1 /* Asynchronous replication implementation. 2 * 3 * Copyright (c) 2009-2012, Salvatore Sanfilippo <antirez at gmail dot com> 4 * All rights reserved. 5 * 6 * Redistribution and use in source and binary forms, with or without 7 * modification, are permitted provided that the following conditions are met: 8 * 9 * * Redistributions of source code must retain the above copyright notice, 10 * this list of conditions and the following disclaimer. 11 * * Redistributions in binary form must reproduce the above copyright 12 * notice, this list of conditions and the following disclaimer in the 13 * documentation and/or other materials provided with the distribution. 14 * * Neither the name of Redis nor the names of its contributors may be used 15 * to endorse or promote products derived from this software without 16 * specific prior written permission. 17 * 18 * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS "AS IS" 19 * AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE 20 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE 21 * ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT OWNER OR CONTRIBUTORS BE 22 * LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR 23 * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF 24 * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS 25 * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN 26 * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) 27 * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE 28 * POSSIBILITY OF SUCH DAMAGE. 29 */ 30 31 32 #include "server.h" 33 34 #include <sys/time.h> 35 #include <unistd.h> 36 #include <fcntl.h> 37 #include <sys/socket.h> 38 #include <sys/stat.h> 39 40 void replicationDiscardCachedMaster(void); 41 void replicationResurrectCachedMaster(int newfd); 42 void replicationSendAck(void); 43 void putSlaveOnline(client *slave); 44 int cancelReplicationHandshake(void); 45 46 /* --------------------------- Utility functions ---------------------------- */ 47 48 /* Return the pointer to a string representing the slave ip:listening_port 49 * pair. Mostly useful for logging, since we want to log a slave using its 50 * IP address and its listening port which is more clear for the user, for 51 * example: "Closing connection with slave 10.1.2.3:6380". */ 52 char *replicationGetSlaveName(client *c) { 53 static char buf[NET_PEER_ID_LEN]; 54 char ip[NET_IP_STR_LEN]; 55 56 ip[0] = '\0'; 57 buf[0] = '\0'; 58 if (c->slave_ip[0] != '\0' || 59 anetPeerToString(c->fd,ip,sizeof(ip),NULL) != -1) 60 { 61 /* Note that the 'ip' buffer is always larger than 'c->slave_ip' */ 62 if (c->slave_ip[0] != '\0') memcpy(ip,c->slave_ip,sizeof(c->slave_ip)); 63 64 if (c->slave_listening_port) 65 anetFormatAddr(buf,sizeof(buf),ip,c->slave_listening_port); 66 else 67 snprintf(buf,sizeof(buf),"%s:<unknown-slave-port>",ip); 68 } else { 69 snprintf(buf,sizeof(buf),"client id #%llu", 70 (unsigned long long) c->id); 71 } 72 return buf; 73 } 74 75 /* ---------------------------------- MASTER -------------------------------- */ 76 77 void createReplicationBacklog(void) { 78 serverAssert(server.repl_backlog == NULL); 79 server.repl_backlog = zmalloc(server.repl_backlog_size); 80 server.repl_backlog_histlen = 0; 81 server.repl_backlog_idx = 0; 82 /* When a new backlog buffer is created, we increment the replication 83 * offset by one to make sure we'll not be able to PSYNC with any 84 * previous slave. This is needed because we avoid incrementing the 85 * master_repl_offset if no backlog exists nor slaves are attached. */ 86 server.master_repl_offset++; 87 88 /* We don't have any data inside our buffer, but virtually the first 89 * byte we have is the next byte that will be generated for the 90 * replication stream. */ 91 server.repl_backlog_off = server.master_repl_offset+1; 92 } 93 94 /* This function is called when the user modifies the replication backlog 95 * size at runtime. It is up to the function to both update the 96 * server.repl_backlog_size and to resize the buffer and setup it so that 97 * it contains the same data as the previous one (possibly less data, but 98 * the most recent bytes, or the same data and more free space in case the 99 * buffer is enlarged). */ 100 void resizeReplicationBacklog(long long newsize) { 101 if (newsize < CONFIG_REPL_BACKLOG_MIN_SIZE) 102 newsize = CONFIG_REPL_BACKLOG_MIN_SIZE; 103 if (server.repl_backlog_size == newsize) return; 104 105 server.repl_backlog_size = newsize; 106 if (server.repl_backlog != NULL) { 107 /* What we actually do is to flush the old buffer and realloc a new 108 * empty one. It will refill with new data incrementally. 109 * The reason is that copying a few gigabytes adds latency and even 110 * worse often we need to alloc additional space before freeing the 111 * old buffer. */ 112 zfree(server.repl_backlog); 113 server.repl_backlog = zmalloc(server.repl_backlog_size); 114 server.repl_backlog_histlen = 0; 115 server.repl_backlog_idx = 0; 116 /* Next byte we have is... the next since the buffer is empty. */ 117 server.repl_backlog_off = server.master_repl_offset+1; 118 } 119 } 120 121 void freeReplicationBacklog(void) { 122 serverAssert(listLength(server.slaves) == 0); 123 zfree(server.repl_backlog); 124 server.repl_backlog = NULL; 125 } 126 127 /* Add data to the replication backlog. 128 * This function also increments the global replication offset stored at 129 * server.master_repl_offset, because there is no case where we want to feed 130 * the backlog without incrementing the buffer. */ 131 void feedReplicationBacklog(void *ptr, size_t len) { 132 unsigned char *p = ptr; 133 134 server.master_repl_offset += len; 135 136 /* This is a circular buffer, so write as much data we can at every 137 * iteration and rewind the "idx" index if we reach the limit. */ 138 while(len) { 139 size_t thislen = server.repl_backlog_size - server.repl_backlog_idx; 140 if (thislen > len) thislen = len; 141 memcpy(server.repl_backlog+server.repl_backlog_idx,p,thislen); 142 server.repl_backlog_idx += thislen; 143 if (server.repl_backlog_idx == server.repl_backlog_size) 144 server.repl_backlog_idx = 0; 145 len -= thislen; 146 p += thislen; 147 server.repl_backlog_histlen += thislen; 148 } 149 if (server.repl_backlog_histlen > server.repl_backlog_size) 150 server.repl_backlog_histlen = server.repl_backlog_size; 151 /* Set the offset of the first byte we have in the backlog. */ 152 server.repl_backlog_off = server.master_repl_offset - 153 server.repl_backlog_histlen + 1; 154 } 155 156 /* Wrapper for feedReplicationBacklog() that takes Redis string objects 157 * as input. */ 158 void feedReplicationBacklogWithObject(robj *o) { 159 char llstr[LONG_STR_SIZE]; 160 void *p; 161 size_t len; 162 163 if (o->encoding == OBJ_ENCODING_INT) { 164 len = ll2string(llstr,sizeof(llstr),(long)o->ptr); 165 p = llstr; 166 } else { 167 len = sdslen(o->ptr); 168 p = o->ptr; 169 } 170 feedReplicationBacklog(p,len); 171 } 172 173 void replicationFeedSlaves(list *slaves, int dictid, robj **argv, int argc) { 174 listNode *ln; 175 listIter li; 176 int j, len; 177 char llstr[LONG_STR_SIZE]; 178 179 /* If there aren't slaves, and there is no backlog buffer to populate, 180 * we can return ASAP. */ 181 if (server.repl_backlog == NULL && listLength(slaves) == 0) return; 182 183 /* We can't have slaves attached and no backlog. */ 184 serverAssert(!(listLength(slaves) != 0 && server.repl_backlog == NULL)); 185 186 /* Send SELECT command to every slave if needed. */ 187 if (server.slaveseldb != dictid) { 188 robj *selectcmd; 189 190 /* For a few DBs we have pre-computed SELECT command. */ 191 if (dictid >= 0 && dictid < PROTO_SHARED_SELECT_CMDS) { 192 selectcmd = shared.select[dictid]; 193 } else { 194 int dictid_len; 195 196 dictid_len = ll2string(llstr,sizeof(llstr),dictid); 197 selectcmd = createObject(OBJ_STRING, 198 sdscatprintf(sdsempty(), 199 "*2\r\n$6\r\nSELECT\r\n$%d\r\n%s\r\n", 200 dictid_len, llstr)); 201 } 202 203 /* Add the SELECT command into the backlog. */ 204 if (server.repl_backlog) feedReplicationBacklogWithObject(selectcmd); 205 206 /* Send it to slaves. */ 207 listRewind(slaves,&li); 208 while((ln = listNext(&li))) { 209 client *slave = ln->value; 210 if (slave->replstate == SLAVE_STATE_WAIT_BGSAVE_START) continue; 211 addReply(slave,selectcmd); 212 } 213 214 if (dictid < 0 || dictid >= PROTO_SHARED_SELECT_CMDS) 215 decrRefCount(selectcmd); 216 } 217 server.slaveseldb = dictid; 218 219 /* Write the command to the replication backlog if any. */ 220 if (server.repl_backlog) { 221 char aux[LONG_STR_SIZE+3]; 222 223 /* Add the multi bulk reply length. */ 224 aux[0] = '*'; 225 len = ll2string(aux+1,sizeof(aux)-1,argc); 226 aux[len+1] = '\r'; 227 aux[len+2] = '\n'; 228 feedReplicationBacklog(aux,len+3); 229 230 for (j = 0; j < argc; j++) { 231 long objlen = stringObjectLen(argv[j]); 232 233 /* We need to feed the buffer with the object as a bulk reply 234 * not just as a plain string, so create the $..CRLF payload len 235 * and add the final CRLF */ 236 aux[0] = '$'; 237 len = ll2string(aux+1,sizeof(aux)-1,objlen); 238 aux[len+1] = '\r'; 239 aux[len+2] = '\n'; 240 feedReplicationBacklog(aux,len+3); 241 feedReplicationBacklogWithObject(argv[j]); 242 feedReplicationBacklog(aux+len+1,2); 243 } 244 } 245 246 /* Write the command to every slave. */ 247 listRewind(server.slaves,&li); 248 while((ln = listNext(&li))) { 249 client *slave = ln->value; 250 251 /* Don't feed slaves that are still waiting for BGSAVE to start */ 252 if (slave->replstate == SLAVE_STATE_WAIT_BGSAVE_START) continue; 253 254 /* Feed slaves that are waiting for the initial SYNC (so these commands 255 * are queued in the output buffer until the initial SYNC completes), 256 * or are already in sync with the master. */ 257 258 /* Add the multi bulk length. */ 259 addReplyMultiBulkLen(slave,argc); 260 261 /* Finally any additional argument that was not stored inside the 262 * static buffer if any (from j to argc). */ 263 for (j = 0; j < argc; j++) 264 addReplyBulk(slave,argv[j]); 265 } 266 } 267 268 void replicationFeedMonitors(client *c, list *monitors, int dictid, robj **argv, int argc) { 269 listNode *ln; 270 listIter li; 271 int j; 272 sds cmdrepr = sdsnew("+"); 273 robj *cmdobj; 274 struct timeval tv; 275 276 gettimeofday(&tv,NULL); 277 cmdrepr = sdscatprintf(cmdrepr,"%ld.%06ld ",(long)tv.tv_sec,(long)tv.tv_usec); 278 if (c->flags & CLIENT_LUA) { 279 cmdrepr = sdscatprintf(cmdrepr,"[%d lua] ",dictid); 280 } else if (c->flags & CLIENT_UNIX_SOCKET) { 281 cmdrepr = sdscatprintf(cmdrepr,"[%d unix:%s] ",dictid,server.unixsocket); 282 } else { 283 cmdrepr = sdscatprintf(cmdrepr,"[%d %s] ",dictid,getClientPeerId(c)); 284 } 285 286 for (j = 0; j < argc; j++) { 287 if (argv[j]->encoding == OBJ_ENCODING_INT) { 288 cmdrepr = sdscatprintf(cmdrepr, "\"%ld\"", (long)argv[j]->ptr); 289 } else { 290 cmdrepr = sdscatrepr(cmdrepr,(char*)argv[j]->ptr, 291 sdslen(argv[j]->ptr)); 292 } 293 if (j != argc-1) 294 cmdrepr = sdscatlen(cmdrepr," ",1); 295 } 296 cmdrepr = sdscatlen(cmdrepr,"\r\n",2); 297 cmdobj = createObject(OBJ_STRING,cmdrepr); 298 299 listRewind(monitors,&li); 300 while((ln = listNext(&li))) { 301 client *monitor = ln->value; 302 addReply(monitor,cmdobj); 303 } 304 decrRefCount(cmdobj); 305 } 306 307 /* Feed the slave 'c' with the replication backlog starting from the 308 * specified 'offset' up to the end of the backlog. */ 309 long long addReplyReplicationBacklog(client *c, long long offset) { 310 long long j, skip, len; 311 312 serverLog(LL_DEBUG, "[PSYNC] Slave request offset: %lld", offset); 313 314 if (server.repl_backlog_histlen == 0) { 315 serverLog(LL_DEBUG, "[PSYNC] Backlog history len is zero"); 316 return 0; 317 } 318 319 serverLog(LL_DEBUG, "[PSYNC] Backlog size: %lld", 320 server.repl_backlog_size); 321 serverLog(LL_DEBUG, "[PSYNC] First byte: %lld", 322 server.repl_backlog_off); 323 serverLog(LL_DEBUG, "[PSYNC] History len: %lld", 324 server.repl_backlog_histlen); 325 serverLog(LL_DEBUG, "[PSYNC] Current index: %lld", 326 server.repl_backlog_idx); 327 328 /* Compute the amount of bytes we need to discard. */ 329 skip = offset - server.repl_backlog_off; 330 serverLog(LL_DEBUG, "[PSYNC] Skipping: %lld", skip); 331 332 /* Point j to the oldest byte, that is actaully our 333 * server.repl_backlog_off byte. */ 334 j = (server.repl_backlog_idx + 335 (server.repl_backlog_size-server.repl_backlog_histlen)) % 336 server.repl_backlog_size; 337 serverLog(LL_DEBUG, "[PSYNC] Index of first byte: %lld", j); 338 339 /* Discard the amount of data to seek to the specified 'offset'. */ 340 j = (j + skip) % server.repl_backlog_size; 341 342 /* Feed slave with data. Since it is a circular buffer we have to 343 * split the reply in two parts if we are cross-boundary. */ 344 len = server.repl_backlog_histlen - skip; 345 serverLog(LL_DEBUG, "[PSYNC] Reply total length: %lld", len); 346 while(len) { 347 long long thislen = 348 ((server.repl_backlog_size - j) < len) ? 