* feat(internode): P0 gRPC transport tuning, message limits, payload metrics Land the P0 subtask from docs/grpc-optimization: close the client-vs-server transport gaps and add instrumentation to size which unary RPCs need channel isolation in P1. Transport tuning (G3): the client `Endpoint` now disables Nagle and raises the HTTP/2 stream/connection flow-control windows to mirror the server socket, so small lock/health RPCs are not batched and larger metadata responses are not throttled by the 64KiB default window. All env-overridable, 0 opts out. Message-size limits (G1): both `NodeServiceClient` and `NodeServiceServer` set max decode/encode size (default 100MiB) instead of tonic's silent 4MiB cap, so a large multi-version xl.meta or aggregated ReadMultiple no longer fails out_of_range. The server limit is set on `NodeServiceServer` before wrapping in the auth `InterceptedService` (the interceptor type does not expose it). Payload instrumentation (P1 prep): ReadAll/ReadMultiple record a payload-size histogram plus a large-payload counter when a response crosses the configured threshold (default 8MiB), feeding alerting on paths that contend with latency-sensitive control-plane traffic on the shared channel. Threshold-only counter, no per-call hot-path log. Verification: cargo check/test on config, io-metrics, ecstore, rustfs; clippy clean on touched files; make pre-commit green. Co-Authored-By: heihutu <heihutu@gmail.com> * feat(internode): P1 control/bulk gRPC channel isolation (opt-in) Land the P1 subtask from docs/grpc-optimization: physically separate large bytes-carrying unary RPCs from latency-sensitive control-plane RPCs so a big transfer can no longer head-of-line block a lock/health RPC on the shared HTTP/2 connection (G2/G5). Introduce ChannelClass { Control, Bulk } and get_channel_for_class in protos. Control RPCs keep the per-peer connection keyed by the bare address; Bulk RPCs (ReadAll/WriteAll/ReadMultiple/BatchReadVersion, via a new get_bulk_client) are round-robined across a small per-peer bulk pool. Rather than restructuring the global GLOBAL_CONN_MAP (and every consumer), bulk channels are cached under a composite key (addr\0bulk\0idx). The NUL separator cannot appear in a URL, so bulk keys never collide with the control key. This keeps the blast radius small on a consistency-sensitive path. create_new_channel is refactored into build_channel(dial_addr, cache_key) so several physically distinct channels to one peer cache independently while dialing/TLS still use the real address. Gated by RUSTFS_INTERNODE_CHANNEL_ISOLATION (default OFF) so the default build is byte-for-byte the pre-P1 behavior: bulk resolves to the control channel and the switch is a single-env rollback. RUSTFS_INTERNODE_BULK_CHANNELS (default 2, clamped >=1) sizes the pool. On failure, evict_failed_connection drops the whole bulk pool for the peer (round-robin hides which index was used), avoiding half-dead cached channels. Lock RPCs (remote_locker) already use the default Control path, so lock semantics and retry behavior are unchanged. Verification: cargo check/test on config, protos, ecstore, rustfs; new protos tests for bulk key routing and isolation-off passthrough; clippy clean on touched files; make pre-commit green. Co-Authored-By: heihutu <heihutu@gmail.com> * feat(internode): P2 msgpack/JSON codec observability + encode buffer presizing Land the safe, wire-compatible slice of P2 from docs/grpc-optimization: the observability prerequisite for retiring the redundant JSON fields, plus a codec micro-optimization. No proto/wire-format change; JSON is still dual-written. Internode RPCs today dual-encode each metadata value as both msgpack (`*_bin`) and a JSON compatibility string, and decoders prefer `_bin` with a JSON fallback. Before the JSON fields can ever be dropped (a cross-version change), that fallback must be proven unused in production. Add rustfs_system_network_internode_msgpack_json_fallback_total{direction, message}: incremented whenever a decode falls back to the JSON field because the msgpack payload was absent. Wired into both directions — the client decoding peer responses (remote_disk.rs, incl. the list-level read_multiple/batch fallbacks) and the server decoding peer requests (node_service/disk.rs). This counter must read zero across a release window before send paths stop writing JSON and the proto text fields are reserved/removed (the deferred P2-1 steps). Also pre-size the msgpack encode buffers (Vec::with_capacity(512)) on both sides, eliminating the repeated growth reallocations for typical FileInfo payloads with zero added copy. Full thread_local buffer pooling is deferred: it needs either an extra copy (unclear net win) or a send-path buffer-return lifecycle, to be justified by a codec microbenchmark first. Verification: cargo check/test on io-metrics, ecstore, rustfs; new fallback counter smoke test; existing codec decode tests green; clippy clean on touched files; make pre-commit green. Co-Authored-By: heihutu <heihutu@gmail.com> * docs(internode): add msgpack/JSON convergence observation runbook Runbook driving the observation-gated retirement of the redundant JSON compatibility fields on internode gRPC metadata RPCs (grpc-optimization P2-1). Documents the shipped fallback counter (rustfs_system_network_internode_msgpack_json_fallback_total{direction,message}), the PromQL to confirm it reads zero across a release window, a standing alert, and the staged flip/rollback procedure (env-gated msgpack-only send, then proto field removal in N+1). Includes the verified field -> peer-decoder audit: only fields whose peer decodes _bin first may be converged. Notes DeleteVersion.opts (DeleteOptions) is NOT convergence-ready — its server handler is not _bin-first and must gain a decode_msgpack_or_json path first. This gates the send-side change so it cannot empty a JSON field an old peer still needs. Co-Authored-By: heihutu <heihutu@gmail.com> * feat(internode): env-gated msgpack-only send + DeleteVersion _bin support (P2-1) Implements the send-side lever for retiring the redundant JSON compatibility fields on internode gRPC metadata RPCs, plus the missing `_bin` support on the delete path that it depends on (grpc-optimization P2-1). Default-off: the base build is byte-for-byte the prior dual-write behavior. Gated msgpack-only send (RUSTFS_INTERNODE_RPC_MSGPACK_ONLY, default false): - New rustfs_protos::internode_rpc_msgpack_only() reads the flag. - Client (remote_disk.rs) compat_json() and server (node_service/disk.rs) compat_response_json() emit an empty JSON string when the flag is on, so only the msgpack _bin payload is sent. The _bin field is always sent; decoders keep the JSON read fallback. Applied only to fields with a confirmed _bin-first peer decoder (WriteMetadata/UpdateMetadata/RenameData file_info, UpdateMetadata opts, ReadOptions, ReadMultipleReq, BatchReadVersionReq; ReadVersion/ReadXL/RenameData responses and the ReadMultiple/BatchReadVersion response lists). - Only enable after the P2 fallback counter has read zero across a release window (see docs/operations/internode-msgpack-json-convergence-runbook.md). Single-env rollback; no wire-format break. DeleteVersion(s) _bin support (prerequisite): - The DeleteVersion/DeleteVersions protos had NO _bin fields. Add additive (backward-compatible) bytes file_info_bin/opts_bin (DeleteVersion) and repeated bytes versions_bin + bytes opts_bin (DeleteVersions); regenerate the checked-in prost struct. - Client dual-writes them; server decodes them _bin-first with JSON fallback. - These delete fields are kept OUT of the msgpack-only set (always dual-write) until their own fallback counter reads zero across a window with the new decoders fully deployed. DeleteVersion.raw_file_info stays JSON-only (no _bin field yet). Verification: cargo check/test on protos, config, ecstore, rustfs (incl. the six delete request handler tests and a compat_json default-path test); clippy clean on touched files; make pre-commit green. Co-Authored-By: heihutu <heihutu@gmail.com> * feat(internode): P3 cluster peer online/offline health metric Land the safe observability core of P3 (grpc-optimization G6/G8): track each internode peer's reachability and expose the offline count, for parity with MinIO's minio_cluster_servers_offline_total. Pure instrumentation — peer selection and quorum are unchanged. - io-metrics: per-peer PeerHealthState { online, consecutive_failures } registry plus record_peer_reachable/record_peer_unreachable. A peer flips offline after N consecutive failures (dial failures or RPC-triggered evictions) and back online on the next successful dial; the count of offline peers is published to the rustfs_cluster_servers_offline_total gauge. - config: RUSTFS_INTERNODE_OFFLINE_FAILURE_THRESHOLD (default 3, clamped >= 1). - protos: build_channel marks the peer reachable on a successful dial and unreachable on a dial failure; evict_failed_connection feeds the failure signal too. Keyed by the