1 // SPDX-License-Identifier: GPL-2.0-or-later 2 /* 3 * Copyright (C) 2004, 2005 Oracle. All rights reserved. 4 */ 5 6 #include "linux/kstrtox.h" 7 #include <linux/kernel.h> 8 #include <linux/sched.h> 9 #include <linux/jiffies.h> 10 #include <linux/module.h> 11 #include <linux/fs.h> 12 #include <linux/bio.h> 13 #include <linux/blkdev.h> 14 #include <linux/delay.h> 15 #include <linux/file.h> 16 #include <linux/kthread.h> 17 #include <linux/configfs.h> 18 #include <linux/random.h> 19 #include <linux/crc32.h> 20 #include <linux/time.h> 21 #include <linux/debugfs.h> 22 #include <linux/slab.h> 23 #include <linux/bitmap.h> 24 #include <linux/ktime.h> 25 #include "heartbeat.h" 26 #include "tcp.h" 27 #include "nodemanager.h" 28 #include "quorum.h" 29 30 #include "masklog.h" 31 32 33 /* 34 * The first heartbeat pass had one global thread that would serialize all hb 35 * callback calls. This global serializing sem should only be removed once 36 * we've made sure that all callees can deal with being called concurrently 37 * from multiple hb region threads. 38 */ 39 static DECLARE_RWSEM(o2hb_callback_sem); 40 41 /* 42 * multiple hb threads are watching multiple regions. A node is live 43 * whenever any of the threads sees activity from the node in its region. 44 */ 45 static DEFINE_SPINLOCK(o2hb_live_lock); 46 static struct list_head o2hb_live_slots[O2NM_MAX_NODES]; 47 static unsigned long o2hb_live_node_bitmap[BITS_TO_LONGS(O2NM_MAX_NODES)]; 48 static LIST_HEAD(o2hb_node_events); 49 static DECLARE_WAIT_QUEUE_HEAD(o2hb_steady_queue); 50 51 /* 52 * In global heartbeat, we maintain a series of region bitmaps. 53 * - o2hb_region_bitmap allows us to limit the region number to max region. 54 * - o2hb_live_region_bitmap tracks live regions (seen steady iterations). 55 * - o2hb_quorum_region_bitmap tracks live regions that have seen all nodes 56 * heartbeat on it. 57 * - o2hb_failed_region_bitmap tracks the regions that have seen io timeouts. 58 */ 59 static unsigned long o2hb_region_bitmap[BITS_TO_LONGS(O2NM_MAX_REGIONS)]; 60 static unsigned long o2hb_live_region_bitmap[BITS_TO_LONGS(O2NM_MAX_REGIONS)]; 61 static unsigned long o2hb_quorum_region_bitmap[BITS_TO_LONGS(O2NM_MAX_REGIONS)]; 62 static unsigned long o2hb_failed_region_bitmap[BITS_TO_LONGS(O2NM_MAX_REGIONS)]; 63 64 #define O2HB_DB_TYPE_LIVENODES 0 65 #define O2HB_DB_TYPE_LIVEREGIONS 1 66 #define O2HB_DB_TYPE_QUORUMREGIONS 2 67 #define O2HB_DB_TYPE_FAILEDREGIONS 3 68 #define O2HB_DB_TYPE_REGION_LIVENODES 4 69 #define O2HB_DB_TYPE_REGION_NUMBER 5 70 #define O2HB_DB_TYPE_REGION_ELAPSED_TIME 6 71 #define O2HB_DB_TYPE_REGION_PINNED 7 72 struct o2hb_debug_buf { 73 int db_type; 74 int db_size; 75 int db_len; 76 void *db_data; 77 }; 78 79 static struct o2hb_debug_buf *o2hb_db_livenodes; 80 static struct o2hb_debug_buf *o2hb_db_liveregions; 81 static struct o2hb_debug_buf *o2hb_db_quorumregions; 82 static struct o2hb_debug_buf *o2hb_db_failedregions; 83 84 #define O2HB_DEBUG_DIR "o2hb" 85 #define O2HB_DEBUG_LIVENODES "livenodes" 86 #define O2HB_DEBUG_LIVEREGIONS "live_regions" 87 #define O2HB_DEBUG_QUORUMREGIONS "quorum_regions" 88 #define O2HB_DEBUG_FAILEDREGIONS "failed_regions" 89 #define O2HB_DEBUG_REGION_NUMBER "num" 90 #define O2HB_DEBUG_REGION_ELAPSED_TIME "elapsed_time_in_ms" 91 #define O2HB_DEBUG_REGION_PINNED "pinned" 92 93 static struct dentry *o2hb_debug_dir; 94 95 static LIST_HEAD(o2hb_all_regions); 96 97 static struct o2hb_callback { 98 struct list_head list; 99 } o2hb_callbacks[O2HB_NUM_CB]; 100 101 static struct o2hb_callback *hbcall_from_type(enum o2hb_callback_type type); 102 103 enum o2hb_heartbeat_modes { 104 O2HB_HEARTBEAT_LOCAL = 0, 105 O2HB_HEARTBEAT_GLOBAL, 106 O2HB_HEARTBEAT_NUM_MODES, 107 }; 108 109 static const char *o2hb_heartbeat_mode_desc[O2HB_HEARTBEAT_NUM_MODES] = { 110 "local", /* O2HB_HEARTBEAT_LOCAL */ 111 "global", /* O2HB_HEARTBEAT_GLOBAL */ 112 }; 113 114 unsigned int o2hb_dead_threshold = O2HB_DEFAULT_DEAD_THRESHOLD; 115 static unsigned int o2hb_heartbeat_mode = O2HB_HEARTBEAT_LOCAL; 116 117 /* 118 * o2hb_dependent_users tracks the number of registered callbacks that depend 119 * on heartbeat. o2net and o2dlm are two entities that register this callback. 120 * However only o2dlm depends on the heartbeat. It does not want the heartbeat 121 * to stop while a dlm domain is still active. 122 */ 123 static unsigned int o2hb_dependent_users; 124 125 /* 126 * In global heartbeat mode, all regions are pinned if there are one or more 127 * dependent users and the quorum region count is <= O2HB_PIN_CUT_OFF. All 128 * regions are unpinned if the region count exceeds the cut off or the number 129 * of dependent users falls to zero. 130 */ 131 #define O2HB_PIN_CUT_OFF 3 132 133 /* 134 * In local heartbeat mode, we assume the dlm domain name to be the same as 135 * region uuid. This is true for domains created for the file system but not 136 * necessarily true for userdlm domains. This is a known limitation. 137 * 138 * In global heartbeat mode, we pin/unpin all o2hb regions. This solution 139 * works for both file system and userdlm domains. 140 */ 141 static int o2hb_region_pin(const char *region_uuid); 142 static void o2hb_region_unpin(const char *region_uuid); 143 144 /* Only sets a new threshold if there are no active regions. 145 * 146 * No locking or otherwise interesting code is required for reading 147 * o2hb_dead_threshold as it can't change once regions are active and 148 * it's not interesting to anyone until then anyway. */ 149 static void o2hb_dead_threshold_set(unsigned int threshold) 150 { 151 if (threshold > O2HB_MIN_DEAD_THRESHOLD) { 152 spin_lock(&o2hb_live_lock); 153 if (list_empty(&o2hb_all_regions)) 154 o2hb_dead_threshold = threshold; 155 spin_unlock(&o2hb_live_lock); 156 } 157 } 158 159 static int o2hb_global_heartbeat_mode_set(unsigned int hb_mode) 160 { 161 int ret = -1; 162 163 if (hb_mode < O2HB_HEARTBEAT_NUM_MODES) { 164 spin_lock(&o2hb_live_lock); 165 if (list_empty(&o2hb_all_regions)) { 166 o2hb_heartbeat_mode = hb_mode; 167 ret = 0; 168 } 169 spin_unlock(&o2hb_live_lock); 170 } 171 172 return ret; 173 } 174 175 struct o2hb_node_event { 176 struct list_head hn_item; 177 enum o2hb_callback_type hn_event_type; 178 struct o2nm_node *hn_node; 179 int hn_node_num; 180 }; 181 182 struct o2hb_disk_slot { 183 struct o2hb_disk_heartbeat_block *ds_raw_block; 184 u8 ds_node_num; 185 u64 ds_last_time; 186 u64 ds_last_generation; 187 u16 ds_equal_samples; 188 u16 ds_changed_samples; 189 struct list_head ds_live_item; 190 }; 191 192 /* each thread owns a region.. when we're asked to tear down the region 193 * we ask the thread to stop, who cleans up the region */ 194 struct o2hb_region { 195 struct config_item hr_item; 196 197 struct list_head hr_all_item; 198 unsigned hr_unclean_stop:1, 199 hr_aborted_start:1, 200 hr_item_pinned:1, 201 hr_item_dropped:1, 202 hr_node_deleted:1; 203 204 /* protected by the hr_callback_sem */ 205 struct task_struct *hr_task; 206 207 unsigned int hr_blocks; 208 unsigned long long hr_start_block; 209 210 unsigned int hr_block_bits; 211 unsigned int hr_block_bytes; 212 213 unsigned int hr_slots_per_page; 214 unsigned int hr_num_pages; 215 216 struct page **hr_slot_data; 217 struct file *hr_bdev_file; 218 struct o2hb_disk_slot *hr_slots; 219 220 /* live node map of this region */ 221 unsigned long hr_live_node_bitmap[BITS_TO_LONGS(O2NM_MAX_NODES)]; 222 unsigned int hr_region_num; 223 224 struct dentry *hr_debug_dir; 225 struct o2hb_debug_buf *hr_db_livenodes; 226 struct o2hb_debug_buf *hr_db_regnum; 227 struct o2hb_debug_buf *hr_db_elapsed_time; 228 struct o2hb_debug_buf *hr_db_pinned; 229 230 /* let the person setting up hb wait for it to return until it 231 * has reached a 'steady' state. This will be fixed when we have 232 * a more complete api that doesn't lead to this sort of fragility. */ 233 atomic_t hr_steady_iterations; 234 235 /* terminate o2hb thread if it does not reach steady state 236 * (hr_steady_iterations == 0) within hr_unsteady_iterations */ 237 atomic_t hr_unsteady_iterations; 238 239 unsigned int hr_timeout_ms; 240 241 /* randomized as the region goes up and down so that a node 242 * recognizes a node going up and down in one iteration */ 243 u64 hr_generation; 244 245 struct delayed_work hr_write_timeout_work; 246 unsigned long hr_last_timeout_start; 247 248 /* negotiate timer, used to negotiate extending hb timeout. */ 249 struct delayed_work hr_nego_timeout_work; 250 unsigned long hr_nego_node_bitmap[BITS_TO_LONGS(O2NM_MAX_NODES)]; 251 252 /* Used during o2hb_check_slot to hold a copy of the block 253 * being checked because we temporarily have to zero out the 254 * crc field. */ 255 struct o2hb_disk_heartbeat_block *hr_tmp_block; 256 257 /* Message key for negotiate timeout message. */ 258 unsigned int hr_key; 259 struct list_head hr_handler_list; 260 261 /* last hb status, 0 for success, other value for error. */ 262 int hr_last_hb_status; 263 }; 264 265 static inline struct block_device *reg_bdev(struct o2hb_region *reg) 266 { 267 return reg->hr_bdev_file ? file_bdev(reg->hr_bdev_file) : NULL; 268 } 269 270 struct o2hb_bio_wait_ctxt { 271 atomic_t wc_num_reqs; 272 struct completion wc_io_complete; 273 int wc_error; 274 }; 275 276 #define O2HB_NEGO_TIMEOUT_MS (O2HB_MAX_WRITE_TIMEOUT_MS/2) 277 278 enum { 279 O2HB_NEGO_TIMEOUT_MSG = 1, 280 O2HB_NEGO_APPROVE_MSG = 2, 281 }; 282 283 struct o2hb_nego_msg { 284 u8 node_num; 285 }; 286 287 static void o2hb_write_timeout(struct