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Combined Power Quality Disturbances Recognition Using Wavelet Packet Entropies and S-Transform

机译:小波包熵和S变换相结合的电能质量扰动识别

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Aiming at the combined power quality +disturbance recognition, an automated recognition method based on wavelet packet entropy (WPE) and modified incomplete S-transform (MIST) is proposed in this paper. By combining wavelet packet Tsallis singular entropy, energy entropy and MIST, a 13-dimension vector of different power quality (PQ) disturbances including single disturbances and combined disturbances is extracted. Then, a ruled decision tree is designed to recognize the combined disturbances. The proposed method is tested and evaluated using a large number of simulated PQ disturbances and some real-life signals, which include voltage sag, swell, interruption, oscillation transient, impulsive transient, harmonics, voltage fluctuation and their combinations. In addition, the comparison of the proposed recognition approach with some existing techniques is made. The experimental results show that the proposed method can effectively recognize the single and combined PQ disturbances.
机译:针对电能质量+干扰识别的组合问题,提出了一种基于小波包熵(WPE)和改进的不完全S变换(MIST)的自动识别方法。通过结合小波包Tsallis奇异熵,能量熵和MIST,提取出包括单个扰动和组合扰动的不同电能质量(PQ)扰动的13维矢量。然后,设计一个规则决策树来识别组合的干扰。使用大量模拟的PQ扰动和一些实际信号来测试和评估该方法,这些信号包括电压骤降,骤升,中断,振荡瞬变,脉冲瞬变,谐波,电压波动及其组合。另外,将提出的识别方法与一些现有技术进行了比较。实验结果表明,该方法可以有效识别单个和组合的PQ干扰。

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  • 来源
    《Entropy》 |2015年第8期|共18页
  • 作者

    Zhigang Liu;

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  • 中图分类 生理学;
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