关于 Qubit 信息屏蔽的研究

IF 1.3 4区 物理与天体物理 Q3 PHYSICS, MULTIDISCIPLINARY
Si-Ming Zhang, Jin-Ze Li, Ming-Hao Wang, Bin Zhou
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引用次数: 0

摘要

量子信息掩蔽是一种将量子信息编码到复合系统内部的相关性中,同时确保单个子系统不携带任何可识别的输入状态信息的技术,在量子比特承诺、量子秘密共享、量子纠错和量子通信等各种量子信息处理任务中发挥着举足轻重的作用。在本文中,我们专门研究了量子比特信息的掩蔽问题。我们的研究结果表明,当多量子比特系统的第一个量子比特负责掩蔽任意量子比特状态时,剩余量子比特无法掩蔽任何量子比特状态。耐人寻味的是,在这些条件下,存在一种恢复操作,可以从残余量子比特完美地恢复输入量子比特,这表明输入信息完全转移到了这些量子比特上。此外,我们还发现第一个量子比特与残余量子比特之间的相关性可能冗余地包含输入量子比特的部分信息。这种信息冗余现象为理解量子纠错码提供了一个新的视角,有助于加深对量子信息论的理解。这项研究阐明了量子信息论的基本方面,并有可能应用于量子信息处理。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Study on Qubit Information Masking

Quantum information masking, a technique that encodes quantum information into the correlations within a composite system while ensuring that individual subsystems carry no discernible information about the input states, plays a pivotal role in various quantum information processing tasks including quantum bit commitment, quantum secret sharing, quantum error correction, and quantum communication. In this paper, we specifically study the masking of qubit information. Our results demonstrate that when the first qubit of a multi-qubit system is tasked with masking an arbitrary qubit state, the residual qubits are incapable of masking any qubit state. Intriguingly, under these conditions, a recovery operation exists that can perfectly restore the input qubits from the residual qubits, suggesting a complete transfer of the input information to these qubits. Moreover, we uncover that the correlation between the first qubit and the residual qubits might redundantly contain partial information of input qubits. This phenomenon of information redundancy offers a novel viewpoint for comprehending quantum error-correcting codes and contributes to a deeper understanding of quantum information theory. This study elucidates fundamental aspects of quantum information theory and may have potential applications in quantum information processing.

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来源期刊
CiteScore
2.50
自引率
21.40%
发文量
258
审稿时长
3.3 months
期刊介绍: International Journal of Theoretical Physics publishes original research and reviews in theoretical physics and neighboring fields. Dedicated to the unification of the latest physics research, this journal seeks to map the direction of future research by original work in traditional physics like general relativity, quantum theory with relativistic quantum field theory,as used in particle physics, and by fresh inquiry into quantum measurement theory, and other similarly fundamental areas, e.g. quantum geometry and quantum logic, etc.
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