Files
seaweedfs/weed/topology/topology.go
T
Chris Lu a02c0024e5 master: cap the reported capacity at what the disks hold (#10960)
* master: cap the reported capacity at what the disks hold

Statistics reported max volume count times the volume size limit, which is
how many volumes the cluster is allowed to place, not how much space it has.
A cluster given far more slots than its disks can fill reported a capacity it
could never reach -- 65536 slots at 30GB read as 1.9PB on a 460GB disk -- and
the number never moved, since writing data changes neither the slot count nor
the size limit.

The volume servers already report each filesystem's total and free bytes in
their heartbeats, so bound the answer by what they say is left.

* mount: keep the last known sizes when filer statistics fails

A failed Statistics call returned before df's answer was filled in, so a
mount whose filer or master was briefly unreachable reported an empty
filesystem rather than the sizes it already had.

* master: drop the disk ceiling when a volume server does not report

A cluster part way through an upgrade has volume servers that predate the disk
bytes in the heartbeat. Summing only the ones that answered left the quiet
server's free space out of the total, and the server holding the room is
exactly the one that could make the cluster read as full.

Answer with the disks only when every one of them reported.
2026-08-26 00:12:56 -07:00

843 lines
27 KiB
Go

package topology
import (
"encoding/json"
"errors"
"fmt"
"math"
"math/rand/v2"
"slices"
"sync"
"sync/atomic"
"time"
"github.com/seaweedfs/seaweedfs/weed/pb"
"github.com/seaweedfs/seaweedfs/weed/storage/types"
backoff "github.com/cenkalti/backoff/v4"
hashicorpRaft "github.com/hashicorp/raft"
"github.com/seaweedfs/raft"
"github.com/seaweedfs/seaweedfs/weed/glog"
"github.com/seaweedfs/seaweedfs/weed/pb/master_pb"
"github.com/seaweedfs/seaweedfs/weed/sequence"
"github.com/seaweedfs/seaweedfs/weed/stats"
"github.com/seaweedfs/seaweedfs/weed/storage"
"github.com/seaweedfs/seaweedfs/weed/storage/needle"
"github.com/seaweedfs/seaweedfs/weed/storage/super_block"
"github.com/seaweedfs/seaweedfs/weed/util"
)
const (
// WarmupPulseMultiplier is the number of heartbeat intervals to wait after
// a leader change before treating volume lookup misses as definitive.
WarmupPulseMultiplier = 3
)
type Topology struct {
vacuumLockCounter int64
NodeImpl
collectionMap *util.ConcurrentReadMap
ecShardMap map[needle.VolumeId]*EcShardLocations
ecShardMapLock sync.RWMutex
pulse int64
volumeSizeLimit uint64
replicationAsMin bool
vacuumDisabledByOperator atomic.Bool // true when operator manually disables vacuum
vacuumDisabledByPlugin atomic.Bool // true when disabled by the vacuum plugin monitor
adminServerConnectedFunc func() bool // optional callback to check admin server presence
Sequence sequence.Sequencer
chanFullVolumes chan storage.VolumeInfo
chanCrowdedVolumes chan storage.VolumeInfo
Configuration *Configuration
RaftServer raft.Server
RaftServerAccessLock sync.RWMutex
HashicorpRaft *hashicorpRaft.Raft
barrierLock sync.Mutex
barrierDone bool
UuidAccessLock sync.RWMutex
UuidMap map[string][]string
topologyId string
topologyIdLock sync.RWMutex
lastLeaderChangeTime time.Time
hadVolumesAtLeaderChange bool
lastLeaderChangeTimeLock sync.RWMutex
// dataNodeIndex is an address -> *DataNode lookup so callers (e.g. the
// Ping admission gate) do not have to walk every dc/rack/node tier on
// every request. Keys use the canonical http form returned by
// pb.ServerAddress.ToHttpAddress so a target like "1.2.3.4:8080" finds
// the same node whether or not the grpc port suffix is present.
