Add a replacement recovery peer RPC so Admin v4 can distinguish definitive cluster proofs from unsupported, unavailable, or conflicting peer state without extending the existing background heal v3/v1 status protocol.
Co-authored-by: heihutu <heihutu@gmail.com>
Three Kubernetes endpoint-identity tests read the real kernel hostname
and panicked when it is an IP literal (e.g. macOS without a static
HostName, where DHCP/reverse-DNS sets the kernel hostname to an address
like 192.168.1.11).
Add a cfg(test) override seam (force_kernel_hostname_for_test, mirroring
the existing force_local_host_resolution_timeout_for_test pattern) and
route the production read through kernel_hostname_for_endpoint_identity()
so the tests inject deterministic hostnames instead of depending on the
host environment. Production behavior is unchanged.
Complete the encrypted-object replication series (backlog#1783, PR-C of
3, after #5872 and #5885): SSE-C objects replicate as ciphertext
passthrough — the source holds no customer key, so the stored bytes and
their encryption metadata travel verbatim and the replica decrypts only
with the original customer key, single-part and multipart.
- Sender: SSE-C objects read raw (raw_data_movement_read), transfer at
ciphertext size, and range multipart parts over stored part sizes.
- Receiver: authorized replication PUTs restore the stored SSE-C keys
from the transport headers (exact lowercase forms - the read-path
check is case-sensitive), set ObjectOptions.preserve_ciphertext, and
skip compression, bucket-default SSE, and sse_encryption behind one
restore-derived gate. Multipart uses an internal session marker to
store parts verbatim and strips it on complete.
- Convergence: the replication HEAD sends
x-rustfs-source-replication-check; the target authorizes it as
ReplicateObjectAction and skips SSE-C read validation for that
request only, so keyless convergence HEADs see etag/size/mtime
instead of 400 and SSE-C replicas stop re-driving forever.
- e2e: SSE-C contract flips to a key-gated readable replica (no-key and
wrong-key GETs fail - the direct silent-plaintext detector); new
multipart passthrough contract with ETag/marker/stability assertions.
* fix(ecstore): anchor Windows rename publication
* fix(ecstore): complete Windows rename confinement
* test(ecstore): retain Windows retry assertion path
* fix(ecstore): accept configured Windows root paths
* fix(ecstore): size Windows rename buffers correctly
* fix(ecstore): use native relative rename on Windows
* fix(ecstore): preserve Windows rename parent guards
* fix(ecstore): reuse guarded Windows rename trees
* fix(ecstore): compile Windows publication helpers
* fix(ecstore): preserve configured Windows disk roots
* fix(ecstore): flush Windows shards with write access
* fix(ecstore): stage Windows rollback backup replacement
* fix(ecstore): defer Windows staged file cleanup
* fix(ecstore): type Windows staged write result
* fix(ecstore): retry Windows sharing violations
* fix(ecstore): share Windows staged deletes
* fix(ecstore): split Windows staged publication handles
* fix(ecstore): close Windows staged writer before rename
* fix(ecstore): share Windows staged publication deletes
* fix(ecstore): allow guarded Windows child publication
---------
Co-authored-by: Henry Guo <marshawcoco@users.noreply.github.com>
Co-authored-by: cxymds <cxymds@gmail.com>
Co-authored-by: houseme <housemecn@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.
* fix(build): support non-Linux Unix targets (illumos/Solaris/*BSD)
Two independent build-infrastructure blockers kept RustFS from building on
non-Linux Unix platforms. Neither touches runtime logic.
1. pulsar regenerates its protobuf bindings in build.rs on every build, which
needs `protoc`. Platforms without a packaged protoc (illumos/Solaris/*BSD)
now enable pulsar's `protobuf-src` feature via a cfg-gated dependency, which
builds a vendored protoc from C++ sources. Mainstream targets keep the lean
dependency and their existing system/CI protoc.