349 (server.repl_backlog_size - j) : len; 350 351 serverLog(LL_DEBUG, "[PSYNC] addReply() length: %lld", thislen); 352 addReplySds(c,sdsnewlen(server.repl_backlog + j, thislen)); 353 len -= thislen; 354 j = 0; 355 } 356 return server.repl_backlog_histlen - skip; 357 } 358 359 /* Return the offset to provide as reply to the PSYNC command received 360 * from the slave. The returned value is only valid immediately after 361 * the BGSAVE process started and before executing any other command 362 * from clients. */ 363 long long getPsyncInitialOffset(void) { 364 long long psync_offset = server.master_repl_offset; 365 /* Add 1 to psync_offset if it the replication backlog does not exists 366 * as when it will be created later we'll increment the offset by one. */ 367 if (server.repl_backlog == NULL) psync_offset++; 368 return psync_offset; 369 } 370 371 /* Send a FULLRESYNC reply in the specific case of a full resynchronization, 372 * as a side effect setup the slave for a full sync in different ways: 373 * 374 * 1) Remember, into the slave client structure, the offset we sent 375 * here, so that if new slaves will later attach to the same 376 * background RDB saving process (by duplicating this client output 377 * buffer), we can get the right offset from this slave. 378 * 2) Set the replication state of the slave to WAIT_BGSAVE_END so that 379 * we start accumulating differences from this point. 380 * 3) Force the replication stream to re-emit a SELECT statement so 381 * the new slave incremental differences will start selecting the 382 * right database number. 383 * 384 * Normally this function should be called immediately after a successful 385 * BGSAVE for replication was started, or when there is one already in 386 * progress that we attached our slave to. */ 387 int replicationSetupSlaveForFullResync(client *slave, long long offset) { 388 char buf[128]; 389 int buflen; 390 391 slave->psync_initial_offset = offset; 392 slave->replstate = SLAVE_STATE_WAIT_BGSAVE_END; 393 /* We are going to accumulate the incremental changes for this 394 * slave as well. Set slaveseldb to -1 in order to force to re-emit 395 * a SLEECT statement in the replication stream. */ 396 server.slaveseldb = -1; 397 398 /* Don't send this reply to slaves that approached us with 399 * the old SYNC command. */ 400 if (!(slave->flags & CLIENT_PRE_PSYNC)) { 401 buflen = snprintf(buf,sizeof(buf),"+FULLRESYNC %s %lld\r\n", 402 server.runid,offset); 403 if (write(slave->fd,buf,buflen) != buflen) { 404 freeClientAsync(slave); 405 return C_ERR; 406 } 407 } 408 return C_OK; 409 } 410 411 /* This function handles the PSYNC command from the point of view of a 412 * master receiving a request for partial resynchronization. 413 * 414 * On success return C_OK, otherwise C_ERR is returned and we proceed 415 * with the usual full resync. */ 416 int masterTryPartialResynchronization(client *c) { 417 long long psync_offset, psync_len; 418 char *master_runid = c->argv[1]->ptr; 419 char buf[128]; 420 int buflen; 421 422 /* Is the runid of this master the same advertised by the wannabe slave 423 * via PSYNC? If runid changed this master is a different instance and 424 * there is no way to continue. */ 425 if (strcasecmp(master_runid, server.runid)) { 426 /* Run id "?" is used by slaves that want to force a full resync. */ 427 if (master_runid[0] != '?') { 428 serverLog(LL_NOTICE,"Partial resynchronization not accepted: " 429 "Runid mismatch (Client asked for runid '%s', my runid is '%s')", 430 master_runid, server.runid); 431 } else { 432 serverLog(LL_NOTICE,"Full resync requested by slave %s", 433 replicationGetSlaveName(c)); 434 } 435 goto need_full_resync; 436 } 437 438 /* We still have the data our slave is asking for? */ 439 if (getLongLongFromObjectOrReply(c,c->argv[2],&psync_offset,NULL) != 440 C_OK) goto need_full_resync; 441 if (!server.repl_backlog || 442 psync_offset < server.repl_backlog_off || 443 psync_offset > (server.repl_backlog_off + server.repl_backlog_histlen)) 444 { 445 serverLog(LL_NOTICE, 446 "Unable to partial resync with slave %s for lack of backlog (Slave request was: %lld).", replicationGetSlaveName(c), psync_offset); 447 if (psync_offset > server.master_repl_offset) { 448 serverLog(LL_WARNING, 449 "Warning: slave %s tried to PSYNC with an offset that is greater than the master replication offset.", replicationGetSlaveName(c)); 450 } 451 goto need_full_resync; 452 } 453 454 /* If we reached this point, we are able to perform a partial resync: 455 * 1) Set client state to make it a slave. 456 * 2) Inform the client we can continue with +CONTINUE 457 * 3) Send the backlog data (from the offset to the end) to the slave. */ 458 c->flags |= CLIENT_SLAVE; 459 c->replstate = SLAVE_STATE_ONLINE; 460 c->repl_ack_time = server.unixtime; 461 c->repl_put_online_on_ack = 0; 462 listAddNodeTail(server.slaves,c); 463 /* We can't use the connection buffers since they are used to accumulate 464 * new commands at this stage. But we are sure the socket send buffer is 465 * empty so this write will never fail actually. */ 466 buflen = snprintf(buf,sizeof(buf),"+CONTINUE\r\n"); 467 if (write(c->fd,buf,buflen) != buflen) { 468 freeClientAsync(c); 469 return C_OK; 470 } 471 psync_len = addReplyReplicationBacklog(c,psync_offset); 472 serverLog(LL_NOTICE, 473 "Partial resynchronization request from %s accepted. Sending %lld bytes of backlog starting from offset %lld.", 474 replicationGetSlaveName(c), 475 psync_len, psync_offset); 476 /* Note that we don't need to set the selected DB at server.slaveseldb 477 * to -1 to force the master to emit SELECT, since the slave already 478 * has this state from the previous connection with the master. */ 479 480 refreshGoodSlavesCount(); 481 return C_OK; /* The caller can return, no full resync needed. */ 482 483 need_full_resync: 484 /* We need a full resync for some reason... Note that we can't 485 * reply to PSYNC right now if a full SYNC is needed. The reply 486 * must include the master offset at the time the RDB file we transfer 487 * is generated, so we need to delay the reply to that moment. */ 488 return C_ERR; 489 } 490 491 /* Start a BGSAVE for replication goals, which is, selecting the disk or 492 * socket target depending on the configuration, and making sure that 493 * the script cache is flushed before to start. 494 * 495 * The mincapa argument is the bitwise AND among all the slaves capabilities 496 * of the slaves waiting for this BGSAVE, so represents the slave capabilities 497 * all the slaves support. Can be tested via SLAVE_CAPA_* macros. 498 * 499 * Side effects, other than starting a BGSAVE: 500 * 501 * 1) Handle the slaves in WAIT_START state, by preparing them for a full 502 * sync if the BGSAVE was succesfully started, or sending them an error 503 * and dropping them from the list of slaves. 504 * 505 * 2) Flush the Lua scripting script cache if the BGSAVE was actually 506 * started. 507 * 508 * Returns C_OK on success or C_ERR otherwise. */ 509 int startBgsaveForReplication(int mincapa) { 510 int retval; 511 int socket_target = server.repl_diskless_sync && (mincapa & SLAVE_CAPA_EOF); 512 listIter li; 513 listNode *ln; 514 515 serverLog(LL_NOTICE,"Starting BGSAVE for SYNC with target: %s", 516 socket_target ? "slaves sockets" : "disk"); 517 518 if (socket_target) 519 retval = rdbSaveToSlavesSockets(); 520 else 521 retval = rdbSaveBackground(server.rdb_filename); 522 523 /* If we failed to BGSAVE, remove the slaves waiting for a full 524 * resynchorinization from the list of salves, inform them with 525 * an error about what happened, close the connection ASAP. */ 526 if (retval == C_ERR) { 527 serverLog(LL_WARNING,"BGSAVE for replication failed"); 528 listRewind(server.slaves,&li); 529 while((ln = listNext(&li))) { 530 client *slave = ln->value; 531 532 if (slave->replstate == SLAVE_STATE_WAIT_BGSAVE_START) { 533 slave->flags &= ~CLIENT_SLAVE; 534 listDelNode(server.slaves,ln); 535 addReplyError(slave, 536 "BGSAVE failed, replication can't continue"); 537 slave->flags |= CLIENT_CLOSE_AFTER_REPLY; 538 } 539 } 540 return retval; 541 } 542 543 /* If the target is socket, rdbSaveToSlavesSockets() already setup 544 * the salves for a full resync. Otherwise for disk target do it now.*/ 545 if (!socket_target) { 546 listRewind(server.slaves,&li); 547 while((ln = listNext(&li))) { 548 client *slave = ln->value; 549 550 if (slave->replstate == SLAVE_STATE_WAIT_BGSAVE_START) { 551 replicationSetupSlaveForFullResync(slave, 552 getPsyncInitialOffset()); 553 } 554 } 555 } 556 557 /* Flush the script cache, since we need that slave differences are 558 * accumulated without requiring slaves to match our cached scripts. */ 559 if (retval == C_OK) replicationScriptCacheFlush(); 560 return retval; 561 } 562 563 /* SYNC and PSYNC command implemenation. */ 564 void syncCommand(client *c) { 565 /* ignore SYNC if already slave or in monitor mode */ 566 if (c->flags & CLIENT_SLAVE) return; 567 568 /* Refuse SYNC requests if we are a slave but the link with our master 569 * is not ok... */ 570 if (server.masterhost && server.repl_state != REPL_STATE_CONNECTED) { 571 addReplyError(c,"Can't SYNC while not connected with my master"); 572 return; 573 } 574 575 /* SYNC can't be issued when the server has pending data to send to 576 * the client about already issued commands. We need a fresh reply 577 * buffer registering the differences between the BGSAVE and the current 578 * dataset, so that we can copy to other slaves if needed. */ 579 if (clientHasPendingReplies(c)) { 580 addReplyError(c,"SYNC and PSYNC are invalid with pending output"); 581 return; 582 } 583 584 serverLog(LL_NOTICE,"Slave %s asks for synchronization", 585 replicationGetSlaveName(c)); 586 587 /* Try a partial resynchronization if this is a PSYNC command. 