linux/fs/ceph/snap.c
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   1// SPDX-License-Identifier: GPL-2.0
   2#include <linux/ceph/ceph_debug.h>
   3
   4#include <linux/sort.h>
   5#include <linux/slab.h>
   6#include "super.h"
   7#include "mds_client.h"
   8#include <linux/ceph/decode.h>
   9
  10/* unused map expires after 5 minutes */
  11#define CEPH_SNAPID_MAP_TIMEOUT (5 * 60 * HZ)
  12
  13/*
  14 * Snapshots in ceph are driven in large part by cooperation from the
  15 * client.  In contrast to local file systems or file servers that
  16 * implement snapshots at a single point in the system, ceph's
  17 * distributed access to storage requires clients to help decide
  18 * whether a write logically occurs before or after a recently created
  19 * snapshot.
  20 *
  21 * This provides a perfect instantanous client-wide snapshot.  Between
  22 * clients, however, snapshots may appear to be applied at slightly
  23 * different points in time, depending on delays in delivering the
  24 * snapshot notification.
  25 *
  26 * Snapshots are _not_ file system-wide.  Instead, each snapshot
  27 * applies to the subdirectory nested beneath some directory.  This
  28 * effectively divides the hierarchy into multiple "realms," where all
  29 * of the files contained by each realm share the same set of
  30 * snapshots.  An individual realm's snap set contains snapshots
  31 * explicitly created on that realm, as well as any snaps in its
  32 * parent's snap set _after_ the point at which the parent became it's
  33 * parent (due to, say, a rename).  Similarly, snaps from prior parents
  34 * during the time intervals during which they were the parent are included.
  35 *
  36 * The client is spared most of this detail, fortunately... it must only
  37 * maintains a hierarchy of realms reflecting the current parent/child
  38 * realm relationship, and for each realm has an explicit list of snaps
  39 * inherited from prior parents.
  40 *
  41 * A snap_realm struct is maintained for realms containing every inode
  42 * with an open cap in the system.  (The needed snap realm information is
  43 * provided by the MDS whenever a cap is issued, i.e., on open.)  A 'seq'
  44 * version number is used to ensure that as realm parameters change (new
  45 * snapshot, new parent, etc.) the client's realm hierarchy is updated.
  46 *
  47 * The realm hierarchy drives the generation of a 'snap context' for each
  48 * realm, which simply lists the resulting set of snaps for the realm.  This
  49 * is attached to any writes sent to OSDs.
  50 */
  51/*
  52 * Unfortunately error handling is a bit mixed here.  If we get a snap
  53 * update, but don't have enough memory to update our realm hierarchy,
  54 * it's not clear what we can do about it (besides complaining to the
  55 * console).
  56 */
  57
  58
  59/*
  60 * increase ref count for the realm
  61 *
  62 * caller must hold snap_rwsem for write.
  63 */
  64void ceph_get_snap_realm(struct ceph_mds_client *mdsc,
  65                         struct ceph_snap_realm *realm)
  66{
  67        dout("get_realm %p %d -> %d\n", realm,
  68             atomic_read(&realm->nref), atomic_read(&realm->nref)+1);
  69        /*
  70         * since we _only_ increment realm refs or empty the empty
  71         * list with snap_rwsem held, adjusting the empty list here is
  72         * safe.  we do need to protect against concurrent empty list
  73         * additions, however.
  74         */
  75        if (atomic_inc_return(&realm->nref) == 1) {
  76                spin_lock(&mdsc->snap_empty_lock);
  77                list_del_init(&realm->empty_item);
  78                spin_unlock(&mdsc->snap_empty_lock);
  79        }
  80}
  81
  82static void __insert_snap_realm(struct rb_root *root,
  83                                struct ceph_snap_realm *new)
  84{
  85        struct rb_node **p = &root->rb_node;
  86        struct rb_node *parent = NULL;
  87        struct ceph_snap_realm *r = NULL;
  88
  89        while (*p) {
  90                parent = *p;
  91                r = rb_entry(parent, struct ceph_snap_realm, node);
  92                if (new->ino < r->ino)
  93                        p = &(*p)->rb_left;
  94                else if (new->ino > r->ino)
  95                        p = &(*p)->rb_right;
  96                else
  97                        BUG();
  98        }
  99
 100        rb_link_node(&new->node, parent, p);
 101        rb_insert_color(&new->node, root);
 102}
 103
 104/*
 105 * create and get the realm rooted at @ino and bump its ref count.
 106 *
 107 * caller must hold snap_rwsem for write.
 108 */
 109static struct ceph_snap_realm *ceph_create_snap_realm(
 110        struct ceph_mds_client *mdsc,
 111        u64 ino)
 112{
 113        struct ceph_snap_realm *realm;
 114
 115        realm = kzalloc(sizeof(*realm), GFP_NOFS);
 116        if (!realm)
 117                return ERR_PTR(-ENOMEM);
 118
 119        atomic_set(&realm->nref, 1);    /* for caller */
 120        realm->ino = ino;
 121        INIT_LIST_HEAD(&realm->children);
 122        INIT_LIST_HEAD(&realm->child_item);
 123        INIT_LIST_HEAD(&realm->empty_item);
 124        INIT_LIST_HEAD(&realm->dirty_item);
 125        INIT_LIST_HEAD(&realm->inodes_with_caps);
 126        spin_lock_init(&realm->inodes_with_caps_lock);
 127        __insert_snap_realm(&mdsc->snap_realms, realm);
 128        mdsc->num_snap_realms++;
 129
 130        dout("create_snap_realm %llx %p\n", realm->ino, realm);
 131        return realm;
 132}
 133
 134/*
 135 * lookup the realm rooted at @ino.
 136 *
 137 * caller must hold snap_rwsem for write.
