)+1;
5129
5130 /* Return the result in form of a multi-bulk reply */
5131 addReplySds(c,sdscatprintf(sdsempty(),"*%d\r\n",rangelen));
5132 lIterator *li = lInitIterator(o,start,REDIS_TAIL);
5133 for (j = 0; j < rangelen; j++) {
5134 redisAssert(lNext(li,&entry));
5135 value = lGet(&entry);
5136 addReplyBulk(c,value);
5137 decrRefCount(value);
5138 }
5139 lReleaseIterator(li);
5140 }
5141
5142 static void ltrimCommand(redisClient *c) {
5143 robj *o;
5144 int start = atoi(c->argv[2]->ptr);
5145 int end = atoi(c->argv[3]->ptr);
5146 int llen;
5147 int j, ltrim, rtrim;
5148 list *list;
5149 listNode *ln;
5150
5151 if ((o = lookupKeyWriteOrReply(c,c->argv[1],shared.ok)) == NULL ||
5152 checkType(c,o,REDIS_LIST)) return;
5153 llen = lLength(o);
5154
5155 /* convert negative indexes */
5156 if (start < 0) start = llen+start;
5157 if (end < 0) end = llen+end;
5158 if (start < 0) start = 0;
5159 if (end < 0) end = 0;
5160
5161 /* indexes sanity checks */
5162 if (start > end || start >= llen) {
5163 /* Out of range start or start > end result in empty list */
5164 ltrim = llen;
5165 rtrim = 0;
5166 } else {
5167 if (end >= llen) end = llen-1;
5168 ltrim = start;
5169 rtrim = llen-end-1;
5170 }
5171
5172 /* Remove list elements to perform the trim */
5173 if (o->encoding == REDIS_ENCODING_ZIPLIST) {
5174 o->ptr = ziplistDeleteRange(o->ptr,0,ltrim);
5175 o->ptr = ziplistDeleteRange(o->ptr,-rtrim,rtrim);
5176 } else if (o->encoding == REDIS_ENCODING_LIST) {
5177 list = o->ptr;
5178 for (j = 0; j < ltrim; j++) {
5179 ln = listFirst(list);
5180 listDelNode(list,ln);
5181 }
5182 for (j = 0; j < rtrim; j++) {
5183 ln = listLast(list);
5184 listDelNode(list,ln);
5185 }
5186 } else {
5187 redisPanic("Unknown list encoding");
5188 }
5189 if (lLength(o) == 0) deleteKey(c->db,c->argv[1]);
5190 server.dirty++;
5191 addReply(c,shared.ok);
5192 }
5193
5194 static void lremCommand(redisClient *c) {
5195 robj *subject, *obj = c->argv[3];
5196 int toremove = atoi(c->argv[2]->ptr);
5197 int removed = 0;
5198 lEntry entry;
5199
5200 subject = lookupKeyWriteOrReply(c,c->argv[1],shared.czero);
5201 if (subject == NULL || checkType(c,subject,REDIS_LIST)) return;
5202
5203 /* Make sure obj is raw when we're dealing with a ziplist */
5204 if (subject->encoding == REDIS_ENCODING_ZIPLIST)
5205 obj = getDecodedObject(obj);
5206
5207 lIterator *li;
5208 if (toremove < 0) {
5209 toremove = -toremove;
5210 li = lInitIterator(subject,-1,REDIS_HEAD);
5211 } else {
5212 li = lInitIterator(subject,0,REDIS_TAIL);
5213 }
5214
5215 while (lNext(li,&entry)) {
5216 if (lEqual(&entry,obj)) {
5217 lDelete(&entry);
5218 server.dirty++;
5219 removed++;
5220 if (toremove && removed == toremove) break;
5221 }
5222 }
5223 lReleaseIterator(li);
5224
5225 /* Clean up raw encoded object */
5226 if (subject->encoding == REDIS_ENCODING_ZIPLIST)
5227 decrRefCount(obj);
5228
5229 if (lLength(subject) == 0) deleteKey(c->db,c->argv[1]);
5230 addReplySds(c,sdscatprintf(sdsempty(),":%d\r\n",removed));
5231 }
5232
5233 /* This is the semantic of this command:
5234 * RPOPLPUSH srclist dstlist:
5235 * IF LLEN(srclist) > 0
5236 * element = RPOP srclist
5237 * LPUSH dstlist element
5238 * RETURN element
5239 * ELSE
5240 * RETURN nil
5241 * END
5242 * END
5243 *
5244 * The idea is to be able to get an element from a list in a reliable way
5245 * since the element is not just returned but pushed against another list
5246 * as well. This command was originally proposed by Ezra Zygmuntowicz.
5247 */
5248 static void rpoplpushcommand(redisClient *c) {
5249 robj *sobj;
5250 list *srclist;
5251 listNode *ln;
5252
5253 if ((sobj = lookupKeyWriteOrReply(c,c->argv[1],shared.nullbulk)) == NULL ||
5254 checkType(c,sobj,REDIS_LIST)) return;
5255 srclist = sobj->ptr;
5256 ln = listLast(srclist);
5257
5258 if (ln == NULL) {
5259 addReply(c,shared.nullbulk);
5260 } else {
5261 robj *dobj = lookupKeyWrite(c->db,c->argv[2]);
5262 robj *ele = listNodeValue(ln);
5263 list *dstlist;
5264
5265 if (dobj && dobj->type != REDIS_LIST) {
5266 addReply(c,shared.wrongtypeerr);
5267 return;
5268 }
5269
5270 /* Add the element to the target list (unless it's directly
5271 * passed to some BLPOP-ing client */
5272 if (!handleClientsWaitingListPush(c,c->argv[2],ele)) {
5273 if (dobj == NULL) {
5274 /* Create the list if the key does not exist */
5275 dobj = createListObject();
5276 dictAdd(c->db->dict,c->argv[2],dobj);
5277 incrRefCount(c->argv[2]);
5278 }
5279 dstlist = dobj->ptr;
5280 listAddNodeHead(dstlist,ele);
5281 incrRefCount(ele);
5282 }
5283
5284 /* Send the element to the client as reply as well */
5285 addReplyBulk(c,ele);
5286
5287 /* Finally remove the element from the source list */
5288 listDelNode(srclist,ln);
5289 if (listLength(srclist) == 0) deleteKey(c->db,c->argv[1]);
5290 server.dirty++;
5291 }
5292 }
5293
5294 /* ==================================== Sets ================================ */
5295
5296 static void saddCommand(redisClient *c) {
5297 robj *set;
5298
5299 set = lookupKeyWrite(c->db,c->argv[1]);
5300 if (set == NULL) {
5301 set = createSetObject();
5302 dictAdd(c->db->dict,c->argv[1],set);
5303 incrRefCount(c->argv[1]);
5304 } else {
5305 if (set->type != REDIS_SET) {
5306 addReply(c,shared.wrongtypeerr);
5307 return;
5308 }
5309 }
5310 if (dictAdd(set->ptr,c->argv[2],NULL) == DICT_OK) {
5311 incrRefCount(c->argv[2]);
5312 server.dirty++;
5313 addReply(c,shared.cone);
5314 } else {
5315 addReply(c,shared.czero);
5316 }
5317 }
5318
5319 static void sremCommand(redisClient *c) {
5320 robj *set;
5321
5322 if ((set = lookupKeyWriteOrReply(c,c->argv[1],shared.czero)) == NULL ||
5323 checkType(c,set,REDIS_SET)) return;
5324
5325 if (dictDelete(set->ptr,c->argv[2]) == DICT_OK) {
5326 server.dirty++;
5327 if (htNeedsResize(set->ptr)) dictResize(set->ptr);
5328 if (dictSize((dict*)set->ptr) == 0) deleteKey(c->db,c->argv[1]);
5329 addReply(c,shared.cone);
5330 } else {
5331 addReply(c,shared.czero);
5332 }
5333 }
5334
5335 static void smoveCommand(redisClient *c) {
5336 robj *srcset, *dstset;
5337
5338 srcset = lookupKeyWrite(c->db,c->argv[1]);
5339 dstset = lookupKeyWrite(c->db,c->argv[2]);
5340
5341 /* If the source key does not exist return 0, if it's of the wrong type
5342 * raise an error */
5343 if (srcset == NULL || srcset->type != REDIS_SET) {
5344 addReply(c, srcset ? shared.wrongtypeerr : shared.czero);
5345 return;
5346 }
5347 /* Error if the destination key is not a set as well */
5348 if (dstset && dstset->type != REDIS_SET) {
5349 addReply(c,shared.wrongtypeerr);
5350 return;
5351 }
5352 /* Remove the element from the source set */
5353 if (dictDelete(srcset->ptr,c->argv[3]) == DICT_ERR) {
5354 /* Key not found in the src set! return zero */
5355 addReply(c,shared.czero);
5356 return;
5357 }
5358 if (dictSize((dict*)srcset->ptr) == 0 && srcset != dstset)
5359 deleteKey(c->db,c->argv[1]);
5360 server.dirty++;
5361 /* Add the element to the destination set */
5362 if (!dstset) {
5363 dstset = createSetObject();
5364 dictAdd(c->db->dict,c->argv[2],dstset);
5365 incrRefCount(c->argv[2]);
5366 }
5367 if (dictAdd(dstset->ptr,c->argv[3],NULL) == DICT_OK)
5368 incrRefCount(c->argv[3]);
5369 addReply(c,shared.cone);
5370 }
5371
5372 static void sismemberCommand(redisClient *c) {
5373 robj *set;
5374
5375 if ((set = lookupKeyReadOrReply(c,c->argv[1],shared.czero)) == NULL ||
5376 checkType(c,set,REDIS_SET)) return;
5377
5378 if (dictFind(set->ptr,c->argv[2]))
5379 addReply(c,shared.cone);
5380 else
5381 addReply(c,shared.czero);
5382 }
5383
5384 static void scardCommand(redisClient *c) {
5385 robj *o;
5386 dict *s;
5387
5388 if ((o = lookupKeyReadOrReply(c,c->argv[1],shared.czero)) == NULL ||
5389 checkType(c,o,REDIS_SET)) return;
5390
5391 s = o->ptr;
5392 addReplyUlong(c,dictSize(s));
5393 }
5394
5395 static void spopCommand(redisClient *c) {
5396 robj *set;
5397 dictEntry *de;
5398
5399 if ((set = lookupKeyWriteOrReply(c,c->argv[1],shared.nullbulk)) == NULL ||
5400 checkType(c,set,REDIS_SET)) return;
5401
5402 de = dictGetRandomKey(set->ptr);
5403 if (de == NULL) {
5404 addReply(c,shared.nullbulk);
5405 } else {
5406 robj *ele = dictGetEntryKey(de);
5407
5408 addReplyBulk(c,ele);
5409 dictDelete(set->ptr,ele);
5410 if (htNeedsResize(set->ptr)) dictResize(set->ptr);
5411 if (dictSize((dict*)set->ptr) == 0) deleteKey(c->db,c->argv[1]);
5412 server.dirty++;
5413 }
5414 }
5415
5416 static void srandmemberCommand(redisClient *c) {
5417 robj *set;
5418 dictEntry *de;
5419
5420 if ((set = lookupKeyReadOrReply(c,c->argv[1],shared.nullbulk)) == NULL ||
5421 checkType(c,set,REDIS_SET)) return;
5422
5423 de = dictGetRandomKey(set->ptr);
5424 if (de == NULL) {
5425 addReply(c,shared.nullbulk);
5426 } else {
5427 robj *ele = dictGetEntryKey(de);
5428
5429 addReplyBulk(c,ele);
5430 }
5431 }
5432
5433 static int qsortCompareSetsByCardinality(const void *s1, const void *s2) {
5434 dict **d1 = (void*) s1, **d2 = (void*) s2;
5435
5436 return dictSize(*d1)-dictSize(*d2);
5437 }
5438
5439 static void sinterGenericCommand(redisClient *c, robj **setskeys, unsigned long setsnum, robj *dstkey) {
5440 dict **dv = zmalloc(sizeof(dict*)*setsnum);
5441 dictIterator *di;
5442 dictEntry *de;
5443 robj *lenobj = NULL, *dstset = NULL;
5444 unsigned long j, cardinality = 0;
5445
5446 for (j = 0; j < setsnum; j++) {
5447 robj *setobj;
5448
5449 setobj = dstkey ?
5450 lookupKeyWrite(c->db,setskeys[j]) :
5451 lookupKeyRead(c->db,setskeys[j]);
5452 if (!setobj) {
5453 zfree(dv);
5454 if (dstkey) {
5455 if (deleteKey(c->db,dstkey))
5456 server.dirty++;
5457 addReply(c,shared.czero);
5458 } else {
5459 addReply(c,shared.emptymultibulk);
5460 }
5461 return;
5462 }
5463 if (setobj->type != REDIS_SET) {
5464 zfree(dv);
5465 addReply(c,shared.wrongtypeerr);
5466 return;
5467 }
5468 dv[j] = setobj->ptr;
5469 }
5470 /* Sort sets from the smallest to largest, this will improve our
5471 * algorithm's performace */
5472 qsort(dv,setsnum,sizeof(dict*),qsortCompareSetsByCardinality);
5473
5474 /* The first thing we should output is the total number of elements...
5475 * since this is a multi-bulk write, but at this stage we don't know
5476 * the intersection set size, so we use a trick, append an empty object
5477 * to the output list and save the pointer to later modify it with the
5478 * right length */
5479 if (!dstkey) {
5480 lenobj = createObject(REDIS_STRING,NULL);
5481 addReply(c,lenobj);
5482 decrRefCount(lenobj);
5483 } else {
5484 /* If we have a target key where to store the resulting set
5485 * create this key with an empty set inside */
5486 dstset = createSetObject();
5487 }
5488
5489 /* Iterate all the elements of the first (smallest) set, and test
5490 * the element against all the other sets, if at least one set does
5491 * not include the element it is discarded */
5492 di = dictGetIterator(dv[0]);
5493
5494 while((de = dictNext(di)) != NULL) {
5495 robj *ele;
5496
5497 for (j = 1; j < setsnum; j++)
5498 if (dictFind(dv[j],dictGetEntryKey(de)) == NULL) break;
5499 if (j != setsnum)
5500 continue; /* at least one set does not contain the member */
5501 ele = dictGetEntryKey(de);
5502 if (!dstkey) {
5503 addReplyBulk(c,ele);
5504 cardinality++;
5505 } else {
5506 dictAdd(dstset->ptr,ele,NULL);
5507 incrRefCount(ele);
5508 }
5509 }
5510 dictReleaseIterator(di);
5511
5512 if (dstkey) {
5513 /* Store the resulting set into the target, if the intersection
5514 * is not an empty set. */
5515 deleteKey(c->db,dstkey);
5516 if (dictSize((dict*)dstset->ptr) > 0) {
5517 dictAdd(c->db->dict,dstkey,dstset);
5518 incrRefCount(dstkey);
5519 addReplyLongLong(c,dictSize((dict*)dstset->ptr));
5520 } else {
5521 decrRefCount(dstset);
5522 addReply(c,shared.czero);
5523 }
5524 server.dirty++;
5525 } else {
5526 lenobj->ptr = sdscatprintf(sdsempty(),"*%lu\r\n",cardinality);
5527 }
5528 zfree(dv);
5529 }
5530
5531 static void sinterCommand(redisClient *c) {
5532 sinterGenericCommand(c,c->argv+1,c->argc-1,NULL);
5533 }
5534
5535 static void sinterstoreCommand(redisClient *c) {
5536 sinterGenericCommand(c,c->argv+2,c->argc-2,c->argv[1]);
5537 }
5538
5539 #define REDIS_OP_UNION 0
5540 #define REDIS_OP_DIFF 1
5541 #define REDIS_OP_INTER 2
5542
5543 static void sunionDiffGenericCommand(redisClient *c, robj **setskeys, int setsnum, robj *dstkey, int op) {
5544 dict **dv = zmalloc(sizeof(dict*)*setsnum);
5545 dictIterator *di;
5546 dictEntry *de;
5547 robj *dstset = NULL;
5548 int j, cardinality = 0;
5549
5550 for (j = 0; j < setsnum; j++) {
5551 robj *setobj;
5552
5553 setobj = dstkey ?
5554 lookupKeyWrite(c->db,setskeys[j]) :
5555 lookupKeyRead(c->db,setskeys[j]);
5556 if (!setobj) {
5557 dv[j] = NULL;
5558 continue;
5559 }
5560 if (setobj->type != REDIS_SET) {
5561 zfree(dv);
5562 addReply(c,shared.wrongtypeerr);
5563 return;
5564 }
5565 dv[j] = setobj->ptr;
5566 }
5567
5568 /* We need a temp set object to store our union. If the dstkey
5569 * is not NULL (that is, we are inside an SUNIONSTORE operation) then
5570 * this set object will be the resulting object to set into the target key*/
5571 dstset = createSetObject();
5572
5573 /* Iterate all the elements of all the sets, add every element a single
5574 * time to the result set */
5575 for (j = 0; j < setsnum; j++) {
5576 if (op == REDIS_OP_DIFF && j == 0 && !dv[j]) break; /* result set is empty */
5577 if (!dv[j]) continue; /* non existing keys are like empty sets */
5578
5579 di = dictGetIterator(dv[j]);
5580
5581 while((de = dictNext(di)) != NULL) {
5582 robj *ele;
5583
5584 /* dictAdd will not add the same element multiple times */
5585 ele = dictGetEntryKey(de);
5586 if (op == REDIS_OP_UNION || j == 0) {
5587 if (dictAdd(dstset->ptr,ele,NULL) == DICT_OK) {
5588 incrRefCount(ele);
5589 cardinality++;
5590 }
5591 } else if (op == REDIS_OP_DIFF) {
5592 if (dictDelete(dstset->ptr,ele) == DICT_OK) {
5593 cardinality--;
5594 }
5595 }
5596 }
5597 dictReleaseIterator(di);
5598
5599 /* result set is empty? Exit asap. */
5600 if (op == REDIS_OP_DIFF && cardinality == 0) break;
5601 }
5602
5603 /* Output the content of the resulting set, if not in STORE mode */
5604 if (!dstkey) {
5605 addReplySds(c,sdscatprintf(sdsempty(),"*%d\r\n",cardinality));
5606 di = dictGetIterator(dstset->ptr);
5607 while((de = dictNext(di)) != NULL) {
5608 robj *ele;
5609
5610 ele = dictGetEntryKey(de);
5611 addReplyBulk(c,ele);
5612 }
5613 dictReleaseIterator(di);
5614 decrRefCount(dstset);
5615 } else {
5616 /* If we have a target key where to store the resulting set
5617 * create this key with the result set inside */
5618 deleteKey(c->db,dstkey);
5619 if (dictSize((dict*)dstset->ptr) > 0) {
5620 dictAdd(c->db->dict,dstkey,dstset);
5621 incrRefCount(dstkey);
5622 addReplyLongLong(c,dictSize((dict*)dstset->ptr));
5623 } else {
5624 decrRefCount(dstset);
5625 addReply(c,shared.czero);
5626 }
5627 server.dirty++;
5628 }
5629 zfree(dv);
5630 }
5631
5632 static void sunionCommand(redisClient *c) {
5633 sunionDiffGenericCommand(c,c->argv+1,c->argc-1,NULL,REDIS_OP_UNION);
5634 }
5635
5636 static void sunionstoreCommand(redisClient *c) {
5637 sunionDiffGenericCommand(c,c->argv+2,c->argc-2,c->argv[1],REDIS_OP_UNION);
5638 }
5639
5640 static void sdiffCommand(redisClient *c) {
5641 sunionDiffGenericCommand(c,c->argv+1,c->argc-1,NULL,REDIS_OP_DIFF);
5642 }
5643
5644 static void sdiffstoreCommand(redisClient *c) {
5645 sunionDiffGenericCommand(c,c->argv+2,c->argc-2,c->argv[1],REDIS_OP_DIFF);
5646 }
5647
5648 /* ==================================== ZSets =============================== */
5649
5650 /* ZSETs are ordered sets using two data structures to hold the same elements
5651 * in order to get O(log(N)) INSERT and REMOVE operations into a sorted
5652 * data structure.
5653 *
5654 * The elements are added to an hash table mapping Redis objects to scores.
5655 * At the same time the elements are added to a skip list mapping scores
5656 * to Redis objects (so objects are sorted by scores in this "view"). */
5657
5658 /* This skiplist implementation is almost a C translation of the original
5659 * algorithm described by William Pugh in "Skip Lists: A Probabilistic
5660 * Alternative to Balanced Trees", modified in three ways:
5661 * a) this implementation allows for repeated values.
5662 * b) the comparison is not just by key (our 'score') but by satellite data.
5663 * c) there is a back pointer, so it's a doubly linked list with the back
5664 * pointers being only at "level 1". This allows to traverse the list
5665 * from tail to head, useful for ZREVRANGE. */
5666
5667 static zskiplistNode *zslCreateNode(int level, double score, robj *obj) {
5668 zskiplistNode *zn = zmalloc(sizeof(*zn));
5669
5670 zn->forward = zmalloc(sizeof(zskiplistNode*) * level);
5671 if (level > 1)
5672 zn->span = zmalloc(sizeof(unsigned int) * (level - 1));
5673 else
5674 zn->span = NULL;
5675 zn->score = score;
5676 zn->obj = obj;
5677 return zn;
5678 }
5679
5680 static zskiplist *zslCreate(void) {
5681 int j;
5682 zskiplist *zsl;
5683
5684 zsl = zmalloc(sizeof(*zsl));
5685 zsl->level = 1;
5686 zsl->length = 0;
5687 zsl->header = zslCreateNode(ZSKIPLIST_MAXLEVEL,0,NULL);
5688 for (j = 0; j < ZSKIPLIST_MAXLEVEL; j++) {
5689 zsl->header->forward[j] = NULL;
5690
5691 /* span has space for ZSKIPLIST_MAXLEVEL-1 elements */
5692 if (j < ZSKIPLIST_MAXLEVEL-1)
5693 zsl->header->span[j] = 0;
5694 }
5695 zsl->header->backward = NULL;
5696 zsl->tail = NULL;
5697 return zsl;
5698 }
5699
5700 static void zslFreeNode(zskiplistNode *node) {
5701 decrRefCount(node->obj);
5702 zfree(node->forward);
5703 zfree(node->span);
5704 zfree(node);
5705 }
5706
5707 static void zslFree(zskiplist *zsl) {
5708 zskiplistNode *node = zsl->header->forward[0], *next;
5709
5710 zfree(zsl->header->forward);
5711 zfree(zsl->header->span);
5712 zfree(zsl->header);
5713 while(node) {
5714 next = node->forward[0];
5715 zslFreeNode(node);
5716 node = next;
5717 }
5718 zfree(zsl);
5719 }
5720
5721 static int zslRandomLevel(void) {
5722 int level = 1;
5723 while ((random()&0xFFFF) < (ZSKIPLIST_P * 0xFFFF))
5724 level += 1;
5725 return (level<ZSKIPLIST_MAXLEVEL) ? level : ZSKIPLIST_MAXLEVEL;
5726 }
5727
5728 static void zslInsert(zskiplist *zsl, double score, robj *obj) {
5729 zskiplistNode *update[ZSKIPLIST_MAXLEVEL], *x;
5730 unsigned int rank[ZSKIPLIST_MAXLEVEL];
5731 int i, level;
5732
5733 x = zsl->header;
5734 for (i = zsl->level-1; i >= 0; i--) {
5735 /* store rank that is crossed to reach the insert position */
5736 rank[i] = i == (zsl->level-1) ? 0 : rank[i+1];
5737
5738 while (x->forward[i] &&
5739 (x->forward[i]->score < score ||
5740 (x->forward[i]->score == score &&
5741 compareStringObjects(x->forward[i]->obj,obj) < 0))) {
5742 rank[i] += i > 0 ? x->span[i-1] : 1;
5743 x = x->forward[i];
5744 }
5745 update[i] = x;
5746 }
5747 /* we assume the key is not already inside, since we allow duplicated
5748 * scores, and the re-insertion of score and redis object should never
5749 * happpen since the caller of zslInsert() should test in the hash table
5750 * if the element is already inside or not. */
5751 level = zslRandomLevel();
5752 if (level > zsl->level) {
5753 for (i = zsl->level; i < level; i++) {
5754 rank[i] = 0;
5755 update[i] = zsl->header;
5756 update[i]->span[i-1] = zsl->length;
5757 }
5758 zsl->level = level;
5759 }
5760 x = zslCreateNode(level,score,obj);
5761 for (i = 0; i < level; i++) {
5762 x->forward[i] = update[i]->forward[i];
5763 update[i]->forward[i] = x;
5764
5765 /* update span covered by update[i] as x is inserted here */
5766 if (i > 0) {
5767 x->span[i-1] = update[i]->span[i-1] - (rank[0] - rank[i]);
5768 update[i]->span[i-1] = (rank[0] - rank[i]) + 1;
5769 }
5770 }
5771
5772 /* increment span for untouched levels */
5773 for (i = level; i < zsl->level; i++) {
5774 update[i]->span[i-1]++;
5775 }
5776
5777 x->backward = (update[0] == zsl->header) ? NULL : update[0];
5778 if (x->forward[0])
5779 x->forward[0]->backward = x;
5780 else
5781 zsl->tail = x;
5782 zsl->length++;
5783 }
5784
5785 /* Internal function used by zslDelete, zslDeleteByScore and zslDeleteByRank */
5786 void zslDeleteNode(zskiplist *zsl, zskiplistNode *x, zskiplistNode **update) {
5787 int i;
5788 for (i = 0; i < zsl->level; i++) {
5789 if (update[i]->forward[i] == x) {
5790 if (i > 0) {
5791 update[i]->span[i-1] += x->span[i-1] - 1;
5792 }
5793 update[i]->forward[i] = x->forward[i];
5794 } else {
5795 /* invariant: i > 0, because update[0]->forward[0]
5796 * is always equal to x */
5797 update[i]->span[i-1] -= 1;
5798 }
5799 }
5800 if (x->forward[0]) {
5801 x->forward[0]->backward = x->backward;
5802 } else {
5803 zsl->tail = x->backward;
5804 }
5805 while(zsl->level > 1 && zsl->header->forward[zsl->level-1] == NULL)
5806 zsl->level--;
5807 zsl->length--;
5808 }
5809
5810 /* Delete an element with matching score/object from the skiplist. */
5811 static int zslDelete(zskiplist *zsl, double score, robj *obj) {
5812 zskiplistNode *update[ZSKIPLIST_MAXLEVEL], *x;
5813 int i;
5814
5815 x = zsl->header;
5816 for (i = zsl->level-1; i >= 0; i--) {
5817 while (x->forward[i] &&
5818 (x->forward[i]->score < score ||
5819 (x->forward[i]->score == score &&
5820 compareStringObjects(x->forward[i]->obj,obj) < 0)))
5821 x = x->forward[i];
5822 update[i] = x;
5823 }
5824 /* We may have multiple elements with the same score, what we need
5825 * is to find the element with both the right score and object. */
5826 x = x->forward[0];
5827 if (x && score == x->score && equalStringObjects(x->obj,obj)) {
5828 zslDeleteNode(zsl, x, update);
5829 zslFreeNode(x);
5830 return 1;
5831 } else {
5832 return 0; /* not found */
5833 }
5834 return 0; /* not found */
5835 }
5836
5837 /* Delete all the elements with score between min and max from the skiplist.
5838 * Min and mx are inclusive, so a score >= min || score <= max is deleted.
5839 * Note that this function takes the reference to the hash table view of the
5840 * sorted set, in order to remove the elements from the hash table too. */
5841 static unsigned long zslDeleteRangeByScore(zskiplist *zsl, double min, double max, dict *dict) {
5842 zskiplistNode *update[ZSKIPLIST_MAXLEVEL], *x;
5843 unsigned long removed = 0;
5844 int i;
5845
5846 x = zsl->header;
5847 for (i = zsl->level-1; i >= 0; i--) {
5848 while (x->forward[i] && x->forward[i]->score < min)
5849 x = x->forward[i];
5850 update[i] = x;
5851 }
5852 /* We may have multiple elements with the same score, what we need
5853 * is to find the element with both the right score and object. */
5854 x = x->forward[0];
5855 while (x && x->score <= max) {
5856 zskiplistNode *next = x->forward[0];
5857 zslDeleteNode(zsl, x, update);
5858 dictDelete(dict,x->obj);
5859 zslFreeNode(x);
5860 removed++;
5861 x = next;
5862 }
5863 return removed; /* not found */
5864 }
5865
5866 /* Delete all the elements with rank between start and end from the skiplist.
5867 * Start and end are inclusive. Note that start and end need to be 1-based */
5868 static unsigned long zslDeleteRangeByRank(zskiplist *zsl, unsigned int start, unsigned int end, dict *dict) {
5869 zskiplistNode *update[ZSKIPLIST_MAXLEVEL], *x;
5870 unsigned long traversed = 0, removed = 0;
5871 int i;
5872
5873 x = zsl->header;
5874 for (i = zsl->level-1; i >= 0; i--) {
5875 while (x->forward[i] && (traversed + (i > 0 ? x->span[i-1] : 1)) < start) {
5876 traversed += i > 0 ? x->span[i-1] : 1;
5877 x = x->forward[i];
5878 }
5879 update[i] = x;
5880 }
5881
5882 traversed++;
5883 x = x->forward[0];
5884 while (x && traversed <= end) {
5885 zskiplistNode *next = x->forward[0];
5886 zslDeleteNode(zsl, x, update);
5887 dictDelete(dict,x->obj);
5888 zslFreeNode(x);
5889 removed++;
5890 traversed++;
5891 x = next;
5892 }
5893 return removed;
5894 }
5895
5896 /* Find the first node having a score equal or greater than the specified one.
5897 * Returns NULL if there is no match. */
5898 static zskiplistNode *zslFirstWithScore(zskiplist *zsl, double score) {
5899 zskiplistNode *x;
5900 int i;
5901
5902 x = zsl->header;
5903 for (i = zsl->level-1; i >= 0; i--) {
5904 while (x->forward[i] && x->forward[i]->score < score)
5905 x = x->forward[i];
5906 }
5907 /* We may have multiple elements with the same score, what we need
5908 * is to find the element with both the right score and object. */
5909 return x->forward[0];
5910 }
5911
5912 /* Find the rank for an element by both score and key.
5913 * Returns 0 when the element cannot be found, rank otherwise.
5914 * Note that the rank is 1-based due to the span of zsl->header to the
5915 * first element. */
5916 static unsigned long zslGetRank(zskiplist *zsl, double score, robj *o) {
5917 zskiplistNode *x;
5918 unsigned long rank = 0;
5919 int i;
5920
5921 x = zsl->header;
5922 for (i = zsl->level-1; i >= 0; i--) {
5923 while (x->forward[i] &&
5924 (x->forward[i]->score < score ||
5925 (x->forward[i]->score == score &&
5926 compareStringObjects(x->forward[i]->obj,o) <= 0))) {
5927 rank += i > 0 ? x->span[i-1] : 1;
5928 x = x->forward[i];
5929 }
5930
5931 /* x might be equal to zsl->header, so test if obj is non-NULL */
5932 if (x->obj && equalStringObjects(x->obj,o)) {
5933 return rank;
5934 }
5935 }
5936 return 0;
5937 }
5938
5939 /* Finds an element by its rank. The rank argument needs to be 1-based. */
5940 zskiplistNode* zslGetElementByRank(zskiplist *zsl, unsigned long rank) {
5941 zskiplistNode *x;
5942 unsigned long traversed = 0;
5943 int i;
5944
5945 x = zsl->header;
5946 for (i = zsl->level-1; i >= 0; i--) {
5947 while (x->forward[i] && (traversed + (i>0 ? x->span[i-1] : 1)) <= rank)
5948 {
5949 traversed += i > 0 ? x->span[i-1] : 1;
5950 x = x->forward[i];
5951 }
5952 if (traversed == rank) {
5953 return x;
5954 }
5955 }
5956 return NULL;
5957 }
5958
5959 /* The actual Z-commands implementations */
5960
5961 /* This generic command implements both ZADD and ZINCRBY.
