* refactor(replication): split four oversized hot-path functions into focused helpers
Pure-move decomposition of the four oversized functions flagged by the
replication compatibility review (P1-18), unblocking migration milestone
M2 which requires resyncer moves to stay mechanical:
- resync_bucket (522 lines -> 61-line step sequence): leader lock,
target resolution, walk/collector/worker spawning, and dispatch loop
extracted into focused helpers; pure decision helpers (DTO builders,
HEAD-result classification) separated from IO orchestration.
- replicate_all (411 lines -> 113-line main body): initial target-info
seeding, read/stat option builders, skip-path notes, target HEAD
action resolution, and the multipart/single-put payload transport
extracted as private free functions.
- start_mrf_processor (306 lines -> 46-line spawn body): recovery guard,
ledger load, per-entry replay (delete/object/metadata), and retained
entry resolution extracted; retry bookkeeping semantics preserved
exactly (inner continue-paths push inside helpers, outer Missed push
stays in the loop).
- apply_iam_item (255 lines -> match dispatch skeleton): one helper per
IAM item type.
No behavior change: log texts, error paths, event emissions, and metric
counts are byte-identical; existing tests unchanged and green (238
ecstore replication/mrf/resync + 232 rustfs site-replication).
* feat(replication): proxy GET/HEAD/Tagging for unreplicated objects to replication targets (#6172)
* feat(replication): proxy GET/HEAD/Tagging for unreplicated objects to replication targets
Implements the MinIO active-active read-proxy protocol (P1-5 of the
replication compatibility review): when a GET/HEAD/GetObjectTagging/
PutObjectTagging/DeleteObjectTagging request fails locally with
not-found and the bucket has replication targets, the request is proxied
to the targets in rule order, mirroring bucket-replication.go
proxyGetToReplicationTarget/proxyHeadToRepTarget/proxyTaggingToRepTarget.
Protocol surface:
- Anti-loop: inbound {x-rustfs-,x-minio-}source-proxy-request is parsed
into ObjectOptions (proxy_request + proxy_header_set, matching MinIO
ProxyRequest/ProxyHeaderSet); a request carrying the marker with ANY
value is never re-proxied. Outbound client proxy calls send the marker
as "true"; replication worker convergence HEADs send it as "false" so
a peer's proxy layer cannot answer a convergence check by proxying
back to the source (which would fake Completed without a PUT).
- Target selection: new replication_proxy.rs get_proxy_targets — empty
when the marker is set, versioning is suspended, or no replication
config; otherwise filter_target_arns -> TargetClient lookup, skipping
targets with proxying disabled.
- TargetClient gains head_object_for_proxy/get_object (streaming) and
the three tagging calls. Proxy calls never send the replication-check
SSE-C exemption header; customer SSE-C keys are forwarded verbatim so
the target performs real decryption. Conditional (If-*) headers are
not forwarded (MinIO parity); Range and part_number are, with
parts_count/tag_count/storage_class/expiration passed through.
- Metrics: proxy counters now count only real client proxy traffic,
MinIO-aligned (one total per proxied request, one failed when no
target served it). The previous misattributed counters — replication
worker HEAD/PUT (#2672) and local tagging operations (#2682) — are
removed; ReplProxyMetric now maps the tagging counters instead of
dropping them.
e2e (fake_s3_target extended with tagging + header journaling): proxied
GET body + outbound header contract (marker present, no
replication-check, SSE-C passthrough), HEAD, anti-loop 404 with zero
outbound requests, GetObjectTagging, and metric mapping unit tests.
Rolling note: proxying only activates for buckets with replication
targets; requests carrying the marker keep pre-upgrade behavior.
Refs rustfs/backlog#1675 (P1-5)
* fix(replication): fail SSE-C passthrough closed on targets that drop transport headers (#6178)
SSE-C ciphertext passthrough replicates via X-Rustfs-Replication-* transport
headers. A MinIO/generic-S3 target silently discards them, storing bare
ciphertext with no decryption material — yet the PUT succeeded, so the object
reported COMPLETED with a silently unreadable replica (backlog#1675 N2).
Fail-closed design:
- SsecPassthroughCapability {Unknown, Supported, Unsupported} cached in
BucketTargetSys per target ARN with a recording timestamp. Entries reset
whenever the target is rebuilt, edited, or removed (arn_remotes_map
lifecycle) and expire after SSEC_PASSTHROUGH_CAPABILITY_TTL (10 minutes):
an expired verdict in either direction is re-earned through the audit, so
an Unsupported target recovers automatically after an upgrade (at most one
wasted PUT+HEAD audit per bad target per TTL window) and a Supported
verdict cannot outlive a backend swapped behind the same endpoint.
