Files
seaweedfs/weed/storage/disk_location.go
T
Feng Shao 13bf056a15 Mount req with collection (#11249)
* volume mount req support specify collection

* rust mirror change
2026-09-09 12:55:47 -07:00

734 lines
22 KiB
Go

package storage
import (
"fmt"
"os"
"path/filepath"
"runtime"
"slices"
"strconv"
"strings"
"sync"
"sync/atomic"
"time"
"github.com/google/uuid"
"github.com/seaweedfs/seaweedfs/weed/glog"
"github.com/seaweedfs/seaweedfs/weed/stats"
"github.com/seaweedfs/seaweedfs/weed/storage/erasure_coding"
"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/storage/volume_info"
"github.com/seaweedfs/seaweedfs/weed/util"
)
const (
UUIDFileName = "vol_dir.uuid"
UUIDFileMod = 0644
)
type DiskLocation struct {
Directory string
DirectoryUuid string
IdxDirectory string
DiskType types.DiskType
Tags []string
MaxVolumeCount int32
OriginalMaxVolumeCount int32
MinFreeSpace util.MinFreeSpace
AvailableSpace atomic.Uint64
// Physical filesystem capacity from the latest CheckDiskSpace probe, reported
// to the master so balancing can see real disk fullness, not just slot counts.
diskTotalBytes atomic.Uint64
diskFreeBytes atomic.Uint64
volumes map[needle.VolumeId]*Volume
volumesLock sync.RWMutex
// erasure coding
ecVolumes map[needle.VolumeId]*erasure_coding.EcVolume
ecVolumesLock sync.RWMutex
ecShardNotifyHandler func(collection string, vid needle.VolumeId, shardId erasure_coding.ShardId, ecVolume *erasure_coding.EcVolume)
isDiskSpaceLow atomic.Bool
isDiskUnavailable atomic.Bool
closeCh chan struct{}
}
func GenerateDirUuid(dir string) (dirUuidString string, err error) {
glog.V(1).Infof("Getting uuid of volume directory:%s", dir)
fileName := filepath.Join(dir, UUIDFileName)
if !util.FileExists(fileName) {
dirUuidString, err = writeNewUuid(fileName)
} else {
uuidData, readErr := os.ReadFile(fileName)
if readErr != nil {
return "", fmt.Errorf("failed to read uuid from %s : %v", fileName, readErr)
}
if len(uuidData) > 0 {
dirUuidString = string(uuidData)
} else {
dirUuidString, err = writeNewUuid(fileName)
}
}
return dirUuidString, err
}
func writeNewUuid(fileName string) (string, error) {
dirUuid, _ := uuid.NewRandom()
dirUuidString := dirUuid.String()
if err := util.WriteFile(fileName, []byte(dirUuidString), UUIDFileMod); err != nil {
return "", fmt.Errorf("failed to write uuid to %s : %v", fileName, err)
}
return dirUuidString, nil
}
func NewDiskLocation(dir string, maxVolumeCount int32, minFreeSpace util.MinFreeSpace, idxDir string, diskType types.DiskType, tags []string, config stats.DiskIOProbeConfig) *DiskLocation {
glog.V(4).Infof("Added new Disk %s: maxVolumes=%d", dir, maxVolumeCount)
dir = util.ResolvePath(dir)
if idxDir == "" {
idxDir = dir
} else {
idxDir = util.ResolvePath(idxDir)
if err := os.MkdirAll(idxDir, 0755); err != nil {
glog.Fatalf("cannot create idx dir %s: %v", idxDir, err)
}
}
dirUuid, err := GenerateDirUuid(dir)
if err != nil {
glog.Fatalf("cannot generate uuid of dir %s: %v", dir, err)
}
// Defensive copy of tags to prevent external mutation
var copiedTags []string
if len(tags) > 0 {
copiedTags = make([]string, len(tags))
copy(copiedTags, tags)
}
location := &DiskLocation{
Directory: dir,
DirectoryUuid: dirUuid,
IdxDirectory: idxDir,
DiskType: diskType,
Tags: copiedTags,
MaxVolumeCount: maxVolumeCount,
OriginalMaxVolumeCount: maxVolumeCount,
MinFreeSpace: minFreeSpace,
}
location.volumes = make(map[needle.VolumeId]*Volume)
location.ecVolumes = make(map[needle.VolumeId]*erasure_coding.EcVolume)
location.closeCh = make(chan struct{})
go func() {
location.CheckDiskSpace(config)
for {
select {
case <-location.closeCh:
return
case <-time.After(time.Minute):
location.CheckDiskSpace(config)
}
}
}()
return location
}
func volumeIdFromFileName(filename string) (needle.VolumeId, string, error) {
if isValidVolume(filename) {
base := filename[:len(filename)-4]
collection, volumeId, err := parseCollectionVolumeId(base)
return volumeId, collection, err
}
return 0, "", fmt.Errorf("file is not a volume: %s", filename)
}
func parseCollectionVolumeId(base string) (collection string, vid needle.VolumeId, err error) {
i := strings.LastIndex(base, "_")
if i > 0 {
collection, base = base[0:i], base[i+1:]
}
vol, err := needle.NewVolumeId(base)
return collection, vol, err
}
func isValidVolume(basename string) bool {
return strings.HasSuffix(basename, ".idx") || strings.HasSuffix(basename, ".vif")
}
func getValidVolumeName(basename string) string {
if isValidVolume(basename) {
return basename[:len(basename)-4]
}
return ""
}
// hasEcxFile reports whether an .ecx for volumeName exists on this disk.
