23 KiB
RFC: Internode Transport Adapter Boundary
Status: draft Last updated: 2026-05-22 Scope: OSS internode data-plane adapter analysis, benchmark baseline, and transport boundary
Summary
The current distributed internode paths use TCP-based HTTP/gRPC transports:
tonicgRPCNodeServicefor most control, metadata, lock, health, and peer operations.- HTTP streaming routes under
/rustfs/rpc/for remote disk file streams.
This document frames the existing work as an OSS InternodeDataTransport
adapter boundary. The adapter keeps RustFS data-plane logic separate from the
concrete transport backend while preserving the current TCP/HTTP behavior as
the default implementation.
Current implementation status:
InternodeDataTransportexists incrates/ecstore/src/rpc/internode_data_transport.rs.- The default and only production backend is
tcp-http;tcpis accepted as an alias. RUSTFS_INTERNODE_DATA_TRANSPORTselects the backend. Blank or unset values usetcp-http; invalid values fail closed.RemoteDisk::read_file_stream,RemoteDisk::create_file,RemoteDisk::append_file, andRemoteDisk::walk_dirdelegate to the transport.NodeServicegRPC remains the internode control plane and continues to carry metadata/control operations.
Related design notes in this directory:
transport-capabilities.mdtransport-buffer-lifecycle.mdtransport-buffer-contract.mdtransport-fallback-and-selection.mdtransport-metrics-and-baseline.md
Open-source Scope
The OSS scope is:
- define a clear
InternodeDataTransportadapter boundary; - keep
tcp-httpas the default backend; - keep existing TCP/HTTP behavior unchanged;
- keep internode data-plane behavior observable through metrics and baseline tooling;
- document buffer ownership, fallback, and capability expectations for maintainable transport code;
- avoid adding dependencies or backend implementations.
The OSS scope is not:
- adding another transport backend;
- replacing the gRPC control plane;
- adding benchmark plans for another transport;
- adding runtime plugin loading;
- changing object correctness semantics.
Goals
- Document the current internode control plane and data plane.
- Identify the existing transfer paths covered by the
InternodeDataTransportadapter and the paths that remain on gRPC. - Define the minimum benchmark baseline required before transport changes.
- Sketch a pluggable transport boundary that preserves the current TCP/HTTP behavior as the default backend.
- Document backend-neutral capability, fallback, buffer ownership, and observability expectations.
Non-Goals
- Implement another transport backend.
- Replace
tonicgRPC for control-plane RPCs. - Redesign erasure coding, quorum handling, disk health tracking, or object correctness semantics.
- Change default development, CI, or ordinary RustFS deployment requirements.
Current Internode Architecture
Server-side entry points
The main HTTP server builds a hybrid service per connection:
rustfs/src/server/http.rswires aNodeServiceServerfor gRPC.rustfs/src/storage/rpc/InternodeRpcServiceintercepts HTTP paths under/rustfs/rpc/.- Other HTTP/S3 traffic continues through the normal S3 service.
Compression logic already treats /rustfs/rpc/ and /rustfs/peer/ as internode
RPC paths and skips normal response compression for them.
gRPC channel management
crates/protos/src/lib.rs creates internode gRPC channels with tonic
Endpoint:
- connect timeout
- TCP keepalive
- HTTP/2 keepalive interval and timeout
- request timeout
- optional TLS configuration
- global channel caching and failed-connection eviction
This confirms the current gRPC transport is TCP/HTTP2-based.
NodeService layout
crates/protos/src/node.proto defines one NodeService that mixes several
classes of RPCs:
- meta service: bucket and metadata operations
- disk service: local/remote disk operations
- lock service: distributed lock operations
- peer rest service: node health, metrics, IAM/policy reload, rebalance, profiling, events, and admin-style operations
The service layout is practical today, but it is too broad to become the transport adapter surface. A pluggable data transport should target only disk data streams and keep this gRPC service as the control plane.