real peer address, so control and bulk channels to one peer share health state. Deferred (documented in docs/grpc-optimization P3): startup prewarm (no clean topology-ready hook yet), the offline fast-bypass in peer routing (consistency- sensitive; must not change quorum), and idempotent-read-only retry. This commit is observability only. Verification: cargo check/test on io-metrics, config, protos (new peer-health state-machine and threshold-clamp tests); clippy clean on touched files; make pre-commit green. Co-Authored-By: heihutu <heihutu@gmail.com> * feat(internode): P3 control-channel prewarm + self-healing offline bypass Add the remaining P3 connection-lifecycle levers (grpc-optimization G6/G8), both env-gated and default-off so the base build is unchanged. Prewarm (RUSTFS_INTERNODE_PREWARM, default off): RemoteDisk::new spawns a best-effort background dial of the peer's control channel, deduped per peer address, moving the connect cost off the first RPC. Failures fall through to the existing lazy connect + recovery monitor. Offline bypass (RUSTFS_INTERNODE_OFFLINE_BYPASS, default off): remote_disk get_client/get_bulk_client fast-fail a peer already marked offline instead of paying the connect timeout, so the erasure layer proceeds on quorum sooner. This does NOT change quorum. It is self-healing: cluster_peer_should_bypass lets one request per RUSTFS_INTERNODE_OFFLINE_REPROBE_SECS (default 5s) through to recover the peer even with no background monitor, and the recovery monitor's own probe path calls the client directly so it is never bypassed. io-metrics gains cluster_peer_is_offline / cluster_peer_should_bypass (with a per-peer re-probe timestamp). Scope: data path only — remote_locker (lock RPCs, most consistency-sensitive) is left dual-writing/unbypassed as a follow-up. Verification: cargo check/test on io-metrics, config, ecstore (new self-healing bypass tests; all 105 rpc tests green); clippy clean on touched files; make pre-commit green. Co-Authored-By: heihutu <heihutu@gmail.com> * docs(internode): add A/B benchmark runbook for gRPC optimization stages Reproducible before/after collection procedure for grpc-optimization P0–P3. Since every stage is env-gated, before/after is the same binary with different env — no rebuild. Documents, per stage: the exact env toggles (baseline vs enabled column), which existing bench script to run (run_internode_transport_baseline.sh / run_four_node_cluster_failover_bench.sh), the Prometheus metrics to capture, and the acceptance gates from the design docs (e.g. lock p99 down >= 20% for P1, msgpack fallback counter = 0 before enabling P2, correct rustfs_cluster_servers_offline_total for P3). Live runs require a multi-node cluster + load tool + Prometheus scrape and cannot be produced in a single-process sandbox; artifacts land under target/bench (gitignored) and attach to the PR. Co-Authored-By: heihutu <heihutu@gmail.com> * feat(internode): P3-2 lock-path offline bypass + P3-3 idempotent read retry Extend the offline bypass to the lock path and add opt-in retries for idempotent reads (grpc-optimization P3-2/P3-3). Both env-gated and default-off/zero. Offline bypass (lock path): factor the bypass decision into a shared pub(crate) internode_offline_bypass_reason(addr) and call it from remote_locker::get_client too, so lock RPCs to an offline peer fast-fail (letting dsync reach quorum sooner) instead of paying the connect timeout. Does not change quorum; the self-healing re-probe keeps peers recoverable. Gated by RUSTFS_INTERNODE_OFFLINE_BYPASS (default off). Idempotent read retry (P3-3): add execute_read_with_retry — a bounded, exponential-backoff retry for read-only/reentrant RPCs on transient network errors — and route disk_info through it. RUSTFS_INTERNODE_IDEMPOTENT_READ_RETRIES defaults to 0 (disabled). Write/lock RPCs are never retried (quorum/idempotency safety, per CLAUDE.md); the wrapper requires an Fn closure so only reads that rebuild their request from borrowed inputs qualify. Deferred: grpc.health.v1 (optional ecosystem-compat only; needs a new tonic-health dep and 3-way hybrid-service wiring — internal needs are met by the existing Ping RPC). Verification: cargo check/test on config, ecstore (105 rpc tests green incl. disk_info now via the retry wrapper); clippy clean on touched files; make pre-commit green. Co-Authored-By: heihutu <heihutu@gmail.com> * feat(scripts): one-click internode gRPC A/B benchmark driver Wrap the per-stage env matrix from the benchmark