work_struct *work) 288 { 289 int failed, quorum; 290 struct o2hb_region *reg = 291 container_of(work, struct o2hb_region, 292 hr_write_timeout_work.work); 293 294 mlog(ML_ERROR, "Heartbeat write timeout to device %pg after %u " 295 "milliseconds\n", reg_bdev(reg), 296 jiffies_to_msecs(jiffies - reg->hr_last_timeout_start)); 297 298 if (o2hb_global_heartbeat_active()) { 299 spin_lock(&o2hb_live_lock); 300 if (test_bit(reg->hr_region_num, o2hb_quorum_region_bitmap)) 301 set_bit(reg->hr_region_num, o2hb_failed_region_bitmap); 302 failed = bitmap_weight(o2hb_failed_region_bitmap, 303 O2NM_MAX_REGIONS); 304 quorum = bitmap_weight(o2hb_quorum_region_bitmap, 305 O2NM_MAX_REGIONS); 306 spin_unlock(&o2hb_live_lock); 307 308 mlog(ML_HEARTBEAT, "Number of regions %d, failed regions %d\n", 309 quorum, failed); 310 311 /* 312 * Fence if the number of failed regions >= half the number 313 * of quorum regions 314 */ 315 if ((failed << 1) < quorum) 316 return; 317 } 318 319 o2quo_disk_timeout(); 320 } 321 322 static void o2hb_arm_timeout(struct o2hb_region *reg) 323 { 324 /* Arm writeout only after thread reaches steady state */ 325 if (atomic_read(®->hr_steady_iterations) != 0) 326 return; 327 328 mlog(ML_HEARTBEAT, "Queue write timeout for %u ms\n", 329 O2HB_MAX_WRITE_TIMEOUT_MS); 330 331 if (o2hb_global_heartbeat_active()) { 332 spin_lock(&o2hb_live_lock); 333 clear_bit(reg->hr_region_num, o2hb_failed_region_bitmap); 334 spin_unlock(&o2hb_live_lock); 335 } 336 cancel_delayed_work(®->hr_write_timeout_work); 337 schedule_delayed_work(®->hr_write_timeout_work, 338 msecs_to_jiffies(O2HB_MAX_WRITE_TIMEOUT_MS)); 339 340 cancel_delayed_work(®->hr_nego_timeout_work); 341 /* negotiate timeout must be less than write timeout. */ 342 schedule_delayed_work(®->hr_nego_timeout_work, 343 msecs_to_jiffies(O2HB_NEGO_TIMEOUT_MS)); 344 bitmap_zero(reg->hr_nego_node_bitmap, O2NM_MAX_NODES); 345 } 346 347 static void o2hb_disarm_timeout(struct o2hb_region *reg) 348 { 349 cancel_delayed_work_sync(®->hr_write_timeout_work); 350 cancel_delayed_work_sync(®->hr_nego_timeout_work); 351 } 352 353 static int o2hb_send_nego_msg(int key, int type, u8 target) 354 { 355 struct o2hb_nego_msg msg; 356 int status, ret; 357 358 msg.node_num = o2nm_this_node(); 359 again: 360 ret = o2net_send_message(type, key, &msg, sizeof(msg), 361 target, &status); 362 363 if (ret == -EAGAIN || ret == -ENOMEM) { 364 msleep(100); 365 goto again; 366 } 367 368 return ret; 369 } 370 371 static void o2hb_nego_timeout(struct work_struct *work) 372 { 373 unsigned long live_node_bitmap[BITS_TO_LONGS(O2NM_MAX_NODES)]; 374 int master_node, i, ret; 375 struct o2hb_region *reg; 376 377 reg = container_of(work, struct o2hb_region, hr_nego_timeout_work.work); 378 /* don't negotiate timeout if last hb failed since it is very 379 * possible io failed. Should let write timeout fence self. 380 */ 381 if (reg->hr_last_hb_status) 382 return; 383 384 o2hb_fill_node_map(live_node_bitmap, O2NM_MAX_NODES); 385 /* lowest node as master node to make negotiate decision. */ 386 master_node = find_first_bit(live_node_bitmap, O2NM_MAX_NODES); 387 388 if (master_node == o2nm_this_node()) { 389 if (!test_bit(master_node, reg->hr_nego_node_bitmap)) { 390 printk(KERN_NOTICE "o2hb: node %d hb write hung for %ds on region %s (%pg).\n", 391 o2nm_this_node(), O2HB_NEGO_TIMEOUT_MS/1000, 392 config_item_name(®->hr_item), reg_bdev(reg)); 393 set_bit(master_node, reg->hr_nego_node_bitmap); 394 } 395 if (!bitmap_equal(reg->hr_nego_node_bitmap, live_node_bitmap, 396 O2NM_MAX_NODES)) { 397 /* check negotiate bitmap every second to do timeout 398 * approve decision. 399 */ 400 schedule_delayed_work(®->hr_nego_timeout_work, 401 msecs_to_jiffies(1000)); 402 403 return; 404 } 405 406 printk(KERN_NOTICE "o2hb: all nodes hb write hung, maybe region %s (%pg) is down.\n", 407 config_item_name(®->hr_item), 408 reg_bdev(reg)); 409 /* approve negotiate timeout request. */ 410 o2hb_arm_timeout(reg); 411 412 i = -1; 413 while ((i = find_next_bit(live_node_bitmap, 414 O2NM_MAX_NODES, i + 1)) < O2NM_MAX_NODES) { 415 if (i == master_node) 416 continue; 417 418 mlog(ML_HEARTBEAT, "send NEGO_APPROVE msg to node %d\n", i); 419 ret = o2hb_send_nego_msg(reg->hr_key, 420 O2HB_NEGO_APPROVE_MSG, i); 421 if (ret) 422 mlog(ML_ERROR, "send NEGO_APPROVE msg to node %d fail %d\n", 423 i, ret); 424 } 425 } else { 426 /* negotiate timeout with master node. */ 427 printk(KERN_NOTICE "o2hb: node %d hb write hung for %ds on region %s (%pg), negotiate timeout with node %d.\n", 428 o2nm_this_node(), O2HB_NEGO_TIMEOUT_MS/1000, config_item_name(®->hr_item), 429 reg_bdev(reg), master_node); 430 ret = o2hb_send_nego_msg(reg->hr_key, O2HB_NEGO_TIMEOUT_MSG, 431 master_node); 432 if (ret) 433 mlog(ML_ERROR, "send NEGO_TIMEOUT msg to node %d fail %d\n", 434 master_node, ret); 435 } 436 } 437 438 static int o2hb_nego_timeout_handler(struct o2net_msg *msg, u32 len, void *data, 439 void **ret_data) 440 { 441 struct o2hb_region *reg = data; 442 struct o2hb_nego_msg *nego_msg; 443 444 nego_msg = (struct o2hb_nego_msg *)msg->buf; 445 printk(KERN_NOTICE "o2hb: receive negotiate timeout message from node %d on region %s (%pg).\n", 446 nego_msg->node_num, config_item_name(®->hr_item), 447 reg_bdev(reg)); 448 if (nego_msg->node_num < O2NM_MAX_NODES) 449 set_bit(nego_msg->node_num, reg->hr_nego_node_bitmap); 450 else 451 mlog(ML_ERROR, "got nego timeout message from bad node.\n"); 452 453 return 0; 454 } 455 456 static int o2hb_nego_approve_handler(struct o2net_msg *msg, u32 len, void *data, 457 void **ret_data) 458 { 459 struct o2hb_region *reg = data; 460 461 printk(KERN_NOTICE "o2hb: negotiate timeout approved by master node on region %s (%pg).\n", 462 config_item_name(®->hr_item), reg_bdev(reg)); 463 o2hb_arm_timeout(reg); 464 return 0; 465 } 466 467 static inline void o2hb_bio_wait_init(struct o2hb_bio_wait_ctxt *wc) 468 { 469 atomic_set(&wc->wc_num_reqs, 1); 470 init_completion(&wc->wc_io_complete); 471 wc->wc_error = 0; 472 } 473 474 /* Used in error paths too */ 475 static inline void o2hb_bio_wait_dec(struct o2hb_bio_wait_ctxt *wc, 476 unsigned int num) 477 { 478 /* sadly atomic_sub_and_test() isn't available on all platforms. The 479 * good news is that the fast path only completes one at a time */ 480 while(num--) { 481 if (atomic_dec_and_test(&wc->wc_num_reqs)) { 482 BUG_ON(num > 0); 483 complete(&wc->wc_io_complete); 484 } 485 } 486 } 487 488 static void o2hb_wait_on_io(struct o2hb_bio_wait_ctxt *wc) 489 { 490 o2hb_bio_wait_dec(wc, 1); 491 wait_for_completion(&wc->wc_io_complete); 492 } 493 494 static void o2hb_bio_end_io(struct bio *bio) 495 { 496 struct o2hb_bio_wait_ctxt *wc = bio->bi_private; 497 498 if (bio->bi_status) { 499 mlog(ML_ERROR, "IO Error %d\n", bio->bi_status); 500 wc->wc_error = blk_status_to_errno(bio->bi_status); 501 } 502 503 o2hb_bio_wait_dec(wc, 1); 504 bio_put(bio); 505 } 506 507 /* Setup a Bio to cover I/O against num_slots slots starting at 508 * start_slot. */ 509 static struct bio *o2hb_setup_one_bio(struct o2hb_region *reg, 510 struct o2hb_bio_wait_ctxt *wc, 511 unsigned int *current_slot, 512 unsigned int max_slots, blk_opf_t opf) 513 { 514 int len, current_page; 515 unsigned int vec_len, vec_start; 516 unsigned int bits = reg->hr_block_bits; 517 unsigned int spp = reg->hr_slots_per_page; 518 unsigned int cs = *current_slot; 519 struct bio *bio; 520 struct page *page; 521 522 /* Testing has shown this allocation to take long enough under 523 * GFP_KERNEL that the local node can get fenced. It would be 524 * nicest if we could pre-allocate these bios and avoid this 525 * all together. */ 526 bio = bio_alloc(reg_bdev(reg), 16, opf, GFP_ATOMIC); 527 if (!bio) { 528 mlog(ML_ERROR, "Could not alloc slots BIO!\n"); 529 bio = ERR_PTR(-ENOMEM); 530 goto bail; 531 } 532 533 /* Must put everything in 512 byte sectors for the bio... */ 534 bio->bi_iter.bi_sector = (reg->hr_start_block + cs) << (bits - 9); 535 bio->bi_private = wc; 536 bio->bi_end_io = o2hb_bio_end_io; 537 538 vec_start = (cs << bits) % PAGE_SIZE; 539 while(cs < max_slots) { 540 current_page = cs / spp; 541 page = reg->hr_slot_data[current_page]; 542 543 vec_len = min(PAGE_SIZE - vec_start, 544 (max_slots-cs) * (PAGE_SIZE/spp) ); 545 546 mlog(ML_HB_BIO, "page %d, vec_len = %u, vec_start = %u\n", 547 current_page, vec_len, vec_start); 548 549 len = bio_add_page(bio, page, vec_len, vec_start); 550 if (len != vec_len) break; 551 552 cs += vec_len / (PAGE_SIZE/spp); 553 vec_start = 0; 554 } 555 556 bail: 557 *current_slot = cs; 558 return bio; 559 } 560 561 static int o2hb_read_slots(struct o2hb_region *reg, 562 unsigned int begin_slot, 563 unsigned int max_slots) 564 { 565 unsigned int current_slot = begin_slot; 566 int status; 567 struct o2hb_bio_wait_ctxt wc; 568 struct bio *bio; 569 570 o2hb_bio_wait_init(&wc); 571 572 while(current_slot < max_slots) { 573 bio = o2hb_setup_one_bio(reg, &wc, ¤t_slot, max_slots, 574 REQ_OP_READ); 575 if (IS_ERR(bio)) { 576 status = PTR_ERR(bio); 577 mlog_errno(status); 578 goto bail_and_wait; 579 } 580 581 atomic_inc(&wc.wc_num_reqs); 582 submit_bio(bio); 583 } 584 585 status = 0; 586 587 bail_and_wait: 588 o2hb_wait_on_io(&wc); 589 if (wc.wc_error && !status) 590 status = wc.wc_error; 591 592 return status; 593 } 594 595 static int o2hb_issue_node_write(struct o2hb_region *reg, 596 struct o2hb_bio_wait_ctxt *write_wc) 597 { 598 int status; 599 unsigned int slot; 600 struct bio *bio; 601 602 o2hb_bio_wait_init(write_wc); 