dataNodeIndex map[string]*DataNode
dataNodeIndexLock sync.RWMutex
}
func NewTopology(id string, seq sequence.Sequencer, volumeSizeLimit uint64, pulse int, replicationAsMin bool) *Topology {
t := &Topology{}
t.id = NodeId(id)
t.nodeType = "Topology"
t.NodeImpl.value = t
t.diskUsages = newDiskUsages()
t.children = make(map[NodeId]Node)
t.capacityReservations = newCapacityReservations()
t.collectionMap = util.NewConcurrentReadMap()
t.ecShardMap = make(map[needle.VolumeId]*EcShardLocations)
t.pulse = int64(pulse)
t.volumeSizeLimit = volumeSizeLimit
t.replicationAsMin = replicationAsMin
t.Sequence = seq
t.chanFullVolumes = make(chan storage.VolumeInfo)
t.chanCrowdedVolumes = make(chan storage.VolumeInfo)
t.Configuration = &Configuration{}
t.dataNodeIndex = make(map[string]*DataNode)
return t
}
// LookupDataNodeByAddress returns the registered DataNode that serves addr,
// or nil if no such node has been observed. Lookup is O(1) and uses the
// canonical http form of the address so callers that pass either
// "host:port" or "host:port.grpc" find the same node.
func (t *Topology) LookupDataNodeByAddress(addr pb.ServerAddress) *DataNode {
if addr == "" {
return nil
}
t.dataNodeIndexLock.RLock()
defer t.dataNodeIndexLock.RUnlock()
if t.dataNodeIndex == nil {
return nil
}
return t.dataNodeIndex[addr.ToHttpAddress()]
}
// registerDataNodeAddress records dn in the address index under its current
// http address. Callers must invoke unregisterDataNodeAddress with the prior
// address whenever a node's Ip or Port changes (e.g. k8s pod reschedule).
func (t *Topology) registerDataNodeAddress(dn *DataNode) {
if dn == nil {
return
}
key := dn.ServerAddress().ToHttpAddress()
if key == "" {
return
}
t.dataNodeIndexLock.Lock()
defer t.dataNodeIndexLock.Unlock()
if t.dataNodeIndex == nil {
t.dataNodeIndex = make(map[string]*DataNode)
}
t.dataNodeIndex[key] = dn
}
// unregisterDataNodeAddress removes the index entry for addr, but only when
// the entry still points at dn. The conditional guard avoids dropping a
// freshly re-registered node whose address happens to alias the one being
// removed (e.g. legacy id transitions or a fast restart).
func (t *Topology) unregisterDataNodeAddress(addr pb.ServerAddress, dn *DataNode) {
if addr == "" {
return
}
key := addr.ToHttpAddress()
if key == "" {
return
}
t.dataNodeIndexLock.Lock()
defer t.dataNodeIndexLock.Unlock()
if existing, ok := t.dataNodeIndex[key]; ok && (dn == nil || existing == dn) {
delete(t.dataNodeIndex, key)
}
}
// FreeBytes sums what every volume server reports as free on its filesystems.
// reported is false unless all of them answered: the one that stayed quiet may
// be the one holding the room, and a partial sum would read as a cluster with
// none left.
func (t *Topology) FreeBytes() (freeBytes uint64, reported bool) {
for _, dcNode := range t.Children() {
for _, rackNode := range dcNode.Children() {
for _, dataNode := range rackNode.Children() {
nodeFreeBytes, nodeReported := dataNode.GetDiskUsages().FreeBytes()
if !nodeReported {
return 0, false
}
freeBytes += nodeFreeBytes
}
}
}
return freeBytes, true
}
func (t *Topology) IsChildLocked() (bool, error) {
if t.IsLocked() {
return true, errors.New("topology is locked")
}
for _, dcNode := range t.Children() {
if dcNode.IsLocked() {
return true, fmt.Errorf("topology child %s is locked", dcNode.String())
}
for _, rackNode := range dcNode.Children() {
if rackNode.IsLocked() {
return true, fmt.Errorf("dc %s child %s is locked", dcNode.String(), rackNode.String())
}
for _, dataNode := range rackNode.Children() {
if dataNode.IsLocked() {
return true, fmt.Errorf("rack %s child %s is locked", rackNode.String(), dataNode.Id())
}
}
}
}
return false, nil
}
// SetLastLeaderChangeTime records the time of the most recent leader transition.
