Files
seaweedfs/weed/topology/data_node.go
T
Chris LuandGitHub 0cfca436f1 perf(weed/topology): size the new-volume list from the actual delta (#10613)
A reconnecting volume server reports every volume it has as new, so newVolumes
grew from nil to one entry per volume, reallocating and copying its way there.
Sizing it to len(actualVolumes) instead would allocate the whole list on every
steady-state heartbeat, where nothing is new.

After the deletion pass everything left on the node is also in this heartbeat,
so the difference is exactly what the node is about to gain: all of them on a
reconnect, none in steady state.

First registration of 550k volumes  1041.7 MB -> 667.4 MB
2026-08-07 01:10:11 -07:00

416 lines
11 KiB
Go

package topology
import (
"fmt"
"slices"
"sync/atomic"
"github.com/seaweedfs/seaweedfs/weed/glog"
"github.com/seaweedfs/seaweedfs/weed/pb"
"github.com/seaweedfs/seaweedfs/weed/pb/master_pb"
"github.com/seaweedfs/seaweedfs/weed/storage"
"github.com/seaweedfs/seaweedfs/weed/storage/needle"
"github.com/seaweedfs/seaweedfs/weed/storage/types"
"github.com/seaweedfs/seaweedfs/weed/util"
)
type DataNode struct {
NodeImpl
Ip string
Port int
GrpcPort int
PublicUrl string
LastSeen int64 // unix time in seconds
Counter int // in race condition, the previous dataNode was not dead
IsTerminating bool
MaintenanceMode bool
// diskMetas holds each physical disk's tags, type, and capacity from the
// heartbeat DiskTags, including disks with no volumes or EC shards.
diskMetas map[uint32]diskMeta
}
type diskMeta struct {
tags []string
diskType types.DiskType
maxVolumeCount int64
}
func NewDataNode(id string) *DataNode {
dn := &DataNode{}
dn.id = NodeId(id)
dn.nodeType = "DataNode"
dn.diskUsages = newDiskUsages()
dn.children = make(map[NodeId]Node)
dn.capacityReservations = newCapacityReservations()
dn.NodeImpl.value = dn
return dn
}
func (dn *DataNode) String() string {
dn.RLock()
defer dn.RUnlock()
return fmt.Sprintf("Node:%s, Ip:%s, Port:%d, PublicUrl:%s", dn.NodeImpl.String(), dn.Ip, dn.Port, dn.PublicUrl)
}
func (dn *DataNode) AddOrUpdateVolume(v storage.VolumeInfo) (isNew, isChangedRO bool) {
dn.Lock()
defer dn.Unlock()
return dn.doAddOrUpdateVolume(v)
}
func (dn *DataNode) getOrCreateDisk(diskType string) *Disk {
c, found := dn.children[NodeId(diskType)]
if !found {
c = NewDisk(diskType)
dn.doLinkChildNode(c)
}
disk := c.(*Disk)
return disk
}
func (dn *DataNode) doAddOrUpdateVolume(v storage.VolumeInfo) (isNew, isChanged bool) {
disk := dn.getOrCreateDisk(v.DiskType)
return disk.AddOrUpdateVolume(v)
}
// UpdateVolumes detects new/deleted/changed volumes on a volume server
// used in master to notify master clients of these changes.
func (dn *DataNode) UpdateVolumes(actualVolumes []storage.VolumeInfo) (newVolumes, deletedVolumes, changedVolumes []storage.VolumeInfo) {
actualVolumeIds := make(map[needle.VolumeId]struct{}, len(actualVolumes))
for _, v := range actualVolumes {
actualVolumeIds[v.Id] = struct{}{}
}
dn.Lock()
defer dn.Unlock()
keptCount := 0
for _, c := range dn.children {
disk := c.(*Disk)
for _, v := range disk.RemoveVolumesNotIn(actualVolumeIds) {
glog.V(0).Infoln("Deleting volume id:", v.Id)
deletedVolumes = append(deletedVolumes, v)
deltaDiskUsage := &DiskUsageCounts{}
deltaDiskUsage.volumeCount = -1
if v.IsRemote() {
deltaDiskUsage.remoteVolumeCount = -1
}
if !v.ReadOnly {
deltaDiskUsage.activeVolumeCount = -1
}
disk.UpAdjustDiskUsageDelta(types.ToDiskType(v.DiskType), deltaDiskUsage)
}
keptCount += disk.VolumeCount()
}
// Everything still on the node is also in this heartbeat, so the remainder
// is what the node is about to gain. A steady-state heartbeat gains nothing
// and must not allocate here; a reconnecting server gains all of them.