588 * If it fails, we continue with usual full resynchronization, however 589 * when this happens masterTryPartialResynchronization() already 590 * replied with: 591 * 592 * +FULLRESYNC <runid> <offset> 593 * 594 * So the slave knows the new runid and offset to try a PSYNC later 595 * if the connection with the master is lost. */ 596 if (!strcasecmp(c->argv[0]->ptr,"psync")) { 597 if (masterTryPartialResynchronization(c) == C_OK) { 598 server.stat_sync_partial_ok++; 599 return; /* No full resync needed, return. */ 600 } else { 601 char *master_runid = c->argv[1]->ptr; 602 603 /* Increment stats for failed PSYNCs, but only if the 604 * runid is not "?", as this is used by slaves to force a full 605 * resync on purpose when they are not albe to partially 606 * resync. */ 607 if (master_runid[0] != '?') server.stat_sync_partial_err++; 608 } 609 } else { 610 /* If a slave uses SYNC, we are dealing with an old implementation 611 * of the replication protocol (like redis-cli --slave). Flag the client 612 * so that we don't expect to receive REPLCONF ACK feedbacks. */ 613 c->flags |= CLIENT_PRE_PSYNC; 614 } 615 616 /* Full resynchronization. */ 617 server.stat_sync_full++; 618 619 /* Setup the slave as one waiting for BGSAVE to start. The following code 620 * paths will change the state if we handle the slave differently. */ 621 c->replstate = SLAVE_STATE_WAIT_BGSAVE_START; 622 if (server.repl_disable_tcp_nodelay) 623 anetDisableTcpNoDelay(NULL, c->fd); /* Non critical if it fails. */ 624 c->repldbfd = -1; 625 c->flags |= CLIENT_SLAVE; 626 listAddNodeTail(server.slaves,c); 627 628 /* CASE 1: BGSAVE is in progress, with disk target. */ 629 if (server.rdb_child_pid != -1 && 630 server.rdb_child_type == RDB_CHILD_TYPE_DISK) 631 { 632 /* Ok a background save is in progress. Let's check if it is a good 633 * one for replication, i.e. if there is another slave that is 634 * registering differences since the server forked to save. */ 635 client *slave; 636 listNode *ln; 637 listIter li; 638 639 listRewind(server.slaves,&li); 640 while((ln = listNext(&li))) { 641 slave = ln->value; 642 if (slave->replstate == SLAVE_STATE_WAIT_BGSAVE_END) break; 643 } 644 /* To attach this slave, we check that it has at least all the 645 * capabilities of the slave that triggered the current BGSAVE. */ 646 if (ln && ((c->slave_capa & slave->slave_capa) == slave->slave_capa)) { 647 /* Perfect, the server is already registering differences for 648 * another slave. Set the right state, and copy the buffer. */ 649 copyClientOutputBuffer(c,slave); 650 replicationSetupSlaveForFullResync(c,slave->psync_initial_offset); 651 serverLog(LL_NOTICE,"Waiting for end of BGSAVE for SYNC"); 652 } else { 653 /* No way, we need to wait for the next BGSAVE in order to 654 * register differences. */ 655 serverLog(LL_NOTICE,"Can't attach the slave to the current BGSAVE. Waiting for next BGSAVE for SYNC"); 656 } 657 658 /* CASE 2: BGSAVE is in progress, with socket target. */ 659 } else if (server.rdb_child_pid != -1 && 660 server.rdb_child_type == RDB_CHILD_TYPE_SOCKET) 661 { 662 /* There is an RDB child process but it is writing directly to 663 * children sockets. We need to wait for the next BGSAVE 664 * in order to synchronize. */ 665 serverLog(LL_NOTICE,"Current BGSAVE has socket target. Waiting for next BGSAVE for SYNC"); 666 667 /* CASE 3: There is no BGSAVE is progress. */ 668 } else { 669 if (server.repl_diskless_sync && (c->slave_capa & SLAVE_CAPA_EOF)) { 670 /* Diskless replication RDB child is created inside 671 * replicationCron() since we want to delay its start a 672 * few seconds to wait for more slaves to arrive. */ 673 if (server.repl_diskless_sync_delay) 674 serverLog(LL_NOTICE,"Delay next BGSAVE for diskless SYNC"); 675 } else { 676 /* Target is disk (or the slave is not capable of supporting 677 * diskless replication) and we don't have a BGSAVE in progress, 678 * let's start one. */ 679 if (server.aof_child_pid != -1) { 680 startBgsaveForReplication(c->slave_capa); 681 } else { 682 serverLog(LL_NOTICE, 683 "No BGSAVE in progress, but an AOF rewrite is active. " 684 "BGSAVE for replication delayed"); 685 } 686 } 687 } 688 689 if (listLength(server.slaves) == 1 && server.repl_backlog == NULL) 690 createReplicationBacklog(); 691 return; 692 } 693 694 /* REPLCONF <option> <value> <option> <value> ... 695 * This command is used by a slave in order to configure the replication 696 * process before starting it with the SYNC command. 697 * 698 * Currently the only use of this command is to communicate to the master 699 * what is the listening port of the Slave redis instance, so that the 700 * master can accurately list slaves and their listening ports in 701 * the INFO output. 702 * 703 * In the future the same command can be used in order to configure 704 * the replication to initiate an incremental replication instead of a 705 * full resync. */ 706 void replconfCommand(client *c) { 707 int j; 708 709 if ((c->argc % 2) == 0) { 710 /* Number of arguments must be odd to make sure that every 711 * option has a corresponding value. */ 712 addReply(c,shared.syntaxerr); 713 return; 714 } 715 716 /* Process every option-value pair. */ 717 for (j = 1; j < c->argc; j+=2) { 718 if (!strcasecmp(c->argv[j]->ptr,"listening-port")) { 719 long port; 720 721 if ((getLongFromObjectOrReply(c,c->argv[j+1], 722 &port,NULL) != C_OK)) 723 return; 724 c->slave_listening_port = port; 725 } else if (!strcasecmp(c->argv[j]->ptr,"ip-address")) { 726 sds ip = c->argv[j+1]->ptr; 727 if (sdslen(ip) < sizeof(c->slave_ip)) { 728 memcpy(c->slave_ip,ip,sdslen(ip)+1); 729 } else { 730 addReplyErrorFormat(c,"REPLCONF ip-address provided by " 731 "slave instance is too long: %zd bytes", sdslen(ip)); 732 return; 733 } 734 } else if (!strcasecmp(c->argv[j]->ptr,"capa")) { 735 /* Ignore capabilities not understood by this master. */ 736 if (!strcasecmp(c->argv[j+1]->ptr,"eof")) 737 c->slave_capa |= SLAVE_CAPA_EOF; 738 } else if (!strcasecmp(c->argv[j]->ptr,"ack")) { 739 /* REPLCONF ACK is used by slave to inform the master the amount 740 * of replication stream that it processed so far. It is an 741 * internal only command that normal clients should never use. */ 742 long long offset; 743 744 if (!(c->flags & CLIENT_SLAVE)) return; 745 if ((getLongLongFromObject(c->argv[j+1], &offset) != C_OK)) 746 return; 747 if (offset > c->repl_ack_off) 748 c->repl_ack_off = offset; 749 c->repl_ack_time = server.unixtime; 750 /* If this was a diskless replication, we need to really put 751 * the slave online when the first ACK is received (which 752 * confirms slave is online and ready to get more data). */ 753 if (c->repl_put_online_on_ack && c->replstate == SLAVE_STATE_ONLINE) 754 putSlaveOnline(c); 755 /* Note: this command does not reply anything! */ 756 return; 757 } else if (!strcasecmp(c->argv[j]->ptr,"getack")) { 758 /* REPLCONF GETACK is used in order to request an ACK ASAP 759 * to the slave. */ 760 if (server.masterhost && server.master) replicationSendAck(); 761 /* Note: this command does not reply anything! */ 762 } else { 763 addReplyErrorFormat(c,"Unrecognized REPLCONF option: %s", 764 (char*)c->argv[j]->ptr); 765 return; 766 } 767 } 768 addReply(c,shared.ok); 769 } 770 771 /* This function puts a slave in the online state, and should be called just 772 * after a slave received the RDB file for the initial synchronization, and 773 * we are finally ready to send the incremental stream of commands. 774 * 775 * It does a few things: 776 * 777 * 1) Put the slave in ONLINE state (useless when the function is called 778 * because state is already ONLINE but repl_put_online_on_ack is true). 779 * 2) Make sure the writable event is re-installed, since calling the SYNC 780 * command disables it, so that we can accumulate output buffer without 781 * sending it to the slave. 782 * 3) Update the count of good slaves. */ 783 void putSlaveOnline(client *slave) { 784 slave->replstate = SLAVE_STATE_ONLINE; 785 slave->repl_put_online_on_ack = 0; 786 slave->repl_ack_time = server.unixtime; /* Prevent false timeout. */ 787 if (aeCreateFileEvent(server.el, slave->fd, AE_WRITABLE, 788 sendReplyToClient, slave) == AE_ERR) { 789 serverLog(LL_WARNING,"Unable to register writable event for slave bulk transfer: %s", strerror(errno)); 790 freeClient(slave); 791 return; 792 } 793 refreshGoodSlavesCount(); 794 serverLog(LL_NOTICE,"Synchronization with slave %s succeeded", 795 replicationGetSlaveName(slave)); 796 } 797 798 void sendBulkToSlave(aeEventLoop *el, int fd, void *privdata, int mask) { 799 client *slave = privdata; 800 UNUSED(el); 801 UNUSED(mask); 802 char buf[PROTO_IOBUF_LEN]; 803 ssize_t nwritten, buflen; 804 805 /* Before sending the RDB file, we send the preamble as configured by the 806 * replication process. Currently the preamble is just the bulk count of 807 * the file in the form "$<length>\r\n". */ 808 if (slave->replpreamble) { 809 nwritten = write(fd,slave->replpreamble,sdslen(slave->replpreamble)); 810 if (nwritten == -1) { 811 serverLog(LL_VERBOSE,"Write error sending RDB preamble to slave: %s", 812 strerror(errno)); 813 freeClient(slave); 814 return; 815 } 816 server.stat_net_output_bytes += nwritten; 817 sdsrange(slave->replpreamble,nwritten,-1); 818 if (sdslen(slave->replpreamble) == 0) { 819 sdsfree(slave->replpreamble); 820 slave->replpreamble = NULL; 821 /* fall through sending data. */ 822 } else { 823 return; 824 } 825 } 826 827 /* If the preamble was already transfered, send the RDB bulk data. */ 828 lseek(slave->repldbfd,slave->repldboff,SEEK_SET); 829 buflen = read(slave->repldbfd,buf,PROTO_IOBUF_LEN); 830 if (buflen <= 0) { 831 serverLog(LL_WARNING,"Read error sending DB to slave: %s", 832 (buflen == 0) ? "premature EOF" : strerror(errno)); 833 freeClient(slave); 834 return; 835 } 836 if ((nwritten = write(fd,buf,buflen)) == -1) { 837 if (errno != EAGAIN) { 838 serverLog(LL_WARNING,"Write error sending DB to slave: %s", 839 strerror(errno)); 840 freeClient(slave); 841 } 842 return; 843 } 844 slave->repldboff += nwritten; 845 server.stat_net_output_bytes += nwritten; 846 if (slave->repldboff == slave->repldbsize) { 847 close(slave->repldbfd); 848 slave->repldbfd = -1; 849 aeDeleteFileEvent(server.el,slave->fd,AE_WRITABLE); 850 putSlaveOnline(slave); 851 } 852 } 853 854 /* This function is called at the end of every background saving, 855 * or when the replication RDB transfer strategy is modified from 856 * disk to socket or the other way around. 857 * 858 * The goal of this function is to handle slaves waiting for a successful 859 * background saving in order to perform non-blocking synchronization, and 860 * to schedule a new BGSAVE if there are slaves that attached while a 861 * BGSAVE was in progress, but it was not a good one for replication (no 862 * other slave was accumulating differences). 863 * 864 * The argument bgsaveerr is C_OK if the background saving succeeded 865 * otherwise C_ERR is passed to the function. 