1// SPDX-License-Identifier: GPL-2.0-or-later 2/* 3 drbd.c 4 5 This file is part of DRBD by Philipp Reisner and Lars Ellenberg. 6 7 Copyright (C) 2001-2008, LINBIT Information Technologies GmbH. 8 Copyright (C) 1999-2008, Philipp Reisner <philipp.reisner@linbit.com>. 9 Copyright (C) 2002-2008, Lars Ellenberg <lars.ellenberg@linbit.com>. 10 11 Thanks to Carter Burden, Bart Grantham and Gennadiy Nerubayev 12 from Logicworks, Inc. for making SDP replication support possible. 13 14 15 */ 16 17#define pr_fmt(fmt) KBUILD_MODNAME ": " fmt 18 19#include <linux/module.h> 20#include <linux/jiffies.h> 21#include <linux/drbd.h> 22#include <linux/uaccess.h> 23#include <asm/types.h> 24#include <net/sock.h> 25#include <linux/ctype.h> 26#include <linux/mutex.h> 27#include <linux/fs.h> 28#include <linux/file.h> 29#include <linux/proc_fs.h> 30#include <linux/init.h> 31#include <linux/mm.h> 32#include <linux/memcontrol.h> 33#include <linux/mm_inline.h> 34#include <linux/slab.h> 35#include <linux/random.h> 36#include <linux/reboot.h> 37#include <linux/notifier.h> 38#include <linux/kthread.h> 39#include <linux/workqueue.h> 40#define __KERNEL_SYSCALLS__ 41#include <linux/unistd.h> 42#include <linux/vmalloc.h> 43#include <linux/sched/signal.h> 44 45#include <linux/drbd_limits.h> 46#include "drbd_int.h" 47#include "drbd_protocol.h" 48#include "drbd_req.h" /* only for _req_mod in tl_release and tl_clear */ 49#include "drbd_vli.h" 50#include "drbd_debugfs.h" 51 52static DEFINE_MUTEX(drbd_main_mutex); 53static int drbd_open(struct block_device *bdev, fmode_t mode); 54static void drbd_release(struct gendisk *gd, fmode_t mode); 55static void md_sync_timer_fn(struct timer_list *t); 56static int w_bitmap_io(struct drbd_work *w, int unused); 57 58MODULE_AUTHOR("Philipp Reisner <phil@linbit.com>, " 59 "Lars Ellenberg <lars@linbit.com>"); 60MODULE_DESCRIPTION("drbd - Distributed Replicated Block Device v" REL_VERSION); 61MODULE_VERSION(REL_VERSION); 62MODULE_LICENSE("GPL"); 63MODULE_PARM_DESC(minor_count, "Approximate number of drbd devices (" 64 __stringify(DRBD_MINOR_COUNT_MIN) "-" __stringify(DRBD_MINOR_COUNT_MAX) ")"); 65MODULE_ALIAS_BLOCKDEV_MAJOR(DRBD_MAJOR); 66 67#include <linux/moduleparam.h> 68/* thanks to these macros, if compiled into the kernel (not-module), 69 * these become boot parameters (e.g., drbd.minor_count) */ 70 71#ifdef CONFIG_DRBD_FAULT_INJECTION 72int drbd_enable_faults; 73int drbd_fault_rate; 74static int drbd_fault_count; 75static int drbd_fault_devs; 76/* bitmap of enabled faults */ 77module_param_named(enable_faults, drbd_enable_faults, int, 0664); 78/* fault rate % value - applies to all enabled faults */ 79module_param_named(fault_rate, drbd_fault_rate, int, 0664); 80/* count of faults inserted */ 81module_param_named(fault_count, drbd_fault_count, int, 0664); 82/* bitmap of devices to insert faults on */ 83module_param_named(fault_devs, drbd_fault_devs, int, 0644); 84#endif 85 86/* module parameters we can keep static */ 87static bool drbd_allow_oos; /* allow_open_on_secondary */ 88static bool drbd_disable_sendpage; 89MODULE_PARM_DESC(allow_oos, "DONT USE!"); 90module_param_named(allow_oos, drbd_allow_oos, bool, 0); 91module_param_named(disable_sendpage, drbd_disable_sendpage, bool, 0644); 92 93/* module parameters we share */ 94int drbd_proc_details; /* Detail level in proc drbd*/ 95module_param_named(proc_details, drbd_proc_details, int, 0644); 96/* module parameters shared with defaults */ 97unsigned int drbd_minor_count = DRBD_MINOR_COUNT_DEF; 98/* Module parameter for setting the user mode helper program 99 * to run. Default is /sbin/drbdadm */ 100char drbd_usermode_helper[80] = "/sbin/drbdadm"; 101module_param_named(minor_count, drbd_minor_count, uint, 0444); 102module_param_string(usermode_helper, drbd_usermode_helper, sizeof(drbd_usermode_helper), 0644); 103 104/* in 2.6.x, our device mapping and config info contains our virtual gendisks 105 * as member "struct gendisk *vdisk;" 106 */ 107struct idr drbd_devices; 108struct list_head drbd_resources; 109struct mutex resources_mutex; 110 111struct kmem_cache *drbd_request_cache; 112struct kmem_cache *drbd_ee_cache; /* peer requests */ 113struct kmem_cache *drbd_bm_ext_cache; /* bitmap extents */ 114struct kmem_cache *drbd_al_ext_cache; /* activity log extents */ 115mempool_t drbd_request_mempool; 116mempool_t drbd_ee_mempool; 117mempool_t drbd_md_io_page_pool; 118struct bio_set drbd_md_io_bio_set; 119struct bio_set drbd_io_bio_set; 120 121/* I do not use a standard mempool, because: 122 1) I want to hand out the pre-allocated objects first. 123 2) I want to be able to interrupt sleeping allocation with a signal. 124 Note: This is a single linked list, the next pointer is the private 125 member of struct page. 126 */ 127struct page *drbd_pp_pool; 128spinlock_t drbd_pp_lock; 129int drbd_pp_vacant; 130wait_queue_head_t drbd_pp_wait; 131 132DEFINE_RATELIMIT_STATE(drbd_ratelimit_state, 5 * HZ, 5); 133 134static const struct block_device_operations drbd_ops = { 135 .owner = THIS_MODULE, 136 .submit_bio = drbd_submit_bio, 137 .open = drbd_open, 138 .release = drbd_release, 139}; 140 141struct bio *bio_alloc_drbd(gfp_t gfp_mask) 142{ 143 struct bio *bio; 144 145 if (!bioset_initialized(&drbd_md_io_bio_set)) 146 return bio_alloc(gfp_mask, 1); 147 148 bio = bio_alloc_bioset(gfp_mask, 1, &drbd_md_io_bio_set); 149 if (!bio) 150 return NULL; 151 return bio; 152} 153 154#ifdef __CHECKER__ 155/* When checking with sparse, and this is an inline function, sparse will 156 give tons of false positives. When this is a real functions sparse works. 157 */ 158int _get_ldev_if_state(struct drbd_device *device, enum drbd_disk_state mins) 159{ 160 int io_allowed; 161 162 atomic_inc(&device->local_cnt); 163 io_allowed = (device->state.disk >= mins); 164 if (!io_allowed) { 165 if (atomic_dec_and_test(&device->local_cnt)) 166 wake_up(&device->misc_wait); 167 } 168 return io_allowed; 169} 170 171#endif 172 173/** 174 * tl_release() - mark as BARRIER_ACKED all requests in the corresponding transfer log epoch 175 * @connection: DRBD connection. 176 * @barrier_nr: Expected identifier of the DRBD write barrier packet. 177 * @set_size: Expected number of requests before that barrier. 178 * 179 * In case the passed barrier_nr or set_size does not match the oldest 180 * epoch of not yet barrier-acked requests, this function will cause a 181 * termination of the connection. 182 */ 183void tl_release(struct drbd_connection *connection, unsigned int barrier_nr, 184 unsigned int set_size) 185{ 186 struct drbd_request *r; 187 struct drbd_request *req = NULL, *tmp = NULL; 188 int expect_epoch = 0; 189 int expect_size = 0; 190 191 spin_lock_irq(&connection->resource->req_lock); 192 193 /* find oldest not yet barrier-acked write request, 194 * count writes in its epoch. */ 195 list_for_each_entry(r, &connection->transfer_log, tl_requests) { 196 const unsigned s = r->rq_state; 197 if (!req) { 198 if (!(s & RQ_WRITE)) 199 continue; 200 if (!(s & RQ_NET_MASK)) 201 continue; 202 if (s & RQ_NET_DONE) 203 continue; 204 req = r; 205 expect_epoch = req->epoch; 206 expect_size ++; 207 } else { 208 if (r->epoch != expect_epoch) 209 break; 210 if (!(s & RQ_WRITE)) 211 continue; 212 /* if (s & RQ_DONE): not expected */ 213 /* if (!(s & RQ_NET_MASK)): not expected */ 214 expect_size++; 215 } 216 } 217 218 /* first some paranoia code */ 219 if (req == NULL) { 220 drbd_err(connection, "BAD! BarrierAck #%u received, but no epoch in tl!?\n", 221 barrier_nr); 222 goto bail; 223 } 224 if (expect_epoch != barrier_nr) { 225 drbd_err(connection, "BAD! BarrierAck #%u received, expected #%u!\n", 226 barrier_nr, expect_epoch); 227 goto bail; 228 } 229 230 if (expect_size != set_size) { 231 drbd_err(connection, "BAD! BarrierAck #%u received with n_writes=%u, expected n_writes=%u!\n", 232 barrier_nr, set_size, expect_size); 233 goto bail; 234 } 235 236 /* Clean up list of requests processed during current epoch. */ 237 /* this extra list walk restart is paranoia, 238 * to catch requests being barrier-acked "unexpectedly". 239 * It usually should find the same req again, or some READ preceding it. */ 240 list_for_each_entry(req, &connection->transfer_log, tl_requests) 241 if (req->epoch == expect_epoch) { 242 tmp = req; 243 break; 244 } 245 req = list_prepare_entry(tmp, &connection->transfer_log, tl_requests); 246 list_for_each_entry_safe_from(req, r, &connection->transfer_log, tl_requests) { 247 if (req->epoch != expect_epoch) 248 break; 249 _req_mod(req, BARRIER_ACKED); 250 } 251 spin_unlock_irq(&connection->resource->req_lock); 252 253 return; 254 255bail: 256 spin_unlock_irq(&connection->resource->req_lock); 257 conn_request_state(connection, NS(conn, C_PROTOCOL_ERROR), CS_HARD); 258} 259 260 261/** 262 * _tl_restart() - Walks the transfer log, and applies an action to all requests 263 * @connection: DRBD connection to operate on. 264 * @what: The action/event to perform with all request objects 265 * 266 * @what might be one of CONNECTION_LOST_WHILE_PENDING, RESEND, FAIL_FROZEN_DISK_IO, 267 * RESTART_FROZEN_DISK_IO. 268 */ 269/* must hold resource->req_lock */ 270void _tl_restart(struct drbd_connection *connection, enum drbd_req_event what) 271{ 272 struct drbd_request *req, *r; 273 274 list_for_each_entry_safe(req, r, &connection->transfer_log, tl_requests) 275 _req_mod(req, what); 276} 277 278void tl_restart(struct drbd_connection *connection, enum drbd_req_event what) 279{ 280 spin_lock_irq(&connection->resource->req_lock); 281 _tl_restart(connection, what); 282 spin_unlock_irq(&connection->resource->req_lock); 283} 284 285/** 286 * tl_clear() - Clears all requests and &struct drbd_tl_epoch objects out of the TL 287 * @device: DRBD device. 288 * 289 * This is called after the connection to the peer was lost. The storage covered 290 * by the requests on the transfer gets marked as our of sync. Called from the 291 * receiver thread and the worker thread. 292 */ 293void tl_clear(struct drbd_connection *connection) 294{ 295 tl_restart(connection, CONNECTION_LOST_WHILE_PENDING); 296} 297 298/** 299 * tl_abort_disk_io() - Abort disk I/O for all requests for a certain device in the TL 300 * @device: DRBD device. 301 */ 302void tl_abort_disk_io(struct drbd_device *device) 303{ 304 struct drbd_connection *connection = first_peer_device(device)->connection; 305 struct drbd_request *req, *r; 306 307 spin_lock_irq(&connection->resource->req_lock); 308 list_for_each_entry_safe(req, r, &connection->transfer_log, tl_requests) { 309 if (!(req->rq_state & RQ_LOCAL_PENDING)) 310 continue; 311 if (req->device != device) 312 continue; 313 _req_mod(req, ABORT_DISK_IO); 314 } 315 spin_unlock_irq(&connection->resource->req_lock); 316} 317 318static int drbd_thread_setup(void *arg) 319{ 320 struct drbd_thread *thi = (struct drbd_thread *) arg; 321 struct drbd_resource *resource = thi->resource; 322 unsigned long flags; 323 int retval; 324 325 snprintf(current->comm, sizeof(current->comm), "drbd_%c_%s", 326 thi->name[0], 327 resource->name); 328 329 allow_kernel_signal(DRBD_SIGKILL); 330 allow_kernel_signal(SIGXCPU); 331restart: 332 retval = thi->function(thi); 333 334 spin_lock_irqsave(&thi->t_lock, flags); 335 336 /* if the receiver has been "EXITING", the last thing it did 337 * was set the conn state to "StandAlone", 338 * if now a re-connect request comes in, conn state goes C_UNCONNECTED, 339 * and receiver thread will be "started". 340 * drbd_thread_start needs to set "RESTARTING" in that case. 341 * t_state check and assignment needs to be within the same spinlock, 342 * so either thread_start sees EXITING, and can remap to RESTARTING, 343 * or thread_start see NONE, and can proceed as normal. 344 */ 345 346 if (thi->t_state == RESTARTING) { 347 drbd_info(resource, "Restarting %s thread\n", thi->name); 348 thi->t_state = RUNNING; 349 spin_unlock_irqrestore(&thi->t_lock, flags); 350 goto restart; 351 } 352 353 thi->task = NULL; 354 thi->t_state = NONE; 355 smp_mb(); 356 complete_all(&thi->stop); 357 spin_unlock_irqrestore(&thi->t_lock, flags); 358 359 drbd_info(resource, "Terminating %s\n", current->comm); 360 361 /* Release mod reference taken when thread was started */ 362 363 if (thi->connection) 364 kref_put(&thi->connection->kref, drbd_destroy_connection); 365 kref_put(&resource->kref, drbd_destroy_resource); 366 module_put(THIS_MODULE); 367 return retval; 368} 369 370static void drbd_thread_init(struct drbd_resource *resource, struct drbd_thread *thi, 371 int (*func) (struct drbd_thread *), const char *name) 372{ 373 spin_lock_init(&thi->t_lock); 374 thi->task = NULL; 375 thi->t_state = NONE; 376 thi->function = func; 377 thi->resource = resource; 378 thi->connection = NULL; 379 thi->name = name; 380} 381 382int drbd_thread_start(struct drbd_thread *thi) 383{ 384 struct drbd_resource *resource = thi->resource; 385 struct task_struct *nt; 386 unsigned long flags; 387 388 /* is used from state engine doing drbd_thread_stop_nowait, 389 * while holding the req lock irqsave */ 390 spin_lock_irqsave(&thi->t_lock, flags); 391 392 switch (thi->t_state) { 393 case NONE: 394 drbd_info(resource, "Starting %s thread (from %s [%d])\n", 395 thi->name, current->comm, current->pid); 396 397 /* Get ref on module for thread - this is released when thread exits */ 398 if (!try_module_get(THIS_MODULE)) { 399 drbd_err(resource, "Failed to get module reference in drbd_thread_start\n"); 400 spin_unlock_irqrestore(&thi->t_lock, flags); 401 return false; 402 } 403 404 kref_get(&resource->kref); 405 if (thi->connection) 406 kref_get(&thi->connection->kref); 407 408 init_completion(&thi->stop); 409 thi->reset_cpu_mask = 1; 410 thi->t_state = RUNNING; 411 spin_unlock_irqrestore(&thi->t_lock, flags); 412 flush_signals(current); /* otherw. may get -ERESTARTNOINTR */ 413 414 nt = kthread_create(drbd_thread_setup, (void *) thi, 415 "drbd_%c_%s", thi->name[0], thi->resource->name); 416 417 if (IS_ERR(nt)) { 418 drbd_err(resource, "Couldn't start thread\n"); 419 420 if (thi->connection) 421 kref_put(&thi->connection->kref, drbd_destroy_connection); 422 kref_put(&resource->kref, drbd_destroy_resource); 423 module_put(THIS_MODULE); 424 return false; 425 } 426 spin_lock_irqsave(&thi->t_lock, flags); 427 thi->task = nt; 428 thi->t_state = RUNNING; 429 spin_unlock_irqrestore(&thi->t_lock, flags); 430 wake_up_process(nt); 431 break; 432 case EXITING: 433 thi->t_state = RESTARTING; 434 drbd_info(resource, "Restarting %s thread (from %s [%d])\n", 435 thi->name, current->comm, current->pid); 436 fallthrough; 437 case RUNNING: 438 case RESTARTING: 439 default: 440 spin_unlock_irqrestore(&thi->t_lock, flags); 441 break; 442 } 443 444 return true; 445} 446 447 448void _drbd_thread_stop(struct drbd_thread *thi, int restart, int wait) 449{ 450 unsigned long flags; 451 452 enum drbd_thread_state ns = restart ? RESTARTING : EXITING; 453 454 /* may be called from state engine, holding the req lock irqsave */ 455 spin_lock_irqsave(&thi->t_lock, flags); 456 457 if (thi->t_state == NONE) { 458 spin_unlock_irqrestore(&thi->t_lock, flags); 459 if (restart) 460 drbd_thread_start(thi); 461 return; 462 } 463 464 if (thi->t_state != ns) { 465 if (thi->task == NULL) { 466 spin_unlock_irqrestore(&thi->t_lock, flags); 467 return; 468 } 469 470 thi->t_state = ns; 471 smp_mb(); 472 init_completion(&thi->stop); 473 if (thi->task != current) 474 send_sig(DRBD_SIGKILL, thi->task, 1); 475 } 476 477 spin_unlock_irqrestore(&thi->t_lock, flags); 478 479 if (wait) 480 wait_for_completion(&thi->stop); 481} 482 483int conn_lowest_minor(struct drbd_connection *connection) 484{ 485 struct drbd_peer_device *peer_device; 486 int vnr = 0, minor = -1; 487 488 rcu_read_lock(); 489 peer_device = idr_get_next(&connection->peer_devices, &vnr); 490 if (peer_device) 491 minor = device_to_minor(peer_device->device); 492 rcu_read_unlock(); 493 494 return minor; 495} 496 497#ifdef CONFIG_SMP 498/** 499 * drbd_calc_cpu_mask() - Generate CPU masks, spread over all CPUs 500 * 501 * Forces all threads of a resource onto the same CPU. This is beneficial for 502 * DRBD's performance. May be overwritten by user's configuration. 