2. clocksource 0.8.3 (pulled in transitively by ratelimit 0.10) used the
Linux-only `CLOCK_MONOTONIC_COARSE`. ratelimit 2.0 dropped the clocksource
dependency entirely, so upgrading removes the portability problem at the
root rather than patching clocksource. The bandwidth throttle's bulk
`consume()` is rewritten onto ratelimit 2.0's `try_wait_n`, preserving the
best-effort partial-consumption semantics.
Verified: cargo check + bandwidth monitor unit tests pass; cargo tree confirms
protobuf-src is enabled only for illumos/Solaris/*BSD and clocksource is gone
from the graph. The final illumos build must be confirmed on-platform.
Closes#3195
* fix(ecstore): guard ratelimit v2 capacity overflow
Co-Authored-By: heihutu <heihutu@gmail.com>
* test(ecstore): avoid slow bandwidth reader timeout
Co-Authored-By: heihutu <heihutu@gmail.com>
* fix(targets): drop vendored pulsar protobuf build
Co-Authored-By: heihutu <heihutu@gmail.com>
---------
Co-authored-by: houseme <housemecn@gmail.com>
Co-authored-by: heihutu <heihutu@gmail.com>
* fix(filemeta): classify xl.meta CRC mismatch as FileCorrupt so heal repairs it
A failed CRC means the metadata bytes on disk are not the bytes that were
written — bitrot. Raising it as Error::other() surfaces a generic Io error,
which should_heal_object_on_disk does not recognise as heal-worthy: the drive
is skipped, disks_to_heal_count stays 0, heal_object returns ok, and the
corrupted xl.meta is never rewritten — while the scanner re-submits the same
no-op heal every deep-scan cycle. An explicit admin deep heal fails the same
way, so no heal path repairs metadata bitrot, and every one of them reports
success.
check_xl2_v1 already classifies a short or wrong-magic header as FileCorrupt
for exactly this reason (#5716); this completes the pattern for the two CRC
sites. The existing From<rustfs_filemeta::Error> for DiskError conversion maps
the variant to DiskError::FileCorrupt, which the heal path already handles.
The previously silent is_indexed_meta site now logs the mismatch (structured
event shape) like unmarshal_msg does.
Regression test: corrupt one byte of a marshalled FileMeta and assert
unmarshal_msg reports FileCorrupt; fails on the previous code, which returned
Io(Other).
Verified end-to-end on a 3-node / 12-drive EC:4 cluster: xl.meta corrupted on
2 of 12 drives via dd, admin deep heal — before this change the heal returns
ok with the corruption intact and the scanner loops forever; with it, both
copies are rewritten (decode-identical to the healthy quorum), the object
reads back byte-correct, and a follow-up heal reports all twelve drives
clean.
* test(filemeta): cover crc heal classification
Add regression coverage for the indexed xl.meta CRC path and the metadata-heal decision that consumes FileCorrupt.
Co-Authored-By: heihutu <heihutu@gmail.com>
---------
Co-authored-by: terem42 <9478806+terem42@users.noreply.github.com>
Co-authored-by: heihutu <heihutu@gmail.com>
Co-authored-by: zhi22915 <qiuzgang@gmail.com>
* fix(ecstore): purge the stale destination data dir on healing rename_data commits
Heal commits reuse the version's existing data_dir, so when repairing
in-place corruption (bitrot) the destination directory still exists and
holds the corrupt shard files. rename(2) cannot replace a non-empty
directory (EEXIST on XFS, ENOTEMPTY on ext4), so the commit failed on
every attempt — including all scheduler retries — and in-place bitrot was
detected and reconstructed but never repaired.
Purge the stale destination data dir (move_to_trash) before the commit
rename, for healing commits only: fresh PUTs mint a new data_dir and can
never collide, and a non-healing collision keeps failing loudly. Adds the
FileInfo::is_healing() reader for the marker set_healing() already writes.