runbook into scripts/run_internode_grpc_ab_bench.sh: given --stage <p0|p1|p2|p3> and --phase <before|after>, it emits the stage/phase RUSTFS_INTERNODE_* server env to <out-dir>/server-env.sh and runs the right underlying bench (run_internode_transport_baseline.sh for p0/p1/p2, run_four_node_cluster_failover_bench.sh for p3) into a labeled target/bench/internode-transport/<stage>-<phase>/. Passthrough args after `--` reach the underlying bench; --dry-run previews the env + command. The script is explicit that RUSTFS_INTERNODE_* are server env, so for the load-driven stages the operator must restart rustfs with the emitted env before the run; the docker four-node (p3) path exports them for a forwarding compose. shellcheck-clean. Runbook updated with a "One-click driver" section. Co-Authored-By: heihutu <heihutu@gmail.com> * chore(compose): forward RUSTFS_INTERNODE_* into the four-node cluster The four-node local-build compose only forwarded a fixed whitelist of env, so the internode gRPC knobs (grpc-optimization P0-P3) never reached the containers and the A/B bench driver's "after" phase was a no-op. Forward the full RUSTFS_INTERNODE_* set with defaults matching the binary defaults, so leaving them unset is a no-op and the A/B driver can toggle a stage per phase. Co-Authored-By: heihutu <heihutu@gmail.com> * fix(internode): address Copilot review — retry health action + poison-safe peer health Two review nits on #4337: - P3-3 idempotent read retry (remote_disk.rs): execute_read_with_retry ran every attempt through execute_with_timeout_for_op, which hardcodes FailureHealthAction::MarkFailure. So the first transient error could flip the disk faulty and short-circuit the remaining retries, and each attempt over-counted the failure. Route all but the final attempt through execute_with_timeout_for_op_and_health_action with IgnoreFailure; only the last attempt marks faulty/evicts. No default impact (retries default 0). - Peer-health helpers (io-metrics): record_peer_reachable/record_peer_unreachable, cluster_peer_is_offline and cluster_peer_should_bypass early-returned on a poisoned mutex, permanently stalling the offline gauge and bypass state after a single panic. Recover via PoisonError::into_inner(). Verification: cargo check/test on io-metrics + ecstore (105 rpc tests green); clippy clean on touched files; make pre-commit green. Co-Authored-By: heihutu <heihutu@gmail.com> --------- Co-authored-by: heihutu <heihutu@gmail.com>
RustFS is a high-performance, distributed object storage system built in Rust.
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-beta.8
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/tlsis also readable by10001:10001. - If matching host ownership is not practical, run the
rustfsservice withuser: "<host-uid>:<host-gid>"instead. docker-compose-simple.ymlincludes avolume-permission-helperservice for named volumes.docker-compose-simple.ymlrelies 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 \
rustfs/rustfs:latest
Notes:
RUSTFS_NOTIFY_ENABLE=trueenables 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_PRIMARYdefaults tofalse; enabling it skips webhook TLS certificate verification, allows MITM attacks, and emits a startup warning. PreferRUSTFS_NOTIFY_WEBHOOK_CLIENT_CA_PRIMARYfor private CAs.
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 -nat 256, socargo zigbuildor./build-rustfs.sh --platform ...may fail withProcessFdQuotaExceededwhen targeting Linux. The build script attempts to raise the limit automatically, but if you still see the warning, runulimit -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.
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
- Access the Console: Open your web browser and navigate to
http://localhost:9001to access the RustFS console.- Default credentials:
rustfsadmin/rustfsadmin
- Default credentials:
- Create a Bucket: Use the console to create a new bucket for your objects.
- 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.
Links
- Documentation - The manual you should read
- Changelog - What we broke and fixed
- GitHub Discussions - Where the community lives
- Discord - Chat with the RustFS community
Contact
- Bugs: GitHub Issues
- Business: hello@rustfs.com
- Jobs: jobs@rustfs.com
- General Discussion: GitHub Discussions
- Contributing: CONTRIBUTING.md
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.
Star History
License
RustFS is a trademark of RustFS, Inc. All other trademarks are the property of their respective owners.