// It also snapshots whether the topology already had known volumes at that
// moment. IsWarmingUp uses the snapshot instead of the live MaxVolumeId so a
// fresh cluster that happens to grow its first volume inside the warmup window
// does not retroactively flip into "warming up" state — there is no prior
// topology to wait for on a bootstrap.
func (t *Topology) SetLastLeaderChangeTime(ts time.Time) {
hadVolumes := t.GetMaxVolumeId() > 0
t.lastLeaderChangeTimeLock.Lock()
defer t.lastLeaderChangeTimeLock.Unlock()
t.lastLeaderChangeTime = ts
t.hadVolumesAtLeaderChange = hadVolumes
}
// GetLastLeaderChangeTime returns the time of the most recent leader transition.
func (t *Topology) GetLastLeaderChangeTime() time.Time {
t.lastLeaderChangeTimeLock.RLock()
defer t.lastLeaderChangeTimeLock.RUnlock()
return t.lastLeaderChangeTime
}
// IsWarmingUp returns true if the master recently became leader and may not yet
// have a complete topology. After a leader change or restart, volume servers need
// up to WarmupPulseMultiplier heartbeat intervals to reconnect and report their volumes.
// Returns false on a fresh cluster start — i.e. when no volumes existed at the
// time of the leader change — since there is no prior topology state to wait for.
// Checking the *live* MaxVolumeId here would make a bootstrapping cluster flip
// into warming-up the moment its first volume is grown, which manifested as a
// 15-second window of spurious Unavailable errors on AssignVolume for workloads
// that start writing immediately (see #8777).
func (t *Topology) IsWarmingUp() bool {
t.lastLeaderChangeTimeLock.RLock()
lastChange := t.lastLeaderChangeTime
hadVolumes := t.hadVolumesAtLeaderChange
t.lastLeaderChangeTimeLock.RUnlock()
if !hadVolumes || lastChange.IsZero() {
return false
}
return time.Since(lastChange) < t.WarmupDuration()
}
// WarmupDuration returns the configured warmup duration based on pulse interval.
func (t *Topology) WarmupDuration() time.Duration {
return time.Duration(t.pulse*WarmupPulseMultiplier) * time.Second
}
// RemainingWarmupDuration returns how much warmup time is left, or 0 if not warming up.
func (t *Topology) RemainingWarmupDuration() time.Duration {
if !t.IsWarmingUp() {
return 0
}
remaining := t.WarmupDuration() - time.Since(t.GetLastLeaderChangeTime())
if remaining < 0 {
return 0
}
return remaining
}
func (t *Topology) IsLeader() bool {
t.RaftServerAccessLock.RLock()
defer t.RaftServerAccessLock.RUnlock()
if t.RaftServer != nil {
if t.RaftServer.State() == raft.Leader {
return true
}
// Directly check leader to avoid re-acquiring lock via MaybeLeader()
leader := pb.ServerAddress(t.RaftServer.Leader())
if leader != "" {
if pb.ServerAddress(t.RaftServer.Name()).Equals(leader) {
return true
}
}
} else if t.HashicorpRaft != nil {
if t.HashicorpRaft.State() == hashicorpRaft.Leader {
return true
}
}
return false
}
func (t *Topology) IsLeaderAndCanRead() bool {
if t.RaftServer != nil {
return t.IsLeader()
} else if t.HashicorpRaft != nil {
return t.IsLeader() && t.DoBarrier()
} else {
return false
}
}
func (t *Topology) DoBarrier() bool {
t.barrierLock.Lock()
defer t.barrierLock.Unlock()
if t.barrierDone {
return true
}
glog.V(0).Infof("raft do barrier")
barrier := t.HashicorpRaft.Barrier(2 * time.Minute)
if err := barrier.Error(); err != nil {
glog.Errorf("failed to wait for barrier, error %s", err)
return false
}
t.barrierDone = true
glog.V(0).Infof("raft do barrier success")
return true
}
func (t *Topology) BarrierReset() {
t.barrierLock.Lock()
