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Simulation of a Spiking Neuron Circuit Using Carbon Nanotube Transistors

机译:使用碳纳米管晶体管仿真尖峰神经元电路

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Neuromorphic engineering is related to the existing analogies between the physical semiconductor VLSI (Very Large Scale Integration) and biophysics. Neuromorphic systems propose to reproduce the structure and function of biological neural systems for transferring their calculation capacity on silicon. Since the innovative research of Carver Mead, the neuromorphic engineering continues to emerge remarkable implementation of biological system. This work presents a simulation of an elementary neuron cell with a carbon nanotube transistor (CNTFET) based technology. The model of the cell neuron which was simulated is called integrate and fire (I&F) model firstly introduced by G. Indiveri in 2009. This circuit has been simulated with CNTFET technology using ADS environment to verify the neuromorphic activities in terms of membrane potential. This work has demonstrated the efficiency of this emergent device; i.e CNTFET on the design of such architecture in terms of power consumption and technology integration density.
机译:神经形态工程与物理半导体VLSI(非常大规模集成)和生物物理学之间的现有类比有关。神经形态系统建议再现生物神经系统的结构和功能,以在硅上转移它们的计算能力。自雕刻米德的创新研究以来,神经形态工程继续出现卓越的生物系统实施。该工作介绍了具有基于碳纳米管晶体管(CNTFET)技术的基本神经元细胞的模拟。模拟的细胞神经元的模型被称为2009年G.Indiveriiveriveriveriiveriveriver的集成和火(I&F)模型。通过使用ADS环境用CNTFET技术模拟了该电路,以验证膜电位方面的神经形态活动。这项工作表明了这种紧急装置的效率; I.E CNTFET在功耗和技术集成密度方面的这种架构设计。

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