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Spike-based time-domain weighted-sum calculation using nanodevices for low power operation

机译:基于尖峰的时域加权和计算,使用纳米器件进行低功耗操作

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This paper introduces a time-domain weighted-sum calculation operation based on a spiking neuron model, and discusses a resistance-capacitance circuit that performs a calculation operation assumed to be realized in CMOS VLSI technology. A nanodevice that executes this calculation is also presented. The calculation circuit is useful for extremely low power operation. This operation uses the rising slopes of post-synaptic potentials triggered by input spike pulses. In the time-domain calculation circuit, the energy dissipation is independent of the resistance, and only depends on the capacitance and voltages. However, the time constant, which is the product of the resistance and capacitance, should be relatively large to guarantee the calculation resolution, and therefore the resistance should be at the giga-ohms levels. The nanodevice consists of a nanodisk array connected with a fin field-effect transistor. Nanodisk arrays can be fabricated using a self-assembly bio-nano-template technique, and they act as resistors with resistance levels of several giga-ohms. A weighted sum can be achieved with an energy dissipation on the order of 1 fJ, with a number of inputs that can be more than 100. This amount of energy is several orders of magnitude lower than that of conventional digital processors.
机译:本文介绍了一种基于尖峰神经元模型的时域加权和计算操作,并讨论了一种电阻-电容电路,该电路可以执行假设在CMOS VLSI技术中实现的计算操作。还介绍了执行此计算的纳米设备。该计算电路对于极低功耗的工作非常有用。此操作使用由输入尖峰脉冲触发的突触后电位的上升斜率。在时域计算电路中,能量耗散与电阻无关,仅取决于电容和电压。但是,作为电阻和电容的乘积的时间常数应相对较大,以确保计算分辨率,因此,电阻应处于千兆欧姆的水平。纳米器件由与鳍式场效应晶体管相连的纳米磁盘阵列组成。可以使用自组装生物纳米模板技术来制造纳米磁盘阵列,并且它们可以用作具有几千兆欧姆电阻级别的电阻器。可以用大约1 fJ的能量耗散来实现加权总和,输入的数量可以超过100。该能量比传统的数字处理器要低几个数量级。

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