defer t.barrierLock.Unlock()
t.barrierDone = false
}
func (t *Topology) Leader() (l pb.ServerAddress, err error) {
exponentialBackoff := backoff.NewExponentialBackOff()
exponentialBackoff.InitialInterval = 100 * time.Millisecond
exponentialBackoff.MaxElapsedTime = 20 * time.Second
leaderNotSelected := errors.New("leader not selected yet")
l, err = backoff.RetryWithData(
func() (l pb.ServerAddress, err error) {
l, err = t.MaybeLeader()
if err == nil && l == "" {
err = leaderNotSelected
}
return l, err
},
exponentialBackoff)
if err == leaderNotSelected {
l = ""
}
return l, err
}
func (t *Topology) MaybeLeader() (l pb.ServerAddress, err error) {
t.RaftServerAccessLock.RLock()
defer t.RaftServerAccessLock.RUnlock()
if t.RaftServer != nil {
l = pb.ServerAddress(t.RaftServer.Leader())
if l == "" && t.RaftServer.State() == raft.Leader {
l = pb.ServerAddress(t.RaftServer.Name())
}
} else if t.HashicorpRaft != nil {
l = pb.ServerAddress(t.HashicorpRaft.Leader())
} else {
err = errors.New("Raft Server not ready yet!")
}
return
}
func (t *Topology) Lookup(collection string, vid needle.VolumeId) (dataNodes []*DataNode) {
// maybe an issue if lots of collections?
if collection == "" {
for _, c := range t.collectionMap.Items() {
if list := c.(*Collection).Lookup(vid); list != nil {
return list
}
}
} else {
if c, ok := t.collectionMap.Find(collection); ok {
return c.(*Collection).Lookup(vid)
}
}
if locations, found := t.LookupEcShards(vid); found {
for _, loc := range locations.Locations {
dataNodes = append(dataNodes, loc...)
}
return dataNodes
}
return nil
}
func (t *Topology) NextVolumeId() (needle.VolumeId, error) {
if !t.IsLeaderAndCanRead() {
return 0, fmt.Errorf("as leader can not read yet")
}
vid := t.GetMaxVolumeId()
next := vid.Next()
t.RaftServerAccessLock.RLock()
defer t.RaftServerAccessLock.RUnlock()
if t.RaftServer != nil {
if _, err := t.RaftServer.Do(NewMaxVolumeIdCommand(next, t.GetTopologyId())); err != nil {
return 0, err
}
} else if t.HashicorpRaft != nil {
b, err := json.Marshal(NewMaxVolumeIdCommand(next, t.GetTopologyId()))
if err != nil {
return 0, fmt.Errorf("failed marshal NewMaxVolumeIdCommand: %+v", err)
}
if future := t.HashicorpRaft.Apply(b, time.Second); future.Error() != nil {
return 0, future.Error()
}
}
return next, nil
}
// DefaultNeedleSizeEstimate is the fallback per-file-ID size estimate when
// the client does not provide an expected data size.
const DefaultNeedleSizeEstimate uint64 = 1024 * 1024 // 1 MB
func (t *Topology) PickForWrite(requestedCount uint64, option *VolumeGrowOption, volumeLayout *VolumeLayout, expectedDataSize uint64) (fileId string, count uint64, volumeLocationList *VolumeLocationList, shouldGrow bool, err error) {
var vid needle.VolumeId
vid, count, volumeLocationList, shouldGrow, err = volumeLayout.PickForWrite(requestedCount, option)
if err != nil {
return "", 0, nil, shouldGrow, fmt.Errorf("failed to find writable volumes for collection:%s replication:%s ttl:%s error: %v", option.Collection, option.ReplicaPlacement.String(), option.Ttl.String(), err)
}
if volumeLocationList == nil || volumeLocationList.Length() == 0 {
return "", 0, nil, shouldGrow, fmt.Errorf("%s available for collection:%s replication:%s ttl:%s", NoWritableVolumes, option.Collection, option.ReplicaPlacement.String(), option.Ttl.String())
}
// Track estimated assigned bytes to spread load between heartbeats. A flat
// fallback overcharges a small-file workload enough to mark near-empty
// volumes full, so prefer the volume's own average.
