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GHSA-6p8f-p8j2-rqmv

Fix: traefik/traefik#13367

GHSA-6p8f-p8j2-rqmv is a CWE-284 vulnerability in github.com/traefik/traefik/v3. O3 Security confirms whether GHSA-6p8f-p8j2-rqmv is actually reachable in your code before you act, and blocks exploitation at runtime until you patch.

Traefik: Gateway HTTPRoute backendRef filters can leak backend context across routes sharing a Service:port

Also known asCVE-2026-54765GO-2026-6205
Published
Aug 6, 2026
Updated
Aug 18, 2026
Affected
1 pkg
Patched
1 / 1
Exploits
None indexed
Exploitation data as of Aug 18, 2026 · OSV.dev, NVD, FIRST.org (EPSS)

Real-World Exposure

1 pkg affected
🐹github.com/traefik/traefik/v3

Real-time download stats are indexed for npm and PyPI packages. This vulnerability affects Go packages — download data is not available via public APIs for these ecosystems.

Description

Summary

There is a medium severity vulnerability in Traefik's Kubernetes Gateway API provider. When two accepted HTTPRoutes target the same backend Service:port but configure different backendRef filters, Traefik may resolve both routes to the same child service and apply only one route's filter set to all requests reaching that backend. In Gateway deployments where backendRef filters set security-sensitive headers — such as tenant identity, authorization context, or values the backend trusts — an attacker who can create an accepted HTTPRoute sharing the same backend Service:port may cause their route's filter context to be applied to another route's requests, potentially crossing namespace boundaries when a ReferenceGrant permits cross-namespace targeting.

Patches

For more information

If you have any questions or comments about this advisory, please open an issue.

<details> <summary>Original Description</summary>

Traefik Gateway HTTPRoute backendRef filter context collision across routes sharing Service:port

Summary

Traefik's Kubernetes Gateway API provider builds the dynamic HTTP backend service key for a Gateway HTTPRoute backendRef from only the backend namespace, Service name, protocol, and port. It does not include the HTTPRoute, listener, rule, or backendRef filter identity in that key.

When two accepted HTTPRoutes point to the same backend Service:port but define different backendRef filters, Traefik can make both route WRR services reference the same child service. The child service then carries only one backendRef filter set, so one route can send requests to the backend with another route's backend context.

This is security-relevant when backendRef filters set, remove, or rewrite security-sensitive context, such as tenant, identity, auth, sanitization, Host, or path headers trusted by the backend.

Credit: Qican Ma, Ding Luo @XiaoMi ShadowBlade Security Lab

Suggested Severity

Suggested severity: Medium/High, configuration-dependent.

Suggested CVSS 3.1:

CVSS:3.1/AV:N/AC:H/PR:L/UI:N/S:C/C:L/I:H/A:N

Notes:

  • Requires Gateway API routes sharing the same backend Service:port with different security-sensitive backendRef filters trusted by the backend.
  • Cross-namespace impact is possible when route attachment and ReferenceGrant policy allow an attacker route to target the shared backend.
  • No RCE, memory corruption, or default-config exposure claimed.

Suggested CWE:

CWE-863: Incorrect Authorization
CWE-284: Improper Access Control

Affected Component

pkg/provider/kubernetes/gateway/httproute.go — loadService(), loadMiddlewares()

Tested Versions

Confirmed on:

Traefik source snapshot: 29406d42898547f1ffabd904f66af06c212740cf on master

Earliest affected version not exhaustively determined.

Root Cause

loadService starts the dynamic service name from backend namespace and Service name only:

// pkg/provider/kubernetes/gateway/httproute.go:245
serviceName := provider.Normalize(namespace + "-" + string(backendRef.Name) + "-http")

It loads backendRef filters using that same service name before appending the backend port:

// pkg/provider/kubernetes/gateway/httproute.go:258
middlewares, err := p.loadMiddlewares(conf, namespace, serviceName, backendRef.Filters, pathMatch)

For normal Kubernetes Services, the final child service key appends only the port:

// pkg/provider/kubernetes/gateway/httproute.go:304-317
portStr := strconv.FormatInt(int64(port), 10)
serviceName = provider.Normalize(serviceName + "-" + portStr)
...
conf.HTTP.Services[serviceName] = &dynamic.Service{LoadBalancer: lb, Middlewares: middlewares}

Each route/rule WRR service references the child service by name. Later route configs are merged by map key (maps.Copy), so both route-local WRR services can point to the same child service, which retains only one of the route/backendRef filter configurations.