 138 */
 139static struct ceph_snap_realm *__lookup_snap_realm(struct ceph_mds_client *mdsc,
 140                                                   u64 ino)
 141{
 142        struct rb_node *n = mdsc->snap_realms.rb_node;
 143        struct ceph_snap_realm *r;
 144
 145        while (n) {
 146                r = rb_entry(n, struct ceph_snap_realm, node);
 147                if (ino < r->ino)
 148                        n = n->rb_left;
 149                else if (ino > r->ino)
 150                        n = n->rb_right;
 151                else {
 152                        dout("lookup_snap_realm %llx %p\n", r->ino, r);
 153                        return r;
 154                }
 155        }
 156        return NULL;
 157}
 158
 159struct ceph_snap_realm *ceph_lookup_snap_realm(struct ceph_mds_client *mdsc,
 160                                               u64 ino)
 161{
 162        struct ceph_snap_realm *r;
 163        r = __lookup_snap_realm(mdsc, ino);
 164        if (r)
 165                ceph_get_snap_realm(mdsc, r);
 166        return r;
 167}
 168
 169static void __put_snap_realm(struct ceph_mds_client *mdsc,
 170                             struct ceph_snap_realm *realm);
 171
 172/*
 173 * called with snap_rwsem (write)
 174 */
 175static void __destroy_snap_realm(struct ceph_mds_client *mdsc,
 176                                 struct ceph_snap_realm *realm)
 177{
 178        dout("__destroy_snap_realm %p %llx\n", realm, realm->ino);
 179
 180        rb_erase(&realm->node, &mdsc->snap_realms);
 181        mdsc->num_snap_realms--;
 182
 183        if (realm->parent) {
 184                list_del_init(&realm->child_item);
 185                __put_snap_realm(mdsc, realm->parent);
 186        }
 187
 188        kfree(realm->prior_parent_snaps);
 189        kfree(realm->snaps);
 190        ceph_put_snap_context(realm->cached_context);
 191        kfree(realm);
 192}
 193
 194/*
 195 * caller holds snap_rwsem (write)
 196 */
 197static void __put_snap_realm(struct ceph_mds_client *mdsc,
 198                             struct ceph_snap_realm *realm)
 199{
 200        dout("__put_snap_realm %llx %p %d -> %d\n", realm->ino, realm,
 201             atomic_read(&realm->nref), atomic_read(&realm->nref)-1);
 202        if (atomic_dec_and_test(&realm->nref))
 203                __destroy_snap_realm(mdsc, realm);
 204}
 205
 206/*
 207 * caller needn't hold any locks
 208 */
 209void ceph_put_snap_realm(struct ceph_mds_client *mdsc,
 210                         struct ceph_snap_realm *realm)
 211{
 212        dout("put_snap_realm %llx %p %d -> %d\n", realm->ino, realm,
 213             atomic_read(&realm->nref), atomic_read(&realm->nref)-1);
 214        if (!atomic_dec_and_test(&realm->nref))
 215                return;
 216
 217        if (down_write_trylock(&mdsc->snap_rwsem)) {
 218                __destroy_snap_realm(mdsc, realm);
 219                up_write(&mdsc->snap_rwsem);
 220        } else {
 221                spin_lock(&mdsc->snap_empty_lock);
 222                list_add(&realm->empty_item, &mdsc->snap_empty);
 223                spin_unlock(&mdsc->snap_empty_lock);
 224        }
 225}
 226
 227/*
 228 * Clean up any realms whose ref counts have dropped to zero.  Note
 229 * that this does not include realms who were created but not yet
 230 * used.
 231 *
 232 * Called under snap_rwsem (write)
 233 */
 234static void __cleanup_empty_realms(struct ceph_mds_client *mdsc)
 235{
 236        struct ceph_snap_realm *realm;
 237
 238        spin_lock(&mdsc->snap_empty_lock);
 239        while (!list_empty(&mdsc->snap_empty)) {
 240                realm = list_first_entry(&mdsc->snap_empty,
 241                                   struct ceph_snap_realm, empty_item);
 242                list_del(&realm->empty_item);
 243                spin_unlock(&mdsc->snap_empty_lock);
 244                __destroy_snap_realm(mdsc, realm);
 245                spin_lock(&mdsc->snap_empty_lock);
 246        }
 247        spin_unlock(&mdsc->snap_empty_lock);
 248}
 249
 250void ceph_cleanup_empty_realms(struct ceph_mds_client *mdsc)
 251{
 252        down_write(&mdsc->snap_rwsem);
 253        __cleanup_empty_realms(mdsc);
 254        up_write(&mdsc->snap_rwsem);
 255}
 256
 257/*
 258 * adjust the parent realm of a given @realm.  adjust child list, and parent
 259 * pointers, and ref counts appropriately.
 260 *
 261 * return true if parent was changed, 0 if unchanged, <0 on error.
 262 *
 263 * caller must hold snap_rwsem for write.
 264 */
 265static int adjust_snap_realm_parent(struct ceph_mds_client *mdsc,
 266                                    struct ceph_snap_realm *realm,
 267                                    u64 parentino)
 268{
 269        struct ceph_snap_realm *parent;
 270
 271        if (realm->parent_ino == parentino)
 272                return 0;
 273
 274        parent = ceph_lookup_snap_realm(mdsc, parentino);
 275        if (!parent) {
 276                parent = ceph_create_snap_realm(mdsc, parentino);
 277                if (IS_ERR(parent))
 278                        return PTR_ERR(parent);
 279        }
 280        dout("adjust_snap_realm_parent %llx %p: %llx %p -> %llx %p\n",
 281             realm->ino, realm, realm->parent_ino, realm->parent,
 282             parentino, parent);
 283        if (realm->parent) {
 284                list_del_init(&realm->child_item);
 285                ceph_put_snap_realm(mdsc, realm->parent);
 286        }
 287        realm->parent_ino = parentino;
 288        realm->parent = parent;
 289        list_add(&realm->child_item, &parent->children);
 290        return 1;
 291}
 292
 293
 294static int cmpu64_rev(const void *a, const void *b)
 295{
 296        if (*(u64 *)a < *(u64 *)b)
 297                return 1;
 298        if (*(u64 *)a > *(u64 *)b)
 299                return -1;
 300        return 0;
 301}
 302
 303
 304/*
 305 * build the snap context for a given realm.