// Checks the local Directory first (where the index sits co-located with the
// shards during a move or reconstruct), then the shared IdxDirectory.
func (l *DiskLocation) hasEcxFile(volumeName string) bool {
if util.FileExists(filepath.Join(l.Directory, volumeName+".ecx")) {
return true
}
if l.IdxDirectory != l.Directory {
return util.FileExists(filepath.Join(l.IdxDirectory, volumeName+".ecx"))
}
return false
}
// removeEmptyEcDatStub removes a leftover empty EC .dat stub and returns
// whether one was swept. A stub is an empty .dat (<= a superblock, i.e. zero
// needles) whose .vif records an EC shard config. An EC volume keeps no local
// .dat, so the stub holds no data -- its shards live on other servers. Such
// stubs (phantoms from the pre-fix loader) otherwise load as phantom empty
// volumes, and a same-vid stub on two disks can shadow a real replica. The
// .dat and its empty .idx are removed; non-EC empty .dat files are left alone.
// The .vif is looked up in both the data and idx directories (which differ
// only when -dir.idx is configured).
func (l *DiskLocation) removeEmptyEcDatStub(volumeName string, vid needle.VolumeId, collection string) bool {
datPath := l.Directory + "/" + volumeName + ".dat"
if fi, err := os.Stat(datPath); err != nil || fi.Size() > int64(super_block.SuperBlockSize) {
return false
}
if !vifIsEcVolume(l.Directory+"/"+volumeName+".vif") &&
!(l.IdxDirectory != l.Directory && vifIsEcVolume(l.IdxDirectory+"/"+volumeName+".vif")) {
return false
}
glog.Warningf("removing leftover empty .dat stub for EC volume %d (collection=%q)", vid, collection)
os.Remove(datPath)
os.Remove(l.IdxDirectory + "/" + volumeName + ".idx")
return true
}
// vifIsEcVolume reports whether the .vif at vifPath records an EC shard config.
func vifIsEcVolume(vifPath string) bool {
vi, _, _, err := volume_info.MaybeLoadVolumeInfo(vifPath)
return err == nil && vi.GetEcShardConfig() != nil
}
func (l *DiskLocation) loadExistingVolume(basename string, needleMapKind NeedleMapKind, skipIfEcVolumesExists bool, ldbTimeout int64, diskId uint32) bool {
volumeName := getValidVolumeName(basename)
if volumeName == "" {
return false
}
// parse out collection, volume id (moved up to use in EC validation)
vid, collection, err := volumeIdFromFileName(basename)
if err != nil {
glog.Warningf("get volume id failed, %s, err : %s", volumeName, err)
return false
}
// Sweep a leftover empty .dat stub before any EC presence checks below.
