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Specifications of Nanoscale Devices and Circuits for Neuromorphic Computational Systems

机译:用于神经形态计算系统的纳米级设备和电路的规范

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The goal of neuromorphic engineering is to build electronic systems that mimic the ability of the brain to perform fuzzy, fault-tolerant, and stochastic computation, without sacrificing either its space or power efficiency. In this paper, we determine the operating characteristics of novel nanoscale devices that could be used to fabricate such systems. We also compare the performance metrics of a million neuron learning system based on these nanoscale devices with an equivalent implementation that is entirely based on end-of-scaling digital CMOS technology and determine the technology targets to be satisfied by these new devices. We show that neuromorphic systems based on new nanoscale devices can potentially improve density and power consumption by at least a factor of 10, as compared with conventional CMOS implementations.
机译:神经形态工程学的目标是建立模仿大脑执行模糊,容错和随机计算的能力的电子系统,而不牺牲其空间或功效。在本文中,我们确定了可用于制造此类系统的新型纳米器件的工作特性。我们还将基于这些纳米级设备的百万个神经元学习系统的性能指标与完全基于规模化数字CMOS技术的等效实现方案进行比较,并确定这些新设备要满足的技术目标。我们显示,与传统的CMOS实施相比,基于新的纳米级设备的神经形态系统可以潜在地将密度和功耗提高至少10倍。

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