* style(ecstore): emit the heal purge failure as a structured event
The new warning was the only sentence-style log in `rename_data`'s commit
path — it sat ten lines above `info!(event = EVENT_DISK_LOCAL_RENAME_REJECTED,
component = ..., subsystem = ...)` and interpolated its values into the
message instead of carrying them as fields, so it is invisible to any operator
query keyed on `event`.
Give it the shape the rest of the file uses: a named
`EVENT_DISK_LOCAL_HEAL_PURGE_FAILED`, `component`/`subsystem`, `dst_path` and
`error` as fields, and a short label as the message. Level stays `warn` — the
purge is best effort and the rename below fails closed — and the condition,
the branch, and the control flow are unchanged.
---------
Co-authored-by: Zhengchao An <anzhengchao@gmail.com>
The RustFS event shape (`event`/`component`/`subsystem`/`result` + context,
message last) is specified only in
`.agents/skills/rustfs-logging-governance/SKILL.md`, and nothing routes a
change to it:
- `AGENTS.md`, which is what an agent actually loads by default, never
mentions logging. Its only related line is "log unknown fields at `warn`"
under Serde Safety, which is about level, not shape.
- The skill's `description` says "use when editing or reviewing RustFS logs",
so a bugfix that adds one log line in passing — how most new log sites enter
this repo — never matches it.
- `scripts/check_logging_guardrails.sh` is a blocklist: 500+ `rg -F` literals
that retire log lines which already shipped. It cannot see a newly written
one. For `crates/ecstore/src/disk/local.rs` the only check is that
`#[tracing::instrument]` is TRACE-only; `warn!`/`info!` shape is unchecked.
PR #5822 landed `warn!("heal rename_data: purging ... {:?} failed: {}", ...)`
in `disk/local.rs` — sentence-style, no fields, directly beside `info!(event =
EVENT_DISK_LOCAL_RENAME_REJECTED, component = ..., subsystem = ...)` — with
every check green. That is the gap, not an authoring mistake.
Close all three:
- `AGENTS.md`: a Logging section stating the field shape, the level policy,
the reuse-the-file's-constants rule, and that it applies to any `tracing`
macro added in passing, not only to log-focused changes.
- Skill `description`: trigger on adding or editing any `tracing` macro,
naming the single-line-added-in-passing case explicitly.
- Guardrail: assert the event shape positively on the already-governed disk
files — `error!`/`warn!`/`info!` must open with fields or a `target:`, never
a bare string. Commented-out macros are excluded; `debug!`/`trace!` stay out
of scope as targeted diagnostics. Self-test fixtures cover both directions.
`crates/ecstore/src/disk/mod.rs` carried the one live violation in that file
set (`conv_part_err_to_int`), so it is converted here; the guardrail would
otherwise fail on an untouched file.
Verification:
- `./scripts/check_logging_guardrails.sh` — passes
- Negative control: re-inserting PR #5822's exact `warn!` line into
`disk/local.rs` makes it exit 1 pointing at that line
- `cargo fmt -p rustfs-ecstore -- --check`, `cargo check -p rustfs-ecstore`
#5804 added the on-disk segment budget to check_bucket_and_object_names, but PUT validates through check_put_object_args, which has its own checks and never calls it. An over-NAME_MAX key therefore still reached the disk layer and came back to the client as ENAMETOOLONG → InternalError 500, exactly the behavior #5785 reported.
Caught by re-running the acceptance suite against the locked build 4b2d79f5d, which contains #5804: S3-003 still failed with a 512-byte key.
Multipart is unaffected — check_new_multipart_args and check_multipart_object_args both route through check_object_args → check_bucket_and_object_names, which already carries the budget.
Verification: new test pins the same boundaries on check_put_object_args (255 ok / 256 rejected, byte-based via CJK, multi-segment long keys ok, __XLDIR__ budget for directory keys); cargo test -p rustfs-ecstore --lib -- bucket::utils 17 passed; cargo clippy -p rustfs-ecstore --all-targets clean; make pre-commit green.
