Files
seaweedfs/weed/storage/volume.go
T
Chris LuandGitHub 0ae1fdcad2 volume: reload a remote-tiered volume without re-entering the data lock (#10266)
LoadRemoteFile now takes dataFileAccessLock (so a live tier upload does
not race the heartbeat's DataBackend read). But load() also runs it, and
CommitCompact calls load() while already holding that lock, so reloading
a remote-tiered volume during a compaction commit re-enters the
non-reentrant lock and deadlocks.

Split the locked bodies out: swapDataBackendLocked and loadRemoteFileLocked
assume the caller holds dataFileAccessLock. load() uses loadRemoteFileLocked;
the public LoadRemoteFile keeps taking the lock for the live tier-upload
handler that does not hold it.
2026-07-08 01:27:10 -07:00

492 lines
16 KiB
Go

package storage
import (
"fmt"
"os"
"path"
"strconv"
"sync"
"sync/atomic"
"time"
"github.com/seaweedfs/seaweedfs/weed/pb/master_pb"
"github.com/seaweedfs/seaweedfs/weed/pb/volume_server_pb"
"github.com/seaweedfs/seaweedfs/weed/stats"
"github.com/seaweedfs/seaweedfs/weed/storage/backend"
"github.com/seaweedfs/seaweedfs/weed/storage/needle"
"github.com/seaweedfs/seaweedfs/weed/storage/super_block"
"github.com/seaweedfs/seaweedfs/weed/storage/types"
"github.com/seaweedfs/seaweedfs/weed/glog"
)
type Volume struct {
Id needle.VolumeId
dir string
dirIdx string
Collection string
DataBackend backend.BackendStorageFile
nm NeedleMapper
tmpNm TempNeedleMapper
needleMapKind NeedleMapKind
noWriteOrDelete bool // if readonly, either noWriteOrDelete or noWriteCanDelete
noWriteCanDelete bool // if readonly, either noWriteOrDelete or noWriteCanDelete
noWriteLock sync.RWMutex
hasRemoteFile atomic.Bool // if the volume is tiered: data lives in a remote backend
MemoryMapMaxSizeMb uint32
super_block.SuperBlock
dataFileAccessLock sync.RWMutex
superBlockAccessLock sync.Mutex
asyncRequestsChan chan *needle.AsyncRequest
lastModifiedTsSeconds uint64 // unix time in seconds
lastAppendAtNs uint64 // unix time in nanoseconds
lastCompactIndexOffset uint64
lastCompactRevision uint16
ldbTimeout int64
isCompactionInProgress atomic.Bool
lastDiskCheckNs atomic.Int64 // unix time in nanoseconds for phantom volume detection
volumeInfoRWLock sync.RWMutex
volumeInfo *volume_server_pb.VolumeInfo
location *DiskLocation
diskId uint32 // ID of this volume's disk in Store.Locations array
// lastIoError is the most recent EIO from a read/write/delete; cleared
// on the next successful or non-EIO op. lastIoErrorCount tracks
// consecutive EIOs so CollectHeartbeat can require a sustained failure
// before unmounting the replica — protects against a transient
// hardware/network blip hitting multiple replicas at once and
// stranding the only good copy.
//
// ioErrorQuarantined is sticky: once CollectHeartbeat sees the streak
// cross IoErrorTolerance it sets this and never clears it on its own.
// A subsequent successful read clears the streak counter but must NOT
// un-quarantine the volume — only MarkVolumeWritable does that, after
// an operator has decided the disk is healthy. Without the sticky
// bit, one good read between heartbeats would silently put a known-
// bad replica back into rotation.