 306 */
 307static int build_snap_context(struct ceph_snap_realm *realm,
 308                              struct list_head* dirty_realms)
 309{
 310        struct ceph_snap_realm *parent = realm->parent;
 311        struct ceph_snap_context *snapc;
 312        int err = 0;
 313        u32 num = realm->num_prior_parent_snaps + realm->num_snaps;
 314
 315        /*
 316         * build parent context, if it hasn't been built.
 317         * conservatively estimate that all parent snaps might be
 318         * included by us.
 319         */
 320        if (parent) {
 321                if (!parent->cached_context) {
 322                        err = build_snap_context(parent, dirty_realms);
 323                        if (err)
 324                                goto fail;
 325                }
 326                num += parent->cached_context->num_snaps;
 327        }
 328
 329        /* do i actually need to update?  not if my context seq
 330           matches realm seq, and my parents' does to.  (this works
 331           because we rebuild_snap_realms() works _downward_ in
 332           hierarchy after each update.) */
 333        if (realm->cached_context &&
 334            realm->cached_context->seq == realm->seq &&
 335            (!parent ||
 336             realm->cached_context->seq >= parent->cached_context->seq)) {
 337                dout("build_snap_context %llx %p: %p seq %lld (%u snaps)"
 338                     " (unchanged)\n",
 339                     realm->ino, realm, realm->cached_context,
 340                     realm->cached_context->seq,
 341                     (unsigned int)realm->cached_context->num_snaps);
 342                return 0;
 343        }
 344
 345        /* alloc new snap context */
 346        err = -ENOMEM;
 347        if (num > (SIZE_MAX - sizeof(*snapc)) / sizeof(u64))
 348                goto fail;
 349        snapc = ceph_create_snap_context(num, GFP_NOFS);
 350        if (!snapc)
 351                goto fail;
 352
 353        /* build (reverse sorted) snap vector */
 354        num = 0;
 355        snapc->seq = realm->seq;
 356        if (parent) {
 357                u32 i;
 358
 359                /* include any of parent's snaps occurring _after_ my
 360                   parent became my parent */
 361                for (i = 0; i < parent->cached_context->num_snaps; i++)
 362                        if (parent->cached_context->snaps[i] >=
 363                            realm->parent_since)
 364                                snapc->snaps[num++] =
 365                                        parent->cached_context->snaps[i];
 366                if (parent->cached_context->seq > snapc->seq)
 367                        snapc->seq = parent->cached_context->seq;
 368        }
 369        memcpy(snapc->snaps + num, realm->snaps,
 370               sizeof(u64)*realm->num_snaps);
 371        num += realm->num_snaps;
 372        memcpy(snapc->snaps + num, realm->prior_parent_snaps,
 373               sizeof(u64)*realm->num_prior_parent_snaps);
 374        num += realm->num_prior_parent_snaps;
 375
 376        sort(snapc->snaps, num, sizeof(u64), cmpu64_rev, NULL);
 377        snapc->num_snaps = num;
 378        dout("build_snap_context %llx %p: %p seq %lld (%u snaps)\n",
 379             realm->ino, realm, snapc, snapc->seq,
 380             (unsigned int) snapc->num_snaps);
 381
 382        ceph_put_snap_context(realm->cached_context);
 383        realm->cached_context = snapc;
 384        /* queue realm for cap_snap creation */
 385        list_add_tail(&realm->dirty_item, dirty_realms);
 386        return 0;
 387
 388fail:
 389        /*
 390         * if we fail, clear old (incorrect) cached_context... hopefully
 391         * we'll have better luck building it later
 392         */
 393        if (realm->cached_context) {
 394                ceph_put_snap_context(realm->cached_context);
 395                realm->cached_context = NULL;
 396        }
 397        pr_err("build_snap_context %llx %p fail %d\n", realm->ino,
 398               realm, err);
 399        return err;
 400}
 401
 402/*
 403 * rebuild snap context for the given realm and all of its children.
 404 */
 405static void rebuild_snap_realms(struct ceph_snap_realm *realm,
 406                                struct list_head *dirty_realms)
 407{
 408        struct ceph_snap_realm *child;
 409
 410        dout("rebuild_snap_realms %llx %p\n", realm->ino, realm);
 411        build_snap_context(realm, dirty_realms);
 412
 413        list_for_each_entry(child, &realm->children, child_item)
 414                rebuild_snap_realms(child, dirty_realms);
 415}
 416
 417
 418/*
 419 * helper to allocate and decode an array of snapids.  free prior
 420 * instance, if any.
 421 */
 422static int dup_array(u64 **dst, __le64 *src, u32 num)
 423{
 424        u32 i;
 425
 426        kfree(*dst);
 427        if (num) {
 428                *dst = kcalloc(num, sizeof(u64), GFP_NOFS);
 429                if (!*dst)
 430                        return -ENOMEM;
 431                for (i = 0; i < num; i++)
 432                        (*dst)[i] = get_unaligned_le64(src + i);
 433        } else {
 434                *dst = NULL;
 435        }
 436        return 0;
 437}
 438
 439static bool has_new_snaps(struct ceph_snap_context *o,
 440                          struct ceph_snap_context *n)
 441{
 442        if (n->num_snaps == 0)
 443                return false;
 444        /* snaps are in descending order */
 445        return n->snaps[0] > o->seq;
 446}
 447
 448/*
 449 * When a snapshot is applied, the size/mtime inode metadata is queued
 450 * in a ceph_cap_snap (one for each snapshot) until writeback
 451 * completes and the metadata can be flushed back to the MDS.