5962 * scoreval is the score if the operation is a ZADD (doincrement == 0) or
5963 * the increment if the operation is a ZINCRBY (doincrement == 1). */
5964 static void zaddGenericCommand(redisClient *c, robj *key, robj *ele, double scoreval, int doincrement) {
5965 robj *zsetobj;
5966 zset *zs;
5967 double *score;
5968
5969 if (isnan(scoreval)) {
5970 addReplySds(c,sdsnew("-ERR provide score is Not A Number (nan)\r\n"));
5971 return;
5972 }
5973
5974 zsetobj = lookupKeyWrite(c->db,key);
5975 if (zsetobj == NULL) {
5976 zsetobj = createZsetObject();
5977 dictAdd(c->db->dict,key,zsetobj);
5978 incrRefCount(key);
5979 } else {
5980 if (zsetobj->type != REDIS_ZSET) {
5981 addReply(c,shared.wrongtypeerr);
5982 return;
5983 }
5984 }
5985 zs = zsetobj->ptr;
5986
5987 /* Ok now since we implement both ZADD and ZINCRBY here the code
5988 * needs to handle the two different conditions. It's all about setting
5989 * '*score', that is, the new score to set, to the right value. */
5990 score = zmalloc(sizeof(double));
5991 if (doincrement) {
5992 dictEntry *de;
5993
5994 /* Read the old score. If the element was not present starts from 0 */
5995 de = dictFind(zs->dict,ele);
5996 if (de) {
5997 double *oldscore = dictGetEntryVal(de);
5998 *score = *oldscore + scoreval;
5999 } else {
6000 *score = scoreval;
6001 }
6002 if (isnan(*score)) {
6003 addReplySds(c,
6004 sdsnew("-ERR resulting score is Not A Number (nan)\r\n"));
6005 zfree(score);
6006 /* Note that we don't need to check if the zset may be empty and
6007 * should be removed here, as we can only obtain Nan as score if
6008 * there was already an element in the sorted set. */
6009 return;
6010 }
6011 } else {
6012 *score = scoreval;
6013 }
6014
6015 /* What follows is a simple remove and re-insert operation that is common
6016 * to both ZADD and ZINCRBY... */
6017 if (dictAdd(zs->dict,ele,score) == DICT_OK) {
6018 /* case 1: New element */
6019 incrRefCount(ele); /* added to hash */
6020 zslInsert(zs->zsl,*score,ele);
6021 incrRefCount(ele); /* added to skiplist */
6022 server.dirty++;
6023 if (doincrement)
6024 addReplyDouble(c,*score);
6025 else
6026 addReply(c,shared.cone);
6027 } else {
6028 dictEntry *de;
6029 double *oldscore;
6030
6031 /* case 2: Score update operation */
6032 de = dictFind(zs->dict,ele);
6033 redisAssert(de != NULL);
6034 oldscore = dictGetEntryVal(de);
6035 if (*score != *oldscore) {
6036 int deleted;
6037
6038 /* Remove and insert the element in the skip list with new score */
6039 deleted = zslDelete(zs->zsl,*oldscore,ele);
6040 redisAssert(deleted != 0);
6041 zslInsert(zs->zsl,*score,ele);
6042 incrRefCount(ele);
6043 /* Update the score in the hash table */
6044 dictReplace(zs->dict,ele,score);
6045 server.dirty++;
6046 } else {
6047 zfree(score);
6048 }
6049 if (doincrement)
6050 addReplyDouble(c,*score);
6051 else
6052 addReply(c,shared.czero);
6053 }
6054 }
6055
6056 static void zaddCommand(redisClient *c) {
6057 double scoreval;
6058
6059 if (getDoubleFromObjectOrReply(c, c->argv[2], &scoreval, NULL) != REDIS_OK) return;
6060 zaddGenericCommand(c,c->argv[1],c->argv[3],scoreval,0);
6061 }
6062
6063 static void zincrbyCommand(redisClient *c) {
6064 double scoreval;
6065
6066 if (getDoubleFromObjectOrReply(c, c->argv[2], &scoreval, NULL) != REDIS_OK) return;
6067 zaddGenericCommand(c,c->argv[1],c->argv[3],scoreval,1);
6068 }
6069
6070 static void zremCommand(redisClient *c) {
6071 robj *zsetobj;
6072 zset *zs;
6073 dictEntry *de;
6074 double *oldscore;
6075 int deleted;
6076
6077 if ((zsetobj = lookupKeyWriteOrReply(c,c->argv[1],shared.czero)) == NULL ||
6078 checkType(c,zsetobj,REDIS_ZSET)) return;
6079
6080 zs = zsetobj->ptr;
6081 de = dictFind(zs->dict,c->argv[2]);
6082 if (de == NULL) {
6083 addReply(c,shared.czero);
6084 return;
6085 }
6086 /* Delete from the skiplist */
6087 oldscore = dictGetEntryVal(de);
6088 deleted = zslDelete(zs->zsl,*oldscore,c->argv[2]);
6089 redisAssert(deleted != 0);
6090
6091 /* Delete from the hash table */
6092 dictDelete(zs->dict,c->argv[2]);
6093 if (htNeedsResize(zs->dict)) dictResize(zs->dict);
6094 if (dictSize(zs->dict) == 0) deleteKey(c->db,c->argv[1]);
6095 server.dirty++;
6096 addReply(c,shared.cone);
6097 }
6098
6099 static void zremrangebyscoreCommand(redisClient *c) {
6100 double min;
6101 double max;
6102 long deleted;
6103 robj *zsetobj;
6104 zset *zs;
6105
6106 if ((getDoubleFromObjectOrReply(c, c->argv[2], &min, NULL) != REDIS_OK) ||
6107 (getDoubleFromObjectOrReply(c, c->argv[3], &max, NULL) != REDIS_OK)) return;
6108
6109 if ((zsetobj = lookupKeyWriteOrReply(c,c->argv[1],shared.czero)) == NULL ||
6110 checkType(c,zsetobj,REDIS_ZSET)) return;
6111
6112 zs = zsetobj->ptr;
6113 deleted = zslDeleteRangeByScore(zs->zsl,min,max,zs->dict);
6114 if (htNeedsResize(zs->dict)) dictResize(zs->dict);
6115 if (dictSize(zs->dict) == 0) deleteKey(c->db,c->argv[1]);
6116 server.dirty += deleted;
6117 addReplyLongLong(c,deleted);
6118 }
6119
6120 static void zremrangebyrankCommand(redisClient *c) {
6121 long start;
6122 long end;
6123 int llen;
6124 long deleted;
6125 robj *zsetobj;
6126 zset *zs;
6127
6128 if ((getLongFromObjectOrReply(c, c->argv[2], &start, NULL) != REDIS_OK) ||
6129 (getLongFromObjectOrReply(c, c->argv[3], &end, NULL) != REDIS_OK)) return;
6130
6131 if ((zsetobj = lookupKeyWriteOrReply(c,c->argv[1],shared.czero)) == NULL ||
6132 checkType(c,zsetobj,REDIS_ZSET)) return;
6133 zs = zsetobj->ptr;
6134 llen = zs->zsl->length;
6135
6136 /* convert negative indexes */
6137 if (start < 0) start = llen+start;
6138 if (end < 0) end = llen+end;
6139 if (start < 0) start = 0;
6140 if (end < 0) end = 0;
6141
6142 /* indexes sanity checks */
6143 if (start > end || start >= llen) {
6144 addReply(c,shared.czero);
6145 return;
6146 }
6147 if (end >= llen) end = llen-1;
6148
6149 /* increment start and end because zsl*Rank functions
6150 * use 1-based rank */
6151 deleted = zslDeleteRangeByRank(zs->zsl,start+1,end+1,zs->dict);
6152 if (htNeedsResize(zs->dict)) dictResize(zs->dict);
6153 if (dictSize(zs->dict) == 0) deleteKey(c->db,c->argv[1]);
6154 server.dirty += deleted;
6155 addReplyLongLong(c, deleted);
6156 }
6157
6158 typedef struct {
6159 dict *dict;
6160 double weight;
6161 } zsetopsrc;
6162
6163 static int qsortCompareZsetopsrcByCardinality(const void *s1, const void *s2) {
6164 zsetopsrc *d1 = (void*) s1, *d2 = (void*) s2;
6165 unsigned long size1, size2;
6166 size1 = d1->dict ? dictSize(d1->dict) : 0;
6167 size2 = d2->dict ? dictSize(d2->dict) : 0;
6168 return size1 - size2;
6169 }
6170
6171 #define REDIS_AGGR_SUM 1
6172 #define REDIS_AGGR_MIN 2
6173 #define REDIS_AGGR_MAX 3
6174 #define zunionInterDictValue(_e) (dictGetEntryVal(_e) == NULL ? 1.0 : *(double*)dictGetEntryVal(_e))
6175
6176 inline static void zunionInterAggregate(double *target, double val, int aggregate) {
6177 if (aggregate == REDIS_AGGR_SUM) {
6178 *target = *target + val;
6179 } else if (aggregate == REDIS_AGGR_MIN) {
6180 *target = val < *target ? val : *target;
6181 } else if (aggregate == REDIS_AGGR_MAX) {
6182 *target = val > *target ? val : *target;
6183 } else {
6184 /* safety net */
6185 redisPanic("Unknown ZUNION/INTER aggregate type");
6186 }
6187 }
6188
6189 static void zunionInterGenericCommand(redisClient *c, robj *dstkey, int op) {
6190 int i, j, setnum;
6191 int aggregate = REDIS_AGGR_SUM;
6192 zsetopsrc *src;
6193 robj *dstobj;
6194 zset *dstzset;
6195 dictIterator *di;
6196 dictEntry *de;
6197
6198 /* expect setnum input keys to be given */
6199 setnum = atoi(c->argv[2]->ptr);
6200 if (setnum < 1) {
6201 addReplySds(c,sdsnew("-ERR at least 1 input key is needed for ZUNIONSTORE/ZINTERSTORE\r\n"));
6202 return;
6203 }
6204
6205 /* test if the expected number of keys would overflow */
6206 if (3+setnum > c->argc) {
6207 addReply(c,shared.syntaxerr);
6208 return;
6209 }
6210
6211 /* read keys to be used for input */
6212 src = zmalloc(sizeof(zsetopsrc) * setnum);
6213 for (i = 0, j = 3; i < setnum; i++, j++) {
6214 robj *obj = lookupKeyWrite(c->db,c->argv[j]);
6215 if (!obj) {
6216 src[i].dict = NULL;
6217 } else {
6218 if (obj->type == REDIS_ZSET) {
6219 src[i].dict = ((zset*)obj->ptr)->dict;
6220 } else if (obj->type == REDIS_SET) {
6221 src[i].dict = (obj->ptr);
6222 } else {
6223 zfree(src);
6224 addReply(c,shared.wrongtypeerr);
6225 return;
6226 }
6227 }
6228
6229 /* default all weights to 1 */
6230 src[i].weight = 1.0;
6231 }
6232
6233 /* parse optional extra arguments */
6234 if (j < c->argc) {
6235 int remaining = c->argc - j;
6236
6237 while (remaining) {
6238 if (remaining >= (setnum + 1) && !strcasecmp(c->argv[j]->ptr,"weights")) {
6239 j++; remaining--;
6240 for (i = 0; i < setnum; i++, j++, remaining--) {
6241 if (getDoubleFromObjectOrReply(c, c->argv[j], &src[i].weight, NULL) != REDIS_OK)
6242 return;
6243 }
6244 } else if (remaining >= 2 && !strcasecmp(c->argv[j]->ptr,"aggregate")) {
6245 j++; remaining--;
6246 if (!strcasecmp(c->argv[j]->ptr,"sum")) {
6247 aggregate = REDIS_AGGR_SUM;
6248 } else if (!strcasecmp(c->argv[j]->ptr,"min")) {
6249 aggregate = REDIS_AGGR_MIN;
6250 } else if (!strcasecmp(c->argv[j]->ptr,"max")) {
6251 aggregate = REDIS_AGGR_MAX;
6252 } else {
6253 zfree(src);
6254 addReply(c,shared.syntaxerr);
6255 return;
6256 }
6257 j++; remaining--;
6258 } else {
6259 zfree(src);
6260 addReply(c,shared.syntaxerr);
6261 return;
6262 }
6263 }
6264 }
6265
6266 /* sort sets from the smallest to largest, this will improve our
6267 * algorithm's performance */
6268 qsort(src,setnum,sizeof(zsetopsrc),qsortCompareZsetopsrcByCardinality);
6269
6270 dstobj = createZsetObject();
6271 dstzset = dstobj->ptr;
6272
6273 if (op == REDIS_OP_INTER) {
6274 /* skip going over all entries if the smallest zset is NULL or empty */
6275 if (src[0].dict && dictSize(src[0].dict) > 0) {
6276 /* precondition: as src[0].dict is non-empty and the zsets are ordered
6277 * from small to large, all src[i > 0].dict are non-empty too */
6278 di = dictGetIterator(src[0].dict);
6279 while((de = dictNext(di)) != NULL) {
6280 double *score = zmalloc(sizeof(double)), value;
6281 *score = src[0].weight * zunionInterDictValue(de);
6282
6283 for (j = 1; j < setnum; j++) {
6284 dictEntry *other = dictFind(src[j].dict,dictGetEntryKey(de));
6285 if (other) {
6286 value = src[j].weight * zunionInterDictValue(other);
6287 zunionInterAggregate(score, value, aggregate);
6288 } else {
6289 break;
6290 }
6291 }
6292
6293 /* skip entry when not present in every source dict */
6294 if (j != setnum) {
6295 zfree(score);
6296 } else {
6297 robj *o = dictGetEntryKey(de);
6298 dictAdd(dstzset->dict,o,score);
6299 incrRefCount(o); /* added to dictionary */
6300 zslInsert(dstzset->zsl,*score,o);
6301 incrRefCount(o); /* added to skiplist */
6302 }
6303 }
6304 dictReleaseIterator(di);
6305 }
6306 } else if (op == REDIS_OP_UNION) {
6307 for (i = 0; i < setnum; i++) {
6308 if (!src[i].dict) continue;
6309
6310 di = dictGetIterator(src[i].dict);
6311 while((de = dictNext(di)) != NULL) {
6312 /* skip key when already processed */
6313 if (dictFind(dstzset->dict,dictGetEntryKey(de)) != NULL) continue;
6314
6315 double *score = zmalloc(sizeof(double)), value;
6316 *score = src[i].weight * zunionInterDictValue(de);
6317
6318 /* because the zsets are sorted by size, its only possible
6319 * for sets at larger indices to hold this entry */
6320 for (j = (i+1); j < setnum; j++) {
6321 dictEntry *other = dictFind(src[j].dict,dictGetEntryKey(de));
6322 if (other) {
6323 value = src[j].weight * zunionInterDictValue(other);
6324 zunionInterAggregate(score, value, aggregate);
6325 }
6326 }
6327
6328 robj *o = dictGetEntryKey(de);
6329 dictAdd(dstzset->dict,o,score);
6330 incrRefCount(o); /* added to dictionary */
6331 zslInsert(dstzset->zsl,*score,o);
6332 incrRefCount(o); /* added to skiplist */
6333 }
6334 dictReleaseIterator(di);
6335 }
6336 } else {
6337 /* unknown operator */
6338 redisAssert(op == REDIS_OP_INTER || op == REDIS_OP_UNION);
6339 }
6340
6341 deleteKey(c->db,dstkey);
6342 if (dstzset->zsl->length) {
6343 dictAdd(c->db->dict,dstkey,dstobj);
6344 incrRefCount(dstkey);
6345 addReplyLongLong(c, dstzset->zsl->length);
6346 server.dirty++;
6347 } else {
6348 decrRefCount(dstobj);
6349 addReply(c, shared.czero);
6350 }
6351 zfree(src);
6352 }
6353
6354 static void zunionstoreCommand(redisClient *c) {
6355 zunionInterGenericCommand(c,c->argv[1], REDIS_OP_UNION);
6356 }
6357
6358 static void zinterstoreCommand(redisClient *c) {
6359 zunionInterGenericCommand(c,c->argv[1], REDIS_OP_INTER);
6360 }
6361
6362 static void zrangeGenericCommand(redisClient *c, int reverse) {
6363 robj *o;
6364 long start;
6365 long end;
6366 int withscores = 0;
6367 int llen;
6368 int rangelen, j;
6369 zset *zsetobj;
6370 zskiplist *zsl;
6371 zskiplistNode *ln;
6372 robj *ele;
6373
6374 if ((getLongFromObjectOrReply(c, c->argv[2], &start, NULL) != REDIS_OK) ||
6375 (getLongFromObjectOrReply(c, c->argv[3], &end, NULL) != REDIS_OK)) return;
6376
6377 if (c->argc == 5 && !strcasecmp(c->argv[4]->ptr,"withscores")) {
6378 withscores = 1;
6379 } else if (c->argc >= 5) {
6380 addReply(c,shared.syntaxerr);
6381 return;
6382 }
6383
6384 if ((o = lookupKeyReadOrReply(c,c->argv[1],shared.emptymultibulk)) == NULL
6385 || checkType(c,o,REDIS_ZSET)) return;
6386 zsetobj = o->ptr;
6387 zsl = zsetobj->zsl;
6388 llen = zsl->length;
6389
6390 /* convert negative indexes */
6391 if (start < 0) start = llen+start;
6392 if (end < 0) end = llen+end;
6393 if (start < 0) start = 0;
6394 if (end < 0) end = 0;
6395
6396 /* indexes sanity checks */
6397 if (start > end || start >= llen) {
6398 /* Out of range start or start > end result in empty list */
6399 addReply(c,shared.emptymultibulk);
6400 return;
6401 }
6402 if (end >= llen) end = llen-1;
6403 rangelen = (end-start)+1;
6404
6405 /* check if starting point is trivial, before searching
6406 * the element in log(N) time */
6407 if (reverse) {
6408 ln = start == 0 ? zsl->tail : zslGetElementByRank(zsl, llen-start);
6409 } else {
6410 ln = start == 0 ?
6411 zsl->header->forward[0] : zslGetElementByRank(zsl, start+1);
6412 }
6413
6414 /* Return the result in form of a multi-bulk reply */
6415 addReplySds(c,sdscatprintf(sdsempty(),"*%d\r\n",
6416 withscores ? (rangelen*2) : rangelen));
6417 for (j = 0; j < rangelen; j++) {
6418 ele = ln->obj;
6419 addReplyBulk(c,ele);
6420 if (withscores)
6421 addReplyDouble(c,ln->score);
6422 ln = reverse ? ln->backward : ln->forward[0];
6423 }
6424 }
6425
6426 static void zrangeCommand(redisClient *c) {
6427 zrangeGenericCommand(c,0);
6428 }
6429
6430 static void zrevrangeCommand(redisClient *c) {
6431 zrangeGenericCommand(c,1);
6432 }
6433
6434 /* This command implements both ZRANGEBYSCORE and ZCOUNT.
6435 * If justcount is non-zero, just the count is returned. */
6436 static void genericZrangebyscoreCommand(redisClient *c, int justcount) {
6437 robj *o;
6438 double min, max;
6439 int minex = 0, maxex = 0; /* are min or max exclusive? */
6440 int offset = 0, limit = -1;
6441 int withscores = 0;
6442 int badsyntax = 0;
6443
6444 /* Parse the min-max interval. If one of the values is prefixed
6445 * by the "(" character, it's considered "open". For instance
6446 * ZRANGEBYSCORE zset (1.5 (2.5 will match min < x < max
6447 * ZRANGEBYSCORE zset 1.5 2.5 will instead match min <= x <= max */
6448 if (((char*)c->argv[2]->ptr)[0] == '(') {
6449 min = strtod((char*)c->argv[2]->ptr+1,NULL);
6450 minex = 1;
6451 } else {
6452 min = strtod(c->argv[2]->ptr,NULL);
6453 }
6454 if (((char*)c->argv[3]->ptr)[0] == '(') {
6455 max = strtod((char*)c->argv[3]->ptr+1,NULL);
6456 maxex = 1;
6457 } else {
6458 max = strtod(c->argv[3]->ptr,NULL);
6459 }
6460
6461 /* Parse "WITHSCORES": note that if the command was called with
6462 * the name ZCOUNT then we are sure that c->argc == 4, so we'll never
6463 * enter the following paths to parse WITHSCORES and LIMIT. */
6464 if (c->argc == 5 || c->argc == 8) {
6465 if (strcasecmp(c->argv[c->argc-1]->ptr,"withscores") == 0)
6466 withscores = 1;
6467 else
6468 badsyntax = 1;
6469 }
6470 if (c->argc != (4 + withscores) && c->argc != (7 + withscores))
6471 badsyntax = 1;
6472 if (badsyntax) {
6473 addReplySds(c,
6474 sdsnew("-ERR wrong number of arguments for ZRANGEBYSCORE\r\n"));
6475 return;
6476 }
6477
6478 /* Parse "LIMIT" */
6479 if (c->argc == (7 + withscores) && strcasecmp(c->argv[4]->ptr,"limit")) {
6480 addReply(c,shared.syntaxerr);
6481 return;
6482 } else if (c->argc == (7 + withscores)) {
6483 offset = atoi(c->argv[5]->ptr);
6484 limit = atoi(c->argv[6]->ptr);
6485 if (offset < 0) offset = 0;
6486 }
6487
6488 /* Ok, lookup the key and get the range */
6489 o = lookupKeyRead(c->db,c->argv[1]);
6490 if (o == NULL) {
6491 addReply(c,justcount ? shared.czero : shared.emptymultibulk);
6492 } else {
6493 if (o->type != REDIS_ZSET) {
6494 addReply(c,shared.wrongtypeerr);
6495 } else {
6496 zset *zsetobj = o->ptr;
6497 zskiplist *zsl = zsetobj->zsl;
6498 zskiplistNode *ln;
6499 robj *ele, *lenobj = NULL;
6500 unsigned long rangelen = 0;
6501
6502 /* Get the first node with the score >= min, or with
6503 * score > min if 'minex' is true. */
6504 ln = zslFirstWithScore(zsl,min);
6505 while (minex && ln && ln->score == min) ln = ln->forward[0];
6506
6507 if (ln == NULL) {
6508 /* No element matching the speciifed interval */
6509 addReply(c,justcount ? shared.czero : shared.emptymultibulk);
6510 return;
6511 }
6512
6513 /* We don't know in advance how many matching elements there
6514 * are in the list, so we push this object that will represent
6515 * the multi-bulk length in the output buffer, and will "fix"
6516 * it later */
6517 if (!justcount) {
6518 lenobj = createObject(REDIS_STRING,NULL);
6519 addReply(c,lenobj);
6520 decrRefCount(lenobj);
6521 }
6522
6523 while(ln && (maxex ? (ln->score < max) : (ln->score <= max))) {
6524 if (offset) {
6525 offset--;
6526 ln = ln->forward[0];
6527 continue;
6528 }
6529 if (limit == 0) break;
6530 if (!justcount) {
6531 ele = ln->obj;
6532 addReplyBulk(c,ele);
6533 if (withscores)
6534 addReplyDouble(c,ln->score);
6535 }
6536 ln = ln->forward[0];
6537 rangelen++;
6538 if (limit > 0) limit--;
6539 }
6540 if (justcount) {
6541 addReplyLongLong(c,(long)rangelen);
6542 } else {
6543 lenobj->ptr = sdscatprintf(sdsempty(),"*%lu\r\n",
6544 withscores ? (rangelen*2) : rangelen);
6545 }
6546 }
6547 }
6548 }
6549
6550 static void zrangebyscoreCommand(redisClient *c) {
6551 genericZrangebyscoreCommand(c,0);
6552 }
6553
6554 static void zcountCommand(redisClient *c) {
6555 genericZrangebyscoreCommand(c,1);
6556 }
6557
6558 static void zcardCommand(redisClient *c) {
6559 robj *o;
6560 zset *zs;
6561
6562 if ((o = lookupKeyReadOrReply(c,c->argv[1],shared.czero)) == NULL ||
6563 checkType(c,o,REDIS_ZSET)) return;
6564
6565 zs = o->ptr;
6566 addReplyUlong(c,zs->zsl->length);
6567 }
6568
6569 static void zscoreCommand(redisClient *c) {
6570 robj *o;
6571 zset *zs;
6572 dictEntry *de;
6573
6574 if ((o = lookupKeyReadOrReply(c,c->argv[1],shared.nullbulk)) == NULL ||
6575 checkType(c,o,REDIS_ZSET)) return;
6576
6577 zs = o->ptr;
6578 de = dictFind(zs->dict,c->argv[2]);
6579 if (!de) {
6580 addReply(c,shared.nullbulk);
6581 } else {
6582 double *score = dictGetEntryVal(de);
6583
6584 addReplyDouble(c,*score);
6585 }
6586 }
6587
6588 static void zrankGenericCommand(redisClient *c, int reverse) {
6589 robj *o;
6590 zset *zs;
6591 zskiplist *zsl;
6592 dictEntry *de;
6593 unsigned long rank;
6594 double *score;
6595
6596 if ((o = lookupKeyReadOrReply(c,c->argv[1],shared.nullbulk)) == NULL ||
6597 checkType(c,o,REDIS_ZSET)) return;
6598
6599 zs = o->ptr;
6600 zsl = zs->zsl;
6601 de = dictFind(zs->dict,c->argv[2]);
6602 if (!de) {
6603 addReply(c,shared.nullbulk);
6604 return;
6605 }
6606
6607 score = dictGetEntryVal(de);
6608 rank = zslGetRank(zsl, *score, c->argv[2]);
6609 if (rank) {
6610 if (reverse) {
6611 addReplyLongLong(c, zsl->length - rank);
6612 } else {
6613 addReplyLongLong(c, rank-1);
6614 }
6615 } else {
6616 addReply(c,shared.nullbulk);
6617 }
6618 }
6619
6620 static void zrankCommand(redisClient *c) {
6621 zrankGenericCommand(c, 0);
6622 }
6623
6624 static void zrevrankCommand(redisClient *c) {
6625 zrankGenericCommand(c, 1);
6626 }
6627
6628 /* ========================= Hashes utility functions ======================= */
6629 #define REDIS_HASH_KEY 1
6630 #define REDIS_HASH_VALUE 2
6631
6632 /* Check the length of a number of objects to see if we need to convert a
6633 * zipmap to a real hash. Note that we only check string encoded objects
6634 * as their string length can be queried in constant time. */
6635 static void hashTryConversion(robj *subject, robj **argv, int start, int end) {
6636 int i;
6637 if (subject->encoding != REDIS_ENCODING_ZIPMAP) return;
6638
6639 for (i = start; i <= end; i++) {
6640 if (argv[i]->encoding == REDIS_ENCODING_RAW &&
6641 sdslen(argv[i]->ptr) > server.hash_max_zipmap_value)
6642 {
6643 convertToRealHash(subject);
6644 return;
6645 }
6646 }
6647 }
6648
6649 /* Encode given objects in-place when the hash uses a dict. */
6650 static void hashTryObjectEncoding(robj *subject, robj **o1, robj **o2) {
6651 if (subject->encoding == REDIS_ENCODING_HT) {
6652 if (o1) *o1 = tryObjectEncoding(*o1);
6653 if (o2) *o2 = tryObjectEncoding(*o2);
6654 }
6655 }
6656
6657 /* Get the value from a hash identified by key. Returns either a string
6658 * object or NULL if the value cannot be found. The refcount of the object
6659 * is always increased by 1 when the value was found. */
6660 static robj *hashGet(robj *o, robj *key) {
6661 robj *value = NULL;
6662 if (o->encoding == REDIS_ENCODING_ZIPMAP) {
6663 unsigned char *v;
6664 unsigned int vlen;
6665 key = getDecodedObject(key);
6666 if (zipmapGet(o->ptr,key->ptr,sdslen(key->ptr),&v,&vlen)) {
6667 value = createStringObject((char*)v,vlen);
6668 }
6669 decrRefCount(key);
6670 } else {
6671 dictEntry *de = dictFind(o->ptr,key);
6672 if (de != NULL) {
6673 value = dictGetEntryVal(de);
6674 incrRefCount(value);
6675 }
6676 }
6677 return value;
6678 }
6679
6680 /* Test if the key exists in the given hash. Returns 1 if the key
6681 * exists and 0 when it doesn't. */
6682 static int hashExists(robj *o, robj *key) {
6683 if (o->encoding == REDIS_ENCODING_ZIPMAP) {
6684 key = getDecodedObject(key);
6685 if (zipmapExists(o->ptr,key->ptr,sdslen(key->ptr))) {
6686 decrRefCount(key);
6687 return 1;
6688 }
6689 decrRefCount(key);
6690 } else {
6691 if (dictFind(o->ptr,key) != NULL) {
6692 return 1;
6693 }
6694 }
6695 return 0;
6696 }
6697
6698 /* Add an element, discard the old if the key already exists.
6699 * Return 0 on insert and 1 on update. */
6700 static int hashSet(robj *o, robj *key, robj *value) {
6701 int update = 0;
6702 if (o->encoding == REDIS_ENCODING_ZIPMAP) {
6703 key = getDecodedObject(key);
6704 value = getDecodedObject(value);
6705 o->ptr = zipmapSet(o->ptr,
6706 key->ptr,sdslen(key->ptr),
6707 value->ptr,sdslen(value->ptr), &update);
6708 decrRefCount(key);
6709 decrRefCount(value);
6710
6711 /* Check if the zipmap needs to be upgraded to a real hash table */
6712 if (zipmapLen(o->ptr) > server.hash_max_zipmap_entries)
6713 convertToRealHash(o);
6714 } else {
6715 if (dictReplace(o->ptr,key,value)) {
6716 /* Insert */
6717 incrRefCount(key);
6718 } else {
6719 /* Update */
6720 update = 1;
6721 }
6722 incrRefCount(value);
6723 }
6724 return update;
6725 }
6726
6727 /* Delete an element from a hash.
6728 * Return 1 on deleted and 0 on not found. */
6729 static int hashDelete(robj *o, robj *key) {
6730 int deleted = 0;
6731 if (o->encoding == REDIS_ENCODING_ZIPMAP) {
6732 key = getDecodedObject(key);
6733 o->ptr = zipmapDel(o->ptr,key->ptr,sdslen(key->ptr), &deleted);
6734 decrRefCount(key);
6735 } else {
6736 deleted = dictDelete((dict*)o->ptr,key) == DICT_OK;
6737 /* Always check if the dictionary needs a resize after a delete. */
6738 if (deleted && htNeedsResize(o->ptr)) dictResize(o->ptr);
6739 }
6740 return deleted;
6741 }
6742
6743 /* Return the number of elements in a hash. */
6744 static unsigned long hashLength(robj *o) {
6745 return (o->encoding == REDIS_ENCODING_ZIPMAP) ?
