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首页> 外文期刊>Instrumentation and Measurement, IEEE Transactions on >Hierarchical Extreme Learning Machine-Polynomial Based Low Valued Capacitance Measurement Using Frequency Synthesizer–Vector Voltmeter
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Hierarchical Extreme Learning Machine-Polynomial Based Low Valued Capacitance Measurement Using Frequency Synthesizer–Vector Voltmeter

机译:分层极限学习机多项式基于低频率电容的频率合成器-矢量电压表测量

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摘要

This present paper describes the development of a capacitance measurement system in the picofarad region. The system uses an universal serial bus port-based arrangement in conjunction with an indigenously developed Programmable Intelligent Computer microcontroller-based frequency synthesizer-vector voltmeter that can be used to measure the voltage in vector form and the capacitance can be determined using circuit solution technique. An intelligent two-layered, hierarchical reinforcement-based instrumentation scheme is proposed that can be integrated along with the original measurements to significantly improve the system performance. In layer 1, an extreme learning machine-based supervised phase reinforcement scheme is employed to improve the accuracy of the voltage measurement. Subsequently, in layer 2, local polynomial-based reinforcements are employed to improve both the resistive and reactive part measurements in the unknown capacitance. Three variants of ELM-based reinforcements are implemented for capacitance measurements in the range 100–10 000 pF and the utility of the hybrid ELM-polynomial-based reinforcements for such measurements is aptly demonstrated.
机译:本文介绍了微微法拉区域中电容测量系统的开发。该系统使用基于通用串行总线端口的配置,再结合本地开发的基于可编程智能计算机微控制器的频率合成器-矢量电压表,可用于测量矢量形式的电压,并且可使用电路解决方案技术确定电容。提出了一种智能的两层,基于分层增强的仪器仪表方案,该方案可以与原始测量结果集成在一起,以显着提高系统性能。在第1层中,采用了一种基于极限学习机的监督相增强方案来提高电压测量的准确性。随后,在第2层中,采用基于局部多项式的增强来改进未知电容中的电阻和电抗部分测量。实施了三种ELM增强材料的变体,用于100–10000 pF范围内的电容测量,并恰当地证明了混合ELM多项式增强材料在此类测量中的实用性。

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