* fix(admin): bound IAM import archive expansion
MAX_IAM_IMPORT_SIZE caps the compressed upload at 10 MB, but every member of the
archive was then read with read_to_end into an unbounded Vec. Deflate ratios well
above 100:1 are easy to construct, so a small authorized upload could expand
without limit across the seven members ImportIam reads.
Add a shared expansion budget (MAX_IAM_IMPORT_EXPANDED_SIZE, 10x the compressed
cap) drawn down by every member, and route all seven reads through one helper
that reads a byte past the remaining budget to detect overrun. Sharing the budget
bounds the archive as a whole rather than letting each member spend the full
limit independently.
Covers R03-CAN-024 through R03-CAN-030 plus R04-CAN-077 (backlog #1471) — one
fix rather than seven, since all seven call sites were byte-identical.
* fix(kms): confine local key paths and refuse silent key replacement
Local KMS key identifiers arrive from request input — the `name` tag on CreateKey,
the `keyId` body field or query parameter on DeleteKey — and were joined onto
`key_dir` with no validation. An identifier such as `../../tmp/evil` escaped the
configured directory, making key creation a constrained arbitrary-file write and
`DeleteKey` with `force_immediate` a cross-directory delete.
Validate in `master_key_path` and make it fallible, so every filesystem path in
this backend inherits the guard: decode_stored_key, load_master_key,
save_master_key, create_key and delete_key all derive their paths there. The rule
is containment rather than a character allowlist, so identifiers already in use
keep resolving; only separators, NUL, absolute paths and non-single-component
forms are refused. Note `.` and `..` are contained rather than refused — the
`.key` suffix turns them into the ordinary filenames `..key` and `...key`.
Separately, `LocalKmsBackend::create_key` had no existence check, while the
sibling `KmsClient::create_key` has always had one. Since `save_master_key`
renames over its destination, creating a key under an existing name silently
replaced its material and destroyed the ability to decrypt everything wrapped
under it — and the backend path is the one the admin API uses. It now returns
KeyAlreadyExists, matching StaticKmsBackend.
Covers R03-CAN-072, R03-CAN-073 and R07-CAN-103 (backlog #1475). R03-CAN-073
needed no separate change: delete_key routes both its load and its remove_file
through master_key_path.
* fix(swift): bound SLO manifest reads to the 2 MiB manifest limit
The three Swift SLO handlers that load a stored manifest (handle_slo_get,
handle_slo_get_manifest, handle_slo_delete) read the `<object>.slo-manifest`
object to EOF with AsyncReadExt::read_to_end. That key is predictable and
writable through the ordinary object PUT path, so a tenant can replace the
manifest with an arbitrarily large object and then make the server allocate
its full size on every SLO GET, multipart-manifest=get, or
multipart-manifest=delete request - a memory amplification bounded only by
the stored object size (CWE-400 / CWE-770). The 2 MiB manifest limit that
handle_slo_put enforces was not applied on the read side.
Introduce MAX_SLO_MANIFEST_SIZE (the existing 2 MiB PUT limit, now a named
constant) and a shared read_manifest_bytes helper that reads through a
`take(limit + 1)` and rejects anything larger, so an oversized manifest is
refused instead of being buffered first. All three call sites go through the
helper. handle_slo_put now checks the size before parsing the JSON.
Regression tests: test_read_manifest_bytes_rejects_oversized_manifest and
test_read_manifest_bytes_stops_reading_oversized_manifest (which asserts the
reader is not consumed past the limit), plus a boundary test that a manifest
at exactly 2 MiB is still accepted.
* fix(protocols): authorize every object in FTPS/WebDAV recursive deletes
The FTPS and WebDAV gateways authorized only the container before a
recursive delete and then destroyed everything inside it without a
further check:
- FTPS RMD (and DELE on a bucket path ending in '/') cleared
s3:DeleteBucket, then delete_bucket_recursively listed the bucket and
deleted every object.
- WebDAV DELETE on a bucket did the same via its own
delete_bucket_recursively.
- WebDAV DELETE on a directory cleared s3:DeleteObject for the directory
marker key ("dir/") only, then listed that prefix and deleted every
child under it.
A principal holding s3:DeleteBucket (or s3:DeleteObject on a single
marker key) could therefore erase objects it had no s3:DeleteObject
permission for, and the operation reported success.
Deletion stays recursive - that is the expected behaviour for these
protocols - but each object now clears s3:DeleteObject on its own key
before it is removed, and the enumeration clears s3:ListBucket. A denial
aborts the whole operation with access denied rather than being skipped,
so the caller can never be told the delete succeeded while objects were
left behind or removed without authorization.