6746 zipmapLen((unsigned char*)o->ptr) : dictSize((dict*)o->ptr);
6747 }
6748
6749 /* Structure to hold hash iteration abstration. Note that iteration over
6750 * hashes involves both fields and values. Because it is possible that
6751 * not both are required, store pointers in the iterator to avoid
6752 * unnecessary memory allocation for fields/values. */
6753 typedef struct {
6754 int encoding;
6755 unsigned char *zi;
6756 unsigned char *zk, *zv;
6757 unsigned int zklen, zvlen;
6758
6759 dictIterator *di;
6760 dictEntry *de;
6761 } hashIterator;
6762
6763 static hashIterator *hashInitIterator(robj *subject) {
6764 hashIterator *hi = zmalloc(sizeof(hashIterator));
6765 hi->encoding = subject->encoding;
6766 if (hi->encoding == REDIS_ENCODING_ZIPMAP) {
6767 hi->zi = zipmapRewind(subject->ptr);
6768 } else if (hi->encoding == REDIS_ENCODING_HT) {
6769 hi->di = dictGetIterator(subject->ptr);
6770 } else {
6771 redisAssert(NULL);
6772 }
6773 return hi;
6774 }
6775
6776 static void hashReleaseIterator(hashIterator *hi) {
6777 if (hi->encoding == REDIS_ENCODING_HT) {
6778 dictReleaseIterator(hi->di);
6779 }
6780 zfree(hi);
6781 }
6782
6783 /* Move to the next entry in the hash. Return REDIS_OK when the next entry
6784 * could be found and REDIS_ERR when the iterator reaches the end. */
6785 static int hashNext(hashIterator *hi) {
6786 if (hi->encoding == REDIS_ENCODING_ZIPMAP) {
6787 if ((hi->zi = zipmapNext(hi->zi, &hi->zk, &hi->zklen,
6788 &hi->zv, &hi->zvlen)) == NULL) return REDIS_ERR;
6789 } else {
6790 if ((hi->de = dictNext(hi->di)) == NULL) return REDIS_ERR;
6791 }
6792 return REDIS_OK;
6793 }
6794
6795 /* Get key or value object at current iteration position.
6796 * This increases the refcount of the field object by 1. */
6797 static robj *hashCurrent(hashIterator *hi, int what) {
6798 robj *o;
6799 if (hi->encoding == REDIS_ENCODING_ZIPMAP) {
6800 if (what & REDIS_HASH_KEY) {
6801 o = createStringObject((char*)hi->zk,hi->zklen);
6802 } else {
6803 o = createStringObject((char*)hi->zv,hi->zvlen);
6804 }
6805 } else {
6806 if (what & REDIS_HASH_KEY) {
6807 o = dictGetEntryKey(hi->de);
6808 } else {
6809 o = dictGetEntryVal(hi->de);
6810 }
6811 incrRefCount(o);
6812 }
6813 return o;
6814 }
6815
6816 static robj *hashLookupWriteOrCreate(redisClient *c, robj *key) {
6817 robj *o = lookupKeyWrite(c->db,key);
6818 if (o == NULL) {
6819 o = createHashObject();
6820 dictAdd(c->db->dict,key,o);
6821 incrRefCount(key);
6822 } else {
6823 if (o->type != REDIS_HASH) {
6824 addReply(c,shared.wrongtypeerr);
6825 return NULL;
6826 }
6827 }
6828 return o;
6829 }
6830
6831 /* ============================= Hash commands ============================== */
6832 static void hsetCommand(redisClient *c) {
6833 int update;
6834 robj *o;
6835
6836 if ((o = hashLookupWriteOrCreate(c,c->argv[1])) == NULL) return;
6837 hashTryConversion(o,c->argv,2,3);
6838 hashTryObjectEncoding(o,&c->argv[2], &c->argv[3]);
6839 update = hashSet(o,c->argv[2],c->argv[3]);
6840 addReply(c, update ? shared.czero : shared.cone);
6841 server.dirty++;
6842 }
6843
6844 static void hsetnxCommand(redisClient *c) {
6845 robj *o;
6846 if ((o = hashLookupWriteOrCreate(c,c->argv[1])) == NULL) return;
6847 hashTryConversion(o,c->argv,2,3);
6848
6849 if (hashExists(o, c->argv[2])) {
6850 addReply(c, shared.czero);
6851 } else {
6852 hashTryObjectEncoding(o,&c->argv[2], &c->argv[3]);
6853 hashSet(o,c->argv[2],c->argv[3]);
6854 addReply(c, shared.cone);
6855 server.dirty++;
6856 }
6857 }
6858
6859 static void hmsetCommand(redisClient *c) {
6860 int i;
6861 robj *o;
6862
6863 if ((c->argc % 2) == 1) {
6864 addReplySds(c,sdsnew("-ERR wrong number of arguments for HMSET\r\n"));
6865 return;
6866 }
6867
6868 if ((o = hashLookupWriteOrCreate(c,c->argv[1])) == NULL) return;
6869 hashTryConversion(o,c->argv,2,c->argc-1);
6870 for (i = 2; i < c->argc; i += 2) {
6871 hashTryObjectEncoding(o,&c->argv[i], &c->argv[i+1]);
6872 hashSet(o,c->argv[i],c->argv[i+1]);
6873 }
6874 addReply(c, shared.ok);
6875 server.dirty++;
6876 }
6877
6878 static void hincrbyCommand(redisClient *c) {
6879 long long value, incr;
6880 robj *o, *current, *new;
6881
6882 if (getLongLongFromObjectOrReply(c,c->argv[3],&incr,NULL) != REDIS_OK) return;
6883 if ((o = hashLookupWriteOrCreate(c,c->argv[1])) == NULL) return;
6884 if ((current = hashGet(o,c->argv[2])) != NULL) {
6885 if (getLongLongFromObjectOrReply(c,current,&value,
6886 "hash value is not an integer") != REDIS_OK) {
6887 decrRefCount(current);
6888 return;
6889 }
6890 decrRefCount(current);
6891 } else {
6892 value = 0;
6893 }
6894
6895 value += incr;
6896 new = createStringObjectFromLongLong(value);
6897 hashTryObjectEncoding(o,&c->argv[2],NULL);
6898 hashSet(o,c->argv[2],new);
6899 decrRefCount(new);
6900 addReplyLongLong(c,value);
6901 server.dirty++;
6902 }
6903
6904 static void hgetCommand(redisClient *c) {
6905 robj *o, *value;
6906 if ((o = lookupKeyReadOrReply(c,c->argv[1],shared.nullbulk)) == NULL ||
6907 checkType(c,o,REDIS_HASH)) return;
6908
6909 if ((value = hashGet(o,c->argv[2])) != NULL) {
6910 addReplyBulk(c,value);
6911 decrRefCount(value);
6912 } else {
6913 addReply(c,shared.nullbulk);
6914 }
6915 }
6916
6917 static void hmgetCommand(redisClient *c) {
6918 int i;
6919 robj *o, *value;
6920 o = lookupKeyRead(c->db,c->argv[1]);
6921 if (o != NULL && o->type != REDIS_HASH) {
6922 addReply(c,shared.wrongtypeerr);
6923 }
6924
6925 /* Note the check for o != NULL happens inside the loop. This is
6926 * done because objects that cannot be found are considered to be
6927 * an empty hash. The reply should then be a series of NULLs. */
6928 addReplySds(c,sdscatprintf(sdsempty(),"*%d\r\n",c->argc-2));
6929 for (i = 2; i < c->argc; i++) {
6930 if (o != NULL && (value = hashGet(o,c->argv[i])) != NULL) {
6931 addReplyBulk(c,value);
6932 decrRefCount(value);
6933 } else {
6934 addReply(c,shared.nullbulk);
6935 }
6936 }
6937 }
6938
6939 static void hdelCommand(redisClient *c) {
6940 robj *o;
6941 if ((o = lookupKeyWriteOrReply(c,c->argv[1],shared.czero)) == NULL ||
6942 checkType(c,o,REDIS_HASH)) return;
6943
6944 if (hashDelete(o,c->argv[2])) {
6945 if (hashLength(o) == 0) deleteKey(c->db,c->argv[1]);
6946 addReply(c,shared.cone);
6947 server.dirty++;
6948 } else {
6949 addReply(c,shared.czero);
6950 }
6951 }
6952
6953 static void hlenCommand(redisClient *c) {
6954 robj *o;
6955 if ((o = lookupKeyReadOrReply(c,c->argv[1],shared.czero)) == NULL ||
6956 checkType(c,o,REDIS_HASH)) return;
6957
6958 addReplyUlong(c,hashLength(o));
6959 }
6960
6961 static void genericHgetallCommand(redisClient *c, int flags) {
6962 robj *o, *lenobj, *obj;
6963 unsigned long count = 0;
6964 hashIterator *hi;
6965
6966 if ((o = lookupKeyReadOrReply(c,c->argv[1],shared.emptymultibulk)) == NULL
6967 || checkType(c,o,REDIS_HASH)) return;
6968
6969 lenobj = createObject(REDIS_STRING,NULL);
6970 addReply(c,lenobj);
6971 decrRefCount(lenobj);
6972
6973 hi = hashInitIterator(o);
6974 while (hashNext(hi) != REDIS_ERR) {
6975 if (flags & REDIS_HASH_KEY) {
6976 obj = hashCurrent(hi,REDIS_HASH_KEY);
6977 addReplyBulk(c,obj);
6978 decrRefCount(obj);
6979 count++;
6980 }
6981 if (flags & REDIS_HASH_VALUE) {
6982 obj = hashCurrent(hi,REDIS_HASH_VALUE);
6983 addReplyBulk(c,obj);
6984 decrRefCount(obj);
6985 count++;
6986 }
6987 }
6988 hashReleaseIterator(hi);
6989
6990 lenobj->ptr = sdscatprintf(sdsempty(),"*%lu\r\n",count);
6991 }
6992
6993 static void hkeysCommand(redisClient *c) {
6994 genericHgetallCommand(c,REDIS_HASH_KEY);
6995 }
6996
6997 static void hvalsCommand(redisClient *c) {
6998 genericHgetallCommand(c,REDIS_HASH_VALUE);
6999 }
7000
7001 static void hgetallCommand(redisClient *c) {
7002 genericHgetallCommand(c,REDIS_HASH_KEY|REDIS_HASH_VALUE);
7003 }
7004
7005 static void hexistsCommand(redisClient *c) {
7006 robj *o;
7007 if ((o = lookupKeyReadOrReply(c,c->argv[1],shared.czero)) == NULL ||
7008 checkType(c,o,REDIS_HASH)) return;
7009
7010 addReply(c, hashExists(o,c->argv[2]) ? shared.cone : shared.czero);
7011 }
7012
7013 static void convertToRealHash(robj *o) {
7014 unsigned char *key, *val, *p, *zm = o->ptr;
7015 unsigned int klen, vlen;
7016 dict *dict = dictCreate(&hashDictType,NULL);
7017
7018 assert(o->type == REDIS_HASH && o->encoding != REDIS_ENCODING_HT);
7019 p = zipmapRewind(zm);
7020 while((p = zipmapNext(p,&key,&klen,&val,&vlen)) != NULL) {
7021 robj *keyobj, *valobj;
7022
7023 keyobj = createStringObject((char*)key,klen);
7024 valobj = createStringObject((char*)val,vlen);
7025 keyobj = tryObjectEncoding(keyobj);
7026 valobj = tryObjectEncoding(valobj);
7027 dictAdd(dict,keyobj,valobj);
7028 }
7029 o->encoding = REDIS_ENCODING_HT;
7030 o->ptr = dict;
7031 zfree(zm);
7032 }
7033
7034 /* ========================= Non type-specific commands ==================== */
7035
7036 static void flushdbCommand(redisClient *c) {
7037 server.dirty += dictSize(c->db->dict);
7038 touchWatchedKeysOnFlush(c->db->id);
7039 dictEmpty(c->db->dict);
7040 dictEmpty(c->db->expires);
7041 addReply(c,shared.ok);
7042 }
7043
7044 static void flushallCommand(redisClient *c) {
7045 touchWatchedKeysOnFlush(-1);
7046 server.dirty += emptyDb();
7047 addReply(c,shared.ok);
7048 if (server.bgsavechildpid != -1) {
7049 kill(server.bgsavechildpid,SIGKILL);
7050 rdbRemoveTempFile(server.bgsavechildpid);
7051 }
7052 rdbSave(server.dbfilename);
7053 server.dirty++;
7054 }
7055
7056 static redisSortOperation *createSortOperation(int type, robj *pattern) {
7057 redisSortOperation *so = zmalloc(sizeof(*so));
7058 so->type = type;
7059 so->pattern = pattern;
7060 return so;
7061 }
7062
7063 /* Return the value associated to the key with a name obtained
7064 * substituting the first occurence of '*' in 'pattern' with 'subst'.
7065 * The returned object will always have its refcount increased by 1
7066 * when it is non-NULL. */
7067 static robj *lookupKeyByPattern(redisDb *db, robj *pattern, robj *subst) {
7068 char *p, *f;
7069 sds spat, ssub;
7070 robj keyobj, fieldobj, *o;
7071 int prefixlen, sublen, postfixlen, fieldlen;
7072 /* Expoit the internal sds representation to create a sds string allocated on the stack in order to make this function faster */
7073 struct {
7074 long len;
7075 long free;
7076 char buf[REDIS_SORTKEY_MAX+1];
7077 } keyname, fieldname;
7078
7079 /* If the pattern is "#" return the substitution object itself in order
7080 * to implement the "SORT ... GET #" feature. */
7081 spat = pattern->ptr;
7082 if (spat[0] == '#' && spat[1] == '\0') {
7083 incrRefCount(subst);
7084 return subst;
7085 }
7086
7087 /* The substitution object may be specially encoded. If so we create
7088 * a decoded object on the fly. Otherwise getDecodedObject will just
7089 * increment the ref count, that we'll decrement later. */
7090 subst = getDecodedObject(subst);
7091
7092 ssub = subst->ptr;
7093 if (sdslen(spat)+sdslen(ssub)-1 > REDIS_SORTKEY_MAX) return NULL;
7094 p = strchr(spat,'*');
7095 if (!p) {
7096 decrRefCount(subst);
7097 return NULL;
7098 }
7099
7100 /* Find out if we're dealing with a hash dereference. */
7101 if ((f = strstr(p+1, "->")) != NULL) {
7102 fieldlen = sdslen(spat)-(f-spat);
7103 /* this also copies \0 character */
7104 memcpy(fieldname.buf,f+2,fieldlen-1);
7105 fieldname.len = fieldlen-2;
7106 } else {
7107 fieldlen = 0;
7108 }
7109
7110 prefixlen = p-spat;
7111 sublen = sdslen(ssub);
7112 postfixlen = sdslen(spat)-(prefixlen+1)-fieldlen;
7113 memcpy(keyname.buf,spat,prefixlen);
7114 memcpy(keyname.buf+prefixlen,ssub,sublen);
7115 memcpy(keyname.buf+prefixlen+sublen,p+1,postfixlen);
7116 keyname.buf[prefixlen+sublen+postfixlen] = '\0';
7117 keyname.len = prefixlen+sublen+postfixlen;
7118 decrRefCount(subst);
7119
7120 /* Lookup substituted key */
7121 initStaticStringObject(keyobj,((char*)&keyname)+(sizeof(long)*2));
7122 o = lookupKeyRead(db,&keyobj);
7123 if (o == NULL) return NULL;
7124
7125 if (fieldlen > 0) {
7126 if (o->type != REDIS_HASH || fieldname.len < 1) return NULL;
7127
7128 /* Retrieve value from hash by the field name. This operation
7129 * already increases the refcount of the returned object. */
7130 initStaticStringObject(fieldobj,((char*)&fieldname)+(sizeof(long)*2));
7131 o = hashGet(o, &fieldobj);
7132 } else {
7133 if (o->type != REDIS_STRING) return NULL;
7134
7135 /* Every object that this function returns needs to have its refcount
7136 * increased. sortCommand decreases it again. */
7137 incrRefCount(o);
7138 }
7139
7140 return o;
7141 }
7142
7143 /* sortCompare() is used by qsort in sortCommand(). Given that qsort_r with
7144 * the additional parameter is not standard but a BSD-specific we have to
7145 * pass sorting parameters via the global 'server' structure */
7146 static int sortCompare(const void *s1, const void *s2) {
7147 const redisSortObject *so1 = s1, *so2 = s2;
7148 int cmp;
7149
7150 if (!server.sort_alpha) {
7151 /* Numeric sorting. Here it's trivial as we precomputed scores */
7152 if (so1->u.score > so2->u.score) {
7153 cmp = 1;
7154 } else if (so1->u.score < so2->u.score) {
7155 cmp = -1;
7156 } else {
7157 cmp = 0;
7158 }
7159 } else {
7160 /* Alphanumeric sorting */
7161 if (server.sort_bypattern) {
7162 if (!so1->u.cmpobj || !so2->u.cmpobj) {
7163 /* At least one compare object is NULL */
7164 if (so1->u.cmpobj == so2->u.cmpobj)
7165 cmp = 0;
7166 else if (so1->u.cmpobj == NULL)
7167 cmp = -1;
7168 else
7169 cmp = 1;
7170 } else {
7171 /* We have both the objects, use strcoll */
7172 cmp = strcoll(so1->u.cmpobj->ptr,so2->u.cmpobj->ptr);
7173 }
7174 } else {
7175 /* Compare elements directly. */
7176 cmp = compareStringObjects(so1->obj,so2->obj);
7177 }
7178 }
7179 return server.sort_desc ? -cmp : cmp;
7180 }
7181
7182 /* The SORT command is the most complex command in Redis. Warning: this code
7183 * is optimized for speed and a bit less for readability */
7184 static void sortCommand(redisClient *c) {
7185 list *operations;
7186 int outputlen = 0;
7187 int desc = 0, alpha = 0;
7188 int limit_start = 0, limit_count = -1, start, end;
7189 int j, dontsort = 0, vectorlen;
7190 int getop = 0; /* GET operation counter */
7191 robj *sortval, *sortby = NULL, *storekey = NULL;
7192 redisSortObject *vector; /* Resulting vector to sort */
7193
7194 /* Lookup the key to sort. It must be of the right types */
7195 sortval = lookupKeyRead(c->db,c->argv[1]);
7196 if (sortval == NULL) {
7197 addReply(c,shared.emptymultibulk);
7198 return;
7199 }
7200 if (sortval->type != REDIS_SET && sortval->type != REDIS_LIST &&
7201 sortval->type != REDIS_ZSET)
7202 {
7203 addReply(c,shared.wrongtypeerr);
7204 return;
7205 }
7206
7207 /* Create a list of operations to perform for every sorted element.
7208 * Operations can be GET/DEL/INCR/DECR */
7209 operations = listCreate();
7210 listSetFreeMethod(operations,zfree);
7211 j = 2;
7212
7213 /* Now we need to protect sortval incrementing its count, in the future
7214 * SORT may have options able to overwrite/delete keys during the sorting
7215 * and the sorted key itself may get destroied */
7216 incrRefCount(sortval);
7217
7218 /* The SORT command has an SQL-alike syntax, parse it */
7219 while(j < c->argc) {
7220 int leftargs = c->argc-j-1;
7221 if (!strcasecmp(c->argv[j]->ptr,"asc")) {
7222 desc = 0;
7223 } else if (!strcasecmp(c->argv[j]->ptr,"desc")) {
7224 desc = 1;
7225 } else if (!strcasecmp(c->argv[j]->ptr,"alpha")) {
7226 alpha = 1;
7227 } else if (!strcasecmp(c->argv[j]->ptr,"limit") && leftargs >= 2) {
7228 limit_start = atoi(c->argv[j+1]->ptr);
7229 limit_count = atoi(c->argv[j+2]->ptr);
7230 j+=2;
7231 } else if (!strcasecmp(c->argv[j]->ptr,"store") && leftargs >= 1) {
7232 storekey = c->argv[j+1];
7233 j++;
7234 } else if (!strcasecmp(c->argv[j]->ptr,"by") && leftargs >= 1) {
7235 sortby = c->argv[j+1];
7236 /* If the BY pattern does not contain '*', i.e. it is constant,
7237 * we don't need to sort nor to lookup the weight keys. */
7238 if (strchr(c->argv[j+1]->ptr,'*') == NULL) dontsort = 1;
7239 j++;
7240 } else if (!strcasecmp(c->argv[j]->ptr,"get") && leftargs >= 1) {
7241 listAddNodeTail(operations,createSortOperation(
7242 REDIS_SORT_GET,c->argv[j+1]));
7243 getop++;
7244 j++;
7245 } else {
7246 decrRefCount(sortval);
7247 listRelease(operations);
7248 addReply(c,shared.syntaxerr);
7249 return;
7250 }
7251 j++;
7252 }
7253
7254 /* Load the sorting vector with all the objects to sort */
7255 switch(sortval->type) {
7256 case REDIS_LIST: vectorlen = listLength((list*)sortval->ptr); break;
7257 case REDIS_SET: vectorlen = dictSize((dict*)sortval->ptr); break;
7258 case REDIS_ZSET: vectorlen = dictSize(((zset*)sortval->ptr)->dict); break;
7259 default: vectorlen = 0; redisPanic("Bad SORT type"); /* Avoid GCC warning */
7260 }
7261 vector = zmalloc(sizeof(redisSortObject)*vectorlen);
7262 j = 0;
7263
7264 if (sortval->type == REDIS_LIST) {
7265 list *list = sortval->ptr;
7266 listNode *ln;
7267 listIter li;
7268
7269 listRewind(list,&li);
7270 while((ln = listNext(&li))) {
7271 robj *ele = ln->value;
7272 vector[j].obj = ele;
7273 vector[j].u.score = 0;
7274 vector[j].u.cmpobj = NULL;
7275 j++;
7276 }
7277 } else {
7278 dict *set;
7279 dictIterator *di;
7280 dictEntry *setele;
7281
7282 if (sortval->type == REDIS_SET) {
7283 set = sortval->ptr;
7284 } else {
7285 zset *zs = sortval->ptr;
7286 set = zs->dict;
7287 }
7288
7289 di = dictGetIterator(set);
7290 while((setele = dictNext(di)) != NULL) {
7291 vector[j].obj = dictGetEntryKey(setele);
7292 vector[j].u.score = 0;
7293 vector[j].u.cmpobj = NULL;
7294 j++;
7295 }
7296 dictReleaseIterator(di);
7297 }
7298 redisAssert(j == vectorlen);
7299
7300 /* Now it's time to load the right scores in the sorting vector */
7301 if (dontsort == 0) {
7302 for (j = 0; j < vectorlen; j++) {
7303 robj *byval;
7304 if (sortby) {
7305 /* lookup value to sort by */
7306 byval = lookupKeyByPattern(c->db,sortby,vector[j].obj);
7307 if (!byval) continue;
7308 } else {
7309 /* use object itself to sort by */
7310 byval = vector[j].obj;
7311 }
7312
7313 if (alpha) {
7314 if (sortby) vector[j].u.cmpobj = getDecodedObject(byval);
7315 } else {
7316 if (byval->encoding == REDIS_ENCODING_RAW) {
7317 vector[j].u.score = strtod(byval->ptr,NULL);
7318 } else if (byval->encoding == REDIS_ENCODING_INT) {
7319 /* Don't need to decode the object if it's
7320 * integer-encoded (the only encoding supported) so
7321 * far. We can just cast it */
7322 vector[j].u.score = (long)byval->ptr;
7323 } else {
7324 redisAssert(1 != 1);
7325 }
7326 }
7327
7328 /* when the object was retrieved using lookupKeyByPattern,
7329 * its refcount needs to be decreased. */
7330 if (sortby) {
7331 decrRefCount(byval);
7332 }
7333 }
7334 }
7335
7336 /* We are ready to sort the vector... perform a bit of sanity check
7337 * on the LIMIT option too. We'll use a partial version of quicksort. */
7338 start = (limit_start < 0) ? 0 : limit_start;
7339 end = (limit_count < 0) ? vectorlen-1 : start+limit_count-1;
7340 if (start >= vectorlen) {
7341 start = vectorlen-1;
7342 end = vectorlen-2;
7343 }
7344 if (end >= vectorlen) end = vectorlen-1;
7345
7346 if (dontsort == 0) {
7347 server.sort_desc = desc;
7348 server.sort_alpha = alpha;
7349 server.sort_bypattern = sortby ? 1 : 0;
7350 if (sortby && (start != 0 || end != vectorlen-1))
7351 pqsort(vector,vectorlen,sizeof(redisSortObject),sortCompare, start,end);
7352 else
7353 qsort(vector,vectorlen,sizeof(redisSortObject),sortCompare);
7354 }
7355
7356 /* Send command output to the output buffer, performing the specified
7357 * GET/DEL/INCR/DECR operations if any. */
7358 outputlen = getop ? getop*(end-start+1) : end-start+1;
7359 if (storekey == NULL) {
7360 /* STORE option not specified, sent the sorting result to client */
7361 addReplySds(c,sdscatprintf(sdsempty(),"*%d\r\n",outputlen));
7362 for (j = start; j <= end; j++) {
7363 listNode *ln;
7364 listIter li;
7365
7366 if (!getop) addReplyBulk(c,vector[j].obj);
7367 listRewind(operations,&li);
7368 while((ln = listNext(&li))) {
7369 redisSortOperation *sop = ln->value;
7370 robj *val = lookupKeyByPattern(c->db,sop->pattern,
7371 vector[j].obj);
7372
7373 if (sop->type == REDIS_SORT_GET) {
7374 if (!val) {
7375 addReply(c,shared.nullbulk);
7376 } else {
7377 addReplyBulk(c,val);
7378 decrRefCount(val);
7379 }
7380 } else {
7381 redisAssert(sop->type == REDIS_SORT_GET); /* always fails */
7382 }
7383 }
7384 }
7385 } else {
7386 robj *listObject = createListObject();
7387 list *listPtr = (list*) listObject->ptr;
7388
7389 /* STORE option specified, set the sorting result as a List object */
7390 for (j = start; j <= end; j++) {
7391 listNode *ln;
7392 listIter li;
7393
7394 if (!getop) {
7395 listAddNodeTail(listPtr,vector[j].obj);
7396 incrRefCount(vector[j].obj);
7397 }
7398 listRewind(operations,&li);
7399 while((ln = listNext(&li))) {
7400 redisSortOperation *sop = ln->value;
7401 robj *val = lookupKeyByPattern(c->db,sop->pattern,
7402 vector[j].obj);
7403
7404 if (sop->type == REDIS_SORT_GET) {
7405 if (!val) {
7406 listAddNodeTail(listPtr,createStringObject("",0));
7407 } else {
7408 /* We should do a incrRefCount on val because it is
7409 * added to the list, but also a decrRefCount because
7410 * it is returned by lookupKeyByPattern. This results
7411 * in doing nothing at all. */
7412 listAddNodeTail(listPtr,val);
7413 }
7414 } else {
7415 redisAssert(sop->type == REDIS_SORT_GET); /* always fails */
7416 }
7417 }
7418 }
7419 if (dictReplace(c->db->dict,storekey,listObject)) {
7420 incrRefCount(storekey);
7421 }
7422 /* Note: we add 1 because the DB is dirty anyway since even if the
7423 * SORT result is empty a new key is set and maybe the old content
7424 * replaced. */
7425 server.dirty += 1+outputlen;
7426 addReplySds(c,sdscatprintf(sdsempty(),":%d\r\n",outputlen));
7427 }
7428
7429 /* Cleanup */
7430 decrRefCount(sortval);
7431 listRelease(operations);
7432 for (j = 0; j < vectorlen; j++) {
7433 if (alpha && vector[j].u.cmpobj)
7434 decrRefCount(vector[j].u.cmpobj);
7435 }
7436 zfree(vector);
7437 }
7438
7439 /* Convert an amount of bytes into a human readable string in the form
7440 * of 100B, 2G, 100M, 4K, and so forth. */
7441 static void bytesToHuman(char *s, unsigned long long n) {
7442 double d;
7443
7444 if (n < 1024) {
7445 /* Bytes */
7446 sprintf(s,"%lluB",n);
7447 return;
7448 } else if (n < (1024*1024)) {
7449 d = (double)n/(1024);
7450 sprintf(s,"%.2fK",d);
7451 } else if (n < (1024LL*1024*1024)) {
7452 d = (double)n/(1024*1024);
7453 sprintf(s,"%.2fM",d);
7454 } else if (n < (1024LL*1024*1024*1024)) {
7455 d = (double)n/(1024LL*1024*1024);
7456 sprintf(s,"%.2fG",d);
7457 }
7458 }
7459
7460 /* Create the string returned by the INFO command. This is decoupled
7461 * by the INFO command itself as we need to report the same information
7462 * on memory corruption problems. */
7463 static sds genRedisInfoString(void) {
7464 sds info;
7465 time_t uptime = time(NULL)-server.stat_starttime;
7466 int j;
7467 char hmem[64];
7468
7469 bytesToHuman(hmem,zmalloc_used_memory());
7470 info = sdscatprintf(sdsempty(),
7471 "redis_version:%s\r\n"
7472 "redis_git_sha1:%s\r\n"
7473 "redis_git_dirty:%d\r\n"
7474 "arch_bits:%s\r\n"
7475 "multiplexing_api:%s\r\n"
7476 "process_id:%ld\r\n"
7477 "uptime_in_seconds:%ld\r\n"
7478 "uptime_in_days:%ld\r\n"
7479 "connected_clients:%d\r\n"
7480 "connected_slaves:%d\r\n"
7481 "blocked_clients:%d\r\n"
7482 "used_memory:%zu\r\n"
7483 "used_memory_human:%s\r\n"
7484 "changes_since_last_save:%lld\r\n"
7485 "bgsave_in_progress:%d\r\n"
7486 "last_save_time:%ld\r\n"
7487 "bgrewriteaof_in_progress:%d\r\n"
7488 "total_connections_received:%lld\r\n"
7489 "total_commands_processed:%lld\r\n"
7490 "expired_keys:%lld\r\n"
7491 "hash_max_zipmap_entries:%zu\r\n"
7492 "hash_max_zipmap_value:%zu\r\n"
7493 "pubsub_channels:%ld\r\n"
7494 "pubsub_patterns:%u\r\n"
7495 "vm_enabled:%d\r\n"
7496 "role:%s\r\n"
7497 ,REDIS_VERSION,
7498 REDIS_GIT_SHA1,
7499 strtol(REDIS_GIT_DIRTY,NULL,10) > 0,
7500 (sizeof(long) == 8) ? "64" : "32",
7501 aeGetApiName(),
7502 (long) getpid(),
7503 uptime,
7504 uptime/(3600*24),
7505 listLength(server.clients)-listLength(server.slaves),
7506 listLength(server.slaves),
7507 server.blpop_blocked_clients,
7508 zmalloc_used_memory(),
7509 hmem,
7510 server.dirty,
7511 server.bgsavechildpid != -1,
7512 server.lastsave,
7513 server.bgrewritechildpid != -1,
7514 server.stat_numconnections,
7515 server.stat_numcommands,
7516 server.stat_expiredkeys,
7517 server.hash_max_zipmap_entries,
7518 server.hash_max_zipmap_value,
7519 dictSize(server.pubsub_channels),
7520 listLength(server.pubsub_patterns),
7521 server.vm_enabled != 0,
7522 server.masterhost == NULL ? "master" : "slave"
7523 );
7524 if (server.masterhost) {
7525 info = sdscatprintf(info,
7526 "master_host:%s\r\n"
7527 "master_port:%d\r\n"
7528 "master_link_status:%s\r\n"
7529 "master_last_io_seconds_ago:%d\r\n"
7530 ,server.masterhost,
7531 server.masterport,
7532 (server.replstate == REDIS_REPL_CONNECTED) ?