//
// All four fields are guarded together so the heartbeat reader sees
// a consistent snapshot.
lastIoError error
lastIoErrorCount int32
ioErrorQuarantined bool
lastIoErrorLock sync.RWMutex
}
// noteIoError records an EIO and increments the consecutive-error
// counter. Caller has already verified errors.Is(err, syscall.EIO).
func (v *Volume) noteIoError(err error) {
v.lastIoErrorLock.Lock()
defer v.lastIoErrorLock.Unlock()
v.lastIoError = err
v.lastIoErrorCount++
}
// clearIoError resets the EIO streak counter only. The sticky quarantine
// bit set by CollectHeartbeat is intentionally left alone — recovery is
// an operator decision via MarkVolumeWritable. Called on any successful
// op or on a non-EIO error (which still breaks the EIO streak; only
// sustained EIOs are diagnostic of a failing volume).
func (v *Volume) clearIoError() {
v.lastIoErrorLock.Lock()
defer v.lastIoErrorLock.Unlock()
v.lastIoError = nil
v.lastIoErrorCount = 0
}
// resetIoErrorState clears both the EIO streak and the sticky quarantine
// flag. Used by MarkVolumeWritable to rejoin a previously-quarantined
// replica; if the disk is still bad, the next failed op re-arms the
// streak.
func (v *Volume) resetIoErrorState() {
v.lastIoErrorLock.Lock()
defer v.lastIoErrorLock.Unlock()
v.lastIoError = nil
v.lastIoErrorCount = 0
v.ioErrorQuarantined = false
}
// markIoQuarantined sets the sticky quarantine flag. Idempotent; safe
// to call from CollectHeartbeat each pass while the volume remains
// quarantined.
func (v *Volume) markIoQuarantined() {
v.lastIoErrorLock.Lock()
defer v.lastIoErrorLock.Unlock()
v.ioErrorQuarantined = true
}
// getIoErrorState returns the latest EIO, the consecutive-EIO count,
// and the sticky quarantine flag as one consistent snapshot.
func (v *Volume) getIoErrorState() (error, int32, bool) {
v.lastIoErrorLock.RLock()
defer v.lastIoErrorLock.RUnlock()
return v.lastIoError, v.lastIoErrorCount, v.ioErrorQuarantined
}
func NewVolume(dirname string, dirIdx string, collection string, id needle.VolumeId, needleMapKind NeedleMapKind, replicaPlacement *super_block.ReplicaPlacement, ttl *needle.TTL, preallocate int64, ver needle.Version, memoryMapMaxSizeMb uint32, ldbTimeout int64) (v *Volume, e error) {
// if replicaPlacement is nil, the superblock will be loaded from disk
v = &Volume{dir: dirname, dirIdx: dirIdx, Collection: collection, Id: id, MemoryMapMaxSizeMb: memoryMapMaxSizeMb,
asyncRequestsChan: make(chan *needle.AsyncRequest, 128)}
v.SuperBlock = super_block.SuperBlock{ReplicaPlacement: replicaPlacement, Ttl: ttl}
v.needleMapKind = needleMapKind
v.ldbTimeout = ldbTimeout
e = v.load(true, true, needleMapKind, preallocate, ver)
v.startWorker()
return
}
func (v *Volume) String() string {
v.noWriteLock.RLock()
defer v.noWriteLock.RUnlock()
return fmt.Sprintf("Id:%v dir:%s dirIdx:%s Collection:%s dataFile:%v nm:%v noWrite:%v canDelete:%v", v.Id, v.dir, v.dirIdx, v.Collection, v.DataBackend, v.nm, v.noWriteOrDelete || v.noWriteCanDelete, v.noWriteCanDelete)
}
func VolumeFileName(dir string, collection string, id int) (fileName string) {
idString := strconv.Itoa(id)
if collection == "" {
fileName = path.Join(dir, idString)
} else {
fileName = path.Join(dir, collection+"_"+idString)
}
return
}
func (v *Volume) DataFileName() (fileName string) {
return VolumeFileName(v.dir, v.Collection, int(v.Id))