503 */ 504static void drbd_calc_cpu_mask(cpumask_var_t *cpu_mask) 505{ 506 unsigned int *resources_per_cpu, min_index = ~0; 507 508 resources_per_cpu = kcalloc(nr_cpu_ids, sizeof(*resources_per_cpu), 509 GFP_KERNEL); 510 if (resources_per_cpu) { 511 struct drbd_resource *resource; 512 unsigned int cpu, min = ~0; 513 514 rcu_read_lock(); 515 for_each_resource_rcu(resource, &drbd_resources) { 516 for_each_cpu(cpu, resource->cpu_mask) 517 resources_per_cpu[cpu]++; 518 } 519 rcu_read_unlock(); 520 for_each_online_cpu(cpu) { 521 if (resources_per_cpu[cpu] < min) { 522 min = resources_per_cpu[cpu]; 523 min_index = cpu; 524 } 525 } 526 kfree(resources_per_cpu); 527 } 528 if (min_index == ~0) { 529 cpumask_setall(*cpu_mask); 530 return; 531 } 532 cpumask_set_cpu(min_index, *cpu_mask); 533} 534 535/** 536 * drbd_thread_current_set_cpu() - modifies the cpu mask of the _current_ thread 537 * @device: DRBD device. 538 * @thi: drbd_thread object 539 * 540 * call in the "main loop" of _all_ threads, no need for any mutex, current won't die 541 * prematurely. 542 */ 543void drbd_thread_current_set_cpu(struct drbd_thread *thi) 544{ 545 struct drbd_resource *resource = thi->resource; 546 struct task_struct *p = current; 547 548 if (!thi->reset_cpu_mask) 549 return; 550 thi->reset_cpu_mask = 0; 551 set_cpus_allowed_ptr(p, resource->cpu_mask); 552} 553#else 554#define drbd_calc_cpu_mask(A) ({}) 555#endif 556 557/** 558 * drbd_header_size - size of a packet header 559 * 560 * The header size is a multiple of 8, so any payload following the header is 561 * word aligned on 64-bit architectures. (The bitmap send and receive code 562 * relies on this.) 563 */ 564unsigned int drbd_header_size(struct drbd_connection *connection) 565{ 566 if (connection->agreed_pro_version >= 100) { 567 BUILD_BUG_ON(!IS_ALIGNED(sizeof(struct p_header100), 8)); 568 return sizeof(struct p_header100); 569 } else { 570 BUILD_BUG_ON(sizeof(struct p_header80) != 571 sizeof(struct p_header95)); 572 BUILD_BUG_ON(!IS_ALIGNED(sizeof(struct p_header80), 8)); 573 return sizeof(struct p_header80); 574 } 575} 576 577static unsigned int prepare_header80(struct p_header80 *h, enum drbd_packet cmd, int size) 578{ 579 h->magic = cpu_to_be32(DRBD_MAGIC); 580 h->command = cpu_to_be16(cmd); 581 h->length = cpu_to_be16(size); 582 return sizeof(struct p_header80); 583} 584 585static unsigned int prepare_header95(struct p_header95 *h, enum drbd_packet cmd, int size) 586{ 587 h->magic = cpu_to_be16(DRBD_MAGIC_BIG); 588 h->command = cpu_to_be16(cmd); 589 h->length = cpu_to_be32(size); 590 return sizeof(struct p_header95); 591} 592 593static unsigned int prepare_header100(struct p_header100 *h, enum drbd_packet cmd, 594 int size, int vnr) 595{ 596 h->magic = cpu_to_be32(DRBD_MAGIC_100); 597 h->volume = cpu_to_be16(vnr); 598 h->command = cpu_to_be16(cmd); 599 h->length = cpu_to_be32(size); 600 h->pad = 0; 601 return sizeof(struct p_header100); 602} 603 604static unsigned int prepare_header(struct drbd_connection *connection, int vnr, 605 void *buffer, enum drbd_packet cmd, int size) 606{ 607 if (connection->agreed_pro_version >= 100) 608 return prepare_header100(buffer, cmd, size, vnr); 609 else if (connection->agreed_pro_version >= 95 && 610 size > DRBD_MAX_SIZE_H80_PACKET) 611 return prepare_header95(buffer, cmd, size); 612 else 613 return prepare_header80(buffer, cmd, size); 614} 615 616static void *__conn_prepare_command(struct drbd_connection *connection, 617 struct drbd_socket *sock) 618{ 619 if (!sock->socket) 620 return NULL; 621 return sock->sbuf + drbd_header_size(connection); 622} 623 624void *conn_prepare_command(struct drbd_connection *connection, struct drbd_socket *sock) 625{ 626 void *p; 627 628 mutex_lock(&sock->mutex); 629 p = __conn_prepare_command(connection, sock); 630 if (!p) 631 mutex_unlock(&sock->mutex); 632 633 return p; 634} 635 636void *drbd_prepare_command(struct drbd_peer_device *peer_device, struct drbd_socket *sock) 637{ 638 return conn_prepare_command(peer_device->connection, sock); 639} 640 641static int __send_command(struct drbd_connection *connection, int vnr, 642 struct drbd_socket *sock, enum drbd_packet cmd, 643 unsigned int header_size, void *data, 644 unsigned int size) 645{ 646 int msg_flags; 647 int err; 648 649 /* 650 * Called with @data == NULL and the size of the data blocks in @size 651 * for commands that send data blocks. For those commands, omit the 652 * MSG_MORE flag: this will increase the likelihood that data blocks 653 * which are page aligned on the sender will end up page aligned on the 654 * receiver. 655 */ 656 msg_flags = data ? MSG_MORE : 0; 657 658 header_size += prepare_header(connection, vnr, sock->sbuf, cmd, 659 header_size + size); 660 err = drbd_send_all(connection, sock->socket, sock->sbuf, header_size, 661 msg_flags); 662 if (data && !err) 663 err = drbd_send_all(connection, sock->socket, data, size, 0); 664 /* DRBD protocol "pings" are latency critical. 665 * This is supposed to trigger tcp_push_pending_frames() */ 666 if (!err && (cmd == P_PING || cmd == P_PING_ACK)) 667 tcp_sock_set_nodelay(sock->socket->sk); 668 669 return err; 670} 671 672static int __conn_send_command(struct drbd_connection *connection, struct drbd_socket *sock, 673 enum drbd_packet cmd, unsigned int header_size, 674 void *data, unsigned int size) 675{ 676 return __send_command(connection, 0, sock, cmd, header_size, data, size); 677} 678 679int conn_send_command(struct drbd_connection *connection, struct drbd_socket *sock, 680 enum drbd_packet cmd, unsigned int header_size, 681 void *data, unsigned int size) 682{ 683 int err; 684 685 err = __conn_send_command(connection, sock, cmd, header_size, data, size); 686 mutex_unlock(&sock->mutex); 687 return err; 688} 689 690int drbd_send_command(struct drbd_peer_device *peer_device, struct drbd_socket *sock, 691 enum drbd_packet cmd, unsigned int header_size, 692 void *data, unsigned int size) 693{ 694 int err; 695 696 err = __send_command(peer_device->connection, peer_device->device->vnr, 697 sock, cmd, header_size, data, size); 698 mutex_unlock(&sock->mutex); 699 return err; 700} 701 702int drbd_send_ping(struct drbd_connection *connection) 703{ 704 struct drbd_socket *sock; 705 706 sock = &connection->meta; 707 if (!conn_prepare_command(connection, sock)) 708 return -EIO; 709 return conn_send_command(connection, sock, P_PING, 0, NULL, 0); 710} 711 712int drbd_send_ping_ack(struct drbd_connection *connection) 713{ 714 struct drbd_socket *sock; 715 716 sock = &connection->meta; 717 if (!conn_prepare_command(connection, sock)) 718 return -EIO; 719 return conn_send_command(connection, sock, P_PING_ACK, 0, NULL, 0); 720} 721 722int drbd_send_sync_param(struct drbd_peer_device *peer_device) 723{ 724 struct drbd_socket *sock; 725 struct p_rs_param_95 *p; 726 int size; 727 const int apv = peer_device->connection->agreed_pro_version; 728 enum drbd_packet cmd; 729 struct net_conf *nc; 730 struct disk_conf *dc; 731 732 sock = &peer_device->connection->data; 733 p = drbd_prepare_command(peer_device, sock); 734 if (!p) 735 return -EIO; 736 737 rcu_read_lock(); 738 nc = rcu_dereference(peer_device->connection->net_conf); 739 740 size = apv <= 87 ? sizeof(struct p_rs_param) 741 : apv == 88 ? sizeof(struct p_rs_param) 742 + strlen(nc->verify_alg) + 1 743 : apv <= 94 ? sizeof(struct p_rs_param_89) 744 : /* apv >= 95 */ sizeof(struct p_rs_param_95); 745 746 cmd = apv >= 89 ? P_SYNC_PARAM89 : P_SYNC_PARAM; 747 748 /* initialize verify_alg and csums_alg */ 749 memset(p->verify_alg, 0, 2 * SHARED_SECRET_MAX); 750 751 if (get_ldev(peer_device->device)) { 752 dc = rcu_dereference(peer_device->device->ldev->disk_conf); 753 p->resync_rate = cpu_to_be32(dc->resync_rate); 754 p->c_plan_ahead = cpu_to_be32(dc->c_plan_ahead); 755 p->c_delay_target = cpu_to_be32(dc->c_delay_target); 756 p->c_fill_target = cpu_to_be32(dc->c_fill_target); 757 p->c_max_rate = cpu_to_be32(dc->c_max_rate); 758 put_ldev(peer_device->device); 759 } else { 760 p->resync_rate = cpu_to_be32(DRBD_RESYNC_RATE_DEF); 761 p->c_plan_ahead = cpu_to_be32(DRBD_C_PLAN_AHEAD_DEF); 762 p->c_delay_target = cpu_to_be32(DRBD_C_DELAY_TARGET_DEF); 763 p->c_fill_target = cpu_to_be32(DRBD_C_FILL_TARGET_DEF); 764 p->c_max_rate = cpu_to_be32(DRBD_C_MAX_RATE_DEF); 765 } 766 767 if (apv >= 88) 768 strcpy(p->verify_alg, nc->verify_alg); 769 if (apv >= 89) 770 strcpy(p->csums_alg, nc->csums_alg); 771 rcu_read_unlock(); 772 773 return drbd_send_command(peer_device, sock, cmd, size, NULL, 0); 774} 775 776int __drbd_send_protocol(struct drbd_connection *connection, enum drbd_packet cmd) 777{ 778 struct drbd_socket *sock; 779 struct p_protocol *p; 780 struct net_conf *nc; 781 int size, cf; 782 783 sock = &connection->data; 784 p = __conn_prepare_command(connection, sock); 785 if (!p) 786 return -EIO; 787 788 rcu_read_lock(); 789 nc = rcu_dereference(connection->net_conf); 790 791 if (nc->tentative && connection->agreed_pro_version < 92) { 792 rcu_read_unlock(); 793 drbd_err(connection, "--dry-run is not supported by peer"); 794 return -EOPNOTSUPP; 795 } 796 797 size = sizeof(*p); 798 if (connection->agreed_pro_version >= 87) 799 size += strlen(nc->integrity_alg) + 1; 800 801 p->protocol = cpu_to_be32(nc->wire_protocol); 802 p->after_sb_0p = cpu_to_be32(nc->after_sb_0p); 803 p->after_sb_1p = cpu_to_be32(nc->after_sb_1p); 804 p->after_sb_2p = cpu_to_be32(nc->after_sb_2p); 805 p->two_primaries = cpu_to_be32(nc->two_primaries); 806 cf = 0; 807 if (nc->discard_my_data) 808 cf |= CF_DISCARD_MY_DATA; 809 if (nc->tentative) 810 cf |= CF_DRY_RUN; 811 p->conn_flags = cpu_to_be32(cf); 812 813 if (connection->agreed_pro_version >= 87) 814 strcpy(p->integrity_alg, nc->integrity_alg); 815 rcu_read_unlock(); 816 817 return __conn_send_command(connection, sock, cmd, size, NULL, 0); 818} 819 820int drbd_send_protocol(struct drbd_connection *connection) 821{ 822 int err; 823 824 mutex_lock(&connection->data.mutex); 825 err = __drbd_send_protocol(connection, P_PROTOCOL); 826 mutex_unlock(&connection->data.mutex); 827 828 return err; 829} 830 831static int _drbd_send_uuids(struct drbd_peer_device *peer_device, u64 uuid_flags) 832{ 833 struct drbd_device *device = peer_device->device; 834 struct drbd_socket *sock; 835 struct p_uuids *p; 836 int i; 837 838 if (!get_ldev_if_state(device, D_NEGOTIATING)) 839 return 0; 840 841 sock = &peer_device->connection->data; 842 p = drbd_prepare_command(peer_device, sock); 843 if (!p) { 844 put_ldev(device); 845 return -EIO; 846 } 847 spin_lock_irq(&device->ldev->md.uuid_lock); 848 for (i = UI_CURRENT; i < UI_SIZE; i++) 849 p->uuid[i] = cpu_to_be64(device->ldev->md.uuid[i]); 850 spin_unlock_irq(&device->ldev->md.uuid_lock); 851 852 device->comm_bm_set = drbd_bm_total_weight(device); 853 p->uuid[UI_SIZE] = cpu_to_be64(device->comm_bm_set); 854 rcu_read_lock(); 855 uuid_flags |= rcu_dereference(peer_device->connection->net_conf)->discard_my_data ? 1 : 0; 856 rcu_read_unlock(); 857 uuid_flags |= test_bit(CRASHED_PRIMARY, &device->flags) ? 2 : 0; 858 uuid_flags |= device->new_state_tmp.disk == D_INCONSISTENT ? 4 : 0; 859 p->uuid[UI_FLAGS] = cpu_to_be64(uuid_flags); 860 861 put_ldev(device); 862 return drbd_send_command(peer_device, sock, P_UUIDS, sizeof(*p), NULL, 0); 863} 864 865int drbd_send_uuids(struct drbd_peer_device *peer_device) 866{ 867 return _drbd_send_uuids(peer_device, 0); 868} 869 870int drbd_send_uuids_skip_initial_sync(struct drbd_peer_device *peer_device) 871{ 872 return _drbd_send_uuids(peer_device, 8); 873} 874 875void drbd_print_uuids(struct drbd_device *device, const char *text) 876{ 877 if (get_ldev_if_state(device, D_NEGOTIATING)) { 878 u64 *uuid = device->ldev->md.uuid; 879 drbd_info(device, "%s %016llX:%016llX:%016llX:%016llX\n", 880 text, 881 (unsigned long long)uuid[UI_CURRENT], 882 (unsigned long long)uuid[UI_BITMAP], 883 (unsigned long long)uuid[UI_HISTORY_START], 884 (unsigned long long)uuid[UI_HISTORY_END]); 885 put_ldev(device); 886 } else { 887 drbd_info(device, "%s effective data uuid: %016llX\n", 888 text, 889 (unsigned long long)device->ed_uuid); 890 } 891} 892 893void drbd_gen_and_send_sync_uuid(struct drbd_peer_device *peer_device) 894{ 895 struct drbd_device *device = peer_device->device; 896 struct drbd_socket *sock; 897 struct p_rs_uuid *p; 898 u64 uuid; 899 900 D_ASSERT(device, device->state.disk == D_UP_TO_DATE); 901 902 uuid = device->ldev->md.uuid[UI_BITMAP]; 903 if (uuid && uuid != UUID_JUST_CREATED) 904 uuid = uuid + UUID_NEW_BM_OFFSET; 905 else 906 get_random_bytes(&uuid, sizeof(u64)); 907 drbd_uuid_set(device, UI_BITMAP, uuid); 908 drbd_print_uuids(device, "updated sync UUID"); 909 drbd_md_sync(device); 910 911 sock = &peer_device->connection->data; 912 p = drbd_prepare_command(peer_device, sock); 913 if (p) { 914 p->uuid = cpu_to_be64(uuid); 915 drbd_send_command(peer_device, sock, P_SYNC_UUID, sizeof(*p), NULL, 0); 916 } 917} 918 919/* communicated if (agreed_features & DRBD_FF_WSAME) */ 920static void 921assign_p_sizes_qlim(struct drbd_device *device, struct p_sizes *p, 922 struct request_queue *q) 923{ 924 if (q) { 925 p->qlim->physical_block_size = cpu_to_be32(queue_physical_block_size(q)); 926 p->qlim->logical_block_size = cpu_to_be32(queue_logical_block_size(q)); 927 p->qlim->alignment_offset = cpu_to_be32(queue_alignment_offset(q)); 928 p->qlim->io_min = cpu_to_be32(queue_io_min(q)); 929 p->qlim->io_opt = cpu_to_be32(queue_io_opt(q)); 930 p->qlim->discard_enabled = blk_queue_discard(q); 931 p->qlim->write_same_capable = !!q->limits.max_write_same_sectors; 932 } else { 933 q = device->rq_queue; 934 p->qlim->physical_block_size = cpu_to_be32(queue_physical_block_size(q)); 935 p->qlim->logical_block_size = cpu_to_be32(queue_logical_block_size(q)); 936 p->qlim->alignment_offset = 0; 937 p->qlim->io_min = cpu_to_be32(queue_io_min(q)); 938 p->qlim->io_opt = cpu_to_be32(queue_io_opt(q)); 939 p->qlim->discard_enabled = 0; 940 p->qlim->write_same_capable = 0; 941 } 942} 943 944int drbd_send_sizes(struct drbd_peer_device *peer_device, int trigger_reply, enum dds_flags flags) 945{ 946 struct drbd_device *device = peer_device->device; 947 struct drbd_socket *sock; 948 struct p_sizes *p; 949 sector_t d_size, u_size; 950 int q_order_type; 951 unsigned int max_bio_size; 952 unsigned int packet_size; 953 954 sock = &peer_device->connection->data; 955 p = drbd_prepare_command(peer_device, sock); 956 if (!p) 957 return -EIO; 958 959 packet_size = sizeof(*p); 960 if (peer_device->connection->agreed_features & DRBD_FF_WSAME) 961 packet_size += sizeof(p->qlim[0]); 962 963 memset(p, 0, packet_size); 964 if (get_ldev_if_state(device, D_NEGOTIATING)) { 965 struct request_queue *q = bdev_get_queue(device->ldev->backing_bdev); 966 d_size = drbd_get_max_capacity(device->ldev); 967 rcu_read_lock(); 968 u_size = rcu_dereference(device->ldev->disk_conf)->disk_size; 969 rcu_read_unlock(); 970 q_order_type = drbd_queue_order_type(device); 971 max_bio_size = queue_max_hw_sectors(q) << 9; 972 max_bio_size = min(max_bio_size, DRBD_MAX_BIO_SIZE); 973 assign_p_sizes_qlim(device, p, q); 974 put_ldev(device); 975 } else { 976 d_size = 0; 977 u_size = 0; 978 q_order_type = QUEUE_ORDERED_NONE; 979 max_bio_size = DRBD_MAX_BIO_SIZE; /* ... multiple BIOs per peer_request */ 980 assign_p_sizes_qlim(device, p, NULL); 981 } 982 983 if (peer_device->connection->agreed_pro_version <= 94) 984 max_bio_size = min(max_bio_size, DRBD_MAX_SIZE_H80_PACKET); 985 else if (peer_device->connection->agreed_pro_version < 100) 986 max_bio_size = min(max_bio_size, DRBD_MAX_BIO_SIZE_P95); 987 988 p->d_size = cpu_to_be64(d_size); 989 p->u_size = cpu_to_be64(u_size); 990 if (trigger_reply) 991 p->c_size = 0; 992 else 993 p->c_size = cpu_to_be64(get_capacity(device->vdisk)); 994 p->max_bio_size = cpu_to_be32(max_bio_size); 995 p->queue_order_type = cpu_to_be16(q_order_type); 996 p->dds_flags = cpu_to_be16(flags); 997 998 return drbd_send_command(peer_device, sock, P_SIZES, packet_size, NULL, 0); 999} 1000 1001/** 1002 * drbd_send_current_state() - Sends the drbd state to the peer 1003 * @peer_device: DRBD peer device. 