866 * The 'type' argument is the type of the child that terminated 867 * (if it had a disk or socket target). */ 868 void updateSlavesWaitingBgsave(int bgsaveerr, int type) { 869 listNode *ln; 870 int startbgsave = 0; 871 int mincapa = -1; 872 listIter li; 873 874 listRewind(server.slaves,&li); 875 while((ln = listNext(&li))) { 876 client *slave = ln->value; 877 878 if (slave->replstate == SLAVE_STATE_WAIT_BGSAVE_START) { 879 startbgsave = 1; 880 mincapa = (mincapa == -1) ? slave->slave_capa : 881 (mincapa & slave->slave_capa); 882 } else if (slave->replstate == SLAVE_STATE_WAIT_BGSAVE_END) { 883 struct redis_stat buf; 884 885 /* If this was an RDB on disk save, we have to prepare to send 886 * the RDB from disk to the slave socket. Otherwise if this was 887 * already an RDB -> Slaves socket transfer, used in the case of 888 * diskless replication, our work is trivial, we can just put 889 * the slave online. */ 890 if (type == RDB_CHILD_TYPE_SOCKET) { 891 serverLog(LL_NOTICE, 892 "Streamed RDB transfer with slave %s succeeded (socket). Waiting for REPLCONF ACK from slave to enable streaming", 893 replicationGetSlaveName(slave)); 894 /* Note: we wait for a REPLCONF ACK message from slave in 895 * order to really put it online (install the write handler 896 * so that the accumulated data can be transfered). However 897 * we change the replication state ASAP, since our slave 898 * is technically online now. */ 899 slave->replstate = SLAVE_STATE_ONLINE; 900 slave->repl_put_online_on_ack = 1; 901 slave->repl_ack_time = server.unixtime; /* Timeout otherwise. */ 902 } else { 903 if (bgsaveerr != C_OK) { 904 freeClient(slave); 905 serverLog(LL_WARNING,"SYNC failed. BGSAVE child returned an error"); 906 continue; 907 } 908 if ((slave->repldbfd = open(server.rdb_filename,O_RDONLY)) == -1 || 909 redis_fstat(slave->repldbfd,&buf) == -1) { 910 freeClient(slave); 911 serverLog(LL_WARNING,"SYNC failed. Can't open/stat DB after BGSAVE: %s", strerror(errno)); 912 continue; 913 } 914 slave->repldboff = 0; 915 slave->repldbsize = buf.st_size; 916 slave->replstate = SLAVE_STATE_SEND_BULK; 917 slave->replpreamble = sdscatprintf(sdsempty(),"$%lld\r\n", 918 (unsigned long long) slave->repldbsize); 919 920 aeDeleteFileEvent(server.el,slave->fd,AE_WRITABLE); 921 if (aeCreateFileEvent(server.el, slave->fd, AE_WRITABLE, sendBulkToSlave, slave) == AE_ERR) { 922 freeClient(slave); 923 continue; 924 } 925 } 926 } 927 } 928 if (startbgsave) startBgsaveForReplication(mincapa); 929 } 930 931 /* ----------------------------------- SLAVE -------------------------------- */ 932 933 /* Returns 1 if the given replication state is a handshake state, 934 * 0 otherwise. */ 935 int slaveIsInHandshakeState(void) { 936 return server.repl_state >= REPL_STATE_RECEIVE_PONG && 937 server.repl_state <= REPL_STATE_RECEIVE_PSYNC; 938 } 939 940 /* Avoid the master to detect the slave is timing out while loading the 941 * RDB file in initial synchronization. We send a single newline character 942 * that is valid protocol but is guaranteed to either be sent entierly or 943 * not, since the byte is indivisible. 944 * 945 * The function is called in two contexts: while we flush the current 946 * data with emptyDb(), and while we load the new data received as an 947 * RDB file from the master. */ 948 void replicationSendNewlineToMaster(void) { 949 static time_t newline_sent; 950 if (time(NULL) != newline_sent) { 951 newline_sent = time(NULL); 952 if (write(server.repl_transfer_s,"\n",1) == -1) { 953 /* Pinging back in this stage is best-effort. */ 954 } 955 } 956 } 957 958 /* Callback used by emptyDb() while flushing away old data to load 959 * the new dataset received by the master. */ 960 void replicationEmptyDbCallback(void *privdata) { 961 UNUSED(privdata); 962 replicationSendNewlineToMaster(); 963 } 964 965 /* Once we have a link with the master and the synchroniziation was 966 * performed, this function materializes the master client we store 967 * at server.master, starting from the specified file descriptor. */ 968 void replicationCreateMasterClient(int fd) { 969 server.master = createClient(fd); 970 server.master->flags |= CLIENT_MASTER; 971 server.master->authenticated = 1; 972 server.repl_state = REPL_STATE_CONNECTED; 973 server.master->reploff = server.repl_master_initial_offset; 974 memcpy(server.master->replrunid, server.repl_master_runid, 975 sizeof(server.repl_master_runid)); 976 /* If master offset is set to -1, this master is old and is not 977 * PSYNC capable, so we flag it accordingly. */ 978 if (server.master->reploff == -1) 979 server.master->flags |= CLIENT_PRE_PSYNC; 980 } 981 982 /* Asynchronously read the SYNC payload we receive from a master */ 983 #define REPL_MAX_WRITTEN_BEFORE_FSYNC (1024*1024*8) /* 8 MB */ 984 void readSyncBulkPayload(aeEventLoop *el, int fd, void *privdata, int mask) { 985 char buf[4096]; 986 ssize_t nread, readlen; 987 off_t left; 988 UNUSED(el); 989 UNUSED(privdata); 990 UNUSED(mask); 991 992 /* Static vars used to hold the EOF mark, and the last bytes received 993 * form the server: when they match, we reached the end of the transfer. */ 994 static char eofmark[CONFIG_RUN_ID_SIZE]; 995 static char lastbytes[CONFIG_RUN_ID_SIZE]; 996 static int usemark = 0; 997 998 /* If repl_transfer_size == -1 we still have to read the bulk length 999 * from the master reply. */ 1000 if (server.repl_transfer_size == -1) { 1001 if (syncReadLine(fd,buf,1024,server.repl_syncio_timeout*1000) == -1) { 1002 serverLog(LL_WARNING, 1003 "I/O error reading bulk count from MASTER: %s", 1004 strerror(errno)); 1005 goto error; 1006 } 1007 1008 if (buf[0] == '-') { 1009 serverLog(LL_WARNING, 1010 "MASTER aborted replication with an error: %s", 1011 buf+1); 1012 goto error; 1013 } else if (buf[0] == '\0') { 1014 /* At this stage just a newline works as a PING in order to take 1015 * the connection live. So we refresh our last interaction 1016 * timestamp. */ 1017 server.repl_transfer_lastio = server.unixtime; 1018 return; 1019 } else if (buf[0] != '$') { 1020 serverLog(LL_WARNING,"Bad protocol from MASTER, the first byte is not '$' (we received '%s'), are you sure the host and port are right?", buf); 1021 goto error; 1022 } 1023 1024 /* There are two possible forms for the bulk payload. One is the 1025 * usual $<count> bulk format. The other is used for diskless transfers 1026 * when the master does not know beforehand the size of the file to 1027 * transfer. In the latter case, the following format is used: 1028 * 1029 * $EOF:<40 bytes delimiter> 1030 * 1031 * At the end of the file the announced delimiter is transmitted. The 1032 * delimiter is long and random enough that the probability of a 1033 * collision with the actual file content can be ignored. */ 1034 if (strncmp(buf+1,"EOF:",4) == 0 && strlen(buf+5) >= CONFIG_RUN_ID_SIZE) { 1035 usemark = 1; 1036 memcpy(eofmark,buf+5,CONFIG_RUN_ID_SIZE); 1037 memset(lastbytes,0,CONFIG_RUN_ID_SIZE); 1038 /* Set any repl_transfer_size to avoid entering this code path 1039 * at the next call. */ 1040 server.repl_transfer_size = 0; 1041 serverLog(LL_NOTICE, 1042 "MASTER <-> SLAVE sync: receiving streamed RDB from master"); 1043 } else { 1044 usemark = 0; 1045 server.repl_transfer_size = strtol(buf+1,NULL,10); 1046 serverLog(LL_NOTICE, 1047 "MASTER <-> SLAVE sync: receiving %lld bytes from master", 1048 (long long) server.repl_transfer_size); 1049 } 1050 return; 1051 } 1052 1053 /* Read bulk data */ 1054 if (usemark) { 1055 readlen = sizeof(buf); 1056 } else { 1057 left = server.repl_transfer_size - server.repl_transfer_read; 1058 readlen = (left < (signed)sizeof(buf)) ? left : (signed)sizeof(buf); 1059 } 1060 1061 nread = read(fd,buf,readlen); 1062 if (nread <= 0) { 1063 serverLog(LL_WARNING,"I/O error trying to sync with MASTER: %s", 1064 (nread == -1) ? strerror(errno) : "connection lost"); 1065 cancelReplicationHandshake(); 1066 return; 1067 } 1068 server.stat_net_input_bytes += nread; 1069 1070 /* When a mark is used, we want to detect EOF asap in order to avoid 1071 * writing the EOF mark into the file... */ 1072 int eof_reached = 0; 1073 1074 if (usemark) { 1075 /* Update the last bytes array, and check if it matches our delimiter.*/ 1076 if (nread >= CONFIG_RUN_ID_SIZE) { 1077 memcpy(lastbytes,buf+nread-CONFIG_RUN_ID_SIZE,CONFIG_RUN_ID_SIZE); 1078 } else { 1079 int rem = CONFIG_RUN_ID_SIZE-nread; 1080 memmove(lastbytes,lastbytes+nread,rem); 1081 memcpy(lastbytes+rem,buf,nread); 1082 } 1083 if (memcmp(lastbytes,eofmark,CONFIG_RUN_ID_SIZE) == 0) eof_reached = 1; 1084 } 1085 1086 server.repl_transfer_lastio = server.unixtime; 1087 if (write(server.repl_transfer_fd,buf,nread) != nread) { 1088 serverLog(LL_WARNING,"Write error or short write writing to the DB dump file needed for MASTER <-> SLAVE synchronization: %s", strerror(errno)); 1089 goto error; 1090 } 1091 server.repl_transfer_read += nread; 1092 1093 /* Delete the last 40 bytes from the file if we reached EOF. */ 1094 if (usemark && eof_reached) { 1095 if (ftruncate(server.repl_transfer_fd, 1096 server.repl_transfer_read - CONFIG_RUN_ID_SIZE) == -1) 1097 { 1098 serverLog(LL_WARNING,"Error truncating the RDB file received from the master for SYNC: %s", strerror(errno)); 1099 goto error; 1100 } 1101 } 1102 1103 /* Sync data on disk from time to time, otherwise at the end of the transfer 1104 * we may suffer a big delay as the memory buffers are copied into the 1105 * actual disk. */ 1106 if (server.repl_transfer_read >= 1107 server.repl_transfer_last_fsync_off + REPL_MAX_WRITTEN_BEFORE_FSYNC) 1108 { 1109 off_t sync_size = server.repl_transfer_read - 1110 server.repl_transfer_last_fsync_off; 1111 rdb_fsync_range(server.repl_transfer_fd, 1112 server.repl_transfer_last_fsync_off, sync_size); 1113 server.repl_transfer_last_fsync_off += sync_size; 1114 } 1115 1116 /* Check if the transfer is now complete */ 1117 if (!usemark) { 1118 if (server.repl_transfer_read == server.repl_transfer_size) 1119 eof_reached = 1; 1120 } 1121 1122 if (eof_reached) { 1123 if (rename(server.repl_transfer_tmpfile,server.rdb_filename) == -1) { 1124 serverLog(LL_WARNING,"Failed trying to rename the temp DB into dump.rdb in MASTER <-> SLAVE synchronization: %s", strerror(errno)); 1125 cancelReplicationHandshake(); 1126 return; 1127 } 1128 serverLog(LL_NOTICE, "MASTER <-> SLAVE sync: Flushing old data"); 1129 signalFlushedDb(-1); 1130 emptyDb(replicationEmptyDbCallback); 1131 /* Before loading the DB into memory we need to delete the readable 1132 * handler, otherwise it will get called recursively since 1133 * rdbLoad() will call the event loop to process events from time to 1134 * time for non blocking loading. */ 1135 aeDeleteFileEvent(server.el,server.repl_transfer_s,AE_READABLE); 1136 serverLog(LL_NOTICE, "MASTER <-> SLAVE sync: Loading DB in memory"); 1137 if (rdbLoad(server.rdb_filename) != C_OK) { 1138 serverLog(LL_WARNING,"Failed trying to load the MASTER synchronization DB from disk"); 1139 cancelReplicationHandshake(); 1140 return; 1141 } 1142 /* Final setup of the connected slave <- master link */ 1143 zfree(server.repl_transfer_tmpfile); 1144 close(server.repl_transfer_fd); 1145 replicationCreateMasterClient(server.repl_transfer_s); 1146 serverLog(LL_NOTICE, "MASTER <-> SLAVE sync: Finished with success"); 1147 /* Restart the AOF subsystem now that we finished the sync. This 1148 * will trigger an AOF rewrite, and when done will start appending 1149 * to the new file. */ 1150 if (server.aof_state != AOF_OFF) { 1151 int retry = 10; 1152 1153 stopAppendOnly(); 1154 while (retry-- && startAppendOnly() == C_ERR) { 1155 serverLog(LL_WARNING,"Failed enabling the AOF after successful master synchronization! Trying it again in one second."); 1156 sleep(1); 1157 } 1158 if (!retry) { 1159 serverLog(LL_WARNING,"FATAL: this slave instance finished the synchronization with its master, but the AOF can't be turned on. Exiting now."); 1160 exit(1); 1161 } 1162 } 1163 } 1164 1165 return; 1166 1167 error: 1168 cancelReplicationHandshake(); 1169 return; 1170 } 1171 1172 /* Send a synchronous command to the master. Used to send AUTH and 1173 * REPLCONF commands before starting the replication with SYNC. 1174 * 1175 * The command returns an sds string representing the result of the 1176 * operation. On error the first byte is a "-". 1177 */ 1178 #define SYNC_CMD_READ (1<<0) 1179 #define SYNC_CMD_WRITE (1<<1) 1180 #define SYNC_CMD_FULL (SYNC_CMD_READ|SYNC_CMD_WRITE) 1181 char *sendSynchronousCommand(int flags, int fd, ...) { 1182 1183 /* Create the command to send to the master, we use simple inline 1184 * protocol for simplicity as currently we only send simple strings. */ 1185 if (flags & SYNC_CMD_WRITE) { 1186 char *arg; 1187 va_list ap; 1188 sds cmd = sdsempty(); 1189 va_start(ap,fd); 1190 1191 while(1) { 1192 arg = va_arg(ap, char*); 1193 if (arg == NULL) break; 1194 1195 if (sdslen(cmd) != 0) cmd = sdscatlen(cmd," ",1); 1196 cmd = sdscat(cmd,arg); 1197 } 1198 cmd = sdscatlen(cmd,"\r\n",2); 1199 1200 /* Transfer command to the server. */ 1201 if (syncWrite(fd,cmd,sdslen(cmd),server.repl_syncio_timeout*1000) 1202 == -1) 1203 { 1204 sdsfree(cmd); 1205 return sdscatprintf(sdsempty(),"-Writing to master: %s", 1206 strerror(errno)); 1207 } 1208 sdsfree(cmd); 1209 va_end(ap); 1210 } 1211 1212 /* Read the reply from the server. */ 1213 if (flags & SYNC_CMD_READ) { 1214 char buf[256]; 1215 1216 if (syncReadLine(fd,buf,sizeof(buf),server.repl_syncio_timeout*1000) 1217 == -1) 1218 { 1219 return sdscatprintf(sdsempty(),"-Reading from master: %s", 1220 strerror(errno)); 1221 } 1222 server.repl_transfer_lastio = server.unixtime; 1223 return sdsnew(buf); 1224 } 1225 return NULL; 1226 } 1227 1228 /* Try a partial resynchronization with the master if we are about to reconnect. 