Heuristic recurrent algorithms for photonic Ising machines

The inability of conventional electronic architectures to efficiently solve large combinatorial problems motivates the development of novel computational hardware. There has been much effort toward developing application-specific hardware across many different fields of engineering, such as integrat...

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Published inNature communications Vol. 11; no. 1; p. 249
Main Authors Roques-Carmes, Charles, Shen, Yichen, Zanoci, Cristian, Prabhu, Mihika, Atieh, Fadi, Jing, Li, Dubček, Tena, Mao, Chenkai, Johnson, Miles R, Čeperić, Vladimir, Joannopoulos, John D, Englund, Dirk, Soljačić, Marin
Format Journal Article
LanguageEnglish
Published England Nature Publishing Group 14.01.2020
Nature Publishing Group UK
Nature Portfolio
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Summary:The inability of conventional electronic architectures to efficiently solve large combinatorial problems motivates the development of novel computational hardware. There has been much effort toward developing application-specific hardware across many different fields of engineering, such as integrated circuits, memristors, and photonics. However, unleashing the potential of such architectures requires the development of algorithms which optimally exploit their fundamental properties. Here, we present the Photonic Recurrent Ising Sampler (PRIS), a heuristic method tailored for parallel architectures allowing fast and efficient sampling from distributions of arbitrary Ising problems. Since the PRIS relies on vector-to-fixed matrix multiplications, we suggest the implementation of the PRIS in photonic parallel networks, which realize these operations at an unprecedented speed. The PRIS provides sample solutions to the ground state of Ising models, by converging in probability to their associated Gibbs distribution. The PRIS also relies on intrinsic dynamic noise and eigenvalue dropout to find ground states more efficiently. Our work suggests speedups in heuristic methods via photonic implementations of the PRIS.
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ISSN:2041-1723
2041-1723
DOI:10.1038/s41467-019-14096-z