OpenAI math breakthroughs raise ‘bunker mode’ alarm from Bitcoin researcher Justin Drake

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OpenAI’s latest advances in mathematics have prompted a leading Ethereum researcher to warn that crypto’s core wallet security could face an unexpected AI threat.

On Oct. 7, Ethereum researcher Justin Drake urged the blockchain industry to prepare for what he described as “bunker mode,” including a controlled migration of digital assets into fresh addresses whose public keys have never been exposed.

Drake said large and sophisticated holders should consider moving most of their assets to addresses that have never signed transactions. Once those addresses are used to send funds, he recommended transferring any remaining balance into another fresh address.

His warning followed OpenAI’s Oct. 6 release of a broad collection of new mathematical results produced by an internal frontier model.

The company said it tested the model across thousands of problems, published many of the resulting proofs with computer-checkable Lean formalizations and spent the equivalent of about three hours of ChatGPT Pro reasoning on the average result.

Drake argued that the accelerating pace of AI-driven mathematical discovery should force the crypto industry to reconsider assumptions about how long elliptic-curve cryptography will remain secure.

“In the worst case,” he said, an effective break of the Elliptic Curve Digital Signature Algorithm, or ECDSA, could arrive “in months, not years.”

OpenAI’s announcement does not report a practical attack on ECDSA or RSA. Drake’s months timeline is a worst-case conjecture, not a demonstrated capability.

Drake warns AI could shorten crypto’s security timetable

Bitcoin and Ethereum rely heavily on elliptic-curve cryptography to establish ownership and authorize transactions.

Standard Ethereum externally owned accounts use ECDSA on the secp256k1 curve. Once an account sends a transaction, its public key can be reconstructed from information placed onchain. Someone capable of efficiently deriving the corresponding private key could then take control of the assets.

Standard Ethereum accounts whose public keys remain unexposed have an additional layer of protection: only the address, a hash of the public key, is visible, Ethereum’s documentation says.

The industry has traditionally treated that problem primarily as a future quantum-computing risk.

Ethereum has already established a dedicated post-quantum security effort, with work underway on hash-based signatures, account abstraction and replacements for other cryptographic systems vulnerable to sufficiently powerful quantum computers. Core post-quantum infrastructure is currently targeted for roughly 2029, although the roadmap remains subject to change.

Drake is challenging the assumption that quantum computing will necessarily be the first technology capable of breaking those systems.