Files
seaweedfs/test/erasure_coding/multidisk_shardloss_test.go
T
Chris Lu 3825035f07 test(ec): deterministically populate disks before multi-disk EC balance check (#9611)
The disk-spread assertion raced volume growth and heartbeats. volume.grow
-count is a writable-target topup, not add-N, and swallows partial-failure
errors, so one grow could leave a node's data on a single disk; ec.encode
then piles all that node's shards there and ec.balance can't spread them.

Retry grow on under-spread nodes until the master topology shows every node
holding volumes on at least two physical disks, then encode.
2026-05-21 09:39:55 -07:00

266 lines
9.6 KiB
Go

package erasure_coding
import (
"context"
"fmt"
"path/filepath"
"regexp"
"strconv"
"strings"
"testing"
"time"
"github.com/seaweedfs/seaweedfs/weed/pb/master_pb"
"github.com/seaweedfs/seaweedfs/weed/shell"
"github.com/seaweedfs/seaweedfs/weed/storage/needle"
"github.com/stretchr/testify/assert"
"github.com/stretchr/testify/require"
"google.golang.org/grpc"
)
// TestMultiDiskECBalanceNoShardLoss is the end-to-end regression for issue 9593.
// It runs a real cluster of multi-disk volume servers (3 servers x 4 disks),
// EC-encodes a volume, then runs ec.balance, asserting hard invariants the older
// integration tests only logged:
//
// - after encode the full set of 14 EC shards exists,
// - ec.balance never loses a shard (still 14 distinct shards afterwards),
// - shards end up spread across more than one disk per node, and
// - cluster.status counts physical disks (not one per node) and matches the
// real on-disk distribution.
func TestMultiDiskECBalanceNoShardLoss(t *testing.T) {
if testing.Short() {
t.Skip("Skipping multi-disk EC integration test in short mode")
}
testDir := t.TempDir()
ctx, cancel := context.WithTimeout(context.Background(), 240*time.Second)
defer cancel()
cluster, err := startMultiDiskCluster(ctx, testDir)
require.NoError(t, err)
defer cluster.Stop()
require.NoError(t, waitForServer("127.0.0.1:9334", 30*time.Second))
for i := 0; i < 3; i++ {
require.NoError(t, waitForServer(fmt.Sprintf("127.0.0.1:809%d", i), 30*time.Second))
}
t.Log("waiting for multi-disk volume servers to register...")
time.Sleep(10 * time.Second)
commandEnv := shell.NewCommandEnv(&shell.ShellOptions{
Masters: stringPtr("127.0.0.1:9334"),
GrpcDialOption: grpc.WithInsecure(),
FilerGroup: stringPtr("default"),
})
connectToMasterAndSync(ctx, t, commandEnv)
// Upload enough small files that the volume holds real data to encode.
var volumeId needle.VolumeId
for retry := 0; retry < 5; retry++ {
volumeId, err = uploadTestDataToMaster([]byte(strings.Repeat("multidisk-ec-9593 ", 64)), "127.0.0.1:9334")
if err == nil {
break
}
time.Sleep(3 * time.Second)
}
require.NoError(t, err, "failed to upload test data")
for i := 0; i < 40; i++ {
if _, e := uploadTestDataToMaster([]byte(strings.Repeat("filler ", 128)), "127.0.0.1:9334"); e != nil {
break
}
}
t.Logf("using volume %d", volumeId)
time.Sleep(3 * time.Second)
// Populate every server's disks with volumes so the encode can see and target
// each physical disk. The master only enumerates disks that already hold a
// volume or EC shard — an empty disk leaves no trace in the topology (heartbeats
// aggregate capacity per disk type, not per physical disk). ec.encode therefore
// spreads a volume's shards only across the disks the master already knows hold
// data on each node; if a node's data sits on a single disk, all its shards land
// there and ec.balance cannot redistribute them (it has no within-node
// cross-disk move). So spreading must be set up before encoding.
//
// volume.grow only tops up toward a writable target and stops on the first
// allocation error, so a single -count grow can create far fewer volumes than
// asked and leave a node on one disk. Grow repeatedly on the nodes that have not
// spread yet (the volume server places each new volume on its least-loaded disk)
// until the master's topology shows every node holding volumes on at least two
// physical disks. This makes the multi-disk layout — and thus the post-encode
// disk spread — deterministic instead of racing volume-growth and heartbeat.
require.Eventually(t, func() bool {
spread := nodeVolumeDiskCounts(t, commandEnv)
if len(spread) == 3 && allAtLeast(spread, 2) {
return true
}
for i := 0; i < 3; i++ {
server := fmt.Sprintf("127.0.0.1:809%d", i)
if spread[server] < 2 {
captureCommandOutput(t, shell.Commands[findCommandIndex("volume.grow")],
[]string{"-collection", "test", "-dataNode", server, "-count", "4"}, commandEnv)
}
}
return false
}, 60*time.Second, 2*time.Second,
"volumes never spread across >=2 disks on all 3 nodes")
locked, unlock := tryLockWithTimeout(t, commandEnv, 15*time.Second)
require.True(t, locked, "could not acquire shell lock")
defer unlock()
// EC-encode the volume.
out, err := captureCommandOutput(t, shell.Commands[findCommandIndex("ec.encode")],
[]string{"-volumeId", fmt.Sprintf("%d", volumeId), "-collection", "test", "-force"}, commandEnv)
t.Logf("ec.encode output:\n%s", out)
