* Change Rust toolchain channel to stable
Signed-off-by: houseme <housemecn@gmail.com>
* style: apply clippy --fix and cargo fix lint suggestions
Run `cargo clippy --fix --all-targets --all-features` and
`cargo fix --lib --all-targets` across the workspace, then resolve the
remaining warnings by hand:
- collapse needless borrows in `format!` args, prefer `?` over explicit
early returns, and use `.values()` / `.flatten()` iterator adapters
- rewrite the `Md5` scan loop via `manual_flatten` and re-indent the
`select!` macro body (rustfmt skips macro interiors)
- annotate the intentional dead-code `Md5` inherent methods (constructed
only by the test factory) with `#[allow(dead_code)]`
Behavior is unchanged.
Co-Authored-By: heihutu <heihutu@gmail.com>
---------
Signed-off-by: houseme <housemecn@gmail.com>
Co-authored-by: heihutu <heihutu@gmail.com>
fix(object-data-cache): make GET body cache key write-unique and dedup lookups
Address four object-data-cache GET-path findings (backlog#1107 batch):
ODC-06 (backlog#1111): the cache key was content-unique, not write-unique.
Extend ObjectDataCacheKey with the resolved version's modification time
(i128 unix nanoseconds, None -> 0), derived once in the shared planner so the
ecstore hook and the usecase layer produce an identical key. An unversioned
overwrite advances mod_time, so a stale node can no longer serve old bytes for
up to the TTL under an MD5 collision; etag + size stay as belt-and-braces.
ODC-16 (backlog#1121): every cacheable GET planned and looked up twice (once in
the ecstore hook, once in the usecase layer), double-counting hits, hit_bytes
and lookups. GetObjectReader now carries a GetObjectBodySource marker
(Unprobed / HookMissed / HookServed); the hook stamps it, and
build_get_object_body_with_cache serves a hook-served body directly and skips
its lookup whenever the hook already probed. One hook-served GET now records
exactly one lookup.
ODC-19 (backlog#1124): ENABLE=true with no explicit mode defaulted to HitOnly,
which never fills and keeps a permanent 0% hit rate. Default to
FillBufferedOnly, log the resolved mode at startup, and warn when HitOnly is
selected explicitly.
ODC-24 (backlog#1129): max_entry_bytes above the in-memory GET fill limits was
silently inert. Clamp the planner's size eligibility to
min(max_entry_bytes, seek-support threshold, 64 MiB buffer cap) so ineligible
sizes plan SkipTooLarge instead of being reported eligible, and warn at startup
when the excess is inert.
Co-authored-by: heihutu <heihutu@gmail.com>
Introduce RUSTFS_REPL_HEALTH_CHECK_INTERVAL_MS, RUSTFS_REPL_MRF_FLUSH_INTERVAL_MS
and RUSTFS_REPL_RESYNC_POLL_MAX_MS so tests and operators can shorten the
replication background loops. Defaults are unchanged; invalid values fall
back with a warn and values below 10ms are clamped to avoid busy-spin.
Add replication_fast_env() e2e helper (backlog#1147 repl-4).
Phase 5 Slice 11 (backlog#939): move the background replication pool and stats —
the last service handles, and the only async ones — out of the process statics
into the per-instance InstanceContext.
- InstanceContext gains `replication_stats: OnceCell<Arc<ReplicationStats>>` and
`replication_pool: OnceCell<Arc<DynReplicationPool>>` (tokio async OnceCell),
with sync read accessors (`replication_stats`/`replication_pool`/
`replication_initialized`) and pub(crate) cell accessors for the async init.
- `init_background_replication` initializes the current instance's cells via the
same `get_or_init(async {…}).await` (workers still spawned once on first
init). The lifecycle owner helpers and the runtime-source accessors keep their
signatures and route through the current instance's context; the two statics
(and the now-unused lazy_static import) are removed. The replication-boundary
arch guard still passes.
Single-instance: init materializes one shared pool/stats via the bootstrap
context — byte-for-byte the same as the eager statics.
Tests: replication state is None until set and independent across instances.
Verification: cargo test -p rustfs-ecstore (22 instance-context tests green),
cargo clippy -p rustfs-ecstore --all-targets (clean), make pre-commit (pass).
Refs: backlog#939 (Phase 5, Slice 11). Stacked on Slice 10 (#4494).
fix(replication): persist original mtime in MRF entries (backlog#867)
MRF delete entries did not persist the original delete-marker mtime, so
after a restart the recovery replay path reconstructed the delete without
a source timestamp. Downstream the replica delete-marker was stamped with
the replay time (now()) instead of the source mtime, causing delete-marker
timestamp divergence across clusters.
Extend the MrfReplicateEntry disk format with an optional deleteMarkerMtime
field (persisted as Unix nanoseconds) in both duplicate struct definitions
(rustfs-replication and rustfs-filemeta). DeletedObjectReplicationInfo now
persists delete_marker_mtime, and start_mrf_processor restores it onto the
reconstructed delete so the replica keeps the source timestamp.
Backward compatibility: the new key uses skip_serializing_if + serde
default, so historical MRF files without it decode to None and replay
falls back to the current time (pre-#867 behaviour). No panic or entry
loss on old files.