sizePerFile := DefaultNeedleSizeEstimate
if expectedDataSize > 0 {
sizePerFile = expectedDataSize
} else if vi, infoErr := volumeLocationList.Head().GetVolumesById(vid); infoErr == nil && vi.FileCount > 0 {
if avg := vi.Size / uint64(vi.FileCount); avg > 0 {
sizePerFile = avg
}
}
pendingBytes := min(uint64(count)*sizePerFile, uint64(math.MaxInt64))
if volumeLayout.RecordAssign(vid, int64(pendingBytes)) {
volumeLayout.AdjustActiveVolumeCountForFull(vid)
}
nextFileId := t.Sequence.NextFileId(requestedCount)
fileId = needle.NewFileId(vid, nextFileId, rand.Uint32()).String()
return fileId, count, volumeLocationList, shouldGrow, nil
}
func (t *Topology) GetVolumeLayout(collectionName string, rp *super_block.ReplicaPlacement, ttl *needle.TTL, diskType types.DiskType) *VolumeLayout {
return t.collectionMap.Get(collectionName, func() interface{} {
return NewCollection(collectionName, t.volumeSizeLimit, t.replicationAsMin)
}).(*Collection).GetOrCreateVolumeLayout(rp, ttl, diskType)
}
// DecayQuietVolumeSizes decays pending assign estimates across every layout.
// A volume that changed reports within a pulse, so two quiet pulses mean the
// size on record is the size there is.
func (t *Topology) DecayQuietVolumeSizes() {
quietCutoff := time.Duration(2*t.pulse) * time.Second
for _, c := range t.collectionMap.Items() {
for _, vl := range c.(*Collection).GetAllVolumeLayouts() {
vl.DecayQuietVolumeSizes(quietCutoff)
}
}
}
// CollectionVolumeStats aggregates stats across all volume layouts and EC
// volumes of one collection, or across every collection when collectionName is
// empty.
func (t *Topology) CollectionVolumeStats(collectionName string) *VolumeLayoutStats {
ret := &VolumeLayoutStats{}
var collections []*Collection
if collectionName == "" {
for _, c := range t.collectionMap.Items() {
collections = append(collections, c.(*Collection))
}
} else if c, found := t.FindCollection(collectionName); found {
collections = append(collections, c)
}
for _, c := range collections {
for _, vl := range c.GetAllVolumeLayouts() {
stats := vl.Stats()
ret.TotalSize += stats.TotalSize
ret.UsedSize += stats.UsedSize
ret.LogicalUsedSize += stats.LogicalUsedSize
ret.FileCount += stats.FileCount
}
}
// EC volumes live outside collectionMap, so a collection whose volumes are
// all encoded has no layout left to report them
ecStats := t.CollectionEcVolumeStats(collectionName)
ret.TotalSize += ecStats.TotalSize
ret.UsedSize += ecStats.UsedSize
ret.LogicalUsedSize += ecStats.LogicalUsedSize
ret.FileCount += ecStats.FileCount
return ret
}
func (t *Topology) ListCollections(includeNormalVolumes, includeEcVolumes bool) (ret []string) {
found := make(map[string]bool)
if includeNormalVolumes {
t.collectionMap.RLock()
for _, c := range t.collectionMap.Items() {
found[c.(*Collection).Name] = true
}
t.collectionMap.RUnlock()
}
if includeEcVolumes {
t.ecShardMapLock.RLock()
for _, ecVolumeLocation := range t.ecShardMap {
found[ecVolumeLocation.Collection] = true
}
t.ecShardMapLock.RUnlock()
}
for k := range found {
ret = append(ret, k)
}
slices.Sort(ret)
return ret
}
func (t *Topology) FindCollection(collectionName string) (*Collection, bool) {
c, hasCollection := t.collectionMap.Find(collectionName)
if !hasCollection {
return nil, false
}
return c.(*Collection), hasCollection
}
func (t *Topology) DeleteCollection(collectionName string) {
// The layouts vanish with the collection, but every location they served
// holds a bit in its node's lookup digest. Left in place, those bits keep
// the node's held and servable digests apart forever, and the master asks
// for the full volume list on every heartbeat from then on.
