A Novel Intuitionistic Fuzzy Inhibitor Arc Petri Net With Error Back Propagation Algorithm and Application in Fault Diagnosis

The setting and adjustment of the weight parameters in the traditional fault diagnosis method depend entirely on personal experience, and the parameter setting lacks regularity. To reduce the fault diagnosis errors caused by human subjective factors and improve the speed and accuracy of power grid f...

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Main Authors: Mingyue Tan, Jiming Li, Guangyuan Xu, Xuezhen Cheng
Format: Article
Language:English
Published: IEEE 2019-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/8805365/
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spelling doaj-3f9749fec8044e6eab363216e6a365e72021-03-30T00:23:11ZengIEEEIEEE Access2169-35362019-01-01711597811598810.1109/ACCESS.2019.29362128805365A Novel Intuitionistic Fuzzy Inhibitor Arc Petri Net With Error Back Propagation Algorithm and Application in Fault DiagnosisMingyue Tan0https://orcid.org/0000-0002-0687-3123Jiming Li1Guangyuan Xu2Xuezhen Cheng3Department of Electrical Engineering and Automation, Shandong University of Science and Technology, Qingdao, ChinaDepartment of Electrical Engineering and Automation, Shandong University of Science and Technology, Qingdao, ChinaDepartment of Electrical Engineering and Automation, Shandong University of Science and Technology, Qingdao, ChinaDepartment of Electrical Engineering and Automation, Shandong University of Science and Technology, Qingdao, ChinaThe setting and adjustment of the weight parameters in the traditional fault diagnosis method depend entirely on personal experience, and the parameter setting lacks regularity. To reduce the fault diagnosis errors caused by human subjective factors and improve the speed and accuracy of power grid fault diagnosis, we propose a method for power grid fault diagnosis using intuitionistic fuzzy inhibitor arc Petri net (IFIAPN) with error back propagation (BP) algorithm. Firstly, according to the network topology analysis and relay protection configuration setting rules, the inhibitor arc (IA) tuple is introduced into the model structure of the intuitionistic fuzzy Petri net to reduce the ambiguity of protection and circuit breaker action. Then, the weight parameters in the model are trained using a BP neural network algorithm to enhance the objectivity of the parameters. Finally, a simulation of an IEEE-39 node system and a real case study using the Hou-zhong line local grid were used to verify the effectiveness of the fault diagnosis method. The results show that the method can effectively deal with the refusal and mis-operation of multiple circuit breakers and improve the diagnostic efficiency under complex data environment.https://ieeexplore.ieee.org/document/8805365/Intuitionistic fuzzy setinhibitor arc Petri netBP algorithmgrid fault diagnosis
collection DOAJ
language English
format Article
sources DOAJ
author Mingyue Tan
Jiming Li
Guangyuan Xu
Xuezhen Cheng
spellingShingle Mingyue Tan
Jiming Li
Guangyuan Xu
Xuezhen Cheng
A Novel Intuitionistic Fuzzy Inhibitor Arc Petri Net With Error Back Propagation Algorithm and Application in Fault Diagnosis
IEEE Access
Intuitionistic fuzzy set
inhibitor arc Petri net
BP algorithm
grid fault diagnosis
author_facet Mingyue Tan
Jiming Li
Guangyuan Xu
Xuezhen Cheng
author_sort Mingyue Tan
title A Novel Intuitionistic Fuzzy Inhibitor Arc Petri Net With Error Back Propagation Algorithm and Application in Fault Diagnosis
title_short A Novel Intuitionistic Fuzzy Inhibitor Arc Petri Net With Error Back Propagation Algorithm and Application in Fault Diagnosis
title_full A Novel Intuitionistic Fuzzy Inhibitor Arc Petri Net With Error Back Propagation Algorithm and Application in Fault Diagnosis
title_fullStr A Novel Intuitionistic Fuzzy Inhibitor Arc Petri Net With Error Back Propagation Algorithm and Application in Fault Diagnosis
title_full_unstemmed A Novel Intuitionistic Fuzzy Inhibitor Arc Petri Net With Error Back Propagation Algorithm and Application in Fault Diagnosis
title_sort novel intuitionistic fuzzy inhibitor arc petri net with error back propagation algorithm and application in fault diagnosis
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2019-01-01
description The setting and adjustment of the weight parameters in the traditional fault diagnosis method depend entirely on personal experience, and the parameter setting lacks regularity. To reduce the fault diagnosis errors caused by human subjective factors and improve the speed and accuracy of power grid fault diagnosis, we propose a method for power grid fault diagnosis using intuitionistic fuzzy inhibitor arc Petri net (IFIAPN) with error back propagation (BP) algorithm. Firstly, according to the network topology analysis and relay protection configuration setting rules, the inhibitor arc (IA) tuple is introduced into the model structure of the intuitionistic fuzzy Petri net to reduce the ambiguity of protection and circuit breaker action. Then, the weight parameters in the model are trained using a BP neural network algorithm to enhance the objectivity of the parameters. Finally, a simulation of an IEEE-39 node system and a real case study using the Hou-zhong line local grid were used to verify the effectiveness of the fault diagnosis method. The results show that the method can effectively deal with the refusal and mis-operation of multiple circuit breakers and improve the diagnostic efficiency under complex data environment.
topic Intuitionistic fuzzy set
inhibitor arc Petri net
BP algorithm
grid fault diagnosis
url https://ieeexplore.ieee.org/document/8805365/
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