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首页> 外文期刊>Journal of Computational Electronics >Design of bioinspired tripartite synapse analog integrated circuit in 65-nm CMOS Technology
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Design of bioinspired tripartite synapse analog integrated circuit in 65-nm CMOS Technology

机译:65-NM CMOS技术设计Bioinspired三方突触模拟集成电路

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This paper presents the design of a bioinspired synaptic integrated circuit, which takes into account the interactions of astro-cyte in a tripartite synapse. These interactions result in activation of Ca~(2+) ion waves through fast and slow activation pathways which affect the synapse and postsynaptic neuron. The circuit has been implemented in TSMC 65-nm CMOS technology with 1.2 V supply voltage. Dynamic and nonlinear characteristics of the interactions have been implemented based on nonlinear characteristics of field effect transistors and few external capacitors. This design used few components from previous works, including ML neuron and Ca~(2+) circuit. All components are scaled to 65 nm and implemented in weak inversion operating region. Simulation results confirm that the proposed circuit demonstrates the functionality of physical model with acceptable relative mean square error and low power consumption of about 37 nW. The effects of supply voltage sensitivity, variability of threshold voltage and noise on the Ca~(2+) circuit have been studied. Circuit layout for main components including presyn-aptic neuron, postsynaptic neuron and the synapse has been prepared, with the area of 80 μm~2. Post-layout simulation of the neuron with parasitics demonstrates the feasibility of the proposed model for fabrication. This circuit structure can be used for the study and demonstration of various functionalities associated with astrocyte including self-repair.
机译:本文介绍了生物悬浮突触集成电路的设计,这考虑了Astro-Cyte在三方突触中的相互作用。这些相互作用导致通过快速和缓慢的激活途径激活Ca〜(2+)离子波,其影响突触和后腹膜神经元。该电路已在TSMC 65-NM CMOS技术中实现,具有1.2 V电源电压。基于场效应晶体管和少量外部电容器的非线性特性来实现相互作用的动态和非线性特性。该设计使用了以前作品的少量组件,包括ML神经元和CA〜(2+)电路。所有组件都缩放到65nm,并在弱反转操作区域中实现。仿真结果证实,所提出的电路展示了物理模型的功能,具有可接受的相对平均方误差和约37 nW的低功耗。研究了电源电压灵敏度,阈值电压变化和CA〜(2+)电路上的噪声的影响。主要成分的电路布局包括PRENYN-APTIC神经元,后腹膜神经元和突触的主要成分,面积为80μm〜2。与寄生剂的神经元后布局模拟表明了所提出的制造模型的可行性。该电路结构可用于研究和演示与星形胶质细胞相关的各种功能,包括自我修复。

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