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Understanding dynamics of coherent Ising machines through simulation of large-scale 2D Ising models

机译:通过大规模2D Ising模型的仿真了解相干Ising机器的动力学

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摘要

Many problems in mathematics, statistical mechanics, and computer science are computationally hard but can often be mapped onto a ground-state-search problem of the Ising model and approximately solved by artificial spin-networks of coupled degenerate optical parametric oscillators (DOPOs) in coherent Ising machines. To better understand their working principle and optimize their performance, we analyze the dynamics during the ground state search of 2D Ising models with up to 1936 mutually coupled DOPOs. For regular as well as frustrated and disordered 2D lattices, the machine finds the correct solution within just a few milliseconds. We determine that calculation performance is limited by freeze-out effects and can be improved by controlling the DOPO dynamics, which allows to optimize performance of coherent Ising machines in various tasks. Comparisons with Monte Carlo simulations reveal that coherent Ising machines behave like low temperature spin systems, thus making them suitable for optimization tasks.
机译:数学,统计力学和计算机科学中的许多问题在计算上都很困难,但通常可以映射到Ising模型的基态搜索问题,并且可以通过相干的耦合简并光学参量振荡器(DOPO)的人工自旋网络来近似解决伊辛机。为了更好地了解它们的工作原理并优化其性能,我们分析了具有多达1936个相互耦合的DOPO的2D Ising模型的基态搜索过程中的动力学。对于规则以及受挫和无序的2D晶格,机器会在几毫秒内找到正确的解决方案。我们确定计算性能受冻结效应的限制,并且可以通过控制DOPO动态来提高,这可以优化相干Ising机器在各种任务中的性能。与Monte Carlo仿真的比较表明,相干的Ising机器的行为类似于低温自旋系统,因此使其适合于优化任务。

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