The test double gained shared-state cloning, delete_object/delete_bucket
call logs, and list/delete queue helpers so the regression tests can
observe that nothing is deleted once a deny lands.
* fix(server,ecstore): bound TLS handshakes and remote volume RPC waits
Three call sites let an unauthenticated client or a misbehaving peer hold
server resources with no deadline.
TLS listener (R03-CAN-035): process_connection awaited
`acceptor.accept(socket)` with no bound. A client that opens a TCP
connection and never finishes the handshake parks a Tokio task and a socket
forever, and the connection cap (RUSTFS_API_MAX_CONNECTIONS) is unlimited by
default, so nothing else sheds it. The handshake now runs under
accept_tls_with_deadline(), reusing the existing HTTP/1 header-read budget —
the established slow-client bound for the pre-request phase — and the
expiry is recorded through the same log/metric path as a handshake error,
under a new TIMEOUT failure kind.
Remote disk RPCs (R03-CAN-049, R03-CAN-050): list_volumes and delete_volume
passed Duration::ZERO, which execute_with_timeout treats as "no deadline",
so a peer that accepts the request and never answers stalls the coordinator
(and, for delete_volume, the bucket-deletion workflow). Both now pass
get_max_timeout_duration(), matching every sibling method in the file.
Regression tests: a silent TLS peer must be shed by the handshake deadline;
list_volumes/delete_volume against a peer that completes the TCP connect and
then goes silent must fail with DiskError::Timeout instead of hanging.
* fix(security): stop leaking signed headers and bound OIDC/KMS credentials
Three independent hygiene fixes found by the security review.
R03-CAN-018 (crates/signer): try_get_canonical_headers and get_signed_headers
logged the complete header map at DEBUG before signing. Runtime callers pass
session credentials and SSE-C key material through these headers, so anyone
able to raise the log level (or read DEBUG logs) recovered
X-Amz-Security-Token and SSE-C keys verbatim. The statements were debugging
leftovers with no operational value and are deleted rather than redacted.
R03-CAN-014 (crates/iam): the OIDC HTTP adapter buffered provider responses
with an unbounded Response::bytes(), so a configured, compromised or
attacker-pointed IdP endpoint could stream an arbitrarily large or endless
body into memory (the ValidateOidcConfig admin handler lets a ServerInfo
caller choose the endpoint). Responses are now read incrementally and fail
closed past MAX_OIDC_RESPONSE_SIZE, and the already SSRF-hardened client
builder gains request and connect timeouts so a stalled provider cannot pin
the calling task indefinitely.
R07-CAN-105 (helm): the Vault KMS token was serialized into the chart
ConfigMap, exposing it to every subject allowed to get ConfigMaps in the
namespace. It now renders into a dedicated Secret that the Deployment and
StatefulSet consume via envFrom; the Secret is separate from the main
credentials Secret so it also works when secret.existingSecret is set.
Regression tests:
- rustfs-signer: signing_never_logs_signed_header_material
- rustfs-iam: oidc_response_body_past_the_limit_is_rejected,
oidc_response_body_at_the_limit_is_accepted
- scripts/test_helm_templates.sh: KMS token must never render in plaintext
* fix(webdav): enforce body limit, request timeout and connection cap
The configured WebDAV maximum body size was enforced from Content-Length, so a
chunked request declared no length and bypassed it entirely. The configured
request timeout was never applied to the connection at all, and the accept loop
spawned a task per connection with no bound, so an unauthenticated client could
hold resources indefinitely and in unbounded number.
Enforce the limit on bytes actually read rather than the declared length, apply
the configured timeout to the request, and bound accepted connections with a new
RUSTFS_WEBDAV_MAX_CONNECTIONS (default 1024) surfaced in the config report.
Covers R03-CAN-051, R03-CAN-052, R03-CAN-067, R04-CAN-089, R05-CAN-094 and
R05-CAN-097 (backlog #1471, #1474).
* fix(security): stop STS credentials from crossing the parent trust boundary
Two related credential-boundary holes let a short-lived STS credential act
with the full, unrestricted authority of the long-term user it was minted
from.
AddUser (R03-CAN-021, CWE-269/863): should_check_deny_only relaxes the admin
policy check to deny-only when a Console/STS session targets the IAM user it
represents. Nothing then stopped that session from calling AddUser with its
own parent's access key, so the handler wrote an attacker-chosen secret key
and status over the parent's stored Credentials via create_user ->
save_user_identity. A session that expires in minutes became permanent
control of the account. AddUser now rejects any temp or service-account
requester whose resolved parent equals the target access key, resolving the
parent the same way should_check_deny_only does (parent_user field, else the
JWT `parent` claim, since some stores persist the parent only in the token).