603 604 slot = o2nm_this_node(); 605 606 bio = o2hb_setup_one_bio(reg, write_wc, &slot, slot+1, 607 REQ_OP_WRITE | REQ_SYNC); 608 if (IS_ERR(bio)) { 609 status = PTR_ERR(bio); 610 mlog_errno(status); 611 goto bail; 612 } 613 614 atomic_inc(&write_wc->wc_num_reqs); 615 submit_bio(bio); 616 617 status = 0; 618 bail: 619 return status; 620 } 621 622 static u32 o2hb_compute_block_crc_le(struct o2hb_region *reg, 623 struct o2hb_disk_heartbeat_block *hb_block) 624 { 625 __le32 old_cksum; 626 u32 ret; 627 628 /* We want to compute the block crc with a 0 value in the 629 * hb_cksum field. Save it off here and replace after the 630 * crc. */ 631 old_cksum = hb_block->hb_cksum; 632 hb_block->hb_cksum = 0; 633 634 ret = crc32_le(0, (unsigned char *) hb_block, reg->hr_block_bytes); 635 636 hb_block->hb_cksum = old_cksum; 637 638 return ret; 639 } 640 641 static void o2hb_dump_slot(struct o2hb_disk_heartbeat_block *hb_block) 642 { 643 mlog(ML_ERROR, "Dump slot information: seq = 0x%llx, node = %u, " 644 "cksum = 0x%x, generation 0x%llx\n", 645 (long long)le64_to_cpu(hb_block->hb_seq), 646 hb_block->hb_node, le32_to_cpu(hb_block->hb_cksum), 647 (long long)le64_to_cpu(hb_block->hb_generation)); 648 } 649 650 static int o2hb_verify_crc(struct o2hb_region *reg, 651 struct o2hb_disk_heartbeat_block *hb_block) 652 { 653 u32 read, computed; 654 655 read = le32_to_cpu(hb_block->hb_cksum); 656 computed = o2hb_compute_block_crc_le(reg, hb_block); 657 658 return read == computed; 659 } 660 661 /* 662 * Compare the slot data with what we wrote in the last iteration. 663 * If the match fails, print an appropriate error message. This is to 664 * detect errors like... another node hearting on the same slot, 665 * flaky device that is losing writes, etc. 666 * Returns 1 if check succeeds, 0 otherwise. 667 */ 668 static int o2hb_check_own_slot(struct o2hb_region *reg) 669 { 670 struct o2hb_disk_slot *slot; 671 struct o2hb_disk_heartbeat_block *hb_block; 672 char *errstr; 673 674 slot = ®->hr_slots[o2nm_this_node()]; 675 /* Don't check on our 1st timestamp */ 676 if (!slot->ds_last_time) 677 return 0; 678 679 hb_block = slot->ds_raw_block; 680 if (le64_to_cpu(hb_block->hb_seq) == slot->ds_last_time && 681 le64_to_cpu(hb_block->hb_generation) == slot->ds_last_generation && 682 hb_block->hb_node == slot->ds_node_num) 683 return 1; 684 685 #define ERRSTR1 "Another node is heartbeating on device" 686 #define ERRSTR2 "Heartbeat generation mismatch on device" 687 #define ERRSTR3 "Heartbeat sequence mismatch on device" 688 689 if (hb_block->hb_node != slot->ds_node_num) 690 errstr = ERRSTR1; 691 else if (le64_to_cpu(hb_block->hb_generation) != 692 slot->ds_last_generation) 693 errstr = ERRSTR2; 694 else 695 errstr = ERRSTR3; 696 697 mlog(ML_ERROR, "%s (%pg): expected(%u:0x%llx, 0x%llx), " 698 "ondisk(%u:0x%llx, 0x%llx)\n", errstr, reg_bdev(reg), 699 slot->ds_node_num, (unsigned long long)slot->ds_last_generation, 700 (unsigned long long)slot->ds_last_time, hb_block->hb_node, 701 (unsigned long long)le64_to_cpu(hb_block->hb_generation), 702 (unsigned long long)le64_to_cpu(hb_block->hb_seq)); 703 704 return 0; 705 } 706 707 static inline void o2hb_prepare_block(struct o2hb_region *reg, 708 u64 generation) 709 { 710 int node_num; 711 u64 cputime; 712 struct o2hb_disk_slot *slot; 713 struct o2hb_disk_heartbeat_block *hb_block; 714 715 node_num = o2nm_this_node(); 716 slot = ®->hr_slots[node_num]; 717 718 hb_block = (struct o2hb_disk_heartbeat_block *)slot->ds_raw_block; 719 memset(hb_block, 0, reg->hr_block_bytes); 720 /* TODO: time stuff */ 721 cputime = ktime_get_real_seconds(); 722 if (!cputime) 723 cputime = 1; 724 725 hb_block->hb_seq = cpu_to_le64(cputime); 726 hb_block->hb_node = node_num; 727 hb_block->hb_generation = cpu_to_le64(generation); 728 hb_block->hb_dead_ms = cpu_to_le32(o2hb_dead_threshold * O2HB_REGION_TIMEOUT_MS); 729 730 /* This step must always happen last! */ 731 hb_block->hb_cksum = cpu_to_le32(o2hb_compute_block_crc_le(reg, 732 hb_block)); 733 734 mlog(ML_HB_BIO, "our node generation = 0x%llx, cksum = 0x%x\n", 735 (long long)generation, 736 le32_to_cpu(hb_block->hb_cksum)); 737 } 738 739 static void o2hb_fire_callbacks(struct o2hb_callback *hbcall, 740 struct o2nm_node *node, 741 int idx) 742 { 743 struct o2hb_callback_func *f; 744 745 list_for_each_entry(f, &hbcall->list, hc_item) { 746 mlog(ML_HEARTBEAT, "calling funcs %p\n", f); 747 (f->hc_func)(node, idx, f->hc_data); 748 } 749 } 750 751 /* Will run the list in order until we process the passed event */ 752 static void o2hb_run_event_list(struct o2hb_node_event *queued_event) 753 { 754 struct o2hb_callback *hbcall; 755 struct o2hb_node_event *event; 756 757 /* Holding callback sem assures we don't alter the callback 758 * lists when doing this, and serializes ourselves with other 759 * processes wanting callbacks. */ 760 down_write(&o2hb_callback_sem); 761 762 spin_lock(&o2hb_live_lock); 763 while (!list_empty(&o2hb_node_events) 764 && !list_empty(&queued_event->hn_item)) { 765 event = list_entry(o2hb_node_events.next, 766 struct o2hb_node_event, 767 hn_item); 768 list_del_init(&event->hn_item); 769 spin_unlock(&o2hb_live_lock); 770 771 mlog(ML_HEARTBEAT, "Node %s event for %d\n", 772 event->hn_event_type == O2HB_NODE_UP_CB ? "UP" : "DOWN", 773 event->hn_node_num); 774 775 hbcall = hbcall_from_type(event->hn_event_type); 776 777 /* We should *never* have gotten on to the list with a 778 * bad type... This isn't something that we should try 779 * to recover from. */ 780 BUG_ON(IS_ERR(hbcall)); 781 782 o2hb_fire_callbacks(hbcall, event->hn_node, event->hn_node_num); 783 784 spin_lock(&o2hb_live_lock); 785 } 786 spin_unlock(&o2hb_live_lock); 787 788 up_write(&o2hb_callback_sem); 789 } 790 791 static void o2hb_queue_node_event(struct o2hb_node_event *event, 792 enum o2hb_callback_type type, 793 struct o2nm_node *node, 794 int node_num) 795 { 796 assert_spin_locked(&o2hb_live_lock); 797 798 BUG_ON((!node) && (type != O2HB_NODE_DOWN_CB)); 799 800 event->hn_event_type = type; 801 event->hn_node = node; 802 event->hn_node_num = node_num; 803 804 mlog(ML_HEARTBEAT, "Queue node %s event for node %d\n", 805 type == O2HB_NODE_UP_CB ? "UP" : "DOWN", node_num); 806 807 list_add_tail(&event->hn_item, &o2hb_node_events); 808 } 809 810 static void o2hb_shutdown_slot(struct o2hb_disk_slot *slot) 811 { 812 struct o2hb_node_event event = 813 { .hn_item = LIST_HEAD_INIT(event.hn_item), }; 814 struct o2nm_node *node; 815 int queued = 0; 816 817 node = o2nm_get_node_by_num(slot->ds_node_num); 818 if (!node) 819 return; 820 821 spin_lock(&o2hb_live_lock); 822 if (!list_empty(&slot->ds_live_item)) { 823 mlog(ML_HEARTBEAT, "Shutdown, node %d leaves region\n", 824 slot->ds_node_num); 825 826 list_del_init(&slot->ds_live_item); 827 828 if (list_empty(&o2hb_live_slots[slot->ds_node_num])) { 829 clear_bit(slot->ds_node_num, o2hb_live_node_bitmap); 830 831 o2hb_queue_node_event(&event, O2HB_NODE_DOWN_CB, node, 832 slot->ds_node_num); 833 queued = 1; 834 } 835 } 836 spin_unlock(&o2hb_live_lock); 837 838 if (queued) 839 o2hb_run_event_list(&event); 840 841 o2nm_node_put(node); 842 } 843 844 static void o2hb_set_quorum_device(struct o2hb_region *reg) 845 { 846 if (!o2hb_global_heartbeat_active()) 847 return; 848 849 /* Prevent race with o2hb_heartbeat_group_drop_item() */ 850 if (kthread_should_stop()) 851 return; 852 853 /* Tag region as quorum only after thread reaches steady state */ 854 if (atomic_read(®->hr_steady_iterations) != 0) 855 return; 856 857 spin_lock(&o2hb_live_lock); 858 859 if (test_bit(reg->hr_region_num, o2hb_quorum_region_bitmap)) 860 goto unlock; 861 862 /* 863 * A region can be added to the quorum only when it sees all 864 * live nodes heartbeat on it. In other words, the region has been 865 * added to all nodes. 866 */ 867 if (!bitmap_equal(reg->hr_live_node_bitmap, o2hb_live_node_bitmap, 868 O2NM_MAX_NODES)) 869 goto unlock; 870 871 printk(KERN_NOTICE "o2hb: Region %s (%pg) is now a quorum device\n", 872 config_item_name(®->hr_item), reg_bdev(reg)); 873 874 set_bit(reg->hr_region_num, o2hb_quorum_region_bitmap); 875 876 /* 877 * If global heartbeat active, unpin all regions if the 878 * region count > CUT_OFF 879 */ 880 if (bitmap_weight(o2hb_quorum_region_bitmap, 881 O2NM_MAX_REGIONS) > O2HB_PIN_CUT_OFF) 882 o2hb_region_unpin(NULL); 883 unlock: 884 spin_unlock(&o2hb_live_lock); 885 } 886 887 static int o2hb_check_slot(struct o2hb_region *reg, 888 struct o2hb_disk_slot *slot) 889 { 890 int changed = 0, gen_changed = 0; 891 struct o2hb_node_event event = 892 { .hn_item = LIST_HEAD_INIT(event.hn_item), }; 893 struct o2nm_node *node; 894 struct o2hb_disk_heartbeat_block *hb_block = reg->hr_tmp_block; 895 u64 cputime; 896 unsigned int dead_ms = o2hb_dead_threshold * O2HB_REGION_TIMEOUT_MS; 897 unsigned int slot_dead_ms; 898 int tmp; 899 int queued = 0; 900 901 memcpy(hb_block, slot->ds_raw_block, reg->hr_block_bytes); 902 903 /* 904 * If a node is no longer configured but is still in the livemap, we 905 * may need to clear that bit from the livemap. 