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Adaptive detection and classificaion system for power quality disturbances

机译:电能质量扰动的自适应检测与分类系统

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摘要

This paper describes an intelligent measurement system for Power Quality (PQ) assessment. Computational guts are based in Higher Order Statistics (HOS) and the intelligent decision system is based in the Case-Base Reasoning (CBR) paradigm, which could re-configure its parameter according to the power net conditions. The power signal characterization is done using a sliding window procedure, and calculating the variance, the skewness and the kurtosis over the points inside the window. Those values are introduced in the CBR system and the signal state is returned. If the signal is healthy, the system study the current HOS values for substitute the normal considerations of the CBR system. This procedure returns a precision over the 90 %.
机译:本文介绍了一种用于电能质量(PQ)评估的智能测量系统。计算胆量基于高阶统计(HOS),而智能决策系统则基于基于案例的推理(CBR)范式,该范式可以根据电网条件重新配置其参数。使用滑动窗口过程完成功率信号的表征,并计算窗口内部各点的方差,偏度和峰度。这些值被引入CBR系统,并返回信号状态。如果信号是健康的,则系统将研究当前的HOS值,以替代CBR系统的正常注意事项。此过程返回的精度超过90%。

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