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Application of Huber-similarity measure on PD detection

机译:相似度测度在局部放电检测中的应用

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Extraction of Partial Discharges (PD) is a key step in diagnosis and evaluation of the power system equipment condition. In field testing, besides high frequency noise and disturbance, Power Frequency (P.F.) harmonics also couple with PD measurement sensors. In order to deal with both types of noises and disturbances, in this paper, a new PD signal extraction algorithm is presented, which is based on a combination of Huber Function, Discrete Cosine Transform (DCT), 1 l and 2 l norms. This new method, which is introduced as Huber Similarity Measure for Partial Discharge (HSMPD), was evaluated through experimental laboratory constructed PD models. Results show this proposed algorithm successfully extracted PD signals in the presence of baseline and high frequency noises and disturbances. HSMPD can be employed as a backbone in intelligent diagnosis systems for improving the accuracy of PD condition monitoring equipment.
机译:提取局部放电(PD)是诊断和评估电力系统设备状况的关键步骤。在现场测试中,除了高频噪声和干扰外,功率频率(P.F.)谐波还与PD测量传感器耦合。为了处理两种类型的噪声和干扰,本文提出了一种新的PD信号提取算法,该算法基于Huber函数,离散余弦变换(DCT),1 l和2 l范数的组合。通过实验实验室构建的PD模型对这种新方法(称为局部放电的Huber相似性测度(HSMPD))进行了评估。结果表明,该算法在存在基线和高频噪声及干扰的情况下成功提取了PD信号。 HSMPD可以用作智能诊断系统的骨干,以提高PD状态监测设备的准确性。

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