 452 *
 453 * However, if a (sync) write is currently in-progress when we apply
 454 * the snapshot, we have to wait until the write succeeds or fails
 455 * (and a final size/mtime is known).  In this case the
 456 * cap_snap->writing = 1, and is said to be "pending."  When the write
 457 * finishes, we __ceph_finish_cap_snap().
 458 *
 459 * Caller must hold snap_rwsem for read (i.e., the realm topology won't
 460 * change).
 461 */
 462void ceph_queue_cap_snap(struct ceph_inode_info *ci)
 463{
 464        struct inode *inode = &ci->vfs_inode;
 465        struct ceph_cap_snap *capsnap;
 466        struct ceph_snap_context *old_snapc, *new_snapc;
 467        int used, dirty;
 468
 469        capsnap = kzalloc(sizeof(*capsnap), GFP_NOFS);
 470        if (!capsnap) {
 471                pr_err("ENOMEM allocating ceph_cap_snap on %p\n", inode);
 472                return;
 473        }
 474
 475        spin_lock(&ci->i_ceph_lock);
 476        used = __ceph_caps_used(ci);
 477        dirty = __ceph_caps_dirty(ci);
 478
 479        old_snapc = ci->i_head_snapc;
 480        new_snapc = ci->i_snap_realm->cached_context;
 481
 482        /*
 483         * If there is a write in progress, treat that as a dirty Fw,
 484         * even though it hasn't completed yet; by the time we finish
 485         * up this capsnap it will be.
 486         */
 487        if (used & CEPH_CAP_FILE_WR)
 488                dirty |= CEPH_CAP_FILE_WR;
 489
 490        if (__ceph_have_pending_cap_snap(ci)) {
 491                /* there is no point in queuing multiple "pending" cap_snaps,
 492                   as no new writes are allowed to start when pending, so any
 493                   writes in progress now were started before the previous
 494                   cap_snap.  lucky us. */
 495                dout("queue_cap_snap %p already pending\n", inode);
 496                goto update_snapc;
 497        }
 498        if (ci->i_wrbuffer_ref_head == 0 &&
 499            !(dirty & (CEPH_CAP_ANY_EXCL|CEPH_CAP_FILE_WR))) {
 500                dout("queue_cap_snap %p nothing dirty|writing\n", inode);
 501                goto update_snapc;
 502        }
 503
 504        BUG_ON(!old_snapc);
 505
 506        /*
 507         * There is no need to send FLUSHSNAP message to MDS if there is
 508         * no new snapshot. But when there is dirty pages or on-going
 509         * writes, we still need to create cap_snap. cap_snap is needed
 510         * by the write path and page writeback path.
 511         *
 512         * also see ceph_try_drop_cap_snap()
 513         */
 514        if (has_new_snaps(old_snapc, new_snapc)) {
 515                if (dirty & (CEPH_CAP_ANY_EXCL|CEPH_CAP_FILE_WR))
 516                        capsnap->need_flush = true;
 517        } else {
 518                if (!(used & CEPH_CAP_FILE_WR) &&
 519                    ci->i_wrbuffer_ref_head == 0) {
 520                        dout("queue_cap_snap %p "
 521                             "no new_snap|dirty_page|writing\n", inode);
 522                        goto update_snapc;
 523                }
 524        }
 525
 526        dout("queue_cap_snap %p cap_snap %p queuing under %p %s %s\n",
 527             inode, capsnap, old_snapc, ceph_cap_string(dirty),
 528             capsnap->need_flush ? "" : "no_flush");
 529        ihold(inode);
 530
 531        refcount_set(&capsnap->nref, 1);
 532        INIT_LIST_HEAD(&capsnap->ci_item);
 533
 534        capsnap->follows = old_snapc->seq;
 535        capsnap->issued = __ceph_caps_issued(ci, NULL);
 536        capsnap->dirty = dirty;
 537
 538        capsnap->mode = inode->i_mode;
 539        capsnap->uid = inode->i_uid;
 540        capsnap->gid = inode->i_gid;
 541
 542        if (dirty & CEPH_CAP_XATTR_EXCL) {
 543                __ceph_build_xattrs_blob(ci);
 544                capsnap->xattr_blob =
 545                        ceph_buffer_get(ci->i_xattrs.blob);
 546                capsnap->xattr_version = ci->i_xattrs.version;
 547        } else {
 548                capsnap->xattr_blob = NULL;
 549                capsnap->xattr_version = 0;
 550        }
 551
 552        capsnap->inline_data = ci->i_inline_version != CEPH_INLINE_NONE;
 553
 554        /* dirty page count moved from _head to this cap_snap;
 555           all subsequent writes page dirties occur _after_ this
 556           snapshot. */
 557        capsnap->dirty_pages = ci->i_wrbuffer_ref_head;
 558        ci->i_wrbuffer_ref_head = 0;
 559        capsnap->context = old_snapc;
 560        list_add_tail(&capsnap->ci_item, &ci->i_cap_snaps);
 561
 562        if (used & CEPH_CAP_FILE_WR) {
 563                dout("queue_cap_snap %p cap_snap %p snapc %p"
 564                     " seq %llu used WR, now pending\n", inode,
 565                     capsnap, old_snapc, old_snapc->seq);
 566                capsnap->writing = 1;
 567        } else {
 568                /* note mtime, size NOW. */
 569                __ceph_finish_cap_snap(ci, capsnap);
 570        }
 571        capsnap = NULL;
 572        old_snapc = NULL;
 573
 574update_snapc:
 575       if (ci->i_wrbuffer_ref_head == 0 &&
 576           ci->i_wr_ref == 0 &&
 577           ci->i_dirty_caps == 0 &&
 578           ci->i_flushing_caps == 0) {
 579               ci->i_head_snapc = NULL;
 580       } else {
 581                ci->i_head_snapc = ceph_get_snap_context(new_snapc);
 582                dout(" new snapc is %p\n", new_snapc);
 583        }
 584        spin_unlock(&ci->i_ceph_lock);
 585
 586        kfree(capsnap);
 587        ceph_put_snap_context(old_snapc);
 588}
 589
 590/*
 591 * Finalize the size, mtime for a cap_snap.. that is, settle on final values
 592 * to be used for the snapshot, to be flushed back to the mds.
