量子算法的缺陷效应:一个软件工程的视角

Felix Greiwe, Tom Krüger, W. Mauerer
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引用次数: 1

摘要

量子计算机承诺比传统方法有相当大的速度,这引起了许多学科的兴趣。由于任何当前可用的实现都存在噪声和缺陷,因此为有意义的问题规模实现具体的加速仍然是一个主要挑战。然而,量子计算中的缺陷和噪声可能在很长一段时间内仍然存在。这样的限制在经典的软件计算中不起作用,并且软件工程师通常不习惯考虑这样的缺陷,尽管它们实质上影响了软件和系统的核心属性。在本文中,我们展示了如何用一种为(量子)软件工程师量身定制的方法来建模缺陷。我们使用数值模拟直观地说明了缺陷如何影响NISQ系统上量子算法的核心特性,并展示了定制未来NISQ机器以协同设计方法提高系统性能的可能选择。我们的结果是从我们以易于使用的复制包的形式提供的软件框架中获得的。它不需要计算机科学家获得关于噪声的深入物理知识,但提供了解释噪声对常见软件质量和性能指标的影响的有形和直观的方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effects of Imperfections on Quantum Algorithms: A Software Engineering Perspective
Quantum computers promise considerable speedups over classical approaches, which has raised interest from many disciplines. Since any currently available implementations suffer from noise and imperfections, achieving concrete speedups for meaningful problem sizes remains a major challenge. Yet, imperfections and noise may remain present in quantum computing for a long while. Such limitations play no role in classical software computing, and software engineers are typically not well accustomed to considering such imperfections, albeit they substantially influence core properties of software and systems.In this paper, we show how to model imperfections with an approach tailored to (quantum) software engineers. We intuitively illustrate, using numerical simulations, how imperfections influence core properties of quantum algorithms on NISQ systems, and show possible options for tailoring future NISQ machines to improve system performance in a co-design approach.Our results are obtained from a software framework that we provide in form of an easy-to-use reproduction package. It does not require computer scientists to acquire deep physical knowledge on noise, yet provide tangible and intuitively accessible means of interpreting the influence of noise on common software quality and performance indicators.
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