1004 */ 1005int drbd_send_current_state(struct drbd_peer_device *peer_device) 1006{ 1007 struct drbd_socket *sock; 1008 struct p_state *p; 1009 1010 sock = &peer_device->connection->data; 1011 p = drbd_prepare_command(peer_device, sock); 1012 if (!p) 1013 return -EIO; 1014 p->state = cpu_to_be32(peer_device->device->state.i); /* Within the send mutex */ 1015 return drbd_send_command(peer_device, sock, P_STATE, sizeof(*p), NULL, 0); 1016} 1017 1018/** 1019 * drbd_send_state() - After a state change, sends the new state to the peer 1020 * @peer_device: DRBD peer device. 1021 * @state: the state to send, not necessarily the current state. 1022 * 1023 * Each state change queues an "after_state_ch" work, which will eventually 1024 * send the resulting new state to the peer. If more state changes happen 1025 * between queuing and processing of the after_state_ch work, we still 1026 * want to send each intermediary state in the order it occurred. 1027 */ 1028int drbd_send_state(struct drbd_peer_device *peer_device, union drbd_state state) 1029{ 1030 struct drbd_socket *sock; 1031 struct p_state *p; 1032 1033 sock = &peer_device->connection->data; 1034 p = drbd_prepare_command(peer_device, sock); 1035 if (!p) 1036 return -EIO; 1037 p->state = cpu_to_be32(state.i); /* Within the send mutex */ 1038 return drbd_send_command(peer_device, sock, P_STATE, sizeof(*p), NULL, 0); 1039} 1040 1041int drbd_send_state_req(struct drbd_peer_device *peer_device, union drbd_state mask, union drbd_state val) 1042{ 1043 struct drbd_socket *sock; 1044 struct p_req_state *p; 1045 1046 sock = &peer_device->connection->data; 1047 p = drbd_prepare_command(peer_device, sock); 1048 if (!p) 1049 return -EIO; 1050 p->mask = cpu_to_be32(mask.i); 1051 p->val = cpu_to_be32(val.i); 1052 return drbd_send_command(peer_device, sock, P_STATE_CHG_REQ, sizeof(*p), NULL, 0); 1053} 1054 1055int conn_send_state_req(struct drbd_connection *connection, union drbd_state mask, union drbd_state val) 1056{ 1057 enum drbd_packet cmd; 1058 struct drbd_socket *sock; 1059 struct p_req_state *p; 1060 1061 cmd = connection->agreed_pro_version < 100 ? P_STATE_CHG_REQ : P_CONN_ST_CHG_REQ; 1062 sock = &connection->data; 1063 p = conn_prepare_command(connection, sock); 1064 if (!p) 1065 return -EIO; 1066 p->mask = cpu_to_be32(mask.i); 1067 p->val = cpu_to_be32(val.i); 1068 return conn_send_command(connection, sock, cmd, sizeof(*p), NULL, 0); 1069} 1070 1071void drbd_send_sr_reply(struct drbd_peer_device *peer_device, enum drbd_state_rv retcode) 1072{ 1073 struct drbd_socket *sock; 1074 struct p_req_state_reply *p; 1075 1076 sock = &peer_device->connection->meta; 1077 p = drbd_prepare_command(peer_device, sock); 1078 if (p) { 1079 p->retcode = cpu_to_be32(retcode); 1080 drbd_send_command(peer_device, sock, P_STATE_CHG_REPLY, sizeof(*p), NULL, 0); 1081 } 1082} 1083 1084void conn_send_sr_reply(struct drbd_connection *connection, enum drbd_state_rv retcode) 1085{ 1086 struct drbd_socket *sock; 1087 struct p_req_state_reply *p; 1088 enum drbd_packet cmd = connection->agreed_pro_version < 100 ? P_STATE_CHG_REPLY : P_CONN_ST_CHG_REPLY; 1089 1090 sock = &connection->meta; 1091 p = conn_prepare_command(connection, sock); 1092 if (p) { 1093 p->retcode = cpu_to_be32(retcode); 1094 conn_send_command(connection, sock, cmd, sizeof(*p), NULL, 0); 1095 } 1096} 1097 1098static void dcbp_set_code(struct p_compressed_bm *p, enum drbd_bitmap_code code) 1099{ 1100 BUG_ON(code & ~0xf); 1101 p->encoding = (p->encoding & ~0xf) | code; 1102} 1103 1104static void dcbp_set_start(struct p_compressed_bm *p, int set) 1105{ 1106 p->encoding = (p->encoding & ~0x80) | (set ? 0x80 : 0); 1107} 1108 1109static void dcbp_set_pad_bits(struct p_compressed_bm *p, int n) 1110{ 1111 BUG_ON(n & ~0x7); 1112 p->encoding = (p->encoding & (~0x7 << 4)) | (n << 4); 1113} 1114 1115static int fill_bitmap_rle_bits(struct drbd_device *device, 1116 struct p_compressed_bm *p, 1117 unsigned int size, 1118 struct bm_xfer_ctx *c) 1119{ 1120 struct bitstream bs; 1121 unsigned long plain_bits; 1122 unsigned long tmp; 1123 unsigned long rl; 1124 unsigned len; 1125 unsigned toggle; 1126 int bits, use_rle; 1127 1128 /* may we use this feature? */ 1129 rcu_read_lock(); 1130 use_rle = rcu_dereference(first_peer_device(device)->connection->net_conf)->use_rle; 1131 rcu_read_unlock(); 1132 if (!use_rle || first_peer_device(device)->connection->agreed_pro_version < 90) 1133 return 0; 1134 1135 if (c->bit_offset >= c->bm_bits) 1136 return 0; /* nothing to do. */ 1137 1138 /* use at most thus many bytes */ 1139 bitstream_init(&bs, p->code, size, 0); 1140 memset(p->code, 0, size); 1141 /* plain bits covered in this code string */ 1142 plain_bits = 0; 1143 1144 /* p->encoding & 0x80 stores whether the first run length is set. 1145 * bit offset is implicit. 1146 * start with toggle == 2 to be able to tell the first iteration */ 1147 toggle = 2; 1148 1149 /* see how much plain bits we can stuff into one packet 1150 * using RLE and VLI. */ 1151 do { 1152 tmp = (toggle == 0) ? _drbd_bm_find_next_zero(device, c->bit_offset) 1153 : _drbd_bm_find_next(device, c->bit_offset); 1154 if (tmp == -1UL) 1155 tmp = c->bm_bits; 1156 rl = tmp - c->bit_offset; 1157 1158 if (toggle == 2) { /* first iteration */ 1159 if (rl == 0) { 1160 /* the first checked bit was set, 1161 * store start value, */ 1162 dcbp_set_start(p, 1); 1163 /* but skip encoding of zero run length */ 1164 toggle = !toggle; 1165 continue; 1166 } 1167 dcbp_set_start(p, 0); 1168 } 1169 1170 /* paranoia: catch zero runlength. 1171 * can only happen if bitmap is modified while we scan it. */ 1172 if (rl == 0) { 1173 drbd_err(device, "unexpected zero runlength while encoding bitmap " 1174 "t:%u bo:%lu\n", toggle, c->bit_offset); 1175 return -1; 1176 } 1177 1178 bits = vli_encode_bits(&bs, rl); 1179 if (bits == -ENOBUFS) /* buffer full */ 1180 break; 1181 if (bits <= 0) { 1182 drbd_err(device, "error while encoding bitmap: %d\n", bits); 1183 return 0; 1184 } 1185 1186 toggle = !toggle; 1187 plain_bits += rl; 1188 c->bit_offset = tmp; 1189 } while (c->bit_offset < c->bm_bits); 1190 1191 len = bs.cur.b - p->code + !!bs.cur.bit; 1192 1193 if (plain_bits < (len << 3)) { 1194 /* incompressible with this method. 1195 * we need to rewind both word and bit position. */ 1196 c->bit_offset -= plain_bits; 1197 bm_xfer_ctx_bit_to_word_offset(c); 1198 c->bit_offset = c->word_offset * BITS_PER_LONG; 1199 return 0; 1200 } 1201 1202 /* RLE + VLI was able to compress it just fine. 1203 * update c->word_offset. */ 1204 bm_xfer_ctx_bit_to_word_offset(c); 1205 1206 /* store pad_bits */ 1207 dcbp_set_pad_bits(p, (8 - bs.cur.bit) & 0x7); 1208 1209 return len; 1210} 1211 1212/** 1213 * send_bitmap_rle_or_plain 1214 * 1215 * Return 0 when done, 1 when another iteration is needed, and a negative error 1216 * code upon failure. 1217 */ 1218static int 1219send_bitmap_rle_or_plain(struct drbd_device *device, struct bm_xfer_ctx *c) 1220{ 1221 struct drbd_socket *sock = &first_peer_device(device)->connection->data; 1222 unsigned int header_size = drbd_header_size(first_peer_device(device)->connection); 1223 struct p_compressed_bm *p = sock->sbuf + header_size; 1224 int len, err; 1225 1226 len = fill_bitmap_rle_bits(device, p, 1227 DRBD_SOCKET_BUFFER_SIZE - header_size - sizeof(*p), c); 1228 if (len < 0) 1229 return -EIO; 1230 1231 if (len) { 1232 dcbp_set_code(p, RLE_VLI_Bits); 1233 err = __send_command(first_peer_device(device)->connection, device->vnr, sock, 1234 P_COMPRESSED_BITMAP, sizeof(*p) + len, 1235 NULL, 0); 1236 c->packets[0]++; 1237 c->bytes[0] += header_size + sizeof(*p) + len; 1238 1239 if (c->bit_offset >= c->bm_bits) 1240 len = 0; /* DONE */ 1241 } else { 1242 /* was not compressible. 1243 * send a buffer full of plain text bits instead. */ 1244 unsigned int data_size; 1245 unsigned long num_words; 1246 unsigned long *p = sock->sbuf + header_size; 1247 1248 data_size = DRBD_SOCKET_BUFFER_SIZE - header_size; 1249 num_words = min_t(size_t, data_size / sizeof(*p), 1250 c->bm_words - c->word_offset); 1251 len = num_words * sizeof(*p); 1252 if (len) 1253 drbd_bm_get_lel(device, c->word_offset, num_words, p); 1254 err = __send_command(first_peer_device(device)->connection, device->vnr, sock, P_BITMAP, len, NULL, 0); 1255 c->word_offset += num_words; 1256 c->bit_offset = c->word_offset * BITS_PER_LONG; 1257 1258 c->packets[1]++; 1259 c->bytes[1] += header_size + len; 1260 1261 if (c->bit_offset > c->bm_bits) 1262 c->bit_offset = c->bm_bits; 1263 } 1264 if (!err) { 1265 if (len == 0) { 1266 INFO_bm_xfer_stats(device, "send", c); 1267 return 0; 1268 } else 1269 return 1; 1270 } 1271 return -EIO; 1272} 1273 1274/* See the comment at receive_bitmap() */ 1275static int _drbd_send_bitmap(struct drbd_device *device) 1276{ 1277 struct bm_xfer_ctx c; 1278 int err; 1279 1280 if (!expect(device->bitmap)) 1281 return false; 1282 1283 if (get_ldev(device)) { 1284 if (drbd_md_test_flag(device->ldev, MDF_FULL_SYNC)) { 1285 drbd_info(device, "Writing the whole bitmap, MDF_FullSync was set.\n"); 1286 drbd_bm_set_all(device); 1287 if (drbd_bm_write(device)) { 1288 /* write_bm did fail! Leave full sync flag set in Meta P_DATA 1289 * but otherwise process as per normal - need to tell other 1290 * side that a full resync is required! */ 1291 drbd_err(device, "Failed to write bitmap to disk!\n"); 1292 } else { 1293 drbd_md_clear_flag(device, MDF_FULL_SYNC); 1294 drbd_md_sync(device); 1295 } 1296 } 1297 put_ldev(device); 1298 } 1299 1300 c = (struct bm_xfer_ctx) { 1301 .bm_bits = drbd_bm_bits(device), 1302 .bm_words = drbd_bm_words(device), 1303 }; 1304 1305 do { 1306 err = send_bitmap_rle_or_plain(device, &c); 1307 } while (err > 0); 1308 1309 return err == 0; 1310} 1311 1312int drbd_send_bitmap(struct drbd_device *device) 1313{ 1314 struct drbd_socket *sock = &first_peer_device(device)->connection->data; 1315 int err = -1; 1316 1317 mutex_lock(&sock->mutex); 1318 if (sock->socket) 1319 err = !_drbd_send_bitmap(device); 1320 mutex_unlock(&sock->mutex); 1321 return err; 1322} 1323 1324void drbd_send_b_ack(struct drbd_connection *connection, u32 barrier_nr, u32 set_size) 1325{ 1326 struct drbd_socket *sock; 1327 struct p_barrier_ack *p; 1328 1329 if (connection->cstate < C_WF_REPORT_PARAMS) 1330 return; 1331 1332 sock = &connection->meta; 1333 p = conn_prepare_command(connection, sock); 1334 if (!p) 1335 return; 1336 p->barrier = barrier_nr; 1337 p->set_size = cpu_to_be32(set_size); 1338 conn_send_command(connection, sock, P_BARRIER_ACK, sizeof(*p), NULL, 0); 1339} 1340 1341/** 1342 * _drbd_send_ack() - Sends an ack packet 1343 * @device: DRBD device. 1344 * @cmd: Packet command code. 1345 * @sector: sector, needs to be in big endian byte order 1346 * @blksize: size in byte, needs to be in big endian byte order 1347 * @block_id: Id, big endian byte order 1348 */ 1349static int _drbd_send_ack(struct drbd_peer_device *peer_device, enum drbd_packet cmd, 1350 u64 sector, u32 blksize, u64 block_id) 1351{ 1352 struct drbd_socket *sock; 1353 struct p_block_ack *p; 1354 1355 if (peer_device->device->state.conn < C_CONNECTED) 1356 return -EIO; 1357 1358 sock = &peer_device->connection->meta; 1359 p = drbd_prepare_command(peer_device, sock); 1360 if (!p) 1361 return -EIO; 1362 p->sector = sector; 1363 p->block_id = block_id; 1364 p->blksize = blksize; 1365 p->seq_num = cpu_to_be32(atomic_inc_return(&peer_device->device->packet_seq)); 1366 return drbd_send_command(peer_device, sock, cmd, sizeof(*p), NULL, 0); 1367} 1368 1369/* dp->sector and dp->block_id already/still in network byte order, 1370 * data_size is payload size according to dp->head, 1371 * and may need to be corrected for digest size. */ 1372void drbd_send_ack_dp(struct drbd_peer_device *peer_device, enum drbd_packet cmd, 1373 struct p_data *dp, int data_size) 1374{ 1375 if (peer_device->connection->peer_integrity_tfm) 1376 data_size -= crypto_shash_digestsize(peer_device->connection->peer_integrity_tfm); 1377 _drbd_send_ack(peer_device, cmd, dp->sector, cpu_to_be32(data_size), 1378 dp->block_id); 1379} 1380 1381void drbd_send_ack_rp(struct drbd_peer_device *peer_device, enum drbd_packet cmd, 1382 struct p_block_req *rp) 1383{ 1384 _drbd_send_ack(peer_device, cmd, rp->sector, rp->blksize, rp->block_id); 1385} 1386 1387/** 1388 * drbd_send_ack() - Sends an ack packet 1389 * @device: DRBD device 1390 * @cmd: packet command code 1391 * @peer_req: peer request 1392 */ 1393int drbd_send_ack(struct drbd_peer_device *peer_device, enum drbd_packet cmd, 1394 struct drbd_peer_request *peer_req) 1395{ 1396 return _drbd_send_ack(peer_device, cmd, 1397 cpu_to_be64(peer_req->i.sector), 1398 cpu_to_be32(peer_req->i.size), 1399 peer_req->block_id); 1400} 1401 1402/* This function misuses the block_id field to signal if the blocks 1403 * are is sync or not. */ 1404int drbd_send_ack_ex(struct drbd_peer_device *peer_device, enum drbd_packet cmd, 1405 sector_t sector, int blksize, u64 block_id) 1406{ 1407 return _drbd_send_ack(peer_device, cmd, 1408 cpu_to_be64(sector), 1409 cpu_to_be32(blksize), 1410 cpu_to_be64(block_id)); 1411} 1412 1413int drbd_send_rs_deallocated(struct drbd_peer_device *peer_device, 1414 struct drbd_peer_request *peer_req) 1415{ 1416 struct drbd_socket *sock; 1417 struct p_block_desc *p; 1418 1419 sock = &peer_device->connection->data; 1420 p = drbd_prepare_command(peer_device, sock); 1421 if (!p) 1422 return -EIO; 1423 p->sector = cpu_to_be64(peer_req->i.sector); 1424 p->blksize = cpu_to_be32(peer_req->i.size); 1425 p->pad = 0; 1426 return drbd_send_command(peer_device, sock, P_RS_DEALLOCATED, sizeof(*p), NULL, 0); 1427} 1428 1429int drbd_send_drequest(struct drbd_peer_device *peer_device, int cmd, 1430 sector_t sector, int size, u64 block_id) 1431{ 1432 struct drbd_socket *sock; 1433 struct p_block_req *p; 1434 1435 sock = &peer_device->connection->data; 1436 p = drbd_prepare_command(peer_device, sock); 1437 if (!p) 1438 return -EIO; 1439 p->sector = cpu_to_be64(sector); 1440 p->block_id = block_id; 1441 p->blksize = cpu_to_be32(size); 1442 return drbd_send_command(peer_device, sock, cmd, sizeof(*p), NULL, 0); 1443} 1444 1445int drbd_send_drequest_csum(struct drbd_peer_device *peer_device, sector_t sector, int size, 1446 void *digest, int digest_size, enum drbd_packet cmd) 1447{ 1448 struct drbd_socket *sock; 1449 struct p_block_req *p; 1450 1451 /* FIXME: Put the digest into the preallocated socket buffer. */ 1452 1453 sock = &peer_device->connection->data; 1454 p = drbd_prepare_command(peer_device, sock); 1455 if (!p) 1456 return -EIO; 1457 p->sector = cpu_to_be64(sector); 1458 p->block_id = ID_SYNCER /* unused */; 1459 p->blksize = cpu_to_be32(size); 1460 return drbd_send_command(peer_device, sock, cmd, sizeof(*p), digest, digest_size); 1461} 1462 1463int drbd_send_ov_request(struct drbd_peer_device *peer_device, sector_t sector, int size) 1464{ 1465 struct drbd_socket *sock; 1466 struct p_block_req *p; 1467 1468 sock = &peer_device->connection->data; 1469 p = drbd_prepare_command(peer_device, sock); 1470 if (!p) 1471 return -EIO; 1472 p->sector = cpu_to_be64(sector); 1473 p->block_id = ID_SYNCER /* unused */; 1474 p->blksize = cpu_to_be32(size); 1475 return drbd_send_command(peer_device, sock, P_OV_REQUEST, sizeof(*p), NULL, 0); 1476} 1477 1478/* called on sndtimeo 1479 * returns false if we should retry, 1480 * true if we think connection is dead 1481 */ 1482static int we_should_drop_the_connection(struct drbd_connection *connection, struct socket *sock) 1483{ 1484 int drop_it; 1485 /* long elapsed = (long)(jiffies - device->last_received); */ 1486 1487 drop_it = connection->meta.socket == sock 1488 || !connection->ack_receiver.task 1489 || get_t_state(&connection->ack_receiver) != RUNNING 1490 || connection->cstate < C_WF_REPORT_PARAMS; 1491 1492 if (drop_it) 1493 return true; 1494 1495 drop_it = !