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基于空间光调制的大规模光子伊辛机

Large-Scale Photonic Ising Machine by Spatial Light Modulation.

作者信息

Pierangeli D, Marcucci G, Conti C

机构信息

Dipartimento di Fisica, Università di Roma "La Sapienza," P.le Aldo Moro 5, 00185 Rome, Italy.

Institute for Complex Systems, National Research Council (ISC-CNR), Via dei Taurini 19, 00185 Rome, Italy.

出版信息

Phys Rev Lett. 2019 May 31;122(21):213902. doi: 10.1103/PhysRevLett.122.213902.

Abstract

Quantum and classical physics can be used for mathematical computations that are hard to tackle by conventional electronics. Very recently, optical Ising machines have been demonstrated for computing the minima of spin Hamiltonians, paving the way to new ultrafast hardware for machine learning. However, the proposed systems are either tricky to scale or involve a limited number of spins. We design and experimentally demonstrate a large-scale optical Ising machine based on a simple setup with a spatial light modulator. By encoding the spin variables in a binary phase modulation of the field, we show that light propagation can be tailored to minimize an Ising Hamiltonian with spin couplings set by input amplitude modulation and a feedback scheme. We realize configurations with thousands of spins that settle in the ground state in a low-temperature ferromagneticlike phase with all-to-all and tunable pairwise interactions. Our results open the route to classical and quantum photonic Ising machines that exploit light spatial degrees of freedom for parallel processing of a vast number of spins with programmable couplings.

摘要

量子物理和经典物理可用于进行传统电子学难以处理的数学计算。最近,光学伊辛机已被证明可用于计算自旋哈密顿量的最小值,为新型超快机器学习硬件铺平了道路。然而,所提出的系统要么扩展起来很棘手,要么涉及的自旋数量有限。我们设计并通过实验展示了一种基于简单空间光调制器设置的大规模光学伊辛机。通过在场的二进制相位调制中对自旋变量进行编码,我们表明光传播可以通过输入幅度调制和反馈方案设置的自旋耦合来定制,以最小化伊辛哈密顿量。我们实现了具有数千个自旋的配置,这些自旋在具有全对全和可调成对相互作用的低温铁磁样相中处于基态。我们的结果为经典和量子光子伊辛机开辟了道路,这些机器利用光的空间自由度对大量具有可编程耦合的自旋进行并行处理。

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