Closesrustfs/backlog#867
MRF delete replay reconstructed the delete with `..Default::default()`, leaving
`replication_state = None`. `replicate_delete` derives its target set purely
from `replication_state.replicate_decision_str`, so an empty state produced an
empty decision -> zero targets: the replayed delete contacted no remote at all,
a silent no-op that left replicas permanently diverged after a restart.
The MRF entry doesn't persist the decision and the source object is already
gone, so re-derive it from the live bucket config at replay time via
`check_replicate_delete` — mirroring the object heal path
(`get_heal_replicate_object_info`) — and set it on the reconstructed delete's
`replication_state`. This is a contained fix with no change to the on-disk MRF
format.
Refs backlog#799 (B9).
Note: the source delete-marker mtime is still not persisted in the MRF entry,
so a replayed delete marker is stamped with the replay time on the target. That
is a separate, minor consistency nuance (the delete now propagates correctly)
and can be addressed by extending the MRF entry format in a follow-up.
The MRF persister accumulated overflow entries in `pending`, flushed them with
`flush_mrf_to_disk`, and cleared `pending` on success. But `flush_mrf_to_disk`
*overwrites* the whole MRF file with exactly the entries passed. After flushing
batch A (file = A) and clearing, the next flush wrote batch B and thereby
overwrote the file to contain only B — and the MRF file is only replayed (and
cleared) at startup, never during the run, so batch A's entries were silently
lost. A crash after the B flush lost all of batch A's pending replications.
Keep `pending` cumulative (the file must hold the full set of overflow entries
for the run) and rewrite the whole set on each flush instead of clearing after
success:
- flush eagerly once 1 000 *new* entries accumulate since the last write
(measured against the flushed length, so a large backlog isn't rewritten on
every add), and on the 10s tick when dirty;
- bound the in-memory/on-disk backlog with `MRF_PENDING_CAP` (200 000) and log
once when the cap is hit rather than growing without limit.
Refs backlog#799 (B10).
* refactor: move delete object contracts to storage api
* refactor: narrow store api compatibility exports
* refactor: route table catalog test through storage compat
* fix(bucket-repl): persist MRF retry queue to disk and reload on startup
Co-Authored-By: Claude Sonnet 4.6 <noreply@anthropic.com>
* fix(bucket-repl): address three blocking MRF issues from review
1. MRF replay loses delete operations — add `MrfOpKind` discriminator to
`MrfReplicateEntry` (Object | Delete, default=Object for backward
compat). `DeletedObjectReplicationInfo::to_mrf_entry` now persists
`op=Delete`, `version_id`, `delete_marker_version_id`, and
`delete_marker`. `start_mrf_processor` branches on `op`: delete
entries skip `get_object_info` and replay via
`schedule_replication_delete` with `ReplicationType::Heal`; object
entries follow the existing heal path.
2. `flush_mrf_to_disk` cleared the in-memory batch even on encode/write
failure — changed return type to `bool` and callers now only
`pending.clear()` on `true`, so a transient storage error retries
on the next tick instead of silently dropping the batch.
3. Add focused tests: encode/decode roundtrips for object, delete-marker,
versioned-delete, and mixed-batch entries; a routing test confirming
op-kind propagates correctly and that the default is Object for
legacy files; a legacy-compat test verifying old entries round-trip
cleanly through the new format.
Co-Authored-By: Claude Sonnet 4.6 <noreply@anthropic.com>
* style: fix clippy redundant-clone in MRF tests
Replace &[entry.clone()] with std::slice::from_ref(&entry) in two
encode_mrf_file call sites flagged by clippy's redundant_clone lint
under --all-targets --features rio-v2.
Co-Authored-By: Claude Sonnet 4.6 <noreply@anthropic.com>
* test(bucket-repl): strengthen legacy MRF compat test with hand-built msgpack
The previous mrf_legacy_file_without_op_field_decoded_as_object test
round-tripped through encode_mrf_file, so it exercised the new format
and never touched a truly-legacy payload.
Replace it with a hand-built msgpack payload that genuinely omits the
"op", "deleteMarker", and "deleteMarkerVersionID" keys — exactly what
the old binary would have written before MrfOpKind existed. The test
now fails if #[serde(default)] is removed from the op field, which
proves real backward compatibility rather than round-trip stability.
Co-Authored-By: Claude Sonnet 4.6 <noreply@anthropic.com>
---------
Co-authored-by: Claude Sonnet 4.6 <noreply@anthropic.com>
Co-authored-by: houseme <housemecn@gmail.com>
fix(bucket-repl): honor op_type in replicate_object so ExistingObject resync respects DISABLED targets
replicate_object was calling filter_target_arns with hard-coded
op_type: Object and existing_object: false regardless of what was
stored in roi.op_type. This meant that a resync worker setting
roi.op_type = ExistingObject (resync_bucket, line 889) had no effect
on target filtering: all configured targets were included, even ones
whose rule had ExistingObjectReplicationStatus::DISABLED.
Fix: pass op_type: roi.op_type and derive existing_object from it
(true only for ExistingObject, not Heal — Heal intentionally bypasses
the existing-object opt-out to repair past failures).
Also add warn! logs at all four MRF channel-overflow sites that were
previously silently returning Missed with no observability.
Verified with a live two-instance test: after resync, objects reached
the ENABLED target and were correctly blocked from the DISABLED target.
Co-authored-by: Claude Sonnet 4.6 <noreply@anthropic.com>
Co-authored-by: houseme <housemecn@gmail.com>