 593 *
 594 * If capsnap can now be flushed, add to snap_flush list, and return 1.
 595 *
 596 * Caller must hold i_ceph_lock.
 597 */
 598int __ceph_finish_cap_snap(struct ceph_inode_info *ci,
 599                            struct ceph_cap_snap *capsnap)
 600{
 601        struct inode *inode = &ci->vfs_inode;
 602        struct ceph_mds_client *mdsc = ceph_sb_to_client(inode->i_sb)->mdsc;
 603
 604        BUG_ON(capsnap->writing);
 605        capsnap->size = inode->i_size;
 606        capsnap->mtime = inode->i_mtime;
 607        capsnap->atime = inode->i_atime;
 608        capsnap->ctime = inode->i_ctime;
 609        capsnap->time_warp_seq = ci->i_time_warp_seq;
 610        capsnap->truncate_size = ci->i_truncate_size;
 611        capsnap->truncate_seq = ci->i_truncate_seq;
 612        if (capsnap->dirty_pages) {
 613                dout("finish_cap_snap %p cap_snap %p snapc %p %llu %s s=%llu "
 614                     "still has %d dirty pages\n", inode, capsnap,
 615                     capsnap->context, capsnap->context->seq,
 616                     ceph_cap_string(capsnap->dirty), capsnap->size,
 617                     capsnap->dirty_pages);
 618                return 0;
 619        }
 620
 621        ci->i_ceph_flags |= CEPH_I_FLUSH_SNAPS;
 622        dout("finish_cap_snap %p cap_snap %p snapc %p %llu %s s=%llu\n",
 623             inode, capsnap, capsnap->context,
 624             capsnap->context->seq, ceph_cap_string(capsnap->dirty),
 625             capsnap->size);
 626
 627        spin_lock(&mdsc->snap_flush_lock);
 628        if (list_empty(&ci->i_snap_flush_item))
 629                list_add_tail(&ci->i_snap_flush_item, &mdsc->snap_flush_list);
 630        spin_unlock(&mdsc->snap_flush_lock);
 631        return 1;  /* caller may want to ceph_flush_snaps */
 632}
 633
 634/*
 635 * Queue cap_snaps for snap writeback for this realm and its children.
 636 * Called under snap_rwsem, so realm topology won't change.
 637 */
 638static void queue_realm_cap_snaps(struct ceph_snap_realm *realm)
 639{
 640        struct ceph_inode_info *ci;
 641        struct inode *lastinode = NULL;
 642
 643        dout("queue_realm_cap_snaps %p %llx inodes\n", realm, realm->ino);
 644
 645        spin_lock(&realm->inodes_with_caps_lock);
 646        list_for_each_entry(ci, &realm->inodes_with_caps, i_snap_realm_item) {
 647                struct inode *inode = igrab(&ci->vfs_inode);
 648                if (!inode)
 649                        continue;
 650                spin_unlock(&realm->inodes_with_caps_lock);
 651                iput(lastinode);
 652                lastinode = inode;
 653                ceph_queue_cap_snap(ci);
 654                spin_lock(&realm->inodes_with_caps_lock);
 655        }
 656        spin_unlock(&realm->inodes_with_caps_lock);
 657        iput(lastinode);
 658
 659        dout("queue_realm_cap_snaps %p %llx done\n", realm, realm->ino);
 660}
 661
 662/*
 663 * Parse and apply a snapblob "snap trace" from the MDS.  This specifies
 664 * the snap realm parameters from a given realm and all of its ancestors,
 665 * up to the root.
 666 *
 667 * Caller must hold snap_rwsem for write.