}
func (v *Volume) IndexFileName() (fileName string) {
return VolumeFileName(v.dirIdx, v.Collection, int(v.Id))
}
func (v *Volume) FileName(ext string) (fileName string) {
switch ext {
case ".idx", ".cpx", ".ldb", ".cpldb", ".rdb":
return VolumeFileName(v.dirIdx, v.Collection, int(v.Id)) + ext
}
// .dat, .cpd, .vif
return VolumeFileName(v.dir, v.Collection, int(v.Id)) + ext
}
func (v *Volume) Version() needle.Version {
v.superBlockAccessLock.Lock()
defer v.superBlockAccessLock.Unlock()
if v.volumeInfo.Version != 0 {
v.SuperBlock.Version = needle.Version(v.volumeInfo.Version)
}
return v.SuperBlock.Version
}
func (v *Volume) FileStat() (datSize uint64, idxSize uint64, modTime time.Time) {
v.dataFileAccessLock.RLock()
defer v.dataFileAccessLock.RUnlock()
if v.DataBackend == nil {
return
}
datFileSize, modTime, e := v.DataBackend.GetStat()
if e == nil {
return uint64(datFileSize), v.nm.IndexFileSize(), modTime
}
glog.V(0).Infof("Failed to read file size %s %v", v.DataBackend.Name(), e)
return // -1 causes integer overflow and the volume to become unwritable.
}
func (v *Volume) ContentSize() uint64 {
v.dataFileAccessLock.RLock()
defer v.dataFileAccessLock.RUnlock()
if v.nm == nil {
return 0
}
return v.nm.ContentSize()
}
func (v *Volume) doIsEmpty() (bool, error) {
// check v.DataBackend.GetStat()
if v.DataBackend == nil {
return false, fmt.Errorf("v.DataBackend is nil")
} else {
datFileSize, _, e := v.DataBackend.GetStat()
if e != nil {
glog.V(0).Infof("Failed to read file size %s %v", v.DataBackend.Name(), e)
return false, fmt.Errorf("v.DataBackend.GetStat(): %v", e)
}
if datFileSize > super_block.SuperBlockSize {
return false, nil
}
}
// check v.nm.ContentSize()
if v.nm != nil {
if v.nm.ContentSize() > 0 {
return false, nil
}
}
return true, nil
}
func (v *Volume) DeletedSize() uint64 {
v.dataFileAccessLock.RLock()
defer v.dataFileAccessLock.RUnlock()
if v.nm == nil {
return 0
}
return v.nm.DeletedSize()
}
func (v *Volume) FileCount() uint64 {
v.dataFileAccessLock.RLock()
defer v.dataFileAccessLock.RUnlock()
if v.nm == nil {
return 0
}
return uint64(v.nm.FileCount())
}
func (v *Volume) DeletedCount() uint64 {
v.dataFileAccessLock.RLock()
defer v.dataFileAccessLock.RUnlock()
if v.nm == nil {
return 0
}
return uint64(v.nm.DeletedCount())
}
func (v *Volume) MaxFileKey() types.NeedleId {
v.dataFileAccessLock.RLock()
defer v.dataFileAccessLock.RUnlock()
if v.nm == nil {
return 0
}
return v.nm.MaxFileKey()
}
func (v *Volume) IndexFileSize() uint64 {
v.dataFileAccessLock.RLock()
defer v.dataFileAccessLock.RUnlock()
if v.nm == nil {
return 0
}
return v.nm.IndexFileSize()
}
func (v *Volume) DiskType() types.DiskType {
return v.location.DiskType
}
func (v *Volume) SyncToDisk() {
v.dataFileAccessLock.Lock()
defer v.dataFileAccessLock.Unlock()
if v.nm != nil {
if err := v.nm.Sync(); err != nil {
glog.Warningf("Volume Close fail to sync volume idx %d", v.Id)
}
}
if v.DataBackend != nil {
if err := v.DataBackend.Sync(); err != nil {
glog.Warningf("Volume Close fail to sync volume %d", v.Id)
}
}
}
// Close cleanly shuts down this volume
func (v *Volume) Close() {
// Wait for any in-progress compaction to finish and claim the flag so no
// new compaction can start. This must happen BEFORE acquiring
// dataFileAccessLock to avoid deadlocking with CommitCompact which holds
// the flag while waiting for the lock.