--connection->ko_count; 1496 if (!drop_it) { 1497 drbd_err(connection, "[%s/%d] sock_sendmsg time expired, ko = %u\n", 1498 current->comm, current->pid, connection->ko_count); 1499 request_ping(connection); 1500 } 1501 1502 return drop_it; /* && (device->state == R_PRIMARY) */; 1503} 1504 1505static void drbd_update_congested(struct drbd_connection *connection) 1506{ 1507 struct sock *sk = connection->data.socket->sk; 1508 if (sk->sk_wmem_queued > sk->sk_sndbuf * 4 / 5) 1509 set_bit(NET_CONGESTED, &connection->flags); 1510} 1511 1512/* The idea of sendpage seems to be to put some kind of reference 1513 * to the page into the skb, and to hand it over to the NIC. In 1514 * this process get_page() gets called. 1515 * 1516 * As soon as the page was really sent over the network put_page() 1517 * gets called by some part of the network layer. [ NIC driver? ] 1518 * 1519 * [ get_page() / put_page() increment/decrement the count. If count 1520 * reaches 0 the page will be freed. ] 1521 * 1522 * This works nicely with pages from FSs. 1523 * But this means that in protocol A we might signal IO completion too early! 1524 * 1525 * In order not to corrupt data during a resync we must make sure 1526 * that we do not reuse our own buffer pages (EEs) to early, therefore 1527 * we have the net_ee list. 1528 * 1529 * XFS seems to have problems, still, it submits pages with page_count == 0! 1530 * As a workaround, we disable sendpage on pages 1531 * with page_count == 0 or PageSlab. 1532 */ 1533static int _drbd_no_send_page(struct drbd_peer_device *peer_device, struct page *page, 1534 int offset, size_t size, unsigned msg_flags) 1535{ 1536 struct socket *socket; 1537 void *addr; 1538 int err; 1539 1540 socket = peer_device->connection->data.socket; 1541 addr = kmap(page) + offset; 1542 err = drbd_send_all(peer_device->connection, socket, addr, size, msg_flags); 1543 kunmap(page); 1544 if (!err) 1545 peer_device->device->send_cnt += size >> 9; 1546 return err; 1547} 1548 1549static int _drbd_send_page(struct drbd_peer_device *peer_device, struct page *page, 1550 int offset, size_t size, unsigned msg_flags) 1551{ 1552 struct socket *socket = peer_device->connection->data.socket; 1553 int len = size; 1554 int err = -EIO; 1555 1556 /* e.g. XFS meta- & log-data is in slab pages, which have a 1557 * page_count of 0 and/or have PageSlab() set. 1558 * we cannot use send_page for those, as that does get_page(); 1559 * put_page(); and would cause either a VM_BUG directly, or 1560 * __page_cache_release a page that would actually still be referenced 1561 * by someone, leading to some obscure delayed Oops somewhere else. */ 1562 if (drbd_disable_sendpage || !sendpage_ok(page)) 1563 return _drbd_no_send_page(peer_device, page, offset, size, msg_flags); 1564 1565 msg_flags |= MSG_NOSIGNAL; 1566 drbd_update_congested(peer_device->connection); 1567 do { 1568 int sent; 1569 1570 sent = socket->ops->sendpage(socket, page, offset, len, msg_flags); 1571 if (sent <= 0) { 1572 if (sent == -EAGAIN) { 1573 if (we_should_drop_the_connection(peer_device->connection, socket)) 1574 break; 1575 continue; 1576 } 1577 drbd_warn(peer_device->device, "%s: size=%d len=%d sent=%d\n", 1578 __func__, (int)size, len, sent); 1579 if (sent < 0) 1580 err = sent; 1581 break; 1582 } 1583 len -= sent; 1584 offset += sent; 1585 } while (len > 0 /* THINK && device->cstate >= C_CONNECTED*/); 1586 clear_bit(NET_CONGESTED, &peer_device->connection->flags); 1587 1588 if (len == 0) { 1589 err = 0; 1590 peer_device->device->send_cnt += size >> 9; 1591 } 1592 return err; 1593} 1594 1595static int _drbd_send_bio(struct drbd_peer_device *peer_device, struct bio *bio) 1596{ 1597 struct bio_vec bvec; 1598 struct bvec_iter iter; 1599 1600 /* hint all but last page with MSG_MORE */ 1601 bio_for_each_segment(bvec, bio, iter) { 1602 int err; 1603 1604 err = _drbd_no_send_page(peer_device, bvec.bv_page, 1605 bvec.bv_offset, bvec.bv_len, 1606 bio_iter_last(bvec, iter) 1607 ? 0 : MSG_MORE); 1608 if (err) 1609 return err; 1610 /* REQ_OP_WRITE_SAME has only one segment */ 1611 if (bio_op(bio) == REQ_OP_WRITE_SAME) 1612 break; 1613 } 1614 return 0; 1615} 1616 1617static int _drbd_send_zc_bio(struct drbd_peer_device *peer_device, struct bio *bio) 1618{ 1619 struct bio_vec bvec; 1620 struct bvec_iter iter; 1621 1622 /* hint all but last page with MSG_MORE */ 1623 bio_for_each_segment(bvec, bio, iter) { 1624 int err; 1625 1626 err = _drbd_send_page(peer_device, bvec.bv_page, 1627 bvec.bv_offset, bvec.bv_len, 1628 bio_iter_last(bvec, iter) ? 0 : MSG_MORE); 1629 if (err) 1630 return err; 1631 /* REQ_OP_WRITE_SAME has only one segment */ 1632 if (bio_op(bio) == REQ_OP_WRITE_SAME) 1633 break; 1634 } 1635 return 0; 1636} 1637 1638static int _drbd_send_zc_ee(struct drbd_peer_device *peer_device, 1639 struct drbd_peer_request *peer_req) 1640{ 1641 struct page *page = peer_req->pages; 1642 unsigned len = peer_req->i.size; 1643 int err; 1644 1645 /* hint all but last page with MSG_MORE */ 1646 page_chain_for_each(page) { 1647 unsigned l = min_t(unsigned, len, PAGE_SIZE); 1648 1649 err = _drbd_send_page(peer_device, page, 0, l, 1650 page_chain_next(page) ? MSG_MORE : 0); 1651 if (err) 1652 return err; 1653 len -= l; 1654 } 1655 return 0; 1656} 1657 1658static u32 bio_flags_to_wire(struct drbd_connection *connection, 1659 struct bio *bio) 1660{ 1661 if (connection->agreed_pro_version >= 95) 1662 return (bio->bi_opf & REQ_SYNC ? DP_RW_SYNC : 0) | 1663 (bio->bi_opf & REQ_FUA ? DP_FUA : 0) | 1664 (bio->bi_opf & REQ_PREFLUSH ? DP_FLUSH : 0) | 1665 (bio_op(bio) == REQ_OP_WRITE_SAME ? DP_WSAME : 0) | 1666 (bio_op(bio) == REQ_OP_DISCARD ? DP_DISCARD : 0) | 1667 (bio_op(bio) == REQ_OP_WRITE_ZEROES ? 1668 ((connection->agreed_features & DRBD_FF_WZEROES) ? 1669 (DP_ZEROES |(!(bio->bi_opf & REQ_NOUNMAP) ? DP_DISCARD : 0)) 1670 : DP_DISCARD) 1671 : 0); 1672 else 1673 return bio->bi_opf & REQ_SYNC ? DP_RW_SYNC : 0; 1674} 1675 1676/* Used to send write or TRIM aka REQ_OP_DISCARD requests 1677 * R_PRIMARY -> Peer (P_DATA, P_TRIM) 1678 */ 1679int drbd_send_dblock(struct drbd_peer_device *peer_device, struct drbd_request *req) 1680{ 1681 struct drbd_device *device = peer_device->device; 1682 struct drbd_socket *sock; 1683 struct p_data *p; 1684 struct p_wsame *wsame = NULL; 1685 void *digest_out; 1686 unsigned int dp_flags = 0; 1687 int digest_size; 1688 int err; 1689 1690 sock = &peer_device->connection->data; 1691 p = drbd_prepare_command(peer_device, sock); 1692 digest_size = peer_device->connection->integrity_tfm ? 1693 crypto_shash_digestsize(peer_device->connection->integrity_tfm) : 0; 1694 1695 if (!p) 1696 return -EIO; 1697 p->sector = cpu_to_be64(req->i.sector); 1698 p->block_id = (unsigned long)req; 1699 p->seq_num = cpu_to_be32(atomic_inc_return(&device->packet_seq)); 1700 dp_flags = bio_flags_to_wire(peer_device->connection, req->master_bio); 1701 if (device->state.conn >= C_SYNC_SOURCE && 1702 device->state.conn <= C_PAUSED_SYNC_T) 1703 dp_flags |= DP_MAY_SET_IN_SYNC; 1704 if (peer_device->connection->agreed_pro_version >= 100) { 1705 if (req->rq_state & RQ_EXP_RECEIVE_ACK) 1706 dp_flags |= DP_SEND_RECEIVE_ACK; 1707 /* During resync, request an explicit write ack, 1708 * even in protocol != C */ 1709 if (req->rq_state & RQ_EXP_WRITE_ACK 1710 || (dp_flags & DP_MAY_SET_IN_SYNC)) 1711 dp_flags |= DP_SEND_WRITE_ACK; 1712 } 1713 p->dp_flags = cpu_to_be32(dp_flags); 1714 1715 if (dp_flags & (DP_DISCARD|DP_ZEROES)) { 1716 enum drbd_packet cmd = (dp_flags & DP_ZEROES) ? P_ZEROES : P_TRIM; 1717 struct p_trim *t = (struct p_trim*)p; 1718 t->size = cpu_to_be32(req->i.size); 1719 err = __send_command(peer_device->connection, device->vnr, sock, cmd, sizeof(*t), NULL, 0); 1720 goto out; 1721 } 1722 if (dp_flags & DP_WSAME) { 1723 /* this will only work if DRBD_FF_WSAME is set AND the 1724 * handshake agreed that all nodes and backend devices are 1725 * WRITE_SAME capable and agree on logical_block_size */ 1726 wsame = (struct p_wsame*)p; 1727 digest_out = wsame + 1; 1728 wsame->size = cpu_to_be32(req->i.size); 1729 } else 1730 digest_out = p + 1; 1731 1732 /* our digest is still only over the payload. 1733 * TRIM does not carry any payload. */ 1734 if (digest_size) 1735 drbd_csum_bio(peer_device->connection->integrity_tfm, req->master_bio, digest_out); 1736 if (wsame) { 1737 err = 1738 __send_command(peer_device->connection, device->vnr, sock, P_WSAME, 1739 sizeof(*wsame) + digest_size, NULL, 1740 bio_iovec(req->master_bio).bv_len); 1741 } else 1742 err = 1743 __send_command(peer_device->connection, device->vnr, sock, P_DATA, 1744 sizeof(*p) + digest_size, NULL, req->i.size); 1745 if (!err) { 1746 /* For protocol A, we have to memcpy the payload into 1747 * socket buffers, as we may complete right away 1748 * as soon as we handed it over to tcp, at which point the data 1749 * pages may become invalid. 1750 * 1751 * For data-integrity enabled, we copy it as well, so we can be 1752 * sure that even if the bio pages may still be modified, it 1753 * won't change the data on the wire, thus if the digest checks 1754 * out ok after sending on this side, but does not fit on the 1755 * receiving side, we sure have detected corruption elsewhere. 1756 */ 1757 if (!(req->rq_state & (RQ_EXP_RECEIVE_ACK | RQ_EXP_WRITE_ACK)) || digest_size) 1758 err = _drbd_send_bio(peer_device, req->master_bio); 1759 else 1760 err = _drbd_send_zc_bio(peer_device, req->master_bio); 1761 1762 /* double check digest, sometimes buffers have been modified in flight. */ 1763 if (digest_size > 0 && digest_size <= 64) { 1764 /* 64 byte, 512 bit, is the largest digest size 1765 * currently supported in kernel crypto. */ 1766 unsigned char digest[64]; 1767 drbd_csum_bio(peer_device->connection->integrity_tfm, req->master_bio, digest); 1768 if (memcmp(p + 1, digest, digest_size)) { 1769 drbd_warn(device, 1770 "Digest mismatch, buffer modified by upper layers during write: %llus +%u\n", 1771 (unsigned long long)req->i.sector, req->i.size); 1772 } 1773 } /* else if (digest_size > 64) { 1774 ... Be noisy about digest too large ... 1775 } */ 1776 } 1777out: 1778 mutex_unlock(&sock->mutex); /* locked by drbd_prepare_command() */ 1779 1780 return err; 1781} 1782 1783/* answer packet, used to send data back for read requests: 1784 * Peer -> (diskless) R_PRIMARY (P_DATA_REPLY) 1785 * C_SYNC_SOURCE -> C_SYNC_TARGET (P_RS_DATA_REPLY) 1786 */ 1787int drbd_send_block(struct drbd_peer_device *peer_device, enum drbd_packet cmd, 1788 struct drbd_peer_request *peer_req) 1789{ 1790 struct drbd_device *device = peer_device->device; 1791 struct drbd_socket *sock; 1792 struct p_data *p; 1793 int err; 1794 int digest_size; 1795 1796 sock = &peer_device->connection->data; 1797 p = drbd_prepare_command(peer_device, sock); 1798 1799 digest_size = peer_device->connection->integrity_tfm ? 1800 crypto_shash_digestsize(peer_device->connection->integrity_tfm) : 0; 1801 1802 if (!p) 1803 return -EIO; 1804 p->sector = cpu_to_be64(peer_req->i.sector); 1805 p->block_id = peer_req->block_id; 1806 p->seq_num = 0; /* unused */ 1807 p->dp_flags = 0; 1808 if (digest_size) 1809 drbd_csum_ee(peer_device->connection->integrity_tfm, peer_req, p + 1); 1810 err = __send_command(peer_device->connection, device->vnr, sock, cmd, sizeof(*p) + digest_size, NULL, peer_req->i.size); 1811 if (!err) 1812 err = _drbd_send_zc_ee(peer_device, peer_req); 1813 mutex_unlock(&sock->mutex); /* locked by drbd_prepare_command() */ 1814 1815 return err; 1816} 1817 1818int drbd_send_out_of_sync(struct drbd_peer_device *peer_device, struct drbd_request *req) 1819{ 1820 struct drbd_socket *sock; 1821 struct p_block_desc *p; 1822 1823 sock = &peer_device->connection->data; 1824 p = drbd_prepare_command(peer_device, sock); 1825 if (!p) 1826 return -EIO; 1827 p->sector = cpu_to_be64(req->i.sector); 1828 p->blksize = cpu_to_be32(req->i.size); 1829 return drbd_send_command(peer_device, sock, P_OUT_OF_SYNC, sizeof(*p), NULL, 0); 1830} 1831 1832/* 1833 drbd_send distinguishes two cases: 1834 1835 Packets sent via the data socket "sock" 1836 and packets sent via the meta data socket "msock" 1837 1838 sock msock 1839 -----------------+-------------------------+------------------------------ 1840 timeout conf.timeout / 2 conf.timeout / 2 1841 timeout action send a ping via msock Abort communication 1842 and close all sockets 1843*/ 1844 1845/* 1846 * you must have down()ed the appropriate [m]sock_mutex elsewhere! 1847 */ 1848int drbd_send(struct drbd_connection *connection, struct socket *sock, 1849 void *buf, size_t size, unsigned msg_flags) 1850{ 1851 struct kvec iov = {.iov_base = buf, .iov_len = size}; 1852 struct msghdr msg = {.msg_flags = msg_flags | MSG_NOSIGNAL}; 1853 int rv, sent = 0; 1854 1855 if (!sock) 1856 return -EBADR; 1857 1858 /* THINK if (signal_pending) return ... ? */ 1859 1860 iov_iter_kvec(&msg.msg_iter, WRITE, &iov, 1, size); 1861 1862 if (sock == connection->data.socket) { 1863 rcu_read_lock(); 1864 connection->ko_count = rcu_dereference(connection->net_conf)->ko_count; 1865 rcu_read_unlock(); 1866 drbd_update_congested(connection); 1867 } 1868 do { 1869 rv = sock_sendmsg(sock, &msg); 1870 if (rv == -EAGAIN) { 1871 if (we_should_drop_the_connection(connection, sock)) 1872 break; 1873 else 1874 continue; 1875 } 1876 if (rv == -EINTR) { 1877 flush_signals(current); 1878 rv = 0; 1879 } 1880 if (rv < 0) 1881 break; 1882 sent += rv; 1883 } while (sent < size); 1884 1885 if (sock == connection->data.socket) 1886 clear_bit(NET_CONGESTED, &connection->flags); 1887 1888 if (rv <= 0) { 1889 if (rv != -EAGAIN) { 1890 drbd_err(connection, "%s_sendmsg returned %d\n", 1891 sock == connection->meta.socket ? "msock" : "sock", 1892 rv); 1893 conn_request_state(connection, NS(conn, C_BROKEN_PIPE), CS_HARD); 1894 } else 1895 conn_request_state(connection, NS(conn, C_TIMEOUT), CS_HARD); 1896 } 1897 1898 return sent; 1899} 1900 1901/** 1902 * drbd_send_all - Send an entire buffer 1903 * 1904 * Returns 0 upon success and a negative error value otherwise. 