Control Plane vs Data Plane
Control plane
These paths carry coordination, metadata, health, and administrative state. They should remain on gRPC/TCP:
| Area | Client/server code | Examples | Notes |
|---|---|---|---|
| Bucket peer ops | crates/ecstore/src/rpc/peer_s3_client.rs, rustfs/src/storage/rpc/node_service/bucket.rs |
MakeBucket, ListBucket, DeleteBucket, GetBucketInfo, HealBucket |
Small metadata/control payloads. |
| Locking | crates/ecstore/src/rpc/remote_locker.rs, rustfs/src/storage/rpc/node_service/lock.rs |
Lock, UnLock, Refresh, batch lock/unlock |
Latency-sensitive but not bulk data; correctness and timeout semantics matter more than transport bandwidth. |
| Peer/admin state | crates/ecstore/src/rpc/peer_rest_client.rs, rustfs/src/storage/rpc/node_service/health.rs, node_service/metrics.rs, node_service/event.rs |
LocalStorageInfo, ServerInfo, GetMetrics, GetLiveEvents, reload APIs, rebalance APIs |
Operational control plane. |
| Disk metadata/control | crates/ecstore/src/rpc/remote_disk.rs, rustfs/src/storage/rpc/node_service/disk.rs |
DiskInfo, ReadXL, ReadVersion, ReadMetadata, WriteMetadata, RenameFile, RenamePart, Delete*, VerifyFile, CheckParts |
Usually metadata, integrity checks, or namespace mutations. |
| Connection health | RemoteDisk, RemotePeerS3Client, PeerRestClient |
TCP connectivity probes and fault/recovery state | Must remain available even if an optional data backend is unavailable. |
Data plane candidates
These paths move object shard bytes or stream potentially large disk data and are the only reasonable first candidates for a pluggable transport.
| Priority | Path | Current client | Current server | Current transport | Why it matters |
|---|---|---|---|---|---|
| P0 | read_file_stream |
RemoteDisk::read_file_stream |
handle_read_file in http_service.rs |
HTTP GET /rustfs/rpc/read_file_stream with a streaming response body |
Main remote disk read stream used by bitrot readers and erasure reads. |
| P0 | put_file_stream |
RemoteDisk::create_file and RemoteDisk::append_file |
handle_put_file in http_service.rs |
HTTP PUT /rustfs/rpc/put_file_stream with a streaming request body |
Main remote disk write stream used by bitrot writers and erasure writes. |
| P1 | walk_dir |
RemoteDisk::walk_dir |
handle_walk_dir in http_service.rs |
HTTP GET /rustfs/rpc/walk_dir with a streamed metadata listing |
Can be high-volume during scans/healing, but it is metadata-oriented rather than object byte data. |
| P1 | ReadAll / WriteAll |
RemoteDisk::read_all / write_all |
gRPC unary disk handlers | gRPC unary bytes payload |
Moves bytes today, but should be measured before treating it as a high-throughput data path. |
| P2 | proto WriteStream / ReadAt |
currently not used | currently returns unimplemented | gRPC streaming definitions exist but are not implemented | Declared proto shape, not a current production path. |
P1 Data Path Inventory
Classification:
- Covered by
InternodeDataTransport:RemoteDiskopens the transfer through the transport abstraction. - Still direct TCP/HTTP/gRPC: bytes move over a fixed internode protocol outside the transport abstraction.
- Metadata/control-plane only: payloads are expected to be small metadata, namespace, lock, health, or admin messages.
- Not relevant: declared or test-only paths that are not current production data paths.
Covered by InternodeDataTransport
| Path | Owner references | Server references | Classification | Notes |
|---|---|---|---|---|
| Remote shard read stream | crates/ecstore/src/rpc/remote_disk.rs::RemoteDisk::read_file_stream; crates/ecstore/src/rpc/internode_data_transport.rs::InternodeDataTransport::open_read; crates/ecstore/src/bitrot.rs::create_bitrot_reader |
rustfs/src/storage/rpc/http_service.rs::handle_read_file |
Covered by InternodeDataTransport |
Object GET, repair reads, and erasure decode use this path for remote shard bytes. |
| Remote shard write stream | RemoteDisk::create_file; RemoteDisk::append_file; InternodeDataTransport::open_write; crates/ecstore/src/bitrot.rs::create_bitrot_writer |
rustfs/src/storage/rpc/http_service.rs::handle_put_file |
Covered by InternodeDataTransport |
Object PUT and multipart part upload use this path for remote shard bytes. |
| Remote namespace walk stream | RemoteDisk::walk_dir; InternodeDataTransport::open_walk_dir; crates/ecstore/src/cache_value/metacache_set.rs walk producers |
rustfs/src/storage/rpc/http_service.rs::handle_walk_dir |
Covered by InternodeDataTransport |
High-volume listing/scanner/heal metadata stream. It is not object byte data, but it is a large internode stream. |
| Remote mmap-copy read fallback | RemoteDisk::read_file_mmap_copy |