// It must go first: next to an .ecx it would otherwise make
// validateEcVolume mistake a healthy distributed EC volume for an
// interrupted local encode and delete its shards.
if l.removeEmptyEcDatStub(volumeName, vid, collection) {
return false
}
// A .vif next to an .ecx with no .idx beside it is EC shard metadata, not a
// regular volume. Without this guard NewVolume below would create a phantom
// empty .dat. Ask for the .idx rather than trust which of a volume's two
// entries the scan handed over: an .idx next to the .ecx is an interrupted
// encode, and validateEcVolume below is what decides that one.
if strings.HasSuffix(basename, ".vif") && l.hasEcxFile(volumeName) &&
!util.FileExists(l.Directory+"/"+volumeName+".idx") {
glog.V(1).Infof("loadExistingVolume: skipping .vif-only entry for volume %d (collection=%q); .ecx present", vid, collection)
return false
}
// skip if ec volumes exists, but validate EC files first
if skipIfEcVolumesExists {
if l.hasEcxFile(volumeName) {
// Validate EC volume: shard count, size consistency, and expected size vs .dat file
if !l.validateEcVolume(collection, vid) {
glog.Warningf("EC volume %d validation failed, removing incomplete EC files to allow .dat file loading", vid)
l.removeEcVolumeFiles(collection, vid)
// Continue to load .dat file
} else {
// Valid EC volume exists, skip .dat file
return false
}
}
}
// check for incomplete volume
noteFile := l.Directory + "/" + volumeName + ".note"
if util.FileExists(noteFile) {
note, _ := os.ReadFile(noteFile)
glog.Warningf("volume %s was not completed: %s", volumeName, string(note))
// Keep the .vif when an .ecx for this vid coexists on the disk: the
// regular and EC volumes share <base>.vif, so removing the incomplete
// regular copy must not strip the EC volume's info file.
keepVif := l.hasEcxFile(volumeName)
removeVolumeFiles(l.Directory+"/"+volumeName, keepVif)
removeVolumeFiles(l.IdxDirectory+"/"+volumeName, keepVif)
return false
}
// avoid loading one volume more than once
l.volumesLock.RLock()
_, found := l.volumes[vid]
l.volumesLock.RUnlock()
if found {
glog.V(1).Infof("loaded volume, %v", vid)
return true
}
// Load existing data only; never let NewVolume create a phantom .dat. A
// lone .vif/.idx (e.g. an EC sidecar whose .ecx is on a sibling disk,
// which the same-disk hasEcxFile() guard misses) would otherwise get an
// 8-byte stub that the sibling-.dat prune deletes real shards against.
// Remote-tiered volumes also have no local .dat, but their .vif points at
// remote files and must still load via the remote path.
if !util.FileExists(l.Directory + "/" + volumeName + ".dat") {
_, hasRemote, _, _ := volume_info.MaybeLoadVolumeInfo(l.Directory + "/" + volumeName + ".vif")
if !hasRemote && l.IdxDirectory != l.Directory {
_, hasRemote, _, _ = volume_info.MaybeLoadVolumeInfo(l.IdxDirectory + "/" + volumeName + ".vif")
}
if !hasRemote {
glog.V(1).Infof("loadExistingVolume: skipping volume %d (collection=%q); no .dat and no remote file", vid, collection)
return false
}
}
// load the volume
v, e := NewVolume(l.Directory, l.IdxDirectory, collection, vid, needleMapKind, nil, nil, 0, needle.GetCurrentVersion(), 0, ldbTimeout)
if e != nil {
glog.V(0).Infof("new volume %s error %s", volumeName, e)
return false
}
v.diskId = diskId // Set the disk ID for existing volumes
l.SetVolume(vid, v)
size, _, _ := v.FileStat()
glog.V(2).Infof("data file %s, replication=%s v=%d size=%d ttl=%s disk_id=%d",
l.Directory+"/"+volumeName+".dat", v.ReplicaPlacement, v.Version(), size, v.Ttl.String(), diskId)
return true
}
func (l *DiskLocation) concurrentLoadingVolumes(needleMapKind NeedleMapKind, concurrency int, ldbTimeout int64, diskId uint32) {
// Read the directory to its end before the workers start writing into it:
// loading a volume creates .sdx, .vif and .ldb files in the same directory,
// and a stream left open across those writes is not guaranteed to hand back
// every entry it has not reached yet. Only the names are kept, one per
// volume, which is what the dedup here always held.