906 */ 907 node = o2nm_get_node_by_num(slot->ds_node_num); 908 if (!node) { 909 spin_lock(&o2hb_live_lock); 910 tmp = test_bit(slot->ds_node_num, o2hb_live_node_bitmap); 911 spin_unlock(&o2hb_live_lock); 912 if (!tmp) 913 return 0; 914 } 915 916 if (!o2hb_verify_crc(reg, hb_block)) { 917 /* all paths from here will drop o2hb_live_lock for 918 * us. */ 919 spin_lock(&o2hb_live_lock); 920 921 /* Don't print an error on the console in this case - 922 * a freshly formatted heartbeat area will not have a 923 * crc set on it. */ 924 if (list_empty(&slot->ds_live_item)) 925 goto out; 926 927 /* The node is live but pushed out a bad crc. We 928 * consider it a transient miss but don't populate any 929 * other values as they may be junk. */ 930 mlog(ML_ERROR, "Node %d has written a bad crc to %pg\n", 931 slot->ds_node_num, reg_bdev(reg)); 932 o2hb_dump_slot(hb_block); 933 934 slot->ds_equal_samples++; 935 goto fire_callbacks; 936 } 937 938 /* we don't care if these wrap.. the state transitions below 939 * clear at the right places */ 940 cputime = le64_to_cpu(hb_block->hb_seq); 941 if (slot->ds_last_time != cputime) 942 slot->ds_changed_samples++; 943 else 944 slot->ds_equal_samples++; 945 slot->ds_last_time = cputime; 946 947 /* The node changed heartbeat generations. We assume this to 948 * mean it dropped off but came back before we timed out. We 949 * want to consider it down for the time being but don't want 950 * to lose any changed_samples state we might build up to 951 * considering it live again. */ 952 if (slot->ds_last_generation != le64_to_cpu(hb_block->hb_generation)) { 953 gen_changed = 1; 954 slot->ds_equal_samples = 0; 955 mlog(ML_HEARTBEAT, "Node %d changed generation (0x%llx " 956 "to 0x%llx)\n", slot->ds_node_num, 957 (long long)slot->ds_last_generation, 958 (long long)le64_to_cpu(hb_block->hb_generation)); 959 } 960 961 slot->ds_last_generation = le64_to_cpu(hb_block->hb_generation); 962 963 mlog(ML_HEARTBEAT, "Slot %d gen 0x%llx cksum 0x%x " 964 "seq %llu last %llu changed %u equal %u\n", 965 slot->ds_node_num, (long long)slot->ds_last_generation, 966 le32_to_cpu(hb_block->hb_cksum), 967 (unsigned long long)le64_to_cpu(hb_block->hb_seq), 968 (unsigned long long)slot->ds_last_time, slot->ds_changed_samples, 969 slot->ds_equal_samples); 970 971 spin_lock(&o2hb_live_lock); 972 973 fire_callbacks: 974 /* dead nodes only come to life after some number of 975 * changes at any time during their dead time */ 976 if (list_empty(&slot->ds_live_item) && 977 slot->ds_changed_samples >= O2HB_LIVE_THRESHOLD) { 978 mlog(ML_HEARTBEAT, "Node %d (id 0x%llx) joined my region\n", 979 slot->ds_node_num, (long long)slot->ds_last_generation); 980 981 set_bit(slot->ds_node_num, reg->hr_live_node_bitmap); 982 983 /* first on the list generates a callback */ 984 if (list_empty(&o2hb_live_slots[slot->ds_node_num])) { 985 mlog(ML_HEARTBEAT, "o2hb: Add node %d to live nodes " 986 "bitmap\n", slot->ds_node_num); 987 set_bit(slot->ds_node_num, o2hb_live_node_bitmap); 988 989 o2hb_queue_node_event(&event, O2HB_NODE_UP_CB, node, 990 slot->ds_node_num); 991 992 changed = 1; 993 queued = 1; 994 } 995 996 list_add_tail(&slot->ds_live_item, 997 &o2hb_live_slots[slot->ds_node_num]); 998 999 slot->ds_equal_samples = 0; 1000 1001 /* We want to be sure that all nodes agree on the 1002 * number of milliseconds before a node will be 1003 * considered dead. The self-fencing timeout is 1004 * computed from this value, and a discrepancy might 1005 * result in heartbeat calling a node dead when it 1006 * hasn't self-fenced yet. */ 1007 slot_dead_ms = le32_to_cpu(hb_block->hb_dead_ms); 1008 if (slot_dead_ms && slot_dead_ms != dead_ms) { 1009 /* TODO: Perhaps we can fail the region here. */ 1010 mlog(ML_ERROR, "Node %d on device %pg has a dead count " 1011 "of %u ms, but our count is %u ms.\n" 1012 "Please double check your configuration values " 1013 "for 'O2CB_HEARTBEAT_THRESHOLD'\n", 1014 slot->ds_node_num, reg_bdev(reg), 1015 slot_dead_ms, dead_ms); 1016 } 1017 goto out; 1018 } 1019 1020 /* if the list is dead, we're done.. */ 1021 if (list_empty(&slot->ds_live_item)) 1022 goto out; 1023 1024 /* live nodes only go dead after enough consecutive missed 1025 * samples.. reset the missed counter whenever we see 1026 * activity */ 1027 if (slot->ds_equal_samples >= o2hb_dead_threshold || gen_changed) { 1028 mlog(ML_HEARTBEAT, "Node %d left my region\n", 1029 slot->ds_node_num); 1030 1031 clear_bit(slot->ds_node_num, reg->hr_live_node_bitmap); 1032 1033 /* last off the live_slot generates a callback */ 1034 list_del_init(&slot->ds_live_item); 1035 if (list_empty(&o2hb_live_slots[slot->ds_node_num])) { 1036 mlog(ML_HEARTBEAT, "o2hb: Remove node %d from live " 1037 "nodes bitmap\n", slot->ds_node_num); 1038 clear_bit(slot->ds_node_num, o2hb_live_node_bitmap); 1039 1040 /* node can be null */ 1041 o2hb_queue_node_event(&event, O2HB_NODE_DOWN_CB, 1042 node, slot->ds_node_num); 1043 1044 changed = 1; 1045 queued = 1; 1046 } 1047 1048 /* We don't clear this because the node is still 1049 * actually writing new blocks. */ 1050 if (!gen_changed) 1051 slot->ds_changed_samples = 0; 1052 goto out; 1053 } 1054 if (slot->ds_changed_samples) { 1055 slot->ds_changed_samples = 0; 1056 slot->ds_equal_samples = 0; 1057 } 1058 out: 1059 spin_unlock(&o2hb_live_lock); 1060 1061 if (queued) 1062 o2hb_run_event_list(&event); 1063 1064 if (node) 1065 o2nm_node_put(node); 1066 return changed; 1067 } 1068 1069 static int o2hb_highest_node(unsigned long *nodes, int numbits) 1070 { 1071 return find_last_bit(nodes, numbits); 1072 } 1073 1074 static int o2hb_lowest_node(unsigned long *nodes, int numbits) 1075 { 1076 return find_first_bit(nodes, numbits); 1077 } 1078 1079 static int o2hb_do_disk_heartbeat(struct o2hb_region *reg) 1080 { 1081 int i, ret, highest_node, lowest_node; 1082 int membership_change = 0, own_slot_ok = 0; 1083 unsigned long configured_nodes[BITS_TO_LONGS(O2NM_MAX_NODES)]; 1084 unsigned long live_node_bitmap[BITS_TO_LONGS(O2NM_MAX_NODES)]; 1085 struct o2hb_bio_wait_ctxt write_wc; 1086 1087 ret = o2nm_configured_node_map(configured_nodes, 1088 sizeof(configured_nodes)); 1089 if (ret) { 1090 mlog_errno(ret); 1091 goto bail; 1092 } 1093 1094 /* 1095 * If a node is not configured but is in the livemap, we still need 1096 * to read the slot so as to be able to remove it from the livemap. 1097 */ 1098 o2hb_fill_node_map(live_node_bitmap, O2NM_MAX_NODES); 1099 i = -1; 1100 while ((i = find_next_bit(live_node_bitmap, 1101 O2NM_MAX_NODES, i + 1)) < O2NM_MAX_NODES) { 1102 set_bit(i, configured_nodes); 1103 } 1104 1105 highest_node = o2hb_highest_node(configured_nodes, O2NM_MAX_NODES); 1106 lowest_node = o2hb_lowest_node(configured_nodes, O2NM_MAX_NODES); 1107 if (highest_node >= O2NM_MAX_NODES || lowest_node >= O2NM_MAX_NODES) { 1108 mlog(ML_NOTICE, "o2hb: No configured nodes found!\n"); 1109 ret = -EINVAL; 1110 goto bail; 1111 } 1112 1113 /* No sense in reading the slots of nodes that don't exist 1114 * yet. Of course, if the node definitions have holes in them 1115 * then we're reading an empty slot anyway... Consider this 1116 * best-effort. */ 1117 ret = o2hb_read_slots(reg, lowest_node, highest_node + 1); 1118 if (ret < 0) { 1119 mlog_errno(ret); 1120 goto bail; 1121 } 1122 1123 /* With an up to date view of the slots, we can check that no 1124 * other node has been improperly configured to heartbeat in 1125 * our slot. */ 1126 own_slot_ok = o2hb_check_own_slot(reg); 1127 1128 /* fill in the proper info for our next heartbeat */ 1129 o2hb_prepare_block(reg, reg->hr_generation); 1130 1131 ret = o2hb_issue_node_write(reg, &write_wc); 1132 if (ret < 0) { 1133 mlog_errno(ret); 1134 goto bail; 1135 } 1136 1137 i = -1; 1138 while((i = find_next_bit(configured_nodes, 1139 O2NM_MAX_NODES, i + 1)) < O2NM_MAX_NODES) { 1140 membership_change |= o2hb_check_slot(reg, ®->hr_slots[i]); 1141 } 1142 1143 /* 1144 * We have to be sure we've advertised ourselves on disk 1145 * before we can go to steady state. This ensures that 1146 * people we find in our steady state have seen us. 1147 */ 1148 o2hb_wait_on_io(&write_wc); 1149 if (write_wc.wc_error) { 1150 /* Do not re-arm the write timeout on I/O error - we 1151 * can't be sure that the new block ever made it to 1152 * disk */ 1153 mlog(ML_ERROR, "Write error %d on device \"%pg\"\n", 1154 write_wc.wc_error, reg_bdev(reg)); 1155 ret = write_wc.wc_error; 1156 goto bail; 1157 } 1158 1159 /* Skip disarming the timeout if own slot has stale/bad data */ 1160 if (own_slot_ok) { 1161 o2hb_set_quorum_device(reg); 1162 o2hb_arm_timeout(reg); 1163 reg->hr_last_timeout_start = jiffies; 1164 } 1165 1166 bail: 1167 /* let the person who launched us know when things are steady */ 1168 if (atomic_read(®->hr_steady_iterations) != 0) { 1169 if (!ret && own_slot_ok && !membership_change) { 1170 if (atomic_dec_and_test(®->hr_steady_iterations)) 1171 wake_up(&o2hb_steady_queue); 1172 } 1173 } 1174 1175 if (atomic_read(®->hr_steady_iterations) != 0) { 1176 if (atomic_dec_and_test(®->hr_unsteady_iterations)) { 1177 printk(KERN_NOTICE "o2hb: Unable to stabilize " 1178 "heartbeat on region %s (%pg)\n", 1179 config_item_name(®->hr_item), 1180 reg_bdev(reg)); 1181 atomic_set(®->hr_steady_iterations, 0); 1182 reg->hr_aborted_start = 1; 1183 wake_up(&o2hb_steady_queue); 1184 ret = -EIO; 1185 } 1186 } 1187 1188 return ret; 1189 } 1190 1191 /* 1192 * we ride the region ref that the region dir holds. before the region 1193 * dir is removed and drops it ref it will wait to tear down this 1194 * thread. 