same as remote shard read stream | Covered by InternodeDataTransport through read_file_stream |
The remote path buffers the stream into Bytes; true zero-copy is not guaranteed for remote disks. |
Still Direct TCP/HTTP/gRPC
| Path | Owner references | Server references | Classification | Notes |
|---|---|---|---|---|
ReadAll |
RemoteDisk::read_all; crates/ecstore/src/store_init.rs; heal resume metadata readers |
rustfs/src/storage/rpc/node_service/disk.rs::handle_read_all |
Still direct gRPC | Unary bytes response. Currently used mostly for metadata/config files; measure before moving. |
WriteAll |
RemoteDisk::write_all; crates/ecstore/src/store_init.rs; heal resume metadata writers |
rustfs/src/storage/rpc/node_service/disk.rs::handle_write_all |
Still direct gRPC | Unary bytes request. Currently used mostly for metadata/config/checkpoint writes. |
ReadMultiple |
RemoteDisk::read_multiple; crates/ecstore/src/set_disk/read.rs::read_multiple_files |
rustfs/src/storage/rpc/node_service/disk.rs::handle_read_multiple |
Still direct gRPC | Returns multiple small file payloads, usually metadata/listing support. Could become large with many entries. |
ReadParts |
RemoteDisk::read_parts; crates/ecstore/src/set_disk/read.rs::read_parts; multipart list/complete paths |
rustfs/src/storage/rpc/node_service/disk.rs::handle_read_parts |
Still direct gRPC | Encoded ObjectPartInfo metadata, not object data. |
RenamePart |
RemoteDisk::rename_part; crates/ecstore/src/set_disk/write.rs::rename_part |
rustfs/src/storage/rpc/node_service/disk.rs::handle_rename_part |
Still direct gRPC | Carries part metadata while committing multipart data already written through stream writers. |
ListDir |
RemoteDisk::list_dir; multipart/lifecycle metadata listing callers |
rustfs/src/storage/rpc/node_service/disk.rs::handle_list_dir |
Still direct gRPC | Directory name listing, metadata/control-plane unless measured otherwise. |
Legacy gRPC WalkDir |
rustfs/src/storage/rpc/node_service.rs::NodeService::walk_dir |
same file | Still direct gRPC | Server implementation remains, but current RemoteDisk::walk_dir uses HTTP through the transport. Keep until callers are audited or compatibility policy is set. |
Metadata/control-plane only
| Area | Owner references | Classification | Notes |
|---|---|---|---|
| Disk metadata and namespace mutations | RemoteDisk::{read_metadata,write_metadata,update_metadata,read_version,read_xl,rename_data,rename_file,delete*,verify_file,check_parts,disk_info} |
Metadata/control-plane only | These remain on gRPC by design. |
| Peer/bucket/admin operations | crates/ecstore/src/rpc/{peer_s3_client.rs,peer_rest_client.rs,remote_locker.rs} and matching rustfs/src/storage/rpc/node_service/* handlers |
Metadata/control-plane only | Not candidates for a data-plane backend without separate measurements. |
| Store init and format operations | crates/ecstore/src/store_init.rs |
Metadata/control-plane only | Uses ReadAll/WriteAll for small format/config objects. |
| Heal orchestration | crates/heal/src/heal/storage.rs and crates/ecstore/src/set_disk.rs::heal_object |
Metadata/control-plane plus covered data reads | Heal object data reads go through get_object_reader and then covered shard streams; resume/checkpoint metadata uses direct gRPC disk metadata calls. |
Not Relevant Current Paths
| Path | Owner references | Classification | Notes |
|---|---|---|---|
Proto Write |
crates/protos/src/node.proto; rustfs/src/storage/rpc/node_service/disk.rs::handle_write |
Not relevant | Handler is unimplemented. |
Proto WriteStream |
crates/protos/src/node.proto; rustfs/src/storage/rpc/node_service.rs::write_stream |
Not relevant | Returns unimplemented. |
Proto ReadAt |
crates/protos/src/node.proto; rustfs/src/storage/rpc/node_service.rs::read_at |
Not relevant | Returns unimplemented. |
| E2E reliant gRPC helpers | crates/e2e_test/src/reliant/* |
Not relevant | Test harnesses, not production internode data-path callers. |
Current Limitations
| Risk | Limitation |
|---|---|
| Medium | ReadAll and WriteAll still carry unary bytes over gRPC. They appear metadata-oriented today, but there is no size threshold or routing policy. |
| Medium | ReadMultiple can aggregate many metadata files into one gRPC response. |
| Low | Legacy gRPC WalkDir remains implemented while RemoteDisk::walk_dir uses HTTP through the transport. |
| Medium | Remote read_file_mmap_copy is a buffered read over the transport, not a remote zero-copy contract. |
| Medium | Server-side TCP HTTP route handling is outside the client-side trait. |
Current Object Write Path
For object PUTs in distributed erasure mode, the relevant flow is:
- Upper storage layers prepare object data and erasure metadata.