1905 */ 1906int drbd_send_all(struct drbd_connection *connection, struct socket *sock, void *buffer, 1907 size_t size, unsigned msg_flags) 1908{ 1909 int err; 1910 1911 err = drbd_send(connection, sock, buffer, size, msg_flags); 1912 if (err < 0) 1913 return err; 1914 if (err != size) 1915 return -EIO; 1916 return 0; 1917} 1918 1919static int drbd_open(struct block_device *bdev, fmode_t mode) 1920{ 1921 struct drbd_device *device = bdev->bd_disk->private_data; 1922 unsigned long flags; 1923 int rv = 0; 1924 1925 mutex_lock(&drbd_main_mutex); 1926 spin_lock_irqsave(&device->resource->req_lock, flags); 1927 /* to have a stable device->state.role 1928 * and no race with updating open_cnt */ 1929 1930 if (device->state.role != R_PRIMARY) { 1931 if (mode & FMODE_WRITE) 1932 rv = -EROFS; 1933 else if (!drbd_allow_oos) 1934 rv = -EMEDIUMTYPE; 1935 } 1936 1937 if (!rv) 1938 device->open_cnt++; 1939 spin_unlock_irqrestore(&device->resource->req_lock, flags); 1940 mutex_unlock(&drbd_main_mutex); 1941 1942 return rv; 1943} 1944 1945static void drbd_release(struct gendisk *gd, fmode_t mode) 1946{ 1947 struct drbd_device *device = gd->private_data; 1948 mutex_lock(&drbd_main_mutex); 1949 device->open_cnt--; 1950 mutex_unlock(&drbd_main_mutex); 1951} 1952 1953/* need to hold resource->req_lock */ 1954void drbd_queue_unplug(struct drbd_device *device) 1955{ 1956 if (device->state.pdsk >= D_INCONSISTENT && device->state.conn >= C_CONNECTED) { 1957 D_ASSERT(device, device->state.role == R_PRIMARY); 1958 if (test_and_clear_bit(UNPLUG_REMOTE, &device->flags)) { 1959 drbd_queue_work_if_unqueued( 1960 &first_peer_device(device)->connection->sender_work, 1961 &device->unplug_work); 1962 } 1963 } 1964} 1965 1966static void drbd_set_defaults(struct drbd_device *device) 1967{ 1968 /* Beware! The actual layout differs 1969 * between big endian and little endian */ 1970 device->state = (union drbd_dev_state) { 1971 { .role = R_SECONDARY, 1972 .peer = R_UNKNOWN, 1973 .conn = C_STANDALONE, 1974 .disk = D_DISKLESS, 1975 .pdsk = D_UNKNOWN, 1976 } }; 1977} 1978 1979void drbd_init_set_defaults(struct drbd_device *device) 1980{ 1981 /* the memset(,0,) did most of this. 1982 * note: only assignments, no allocation in here */ 1983 1984 drbd_set_defaults(device); 1985 1986 atomic_set(&device->ap_bio_cnt, 0); 1987 atomic_set(&device->ap_actlog_cnt, 0); 1988 atomic_set(&device->ap_pending_cnt, 0); 1989 atomic_set(&device->rs_pending_cnt, 0); 1990 atomic_set(&device->unacked_cnt, 0); 1991 atomic_set(&device->local_cnt, 0); 1992 atomic_set(&device->pp_in_use_by_net, 0); 1993 atomic_set(&device->rs_sect_in, 0); 1994 atomic_set(&device->rs_sect_ev, 0); 1995 atomic_set(&device->ap_in_flight, 0); 1996 atomic_set(&device->md_io.in_use, 0); 1997 1998 mutex_init(&device->own_state_mutex); 1999 device->state_mutex = &device->own_state_mutex; 2000 2001 spin_lock_init(&device->al_lock); 2002 spin_lock_init(&device->peer_seq_lock); 2003 2004 INIT_LIST_HEAD(&device->active_ee); 2005 INIT_LIST_HEAD(&device->sync_ee); 2006 INIT_LIST_HEAD(&device->done_ee); 2007 INIT_LIST_HEAD(&device->read_ee); 2008 INIT_LIST_HEAD(&device->net_ee); 2009 INIT_LIST_HEAD(&device->resync_reads); 2010 INIT_LIST_HEAD(&device->resync_work.list); 2011 INIT_LIST_HEAD(&device->unplug_work.list); 2012 INIT_LIST_HEAD(&device->bm_io_work.w.list); 2013 INIT_LIST_HEAD(&device->pending_master_completion[0]); 2014 INIT_LIST_HEAD(&device->pending_master_completion[1]); 2015 INIT_LIST_HEAD(&device->pending_completion[0]); 2016 INIT_LIST_HEAD(&device->pending_completion[1]); 2017 2018 device->resync_work.cb = w_resync_timer; 2019 device->unplug_work.cb = w_send_write_hint; 2020 device->bm_io_work.w.cb = w_bitmap_io; 2021 2022 timer_setup(&device->resync_timer, resync_timer_fn, 0); 2023 timer_setup(&device->md_sync_timer, md_sync_timer_fn, 0); 2024 timer_setup(&device->start_resync_timer, start_resync_timer_fn, 0); 2025 timer_setup(&device->request_timer, request_timer_fn, 0); 2026 2027 init_waitqueue_head(&device->misc_wait); 2028 init_waitqueue_head(&device->state_wait); 2029 init_waitqueue_head(&device->ee_wait); 2030 init_waitqueue_head(&device->al_wait); 2031 init_waitqueue_head(&device->seq_wait); 2032 2033 device->resync_wenr = LC_FREE; 2034 device->peer_max_bio_size = DRBD_MAX_BIO_SIZE_SAFE; 2035 device->local_max_bio_size = DRBD_MAX_BIO_SIZE_SAFE; 2036} 2037 2038void drbd_set_my_capacity(struct drbd_device *device, sector_t size) 2039{ 2040 char ppb[10]; 2041 2042 set_capacity(device->vdisk, size); 2043 revalidate_disk_size(device->vdisk, false); 2044 2045 drbd_info(device, "size = %s (%llu KB)\n", 2046 ppsize(ppb, size>>1), (unsigned long long)size>>1); 2047} 2048 2049void drbd_device_cleanup(struct drbd_device *device) 2050{ 2051 int i; 2052 if (first_peer_device(device)->connection->receiver.t_state != NONE) 2053 drbd_err(device, "ASSERT FAILED: receiver t_state == %d expected 0.\n", 2054 first_peer_device(device)->connection->receiver.t_state); 2055 2056 device->al_writ_cnt = 2057 device->bm_writ_cnt = 2058 device->read_cnt = 2059 device->recv_cnt = 2060 device->send_cnt = 2061 device->writ_cnt = 2062 device->p_size = 2063 device->rs_start = 2064 device->rs_total = 2065 device->rs_failed = 0; 2066 device->rs_last_events = 0; 2067 device->rs_last_sect_ev = 0; 2068 for (i = 0; i < DRBD_SYNC_MARKS; i++) { 2069 device->rs_mark_left[i] = 0; 2070 device->rs_mark_time[i] = 0; 2071 } 2072 D_ASSERT(device, first_peer_device(device)->connection->net_conf == NULL); 2073 2074 set_capacity(device->vdisk, 0); 2075 revalidate_disk_size(device->vdisk, false); 2076 if (device->bitmap) { 2077 /* maybe never allocated. */ 2078 drbd_bm_resize(device, 0, 1); 2079 drbd_bm_cleanup(device); 2080 } 2081 2082 drbd_backing_dev_free(device, device->ldev); 2083 device->ldev = NULL; 2084 2085 clear_bit(AL_SUSPENDED, &device->flags); 2086 2087 D_ASSERT(device, list_empty(&device->active_ee)); 2088 D_ASSERT(device, list_empty(&device->sync_ee)); 2089 D_ASSERT(device, list_empty(&device->done_ee)); 2090 D_ASSERT(device, list_empty(&device->read_ee)); 2091 D_ASSERT(device, list_empty(&device->net_ee)); 2092 D_ASSERT(device, list_empty(&device->resync_reads)); 2093 D_ASSERT(device, list_empty(&first_peer_device(device)->connection->sender_work.q)); 2094 D_ASSERT(device, list_empty(&device->resync_work.list)); 2095 D_ASSERT(device, list_empty(&device->unplug_work.list)); 2096 2097 drbd_set_defaults(device); 2098} 2099 2100 2101static void drbd_destroy_mempools(void) 2102{ 2103 struct page *page; 2104 2105 while (drbd_pp_pool) { 2106 page = drbd_pp_pool; 2107 drbd_pp_pool = (struct page *)page_private(page); 2108 __free_page(page); 2109 drbd_pp_vacant--; 2110 } 2111 2112 /* D_ASSERT(device, atomic_read(&drbd_pp_vacant)==0); */ 2113 2114 bioset_exit(&drbd_io_bio_set); 2115 bioset_exit(&drbd_md_io_bio_set); 2116 mempool_exit(&drbd_md_io_page_pool); 2117 mempool_exit(&drbd_ee_mempool); 2118 mempool_exit(&drbd_request_mempool); 2119 kmem_cache_destroy(drbd_ee_cache); 2120 kmem_cache_destroy(drbd_request_cache); 2121 kmem_cache_destroy(drbd_bm_ext_cache); 2122 kmem_cache_destroy(drbd_al_ext_cache); 2123 2124 drbd_ee_cache = NULL; 2125 drbd_request_cache = NULL; 2126 drbd_bm_ext_cache = NULL; 2127 drbd_al_ext_cache = NULL; 2128 2129 return; 2130} 2131 2132static int drbd_create_mempools(void) 2133{ 2134 struct page *page; 2135 const int number = (DRBD_MAX_BIO_SIZE/PAGE_SIZE) * drbd_minor_count; 2136 int i, ret; 2137 2138 /* caches */ 2139 drbd_request_cache = kmem_cache_create( 2140 "drbd_req", sizeof(struct drbd_request), 0, 0, NULL); 2141 if (drbd_request_cache == NULL) 2142 goto Enomem; 2143 2144 drbd_ee_cache = kmem_cache_create( 2145 "drbd_ee", sizeof(struct drbd_peer_request), 0, 0, NULL); 2146 if (drbd_ee_cache == NULL) 2147 goto Enomem; 2148 2149 drbd_bm_ext_cache = kmem_cache_create( 2150 "drbd_bm", sizeof(struct bm_extent), 0, 0, NULL); 2151 if (drbd_bm_ext_cache == NULL) 2152 goto Enomem; 2153 2154 drbd_al_ext_cache = kmem_cache_create( 2155 "drbd_al", sizeof(struct lc_element), 0, 0, NULL); 2156 if (drbd_al_ext_cache == NULL) 2157 goto Enomem; 2158 2159 /* mempools */ 2160 ret = bioset_init(&drbd_io_bio_set, BIO_POOL_SIZE, 0, 0); 2161 if (ret) 2162 goto Enomem; 2163 2164 ret = bioset_init(&drbd_md_io_bio_set, DRBD_MIN_POOL_PAGES, 0, 2165 BIOSET_NEED_BVECS); 2166 if (ret) 2167 goto Enomem; 2168 2169 ret = mempool_init_page_pool(&drbd_md_io_page_pool, DRBD_MIN_POOL_PAGES, 0); 2170 if (ret) 2171 goto Enomem; 2172 2173 ret = mempool_init_slab_pool(&drbd_request_mempool, number, 2174 drbd_request_cache); 2175 if (ret) 2176 goto Enomem; 2177 2178 ret = mempool_init_slab_pool(&drbd_ee_mempool, number, drbd_ee_cache); 2179 if (ret) 2180 goto Enomem; 2181 2182 /* drbd's page pool */ 2183 spin_lock_init(&drbd_pp_lock); 2184 2185 for (i = 0; i < number; i++) { 2186 page = alloc_page(GFP_HIGHUSER); 2187 if (!page) 2188 goto Enomem; 2189 set_page_private(page, (unsigned long)drbd_pp_pool); 2190 drbd_pp_pool = page; 2191 } 2192 drbd_pp_vacant = number; 2193 2194 return 0; 2195 2196Enomem: 2197 drbd_destroy_mempools(); /* in case we allocated some */ 2198 return -ENOMEM; 2199} 2200 2201static void drbd_release_all_peer_reqs(struct drbd_device *device) 2202{ 2203 int rr; 2204 2205 rr = drbd_free_peer_reqs(device, &device->active_ee); 2206 if (rr) 2207 drbd_err(device, "%d EEs in active list found!\n", rr); 2208 2209 rr = drbd_free_peer_reqs(device, &device->sync_ee); 2210 if (rr) 2211 drbd_err(device, "%d EEs in sync list found!\n", rr); 2212 2213 rr = drbd_free_peer_reqs(device, &device->read_ee); 2214 if (rr) 2215 drbd_err(device, "%d EEs in read list found!\n", rr); 2216 2217 rr = drbd_free_peer_reqs(device, &device->done_ee); 2218 if (rr) 2219 drbd_err(device, "%d EEs in done list found!\n", rr); 2220 2221 rr = drbd_free_peer_reqs(device, &device->net_ee); 2222 if (rr) 2223 drbd_err(device, "%d EEs in net list found!\n", rr); 2224} 2225 2226/* caution. no locking. */ 2227void drbd_destroy_device(struct kref *kref) 2228{ 2229 struct drbd_device *device = container_of(kref, struct drbd_device, kref); 2230 struct drbd_resource *resource = device->resource; 2231 struct drbd_peer_device *peer_device, *tmp_peer_device; 2232 2233 del_timer_sync(&device->request_timer); 2234 2235 /* paranoia asserts */ 2236 D_ASSERT(device, device->open_cnt == 0); 2237 /* end paranoia asserts */ 2238 2239 /* cleanup stuff that may have been allocated during 2240 * device (re-)configuration or state changes */ 2241 2242 drbd_backing_dev_free(device, device->ldev); 2243 device->ldev = NULL; 2244 2245 drbd_release_all_peer_reqs(device); 2246 2247 lc_destroy(device->act_log); 2248 lc_destroy(device->resync); 2249 2250 kfree(device->p_uuid); 2251 /* device->p_uuid = NULL; */ 2252 2253 if (device->bitmap) /* should no longer be there. */ 2254 drbd_bm_cleanup(device); 2255 __free_page(device->md_io.page); 2256 put_disk(device->vdisk); 2257 blk_cleanup_queue(device->rq_queue); 2258 kfree(device->rs_plan_s); 2259 2260 /* not for_each_connection(connection, resource): 2261 * those may have been cleaned up and disassociated already. 2262 */ 2263 for_each_peer_device_safe(peer_device, tmp_peer_device, device) { 2264 kref_put(&peer_device->connection->kref, drbd_destroy_connection); 2265 kfree(peer_device); 2266 } 2267 memset(device, 0xfd, sizeof(*device)); 2268 kfree(device); 2269 kref_put(&resource->kref, drbd_destroy_resource); 2270} 2271 2272/* One global retry thread, if we need to push back some bio and have it 2273 * reinserted through our make request function. 2274 */ 2275static struct retry_worker { 2276 struct workqueue_struct *wq; 2277 struct work_struct worker; 2278 2279 spinlock_t lock; 2280 struct list_head writes; 2281} retry; 2282 2283static void do_retry(struct work_struct *ws) 2284{ 2285 struct retry_worker *retry = container_of(ws, struct retry_worker, worker); 2286 LIST_HEAD(writes); 2287 struct drbd_request *req, *tmp; 2288 2289 spin_lock_irq(&retry->lock); 2290 list_splice_init(&retry->writes, &writes); 2291 spin_unlock_irq(&retry->lock); 2292 2293 list_for_each_entry_safe(req, tmp, &writes, tl_requests) { 2294 struct drbd_device *device = req->device; 2295 struct bio *bio = req->master_bio; 2296 unsigned long start_jif = req->start_jif; 2297 bool expected; 2298 2299 expected = 2300 expect(atomic_read(&req->completion_ref) == 0) && 2301 expect(req->rq_state & RQ_POSTPONED) && 2302 expect((req->rq_state & RQ_LOCAL_PENDING) == 0 || 2303 (req->rq_state & RQ_LOCAL_ABORTED) != 0); 2304 2305 if (!expected) 2306 drbd_err(device, "req=%p completion_ref=%d rq_state=%x\n", 2307 req, atomic_read(&req->completion_ref), 2308 req->rq_state); 2309 2310 /* We still need to put one kref associated with the 2311 * "completion_ref" going zero in the code path that queued it 2312 * here. The request object may still be referenced by a 2313 * frozen local req->private_bio, in case we force-detached. 2314 */ 2315 kref_put(&req->kref, drbd_req_destroy); 2316 2317 /* A single suspended or otherwise blocking device may stall 2318 * all others as well. Fortunately, this code path is to 2319 * recover from a situation that "should not happen": 2320 * concurrent writes in multi-primary setup. 2321 * In a "normal" lifecycle, this workqueue is supposed to be 2322 * destroyed without ever doing anything. 2323 * If it turns out to be an issue anyways, we can do per 2324 * resource (replication group) or per device (minor) retry 2325 * workqueues instead. 2326 */ 2327 2328 /* We are not just doing submit_bio_noacct(), 2329 * as we want to keep the start_time information. */ 2330 inc_ap_bio(device); 2331 __drbd_make_request(device, bio, start_jif); 2332 } 2333} 2334 2335/* called via drbd_req_put_completion_ref(), 2336 * holds resource->req_lock */ 2337void drbd_restart_request(struct drbd_request *req) 2338{ 2339 unsigned long flags; 2340 spin_lock_irqsave(&retry.lock, flags); 2341 list_move_tail(&req->tl_requests, &retry.writes); 2342 spin_unlock_irqrestore(&retry.lock, flags); 2343 2344 /* Drop the extra reference that would otherwise 2345 * have been dropped by complete_master_bio. 2346 * do_retry() needs to grab a new one. */ 2347 dec_ap_bio(req->device); 2348 2349 queue_work(retry.wq, &retry.worker); 2350} 2351 2352void drbd_destroy_resource(struct kref *kref) 2353{ 2354 struct drbd_resource *resource = 2355 container_of(kref, struct drbd_resource, kref); 2356 2357 idr_destroy(&resource->devices); 2358 free_cpumask_var(resource->cpu_mask); 2359 kfree(resource->name); 2360 memset(resource, 0xf2, sizeof(*resource)); 2361 kfree(resource); 2362} 2363 2364void drbd_free_resource(struct drbd_resource *resource) 2365{ 2366 struct drbd_connection *connection, *tmp; 2367 2368 for_each_connection_safe(connection, tmp, resource) { 2369 list_del(&connection->connections); 2370 drbd_debugfs_connection_cleanup(connection); 2371 kref_put(&connection->kref, drbd_destroy_connection); 2372 } 2373 drbd_debugfs_resource_cleanup(resource); 2374 kref_put(&resource->kref, drbd_destroy_resource); 2375} 2376 2377static void drbd_cleanup(void) 2378{ 2379 unsigned int i; 2380 struct drbd_device *device; 2381 struct drbd_resource *resource, *tmp; 2382 2383 /* first remove proc, 2384 * drbdsetup uses it's presence to detect 2385 * whether DRBD is loaded. 2386 * If we would get stuck in proc removal, 2387 * but have netlink already deregistered, 2388 * some drbdsetup commands may wait forever 2389 * for an answer. 