foundVolumeNames := make(map[string]string)
if err := eachDirEntry(l.Directory, func(entry os.DirEntry) bool {
if entry.IsDir() {
return true
}
volumeName := getValidVolumeName(entry.Name())
if volumeName == "" {
return true
}
if _, found := foundVolumeNames[volumeName]; !found {
foundVolumeNames[volumeName] = entry.Name()
}
return true
}); err != nil {
glog.Warningf("scan volume directory %s: %v", l.Directory, err)
}
task_queue := make(chan string, 10*concurrency)
go func() {
for _, basename := range foundVolumeNames {
task_queue <- basename
}
close(task_queue)
}()
var wg sync.WaitGroup
for workerNum := 0; workerNum < concurrency; workerNum++ {
wg.Add(1)
go func() {
defer wg.Done()
for basename := range task_queue {
_ = l.loadExistingVolume(basename, needleMapKind, true, ldbTimeout, diskId)
}
}()
}
wg.Wait()
}
func (l *DiskLocation) loadExistingVolumes(needleMapKind NeedleMapKind, ldbTimeout int64) {
l.loadExistingVolumesWithId(needleMapKind, ldbTimeout, 0) // Default disk ID for backward compatibility
}
func (l *DiskLocation) loadExistingVolumesWithId(needleMapKind NeedleMapKind, ldbTimeout int64, diskId uint32) {
workerNum := runtime.NumCPU()
val, ok := os.LookupEnv("GOMAXPROCS")
if ok {
num, err := strconv.Atoi(val)
if err != nil || num < 1 {
num = 10
glog.Warningf("failed to set worker number from GOMAXPROCS , set to default:10")
}
workerNum = num
} else {
if workerNum <= 10 {
workerNum = 10
}
}
// Recover any interrupted compaction commit before the volume scan. This
// must run here, not inside loadExistingVolume: that loop is keyed on
// .idx/.vif entries and would miss the marker-only or already-renamed-.idx
// states a mid-commit crash can leave behind.
l.reconcileCompactStates()
l.concurrentLoadingVolumes(needleMapKind, workerNum, ldbTimeout, diskId)
glog.V(2).Infof("Store started on dir: %s with %d volumes max %d (disk ID: %d)", l.Directory, len(l.volumes), l.MaxVolumeCount, diskId)
l.loadAllEcShards(l.ecShardNotifyHandler)
glog.V(2).Infof("Store started on dir: %s with %d ec shards (disk ID: %d)", l.Directory, len(l.ecVolumes), diskId)
}
// reconcileCompactStates is the directory pre-pass that recovers interrupted
// compaction commits. It collects every volume id that still has a .cpc commit
// marker or a leftover .cpd/.cpx temp file across the data and idx directories,
// then runs reconcileCompactState per volume to roll the swap forward (marker
// present) or back (marker absent).
func (l *DiskLocation) reconcileCompactStates() {
type volKey struct {
collection string
vid needle.VolumeId
}
pending := make(map[volKey]bool)
collect := func(dir string) {
if err := eachDirEntry(dir, func(entry os.DirEntry) bool {
if entry.IsDir() {
return true
}
name := entry.Name()
if !strings.HasSuffix(name, ".cpc") && !strings.HasSuffix(name, ".cpd") && !strings.HasSuffix(name, ".cpx") {
return true
}
collection, vid, err := parseCollectionVolumeId(name[:len(name)-4])
if err != nil {
return true
}
pending[volKey{collection, vid}] = true
return true
}); err != nil {
glog.Warningf("scan %s for interrupted compactions: %v", dir, err)
}
}
collect(l.Directory)
if l.IdxDirectory != l.Directory {
collect(l.IdxDirectory)
}
for k := range pending {
// On a runtime reload (SIGHUP -> LoadNewVolumes), an already-loaded
// volume may be mid-vacuum: its .cpd/.cpx are live, not crash
// leftovers, and rolling them back would clobber the in-flight
// compaction (and remove a live .ldb). Only reconcile vids that are
// not currently loaded; genuine startup recovery runs before any
// volume is loaded, so the map is empty then.
l.volumesLock.RLock()
_, loaded := l.volumes[k.vid]
l.volumesLock.RUnlock()
if loaded {
continue
}
v := &Volume{dir: l.Directory, dirIdx: l.IdxDirectory, Collection: k.collection, Id: k.vid}
if err := v.reconcileCompactState(); err != nil {
glog.Errorf("volume %d: reconcile interrupted compaction failed: %v", k.vid, err)
}
}
}
// DeleteCollectionFromDiskLocation destroys the collection's volumes and ec
// shards, and returns the volumes it destroyed so the caller can tell the
// master they are gone.
