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Mismatch reduction through dendritic nonlinearities in a 2D silicon dendritic neuron array

机译:通过二维硅树突状神经元阵列中的树突状非线性减少失配

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This paper describes a novel 2D programmable dendritic neuron array consisting of a 3×32 dendritic compartment array and a 1×32 somatic compartment array. Each dendritic compartment contains two types of regenerative nonlinearities: an NMDA nonlinearity and a dendritic spike nonlinearity. The chip supports the programmability of local synaptic weights and the configuration of dendritic morphology for individual neurons through the address-event representation protocol. With a novel local cable circuit between neighboring compartments, different dendritic morphologies can be constructed. From results measured on a chip fabricated in a 4-metal, 2-poly, 0.35µm CMOS technology, we show one instance of how dendritic nonlinearities can contribute to neuronal computation: the dendritic spike mechanism dynamically reduces the mismatch-induced coefficient of variation of the somatic response amplitude from approximately 40% to 3.5%.
机译:本文介绍了由3×32树枝状隔室阵列组成的新型2D可编程树突内部阵列和1×32体室室阵列。每个树突腔含有两种类型的再生非线性:NMDA非线性和树突状尖峰非线性。通过地址事件表示协议,该芯片支持局部突触权重的可编程性和各个神经元的树突形态的配置。通过相邻隔室之间的新型局部电缆电路,可以构建不同的树突形态。从测量的结果测量,在4金属,2-poly,0.35μmCMOS技术中制造的芯片上,我们展示了树枝状非线性如何促成神经元计算的一个例子:树突尖峰机制动态降低了不匹配诱导的变异系数体细胞反应幅度从大约40%到3.5%。

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