- Replication worker (replicate_object and replicate_all): fresh Unsupported
targets never receive the PUT — the attempt fails immediately into the
normal MRF retry channel with a "run ?replication-check to re-probe" hint.
Unknown or expired verdicts are audited: after the PUT the worker HEADs
the replica back through the replication-check channel (source version id
mapped through resolve_read_api_version_id, so null-version objects audit
correctly) and requires SSE-C evidence (the echoed customer-algorithm
header); missing evidence records Unsupported and fails the attempt.
Convergence HEADs are audited the same way, so a broken ciphertext replica
from an earlier attempt can never launder itself into COMPLETED via an
ETag match. The gate/evidence policy is pure (replication_target_boundary,
staleness folded in as an input) for the M2 worker migration.
- replication-check grows an SsecPassthrough probe phase: a probe PUT
carrying the live transport-header shape, HEAD-back for evidence, and a
machine-readable Code BucketRemoteSsecPassthroughUnsupported on failure.
The probe verdict is synced into the runtime capability cache. Unlike
VersionFidelity, a failed SsecPassthrough phase does NOT fail the target
overall — it is a capability limit, not a broken replication contract,
and a plaintext-only deployment against such a target must not turn red.
- fake_s3_target: default mode now models a RustFS target (stores the
transport headers, echoes SSE-C evidence); the new
drop_unlisted_replication_headers mode models MinIO. The journal records
whether a request carried transport headers.
Receiver-echo verification: the replication-check HEAD exemption only skips
SSE-C key validation; the response has always built sse-customer-algorithm
from stored metadata (rustfs/src/app/object_usecase.rs), so no receiver
change was needed — pinned end to end by the replication-check e2e against
a real RustFS target.
Rolling-upgrade constraint: RustFS targets older than the replication-check
HEAD exemption (#5898) answer the audit HEAD without SSE-C evidence (or fail
it outright), so SSE-C replication to such targets reports FAILED. This is
deliberate — FAILED-and-retryable beats a silently undecryptable replica —
and self-heals: once the target is upgraded, the next TTL expiry (or a
manual ?replication-check re-probe) re-audits and records Supported.
Plaintext and managed-SSE replication are unaffected. The capability cache
is per-node; each node audits independently.
Known limitations:
- The audit judges evidence from the echoed customer-algorithm header only.
A hypothetical target that preserves that one header while dropping other
transport headers (partial-drop) would pass the audit; no known target
behaves this way — observed targets drop the whole unknown-header family.
- A mixed-version target cluster can flap the verdict between audits routed
to different target nodes until the rollout completes; the TTL bounds how
long each stale verdict persists.
New e2e (backlog#1675 C1 + N2, red-first): fail-closed against a
header-dropping fake (FAILED + no second PUT via the capability cache,
journal-asserted; red run showed the old COMPLETED), replication-check
reports the SsecPassthrough phase Code while the target stays OK overall,
SSE-C heal convergence after a real target outage, and SSE-C
existing-object resync landing a REPLICA readable with the customer key.
TTL expiry in both directions is pinned at the cache and gate seams.
* refactor(replication): move resyncer pure decision logic into rustfs-replication (M2) (#6180)
* refactor(replication): move resyncer pure decision logic into rustfs-replication (M2)
Pure-move milestone M2 of the ECStore replication split (backlog#1675
P1-17): relocate the resyncer's IO-free decision helpers, with their unit
tests, into the crates they already belong to by type ownership. No
behavior change.
Moved into crates/replication:
- resync.rs: resync_status_duration
- delete.rs: resync_existing_delete_replication_info,
replicate_delete_outcome, target_delete_version_id,
delete_marker_purge_version_id, delete_marker_purge_mrf_entry
- object.rs: version_identity_drifted, is_replication_target_offline_error,
SsecPassthroughCapability, SsecPassthroughGate, ssec_passthrough_gate,
ssec_passthrough_evidence_present (param-demoted to the echoed
customer-algorithm string; ECStore keeps the HeadObjectOutput adapter)
- filemeta.rs: NULL_VERSION_ID wire literal (crate-owned copy per the
filemeta-independence contract)
ECStore rewiring (Rule #14: imports stay in *_boundary.rs):
- resync/object-decision/target boundaries re-export the moved symbols;
resyncer call sites are unchanged
- bucket_target_sys keeps only the verdict cache + TTL and re-exports the
capability enum so existing consumer paths keep compiling
Not moved (signatures carry ECStore or aws-sdk types):
verify_resync_head_result, resync_target_error_detail, the SdkError
classifiers, the replicate_all_* option/info builders, and the env-coupled
bounded_resync_max_jobs admission clamp. README milestone table updated.
