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Design and electrical simulation of on-chip neural learning based on nanocomponents

机译:基于纳米成分的片上神经学习的设计与电气仿真

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摘要

A neural inspired lookup table for reconfigurable circuits is described and simulated. The design is based on conductive bridge RAM to implement the synapses and carbon nanotube field effect transistors (CNTFET) for the other parts. Electrical simulations demonstrate compatibility between the nanocomponents and show the successful training of a linearly separable logical function NOR3.
机译:描述并模拟了可重配置电路的神经启发式查找表。该设计基于导电桥RAM来实现突触和其他部分的碳纳米管场效应晶体管(CNTFET)。电气仿真证明了纳米组分之间的相容性,并展示了线性可分离逻辑函数NOR3的成功训练。

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