唐小鸭 3c31eaf06f fix(replication): retry, persist and replay failed delete-marker purges (#5864)
* test(replication): pin delayed delete-marker purge failure handling (red)

P1-21 (rustfs/backlog#1675 B2): two failing e2e tests that pin the missing
failure handling of the delayed delete-marker purge:

- test_delayed_delete_marker_purge_retries_after_transient_target_failure:
  four scripted 503s outlast every existing channel (version-purge
  replication + its in-process MRF fast retries + the watcher's single
  attempt = 3 target DELETEs, all faulted in the recorded run); the
  replicated marker is stranded on the target forever.
- test_delayed_delete_marker_purge_exhaustion_persists_to_mrf_and_replays_on_restart:
  exhausted purge intents never reach the durable MRF journal, so a restart
  replays nothing (recorded run: 3 faulted attempts, zero post-restart).

Red-light evidence (current main):
- Test A: FAILED, journal shows 3x DeleteObject fault=Status(503), no clean
  attempt, target marker still present after 15s.
- Test B: FAILED after 468s, same 3 faulted attempts, no purge DELETE after
  restart, marker still present.

Test infra: FakeS3Target::stored_versions() exposes per-key version state so
purge tests assert target state instead of inferring it from the journal;
nextest count comments 36->38 nightly / 56->58 total.

* fix(replication): retry, persist and replay failed delete-marker purges

P1-21 (rustfs/backlog#1675 B2). The delayed delete-marker purge was
fire-and-forget: the target DELETE discarded its result (`let _ =`), a
missing target client was silently skipped, and nothing recorded the intent
— one transient target error stranded the replicated marker on the target
forever. Separately, `replicate_delete_with_outcome` held its outcome
hostage to `!requires_delayed_purge`, pinning every delete-marker MRF entry
to Missed so the durable backlog retained them permanently.

Changes:
- `replicate_delete_marker_purge_to_targets` now reports per-target
  results (warn + metrics on failure, including `target_client_missing`),
  supports retrying only the failed targets, and treats a target-side
  NoSuchKey/NoSuchVersion as purge success (strict-404 targets must not
  retain the intent forever).
- The delayed watcher (`watch_and_purge_source_delete_marker`) retries
  failed targets across its 5x1s watch window; on exhaustion it persists
  the purge intent to the durable MRF journal via the new
  `ReplicationPoolTrait::persist_mrf_entry` (journal-only on purpose: live
  re-dispatch would loop unboundedly against a down target). Intent entries
  are shaped as marker-creation deletes so replay funnels into the stale-
  marker branch.
- The stale-marker branch (source marker already gone) now purges the
  targets instead of silently returning success — closing a latent leak —
  and reports the purge result as the replay outcome. Heal callers retry
  for the full window (the startup MRF processor runs before target
  clients initialize); live callers attempt once and fall back to a fresh
  durable intent, so a down target cannot pin a replication worker.
- The outcome formula (extracted as `replicate_delete_outcome` and pinned
  by a unit test) no longer includes the delayed purge, so successfully
  replayed delete-marker entries are acknowledged instead of retained
  forever.

Verification: red -> green e2e pair (transient-failure retry; exhaustion ->
durable MRF -> restart replay -> second-restart zero-replay ack) plus unit
tests; `make pre-commit`, logging guardrails, clippy (ecstore + e2e_test)
all clean; full ecstore lib suite 3729 passed (3 pre-existing local-DNS
kubernetes endpoint failures reproduce without this change).

Adversarial validation (7 roles): no blocking findings after adding the
outcome-formula guard test. Known residuals recorded in the PR: watcher
shutdown window (intent not yet persisted), rolling-downgrade replay acks
without purging (equals pre-fix behavior), and replay falling back to the
source version id on targets that mint their own version ids (P1-19).

* chore(test): refresh the nextest replication count invariant

The e2e-smoke/e2e-repl-nightly split comment is descriptive metadata
(authority: `cargo nextest list`); refresh it to this branch's
post-rebase total.

* fix(replication): purge the marker version the target actually assigned

Review follow-up (#5864), two real defects:

- The delayed purge watcher was spawned with the pre-merge `dobj`, so the
  per-target marker version ids this round recorded were invisible to it.
  Against a target that mints its own ids the purge fell back to a
  source-derived id, the target answered the versioned DELETE with an
  idempotent 204, and that "success" cleared the retry set while the real
  marker stayed behind. The watcher now receives the merged replication
  state (`drs`), which folds this round's target-assigned ids in.
- A target whose recorded version metadata is inconsistent was skipped
  without entering `failed_arns`, so an empty result made both the watcher
  and the MRF replay treat a purge that issued no DELETE as successful and
  drop the intent. The refusal is now a per-target failure (own metric
  label): the leak stays visible and the intent is retained instead of
  being acknowledged. The version decision also moved ahead of the client
  lookup, so the refusal is decided from metadata alone.

