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Design of router for spiking neural networks

机译:尖峰神经网络路由器的设计

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The development of large-scale networks with artificial neurons and adaptive synapses has suggested new avenues of exploration for brain-like cognitive computing. Spiking neural networks (SNNs), highly inspired from natural computing in the brain and recent advances in neurosciences, are often referred to as the 3th generation of neural network, and become a new research hotspot in the era of artificial intelligence. SNN architecture supports simpler category of biologically-inspired neuron models and more complex large-scale interconnection in on-chip network of neurosynaptic cores. This paper introduces the design of router used in a spiking neural network, which is able to send and receive spiking information in network properly, as well as perfectly dealing with network anomaly such as data race or traffic congestion. This router is designed for the network at a scale of 64 * 64 neurosynaptic cores at the most, with 256 neurons in each cores. Both the area and estimated power consumption is acceptable. This router could also be applied to larger scale of SNN architecture networks effectively.
机译:具有人工神经元和自适应突触的大规模网络的发展为探索类似脑的认知计算提供了新的探索途径。尖峰神经网络(SNN)受大脑自然计算和神经科学最新进展的启发,通常被称为神经网络的第三代,成为该时代的新研究热点。人工智能。 SNN架构在神经突触核心的片上网络中支持生物学上启发的神经元模型的更简单类别和更复杂的大规模互连。本文介绍了用于尖峰神经网络的路由器的设计,该路由器能够正确地在网络中发送和接收尖峰信息,并且能够完美地处理诸如数据争用或流量拥塞之类的网络异常。该路由器是为网络设计的,最大规模为64 * 64个神经突触核心,每个核心具有256个神经元。面积和估计的功耗都可以接受。该路由器还可以有效地应用于更大规模的SNN体系结构网络。

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