Files
seaweedfs/seaweed-volume
c006dc563e ec: remove .ecsum sidecars on destroy / shard delete; align Go and Rust cleanup (#10307)
* fix(rust-volume): remove .ecsum sidecars on EC destroy / shard delete

Rust EcVolume::destroy removed shards and .ecx/.ecj/.vif but left bitrot
checksum sidecars (.ecsum / .ecsum.v*). On clusters that run weed-volume
(not Go weed volume), collection.delete therefore orphans every sidecar
while correctly wiping shards — observed live on 4.39 (14/14 .ecsum
survived after collection.delete on a freshly encoded EC volume).

Go Destroy already calls RemoveBitrotSidecars; this brings Rust to parity:
- hoist remove_bitrot_sidecars into ec_bitrot (shared helper)
- call it from EcVolume::destroy for dir / dir_idx / ecx_actual_dir
- call it from Store::delete_ec_shards when a disk has no remaining shards
- unit test: test_destroy_removes_bitrot_sidecar

* rust volume: gate the shard-delete sidecar sweep on a local shard removal

Only sweep a disk's .ecsum when this delete actually removed a shard file
there, matching Go's found gate: a delete that never touched a disk must not
strip a sidecar it does not own — a shared -dir.idx sibling with surviving
shards, or an ec.rebuild index-prep copy that lands .ecx/.ecsum before any
shard. The shard-presence probe now treats unexpected stat errors as
"exists" so a transient failure cannot orphan-classify live shards, and
check_all_ec_shards_deleted reuses it.

* rust volume: destroy() sidecar sweep needs only the data and idx bases

ecx_actual_dir is always one of the two, so the third branch could never
run; this is now exactly Go Destroy()'s two-base sweep.

* rust volume: call the shared sidecar removal helper directly

* rust volume: unit-test remove_bitrot_sidecars

Mirrors Go's TestRemoveBitrotSidecars: legacy and versioned sidecars are
removed, a shard file and a longer-vid sidecar survive, absent is success.

* rust volume: keep the shared idx-base sidecar while a sibling disk has shards

One -dir.idx serves every location, so emptying one disk must not sweep
<idx>/<vol>.ecsum out from under a sibling that still holds shards. Nothing
reads the idx-base sidecar today, but .ecx shows index-dir files are real;
this keeps the defensive sweep safe if a writer ever lands one there.

* ec shard delete: keep the shared idx-base sidecar while a sibling disk has shards

One -dir.idx serves every disk, so emptying one disk must not sweep
<idx>/<vol>.ecsum out from under a sibling that still holds shards of the
volume — the same gate the Rust volume server applies. A status error counts
as in-use so a transient failure never strips it early.

* rust volume: drop a shard-only disk's stale .vif with the node's last shard

Go's removeEcSharedIndexFiles also clears the data-base .vif in the
all-shards-gone pass, gated on .idx absence so a disk still hosting the
source volume keeps its live .vif; the Rust delete path left it behind.
Unexpected stat errors count as .idx-present so a transient failure never
strips a live volume's .vif.

---------

Co-authored-by: Chris Lu <chris.lu@gmail.com>
2026-07-10 22:06:36 -07:00
..

SeaweedFS Volume Server (Rust)

A drop-in replacement for the SeaweedFS Go volume server, rewritten in Rust. It uses binary-compatible storage formats (.dat, .idx, .vif) and speaks the same HTTP and gRPC protocols, so it works with an unmodified Go master server.

Building

Requires Rust 1.75+ (2021 edition).

cd seaweed-volume
cargo build --release

The binary is produced at target/release/seaweed-volume.

Running

Start a Go master server first, then point the Rust volume server at it:

# Minimal
seaweed-volume --port 8080 --master localhost:9333 --dir /data/vol1 --max 7

# Multiple data directories
seaweed-volume --port 8080 --master localhost:9333 \
  --dir /mnt/ssd1,/mnt/ssd2 --max 100,100 --disk ssd

# With datacenter/rack topology
seaweed-volume --port 8080 --master localhost:9333 --dir /data/vol1 --max 7 \
  --dataCenter dc1 --rack rack1

# With JWT authentication
seaweed-volume --port 8080 --master localhost:9333 --dir /data/vol1 --max 7 \
  --securityFile /etc/seaweedfs/security.toml

# With TLS (configured in security.toml via [https.volume] and [grpc.volume] sections)
seaweed-volume --port 8080 --master localhost:9333 --dir /data/vol1 --max 7 \
  --securityFile /etc/seaweedfs/security.toml