 668 */
 669int ceph_update_snap_trace(struct ceph_mds_client *mdsc,
 670                           void *p, void *e, bool deletion,
 671                           struct ceph_snap_realm **realm_ret)
 672{
 673        struct ceph_mds_snap_realm *ri;    /* encoded */
 674        __le64 *snaps;                     /* encoded */
 675        __le64 *prior_parent_snaps;        /* encoded */
 676        struct ceph_snap_realm *realm = NULL;
 677        struct ceph_snap_realm *first_realm = NULL;
 678        int invalidate = 0;
 679        int err = -ENOMEM;
 680        LIST_HEAD(dirty_realms);
 681
 682        dout("update_snap_trace deletion=%d\n", deletion);
 683more:
 684        ceph_decode_need(&p, e, sizeof(*ri), bad);
 685        ri = p;
 686        p += sizeof(*ri);
 687        ceph_decode_need(&p, e, sizeof(u64)*(le32_to_cpu(ri->num_snaps) +
 688                            le32_to_cpu(ri->num_prior_parent_snaps)), bad);
 689        snaps = p;
 690        p += sizeof(u64) * le32_to_cpu(ri->num_snaps);
 691        prior_parent_snaps = p;
 692        p += sizeof(u64) * le32_to_cpu(ri->num_prior_parent_snaps);
 693
 694        realm = ceph_lookup_snap_realm(mdsc, le64_to_cpu(ri->ino));
 695        if (!realm) {
 696                realm = ceph_create_snap_realm(mdsc, le64_to_cpu(ri->ino));
 697                if (IS_ERR(realm)) {
 698                        err = PTR_ERR(realm);
 699                        goto fail;
 700                }
 701        }
 702
 703        /* ensure the parent is correct */
 704        err = adjust_snap_realm_parent(mdsc, realm, le64_to_cpu(ri->parent));
 705        if (err < 0)
 706                goto fail;
 707        invalidate += err;
 708
 709        if (le64_to_cpu(ri->seq) > realm->seq) {
 710                dout("update_snap_trace updating %llx %p %lld -> %lld\n",
 711                     realm->ino, realm, realm->seq, le64_to_cpu(ri->seq));
 712                /* update realm parameters, snap lists */
 713                realm->seq = le64_to_cpu(ri->seq);
 714                realm->created = le64_to_cpu(ri->created);
 715                realm->parent_since = le64_to_cpu(ri->parent_since);
 716
 717                realm->num_snaps = le32_to_cpu(ri->num_snaps);
 718                err = dup_array(&realm->snaps, snaps, realm->num_snaps);
 719                if (err < 0)
 720                        goto fail;
 721
 722                realm->num_prior_parent_snaps =
 723                        le32_to_cpu(ri->num_prior_parent_snaps);
 724                err = dup_array(&realm->prior_parent_snaps, prior_parent_snaps,
 725                                realm->num_prior_parent_snaps);
 726                if (err < 0)
 727                        goto fail;
 728
 729                if (realm->seq > mdsc->last_snap_seq)
 730                        mdsc->last_snap_seq = realm->seq;
 731
 732                invalidate = 1;
 733        } else if (!realm->cached_context) {
 734                dout("update_snap_trace %llx %p seq %lld new\n",
 735                     realm->ino, realm, realm->seq);
 736                invalidate = 1;
 737        } else {
 738                dout("update_snap_trace %llx %p seq %lld unchanged\n",
 739                     realm->ino, realm, realm->seq);
 740        }
 741
 742        dout("done with %llx %p, invalidated=%d, %p %p\n", realm->ino,
 743             realm, invalidate, p, e);
 744
 745        /* invalidate when we reach the _end_ (root) of the trace */
 746        if (invalidate && p >= e)
 747                rebuild_snap_realms(realm, &dirty_realms);
 748
 749        if (!first_realm)
 750                first_realm = realm;
 751        else
 752                ceph_put_snap_realm(mdsc, realm);
 753
 754        if (p < e)
 755                goto more;
 756
 757        /*
 758         * queue cap snaps _after_ we've built the new snap contexts,
 759         * so that i_head_snapc can be set appropriately.
 760         */
 761        while (!list_empty(&dirty_realms)) {
 762                realm = list_first_entry(&dirty_realms, struct ceph_snap_realm,
 763                                         dirty_item);
 764                list_del_init(&realm->dirty_item);
 765                queue_realm_cap_snaps(realm);
 766        }
 767
 768        if (realm_ret)
 769                *realm_ret = first_realm;
 770        else
 771                ceph_put_snap_realm(mdsc, first_realm);
 772
 773        __cleanup_empty_realms(mdsc);
 774        return 0;
 775
 776bad:
 777        err = -EINVAL;
 778fail:
 779        if (realm && !IS_ERR(realm))
 780                ceph_put_snap_realm(mdsc, realm);
 781        if (first_realm)
 782                ceph_put_snap_realm(mdsc, first_realm);
 783        pr_err("update_snap_trace error %d\n", err);
 784        return err;
 785}
 786
 787
 788/*
 789 * Send any cap_snaps that are queued for flush.  Try to carry
 790 * s_mutex across multiple snap flushes to avoid locking overhead.
 791 *
 792 * Caller holds no locks.
 793 */
 794static void flush_snaps(struct ceph_mds_client *mdsc)
 795{
 796        struct ceph_inode_info *ci;
 797        struct inode *inode;
 798        struct ceph_mds_session *session = NULL;
 799
 800        dout("flush_snaps\n");
 801        spin_lock(&mdsc->snap_flush_lock);
 802        while (!list_empty(&mdsc->snap_flush_list)) {
 803                ci = list_first_entry(&mdsc->snap_flush_list,
 804                                struct ceph_inode_info, i_snap_flush_item);
 805                inode = &ci->vfs_inode;
 806                ihold(inode);
 807                spin_unlock(&mdsc->snap_flush_lock);
 808                ceph_flush_snaps(ci, &session);
 809                iput(inode);
 810                spin_lock(&mdsc->snap_flush_lock);
 811        }
 812        spin_unlock(&mdsc->snap_flush_lock);
 813
 814        if (session) {
 815                mutex_unlock(&session->s_mutex);
 816                ceph_put_mds_session(session);
 817        }
 818        dout("flush_snaps done\n");
 819}
 820
 821
 822/*
 823 * Handle a snap notification from the MDS.
 824 *
 825 * This can take two basic forms: the simplest is just a snap creation
 826 * or deletion notification on an existing realm.  This should update the
 827 * realm and its children.
 828 *
 829 * The more difficult case is realm creation, due to snap creation at a
 830 * new point in the file hierarchy, or due to a rename that moves a file or
 831 * directory into another realm.
