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Application of Adaptive Generalized Morphological Filter in Disturbance Identification for Power System Signatures

机译:自适应广义形态学滤波器在电力系统签名中扰动识别中的应用

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By analyzing basic operations of mathematical morphology (MM) digital filter and the selection of a structuring element (SE), an adaptive generalized morphological filter is presented to fast suppress noise. This new algorithm of the filter has more advantages of simplicity, convenience and flexibility than the conventional ways and has a brighter future in practical application. The filter is cascaded by basic morphological transforms and their combination forms with the same weight value and applied in processing on-line monitoring power system signatures to guarantee the accuracy of further fault diagnosis by higher signal-to-noise. Results of simulation show that the adaptive generalized morphological filter can suppress different kinds of white noises and pulse noises, restore the general regularity of the data effectively, and has better performance compared with single operation of morphological filter and other filtering approaches.
机译:通过分析数学形态(MM)数字滤波器的基本操作和结构元件(SE)的选择,呈现自适应广义形态学滤波器以快速抑制噪声。这种滤波器的新算法比传统方式更简单,便利性和灵活性更多,在实际应用中具有更光明的未来。过滤器通过基本形态变换和它们的组合形式级联,其重量值相同,并应用于在线监测电力系统签名,以通过更高的信噪比来保证进一步故障诊断的准确性。仿真结果表明,自适应广义形态学滤波器可以抑制不同种类的白色噪音和脉冲噪声,有效地恢复数据的一般规律性,与形态过滤器的单一操作相比具有更好的性能和其他过滤方法。

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