4.6 Article

Quantum Hacking on an Integrated Continuous-Variable Quantum Key Distribution System via Power Analysis

期刊

ENTROPY
卷 23, 期 2, 页码 -

出版社

MDPI
DOI: 10.3390/e23020176

关键词

integrated continuous-variable quantum key distribution; quantum hacking; practical security

资金

  1. National Natural Science Foundation of China [61976178, 62076202]

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The paper introduces a new quantum hacking attack on an integrated silicon photonic continuous-variable quantum key distribution (CVQKD) system, known as a power analysis attack. This attack involves analyzing the power from the integrated electrical control circuit in state preparation with the help of machine learning, and the simulation results show that an increase in attack accuracy leads to decreased secret key information.
In quantum key distribution (QKD), there are some security loopholes opened by the gaps between the theoretical model and the practical system, and they may be exploited by eavesdroppers (Eve) to obtain secret key information without being detected. This is an effective quantum hacking strategy that seriously threatens the security of practical QKD systems. In this paper, we propose a new quantum hacking attack on an integrated silicon photonic continuous-variable quantum key distribution (CVQKD) system, which is known as a power analysis attack. This attack can be implemented by analyzing the power originating from the integrated electrical control circuit in state preparation with the help of machine learning, where the state preparation is assumed to be perfect in initial security proofs. Specifically, we describe a possible power model and show a complete attack based on a support vector regression (SVR) algorithm. The simulation results show that the secret key information decreases with the increase of the accuracy of the attack, especially in a situation with less excess noise. In particular, Eve does not have to intrude into the transmitter chip (Alice), and may perform a similar attack in practical chip-based discrete-variable quantum key distribution (DVQKD) systems. To resist this attack, the electrical control circuit should be improved to randomize the corresponding power. In addition, the power can be reduced by utilizing the dynamic voltage and frequency scaling (DVFS) technology.

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