CVE-2026-55784: free5GC AUSF authentication contexts can be overwritten by concurrent requests for the same SUPI
Summary
The AUSF component of free5GC stores per-subscriber authentication state in a global sync.Map keyed only by SUPI. Every incoming authentication request creates a new AusfUeContext and stores it under that SUPI key without checking whether an authentication procedure is already in progress and without generating a per-session unique identifier.
An attacker with access to the AUSF SBI/N12 interface can send concurrent POST /nausf-auth/v1/ue-authentications requests for the same target SUPI. Each request is accepted and overwrites the previous authentication context. A valid EAP-AKA' response for an earlier challenge is then verified against the latest overwritten context, whose Kaut, XRES, and EapID no longer match the challenge. The result is a targeted authentication denial of service for that SUPI while the request flood is maintained.
This issue was confirmed on github.com/free5gc/ausf v1.4.4 and current main as of June 2026.
Details
The vulnerable context pool is defined in internal/context/context.go.
UePool is a sync.Map, which makes individual map operations safe, but it does not make the authentication procedure state safe. The problem is the session design: the key is only the SUPI, and Store() unconditionally replaces any active context for that SUPI.
go type AUSFContext struct { suciSupiMap sync.Map UePool sync.Map // ... }
type AusfUeContext struct { Supi string // ...
// for EAP-AKA' Kaut string XRES string Rand string EapID uint8 Resynced bool }
func NewAusfUeContext(identifier string) (ausfUeContext AusfUeContext) { ausfUeContext = new(AusfUeContext) ausfUeContext.Supi = identifier return ausfUeContext }
func AddAusfUeContextToPool(ausfUeContext AusfUeContext) { ausfContext.UePool.Store(ausfUeContext.Supi, ausfUeContext) }
The vulnerable sequence is executed for every authentication request in internal/sbi/processor/ueauthentication.go:
go ueid := authInfoResult.Supi ausfUeContext := ausfcontext.NewAusfUeContext(ueid) ausfUeContext.ServingNetworkName = snName ausfUeContext.AuthStatus = models.AusfUeAuthenticationAuthResultONGOING ausfUeContext.UdmUeauUrl = udmUrl ausfcontext.AddAusfUeContextToPool(ausfUeContext)
There is no guard such as LoadOrStore, no AUTHENTICATIONINPROGRESS response, no rate limit per SUPI, and no unique authentication-session ID in the context URL. For EAP-AKA', the returned context URL is derived directly from the SUCI/SUPI path:
text /nausf-auth/v1/ue-authentications/{suci}/eap-session
All concurrent authentication attempts for the same subscriber therefore point to the same logical context URL, while the backing AusfUeContext in UePool is repeatedly replaced.
When the EAP response is later processed, the AUSF looks up the current context by SUPI:
go currentSupi := ausfcontext.GetSupiFromSuciSupiMap(eapSessionID) ausfCurrentContext := ausfcontext.GetAusfUeContext(currentSupi)
The EAP-AKA' response is then verified against the current context's Kaut and XRES:
go KautStr := ausfCurrentContext.Kaut XMAC := CalculateAtMAC(Kaut, decodeEapAkaPrimePkt.MACInput) MAC := decodeEapAkaPrimePkt.Attributes[ausfcontext.ATMACATTRIBUTE].Value XRES := ausfCurrentContext.XRES RES := hex.EncodeToString(decodeEapAkaPrimePkt.Attributes[ausfcontext.ATRESATTRIBUTE].Value)
if !bytes.Equal(MAC, XMAC) { eapOK = false eapErrStr = "EAP-AKA' integrity check fail" } else if XRES == RES { logger.AuthELog.Infoln("Correct RES value, EAP-AKA' auth succeed") // ... }
If another request has overwritten the context between challenge issuance and response processing, the legitimate response is checked against the wrong Kaut and fails the ATMAC verification.
