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Noise-enhanced spatial-photonic Ising machine

Academic Article
Publication Date:
2020
abstract:
Ising machines are novel computing devices for the energy minimization of Ising models. These combinatorial optimization problems are of paramount importance for science and technology, but remain difficult to tackle on large scale by conventional electronics. Recently, various photonics-based Ising machines demonstrated fast computing of a Ising ground state by data processing through multiple temporal or spatial optical channels. Experimental noise acts as a detrimental effect in many of these devices. On the contrary, here we demonstrate that an optimal noise level enhances the performance of spatial-photonic Ising machines on frustrated spin problems. By controlling the error rate at the detection, we introduce a noisy-feedback mechanism in an Ising machine based on spatial light modulation. We investigate the device performance on systems with hundreds of individually-addressable spins with all-to-all couplings and we found an increased success probability at a specific noise level. The optimal noise amplitude depends on graph properties and size, thus indicating an additional tunable parameter helpful in exploring complex energy landscapes and in avoiding getting stuck in local minima. Our experimental results identify noise as a potentially valuable resource for optical computing. This concept, which also holds in different nanophotonic neural networks, may be crucial in developing novel hardware with optics-enabled parallel architecture for large-scale optimizations.
Iris type:
01.01 Articolo in rivista
Keywords:
Ising machines; optical computing; optimization problems; spatial light modulation
List of contributors:
Marcucci, Giulia; Pierangeli, Davide; Conti, Claudio
Authors of the University:
PIERANGELI DAVIDE
Handle:
https://iris.cnr.it/handle/20.500.14243/380407
Published in:
NANOPHOTONICS (BERLIN. INTERNET)
Journal
  • Overview

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URL

https://www.degruyter.com/document/doi/10.1515/nanoph-2020-0119/html
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