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An accelerated analog neuromorphic hardware system emulating NMDA- and calcium-based non-linear dendrites

机译:模拟NMDA和钙基非线性树突的加速模拟神经形态硬件系统

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This paper presents an extension of the BrainScaleS accelerated analog neuromorphic hardware model. The scalable neuromorphic architecture is extended by the support for multi-compartment models and non-linear dendrites. These features are part of a 65 nm prototype Application Specific Integrated Circuit (ASIC). It allows to emulate different spike types observed in cortical pyramidal neurons: NMDA plateau potentials, calcium and sodium spikes. By replicating some of the structures of these cells, they can be configured to perform coincidence detection within a single neuron. Built-in plasticity mechanisms can modify not only the synaptic weights, but also the dendritic synaptic composition to efficiently train large multi-compartment neurons. Transistor-level simulations demonstrate the functionality of the analog implementation and illustrate analogies to biological measurements.
机译:本文介绍了BrainScaleS加速模拟神经形态硬件模型的扩展。可扩展的神经形态架构通过对多隔室模型和非线性树突的支持而得到扩展。这些功能是65 nm原型专用集成电路(ASIC)的一部分。它可以模拟在皮层锥体神经元中观察到的不同尖峰类型:NMDA平台电位,钙和钠尖峰。通过复制这些细胞的某些结构,可以将它们配置为在单个神经元内执行符合检测。内置的可塑性机制不仅可以修改突触权重,还可以修改树突突触组成,以有效地训练大型的多室神经元。晶体管级仿真演示了模拟实现的功能,并说明了与生物测量的类比。

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