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首页> 外文期刊>Journal of Computational Electronics >60 pW 20 μm size CMOS implementation of an actual soma membrane
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60 pW 20 μm size CMOS implementation of an actual soma membrane

机译:实际体膜的60 pW 20μm尺寸CMOS实现

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摘要

The article presents a 65 nm technology implementation of a low-power artificial spiking neuron intellectual property (IP) core. The concept of the circuit is based on modeling the mechanism of a perikaryon membrane and the propagation of the action potential in an axon. Nerve impulses are generated using a current-controlled oscillator. Thanks to this oscillator, the circuit is implemented exclusively using metal-oxide semiconductor transistors, with the omission of capacitors. The main advantage of the presented implementation is the possibility of implementing the IP-core using nanometer digital complementary metal-oxide semiconductor technologies with the possibility of placing it within a common substrate with a digital processor. The circuit operates in weak-inversion mode with a 0.3 V power supply and does not require additional polarization voltages. The maximum frequency of impulse generation equals 2.5 kHz. The paper describes two operating modes of the circuit: a cortical mode with power consumption of 60 pW and a processing mode with power consumption of 52.2 pW. The power reduction was obtained using a circuit structure in which the power supply current consumption is reduced with the moment the circuit starts processing. The article also contains results of a process-voltage-temperature analysis.
机译:本文介绍了低功耗人工脉冲神经元知识产权(IP)内核的65 nm技术实现。电路的概念基于对核周膜的机制和轴突中动作电位的传播进行建模的基础。使用电流控制振荡器产生神经脉冲。得益于该振荡器,该电路仅使用金属氧化物半导体晶体管实​​现,并省去了电容器。所提出的实现方式的主要优点是可以使用纳米数字互补金属氧化物半导体技术来实现IP核,并且可以将其与数字处理器一起放置在同一块基板上。该电路采用0.3 V电源在弱反相模式下工作,不需要额外的极化电压。脉冲产生的最大频率等于2.5 kHz。本文描述了电路的两种工作模式:功耗为60 pW的皮质模式和功耗为52.2 pW的处理模式。使用电路结构获得功率降低,其中随着电路开始处理,电源电流消耗降低。本文还包含了过程电压-温度分析的结果。

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