7533 "up" : "down",
7534 server.master ? ((int)(time(NULL)-server.master->lastinteraction)) : -1
7535 );
7536 }
7537 if (server.vm_enabled) {
7538 lockThreadedIO();
7539 info = sdscatprintf(info,
7540 "vm_conf_max_memory:%llu\r\n"
7541 "vm_conf_page_size:%llu\r\n"
7542 "vm_conf_pages:%llu\r\n"
7543 "vm_stats_used_pages:%llu\r\n"
7544 "vm_stats_swapped_objects:%llu\r\n"
7545 "vm_stats_swappin_count:%llu\r\n"
7546 "vm_stats_swappout_count:%llu\r\n"
7547 "vm_stats_io_newjobs_len:%lu\r\n"
7548 "vm_stats_io_processing_len:%lu\r\n"
7549 "vm_stats_io_processed_len:%lu\r\n"
7550 "vm_stats_io_active_threads:%lu\r\n"
7551 "vm_stats_blocked_clients:%lu\r\n"
7552 ,(unsigned long long) server.vm_max_memory,
7553 (unsigned long long) server.vm_page_size,
7554 (unsigned long long) server.vm_pages,
7555 (unsigned long long) server.vm_stats_used_pages,
7556 (unsigned long long) server.vm_stats_swapped_objects,
7557 (unsigned long long) server.vm_stats_swapins,
7558 (unsigned long long) server.vm_stats_swapouts,
7559 (unsigned long) listLength(server.io_newjobs),
7560 (unsigned long) listLength(server.io_processing),
7561 (unsigned long) listLength(server.io_processed),
7562 (unsigned long) server.io_active_threads,
7563 (unsigned long) server.vm_blocked_clients
7564 );
7565 unlockThreadedIO();
7566 }
7567 for (j = 0; j < server.dbnum; j++) {
7568 long long keys, vkeys;
7569
7570 keys = dictSize(server.db[j].dict);
7571 vkeys = dictSize(server.db[j].expires);
7572 if (keys || vkeys) {
7573 info = sdscatprintf(info, "db%d:keys=%lld,expires=%lld\r\n",
7574 j, keys, vkeys);
7575 }
7576 }
7577 return info;
7578 }
7579
7580 static void infoCommand(redisClient *c) {
7581 sds info = genRedisInfoString();
7582 addReplySds(c,sdscatprintf(sdsempty(),"$%lu\r\n",
7583 (unsigned long)sdslen(info)));
7584 addReplySds(c,info);
7585 addReply(c,shared.crlf);
7586 }
7587
7588 static void monitorCommand(redisClient *c) {
7589 /* ignore MONITOR if aleady slave or in monitor mode */
7590 if (c->flags & REDIS_SLAVE) return;
7591
7592 c->flags |= (REDIS_SLAVE|REDIS_MONITOR);
7593 c->slaveseldb = 0;
7594 listAddNodeTail(server.monitors,c);
7595 addReply(c,shared.ok);
7596 }
7597
7598 /* ================================= Expire ================================= */
7599 static int removeExpire(redisDb *db, robj *key) {
7600 if (dictDelete(db->expires,key) == DICT_OK) {
7601 return 1;
7602 } else {
7603 return 0;
7604 }
7605 }
7606
7607 static int setExpire(redisDb *db, robj *key, time_t when) {
7608 if (dictAdd(db->expires,key,(void*)when) == DICT_ERR) {
7609 return 0;
7610 } else {
7611 incrRefCount(key);
7612 return 1;
7613 }
7614 }
7615
7616 /* Return the expire time of the specified key, or -1 if no expire
7617 * is associated with this key (i.e. the key is non volatile) */
7618 static time_t getExpire(redisDb *db, robj *key) {
7619 dictEntry *de;
7620
7621 /* No expire? return ASAP */
7622 if (dictSize(db->expires) == 0 ||
7623 (de = dictFind(db->expires,key)) == NULL) return -1;
7624
7625 return (time_t) dictGetEntryVal(de);
7626 }
7627
7628 static int expireIfNeeded(redisDb *db, robj *key) {
7629 time_t when;
7630 dictEntry *de;
7631
7632 /* No expire? return ASAP */
7633 if (dictSize(db->expires) == 0 ||
7634 (de = dictFind(db->expires,key)) == NULL) return 0;
7635
7636 /* Lookup the expire */
7637 when = (time_t) dictGetEntryVal(de);
7638 if (time(NULL) <= when) return 0;
7639
7640 /* Delete the key */
7641 dictDelete(db->expires,key);
7642 server.stat_expiredkeys++;
7643 return dictDelete(db->dict,key) == DICT_OK;
7644 }
7645
7646 static int deleteIfVolatile(redisDb *db, robj *key) {
7647 dictEntry *de;
7648
7649 /* No expire? return ASAP */
7650 if (dictSize(db->expires) == 0 ||
7651 (de = dictFind(db->expires,key)) == NULL) return 0;
7652
7653 /* Delete the key */
7654 server.dirty++;
7655 server.stat_expiredkeys++;
7656 dictDelete(db->expires,key);
7657 return dictDelete(db->dict,key) == DICT_OK;
7658 }
7659
7660 static void expireGenericCommand(redisClient *c, robj *key, robj *param, long offset) {
7661 dictEntry *de;
7662 time_t seconds;
7663
7664 if (getLongFromObjectOrReply(c, param, &seconds, NULL) != REDIS_OK) return;
7665
7666 seconds -= offset;
7667
7668 de = dictFind(c->db->dict,key);
7669 if (de == NULL) {
7670 addReply(c,shared.czero);
7671 return;
7672 }
7673 if (seconds <= 0) {
7674 if (deleteKey(c->db,key)) server.dirty++;
7675 addReply(c, shared.cone);
7676 return;
7677 } else {
7678 time_t when = time(NULL)+seconds;
7679 if (setExpire(c->db,key,when)) {
7680 addReply(c,shared.cone);
7681 server.dirty++;
7682 } else {
7683 addReply(c,shared.czero);
7684 }
7685 return;
7686 }
7687 }
7688
7689 static void expireCommand(redisClient *c) {
7690 expireGenericCommand(c,c->argv[1],c->argv[2],0);
7691 }
7692
7693 static void expireatCommand(redisClient *c) {
7694 expireGenericCommand(c,c->argv[1],c->argv[2],time(NULL));
7695 }
7696
7697 static void ttlCommand(redisClient *c) {
7698 time_t expire;
7699 int ttl = -1;
7700
7701 expire = getExpire(c->db,c->argv[1]);
7702 if (expire != -1) {
7703 ttl = (int) (expire-time(NULL));
7704 if (ttl < 0) ttl = -1;
7705 }
7706 addReplySds(c,sdscatprintf(sdsempty(),":%d\r\n",ttl));
7707 }
7708
7709 /* ================================ MULTI/EXEC ============================== */
7710
7711 /* Client state initialization for MULTI/EXEC */
7712 static void initClientMultiState(redisClient *c) {
7713 c->mstate.commands = NULL;
7714 c->mstate.count = 0;
7715 }
7716
7717 /* Release all the resources associated with MULTI/EXEC state */
7718 static void freeClientMultiState(redisClient *c) {
7719 int j;
7720
7721 for (j = 0; j < c->mstate.count; j++) {
7722 int i;
7723 multiCmd *mc = c->mstate.commands+j;
7724
7725 for (i = 0; i < mc->argc; i++)
7726 decrRefCount(mc->argv[i]);
7727 zfree(mc->argv);
7728 }
7729 zfree(c->mstate.commands);
7730 }
7731
7732 /* Add a new command into the MULTI commands queue */
7733 static void queueMultiCommand(redisClient *c, struct redisCommand *cmd) {
7734 multiCmd *mc;
7735 int j;
7736
7737 c->mstate.commands = zrealloc(c->mstate.commands,
7738 sizeof(multiCmd)*(c->mstate.count+1));
7739 mc = c->mstate.commands+c->mstate.count;
7740 mc->cmd = cmd;
7741 mc->argc = c->argc;
7742 mc->argv = zmalloc(sizeof(robj*)*c->argc);
7743 memcpy(mc->argv,c->argv,sizeof(robj*)*c->argc);
7744 for (j = 0; j < c->argc; j++)
7745 incrRefCount(mc->argv[j]);
7746 c->mstate.count++;
7747 }
7748
7749 static void multiCommand(redisClient *c) {
7750 if (c->flags & REDIS_MULTI) {
7751 addReplySds(c,sdsnew("-ERR MULTI calls can not be nested\r\n"));
7752 return;
7753 }
7754 c->flags |= REDIS_MULTI;
7755 addReply(c,shared.ok);
7756 }
7757
7758 static void discardCommand(redisClient *c) {
7759 if (!(c->flags & REDIS_MULTI)) {
7760 addReplySds(c,sdsnew("-ERR DISCARD without MULTI\r\n"));
7761 return;
7762 }
7763
7764 freeClientMultiState(c);
7765 initClientMultiState(c);
7766 c->flags &= (~REDIS_MULTI);
7767 addReply(c,shared.ok);
7768 }
7769
7770 /* Send a MULTI command to all the slaves and AOF file. Check the execCommand
7771 * implememntation for more information. */
7772 static void execCommandReplicateMulti(redisClient *c) {
7773 struct redisCommand *cmd;
7774 robj *multistring = createStringObject("MULTI",5);
7775
7776 cmd = lookupCommand("multi");
7777 if (server.appendonly)
7778 feedAppendOnlyFile(cmd,c->db->id,&multistring,1);
7779 if (listLength(server.slaves))
7780 replicationFeedSlaves(server.slaves,c->db->id,&multistring,1);
7781 decrRefCount(multistring);
7782 }
7783
7784 static void execCommand(redisClient *c) {
7785 int j;
7786 robj **orig_argv;
7787 int orig_argc;
7788
7789 if (!(c->flags & REDIS_MULTI)) {
7790 addReplySds(c,sdsnew("-ERR EXEC without MULTI\r\n"));
7791 return;
7792 }
7793
7794 /* Check if we need to abort the EXEC if some WATCHed key was touched.
7795 * A failed EXEC will return a multi bulk nil object. */
7796 if (c->flags & REDIS_DIRTY_CAS) {
7797 freeClientMultiState(c);
7798 initClientMultiState(c);
7799 c->flags &= ~(REDIS_MULTI|REDIS_DIRTY_CAS);
7800 unwatchAllKeys(c);
7801 addReply(c,shared.nullmultibulk);
7802 return;
7803 }
7804
7805 /* Replicate a MULTI request now that we are sure the block is executed.
7806 * This way we'll deliver the MULTI/..../EXEC block as a whole and
7807 * both the AOF and the replication link will have the same consistency
7808 * and atomicity guarantees. */
7809 execCommandReplicateMulti(c);
7810
7811 /* Exec all the queued commands */
7812 unwatchAllKeys(c); /* Unwatch ASAP otherwise we'll waste CPU cycles */
7813 orig_argv = c->argv;
7814 orig_argc = c->argc;
7815 addReplySds(c,sdscatprintf(sdsempty(),"*%d\r\n",c->mstate.count));
7816 for (j = 0; j < c->mstate.count; j++) {
7817 c->argc = c->mstate.commands[j].argc;
7818 c->argv = c->mstate.commands[j].argv;
7819 call(c,c->mstate.commands[j].cmd);
7820 }
7821 c->argv = orig_argv;
7822 c->argc = orig_argc;
7823 freeClientMultiState(c);
7824 initClientMultiState(c);
7825 c->flags &= ~(REDIS_MULTI|REDIS_DIRTY_CAS);
7826 /* Make sure the EXEC command is always replicated / AOF, since we
7827 * always send the MULTI command (we can't know beforehand if the
7828 * next operations will contain at least a modification to the DB). */
7829 server.dirty++;
7830 }
7831
7832 /* =========================== Blocking Operations ========================= */
7833
7834 /* Currently Redis blocking operations support is limited to list POP ops,
7835 * so the current implementation is not fully generic, but it is also not
7836 * completely specific so it will not require a rewrite to support new
7837 * kind of blocking operations in the future.
7838 *
7839 * Still it's important to note that list blocking operations can be already
7840 * used as a notification mechanism in order to implement other blocking
7841 * operations at application level, so there must be a very strong evidence
7842 * of usefulness and generality before new blocking operations are implemented.
7843 *
7844 * This is how the current blocking POP works, we use BLPOP as example:
7845 * - If the user calls BLPOP and the key exists and contains a non empty list
7846 * then LPOP is called instead. So BLPOP is semantically the same as LPOP
7847 * if there is not to block.
7848 * - If instead BLPOP is called and the key does not exists or the list is
7849 * empty we need to block. In order to do so we remove the notification for
7850 * new data to read in the client socket (so that we'll not serve new
7851 * requests if the blocking request is not served). Also we put the client
7852 * in a dictionary (db->blocking_keys) mapping keys to a list of clients
7853 * blocking for this keys.
7854 * - If a PUSH operation against a key with blocked clients waiting is
7855 * performed, we serve the first in the list: basically instead to push
7856 * the new element inside the list we return it to the (first / oldest)
7857 * blocking client, unblock the client, and remove it form the list.
7858 *
7859 * The above comment and the source code should be enough in order to understand
7860 * the implementation and modify / fix it later.
7861 */
7862
7863 /* Set a client in blocking mode for the specified key, with the specified
7864 * timeout */
7865 static void blockForKeys(redisClient *c, robj **keys, int numkeys, time_t timeout) {
7866 dictEntry *de;
7867 list *l;
7868 int j;
7869
7870 c->blocking_keys = zmalloc(sizeof(robj*)*numkeys);
7871 c->blocking_keys_num = numkeys;
7872 c->blockingto = timeout;
7873 for (j = 0; j < numkeys; j++) {
7874 /* Add the key in the client structure, to map clients -> keys */
7875 c->blocking_keys[j] = keys[j];
7876 incrRefCount(keys[j]);
7877
7878 /* And in the other "side", to map keys -> clients */
7879 de = dictFind(c->db->blocking_keys,keys[j]);
7880 if (de == NULL) {
7881 int retval;
7882
7883 /* For every key we take a list of clients blocked for it */
7884 l = listCreate();
7885 retval = dictAdd(c->db->blocking_keys,keys[j],l);
7886 incrRefCount(keys[j]);
7887 assert(retval == DICT_OK);
7888 } else {
7889 l = dictGetEntryVal(de);
7890 }
7891 listAddNodeTail(l,c);
7892 }
7893 /* Mark the client as a blocked client */
7894 c->flags |= REDIS_BLOCKED;
7895 server.blpop_blocked_clients++;
7896 }
7897
7898 /* Unblock a client that's waiting in a blocking operation such as BLPOP */
7899 static void unblockClientWaitingData(redisClient *c) {
7900 dictEntry *de;
7901 list *l;
7902 int j;
7903
7904 assert(c->blocking_keys != NULL);
7905 /* The client may wait for multiple keys, so unblock it for every key. */
7906 for (j = 0; j < c->blocking_keys_num; j++) {
7907 /* Remove this client from the list of clients waiting for this key. */
7908 de = dictFind(c->db->blocking_keys,c->blocking_keys[j]);
7909 assert(de != NULL);
7910 l = dictGetEntryVal(de);
7911 listDelNode(l,listSearchKey(l,c));
7912 /* If the list is empty we need to remove it to avoid wasting memory */
7913 if (listLength(l) == 0)
7914 dictDelete(c->db->blocking_keys,c->blocking_keys[j]);
7915 decrRefCount(c->blocking_keys[j]);
7916 }
7917 /* Cleanup the client structure */
7918 zfree(c->blocking_keys);
7919 c->blocking_keys = NULL;
7920 c->flags &= (~REDIS_BLOCKED);
7921 server.blpop_blocked_clients--;
7922 /* We want to process data if there is some command waiting
7923 * in the input buffer. Note that this is safe even if
7924 * unblockClientWaitingData() gets called from freeClient() because
7925 * freeClient() will be smart enough to call this function
7926 * *after* c->querybuf was set to NULL. */
7927 if (c->querybuf && sdslen(c->querybuf) > 0) processInputBuffer(c);
7928 }
7929
7930 /* This should be called from any function PUSHing into lists.
7931 * 'c' is the "pushing client", 'key' is the key it is pushing data against,
7932 * 'ele' is the element pushed.
7933 *
7934 * If the function returns 0 there was no client waiting for a list push
7935 * against this key.
7936 *
7937 * If the function returns 1 there was a client waiting for a list push
7938 * against this key, the element was passed to this client thus it's not
7939 * needed to actually add it to the list and the caller should return asap. */
7940 static int handleClientsWaitingListPush(redisClient *c, robj *key, robj *ele) {
7941 struct dictEntry *de;
7942 redisClient *receiver;
7943 list *l;
7944 listNode *ln;
7945
7946 de = dictFind(c->db->blocking_keys,key);
7947 if (de == NULL) return 0;
7948 l = dictGetEntryVal(de);
7949 ln = listFirst(l);
7950 assert(ln != NULL);
7951 receiver = ln->value;
7952
7953 addReplySds(receiver,sdsnew("*2\r\n"));
7954 addReplyBulk(receiver,key);
7955 addReplyBulk(receiver,ele);
7956 unblockClientWaitingData(receiver);
7957 return 1;
7958 }
7959
7960 /* Blocking RPOP/LPOP */
7961 static void blockingPopGenericCommand(redisClient *c, int where) {
7962 robj *o;
7963 time_t timeout;
7964 int j;
7965
7966 for (j = 1; j < c->argc-1; j++) {
7967 o = lookupKeyWrite(c->db,c->argv[j]);
7968 if (o != NULL) {
7969 if (o->type != REDIS_LIST) {
7970 addReply(c,shared.wrongtypeerr);
7971 return;
7972 } else {
7973 list *list = o->ptr;
7974 if (listLength(list) != 0) {
7975 /* If the list contains elements fall back to the usual
7976 * non-blocking POP operation */
7977 robj *argv[2], **orig_argv;
7978 int orig_argc;
7979
7980 /* We need to alter the command arguments before to call
7981 * popGenericCommand() as the command takes a single key. */
7982 orig_argv = c->argv;
7983 orig_argc = c->argc;
7984 argv[1] = c->argv[j];
7985 c->argv = argv;
7986 c->argc = 2;
7987
7988 /* Also the return value is different, we need to output
7989 * the multi bulk reply header and the key name. The
7990 * "real" command will add the last element (the value)
7991 * for us. If this souds like an hack to you it's just
7992 * because it is... */
7993 addReplySds(c,sdsnew("*2\r\n"));
7994 addReplyBulk(c,argv[1]);
7995 popGenericCommand(c,where);
7996
7997 /* Fix the client structure with the original stuff */
7998 c->argv = orig_argv;
7999 c->argc = orig_argc;
8000 return;
8001 }
8002 }
8003 }
8004 }
8005 /* If the list is empty or the key does not exists we must block */
8006 timeout = strtol(c->argv[c->argc-1]->ptr,NULL,10);
8007 if (timeout > 0) timeout += time(NULL);
8008 blockForKeys(c,c->argv+1,c->argc-2,timeout);
8009 }
8010
8011 static void blpopCommand(redisClient *c) {
8012 blockingPopGenericCommand(c,REDIS_HEAD);
8013 }
8014
8015 static void brpopCommand(redisClient *c) {
8016 blockingPopGenericCommand(c,REDIS_TAIL);
8017 }
8018
8019 /* =============================== Replication ============================= */
8020
8021 static int syncWrite(int fd, char *ptr, ssize_t size, int timeout) {
8022 ssize_t nwritten, ret = size;
8023 time_t start = time(NULL);
8024
8025 timeout++;
8026 while(size) {
8027 if (aeWait(fd,AE_WRITABLE,1000) & AE_WRITABLE) {
8028 nwritten = write(fd,ptr,size);
8029 if (nwritten == -1) return -1;
8030 ptr += nwritten;
8031 size -= nwritten;
8032 }
8033 if ((time(NULL)-start) > timeout) {
8034 errno = ETIMEDOUT;
8035 return -1;
8036 }
8037 }
8038 return ret;
8039 }
8040
8041 static int syncRead(int fd, char *ptr, ssize_t size, int timeout) {
8042 ssize_t nread, totread = 0;
8043 time_t start = time(NULL);
8044
8045 timeout++;
8046 while(size) {
8047 if (aeWait(fd,AE_READABLE,1000) & AE_READABLE) {
8048 nread = read(fd,ptr,size);
8049 if (nread == -1) return -1;
8050 ptr += nread;
8051 size -= nread;
8052 totread += nread;
8053 }
8054 if ((time(NULL)-start) > timeout) {
8055 errno = ETIMEDOUT;
8056 return -1;
8057 }
8058 }
8059 return totread;
8060 }
8061
8062 static int syncReadLine(int fd, char *ptr, ssize_t size, int timeout) {
8063 ssize_t nread = 0;
8064
8065 size--;
8066 while(size) {
8067 char c;
8068
8069 if (syncRead(fd,&c,1,timeout) == -1) return -1;
8070 if (c == '\n') {
8071 *ptr = '\0';
8072 if (nread && *(ptr-1) == '\r') *(ptr-1) = '\0';
8073 return nread;
8074 } else {
8075 *ptr++ = c;
8076 *ptr = '\0';
8077 nread++;
8078 }
8079 }
8080 return nread;
8081 }
8082
8083 static void syncCommand(redisClient *c) {
8084 /* ignore SYNC if aleady slave or in monitor mode */
8085 if (c->flags & REDIS_SLAVE) return;
8086
8087 /* SYNC can't be issued when the server has pending data to send to
8088 * the client about already issued commands. We need a fresh reply
8089 * buffer registering the differences between the BGSAVE and the current
8090 * dataset, so that we can copy to other slaves if needed. */
8091 if (listLength(c->reply) != 0) {
8092 addReplySds(c,sdsnew("-ERR SYNC is invalid with pending input\r\n"));
8093 return;
8094 }
8095
8096 redisLog(REDIS_NOTICE,"Slave ask for synchronization");
8097 /* Here we need to check if there is a background saving operation
8098 * in progress, or if it is required to start one */
8099 if (server.bgsavechildpid != -1) {
8100 /* Ok a background save is in progress. Let's check if it is a good
8101 * one for replication, i.e. if there is another slave that is
8102 * registering differences since the server forked to save */
8103 redisClient *slave;
8104 listNode *ln;
8105 listIter li;
8106
8107 listRewind(server.slaves,&li);
8108 while((ln = listNext(&li))) {
8109 slave = ln->value;
8110 if (slave->replstate == REDIS_REPL_WAIT_BGSAVE_END) break;
8111 }
8112 if (ln) {
8113 /* Perfect, the server is already registering differences for
8114 * another slave. Set the right state, and copy the buffer. */
8115 listRelease(c->reply);
8116 c->reply = listDup(slave->reply);
8117 c->replstate = REDIS_REPL_WAIT_BGSAVE_END;
8118 redisLog(REDIS_NOTICE,"Waiting for end of BGSAVE for SYNC");
8119 } else {
8120 /* No way, we need to wait for the next BGSAVE in order to
8121 * register differences */
8122 c->replstate = REDIS_REPL_WAIT_BGSAVE_START;
8123 redisLog(REDIS_NOTICE,"Waiting for next BGSAVE for SYNC");
8124 }
8125 } else {
8126 /* Ok we don't have a BGSAVE in progress, let's start one */
8127 redisLog(REDIS_NOTICE,"Starting BGSAVE for SYNC");
8128 if (rdbSaveBackground(server.dbfilename) != REDIS_OK) {
8129 redisLog(REDIS_NOTICE,"Replication failed, can't BGSAVE");
8130 addReplySds(c,sdsnew("-ERR Unalbe to perform background save\r\n"));
8131 return;
8132 }
8133 c->replstate = REDIS_REPL_WAIT_BGSAVE_END;
8134 }
8135 c->repldbfd = -1;
8136 c->flags |= REDIS_SLAVE;
8137 c->slaveseldb = 0;
8138 listAddNodeTail(server.slaves,c);
8139 return;
8140 }
8141
8142 static void sendBulkToSlave(aeEventLoop *el, int fd, void *privdata, int mask) {
8143 redisClient *slave = privdata;
8144 REDIS_NOTUSED(el);
8145 REDIS_NOTUSED(mask);
8146 char buf[REDIS_IOBUF_LEN];
8147 ssize_t nwritten, buflen;
8148
8149 if (slave->repldboff == 0) {
8150 /* Write the bulk write count before to transfer the DB. In theory here
8151 * we don't know how much room there is in the output buffer of the
8152 * socket, but in pratice SO_SNDLOWAT (the minimum count for output
8153 * operations) will never be smaller than the few bytes we need. */
8154 sds bulkcount;
8155
8156 bulkcount = sdscatprintf(sdsempty(),"$%lld\r\n",(unsigned long long)
8157 slave->repldbsize);
8158 if (write(fd,bulkcount,sdslen(bulkcount)) != (signed)sdslen(bulkcount))
8159 {
8160 sdsfree(bulkcount);
8161 freeClient(slave);
8162 return;
8163 }
8164 sdsfree(bulkcount);
8165 }
8166 lseek(slave->repldbfd,slave->repldboff,SEEK_SET);
8167 buflen = read(slave->repldbfd,buf,REDIS_IOBUF_LEN);
8168 if (buflen <= 0) {
8169 redisLog(REDIS_WARNING,"Read error sending DB to slave: %s",
8170 (buflen == 0) ? "premature EOF" : strerror(errno));
8171 freeClient(slave);
8172 return;
8173 }
8174 if ((nwritten = write(fd,buf,buflen)) == -1) {
8175 redisLog(REDIS_VERBOSE,"Write error sending DB to slave: %s",
8176 strerror(errno));
8177 freeClient(slave);
8178 return;
8179 }
8180 slave->repldboff += nwritten;
8181 if (slave->repldboff == slave->repldbsize) {
8182 close(slave->repldbfd);
8183 slave->repldbfd = -1;
8184 aeDeleteFileEvent(server.el,slave->fd,AE_WRITABLE);
8185 slave->replstate = REDIS_REPL_ONLINE;
8186 if (aeCreateFileEvent(server.el, slave->fd, AE_WRITABLE,
8187 sendReplyToClient, slave) == AE_ERR) {
8188 freeClient(slave);
8189 return;
8190 }
8191 addReplySds(slave,sdsempty());
8192 redisLog(REDIS_NOTICE,"Synchronization with slave succeeded");
8193 }
8194 }
8195
8196 /* This function is called at the end of every backgrond saving.
8197 * The argument bgsaveerr is REDIS_OK if the background saving succeeded
8198 * otherwise REDIS_ERR is passed to the function.
8199 *
8200 * The goal of this function is to handle slaves waiting for a successful
8201 * background saving in order to perform non-blocking synchronization. */
8202 static void updateSlavesWaitingBgsave(int bgsaveerr) {
8203 listNode *ln;
8204 int startbgsave = 0;
8205 listIter li;
8206
8207 listRewind(server.slaves,&li);
8208 while((ln = listNext(&li))) {
8209 redisClient *slave = ln->value;
8210
8211 if (slave->replstate == REDIS_REPL_WAIT_BGSAVE_START) {
8212 startbgsave = 1;
8213 slave->replstate = REDIS_REPL_WAIT_BGSAVE_END;
8214 } else if (slave->replstate == REDIS_REPL_WAIT_BGSAVE_END) {
8215 struct redis_stat buf;
8216
8217 if (bgsaveerr != REDIS_OK) {
8218 freeClient(slave);
8219 redisLog(REDIS_WARNING,"SYNC failed. BGSAVE child returned an error");
8220 continue;
8221 }
8222 if ((slave->repldbfd = open(server.dbfilename,O_RDONLY)) == -1 ||
8223 redis_fstat(slave->repldbfd,&buf) == -1) {
8224 freeClient(slave);
8225 redisLog(REDIS_WARNING,"SYNC failed. Can't open/stat DB after BGSAVE: %s", strerror(errno));
8226 continue;
8227 }
8228 slave->repldboff = 0;
8229 slave->repldbsize = buf.st_size;
8230 slave->replstate = REDIS_REPL_SEND_BULK;
8231 aeDeleteFileEvent(server.el,slave->fd,AE_WRITABLE);
8232 if (aeCreateFileEvent(server.el, slave->fd, AE_WRITABLE, sendBulkToSlave, slave) == AE_ERR) {
8233 freeClient(slave);
8234 continue;
8235 }
8236 }
8237 }
8238 if (startbgsave) {
8239 if (rdbSaveBackground(server.dbfilename) != REDIS_OK) {
8240 listIter li;
8241
8242 listRewind(server.slaves,&li);
8243 redisLog(REDIS_WARNING,"SYNC failed. BGSAVE failed");
8244 while((ln = listNext(&li))) {
8245 redisClient *slave = ln->value;
8246
8247 if (slave->replstate == REDIS_REPL_WAIT_BGSAVE_START)
8248 freeClient(slave);
8249 }
8250 }
8251 }
8252 }
8253
8254 static int syncWithMaster(void) {
8255 char buf[1024], tmpfile[256], authcmd[1024];
8256 long dumpsize;
8257 int fd = anetTcpConnect(NULL,server.masterhost,server.masterport);
8258 int dfd, maxtries = 5;
8259
8260 if (fd == -1) {
8261 redisLog(REDIS_WARNING,"Unable to connect to MASTER: %s",
8262 strerror(errno));
8263 return REDIS_ERR;
8264 }
8265
8266 /* AUTH with the master if required. */
8267 if(server.masterauth) {
8268 snprintf(authcmd, 1024, "AUTH %s\r\n", server.masterauth);
8269 if (syncWrite(fd, authcmd, strlen(server.masterauth)+7, 5) == -1) {
8270 close(fd);
8271 redisLog(REDIS_WARNING,"Unable to AUTH to MASTER: %s",
8272 strerror(errno));
8273 return REDIS_ERR;
8274 }
8275 /* Read the AUTH result. */
8276 if (syncReadLine(fd,buf,1024,3600) == -1) {
8277 close(fd);
8278 redisLog(REDIS_WARNING,"I/O error reading auth result from MASTER: %s",
8279 strerror(errno));
8280 return REDIS_ERR;
8281 }
8282 if (buf[0] != '+') {
8283 close(fd);
8284 redisLog(REDIS_WARNING,"Cannot AUTH to MASTER, is the masterauth password correct?");
8285 return REDIS_ERR;
8286 }
8287 }
8288
8289 /* Issue the SYNC command */
8290 if (syncWrite(fd,"SYNC \r\n",7,5) == -1) {
8291 close(fd);
8292 redisLog(REDIS_WARNING,"I/O error writing to MASTER: %s",
8293 strerror(errno));
8294 return REDIS_ERR;
8295 }
8296 /* Read the bulk write count */
8297 if (syncReadLine(fd,buf,1024,3600) == -1) {
8298 close(fd);
8299 redisLog(REDIS_WARNING,"I/O error reading bulk count from MASTER: %s",
8300 strerror(errno));
8301 return REDIS_ERR;
8302 }
8303 if (buf[0] != '$') {
8304 close(fd);
8305 redisLog(REDIS_WARNING,"Bad protocol from MASTER, the first byte is not '$', are you sure the host and port are right?");
8306 return REDIS_ERR;
8307 }
8308 dumpsize = strtol(buf+1,NULL,10);
8309 redisLog(REDIS_NOTICE,"Receiving %ld bytes data dump from MASTER",dumpsize);
8310 /* Read the bulk write data on a temp file */
8311 while(maxtries--) {
8312 snprintf(tmpfile,256,
8313 "temp-%d.%ld.rdb",(int)time(NULL),(long int)getpid());
8314 dfd = open(tmpfile,O_CREAT|O_WRONLY|O_EXCL,0644);
8315 if (dfd != -1) break;
8316 sleep(1);
8317 }
8318 if (dfd == -1) {
8319 close(fd);
8320 redisLog(REDIS_WARNING,"Opening the temp file needed for MASTER <-> SLAVE synchronization: %s",strerror(errno));
8321 return REDIS_ERR;
8322 }
8323 while(dumpsize) {
8324 int nread, nwritten;
8325
8326 nread = read(fd,buf,(dumpsize < 1024)?dumpsize:1024);
8327 if (nread == -1) {
8328 redisLog(REDIS_WARNING,"I/O error trying to sync with MASTER: %s",
8329 strerror(errno));
8330 close(fd);
8331 close(dfd);
8332 return REDIS_ERR;
8333 }
8334 nwritten = write(dfd,buf,nread);
8335 if (nwritten == -1) {
8336 redisLog(REDIS_WARNING,"Write error writing to the DB dump file needed for MASTER <-> SLAVE synchrnonization: %s", strerror(errno));
8337 close(fd);
8338 close(dfd);
8339 return REDIS_ERR;
8340 }
8341 dumpsize -= nread;
8342 }
8343 close(dfd);
8344 if (rename(tmpfile,server.dbfilename) == -1) {
8345 redisLog(REDIS_WARNING,"Failed trying to rename the temp DB into dump.rdb in MASTER <-> SLAVE synchronization: %s", strerror(errno));
8346 unlink(tmpfile);
8347 close(fd);
8348 return REDIS_ERR;
8349 }
8350 emptyDb();
8351 if (rdbLoad(server.dbfilename) != REDIS_OK) {
8352 redisLog(REDIS_WARNING,"Failed trying to load the MASTER synchronization DB from disk");
8353 close(fd);
8354 return REDIS_ERR;
8355 }
8356 server.master = createClient(fd);
8357 server.master->flags |= REDIS_MASTER;
8358 server.master->authenticated = 1;
8359 server.replstate = REDIS_REPL_CONNECTED;
8360 return REDIS_OK;
8361 }
8362
8363 static void slaveofCommand(redisClient *c) {
8364 if (!strcasecmp(c->argv[1]->ptr,"no") &&
8365 !strcasecmp(c->argv[2]->ptr,"one")) {
8366 if (server.masterhost) {
8367 sdsfree(server.masterhost);
8368 server.masterhost = NULL;
8369 if (server.master) freeClient(server.master);
8370 server.replstate = REDIS_REPL_NONE;
8371 redisLog(REDIS_NOTICE,"MASTER MODE enabled (user request)");
8372 }
8373 } else {
8374 sdsfree(server.masterhost);
8375 server.masterhost = sdsdup(c->argv[1]->ptr);
8376 server.masterport = atoi(c->argv[2]->ptr);
8377 if (server.master) freeClient(server.master);
8378 server.replstate = REDIS_REPL_CONNECT;
8379 redisLog(REDIS_NOTICE,"SLAVE OF %s:%d enabled (user request)",
8380 server.masterhost, server.masterport);
8381 }
8382 addReply(c,shared.ok);
8383 }
8384
8385 /* ============================ Maxmemory directive ======================== */
8386
8387 /* Try to free one object form the pre-allocated objects free list.
