用于组合优化问题的光子伊辛机

IF 11.9 1区 物理与天体物理 Q1 PHYSICS, APPLIED Applied physics reviews Pub Date : 2024-10-14 DOI:10.1063/5.0216656
Yuan Gao, Guanyu Chen, Luo Qi, Wujie Fu, Zifeng Yuan, Aaron J. Danner
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引用次数: 0

摘要

复杂的组合优化问题,特别是那些被归类为 NP-完全或 NP-困难的问题,需要高效的求解器,这促使人们最近越来越多地探索新型计算架构。所谓的伊辛机(Ising machines)是一种突出的集体状态计算范例,由于它能够优化具有大量交互变量的复杂问题,最近引起了相当多的研究关注。伊辛模型启发求解器因与著名的固态物理学模型在数学上的相似性而得名,由于其固有的高度并行性,有望成为传统冯-诺依曼计算机架构的替代方案。就像二进制计算机有许多可能的实现方式一样,伊辛求解器也有许多可能的物理实现方式,而光子伊辛机(PIM)主要使用光学元件进行计算,具有功耗低、计算速度快、利用物理光学本身进行计算、可扩展性好和抗噪声能力强等优点。PIM 形式的光子计算可提供某些非光子方法难以实现的计算优势,是光子学在计算领域的一项引人入胜的应用。在这篇综述中,我们将概述伊辛机的总体情况,介绍伊辛机为何有用、可以解决哪些类型的问题,以及如何对不同的伊辛求解器进行比较和基准测试。我们描述了与非光子伊辛机相比,伊辛机的各种运行机制、优势和局限性。我们描述了它们的可扩展性、互联性、性能和物理尺寸。随着光子等效机研究的不断深入,光子计算有可能成为处理不同领域中大型、具有挑战性的优化问题的一种方法。本综述为有兴趣了解光子集成微处理器在解决此类复杂优化问题方面的能力和潜力的研究人员和从业人员提供了全面的资源。
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Photonic Ising machines for combinatorial optimization problems
The demand for efficient solvers of complicated combinatorial optimization problems, especially those classified as NP-complete or NP-hard, has recently led to increased exploration of novel computing architectures. One prominent collective state computing paradigm embodied in the so-called Ising machines has recently attracted considerable research attention due to its ability to optimize complex problems with large numbers of interacting variables. Ising model-inspired solvers, thus named due to mathematical similarities to the well-known model from solid-state physics, represent a promising alternative to traditional von Neumann computer architectures due to their high degree of inherent parallelism. While there are many possible physical realizations of Ising solvers, just as there are many possible implementations of any binary computer, photonic Ising machines (PIMs) use primarily optical components for computation, taking advantage of features like lower power consumption, fast calculation speeds, the leveraging of physical optics to perform the calculations themselves, possessing decent scalability and noise tolerance. Photonic computing in the form of PIMs may offer certain computational advantages that are not easily achieved with non-photonic approaches and is nonetheless an altogether fascinating application of photonics to computing. In this review, we provide an overview of Ising machines generally, introducing why they are useful, what types of problems they can tackle, and how different Ising solvers can be compared and benchmarked. We delineate their various operational mechanisms, advantages, and limitations vis-à-vis non-photonic Ising machines. We describe their scalability, interconnectivity, performance, and physical dimensions. As research in PIMs continues to progress, there is a potential that photonic computing could well emerge as a way to handle large and challenging optimization problems across diverse domains. This review serves as a comprehensive resource for researchers and practitioners interested in understanding capabilities and potential of PIMs in addressing such complex optimization problems.
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来源期刊
Applied physics reviews
Applied physics reviews PHYSICS, APPLIED-
CiteScore
22.50
自引率
2.00%
发文量
113
审稿时长
2 months
期刊介绍: Applied Physics Reviews (APR) is a journal featuring articles on critical topics in experimental or theoretical research in applied physics and applications of physics to other scientific and engineering branches. The publication includes two main types of articles: Original Research: These articles report on high-quality, novel research studies that are of significant interest to the applied physics community. Reviews: Review articles in APR can either be authoritative and comprehensive assessments of established areas of applied physics or short, timely reviews of recent advances in established fields or emerging areas of applied physics.
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