FTPS/SFTP/WebDAV password auth (R04-CAN-086, CWE-287/862): these protocols
looked the access key up with check_key, which falls back to the STS account
cache, and then compared only the stored secret. An STS access key plus
secret therefore authenticated with no session token presented and no
session-policy claims applied - the holder got the parent's full permissions.
Password authentication now rejects temporary credentials before the secret
comparison. The discriminator is is_temp() && !is_service_account(), the same
one IamCache::update_user_with_claims uses to route an identity into the STS
cache, so service accounts - which resolve policy from stored IAM state
rather than a client-presented token - keep working over these protocols.
Regression tests cover both predicates and pin the guards to their call
sites so neither can be dropped without a test failure.
* helm chart: one data drive per node - fix1
* refactor(helm): prevent negative or 0 replicaCount
Co-authored-by: Copilot <copilot@github.com>
* refactor(helm): remove env REPLICA_COUNT
* feat(helm): default no logs directory to force stdout
Co-authored-by: Copilot <copilot@github.com>
* feat(helm): add drivesPerNode
* feat(helm): correct default parity with 4 nodes / 1 drive per node
* conditional render of RUSTFS_OBS_LOG_DIRECTORY
* feat(chart): add table doc for parity
* fix(chart): handle invalid annotation objects
* fix(chart): move logging and obsevability options together; default for kubernetes output to stdout
* feat(chart): better table doc for parity
* fix(chart): leave RUSTFS_OBS_LOG_DIRECTORY empty, or the defaults will attempt to write to readonly fs
* fix(chart): chart defaults as the previous version: 4 nodes with 4 drives per node
* feat(chart): render RUSTFS_STORAGE_CLASS_STANDARD in configmap
* minor fix for pvcAnnotations
Co-authored-by: Copilot Autofix powered by AI <175728472+Copilot@users.noreply.github.com>
Signed-off-by: Cristian Chiru <cristi.chiru@gmail.com>
* fix(chart): better drivesPerNode handling
* fix(chart): obs_log_directory default non empty again to preserve previous deployments compatibility
* fix(chart): proper drivesPerNode impl
* fix(chart): values clarification for empty vs unset `obs_log_directory`
* feat(chart): add service externalIPs
* feat(helm): add optional service labels
* fix(helm): merge service labels
* fix(helm): storageclass pvcAnnotations
* fix(chart): move logging and obsevability options together; default for kubernetes output to stdout
* fix(helm): remove duplicate keys
* fix(helm): default drivesPerNode null, keep legacy chart behavior
* feat(helm): add template test for externalIPs
* fix(helm): per-pool drivesPerNode inference, restore regression tests
Repairs the drivesPerNode feature from #2693 so it renders and stays
upgrade-safe:
- define the missing drives inference (rustfs.poolDrives) and compute it
per pool inside rustfs.pools, so mixed 4x4 + 16x1 pool deployments keep
their exact legacy volumeClaimTemplates when drivesPerNode is unset
- restore the $poolsEnabled definition dropped in the rebase (chart failed
to render at all)
- fix .Values references inside the pool range (dot is the pool there) and
keep per-pool storageclass pvcAnnotations overrides working
- make rustfs.volumes derive the drive range from pool drives instead of
the pod count, and relax the pools.list 4-or-16 restriction to >= 2
- reject drivesPerNode=0 explicitly instead of silently inferring
- keep default rendering identical to main: storage_class_standard stays
unrendered by default, obs_endpoint.use_stdout stays false, clusterDomain
value restored
- restore the clusterDomain/mTLS SAN/explicit-volumes regression tests that
the branch deleted, keeping the new topology tests
---------
Signed-off-by: Cristian Chiru <cristi.chiru@gmail.com>
Co-authored-by: Cristian Chiru <cristi.chiru@gmail.com>
Co-authored-by: Copilot <copilot@github.com>
Co-authored-by: Copilot Autofix powered by AI <175728472+Copilot@users.noreply.github.com>
* feat(helm): support multiple server pools for capacity expansion
The server already understands multiple pools (RUSTFS_VOLUMES is split on
spaces, one pool expression each; rc admin pool/expand/rebalance/
decommission exist), but the chart could only render a single StatefulSet.