* perf(ecstore): memoize bucket-incarnation fence validation under lifecycle read-lock coverage
The PUT commit fence from #5648 validated the bucket incarnation with an uncached read (a distributed metadata-transaction read lock plus an EC quorum read of bucket metadata) on every PUT commit. Under 64-concurrency 4KiB PUT load this adds two quorum round-trips per PUT and the resulting lock-manager pressure produced ~1,000 client-visible 'Lock acquisition timeout' failures per 5-minute window (see rustfs/backlog#1776).
Memoize the validation per node while lifecycle read-lock coverage is continuous: bucket deletion/recreation requires the lifecycle WRITE lock, so while at least one read guard on this node has been held continuously the incarnation cannot have changed. The first fenced PUT in a coverage window performs the exact authoritative disk validation as before; overlapping PUTs reuse its result. The memo clears when the node's last guard drops or any guard observes a lost lock, so the next PUT revalidates from disk. Fence semantics are unchanged; only the redundant re-validations under continuous coverage are elided.
Also right-size the s3s footprint ratchet baselines: -1 s3_error! line from this change's error-path consolidation, and +1 s3s-importing file inherited from #5763 (crates/obs/src/telemetry/filter.rs) which landed on main without the baseline bump.
* fix(ecstore): carry the bucket fence registry through the rebalance test store
The rebalance entry test constructor landed on main after this branch was cut and needs the new field.
* fix(admin): align replication-reset responses with madmin ResyncTargetsInfo shape
The replication-reset and replication-reset-status responses serialized
their shell as "Targets" and per-target fields in PascalCase, while
madmin-go ResyncTargetsInfo/ResyncTarget expect the "target" shell key
and lowercase field tags (arn/resetid/resyncStatus/replicationCount/
completedReplicationSize/failedReplicationCount/failedReplicationSize).
Go json decoding is case-insensitive per field, but Targets vs target,
Status vs resyncStatus and the size/count key names cannot match, so
mc replicate resync decoded empty results.
Rename the serde tags to the exact madmin wire shape, keep the
ResetBeforeDate/Error RustFS extension keys (unknown keys are ignored
by Go decoders), pin the shape with a snapshot unit test, and update
the e2e client DTO to decode the madmin shape.
* fix(admin): stream bare madmin DiffInfo documents from replication diff
POST /v3/replication/diff returned a single enveloped object
({Entries, IsTruncated, ScannedVersions}) while madmin-go
BucketReplicationDiff decodes the body with a json.Decoder loop over
bare DiffInfo documents. The envelope decoded as exactly one DiffInfo
with an empty object, so mc replicate diff printed a phantom empty row
instead of the real backlog.
Emit one DiffInfo JSON document per line by default, using the exact
madmin json tags (object/versionId/rStatus/deletemarker/lastModified;
Size stays as a RustFS extension key that Go decoders ignore). The
enveloped shape moves to the opt-in ?aggregate=true RustFS extension,
which remains the only carrier of scan-coverage metadata; a truncated
default-mode scan is surfaced via a warn tracing event instead of
in-stream. Pin both shapes with unit tests and tighten the e2e helper
to reject any envelope in the stream.
* feat(replication): validate replication config structure before persisting
PutBucketReplication accepted structurally invalid configurations that
MinIO's replication.Config.Validate rejects: empty or oversized rule
lists, duplicate or negative rule priorities, over-long rule IDs,
filters carrying more than one of Prefix/Tag/And, and delete marker
replication enabled on tag-filtered rules. Such configs persisted
silently and later produced undefined routing (e.g. ambiguous priority
ties) instead of failing the PUT.
Add validate_replication_config_structure as a pure function in
rustfs-replication (limits documented as constants), surface it through
the ecstore api facade, and run it first in the PUT capability gate so
defects are named before any metadata write. Missing Priority counts as
zero for the uniqueness check, matching Go's zero-value semantics. The
self-target rejection deliberately stays at set-remote-target, where the
endpoint is known; a config can never reference a self-pointing ARN.