* chore(replication): retire the datatypes.rs relay early
README sanctions retiring datatypes.rs ahead of M4. The module was a
pure relay (resync boundary -> datatypes -> mod.rs facade) with no
external consumer importing it directly, so the facade now re-exports
ResyncStatusType from replication_resync_boundary and the relay file is
deleted. Consumers stay behind the ECStore facade, keeping Migration
Rule #15 intact — the original retirement wording ("consumers import
through rustfs-replication directly") conflicted with that rule and is
corrected in the README.
* chore(arch): extend migration guards to the M2-moved decision contracts
The adversarial review of the M2 move found the per-symbol ratchet in
check_architecture_migration_rules.sh was not extended for the moved
symbols, leaving them free to be redefined in ECStore or imported past
their boundary without CI noticing:
- resync definition pin + boundary fences gain resync_status_duration;
- the object-decision boundary fences gain the five delete-family
helpers (delete_marker_purge_mrf_entry, delete_marker_purge_version_id,
replicate_delete_outcome, resync_existing_delete_replication_info,
target_delete_version_id);
- the target-boundary fence gains the SSE-C gate family, the offline
classifier, and version_identity_drifted;
- a new definition pin rejects ECStore redefinitions of the M2-moved
fns/enums (ssec_passthrough_evidence_present deliberately excluded:
ECStore keeps a thin HeadObjectOutput adapter under that name).
Mutation-verified: a probe fn ssec_passthrough_gate under
crates/ecstore/src/bucket/replication trips the new pin.
Also anchors the intentionally-duplicated NULL_VERSION_ID wire literal
from the filemeta side and tightens the M2 README note on
bounded_resync_max_jobs.
* test(replication): pin missing LWW timestamp header transport
Red-light tests for the replication timestamp three-header contract:
- put_object_headers_carry_replication_timestamp_headers pins that
PutObjectOptions::header() must emit the
x-{rustfs,minio}-source-replication-{tagging,retention,legalhold}-timestamp
headers when the internal timestamps are set (currently missing).
- test_put_opts_from_headers_gates_replication_timestamp_persistence_on_authorization
and test_complete_multipart_opts_persist_replication_timestamps_when_authorized
pin that an authorized replication PUT / multipart complete must persist
the inbound timestamps into the internal metadata keys while unauthorized
requests must not (currently never persisted).
- fake_s3_target journals the three timestamp headers per request
(ReplicationTimestampHeaders on RequestRecord) so sender-side e2e
assertions can observe what a real target receives; self-test included.
* fix(replication): transport and persist LWW timestamps for tag, retention, and legal hold
Active-active conflict resolution for concurrent tag/retention/legal-hold
edits needs the source's per-category modification times on both sides of
the wire; the three AdvancedPutOptions timestamp fields were dead and the
headers were neither sent nor parsed.
- Emit x-{rustfs,minio}-source-replication-{tagging,retention,legalhold}-
timestamp from PutObjectOptions::header(); names and RFC3339 values
interoperate with MinIO (minio-go constants.go, object-api-options.go),
pinned by a header_compat wire-name test.
- Default the three AdvancedPutOptions timestamps to UNIX_EPOCH and skip
epoch values in header(), so "never modified" is not sent as a
modification made now.
- Parse the headers only on authorized replication PUTs and multipart
completes, expose them as Option<OffsetDateTime> on ObjectOptions, and
persist them into the dual-prefix internal metadata keys so the
outbound pass (replication_target_boundary) reads the source's
timestamps instead of the mod_time fallback.
- Record the local tagging timestamp in the PutObjectTagging and
DeleteObjectTagging eval metadata, mirroring the object-lock handlers;
without it the sender only ever had the mod_time fallback to offer.
Receiver-side LWW comparison (keep newer stored category metadata over a
stale inbound copy) is left as a TODO at the parse site.
* fix(replication): load the stored tagging timestamp independently of remaining tags
Review: DeleteObjectTagging persists the tagging-timestamp internal key
but leaves the object tagless, and the outbound mapper only loaded the
key inside the user_tags-nonempty branch — the deletion's LWW timestamp
stayed at the epoch and the header was omitted, so the deletion could
never win conflict resolution on the replica. The stored key is now
loaded unconditionally; the mod_time fallback still applies only while
tags exist (MinIO parity), and a tagless object without the key keeps
the epoch default (no header). Deletion-path regression test added.