Add an opt-in pools mode:
- pools.enabled=false (default) renders byte-identical output to the
current chart (verified against five values variants)
- pools.list renders one StatefulSet per entry; entries may set
replicaCount (4 or 16) and a storageclass block, everything else is
inherited from the top-level values
- pool 0 keeps the legacy StatefulSet/pod/PVC names and its (immutable)
selector, so existing single-pool deployments can be expanded in place
without renaming or data loss; additional pools render as
<fullname>-poolN with a rustfs.com/pool label in their selector
- RUSTFS_VOLUMES and RUSTFS_SERVER_DOMAINS enumerate every pool
- pod anti-affinity is scoped per pool so pools may share nodes while
each pool still spreads its own pods across distinct nodes
- template validation fails fast on unsupported replicaCount, an empty
pools.list, or pools in standalone mode
- pools are append-only by design (list index = identity), documented in
values.yaml and the README
* fix(helm): truncate pool names DNS-safely, document PDB pool scope
Truncate <fullname>-poolN to 63 chars by shortening the base name rather
than the suffix, so the pool index always survives and two pools of a
max-length release cannot collide. Document that the single
PodDisruptionBudget deliberately spans all pools.
* fix(helm): pool-mode anti-affinity must be preferred, not required
Found by live-testing in-place expansion on a 5-node cluster (4-replica
pool 0 + 4-replica pool 1): with requiredDuringScheduling anti-affinity
the expansion deadlocks in a cycle that cannot self-heal -
1. the not-yet-rolled pool-0 pods still carry the unscoped required
rule and repel every rustfs pod from their nodes, so part of pool 1
stays Pending (no IP, no headless-DNS record);
2. every pod that already has the new RUSTFS_VOLUMES exits fatally on
'failed to lookup address information' for those Pending peers;
3. the StatefulSet rolling update is gated on the crashing pod going
Ready, so the remaining pool-0 pods never roll and keep repelling.
Because StatefulSets assign revisions per ordinal, even a subsequent
template fix cannot rescue a wedged rollout (Pending ordinals are only
recreated with the new template after the higher ordinals go Ready) -
the new pool's StatefulSet has to be recreated. Shipping the soft
affinity from the start avoids the state entirely; expansion was
re-tested end-to-end with it and converges.
Pool-mode rendering only - pools.enabled=false still renders the
existing required anti-affinity byte-identically.
---------
Co-authored-by: cxymds <Cxymds@qq.com>
Co-authored-by: houseme <housemecn@gmail.com>
Co-authored-by: cxymds <cxymds@gmail.com>
* feat(utils): make DNS resolver cache TTL configurable via RUSTFS_DNS_CACHE_TTL_SECS
The resolver cache in crates/utils/src/net.rs had a hardcoded 300s TTL with
no way to tune or disable it. On orchestrated networks (Docker Swarm,
Kubernetes) a peer's DNS name is its only durable identity while its container
IP changes on reschedule, and the platform DNS always serves the current
answer. A fixed 300s application-side cache can keep a member dialing a dead IP
for up to five minutes after a peer restarts. Rust has no runtime DNS cache, so
on musl images this was the only cache in the stack and the only one that could
not be turned off.
Read the TTL from RUSTFS_DNS_CACHE_TTL_SECS (u64, default 300), matching the
existing RUSTFS_INTERNODE_* transport knobs. `0` disables caching entirely so
every get_host_ip consults the system resolver. The resolved value is logged
once at first use, removing an invisible cache from the triage surface. Change
is backward-compatible and confined to net.rs.
Also drop the two per-lookup info! logs on the resolve path: they would flood
the log when caching is disabled and added hot-path noise otherwise.
Co-Authored-By: heihutu <heihutu@gmail.com>
* fix(helm): derive mTLS secret names from chart fullname (#4601)
* fix(helm): mtls certificate for server and client hardcode
* fix hardcode issue in deployment
* update typo yaml file
---------
Co-authored-by: heihutu <heihutu@gmail.com>
Co-authored-by: majinghe <42570491+majinghe@users.noreply.github.com>
The service template only handled ClusterIP and NodePort via if/else-if
branches. When service.type=LoadBalancer was set, no branch matched and
the type field was omitted from the rendered Service, causing Kubernetes
to silently default to ClusterIP.
Add the missing LoadBalancer branch with support for:
- loadBalancerIP: request a specific IP (e.g. Cilium LB-IPAM, MetalLB)
- loadBalancerClass: select a specific LB implementation
- loadBalancerSourceRanges: restrict client source IPs
This is particularly useful for bare-metal / on-prem clusters using
software load balancers (Cilium LB-IPAM, MetalLB, kube-vip) where
a stable routable IP is preferable to an Ingress for S3 clients.
Co-authored-by: Claude Sonnet 4.6 <noreply@anthropic.com>
Co-authored-by: houseme <housemecn@gmail.com>
Co-authored-by: 安正超 <anzhengchao@gmail.com>
Co-authored-by: cxymds <Cxymds@qq.com>
Co-authored-by: majinghe <42570491+majinghe@users.noreply.github.com>