SetDisksselects local and remote disks.create_bitrot_writercallsdisk.create_file(...)for each shard writer.- For a remote disk,
RemoteDisk::create_filedelegates toInternodeDataTransport::open_write. HttpWritersends an HTTPPUTto/rustfs/rpc/put_file_stream.- The remote node's
handle_put_fileopens the local file writer and copies incoming body chunks into it. Erasure::encodewrites shards throughMultiWriterto all selected writers while enforcing write quorum.
This is the primary write data-plane candidate.
Current Object Read Path
For object GETs and repair reads in distributed erasure mode, the relevant flow is:
SetDisksprepares shard readers for the selected disks.create_bitrot_readeruses local mmap-copy reads only whendisk.is_local().- For a remote disk, it calls
disk.read_file_stream(...). RemoteDisk::read_file_streamdelegates toInternodeDataTransport::open_read.HttpReadersends an HTTPGETto/rustfs/rpc/read_file_stream.- The remote node's
handle_read_fileopens the local disk stream and returns it as an HTTP streaming body. - The erasure decoder reads from the shard streams and reconstructs the object.
This is the primary read data-plane candidate.
Existing Metrics and Benchmark Surface
RustFS already has coarse internode metrics in crates/io-metrics/src/internode_metrics.rs:
- sent bytes
- received bytes
- outgoing requests
- incoming requests
- errors
- dial errors
- average dial time
These metrics are useful as a starting point. For backend comparisons, the relevant route-level and operation-level dimensions are:
read_file_streamput_file_streamwalk_dir- gRPC
ReadAll/WriteAll - gRPC control-plane request volume
Existing benchmark assets:
scripts/run_object_batch_bench.shscripts/run_object_batch_bench_enhanced.shscripts/run_object_batch_bench_abc.shscripts/run_four_node_cluster_failover_bench.shscripts/run_internode_transport_baseline.sh(scenario matrix wrapper for local vs distributed TCP baseline artifacts)- Criterion benches under
crates/ecstore/benches/
These mostly cover S3/object workload or erasure coding performance. They do not yet isolate internode transport cost.
Required TCP Baseline
Before changing internode data transport behavior or comparing a non-default backend, collect a baseline for the current TCP/HTTP/gRPC implementation.
Topology
Minimum:
- 1-node local erasure deployment, to measure local disk and erasure overhead.
- 4-node distributed erasure deployment, to measure internode overhead.
Preferred:
- Same host count and disk layout for every run.
- Dedicated network interface or isolated VLAN.
- Fixed CPU governor and no unrelated background load.
- Recorded kernel version, NIC model, MTU, RustFS commit, Rust toolchain, and benchmark tool versions.
Workloads
| Workload | Sizes | Concurrency | Main signal |
|---|---|---|---|
| S3 PUT | 4 KiB, 1 MiB, 16 MiB, 128 MiB, 1 GiB | 1, 16, 64, 128 | End-to-end write throughput and tail latency. |
| S3 GET | 4 KiB, 1 MiB, 16 MiB, 128 MiB, 1 GiB | 1, 16, 64, 128 | End-to-end read throughput and tail latency. |
| Remote disk stream read | shard-sized ranges from read_file_stream |
1, 16, 64 | Isolated internode read path. |
| Remote disk stream write | shard-sized writes through put_file_stream |
1, 16, 64 | Isolated internode write path. |
| Healing / repair | missing disk or missing shard scenario | controlled | Rebuild throughput and read/write amplification. |
| Scanner walk | large bucket/object namespace | controlled | Metadata streaming pressure, not the primary object-byte transport path. |
Measurements
Collect:
- throughput in bytes/s and objects/s
- p50, p95, p99, and max latency
- CPU utilization per process and per core
- memory RSS and allocation pressure where available
rustfs_system_network_internode_*metrics- TCP retransmits, socket errors, and NIC throughput
- disk throughput and utilization
- failure/retry/fallback counts
The baseline should produce a machine-readable artifact, for example
target/bench/internode-transport/<timestamp>/summary.csv, plus the exact
commands and configuration used.