Tests: a new e2e drives a fake target with `assign_own_version_ids`, which
ignores the forwarded source-version header for both objects and delete
markers, and asserts the replicated marker is really gone; a unit test
pins the corrupt-metadata refusal as a failed outcome without any target
client registered. The detached-watcher shutdown window is documented at
the watcher as a known non-durable window with the write-ahead follow-up
spelled out.
2026-08-10 22:16:21 +08:00
2025-12-18 20:13:24 +08:00
2025-07-08 09:04:37 +08:00
2025-08-07 22:37:05 +08:00
2025-06-30 21:27:45 +08:00

RustFS

RustFS is a high-performance, distributed object storage system built in Rust.

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Getting Started · Docs · Bug reports · Discussions

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RustFS is a high-performance, distributed object storage system built in Rust—one of the most loved programming languages worldwide. RustFS combines the simplicity of MinIO with the memory safety and raw performance of Rust. It offers broad S3 API compatibility for supported features, is completely open-source, and is optimized for data lakes, AI, and big data workloads.

Unlike other storage systems, RustFS is released under the permissible Apache 2.0 license, avoiding the restrictions of AGPL. With Rust as its foundation, RustFS delivers superior speed and secure distributed features for next-generation object storage.

Feature & Status

  • High Performance: Built with Rust to ensure maximum speed and resource efficiency.
  • Distributed Architecture: Scalable and fault-tolerant design suitable for large-scale deployments.
  • S3 Compatibility: Seamless integration with common S3-compatible applications and tools; current coverage is tracked in the S3 compatibility matrix.
  • OpenStack Swift API: Native support for Swift protocol with Keystone authentication.
  • OpenStack Keystone Integration: Native support for OpenStack Keystone authentication with X-Auth-Token headers.
  • Data Lake Support: Optimized for high-throughput big data and AI workloads.
  • Open Source: Licensed under Apache 2.0, encouraging unrestricted community contributions and commercial usage.
  • User-Friendly: Designed with simplicity in mind for easy deployment and management.
Feature Status Feature Status
S3 Core Features Available Bitrot Protection Available
Upload / Download Available Single Node Mode Available
Versioning Available Bucket Replication Available
Logging Available Lifecycle Management 🚧 Under Testing
Event Notifications Available Distributed Mode 🚧 Under Testing
K8s Helm Charts Available RustFS KMS 🚧 Under Testing
Keystone Auth Available Multi-Tenancy Available
Swift API Available Swift Metadata Ops 🚧 Partial

RustFS vs MinIO Performance

Stress Test Environment:

Type Parameter Remark
CPU 2 Core Intel Xeon (Sapphire Rapids) Platinum 8475B, 2.7/3.2 GHz
Memory 4GB
Network 15Gbps
Drive 40GB x 4 IOPS 3800 / Drive

https://github.com/user-attachments/assets/2e4979b5-260c-4f2c-ac12-c87fd558072a

RustFS vs Other Object Storage

Feature RustFS Other Object Storage
Console Experience Powerful Console
Comprehensive management interface.
Basic / Limited Console
Often overly simple or lacking critical features.
Language & Safety Rust-based
Memory safety by design.
Go or C-based
Potential for memory GC pauses or leaks.
Data Sovereignty No Telemetry / Full Compliance
Guards against unauthorized cross-border data egress. Compliant with GDPR (EU/UK), CCPA (US), and APPI (Japan).
Potential Risk
Possible legal exposure and unwanted data telemetry.
Licensing Permissive Apache 2.0
Business-friendly, no "poison pill" clauses.
Restrictive AGPL v3
Risk of license traps and intellectual property pollution.
Compatibility S3-Compatible Core
Works with common S3-compatible clients, with coverage tracked in the compatibility matrix.
Variable Compatibility
May lack support for local cloud vendors or specific APIs.
Edge & IoT Strong Edge Support
Ideal for secure, innovative edge devices.
Weak Edge Support
Often too heavy for edge gateways.
Risk Profile Enterprise Risk Mitigation
Clear IP rights and safe for commercial use.
Legal Risks
Intellectual property ambiguity and usage restrictions.

Staying ahead

Star RustFS on GitHub and be instantly notified of new releases.