Document the rule-level Destination.StorageClass contract (use the
remote target's storage_class instead) and renumber the acceptance
matrix e2e to unique priorities, which MinIO would also require.
* test(replication): pin duplicated wire types with boundary reconciliation tests
rustfs-filemeta (xl.meta disk format) and rustfs-replication (MRF/resync
persistence format) deliberately each own ReplicationStatusType,
VersionPurgeStatusType and ReplicationState; the boundary converts
between them via as_str(), whose From<&str> impls fall back to Empty on
unknown tokens — a variant added on one side silently degrades to Empty
on the other.
Add reconciliation tests in replication_filemeta_boundary: exhaustive
matches with no wildcard arm on both sides of both enums (a new variant
fails compilation until the mapping is reconsidered), string-token
round-trip asserts (a token the other side does not recognize fails
instead of quietly becoming Empty), and a full-field ReplicationState
round-trip. Cross-reference the tests from both type definitions.
Struct drift was already compile-guarded by the exhaustive struct
literals in the conversion functions.
* docs(replication): define split completion criteria and milestone sequence
The ecstore replication split plan had no completion measure — the
boundary scaffolding risked ossifying because nothing said when the
migration counts as done. Record the criteria in the module inventory:
done means the Required Contracts table's 'Current dependency to
remove' column is empty; the end state moves pool/resyncer/state into
crates/replication, with the boundary micro-files dissolving as code
crosses the crate line (batch-merging them beforehand is explicitly
rejected — the guard scripts anchor on their file names, so merging is
churn with zero functional gain; only datatypes.rs can retire early).
Sequence the remaining work as M2 (resyncer pure decision logic, after
the oversized function splits) → M3 (worker runtime, highest risk,
last) → M4 (retire boundaries and guard entries). Refresh the stale
first-step text — the event sink / runtime contracts already landed —
and update the split-plan status table accordingly.
* fix(replication): align structural validator with MinIO semantics after adversarial review
Three interop corrections found by adversarial review of the new
structural validator, plus review fallout fixes:
- Delete-marker replication is now rejected only for a direct Filter.Tag,
not for tags inside Filter.And — MinIO's validator only inspects the
direct tag, and mc replicate add --tags "k1=v1&k2=v2" (delete-marker
replication on by default) puts multiple tags into And.Tags, so the
stricter check rejected mc-generated configs MinIO accepts.
- Rule ID length is measured in bytes (Go len semantics), not chars —
a 255-char multibyte ID must not round-trip into a config MinIO
rejects.
- An empty <Tag/> element (no key) counts as absent, matching MinIO's
Tag.IsEmpty(); console form serializers emit empty tags, which would
otherwise trip the exactly-one-of and delete-marker checks.
Also: repair the store-uninitialized PUT test whose empty-rules fixture
now (correctly) fails structural validation before reaching the store
lookup; pin the previously untested startTime madmin key in the
reset-status shape test; and signal a truncated default-mode diff scan
via the x-rustfs-replication-diff-truncated response header — the bare
madmin stream has no envelope, so a truncated scan was otherwise
indistinguishable from a complete healthy one (madmin/mc ignore unknown
headers).
* test(e2e): activate SSE-S3 replication contract and pin resync fail-closed path
The SSE-S3 replication contract e2e was ignored under backlog#1291
(silent plaintext replication); the fail-closed gate in
replication_target_boundary.rs closed that hole, so the ignore reason
expired. Un-ignore the test — it now pins the current fail-closed
contract (FAILED status, failure event, readable encrypted source,
stable absence of all target versions), verified green.
Add test_bucket_replication_sse_s3_resync_stays_fail_closed: drives the
existing-object resync path (PUT ?replication-reset) over a FAILED
SSE-S3 object and asserts the resync generation reaches a terminal
state without ever materializing a target version, with the
stays-absent window also spanning fast-scanner heal cycles. The new
start_bucket_replication_reset helper doubles as the madmin
ResyncTargetsInfo shape assertion (target[0].arn/resetid) for the
reset-start response.
