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Performance Improvement of Power Quality Disturbance Classification Based on a New Denoising Technique

机译:基于新去噪技术的电能质量扰动分类性能改进

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Identification, localization and classification of power quality disturbance is the precondition of appropriate mitigation actions that can be taken. However, the signal under investigation is often corrupted by noises, especially the ones with high frequency signal produced by EMI. A new de-noising method is proposed to improve the classification performance for power quality disturbance. The proposed method first estimate the threshold of different decomposition level of wavelet transform for power frequency sinusoidal signal contained the noises. Secondly, each detailed coefficient of decomposition level of wavelet transform thresholded by the stored threshold value before. Wavelet transform and Parseval’s theorem are used to extract the feature of the modified signal at different resolution levels. The extracted features can be characteristic of the disturbances by choosing the nice threshold value, so as to enhance the correct classification rate of power quality disturbance polluted by noises.
机译:电能质量扰动的识别,定位和分类是采取适当的缓解措施的前提。但是,被调查的信号通常会被噪声破坏,尤其是那些由EMI产生的高频信号。提出了一种新的去噪方法,以提高电能质量扰动的分类性能。对于包含噪声的工频正弦信号,该方法首先估计了小波变换不同分解水平的阈值。其次,将小波变换的分解水平的每个详细分解系数以之前存储的阈值作为阈值。小波变换和Parseval定理用于提取不同分辨率级别的修改信号的特征。通过选择合适的阈值,可以将提取的特征作为干扰的特征,从而提高被噪声污染的电能质量干扰的正确分类率。

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