Similarity measures in Small World Stratification for distribution fault diagnosis

Yixin Cai, M. Chow
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Abstract

Small World Stratification (SWS) is a sampling strategy aims to solve the problem of insufficient historical data for fault diagnosis in a small local region. SWS involves sampling relevant fault events by Geographic Aggregation (GA) and Feature Space Clustering (FSC), and identifying the group of fault events that should be investigated together. In order to apply FSC, proper measures of similarity among regions are needed. In this paper, we propose four types of regional feature vectors (RFV): normalized regional feature vectors (NRFV), relative regional feature vectors (RRFV), likelihood regional feature vectors (LRFV) and generalized regional feature vectors (GRFV), derived from the measures used to analyze distribution faults. Similarity measures based on the distance between RFVs are evaluated using fault events simulated by the Distribution Fault Simulator. Experimental results suggest that GRFV is the best among the four.
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分布故障诊断的小世界分层相似性测度
小世界分层(SWS)是一种采样策略,旨在解决小局部区域故障诊断中历史数据不足的问题。SWS通过地理聚合(GA)和特征空间聚类(FSC)对相关故障事件进行采样,识别出需要一起调查的故障事件组。为了应用FSC,需要对区域间的相似性进行适当的度量。本文提出了四种类型的区域特征向量(RFV):归一化区域特征向量(NRFV)、相对区域特征向量(RRFV)、似然区域特征向量(LRFV)和广义区域特征向量(GRFV)。利用分布故障模拟器模拟的故障事件,评估基于rfv之间距离的相似度量。实验结果表明,在这四种方法中,GRFV是最好的。
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