Attack flow
The attack is selective for a target SUPI:
1. The legitimate procedure starts and the AUSF stores ctxLEGIT under UePool[targetsupi]. 2. The attacker sends many concurrent authentication requests for the same target SUCI/SUPI. 3. Each request obtains a new authentication vector and stores a new context under the same SUPI key. 4. ctxLEGIT is overwritten by ctxATTACK. 5. The legitimate EAP response, computed with KautLEGIT, reaches /eap-session. 6. The AUSF retrieves ctxATTACK by SUPI and computes XMAC with KautATTACK. 7. ATMAC verification fails and the AUSF returns an EAP-AKA' notification failure.
When later contexts carry different session material, a continuous flood prevents the target subscriber from completing authentication because the AUSF's stored context keeps changing before the response is processed.
PoC and evidence
The issue was reproduced in two phases in a controlled free5GC lab.
Phase 1: context overwrite
Experiment:
- 3 rounds of 8 concurrent POST /nausf-auth/v1/ue-authentications requests. - Same target SUCI: suci-0-001-01-0-0-0-0000000002. - AUSF listening on 0.0.0.0:8100; PoC connected to 127.0.0.1:8100.
Observed result:
- 24/24 requests returned HTTP 201. - 24 distinct EapIDs were issued:
text [131, 11, 157, 99, 182, 232, 127, 228, 119, 36, 104, 10, 107, 61, 66, 26, 110, 9, 210, 202, 53, 224, 237, 86]
- All responses used the same auth context URL:
text /nausf-auth/v1/ue-authentications/suci-0-001-01-0-0-0-0000000002/eap-session
- AUSF logs showed repeated context creation for the same SUCI/SUPI in a short interval:
text Add SuciSupiPair (suci-0-001-01-0-0-0-0000000002, imsi-001010000000002) to map. Use EAP-AKA' auth method | 201 | POST | /nausf-auth/v1/ue-authentications ...
This confirms that concurrent authentication requests for the same SUPI are accepted independently but collapse onto one shared context key.
Phase 2: valid EAP response fails after overwrite
The second PoC used a mock UDM with h2c support that returns different EAP-AKA' vectors by request counter for the same SUCI. This makes the overwrite directly observable:
| Request | Vector class | XRES | Effect | |---|---|---|---| | 1st | LEGIT | 0102030405060708 | response client computes ATMAC with KautLEGIT | | 2nd and later | ATTACK | deadbeefcafe0000 | flood overwrites AUSF context with KautATTACK |
Baseline without flood:
text POST /ue-authentications -> EapID=120, context with KautLEGIT stored
POST /eap-session with ATMAC(KautLEGIT) -> AUSF log: Correct RES value, EAP-AKA' auth succeed -> HTTP 200, EAP success
Race condition run:
text POST /ue-authentications -> EapID=243, context with KautLEGIT stored
20 concurrent POST /ue-authentications requests for the same SUCI -> 20/20 accepted -> KautATTACK overwrites KautLEGIT in UePool
POST /eap-session with ATMAC(KautLEGIT) -> AUSF validates against KautATTACK -> AUSF log: EAP-AKA' failure: EAP-AKA' integrity check fail -> HTTP 200, EAP notification failure
Critical AUSF log excerpt:
text Add SuciSupiPair (suci-0-001-01-0-0-0-0000000002, imsi-001010000000002) to map. ... repeated for the same SUCI/SUPI ... EapAuthComfirmRequest [WARN] EAP-AKA' failure: EAP-AKA' integrity check fail | 200 | 127.0.0.1 | POST | /nausf-auth/v1/ue-authentications/.../eap-session |
Baseline and attack logs are in the private evidence bundle:
text hallazgos/finding13-ausf-auth-race/evidencia/20260527-195933-race-condition-p2-final/
The final PoC uses a Python client that constructs a protocol-valid synthetic EAP-AKA' response from known vectors. It is not a full UERANSIM/AMF trace, and the P2 run uses a mock UDM returning distinct LEGIT/ATTACK vectors to make the overwrite observable. The synthetic response is sufficient to prove the AUSF state bug because the baseline succeeds with the same client and vectors, while the flood run fails at the exact ATMAC check predicted by the code.
Impact
The confirmed impact is targeted denial of authentication service for a chosen SUPI.
An attacker with access to the AUSF SBI/N12 interface can keep a subscriber from authenticating by continuously overwriting that subscriber's AUSF context. The AUSF process remains running; this is not a process crash and does not expose authentication material to the attacker. The availability impact is on the AUSF's primary security function for the targeted subscriber.