if addedCount := len(actualVolumes) - keptCount; addedCount > 0 {
newVolumes = make([]storage.VolumeInfo, 0, addedCount)
}
for _, v := range actualVolumes {
isNew, isChanged := dn.doAddOrUpdateVolume(v)
if isNew {
newVolumes = append(newVolumes, v)
}
if isChanged {
changedVolumes = append(changedVolumes, v)
}
}
return
}
func (dn *DataNode) DeltaUpdateVolumes(newVolumes, deletedVolumes []storage.VolumeInfo) {
dn.Lock()
defer dn.Unlock()
for _, v := range deletedVolumes {
disk := dn.getOrCreateDisk(v.DiskType)
_, err := disk.GetVolumesById(v.Id)
if err != nil {
continue
}
disk.DeleteVolumeById(v.Id)
deltaDiskUsage := &DiskUsageCounts{}
deltaDiskUsage.volumeCount = -1
if v.IsRemote() {
deltaDiskUsage.remoteVolumeCount = -1
}
if !v.ReadOnly {
deltaDiskUsage.activeVolumeCount = -1
}
disk.UpAdjustDiskUsageDelta(types.ToDiskType(v.DiskType), deltaDiskUsage)
}
for _, v := range newVolumes {
dn.doAddOrUpdateVolume(v)
}
return
}
func (dn *DataNode) AdjustMaxVolumeCounts(maxVolumeCounts map[string]uint32) {
for diskType, maxVolumeCount := range maxVolumeCounts {
if maxVolumeCount == 0 {
// the volume server may have set the max to zero
continue
}
dt := types.ToDiskType(diskType)
currentDiskUsage := dn.diskUsages.getOrCreateDisk(dt)
currentDiskUsageMaxVolumeCount := atomic.LoadInt64(&currentDiskUsage.maxVolumeCount)
if currentDiskUsageMaxVolumeCount == int64(maxVolumeCount) {
continue
}
disk := dn.getOrCreateDisk(dt.String())
disk.UpAdjustDiskUsageDelta(dt, &DiskUsageCounts{
maxVolumeCount: int64(maxVolumeCount) - currentDiskUsageMaxVolumeCount,
})
}
}
// AdjustDiskUsageBytes records the physical filesystem capacity a volume server
// reports per disk type, applied as a delta so it flows through the same
// aggregation as the volume counts. Mirrors AdjustMaxVolumeCounts; entries with a
// zero total are treated as "not reported" and skipped.
func (dn *DataNode) AdjustDiskUsageBytes(diskTotalBytes, diskFreeBytes map[string]uint64) {
for diskType, totalBytes := range diskTotalBytes {
// Unlike maxVolumeCount, a 0 here is not "unset" but "not reported": let it
// flow through so a later heartbeat that drops physical-capacity reporting
// (e.g. statfs starts failing) clears the stale bytes and the gate falls
// back to slot-only instead of trusting outdated capacity.
dt := types.ToDiskType(diskType)
currentDiskUsage := dn.diskUsages.getOrCreateDisk(dt)
currentTotal := atomic.LoadInt64(&currentDiskUsage.diskTotalBytes)
currentFree := atomic.LoadInt64(&currentDiskUsage.diskFreeBytes)
newTotal := int64(totalBytes)
newFree := int64(diskFreeBytes[diskType])
if currentTotal == newTotal && currentFree == newFree {
continue
}
disk := dn.getOrCreateDisk(dt.String())
disk.UpAdjustDiskUsageDelta(dt, &DiskUsageCounts{
diskTotalBytes: newTotal - currentTotal,
diskFreeBytes: newFree - currentFree,
})
}
}
func (dn *DataNode) GetVolumes() (ret []storage.VolumeInfo) {
dn.RLock()
for _, c := range dn.children {
disk := c.(*Disk)
ret = append(ret, disk.GetVolumes()...)