// Unpublish first so a racing registration re-resolves into a fresh collection.
collection, found := t.FindCollection(collectionName)
t.collectionMap.Delete(collectionName)
if !found {
return
}
for _, vl := range collection.GetAllVolumeLayouts() {
vl.releaseLookupOwnership()
}
}
func (t *Topology) DeleteLayout(collectionName string, rp *super_block.ReplicaPlacement, ttl *needle.TTL, diskType types.DiskType) {
collection, found := t.FindCollection(collectionName)
if !found {
return
}
collection.DeleteVolumeLayout(rp, ttl, diskType)
if len(collection.storageType2VolumeLayout.Items()) == 0 {
t.DeleteCollection(collectionName)
}
}
func (t *Topology) RegisterVolumeLayout(v storage.VolumeInfo, dn *DataNode) {
diskType := types.ToDiskType(v.DiskType)
for {
vl := t.GetVolumeLayout(v.Collection, v.ReplicaPlacement, v.Ttl, diskType)
if vl.RegisterVolume(&v, dn) {
vl.EnsureCorrectWritables(&v)
return
}
// Dropped with its collection; the next lookup creates a fresh one.
}
}
func (t *Topology) UnRegisterVolumeLayout(v storage.VolumeInfo, dn *DataNode) {
glog.Infof("removing volume info: %+v from %v", v, dn.id)
if v.ReplicaPlacement.GetCopyCount() > 1 {
stats.MasterReplicaPlacementMismatch.WithLabelValues(v.Collection, v.Id.String()).Set(0)
}
diskType := types.ToDiskType(v.DiskType)
volumeLayout := t.GetVolumeLayout(v.Collection, v.ReplicaPlacement, v.Ttl, diskType)
volumeLayout.UnRegisterVolume(&v, dn)
if volumeLayout.isEmpty() {
t.DeleteLayout(v.Collection, v.ReplicaPlacement, v.Ttl, diskType)
}
}
func (t *Topology) DataCenterExists(dcName string) bool {
return dcName == "" || t.GetDataCenter(dcName) != nil
}
func (t *Topology) GetDataCenter(dcName string) (dc *DataCenter) {
t.RLock()
defer t.RUnlock()
for _, c := range t.children {
dc = c.(*DataCenter)
if string(dc.Id()) == dcName {
return dc
}
}
return dc
}
func (t *Topology) GetOrCreateDataCenter(dcName string) *DataCenter {
t.Lock()
defer t.Unlock()
for _, c := range t.children {
dc := c.(*DataCenter)
if string(dc.Id()) == dcName {
return dc
}
}
dc := NewDataCenter(dcName)
t.doLinkChildNode(dc)
return dc
}
func (t *Topology) ListDataCenters() (dcs []string) {
t.RLock()
defer t.RUnlock()
for _, c := range t.children {
dcs = append(dcs, string(c.(*DataCenter).Id()))
}
return dcs
}
func (t *Topology) ListDCAndRacks() (dcs map[NodeId][]NodeId) {
t.RLock()
defer t.RUnlock()
dcs = make(map[NodeId][]NodeId)
for _, dcNode := range t.children {
dcNodeId := dcNode.(*DataCenter).Id()
for _, rackNode := range dcNode.Children() {
dcs[dcNodeId] = append(dcs[dcNodeId], rackNode.(*Rack).Id())
}
}
return dcs
}
func (t *Topology) SyncDataNodeRegistration(volumes []*master_pb.VolumeInformationMessage, dn *DataNode) (newVolumes, deletedVolumes []storage.VolumeInfo) {
// convert into in memory struct storage.VolumeInfo
volumeInfos := make([]storage.VolumeInfo, 0, len(volumes))
for _, v := range volumes {
if vi, err := storage.NewVolumeInfo(v); err == nil {
volumeInfos = append(volumeInfos, vi)
} else {
glog.V(0).Infof("Fail to convert joined volume information: %v", err)
}
}
// find out the delta volumes
newVolumes, deletedVolumes, _ = dn.UpdateVolumes(volumeInfos)
for _, v := range newVolumes {
t.RegisterVolumeLayout(v, dn)
}
for _, v := range deletedVolumes {
t.UnRegisterVolumeLayout(v, dn)
}
// Update effective sizes for all reported volumes (decay pending estimates).