1229 * If there is no cached master structure, at least try to issue a 1230 * "PSYNC ? -1" command in order to trigger a full resync using the PSYNC 1231 * command in order to obtain the master run id and the master replication 1232 * global offset. 1233 * 1234 * This function is designed to be called from syncWithMaster(), so the 1235 * following assumptions are made: 1236 * 1237 * 1) We pass the function an already connected socket "fd". 1238 * 2) This function does not close the file descriptor "fd". However in case 1239 * of successful partial resynchronization, the function will reuse 1240 * 'fd' as file descriptor of the server.master client structure. 1241 * 1242 * The function is split in two halves: if read_reply is 0, the function 1243 * writes the PSYNC command on the socket, and a new function call is 1244 * needed, with read_reply set to 1, in order to read the reply of the 1245 * command. This is useful in order to support non blocking operations, so 1246 * that we write, return into the event loop, and read when there are data. 1247 * 1248 * When read_reply is 0 the function returns PSYNC_WRITE_ERR if there 1249 * was a write error, or PSYNC_WAIT_REPLY to signal we need another call 1250 * with read_reply set to 1. However even when read_reply is set to 1 1251 * the function may return PSYNC_WAIT_REPLY again to signal there were 1252 * insufficient data to read to complete its work. We should re-enter 1253 * into the event loop and wait in such a case. 1254 * 1255 * The function returns: 1256 * 1257 * PSYNC_CONTINUE: If the PSYNC command succeded and we can continue. 1258 * PSYNC_FULLRESYNC: If PSYNC is supported but a full resync is needed. 1259 * In this case the master run_id and global replication 1260 * offset is saved. 1261 * PSYNC_NOT_SUPPORTED: If the server does not understand PSYNC at all and 1262 * the caller should fall back to SYNC. 1263 * PSYNC_WRITE_ERR: There was an error writing the command to the socket. 1264 * PSYNC_WAIT_REPLY: Call again the function with read_reply set to 1. 1265 * 1266 * Notable side effects: 1267 * 1268 * 1) As a side effect of the function call the function removes the readable 1269 * event handler from "fd", unless the return value is PSYNC_WAIT_REPLY. 1270 * 2) server.repl_master_initial_offset is set to the right value according 1271 * to the master reply. This will be used to populate the 'server.master' 1272 * structure replication offset. 1273 */ 1274 1275 #define PSYNC_WRITE_ERROR 0 1276 #define PSYNC_WAIT_REPLY 1 1277 #define PSYNC_CONTINUE 2 1278 #define PSYNC_FULLRESYNC 3 1279 #define PSYNC_NOT_SUPPORTED 4 1280 int slaveTryPartialResynchronization(int fd, int read_reply) { 1281 char *psync_runid; 1282 char psync_offset[32]; 1283 sds reply; 1284 1285 /* Writing half */ 1286 if (!read_reply) { 1287 /* Initially set repl_master_initial_offset to -1 to mark the current 1288 * master run_id and offset as not valid. Later if we'll be able to do 1289 * a FULL resync using the PSYNC command we'll set the offset at the 1290 * right value, so that this information will be propagated to the 1291 * client structure representing the master into server.master. */ 1292 server.repl_master_initial_offset = -1; 1293 1294 if (server.cached_master) { 1295 psync_runid = server.cached_master->replrunid; 1296 snprintf(psync_offset,sizeof(psync_offset),"%lld", server.cached_master->reploff+1); 1297 serverLog(LL_NOTICE,"Trying a partial resynchronization (request %s:%s).", psync_runid, psync_offset); 1298 } else { 1299 serverLog(LL_NOTICE,"Partial resynchronization not possible (no cached master)"); 1300 psync_runid = "?"; 1301 memcpy(psync_offset,"-1",3); 1302 } 1303 1304 /* Issue the PSYNC command */ 1305 reply = sendSynchronousCommand(SYNC_CMD_WRITE,fd,"PSYNC",psync_runid,psync_offset,NULL); 1306 if (reply != NULL) { 1307 serverLog(LL_WARNING,"Unable to send PSYNC to master: %s",reply); 1308 sdsfree(reply); 1309 aeDeleteFileEvent(server.el,fd,AE_READABLE); 1310 return PSYNC_WRITE_ERROR; 1311 } 1312 return PSYNC_WAIT_REPLY; 1313 } 1314 1315 /* Reading half */ 1316 reply = sendSynchronousCommand(SYNC_CMD_READ,fd,NULL); 1317 if (sdslen(reply) == 0) { 1318 /* The master may send empty newlines after it receives PSYNC 1319 * and before to reply, just to keep the connection alive. */ 1320 sdsfree(reply); 1321 return PSYNC_WAIT_REPLY; 1322 } 1323 1324 aeDeleteFileEvent(server.el,fd,AE_READABLE); 1325 1326 if (!strncmp(reply,"+FULLRESYNC",11)) { 1327 char *runid = NULL, *offset = NULL; 1328 1329 /* FULL RESYNC, parse the reply in order to extract the run id 1330 * and the replication offset. */ 1331 runid = strchr(reply,' '); 1332 if (runid) { 1333 runid++; 1334 offset = strchr(runid,' '); 1335 if (offset) offset++; 1336 } 1337 if (!runid || !offset || (offset-runid-1) != CONFIG_RUN_ID_SIZE) { 1338 serverLog(LL_WARNING, 1339 "Master replied with wrong +FULLRESYNC syntax."); 1340 /* This is an unexpected condition, actually the +FULLRESYNC 1341 * reply means that the master supports PSYNC, but the reply 1342 * format seems wrong. To stay safe we blank the master 1343 * runid to make sure next PSYNCs will fail. */ 1344 memset(server.repl_master_runid,0,CONFIG_RUN_ID_SIZE+1); 1345 } else { 1346 memcpy(server.repl_master_runid, runid, offset-runid-1); 1347 server.repl_master_runid[CONFIG_RUN_ID_SIZE] = '\0'; 1348 server.repl_master_initial_offset = strtoll(offset,NULL,10); 1349 serverLog(LL_NOTICE,"Full resync from master: %s:%lld", 1350 server.repl_master_runid, 1351 server.repl_master_initial_offset); 1352 } 1353 /* We are going to full resync, discard the cached master structure. */ 1354 replicationDiscardCachedMaster(); 1355 sdsfree(reply); 1356 return PSYNC_FULLRESYNC; 1357 } 1358 1359 if (!strncmp(reply,"+CONTINUE",9)) { 1360 /* Partial resync was accepted, set the replication state accordingly */ 1361 serverLog(LL_NOTICE, 1362 "Successful partial resynchronization with master."); 1363 sdsfree(reply); 1364 replicationResurrectCachedMaster(fd); 1365 return PSYNC_CONTINUE; 1366 } 1367 1368 /* If we reach this point we received either an error since the master does 1369 * not understand PSYNC, or an unexpected reply from the master. 1370 * Return PSYNC_NOT_SUPPORTED to the caller in both cases. */ 1371 1372 if (strncmp(reply,"-ERR",4)) { 1373 /* If it's not an error, log the unexpected event. */ 1374 serverLog(LL_WARNING, 1375 "Unexpected reply to PSYNC from master: %s", reply); 1376 } else { 1377 serverLog(LL_NOTICE, 1378 "Master does not support PSYNC or is in " 1379 "error state (reply: %s)", reply); 1380 } 1381 sdsfree(reply); 1382 replicationDiscardCachedMaster(); 1383 return PSYNC_NOT_SUPPORTED; 1384 } 1385 1386 void syncWithMaster(aeEventLoop *el, int fd, void *privdata, int mask) { 1387 char tmpfile[256], *err = NULL; 1388 int dfd, maxtries = 5; 1389 int sockerr = 0, psync_result; 1390 socklen_t errlen = sizeof(sockerr); 1391 UNUSED(el); 1392 UNUSED(privdata); 1393 UNUSED(mask); 1394 1395 /* If this event fired after the user turned the instance into a master 1396 * with SLAVEOF NO ONE we must just return ASAP. */ 1397 if (server.repl_state == REPL_STATE_NONE) { 1398 close(fd); 1399 return; 1400 } 1401 1402 /* Check for errors in the socket. */ 1403 if (getsockopt(fd, SOL_SOCKET, SO_ERROR, &sockerr, &errlen) == -1) 1404 sockerr = errno; 1405 if (sockerr) { 1406 serverLog(LL_WARNING,"Error condition on socket for SYNC: %s", 1407 strerror(sockerr)); 1408 goto error; 1409 } 1410 1411 /* Send a PING to check the master is able to reply without errors. */ 1412 if (server.repl_state == REPL_STATE_CONNECTING) { 1413 serverLog(LL_NOTICE,"Non blocking connect for SYNC fired the event."); 1414 /* Delete the writable event so that the readable event remains 1415 * registered and we can wait for the PONG reply. */ 1416 aeDeleteFileEvent(server.el,fd,AE_WRITABLE); 1417 server.repl_state = REPL_STATE_RECEIVE_PONG; 1418 /* Send the PING, don't check for errors at all, we have the timeout 1419 * that will take care about this. */ 1420 err = sendSynchronousCommand(SYNC_CMD_WRITE,fd,"PING",NULL); 1421 if (err) goto write_error; 1422 return; 1423 } 1424 1425 /* Receive the PONG command. */ 1426 if (server.repl_state == REPL_STATE_RECEIVE_PONG) { 1427 err = sendSynchronousCommand(SYNC_CMD_READ,fd,NULL); 1428 1429 /* We accept only two replies as valid, a positive +PONG reply 1430 * (we just check for "+") or an authentication error. 1431 * Note that older versions of Redis replied with "operation not 1432 * permitted" instead of using a proper error code, so we test 1433 * both. */ 1434 if (err[0] != '+' && 1435 strncmp(err,"-NOAUTH",7) != 0 && 1436 strncmp(err,"-ERR operation not permitted",28) != 0) 1437 { 1438 serverLog(LL_WARNING,"Error reply to PING from master: '%s'",err); 1439 sdsfree(err); 1440 goto error; 1441 } else { 1442 serverLog(LL_NOTICE, 1443 "Master replied to PING, replication can continue..."); 1444 } 1445 sdsfree(err); 1446 server.repl_state = REPL_STATE_SEND_AUTH; 1447 } 1448 1449 /* AUTH with the master if required. */ 1450 if (server.repl_state == REPL_STATE_SEND_AUTH) { 1451 if (server.masterauth) { 1452 err = sendSynchronousCommand(SYNC_CMD_WRITE,fd,"AUTH",server.masterauth,NULL); 1453 if (err) goto write_error; 1454 server.repl_state = REPL_STATE_RECEIVE_AUTH; 1455 return; 1456 } else { 1457 server.repl_state = REPL_STATE_SEND_PORT; 1458 } 1459 } 1460 1461 /* Receive AUTH reply. */ 1462 if (server.repl_state == REPL_STATE_RECEIVE_AUTH) { 1463 err = sendSynchronousCommand(SYNC_CMD_READ,fd,NULL); 1464 if (err[0] == '-') { 1465 serverLog(LL_WARNING,"Unable to AUTH to MASTER: %s",err); 1466 sdsfree(err); 1467 goto error; 1468 } 1469 sdsfree(err); 1470 server.repl_state = REPL_STATE_SEND_PORT; 1471 } 1472 1473 /* Set the slave port, so that Master's INFO command can list the 1474 * slave listening port correctly. */ 1475 if (server.repl_state == REPL_STATE_SEND_PORT) { 1476 sds port = sdsfromlonglong(server.slave_announce_port ? 