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Cookie header not stripped on cross-origin redirect

High
hyperxpro published GHSA-fmxf-pm6p-7xgm May 12, 2026

Package

maven org.asynchttpclient:async-http-client (Maven)

Affected versions

>= 3.0.0.Beta1, < 3.0.10
>= 2.0.0, < 2.15.0

Patched versions

3.0.10
2.15.0

Description

Summary

async-http-client leaks Cookie headers to cross-origin redirect targets. When following a redirect across a security boundary (different origin, or HTTPS→HTTP downgrade), the propagatedHeaders() method in Redirect30xInterceptor.java strips Authorization and Proxy-Authorization headers but does not strip Cookie, so session cookies and other sensitive cookie values are forwarded to the redirect target — which may be attacker-controlled.

Details

The vulnerability is in client/src/main/java/org/asynchttpclient/netty/handler/intercept/Redirect30xInterceptor.java.

The caller computes stripAuth on each redirect:

boolean sameBase    = request.getUri().isSameBase(newUri);
boolean stripAuth   = !sameBase || schemeDowngrade || stripAuthorizationOnRedirect;
// ...
requestBuilder.setHeaders(propagatedHeaders(request, realm, keepBody, stripAuth));

stripAuth is true whenever the redirect crosses an origin, downgrades the scheme, or the caller opted in via AsyncHttpClientConfig#isStripAuthorizationOnRedirect().

In the vulnerable version, propagatedHeaders() only removes Authorization and Proxy-Authorization in that branch — Cookie is left untouched:

private static HttpHeaders propagatedHeaders(Request request, Realm realm, boolean keepBody, boolean stripAuthorization) {
    HttpHeaders headers = request.getHeaders()
            .remove(HOST)
            .remove(CONTENT_LENGTH);

    if (!keepBody) {
        headers.remove(CONTENT_TYPE);
    }

    if (stripAuthorization || (realm != null && (realm.getScheme() == AuthScheme.NTLM
            || realm.getScheme() == AuthScheme.SCRAM_SHA_256))) {
        headers.remove(AUTHORIZATION)
                .remove(PROXY_AUTHORIZATION);
        // BUG: COOKIE is not removed here, so cookies leak across the security boundary.
    }
    return headers;
}

The companion test class RedirectCredentialSecurityTest covers Authorization / Proxy-Authorization stripping on cross-origin redirects and scheme downgrades, but has no coverage for Cookie, which is why the regression went unnoticed.

Proof of concept

import org.asynchttpclient.*;

AsyncHttpClient client = asyncHttpClient();

// trusted-api.com responds 302 -> https://evil.com
Request request = new RequestBuilder("GET")
        .setUrl("https://trusted-api.com/endpoint")
        .setHeader("Cookie", "session=abc123; csrf=xyz789; api_key=secret")
        .setHeader("Authorization", "Bearer token123")
        .build();

client.executeRequest(request).get();

// Request seen by evil.com after the redirect:
//   Authorization: <stripped>
//   Cookie:        session=abc123; csrf=xyz789; api_key=secret   <-- leaked

Impact

  • Session hijacking — leaked session cookies allow impersonation.
  • CSRF token theft — CSRF tokens carried in cookies are disclosed.
  • API key theft — API keys stored in cookies are disclosed.
  • Privacy — tracking identifiers leak to third-party origins.

Realistic attack paths:

  • Open-redirect in a trusted API endpoint.
  • Compromised CDN or API gateway injecting redirects.
  • MITM on a plaintext hop in the redirect chain.

Fix

Add COOKIE to the headers removed alongside AUTHORIZATION / PROXY_AUTHORIZATION on the security-boundary branch:

if (stripAuthorization) {
    headers.remove(AUTHORIZATION)
            .remove(PROXY_AUTHORIZATION)
            .remove(COOKIE);
} else if (realm != null && (realm.getScheme() == AuthScheme.NTLM
        || realm.getScheme() == AuthScheme.SCRAM_SHA_256)) {
    headers.remove(AUTHORIZATION)
            .remove(PROXY_AUTHORIZATION);
}

Note that the URI-scoped CookieStore will re-add any cookies that legitimately match the new target after propagatedHeaders returns, so legitimate cross-origin sessions tracked by the client are not broken.

Fixed in 3.0.10 and 2.15.0 by commit 3b0e3e9e.

Severity

High

CVSS overall score

This score calculates overall vulnerability severity from 0 to 10 and is based on the Common Vulnerability Scoring System (CVSS).
/ 10

CVSS v3 base metrics

Attack vector
Network
Attack complexity
Low
Privileges required
None
User interaction
Required
Scope
Changed
Confidentiality
High
Integrity
None
Availability
None

CVSS v3 base metrics

Attack vector: More severe the more the remote (logically and physically) an attacker can be in order to exploit the vulnerability.
Attack complexity: More severe for the least complex attacks.
Privileges required: More severe if no privileges are required.
User interaction: More severe when no user interaction is required.
Scope: More severe when a scope change occurs, e.g. one vulnerable component impacts resources in components beyond its security scope.
Confidentiality: More severe when loss of data confidentiality is highest, measuring the level of data access available to an unauthorized user.
Integrity: More severe when loss of data integrity is the highest, measuring the consequence of data modification possible by an unauthorized user.
Availability: More severe when the loss of impacted component availability is highest.
CVSS:3.1/AV:N/AC:L/PR:N/UI:R/S:C/C:H/I:N/A:N

CVE ID

CVE-2026-45300

Weaknesses

Exposure of Sensitive Information to an Unauthorized Actor

The product exposes sensitive information to an actor that is not explicitly authorized to have access to that information. Learn more on MITRE.

Credits