1195 */ 1196 static int o2hb_thread(void *data) 1197 { 1198 int i, ret; 1199 struct o2hb_region *reg = data; 1200 struct o2hb_bio_wait_ctxt write_wc; 1201 ktime_t before_hb, after_hb; 1202 unsigned int elapsed_msec; 1203 1204 mlog(ML_HEARTBEAT|ML_KTHREAD, "hb thread running\n"); 1205 1206 set_user_nice(current, MIN_NICE); 1207 1208 /* Pin node */ 1209 ret = o2nm_depend_this_node(); 1210 if (ret) { 1211 mlog(ML_ERROR, "Node has been deleted, ret = %d\n", ret); 1212 reg->hr_node_deleted = 1; 1213 wake_up(&o2hb_steady_queue); 1214 return 0; 1215 } 1216 1217 while (!kthread_should_stop() && 1218 !reg->hr_unclean_stop && !reg->hr_aborted_start) { 1219 /* We track the time spent inside 1220 * o2hb_do_disk_heartbeat so that we avoid more than 1221 * hr_timeout_ms between disk writes. On busy systems 1222 * this should result in a heartbeat which is less 1223 * likely to time itself out. */ 1224 before_hb = ktime_get_real(); 1225 1226 ret = o2hb_do_disk_heartbeat(reg); 1227 reg->hr_last_hb_status = ret; 1228 1229 after_hb = ktime_get_real(); 1230 1231 elapsed_msec = (unsigned int) 1232 ktime_ms_delta(after_hb, before_hb); 1233 1234 mlog(ML_HEARTBEAT, 1235 "start = %lld, end = %lld, msec = %u, ret = %d\n", 1236 before_hb, after_hb, elapsed_msec, ret); 1237 1238 if (!kthread_should_stop() && 1239 elapsed_msec < reg->hr_timeout_ms) { 1240 /* the kthread api has blocked signals for us so no 1241 * need to record the return value. */ 1242 msleep_interruptible(reg->hr_timeout_ms - elapsed_msec); 1243 } 1244 } 1245 1246 o2hb_disarm_timeout(reg); 1247 1248 /* unclean stop is only used in very bad situation */ 1249 for(i = 0; !reg->hr_unclean_stop && i < reg->hr_blocks; i++) 1250 o2hb_shutdown_slot(®->hr_slots[i]); 1251 1252 /* Explicit down notification - avoid forcing the other nodes 1253 * to timeout on this region when we could just as easily 1254 * write a clear generation - thus indicating to them that 1255 * this node has left this region. 1256 */ 1257 if (!reg->hr_unclean_stop && !reg->hr_aborted_start) { 1258 o2hb_prepare_block(reg, 0); 1259 ret = o2hb_issue_node_write(reg, &write_wc); 1260 if (ret == 0) 1261 o2hb_wait_on_io(&write_wc); 1262 else 1263 mlog_errno(ret); 1264 } 1265 1266 /* Unpin node */ 1267 o2nm_undepend_this_node(); 1268 1269 mlog(ML_HEARTBEAT|ML_KTHREAD, "o2hb thread exiting\n"); 1270 1271 return 0; 1272 } 1273 1274 #ifdef CONFIG_DEBUG_FS 1275 static int o2hb_debug_open(struct inode *inode, struct file *file) 1276 { 1277 struct o2hb_debug_buf *db = inode->i_private; 1278 struct o2hb_region *reg; 1279 unsigned long map[BITS_TO_LONGS(O2NM_MAX_NODES)]; 1280 unsigned long lts; 1281 char *buf = NULL; 1282 int i = -1; 1283 int out = 0; 1284 1285 /* max_nodes should be the largest bitmap we pass here */ 1286 BUG_ON(sizeof(map) < db->db_size); 1287 1288 buf = kmalloc(PAGE_SIZE, GFP_KERNEL); 1289 if (!buf) 1290 goto bail; 1291 1292 switch (db->db_type) { 1293 case O2HB_DB_TYPE_LIVENODES: 1294 case O2HB_DB_TYPE_LIVEREGIONS: 1295 case O2HB_DB_TYPE_QUORUMREGIONS: 1296 case O2HB_DB_TYPE_FAILEDREGIONS: 1297 spin_lock(&o2hb_live_lock); 1298 memcpy(map, db->db_data, db->db_size); 1299 spin_unlock(&o2hb_live_lock); 1300 break; 1301 1302 case O2HB_DB_TYPE_REGION_LIVENODES: 1303 spin_lock(&o2hb_live_lock); 1304 reg = (struct o2hb_region *)db->db_data; 1305 memcpy(map, reg->hr_live_node_bitmap, db->db_size); 1306 spin_unlock(&o2hb_live_lock); 1307 break; 1308 1309 case O2HB_DB_TYPE_REGION_NUMBER: 1310 reg = (struct o2hb_region *)db->db_data; 1311 out += scnprintf(buf + out, PAGE_SIZE - out, "%d\n", 1312 reg->hr_region_num); 1313 goto done; 1314 1315 case O2HB_DB_TYPE_REGION_ELAPSED_TIME: 1316 reg = (struct o2hb_region *)db->db_data; 1317 lts = reg->hr_last_timeout_start; 1318 /* If 0, it has never been set before */ 1319 if (lts) 1320 lts = jiffies_to_msecs(jiffies - lts); 1321 out += scnprintf(buf + out, PAGE_SIZE - out, "%lu\n", lts); 1322 goto done; 1323 1324 case O2HB_DB_TYPE_REGION_PINNED: 1325 reg = (struct o2hb_region *)db->db_data; 1326 out += scnprintf(buf + out, PAGE_SIZE - out, "%u\n", 1327 !!reg->hr_item_pinned); 1328 goto done; 1329 1330 default: 1331 goto done; 1332 } 1333 1334 while ((i = find_next_bit(map, db->db_len, i + 1)) < db->db_len) 1335 out += scnprintf(buf + out, PAGE_SIZE - out, "%d ", i); 1336 out += scnprintf(buf + out, PAGE_SIZE - out, "\n"); 1337 1338 done: 1339 i_size_write(inode, out); 1340 1341 file->private_data = buf; 1342 1343 return 0; 1344 bail: 1345 return -ENOMEM; 1346 } 1347 1348 static int o2hb_debug_release(struct inode *inode, struct file *file) 1349 { 1350 kfree(file->private_data); 1351 return 0; 1352 } 1353 1354 static ssize_t o2hb_debug_read(struct file *file, char __user *buf, 1355 size_t nbytes, loff_t *ppos) 1356 { 1357 return simple_read_from_buffer(buf, nbytes, ppos, file->private_data, 1358 i_size_read(file->f_mapping->host)); 1359 } 1360 #else 1361 static int o2hb_debug_open(struct inode *inode, struct file *file) 1362 { 1363 return 0; 1364 } 1365 static int o2hb_debug_release(struct inode *inode, struct file *file) 1366 { 1367 return 0; 1368 } 1369 static ssize_t o2hb_debug_read(struct file *file, char __user *buf, 1370 size_t nbytes, loff_t *ppos) 1371 { 1372 return 0; 1373 } 1374 #endif /* CONFIG_DEBUG_FS */ 1375 1376 static const struct file_operations o2hb_debug_fops = { 1377 .open = o2hb_debug_open, 1378 .release = o2hb_debug_release, 1379 .read = o2hb_debug_read, 1380 .llseek = generic_file_llseek, 1381 }; 1382 1383 void o2hb_exit(void) 1384 { 1385 debugfs_remove_recursive(o2hb_debug_dir); 1386 kfree(o2hb_db_livenodes); 1387 kfree(o2hb_db_liveregions); 1388 kfree(o2hb_db_quorumregions); 1389 kfree(o2hb_db_failedregions); 1390 } 1391 1392 static void o2hb_debug_create(const char *name, struct dentry *dir, 1393 struct o2hb_debug_buf **db, int db_len, int type, 1394 int size, int len, void *data) 1395 { 1396 *db = kmalloc(db_len, GFP_KERNEL); 1397 if (!*db) 1398 return; 1399 1400 (*db)->db_type = type; 1401 (*db)->db_size = size; 1402 (*db)->db_len = len; 1403 (*db)->db_data = data; 1404 1405 debugfs_create_file(name, S_IFREG|S_IRUSR, dir, *db, &o2hb_debug_fops); 1406 } 1407 1408 static void o2hb_debug_init(void) 1409 { 1410 o2hb_debug_dir = debugfs_create_dir(O2HB_DEBUG_DIR, NULL); 1411 1412 o2hb_debug_create(O2HB_DEBUG_LIVENODES, o2hb_debug_dir, 1413 &o2hb_db_livenodes, sizeof(*o2hb_db_livenodes), 1414 O2HB_DB_TYPE_LIVENODES, sizeof(o2hb_live_node_bitmap), 1415 O2NM_MAX_NODES, o2hb_live_node_bitmap); 1416 1417 o2hb_debug_create(O2HB_DEBUG_LIVEREGIONS, o2hb_debug_dir, 1418 &o2hb_db_liveregions, sizeof(*o2hb_db_liveregions), 1419 O2HB_DB_TYPE_LIVEREGIONS, 1420 sizeof(o2hb_live_region_bitmap), O2NM_MAX_REGIONS, 1421 o2hb_live_region_bitmap); 1422 1423 o2hb_debug_create(O2HB_DEBUG_QUORUMREGIONS, o2hb_debug_dir, 1424 &o2hb_db_quorumregions, 1425 sizeof(*o2hb_db_quorumregions), 1426 O2HB_DB_TYPE_QUORUMREGIONS, 1427 sizeof(o2hb_quorum_region_bitmap), O2NM_MAX_REGIONS, 1428 o2hb_quorum_region_bitmap); 1429 1430 o2hb_debug_create(O2HB_DEBUG_FAILEDREGIONS, o2hb_debug_dir, 1431 &o2hb_db_failedregions, 1432 sizeof(*o2hb_db_failedregions), 1433 O2HB_DB_TYPE_FAILEDREGIONS, 1434 sizeof(o2hb_failed_region_bitmap), O2NM_MAX_REGIONS, 1435 o2hb_failed_region_bitmap); 1436 } 1437 1438 void o2hb_init(void) 1439 { 1440 int i; 1441 1442 for (i = 0; i < ARRAY_SIZE(o2hb_callbacks); i++) 1443 INIT_LIST_HEAD(&o2hb_callbacks[i].list); 1444 1445 for (i = 0; i < ARRAY_SIZE(o2hb_live_slots); i++) 1446 INIT_LIST_HEAD(&o2hb_live_slots[i]); 1447 1448 bitmap_zero(o2hb_live_node_bitmap, O2NM_MAX_NODES); 1449 bitmap_zero(o2hb_region_bitmap, O2NM_MAX_REGIONS); 1450 bitmap_zero(o2hb_live_region_bitmap, O2NM_MAX_REGIONS); 1451 bitmap_zero(o2hb_quorum_region_bitmap, O2NM_MAX_REGIONS); 1452 bitmap_zero(o2hb_failed_region_bitmap, O2NM_MAX_REGIONS); 1453 1454 o2hb_dependent_users = 0; 1455 1456 o2hb_debug_init(); 1457 } 1458 1459 /* if we're already in a callback then we're already serialized by the sem */ 1460 static void o2hb_fill_node_map_from_callback(unsigned long *map, 1461 unsigned int bits) 1462 { 1463 bitmap_copy(map, o2hb_live_node_bitmap, bits); 1464 } 1465 1466 /* 1467 * get a map of all nodes that are heartbeating in any regions 1468 */ 1469 void o2hb_fill_node_map(unsigned long *map, unsigned int bits) 1470 { 1471 /* callers want to serialize this map and callbacks so that they 1472 * can trust that they don't miss nodes coming to the party */ 1473 down_read(&o2hb_callback_sem); 1474 spin_lock(&o2hb_live_lock); 1475 o2hb_fill_node_map_from_callback(map, bits); 1476 spin_unlock(&o2hb_live_lock); 1477 up_read(&o2hb_callback_sem); 1478 } 1479 EXPORT_SYMBOL_GPL(o2hb_fill_node_map); 1480 1481 /* 1482 * heartbeat configfs bits. The heartbeat set is a default set under 1483 * the cluster set in nodemanager.c. 1484 */ 1485 1486 static struct o2hb_region *to_o2hb_region(struct config_item *item) 1487 { 1488 return item ? container_of(item, struct o2hb_region, hr_item) : NULL; 1489 } 1490 1491 /* drop_item only drops its ref after killing the thread, nothing should 1492 * be using the region anymore. this has to clean up any state that 1493 * attributes might have built up. */ 1494 static void o2hb_region_release(struct config_item *item) 1495 { 1496 int i; 1497 struct page *page; 1498 struct o2hb_region *reg = to_o2hb_region(item); 1499 1500 mlog(ML_HEARTBEAT, "hb region release (%pg)\n", reg_bdev(reg)); 1501 1502 kfree(reg->hr_tmp_block); 1503 1504 if (reg->hr_slot_data) { 1505 for (i = 0; i < reg->hr_num_pages; i++) { 1506 page = reg->hr_slot_data[i]; 1507 if (page) 1508 __free_page(page); 1509 } 1510 kfree(reg->hr_slot_data); 1511 } 1512 1513 if (reg->hr_bdev_file) 1514 fput(reg->hr_bdev_file); 1515 1516 kfree(reg->hr_slots); 1517 1518 debugfs_remove_recursive(reg->hr_debug_dir); 1519 kfree(reg->hr_db_livenodes); 