Refresh the stale nextest count commentary (the module is at 20 fast +
36 nightly = 56 tests by cargo nextest list; the SSE-S3-ignored note no
longer holds).
fix(ecstore): reject over-NAME_MAX object key segments up front and classify irreconcilable parity as corrupt metadata
Two defects found during release acceptance and the backlog#1776 investigation:
Object keys with any path segment longer than 255 bytes could never be stored (each segment maps to one on-disk directory entry), but the failure surfaced only when the disk layer hit ENAMETOOLONG, which leaked to clients as InternalError 500 (rustfs#5785). Validate the on-disk segment budget in check_bucket_and_object_names so such keys fail deterministically as ObjectNameInvalid (4xx) before any I/O. Directory-object keys (trailing '/') account for the __XLDIR__ suffix their final segment carries on disk.
object_quorum_from_meta conflated two very different no-quorum situations (rustfs#5801): stray or foreign metadata whose parity values are garbage produced the same retryable-looking ErasureReadQuorum (503) as a genuine partial outage, so clients retried unrecoverable reads and monitoring could not tell corruption from capacity loss. Now (a) parity counts outside [0, total_shards] are treated as invalid entries instead of being clamped to i32::MAX, which could poison common_parity's occurrence counting, and (b) when a full read quorum of disks answers but their parity values cannot be reconciled, the error is FileCorrupt — heal-actionable and non-retryable — while too-few-healthy-replies keeps returning ErasureReadQuorum.
Verification: 4 new unit tests (segment budget boundaries incl. byte-vs-char and __XLDIR__ budget; garbage parity sanitization; corrupt-vs-quorum classification), metadata::tests + utils::tests 62/62, set_disk+bucket suites 1214 passed with the single pre-existing heal_queue_marks_missing_versioning_state_as_missed cross-test flake also failing on a clean tree (not introduced here), clippy clean, make pre-commit green.
* test(replication): accept madmin nanosecond healthCheckDuration payloads
Red-phase TDD tests for P0-7: mc 'replicate add' sends the madmin default
healthCheckDuration=60s as a Go time.Duration nanosecond integer
(60000000000), which RustFS currently rejects as an unsupported field and
would misread as seconds. Also pins the defensive seconds-or-nanos read
for persisted bucket-targets metadata and the capability contract listing
healthCheckDuration as writable.
Currently failing (red):
- remote_target_request_accepts_go_duration_wire_values
- remote_target_request_accepts_legacy_seconds_health_check
- remote_target_health_check_duration_is_declared_writable
- bucket_target_reads_go_nanosecond_durations_defensively
- runtime_capabilities_response_reports_missing_topology_before_storage_init
* fix(replication): accept remote target healthCheckDuration nanoseconds
mc 'replicate add' always sends the madmin default healthcheck-seconds=60
serialized as a Go time.Duration nanosecond integer (60000000000), so the
default mc link-creation path (and 'mc replicate update') failed with
InvalidRequest. Move healthCheckDuration from the unsupported to the
writable remote-target field list; the capability contract in the runtime
capabilities response follows the constants automatically.
Fix the unit mismatch in both directions:
- Request parsing and persisted bucket-targets reads decode the value
defensively: below 10^7 it is legacy RustFS seconds, otherwise Go
time.Duration nanoseconds (also covers MinIO-written metadata).
totalDowntime shares the same wire shape and gets the same handling.
- The list-remote-targets admin response re-encodes only these two fields
as nanoseconds via a dedicated serialization path, leaving the persisted
seconds-based wire format untouched for existing readers.
The per-target health-check interval is accepted for mc compatibility but
not yet applied; the heartbeat keeps its global env-configured interval,
and the explicit 'healthcheck' update op stays rejected. disableProxy,
edge, and edgeSyncBeforeExpiry remain explicitly rejected.