// If decay brings a volume eagerly removed by RecordAssign back under the
// writable threshold, restore the matching activeVolumeCount.
for _, v := range volumeInfos {
if v.ReplicaPlacement == nil {
continue
}
diskType := types.ToDiskType(v.DiskType)
vl := t.GetVolumeLayout(v.Collection, v.ReplicaPlacement, v.Ttl, diskType)
// Self-heal: a volume reported by the data node but missing from the
// lookup index is re-registered. This repairs the split left by a
// disconnect/reconnect race, where UnRegisterDataNode dropped the volume
// from vid2location but the reconnecting full heartbeat skipped it
// (still in the disk map, so UpdateVolumes did not report it as new).
// Without this, the volume stays visible in volume.list/admin UI yet
// LookupVolume returns "volume id not found".
if !vl.HasDataNode(v.Id, dn) {
for !vl.RegisterVolume(&v, dn) {
// Dropped with its collection; the next lookup creates a fresh
// one, which the calls below must use too.
vl = t.GetVolumeLayout(v.Collection, v.ReplicaPlacement, v.Ttl, diskType)
}
// Volumes new to the disk map were registered above, so reaching
// here means only the lookup index had lost it. Clients were told
// it went when the node dropped out, so the repair has to tell them
// it is back.
newVolumes = append(newVolumes, v)
}
vl.UpdateOversizedState(&v, dn)
if vl.UpdateVolumeSize(v.Id, v.Size, v.CompactRevision, true) {
vl.AdjustActiveVolumeCountAfterRecovery(v.Id)
}
vl.EnsureCorrectWritables(&v)
}
return
}
func (t *Topology) IncrementalSyncDataNodeRegistration(newVolumes, deletedVolumes []*master_pb.VolumeShortInformationMessage, dn *DataNode) {
var newVis, oldVis []storage.VolumeInfo
for _, v := range newVolumes {
vi, err := storage.NewVolumeInfoFromShort(v)
if err != nil {
glog.V(0).Infof("NewVolumeInfoFromShort %v: %v", v, err)
continue
}
newVis = append(newVis, vi)
}
for _, v := range deletedVolumes {
vi, err := storage.NewVolumeInfoFromShort(v)
if err != nil {
glog.V(0).Infof("NewVolumeInfoFromShort %v: %v", v, err)
continue
}
oldVis = append(oldVis, vi)
}
dn.DeltaUpdateVolumes(newVis, oldVis)
for _, vi := range newVis {
t.RegisterVolumeLayout(vi, dn)
}
for _, vi := range oldVis {
t.UnRegisterVolumeLayout(vi, dn)
}
return
}
// ApplyVolumeChanges records the volumes a heartbeat reported as changed and
// returns the ones the node did not already have. Only the named volumes are
// touched: unlike a full report, silence about a volume says nothing about
// whether the server still has it.
//
// Most changes are a volume growing, which moves no location, so returning
// only the arrivals keeps a busy cluster from telling every client about
// volumes they can already reach.
func (t *Topology) ApplyVolumeChanges(changed []*master_pb.VolumeInformationMessage, dn *DataNode) (newVolumes []storage.VolumeInfo) {
volumeInfos := make([]storage.VolumeInfo, 0, len(changed))
for _, v := range changed {
vi, err := storage.NewVolumeInfo(v)
if err != nil {
glog.V(0).Infof("Fail to convert changed volume information: %v", err)
continue
}
volumeInfos = append(volumeInfos, vi)
}
for _, vi := range volumeInfos {
isNew, _ := dn.AddOrUpdateVolume(vi)
if vi.ReplicaPlacement == nil {
if isNew {
newVolumes = append(newVolumes, vi)
}
continue
}
vl := t.GetVolumeLayout(vi.Collection, vi.ReplicaPlacement, vi.Ttl, types.ToDiskType(vi.DiskType))
// Reaching the lookup index is what makes a volume servable, so a
// volume only that index had lost is an arrival as far as clients are
// concerned: they were told it went when the node dropped out.
