在容错量子电路中控制蒸馏厂:问题陈述和解决方案分析

A. Paler
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引用次数: 6

摘要

量子硬件的故障敏感性将迫使量子计算机执行容错量子电路。这些电路基于量子纠错码,越来越多的证据表明,最实用的选择之一是表面码。基于表面代码的量子电路的设计方法主要集中在这种电路的布局上,而没有强调硬件可用性的降低及其对执行时间的影响。目前还没有对实际场景的电路布局进行研究,因此本文提出的问题一直被忽视。为了实现容错和实现基于表面代码的计算,在称为蒸馏的过程中准备特殊量子态需要大量的计算资源(硬件和时间)。这项工作介绍了蒸馏器(负责状态蒸馏的电路部分)如何影响表面代码保护量子电路的布局的问题,并分析了减少执行电路所需资源的权衡。提出了第一个算法解决方案,实现并评估了加法量子电路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Controlling distilleries in fault-tolerant quantum circuits: problem statement and analysis towards a solution
The failure susceptibility of the quantum hardware will force quantum computers to execute fault-tolerant quantum circuits. These circuits are based on quantum error correcting codes, and there is increasing evidence that one of the most practical choices is the surface code. Design methodologies of surface code based quantum circuits were focused on the layout of such circuits without emphasizing the reduced availability of hardware and its effect on the execution time. Circuit layout has not been investigated for practical scenarios, and the problem presented herein was neglected until now. For achieving fault-tolerance and implementing surface code based computations, a significant amount of computing resources (hardware and time) are necessary for preparing special quantum states in a procedure called distillation. This work introduces the problem of how distilleries (circuit portions responsible for state distillation) influence the layout of surface code protected quantum circuits, and analyses the trade-offs for reducing the resources necessary for executing the circuits. A first algorithmic solution is presented, implemented and evaluated for addition quantum circuits.
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