Baseline runner entry point
Use scripts/run_internode_transport_baseline.sh to execute a reproducible
S3 PUT/GET matrix against local and distributed scenarios and export:
summary.csv(throughput/latency summary per workload and object size)internode_metric_deltas.csv(operation-level internode metric deltas when--metrics-urlis provided)
See transport-metrics-and-baseline.md for current metric names, labels,
operation values, baseline inputs, and baseline artifact fields.
Transport Abstraction Proposal
Design principle
Keep NodeService as the control plane. Introduce a separate data transport
only below RemoteDisk, where remote disk byte streams are opened today.
The first implementation should be a no-behavior-change TCP/HTTP backend that
wraps the current HttpReader, HttpWriter, and /rustfs/rpc/* handlers.
Non-default backend work should not proceed until the default wrapper is
measured and adapter gaps are documented.
Candidate boundary
The current boundary is remote disk stream transfer:
#[async_trait::async_trait]
pub trait InternodeDataTransport: Send + Sync + std::fmt::Debug {
async fn open_read(&self, request: ReadStreamRequest) -> Result<FileReader>;
async fn open_write(&self, request: WriteStreamRequest) -> Result<FileWriter>;
async fn open_walk_dir(&self, request: WalkDirStreamRequest) -> Result<FileReader>;
fn name(&self) -> &'static str;
fn capabilities(&self) -> InternodeDataTransportCapabilities;
}
Initial request fields should mirror the current HTTP query parameters:
- peer endpoint
- disk reference
- volume
- path
- offset
- length
- append/create mode
- expected size
- optional stall timeout for long-running listing streams
The initial TCP backend can keep the current signed HTTP URLs internally.
Integration point
RemoteDisk delegates only these methods to the data transport:
read_file_streamread_file_mmap_copyas the current wrapper overread_file_streamappend_filecreate_filewalk_dir
All other RemoteDisk methods continue using the current gRPC client
in this adapter scope.
Capability model
Avoid hard-coding transport-specific assumptions into the generic interface. The current conservative capability fields are:
- streaming read
- streaming write
- streaming walk-dir
- ordered delivery
- maximum transfer size
- fallback support
The TCP/HTTP backend should report only capabilities that it actually provides.
TCP Fallback Requirements
TCP/HTTP/gRPC must remain the default and required backend.
Fallback rules:
- If no explicit data transport is configured, use the current TCP/HTTP implementation.
- The current accepted values for
RUSTFS_INTERNODE_DATA_TRANSPORTaretcp-httpand thetcpalias. Empty and unset values usetcp-http. - Invalid configured values fail closed with an error that includes the env var name and invalid value.
- Unsupported configured backends fail closed during transport construction.
- Runtime fallback must preserve object correctness and quorum semantics.
- Fallback events must be logged and counted in metrics.
Do not add fallback settings until there is an implementation PR that uses them.
Baseline Validation Commands
Dry-run command:
scripts/run_internode_transport_baseline.sh \
--access-key minioadmin \
--secret-key minioadmin \
--scenarios local=http://127.0.0.1:9000,distributed=http://127.0.0.1:9001 \
--sizes 4KiB,1MiB \
--concurrencies 1 \
--duration 10s \
--dry-run
Real TCP baseline command with metrics:
RUSTFS_INTERNODE_DATA_TRANSPORT=tcp-http \
scripts/run_internode_transport_baseline.sh \
--access-key "$RUSTFS_ACCESS_KEY" \
--secret-key "$RUSTFS_SECRET_KEY" \
--scenarios local=http://127.0.0.1:9000,distributed=http://127.0.0.1:9001 \
--metrics-url http://127.0.0.1:9000/metrics \
--out-dir target/bench/internode-transport/manual-run
Expected artifacts:
run_manifest.txtsummary.csvinternode_metric_deltas.csvwhen--metrics-urlis provided
The baseline validates the default TCP/HTTP path only. It must not be used to claim support or performance for any other transport.
Adapter Constraints
The current adapter boundary has these constraints:
tcp-httpis the default and only OSS backend.- Backend selection is explicit and fail-closed.
- The gRPC control plane remains responsible for metadata, health, locks, and coordination.
- Transport errors must preserve existing disk health, quorum, timeout, and integrity semantics.
- Metrics must identify the selected backend and operation without high-cardinality labels.
The current RemoteDisk::walk_dir stream is routed through the adapter.
Metadata RPCs, locks, admin RPCs, bucket coordination, and the legacy gRPC
WalkDir handler remain outside the current data-plane boundary.
Out of Scope
This RFC does not add a plugin system, split the adapter into a separate crate, add accepted backend values, or implement a new transport backend.