2390 */ 2391 if (drbd_proc) 2392 remove_proc_entry("drbd", NULL); 2393 2394 if (retry.wq) 2395 destroy_workqueue(retry.wq); 2396 2397 drbd_genl_unregister(); 2398 2399 idr_for_each_entry(&drbd_devices, device, i) 2400 drbd_delete_device(device); 2401 2402 /* not _rcu since, no other updater anymore. Genl already unregistered */ 2403 for_each_resource_safe(resource, tmp, &drbd_resources) { 2404 list_del(&resource->resources); 2405 drbd_free_resource(resource); 2406 } 2407 2408 drbd_debugfs_cleanup(); 2409 2410 drbd_destroy_mempools(); 2411 unregister_blkdev(DRBD_MAJOR, "drbd"); 2412 2413 idr_destroy(&drbd_devices); 2414 2415 pr_info("module cleanup done.\n"); 2416} 2417 2418static void drbd_init_workqueue(struct drbd_work_queue* wq) 2419{ 2420 spin_lock_init(&wq->q_lock); 2421 INIT_LIST_HEAD(&wq->q); 2422 init_waitqueue_head(&wq->q_wait); 2423} 2424 2425struct completion_work { 2426 struct drbd_work w; 2427 struct completion done; 2428}; 2429 2430static int w_complete(struct drbd_work *w, int cancel) 2431{ 2432 struct completion_work *completion_work = 2433 container_of(w, struct completion_work, w); 2434 2435 complete(&completion_work->done); 2436 return 0; 2437} 2438 2439void drbd_flush_workqueue(struct drbd_work_queue *work_queue) 2440{ 2441 struct completion_work completion_work; 2442 2443 completion_work.w.cb = w_complete; 2444 init_completion(&completion_work.done); 2445 drbd_queue_work(work_queue, &completion_work.w); 2446 wait_for_completion(&completion_work.done); 2447} 2448 2449struct drbd_resource *drbd_find_resource(const char *name) 2450{ 2451 struct drbd_resource *resource; 2452 2453 if (!name || !name[0]) 2454 return NULL; 2455 2456 rcu_read_lock(); 2457 for_each_resource_rcu(resource, &drbd_resources) { 2458 if (!strcmp(resource->name, name)) { 2459 kref_get(&resource->kref); 2460 goto found; 2461 } 2462 } 2463 resource = NULL; 2464found: 2465 rcu_read_unlock(); 2466 return resource; 2467} 2468 2469struct drbd_connection *conn_get_by_addrs(void *my_addr, int my_addr_len, 2470 void *peer_addr, int peer_addr_len) 2471{ 2472 struct drbd_resource *resource; 2473 struct drbd_connection *connection; 2474 2475 rcu_read_lock(); 2476 for_each_resource_rcu(resource, &drbd_resources) { 2477 for_each_connection_rcu(connection, resource) { 2478 if (connection->my_addr_len == my_addr_len && 2479 connection->peer_addr_len == peer_addr_len && 2480 !memcmp(&connection->my_addr, my_addr, my_addr_len) && 2481 !memcmp(&connection->peer_addr, peer_addr, peer_addr_len)) { 2482 kref_get(&connection->kref); 2483 goto found; 2484 } 2485 } 2486 } 2487 connection = NULL; 2488found: 2489 rcu_read_unlock(); 2490 return connection; 2491} 2492 2493static int drbd_alloc_socket(struct drbd_socket *socket) 2494{ 2495 socket->rbuf = (void *) __get_free_page(GFP_KERNEL); 2496 if (!socket->rbuf) 2497 return -ENOMEM; 2498 socket->sbuf = (void *) __get_free_page(GFP_KERNEL); 2499 if (!socket->sbuf) 2500 return -ENOMEM; 2501 return 0; 2502} 2503 2504static void drbd_free_socket(struct drbd_socket *socket) 2505{ 2506 free_page((unsigned long) socket->sbuf); 2507 free_page((unsigned long) socket->rbuf); 2508} 2509 2510void conn_free_crypto(struct drbd_connection *connection) 2511{ 2512 drbd_free_sock(connection); 2513 2514 crypto_free_shash(connection->csums_tfm); 2515 crypto_free_shash(connection->verify_tfm); 2516 crypto_free_shash(connection->cram_hmac_tfm); 2517 crypto_free_shash(connection->integrity_tfm); 2518 crypto_free_shash(connection->peer_integrity_tfm); 2519 kfree(connection->int_dig_in); 2520 kfree(connection->int_dig_vv); 2521 2522 connection->csums_tfm = NULL; 2523 connection->verify_tfm = NULL; 2524 connection->cram_hmac_tfm = NULL; 2525 connection->integrity_tfm = NULL; 2526 connection->peer_integrity_tfm = NULL; 2527 connection->int_dig_in = NULL; 2528 connection->int_dig_vv = NULL; 2529} 2530 2531int set_resource_options(struct drbd_resource *resource, struct res_opts *res_opts) 2532{ 2533 struct drbd_connection *connection; 2534 cpumask_var_t new_cpu_mask; 2535 int err; 2536 2537 if (!zalloc_cpumask_var(&new_cpu_mask, GFP_KERNEL)) 2538 return -ENOMEM; 2539 2540 /* silently ignore cpu mask on UP kernel */ 2541 if (nr_cpu_ids > 1 && res_opts->cpu_mask[0] != 0) { 2542 err = bitmap_parse(res_opts->cpu_mask, DRBD_CPU_MASK_SIZE, 2543 cpumask_bits(new_cpu_mask), nr_cpu_ids); 2544 if (err == -EOVERFLOW) { 2545 /* So what. mask it out. */ 2546 cpumask_var_t tmp_cpu_mask; 2547 if (zalloc_cpumask_var(&tmp_cpu_mask, GFP_KERNEL)) { 2548 cpumask_setall(tmp_cpu_mask); 2549 cpumask_and(new_cpu_mask, new_cpu_mask, tmp_cpu_mask); 2550 drbd_warn(resource, "Overflow in bitmap_parse(%.12s%s), truncating to %u bits\n", 2551 res_opts->cpu_mask, 2552 strlen(res_opts->cpu_mask) > 12 ? "..." : "", 2553 nr_cpu_ids); 2554 free_cpumask_var(tmp_cpu_mask); 2555 err = 0; 2556 } 2557 } 2558 if (err) { 2559 drbd_warn(resource, "bitmap_parse() failed with %d\n", err); 2560 /* retcode = ERR_CPU_MASK_PARSE; */ 2561 goto fail; 2562 } 2563 } 2564 resource->res_opts = *res_opts; 2565 if (cpumask_empty(new_cpu_mask)) 2566 drbd_calc_cpu_mask(&new_cpu_mask); 2567 if (!cpumask_equal(resource->cpu_mask, new_cpu_mask)) { 2568 cpumask_copy(resource->cpu_mask, new_cpu_mask); 2569 for_each_connection_rcu(connection, resource) { 2570 connection->receiver.reset_cpu_mask = 1; 2571 connection->ack_receiver.reset_cpu_mask = 1; 2572 connection->worker.reset_cpu_mask = 1; 2573 } 2574 } 2575 err = 0; 2576 2577fail: 2578 free_cpumask_var(new_cpu_mask); 2579 return err; 2580 2581} 2582 2583struct drbd_resource *drbd_create_resource(const char *name) 2584{ 2585 struct drbd_resource *resource; 2586 2587 resource = kzalloc(sizeof(struct drbd_resource), GFP_KERNEL); 2588 if (!resource) 2589 goto fail; 2590 resource->name = kstrdup(name, GFP_KERNEL); 2591 if (!resource->name) 2592 goto fail_free_resource; 2593 if (!zalloc_cpumask_var(&resource->cpu_mask, GFP_KERNEL)) 2594 goto fail_free_name; 2595 kref_init(&resource->kref); 2596 idr_init(&resource->devices); 2597 INIT_LIST_HEAD(&resource->connections); 2598 resource->write_ordering = WO_BDEV_FLUSH; 2599 list_add_tail_rcu(&resource->resources, &drbd_resources); 2600 mutex_init(&resource->conf_update); 2601 mutex_init(&resource->adm_mutex); 2602 spin_lock_init(&resource->req_lock); 2603 drbd_debugfs_resource_add(resource); 2604 return resource; 2605 2606fail_free_name: 2607 kfree(resource->name); 2608fail_free_resource: 2609 kfree(resource); 2610fail: 2611 return NULL; 2612} 2613 2614/* caller must be under adm_mutex */ 2615struct drbd_connection *conn_create(const char *name, struct res_opts *res_opts) 2616{ 2617 struct drbd_resource *resource; 2618 struct drbd_connection *connection; 2619 2620 connection = kzalloc(sizeof(struct drbd_connection), GFP_KERNEL); 2621 if (!connection) 2622 return NULL; 2623 2624 if (drbd_alloc_socket(&connection->data)) 2625 goto fail; 2626 if (drbd_alloc_socket(&connection->meta)) 2627 goto fail; 2628 2629 connection->current_epoch = kzalloc(sizeof(struct drbd_epoch), GFP_KERNEL); 2630 if (!connection->current_epoch) 2631 goto fail; 2632 2633 INIT_LIST_HEAD(&connection->transfer_log); 2634 2635 INIT_LIST_HEAD(&connection->current_epoch->list); 2636 connection->epochs = 1; 2637 spin_lock_init(&connection->epoch_lock); 2638 2639 connection->send.seen_any_write_yet = false; 2640 connection->send.current_epoch_nr = 0; 2641 connection->send.current_epoch_writes = 0; 2642 2643 resource = drbd_create_resource(name); 2644 if (!resource) 2645 goto fail; 2646 2647 connection->cstate = C_STANDALONE; 2648 mutex_init(&connection->cstate_mutex); 2649 init_waitqueue_head(&connection->ping_wait); 2650 idr_init(&connection->peer_devices); 2651 2652 drbd_init_workqueue(&connection->sender_work); 2653 mutex_init(&connection->data.mutex); 2654 mutex_init(&connection->meta.mutex); 2655 2656 drbd_thread_init(resource, &connection->receiver, drbd_receiver, "receiver"); 2657 connection->receiver.connection = connection; 2658 drbd_thread_init(resource, &connection->worker, drbd_worker, "worker"); 2659 connection->worker.connection = connection; 2660 drbd_thread_init(resource, &connection->ack_receiver, drbd_ack_receiver, "ack_recv"); 2661 connection->ack_receiver.connection = connection; 2662 2663 kref_init(&connection->kref); 2664 2665 connection->resource = resource; 2666 2667 if (set_resource_options(resource, res_opts)) 2668 goto fail_resource; 2669 2670 kref_get(&resource->kref); 2671 list_add_tail_rcu(&connection->connections, &resource->connections); 2672 drbd_debugfs_connection_add(connection); 2673 return connection; 2674 2675fail_resource: 2676 list_del(&resource->resources); 2677 drbd_free_resource(resource); 2678fail: 2679 kfree(connection->current_epoch); 2680 drbd_free_socket(&connection->meta); 2681 drbd_free_socket(&connection->data); 2682 kfree(connection); 2683 return NULL; 2684} 2685 2686void drbd_destroy_connection(struct kref *kref) 2687{ 2688 struct drbd_connection *connection = container_of(kref, struct drbd_connection, kref); 2689 struct drbd_resource *resource = connection->resource; 2690 2691 if (atomic_read(&connection->current_epoch->epoch_size) != 0) 2692 drbd_err(connection, "epoch_size:%d\n", atomic_read(&connection->current_epoch->epoch_size)); 2693 kfree(connection->current_epoch); 2694 2695 idr_destroy(&connection->peer_devices); 2696 2697 drbd_free_socket(&connection->meta); 2698 drbd_free_socket(&connection->data); 2699 kfree(connection->int_dig_in); 2700 kfree(connection->int_dig_vv); 2701 memset(connection, 0xfc, sizeof(*connection)); 2702 kfree(connection); 2703 kref_put(&resource->kref, drbd_destroy_resource); 2704} 2705 2706static int init_submitter(struct drbd_device *device) 2707{ 2708 /* opencoded create_singlethread_workqueue(), 2709 * to be able to say "drbd%d", ..., minor */ 2710 device->submit.wq = 2711 alloc_ordered_workqueue("drbd%u_submit", WQ_MEM_RECLAIM, device->minor); 2712 if (!device->submit.wq) 2713 return -ENOMEM; 2714 2715 INIT_WORK(&device->submit.worker, do_submit); 2716 INIT_LIST_HEAD(&device->submit.writes); 2717 return 0; 2718} 2719 2720enum drbd_ret_code drbd_create_device(struct drbd_config_context *adm_ctx, unsigned int minor) 2721{ 2722 struct drbd_resource *resource = adm_ctx->resource; 2723 struct drbd_connection *connection, *n; 2724 struct drbd_device *device; 2725 struct drbd_peer_device *peer_device, *tmp_peer_device; 2726 struct gendisk *disk; 2727 struct request_queue *q; 2728 int id; 2729 int vnr = adm_ctx->volume; 2730 enum drbd_ret_code err = ERR_NOMEM; 2731 2732 device = minor_to_device(minor); 2733 if (device) 2734 return ERR_MINOR_OR_VOLUME_EXISTS; 2735 2736 /* GFP_KERNEL, we are outside of all write-out paths */ 2737 device = kzalloc(sizeof(struct drbd_device), GFP_KERNEL); 2738 if (!device) 2739 return ERR_NOMEM; 2740 kref_init(&device->kref); 2741 2742 kref_get(&resource->kref); 2743 device->resource = resource; 2744 device->minor = minor; 2745 device->vnr = vnr; 2746 2747 drbd_init_set_defaults(device); 2748 2749 q = blk_alloc_queue(NUMA_NO_NODE); 2750 if (!q) 2751 goto out_no_q; 2752 device->rq_queue = q; 2753 2754 disk = alloc_disk(1); 2755 if (!disk) 2756 goto out_no_disk; 2757 device->vdisk = disk; 2758 2759 set_disk_ro(disk, true); 2760 2761 disk->queue = q; 2762 disk->major = DRBD_MAJOR; 2763 disk->first_minor = minor; 2764 disk->fops = &drbd_ops; 2765 sprintf(disk->disk_name, "drbd%d", minor); 2766 disk->private_data = device; 2767 2768 blk_queue_write_cache(q, true, true); 2769 /* Setting the max_hw_sectors to an odd value of 8kibyte here 2770 This triggers a max_bio_size message upon first attach or connect */ 2771 blk_queue_max_hw_sectors(q, DRBD_MAX_BIO_SIZE_SAFE >> 8); 2772 2773 device->md_io.page = alloc_page(GFP_KERNEL); 2774 if (!device->md_io.page) 2775 goto out_no_io_page; 2776 2777 if (drbd_bm_init(device)) 2778 goto out_no_bitmap; 2779 device->read_requests = RB_ROOT; 2780 device->write_requests = RB_ROOT; 2781 2782 id = idr_alloc(&drbd_devices, device, minor, minor + 1, GFP_KERNEL); 2783 if (id < 0) { 2784 if (id == -ENOSPC) 2785 err = ERR_MINOR_OR_VOLUME_EXISTS; 2786 goto out_no_minor_idr; 2787 } 2788 kref_get(&device->kref); 2789 2790 id = idr_alloc(&resource->devices, device, vnr, vnr + 1, GFP_KERNEL); 2791 if (id < 0) { 2792 if (id == -ENOSPC) 2793 err = ERR_MINOR_OR_VOLUME_EXISTS; 2794 goto out_idr_remove_minor; 2795 } 2796 kref_get(&device->kref); 2797 2798 INIT_LIST_HEAD(&device->peer_devices); 2799 INIT_LIST_HEAD(&device->pending_bitmap_io); 2800 for_each_connection(connection, resource) { 2801 peer_device = kzalloc(sizeof(struct drbd_peer_device), GFP_KERNEL); 2802 if (!peer_device) 2803 goto out_idr_remove_from_resource; 2804 peer_device->connection = connection; 2805 peer_device->device = device; 2806 2807 list_add(&peer_device->peer_devices, &device->peer_devices); 2808 kref_get(&device->kref); 2809 2810 id = idr_alloc(&connection->peer_devices, peer_device, vnr, vnr + 1, GFP_KERNEL); 2811 if (id < 0) { 2812 if (id == -ENOSPC) 2813 err = ERR_INVALID_REQUEST; 2814 goto out_idr_remove_from_resource; 2815 } 2816 kref_get(&connection->kref); 2817 INIT_WORK(&peer_device->send_acks_work, drbd_send_acks_wf); 2818 } 2819 2820 if (init_submitter(device)) { 2821 err = ERR_NOMEM; 2822 goto out_idr_remove_from_resource; 2823 } 2824 2825 add_disk(disk); 2826 2827 /* inherit the connection state */ 2828 device->state.conn = first_connection(resource)->cstate; 2829 if (device->state.conn == C_WF_REPORT_PARAMS) { 2830 for_each_peer_device(peer_device, device) 2831 drbd_connected(peer_device); 2832 } 2833 /* move to create_peer_device() */ 2834 for_each_peer_device(peer_device, device) 2835 drbd_debugfs_peer_device_add(peer_device); 2836 drbd_debugfs_device_add(device); 2837 return NO_ERROR; 2838 2839out_idr_remove_from_resource: 2840 for_each_connection_safe(connection, n, resource) { 2841 peer_device = idr_remove(&connection->peer_devices, vnr); 2842 if (peer_device) 2843 kref_put(&connection->kref, drbd_destroy_connection); 2844 } 2845 for_each_peer_device_safe(peer_device, tmp_peer_device, device) { 2846 list_del(&peer_device->peer_devices); 2847 kfree(peer_device); 2848 } 2849 idr_remove(&resource->devices, vnr); 2850out_idr_remove_minor: 2851 idr_remove(&drbd_devices, minor); 2852 synchronize_rcu(); 2853out_no_minor_idr: 2854 drbd_bm_cleanup(device); 2855out_no_bitmap: 2856 __free_page(device->md_io.page); 2857out_no_io_page: 2858 put_disk(disk); 2859out_no_disk: 2860 blk_cleanup_queue(q); 2861out_no_q: 2862 kref_put(&resource->kref, drbd_destroy_resource); 2863 kfree(device); 2864 return err; 2865} 2866 2867void drbd_delete_device(struct drbd_device *device) 2868{ 2869 struct drbd_resource *resource = device->resource; 2870 struct drbd_connection *connection; 2871 struct drbd_peer_device *peer_device; 2872 2873 /* move to free_peer_device() */ 2874 for_each_peer_device(peer_device, device) 2875 drbd_debugfs_peer_device_cleanup(peer_device); 2876 drbd_debugfs_device_cleanup(device); 2877 for_each_connection(connection, resource) { 2878 idr_remove(&connection->peer_devices, device->vnr); 2879 kref_put(&device->kref, drbd_destroy_device); 2880 } 2881 idr_remove(&resource->devices, device->vnr); 2882 kref_put(&device->kref, drbd_destroy_device); 2883 idr_remove(&drbd_devices, device_to_minor(device)); 2884 kref_put(&device->kref, drbd_destroy_device); 2885 del_gendisk(device->vdisk); 2886 synchronize_rcu(); 2887 kref_put(&device->kref, drbd_destroy_device); 2888} 2889 2890static int __init drbd_init(void) 2891{ 2892 int err; 2893 2894 if (drbd_minor_count < DRBD_MINOR_COUNT_MIN || drbd_minor_count > DRBD_MINOR_COUNT_MAX) { 2895 pr_err("invalid minor_count (%d)\n", drbd_minor_count); 2896#ifdef MODULE 2897 return -EINVAL; 2898#else 2899 drbd_minor_count = DRBD_MINOR_COUNT_DEF; 2900#endif 2901 } 2902 2903 err = register_blkdev(DRBD_MAJOR, "drbd"); 2904 if (err) { 2905 pr_err("unable to register block device major %d\n", 2906 DRBD_MAJOR); 2907 return err; 2908 } 2909 2910 /* 2911 * allocate all necessary structs 2912 */ 2913 init_waitqueue_head(&drbd_pp_wait); 2914 2915 drbd_proc = NULL; /* play safe for drbd_cleanup */ 2916 idr_init(&drbd_devices); 2917 2918 mutex_init(&resources_mutex); 2919 INIT_LIST_HEAD(&drbd_resources); 2920 2921 err = drbd_genl_register(); 2922 if (err) { 2923 pr_err("unable to register generic netlink family\n"); 2924 goto fail; 2925 } 2926 2927 err = drbd_create_mempools(); 2928 if (err) 2929 goto fail; 2930 2931 err = -ENOMEM; 2932 drbd_proc = proc_create_single("drbd", S_IFREG | 0444 , NULL, drbd_seq_show); 2933 if (!drbd_proc) { 2934 pr_err("unable to register proc file\n"); 2935 goto fail; 2936 } 2937 2938 retry.wq = create_singlethread_workqueue("drbd-reissue"); 2939 if (!retry.wq) { 2940 pr_err("unable to create retry workqueue\n"); 2941 goto fail; 2942 } 2943 INIT_WORK(&retry.worker, do_retry); 2944 spin_lock_init(&retry.lock); 2945 INIT_LIST_HEAD(&retry.writes); 2946 2947 drbd_debugfs_init(); 2948 2949 pr_info("initialized. " 2950 "Version: " REL_VERSION " (api:%d/proto:%d-%d)\n", 2951 API_VERSION, PRO_VERSION_MIN, PRO_VERSION_MAX); 2952 pr_info("%s\n", drbd_buildtag()); 2953 pr_info("registered as block device major %d\n", DRBD_MAJOR); 2954 return 0; /* Success! */ 2955 2956fail: 2957 drbd_cleanup(); 2958 if (err == -ENOMEM) 2959 pr_err("ran out of memory\n"); 2960 else 2961 pr_err("initialization failure\n"); 2962 return err; 2963} 2964 2965static void drbd_free_one_sock(struct drbd_socket *ds) 2966{ 2967 struct socket *s; 2968 mutex_lock(&ds->mutex); 2969 s = ds->socket; 2970 ds->socket = NULL; 2971 mutex_unlock(&ds->mutex); 2972 if (s) { 2973 /* so debugfs does not need to mutex_lock() */ 2974 synchronize_rcu(); 2975 kernel_sock_shutdown(s, SHUT_RDWR); 2976 sock_release(s); 2977 } 2978} 2979 2980void drbd_free_sock(struct drbd_connection *connection) 2981{ 2982 if (connection->data.socket) 2983 drbd_free_one_sock(&connection->data); 2984 if (connection->meta.socket) 2985 drbd_free_one_sock(&connection->meta); 2986} 2987 2988/* meta data management */ 2989 2990void conn_md_sync(struct drbd_connection *connection) 2991{ 2992 struct drbd_peer_device *peer_device; 2993 int vnr; 2994 2995 rcu_read_lock(); 2996 idr_for_each_entry(&connection->peer_devices, peer_device, vnr) { 2997 struct drbd_device *device = peer_device->device; 2998 2999 kref_get(&device->kref); 3000 rcu_read_unlock(); 3001 drbd_md_sync(device); 3002 kref_put(&device->kref, drbd_destroy_device); 3003 rcu_read_lock(); 3004 } 3005 rcu_read_unlock(); 3006} 3007 3008/* aligned 4kByte */ 3009struct meta_data_on_disk { 3010 u64 la_size_sect; /* last agreed size. */ 3011 u64 uuid[UI_SIZE]; /* UUIDs. */ 3012 u64 device_uuid; 3013 u64 reserved_u64_1; 3014 u32 flags; /* MDF */ 3015 u32 magic; 3016 u32 md_size_sect; 3017 u32 al_offset; /* offset to this block */ 3018 u32 al_nr_extents; /* important for restoring the AL (userspace) */ 3019 /* `-- act_log->nr_elements <-- ldev->dc.al_extents */ 3020 u32 bm_offset; /* offset to the bitmap, from here */ 3021 u32 bm_bytes_per_bit; /* BM_BLOCK_SIZE */ 3022 u32 la_peer_max_bio_size; /* last peer max_bio_size */ 3023 3024 /* see al_tr_number_to_on_disk_sector() */ 3025 u32 al_stripes; 3026 u32 al_stripe_size_4k; 3027 3028 u8 reserved_u8[4096 - (7*8 + 10*4)]; 3029} __packed; 3030 3031 3032 3033void drbd_md_write(struct drbd_device *device, void *b) 3034{ 3035 struct meta_data_on_disk *buffer = b; 3036 sector_t sector; 3037 int i; 3038 3039 memset(buffer, 0, sizeof(*buffer)); 3040 3041 buffer->la_size_sect = cpu_to_be64(get_capacity(device->vdisk)); 3042 for (i = UI_CURRENT; i < UI_SIZE; i++) 3043 buffer->uuid[i] = cpu_to_be64(device->ldev->md.uuid[i]); 3044 buffer->flags = cpu_to_be32(device->ldev->md.flags); 3045 buffer->magic = cpu_to_be32(DRBD_MD_MAGIC_84_UNCLEAN); 3046 3047 buffer->md_size_sect = cpu_to_be32(device->ldev->md.md_size_sect); 3048 buffer->al_offset = cpu_to_be32(device->ldev->md.al_offset); 3049 buffer->al_nr_extents = cpu_to_be32(device->act_log->nr_elements); 3050 buffer->bm_bytes_per_bit = cpu_to_be32(BM_BLOCK_SIZE); 3051 buffer->device_uuid = cpu_to_be64(device->ldev->md.device_uuid); 3052 3053 buffer->bm_offset = cpu_to_be32(device->ldev->md.bm_offset); 3054 buffer->la_peer_max_bio_size = cpu_to_be32(device->peer_max_bio_size); 3055 3056 buffer->al_stripes = cpu_to_be32(device->ldev->md.al_stripes); 3057 buffer->al_stripe_size_4k = cpu_to_be32(device->ldev->md.al_stripe_size_4k); 3058 3059 D_ASSERT(device, drbd_md_ss(device->ldev) == device->ldev->md.md_offset); 3060 sector = device->ldev->md.md_offset; 3061 3062 if (drbd_md_sync_page_io(device, device->ldev, sector, REQ_OP_WRITE)) { 3063 /* this was a try anyways ... */ 3064 drbd_err(device, "meta data update failed!\n"); 3065 drbd_chk_io_error(device, 1, DRBD_META_IO_ERROR); 3066 } 3067} 3068 3069/** 3070 * drbd_md_sync() - Writes the meta data super block if the MD_DIRTY flag bit is set 3071 * @device: DRBD device. 3072 */ 3073void drbd_md_sync(struct drbd_device *device) 3074{ 3075 struct meta_data_on_disk *buffer; 3076 3077 /* Don't accidentally change the DRBD meta data layout. */ 3078 BUILD_BUG_ON(UI_SIZE != 4); 3079 BUILD_BUG_ON(sizeof(struct meta_data_on_disk) != 4096); 3080 3081 del_timer(&device->md_sync_timer); 3082 /* timer may be rearmed by drbd_md_mark_dirty() now. */ 3083 if (!test_and_clear_bit(MD_DIRTY, &device->flags)) 3084 return; 3085 3086 /* We use here D_FAILED and not D_ATTACHING because we try to write 3087 * metadata even if we detach due to a disk failure! */ 3088 if (!get_ldev_if_state(device, D_FAILED)) 3089 return; 3090 3091 buffer = drbd_md_get_buffer(device, __func__); 3092 if (!buffer) 3093 goto out; 3094 3095 drbd_md_write(device, buffer); 3096 3097 /* Update device->ldev->md.la_size_sect, 3098 * since we updated it on metadata. */ 3099 device->ldev->md.la_size_sect = get_capacity(device->vdisk); 3100 3101 drbd_md_put_buffer(device); 3102out: 3103 put_ldev(device); 3104} 3105 3106static int check_activity_log_stripe_size(struct drbd_device *device, 3107 struct meta_data_on_disk *on_disk, 3108 struct drbd_md *in_core) 3109{ 3110 u32 al_stripes = be32_to_cpu(on_disk->al_stripes); 3111 u32 al_stripe_size_4k = be32_to_cpu(on_disk->al_stripe_size_4k); 3112 u64 al_size_4k; 3113 3114 /* both not set: default to old fixed size activity log */ 3115 if (al_stripes == 0 && al_stripe_size_4k == 0) { 3116 al_stripes = 1; 3117 al_stripe_size_4k = MD_32kB_SECT/8; 3118 } 3119 3120 /* some paranoia plausibility checks */ 3121 3122 /* we need both values to be set */ 3123 if (al_stripes == 0 || al_stripe_size_4k == 0) 3124 goto err; 3125 3126 al_size_4k = (u64)al_stripes * al_stripe_size_4k; 3127 3128 /* Upper limit of activity log area, to avoid potential overflow 3129 * problems in al_tr_number_to_on_disk_sector(). As right now, more 3130 * than 72 * 4k blocks total only increases the amount of history, 3131 * limiting this arbitrarily to 16 GB is not a real limitation ;-) */ 3132 if (al_size_4k > (16 * 1024 * 1024/4)) 3133 goto err; 3134 3135 /* Lower limit: we need at least 8 transaction slots (32kB) 3136 * to not break existing setups */ 3137 if (al_size_4k < MD_32kB_SECT/8) 3138 goto err; 3139 3140 in_core->al_stripe_size_4k = al_stripe_size_4k; 3141 in_core->al_stripes = al_stripes; 3142 in_core->al_size_4k = al_size_4k; 3143 3144 return 0; 3145err: 3146 drbd_err(device, "invalid activity log striping: al_stripes=%u, al_stripe_size_4k=%u\n", 3147 al_stripes, al_stripe_size_4k); 3148 return -EINVAL; 3149} 3150 3151static int check_offsets_and_sizes(struct drbd_device *device, struct drbd_backing_dev *bdev) 3152{ 3153 sector_t capacity = drbd_get_capacity(bdev->md_bdev); 3154 struct drbd_md *in_core = &bdev->md; 3155 s32 on_disk_al_sect; 3156 s32 on_disk_bm_sect; 3157 3158 /* The on-disk size of the activity log, calculated from offsets, and 3159 * the size of the activity log calculated from the stripe settings, 3160 * should match. 3161 * Though we could relax this a bit: it is ok, if the striped activity log 3162 * fits in the available on-disk activity log size. 3163 * Right now, that would break how resize is implemented. 3164 * TODO: make drbd_determine_dev_size() (and the drbdmeta tool) aware 3165 * of possible unused padding space in the on disk layout. */ 3166 if (in_core->al_offset < 0) { 3167 if (in_core->bm_offset > in_core->al_offset) 3168 goto err; 3169 on_disk_al_sect = -in_core->al_offset; 3170 on_disk_bm_sect = in_core->al_offset - in_core->bm_offset; 3171 } else { 3172 if (in_core->al_offset != MD_4kB_SECT) 3173 goto err; 3174 if (in_core->bm_offset < in_core->al_offset + in_core->al_size_4k * MD_4kB_SECT) 3175 goto err; 3176 3177 on_disk_al_sect = in_core->bm_offset - MD_4kB_SECT; 3178 on_disk_bm_sect = in_core->md_size_sect - in_core->bm_offset; 3179 } 3180 3181 /* old fixed size meta data is exactly that: fixed. */ 3182 if (in_core->meta_dev_idx >= 0) { 3183 if (in_core->md_size_sect != MD_128MB_SECT 3184 || in_core->al_offset != MD_4kB_SECT 3185 || in_core->bm_offset != MD_4kB_SECT + MD_32kB_SECT 3186 || in_core->al_stripes != 1 3187 || in_core->al_stripe_size_4k != MD_32kB_SECT/8) 3188 goto err; 3189 } 3190 3191 if (capacity < in_core->md_size_sect) 3192 goto err; 3193 if (capacity - in_core->md_size_sect < drbd_md_first_sector(bdev)) 3194 goto err; 3195 3196 /* should be aligned, and at least 32k */ 3197 if ((on_disk_al_sect & 7) || (on_disk_al_sect < MD_32kB_SECT)) 3198 goto err; 3199 3200 /* should fit (for now: exactly) into the available on-disk space; 3201 * overflow prevention is in check_activity_log_stripe_size() above. */ 3202 if (on_disk_al_sect != in_core->al_size_4k * MD_4kB_SECT) 3203 goto err; 3204 3205 /* again, should be aligned */ 3206 if (in_core->bm_offset & 7) 3207 goto err; 3208 3209 /* FIXME check for device grow with flex external meta data? */ 3210 3211 /* can the available bitmap space cover the last agreed device size? */ 3212 if (on_disk_bm_sect < (in_core->la_size_sect+7)/MD_4kB_SECT/8/512) 3213 goto err; 3214 3215 return 0; 3216 3217err: 3218 drbd_err(device, "meta data offsets don't make sense: idx=%d " 3219 "al_s=%u, al_sz4k=%u, al_offset=%d, bm_offset=%d, " 3220 "md_size_sect=%u, la_size=%llu, md_capacity=%llu\n", 3221 in_core->meta_dev_idx, 3222 in_core->al_stripes, in_core->al_stripe_size_4k, 3223 in_core->al_offset, in_core->bm_offset, in_core->md_size_sect, 3224 (unsigned long long)in_core->la_size_sect, 3225 (unsigned long long)capacity); 3226 3227 return -EINVAL; 3228} 3229 3230 3231/** 3232 * drbd_md_read() - Reads in the meta data super block 3233 * @device: DRBD device. 3234 * @bdev: Device from which the meta data should be read in. 3235 * 3236 * Return NO_ERROR on success, and an enum drbd_ret_code in case 3237 * something goes wrong. 3238 * 3239 * Called exactly once during drbd_adm_attach(), while still being D_DISKLESS, 3240 * even before @bdev is assigned to @device->ldev. 3241 */ 3242int drbd_md_read(struct drbd_device *device, struct drbd_backing_dev *bdev) 3243{ 3244 struct meta_data_on_disk *buffer; 3245 u32 magic, flags; 3246 int i, rv = NO_ERROR; 3247 3248 if (device->state.disk != D_DISKLESS) 3249 return ERR_DISK_CONFIGURED; 3250 3251 buffer = drbd_md_get_buffer(device, __func__); 3252 if (!buffer) 3253 return ERR_NOMEM; 3254 3255 /* First, figure out where our meta data superblock is located, 3256 * and read it. */ 3257 bdev->md.meta_dev_idx = bdev->disk_conf->meta_dev_idx; 3258 bdev->md.md_offset = drbd_md_ss(bdev); 3259 /* Even for (flexible or indexed) external meta data, 3260 * initially restrict us to the 4k superblock for now. 3261 * Affects the paranoia out-of-range access check in drbd_md_sync_page_io(). */ 3262 bdev->md.md_size_sect = 8; 3263 3264 if (drbd_md_sync_page_io(device, bdev, bdev->md.md_offset, 3265 REQ_OP_READ)) { 3266 /* NOTE: can't do normal error processing here as this is 3267 called BEFORE disk is attached */ 3268 drbd_err(device, "Error while reading metadata.\n"); 3269 rv = ERR_IO_MD_DISK; 3270 goto err; 3271 } 3272 3273 magic = be32_to_cpu(buffer->magic); 3274 flags = be32_to_cpu(buffer->flags); 3275 if (magic == DRBD_MD_MAGIC_84_UNCLEAN || 3276 (magic == DRBD_MD_MAGIC_08 && !(flags & MDF_AL_CLEAN))) { 3277 /* btw: that's Activity Log clean, not "all" clean. */ 3278 drbd_err(device, "Found unclean meta data. Did you \"drbdadm apply-al\"?\n"); 3279 rv = ERR_MD_UNCLEAN; 3280 goto err; 3281 } 3282 3283 rv = ERR_MD_INVALID; 3284 if (magic != DRBD_MD_MAGIC_08) { 3285 if (magic == DRBD_MD_MAGIC_07) 3286 drbd_err(device, "Found old (0.7) meta data magic. Did you \"drbdadm create-md\"?\n"); 3287 else 3288 drbd_err(device, "Meta data magic not found. Did you \"drbdadm create-md\"?\n"); 3289 goto err; 3290 } 3291 3292 if (be32_to_cpu(buffer->bm_bytes_per_bit) != BM_BLOCK_SIZE) { 3293 drbd_err(device, "unexpected bm_bytes_per_bit: %u (expected %u)\n", 3294 be32_to_cpu(buffer->bm_bytes_per_bit), BM_BLOCK_SIZE); 3295 goto err; 3296 } 3297 3298 3299 /* convert to in_core endian */ 3300 bdev->md.la_size_sect = be64_to_cpu(buffer->la_size_sect); 3301 for (i = UI_CURRENT; i < UI_SIZE; i++) 3302 bdev->md.uuid[i] = be64_to_cpu(buffer->uuid[i]); 3303 bdev->md.flags = be32_to_cpu(buffer->flags); 3304 bdev->md.device_uuid = be64_to_cpu(buffer->device_uuid); 3305 3306 bdev->md.md_size_sect = be32_to_cpu(buffer->md_size_sect); 3307 bdev->md.al_offset = be32_to_cpu(buffer->al_offset); 3308 bdev->md.bm_offset = be32_to_cpu(buffer->bm_offset); 3309 3310 if (check_activity_log_stripe_size(device, buffer, &bdev->md)) 3311 goto err; 3312 if (check_offsets_and_sizes(device, bdev)) 3313 goto err; 3314 3315 if (be32_to_cpu(buffer->bm_offset) != bdev->md.bm_offset) { 3316 drbd_err(device, "unexpected bm_offset: %d (expected %d)\n", 3317 be32_to_cpu(buffer->bm_offset), bdev->md.bm_offset); 3318 goto err; 3319 } 3320 if (be32_to_cpu(buffer->md_size_sect) != bdev->md.md_size_sect) { 3321 drbd_err(device, "unexpected md_size: %u (expected %u)\n", 3322 be32_to_cpu(buffer->md_size_sect), bdev->md.md_size_sect); 3323 goto err; 3324 } 3325 3326 rv = NO_ERROR; 3327 3328 spin_lock_irq(&device->resource->req_lock); 3329 if (device->state.conn < C_CONNECTED) { 3330 unsigned int peer; 3331 peer = be32_to_cpu(buffer->la_peer_max_bio_size); 3332 peer = max(peer, DRBD_MAX_BIO_SIZE_SAFE); 3333 device->peer_max_bio_size = peer; 3334 } 3335 spin_unlock_irq(&device->resource->req_lock); 3336 3337 err: 3338 drbd_md_put_buffer(device); 3339 3340 return rv; 3341} 3342 3343/** 3344 * drbd_md_mark_dirty() - Mark meta data super block as dirty 3345 * @device: DRBD device. 3346 * 3347 * Call this function if you change anything that should be written to 3348 * the meta-data super block. This function sets MD_DIRTY, and starts a 3349 * timer that ensures that within five seconds you have to call drbd_md_sync(). 