for !v.isCompactionInProgress.CompareAndSwap(false, true) {
time.Sleep(521 * time.Millisecond)
glog.Warningf("Volume Close wait for compaction %d", v.Id)
}
defer v.isCompactionInProgress.Store(false)
v.dataFileAccessLock.Lock()
defer v.dataFileAccessLock.Unlock()
v.doClose()
}
// SwapDataBackend atomically replaces the data backend and updates the
// remote-tier flag under dataFileAccessLock, closing the old backend. Both tier
// directions go through here so hasRemoteFile always matches the live backend:
// tier-down passes hasRemoteFile=false (now serving a local .dat), tier-up
// passes true. Keeping the swap and the flag under one lock means the heartbeat
// never observes a half-swapped backend or a flag that disagrees with it — a
// stale-false flag would make doDeleteRequest skip the new .dat's tombstones and
// disable the phantom-.dat guard.
func (v *Volume) SwapDataBackend(newBackend backend.BackendStorageFile, hasRemoteFile bool) {
v.dataFileAccessLock.Lock()
defer v.dataFileAccessLock.Unlock()
v.swapDataBackendLocked(newBackend, hasRemoteFile)
}
// swapDataBackendLocked is the body of SwapDataBackend for callers that already
// hold dataFileAccessLock (e.g. load() reached while CommitCompact holds the
// lock). Reusing it from those under-lock paths avoids re-entering the
// non-reentrant lock, which would deadlock.
func (v *Volume) swapDataBackendLocked(newBackend backend.BackendStorageFile, hasRemoteFile bool) {
if v.DataBackend != nil {
v.DataBackend.Close()
}
v.DataBackend = newBackend
v.hasRemoteFile.Store(hasRemoteFile)
}
func (v *Volume) doClose() {
if v.nm != nil {
if err := v.nm.Sync(); err != nil {
glog.Warningf("Volume Close fail to sync volume idx %d", v.Id)
}
v.nm.Close()
v.nm = nil
}
if v.DataBackend != nil {
if err := v.DataBackend.Close(); err != nil {
glog.Warningf("Volume Close fail to sync volume %d", v.Id)
}
v.DataBackend = nil
stats.VolumeServerVolumeGauge.WithLabelValues(v.Collection, "volume").Dec()
}
}
func (v *Volume) NeedToReplicate() bool {
return v.ReplicaPlacement.GetCopyCount() > 1
}
// volume is expired if modified time + volume ttl < now
// except when volume is empty
// or when the volume does not have a ttl
// or when volumeSizeLimit is 0 when server just starts
func (v *Volume) expired(contentSize uint64, volumeSizeLimit uint64) bool {
if volumeSizeLimit == 0 {
// skip if we don't know size limit
return false
}
if contentSize <= super_block.SuperBlockSize {
return false
}
if v.Ttl == nil || v.Ttl.Minutes() == 0 {
return false
}
glog.V(2).Infof("volume %d now:%v lastModified:%v", v.Id, time.Now().Unix(), v.lastModifiedTsSeconds)
livedMinutes := (time.Now().Unix() - int64(v.lastModifiedTsSeconds)) / 60
glog.V(2).Infof("volume %d ttl:%v lived:%v", v.Id, v.Ttl, livedMinutes)
if int64(v.Ttl.Minutes()) < livedMinutes {
return true
}
return false
}
// wait either maxDelayMinutes or 10% of ttl minutes
func (v *Volume) expiredLongEnough(maxDelayMinutes uint32) bool {
if v.Ttl == nil || v.Ttl.Minutes() == 0 {
return false
}
removalDelay := v.Ttl.Minutes() / 10