1477 server.slave_announce_port : server.port); 1478 err = sendSynchronousCommand(SYNC_CMD_WRITE,fd,"REPLCONF", 1479 "listening-port",port, NULL); 1480 sdsfree(port); 1481 if (err) goto write_error; 1482 sdsfree(err); 1483 server.repl_state = REPL_STATE_RECEIVE_PORT; 1484 return; 1485 } 1486 1487 /* Receive REPLCONF listening-port reply. */ 1488 if (server.repl_state == REPL_STATE_RECEIVE_PORT) { 1489 err = sendSynchronousCommand(SYNC_CMD_READ,fd,NULL); 1490 /* Ignore the error if any, not all the Redis versions support 1491 * REPLCONF listening-port. */ 1492 if (err[0] == '-') { 1493 serverLog(LL_NOTICE,"(Non critical) Master does not understand " 1494 "REPLCONF listening-port: %s", err); 1495 } 1496 sdsfree(err); 1497 server.repl_state = REPL_STATE_SEND_IP; 1498 } 1499 1500 /* Skip REPLCONF ip-address if there is no slave-announce-ip option set. */ 1501 if (server.repl_state == REPL_STATE_SEND_IP && 1502 server.slave_announce_ip == NULL) 1503 { 1504 server.repl_state = REPL_STATE_SEND_CAPA; 1505 } 1506 1507 /* Set the slave ip, so that Master's INFO command can list the 1508 * slave IP address port correctly in case of port forwarding or NAT. */ 1509 if (server.repl_state == REPL_STATE_SEND_IP) { 1510 err = sendSynchronousCommand(SYNC_CMD_WRITE,fd,"REPLCONF", 1511 "ip-address",server.slave_announce_ip, NULL); 1512 if (err) goto write_error; 1513 sdsfree(err); 1514 server.repl_state = REPL_STATE_RECEIVE_IP; 1515 return; 1516 } 1517 1518 /* Receive REPLCONF ip-address reply. */ 1519 if (server.repl_state == REPL_STATE_RECEIVE_IP) { 1520 err = sendSynchronousCommand(SYNC_CMD_READ,fd,NULL); 1521 /* Ignore the error if any, not all the Redis versions support 1522 * REPLCONF listening-port. */ 1523 if (err[0] == '-') { 1524 serverLog(LL_NOTICE,"(Non critical) Master does not understand " 1525 "REPLCONF ip-address: %s", err); 1526 } 1527 sdsfree(err); 1528 server.repl_state = REPL_STATE_SEND_CAPA; 1529 } 1530 1531 /* Inform the master of our capabilities. While we currently send 1532 * just one capability, it is possible to chain new capabilities here 1533 * in the form of REPLCONF capa X capa Y capa Z ... 1534 * The master will ignore capabilities it does not understand. */ 1535 if (server.repl_state == REPL_STATE_SEND_CAPA) { 1536 err = sendSynchronousCommand(SYNC_CMD_WRITE,fd,"REPLCONF", 1537 "capa","eof",NULL); 1538 if (err) goto write_error; 1539 sdsfree(err); 1540 server.repl_state = REPL_STATE_RECEIVE_CAPA; 1541 return; 1542 } 1543 1544 /* Receive CAPA reply. */ 1545 if (server.repl_state == REPL_STATE_RECEIVE_CAPA) { 1546 err = sendSynchronousCommand(SYNC_CMD_READ,fd,NULL); 1547 /* Ignore the error if any, not all the Redis versions support 1548 * REPLCONF capa. */ 1549 if (err[0] == '-') { 1550 serverLog(LL_NOTICE,"(Non critical) Master does not understand " 1551 "REPLCONF capa: %s", err); 1552 } 1553 sdsfree(err); 1554 server.repl_state = REPL_STATE_SEND_PSYNC; 1555 } 1556 1557 /* Try a partial resynchonization. If we don't have a cached master 1558 * slaveTryPartialResynchronization() will at least try to use PSYNC 1559 * to start a full resynchronization so that we get the master run id 1560 * and the global offset, to try a partial resync at the next 1561 * reconnection attempt. */ 1562 if (server.repl_state == REPL_STATE_SEND_PSYNC) { 1563 if (slaveTryPartialResynchronization(fd,0) == PSYNC_WRITE_ERROR) { 1564 err = sdsnew("Write error sending the PSYNC command."); 1565 goto write_error; 1566 } 1567 server.repl_state = REPL_STATE_RECEIVE_PSYNC; 1568 return; 1569 } 1570 1571 /* If reached this point, we should be in REPL_STATE_RECEIVE_PSYNC. */ 1572 if (server.repl_state != REPL_STATE_RECEIVE_PSYNC) { 1573 serverLog(LL_WARNING,"syncWithMaster(): state machine error, " 1574 "state should be RECEIVE_PSYNC but is %d", 1575 server.repl_state); 1576 goto error; 1577 } 1578 1579 psync_result = slaveTryPartialResynchronization(fd,1); 1580 if (psync_result == PSYNC_WAIT_REPLY) return; /* Try again later... */ 1581 1582 /* Note: if PSYNC does not return WAIT_REPLY, it will take care of 1583 * uninstalling the read handler from the file descriptor. */ 1584 1585 if (psync_result == PSYNC_CONTINUE) { 1586 serverLog(LL_NOTICE, "MASTER <-> SLAVE sync: Master accepted a Partial Resynchronization."); 1587 return; 1588 } 1589 1590 /* PSYNC failed or is not supported: we want our slaves to resync with us 1591 * as well, if we have any (chained replication case). The mater may 1592 * transfer us an entirely different data set and we have no way to 1593 * incrementally feed our slaves after that. */ 1594 disconnectSlaves(); /* Force our slaves to resync with us as well. */ 1595 freeReplicationBacklog(); /* Don't allow our chained slaves to PSYNC. */ 1596 1597 /* Fall back to SYNC if needed. Otherwise psync_result == PSYNC_FULLRESYNC 1598 * and the server.repl_master_runid and repl_master_initial_offset are 1599 * already populated. */ 1600 if (psync_result == PSYNC_NOT_SUPPORTED) { 1601 serverLog(LL_NOTICE,"Retrying with SYNC..."); 1602 if (syncWrite(fd,"SYNC\r\n",6,server.repl_syncio_timeout*1000) == -1) { 1603 serverLog(LL_WARNING,"I/O error writing to MASTER: %s", 1604 strerror(errno)); 1605 goto error; 1606 } 1607 } 1608 1609 /* Prepare a suitable temp file for bulk transfer */ 1610 while(maxtries--) { 1611 snprintf(tmpfile,256, 1612 "temp-%d.%ld.rdb",(int)server.unixtime,(long int)getpid()); 1613 dfd = open(tmpfile,O_CREAT|O_WRONLY|O_EXCL,0644); 1614 if (dfd != -1) break; 1615 sleep(1); 1616 } 1617 if (dfd == -1) { 1618 serverLog(LL_WARNING,"Opening the temp file needed for MASTER <-> SLAVE synchronization: %s",strerror(errno)); 1619 goto error; 1620 } 1621 1622 /* Setup the non blocking download of the bulk file. */ 1623 if (aeCreateFileEvent(server.el,fd, AE_READABLE,readSyncBulkPayload,NULL) 1624 == AE_ERR) 1625 { 1626 serverLog(LL_WARNING, 1627 "Can't create readable event for SYNC: %s (fd=%d)", 1628 strerror(errno),fd); 1629 goto error; 1630 } 1631 1632 server.repl_state = REPL_STATE_TRANSFER; 1633 server.repl_transfer_size = -1; 1634 server.repl_transfer_read = 0; 1635 server.repl_transfer_last_fsync_off = 0; 1636 server.repl_transfer_fd = dfd; 1637 server.repl_transfer_lastio = server.unixtime; 1638 server.repl_transfer_tmpfile = zstrdup(tmpfile); 1639 return; 1640 1641 error: 1642 aeDeleteFileEvent(server.el,fd,AE_READABLE|AE_WRITABLE); 1643 close(fd); 1644 server.repl_transfer_s = -1; 1645 server.repl_state = REPL_STATE_CONNECT; 1646 return; 1647 1648 write_error: /* Handle sendSynchronousCommand(SYNC_CMD_WRITE) errors. */ 1649 serverLog(LL_WARNING,"Sending command to master in replication handshake: %s", err); 1650 sdsfree(err); 1651 goto error; 1652 } 1653 1654 int connectWithMaster(void) { 1655 int fd; 1656 1657 fd = anetTcpNonBlockBestEffortBindConnect(NULL, 1658 server.masterhost,server.masterport,NET_FIRST_BIND_ADDR); 1659 if (fd == -1) { 1660 serverLog(LL_WARNING,"Unable to connect to MASTER: %s", 1661 strerror(errno)); 1662 return C_ERR; 1663 } 1664 1665 if (aeCreateFileEvent(server.el,fd,AE_READABLE|AE_WRITABLE,syncWithMaster,NULL) == 1666 AE_ERR) 1667 { 1668 close(fd); 1669 serverLog(LL_WARNING,"Can't create readable event for SYNC"); 1670 return C_ERR; 1671 } 1672 1673 server.repl_transfer_lastio = server.unixtime; 1674 server.repl_transfer_s = fd; 1675 server.repl_state = REPL_STATE_CONNECTING; 1676 return C_OK; 1677 } 1678 1679 /* This function can be called when a non blocking connection is currently 1680 * in progress to undo it. 1681 * Never call this function directly, use cancelReplicationHandshake() instead. 1682 */ 1683 void undoConnectWithMaster(void) { 1684 int fd = server.repl_transfer_s; 1685 1686 aeDeleteFileEvent(server.el,fd,AE_READABLE|AE_WRITABLE); 1687 close(fd); 1688 server.repl_transfer_s = -1; 1689 } 1690 1691 /* Abort the async download of the bulk dataset while SYNC-ing with master. 1692 * Never call this function directly, use cancelReplicationHandshake() instead. 1693 */ 1694 void replicationAbortSyncTransfer(void) { 1695 serverAssert(server.repl_state == REPL_STATE_TRANSFER); 1696 undoConnectWithMaster(); 1697 close(server.repl_transfer_fd); 1698 unlink(server.repl_transfer_tmpfile); 1699 zfree(server.repl_transfer_tmpfile); 1700 } 1701 1702 /* This function aborts a non blocking replication attempt if there is one 1703 * in progress, by canceling the non-blocking connect attempt or 1704 * the initial bulk transfer. 1705 * 1706 * If there was a replication handshake in progress 1 is returned and 1707 * the replication state (server.repl_state) set to REPL_STATE_CONNECT. 1708 * 1709 * Otherwise zero is returned and no operation is perforemd at all. */ 1710 int cancelReplicationHandshake(void) { 1711 if (server.repl_state == REPL_STATE_TRANSFER) { 1712 replicationAbortSyncTransfer(); 1713 server.repl_state = REPL_STATE_CONNECT; 1714 } else if (server.repl_state == REPL_STATE_CONNECTING || 1715 slaveIsInHandshakeState()) 1716 { 1717 undoConnectWithMaster(); 1718 server.repl_state = REPL_STATE_CONNECT; 1719 } else { 1720 return 0; 1721 } 1722 return 1; 1723 } 1724 1725 /* Set replication to the specified master address and port. */ 1726 void replicationSetMaster(char *ip, int port) { 1727 sdsfree(server.masterhost); 1728 server.masterhost = sdsnew(ip); 1729 server.masterport = port; 1730 if (server.master) freeClient(server.master); 1731 disconnectAllBlockedClients(); /* Clients blocked in master, now slave. */ 1732 disconnectSlaves(); /* Force our slaves to resync with us as well. */ 1733 replicationDiscardCachedMaster(); /* Don't try a PSYNC. */ 1734 freeReplicationBacklog(); /* Don't allow our chained slaves to PSYNC. */ 1735 cancelReplicationHandshake(); 1736 server.repl_state = REPL_STATE_CONNECT; 1737 server.master_repl_offset = 0; 1738 server.repl_down_since = 0; 1739 } 1740 1741 /* Cancel replication, setting the instance as a master itself. */ 1742 void replicationUnsetMaster(void) { 1743 if (server.masterhost == NULL) return; /* Nothing to do. */ 1744 sdsfree(server.masterhost); 1745 server.masterhost = NULL; 1746 if (server.master) { 1747 if (listLength(server.slaves) == 0) { 1748 /* If this instance is turned into a master and there are no 1749 * slaves, it inherits the replication offset from the master. 1750 * Under certain conditions this makes replicas comparable by 1751 * replication offset to understand what is the most updated. */ 1752 server.master_repl_offset = server.master->reploff; 1753 freeReplicationBacklog(); 1754 } 1755 freeClient(server.master); 1756 } 1757 replicationDiscardCachedMaster(); 1758 cancelReplicationHandshake(); 1759 server.repl_state = REPL_STATE_NONE; 1760 } 1761 1762 /* This function is called when the slave lose the connection with the 1763 * master into an unexpected way. */ 1764 void replicationHandleMasterDisconnection(void) { 1765 server.master = NULL; 1766 server.repl_state = REPL_STATE_CONNECT; 1767 server.repl_down_since = server.unixtime; 1768 /* We lost connection with our master, don't disconnect slaves yet, 1769 * maybe we'll be able to PSYNC with our master later. We'll disconnect 1770 * the slaves only if we'll have to do a full resync with our master. */ 1771 } 1772 1773 void slaveofCommand(client *c) { 1774 /* SLAVEOF is not allowed in cluster mode as replication is automatically 1775 * configured using the current address of the master node. */ 1776 if (server.cluster_enabled) { 1777 addReplyError(c,"SLAVEOF not allowed in cluster mode."); 1778 return; 1779 } 1780 1781 /* The special host/port combination "NO" "ONE" turns the instance 1782 * into a master. Otherwise the new master address is set. */ 1783 if (!strcasecmp(c->argv[1]->ptr,"no") && 1784 !strcasecmp(c->argv[2]->ptr,"one")) { 1785 if (server.masterhost) { 1786 replicationUnsetMaster(); 1787 sds client = catClientInfoString(sdsempty(),c); 1788 serverLog(LL_NOTICE,"MASTER MODE enabled (user request from '%s')", 1789 client); 1790 sdsfree(client); 1791 } 1792 } else { 1793 long port; 1794 1795 if ((getLongFromObjectOrReply(c, c->argv[2], &port, NULL) != C_OK)) 1796 return; 1797 1798 /* Check if we are already attached to the specified slave */ 1799 if (server.masterhost && !strcasecmp(server.masterhost,c->argv[1]->ptr) 1800 && server.masterport == port) { 1801 serverLog(LL_NOTICE,"SLAVE OF would result into synchronization with the master we are already connected with. No operation performed."); 1802 addReplySds(c,sdsnew("+OK Already connected to specified master\r\n")); 1803 return; 1804 } 1805 /* There was no previous master or the user specified a different one, 1806 * we can continue. */ 1807 replicationSetMaster(c->argv[1]->ptr, port); 1808 sds client = catClientInfoString(sdsempty(),c); 1809 