Quickstart

To get started with RustFS, follow these steps:

1. One-click Installation (Option 1)

curl -O https://rustfs.com/install_rustfs.sh && bash install_rustfs.sh

2. Docker Quick Start (Option 2)

The RustFS container runs as a non-root user rustfs (UID/GID 10001:10001). If you bind-mount host directories with Docker or Compose, every mounted path must be writable by that user, otherwise startup may fail with permission denied errors. This applies to data directories, log directories, and TLS certificate directories when RUSTFS_TLS_PATH is enabled.

# Create data and logs directories
mkdir -p data logs

# Change the owner of these directories
chown -R 10001:10001 data logs

# Using latest version
docker run -d -p 9000:9000 -p 9001:9001 -v $(pwd)/data:/data -v $(pwd)/logs:/logs rustfs/rustfs:latest

# Using specific version
docker run -d -p 9000:9000 -p 9001:9001 -v $(pwd)/data:/data -v $(pwd)/logs:/logs rustfs/rustfs:1.0.0-rc.1

If you use podman instead of docker, you can install the RustFS with the below command

# Create data and logs directories
mkdir -p data logs

# Run the container (podman will automatically set the folders ownership)
podman run -d -p 9000:9000 -p 9001:9001 -v $(pwd)/data:/data:Z,U -v $(pwd)/logs:/logs:Z,U rustfs/rustfs:latest

If you enable TLS with a bind-mounted certificate directory, prepare that mount the same way:

mkdir -p certs
chown -R 10001:10001 certs

You can also use Docker Compose. Using the docker-compose-simple.yml file in the root directory:

docker compose -f docker-compose-simple.yml up -d

Before running Compose with host bind mounts:

  • Ensure every mounted host path is writable by 10001:10001.
  • If you enable TLS, ensure the certificate mount for /opt/tls is also readable by 10001:10001.
  • If matching host ownership is not practical, run the rustfs service with user: "<host-uid>:<host-gid>" instead.
  • docker-compose-simple.yml includes a volume-permission-helper service for named volumes. docker-compose-simple.yml relies on you to prepare bind-mounted host paths in advance.

Similarly, you can run the command with podman

podman compose -f docker-compose-simple.yml up -d

Webhook notification quick start (Docker):

docker run -d --name rustfs -p 9000:9000 \
  -e RUSTFS_NOTIFY_ENABLE=true \
  -e RUSTFS_NOTIFY_WEBHOOK_ENABLE_PRIMARY=on \
  -e RUSTFS_NOTIFY_WEBHOOK_ENDPOINT_PRIMARY=http://<host-ip>:3020/webhook \
  -e RUSTFS_NOTIFY_WEBHOOK_QUEUE_DIR_PRIMARY=/tmp/rustfs-events \
  -e RUSTFS_OUTBOUND_ALLOW_ORIGINS=http://<host-ip>:3020 \
  rustfs/rustfs:latest

Notes:

  • RUSTFS_NOTIFY_ENABLE=true enables the global notify module switch.
  • For ARN arn:rustfs:sqs::primary:webhook, use instance-scoped env vars with _PRIMARY.
  • If queue dir is omitted, default is /opt/rustfs/events; ensure it is writable by the container runtime user.
  • RUSTFS_NOTIFY_WEBHOOK_SKIP_TLS_VERIFY_PRIMARY defaults to false; enabling it skips webhook TLS certificate verification, allows MITM attacks, and emits a startup warning. Prefer RUSTFS_NOTIFY_WEBHOOK_CLIENT_CA_PRIMARY for private CAs.
  • Since 1.0.0-beta.11, webhook endpoints on private or container networks (Docker Compose service names, host.docker.internal, RFC 1918 addresses) are blocked unless their exact scheme://host:port origin is listed in RUSTFS_OUTBOUND_ALLOW_ORIGINS (the origin only, without the path). See Outbound Connection Policy.

NOTE: We recommend reviewing the docker-compose.yml file before running. It defines several services including Grafana, Prometheus, and Jaeger, which are helpful for RustFS observability. If you wish to start Redis or Nginx containers, you can specify the corresponding profiles.

