Files
seaweedfs/weed/worker/tasks/ec_balance/detection.go
T
Chris Lu 4f50c5b0d4 feat: throughput limits for replicate, EC shard, and worker-driven moves (#10749)
* feat: throughput limits for replicate, EC shard, and worker-driven moves

VolumeCopy was the only rate-limitable transfer; EC shard copies,
replica creation, and worker-driven moves all ran at whatever the
receiving server's maintenance rate allowed, with no per-operation
control.

- proto: VolumeEcShardsCopyRequest and the balance / ec_balance task
  params and configs gain io_byte_per_second; 0 keeps today's behavior
  (the volume server's own maintenance rate governs).
- volume server: VolumeEcShardsCopy throttles with one WriteThrottler
  per request, shared across the shard, .ecx, .ecj, .vif, and .ecsum
  copies so the limit caps the transfer as a whole - the same shape as
  VolumeCopy.
- volume_move: ReplicateVolume accepts the limit; EcMoveOptions carries
  it through MoveEcShards/CopyAndMountEcShards into the copy request,
  with fake-client tests asserting propagation.
- shell: ec.balance gains -ioBytePerSecond; volume.tier.move's
  replication top-up honors the command's existing -ioBytePerSecond
  instead of running unthrottled.
- worker: balance and ec_balance configs gain io_byte_per_second
  (surfaced in the admin config schema), carried through detection and
  plugin job parameters into task params and handed to the shared
  mover; batch balance jobs inherit the limit from their detection
  results.

The limit is per copy stream, so maxParallelization multiplies the
aggregate ceiling.

* worker plugins: expose io_byte_per_second in the plugin config and derive it

The plugin-driven detection path derives its task Config from the
plugin configuration values, and both balance and ec_balance left
IoBytePerSecond at zero there - a configured limit silently reverted
to the server maintenance rate. Both derive functions now read the
field (clamped at zero), and the plugin descriptors expose it with
defaults so the configuration form carries it.
2026-08-13 13:22:58 -07:00