require.NoError(t, err, "ec.encode failed")
// All 14 shards must exist after encoding.
require.Eventually(t, func() bool {
return len(collectDistinctShardIDs(testDir, uint32(volumeId))) == erasureShardCount
}, 30*time.Second, time.Second, "expected all %d EC shards after encode, got %v",
erasureShardCount, collectDistinctShardIDs(testDir, uint32(volumeId)))
beforeBalance := collectDistinctShardIDs(testDir, uint32(volumeId))
t.Logf("after encode: %d distinct shards on %d disks", len(beforeBalance), disksWithShards(testDir, uint32(volumeId)))
// Run ec.balance.
out, err = captureCommandOutput(t, shell.Commands[findCommandIndex("ec.balance")],
[]string{"-collection", "test", "-force"}, commandEnv)
t.Logf("ec.balance output:\n%s", out)
require.NoError(t, err, "ec.balance failed")
time.Sleep(3 * time.Second)
// The core regression: ec.balance must not lose any shard.
afterBalance := collectDistinctShardIDs(testDir, uint32(volumeId))
require.Equal(t, erasureShardCount, len(afterBalance),
"ec.balance lost shards on multi-disk nodes: had %v, now %v", sortedKeysOf(beforeBalance), sortedKeysOf(afterBalance))
// Shards must be spread across more than one physical disk per node overall.
usedDisks := disksWithShards(testDir, uint32(volumeId))
assert.Greater(t, usedDisks, 3, "EC shards should span more than one disk per node (got %d disks across 3 nodes)", usedDisks)
// cluster.status must count physical disks, not collapse to one per node: it
// must report at least the disks actually holding this volume's shards (which
// is already >3 across the 3 nodes). Before the fix it reported 3 (node count).
require.Eventually(t, func() bool {
n, ok := clusterStatusDiskCount(t, commandEnv)
return ok && n >= usedDisks
}, 30*time.Second, 2*time.Second, "cluster.status never reported the >=%d physical disks holding shards (multi-disk count)", usedDisks)
n, _ := clusterStatusDiskCount(t, commandEnv)
t.Logf("cluster.status reports %d physical disks (>= %d holding this volume's shards)", n, usedDisks)
}
const erasureShardCount = 14 // 10 data + 4 parity
// collectDistinctShardIDs returns the set of EC shard ids present for a volume
// across every disk of every server in the multi-disk test layout.
func collectDistinctShardIDs(testDir string, volumeId uint32) map[int]bool {
ids := map[int]bool{}
for server := 0; server < 3; server++ {
for disk := 0; disk < 4; disk++ {
diskDir := filepath.Join(testDir, fmt.Sprintf("server%d_disk%d", server, disk))
files, err := listECShardFiles(diskDir, volumeId)
if err != nil {
continue
}
for _, f := range files {
i := strings.LastIndex(f, ".ec")
if i < 0 {
continue
}
if n, err := strconv.Atoi(f[i+3:]); err == nil && n >= 0 && n < erasureShardCount {
ids[n] = true
}
}
}
}
return ids
}
// disksWithShards counts how many physical disks hold at least one shard.
func disksWithShards(testDir string, volumeId uint32) int {
n := 0
for _, disks := range countShardsPerDisk(testDir, volumeId) {
for _, c := range disks {
if c > 0 {
n++
}
}
}
return n
}
// nodeVolumeDiskCounts returns, per volume server id, how many distinct physical
// disks hold at least one volume according to the master's topology. The master
// only enumerates disks that already hold a volume or EC shard (heartbeats
// aggregate capacity per disk type, not per physical disk), so this reports the
// disks ec.encode can actually spread a volume's shards across on each node.
func nodeVolumeDiskCounts(t *testing.T, commandEnv *shell.CommandEnv) map[string]int {
t.Helper()
var resp *master_pb.VolumeListResponse
err := commandEnv.MasterClient.WithClient(false, func(client master_pb.SeaweedClient) error {
var e error
resp, e = client.VolumeList(context.Background(), &master_pb.VolumeListRequest{})
return e
})
counts := map[string]int{}
if err != nil || resp.GetTopologyInfo() == nil {
return counts
}
for _, dc := range resp.GetTopologyInfo().GetDataCenterInfos() {
for _, r := range dc.GetRackInfos() {
for _, dn := range r.GetDataNodeInfos() {
disks := map[uint32]bool{}
for _, di := range dn.GetDiskInfos() {
for _, vi := range di.GetVolumeInfos() {
disks[vi.GetDiskId()] = true
}
}
counts[dn.Id] = len(disks)
}
}
}
return counts
}
func allAtLeast(counts map[string]int, min int) bool {
for _, c := range counts {
if c < min {
return false
}
}
return true
}
var diskCountRe = regexp.MustCompile(`(\d+)\s+disks?`)
// clusterStatusDiskCount runs cluster.status and parses the reported disk count.
func clusterStatusDiskCount(t *testing.T, commandEnv *shell.CommandEnv) (int, bool) {
t.Helper()
out, err := captureCommandOutput(t, shell.Commands[findCommandIndex("cluster.status")], []string{}, commandEnv)
if err != nil {
return 0, false
}
m := diskCountRe.FindStringSubmatch(out)
if m == nil {
return 0, false
}
n, err := strconv.Atoi(m[1])
return n, err == nil
}
func sortedKeysOf(m map[int]bool) []int {
out := make([]int, 0, len(m))
for k := range m {
out = append(out, k)
}
for i := 1; i < len(out); i++ {
for j := i; j > 0 && out[j-1] > out[j]; j-- {
out[j-1], out[j] = out[j], out[j-1]
}
}
return out
}