In the default free5GC deployment observed in the lab, the AUSF reported OAuth2 disabled and listened on 0.0.0.0:8100. In a production deployment with strict SBI isolation, mTLS, OAuth2, or firewalling, the attacker would need access to the internal SBA network or control of a network function that can send AUSF authentication requests.
Suggested remediation
The most robust fix is to stop using SUPI as the sole authentication-session key.
Recommended design:
1. Generate a unique session identifier for every authentication request. 2. Store the AusfUeContext under that session identifier. 3. Return the session identifier in the auth context URL. 4. On /eap-session or /5g-aka-confirmation, retrieve the exact session context by session ID rather than by SUPI.
Conceptual example:
go sessionID := uuid.New().String() ausfUeContext := ausfcontext.NewAusfUeContext(sessionID) ausfUeContext.Supi = ueid // populate context... ausfcontext.AddAusfUeContextToPool(ausfUeContext)
// Return: // /nausf-auth/v1/ue-authentications/{sessionID}/eap-session
If the intended behavior is to allow only one active authentication procedure per SUPI, use an atomic check-and-insert operation and reject concurrent attempts explicitly:
go if existing, loaded := ausfcontext.LoadOrStoreAusfUeContext(ueid, newCtx); loaded { if existing.AuthStatus == models.AusfUeAuthenticationAuthResultONGOING { c.JSON(http.StatusConflict, models.ProblemDetails{ Status: http.StatusConflict, Cause: "AUTHENTICATIONINPROGRESS", }) return } }
A mutex inside AusfUeContext alone is not sufficient if new requests are still allowed to replace the global map entry for the same SUPI.
Additional hardening:
- Apply per-SUPI rate limiting on POST /ue-authentications. - Enable and enforce OAuth2/mTLS for SBI access in deployments. - Add tests for concurrent authentication requests targeting the same SUPI.
Prior art / non-duplication note
Known related issues appear to be different:
- CVE-2026-33063 / GHSA-4jrw-92fg-4jwx affects free5GC AUSF, but concerns a nil interface conversion / DoS in GetSupiFromSuciSupiMap. It does not cover authentication context overwrite by concurrent requests. - CVE-2026-44318 affects free5GC BSF and concerns a different concurrency issue in a different NF. It does not cover AUSF UePool authentication state keyed by SUPI.
Other sources
free5GC is an open-source implementation of the 5G core network. In version 1.4.4 and earlier, the AUSF component stores per-subscriber authentication state in a global sync.Map named AUSFContext.UePool in internal/context/context.go, keyed only by SUPI. Every request handled by internal/sbi/processor/ueauthentication.go creates an AusfUeContext, and AddAusfUeContextToPool executes ausfContext.UePool.Store(ausfUeContext.Supi, ausfUeContext), unconditionally replacing the active context for that SUPI. An attacker with access to the AUSF SBI/N12 interface can send concurrent POST /nausf-auth/v1/ue-authentications requests for the same target SUPI, causing all attempts to share one logical authentication context URL while Kaut, XRES, and EapID are repeatedly overwritten. A valid EAP-AKA' response for an earlier challenge is then checked against the latest context, causing ATMAC verification to fail and denying authentication to the selected subscriber while the request flood continues. No fixed version is available as of this review.
— MITRE
Affected Software
Event History
Frequently Asked Questions
Which deployments are exposed?
Deployments running the free5GC AUSF component are exposed if an attacker can access its SBI/N12 interface and target a subscriber SUPI. The issue was confirmed in github.com/free5gc/ausf v1.4.4 and current main as of June 2026.
What does an attacker need to do to trigger the denial of service?
The attacker sends concurrent POST requests to /nausf-auth/v1/ue-authentications for the same target SUPI. Continuing the request flood keeps replacing the target's authentication context and causes responses to be checked against mismatched authentication data.
What is the practical impact on an affected subscriber?
Authentication for the targeted SUPI can fail while the concurrent request flood is maintained. The reported impact is denial of service; no confidentiality or integrity impact is stated.