Neurosynaptic Computational Elements for Adaptive Transient Synchrony: Biophysical Accuracy versus Hardware Complexity

A. Zjajo
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Abstract

In this paper, we examine electro-chemically accurate, multi-compartment, neurosynaptic computational elements, and analyze their complexity, accuracy, and flexibility in signal processing of a time-varying task. We evaluate distributed patterns of simultaneously firing neurons in space and time, and we establish a transient synchrony and homeostatic regulation mechanism upon the underlying synaptic connectivity. With synchronic spiking, we form synchronous groups of neuronal subpopulations, which represent content forming a coherent entity. The neurosynaptic computational elements implemented on Xilinx Virtex 7 XC7VX550 FPGA board illustrate feasibility of the methodology.
自适应瞬态同步的神经突触计算元素:生物物理精度与硬件复杂性
在本文中,我们研究了电化学精确,多室,神经突触计算元素,并分析了它们在时变任务信号处理中的复杂性,准确性和灵活性。我们评估了同时放电的神经元在空间和时间上的分布模式,并在潜在的突触连通性上建立了瞬时同步和稳态调节机制。通过同步尖峰,我们形成了同步的神经元亚群,它们代表了形成一个连贯实体的内容。神经突触计算单元在Xilinx Virtex 7 XC7VX550 FPGA板上的实现说明了该方法的可行性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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