 832 */
 833void ceph_handle_snap(struct ceph_mds_client *mdsc,
 834                      struct ceph_mds_session *session,
 835                      struct ceph_msg *msg)
 836{
 837        struct super_block *sb = mdsc->fsc->sb;
 838        int mds = session->s_mds;
 839        u64 split;
 840        int op;
 841        int trace_len;
 842        struct ceph_snap_realm *realm = NULL;
 843        void *p = msg->front.iov_base;
 844        void *e = p + msg->front.iov_len;
 845        struct ceph_mds_snap_head *h;
 846        int num_split_inos, num_split_realms;
 847        __le64 *split_inos = NULL, *split_realms = NULL;
 848        int i;
 849        int locked_rwsem = 0;
 850
 851        /* decode */
 852        if (msg->front.iov_len < sizeof(*h))
 853                goto bad;
 854        h = p;
 855        op = le32_to_cpu(h->op);
 856        split = le64_to_cpu(h->split);   /* non-zero if we are splitting an
 857                                          * existing realm */
 858        num_split_inos = le32_to_cpu(h->num_split_inos);
 859        num_split_realms = le32_to_cpu(h->num_split_realms);
 860        trace_len = le32_to_cpu(h->trace_len);
 861        p += sizeof(*h);
 862
 863        dout("handle_snap from mds%d op %s split %llx tracelen %d\n", mds,
 864             ceph_snap_op_name(op), split, trace_len);
 865
 866        mutex_lock(&session->s_mutex);
 867        session->s_seq++;
 868        mutex_unlock(&session->s_mutex);
 869
 870        down_write(&mdsc->snap_rwsem);
 871        locked_rwsem = 1;
 872
 873        if (op == CEPH_SNAP_OP_SPLIT) {
 874                struct ceph_mds_snap_realm *ri;
 875
 876                /*
 877                 * A "split" breaks part of an existing realm off into
 878                 * a new realm.  The MDS provides a list of inodes
 879                 * (with caps) and child realms that belong to the new
 880                 * child.
 881                 */
 882                split_inos = p;
 883                p += sizeof(u64) * num_split_inos;
 884                split_realms = p;
 885                p += sizeof(u64) * num_split_realms;
 886                ceph_decode_need(&p, e, sizeof(*ri), bad);
 887                /* we will peek at realm info here, but will _not_
 888                 * advance p, as the realm update will occur below in
 889                 * ceph_update_snap_trace. */
 890                ri = p;
 891
 892                realm = ceph_lookup_snap_realm(mdsc, split);
 893                if (!realm) {
 894                        realm = ceph_create_snap_realm(mdsc, split);
 895                        if (IS_ERR(realm))
 896                                goto out;
 897                }
 898
 899                dout("splitting snap_realm %llx %p\n", realm->ino, realm);
 900                for (i = 0; i < num_split_inos; i++) {
 901                        struct ceph_vino vino = {
 902                                .ino = le64_to_cpu(split_inos[i]),
 903                                .snap = CEPH_NOSNAP,
 904                        };
 905                        struct inode *inode = ceph_find_inode(sb, vino);
 906                        struct ceph_inode_info *ci;
 907                        struct ceph_snap_realm *oldrealm;
 908
 909                        if (!inode)
 910                                continue;
 911                        ci = ceph_inode(inode);
 912
 913                        spin_lock(&ci->i_ceph_lock);
 914                        if (!ci->i_snap_realm)
 915                                goto skip_inode;
 916                        /*
 917                         * If this inode belongs to a realm that was
 918                         * created after our new realm, we experienced
 919                         * a race (due to another split notifications
 920                         * arriving from a different MDS).  So skip
 921                         * this inode.
 922                         */
 923                        if (ci->i_snap_realm->created >
 924                            le64_to_cpu(ri->created)) {
 925                                dout(" leaving %p in newer realm %llx %p\n",
 926                                     inode, ci->i_snap_realm->ino,
 927                                     ci->i_snap_realm);
 928                                goto skip_inode;
 929                        }
 930                        dout(" will move %p to split realm %llx %p\n",
 931                             inode, realm->ino, realm);
 932                        /*
 933                         * Move the inode to the new realm
 934                         */
 935                        oldrealm = ci->i_snap_realm;
 936                        spin_lock(&oldrealm->inodes_with_caps_lock);
 937                        list_del_init(&ci->i_snap_realm_item);
 938                        spin_unlock(&oldrealm->inodes_with_caps_lock);
 939
 940                        spin_lock(&realm->inodes_with_caps_lock);
 941                        list_add(&ci->i_snap_realm_item,
 942                                 &realm->inodes_with_caps);
 943                        ci->i_snap_realm = realm;
 944                        if (realm->ino == ci->i_vino.ino)
 945                                realm->inode = inode;
 946                        spin_unlock(&realm->inodes_with_caps_lock);
 947
 948                        spin_unlock(&ci->i_ceph_lock);
 949
 950                        ceph_get_snap_realm(mdsc, realm);
 951                        ceph_put_snap_realm(mdsc, oldrealm);
 952
 953                        iput(inode);
 954                        continue;
 955
 956skip_inode:
 957                        spin_unlock(&ci->i_ceph_lock);
 958                        iput(inode);
 959                }
 960
 961                /* we may have taken some of the old realm's children. */
 962                for (i = 0; i < num_split_realms; i++) {
 963                        struct ceph_snap_realm *child =
 964                                __lookup_snap_realm(mdsc,
 965                                           le64_to_cpu(split_realms[i]));
 966                        if (!child)
 967                                continue;
 968                        adjust_snap_realm_parent(mdsc, child, realm->ino);
 969                }
 970        }
 971
 972        /*
 973         * update using the provided snap trace. if we are deleting a
 974         * snap, we can avoid queueing cap_snaps.