328 lines
12 KiB
Go

package ec_balance
import (
"context"
"fmt"
"time"
"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/pb/worker_pb"
"github.com/seaweedfs/seaweedfs/weed/storage/erasure_coding"
"github.com/seaweedfs/seaweedfs/weed/storage/erasure_coding/ecbalancer"
"github.com/seaweedfs/seaweedfs/weed/storage/super_block"
storagetypes "github.com/seaweedfs/seaweedfs/weed/storage/types"
"github.com/seaweedfs/seaweedfs/weed/topology/balancer"
"github.com/seaweedfs/seaweedfs/weed/util/wildcard"
"github.com/seaweedfs/seaweedfs/weed/worker/tasks/base"
"github.com/seaweedfs/seaweedfs/weed/worker/types"
)
// Detection builds an EC balance topology snapshot from the cluster's active
// topology, runs the shared ecbalancer planner, and converts the planned moves
// into worker task proposals. The balancing policy lives in
// weed/storage/erasure_coding/ecbalancer, shared with the shell ec.balance
// command so the two cannot drift.
func Detection(
ctx context.Context,
metrics []*types.VolumeHealthMetrics,
clusterInfo *types.ClusterInfo,
config base.TaskConfig,
maxResults int,
) ([]*types.TaskDetectionResult, bool, error) {
if !config.IsEnabled() {
return nil, false, nil
}
ecConfig := config.(*Config)
if maxResults < 0 {
maxResults = 0
}
if clusterInfo == nil || clusterInfo.ActiveTopology == nil {
return nil, false, fmt.Errorf("active topology not available for EC balance detection")
}
topoInfo := clusterInfo.ActiveTopology.GetTopologyInfo()
if topoInfo == nil {
return nil, false, fmt.Errorf("topology info not available")
}
topo, nodeCount, volumeRatio := buildBalancerTopology(topoInfo, ecConfig)
if nodeCount < ecConfig.MinServerCount {
glog.V(1).Infof("EC balance: only %d servers, need at least %d", nodeCount, ecConfig.MinServerCount)
return nil, false, nil
}
replicaPlacement := resolveReplicaPlacement(ecConfig, clusterInfo)
if ctx != nil {
if err := ctx.Err(); err != nil {
return nil, false, err
}
}
// Canonical disk type for placement/execution: "hdd" -> "" (HardDriveType),
// matching the topology's disk keys and the volume server's move RPCs.
normalizedDiskType := storagetypes.ToDiskType(ecConfig.DiskType).String()
moves := ecbalancer.Plan(topo, ecbalancer.Options{
DiskType: normalizedDiskType,
ImbalanceThreshold: ecConfig.ImbalanceThreshold,
ReplicaPlacement: replicaPlacement,
Ratio: func(collection string) (int, int) {
return resolveECRatio(clusterInfo, collection)
},
// Prefer each volume's own heartbeat-reported ratio over the collection
// default so a mixed-ratio collection is spread per volume; 0 defers to
// resolveECRatio (and is the always-0 OSS case).
VolumeRatio: volumeRatio,
// Move incrementally across detection cycles rather than draining a rack
// in one batch; the scheduler re-evaluates each cycle.
GlobalMaxMovesPerRack: 10,
// Balance heterogeneous-capacity racks by fractional fullness.
GlobalUtilizationBased: true,
})
if len(moves) == 0 {
return nil, false, nil
}
hasMore := false
if maxResults > 0 && len(moves) > maxResults {
moves = moves[:maxResults]
hasMore = true
}
now := time.Now()
results := make([]*types.TaskDetectionResult, 0, len(moves))
for i, m := range moves {
taskID := fmt.Sprintf("ec_balance_%d_%d_%s_%s_%d_%d",
m.VolumeID, m.ShardID, m.SourceNode, m.TargetNode, now.UnixNano(), i)
results = append(results, &types.TaskDetectionResult{
TaskID: taskID,
TaskType: types.TaskTypeECBalance,
VolumeID: m.VolumeID,
Server: m.SourceNode,
Collection: m.Collection,
Priority: movePhasePriority(m.Phase),
Reason: fmt.Sprintf("EC shard %d.%d %s: %s → %s",
m.VolumeID, m.ShardID, m.Phase, m.SourceNode, m.TargetNode),
ScheduleAt: now,
TypedParams: &worker_pb.TaskParams{
TaskId: taskID,
VolumeId: m.VolumeID,
Collection: m.Collection,
Sources: []*worker_pb.TaskSource{{
Node: m.SourceNode,
DiskId: m.SourceDisk,
Rack: m.SourceRack,
ShardIds: []uint32{uint32(m.ShardID)},
}},
Targets: []*worker_pb.TaskTarget{{
Node: m.TargetNode,
DiskId: m.TargetDisk,
Rack: m.TargetRack,
ShardIds: []uint32{uint32(m.ShardID)},
}},
TaskParams: &worker_pb.TaskParams_EcBalanceParams{
EcBalanceParams: &worker_pb.EcBalanceTaskParams{
DiskType: normalizedDiskType,
DedupKeepNode: m.KeepNode,
TimeoutSeconds: 600,
IoBytePerSecond: ecConfig.IoBytePerSecond,
},
},
},
})
}
glog.V(1).Infof("EC balance detection: %d moves proposed", len(results))
return results, hasMore, nil
}
// buildBalancerTopology builds an ecbalancer.Topology from the master topology,
// applying the data-center, disk-type, and collection filters. Rack keys are
// dc:rack composites to avoid cross-DC name collisions. Per-disk free capacity
// is split evenly from the node total because the wire collapses same-type disks.
// Returns the topology, the number of eligible nodes (for MinServerCount), and a
// per-volume ratio lookup built from each shard's heartbeat (0,0 when unreported,
// e.g. always in OSS) which Plan prefers over the collection ratio for mixed-ratio
// clusters.
func buildBalancerTopology(topoInfo *master_pb.TopologyInfo, config *Config) (*ecbalancer.Topology, int, func(collection string, vid uint32) (int, int)) {
topo := ecbalancer.NewTopology()
allowedCollections := wildcard.CompileWildcardMatchers(config.CollectionFilter)
type volRatioKey struct {
collection string
vid uint32
}
volRatios := make(map[volRatioKey][2]int)
// Normalize the disk-type filter: "hdd" (and the default "") map to the