becameServable := !vl.HasDataNode(vi.Id, dn)
for becameServable && !vl.RegisterVolume(&vi, dn) {
// Dropped with its collection; the next lookup creates a fresh one.
vl = t.GetVolumeLayout(vi.Collection, vi.ReplicaPlacement, vi.Ttl, types.ToDiskType(vi.DiskType))
}
if isNew || becameServable {
newVolumes = append(newVolumes, vi)
}
vl.UpdateOversizedState(&vi, dn)
if vl.UpdateVolumeSize(vi.Id, vi.Size, vi.CompactRevision, true) {
vl.AdjustActiveVolumeCountAfterRecovery(vi.Id)
}
vl.EnsureCorrectWritables(&vi)
}
return newVolumes
}
func (t *Topology) DataNodeRegistration(dcName, rackName string, dn *DataNode) {
if dn.Parent() != nil {
return
}
// registration to topo
dc := t.GetOrCreateDataCenter(dcName)
rack := dc.GetOrCreateRack(rackName)
rack.LinkChildNode(dn)
glog.Infof("[%s] reLink To topo ", dn.Id())
}
// IsVacuumDisabled returns true if vacuum is disabled by either the
// operator or the plugin monitor.
func (t *Topology) IsVacuumDisabled() bool {
return t.vacuumDisabledByOperator.Load() || t.vacuumDisabledByPlugin.Load()
}
// DisableVacuum is called by the operator (shell command / manual RPC).
// Only sets the operator flag; does not affect the plugin flag.
func (t *Topology) DisableVacuum() {
glog.V(0).Infof("DisableVacuum (by operator)")
t.vacuumDisabledByOperator.Store(true)
}
// EnableVacuum is called by the operator (shell command / manual RPC).
// Only clears the operator flag; does not affect the plugin flag.
func (t *Topology) EnableVacuum() {
glog.V(0).Infof("EnableVacuum (by operator)")
t.vacuumDisabledByOperator.Store(false)
}
// DisableVacuumByPlugin is called by the admin server's vacuum monitor
// when a vacuum plugin worker connects. Only sets the plugin flag.
func (t *Topology) DisableVacuumByPlugin() {
glog.V(0).Infof("DisableVacuum (by plugin worker)")
t.vacuumDisabledByPlugin.Store(true)
}
// EnableVacuumByPlugin is called by the admin server's vacuum monitor
// when a vacuum plugin worker disconnects. Only clears the plugin flag.
func (t *Topology) EnableVacuumByPlugin() {
glog.V(0).Infof("EnableVacuum (by plugin worker)")
t.vacuumDisabledByPlugin.Store(false)
}
// IsVacuumDisabledByPlugin returns whether the plugin monitor has disabled vacuum.
func (t *Topology) IsVacuumDisabledByPlugin() bool {
return t.vacuumDisabledByPlugin.Load()
}
// SetAdminServerConnectedFunc sets an optional callback used by the vacuum
// safety net to detect when the admin server has disconnected.
func (t *Topology) SetAdminServerConnectedFunc(f func() bool) {
t.adminServerConnectedFunc = f
}
func (t *Topology) GetTopologyId() string {
t.topologyIdLock.RLock()
defer t.topologyIdLock.RUnlock()
return t.topologyId
}
func (t *Topology) SetTopologyId(topologyId string) {
t.topologyIdLock.Lock()
defer t.topologyIdLock.Unlock()
if topologyId == "" {
return
}
if t.topologyId == "" {
t.topologyId = topologyId
return
}
if t.topologyId != topologyId {
glog.Fatalf("Split-brain detected! Current TopologyId is %s, but received %s. Stopping to prevent data corruption.", t.topologyId, topologyId)
}
}