 975         */
 976        ceph_update_snap_trace(mdsc, p, e,
 977                               op == CEPH_SNAP_OP_DESTROY, NULL);
 978
 979        if (op == CEPH_SNAP_OP_SPLIT)
 980                /* we took a reference when we created the realm, above */
 981                ceph_put_snap_realm(mdsc, realm);
 982
 983        __cleanup_empty_realms(mdsc);
 984
 985        up_write(&mdsc->snap_rwsem);
 986
 987        flush_snaps(mdsc);
 988        return;
 989
 990bad:
 991        pr_err("corrupt snap message from mds%d\n", mds);
 992        ceph_msg_dump(msg);
 993out:
 994        if (locked_rwsem)
 995                up_write(&mdsc->snap_rwsem);
 996        return;
 997}
 998
 999struct ceph_snapid_map* ceph_get_snapid_map(struct ceph_mds_client *mdsc,
1000                                            u64 snap)
1001{
1002        struct ceph_snapid_map *sm, *exist;
1003        struct rb_node **p, *parent;
1004        int ret;
1005
1006        exist = NULL;
1007        spin_lock(&mdsc->snapid_map_lock);
1008        p = &mdsc->snapid_map_tree.rb_node;
1009        while (*p) {
1010                exist = rb_entry(*p, struct ceph_snapid_map, node);
1011                if (snap > exist->snap) {
1012                        p = &(*p)->rb_left;
1013                } else if (snap < exist->snap) {
1014                        p = &(*p)->rb_right;
1015                } else {
1016                        if (atomic_inc_return(&exist->ref) == 1)
1017                                list_del_init(&exist->lru);
1018                        break;
1019                }
1020                exist = NULL;
1021        }
1022        spin_unlock(&mdsc->snapid_map_lock);
1023        if (exist) {
1024                dout("found snapid map %llx -> %x\n", exist->snap, exist->dev);
1025                return exist;
1026        }
1027
1028        sm = kmalloc(sizeof(*sm), GFP_NOFS);
1029        if (!sm)
1030                return NULL;
1031
1032        ret = get_anon_bdev(&sm->dev);
1033        if (ret < 0) {
1034                kfree(sm);
1035                return NULL;
1036        }
1037
1038        INIT_LIST_HEAD(&sm->lru);
1039        atomic_set(&sm->ref, 1);
1040        sm->snap = snap;
1041
1042        exist = NULL;
1043        parent = NULL;
1044        p = &mdsc->snapid_map_tree.rb_node;
1045        spin_lock(&mdsc->snapid_map_lock);
1046        while (*p) {
1047                parent = *p;
1048                exist = rb_entry(*p, struct ceph_snapid_map, node);
1049                if (snap > exist->snap)
1050                        p = &(*p)->rb_left;
1051                else if (snap < exist->snap)
1052                        p = &(*p)->rb_right;
1053                else
1054                        break;
1055                exist = NULL;
1056        }
1057        if (exist) {
1058                if (atomic_inc_return(&exist->ref) == 1)
1059                        list_del_init(&exist->lru);
1060        } else {
1061                rb_link_node(&sm->node, parent, p);
1062                rb_insert_color(&sm->node, &mdsc->snapid_map_tree);
1063        }
1064        spin_unlock(&mdsc->snapid_map_lock);
1065        if (exist) {
1066                free_anon_bdev(sm->dev);
1067                kfree(sm);
1068                dout("found snapid map %llx -> %x\n", exist->snap, exist->dev);
1069                return exist;
1070        }
1071
1072        dout("create snapid map %llx -> %x\n", sm->snap, sm->dev);
1073        return sm;
1074}
1075
1076void ceph_put_snapid_map(struct ceph_mds_client* mdsc,
1077                         struct ceph_snapid_map *sm)
1078{
1079        if (!sm)
1080                return;
1081        if (atomic_dec_and_lock(&sm->ref, &mdsc->snapid_map_lock)) {
1082                if (!RB_EMPTY_NODE(&sm->node)) {
1083                        sm->last_used = jiffies;
1084                        list_add_tail(&sm->lru, &mdsc->snapid_map_lru);
1085                        spin_unlock(&mdsc->snapid_map_lock);
1086                } else {
1087                        /* already cleaned up by
1088                         * ceph_cleanup_snapid_map() */
1089                        spin_unlock(&mdsc->snapid_map_lock);
1090                        kfree(sm);
1091                }
1092        }
1093}
1094
1095void ceph_trim_snapid_map(struct ceph_mds_client *mdsc)
1096{
1097        struct ceph_snapid_map *sm;
1098        unsigned long now;
1099        LIST_HEAD(to_free);
1100
1101        spin_lock(&mdsc->snapid_map_lock);
1102        now = jiffies;
1103
1104        while (!list_empty(&mdsc->snapid_map_lru)) {
1105                sm = list_first_entry(&mdsc->snapid_map_lru,
1106                                      struct ceph_snapid_map, lru);
1107                if (time_after(sm->last_used + CEPH_SNAPID_MAP_TIMEOUT, now))
1108                        break;
1109
1110                rb_erase(&sm->node, &mdsc->snapid_map_tree);
1111                list_move(&sm->lru, &to_free);
1112        }
1113        spin_unlock(&mdsc->snapid_map_lock);
1114
1115        while (!list_empty(&to_free)) {
1116                sm = list_first_entry(&to_free, struct ceph_snapid_map, lru);
1117                list_del(&sm->lru);
1118                dout("trim snapid map %llx -> %x\n", sm->snap, sm->dev);
1119                free_anon_bdev(sm->dev);
1120                kfree(sm);
1121        }
1122}
1123
1124void ceph_cleanup_snapid_map(struct ceph_mds_client *mdsc)
1125{
1126        struct ceph_snapid_map *sm;
1127        struct rb_node *p;
1128        LIST_HEAD(to_free);
1129
1130        spin_lock(&mdsc->snapid_map_lock);
1131        while ((p = rb_first(&mdsc->snapid_map_tree))) {
1132                sm = rb_entry(p, struct ceph_snapid_map, node);
1133                rb_erase(p, &mdsc->snapid_map_tree);
1134                RB_CLEAR_NODE(p);
1135                list_move(&sm->lru, &to_free);
1136        }
1137        spin_unlock(&mdsc->snapid_map_lock);
1138
1139        while (!list_empty(&to_free)) {
1140                sm = list_first_entry(&to_free, struct ceph_snapid_map, lru);
1141                list_del(&sm->lru);
1142                free_anon_bdev(sm->dev);
1143                if (WARN_ON_ONCE(atomic_read(&sm->ref))) {
1144                        pr_err("snapid map %llx -> %x still in use\n",
1145                               sm->snap, sm->dev);
1146                }
1147        }
1148}
1149