1520 kfree(reg->hr_db_regnum); 1521 kfree(reg->hr_db_elapsed_time); 1522 kfree(reg->hr_db_pinned); 1523 1524 spin_lock(&o2hb_live_lock); 1525 list_del(®->hr_all_item); 1526 spin_unlock(&o2hb_live_lock); 1527 1528 o2net_unregister_handler_list(®->hr_handler_list); 1529 kfree(reg); 1530 } 1531 1532 static int o2hb_read_block_input(struct o2hb_region *reg, 1533 const char *page, 1534 unsigned long *ret_bytes, 1535 unsigned int *ret_bits) 1536 { 1537 unsigned long bytes; 1538 char *p = (char *)page; 1539 int ret; 1540 1541 ret = kstrtoul(p, 0, &bytes); 1542 if (ret) 1543 return ret; 1544 1545 /* Heartbeat and fs min / max block sizes are the same. */ 1546 if (bytes > 4096 || bytes < 512) 1547 return -ERANGE; 1548 if (hweight16(bytes) != 1) 1549 return -EINVAL; 1550 1551 if (ret_bytes) 1552 *ret_bytes = bytes; 1553 if (ret_bits) 1554 *ret_bits = ffs(bytes) - 1; 1555 1556 return 0; 1557 } 1558 1559 static ssize_t o2hb_region_block_bytes_show(struct config_item *item, 1560 char *page) 1561 { 1562 return sprintf(page, "%u\n", to_o2hb_region(item)->hr_block_bytes); 1563 } 1564 1565 static ssize_t o2hb_region_block_bytes_store(struct config_item *item, 1566 const char *page, 1567 size_t count) 1568 { 1569 struct o2hb_region *reg = to_o2hb_region(item); 1570 int status; 1571 unsigned long block_bytes; 1572 unsigned int block_bits; 1573 1574 if (reg->hr_bdev_file) 1575 return -EINVAL; 1576 1577 status = o2hb_read_block_input(reg, page, &block_bytes, 1578 &block_bits); 1579 if (status) 1580 return status; 1581 1582 reg->hr_block_bytes = (unsigned int)block_bytes; 1583 reg->hr_block_bits = block_bits; 1584 1585 return count; 1586 } 1587 1588 static ssize_t o2hb_region_start_block_show(struct config_item *item, 1589 char *page) 1590 { 1591 return sprintf(page, "%llu\n", to_o2hb_region(item)->hr_start_block); 1592 } 1593 1594 static ssize_t o2hb_region_start_block_store(struct config_item *item, 1595 const char *page, 1596 size_t count) 1597 { 1598 struct o2hb_region *reg = to_o2hb_region(item); 1599 unsigned long long tmp; 1600 char *p = (char *)page; 1601 ssize_t ret; 1602 1603 if (reg->hr_bdev_file) 1604 return -EINVAL; 1605 1606 ret = kstrtoull(p, 0, &tmp); 1607 if (ret) 1608 return -EINVAL; 1609 1610 reg->hr_start_block = tmp; 1611 1612 return count; 1613 } 1614 1615 static ssize_t o2hb_region_blocks_show(struct config_item *item, char *page) 1616 { 1617 return sprintf(page, "%d\n", to_o2hb_region(item)->hr_blocks); 1618 } 1619 1620 static ssize_t o2hb_region_blocks_store(struct config_item *item, 1621 const char *page, 1622 size_t count) 1623 { 1624 struct o2hb_region *reg = to_o2hb_region(item); 1625 unsigned long tmp; 1626 char *p = (char *)page; 1627 int ret; 1628 1629 if (reg->hr_bdev_file) 1630 return -EINVAL; 1631 1632 ret = kstrtoul(p, 0, &tmp); 1633 if (ret) 1634 return ret; 1635 1636 if (tmp > O2NM_MAX_NODES || tmp == 0) 1637 return -ERANGE; 1638 1639 reg->hr_blocks = (unsigned int)tmp; 1640 1641 return count; 1642 } 1643 1644 static ssize_t o2hb_region_dev_show(struct config_item *item, char *page) 1645 { 1646 unsigned int ret = 0; 1647 1648 if (to_o2hb_region(item)->hr_bdev_file) 1649 ret = sprintf(page, "%pg\n", reg_bdev(to_o2hb_region(item))); 1650 1651 return ret; 1652 } 1653 1654 static void o2hb_init_region_params(struct o2hb_region *reg) 1655 { 1656 reg->hr_slots_per_page = PAGE_SIZE >> reg->hr_block_bits; 1657 reg->hr_timeout_ms = O2HB_REGION_TIMEOUT_MS; 1658 1659 mlog(ML_HEARTBEAT, "hr_start_block = %llu, hr_blocks = %u\n", 1660 reg->hr_start_block, reg->hr_blocks); 1661 mlog(ML_HEARTBEAT, "hr_block_bytes = %u, hr_block_bits = %u\n", 1662 reg->hr_block_bytes, reg->hr_block_bits); 1663 mlog(ML_HEARTBEAT, "hr_timeout_ms = %u\n", reg->hr_timeout_ms); 1664 mlog(ML_HEARTBEAT, "dead threshold = %u\n", o2hb_dead_threshold); 1665 } 1666 1667 static int o2hb_map_slot_data(struct o2hb_region *reg) 1668 { 1669 int i, j; 1670 unsigned int last_slot; 1671 unsigned int spp = reg->hr_slots_per_page; 1672 struct page *page; 1673 char *raw; 1674 struct o2hb_disk_slot *slot; 1675 1676 reg->hr_tmp_block = kmalloc(reg->hr_block_bytes, GFP_KERNEL); 1677 if (reg->hr_tmp_block == NULL) 1678 return -ENOMEM; 1679 1680 reg->hr_slots = kcalloc(reg->hr_blocks, 1681 sizeof(struct o2hb_disk_slot), GFP_KERNEL); 1682 if (reg->hr_slots == NULL) 1683 return -ENOMEM; 1684 1685 for(i = 0; i < reg->hr_blocks; i++) { 1686 slot = ®->hr_slots[i]; 1687 slot->ds_node_num = i; 1688 INIT_LIST_HEAD(&slot->ds_live_item); 1689 slot->ds_raw_block = NULL; 1690 } 1691 1692 reg->hr_num_pages = (reg->hr_blocks + spp - 1) / spp; 1693 mlog(ML_HEARTBEAT, "Going to require %u pages to cover %u blocks " 1694 "at %u blocks per page\n", 1695 reg->hr_num_pages, reg->hr_blocks, spp); 1696 1697 reg->hr_slot_data = kcalloc(reg->hr_num_pages, sizeof(struct page *), 1698 GFP_KERNEL); 1699 if (!reg->hr_slot_data) 1700 return -ENOMEM; 1701 1702 for(i = 0; i < reg->hr_num_pages; i++) { 1703 page = alloc_page(GFP_KERNEL); 1704 if (!page) 1705 return -ENOMEM; 1706 1707 reg->hr_slot_data[i] = page; 1708 1709 last_slot = i * spp; 1710 raw = page_address(page); 1711 for (j = 0; 1712 (j < spp) && ((j + last_slot) < reg->hr_blocks); 1713 j++) { 1714 BUG_ON((j + last_slot) >= reg->hr_blocks); 1715 1716 slot = ®->hr_slots[j + last_slot]; 1717 slot->ds_raw_block = 1718 (struct o2hb_disk_heartbeat_block *) raw; 1719 1720 raw += reg->hr_block_bytes; 1721 } 1722 } 1723 1724 return 0; 1725 } 1726 1727 /* Read in all the slots available and populate the tracking 1728 * structures so that we can start with a baseline idea of what's 1729 * there. */ 1730 static int o2hb_populate_slot_data(struct o2hb_region *reg) 1731 { 1732 int ret, i; 1733 struct o2hb_disk_slot *slot; 1734 struct o2hb_disk_heartbeat_block *hb_block; 1735 1736 ret = o2hb_read_slots(reg, 0, reg->hr_blocks); 1737 if (ret) 1738 goto out; 1739 1740 /* We only want to get an idea of the values initially in each 1741 * slot, so we do no verification - o2hb_check_slot will 1742 * actually determine if each configured slot is valid and 1743 * whether any values have changed. */ 1744 for(i = 0; i < reg->hr_blocks; i++) { 1745 slot = ®->hr_slots[i]; 1746 hb_block = (struct o2hb_disk_heartbeat_block *) slot->ds_raw_block; 1747 1748 /* Only fill the values that o2hb_check_slot uses to 1749 * determine changing slots */ 1750 slot->ds_last_time = le64_to_cpu(hb_block->hb_seq); 1751 slot->ds_last_generation = le64_to_cpu(hb_block->hb_generation); 1752 } 1753 1754 out: 1755 return ret; 1756 } 1757 1758 /* 1759 * this is acting as commit; we set up all of hr_bdev_file and hr_task or 1760 * nothing 1761 */ 1762 static ssize_t o2hb_region_dev_store(struct config_item *item, 1763 const char *page, 1764 size_t count) 1765 { 1766 struct o2hb_region *reg = to_o2hb_region(item); 1767 struct task_struct *hb_task; 1768 long fd; 1769 int sectsize; 1770 char *p = (char *)page; 1771 ssize_t ret = -EINVAL; 1772 int live_threshold; 1773 1774 if (reg->hr_bdev_file) 1775 return -EINVAL; 1776 1777 /* We can't heartbeat without having had our node number 1778 * configured yet. */ 1779 if (o2nm_this_node() == O2NM_MAX_NODES) 1780 return -EINVAL; 1781 1782 ret = kstrtol(p, 0, &fd); 1783 if (ret < 0) 1784 return -EINVAL; 1785 1786 if (fd < 0 || fd >= INT_MAX) 1787 return -EINVAL; 1788 1789 CLASS(fd, f)(fd); 1790 if (fd_empty(f)) 1791 return -EINVAL; 1792 1793 if (reg->hr_blocks == 0 || reg->hr_start_block == 0 || 1794 reg->hr_block_bytes == 0) 1795 return -EINVAL; 1796 1797 if (!S_ISBLK(fd_file(f)->f_mapping->host->i_mode)) 1798 return -EINVAL; 1799 1800 reg->hr_bdev_file = bdev_file_open_by_dev(fd_file(f)->f_mapping->host->i_rdev, 1801 BLK_OPEN_WRITE | BLK_OPEN_READ, NULL, NULL); 1802 if (IS_ERR(reg->hr_bdev_file)) { 1803 ret = PTR_ERR(reg->hr_bdev_file); 1804 reg->hr_bdev_file = NULL; 1805 return ret; 1806 } 1807 1808 sectsize = bdev_logical_block_size(reg_bdev(reg)); 1809 if (sectsize != reg->hr_block_bytes) { 1810 mlog(ML_ERROR, 1811 "blocksize %u incorrect for device, expected %d", 1812 reg->hr_block_bytes, sectsize); 1813 ret = -EINVAL; 1814 goto out3; 1815 } 1816 1817 o2hb_init_region_params(reg); 1818 1819 /* Generation of zero is invalid */ 1820 do { 1821 get_random_bytes(®->hr_generation, 1822 sizeof(reg->hr_generation)); 1823 } while (reg->hr_generation == 0); 1824 1825 ret = o2hb_map_slot_data(reg); 1826 if (ret) { 1827 mlog_errno(ret); 1828 goto out3; 1829 } 1830 1831 ret = o2hb_populate_slot_data(reg); 1832 if (ret) { 1833 mlog_errno(ret); 1834 goto out3; 1835 } 1836 1837 INIT_DELAYED_WORK(®->hr_write_timeout_work, o2hb_write_timeout); 1838 INIT_DELAYED_WORK(®->hr_nego_timeout_work, o2hb_nego_timeout); 1839 1840 /* 1841 * A node is considered live after it has beat LIVE_THRESHOLD 1842 * times. We're not steady until we've given them a chance 1843 * _after_ our first read. 1844 * The default threshold is bare minimum so as to limit the delay 1845 * during mounts. For global heartbeat, the threshold doubled for the 1846 * first region. 