8388 * This is useful under low mem conditions as by default we take 1 million
8389 * free objects allocated. On success REDIS_OK is returned, otherwise
8390 * REDIS_ERR. */
8391 static int tryFreeOneObjectFromFreelist(void) {
8392 robj *o;
8393
8394 if (server.vm_enabled) pthread_mutex_lock(&server.obj_freelist_mutex);
8395 if (listLength(server.objfreelist)) {
8396 listNode *head = listFirst(server.objfreelist);
8397 o = listNodeValue(head);
8398 listDelNode(server.objfreelist,head);
8399 if (server.vm_enabled) pthread_mutex_unlock(&server.obj_freelist_mutex);
8400 zfree(o);
8401 return REDIS_OK;
8402 } else {
8403 if (server.vm_enabled) pthread_mutex_unlock(&server.obj_freelist_mutex);
8404 return REDIS_ERR;
8405 }
8406 }
8407
8408 /* This function gets called when 'maxmemory' is set on the config file to limit
8409 * the max memory used by the server, and we are out of memory.
8410 * This function will try to, in order:
8411 *
8412 * - Free objects from the free list
8413 * - Try to remove keys with an EXPIRE set
8414 *
8415 * It is not possible to free enough memory to reach used-memory < maxmemory
8416 * the server will start refusing commands that will enlarge even more the
8417 * memory usage.
8418 */
8419 static void freeMemoryIfNeeded(void) {
8420 while (server.maxmemory && zmalloc_used_memory() > server.maxmemory) {
8421 int j, k, freed = 0;
8422
8423 if (tryFreeOneObjectFromFreelist() == REDIS_OK) continue;
8424 for (j = 0; j < server.dbnum; j++) {
8425 int minttl = -1;
8426 robj *minkey = NULL;
8427 struct dictEntry *de;
8428
8429 if (dictSize(server.db[j].expires)) {
8430 freed = 1;
8431 /* From a sample of three keys drop the one nearest to
8432 * the natural expire */
8433 for (k = 0; k < 3; k++) {
8434 time_t t;
8435
8436 de = dictGetRandomKey(server.db[j].expires);
8437 t = (time_t) dictGetEntryVal(de);
8438 if (minttl == -1 || t < minttl) {
8439 minkey = dictGetEntryKey(de);
8440 minttl = t;
8441 }
8442 }
8443 deleteKey(server.db+j,minkey);
8444 }
8445 }
8446 if (!freed) return; /* nothing to free... */
8447 }
8448 }
8449
8450 /* ============================== Append Only file ========================== */
8451
8452 /* Write the append only file buffer on disk.
8453 *
8454 * Since we are required to write the AOF before replying to the client,
8455 * and the only way the client socket can get a write is entering when the
8456 * the event loop, we accumulate all the AOF writes in a memory
8457 * buffer and write it on disk using this function just before entering
8458 * the event loop again. */
8459 static void flushAppendOnlyFile(void) {
8460 time_t now;
8461 ssize_t nwritten;
8462
8463 if (sdslen(server.aofbuf) == 0) return;
8464
8465 /* We want to perform a single write. This should be guaranteed atomic
8466 * at least if the filesystem we are writing is a real physical one.
8467 * While this will save us against the server being killed I don't think
8468 * there is much to do about the whole server stopping for power problems
8469 * or alike */
8470 nwritten = write(server.appendfd,server.aofbuf,sdslen(server.aofbuf));
8471 if (nwritten != (signed)sdslen(server.aofbuf)) {
8472 /* Ooops, we are in troubles. The best thing to do for now is
8473 * aborting instead of giving the illusion that everything is
8474 * working as expected. */
8475 if (nwritten == -1) {
8476 redisLog(REDIS_WARNING,"Exiting on error writing to the append-only file: %s",strerror(errno));
8477 } else {
8478 redisLog(REDIS_WARNING,"Exiting on short write while writing to the append-only file: %s",strerror(errno));
8479 }
8480 exit(1);
8481 }
8482 sdsfree(server.aofbuf);
8483 server.aofbuf = sdsempty();
8484
8485 /* Fsync if needed */
8486 now = time(NULL);
8487 if (server.appendfsync == APPENDFSYNC_ALWAYS ||
8488 (server.appendfsync == APPENDFSYNC_EVERYSEC &&
8489 now-server.lastfsync > 1))
8490 {
8491 /* aof_fsync is defined as fdatasync() for Linux in order to avoid
8492 * flushing metadata. */
8493 aof_fsync(server.appendfd); /* Let's try to get this data on the disk */
8494 server.lastfsync = now;
8495 }
8496 }
8497
8498 static sds catAppendOnlyGenericCommand(sds buf, int argc, robj **argv) {
8499 int j;
8500 buf = sdscatprintf(buf,"*%d\r\n",argc);
8501 for (j = 0; j < argc; j++) {
8502 robj *o = getDecodedObject(argv[j]);
8503 buf = sdscatprintf(buf,"$%lu\r\n",(unsigned long)sdslen(o->ptr));
8504 buf = sdscatlen(buf,o->ptr,sdslen(o->ptr));
8505 buf = sdscatlen(buf,"\r\n",2);
8506 decrRefCount(o);
8507 }
8508 return buf;
8509 }
8510
8511 static sds catAppendOnlyExpireAtCommand(sds buf, robj *key, robj *seconds) {
8512 int argc = 3;
8513 long when;
8514 robj *argv[3];
8515
8516 /* Make sure we can use strtol */
8517 seconds = getDecodedObject(seconds);
8518 when = time(NULL)+strtol(seconds->ptr,NULL,10);
8519 decrRefCount(seconds);
8520
8521 argv[0] = createStringObject("EXPIREAT",8);
8522 argv[1] = key;
8523 argv[2] = createObject(REDIS_STRING,
8524 sdscatprintf(sdsempty(),"%ld",when));
8525 buf = catAppendOnlyGenericCommand(buf, argc, argv);
8526 decrRefCount(argv[0]);
8527 decrRefCount(argv[2]);
8528 return buf;
8529 }
8530
8531 static void feedAppendOnlyFile(struct redisCommand *cmd, int dictid, robj **argv, int argc) {
8532 sds buf = sdsempty();
8533 robj *tmpargv[3];
8534
8535 /* The DB this command was targetting is not the same as the last command
8536 * we appendend. To issue a SELECT command is needed. */
8537 if (dictid != server.appendseldb) {
8538 char seldb[64];
8539
8540 snprintf(seldb,sizeof(seldb),"%d",dictid);
8541 buf = sdscatprintf(buf,"*2\r\n$6\r\nSELECT\r\n$%lu\r\n%s\r\n",
8542 (unsigned long)strlen(seldb),seldb);
8543 server.appendseldb = dictid;
8544 }
8545
8546 if (cmd->proc == expireCommand) {
8547 /* Translate EXPIRE into EXPIREAT */
8548 buf = catAppendOnlyExpireAtCommand(buf,argv[1],argv[2]);
8549 } else if (cmd->proc == setexCommand) {
8550 /* Translate SETEX to SET and EXPIREAT */
8551 tmpargv[0] = createStringObject("SET",3);
8552 tmpargv[1] = argv[1];
8553 tmpargv[2] = argv[3];
8554 buf = catAppendOnlyGenericCommand(buf,3,tmpargv);
8555 decrRefCount(tmpargv[0]);
8556 buf = catAppendOnlyExpireAtCommand(buf,argv[1],argv[2]);
8557 } else {
8558 buf = catAppendOnlyGenericCommand(buf,argc,argv);
8559 }
8560
8561 /* Append to the AOF buffer. This will be flushed on disk just before
8562 * of re-entering the event loop, so before the client will get a
8563 * positive reply about the operation performed. */
8564 server.aofbuf = sdscatlen(server.aofbuf,buf,sdslen(buf));
8565
8566 /* If a background append only file rewriting is in progress we want to
8567 * accumulate the differences between the child DB and the current one
8568 * in a buffer, so that when the child process will do its work we
8569 * can append the differences to the new append only file. */
8570 if (server.bgrewritechildpid != -1)
8571 server.bgrewritebuf = sdscatlen(server.bgrewritebuf,buf,sdslen(buf));
8572
8573 sdsfree(buf);
8574 }
8575
8576 /* In Redis commands are always executed in the context of a client, so in
8577 * order to load the append only file we need to create a fake client. */
8578 static struct redisClient *createFakeClient(void) {
8579 struct redisClient *c = zmalloc(sizeof(*c));
8580
8581 selectDb(c,0);
8582 c->fd = -1;
8583 c->querybuf = sdsempty();
8584 c->argc = 0;
8585 c->argv = NULL;
8586 c->flags = 0;
8587 /* We set the fake client as a slave waiting for the synchronization
8588 * so that Redis will not try to send replies to this client. */
8589 c->replstate = REDIS_REPL_WAIT_BGSAVE_START;
8590 c->reply = listCreate();
8591 listSetFreeMethod(c->reply,decrRefCount);
8592 listSetDupMethod(c->reply,dupClientReplyValue);
8593 initClientMultiState(c);
8594 return c;
8595 }
8596
8597 static void freeFakeClient(struct redisClient *c) {
8598 sdsfree(c->querybuf);
8599 listRelease(c->reply);
8600 freeClientMultiState(c);
8601 zfree(c);
8602 }
8603
8604 /* Replay the append log file. On error REDIS_OK is returned. On non fatal
8605 * error (the append only file is zero-length) REDIS_ERR is returned. On
8606 * fatal error an error message is logged and the program exists. */
8607 int loadAppendOnlyFile(char *filename) {
8608 struct redisClient *fakeClient;
8609 FILE *fp = fopen(filename,"r");
8610 struct redis_stat sb;
8611 unsigned long long loadedkeys = 0;
8612 int appendonly = server.appendonly;
8613
8614 if (redis_fstat(fileno(fp),&sb) != -1 && sb.st_size == 0)
8615 return REDIS_ERR;
8616
8617 if (fp == NULL) {
8618 redisLog(REDIS_WARNING,"Fatal error: can't open the append log file for reading: %s",strerror(errno));
8619 exit(1);
8620 }
8621
8622 /* Temporarily disable AOF, to prevent EXEC from feeding a MULTI
8623 * to the same file we're about to read. */
8624 server.appendonly = 0;
8625
8626 fakeClient = createFakeClient();
8627 while(1) {
8628 int argc, j;
8629 unsigned long len;
8630 robj **argv;
8631 char buf[128];
8632 sds argsds;
8633 struct redisCommand *cmd;
8634
8635 if (fgets(buf,sizeof(buf),fp) == NULL) {
8636 if (feof(fp))
8637 break;
8638 else
8639 goto readerr;
8640 }
8641 if (buf[0] != '*') goto fmterr;
8642 argc = atoi(buf+1);
8643 argv = zmalloc(sizeof(robj*)*argc);
8644 for (j = 0; j < argc; j++) {
8645 if (fgets(buf,sizeof(buf),fp) == NULL) goto readerr;
8646 if (buf[0] != '$') goto fmterr;
8647 len = strtol(buf+1,NULL,10);
8648 argsds = sdsnewlen(NULL,len);
8649 if (len && fread(argsds,len,1,fp) == 0) goto fmterr;
8650 argv[j] = createObject(REDIS_STRING,argsds);
8651 if (fread(buf,2,1,fp) == 0) goto fmterr; /* discard CRLF */
8652 }
8653
8654 /* Command lookup */
8655 cmd = lookupCommand(argv[0]->ptr);
8656 if (!cmd) {
8657 redisLog(REDIS_WARNING,"Unknown command '%s' reading the append only file", argv[0]->ptr);
8658 exit(1);
8659 }
8660 /* Try object encoding */
8661 if (cmd->flags & REDIS_CMD_BULK)
8662 argv[argc-1] = tryObjectEncoding(argv[argc-1]);
8663 /* Run the command in the context of a fake client */
8664 fakeClient->argc = argc;
8665 fakeClient->argv = argv;
8666 cmd->proc(fakeClient);
8667 /* Discard the reply objects list from the fake client */
8668 while(listLength(fakeClient->reply))
8669 listDelNode(fakeClient->reply,listFirst(fakeClient->reply));
8670 /* Clean up, ready for the next command */
8671 for (j = 0; j < argc; j++) decrRefCount(argv[j]);
8672 zfree(argv);
8673 /* Handle swapping while loading big datasets when VM is on */
8674 loadedkeys++;
8675 if (server.vm_enabled && (loadedkeys % 5000) == 0) {
8676 while (zmalloc_used_memory() > server.vm_max_memory) {
8677 if (vmSwapOneObjectBlocking() == REDIS_ERR) break;
8678 }
8679 }
8680 }
8681
8682 /* This point can only be reached when EOF is reached without errors.
8683 * If the client is in the middle of a MULTI/EXEC, log error and quit. */
8684 if (fakeClient->flags & REDIS_MULTI) goto readerr;
8685
8686 fclose(fp);
8687 freeFakeClient(fakeClient);
8688 server.appendonly = appendonly;
8689 return REDIS_OK;
8690
8691 readerr:
8692 if (feof(fp)) {
8693 redisLog(REDIS_WARNING,"Unexpected end of file reading the append only file");
8694 } else {
8695 redisLog(REDIS_WARNING,"Unrecoverable error reading the append only file: %s", strerror(errno));
8696 }
8697 exit(1);
8698 fmterr:
8699 redisLog(REDIS_WARNING,"Bad file format reading the append only file");
8700 exit(1);
8701 }
8702
8703 /* Write an object into a file in the bulk format $<count>\r\n<payload>\r\n */
8704 static int fwriteBulkObject(FILE *fp, robj *obj) {
8705 char buf[128];
8706 int decrrc = 0;
8707
8708 /* Avoid the incr/decr ref count business if possible to help
8709 * copy-on-write (we are often in a child process when this function
8710 * is called).
8711 * Also makes sure that key objects don't get incrRefCount-ed when VM
8712 * is enabled */
8713 if (obj->encoding != REDIS_ENCODING_RAW) {
8714 obj = getDecodedObject(obj);
8715 decrrc = 1;
8716 }
8717 snprintf(buf,sizeof(buf),"$%ld\r\n",(long)sdslen(obj->ptr));
8718 if (fwrite(buf,strlen(buf),1,fp) == 0) goto err;
8719 if (sdslen(obj->ptr) && fwrite(obj->ptr,sdslen(obj->ptr),1,fp) == 0)
8720 goto err;
8721 if (fwrite("\r\n",2,1,fp) == 0) goto err;
8722 if (decrrc) decrRefCount(obj);
8723 return 1;
8724 err:
8725 if (decrrc) decrRefCount(obj);
8726 return 0;
8727 }
8728
8729 /* Write binary-safe string into a file in the bulkformat
8730 * $<count>\r\n<payload>\r\n */
8731 static int fwriteBulkString(FILE *fp, char *s, unsigned long len) {
8732 char buf[128];
8733
8734 snprintf(buf,sizeof(buf),"$%ld\r\n",(unsigned long)len);
8735 if (fwrite(buf,strlen(buf),1,fp) == 0) return 0;
8736 if (len && fwrite(s,len,1,fp) == 0) return 0;
8737 if (fwrite("\r\n",2,1,fp) == 0) return 0;
8738 return 1;
8739 }
8740
8741 /* Write a double value in bulk format $<count>\r\n<payload>\r\n */
8742 static int fwriteBulkDouble(FILE *fp, double d) {
8743 char buf[128], dbuf[128];
8744
8745 snprintf(dbuf,sizeof(dbuf),"%.17g\r\n",d);
8746 snprintf(buf,sizeof(buf),"$%lu\r\n",(unsigned long)strlen(dbuf)-2);
8747 if (fwrite(buf,strlen(buf),1,fp) == 0) return 0;
8748 if (fwrite(dbuf,strlen(dbuf),1,fp) == 0) return 0;
8749 return 1;
8750 }
8751
8752 /* Write a long value in bulk format $<count>\r\n<payload>\r\n */
8753 static int fwriteBulkLong(FILE *fp, long l) {
8754 char buf[128], lbuf[128];
8755
8756 snprintf(lbuf,sizeof(lbuf),"%ld\r\n",l);
8757 snprintf(buf,sizeof(buf),"$%lu\r\n",(unsigned long)strlen(lbuf)-2);
8758 if (fwrite(buf,strlen(buf),1,fp) == 0) return 0;
8759 if (fwrite(lbuf,strlen(lbuf),1,fp) == 0) return 0;
8760 return 1;
8761 }
8762
8763 /* Write a sequence of commands able to fully rebuild the dataset into
8764 * "filename". Used both by REWRITEAOF and BGREWRITEAOF. */
8765 static int rewriteAppendOnlyFile(char *filename) {
8766 dictIterator *di = NULL;
8767 dictEntry *de;
8768 FILE *fp;
8769 char tmpfile[256];
8770 int j;
8771 time_t now = time(NULL);
8772
8773 /* Note that we have to use a different temp name here compared to the
8774 * one used by rewriteAppendOnlyFileBackground() function. */
8775 snprintf(tmpfile,256,"temp-rewriteaof-%d.aof", (int) getpid());
8776 fp = fopen(tmpfile,"w");
8777 if (!fp) {
8778 redisLog(REDIS_WARNING, "Failed rewriting the append only file: %s", strerror(errno));
8779 return REDIS_ERR;
8780 }
8781 for (j = 0; j < server.dbnum; j++) {
8782 char selectcmd[] = "*2\r\n$6\r\nSELECT\r\n";
8783 redisDb *db = server.db+j;
8784 dict *d = db->dict;
8785 if (dictSize(d) == 0) continue;
8786 di = dictGetIterator(d);
8787 if (!di) {
8788 fclose(fp);
8789 return REDIS_ERR;
8790 }
8791
8792 /* SELECT the new DB */
8793 if (fwrite(selectcmd,sizeof(selectcmd)-1,1,fp) == 0) goto werr;
8794 if (fwriteBulkLong(fp,j) == 0) goto werr;
8795
8796 /* Iterate this DB writing every entry */
8797 while((de = dictNext(di)) != NULL) {
8798 robj *key, *o;
8799 time_t expiretime;
8800 int swapped;
8801
8802 key = dictGetEntryKey(de);
8803 /* If the value for this key is swapped, load a preview in memory.
8804 * We use a "swapped" flag to remember if we need to free the
8805 * value object instead to just increment the ref count anyway
8806 * in order to avoid copy-on-write of pages if we are forked() */
8807 if (!server.vm_enabled || key->storage == REDIS_VM_MEMORY ||
8808 key->storage == REDIS_VM_SWAPPING) {
8809 o = dictGetEntryVal(de);
8810 swapped = 0;
8811 } else {
8812 o = vmPreviewObject(key);
8813 swapped = 1;
8814 }
8815 expiretime = getExpire(db,key);
8816
8817 /* Save the key and associated value */
8818 if (o->type == REDIS_STRING) {
8819 /* Emit a SET command */
8820 char cmd[]="*3\r\n$3\r\nSET\r\n";
8821 if (fwrite(cmd,sizeof(cmd)-1,1,fp) == 0) goto werr;
8822 /* Key and value */
8823 if (fwriteBulkObject(fp,key) == 0) goto werr;
8824 if (fwriteBulkObject(fp,o) == 0) goto werr;
8825 } else if (o->type == REDIS_LIST) {
8826 /* Emit the RPUSHes needed to rebuild the list */
8827 list *list = o->ptr;
8828 listNode *ln;
8829 listIter li;
8830
8831 listRewind(list,&li);
8832 while((ln = listNext(&li))) {
8833 char cmd[]="*3\r\n$5\r\nRPUSH\r\n";
8834 robj *eleobj = listNodeValue(ln);
8835
8836 if (fwrite(cmd,sizeof(cmd)-1,1,fp) == 0) goto werr;
8837 if (fwriteBulkObject(fp,key) == 0) goto werr;
8838 if (fwriteBulkObject(fp,eleobj) == 0) goto werr;
8839 }
8840 } else if (o->type == REDIS_SET) {
8841 /* Emit the SADDs needed to rebuild the set */
8842 dict *set = o->ptr;
8843 dictIterator *di = dictGetIterator(set);
8844 dictEntry *de;
8845
8846 while((de = dictNext(di)) != NULL) {
8847 char cmd[]="*3\r\n$4\r\nSADD\r\n";
8848 robj *eleobj = dictGetEntryKey(de);
8849
8850 if (fwrite(cmd,sizeof(cmd)-1,1,fp) == 0) goto werr;
8851 if (fwriteBulkObject(fp,key) == 0) goto werr;
8852 if (fwriteBulkObject(fp,eleobj) == 0) goto werr;
8853 }
8854 dictReleaseIterator(di);
8855 } else if (o->type == REDIS_ZSET) {
8856 /* Emit the ZADDs needed to rebuild the sorted set */
8857 zset *zs = o->ptr;
8858 dictIterator *di = dictGetIterator(zs->dict);
8859 dictEntry *de;
8860
8861 while((de = dictNext(di)) != NULL) {
8862 char cmd[]="*4\r\n$4\r\nZADD\r\n";
8863 robj *eleobj = dictGetEntryKey(de);
8864 double *score = dictGetEntryVal(de);
8865
8866 if (fwrite(cmd,sizeof(cmd)-1,1,fp) == 0) goto werr;
8867 if (fwriteBulkObject(fp,key) == 0) goto werr;
8868 if (fwriteBulkDouble(fp,*score) == 0) goto werr;
8869 if (fwriteBulkObject(fp,eleobj) == 0) goto werr;
8870 }
8871 dictReleaseIterator(di);
8872 } else if (o->type == REDIS_HASH) {
8873 char cmd[]="*4\r\n$4\r\nHSET\r\n";
8874
8875 /* Emit the HSETs needed to rebuild the hash */
8876 if (o->encoding == REDIS_ENCODING_ZIPMAP) {
8877 unsigned char *p = zipmapRewind(o->ptr);
8878 unsigned char *field, *val;
8879 unsigned int flen, vlen;
8880
8881 while((p = zipmapNext(p,&field,&flen,&val,&vlen)) != NULL) {
8882 if (fwrite(cmd,sizeof(cmd)-1,1,fp) == 0) goto werr;
8883 if (fwriteBulkObject(fp,key) == 0) goto werr;
8884 if (fwriteBulkString(fp,(char*)field,flen) == -1)
8885 return -1;
8886 if (fwriteBulkString(fp,(char*)val,vlen) == -1)
8887 return -1;
8888 }
8889 } else {
8890 dictIterator *di = dictGetIterator(o->ptr);
8891 dictEntry *de;
8892
8893 while((de = dictNext(di)) != NULL) {
8894 robj *field = dictGetEntryKey(de);
8895 robj *val = dictGetEntryVal(de);
8896
8897 if (fwrite(cmd,sizeof(cmd)-1,1,fp) == 0) goto werr;
8898 if (fwriteBulkObject(fp,key) == 0) goto werr;
8899 if (fwriteBulkObject(fp,field) == -1) return -1;
8900 if (fwriteBulkObject(fp,val) == -1) return -1;
8901 }
8902 dictReleaseIterator(di);
8903 }
8904 } else {
8905 redisPanic("Unknown object type");
8906 }
8907 /* Save the expire time */
8908 if (expiretime != -1) {
8909 char cmd[]="*3\r\n$8\r\nEXPIREAT\r\n";
8910 /* If this key is already expired skip it */
8911 if (expiretime < now) continue;
8912 if (fwrite(cmd,sizeof(cmd)-1,1,fp) == 0) goto werr;
8913 if (fwriteBulkObject(fp,key) == 0) goto werr;
8914 if (fwriteBulkLong(fp,expiretime) == 0) goto werr;
8915 }
8916 if (swapped) decrRefCount(o);
8917 }
8918 dictReleaseIterator(di);
8919 }
8920
8921 /* Make sure data will not remain on the OS's output buffers */
8922 fflush(fp);
8923 fsync(fileno(fp));
8924 fclose(fp);
8925
8926 /* Use RENAME to make sure the DB file is changed atomically only
8927 * if the generate DB file is ok. */
8928 if (rename(tmpfile,filename) == -1) {
8929 redisLog(REDIS_WARNING,"Error moving temp append only file on the final destination: %s", strerror(errno));
8930 unlink(tmpfile);
8931 return REDIS_ERR;
8932 }
8933 redisLog(REDIS_NOTICE,"SYNC append only file rewrite performed");
8934 return REDIS_OK;
8935
8936 werr:
8937 fclose(fp);
8938 unlink(tmpfile);
8939 redisLog(REDIS_WARNING,"Write error writing append only file on disk: %s", strerror(errno));
8940 if (di) dictReleaseIterator(di);
8941 return REDIS_ERR;
8942 }
8943
8944 /* This is how rewriting of the append only file in background works:
8945 *
8946 * 1) The user calls BGREWRITEAOF
8947 * 2) Redis calls this function, that forks():
8948 * 2a) the child rewrite the append only file in a temp file.
8949 * 2b) the parent accumulates differences in server.bgrewritebuf.
8950 * 3) When the child finished '2a' exists.
8951 * 4) The parent will trap the exit code, if it's OK, will append the
8952 * data accumulated into server.bgrewritebuf into the temp file, and
8953 * finally will rename(2) the temp file in the actual file name.
8954 * The the new file is reopened as the new append only file. Profit!
8955 */
8956 static int rewriteAppendOnlyFileBackground(void) {
8957 pid_t childpid;
8958
8959 if (server.bgrewritechildpid != -1) return REDIS_ERR;
8960 if (server.vm_enabled) waitEmptyIOJobsQueue();
8961 if ((childpid = fork()) == 0) {
8962 /* Child */
8963 char tmpfile[256];
8964
8965 if (server.vm_enabled) vmReopenSwapFile();
8966 close(server.fd);
8967 snprintf(tmpfile,256,"temp-rewriteaof-bg-%d.aof", (int) getpid());
8968 if (rewriteAppendOnlyFile(tmpfile) == REDIS_OK) {
8969 _exit(0);
8970 } else {
8971 _exit(1);
8972 }
8973 } else {
8974 /* Parent */
8975 if (childpid == -1) {
8976 redisLog(REDIS_WARNING,
8977 "Can't rewrite append only file in background: fork: %s",
8978 strerror(errno));
8979 return REDIS_ERR;
8980 }
8981 redisLog(REDIS_NOTICE,
8982 "Background append only file rewriting started by pid %d",childpid);
8983 server.bgrewritechildpid = childpid;
8984 updateDictResizePolicy();
8985 /* We set appendseldb to -1 in order to force the next call to the
8986 * feedAppendOnlyFile() to issue a SELECT command, so the differences
8987 * accumulated by the parent into server.bgrewritebuf will start
8988 * with a SELECT statement and it will be safe to merge. */
8989 server.appendseldb = -1;
8990 return REDIS_OK;
8991 }
8992 return REDIS_OK; /* unreached */
8993 }
8994
8995 static void bgrewriteaofCommand(redisClient *c) {
8996 if (server.bgrewritechildpid != -1) {
8997 addReplySds(c,sdsnew("-ERR background append only file rewriting already in progress\r\n"));
8998 return;
8999 }
9000 if (rewriteAppendOnlyFileBackground() == REDIS_OK) {
9001 char *status = "+Background append only file rewriting started\r\n";
9002 addReplySds(c,sdsnew(status));
9003 } else {
9004 addReply(c,shared.err);
9005 }
9006 }
9007
9008 static void aofRemoveTempFile(pid_t childpid) {
9009 char tmpfile[256];
9010
9011 snprintf(tmpfile,256,"temp-rewriteaof-bg-%d.aof", (int) childpid);
9012 unlink(tmpfile);
9013 }
9014
9015 /* Virtual Memory is composed mainly of two subsystems:
9016 * - Blocking Virutal Memory
9017 * - Threaded Virtual Memory I/O
9018 * The two parts are not fully decoupled, but functions are split among two
9019 * different sections of the source code (delimited by comments) in order to
9020 * make more clear what functionality is about the blocking VM and what about
9021 * the threaded (not blocking) VM.
9022 *
9023 * Redis VM design:
9024 *
9025 * Redis VM is a blocking VM (one that blocks reading swapped values from
9026 * disk into memory when a value swapped out is needed in memory) that is made
9027 * unblocking by trying to examine the command argument vector in order to
9028 * load in background values that will likely be needed in order to exec
9029 * the command. The command is executed only once all the relevant keys
9030 * are loaded into memory.
9031 *
9032 * This basically is almost as simple of a blocking VM, but almost as parallel
9033 * as a fully non-blocking VM.