// HardDriveType, which the topology reports under the empty-string key. Keep a
// separate "filter requested" flag so a configured "hdd" still filters to HDD
// disks instead of being mistaken for "all disk types".
filterByDiskType := config.DiskType != ""
wantDiskType := storagetypes.ToDiskType(config.DiskType).String()
nodeCount := 0
for _, dc := range topoInfo.DataCenterInfos {
if config.DataCenterFilter != "" {
matchers := wildcard.CompileWildcardMatchers(config.DataCenterFilter)
if !wildcard.MatchesAnyWildcard(matchers, dc.Id) {
continue
}
}
for _, rack := range dc.RackInfos {
rackKey := dc.Id + ":" + rack.Id
for _, dn := range rack.DataNodeInfos {
freeSlots := 0
diskTypeOf := make(map[uint32]string) // physical disk_id -> disk type
diskShardCount := make(map[uint32]int)
fullDiskTypes := make(map[string]bool) // physically near-full, ineligible as a target
hasMatchingDisk := false
for diskType, diskInfo := range dn.DiskInfos {
if filterByDiskType && diskType != wantDiskType {
continue
}
hasMatchingDisk = true
// Don't place EC shards on a physically near-full disk, even if slot
// math says it has room (an over-set maxVolumeCount hides real
// fullness). Statfs free bytes already include EC shard files.
if balancer.DiskTooFullAfter(diskInfo.DiskTotalBytes, diskInfo.DiskFreeBytes, 0, balancer.DefaultMaxDiskUsagePercent) {
fullDiskTypes[diskType] = true
}
fs := int(diskInfo.MaxVolumeCount-diskInfo.VolumeCount)*erasure_coding.DataShardsCount - countEcShards(diskInfo.EcShardInfos)
if fs > 0 && !fullDiskTypes[diskType] {
freeSlots += fs
}
// Discover physical disks from regular volumes too, so an
// EC-empty disk is still a candidate destination.
for _, vi := range diskInfo.VolumeInfos {
if _, ok := diskTypeOf[vi.DiskId]; !ok {
diskTypeOf[vi.DiskId] = diskType
}
}
for _, eci := range diskInfo.EcShardInfos {
if _, ok := diskTypeOf[eci.DiskId]; !ok {
diskTypeOf[eci.DiskId] = diskType
}
// Disk occupancy counts ALL volumes' shards (capacity model),
// independent of the collection filter below.
diskShardCount[eci.DiskId] += erasure_coding.GetShardCount(eci)
}
}
if !hasMatchingDisk {
continue
}
node := topo.AddNode(dn.Id, dc.Id, rackKey, freeSlots)
// Group servers sharing a host so a volume's shards spread across
// machines, not just nodes (servers on one host are one fault domain).
node.SetHost(pb.NewServerAddressFromDataNode(dn).ToHost())
// Spread the node's free slots only over its non-full disks, so a
// physically full disk type doesn't dilute the share the usable disks
// advertise (its own disks get 0 below). The total is preserved.
nonFullDiskCount := 0
for _, dt := range diskTypeOf {
if !fullDiskTypes[dt] {
nonFullDiskCount++
}
}
perDiskFree := 0
if nonFullDiskCount > 0 && freeSlots > 0 {
perDiskFree = freeSlots / nonFullDiskCount
}
for diskID, diskType := range diskTypeOf {
diskFree := perDiskFree
if fullDiskTypes[diskType] {
diskFree = 0
}
node.AddDisk(diskID, diskType, diskFree, diskShardCount[diskID])
}
// Add shards only for volumes whose collection passes the filter;
// those are the volumes the planner will balance.
for diskType, diskInfo := range dn.DiskInfos {
if filterByDiskType && diskType != wantDiskType {
continue
}
for _, eci := range diskInfo.EcShardInfos {
if len(allowedCollections) > 0 && !wildcard.MatchesAnyWildcard(allowedCollections, eci.Collection) {
continue
}
node.AddShards(eci.Id, eci.Collection, eci.DiskId, erasure_coding.ShardBits(eci.EcIndexBits))
if d, p := ecbalancer.VolumeShardRatio(eci); d > 0 || p > 0 {
volRatios[volRatioKey{eci.Collection, eci.Id}] = [2]int{d, p}
}
}
}
nodeCount++
}
}
}
volumeRatio := func(collection string, vid uint32) (int, int) {
r := volRatios[volRatioKey{collection, vid}]
return r[0], r[1]
}
return topo, nodeCount, volumeRatio
}
// resolveECRatio returns the (dataShards, parityShards) for a collection from the
// admin EC config snapshot when present, else the local default. This keeps the
// enterprise-only custom-ratio plumbing out of the shared planner.
func resolveECRatio(_ *types.ClusterInfo, _ string) (int, int) {
// Custom EC ratios are an enterprise feature; OSS uses the standard scheme.
return normalizeECShardCounts(0, 0)
}
// resolveReplicaPlacement picks the EC shard replica placement constraint: an
// explicit config value wins; otherwise it falls back to the master's default
// replication (matching the shell ec.balance default). A missing, invalid, or
// zero-replication value yields nil, meaning even spread / no constraint.
func resolveReplicaPlacement(ecConfig *Config, clusterInfo *types.ClusterInfo) *super_block.ReplicaPlacement {
clusterDefault := ""
if clusterInfo != nil {
clusterDefault = clusterInfo.DefaultReplicaPlacement
}
return super_block.ResolveReplicaPlacement(ecConfig.ReplicaPlacement, clusterDefault)
}
func normalizeECShardCounts(dataShards, parityShards int) (int, int) {
if dataShards <= 0 {
dataShards = erasure_coding.DataShardsCount
}
if parityShards <= 0 {
parityShards = erasure_coding.ParityShardsCount
}
return dataShards, parityShards
}
func countEcShards(ecShardInfos []*master_pb.VolumeEcShardInformationMessage) int {
count := 0
for _, eci := range ecShardInfos {
count += erasure_coding.GetShardCount(eci)
}
return count
}
func movePhasePriority(phase string) types.TaskPriority {
switch phase {
case "dedup":
return types.TaskPriorityHigh
case "cross_rack":
return types.TaskPriorityMedium
default:
return types.TaskPriorityLow
}
}