3. Build from Source (Option 3) - Advanced Users

For developers who want to build RustFS Docker images from source with multi-architecture support:

# Build multi-architecture images locally
./docker-buildx.sh --build-arg RELEASE=latest

# Build and push to registry
./docker-buildx.sh --push

# Build specific version
./docker-buildx.sh --release v1.0.0 --push

# Build for custom registry
./docker-buildx.sh --registry your-registry.com --namespace yourname --push

The docker-buildx.sh script supports:

  • Multi-architecture builds: linux/amd64, linux/arm64
  • Automatic version detection: Uses git tags or commit hashes
  • Registry flexibility: Supports Docker Hub, GitHub Container Registry, etc.
  • Build optimization: Includes caching and parallel builds

You can also use Make targets for convenience:

make docker-buildx                    # Build locally
make docker-buildx-push               # Build and push
make docker-buildx-version VERSION=v1.0.0  # Build specific version
make help-docker                      # Show all Docker-related commands

Heads-up (macOS cross-compilation): macOS keeps the default ulimit -n at 256, so cargo zigbuild or ./build-rustfs.sh --platform ... may fail with ProcessFdQuotaExceeded when targeting Linux. The build script attempts to raise the limit automatically, but if you still see the warning, run ulimit -n 4096 (or higher) in your shell before building.

4. Build with Helm Chart (Option 4) - Cloud Native

Follow the instructions in the Helm Chart README to install RustFS on a Kubernetes cluster.

For scanner pacing, cycle budgets, bitrot cadence, lifecycle transition status, and single-node single-disk idle CPU tuning, see Scanner Runtime Controls. For repeatable scanner-pressure validation, see Scanner Benchmark Runbook. For drive timeout knobs on slow storage — including the walk stall budget that governs ListObjects on large prefixes — see Drive Timeout Tuning.

5. Nix Flake (Option 5)

If you have Nix with flakes enabled:

# Run directly without installing
nix run github:rustfs/rustfs

# Build the binary
nix build github:rustfs/rustfs
./result/bin/rustfs --help

# Or from a local checkout
nix build
nix run

6. X-CMD (Option 6)

If you are an x-cmd user:

# Run directly without installing
x rustfs

# Download the binary and install it to the global environment
x env use rustfs
rustfs --help

Accessing RustFS

  1. Access the Console: Open your web browser and navigate to http://localhost:9001 to access the RustFS console.
    • Default credentials: rustfsadmin / rustfsadmin
  2. Create a Bucket: Use the console to create a new bucket for your objects.
  3. Upload Objects: You can upload files directly through the console or use S3-compatible APIs/clients to interact with your RustFS instance.

NOTE: To access the RustFS instance via https, please refer to the TLS Configuration Docs.

OIDC Roles Claim (Microsoft Entra ID)

RustFS supports mapping an OIDC claim containing role values into the existing authorization pipeline. The roles_claim setting is optional: when unset or empty, only the groups claim contributes to authorization (same as older RustFS releases). For Microsoft Entra ID app roles, set roles_claim=roles so both console admin checks and bucket IAM policies can evaluate those roles.

Example environment configuration (opt-in roles claim):

RUSTFS_IDENTITY_OPENID_ENABLE=on
RUSTFS_IDENTITY_OPENID_CONFIG_URL="https://login.microsoftonline.com/<tenant-id>/v2.0/.well-known/openid-configuration"
RUSTFS_IDENTITY_OPENID_CLIENT_ID="<client-id>"
RUSTFS_IDENTITY_OPENID_CLIENT_SECRET="<client-secret>"
RUSTFS_IDENTITY_OPENID_SCOPES="openid,profile,email"
RUSTFS_IDENTITY_OPENID_GROUPS_CLAIM="groups"
RUSTFS_IDENTITY_OPENID_ROLES_CLAIM="roles"

Policy condition example (evaluate app roles directly with jwt:roles; when roles_claim is configured, RustFS also merges those values into jwt:groups for backward compatibility with older policies):

{
  "Version": "2012-10-17",
  "Statement": [
    {
      "Effect": "Allow",
      "Action": ["admin:*"],
      "Resource": ["arn:aws:s3:::*"],
      "Condition": {
        "ForAnyValue:StringEquals": {
          "jwt:roles": ["RustFS.ConsoleAdmin"]
        }
      }
    }
  ]
}

Documentation

For detailed documentation, including configuration options, API references, and advanced usage, please visit our Documentation.

Getting Help

If you have any questions or need assistance:

  • Check the FAQ for common issues and solutions.
  • Join our GitHub Discussions to ask questions and share your experiences.
  • Open an issue on our GitHub Issues page for bug reports or feature requests.

Contact

Contributors

RustFS is a community-driven project, and we appreciate all contributions. Check out the Contributors page to see the amazing people who have helped make RustFS better.

RustFS contributors

Star History

RustFS star history chart

License

Apache 2.0

RustFS is a trademark of RustFS, Inc. All other trademarks are the property of their respective owners.

S
Description
2.3x faster than MinIO for 4KB object payloads. RustFS is an open-source, S3-compatible high-performance object storage system supporting migration and coexistence with other S3-compatible platforms such as MinIO and Ceph.
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