GHSA-rg76-677x-56q9: Weak RNG
Summary
CryptoJS.lib.WordArray.random() in affected versions is not a cryptographically secure random number generator. Nominal requests for 128 or 256 bits of entropy produce effective search spaces of approximately 2^39 and 2^47 possibilities — small enough to enumerate on commodity hardware.
Coinspect's Ill Bloom investigation confirmed that downstream wallet applications used this function as the entropy source for BIP39 recovery phrases.
An application is affected only if it uses the vulnerable function to generate security-sensitive values.
Merely depending on crypto-js < 4.0.0 is not sufficient to be exploitable.
Details
The affected implementation used a custom variation of George Marsaglia's Multiply-With-Carry PRNG, seeded from Math.random(). It was introduced in 3.1.2-4 (June 2014, commit brix/crypto-js@ff1f003) in response to issue \#7, and was present in every 3.x release except 3.2.0 and 3.2.1. That change was reverted in 3.3.0 because it was considered a breaking change, so projects tracking the 3.x line could resolve to newer versions that still contained the weak generator.
4.0.0 replaced the generator with the platform's native cryptographic API.
Applying PBKDF2, another KDF, or a cryptographic hash after the vulnerable generator does not restore missing entropy.
Proof of concept
Coinspect reproduced the attack end to end:
1. Reimplemented the affected WordArray.random() behavior. 2. Enumerated the feasible outputs of the underlying PRNG. 3. Converted candidate entropy values into valid BIP39 recovery phrases. 4. Derived private keys and addresses across the relevant derivation paths and networks. 5. Compared derived addresses against public blockchain data. 6. Recovered the private keys controlling funded addresses.
Impact
An attacker can enumerate the reduced output space and recover security-sensitive values generated through the affected function.
Coinspect documented coordinated drain waves affecting addresses derived from vulnerable recovery phrases. As of July 13, 2026, the measured lower bound of stolen assets across the two events was approximately $5M.
The consequences are persistent:
Updating an affected library or wallet does not strengthen a previously generated secret. Importing the same recovery phrase into an updated software or hardware wallet does not remediate the issue. Previously generated secrets may remain exploitable indefinitely. Future deposits to an affected address may also be stolen. Assets may remain exposed across networks or derivation paths that have not yet shown suspicious activity.
Remediation
For projects:
1. Upgrade crypto-js to version 4.0.0 or later. Where possible, replace CryptoJS randomness with the native Web Crypto API or Node.js crypto module. 2. Audit direct, downstream, and transitive dependencies for versions of crypto-js matching < 4.0.0. 3. Determine whether CryptoJS.lib.WordArray.random() was used to generate any security-sensitive values. 4. Identify the time periods and application versions during which the vulnerable generation path was present. 5. Treat all long-term secrets generated through an affected path as compromised and rotate them. 6. Notify affected users that installing an update is insufficient when a long-term secret was generated by the vulnerable code.
For wallet users: create a new wallet with a newly generated recovery phrase from a trustworthy source and migrate assets to addresses derived from it. Do not import the existing recovery phrase into the new wallet.
Public address checker
Coinspect provides a public checker for addresses identified in the known Ill Bloom exposed-address datasets:
https://illbloom.org/
Only public blockchain addresses should be entered. Users must never enter a recovery phrase, seed phrase, mnemonic, private key, password, or wallet backup file.
A match indicates that funds controlled by the same recovery phrase may be at immediate risk. A negative result only means that the submitted address was not found in the currently published datasets.
References
Ill Bloom research site and public address checker: https://illbloom.org/ Coinspect investigation overview: https://www.coinspect.com/blog/ill-bloom-investigation/ CryptoJS issue \#7 — randomBytes is not random enough: https://github.com/brix/crypto-js/issues/7 Commit introducing the MWC-based implementation: https://github.com/brix/crypto-js/commit/ff1f0032ff58aedfcc44eb6aa7b2c78207a98009 Changes between CryptoJS 3.3.0 and 4.0.0: https://github.com/brix/crypto-js/compare/3.3.0...4.0.0 Downstream ferrumnet/bip39 fork: https://github.com/ferrumnet/bip39
Affected Software
Remediation
Recommended actions to resolve this vulnerability, in priority order.
- Upgrade
Upgrade
npm/crypto-jsto a version that resolves this vulnerability.Fixed in 4.0.0 - Upgrade
Upgrade
crypto-jsto a version that resolves this vulnerability.Fixed in 4.0.0 - Upgrade
Upgrade
crypto-jsto a version that resolves this vulnerability.Fixed in 3.3.0 - Configuration
Determine whether `CryptoJS.lib.WordArray.random()` was used to generate security-sensitive values (e.g., BIP39 recovery phrases). If so, where possible replace CryptoJS randomness with the native Web Crypto API or Node.js `crypto` module.
CryptoJS CryptoJS.lib.WordArray.random() usage (entropy/PRNG source) = Replace with native Web Crypto API or Node.js crypto module - Compensating control
Use the Coinspect public address checker for addresses identified in the known Ill Bloom exposed-address datasets; treat matches as immediate risk (negative result only means the submitted address was not found in currently published datasets).
- Operational
Treat all long-term secrets generated through an affected path as compromised and rotate them.
- Operational
For wallet users: create a new wallet with a newly generated recovery phrase from a trustworthy source and migrate assets to addresses derived from it.
- Operational
For wallet users: do not import the existing recovery phrase into the new wallet (and do not enter a recovery phrase/seed phrase/mnemonic/private key/password/wallet backup file into any wallet application).
- Operational
Audit direct, downstream, and transitive dependencies for versions of `crypto-js` matching `< 4.0.0`.
Event History
Frequently Asked Questions
What is the severity of GHSA-rg76-677x-56q9?
GHSA-rg76-677x-56q9 has a critical severity rating of 9.
How do I fix GHSA-rg76-677x-56q9?
To fix GHSA-rg76-677x-56q9, update to a version of the CryptoJS library that addresses the weak random number generator issue.
What is the risk associated with GHSA-rg76-677x-56q9?
The risk associated with GHSA-rg76-677x-56q9 includes possible exposure of sensitive data due to inadequate randomness.
What types of systems are affected by GHSA-rg76-677x-56q9?
GHSA-rg76-677x-56q9 affects systems using vulnerable versions of the npm/crypto-js library.
What vulnerability class does GHSA-rg76-677x-56q9 belong to?
GHSA-rg76-677x-56q9 belongs to the CWE category of Weak Random Number Generator.