非马尔可夫量子动态映射的Lindblad-like量子层析成像

IF 6.6 1区 物理与天体物理 Q1 PHYSICS, APPLIED
S. Varona, M. Müller, A. Bermudez
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引用次数: 0

摘要

在量子信息处理器中,我们引入了lindblade类量子层析成像(llqt)作为时间相关噪声的量子表征技术。这种方法可以通过最大化受动态约束的似然函数来估计时间局部主方程,包括它们可能的负衰减率。我们详细讨论了单个量子位元的减相动力学的llqt,这使得我们能够很好地理解在似然函数中包含量子演化的多个快照的重要性,以及这些快照如何根据噪声特性在时间上分布。通过使用频率学和贝叶斯方法的详细比较研究,我们评估了超过Lindblad极限的减相量子动力学映射的llqt的准确性和精度,重点关注了两种不同的微观噪声模型,这两种模型可以在捕获离子或超导电路架构中实现。我们探索了测量时间分布的优化以最小化估计误差,评估了基于噪声非马尔可夫性程度的每种学习方案的优越性,并为未来非马尔可夫量子层析成像的实验设计奠定了基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Lindblad-like quantum tomography for non-Markovian quantum dynamical maps

Lindblad-like quantum tomography for non-Markovian quantum dynamical maps

We introduce Lindblad-like quantum tomography (LQT) as a quantum characterization technique of time-correlated noise in quantum information processors. This approach enables the estimation of time-local master equations, including their possible negative decay rates, by maximizing a likelihood function subject to dynamical constraints. We discuss LQT for the dephasing dynamics of single qubits in detail, which allows for a neat understanding of the importance of including multiple snapshots of the quantum evolution in the likelihood function, and how these need to be distributed in time depending on the noise characteristics. By a detailed comparative study employing both frequentist and Bayesian approaches, we assess the accuracy and precision of LQT of a dephasing quantum dynamical map that goes beyond the Lindblad limit, focusing on two different microscopic noise models that can be realised in either trapped-ion or superconducting-circuit architectures. We explore the optimization of the distribution of measurement times to minimize the estimation errors, assessing the superiority of each learning scheme conditioned on the degree of non-Markovinity of the noise, and setting the stage for future experimental designs of non-Markovian quantum tomography.

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来源期刊
npj Quantum Information
npj Quantum Information Computer Science-Computer Science (miscellaneous)
CiteScore
13.70
自引率
3.90%
发文量
130
审稿时长
29 weeks
期刊介绍: The scope of npj Quantum Information spans across all relevant disciplines, fields, approaches and levels and so considers outstanding work ranging from fundamental research to applications and technologies.
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