* fix(storage): reserve replication transport names at metadata ingest
Second review round: a client PUT of
x-amz-meta-x-rustfs-source-replication-tagging-timestamp materialized
the bare transport key as stored user metadata. The outbound
replication header builder forwards user metadata verbatim on a
server-authorized request, so the receiver would persist the
attacker-chosen value as trusted internal LWW state — and for a
tagless object nothing later overwrites it.
The ingest namespacing guard now reserves the whole
x-rustfs-source- / x-minio-source- families (the new timestamps and
their siblings: source-mtime/-etag/-version-id/-replication-request),
folding forged keys back under x-amz-meta-. Forged-ingress regression
covers both prefixes and a sibling.
* fix(replication): harden timestamp replay
* fix(app): route retention helper through facade
---------
Co-authored-by: overtrue <anzhengchao@gmail.com>
Open the managed-SSE replication gate (backlog#1783, PR-B of 3, after
#5872): the replication reader already decrypts through the injected
object-encryption resolver, so the source sends plaintext plus an
encryption intent header (AES256 / aws:kms, never the source key id) and
the target re-encrypts on its normal PUT path with its own KMS. No DEK
crosses sites.
- replication_put_object_options: fail closed only on Unsupported;
insert the SSE intent after the strip loop.
- TargetClient::create_multipart_upload sends the full opts.header()
set, fixing multipart replicas losing content-type/user metadata
(plaintext included).
- Preserve source ETag and mtime on replicas (authorized replication
only): receiver wires x-rustfs-source-etag into preserve_etag for PUT
and CompleteMultipartUpload, resolve_complete_etag consumes it, and
complete options carry source_etag/source_mtime (absent mtime
degrades to epoch, not now_utc). Without this every replication HEAD
comparison re-drives re-encrypted objects forever.
- e2e: managed SSE contracts flip to success on an independent-KMS
dual-process pair (byte-identical plain GET proves target-owned
envelopes; ETag/mtime preserved; version stable across scanner
cycles; resync converges; multipart keeps structure and metadata);
new target-without-KMS fail-closed contract; SSE-C stays FAILED.
Co-authored-by: houseme <housemecn@gmail.com>
Groundwork for encrypted-object replication (backlog#1783, PR-A of 3):
- classify_replication_source_encryption: accept the AES256 marker that
every stored SSE-C object carries; the SseC arm was unreachable.
- Fail closed on sealed material without an SSE marker (MinIO-written
objects) instead of replicating ciphertext as plaintext.
- Replace the dead VALID_SSE_REPLICATION_HEADERS table with a transport
map keyed by the metadata keys the SSE writer actually persists, shared
via the new rustfs_utils::http::object_encryption_keys module.
- Structurally strip all encryption metadata from outbound replication
(x-rustfs-encryption-* envelopes previously passed the filters).
- Skip decrypt_checksums for encrypted objects at the boundary so its
is_multipart=false (a response-path contract) cannot misroute
encrypted multipart objects once managed replication opens.
- Redact X-Rustfs-Replication-* SSE transport values in FileInfo Debug.
A reconciliation test pins that every key encryption_material_to_metadata
produces is either transport-mapped or stripped. All four SSE replication
e2e contracts still assert FAILED unchanged.
test(replication): lock outbound checksum consistency for new algorithms (T3)
Adds a consistency test at the replication put-options boundary confirming that
the AWS 2026-04 additional checksum algorithms (XXHash3/64/128, SHA-512, MD5) are
forwarded into replication user_metadata identically to the classic five. The
outbound replication path routes a stored object checksum through the
algorithm-agnostic decrypt_checksums -> user_metadata flow, so the new algorithms
(already covered by rustfs-rio read_checksums) need no new-algorithm-specific
handling. This locks that behavior against regressions.
Investigation summary (no code change needed on the outbound side): the
per-algorithm ChecksumMode selection path is dormant (opts.checksum is never set
to a specific algorithm; tiering uses Content-MD5; the add_crc bool is dead
code), so extending ChecksumMode was unnecessary.
Co-authored-by: heihutu <heihutu@gmail.com>
content_matches_by_etag is only used inside the #[cfg(test)] module, so
the lib-scope import from #4211 fails cargo clippy -D warnings on every
non-test build.
Co-authored-by: Claude Fable 5 <noreply@anthropic.com>