serverLog(LL_NOTICE,"SLAVE OF %s:%d enabled (user request from '%s')", 1810 server.masterhost, server.masterport, client); 1811 sdsfree(client); 1812 } 1813 addReply(c,shared.ok); 1814 } 1815 1816 /* ROLE command: provide information about the role of the instance 1817 * (master or slave) and additional information related to replication 1818 * in an easy to process format. */ 1819 void roleCommand(client *c) { 1820 if (server.masterhost == NULL) { 1821 listIter li; 1822 listNode *ln; 1823 void *mbcount; 1824 int slaves = 0; 1825 1826 addReplyMultiBulkLen(c,3); 1827 addReplyBulkCBuffer(c,"master",6); 1828 addReplyLongLong(c,server.master_repl_offset); 1829 mbcount = addDeferredMultiBulkLength(c); 1830 listRewind(server.slaves,&li); 1831 while((ln = listNext(&li))) { 1832 client *slave = ln->value; 1833 char ip[NET_IP_STR_LEN], *slaveip = slave->slave_ip; 1834 1835 if (slaveip[0] == '\0') { 1836 if (anetPeerToString(slave->fd,ip,sizeof(ip),NULL) == -1) 1837 continue; 1838 slaveip = ip; 1839 } 1840 if (slave->replstate != SLAVE_STATE_ONLINE) continue; 1841 addReplyMultiBulkLen(c,3); 1842 addReplyBulkCString(c,slaveip); 1843 addReplyBulkLongLong(c,slave->slave_listening_port); 1844 addReplyBulkLongLong(c,slave->repl_ack_off); 1845 slaves++; 1846 } 1847 setDeferredMultiBulkLength(c,mbcount,slaves); 1848 } else { 1849 char *slavestate = NULL; 1850 1851 addReplyMultiBulkLen(c,5); 1852 addReplyBulkCBuffer(c,"slave",5); 1853 addReplyBulkCString(c,server.masterhost); 1854 addReplyLongLong(c,server.masterport); 1855 if (slaveIsInHandshakeState()) { 1856 slavestate = "handshake"; 1857 } else { 1858 switch(server.repl_state) { 1859 case REPL_STATE_NONE: slavestate = "none"; break; 1860 case REPL_STATE_CONNECT: slavestate = "connect"; break; 1861 case REPL_STATE_CONNECTING: slavestate = "connecting"; break; 1862 case REPL_STATE_TRANSFER: slavestate = "sync"; break; 1863 case REPL_STATE_CONNECTED: slavestate = "connected"; break; 1864 default: slavestate = "unknown"; break; 1865 } 1866 } 1867 addReplyBulkCString(c,slavestate); 1868 addReplyLongLong(c,server.master ? server.master->reploff : -1); 1869 } 1870 } 1871 1872 /* Send a REPLCONF ACK command to the master to inform it about the current 1873 * processed offset. If we are not connected with a master, the command has 1874 * no effects. */ 1875 void replicationSendAck(void) { 1876 client *c = server.master; 1877 1878 if (c != NULL) { 1879 c->flags |= CLIENT_MASTER_FORCE_REPLY; 1880 addReplyMultiBulkLen(c,3); 1881 addReplyBulkCString(c,"REPLCONF"); 1882 addReplyBulkCString(c,"ACK"); 1883 addReplyBulkLongLong(c,c->reploff); 1884 c->flags &= ~CLIENT_MASTER_FORCE_REPLY; 1885 } 1886 } 1887 1888 /* ---------------------- MASTER CACHING FOR PSYNC -------------------------- */ 1889 1890 /* In order to implement partial synchronization we need to be able to cache 1891 * our master's client structure after a transient disconnection. 1892 * It is cached into server.cached_master and flushed away using the following 1893 * functions. */ 1894 1895 /* This function is called by freeClient() in order to cache the master 1896 * client structure instead of destryoing it. freeClient() will return 1897 * ASAP after this function returns, so every action needed to avoid problems 1898 * with a client that is really "suspended" has to be done by this function. 1899 * 1900 * The other functions that will deal with the cached master are: 1901 * 1902 * replicationDiscardCachedMaster() that will make sure to kill the client 1903 * as for some reason we don't want to use it in the future. 1904 * 1905 * replicationResurrectCachedMaster() that is used after a successful PSYNC 1906 * handshake in order to reactivate the cached master. 1907 */ 1908 void replicationCacheMaster(client *c) { 1909 serverAssert(server.master != NULL && server.cached_master == NULL); 1910 serverLog(LL_NOTICE,"Caching the disconnected master state."); 1911 1912 /* Unlink the client from the server structures. */ 1913 unlinkClient(c); 1914 1915 /* Save the master. Server.master will be set to null later by 1916 * replicationHandleMasterDisconnection(). */ 1917 server.cached_master = server.master; 1918 1919 /* Invalidate the Peer ID cache. */ 1920 if (c->peerid) { 1921 sdsfree(c->peerid); 1922 c->peerid = NULL; 1923 } 1924 1925 /* Caching the master happens instead of the actual freeClient() call, 1926 * so make sure to adjust the replication state. This function will 1927 * also set server.master to NULL. */ 1928 replicationHandleMasterDisconnection(); 1929 } 1930 1931 /* Free a cached master, called when there are no longer the conditions for 1932 * a partial resync on reconnection. */ 1933 void replicationDiscardCachedMaster(void) { 1934 if (server.cached_master == NULL) return; 1935 1936 serverLog(LL_NOTICE,"Discarding previously cached master state."); 1937 server.cached_master->flags &= ~CLIENT_MASTER; 1938 freeClient(server.cached_master); 1939 server.cached_master = NULL; 1940 } 1941 1942 /* Turn the cached master into the current master, using the file descriptor 1943 * passed as argument as the socket for the new master. 1944 * 1945 * This function is called when successfully setup a partial resynchronization 1946 * so the stream of data that we'll receive will start from were this 1947 * master left. */ 1948 void replicationResurrectCachedMaster(int newfd) { 1949 server.master = server.cached_master; 1950 server.cached_master = NULL; 1951 server.master->fd = newfd; 1952 server.master->flags &= ~(CLIENT_CLOSE_AFTER_REPLY|CLIENT_CLOSE_ASAP); 1953 server.master->authenticated = 1; 1954 server.master->lastinteraction = server.unixtime; 1955 server.repl_state = REPL_STATE_CONNECTED; 1956 1957 /* Re-add to the list of clients. */ 1958 listAddNodeTail(server.clients,server.master); 1959 if (aeCreateFileEvent(server.el, newfd, AE_READABLE, 1960 readQueryFromClient, server.master)) { 1961 serverLog(LL_WARNING,"Error resurrecting the cached master, impossible to add the readable handler: %s", strerror(errno)); 1962 freeClientAsync(server.master); /* Close ASAP. */ 1963 } 1964 1965 /* We may also need to install the write handler as well if there is 1966 * pending data in the write buffers. */ 1967 if (clientHasPendingReplies(server.master)) { 1968 if (aeCreateFileEvent(server.el, newfd, AE_WRITABLE, 1969 sendReplyToClient, server.master)) { 1970 serverLog(LL_WARNING,"Error resurrecting the cached master, impossible to add the writable handler: %s", strerror(errno)); 1971 freeClientAsync(server.master); /* Close ASAP. */ 1972 } 1973 } 1974 } 1975 1976 /* ------------------------- MIN-SLAVES-TO-WRITE --------------------------- */ 1977 1978 /* This function counts the number of slaves with lag <= min-slaves-max-lag. 1979 * If the option is active, the server will prevent writes if there are not 1980 * enough connected slaves with the specified lag (or less). */ 1981 void refreshGoodSlavesCount(void) { 1982 listIter li; 1983 listNode *ln; 1984 int good = 0; 1985 1986 if (!server.repl_min_slaves_to_write || 1987 !server.repl_min_slaves_max_lag) return; 1988 1989 listRewind(server.slaves,&li); 1990 while((ln = listNext(&li))) { 1991 client *slave = ln->value; 1992 time_t lag = server.unixtime - slave->repl_ack_time; 1993 1994 if (slave->replstate == SLAVE_STATE_ONLINE && 1995 lag <= server.repl_min_slaves_max_lag) good++; 1996 } 1997 server.repl_good_slaves_count = good; 1998 } 1999 2000 /* ----------------------- REPLICATION SCRIPT CACHE -------------------------- 2001 * The goal of this code is to keep track of scripts already sent to every 2002 * connected slave, in order to be able to replicate EVALSHA as it is without 2003 * translating it to EVAL every time it is possible. 2004 * 2005 * We use a capped collection implemented by a hash table for fast lookup 2006 * of scripts we can send as EVALSHA, plus a linked list that is used for 2007 * eviction of the oldest entry when the max number of items is reached. 2008 * 2009 * We don't care about taking a different cache for every different slave 2010 * since to fill the cache again is not very costly, the goal of this code 2011 * is to avoid that the same big script is trasmitted a big number of times 2012 * per second wasting bandwidth and processor speed, but it is not a problem 2013 * if we need to rebuild the cache from scratch from time to time, every used 2014 * script will need to be transmitted a single time to reappear in the cache. 2015 * 2016 * This is how the system works: 2017 * 2018 * 1) Every time a new slave connects, we flush the whole script cache. 2019 * 2) We only send as EVALSHA what was sent to the master as EVALSHA, without 2020 * trying to convert EVAL into EVALSHA specifically for slaves. 2021 * 3) Every time we trasmit a script as EVAL to the slaves, we also add the 2022 * corresponding SHA1 of the script into the cache as we are sure every 2023 * slave knows about the script starting from now. 2024 * 4) On SCRIPT FLUSH command, we replicate the command to all the slaves 2025 * and at the same time flush the script cache. 2026 * 5) When the last slave disconnects, flush the cache. 2027 * 6) We handle SCRIPT LOAD as well since that's how scripts are loaded 2028 * in the master sometimes. 2029 */ 2030 2031 /* Initialize the script cache, only called at startup. */ 2032 void replicationScriptCacheInit(void) { 2033 server.repl_scriptcache_size = 10000; 2034 server.repl_scriptcache_dict = dictCreate(&replScriptCacheDictType,NULL); 2035 server.repl_scriptcache_fifo = listCreate(); 2036 } 2037 2038 /* Empty the script cache. Should be called every time we are no longer sure 2039 * that every slave knows about all the scripts in our set, or when the 2040 * current AOF "context" is no longer aware of the script. In general we 2041 * should flush the cache: 2042 * 2043 * 1) Every time a new slave reconnects to this master and performs a 2044 * full SYNC (PSYNC does not require flushing). 2045 * 2) Every time an AOF rewrite is performed. 2046 * 3) Every time we are left without slaves at all, and AOF is off, in order 2047 * to reclaim otherwise unused memory. 2048 */ 2049 void replicationScriptCacheFlush(void) { 2050 dictEmpty(server.repl_scriptcache_dict,NULL); 2051 listRelease(server.repl_scriptcache_fifo); 2052 server.repl_scriptcache_fifo = listCreate(); 2053 } 2054 2055 /* Add an entry into the script cache, if we reach max number of entries the 2056 * oldest is removed from the list. */ 2057 void replicationScriptCacheAdd(sds sha1) { 2058 int retval; 2059 sds key = sdsdup(sha1); 2060 2061 /* Evict oldest. */ 2062 if (listLength(server.repl_scriptcache_fifo) == server.repl_scriptcache_size) 2063 { 2064 listNode *ln = listLast(server.repl_scriptcache_fifo); 2065 sds oldest = listNodeValue(ln); 2066 2067 retval = dictDelete(server.repl_scriptcache_dict,oldest); 2068 serverAssert(retval == DICT_OK); 2069 listDelNode(server.repl_scriptcache_fifo,ln); 2070 } 2071 2072 /* Add current. */ 2073 retval = dictAdd(server.repl_scriptcache_dict,key,NULL); 2074 listAddNodeHead(server.repl_scriptcache_fifo,key); 2075 serverAssert(retval == DICT_OK); 2076 } 2077 2078 /* Returns non-zero if the specified entry exists inside the cache, that is, 2079 * if all the slaves are aware of this script SHA1. */ 2080 int replicationScriptCacheExists(sds sha1) { 2081 return dictFind(server.repl_scriptcache_dict,sha1) != NULL; 2082 } 2083 2084 /* ----------------------- SYNCHRONOUS REPLICATION -------------------------- 2085 * Redis synchronous replication design can be summarized in points: 2086 * 2087 * - Redis masters have a global replication offset, used by PSYNC. 2088 * - Master increment the offset every time new commands are sent to slaves. 