3350 */ 3351void drbd_md_mark_dirty(struct drbd_device *device) 3352{ 3353 if (!test_and_set_bit(MD_DIRTY, &device->flags)) 3354 mod_timer(&device->md_sync_timer, jiffies + 5*HZ); 3355} 3356 3357void drbd_uuid_move_history(struct drbd_device *device) __must_hold(local) 3358{ 3359 int i; 3360 3361 for (i = UI_HISTORY_START; i < UI_HISTORY_END; i++) 3362 device->ldev->md.uuid[i+1] = device->ldev->md.uuid[i]; 3363} 3364 3365void __drbd_uuid_set(struct drbd_device *device, int idx, u64 val) __must_hold(local) 3366{ 3367 if (idx == UI_CURRENT) { 3368 if (device->state.role == R_PRIMARY) 3369 val |= 1; 3370 else 3371 val &= ~((u64)1); 3372 3373 drbd_set_ed_uuid(device, val); 3374 } 3375 3376 device->ldev->md.uuid[idx] = val; 3377 drbd_md_mark_dirty(device); 3378} 3379 3380void _drbd_uuid_set(struct drbd_device *device, int idx, u64 val) __must_hold(local) 3381{ 3382 unsigned long flags; 3383 spin_lock_irqsave(&device->ldev->md.uuid_lock, flags); 3384 __drbd_uuid_set(device, idx, val); 3385 spin_unlock_irqrestore(&device->ldev->md.uuid_lock, flags); 3386} 3387 3388void drbd_uuid_set(struct drbd_device *device, int idx, u64 val) __must_hold(local) 3389{ 3390 unsigned long flags; 3391 spin_lock_irqsave(&device->ldev->md.uuid_lock, flags); 3392 if (device->ldev->md.uuid[idx]) { 3393 drbd_uuid_move_history(device); 3394 device->ldev->md.uuid[UI_HISTORY_START] = device->ldev->md.uuid[idx]; 3395 } 3396 __drbd_uuid_set(device, idx, val); 3397 spin_unlock_irqrestore(&device->ldev->md.uuid_lock, flags); 3398} 3399 3400/** 3401 * drbd_uuid_new_current() - Creates a new current UUID 3402 * @device: DRBD device. 3403 * 3404 * Creates a new current UUID, and rotates the old current UUID into 3405 * the bitmap slot. Causes an incremental resync upon next connect. 3406 */ 3407void drbd_uuid_new_current(struct drbd_device *device) __must_hold(local) 3408{ 3409 u64 val; 3410 unsigned long long bm_uuid; 3411 3412 get_random_bytes(&val, sizeof(u64)); 3413 3414 spin_lock_irq(&device->ldev->md.uuid_lock); 3415 bm_uuid = device->ldev->md.uuid[UI_BITMAP]; 3416 3417 if (bm_uuid) 3418 drbd_warn(device, "bm UUID was already set: %llX\n", bm_uuid); 3419 3420 device->ldev->md.uuid[UI_BITMAP] = device->ldev->md.uuid[UI_CURRENT]; 3421 __drbd_uuid_set(device, UI_CURRENT, val); 3422 spin_unlock_irq(&device->ldev->md.uuid_lock); 3423 3424 drbd_print_uuids(device, "new current UUID"); 3425 /* get it to stable storage _now_ */ 3426 drbd_md_sync(device); 3427} 3428 3429void drbd_uuid_set_bm(struct drbd_device *device, u64 val) __must_hold(local) 3430{ 3431 unsigned long flags; 3432 if (device->ldev->md.uuid[UI_BITMAP] == 0 && val == 0) 3433 return; 3434 3435 spin_lock_irqsave(&device->ldev->md.uuid_lock, flags); 3436 if (val == 0) { 3437 drbd_uuid_move_history(device); 3438 device->ldev->md.uuid[UI_HISTORY_START] = device->ldev->md.uuid[UI_BITMAP]; 3439 device->ldev->md.uuid[UI_BITMAP] = 0; 3440 } else { 3441 unsigned long long bm_uuid = device->ldev->md.uuid[UI_BITMAP]; 3442 if (bm_uuid) 3443 drbd_warn(device, "bm UUID was already set: %llX\n", bm_uuid); 3444 3445 device->ldev->md.uuid[UI_BITMAP] = val & ~((u64)1); 3446 } 3447 spin_unlock_irqrestore(&device->ldev->md.uuid_lock, flags); 3448 3449 drbd_md_mark_dirty(device); 3450} 3451 3452/** 3453 * drbd_bmio_set_n_write() - io_fn for drbd_queue_bitmap_io() or drbd_bitmap_io() 3454 * @device: DRBD device. 3455 * 3456 * Sets all bits in the bitmap and writes the whole bitmap to stable storage. 3457 */ 3458int drbd_bmio_set_n_write(struct drbd_device *device) __must_hold(local) 3459{ 3460 int rv = -EIO; 3461 3462 drbd_md_set_flag(device, MDF_FULL_SYNC); 3463 drbd_md_sync(device); 3464 drbd_bm_set_all(device); 3465 3466 rv = drbd_bm_write(device); 3467 3468 if (!rv) { 3469 drbd_md_clear_flag(device, MDF_FULL_SYNC); 3470 drbd_md_sync(device); 3471 } 3472 3473 return rv; 3474} 3475 3476/** 3477 * drbd_bmio_clear_n_write() - io_fn for drbd_queue_bitmap_io() or drbd_bitmap_io() 3478 * @device: DRBD device. 3479 * 3480 * Clears all bits in the bitmap and writes the whole bitmap to stable storage. 3481 */ 3482int drbd_bmio_clear_n_write(struct drbd_device *device) __must_hold(local) 3483{ 3484 drbd_resume_al(device); 3485 drbd_bm_clear_all(device); 3486 return drbd_bm_write(device); 3487} 3488 3489static int w_bitmap_io(struct drbd_work *w, int unused) 3490{ 3491 struct drbd_device *device = 3492 container_of(w, struct drbd_device, bm_io_work.w); 3493 struct bm_io_work *work = &device->bm_io_work; 3494 int rv = -EIO; 3495 3496 if (work->flags != BM_LOCKED_CHANGE_ALLOWED) { 3497 int cnt = atomic_read(&device->ap_bio_cnt); 3498 if (cnt) 3499 drbd_err(device, "FIXME: ap_bio_cnt %d, expected 0; queued for '%s'\n", 3500 cnt, work->why); 3501 } 3502 3503 if (get_ldev(device)) { 3504 drbd_bm_lock(device, work->why, work->flags); 3505 rv = work->io_fn(device); 3506 drbd_bm_unlock(device); 3507 put_ldev(device); 3508 } 3509 3510 clear_bit_unlock(BITMAP_IO, &device->flags); 3511 wake_up(&device->misc_wait); 3512 3513 if (work->done) 3514 work->done(device, rv); 3515 3516 clear_bit(BITMAP_IO_QUEUED, &device->flags); 3517 work->why = NULL; 3518 work->flags = 0; 3519 3520 return 0; 3521} 3522 3523/** 3524 * drbd_queue_bitmap_io() - Queues an IO operation on the whole bitmap 3525 * @device: DRBD device. 3526 * @io_fn: IO callback to be called when bitmap IO is possible 3527 * @done: callback to be called after the bitmap IO was performed 3528 * @why: Descriptive text of the reason for doing the IO 3529 * 3530 * While IO on the bitmap happens we freeze application IO thus we ensure 3531 * that drbd_set_out_of_sync() can not be called. This function MAY ONLY be 3532 * called from worker context. It MUST NOT be used while a previous such 3533 * work is still pending! 3534 * 3535 * Its worker function encloses the call of io_fn() by get_ldev() and 3536 * put_ldev(). 3537 */ 3538void drbd_queue_bitmap_io(struct drbd_device *device, 3539 int (*io_fn)(struct drbd_device *), 3540 void (*done)(struct drbd_device *, int), 3541 char *why, enum bm_flag flags) 3542{ 3543 D_ASSERT(device, current == first_peer_device(device)->connection->worker.task); 3544 3545 D_ASSERT(device, !test_bit(BITMAP_IO_QUEUED, &device->flags)); 3546 D_ASSERT(device, !test_bit(BITMAP_IO, &device->flags)); 3547 D_ASSERT(device, list_empty(&device->bm_io_work.w.list)); 3548 if (device->bm_io_work.why) 3549 drbd_err(device, "FIXME going to queue '%s' but '%s' still pending?\n", 3550 why, device->bm_io_work.why); 3551 3552 device->bm_io_work.io_fn = io_fn; 3553 device->bm_io_work.done = done; 3554 device->bm_io_work.why = why; 3555 device->bm_io_work.flags = flags; 3556 3557 spin_lock_irq(&device->resource->req_lock); 3558 set_bit(BITMAP_IO, &device->flags); 3559 /* don't wait for pending application IO if the caller indicates that 3560 * application IO does not conflict anyways. */ 3561 if (flags == BM_LOCKED_CHANGE_ALLOWED || atomic_read(&device->ap_bio_cnt) == 0) { 3562 if (!test_and_set_bit(BITMAP_IO_QUEUED, &device->flags)) 3563 drbd_queue_work(&first_peer_device(device)->connection->sender_work, 3564 &device->bm_io_work.w); 3565 } 3566 spin_unlock_irq(&device->resource->req_lock); 3567} 3568 3569/** 3570 * drbd_bitmap_io() - Does an IO operation on the whole bitmap 3571 * @device: DRBD device. 3572 * @io_fn: IO callback to be called when bitmap IO is possible 3573 * @why: Descriptive text of the reason for doing the IO 3574 * 3575 * freezes application IO while that the actual IO operations runs. This 3576 * functions MAY NOT be called from worker context. 3577 */ 3578int drbd_bitmap_io(struct drbd_device *device, int (*io_fn)(struct drbd_device *), 3579 char *why, enum bm_flag flags) 3580{ 3581 /* Only suspend io, if some operation is supposed to be locked out */ 3582 const bool do_suspend_io = flags & (BM_DONT_CLEAR|BM_DONT_SET|BM_DONT_TEST); 3583 int rv; 3584 3585 D_ASSERT(device, current != first_peer_device(device)->connection->worker.task); 3586 3587 if (do_suspend_io) 3588 drbd_suspend_io(device); 3589 3590 drbd_bm_lock(device, why, flags); 3591 rv = io_fn(device); 3592 drbd_bm_unlock(device); 3593 3594 if (do_suspend_io) 3595 drbd_resume_io(device); 3596 3597 return rv; 3598} 3599 3600void drbd_md_set_flag(struct drbd_device *device, int flag) __must_hold(local) 3601{ 3602 if ((device->ldev->md.flags & flag) != flag) { 3603 drbd_md_mark_dirty(device); 3604 device->ldev->md.flags |= flag; 3605 } 3606} 3607 3608void drbd_md_clear_flag(struct drbd_device *device, int flag) __must_hold(local) 3609{ 3610 if ((device->ldev->md.flags & flag) != 0) { 3611 drbd_md_mark_dirty(device); 3612 device->ldev->md.flags &= ~flag; 3613 } 3614} 3615int drbd_md_test_flag(struct drbd_backing_dev *bdev, int flag) 3616{ 3617 return (bdev->md.flags & flag) != 0; 3618} 3619 3620static void md_sync_timer_fn(struct timer_list *t) 3621{ 3622 struct drbd_device *device = from_timer(device, t, md_sync_timer); 3623 drbd_device_post_work(device, MD_SYNC); 3624} 3625 3626const char *cmdname(enum drbd_packet cmd) 3627{ 3628 /* THINK may need to become several global tables 3629 * when we want to support more than 3630 * one PRO_VERSION */ 3631 static const char *cmdnames[] = { 3632 3633 [P_DATA] = "Data", 3634 [P_DATA_REPLY] = "DataReply", 3635 [P_RS_DATA_REPLY] = "RSDataReply", 3636 [P_BARRIER] = "Barrier", 3637 [P_BITMAP] = "ReportBitMap", 3638 [P_BECOME_SYNC_TARGET] = "BecomeSyncTarget", 3639 [P_BECOME_SYNC_SOURCE] = "BecomeSyncSource", 3640 [P_UNPLUG_REMOTE] = "UnplugRemote", 3641 [P_DATA_REQUEST] = "DataRequest", 3642 [P_RS_DATA_REQUEST] = "RSDataRequest", 3643 [P_SYNC_PARAM] = "SyncParam", 3644 [P_PROTOCOL] = "ReportProtocol", 3645 [P_UUIDS] = "ReportUUIDs", 3646 [P_SIZES] = "ReportSizes", 3647 [P_STATE] = "ReportState", 3648 [P_SYNC_UUID] = "ReportSyncUUID", 3649 [P_AUTH_CHALLENGE] = "AuthChallenge", 3650 [P_AUTH_RESPONSE] = "AuthResponse", 3651 [P_STATE_CHG_REQ] = "StateChgRequest", 3652 [P_PING] = "Ping", 3653 [P_PING_ACK] = "PingAck", 3654 [P_RECV_ACK] = "RecvAck", 3655 [P_WRITE_ACK] = "WriteAck", 3656 [P_RS_WRITE_ACK] = "RSWriteAck", 3657 [P_SUPERSEDED] = "Superseded", 3658 [P_NEG_ACK] = "NegAck", 3659 [P_NEG_DREPLY] = "NegDReply", 3660 [P_NEG_RS_DREPLY] = "NegRSDReply", 3661 [P_BARRIER_ACK] = "BarrierAck", 3662 [P_STATE_CHG_REPLY] = "StateChgReply", 3663 [P_OV_REQUEST] = "OVRequest", 3664 [P_OV_REPLY] = "OVReply", 3665 [P_OV_RESULT] = "OVResult", 3666 [P_CSUM_RS_REQUEST] = "CsumRSRequest", 3667 [P_RS_IS_IN_SYNC] = "CsumRSIsInSync", 3668 [P_SYNC_PARAM89] = "SyncParam89", 3669 [P_COMPRESSED_BITMAP] = "CBitmap", 3670 [P_DELAY_PROBE] = "DelayProbe", 3671 [P_OUT_OF_SYNC] = "OutOfSync", 3672 [P_RS_CANCEL] = "RSCancel", 3673 [P_CONN_ST_CHG_REQ] = "conn_st_chg_req", 3674 [P_CONN_ST_CHG_REPLY] = "conn_st_chg_reply", 3675 [P_RETRY_WRITE] = "retry_write", 3676 [P_PROTOCOL_UPDATE] = "protocol_update", 3677 [P_TRIM] = "Trim", 3678 [P_RS_THIN_REQ] = "rs_thin_req", 3679 [P_RS_DEALLOCATED] = "rs_deallocated", 3680 [P_WSAME] = "WriteSame", 3681 [P_ZEROES] = "Zeroes", 3682 3683 /* enum drbd_packet, but not commands - obsoleted flags: 3684 * P_MAY_IGNORE 3685 * P_MAX_OPT_CMD 3686 */ 3687 }; 3688 3689 /* too big for the array: 0xfffX */ 3690 if (cmd == P_INITIAL_META) 3691 return "InitialMeta"; 3692 if (cmd == P_INITIAL_DATA) 3693 return "InitialData"; 3694 if (cmd == P_CONNECTION_FEATURES) 3695 return "ConnectionFeatures"; 3696 if (cmd >= ARRAY_SIZE(cmdnames)) 3697 return "Unknown"; 3698 return cmdnames[cmd]; 3699} 3700 3701/** 3702 * drbd_wait_misc - wait for a request to make progress 3703 * @device: device associated with the request 3704 * @i: the struct drbd_interval embedded in struct drbd_request or 3705 * struct drbd_peer_request 3706 */ 3707int drbd_wait_misc(struct drbd_device *device, struct drbd_interval *i) 3708{ 3709 struct net_conf *nc; 3710 DEFINE_WAIT(wait); 3711 long timeout; 3712 3713 rcu_read_lock(); 3714 nc = rcu_dereference(first_peer_device(device)->connection->net_conf); 3715 if (!nc) { 3716 rcu_read_unlock(); 3717 return -ETIMEDOUT; 3718 } 3719 timeout = nc->ko_count ? nc->timeout * HZ / 10 * nc->ko_count : MAX_SCHEDULE_TIMEOUT; 3720 rcu_read_unlock(); 3721 3722 /* Indicate to wake up device->misc_wait on progress. */ 3723 i->waiting = true; 3724 prepare_to_wait(&device->misc_wait, &wait, TASK_INTERRUPTIBLE); 3725 spin_unlock_irq(&device->resource->req_lock); 3726 timeout = schedule_timeout(timeout); 3727 finish_wait(&device->misc_wait, &wait); 3728 spin_lock_irq(&device->resource->req_lock); 3729 if (!timeout || device->state.conn < C_CONNECTED) 3730 return -ETIMEDOUT; 3731 if (signal_pending(current)) 3732 return -ERESTARTSYS; 3733 return 0; 3734} 3735 3736void lock_all_resources(void) 3737{ 3738 struct drbd_resource *resource; 3739 int __maybe_unused i = 0; 3740 3741 mutex_lock(&resources_mutex); 3742 local_irq_disable(); 3743 for_each_resource(resource, &drbd_resources) 3744 spin_lock_nested(&resource->req_lock, i++); 3745} 3746 3747void unlock_all_resources(void) 3748{ 3749 struct drbd_resource *resource; 3750 3751 for_each_resource(resource, &drbd_resources) 3752 spin_unlock(&resource->req_lock); 3753 local_irq_enable(); 3754 mutex_unlock(&resources_mutex); 3755} 3756 3757#ifdef CONFIG_DRBD_FAULT_INJECTION 3758/* Fault insertion support including random number generator shamelessly 3759 * stolen from kernel/rcutorture.c */ 3760struct fault_random_state { 3761 unsigned long state; 3762 unsigned long count; 3763}; 3764 3765#define FAULT_RANDOM_MULT 39916801 /* prime */ 3766#define FAULT_RANDOM_ADD 479001701 /* prime */ 3767#define FAULT_RANDOM_REFRESH 10000 3768 3769/* 3770 * Crude but fast random-number generator. Uses a linear congruential 3771 * generator, with occasional help from get_random_bytes(). 3772 */ 3773static unsigned long 3774_drbd_fault_random(struct fault_random_state *rsp) 3775{ 3776 long refresh; 3777 3778 if (!rsp->count--) { 3779 get_random_bytes(&refresh, sizeof(refresh)); 3780 rsp->state += refresh; 3781 rsp->count = FAULT_RANDOM_REFRESH; 3782 } 3783 rsp->state = rsp->state * FAULT_RANDOM_MULT + FAULT_RANDOM_ADD; 3784 return swahw32(rsp->state); 3785} 3786 3787static char * 3788_drbd_fault_str(unsigned int type) { 3789 static char *_faults[] = { 3790 [DRBD_FAULT_MD_WR] = "Meta-data write", 3791 [DRBD_FAULT_MD_RD] = "Meta-data read", 3792 [DRBD_FAULT_RS_WR] = "Resync write", 3793 [DRBD_FAULT_RS_RD] = "Resync read", 3794 [DRBD_FAULT_DT_WR] = "Data write", 3795 [DRBD_FAULT_DT_RD] = "Data read", 3796 [DRBD_FAULT_DT_RA] = "Data read ahead", 3797 [DRBD_FAULT_BM_ALLOC] = "BM allocation", 3798 [DRBD_FAULT_AL_EE] = "EE allocation", 3799 [DRBD_FAULT_RECEIVE] = "receive data corruption", 3800 }; 3801 3802 return (type < DRBD_FAULT_MAX) ? _faults[type] : "**Unknown**"; 3803} 3804 3805unsigned int 3806_drbd_insert_fault(struct drbd_device *device, unsigned int type) 3807{ 3808 static struct fault_random_state rrs = {0, 0}; 3809 3810 unsigned int ret = ( 3811 (drbd_fault_devs == 0 || 3812 ((1 << device_to_minor(device)) & drbd_fault_devs) != 0) && 3813 (((_drbd_fault_random(&rrs) % 100) + 1) <= drbd_fault_rate)); 3814 3815 if (ret) { 3816 drbd_fault_count++; 3817 3818 if (__ratelimit(&drbd_ratelimit_state)) 3819 drbd_warn(device, "***Simulating %s failure\n", 3820 _drbd_fault_str(type)); 3821 } 3822 3823 return ret; 3824} 3825#endif 3826 3827const char *drbd_buildtag(void) 3828{ 3829 /* DRBD built from external sources has here a reference to the 3830 git hash of the source code. */ 3831 3832 static char buildtag[38] = "\0uilt-in"; 3833 3834 if (buildtag[0] == 0) { 3835#ifdef MODULE 3836 sprintf(buildtag, "srcversion: %-24s", THIS_MODULE->srcversion); 3837#else 3838 buildtag[0] = 'b'; 3839#endif 3840 } 3841 3842 return buildtag; 3843} 3844 3845module_init(drbd_init) 3846module_exit(drbd_cleanup) 3847 3848EXPORT_SYMBOL(drbd_conn_str); 3849EXPORT_SYMBOL(drbd_role_str); 3850EXPORT_SYMBOL(drbd_disk_str); 3851EXPORT_SYMBOL(drbd_set_st_err_str); 3852