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Main Authors: Li, Qian, Sun, Xiaoming, Zhang, Xingjian, Zhou, Hongyi
Format: Preprint
Published: 2023
Subjects:
Online Access:https://arxiv.org/abs/2301.08621
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author Li, Qian
Sun, Xiaoming
Zhang, Xingjian
Zhou, Hongyi
author_facet Li, Qian
Sun, Xiaoming
Zhang, Xingjian
Zhou, Hongyi
contents Randomness extraction is a key problem in cryptography and theoretical computer science. With the recent rapid development of quantum cryptography, quantum-proof randomness extraction has also been widely studied, addressing the security issues in the presence of a quantum adversary. In contrast with conventional quantum-proof randomness extractors characterizing the input raw data as min-entropy sources, we find that the input raw data generated by a large class of trusted-device quantum random number generators can be characterized as the so-called reverse block source. This fact enables us to design improved extractors. Specifically, we propose two novel quantum-proof randomness extractors for reverse block sources that realize real-time block-wise extraction. In comparison with the general min-entropy randomness extractors, our designs achieve a significantly higher extraction speed and a longer output data length with the same seed length. In addition, they enjoy the property of online algorithms, which process the raw data on the fly without waiting for the entire input raw data to be available. These features make our design an adequate choice for the real-time post-processing of practical quantum random number generators. Applying our extractors to the raw data generated by a widely used quantum random number generator, we achieve a simulated extraction speed as high as $300$ Gbps.
format Preprint
id arxiv_https___arxiv_org_abs_2301_08621
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Improved Real-time Post-Processing for Quantum Random Number Generators
Li, Qian
Sun, Xiaoming
Zhang, Xingjian
Zhou, Hongyi
Quantum Physics
Randomness extraction is a key problem in cryptography and theoretical computer science. With the recent rapid development of quantum cryptography, quantum-proof randomness extraction has also been widely studied, addressing the security issues in the presence of a quantum adversary. In contrast with conventional quantum-proof randomness extractors characterizing the input raw data as min-entropy sources, we find that the input raw data generated by a large class of trusted-device quantum random number generators can be characterized as the so-called reverse block source. This fact enables us to design improved extractors. Specifically, we propose two novel quantum-proof randomness extractors for reverse block sources that realize real-time block-wise extraction. In comparison with the general min-entropy randomness extractors, our designs achieve a significantly higher extraction speed and a longer output data length with the same seed length. In addition, they enjoy the property of online algorithms, which process the raw data on the fly without waiting for the entire input raw data to be available. These features make our design an adequate choice for the real-time post-processing of practical quantum random number generators. Applying our extractors to the raw data generated by a widely used quantum random number generator, we achieve a simulated extraction speed as high as $300$ Gbps.
title Improved Real-time Post-Processing for Quantum Random Number Generators
topic Quantum Physics
url https://arxiv.org/abs/2301.08621