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基于粗糙集理论的配电网故障诊断规则提取方法(英文)
引用本文:周永勇,周湶,刘佳宾.基于粗糙集理论的配电网故障诊断规则提取方法(英文)[J].高电压技术,2008,34(12):2713-2718.
作者姓名:周永勇  周湶  刘佳宾
作者单位:State Key Laboratory of Power Transmission Equipment & System Security and New Technology,Chongqing University;Qinan Power Supply Bureau
基金项目:Project Supported by National Natural Science Foundation of China(50607023);Natural Science Foundation of CQ CSTC(2006BB2189)
摘    要:As the first step of service restoration of distribution system,rapid fault diagnosis is a significant task for reducing power outage time,decreasing outage loss,and subsequently improving service reliability and safety.This paper analyzes a fault diagnosis approach by using rough set theory in which how to reduce decision table of data set is a main calculation intensive task.Aiming at this reduction problem,a heuristic reduction algorithm based on attribution length and frequency is proposed.At the same time,the corresponding value reduction method is proposed in order to fulfill the reduction and diagnosis rules extraction.Meanwhile,a Euclid matching method is introduced to solve confliction problems among the extracted rules when some information is lacking.Principal of the whole algorithm is clear and diagnostic rules distilled from the reduction are concise.Moreover,it needs less calculation towards specific discernibility matrix,and thus avoids the corresponding NP hard problem.The whole process is realized by MATLAB programming.A simulation example shows that the method has a fast calculation speed,and the extracted rules can reflect the characteristic of fault with a concise form.The rule database,formed by different reduction of decision table,can diagnose single fault and multi-faults efficiently,and give satisfied results even when the existed information is incomplete.The proposed method has good error-tolerate capability and the potential for on-line fault diagnosis.

关 键 词:fault  diagnosis  distribution  system  reduction  algorithm  rule  extraction  rule  matching  rough  set  theory

Rough Set Theory Based Approach for Fault Diagnosis Rule Extraction of Distribution System
ZHOU Yong-yong,ZHOU Quan,LIU Jia-bin.Rough Set Theory Based Approach for Fault Diagnosis Rule Extraction of Distribution System[J].High Voltage Engineering,2008,34(12):2713-2718.
Authors:ZHOU Yong-yong  ZHOU Quan  LIU Jia-bin
Affiliation:1,2,LIU Yu-ming1,REN Hai-jun1,SUN Cai-xin1,LIU Xu1,3(1.State Key Laboratory of Power Transmission Equipment & System Security and New Technology,Chongqing University,Chongqing 400044,China;2.Qinan Power Supply Bureau,Chongqing 400800,China;3.Dazhou Power Corporation,Dazhou 635000,China)
Abstract:As the first step of service restoration of distribution system, rapid fault diagnosis is a significant task for reducing power outage time, decreasing outage loss, and subsequently improving service reliability and safety. This paper analyzes a fault diagnosis approach by using rough set theory in which how to reduce decision table of data set is a main calculation intensive task. Aiming at this reduction problem, a heuristic reduction algorithm based on attribution length and frequency is proposed. At the same time, the corresponding value reduction method is proposed in order to fulfill the reduction and diagnosis rules extraction. Meanwhile, a Euclid matching method is introduced to solve confliction problems among the extracted rules when some information is lacking. Principal of the whole algorithm is clear and diagnostic rules distilled from the reduction are concise. Moreover, it needs less calculation towards specific discernibility matrix, and thus avoids the corresponding NP hard problem. The whole process is realized by MATLAB programming. A simulation example shows that the method has a fast calculation speed, and the extracted rules can reflect the characteristic of fault with a concise form. The rule database, formed by different reduction of decision table, can diagnose single fault and multi-faults efficiently, and give satisfied results even when the existed information is incomplete. The proposed method has good error-tolerate capability and the potential for on-line fault diagnosis.
Keywords:fault diagnosis  distribution system  reduction algorithm  rule extraction  rule matching  rough set theory
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