Common flags

Flag Default Description
--port 8080 HTTP listen port
--port.grpc port+10000 gRPC listen port
--master localhost:9333 Comma-separated master server addresses
--dir /tmp Comma-separated data directories
--max 8 Max volumes per directory (comma-separated)
--ip auto-detect Server IP / identifier
--ip.bind same as --ip Bind address
--dataCenter Datacenter name
--rack Rack name
--disk Disk type tag: hdd, ssd, or custom
--index memory Needle map type: memory, leveldb, leveldbMedium, leveldbLarge
--readMode proxy Non-local read mode: local, proxy, redirect
--fileSizeLimitMB 256 Max upload file size
--minFreeSpace 1 (percent) Min free disk space before marking volumes read-only
--securityFile Path to security.toml for JWT keys and TLS certs
--metricsPort 0 (disabled) Prometheus metrics endpoint port
--whiteList Comma-separated IPs with write permission
--preStopSeconds 10 Graceful drain period before shutdown
--compactionMBps 0 (unlimited) Compaction I/O rate limit
--pprof false Enable pprof HTTP handlers

Set RUST_LOG=debug (or trace, info, warn) for log level control. Set SEAWEED_WRITE_QUEUE=1 to enable batched async write processing.

Features

  • Binary compatible -- reads and writes the same .dat/.idx/.vif files as the Go server; seamless migration with no data conversion.
  • HTTP + gRPC -- full implementation of the volume server HTTP API and all gRPC RPCs including streaming operations (copy, tail, incremental copy, vacuum).
  • Master heartbeat -- bidirectional streaming heartbeat with the Go master server; volume and EC shard registration, leader failover, graceful shutdown deregistration.
  • JWT authentication -- signing key configuration via security.toml with token source precedence (query > header > cookie), file_id claims validation, and separate read/write keys.
  • TLS -- HTTPS for the HTTP API and mTLS for gRPC, configured through security.toml.
  • Erasure coding -- Reed-Solomon EC shard management: mount/unmount, read, rebuild, copy, delete, and shard-to-volume reconstruction.
  • S3 remote storage -- FetchAndWriteNeedle reads from any S3-compatible backend (AWS, MinIO, Wasabi, Backblaze, etc.) and writes locally. Supports VolumeTierMoveDatToRemote/FromRemote for tiered storage.
  • Needle map backends -- in-memory HashMap, LevelDB (via rusty-leveldb), or redb (pure Rust disk-backed) needle maps.
  • Image processing -- on-the-fly resize/crop, JPEG EXIF orientation auto-fix, WebP support.
  • Streaming reads -- large files (>1MB) are streamed via spawn_blocking to avoid blocking the async runtime.
  • Auto-compression -- compressible file types (text, JSON, CSS, JS, SVG, etc.) are gzip-compressed on upload.
  • Prometheus metrics -- counters, histograms, and gauges exported at a dedicated metrics port; optional push gateway support.
  • Graceful shutdown -- SIGINT/SIGTERM handling with configurable preStopSeconds drain period.

Testing

Rust unit tests

cd seaweed-volume
cargo test

Go integration tests

The Go test suite can target either the Go or Rust volume server via the VOLUME_SERVER_IMPL environment variable:

# Run all HTTP + gRPC integration tests against the Rust server
VOLUME_SERVER_IMPL=rust go test -v -count=1 -timeout 1200s \
  ./test/volume_server/grpc/... ./test/volume_server/http/...

# Run a single test
VOLUME_SERVER_IMPL=rust go test -v -count=1 -timeout 60s \
  -run "TestName" ./test/volume_server/http/...

# Run S3 remote storage tests
VOLUME_SERVER_IMPL=rust go test -v -count=1 -timeout 180s \
  -run "TestFetchAndWriteNeedle" ./test/volume_server/grpc/...

Load testing

A load test harness is available at test/volume_server/loadtest/. See that directory for usage instructions and scenarios.

Architecture

The server runs three listeners concurrently:

  • HTTP (Axum 0.7) -- admin and public routers for file upload/download, status, and stats endpoints.
  • gRPC (Tonic 0.12) -- all VolumeServer RPCs from the SeaweedFS protobuf definition.
  • Metrics (optional) -- Prometheus scrape endpoint on a separate port.

Key source modules:

Path Description
src/main.rs Entry point, server startup, signal handling
src/config.rs CLI parsing and configuration resolution
src/server/volume_server.rs HTTP router setup and middleware
src/server/handlers.rs HTTP request handlers (read, write, delete, status)
src/server/grpc_server.rs gRPC service implementation
src/server/heartbeat.rs Master heartbeat loop
src/storage/volume.rs Volume read/write/delete logic
src/storage/needle.rs Needle (file entry) serialization
src/storage/store.rs Multi-volume store management
src/security.rs JWT validation and IP whitelist guard
src/remote_storage/ S3 remote storage backend

See DEV_PLAN.md for the full development history and feature checklist.