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Research on classification of partial discharge of switchgear cabinets based on a novel association rule algorithm

机译:基于新型关联规则算法的开关柜局部排放分类研究

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In order to assess switchgear insulation status, a novel association rule mining (ARM) algorithm is presented. It is used to recognize the severity of switchgear cabinet partial discharge. The algorithm uses fuzzy C-means clustering (FCM) to divide partial discharge feature interval, candidate sets meeting minimum support and minimum confidence are sought based on an improved Apriori algorithm. Multiple recursions and scans are performed on candidate sets to generate association rules library for classification. Fuzzy reasoning based on association rules are performed over multiple needle corona partial discharge signals sampled in 10KV switchgear cabinets. The results show that partial discharge classification rate using association rules is high and classification conclusions are accurate. It has provided theoretical basis and practical value for insulation status assessment of switchgear cabinets.
机译:为了评估开关设备绝缘状态,提出了一种新颖的关联规则挖掘(ARM)算法。它用于识别开关设备柜局部放电的严重程度。该算法使用模糊C-Means聚类(FCM)来划分局部放电特征间隔,基于改进的APRiori算法寻求满足最小支持和最小置信度的候选集。对候选集执行多次递归和扫描以生成用于分类的关联规则库。基于关联规则的模糊推理在10kV开关柜中采样的多针电晕局部放电信号进行。结果表明,使用关联规则的局部放电分类率高,分类结论是准确的。它为开关柜的绝缘状态评估提供了理论依据和实用价值。

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