func (l *DiskLocation) DeleteCollectionFromDiskLocation(collection string) (deleted []*Volume, e error) {
l.volumesLock.Lock()
delVolsMap := l.unmountVolumeByCollection(collection)
l.volumesLock.Unlock()
l.ecVolumesLock.Lock()
delEcVolsMap := l.unmountEcVolumeByCollection(collection)
l.ecVolumesLock.Unlock()
errChain := make(chan error, 2)
var wg sync.WaitGroup
wg.Add(2)
go func() {
for k, v := range delVolsMap {
if err := v.Destroy(false, false); err != nil {
errChain <- err
} else {
l.volumesLock.Lock()
delete(l.volumes, k)
l.volumesLock.Unlock()
deleted = append(deleted, v)
}
}
wg.Done()
}()
go func() {
for _, v := range delEcVolsMap {
v.Destroy()
}
wg.Done()
}()
go func() {
wg.Wait()
close(errChain)
}()
errBuilder := strings.Builder{}
for err := range errChain {
errBuilder.WriteString(err.Error())
errBuilder.WriteString("; ")
}
if errBuilder.Len() > 0 {
e = fmt.Errorf("%s", errBuilder.String())
}
return
}
func (l *DiskLocation) deleteVolumeById(vid needle.VolumeId, onlyEmpty bool, keepRemoteData bool) (found bool, e error) {
v, ok := l.volumes[vid]
if !ok {
return
}
e = v.Destroy(onlyEmpty, keepRemoteData)
if e != nil {
return
}
found = true
delete(l.volumes, vid)
return
}
func (l *DiskLocation) LoadVolume(diskId uint32, vid needle.VolumeId, needleMapKind NeedleMapKind, collection *string) bool {
if collection != nil {
for _, ext := range []string{".vif", ".idx"} {
filename := VolumeFileName(l.Directory, *collection, int(vid)) + ext
if fi, err := os.Stat(filename); err == nil && !fi.IsDir() {
return l.loadExistingVolume(fi.Name(), needleMapKind, false, 0, diskId)
}
}
}
if fileInfo, found := l.LocateVolume(vid); found {
return l.loadExistingVolume(fileInfo.Name(), needleMapKind, false, 0, diskId)
}
return false
}
var ErrVolumeNotFound = fmt.Errorf("volume not found")
func (l *DiskLocation) DeleteVolume(vid needle.VolumeId, onlyEmpty bool, keepRemoteData bool) error {
l.volumesLock.Lock()
defer l.volumesLock.Unlock()
_, ok := l.volumes[vid]
if !ok {
return ErrVolumeNotFound
}
_, err := l.deleteVolumeById(vid, onlyEmpty, keepRemoteData)
return err
}
func (l *DiskLocation) UnloadVolume(vid needle.VolumeId) error {
l.volumesLock.Lock()
defer l.volumesLock.Unlock()
v, ok := l.volumes[vid]
if !ok {
return ErrVolumeNotFound
}
v.Close()
delete(l.volumes, vid)
return nil
}
func (l *DiskLocation) unmountVolumeByCollection(collectionName string) map[needle.VolumeId]*Volume {
deltaVols := make(map[needle.VolumeId]*Volume, 0)
for k, v := range l.volumes {
if v.Collection == collectionName && !v.isCompactionInProgress.Load() {
deltaVols[k] = v
}
}
return deltaVols
}
func (l *DiskLocation) SetVolume(vid needle.VolumeId, volume *Volume) {
l.volumesLock.Lock()
defer l.volumesLock.Unlock()
l.volumes[vid] = volume
volume.location = l
}
func (l *DiskLocation) FindVolume(vid needle.VolumeId) (*Volume, bool) {
l.volumesLock.RLock()
defer l.volumesLock.RUnlock()
v, ok := l.volumes[vid]
return v, ok
}
// Returns all regular volume IDs stored at this location.
func (l *DiskLocation) VolumeIds() []needle.VolumeId {
l.volumesLock.RLock()
defer l.volumesLock.RUnlock()
vids := make([]needle.VolumeId, len(l.volumes))
i := 0
for vid := range l.volumes {
vids[i] = vid
i++
}
slices.Sort(vids)
return vids
}
// Returns all EC volume IDs stored at this location.
