TARA Test-by-Adaptive-Ranks for Quantum Anomaly Detection with Conformal Prediction Guarantees
Davut Emre Tasar, Ceren Ocal Tasar

TL;DR
TARA introduces a distribution-free quantum anomaly detection framework combining conformal prediction and martingale testing, providing rigorous statistical guarantees and robust real-time quantum channel monitoring.
Contribution
The paper presents TARA, a novel adaptive-rank testing framework that guarantees validity under finite samples and adversarial conditions for quantum anomaly detection.
Findings
Achieves ROC AUC of 0.96 in quantum-classical discrimination.
Provides real-time monitoring with controlled false positive rates.
Reveals calibration issues that may overestimate robustness in prior studies.
Abstract
Quantum key distribution (QKD) security fundamentally relies on the ability to distinguish genuine quantum correlations from classical eavesdropper simulations, yet existing certification methods lack rigorous statistical guarantees under finite-sample conditions and adversarial scenarios. We introduce TARA (Test by Adaptive Ranks), a novel framework combining conformal prediction with sequential martingale testing for quantum anomaly detection that provides distribution-free validity guarantees. TARA offers two complementary approaches. TARA k, based on Kolmogorov Smirnov calibration against local hidden variable (LHV) null distributions, achieving ROC AUC = 0.96 for quantum-classical discrimination. And TARA-m, employing betting martingales for streaming detection with anytime valid type I error control that enables real time monitoring of quantum channels. We establish theoretical…
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Taxonomy
TopicsQuantum Information and Cryptography · Quantum Computing Algorithms and Architecture · Quantum Mechanics and Applications