Attack Scenario

  1. Gateway listener with allowedRoutes.namespaces.from: All.
  2. Victim HTTPRoute route-a in namespace default targets default/whoami:80 with backendRef filter setting X-Tenant: tenant-a.
  3. Attacker-controlled HTTPRoute route-b in namespace attacker targets default/whoami:80 (via ReferenceGrant) with backendRef filter setting X-Tenant: tenant-b.
  4. Both routes generate the same child service key: default-whoami-http-80.
  5. The second route's filter configuration overwrites the first (or vice versa) via maps.Copy.
  6. Backend receives both routes' requests with one tenant's header context.

Proof of Concept

A Go test harness injects provider-level and server-level tests into the Traefik checkout. The provider test confirms the generated dynamic configuration collision. The server test builds Traefik's runtime router/service/middleware pipeline and sends httptest requests through router matching, WRR service dispatch, service-level backendRef middleware, and backend proxy capture.

Observed result:

{
  "name": "positive_cross_namespace_same_backend_filter_collision",
  "pass": true,
  "expected": {"route-a": "tenant-a", "route-b": "tenant-b"},
  "observed": {"route-a": "tenant-a", "route-b": "tenant-a"},
  "runtimeObserved": {"route-a": "tenant-a", "route-b": "tenant-a"},
  "childServices": {"route-a": "default-whoami-http-80", "route-b": "default-whoami-http-80"}
}

Negative controls confirmed:

  • Separate backend Service:port keys produce correct per-route filter isolation.
  • Identical filters across routes produce no security-relevant difference.

The PoC files can be shared upon request.

Impact

An actor who can create or modify an accepted HTTPRoute can cause another accepted route that targets the same backend Service:port to use the wrong backendRef filter context. In cross-namespace Gateway deployments, this can cross namespace boundaries.

High-value impact: gateway-injected tenant, identity, auth, role, header sanitization, Host rewrite, or path rewrite context is trusted by the backend. Lower-value impact: the overwritten header is informational or observability-only.

Suggested Remediation

  1. Include route/listener/rule/backendRef filter identity in the generated child service name when backendRef filters are present.
  2. Split the load-balancer service from the backendRef filter application so per-route backend filters remain route-scoped.
  3. Detect conflicting backendRef filters for the same generated service key and reject or disambiguate the configuration.

Timeline

2026-06-04: Discovered and reproduced with local test harness.
</details>

Affected Packages

1 total 1 fixed
EcosystemPackageVulnerable rangeFix
🐹Gogithub.com/traefik/traefik/v33.7.0&&< 3.7.63.7.6

Detection & mitigation playbook

Open-source dependency
  1. Detect

    Scan your dependency tree (package-lock.json, pnpm-lock.yaml, requirements.txt, go.sum, etc.) for github.com/traefik/traefik/v3. O3's reachability analysis confirms whether the vulnerable code path is actually invoked in your application, so you act on real exposure instead of every transitive match.

  2. Fix

    Update github.com/traefik/traefik/v3 to 3.7.6 or later, then make sure no transitive (indirect) dependency still pins the vulnerable range — O3 confirms GHSA-6p8f-p8j2-rqmv is resolved across your whole dependency graph.

  3. Workarounds

    If you can't upgrade right away: gate or disable the affected feature, validate untrusted input at the boundary, and avoid passing attacker-controlled data into the vulnerable path. O3's runtime protection blocks exploitation in production as an interim safeguard until the upgrade lands.

  4. How O3 protects you

    O3 pinpoints whether GHSA-6p8f-p8j2-rqmv is reachable in your code and exactly where to fix it, then blocks exploitation in production at runtime until the patched version is deployed.

Tailored to GHSA-6p8f-p8j2-rqmv. Runtime protection reduces exposure until a permanent patch is applied and verified — it complements patching, it doesn't replace it.

Frequently Asked Questions

## Summary There is a medium severity vulnerability in Traefik's Kubernetes Gateway API provider. When two accepted HTTPRoutes target the same backend Service:port but configure different `backendRef` filters, Traefik may resolve both routes to the same child service and apply only one route's filter set to all requests reaching that backend. In Gateway deployments where `backendRef` filters set security-sensitive headers — such as tenant identity, authorization context, or values the backend trusts — an attacker who can create an accepted HTTPRoute sharing the same backend Service:port may c
O3 Security · Impact-Aware SCA

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