2089 * - Slaves ping back masters with the offset processed so far. 2090 * 2091 * So synchronous replication adds a new WAIT command in the form: 2092 * 2093 * WAIT <num_replicas> <milliseconds_timeout> 2094 * 2095 * That returns the number of replicas that processed the query when 2096 * we finally have at least num_replicas, or when the timeout was 2097 * reached. 2098 * 2099 * The command is implemented in this way: 2100 * 2101 * - Every time a client processes a command, we remember the replication 2102 * offset after sending that command to the slaves. 2103 * - When WAIT is called, we ask slaves to send an acknowledgement ASAP. 2104 * The client is blocked at the same time (see blocked.c). 2105 * - Once we receive enough ACKs for a given offset or when the timeout 2106 * is reached, the WAIT command is unblocked and the reply sent to the 2107 * client. 2108 */ 2109 2110 /* This just set a flag so that we broadcast a REPLCONF GETACK command 2111 * to all the slaves in the beforeSleep() function. Note that this way 2112 * we "group" all the clients that want to wait for synchronouns replication 2113 * in a given event loop iteration, and send a single GETACK for them all. */ 2114 void replicationRequestAckFromSlaves(void) { 2115 server.get_ack_from_slaves = 1; 2116 } 2117 2118 /* Return the number of slaves that already acknowledged the specified 2119 * replication offset. */ 2120 int replicationCountAcksByOffset(long long offset) { 2121 listIter li; 2122 listNode *ln; 2123 int count = 0; 2124 2125 listRewind(server.slaves,&li); 2126 while((ln = listNext(&li))) { 2127 client *slave = ln->value; 2128 2129 if (slave->replstate != SLAVE_STATE_ONLINE) continue; 2130 if (slave->repl_ack_off >= offset) count++; 2131 } 2132 return count; 2133 } 2134 2135 /* WAIT for N replicas to acknowledge the processing of our latest 2136 * write command (and all the previous commands). */ 2137 void waitCommand(client *c) { 2138 mstime_t timeout; 2139 long numreplicas, ackreplicas; 2140 long long offset = c->woff; 2141 2142 /* Argument parsing. */ 2143 if (getLongFromObjectOrReply(c,c->argv[1],&numreplicas,NULL) != C_OK) 2144 return; 2145 if (getTimeoutFromObjectOrReply(c,c->argv[2],&timeout,UNIT_MILLISECONDS) 2146 != C_OK) return; 2147 2148 /* First try without blocking at all. */ 2149 ackreplicas = replicationCountAcksByOffset(c->woff); 2150 if (ackreplicas >= numreplicas || c->flags & CLIENT_MULTI) { 2151 addReplyLongLong(c,ackreplicas); 2152 return; 2153 } 2154 2155 /* Otherwise block the client and put it into our list of clients 2156 * waiting for ack from slaves. */ 2157 c->bpop.timeout = timeout; 2158 c->bpop.reploffset = offset; 2159 c->bpop.numreplicas = numreplicas; 2160 listAddNodeTail(server.clients_waiting_acks,c); 2161 blockClient(c,BLOCKED_WAIT); 2162 2163 /* Make sure that the server will send an ACK request to all the slaves 2164 * before returning to the event loop. */ 2165 replicationRequestAckFromSlaves(); 2166 } 2167 2168 /* This is called by unblockClient() to perform the blocking op type 2169 * specific cleanup. We just remove the client from the list of clients 2170 * waiting for replica acks. Never call it directly, call unblockClient() 2171 * instead. */ 2172 void unblockClientWaitingReplicas(client *c) { 2173 listNode *ln = listSearchKey(server.clients_waiting_acks,c); 2174 serverAssert(ln != NULL); 2175 listDelNode(server.clients_waiting_acks,ln); 2176 } 2177 2178 /* Check if there are clients blocked in WAIT that can be unblocked since 2179 * we received enough ACKs from slaves. */ 2180 void processClientsWaitingReplicas(void) { 2181 long long last_offset = 0; 2182 int last_numreplicas = 0; 2183 2184 listIter li; 2185 listNode *ln; 2186 2187 listRewind(server.clients_waiting_acks,&li); 2188 while((ln = listNext(&li))) { 2189 client *c = ln->value; 2190 2191 /* Every time we find a client that is satisfied for a given 2192 * offset and number of replicas, we remember it so the next client 2193 * may be unblocked without calling replicationCountAcksByOffset() 2194 * if the requested offset / replicas were equal or less. */ 2195 if (last_offset && last_offset > c->bpop.reploffset && 2196 last_numreplicas > c->bpop.numreplicas) 2197 { 2198 unblockClient(c); 2199 addReplyLongLong(c,last_numreplicas); 2200 } else { 2201 int numreplicas = replicationCountAcksByOffset(c->bpop.reploffset); 2202 2203 if (numreplicas >= c->bpop.numreplicas) { 2204 last_offset = c->bpop.reploffset; 2205 last_numreplicas = numreplicas; 2206 unblockClient(c); 2207 addReplyLongLong(c,numreplicas); 2208 } 2209 } 2210 } 2211 } 2212 2213 /* Return the slave replication offset for this instance, that is 2214 * the offset for which we already processed the master replication stream. */ 2215 long long replicationGetSlaveOffset(void) { 2216 long long offset = 0; 2217 2218 if (server.masterhost != NULL) { 2219 if (server.master) { 2220 offset = server.master->reploff; 2221 } else if (server.cached_master) { 2222 offset = server.cached_master->reploff; 2223 } 2224 } 2225 /* offset may be -1 when the master does not support it at all, however 2226 * this function is designed to return an offset that can express the 2227 * amount of data processed by the master, so we return a positive 2228 * integer. */ 2229 if (offset < 0) offset = 0; 2230 return offset; 2231 } 2232 2233 /* --------------------------- REPLICATION CRON ---------------------------- */ 2234 2235 /* Replication cron function, called 1 time per second. */ 2236 void replicationCron(void) { 2237 static long long replication_cron_loops = 0; 2238 2239 /* Non blocking connection timeout? */ 2240 if (server.masterhost && 2241 (server.repl_state == REPL_STATE_CONNECTING || 2242 slaveIsInHandshakeState()) && 2243 (time(NULL)-server.repl_transfer_lastio) > server.repl_timeout) 2244 { 2245 serverLog(LL_WARNING,"Timeout connecting to the MASTER..."); 2246 cancelReplicationHandshake(); 2247 } 2248 2249 /* Bulk transfer I/O timeout? */ 2250 if (server.masterhost && server.repl_state == REPL_STATE_TRANSFER && 2251 (time(NULL)-server.repl_transfer_lastio) > server.repl_timeout) 2252 { 2253 serverLog(LL_WARNING,"Timeout receiving bulk data from MASTER... If the problem persists try to set the 'repl-timeout' parameter in redis.conf to a larger value."); 2254 cancelReplicationHandshake(); 2255 } 2256 2257 /* Timed out master when we are an already connected slave? */ 2258 if (server.masterhost && server.repl_state == REPL_STATE_CONNECTED && 2259 (time(NULL)-server.master->lastinteraction) > server.repl_timeout) 2260 { 2261 serverLog(LL_WARNING,"MASTER timeout: no data nor PING received..."); 2262 freeClient(server.master); 2263 } 2264 2265 /* Check if we should connect to a MASTER */ 2266 if (server.repl_state == REPL_STATE_CONNECT) { 2267 serverLog(LL_NOTICE,"Connecting to MASTER %s:%d", 2268 server.masterhost, server.masterport); 2269 if (connectWithMaster() == C_OK) { 2270 serverLog(LL_NOTICE,"MASTER <-> SLAVE sync started"); 2271 } 2272 } 2273 2274 /* Send ACK to master from time to time. 2275 * Note that we do not send periodic acks to masters that don't 2276 * support PSYNC and replication offsets. */ 2277 if (server.masterhost && server.master && 2278 !(server.master->flags & CLIENT_PRE_PSYNC)) 2279 replicationSendAck(); 2280 2281 /* If we have attached slaves, PING them from time to time. 2282 * So slaves can implement an explicit timeout to masters, and will 2283 * be able to detect a link disconnection even if the TCP connection 2284 * will not actually go down. */ 2285 listIter li; 2286 listNode *ln; 2287 robj *ping_argv[1]; 2288 2289 /* First, send PING according to ping_slave_period. */ 2290 if ((replication_cron_loops % server.repl_ping_slave_period) == 0) { 2291 ping_argv[0] = createStringObject("PING",4); 2292 replicationFeedSlaves(server.slaves, server.slaveseldb, 2293 ping_argv, 1); 2294 decrRefCount(ping_argv[0]); 2295 } 2296 2297 /* Second, send a newline to all the slaves in pre-synchronization 2298 * stage, that is, slaves waiting for the master to create the RDB file. 2299 * The newline will be ignored by the slave but will refresh the 2300 * last-io timer preventing a timeout. In this case we ignore the 2301 * ping period and refresh the connection once per second since certain 2302 * timeouts are set at a few seconds (example: PSYNC response). */ 2303 listRewind(server.slaves,&li); 2304 while((ln = listNext(&li))) { 2305 client *slave = ln->value; 2306 2307 if (slave->replstate == SLAVE_STATE_WAIT_BGSAVE_START || 2308 (slave->replstate == SLAVE_STATE_WAIT_BGSAVE_END && 2309 server.rdb_child_type != RDB_CHILD_TYPE_SOCKET)) 2310 { 2311 if (write(slave->fd, "\n", 1) == -1) { 2312 /* Don't worry, it's just a ping. */ 2313 } 2314 } 2315 } 2316 2317 /* Disconnect timedout slaves. */ 2318 if (listLength(server.slaves)) { 2319 listIter li; 2320 listNode *ln; 2321 2322 listRewind(server.slaves,&li); 2323 while((ln = listNext(&li))) { 2324 client *slave = ln->value; 2325 2326 if (slave->replstate != SLAVE_STATE_ONLINE) continue; 2327 if (slave->flags & CLIENT_PRE_PSYNC) continue; 2328 if ((server.unixtime - slave->repl_ack_time) > server.repl_timeout) 2329 { 2330 serverLog(LL_WARNING, "Disconnecting timedout slave: %s", 2331 replicationGetSlaveName(slave)); 2332 freeClient(slave); 2333 } 2334 } 2335 } 2336 2337 /* If we have no attached slaves and there is a replication backlog 2338 * using memory, free it after some (configured) time. */ 2339 if (listLength(server.slaves) == 0 && server.repl_backlog_time_limit && 2340 server.repl_backlog) 2341 { 2342 time_t idle = server.unixtime - server.repl_no_slaves_since; 2343 2344 if (idle > server.repl_backlog_time_limit) { 2345 freeReplicationBacklog(); 2346 serverLog(LL_NOTICE, 2347 "Replication backlog freed after %d seconds " 2348 "without connected slaves.", 2349 (int) server.repl_backlog_time_limit); 2350 } 2351 } 2352 2353 /* If AOF is disabled and we no longer have attached slaves, we can 2354 * free our Replication Script Cache as there is no need to propagate 2355 * EVALSHA at all. */ 2356 if (listLength(server.slaves) == 0 && 2357 server.aof_state == AOF_OFF && 2358 listLength(server.repl_scriptcache_fifo) != 0) 2359 { 2360 replicationScriptCacheFlush(); 2361 } 2362 2363 /* Start a BGSAVE good for replication if we have slaves in 2364 * WAIT_BGSAVE_START state. 2365 * 2366 * In case of diskless replication, we make sure to wait the specified 2367 * number of seconds (according to configuration) so that other slaves 2368 * have the time to arrive before we start streaming. */ 2369 if (server.rdb_child_pid == -1 && server.aof_child_pid == -1) { 2370 time_t idle, max_idle = 0; 2371 int slaves_waiting = 0; 2372 int mincapa = -1; 2373 listNode *ln; 2374 listIter li; 2375 2376 listRewind(server.slaves,&li); 2377 while((ln = listNext(&li))) { 2378 client *slave = ln->value; 2379 if (slave->replstate == SLAVE_STATE_WAIT_BGSAVE_START) { 2380 idle = server.unixtime - slave->lastinteraction; 2381 if (idle > max_idle) max_idle = idle; 2382 slaves_waiting++; 2383 mincapa = (mincapa == -1) ? slave->slave_capa : 2384 (mincapa & slave->slave_capa); 2385 } 2386 } 2387 2388 if (slaves_waiting && 2389 (!server.repl_diskless_sync || 2390 max_idle > server.repl_diskless_sync_delay)) 2391 { 2392 /* Start the BGSAVE. The called function may start a 2393 * BGSAVE with socket target or disk target depending on the 2394 * configuration and slaves capabilities. */ 2395 startBgsaveForReplication(mincapa); 2396 } 2397 } 2398 2399 /* Refresh the number of slaves with lag <= min-slaves-max-lag. */ 2400 refreshGoodSlavesCount(); 2401 replication_cron_loops++; /* Incremented with frequency 1 HZ. */ 2402 } 2403