9034 */
9035
9036 /* Called when the user switches from "appendonly yes" to "appendonly no"
9037 * at runtime using the CONFIG command. */
9038 static void stopAppendOnly(void) {
9039 flushAppendOnlyFile();
9040 fsync(server.appendfd);
9041 close(server.appendfd);
9042
9043 server.appendfd = -1;
9044 server.appendseldb = -1;
9045 server.appendonly = 0;
9046 /* rewrite operation in progress? kill it, wait child exit */
9047 if (server.bgsavechildpid != -1) {
9048 int statloc;
9049
9050 if (kill(server.bgsavechildpid,SIGKILL) != -1)
9051 wait3(&statloc,0,NULL);
9052 /* reset the buffer accumulating changes while the child saves */
9053 sdsfree(server.bgrewritebuf);
9054 server.bgrewritebuf = sdsempty();
9055 server.bgsavechildpid = -1;
9056 }
9057 }
9058
9059 /* Called when the user switches from "appendonly no" to "appendonly yes"
9060 * at runtime using the CONFIG command. */
9061 static int startAppendOnly(void) {
9062 server.appendonly = 1;
9063 server.lastfsync = time(NULL);
9064 server.appendfd = open(server.appendfilename,O_WRONLY|O_APPEND|O_CREAT,0644);
9065 if (server.appendfd == -1) {
9066 redisLog(REDIS_WARNING,"Used tried to switch on AOF via CONFIG, but I can't open the AOF file: %s",strerror(errno));
9067 return REDIS_ERR;
9068 }
9069 if (rewriteAppendOnlyFileBackground() == REDIS_ERR) {
9070 server.appendonly = 0;
9071 close(server.appendfd);
9072 redisLog(REDIS_WARNING,"Used tried to switch on AOF via CONFIG, I can't trigger a background AOF rewrite operation. Check the above logs for more info about the error.",strerror(errno));
9073 return REDIS_ERR;
9074 }
9075 return REDIS_OK;
9076 }
9077
9078 /* =================== Virtual Memory - Blocking Side ====================== */
9079
9080 static void vmInit(void) {
9081 off_t totsize;
9082 int pipefds[2];
9083 size_t stacksize;
9084 struct flock fl;
9085
9086 if (server.vm_max_threads != 0)
9087 zmalloc_enable_thread_safeness(); /* we need thread safe zmalloc() */
9088
9089 redisLog(REDIS_NOTICE,"Using '%s' as swap file",server.vm_swap_file);
9090 /* Try to open the old swap file, otherwise create it */
9091 if ((server.vm_fp = fopen(server.vm_swap_file,"r+b")) == NULL) {
9092 server.vm_fp = fopen(server.vm_swap_file,"w+b");
9093 }
9094 if (server.vm_fp == NULL) {
9095 redisLog(REDIS_WARNING,
9096 "Can't open the swap file: %s. Exiting.",
9097 strerror(errno));
9098 exit(1);
9099 }
9100 server.vm_fd = fileno(server.vm_fp);
9101 /* Lock the swap file for writing, this is useful in order to avoid
9102 * another instance to use the same swap file for a config error. */
9103 fl.l_type = F_WRLCK;
9104 fl.l_whence = SEEK_SET;
9105 fl.l_start = fl.l_len = 0;
9106 if (fcntl(server.vm_fd,F_SETLK,&fl) == -1) {
9107 redisLog(REDIS_WARNING,
9108 "Can't lock the swap file at '%s': %s. Make sure it is not used by another Redis instance.", server.vm_swap_file, strerror(errno));
9109 exit(1);
9110 }
9111 /* Initialize */
9112 server.vm_next_page = 0;
9113 server.vm_near_pages = 0;
9114 server.vm_stats_used_pages = 0;
9115 server.vm_stats_swapped_objects = 0;
9116 server.vm_stats_swapouts = 0;
9117 server.vm_stats_swapins = 0;
9118 totsize = server.vm_pages*server.vm_page_size;
9119 redisLog(REDIS_NOTICE,"Allocating %lld bytes of swap file",totsize);
9120 if (ftruncate(server.vm_fd,totsize) == -1) {
9121 redisLog(REDIS_WARNING,"Can't ftruncate swap file: %s. Exiting.",
9122 strerror(errno));
9123 exit(1);
9124 } else {
9125 redisLog(REDIS_NOTICE,"Swap file allocated with success");
9126 }
9127 server.vm_bitmap = zmalloc((server.vm_pages+7)/8);
9128 redisLog(REDIS_VERBOSE,"Allocated %lld bytes page table for %lld pages",
9129 (long long) (server.vm_pages+7)/8, server.vm_pages);
9130 memset(server.vm_bitmap,0,(server.vm_pages+7)/8);
9131
9132 /* Initialize threaded I/O (used by Virtual Memory) */
9133 server.io_newjobs = listCreate();
9134 server.io_processing = listCreate();
9135 server.io_processed = listCreate();
9136 server.io_ready_clients = listCreate();
9137 pthread_mutex_init(&server.io_mutex,NULL);
9138 pthread_mutex_init(&server.obj_freelist_mutex,NULL);
9139 pthread_mutex_init(&server.io_swapfile_mutex,NULL);
9140 server.io_active_threads = 0;
9141 if (pipe(pipefds) == -1) {
9142 redisLog(REDIS_WARNING,"Unable to intialized VM: pipe(2): %s. Exiting."
9143 ,strerror(errno));
9144 exit(1);
9145 }
9146 server.io_ready_pipe_read = pipefds[0];
9147 server.io_ready_pipe_write = pipefds[1];
9148 redisAssert(anetNonBlock(NULL,server.io_ready_pipe_read) != ANET_ERR);
9149 /* LZF requires a lot of stack */
9150 pthread_attr_init(&server.io_threads_attr);
9151 pthread_attr_getstacksize(&server.io_threads_attr, &stacksize);
9152 while (stacksize < REDIS_THREAD_STACK_SIZE) stacksize *= 2;
9153 pthread_attr_setstacksize(&server.io_threads_attr, stacksize);
9154 /* Listen for events in the threaded I/O pipe */
9155 if (aeCreateFileEvent(server.el, server.io_ready_pipe_read, AE_READABLE,
9156 vmThreadedIOCompletedJob, NULL) == AE_ERR)
9157 oom("creating file event");
9158 }
9159
9160 /* Mark the page as used */
9161 static void vmMarkPageUsed(off_t page) {
9162 off_t byte = page/8;
9163 int bit = page&7;
9164 redisAssert(vmFreePage(page) == 1);
9165 server.vm_bitmap[byte] |= 1<<bit;
9166 }
9167
9168 /* Mark N contiguous pages as used, with 'page' being the first. */
9169 static void vmMarkPagesUsed(off_t page, off_t count) {
9170 off_t j;
9171
9172 for (j = 0; j < count; j++)
9173 vmMarkPageUsed(page+j);
9174 server.vm_stats_used_pages += count;
9175 redisLog(REDIS_DEBUG,"Mark USED pages: %lld pages at %lld\n",
9176 (long long)count, (long long)page);
9177 }
9178
9179 /* Mark the page as free */
9180 static void vmMarkPageFree(off_t page) {
9181 off_t byte = page/8;
9182 int bit = page&7;
9183 redisAssert(vmFreePage(page) == 0);
9184 server.vm_bitmap[byte] &= ~(1<<bit);
9185 }
9186
9187 /* Mark N contiguous pages as free, with 'page' being the first. */
9188 static void vmMarkPagesFree(off_t page, off_t count) {
9189 off_t j;
9190
9191 for (j = 0; j < count; j++)
9192 vmMarkPageFree(page+j);
9193 server.vm_stats_used_pages -= count;
9194 redisLog(REDIS_DEBUG,"Mark FREE pages: %lld pages at %lld\n",
9195 (long long)count, (long long)page);
9196 }
9197
9198 /* Test if the page is free */
9199 static int vmFreePage(off_t page) {
9200 off_t byte = page/8;
9201 int bit = page&7;
9202 return (server.vm_bitmap[byte] & (1<<bit)) == 0;
9203 }
9204
9205 /* Find N contiguous free pages storing the first page of the cluster in *first.
9206 * Returns REDIS_OK if it was able to find N contiguous pages, otherwise
9207 * REDIS_ERR is returned.
9208 *
9209 * This function uses a simple algorithm: we try to allocate
9210 * REDIS_VM_MAX_NEAR_PAGES sequentially, when we reach this limit we start
9211 * again from the start of the swap file searching for free spaces.
9212 *
9213 * If it looks pretty clear that there are no free pages near our offset
9214 * we try to find less populated places doing a forward jump of
9215 * REDIS_VM_MAX_RANDOM_JUMP, then we start scanning again a few pages
9216 * without hurry, and then we jump again and so forth...
9217 *
9218 * This function can be improved using a free list to avoid to guess
9219 * too much, since we could collect data about freed pages.
9220 *
9221 * note: I implemented this function just after watching an episode of
9222 * Battlestar Galactica, where the hybrid was continuing to say "JUMP!"
9223 */
9224 static int vmFindContiguousPages(off_t *first, off_t n) {
9225 off_t base, offset = 0, since_jump = 0, numfree = 0;
9226
9227 if (server.vm_near_pages == REDIS_VM_MAX_NEAR_PAGES) {
9228 server.vm_near_pages = 0;
9229 server.vm_next_page = 0;
9230 }
9231 server.vm_near_pages++; /* Yet another try for pages near to the old ones */
9232 base = server.vm_next_page;
9233
9234 while(offset < server.vm_pages) {
9235 off_t this = base+offset;
9236
9237 /* If we overflow, restart from page zero */
9238 if (this >= server.vm_pages) {
9239 this -= server.vm_pages;
9240 if (this == 0) {
9241 /* Just overflowed, what we found on tail is no longer
9242 * interesting, as it's no longer contiguous. */
9243 numfree = 0;
9244 }
9245 }
9246 if (vmFreePage(this)) {
9247 /* This is a free page */
9248 numfree++;
9249 /* Already got N free pages? Return to the caller, with success */
9250 if (numfree == n) {
9251 *first = this-(n-1);
9252 server.vm_next_page = this+1;
9253 redisLog(REDIS_DEBUG, "FOUND CONTIGUOUS PAGES: %lld pages at %lld\n", (long long) n, (long long) *first);
9254 return REDIS_OK;
9255 }
9256 } else {
9257 /* The current one is not a free page */
9258 numfree = 0;
9259 }
9260
9261 /* Fast-forward if the current page is not free and we already
9262 * searched enough near this place. */
9263 since_jump++;
9264 if (!numfree && since_jump >= REDIS_VM_MAX_RANDOM_JUMP/4) {
9265 offset += random() % REDIS_VM_MAX_RANDOM_JUMP;
9266 since_jump = 0;
9267 /* Note that even if we rewind after the jump, we are don't need
9268 * to make sure numfree is set to zero as we only jump *if* it
9269 * is set to zero. */
9270 } else {
9271 /* Otherwise just check the next page */
9272 offset++;
9273 }
9274 }
9275 return REDIS_ERR;
9276 }
9277
9278 /* Write the specified object at the specified page of the swap file */
9279 static int vmWriteObjectOnSwap(robj *o, off_t page) {
9280 if (server.vm_enabled) pthread_mutex_lock(&server.io_swapfile_mutex);
9281 if (fseeko(server.vm_fp,page*server.vm_page_size,SEEK_SET) == -1) {
9282 if (server.vm_enabled) pthread_mutex_unlock(&server.io_swapfile_mutex);
9283 redisLog(REDIS_WARNING,
9284 "Critical VM problem in vmWriteObjectOnSwap(): can't seek: %s",
9285 strerror(errno));
9286 return REDIS_ERR;
9287 }
9288 rdbSaveObject(server.vm_fp,o);
9289 fflush(server.vm_fp);
9290 if (server.vm_enabled) pthread_mutex_unlock(&server.io_swapfile_mutex);
9291 return REDIS_OK;
9292 }
9293
9294 /* Swap the 'val' object relative to 'key' into disk. Store all the information
9295 * needed to later retrieve the object into the key object.
9296 * If we can't find enough contiguous empty pages to swap the object on disk
9297 * REDIS_ERR is returned. */
9298 static int vmSwapObjectBlocking(robj *key, robj *val) {
9299 off_t pages = rdbSavedObjectPages(val,NULL);
9300 off_t page;
9301
9302 assert(key->storage == REDIS_VM_MEMORY);
9303 assert(key->refcount == 1);
9304 if (vmFindContiguousPages(&page,pages) == REDIS_ERR) return REDIS_ERR;
9305 if (vmWriteObjectOnSwap(val,page) == REDIS_ERR) return REDIS_ERR;
9306 key->vm.page = page;
9307 key->vm.usedpages = pages;
9308 key->storage = REDIS_VM_SWAPPED;
9309 key->vtype = val->type;
9310 decrRefCount(val); /* Deallocate the object from memory. */
9311 vmMarkPagesUsed(page,pages);
9312 redisLog(REDIS_DEBUG,"VM: object %s swapped out at %lld (%lld pages)",
9313 (unsigned char*) key->ptr,
9314 (unsigned long long) page, (unsigned long long) pages);
9315 server.vm_stats_swapped_objects++;
9316 server.vm_stats_swapouts++;
9317 return REDIS_OK;
9318 }
9319
9320 static robj *vmReadObjectFromSwap(off_t page, int type) {
9321 robj *o;
9322
9323 if (server.vm_enabled) pthread_mutex_lock(&server.io_swapfile_mutex);
9324 if (fseeko(server.vm_fp,page*server.vm_page_size,SEEK_SET) == -1) {
9325 redisLog(REDIS_WARNING,
9326 "Unrecoverable VM problem in vmReadObjectFromSwap(): can't seek: %s",
9327 strerror(errno));
9328 _exit(1);
9329 }
9330 o = rdbLoadObject(type,server.vm_fp);
9331 if (o == NULL) {
9332 redisLog(REDIS_WARNING, "Unrecoverable VM problem in vmReadObjectFromSwap(): can't load object from swap file: %s", strerror(errno));
9333 _exit(1);
9334 }
9335 if (server.vm_enabled) pthread_mutex_unlock(&server.io_swapfile_mutex);
9336 return o;
9337 }
9338
9339 /* Load the value object relative to the 'key' object from swap to memory.
9340 * The newly allocated object is returned.
9341 *
9342 * If preview is true the unserialized object is returned to the caller but
9343 * no changes are made to the key object, nor the pages are marked as freed */
9344 static robj *vmGenericLoadObject(robj *key, int preview) {
9345 robj *val;
9346
9347 redisAssert(key->storage == REDIS_VM_SWAPPED || key->storage == REDIS_VM_LOADING);
9348 val = vmReadObjectFromSwap(key->vm.page,key->vtype);
9349 if (!preview) {
9350 key->storage = REDIS_VM_MEMORY;
9351 key->vm.atime = server.unixtime;
9352 vmMarkPagesFree(key->vm.page,key->vm.usedpages);
9353 redisLog(REDIS_DEBUG, "VM: object %s loaded from disk",
9354 (unsigned char*) key->ptr);
9355 server.vm_stats_swapped_objects--;
9356 } else {
9357 redisLog(REDIS_DEBUG, "VM: object %s previewed from disk",
9358 (unsigned char*) key->ptr);
9359 }
9360 server.vm_stats_swapins++;
9361 return val;
9362 }
9363
9364 /* Plain object loading, from swap to memory */
9365 static robj *vmLoadObject(robj *key) {
9366 /* If we are loading the object in background, stop it, we
9367 * need to load this object synchronously ASAP. */
9368 if (key->storage == REDIS_VM_LOADING)
9369 vmCancelThreadedIOJob(key);
9370 return vmGenericLoadObject(key,0);
9371 }
9372
9373 /* Just load the value on disk, without to modify the key.
9374 * This is useful when we want to perform some operation on the value
9375 * without to really bring it from swap to memory, like while saving the
9376 * dataset or rewriting the append only log. */
9377 static robj *vmPreviewObject(robj *key) {
9378 return vmGenericLoadObject(key,1);
9379 }
9380
9381 /* How a good candidate is this object for swapping?
9382 * The better candidate it is, the greater the returned value.
9383 *
9384 * Currently we try to perform a fast estimation of the object size in
9385 * memory, and combine it with aging informations.
9386 *
9387 * Basically swappability = idle-time * log(estimated size)
9388 *
9389 * Bigger objects are preferred over smaller objects, but not
9390 * proportionally, this is why we use the logarithm. This algorithm is
9391 * just a first try and will probably be tuned later. */
9392 static double computeObjectSwappability(robj *o) {
9393 time_t age = server.unixtime - o->vm.atime;
9394 long asize = 0;
9395 list *l;
9396 dict *d;
9397 struct dictEntry *de;
9398 int z;
9399
9400 if (age <= 0) return 0;
9401 switch(o->type) {
9402 case REDIS_STRING:
9403 if (o->encoding != REDIS_ENCODING_RAW) {
9404 asize = sizeof(*o);
9405 } else {
9406 asize = sdslen(o->ptr)+sizeof(*o)+sizeof(long)*2;
9407 }
9408 break;
9409 case REDIS_LIST:
9410 l = o->ptr;
9411 listNode *ln = listFirst(l);
9412
9413 asize = sizeof(list);
9414 if (ln) {
9415 robj *ele = ln->value;
9416 long elesize;
9417
9418 elesize = (ele->encoding == REDIS_ENCODING_RAW) ?
9419 (sizeof(*o)+sdslen(ele->ptr)) :
9420 sizeof(*o);
9421 asize += (sizeof(listNode)+elesize)*listLength(l);
9422 }
9423 break;
9424 case REDIS_SET:
9425 case REDIS_ZSET:
9426 z = (o->type == REDIS_ZSET);
9427 d = z ? ((zset*)o->ptr)->dict : o->ptr;
9428
9429 asize = sizeof(dict)+(sizeof(struct dictEntry*)*dictSlots(d));
9430 if (z) asize += sizeof(zset)-sizeof(dict);
9431 if (dictSize(d)) {
9432 long elesize;
9433 robj *ele;
9434
9435 de = dictGetRandomKey(d);
9436 ele = dictGetEntryKey(de);
9437 elesize = (ele->encoding == REDIS_ENCODING_RAW) ?
9438 (sizeof(*o)+sdslen(ele->ptr)) :
9439 sizeof(*o);
9440 asize += (sizeof(struct dictEntry)+elesize)*dictSize(d);
9441 if (z) asize += sizeof(zskiplistNode)*dictSize(d);
9442 }
9443 break;
9444 case REDIS_HASH:
9445 if (o->encoding == REDIS_ENCODING_ZIPMAP) {
9446 unsigned char *p = zipmapRewind((unsigned char*)o->ptr);
9447 unsigned int len = zipmapLen((unsigned char*)o->ptr);
9448 unsigned int klen, vlen;
9449 unsigned char *key, *val;
9450
9451 if ((p = zipmapNext(p,&key,&klen,&val,&vlen)) == NULL) {
9452 klen = 0;
9453 vlen = 0;
9454 }
9455 asize = len*(klen+vlen+3);
9456 } else if (o->encoding == REDIS_ENCODING_HT) {
9457 d = o->ptr;
9458 asize = sizeof(dict)+(sizeof(struct dictEntry*)*dictSlots(d));
9459 if (dictSize(d)) {
9460 long elesize;
9461 robj *ele;
9462
9463 de = dictGetRandomKey(d);
9464 ele = dictGetEntryKey(de);
9465 elesize = (ele->encoding == REDIS_ENCODING_RAW) ?
9466 (sizeof(*o)+sdslen(ele->ptr)) :
9467 sizeof(*o);
9468 ele = dictGetEntryVal(de);
9469 elesize = (ele->encoding == REDIS_ENCODING_RAW) ?
9470 (sizeof(*o)+sdslen(ele->ptr)) :
9471 sizeof(*o);
9472 asize += (sizeof(struct dictEntry)+elesize)*dictSize(d);
9473 }
9474 }
9475 break;
9476 }
9477 return (double)age*log(1+asize);
9478 }
9479
9480 /* Try to swap an object that's a good candidate for swapping.
9481 * Returns REDIS_OK if the object was swapped, REDIS_ERR if it's not possible
9482 * to swap any object at all.
9483 *
9484 * If 'usethreaded' is true, Redis will try to swap the object in background
9485 * using I/O threads. */
9486 static int vmSwapOneObject(int usethreads) {
9487 int j, i;
9488 struct dictEntry *best = NULL;
9489 double best_swappability = 0;
9490 redisDb *best_db = NULL;
9491 robj *key, *val;
9492
9493 for (j = 0; j < server.dbnum; j++) {
9494 redisDb *db = server.db+j;
9495 /* Why maxtries is set to 100?
9496 * Because this way (usually) we'll find 1 object even if just 1% - 2%
9497 * are swappable objects */
9498 int maxtries = 100;
9499
9500 if (dictSize(db->dict) == 0) continue;
9501 for (i = 0; i < 5; i++) {
9502 dictEntry *de;
9503 double swappability;
9504
9505 if (maxtries) maxtries--;
9506 de = dictGetRandomKey(db->dict);
9507 key = dictGetEntryKey(de);
9508 val = dictGetEntryVal(de);
9509 /* Only swap objects that are currently in memory.
9510 *
9511 * Also don't swap shared objects if threaded VM is on, as we
9512 * try to ensure that the main thread does not touch the
9513 * object while the I/O thread is using it, but we can't
9514 * control other keys without adding additional mutex. */
9515 if (key->storage != REDIS_VM_MEMORY ||
9516 (server.vm_max_threads != 0 && val->refcount != 1)) {
9517 if (maxtries) i--; /* don't count this try */
9518 continue;
9519 }
9520 swappability = computeObjectSwappability(val);
9521 if (!best || swappability > best_swappability) {
9522 best = de;
9523 best_swappability = swappability;
9524 best_db = db;
9525 }
9526 }
9527 }
9528 if (best == NULL) return REDIS_ERR;
9529 key = dictGetEntryKey(best);
9530 val = dictGetEntryVal(best);
9531
9532 redisLog(REDIS_DEBUG,"Key with best swappability: %s, %f",
9533 key->ptr, best_swappability);
9534
9535 /* Unshare the key if needed */
9536 if (key->refcount > 1) {
9537 robj *newkey = dupStringObject(key);
9538 decrRefCount(key);
9539 key = dictGetEntryKey(best) = newkey;
9540 }
9541 /* Swap it */
9542 if (usethreads) {
9543 vmSwapObjectThreaded(key,val,best_db);
9544 return REDIS_OK;
9545 } else {
9546 if (vmSwapObjectBlocking(key,val) == REDIS_OK) {
9547 dictGetEntryVal(best) = NULL;
9548 return REDIS_OK;
9549 } else {
9550 return REDIS_ERR;
9551 }
9552 }
9553 }
9554
9555 static int vmSwapOneObjectBlocking() {
9556 return vmSwapOneObject(0);
9557 }
9558
9559 static int vmSwapOneObjectThreaded() {
9560 return vmSwapOneObject(1);
9561 }
9562
9563 /* Return true if it's safe to swap out objects in a given moment.
9564 * Basically we don't want to swap objects out while there is a BGSAVE
9565 * or a BGAEOREWRITE running in backgroud. */
9566 static int vmCanSwapOut(void) {
9567 return (server.bgsavechildpid == -1 && server.bgrewritechildpid == -1);
9568 }
9569
9570 /* Delete a key if swapped. Returns 1 if the key was found, was swapped
9571 * and was deleted. Otherwise 0 is returned. */
9572 static int deleteIfSwapped(redisDb *db, robj *key) {
9573 dictEntry *de;
9574 robj *foundkey;
9575
9576 if ((de = dictFind(db->dict,key)) == NULL) return 0;
9577 foundkey = dictGetEntryKey(de);
9578 if (foundkey->storage == REDIS_VM_MEMORY) return 0;
9579 deleteKey(db,key);
9580 return 1;
9581 }
9582
9583 /* =================== Virtual Memory - Threaded I/O ======================= */
9584
9585 static void freeIOJob(iojob *j) {
9586 if ((j->type == REDIS_IOJOB_PREPARE_SWAP ||
9587 j->type == REDIS_IOJOB_DO_SWAP ||
9588 j->type == REDIS_IOJOB_LOAD) && j->val != NULL)
9589 decrRefCount(j->val);
9590 /* We don't decrRefCount the j->key field as we did't incremented
9591 * the count creating IO Jobs. This is because the key field here is
9592 * just used as an indentifier and if a key is removed the Job should
9593 * never be touched again. */
9594 zfree(j);
9595 }
9596
9597 /* Every time a thread finished a Job, it writes a byte into the write side
9598 * of an unix pipe in order to "awake" the main thread, and this function
9599 * is called. */
9600 static void vmThreadedIOCompletedJob(aeEventLoop *el, int fd, void *privdata,
9601 int mask)
9602 {
9603 char buf[1];
9604 int retval, processed = 0, toprocess = -1, trytoswap = 1;
9605 REDIS_NOTUSED(el);
9606 REDIS_NOTUSED(mask);
9607 REDIS_NOTUSED(privdata);
9608
9609 /* For every byte we read in the read side of the pipe, there is one
9610 * I/O job completed to process. */
9611 while((retval = read(fd,buf,1)) == 1) {
9612 iojob *j;
9613 listNode *ln;
9614 robj *key;
9615 struct dictEntry *de;
9616
9617 redisLog(REDIS_DEBUG,"Processing I/O completed job");
9618
9619 /* Get the processed element (the oldest one) */
9620 lockThreadedIO();
9621 assert(listLength(server.io_processed) != 0);
9622 if (toprocess == -1) {
9623 toprocess = (listLength(server.io_processed)*REDIS_MAX_COMPLETED_JOBS_PROCESSED)/100;
9624 if (toprocess <= 0) toprocess = 1;
9625 }
9626 ln = listFirst(server.io_processed);
9627 j = ln->value;
9628 listDelNode(server.io_processed,ln);
9629 unlockThreadedIO();
9630 /* If this job is marked as canceled, just ignore it */
9631 if (j->canceled) {
9632 freeIOJob(j);
9633 continue;
9634 }
9635 /* Post process it in the main thread, as there are things we
9636 * can do just here to avoid race conditions and/or invasive locks */
9637 redisLog(REDIS_DEBUG,"Job %p type: %d, key at %p (%s) refcount: %d\n", (void*) j, j->type, (void*)j->key, (char*)j->key->ptr, j->key->refcount);
9638 de = dictFind(j->db->dict,j->key);
9639 assert(de != NULL);
9640 key = dictGetEntryKey(de);
9641 if (j->type == REDIS_IOJOB_LOAD) {
9642 redisDb *db;
9643
9644 /* Key loaded, bring it at home */
9645 key->storage = REDIS_VM_MEMORY;
9646 key->vm.atime = server.unixtime;
9647 vmMarkPagesFree(key->vm.page,key->vm.usedpages);
9648 redisLog(REDIS_DEBUG, "VM: object %s loaded from disk (threaded)",
9649 (unsigned char*) key->ptr);
9650 server.vm_stats_swapped_objects--;
9651 server.vm_stats_swapins++;
9652 dictGetEntryVal(de) = j->val;
9653 incrRefCount(j->val);
9654 db = j->db;
9655 freeIOJob(j);
9656 /* Handle clients waiting for this key to be loaded. */
9657 handleClientsBlockedOnSwappedKey(db,key);
9658 } else if (j->type == REDIS_IOJOB_PREPARE_SWAP) {
9659 /* Now we know the amount of pages required to swap this object.
9660 * Let's find some space for it, and queue this task again
9661 * rebranded as REDIS_IOJOB_DO_SWAP. */
9662 if (!vmCanSwapOut() ||
9663 vmFindContiguousPages(&j->page,j->pages) == REDIS_ERR)
9664 {
9665 /* Ooops... no space or we can't swap as there is
9666 * a fork()ed Redis trying to save stuff on disk. */
9667 freeIOJob(j);
9668 key->storage = REDIS_VM_MEMORY; /* undo operation */
9669 } else {
9670 /* Note that we need to mark this pages as used now,
9671 * if the job will be canceled, we'll mark them as freed
9672 * again. */
9673 vmMarkPagesUsed(j->page,j->pages);
9674 j->type = REDIS_IOJOB_DO_SWAP;
9675 lockThreadedIO();
9676 queueIOJob(j);
9677 unlockThreadedIO();
9678 }
9679 } else if (j->type == REDIS_IOJOB_DO_SWAP) {
9680 robj *val;
9681
9682 /* Key swapped. We can finally free some memory. */
9683 if (key->storage != REDIS_VM_SWAPPING) {
9684 printf("key->storage: %d\n",key->storage);
9685 printf("key->name: %s\n",(char*)key->ptr);
9686 printf("key->refcount: %d\n",key->refcount);
9687 printf("val: %p\n",(void*)j->val);
9688 printf("val->type: %d\n",j->val->type);
9689 printf("val->ptr: %s\n",(char*)j->val->ptr);
9690 }
9691 redisAssert(key->storage == REDIS_VM_SWAPPING);
9692 val = dictGetEntryVal(de);
9693 key->vm.page = j->page;
9694 key->vm.usedpages = j->pages;
9695 key->storage = REDIS_VM_SWAPPED;
9696 key->vtype = j->val->type;
9697 decrRefCount(val); /* Deallocate the object from memory. */
9698 dictGetEntryVal(de) = NULL;
9699 redisLog(REDIS_DEBUG,
9700 "VM: object %s swapped out at %lld (%lld pages) (threaded)",
9701 (unsigned char*) key->ptr,
9702 (unsigned long long) j->page, (unsigned long long) j->pages);
9703 server.vm_stats_swapped_objects++;
9704 server.vm_stats_swapouts++;
9705 freeIOJob(j);
9706 /* Put a few more swap requests in queue if we are still
9707 * out of memory */
9708 if (trytoswap && vmCanSwapOut() &&
9709 zmalloc_used_memory() > server.vm_max_memory)
9710 {
9711 int more = 1;
9712 while(more) {
9713 lockThreadedIO();
9714 more = listLength(server.io_newjobs) <
9715 (unsigned) server.vm_max_threads;
9716 unlockThreadedIO();
9717 /* Don't waste CPU time if swappable objects are rare. */
9718 if (vmSwapOneObjectThreaded() == REDIS_ERR) {
9719 trytoswap = 0;
9720 break;
9721 }
9722 }
9723 }
9724 }
9725 processed++;
9726 if (processed == toprocess) return;
9727 }
9728 if (retval < 0 && errno != EAGAIN) {
9729 redisLog(REDIS_WARNING,
9730 "WARNING: read(2) error in vmThreadedIOCompletedJob() %s",
9731 strerror(errno));
9732 }
9733 }
9734
9735 static void lockThreadedIO(void) {
9736 pthread_mutex_lock(&server.io_mutex);
9737 }
9738
9739 static void unlockThreadedIO(void) {
9740 pthread_mutex_unlock(&server.io_mutex);
9741 }
9742
9743 /* Remove the specified object from the threaded I/O queue if still not
9744 * processed, otherwise make sure to flag it as canceled. */
9745 static void vmCancelThreadedIOJob(robj *o) {
9746 list *lists[3] = {
9747 server.io_newjobs, /* 0 */
9748 server.io_processing, /* 1 */
9749 server.io_processed /* 2 */
9750 };
9751 int i;
9752
9753 assert(o->storage == REDIS_VM_LOADING || o->storage == REDIS_VM_SWAPPING);
9754 again:
9755 lockThreadedIO();
9756 /* Search for a matching key in one of the queues */
9757 for (i = 0; i < 3; i++) {
9758 listNode *ln;
9759 listIter li;
9760
9761 listRewind(lists[i],&li);
9762 while ((ln = listNext(&li)) != NULL) {
9763 iojob *job = ln->value;
9764
9765 if (job->canceled) continue; /* Skip this, already canceled. */
9766 if (job->key == o) {
9767 redisLog(REDIS_DEBUG,"*** CANCELED %p (%s) (type %d) (LIST ID %d)\n",
9768 (void*)job, (char*)o->ptr, job->type, i);
9769 /* Mark the pages as free since the swap didn't happened
9770 * or happened but is now discarded. */
9771 if (i != 1 && job->type == REDIS_IOJOB_DO_SWAP)
9772 vmMarkPagesFree(job->page,job->pages);
9773 /* Cancel the job. It depends on the list the job is
9774 * living in. */
9775 switch(i) {
9776 case 0: /* io_newjobs */
9777 /* If the job was yet not processed the best thing to do
9778 * is to remove it from the queue at all */
9779 freeIOJob(job);
9780 listDelNode(lists[i],ln);
9781 break;
9782 case 1: /* io_processing */
9783 /* Oh Shi- the thread is messing with the Job:
9784 *
9785 * Probably it's accessing the object if this is a
9786 * PREPARE_SWAP or DO_SWAP job.
