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Coherent Ising machines: Quantum optics and neural network Perspectives

机译:连贯的ising机:量子光学和神经网络的观点

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A coherent Ising machine (CIM) is a network of optical parametric oscillators (OPOs), in which the "strongest" collective mode of oscillation at well above threshold corresponds to an optimum solution of a given Ising problem. When a pump rate or network coupling rate is increased from below to above threshold, however, the eigenvectors with the smallest eigenvalue of the Ising coupling matrix [J_(ij)] appear near threshold and impede the machine to relax to true ground states. Two complementary approaches to attack this problem are described here. One approach is to utilize the squeezed/anti-squeezed vacuum noise of OPOs below threshold to produce coherent spreading over numerous local minima via quantum noise correlation, which could enable the machine to access either true ground states or excited states with eigen-energies close enough to that of ground states above threshold. The other approach is to implement a real-time error correction feedback loop so that the machine migrates from one local minimum to another during an explorative search for ground states. Finally, a set of qualitative analogies connecting the CIM and traditional computer science techniques are pointed out. In particular, belief propagation and survey propagation used in combinatorial optimization are touched upon.
机译:相干的ising机器(CIM)是光学参数振荡器(OPOS)的网络,其中高于阈值的“最强”集体的振荡模式对应于给定的考虑问题的最佳解决方案。然而,当泵速或网络耦合速率从低于上述阈值增加时,具有insing耦合矩阵的最小特征值的特征向量[J_(IJ)]出现在阈值附近,并且妨碍机器放松真正的地面状态。这里描述了两个攻击这个问题的互补方法。一种方法是利用低于阈值的OPO的挤压/抗挤压真空噪声,以产生通过量子噪声相关性的众多局部最小值的相干散布,这可以使机器能够使用足够的eigen-perenties访问真正的地面状态或激发态到基于阈值的地位。另一种方法是实现实时纠错反馈回路,使得在对地面级别的探索性搜索期间,机器在探索性搜索期间从一个本地最小值迁移到另一个。最后,指出了一系列连接CIM和传统计算机科学技术的定性类比。特别地,触及了组合优化中使用的信念传播和调查传播。

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  • 来源
    《Applied Physics Letters》 |2020年第16期|160501.1-160501.14|共14页
  • 作者单位

    Physics and Informatics Laboratories NTT Research Inc. 1950 University Ave. #600 East Palo Alto California 94303 USA;

    Institute of Industrial Science The University of Tokyo 4-6-1 Komaba Meguro-ku Tokyo 153-8505 Japan International Research Center for Neurointelligence The University of Tokyo 7-3-1 Hongo Bunkyo-ku Tokyo 113-0033 Japan;

    Department of Applied Physics Stanford University Stanford California 94305 USA;

    Department of Applied Physics Stanford University Stanford California 94305 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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