The proliferation of Brain-Computer Interfaces (BCIs) and wireless Electroencephalography (EEG) devices necessitates security protocols that are simultaneously quantum-resistant and intrinsically linked to users’ biological identity. While standard post-quantum cryptography like ML-KEM provides foundational security, it fails to address critical neurotechnology requirements: integrated biometric authentication, efficient long-term session management, and resilience to signal noise. This paper presents Neural-LWE (NLWE), a novel biometric-anchored authenticated key agreement protocol for quantum-secure Brain-Computer Interfaces. We introduce five fundamental innovations: (1) integration of Kalman-filtered EEG features with ML-KEM encapsulation for biometric two-factor authentication; (2) Zero-Communication-Round Rekeying (ZCRR) enabling 250 more efficient forward secrecy updates; (3) entropy-adaptive security dynamically scaling lattice parameters based on real-time EEG quality; (4) ternary-entropy masking for side-channel resistance; and (5) manifold-based anomaly detection against presentation attacks. NLWE establishes IND-CCA2 security under the Module-LWE (MLWE) assumption while addressing unique BCI constraints through formal cryptographic-biometric binding. Implementation results using physiologically plausible synthetic data confirm that ZCRR achieves 0. 45J rekeying energy with sub-millisecond latency. While experimental validation is performed in a controlled environment, the results indicate NLWE is a promising proof-of-concept for continuous neural applications requiring persistent quantum security.
Nasiraee et al. (2026) studied this question.