9787 * If it's a LOAD job it may be reading from disk and
9788 * if we don't wait for the job to terminate before to
9789 * cancel it, maybe in a few microseconds data can be
9790 * corrupted in this pages. So the short story is:
9791 *
9792 * Better to wait for the job to move into the
9793 * next queue (processed)... */
9794
9795 /* We try again and again until the job is completed. */
9796 unlockThreadedIO();
9797 /* But let's wait some time for the I/O thread
9798 * to finish with this job. After all this condition
9799 * should be very rare. */
9800 usleep(1);
9801 goto again;
9802 case 2: /* io_processed */
9803 /* The job was already processed, that's easy...
9804 * just mark it as canceled so that we'll ignore it
9805 * when processing completed jobs. */
9806 job->canceled = 1;
9807 break;
9808 }
9809 /* Finally we have to adjust the storage type of the object
9810 * in order to "UNDO" the operaiton. */
9811 if (o->storage == REDIS_VM_LOADING)
9812 o->storage = REDIS_VM_SWAPPED;
9813 else if (o->storage == REDIS_VM_SWAPPING)
9814 o->storage = REDIS_VM_MEMORY;
9815 unlockThreadedIO();
9816 return;
9817 }
9818 }
9819 }
9820 unlockThreadedIO();
9821 assert(1 != 1); /* We should never reach this */
9822 }
9823
9824 static void *IOThreadEntryPoint(void *arg) {
9825 iojob *j;
9826 listNode *ln;
9827 REDIS_NOTUSED(arg);
9828
9829 pthread_detach(pthread_self());
9830 while(1) {
9831 /* Get a new job to process */
9832 lockThreadedIO();
9833 if (listLength(server.io_newjobs) == 0) {
9834 /* No new jobs in queue, exit. */
9835 redisLog(REDIS_DEBUG,"Thread %ld exiting, nothing to do",
9836 (long) pthread_self());
9837 server.io_active_threads--;
9838 unlockThreadedIO();
9839 return NULL;
9840 }
9841 ln = listFirst(server.io_newjobs);
9842 j = ln->value;
9843 listDelNode(server.io_newjobs,ln);
9844 /* Add the job in the processing queue */
9845 j->thread = pthread_self();
9846 listAddNodeTail(server.io_processing,j);
9847 ln = listLast(server.io_processing); /* We use ln later to remove it */
9848 unlockThreadedIO();
9849 redisLog(REDIS_DEBUG,"Thread %ld got a new job (type %d): %p about key '%s'",
9850 (long) pthread_self(), j->type, (void*)j, (char*)j->key->ptr);
9851
9852 /* Process the Job */
9853 if (j->type == REDIS_IOJOB_LOAD) {
9854 j->val = vmReadObjectFromSwap(j->page,j->key->vtype);
9855 } else if (j->type == REDIS_IOJOB_PREPARE_SWAP) {
9856 FILE *fp = fopen("/dev/null","w+");
9857 j->pages = rdbSavedObjectPages(j->val,fp);
9858 fclose(fp);
9859 } else if (j->type == REDIS_IOJOB_DO_SWAP) {
9860 if (vmWriteObjectOnSwap(j->val,j->page) == REDIS_ERR)
9861 j->canceled = 1;
9862 }
9863
9864 /* Done: insert the job into the processed queue */
9865 redisLog(REDIS_DEBUG,"Thread %ld completed the job: %p (key %s)",
9866 (long) pthread_self(), (void*)j, (char*)j->key->ptr);
9867 lockThreadedIO();
9868 listDelNode(server.io_processing,ln);
9869 listAddNodeTail(server.io_processed,j);
9870 unlockThreadedIO();
9871
9872 /* Signal the main thread there is new stuff to process */
9873 assert(write(server.io_ready_pipe_write,"x",1) == 1);
9874 }
9875 return NULL; /* never reached */
9876 }
9877
9878 static void spawnIOThread(void) {
9879 pthread_t thread;
9880 sigset_t mask, omask;
9881 int err;
9882
9883 sigemptyset(&mask);
9884 sigaddset(&mask,SIGCHLD);
9885 sigaddset(&mask,SIGHUP);
9886 sigaddset(&mask,SIGPIPE);
9887 pthread_sigmask(SIG_SETMASK, &mask, &omask);
9888 while ((err = pthread_create(&thread,&server.io_threads_attr,IOThreadEntryPoint,NULL)) != 0) {
9889 redisLog(REDIS_WARNING,"Unable to spawn an I/O thread: %s",
9890 strerror(err));
9891 usleep(1000000);
9892 }
9893 pthread_sigmask(SIG_SETMASK, &omask, NULL);
9894 server.io_active_threads++;
9895 }
9896
9897 /* We need to wait for the last thread to exit before we are able to
9898 * fork() in order to BGSAVE or BGREWRITEAOF. */
9899 static void waitEmptyIOJobsQueue(void) {
9900 while(1) {
9901 int io_processed_len;
9902
9903 lockThreadedIO();
9904 if (listLength(server.io_newjobs) == 0 &&
9905 listLength(server.io_processing) == 0 &&
9906 server.io_active_threads == 0)
9907 {
9908 unlockThreadedIO();
9909 return;
9910 }
9911 /* While waiting for empty jobs queue condition we post-process some
9912 * finshed job, as I/O threads may be hanging trying to write against
9913 * the io_ready_pipe_write FD but there are so much pending jobs that
9914 * it's blocking. */
9915 io_processed_len = listLength(server.io_processed);
9916 unlockThreadedIO();
9917 if (io_processed_len) {
9918 vmThreadedIOCompletedJob(NULL,server.io_ready_pipe_read,NULL,0);
9919 usleep(1000); /* 1 millisecond */
9920 } else {
9921 usleep(10000); /* 10 milliseconds */
9922 }
9923 }
9924 }
9925
9926 static void vmReopenSwapFile(void) {
9927 /* Note: we don't close the old one as we are in the child process
9928 * and don't want to mess at all with the original file object. */
9929 server.vm_fp = fopen(server.vm_swap_file,"r+b");
9930 if (server.vm_fp == NULL) {
9931 redisLog(REDIS_WARNING,"Can't re-open the VM swap file: %s. Exiting.",
9932 server.vm_swap_file);
9933 _exit(1);
9934 }
9935 server.vm_fd = fileno(server.vm_fp);
9936 }
9937
9938 /* This function must be called while with threaded IO locked */
9939 static void queueIOJob(iojob *j) {
9940 redisLog(REDIS_DEBUG,"Queued IO Job %p type %d about key '%s'\n",
9941 (void*)j, j->type, (char*)j->key->ptr);
9942 listAddNodeTail(server.io_newjobs,j);
9943 if (server.io_active_threads < server.vm_max_threads)
9944 spawnIOThread();
9945 }
9946
9947 static int vmSwapObjectThreaded(robj *key, robj *val, redisDb *db) {
9948 iojob *j;
9949
9950 assert(key->storage == REDIS_VM_MEMORY);
9951 assert(key->refcount == 1);
9952
9953 j = zmalloc(sizeof(*j));
9954 j->type = REDIS_IOJOB_PREPARE_SWAP;
9955 j->db = db;
9956 j->key = key;
9957 j->val = val;
9958 incrRefCount(val);
9959 j->canceled = 0;
9960 j->thread = (pthread_t) -1;
9961 key->storage = REDIS_VM_SWAPPING;
9962
9963 lockThreadedIO();
9964 queueIOJob(j);
9965 unlockThreadedIO();
9966 return REDIS_OK;
9967 }
9968
9969 /* ============ Virtual Memory - Blocking clients on missing keys =========== */
9970
9971 /* This function makes the clinet 'c' waiting for the key 'key' to be loaded.
9972 * If there is not already a job loading the key, it is craeted.
9973 * The key is added to the io_keys list in the client structure, and also
9974 * in the hash table mapping swapped keys to waiting clients, that is,
9975 * server.io_waited_keys. */
9976 static int waitForSwappedKey(redisClient *c, robj *key) {
9977 struct dictEntry *de;
9978 robj *o;
9979 list *l;
9980
9981 /* If the key does not exist or is already in RAM we don't need to
9982 * block the client at all. */
9983 de = dictFind(c->db->dict,key);
9984 if (de == NULL) return 0;
9985 o = dictGetEntryKey(de);
9986 if (o->storage == REDIS_VM_MEMORY) {
9987 return 0;
9988 } else if (o->storage == REDIS_VM_SWAPPING) {
9989 /* We were swapping the key, undo it! */
9990 vmCancelThreadedIOJob(o);
9991 return 0;
9992 }
9993
9994 /* OK: the key is either swapped, or being loaded just now. */
9995
9996 /* Add the key to the list of keys this client is waiting for.
9997 * This maps clients to keys they are waiting for. */
9998 listAddNodeTail(c->io_keys,key);
9999 incrRefCount(key);
10000
10001 /* Add the client to the swapped keys => clients waiting map. */
10002 de = dictFind(c->db->io_keys,key);
10003 if (de == NULL) {
10004 int retval;
10005
10006 /* For every key we take a list of clients blocked for it */
10007 l = listCreate();
10008 retval = dictAdd(c->db->io_keys,key,l);
10009 incrRefCount(key);
10010 assert(retval == DICT_OK);
10011 } else {
10012 l = dictGetEntryVal(de);
10013 }
10014 listAddNodeTail(l,c);
10015
10016 /* Are we already loading the key from disk? If not create a job */
10017 if (o->storage == REDIS_VM_SWAPPED) {
10018 iojob *j;
10019
10020 o->storage = REDIS_VM_LOADING;
10021 j = zmalloc(sizeof(*j));
10022 j->type = REDIS_IOJOB_LOAD;
10023 j->db = c->db;
10024 j->key = o;
10025 j->key->vtype = o->vtype;
10026 j->page = o->vm.page;
10027 j->val = NULL;
10028 j->canceled = 0;
10029 j->thread = (pthread_t) -1;
10030 lockThreadedIO();
10031 queueIOJob(j);
10032 unlockThreadedIO();
10033 }
10034 return 1;
10035 }
10036
10037 /* Preload keys for any command with first, last and step values for
10038 * the command keys prototype, as defined in the command table. */
10039 static void waitForMultipleSwappedKeys(redisClient *c, struct redisCommand *cmd, int argc, robj **argv) {
10040 int j, last;
10041 if (cmd->vm_firstkey == 0) return;
10042 last = cmd->vm_lastkey;
10043 if (last < 0) last = argc+last;
10044 for (j = cmd->vm_firstkey; j <= last; j += cmd->vm_keystep) {
10045 redisAssert(j < argc);
10046 waitForSwappedKey(c,argv[j]);
10047 }
10048 }
10049
10050 /* Preload keys needed for the ZUNIONSTORE and ZINTERSTORE commands.
10051 * Note that the number of keys to preload is user-defined, so we need to
10052 * apply a sanity check against argc. */
10053 static void zunionInterBlockClientOnSwappedKeys(redisClient *c, struct redisCommand *cmd, int argc, robj **argv) {
10054 int i, num;
10055 REDIS_NOTUSED(cmd);
10056
10057 num = atoi(argv[2]->ptr);
10058 if (num > (argc-3)) return;
10059 for (i = 0; i < num; i++) {
10060 waitForSwappedKey(c,argv[3+i]);
10061 }
10062 }
10063
10064 /* Preload keys needed to execute the entire MULTI/EXEC block.
10065 *
10066 * This function is called by blockClientOnSwappedKeys when EXEC is issued,
10067 * and will block the client when any command requires a swapped out value. */
10068 static void execBlockClientOnSwappedKeys(redisClient *c, struct redisCommand *cmd, int argc, robj **argv) {
10069 int i, margc;
10070 struct redisCommand *mcmd;
10071 robj **margv;
10072 REDIS_NOTUSED(cmd);
10073 REDIS_NOTUSED(argc);
10074 REDIS_NOTUSED(argv);
10075
10076 if (!(c->flags & REDIS_MULTI)) return;
10077 for (i = 0; i < c->mstate.count; i++) {
10078 mcmd = c->mstate.commands[i].cmd;
10079 margc = c->mstate.commands[i].argc;
10080 margv = c->mstate.commands[i].argv;
10081
10082 if (mcmd->vm_preload_proc != NULL) {
10083 mcmd->vm_preload_proc(c,mcmd,margc,margv);
10084 } else {
10085 waitForMultipleSwappedKeys(c,mcmd,margc,margv);
10086 }
10087 }
10088 }
10089
10090 /* Is this client attempting to run a command against swapped keys?
10091 * If so, block it ASAP, load the keys in background, then resume it.
10092 *
10093 * The important idea about this function is that it can fail! If keys will
10094 * still be swapped when the client is resumed, this key lookups will
10095 * just block loading keys from disk. In practical terms this should only
10096 * happen with SORT BY command or if there is a bug in this function.
10097 *
10098 * Return 1 if the client is marked as blocked, 0 if the client can
10099 * continue as the keys it is going to access appear to be in memory. */
10100 static int blockClientOnSwappedKeys(redisClient *c, struct redisCommand *cmd) {
10101 if (cmd->vm_preload_proc != NULL) {
10102 cmd->vm_preload_proc(c,cmd,c->argc,c->argv);
10103 } else {
10104 waitForMultipleSwappedKeys(c,cmd,c->argc,c->argv);
10105 }
10106
10107 /* If the client was blocked for at least one key, mark it as blocked. */
10108 if (listLength(c->io_keys)) {
10109 c->flags |= REDIS_IO_WAIT;
10110 aeDeleteFileEvent(server.el,c->fd,AE_READABLE);
10111 server.vm_blocked_clients++;
10112 return 1;
10113 } else {
10114 return 0;
10115 }
10116 }
10117
10118 /* Remove the 'key' from the list of blocked keys for a given client.
10119 *
10120 * The function returns 1 when there are no longer blocking keys after
10121 * the current one was removed (and the client can be unblocked). */
10122 static int dontWaitForSwappedKey(redisClient *c, robj *key) {
10123 list *l;
10124 listNode *ln;
10125 listIter li;
10126 struct dictEntry *de;
10127
10128 /* Remove the key from the list of keys this client is waiting for. */
10129 listRewind(c->io_keys,&li);
10130 while ((ln = listNext(&li)) != NULL) {
10131 if (equalStringObjects(ln->value,key)) {
10132 listDelNode(c->io_keys,ln);
10133 break;
10134 }
10135 }
10136 assert(ln != NULL);
10137
10138 /* Remove the client form the key => waiting clients map. */
10139 de = dictFind(c->db->io_keys,key);
10140 assert(de != NULL);
10141 l = dictGetEntryVal(de);
10142 ln = listSearchKey(l,c);
10143 assert(ln != NULL);
10144 listDelNode(l,ln);
10145 if (listLength(l) == 0)
10146 dictDelete(c->db->io_keys,key);
10147
10148 return listLength(c->io_keys) == 0;
10149 }
10150
10151 static void handleClientsBlockedOnSwappedKey(redisDb *db, robj *key) {
10152 struct dictEntry *de;
10153 list *l;
10154 listNode *ln;
10155 int len;
10156
10157 de = dictFind(db->io_keys,key);
10158 if (!de) return;
10159
10160 l = dictGetEntryVal(de);
10161 len = listLength(l);
10162 /* Note: we can't use something like while(listLength(l)) as the list
10163 * can be freed by the calling function when we remove the last element. */
10164 while (len--) {
10165 ln = listFirst(l);
10166 redisClient *c = ln->value;
10167
10168 if (dontWaitForSwappedKey(c,key)) {
10169 /* Put the client in the list of clients ready to go as we
10170 * loaded all the keys about it. */
10171 listAddNodeTail(server.io_ready_clients,c);
10172 }
10173 }
10174 }
10175
10176 /* =========================== Remote Configuration ========================= */
10177
10178 static void configSetCommand(redisClient *c) {
10179 robj *o = getDecodedObject(c->argv[3]);
10180 long long ll;
10181
10182 if (!strcasecmp(c->argv[2]->ptr,"dbfilename")) {
10183 zfree(server.dbfilename);
10184 server.dbfilename = zstrdup(o->ptr);
10185 } else if (!strcasecmp(c->argv[2]->ptr,"requirepass")) {
10186 zfree(server.requirepass);
10187 server.requirepass = zstrdup(o->ptr);
10188 } else if (!strcasecmp(c->argv[2]->ptr,"masterauth")) {
10189 zfree(server.masterauth);
10190 server.masterauth = zstrdup(o->ptr);
10191 } else if (!strcasecmp(c->argv[2]->ptr,"maxmemory")) {
10192 if (getLongLongFromObject(o,&ll) == REDIS_ERR ||
10193 ll < 0) goto badfmt;
10194 server.maxmemory = ll;
10195 } else if (!strcasecmp(c->argv[2]->ptr,"timeout")) {
10196 if (getLongLongFromObject(o,&ll) == REDIS_ERR ||
10197 ll < 0 || ll > LONG_MAX) goto badfmt;
10198 server.maxidletime = ll;
10199 } else if (!strcasecmp(c->argv[2]->ptr,"appendfsync")) {
10200 if (!strcasecmp(o->ptr,"no")) {
10201 server.appendfsync = APPENDFSYNC_NO;
10202 } else if (!strcasecmp(o->ptr,"everysec")) {
10203 server.appendfsync = APPENDFSYNC_EVERYSEC;
10204 } else if (!strcasecmp(o->ptr,"always")) {
10205 server.appendfsync = APPENDFSYNC_ALWAYS;
10206 } else {
10207 goto badfmt;
10208 }
10209 } else if (!strcasecmp(c->argv[2]->ptr,"appendonly")) {
10210 int old = server.appendonly;
10211 int new = yesnotoi(o->ptr);
10212
10213 if (new == -1) goto badfmt;
10214 if (old != new) {
10215 if (new == 0) {
10216 stopAppendOnly();
10217 } else {
10218 if (startAppendOnly() == REDIS_ERR) {
10219 addReplySds(c,sdscatprintf(sdsempty(),
10220 "-ERR Unable to turn on AOF. Check server logs.\r\n"));
10221 decrRefCount(o);
10222 return;
10223 }
10224 }
10225 }
10226 } else if (!strcasecmp(c->argv[2]->ptr,"save")) {
10227 int vlen, j;
10228 sds *v = sdssplitlen(o->ptr,sdslen(o->ptr)," ",1,&vlen);
10229
10230 /* Perform sanity check before setting the new config:
10231 * - Even number of args
10232 * - Seconds >= 1, changes >= 0 */
10233 if (vlen & 1) {
10234 sdsfreesplitres(v,vlen);
10235 goto badfmt;
10236 }
10237 for (j = 0; j < vlen; j++) {
10238 char *eptr;
10239 long val;
10240
10241 val = strtoll(v[j], &eptr, 10);
10242 if (eptr[0] != '\0' ||
10243 ((j & 1) == 0 && val < 1) ||
10244 ((j & 1) == 1 && val < 0)) {
10245 sdsfreesplitres(v,vlen);
10246 goto badfmt;
10247 }
10248 }
10249 /* Finally set the new config */
10250 resetServerSaveParams();
10251 for (j = 0; j < vlen; j += 2) {
10252 time_t seconds;
10253 int changes;
10254
10255 seconds = strtoll(v[j],NULL,10);
10256 changes = strtoll(v[j+1],NULL,10);
10257 appendServerSaveParams(seconds, changes);
10258 }
10259 sdsfreesplitres(v,vlen);
10260 } else {
10261 addReplySds(c,sdscatprintf(sdsempty(),
10262 "-ERR not supported CONFIG parameter %s\r\n",
10263 (char*)c->argv[2]->ptr));
10264 decrRefCount(o);
10265 return;
10266 }
10267 decrRefCount(o);
10268 addReply(c,shared.ok);
10269 return;
10270
10271 badfmt: /* Bad format errors */
10272 addReplySds(c,sdscatprintf(sdsempty(),
10273 "-ERR invalid argument '%s' for CONFIG SET '%s'\r\n",
10274 (char*)o->ptr,
10275 (char*)c->argv[2]->ptr));
10276 decrRefCount(o);
10277 }
10278
10279 static void configGetCommand(redisClient *c) {
10280 robj *o = getDecodedObject(c->argv[2]);
10281 robj *lenobj = createObject(REDIS_STRING,NULL);
10282 char *pattern = o->ptr;
10283 int matches = 0;
10284
10285 addReply(c,lenobj);
10286 decrRefCount(lenobj);
10287
10288 if (stringmatch(pattern,"dbfilename",0)) {
10289 addReplyBulkCString(c,"dbfilename");
10290 addReplyBulkCString(c,server.dbfilename);
10291 matches++;
10292 }
10293 if (stringmatch(pattern,"requirepass",0)) {
10294 addReplyBulkCString(c,"requirepass");
10295 addReplyBulkCString(c,server.requirepass);
10296 matches++;
10297 }
10298 if (stringmatch(pattern,"masterauth",0)) {
10299 addReplyBulkCString(c,"masterauth");
10300 addReplyBulkCString(c,server.masterauth);
10301 matches++;
10302 }
10303 if (stringmatch(pattern,"maxmemory",0)) {
10304 char buf[128];
10305
10306 ll2string(buf,128,server.maxmemory);
10307 addReplyBulkCString(c,"maxmemory");
10308 addReplyBulkCString(c,buf);
10309 matches++;
10310 }
10311 if (stringmatch(pattern,"timeout",0)) {
10312 char buf[128];
10313
10314 ll2string(buf,128,server.maxidletime);
10315 addReplyBulkCString(c,"timeout");
10316 addReplyBulkCString(c,buf);
10317 matches++;
10318 }
10319 if (stringmatch(pattern,"appendonly",0)) {
10320 addReplyBulkCString(c,"appendonly");
10321 addReplyBulkCString(c,server.appendonly ? "yes" : "no");
10322 matches++;
10323 }
10324 if (stringmatch(pattern,"appendfsync",0)) {
10325 char *policy;
10326
10327 switch(server.appendfsync) {
10328 case APPENDFSYNC_NO: policy = "no"; break;
10329 case APPENDFSYNC_EVERYSEC: policy = "everysec"; break;
10330 case APPENDFSYNC_ALWAYS: policy = "always"; break;
10331 default: policy = "unknown"; break; /* too harmless to panic */
10332 }
10333 addReplyBulkCString(c,"appendfsync");
10334 addReplyBulkCString(c,policy);
10335 matches++;
10336 }
10337 if (stringmatch(pattern,"save",0)) {
10338 sds buf = sdsempty();
10339 int j;
10340
10341 for (j = 0; j < server.saveparamslen; j++) {
10342 buf = sdscatprintf(buf,"%ld %d",
10343 server.saveparams[j].seconds,
10344 server.saveparams[j].changes);
10345 if (j != server.saveparamslen-1)
10346 buf = sdscatlen(buf," ",1);
10347 }
10348 addReplyBulkCString(c,"save");
10349 addReplyBulkCString(c,buf);
10350 sdsfree(buf);
10351 matches++;
10352 }
10353 decrRefCount(o);
10354 lenobj->ptr = sdscatprintf(sdsempty(),"*%d\r\n",matches*2);
10355 }
10356
10357 static void configCommand(redisClient *c) {
10358 if (!strcasecmp(c->argv[1]->ptr,"set")) {
10359 if (c->argc != 4) goto badarity;
10360 configSetCommand(c);
10361 } else if (!strcasecmp(c->argv[1]->ptr,"get")) {
10362 if (c->argc != 3) goto badarity;
10363 configGetCommand(c);
10364 } else if (!strcasecmp(c->argv[1]->ptr,"resetstat")) {
10365 if (c->argc != 2) goto badarity;
10366 server.stat_numcommands = 0;
10367 server.stat_numconnections = 0;
10368 server.stat_expiredkeys = 0;
10369 server.stat_starttime = time(NULL);
10370 addReply(c,shared.ok);
10371 } else {
10372 addReplySds(c,sdscatprintf(sdsempty(),
10373 "-ERR CONFIG subcommand must be one of GET, SET, RESETSTAT\r\n"));
10374 }
10375 return;
10376
10377 badarity:
10378 addReplySds(c,sdscatprintf(sdsempty(),
10379 "-ERR Wrong number of arguments for CONFIG %s\r\n",
10380 (char*) c->argv[1]->ptr));
10381 }
10382
10383 /* =========================== Pubsub implementation ======================== */
10384
10385 static void freePubsubPattern(void *p) {
10386 pubsubPattern *pat = p;
10387
10388 decrRefCount(pat->pattern);
10389 zfree(pat);
10390 }
10391
10392 static int listMatchPubsubPattern(void *a, void *b) {
10393 pubsubPattern *pa = a, *pb = b;
10394
10395 return (pa->client == pb->client) &&
10396 (equalStringObjects(pa->pattern,pb->pattern));
10397 }
10398
10399 /* Subscribe a client to a channel. Returns 1 if the operation succeeded, or
10400 * 0 if the client was already subscribed to that channel. */
10401 static int pubsubSubscribeChannel(redisClient *c, robj *channel) {
10402 struct dictEntry *de;
10403 list *clients = NULL;
10404 int retval = 0;
10405
10406 /* Add the channel to the client -> channels hash table */
10407 if (dictAdd(c->pubsub_channels,channel,NULL) == DICT_OK) {
10408 retval = 1;
10409 incrRefCount(channel);
10410 /* Add the client to the channel -> list of clients hash table */
10411 de = dictFind(server.pubsub_channels,channel);
10412 if (de == NULL) {
10413 clients = listCreate();
10414 dictAdd(server.pubsub_channels,channel,clients);
10415 incrRefCount(channel);
10416 } else {
10417 clients = dictGetEntryVal(de);
10418 }
10419 listAddNodeTail(clients,c);
10420 }
10421 /* Notify the client */
10422 addReply(c,shared.mbulk3);
10423 addReply(c,shared.subscribebulk);
10424 addReplyBulk(c,channel);
10425 addReplyLongLong(c,dictSize(c->pubsub_channels)+listLength(c->pubsub_patterns));
10426 return retval;
10427 }
10428
10429 /* Unsubscribe a client from a channel. Returns 1 if the operation succeeded, or
10430 * 0 if the client was not subscribed to the specified channel. */
10431 static int pubsubUnsubscribeChannel(redisClient *c, robj *channel, int notify) {
10432 struct dictEntry *de;
10433 list *clients;
10434 listNode *ln;
10435 int retval = 0;
10436
10437 /* Remove the channel from the client -> channels hash table */
10438 incrRefCount(channel); /* channel may be just a pointer to the same object
10439 we have in the hash tables. Protect it... */
10440 if (dictDelete(c->pubsub_channels,channel) == DICT_OK) {
10441 retval = 1;
10442 /* Remove the client from the channel -> clients list hash table */
10443 de = dictFind(server.pubsub_channels,channel);
10444 assert(de != NULL);
10445 clients = dictGetEntryVal(de);
10446 ln = listSearchKey(clients,c);
10447 assert(ln != NULL);
10448 listDelNode(clients,ln);
10449 if (listLength(clients) == 0) {
10450 /* Free the list and associated hash entry at all if this was
10451 * the latest client, so that it will be possible to abuse
10452 * Redis PUBSUB creating millions of channels. */
10453 dictDelete(server.pubsub_channels,channel);
10454 }
10455 }
10456 /* Notify the client */
10457 if (notify) {
10458 addReply(c,shared.mbulk3);
10459 addReply(c,shared.unsubscribebulk);
10460 addReplyBulk(c,channel);
10461 addReplyLongLong(c,dictSize(c->pubsub_channels)+
10462 listLength(c->pubsub_patterns));
10463
10464 }
10465 decrRefCount(channel); /* it is finally safe to release it */
10466 return retval;
10467 }
10468
10469 /* Subscribe a client to a pattern. Returns 1 if the operation succeeded, or 0 if the clinet was already subscribed to that pattern. */
10470 static int pubsubSubscribePattern(redisClient *c, robj *pattern) {
10471 int retval = 0;
10472
10473 if (listSearchKey(c->pubsub_patterns,pattern) == NULL) {
10474 retval = 1;
10475 pubsubPattern *pat;
10476 listAddNodeTail(c->pubsub_patterns,pattern);
10477 incrRefCount(pattern);
10478 pat = zmalloc(sizeof(*pat));
10479 pat->pattern = getDecodedObject(pattern);
10480 pat->client = c;
10481 listAddNodeTail(server.pubsub_patterns,pat);
10482 }
10483 /* Notify the client */
10484 addReply(c,shared.mbulk3);
10485 addReply(c,shared.psubscribebulk);
10486 addReplyBulk(c,pattern);
10487 addReplyLongLong(c,dictSize(c->pubsub_channels)+listLength(c->pubsub_patterns));
10488 return retval;
10489 }
10490
10491 /* Unsubscribe a client from a channel. Returns 1 if the operation succeeded, or
10492 * 0 if the client was not subscribed to the specified channel. */
10493 static int pubsubUnsubscribePattern(redisClient *c, robj *pattern, int notify) {
10494 listNode *ln;
10495 pubsubPattern pat;
10496 int retval = 0;
10497
10498 incrRefCount(pattern); /* Protect the object. May be the same we remove */
10499 if ((ln = listSearchKey(c->pubsub_patterns,pattern)) != NULL) {
10500 retval = 1;
10501 listDelNode(c->pubsub_patterns,ln);
10502 pat.client = c;
10503 pat.pattern = pattern;
10504 ln = listSearchKey(server.pubsub_patterns,&pat);
10505 listDelNode(server.pubsub_patterns,ln);
10506 }
10507 /* Notify the client */
10508 if (notify) {
10509 addReply(c,shared.mbulk3);
10510 addReply(c,shared.punsubscribebulk);
10511 addReplyBulk(c,pattern);
10512 addReplyLongLong(c,dictSize(c->pubsub_channels)+
10513 listLength(c->pubsub_patterns));
10514 }
10515 decrRefCount(pattern);
10516 return retval;
10517 }
10518
10519 /* Unsubscribe from all the channels. Return the number of channels the
10520 * client was subscribed from. */
10521 static int pubsubUnsubscribeAllChannels(redisClient *c, int notify) {
10522 dictIterator *di = dictGetIterator(c->pubsub_channels);
10523 dictEntry *de;
10524 int count = 0;
10525
10526 while((de = dictNext(di)) != NULL) {
10527 robj *channel = dictGetEntryKey(de);
10528
10529 count += pubsubUnsubscribeChannel(c,channel,notify);
10530 }
10531 dictReleaseIterator(di);
10532 return count;
10533 }
10534
10535 /* Unsubscribe from all the patterns. Return the number of patterns the
10536 * client was subscribed from. */
10537 static int pubsubUnsubscribeAllPatterns(redisClient *c, int notify) {
10538 listNode *ln;
10539 listIter li;
10540 int count = 0;
10541
10542 listRewind(c->pubsub_patterns,&li);
10543 while ((ln = listNext(&li)) != NULL) {
10544 robj *pattern = ln->value;
10545
10546 count += pubsubUnsubscribePattern(c,pattern,notify);
10547 }
10548 return count;
10549 }
10550
10551 /* Publish a message */
10552 static int pubsubPublishMessage(robj *channel, robj *message) {
10553 int receivers = 0;
10554 struct dictEntry *de;
10555 listNode *ln;
10556 listIter li;
10557
10558 /* Send to clients listening for that channel */
10559 de = dictFind(server.pubsub_channels,channel);
10560 if (de) {
10561 list *list = dictGetEntryVal(de);
10562 listNode *ln;
10563 listIter li;
10564
10565 listRewind(list,&li);
10566 while ((ln = listNext(&li)) != NULL) {
10567 redisClient *c = ln->value;
10568
10569 addReply(c,shared.mbulk3);
10570 addReply(c,shared.messagebulk);
10571 addReplyBulk(c,channel);
10572 addReplyBulk(c,message);
10573 receivers++;
10574 }
10575 }
10576 /* Send to clients listening to matching channels */
10577 if (listLength(server.pubsub_patterns)) {
10578 listRewind(server.pubsub_patterns,&li);
10579 channel = getDecodedObject(channel);
10580 while ((ln = listNext(&li)) != NULL) {
10581 pubsubPattern *pat = ln->value;
10582
10583 if (stringmatchlen((char*)pat->pattern->ptr,
10584 sdslen(pat->pattern->ptr),
10585 (char*)channel->ptr,
10586 sdslen(channel->ptr),0)) {
10587 addReply(pat->client,shared.mbulk4);
10588 addReply(pat->client,shared.pmessagebulk);
10589 addReplyBulk(pat->client,pat->pattern);
10590 addReplyBulk(pat->client,channel);
10591 addReplyBulk(pat->client,message);
10592 receivers++;
10593 }
10594 }
10595 decrRefCount(channel);
10596 }
10597 return receivers;
10598 }
10599
10600 static void subscribeCommand(redisClient *c) {
10601 int j;
10602
10603 for (j = 1; j < c->argc; j++)
10604 pubsubSubscribeChannel(c,c->argv[j]);
10605 }
10606
10607 static void unsubscribeCommand(redisClient *c) {
10608 if (c->argc == 1) {
10609 pubsubUnsubscribeAllChannels(c,1);
10610 return;
10611 } else {
10612 int j;
10613
10614 for (j = 1; j < c->argc; j++)
10615 pubsubUnsubscribeChannel(c,c->argv[j],1);
10616 }
10617 }
10618
10619 static void psubscribeCommand(redisClient *c) {
10620 int j;
10621
10622 for (j = 1; j < c->argc; j++)
10623 pubsubSubscribePattern(c,c->argv[j]);
10624 }
10625
10626 static void punsubscribeCommand(redisClient *c) {
10627 if (c->argc == 1) {
10628 pubsubUnsubscribeAllPatterns(c,1);
10629 return;
10630 } else {
10631 int j;
10632
10633 for (j = 1; j < c->argc; j++)
10634 pubsubUnsubscribePattern(c,c->argv[j],1);
10635 }
10636 }
10637
10638 static void publishCommand(redisClient *c) {
10639 int receivers = pubsubPublishMessage(c->argv[1],c->argv[2]);
10640 addReplyLongLong(c,receivers);
10641 }
10642
10643 /* ===================== WATCH (CAS alike for MULTI/EXEC) ===================
10644 *
10645 * The implementation uses a per-DB hash table mapping keys to list of clients
10646 * WATCHing those keys, so that given a key that is going to be modified
10647 * we can mark all the associated clients as dirty.