1847 */ 1848 live_threshold = O2HB_LIVE_THRESHOLD; 1849 if (o2hb_global_heartbeat_active()) { 1850 spin_lock(&o2hb_live_lock); 1851 if (bitmap_weight(o2hb_region_bitmap, O2NM_MAX_REGIONS) == 1) 1852 live_threshold <<= 1; 1853 spin_unlock(&o2hb_live_lock); 1854 } 1855 ++live_threshold; 1856 atomic_set(®->hr_steady_iterations, live_threshold); 1857 /* unsteady_iterations is triple the steady_iterations */ 1858 atomic_set(®->hr_unsteady_iterations, (live_threshold * 3)); 1859 1860 hb_task = kthread_run(o2hb_thread, reg, "o2hb-%s", 1861 reg->hr_item.ci_name); 1862 if (IS_ERR(hb_task)) { 1863 ret = PTR_ERR(hb_task); 1864 mlog_errno(ret); 1865 goto out3; 1866 } 1867 1868 spin_lock(&o2hb_live_lock); 1869 reg->hr_task = hb_task; 1870 spin_unlock(&o2hb_live_lock); 1871 1872 ret = wait_event_interruptible(o2hb_steady_queue, 1873 atomic_read(®->hr_steady_iterations) == 0 || 1874 reg->hr_node_deleted); 1875 if (ret) { 1876 atomic_set(®->hr_steady_iterations, 0); 1877 reg->hr_aborted_start = 1; 1878 } 1879 1880 if (reg->hr_aborted_start) { 1881 ret = -EIO; 1882 goto out3; 1883 } 1884 1885 if (reg->hr_node_deleted) { 1886 ret = -EINVAL; 1887 goto out3; 1888 } 1889 1890 /* Ok, we were woken. Make sure it wasn't by drop_item() */ 1891 spin_lock(&o2hb_live_lock); 1892 hb_task = reg->hr_task; 1893 if (o2hb_global_heartbeat_active()) 1894 set_bit(reg->hr_region_num, o2hb_live_region_bitmap); 1895 spin_unlock(&o2hb_live_lock); 1896 1897 if (hb_task) 1898 ret = count; 1899 else 1900 ret = -EIO; 1901 1902 if (hb_task && o2hb_global_heartbeat_active()) 1903 printk(KERN_NOTICE "o2hb: Heartbeat started on region %s (%pg)\n", 1904 config_item_name(®->hr_item), reg_bdev(reg)); 1905 1906 out3: 1907 if (ret < 0) { 1908 fput(reg->hr_bdev_file); 1909 reg->hr_bdev_file = NULL; 1910 } 1911 return ret; 1912 } 1913 1914 static ssize_t o2hb_region_pid_show(struct config_item *item, char *page) 1915 { 1916 struct o2hb_region *reg = to_o2hb_region(item); 1917 pid_t pid = 0; 1918 1919 spin_lock(&o2hb_live_lock); 1920 if (reg->hr_task) 1921 pid = task_pid_nr(reg->hr_task); 1922 spin_unlock(&o2hb_live_lock); 1923 1924 if (!pid) 1925 return 0; 1926 1927 return sprintf(page, "%u\n", pid); 1928 } 1929 1930 CONFIGFS_ATTR(o2hb_region_, block_bytes); 1931 CONFIGFS_ATTR(o2hb_region_, start_block); 1932 CONFIGFS_ATTR(o2hb_region_, blocks); 1933 CONFIGFS_ATTR(o2hb_region_, dev); 1934 CONFIGFS_ATTR_RO(o2hb_region_, pid); 1935 1936 static struct configfs_attribute *o2hb_region_attrs[] = { 1937 &o2hb_region_attr_block_bytes, 1938 &o2hb_region_attr_start_block, 1939 &o2hb_region_attr_blocks, 1940 &o2hb_region_attr_dev, 1941 &o2hb_region_attr_pid, 1942 NULL, 1943 }; 1944 1945 static struct configfs_item_operations o2hb_region_item_ops = { 1946 .release = o2hb_region_release, 1947 }; 1948 1949 static const struct config_item_type o2hb_region_type = { 1950 .ct_item_ops = &o2hb_region_item_ops, 1951 .ct_attrs = o2hb_region_attrs, 1952 .ct_owner = THIS_MODULE, 1953 }; 1954 1955 /* heartbeat set */ 1956 1957 struct o2hb_heartbeat_group { 1958 struct config_group hs_group; 1959 /* some stuff? */ 1960 }; 1961 1962 static struct o2hb_heartbeat_group *to_o2hb_heartbeat_group(struct config_group *group) 1963 { 1964 return group ? 1965 container_of(group, struct o2hb_heartbeat_group, hs_group) 1966 : NULL; 1967 } 1968 1969 static void o2hb_debug_region_init(struct o2hb_region *reg, 1970 struct dentry *parent) 1971 { 1972 struct dentry *dir; 1973 1974 dir = debugfs_create_dir(config_item_name(®->hr_item), parent); 1975 reg->hr_debug_dir = dir; 1976 1977 o2hb_debug_create(O2HB_DEBUG_LIVENODES, dir, &(reg->hr_db_livenodes), 1978 sizeof(*(reg->hr_db_livenodes)), 1979 O2HB_DB_TYPE_REGION_LIVENODES, 1980 sizeof(reg->hr_live_node_bitmap), O2NM_MAX_NODES, 1981 reg); 1982 1983 o2hb_debug_create(O2HB_DEBUG_REGION_NUMBER, dir, &(reg->hr_db_regnum), 1984 sizeof(*(reg->hr_db_regnum)), 1985 O2HB_DB_TYPE_REGION_NUMBER, 0, O2NM_MAX_NODES, reg); 1986 1987 o2hb_debug_create(O2HB_DEBUG_REGION_ELAPSED_TIME, dir, 1988 &(reg->hr_db_elapsed_time), 1989 sizeof(*(reg->hr_db_elapsed_time)), 1990 O2HB_DB_TYPE_REGION_ELAPSED_TIME, 0, 0, reg); 1991 1992 o2hb_debug_create(O2HB_DEBUG_REGION_PINNED, dir, &(reg->hr_db_pinned), 1993 sizeof(*(reg->hr_db_pinned)), 1994 O2HB_DB_TYPE_REGION_PINNED, 0, 0, reg); 1995 1996 } 1997 1998 static struct config_item *o2hb_heartbeat_group_make_item(struct config_group *group, 1999 const char *name) 2000 { 2001 struct o2hb_region *reg = NULL; 2002 int ret; 2003 2004 reg = kzalloc(sizeof(struct o2hb_region), GFP_KERNEL); 2005 if (reg == NULL) 2006 return ERR_PTR(-ENOMEM); 2007 2008 if (strlen(name) > O2HB_MAX_REGION_NAME_LEN) { 2009 ret = -ENAMETOOLONG; 2010 goto free; 2011 } 2012 2013 spin_lock(&o2hb_live_lock); 2014 reg->hr_region_num = 0; 2015 if (o2hb_global_heartbeat_active()) { 2016 reg->hr_region_num = find_first_zero_bit(o2hb_region_bitmap, 2017 O2NM_MAX_REGIONS); 2018 if (reg->hr_region_num >= O2NM_MAX_REGIONS) { 2019 spin_unlock(&o2hb_live_lock); 2020 ret = -EFBIG; 2021 goto free; 2022 } 2023 set_bit(reg->hr_region_num, o2hb_region_bitmap); 2024 } 2025 list_add_tail(®->hr_all_item, &o2hb_all_regions); 2026 spin_unlock(&o2hb_live_lock); 2027 2028 config_item_init_type_name(®->hr_item, name, &o2hb_region_type); 2029 2030 /* this is the same way to generate msg key as dlm, for local heartbeat, 2031 * name is also the same, so make initial crc value different to avoid 2032 * message key conflict. 2033 */ 2034 reg->hr_key = crc32_le(reg->hr_region_num + O2NM_MAX_REGIONS, 2035 name, strlen(name)); 2036 INIT_LIST_HEAD(®->hr_handler_list); 2037 ret = o2net_register_handler(O2HB_NEGO_TIMEOUT_MSG, reg->hr_key, 2038 sizeof(struct o2hb_nego_msg), 2039 o2hb_nego_timeout_handler, 2040 reg, NULL, ®->hr_handler_list); 2041 if (ret) 2042 goto remove_item; 2043 2044 ret = o2net_register_handler(O2HB_NEGO_APPROVE_MSG, reg->hr_key, 2045 sizeof(struct o2hb_nego_msg), 2046 o2hb_nego_approve_handler, 2047 reg, NULL, ®->hr_handler_list); 2048 if (ret) 2049 goto unregister_handler; 2050 2051 o2hb_debug_region_init(reg, o2hb_debug_dir); 2052 2053 return ®->hr_item; 2054 2055 unregister_handler: 2056 o2net_unregister_handler_list(®->hr_handler_list); 2057 remove_item: 2058 spin_lock(&o2hb_live_lock); 2059 list_del(®->hr_all_item); 2060 if (o2hb_global_heartbeat_active()) 2061 clear_bit(reg->hr_region_num, o2hb_region_bitmap); 2062 spin_unlock(&o2hb_live_lock); 2063 free: 2064 kfree(reg); 2065 return ERR_PTR(ret); 2066 } 2067 2068 static void o2hb_heartbeat_group_drop_item(struct config_group *group, 2069 struct config_item *item) 2070 { 2071 struct task_struct *hb_task; 2072 struct o2hb_region *reg = to_o2hb_region(item); 2073 int quorum_region = 0; 2074 2075 /* stop the thread when the user removes the region dir */ 2076 spin_lock(&o2hb_live_lock); 2077 hb_task = reg->hr_task; 2078 reg->hr_task = NULL; 2079 reg->hr_item_dropped = 1; 2080 spin_unlock(&o2hb_live_lock); 2081 2082 if (hb_task) 2083 kthread_stop(hb_task); 2084 2085 if (o2hb_global_heartbeat_active()) { 2086 spin_lock(&o2hb_live_lock); 2087 clear_bit(reg->hr_region_num, o2hb_region_bitmap); 2088 clear_bit(reg->hr_region_num, o2hb_live_region_bitmap); 2089 if (test_bit(reg->hr_region_num, o2hb_quorum_region_bitmap)) 2090 quorum_region = 1; 2091 clear_bit(reg->hr_region_num, o2hb_quorum_region_bitmap); 2092 spin_unlock(&o2hb_live_lock); 2093 printk(KERN_NOTICE "o2hb: Heartbeat %s on region %s (%pg)\n", 2094 ((atomic_read(®->hr_steady_iterations) == 0) ? 2095 "stopped" : "start aborted"), config_item_name(item), 2096 reg_bdev(reg)); 2097 } 2098 2099 /* 2100 * If we're racing a dev_write(), we need to wake them. They will 2101 * check reg->hr_task 2102 */ 2103 if (atomic_read(®->hr_steady_iterations) != 0) { 2104 reg->hr_aborted_start = 1; 2105 atomic_set(®->hr_steady_iterations, 0); 2106 wake_up(&o2hb_steady_queue); 2107 } 2108 2109 config_item_put(item); 2110 2111 if (!o2hb_global_heartbeat_active() || !quorum_region) 2112 return; 2113 2114 /* 2115 * If global heartbeat active and there are dependent users, 2116 * pin all regions if quorum region count <= CUT_OFF 2117 */ 2118 spin_lock(&o2hb_live_lock); 2119 2120 if (!o2hb_dependent_users) 2121 goto unlock; 2122 2123 if (bitmap_weight(o2hb_quorum_region_bitmap, 2124 O2NM_MAX_REGIONS) <= O2HB_PIN_CUT_OFF) 2125 o2hb_region_pin(NULL); 2126 2127 unlock: 2128 spin_unlock(&o2hb_live_lock); 2129 } 2130 2131 static ssize_t o2hb_heartbeat_group_dead_threshold_show(struct config_item *item, 2132 char *page) 2133 { 2134 return sprintf(page, "%u\n", o2hb_dead_threshold); 2135 } 2136 2137 static ssize_t o2hb_heartbeat_group_dead_threshold_store(struct config_item *item, 2138 const char *page, size_t count) 2139 { 2140 unsigned long tmp; 2141 char *p = (char *)page; 2142 int ret; 2143 2144 ret = kstrtoul(p, 10, &tmp); 2145 if (ret) 2146 return ret; 2147 2148 /* this will validate ranges for us. */ 2149 o2hb_dead_threshold_set((unsigned int) tmp); 2150 2151 return count; 2152 } 2153 2154 static ssize_t o2hb_heartbeat_group_mode_show(struct config_item *item, 2155 char *page) 2156 { 2157 return sprintf(page, "%s\n", 2158 o2hb_heartbeat_mode_desc[o2hb_heartbeat_mode]); 2159 } 2160 2161 static ssize_t o2hb_heartbeat_group_mode_store(struct config_item *item, 2162 const char *page, size_t count) 2163 { 2164 unsigned int i; 2165 int ret; 2166 size_t len; 2167 2168 len = (page[count - 1] == '\n') ? count - 1 : count; 2169 if (!len) 2170 return -EINVAL; 2171 2172 for (i = 0; i < O2HB_HEARTBEAT_NUM_MODES; ++i) { 2173 if (strncasecmp(page, o2hb_heartbeat_mode_desc[i], len)) 2174 continue; 2175 2176 ret = o2hb_global_heartbeat_mode_set(i); 2177 if (!ret) 2178 printk(KERN_NOTICE "o2hb: Heartbeat mode set to %s\n", 2179 o2hb_heartbeat_mode_desc[i]); 2180 return count; 2181 } 2182 2183 return -EINVAL; 2184 2185 } 2186 2187 CONFIGFS_ATTR(o2hb_heartbeat_group_, dead_threshold); 2188 CONFIGFS_ATTR(o2hb_heartbeat_group_, mode); 2189 2190 static struct configfs_attribute *o2hb_heartbeat_group_attrs[] = { 2191 &o2hb_heartbeat_group_attr_dead_threshold, 2192 &o2hb_heartbeat_group_attr_mode, 2193 NULL, 2194 }; 2195 2196 static struct configfs_group_operations o2hb_heartbeat_group_group_ops = { 2197 .make_item = o2hb_heartbeat_group_make_item, 2198 .drop_item = o2hb_heartbeat_group_drop_item, 2199 }; 2200 2201 static const struct config_item_type o2hb_heartbeat_group_type = { 2202 .ct_group_ops = &o2hb_heartbeat_group_group_ops, 2203 .ct_attrs = o2hb_heartbeat_group_attrs, 2204 .ct_owner = THIS_MODULE, 2205 }; 2206 2207 /* this is just here to avoid touching group in heartbeat.h which the 2208 * entire damn world #includes */ 2209 struct config_group *o2hb_alloc_hb_set(void) 2210 { 2211 struct o2hb_heartbeat_group *hs = NULL; 2212 struct config_group *ret = NULL; 2213 2214 hs = kzalloc(sizeof(struct o2hb_heartbeat_group), GFP_KERNEL); 2215 if (hs == NULL) 2216 goto out; 2217 2218 config_group_init_type_name(&hs->hs_group, "heartbeat", 2219 &o2hb_heartbeat_group_type); 2220 2221 ret = &hs->hs_group; 2222 out: 2223 if (ret == NULL) 2224 kfree(hs); 2225 return ret; 2226 } 2227 2228 void o2hb_free_hb_set(struct config_group *group) 2229 { 2230 struct o2hb_heartbeat_group *hs = to_o2hb_heartbeat_group(group); 2231 kfree(hs); 2232 } 2233 2234 /* hb callback registration and issuing */ 2235 2236 static struct o2hb_callback *hbcall_from_type(enum o2hb_callback_type type) 2237 { 2238 if (type == O2HB_NUM_CB) 2239 return ERR_PTR(-EINVAL); 2240 2241 return &o2hb_callbacks[type]; 2242 } 2243 2244 void o2hb_setup_callback(struct o2hb_callback_func *hc, 2245 enum o2hb_callback_type type, 2246 o2hb_cb_func *func, 2247 void *data, 2248 int priority) 2249 { 2250 INIT_LIST_HEAD(&hc->hc_item); 2251 hc->hc_func = func; 2252 hc->hc_data = data; 2253 hc->hc_priority = priority; 2254 hc->hc_type = type; 2255 hc->hc_magic = O2HB_CB_MAGIC; 2256 } 2257 EXPORT_SYMBOL_GPL(o2hb_setup_callback); 2258 2259 /* 2260 * In local heartbeat mode, region_uuid passed matches the dlm domain name. 2261 * In global heartbeat mode, region_uuid passed is NULL. 2262 * 2263 * In local, we only pin the matching region. In global we pin all the active 2264 * regions. 2265 */ 2266 static int o2hb_region_pin(const char *region_uuid) 2267 { 2268 int ret = 0, found = 0; 2269 struct o2hb_region *reg; 2270 char *uuid; 2271 2272 assert_spin_locked(&o2hb_live_lock); 2273 2274 list_for_each_entry(reg, &o2hb_all_regions, hr_all_item) { 2275 if (reg->hr_item_dropped) 2276 continue; 2277 2278 uuid = config_item_name(®->hr_item); 2279 2280 /* local heartbeat */ 2281 if (region_uuid) { 2282 if (strcmp(region_uuid, uuid)) 2283 continue; 2284 found = 1; 2285 } 2286 2287 if (reg->hr_item_pinned || reg->hr_item_dropped) 2288 goto skip_pin; 2289 2290 /* Ignore ENOENT only for local hb (userdlm domain) */ 2291 ret = o2nm_depend_item(®->hr_item); 2292 if (!ret) { 2293 mlog(ML_CLUSTER, "Pin region %s\n", uuid); 2294 reg->hr_item_pinned = 1; 2295 } else { 2296 if (ret == -ENOENT && found) 2297 ret = 0; 2298 else { 2299 mlog(ML_ERROR, "Pin region %s fails with %d\n", 2300 uuid, ret); 2301 break; 2302 } 2303 } 2304 skip_pin: 2305 if (found) 2306 break; 2307 } 2308 2309 return ret; 2310 } 2311 2312 /* 2313 * In local heartbeat mode, region_uuid passed matches the dlm domain name. 2314 * In global heartbeat mode, region_uuid passed is NULL. 2315 * 2316 * In local, we only unpin the matching region. In global we unpin all the 2317 * active regions. 2318 */ 2319 static void o2hb_region_unpin(const char *region_uuid) 2320 { 2321 struct o2hb_region *reg; 2322 char *uuid; 2323 int found = 0; 2324 2325 assert_spin_locked(&o2hb_live_lock); 2326 2327 list_for_each_entry(reg, &o2hb_all_regions, hr_all_item) { 2328 if (reg->hr_item_dropped) 2329 continue; 2330 2331 uuid = config_item_name(®->hr_item); 2332 if (region_uuid) { 2333 if (strcmp(region_uuid, uuid)) 2334 continue; 2335 found = 1; 2336 } 2337 2338 if (reg->hr_item_pinned) { 2339 mlog(ML_CLUSTER, "Unpin region %s\n", uuid); 2340 o2nm_undepend_item(®->hr_item); 2341 reg->hr_item_pinned = 0; 2342 } 2343 if (found) 2344 break; 2345 } 2346 } 2347 2348 static int o2hb_region_inc_user(const char *region_uuid) 2349 { 2350 int ret = 0; 2351 2352 spin_lock(&o2hb_live_lock); 2353 2354 /* local heartbeat */ 2355 if (!o2hb_global_heartbeat_active()) { 2356 ret = o2hb_region_pin(region_uuid); 2357 goto unlock; 2358 } 2359 2360 /* 2361 * if global heartbeat active and this is the first dependent user, 2362 * pin all regions if quorum region count <= CUT_OFF 2363 */ 2364 o2hb_dependent_users++; 2365 if (o2hb_dependent_users > 1) 2366 goto unlock; 2367 2368 if (bitmap_weight(o2hb_quorum_region_bitmap, 2369 O2NM_MAX_REGIONS) <= O2HB_PIN_CUT_OFF) 2370 ret = o2hb_region_pin(NULL); 2371 2372 unlock: 2373 spin_unlock(&o2hb_live_lock); 2374 return ret; 2375 } 2376 2377 static void o2hb_region_dec_user(const char *region_uuid) 2378 { 2379 spin_lock(&o2hb_live_lock); 2380 2381 /* local heartbeat */ 2382 if (!o2hb_global_heartbeat_active()) { 2383 o2hb_region_unpin(region_uuid); 2384 goto unlock; 2385 } 2386 2387 /* 2388 * if global heartbeat active and there are no dependent users, 2389 * unpin all quorum regions 2390 */ 2391 o2hb_dependent_users--; 2392 if (!o2hb_dependent_users) 2393 o2hb_region_unpin(NULL); 2394 2395 unlock: 2396 spin_unlock(&o2hb_live_lock); 2397 } 2398 2399 int o2hb_register_callback(const char *region_uuid, 2400 struct o2hb_callback_func *hc) 2401 { 2402 struct o2hb_callback_func *f; 2403 struct o2hb_callback *hbcall; 2404 int ret; 2405 2406 BUG_ON(hc->hc_magic != O2HB_CB_MAGIC); 2407 BUG_ON(!list_empty(&hc->hc_item)); 2408 2409 hbcall = hbcall_from_type(hc->hc_type); 2410 if (IS_ERR(hbcall)) { 2411 ret = PTR_ERR(hbcall); 2412 goto out; 2413 } 2414 2415 if (region_uuid) { 2416 ret = o2hb_region_inc_user(region_uuid); 2417 if (ret) { 2418 mlog_errno(ret); 2419 goto out; 2420 } 2421 } 2422 2423 down_write(&o2hb_callback_sem); 2424 2425 list_for_each_entry(f, &hbcall->list, hc_item) { 2426 if (hc->hc_priority < f->hc_priority) { 2427 list_add_tail(&hc->hc_item, &f->hc_item); 2428 break; 2429 } 2430 } 2431 if (list_empty(&hc->hc_item)) 2432 list_add_tail(&hc->hc_item, &hbcall->list); 2433 2434 up_write(&o2hb_callback_sem); 2435 ret = 0; 2436 out: 2437 mlog(ML_CLUSTER, "returning %d on behalf of %p for funcs %p\n", 2438 ret, __builtin_return_address(0), hc); 2439 return ret; 2440 } 2441 EXPORT_SYMBOL_GPL(o2hb_register_callback); 2442 2443 void o2hb_unregister_callback(const char *region_uuid, 2444 struct o2hb_callback_func *hc) 2445 { 2446 BUG_ON(hc->hc_magic != O2HB_CB_MAGIC); 2447 2448 mlog(ML_CLUSTER, "on behalf of %p for funcs %p\n", 2449 __builtin_return_address(0), hc); 2450 2451 /* XXX Can this happen _with_ a region reference? */ 2452 if (list_empty(&hc->hc_item)) 2453 return; 2454 2455 if (region_uuid) 2456 o2hb_region_dec_user(region_uuid); 2457 2458 down_write(&o2hb_callback_sem); 2459 2460 list_del_init(&hc->hc_item); 2461 2462 up_write(&o2hb_callback_sem); 2463 } 2464 EXPORT_SYMBOL_GPL(o2hb_unregister_callback); 2465 2466 int o2hb_check_node_heartbeating_no_sem(u8 node_num) 2467 { 2468 unsigned long testing_map[BITS_TO_LONGS(O2NM_MAX_NODES)]; 2469 2470 spin_lock(&o2hb_live_lock); 2471 o2hb_fill_node_map_from_callback(testing_map, O2NM_MAX_NODES); 2472 spin_unlock(&o2hb_live_lock); 2473 if (!test_bit(node_num, testing_map)) { 2474 mlog(ML_HEARTBEAT, 2475 "node (%u) does not have heartbeating enabled.\n", 2476 node_num); 2477 return 0; 2478 } 2479 2480 return 1; 2481 } 2482 EXPORT_SYMBOL_GPL(o2hb_check_node_heartbeating_no_sem); 2483 2484 int o2hb_check_node_heartbeating_from_callback(u8 node_num) 2485 { 2486 unsigned long testing_map[BITS_TO_LONGS(O2NM_MAX_NODES)]; 2487 2488 o2hb_fill_node_map_from_callback(testing_map, O2NM_MAX_NODES); 2489 if (!test_bit(node_num, testing_map)) { 2490 mlog(ML_HEARTBEAT, 2491 "node (%u) does not have heartbeating enabled.\n", 2492 node_num); 2493 return 0; 2494 } 2495 2496 return 1; 2497 } 2498 EXPORT_SYMBOL_GPL(o2hb_check_node_heartbeating_from_callback); 2499 2500 /* 2501 * this is just a hack until we get the plumbing which flips file systems 2502 * read only and drops the hb ref instead of killing the node dead. 2503 */ 2504 void o2hb_stop_all_regions(void) 2505 { 2506 struct o2hb_region *reg; 2507 2508 mlog(ML_ERROR, "stopping heartbeat on all active regions.\n"); 2509 2510 spin_lock(&o2hb_live_lock); 2511 2512 list_for_each_entry(reg, &o2hb_all_regions, hr_all_item) 2513 reg->hr_unclean_stop = 1; 2514 2515 spin_unlock(&o2hb_live_lock); 2516 } 2517 EXPORT_SYMBOL_GPL(o2hb_stop_all_regions); 2518 2519 int o2hb_get_all_regions(char *region_uuids, u8 max_regions) 2520 { 2521 struct o2hb_region *reg; 2522 int numregs = 0; 2523 char *p; 2524 2525 spin_lock(&o2hb_live_lock); 2526 2527 p = region_uuids; 2528 list_for_each_entry(reg, &o2hb_all_regions, hr_all_item) { 2529 if (reg->hr_item_dropped) 2530 continue; 2531 2532 mlog(0, "Region: %s\n", config_item_name(®->hr_item)); 2533 if (numregs < max_regions) { 2534 memcpy(p, config_item_name(®->hr_item), 2535 O2HB_MAX_REGION_NAME_LEN); 2536 p += O2HB_MAX_REGION_NAME_LEN; 2537 } 2538 numregs++; 2539 } 2540 2541 spin_unlock(&o2hb_live_lock); 2542 2543 return numregs; 2544 } 2545 EXPORT_SYMBOL_GPL(o2hb_get_all_regions); 2546 2547 int o2hb_global_heartbeat_active(void) 2548 { 2549 return (o2hb_heartbeat_mode == O2HB_HEARTBEAT_GLOBAL); 2550 } 2551 EXPORT_SYMBOL(o2hb_global_heartbeat_active); 2552