}
dn.RUnlock()
return ret
}
func (dn *DataNode) GetVolumesById(id needle.VolumeId) (vInfo storage.VolumeInfo, err error) {
dn.RLock()
defer dn.RUnlock()
found := false
for _, c := range dn.children {
disk := c.(*Disk)
vInfo, err = disk.GetVolumesById(id)
if err == nil {
found = true
break
}
}
if found {
return vInfo, nil
} else {
return storage.VolumeInfo{}, fmt.Errorf("volumeInfo not found")
}
}
func (dn *DataNode) GetDataCenter() *DataCenter {
rack := dn.Parent()
if rack == nil {
return nil
}
dcNode := rack.Parent()
if dcNode == nil {
return nil
}
dcValue := dcNode.GetValue()
return dcValue.(*DataCenter)
}
func (dn *DataNode) GetDataCenterId() string {
if dc := dn.GetDataCenter(); dc != nil {
return string(dc.Id())
}
return ""
}
func (dn *DataNode) GetRack() *Rack {
return dn.Parent().(*NodeImpl).value.(*Rack)
}
func (dn *DataNode) GetTopology() *Topology {
p := dn.Parent()
for p.Parent() != nil {
p = p.Parent()
}
t := p.(*Topology)
return t
}
func (dn *DataNode) MatchLocation(ip string, port int) bool {
return dn.Ip == ip && dn.Port == port
}
func (dn *DataNode) Url() string {
return util.JoinHostPort(dn.Ip, dn.Port)
}
func (dn *DataNode) ServerAddress() pb.ServerAddress {
return pb.NewServerAddress(dn.Ip, dn.Port, dn.GrpcPort)
}
type DataNodeInfo struct {
Url string `json:"Url"`
PublicUrl string `json:"PublicUrl"`
Volumes int64 `json:"Volumes"`
EcShards int64 `json:"EcShards"`
Max int64 `json:"Max"`
VolumeIds string `json:"VolumeIds"`
}
func (dn *DataNode) ToInfo() (info DataNodeInfo) {
info.Url = dn.Url()
info.PublicUrl = dn.PublicUrl
// aggregated volume info
var volumeCount, ecShardCount, maxVolumeCount int64
var volumeIds string
for _, diskUsage := range dn.diskUsages.usages {
volumeCount += diskUsage.volumeCount
ecShardCount += diskUsage.ecShardCount
maxVolumeCount += diskUsage.maxVolumeCount
}
for _, disk := range dn.Children() {
d := disk.(*Disk)
volumeIds += " " + d.GetVolumeIds()
}
info.Volumes = volumeCount
info.EcShards = ecShardCount
info.Max = maxVolumeCount
info.VolumeIds = volumeIds
return
}
func (dn *DataNode) ToDataNodeInfo() *master_pb.DataNodeInfo {
m := &master_pb.DataNodeInfo{
Id: string(dn.Id()),
// Start from disk usage counters so empty disks are still represented
// even when there are no volumes/EC shards on this data node yet.
DiskInfos: dn.diskUsages.ToDiskInfo(),
GrpcPort: uint32(dn.GrpcPort),
Address: dn.Url(), // ip:port for connecting to the volume server
}
if m.DiskInfos == nil {
m.DiskInfos = make(map[string]*master_pb.DiskInfo)
}
for diskType, diskInfo := range m.DiskInfos {
if diskInfo == nil {
m.DiskInfos[diskType] = &master_pb.DiskInfo{Type: diskType}
continue
}
diskInfo.Type = diskType
}
for _, c := range dn.Children() {
disk := c.(*Disk)
m.DiskInfos[string(disk.Id())] = disk.ToDiskInfo()
}
dn.RLock()
metas := make(map[uint32]diskMeta, len(dn.diskMetas))
for diskID, meta := range dn.diskMetas {
metas[diskID] = meta
}
dn.RUnlock()
for _, diskInfo := range m.DiskInfos {
if diskInfo == nil {
continue
}
if meta, found := metas[diskInfo.DiskId]; found {
diskInfo.Tags = append([]string(nil), meta.tags...)
}
// Max per physical disk of this type, empty and unavailable (max 0) ones
// included. Emit only when some disk reports capacity, so an older server
// sending all zeros leaves the map nil and falls back.
diskType := types.ToDiskType(diskInfo.Type)
maxByDisk := make(map[uint32]int64)
anyCapacity := false
for diskID, meta := range metas {
if meta.diskType != diskType {
continue
}
if meta.maxVolumeCount > 0 {
anyCapacity = true
}
maxByDisk[diskID] = meta.maxVolumeCount
}
if anyCapacity {
diskInfo.MaxVolumeCountByDisk = maxByDisk
}
}
return m
}
func (dn *DataNode) UpdateDiskTags(tags []*master_pb.DiskTag) {
if len(tags) == 0 {
return
}
// DiskTags is the full list on each full heartbeat; rebuild fresh to drop
// removed disks.
metas := make(map[uint32]diskMeta, len(tags))
for _, tagInfo := range tags {
if tagInfo == nil {
continue
}
metas[tagInfo.DiskId] = diskMeta{
tags: append([]string(nil), tagInfo.Tags...),
diskType: types.ToDiskType(tagInfo.Type),
maxVolumeCount: tagInfo.MaxVolumeCount,
}
}
dn.Lock()
dn.diskMetas = metas
dn.Unlock()
}
// GetVolumeIds returns the human readable volume ids limited to count of max 100.
func (dn *DataNode) GetVolumeIds() string {
dn.RLock()
defer dn.RUnlock()
existingVolumes := dn.getVolumes()
ids := make([]int, 0, len(existingVolumes))
for k := range existingVolumes {
ids = append(ids, int(k))
}
slices.Sort(ids)
return util.HumanReadableIntsMax(100, ids...)
}
func (dn *DataNode) getVolumes() []storage.VolumeInfo {
var existingVolumes []storage.VolumeInfo
for _, c := range dn.children {
disk := c.(*Disk)
existingVolumes = append(existingVolumes, disk.GetVolumes()...)
}
return existingVolumes
}