10648 *
10649 * Also every client contains a list of WATCHed keys so that's possible to
10650 * un-watch such keys when the client is freed or when UNWATCH is called. */
10651
10652 /* In the client->watched_keys list we need to use watchedKey structures
10653 * as in order to identify a key in Redis we need both the key name and the
10654 * DB */
10655 typedef struct watchedKey {
10656 robj *key;
10657 redisDb *db;
10658 } watchedKey;
10659
10660 /* Watch for the specified key */
10661 static void watchForKey(redisClient *c, robj *key) {
10662 list *clients = NULL;
10663 listIter li;
10664 listNode *ln;
10665 watchedKey *wk;
10666
10667 /* Check if we are already watching for this key */
10668 listRewind(c->watched_keys,&li);
10669 while((ln = listNext(&li))) {
10670 wk = listNodeValue(ln);
10671 if (wk->db == c->db && equalStringObjects(key,wk->key))
10672 return; /* Key already watched */
10673 }
10674 /* This key is not already watched in this DB. Let's add it */
10675 clients = dictFetchValue(c->db->watched_keys,key);
10676 if (!clients) {
10677 clients = listCreate();
10678 dictAdd(c->db->watched_keys,key,clients);
10679 incrRefCount(key);
10680 }
10681 listAddNodeTail(clients,c);
10682 /* Add the new key to the lits of keys watched by this client */
10683 wk = zmalloc(sizeof(*wk));
10684 wk->key = key;
10685 wk->db = c->db;
10686 incrRefCount(key);
10687 listAddNodeTail(c->watched_keys,wk);
10688 }
10689
10690 /* Unwatch all the keys watched by this client. To clean the EXEC dirty
10691 * flag is up to the caller. */
10692 static void unwatchAllKeys(redisClient *c) {
10693 listIter li;
10694 listNode *ln;
10695
10696 if (listLength(c->watched_keys) == 0) return;
10697 listRewind(c->watched_keys,&li);
10698 while((ln = listNext(&li))) {
10699 list *clients;
10700 watchedKey *wk;
10701
10702 /* Lookup the watched key -> clients list and remove the client
10703 * from the list */
10704 wk = listNodeValue(ln);
10705 clients = dictFetchValue(wk->db->watched_keys, wk->key);
10706 assert(clients != NULL);
10707 listDelNode(clients,listSearchKey(clients,c));
10708 /* Kill the entry at all if this was the only client */
10709 if (listLength(clients) == 0)
10710 dictDelete(wk->db->watched_keys, wk->key);
10711 /* Remove this watched key from the client->watched list */
10712 listDelNode(c->watched_keys,ln);
10713 decrRefCount(wk->key);
10714 zfree(wk);
10715 }
10716 }
10717
10718 /* "Touch" a key, so that if this key is being WATCHed by some client the
10719 * next EXEC will fail. */
10720 static void touchWatchedKey(redisDb *db, robj *key) {
10721 list *clients;
10722 listIter li;
10723 listNode *ln;
10724
10725 if (dictSize(db->watched_keys) == 0) return;
10726 clients = dictFetchValue(db->watched_keys, key);
10727 if (!clients) return;
10728
10729 /* Mark all the clients watching this key as REDIS_DIRTY_CAS */
10730 /* Check if we are already watching for this key */
10731 listRewind(clients,&li);
10732 while((ln = listNext(&li))) {
10733 redisClient *c = listNodeValue(ln);
10734
10735 c->flags |= REDIS_DIRTY_CAS;
10736 }
10737 }
10738
10739 /* On FLUSHDB or FLUSHALL all the watched keys that are present before the
10740 * flush but will be deleted as effect of the flushing operation should
10741 * be touched. "dbid" is the DB that's getting the flush. -1 if it is
10742 * a FLUSHALL operation (all the DBs flushed). */
10743 static void touchWatchedKeysOnFlush(int dbid) {
10744 listIter li1, li2;
10745 listNode *ln;
10746
10747 /* For every client, check all the waited keys */
10748 listRewind(server.clients,&li1);
10749 while((ln = listNext(&li1))) {
10750 redisClient *c = listNodeValue(ln);
10751 listRewind(c->watched_keys,&li2);
10752 while((ln = listNext(&li2))) {
10753 watchedKey *wk = listNodeValue(ln);
10754
10755 /* For every watched key matching the specified DB, if the
10756 * key exists, mark the client as dirty, as the key will be
10757 * removed. */
10758 if (dbid == -1 || wk->db->id == dbid) {
10759 if (dictFind(wk->db->dict, wk->key) != NULL)
10760 c->flags |= REDIS_DIRTY_CAS;
10761 }
10762 }
10763 }
10764 }
10765
10766 static void watchCommand(redisClient *c) {
10767 int j;
10768
10769 if (c->flags & REDIS_MULTI) {
10770 addReplySds(c,sdsnew("-ERR WATCH inside MULTI is not allowed\r\n"));
10771 return;
10772 }
10773 for (j = 1; j < c->argc; j++)
10774 watchForKey(c,c->argv[j]);
10775 addReply(c,shared.ok);
10776 }
10777
10778 static void unwatchCommand(redisClient *c) {
10779 unwatchAllKeys(c);
10780 c->flags &= (~REDIS_DIRTY_CAS);
10781 addReply(c,shared.ok);
10782 }
10783
10784 /* ================================= Debugging ============================== */
10785
10786 /* Compute the sha1 of string at 's' with 'len' bytes long.
10787 * The SHA1 is then xored againt the string pointed by digest.
10788 * Since xor is commutative, this operation is used in order to
10789 * "add" digests relative to unordered elements.
10790 *
10791 * So digest(a,b,c,d) will be the same of digest(b,a,c,d) */
10792 static void xorDigest(unsigned char *digest, void *ptr, size_t len) {
10793 SHA1_CTX ctx;
10794 unsigned char hash[20], *s = ptr;
10795 int j;
10796
10797 SHA1Init(&ctx);
10798 SHA1Update(&ctx,s,len);
10799 SHA1Final(hash,&ctx);
10800
10801 for (j = 0; j < 20; j++)
10802 digest[j] ^= hash[j];
10803 }
10804
10805 static void xorObjectDigest(unsigned char *digest, robj *o) {
10806 o = getDecodedObject(o);
10807 xorDigest(digest,o->ptr,sdslen(o->ptr));
10808 decrRefCount(o);
10809 }
10810
10811 /* This function instead of just computing the SHA1 and xoring it
10812 * against diget, also perform the digest of "digest" itself and
10813 * replace the old value with the new one.
10814 *
10815 * So the final digest will be:
10816 *
10817 * digest = SHA1(digest xor SHA1(data))
10818 *
10819 * This function is used every time we want to preserve the order so
10820 * that digest(a,b,c,d) will be different than digest(b,c,d,a)
10821 *
10822 * Also note that mixdigest("foo") followed by mixdigest("bar")
10823 * will lead to a different digest compared to "fo", "obar".
10824 */
10825 static void mixDigest(unsigned char *digest, void *ptr, size_t len) {
10826 SHA1_CTX ctx;
10827 char *s = ptr;
10828
10829 xorDigest(digest,s,len);
10830 SHA1Init(&ctx);
10831 SHA1Update(&ctx,digest,20);
10832 SHA1Final(digest,&ctx);
10833 }
10834
10835 static void mixObjectDigest(unsigned char *digest, robj *o) {
10836 o = getDecodedObject(o);
10837 mixDigest(digest,o->ptr,sdslen(o->ptr));
10838 decrRefCount(o);
10839 }
10840
10841 /* Compute the dataset digest. Since keys, sets elements, hashes elements
10842 * are not ordered, we use a trick: every aggregate digest is the xor
10843 * of the digests of their elements. This way the order will not change
10844 * the result. For list instead we use a feedback entering the output digest
10845 * as input in order to ensure that a different ordered list will result in
10846 * a different digest. */
10847 static void computeDatasetDigest(unsigned char *final) {
10848 unsigned char digest[20];
10849 char buf[128];
10850 dictIterator *di = NULL;
10851 dictEntry *de;
10852 int j;
10853 uint32_t aux;
10854
10855 memset(final,0,20); /* Start with a clean result */
10856
10857 for (j = 0; j < server.dbnum; j++) {
10858 redisDb *db = server.db+j;
10859
10860 if (dictSize(db->dict) == 0) continue;
10861 di = dictGetIterator(db->dict);
10862
10863 /* hash the DB id, so the same dataset moved in a different
10864 * DB will lead to a different digest */
10865 aux = htonl(j);
10866 mixDigest(final,&aux,sizeof(aux));
10867
10868 /* Iterate this DB writing every entry */
10869 while((de = dictNext(di)) != NULL) {
10870 robj *key, *o, *kcopy;
10871 time_t expiretime;
10872
10873 memset(digest,0,20); /* This key-val digest */
10874 key = dictGetEntryKey(de);
10875
10876 if (!server.vm_enabled) {
10877 mixObjectDigest(digest,key);
10878 o = dictGetEntryVal(de);
10879 } else {
10880 /* Don't work with the key directly as when VM is active
10881 * this is unsafe: TODO: fix decrRefCount to check if the
10882 * count really reached 0 to avoid this mess */
10883 kcopy = dupStringObject(key);
10884 mixObjectDigest(digest,kcopy);
10885 o = lookupKeyRead(db,kcopy);
10886 decrRefCount(kcopy);
10887 }
10888 aux = htonl(o->type);
10889 mixDigest(digest,&aux,sizeof(aux));
10890 expiretime = getExpire(db,key);
10891
10892 /* Save the key and associated value */
10893 if (o->type == REDIS_STRING) {
10894 mixObjectDigest(digest,o);
10895 } else if (o->type == REDIS_LIST) {
10896 list *list = o->ptr;
10897 listNode *ln;
10898 listIter li;
10899
10900 listRewind(list,&li);
10901 while((ln = listNext(&li))) {
10902 robj *eleobj = listNodeValue(ln);
10903
10904 mixObjectDigest(digest,eleobj);
10905 }
10906 } else if (o->type == REDIS_SET) {
10907 dict *set = o->ptr;
10908 dictIterator *di = dictGetIterator(set);
10909 dictEntry *de;
10910
10911 while((de = dictNext(di)) != NULL) {
10912 robj *eleobj = dictGetEntryKey(de);
10913
10914 xorObjectDigest(digest,eleobj);
10915 }
10916 dictReleaseIterator(di);
10917 } else if (o->type == REDIS_ZSET) {
10918 zset *zs = o->ptr;
10919 dictIterator *di = dictGetIterator(zs->dict);
10920 dictEntry *de;
10921
10922 while((de = dictNext(di)) != NULL) {
10923 robj *eleobj = dictGetEntryKey(de);
10924 double *score = dictGetEntryVal(de);
10925 unsigned char eledigest[20];
10926
10927 snprintf(buf,sizeof(buf),"%.17g",*score);
10928 memset(eledigest,0,20);
10929 mixObjectDigest(eledigest,eleobj);
10930 mixDigest(eledigest,buf,strlen(buf));
10931 xorDigest(digest,eledigest,20);
10932 }
10933 dictReleaseIterator(di);
10934 } else if (o->type == REDIS_HASH) {
10935 hashIterator *hi;
10936 robj *obj;
10937
10938 hi = hashInitIterator(o);
10939 while (hashNext(hi) != REDIS_ERR) {
10940 unsigned char eledigest[20];
10941
10942 memset(eledigest,0,20);
10943 obj = hashCurrent(hi,REDIS_HASH_KEY);
10944 mixObjectDigest(eledigest,obj);
10945 decrRefCount(obj);
10946 obj = hashCurrent(hi,REDIS_HASH_VALUE);
10947 mixObjectDigest(eledigest,obj);
10948 decrRefCount(obj);
10949 xorDigest(digest,eledigest,20);
10950 }
10951 hashReleaseIterator(hi);
10952 } else {
10953 redisPanic("Unknown object type");
10954 }
10955 /* If the key has an expire, add it to the mix */
10956 if (expiretime != -1) xorDigest(digest,"!!expire!!",10);
10957 /* We can finally xor the key-val digest to the final digest */
10958 xorDigest(final,digest,20);
10959 }
10960 dictReleaseIterator(di);
10961 }
10962 }
10963
10964 static void debugCommand(redisClient *c) {
10965 if (!strcasecmp(c->argv[1]->ptr,"segfault")) {
10966 *((char*)-1) = 'x';
10967 } else if (!strcasecmp(c->argv[1]->ptr,"reload")) {
10968 if (rdbSave(server.dbfilename) != REDIS_OK) {
10969 addReply(c,shared.err);
10970 return;
10971 }
10972 emptyDb();
10973 if (rdbLoad(server.dbfilename) != REDIS_OK) {
10974 addReply(c,shared.err);
10975 return;
10976 }
10977 redisLog(REDIS_WARNING,"DB reloaded by DEBUG RELOAD");
10978 addReply(c,shared.ok);
10979 } else if (!strcasecmp(c->argv[1]->ptr,"loadaof")) {
10980 emptyDb();
10981 if (loadAppendOnlyFile(server.appendfilename) != REDIS_OK) {
10982 addReply(c,shared.err);
10983 return;
10984 }
10985 redisLog(REDIS_WARNING,"Append Only File loaded by DEBUG LOADAOF");
10986 addReply(c,shared.ok);
10987 } else if (!strcasecmp(c->argv[1]->ptr,"object") && c->argc == 3) {
10988 dictEntry *de = dictFind(c->db->dict,c->argv[2]);
10989 robj *key, *val;
10990
10991 if (!de) {
10992 addReply(c,shared.nokeyerr);
10993 return;
10994 }
10995 key = dictGetEntryKey(de);
10996 val = dictGetEntryVal(de);
10997 if (!server.vm_enabled || (key->storage == REDIS_VM_MEMORY ||
10998 key->storage == REDIS_VM_SWAPPING)) {
10999 char *strenc;
11000 char buf[128];
11001
11002 if (val->encoding < (sizeof(strencoding)/sizeof(char*))) {
11003 strenc = strencoding[val->encoding];
11004 } else {
11005 snprintf(buf,64,"unknown encoding %d\n", val->encoding);
11006 strenc = buf;
11007 }
11008 addReplySds(c,sdscatprintf(sdsempty(),
11009 "+Key at:%p refcount:%d, value at:%p refcount:%d "
11010 "encoding:%s serializedlength:%lld\r\n",
11011 (void*)key, key->refcount, (void*)val, val->refcount,
11012 strenc, (long long) rdbSavedObjectLen(val,NULL)));
11013 } else {
11014 addReplySds(c,sdscatprintf(sdsempty(),
11015 "+Key at:%p refcount:%d, value swapped at: page %llu "
11016 "using %llu pages\r\n",
11017 (void*)key, key->refcount, (unsigned long long) key->vm.page,
11018 (unsigned long long) key->vm.usedpages));
11019 }
11020 } else if (!strcasecmp(c->argv[1]->ptr,"swapin") && c->argc == 3) {
11021 lookupKeyRead(c->db,c->argv[2]);
11022 addReply(c,shared.ok);
11023 } else if (!strcasecmp(c->argv[1]->ptr,"swapout") && c->argc == 3) {
11024 dictEntry *de = dictFind(c->db->dict,c->argv[2]);
11025 robj *key, *val;
11026
11027 if (!server.vm_enabled) {
11028 addReplySds(c,sdsnew("-ERR Virtual Memory is disabled\r\n"));
11029 return;
11030 }
11031 if (!de) {
11032 addReply(c,shared.nokeyerr);
11033 return;
11034 }
11035 key = dictGetEntryKey(de);
11036 val = dictGetEntryVal(de);
11037 /* If the key is shared we want to create a copy */
11038 if (key->refcount > 1) {
11039 robj *newkey = dupStringObject(key);
11040 decrRefCount(key);
11041 key = dictGetEntryKey(de) = newkey;
11042 }
11043 /* Swap it */
11044 if (key->storage != REDIS_VM_MEMORY) {
11045 addReplySds(c,sdsnew("-ERR This key is not in memory\r\n"));
11046 } else if (vmSwapObjectBlocking(key,val) == REDIS_OK) {
11047 dictGetEntryVal(de) = NULL;
11048 addReply(c,shared.ok);
11049 } else {
11050 addReply(c,shared.err);
11051 }
11052 } else if (!strcasecmp(c->argv[1]->ptr,"populate") && c->argc == 3) {
11053 long keys, j;
11054 robj *key, *val;
11055 char buf[128];
11056
11057 if (getLongFromObjectOrReply(c, c->argv[2], &keys, NULL) != REDIS_OK)
11058 return;
11059 for (j = 0; j < keys; j++) {
11060 snprintf(buf,sizeof(buf),"key:%lu",j);
11061 key = createStringObject(buf,strlen(buf));
11062 if (lookupKeyRead(c->db,key) != NULL) {
11063 decrRefCount(key);
11064 continue;
11065 }
11066 snprintf(buf,sizeof(buf),"value:%lu",j);
11067 val = createStringObject(buf,strlen(buf));
11068 dictAdd(c->db->dict,key,val);
11069 }
11070 addReply(c,shared.ok);
11071 } else if (!strcasecmp(c->argv[1]->ptr,"digest") && c->argc == 2) {
11072 unsigned char digest[20];
11073 sds d = sdsnew("+");
11074 int j;
11075
11076 computeDatasetDigest(digest);
11077 for (j = 0; j < 20; j++)
11078 d = sdscatprintf(d, "%02x",digest[j]);
11079
11080 d = sdscatlen(d,"\r\n",2);
11081 addReplySds(c,d);
11082 } else {
11083 addReplySds(c,sdsnew(
11084 "-ERR Syntax error, try DEBUG [SEGFAULT|OBJECT <key>|SWAPIN <key>|SWAPOUT <key>|RELOAD]\r\n"));
11085 }
11086 }
11087
11088 static void _redisAssert(char *estr, char *file, int line) {
11089 redisLog(REDIS_WARNING,"=== ASSERTION FAILED ===");
11090 redisLog(REDIS_WARNING,"==> %s:%d '%s' is not true",file,line,estr);
11091 #ifdef HAVE_BACKTRACE
11092 redisLog(REDIS_WARNING,"(forcing SIGSEGV in order to print the stack trace)");
11093 *((char*)-1) = 'x';
11094 #endif
11095 }
11096
11097 static void _redisPanic(char *msg, char *file, int line) {
11098 redisLog(REDIS_WARNING,"!!! Software Failure. Press left mouse button to continue");
11099 redisLog(REDIS_WARNING,"Guru Meditation: %s #%s:%d",msg,file,line);
11100 #ifdef HAVE_BACKTRACE
11101 redisLog(REDIS_WARNING,"(forcing SIGSEGV in order to print the stack trace)");
11102 *((char*)-1) = 'x';
11103 #endif
11104 }
11105
11106 /* =================================== Main! ================================ */
11107
11108 #ifdef __linux__
11109 int linuxOvercommitMemoryValue(void) {
11110 FILE *fp = fopen("/proc/sys/vm/overcommit_memory","r");
11111 char buf[64];
11112
11113 if (!fp) return -1;
11114 if (fgets(buf,64,fp) == NULL) {
11115 fclose(fp);
11116 return -1;
11117 }
11118 fclose(fp);
11119
11120 return atoi(buf);
11121 }
11122
11123 void linuxOvercommitMemoryWarning(void) {
11124 if (linuxOvercommitMemoryValue() == 0) {
11125 redisLog(REDIS_WARNING,"WARNING overcommit_memory is set to 0! Background save may fail under low memory condition. To fix this issue add 'vm.overcommit_memory = 1' to /etc/sysctl.conf and then reboot or run the command 'sysctl vm.overcommit_memory=1' for this to take effect.");
11126 }
11127 }
11128 #endif /* __linux__ */
11129
11130 static void daemonize(void) {
11131 int fd;
11132 FILE *fp;
11133
11134 if (fork() != 0) exit(0); /* parent exits */
11135 setsid(); /* create a new session */
11136
11137 /* Every output goes to /dev/null. If Redis is daemonized but
11138 * the 'logfile' is set to 'stdout' in the configuration file
11139 * it will not log at all. */
11140 if ((fd = open("/dev/null", O_RDWR, 0)) != -1) {
11141 dup2(fd, STDIN_FILENO);
11142 dup2(fd, STDOUT_FILENO);
11143 dup2(fd, STDERR_FILENO);
11144 if (fd > STDERR_FILENO) close(fd);
11145 }
11146 /* Try to write the pid file */
11147 fp = fopen(server.pidfile,"w");
11148 if (fp) {
11149 fprintf(fp,"%d\n",getpid());
11150 fclose(fp);
11151 }
11152 }
11153
11154 static void version() {
11155 printf("Redis server version %s (%s:%d)\n", REDIS_VERSION,
11156 REDIS_GIT_SHA1, atoi(REDIS_GIT_DIRTY) > 0);
11157 exit(0);
11158 }
11159
11160 static void usage() {
11161 fprintf(stderr,"Usage: ./redis-server [/path/to/redis.conf]\n");
11162 fprintf(stderr," ./redis-server - (read config from stdin)\n");
11163 exit(1);
11164 }
11165
11166 int main(int argc, char **argv) {
11167 time_t start;
11168
11169 initServerConfig();
11170 sortCommandTable();
11171 if (argc == 2) {
11172 if (strcmp(argv[1], "-v") == 0 ||
11173 strcmp(argv[1], "--version") == 0) version();
11174 if (strcmp(argv[1], "--help") == 0) usage();
11175 resetServerSaveParams();
11176 loadServerConfig(argv[1]);
11177 } else if ((argc > 2)) {
11178 usage();
11179 } else {
11180 redisLog(REDIS_WARNING,"Warning: no config file specified, using the default config. In order to specify a config file use 'redis-server /path/to/redis.conf'");
11181 }
11182 if (server.daemonize) daemonize();
11183 initServer();
11184 redisLog(REDIS_NOTICE,"Server started, Redis version " REDIS_VERSION);
11185 #ifdef __linux__
11186 linuxOvercommitMemoryWarning();
11187 #endif
11188 start = time(NULL);
11189 if (server.appendonly) {
11190 if (loadAppendOnlyFile(server.appendfilename) == REDIS_OK)
11191 redisLog(REDIS_NOTICE,"DB loaded from append only file: %ld seconds",time(NULL)-start);
11192 } else {
11193 if (rdbLoad(server.dbfilename) == REDIS_OK)
11194 redisLog(REDIS_NOTICE,"DB loaded from disk: %ld seconds",time(NULL)-start);
11195 }
11196 redisLog(REDIS_NOTICE,"The server is now ready to accept connections on port %d", server.port);
11197 aeSetBeforeSleepProc(server.el,beforeSleep);
11198 aeMain(server.el);
11199 aeDeleteEventLoop(server.el);
11200 return 0;
11201 }
11202
11203 /* ============================= Backtrace support ========================= */
11204
11205 #ifdef HAVE_BACKTRACE
11206 static char *findFuncName(void *pointer, unsigned long *offset);
11207
11208 static void *getMcontextEip(ucontext_t *uc) {
11209 #if defined(__FreeBSD__)
11210 return (void*) uc->uc_mcontext.mc_eip;
11211 #elif defined(__dietlibc__)
11212 return (void*) uc->uc_mcontext.eip;
11213 #elif defined(__APPLE__) && !defined(MAC_OS_X_VERSION_10_6)
11214 #if __x86_64__
11215 return (void*) uc->uc_mcontext->__ss.__rip;
11216 #else
11217 return (void*) uc->uc_mcontext->__ss.__eip;
11218 #endif
11219 #elif defined(__APPLE__) && defined(MAC_OS_X_VERSION_10_6)
11220 #if defined(_STRUCT_X86_THREAD_STATE64) && !defined(__i386__)
11221 return (void*) uc->uc_mcontext->__ss.__rip;
11222 #else
11223 return (void*) uc->uc_mcontext->__ss.__eip;
11224 #endif
11225 #elif defined(__i386__) || defined(__X86_64__) || defined(__x86_64__)
11226 return (void*) uc->uc_mcontext.gregs[REG_EIP]; /* Linux 32/64 bit */
11227 #elif defined(__ia64__) /* Linux IA64 */
11228 return (void*) uc->uc_mcontext.sc_ip;
11229 #else
11230 return NULL;
11231 #endif
11232 }
11233
11234 static void segvHandler(int sig, siginfo_t *info, void *secret) {
11235 void *trace[100];
11236 char **messages = NULL;
11237 int i, trace_size = 0;
11238 unsigned long offset=0;
11239 ucontext_t *uc = (ucontext_t*) secret;
11240 sds infostring;
11241 REDIS_NOTUSED(info);
11242
11243 redisLog(REDIS_WARNING,
11244 "======= Ooops! Redis %s got signal: -%d- =======", REDIS_VERSION, sig);
11245 infostring = genRedisInfoString();
11246 redisLog(REDIS_WARNING, "%s",infostring);
11247 /* It's not safe to sdsfree() the returned string under memory
11248 * corruption conditions. Let it leak as we are going to abort */
11249
11250 trace_size = backtrace(trace, 100);
11251 /* overwrite sigaction with caller's address */
11252 if (getMcontextEip(uc) != NULL) {
11253 trace[1] = getMcontextEip(uc);
11254 }
11255 messages = backtrace_symbols(trace, trace_size);
11256
11257 for (i=1; i<trace_size; ++i) {
11258 char *fn = findFuncName(trace[i], &offset), *p;
11259
11260 p = strchr(messages[i],'+');
11261 if (!fn || (p && ((unsigned long)strtol(p+1,NULL,10)) < offset)) {
11262 redisLog(REDIS_WARNING,"%s", messages[i]);
11263 } else {
11264 redisLog(REDIS_WARNING,"%d redis-server %p %s + %d", i, trace[i], fn, (unsigned int)offset);
11265 }
11266 }
11267 /* free(messages); Don't call free() with possibly corrupted memory. */
11268 _exit(0);
11269 }
11270
11271 static void sigtermHandler(int sig) {
11272 REDIS_NOTUSED(sig);
11273
11274 redisLog(REDIS_WARNING,"SIGTERM received, scheduling shutting down...");
11275 server.shutdown_asap = 1;
11276 }
11277
11278 static void setupSigSegvAction(void) {
11279 struct sigaction act;
11280
11281 sigemptyset (&act.sa_mask);
11282 /* When the SA_SIGINFO flag is set in sa_flags then sa_sigaction
11283 * is used. Otherwise, sa_handler is used */
11284 act.sa_flags = SA_NODEFER | SA_ONSTACK | SA_RESETHAND | SA_SIGINFO;
11285 act.sa_sigaction = segvHandler;
11286 sigaction (SIGSEGV, &act, NULL);
11287 sigaction (SIGBUS, &act, NULL);
11288 sigaction (SIGFPE, &act, NULL);
11289 sigaction (SIGILL, &act, NULL);
11290 sigaction (SIGBUS, &act, NULL);
11291
11292 act.sa_flags = SA_NODEFER | SA_ONSTACK | SA_RESETHAND;
11293 act.sa_handler = sigtermHandler;
11294 sigaction (SIGTERM, &act, NULL);
11295 return;
11296 }
11297
11298 #include "staticsymbols.h"
11299 /* This function try to convert a pointer into a function name. It's used in
11300 * oreder to provide a backtrace under segmentation fault that's able to
11301 * display functions declared as static (otherwise the backtrace is useless). */
11302 static char *findFuncName(void *pointer, unsigned long *offset){
11303 int i, ret = -1;
11304 unsigned long off, minoff = 0;
11305
11306 /* Try to match against the Symbol with the smallest offset */
11307 for (i=0; symsTable[i].pointer; i++) {
11308 unsigned long lp = (unsigned long) pointer;
11309
11310 if (lp != (unsigned long)-1 && lp >= symsTable[i].pointer) {
11311 off=lp-symsTable[i].pointer;
11312 if (ret < 0 || off < minoff) {
11313 minoff=off;
11314 ret=i;
11315 }
11316 }
11317 }
11318 if (ret == -1) return NULL;
11319 *offset = minoff;
11320 return symsTable[ret].name;
11321 }
11322 #else /* HAVE_BACKTRACE */
11323 static void setupSigSegvAction(void) {
11324 }
11325 #endif /* HAVE_BACKTRACE */
11326
11327
11328
11329 /* The End */
11330
11331
11332