func (l *DiskLocation) EcVolumeIds() []needle.VolumeId {
l.ecVolumesLock.RLock()
defer l.ecVolumesLock.RUnlock()
vids := make([]needle.VolumeId, len(l.ecVolumes))
i := 0
for vid := range l.ecVolumes {
vids[i] = vid
i++
}
slices.Sort(vids)
return vids
}
func (l *DiskLocation) VolumesLen() int {
l.volumesLock.RLock()
defer l.volumesLock.RUnlock()
return len(l.volumes)
}
func (l *DiskLocation) LocalVolumesLen() int {
l.volumesLock.RLock()
defer l.volumesLock.RUnlock()
count := 0
for _, v := range l.volumes {
if !v.HasRemoteFile() {
count++
}
}
return count
}
func (l *DiskLocation) SetStopping() {
l.volumesLock.Lock()
for _, v := range l.volumes {
v.SyncToDisk()
}
l.volumesLock.Unlock()
return
}
func (l *DiskLocation) Close() {
l.volumesLock.Lock()
for _, v := range l.volumes {
v.Close()
}
l.volumesLock.Unlock()
l.ecVolumesLock.Lock()
for _, ecVolume := range l.ecVolumes {
ecVolume.Close()
}
l.ecVolumesLock.Unlock()
close(l.closeCh)
return
}
func (l *DiskLocation) LocateVolume(vid needle.VolumeId) (os.DirEntry, bool) {
var found os.DirEntry
if err := eachDirEntry(l.Directory, func(entry os.DirEntry) bool {
if entry.IsDir() {
return true
}
volId, _, err := volumeIdFromFileName(entry.Name())
if vid == volId && err == nil {
found = entry
return false
}
return true
}); err != nil {
glog.Warningf("locate volume %d in %s: %v", vid, l.Directory, err)
}
return found, found != nil
}
func (l *DiskLocation) UnUsedSpace(volumeSizeLimit uint64) (unUsedSpace uint64) {
l.volumesLock.RLock()
defer l.volumesLock.RUnlock()
for _, vol := range l.volumes {
if vol.IsReadOnly() {
continue
}
datSize, idxSize, _ := vol.FileStat()
unUsedSpaceVolume := int64(volumeSizeLimit) - int64(datSize+idxSize)
glog.V(4).Infof("Volume stats for %d: volumeSizeLimit=%d, datSize=%d idxSize=%d unused=%d", vol.Id, volumeSizeLimit, datSize, idxSize, unUsedSpaceVolume)
if unUsedSpaceVolume >= 0 {
unUsedSpace += uint64(unUsedSpaceVolume)
}
}
return
}
// newDiskStatus is a seam letting a test observe the config CheckDiskSpace probes with.
var newDiskStatus = stats.NewDiskStatusOnStart
func (l *DiskLocation) CheckDiskSpace(config stats.DiskIOProbeConfig) {
config.SlowLatency = config.SlowLatencyFor(l.DiskType.ReadableString())
if dir, e := filepath.Abs(l.Directory); e == nil {
s := newDiskStatus(dir, config)
if len(s.Error) != 0 {
l.isDiskUnavailable.Store(true)
stats.VolumeServerDiskErrorGauge.WithLabelValues(l.Directory, "error").Set(1)
glog.V(1).Infof("disk %s is not healthy: %s", dir, s.Error)
} else {
l.isDiskUnavailable.Store(false)
stats.VolumeServerDiskErrorGauge.WithLabelValues(l.Directory, "error").Set(0)
}
available := l.MinFreeSpace.AvailableSpace(s.Free, s.All)
stats.VolumeServerResourceGauge.WithLabelValues(l.Directory, "all").Set(float64(s.All))
stats.VolumeServerResourceGauge.WithLabelValues(l.Directory, "used").Set(float64(s.Used))
stats.VolumeServerResourceGauge.WithLabelValues(l.Directory, "free").Set(float64(s.Free))
stats.VolumeServerResourceGauge.WithLabelValues(l.Directory, "avail").Set(float64(available))
l.AvailableSpace.Store(available)
l.diskTotalBytes.Store(s.All)
l.diskFreeBytes.Store(s.Free)
isLow, desc := l.MinFreeSpace.IsLow(s.Free, s.PercentFree)
if isLow != l.isDiskSpaceLow.Load() {
l.isDiskSpaceLow.Store(isLow)
}
logLevel := glog.Level(4)
if l.isDiskSpaceLow.Load() {
logLevel = glog.Level(0)
}
glog.V(logLevel).Infof("dir %s %s", dir, desc)
}
}