通过挤压增强有限温度储层中的绝热量子算法

IF 2.2 3区 物理与天体物理 Q1 PHYSICS, MATHEMATICAL
Xi-Chen Xu, Yang-Yang Xie, Arapat Ablimit, Zhao-Ming Wang
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引用次数: 0

摘要

绝热量子算法总是要求系统在时间演化过程中保持基态,但系统与其环境之间的相互作用往往会破坏绝热性。在本文中,我们展示了在存在环境噪声的情况下,可以利用储层工程,即对环境的挤压,来增强系统的绝热性。我们使用非马尔可夫量子态扩散(QSD)方法来求解系统动力学。以 Max-Cut 问题为例,研究了挤压强度和挤压方向对绝热保真度的影响。结果表明,适当的挤压可以提高保真度,而且随着系统规模的变化,这种提高依然有效。此外,最佳挤压方向随温度和光谱带宽的不同而变化。我们的工作证明,储层工程是控制系统动态的有效方法,可用于提高开放系统中量子算法的绝热性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Enhanced adiabatic quantum algorithm in finite-temperature reservoirs via squeezing

Enhanced adiabatic quantum algorithm in finite-temperature reservoirs via squeezing

Adiabatic quantum algorithm always requires that the system is kept in its ground state during the time evolution, but the interaction between the system and its environment often destroys the adiabaticity. In this paper we show that the reservoir engineering, i.e. the squeezing of the environment, can be used to enhance the adiabaticity of the system in the presence of environment noise. We use the non-Markovian quantum state diffusion (QSD) method to solve the system dynamics. Taking the Max-Cut problem as an example, the effects of squeezing strength and squeezing direction on the adiabatic fidelity are investigated. The results show that appropriate squeezing can enhance the fidelity, and this enhancement remains effective as system sizes vary. Moreover, the optimal squeezing direction changes with different temperature and spectrum bandwidth. Our work demonstrate that reservoir engineering is an effective approach to control the dynamics of the system, which can be used to boost the adiabaticity of the quantum algorithm in open systems.

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来源期刊
Quantum Information Processing
Quantum Information Processing 物理-物理:数学物理
CiteScore
4.10
自引率
20.00%
发文量
337
审稿时长
4.5 months
期刊介绍: Quantum Information Processing is a high-impact, international journal publishing cutting-edge experimental and theoretical research in all areas of Quantum Information Science. Topics of interest include quantum cryptography and communications, entanglement and discord, quantum algorithms, quantum error correction and fault tolerance, quantum computer science, quantum imaging and sensing, and experimental platforms for quantum information. Quantum Information Processing supports and inspires research by providing a comprehensive peer review process, and broadcasting high quality results in a range of formats. These include original papers, letters, broadly focused perspectives, comprehensive review articles, book reviews, and special topical issues. The journal is particularly interested in papers detailing and demonstrating quantum information protocols for cryptography, communications, computation, and sensing.
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