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用于通量子神经形态处理的超导无序神经网络。

Superconducting disordered neural networks for neuromorphic processing with fluxons.

作者信息

Goteti Uday S, Cai Han, LeFebvre Jay C, Cybart Shane A, Dynes Robert C

机构信息

Department of Physics, University of California, San Diego, CA 92093, USA.

Department of Electrical and Computer Engineering, University of California, Riverside, CA 92521, USA.

出版信息

Sci Adv. 2022 Apr 22;8(16):eabn4485. doi: 10.1126/sciadv.abn4485.

Abstract

In superconductors, magnetic fields are quantized into discrete fluxons (flux quanta Φ), made of microscopic circulating supercurrents. We introduce a multiterminal synapse network comprising a disordered array of superconducting loops with Josephson junctions. The loops can trap fluxons defining memory, while the junctions allow their movement between loops. Dynamics of fluxons through such a disordered system through a complex reconfigurable energy landscape represents brain-like spiking information flow. In this work, we experimentally demonstrate a three-loop network using YBaCuO-based superconducting loops and Josephson junctions, which exhibit stable memory configurations of trapped flux in loops that determine the rate of flow of fluxons through synaptic connections. The memory states are, in turn, affected by the applied input signals but can also be externally configured electrically through control current/feedback terminals. These results establish a previously unexplored, biologically similar architectural approach to neuromorphic computing that is scalable while dissipating energy of atto Joules/spike.

摘要

在超导体中,磁场被量子化为由微观循环超电流构成的离散磁通子(磁通量子Φ)。我们引入了一个多端突触网络,它由带有约瑟夫森结的超导环无序阵列组成。这些环可以捕获定义记忆的磁通子,而结则允许它们在环之间移动。磁通子通过这样一个无序系统的动力学过程,经由复杂的可重构能量景观,代表了类似大脑的尖峰信息流。在这项工作中,我们通过实验展示了一个使用基于YBaCuO的超导环和约瑟夫森结的三回路网络,该网络在环中表现出捕获磁通的稳定记忆配置,这些配置决定了磁通子通过突触连接的流动速率。记忆状态反过来会受到施加的输入信号的影响,但也可以通过控制电流/反馈端子进行外部电配置。这些结果建立了一种以前未被探索的、与生物类似的神经形态计算架构方法,该方法具有可扩展性,同时每个尖峰的能量耗散为阿托焦耳。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4cba/9032950/930838c8d71b/sciadv.abn4485-f1.jpg

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