if removalDelay > maxDelayMinutes {
removalDelay = maxDelayMinutes
}
if uint64(v.Ttl.Minutes()+removalDelay)*60+v.lastModifiedTsSeconds < uint64(time.Now().Unix()) {
return true
}
return false
}
func (v *Volume) collectStatus() (maxFileKey types.NeedleId, datFileSize int64, modTime time.Time, fileCount, deletedCount, deletedSize uint64, ok bool) {
v.dataFileAccessLock.RLock()
defer v.dataFileAccessLock.RUnlock()
glog.V(4).Infof("collectStatus volume %d", v.Id)
if v.nm == nil || v.DataBackend == nil {
return
}
ok = true
maxFileKey = v.nm.MaxFileKey()
datFileSize, modTime, _ = v.DataBackend.GetStat()
fileCount = uint64(v.nm.FileCount())
deletedCount = uint64(v.nm.DeletedCount())
deletedSize = v.nm.DeletedSize()
return
}
func (v *Volume) ToVolumeInformationMessage() (types.NeedleId, *master_pb.VolumeInformationMessage) {
maxFileKey, volumeSize, modTime, fileCount, deletedCount, deletedSize, ok := v.collectStatus()
if !ok {
return 0, nil
}
// Detect phantom volumes: the .dat was unlinked from disk but is still held
// open as a deleted FD, so the volume keeps serving and heartbeating while no
// disk-path operation can ever succeed. Skip remote-tiered volumes, whose .dat
// legitimately lives in cloud storage. Only a present .dat is cached for 30s; a
// missing one is re-checked every heartbeat so the volume stays suppressed until
// the file returns. See github.com/seaweedfs/seaweedfs/issues/10004
if fileCount > 0 && !v.HasRemoteFile() {
const diskCheckIntervalNs = 30 * int64(time.Second)
now := time.Now().UnixNano()
if now-v.lastDiskCheckNs.Load() > diskCheckIntervalNs {
if _, err := os.Stat(v.FileName(".dat")); os.IsNotExist(err) {
glog.Warningf("Volume %d: data file %s missing (held open as deleted FD) - not reporting to master", v.Id, v.FileName(".dat"))
return 0, nil
}
v.lastDiskCheckNs.Store(now)
}
}
volumeInfo := &master_pb.VolumeInformationMessage{
Id: uint32(v.Id),
Size: uint64(volumeSize),
Collection: v.Collection,
FileCount: fileCount,
DeleteCount: deletedCount,
DeletedByteCount: deletedSize,
ReadOnly: v.IsReadOnly(),
ReplicaPlacement: uint32(v.ReplicaPlacement.Byte()),
Version: uint32(v.Version()),
Ttl: v.Ttl.ToUint32(),
CompactRevision: uint32(v.SuperBlock.CompactionRevision),
ModifiedAtSecond: modTime.Unix(),
DiskType: string(v.location.DiskType),
DiskId: v.diskId,
}
volumeInfo.RemoteStorageName, volumeInfo.RemoteStorageKey = v.RemoteStorageNameKey()
return maxFileKey, volumeInfo
}
func (v *Volume) RemoteStorageNameKey() (storageName, storageKey string) {
if v.volumeInfo == nil {
return
}
if len(v.volumeInfo.GetFiles()) == 0 {
return
}
return v.volumeInfo.GetFiles()[0].BackendName(), v.volumeInfo.GetFiles()[0].GetKey()
}
func (v *Volume) IsReadOnly() bool {
v.noWriteLock.RLock()
defer v.noWriteLock.RUnlock()
return v.noWriteOrDelete || v.noWriteCanDelete || v.location.isDiskSpaceLow.Load()
}
func (v *Volume) PersistReadOnly(readOnly bool) {
v.volumeInfoRWLock.RLock()
defer v.volumeInfoRWLock.RUnlock()
v.volumeInfo.ReadOnly = readOnly
v.SaveVolumeInfo()
}