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首页> 外文期刊>IEEE transactions on biomedical circuits and systems >Charge-Redistribution Based Quadratic Operators for Neural Feature Extraction
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Charge-Redistribution Based Quadratic Operators for Neural Feature Extraction

机译:基于电荷再分配的神经特征提取的二次运营商

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This paper presents a SAR converter based mixed-signal multiplier for the feature extraction of neural signals using quadratic operators. After a thorough analysis of design principles and circuit-level aspects, the proposed architecture is explored for the implementation of two quadratic operators often used for the characterization of neural activity, the moving average energy (MAE) operator and the nonlinear energy operator (NEO). Programmable chips for both operators have been implemented in a HV-180 nm CMOS process. Experimental results confirm their suitability for energy computation and action potential detection and the accomplished areaxpower performance is compared to prior art. The MAE and NEO prototypes, at a sampling rate of 30kS/s, consume 116 nW and 178 nW, respectively, and digitize both the input neural signal and the operator outcome, with no need for digital multipliers.
机译:本文介绍了基于SAR转换器的混合信号倍增器,用于使用二次操作员提取神经信号的特征提取。在对设计原则和电路级方面进行彻底分析之后,探索了拟议的架构,用于实现两个二次操作员通常用于表征神经活动,移动平均能量(MAE)操作员和非线性能量运算符(NEO) 。两个运算符的可编程芯片已在HV-180 NM CMOS过程中实现。实验结果证实了它们适合能源计算和动作潜在检测,并且与现有技术进行比较了完成的面积表现。 MAE和Neo原型,分别以30kS / s的采样率,消耗116 NW和178 NW,并向输入神经信号和操作员结果进行数字化,无需数字乘法器。

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