Publication | Closed Access
A Fault Classification Method by RBF Neural Network with OLS Learning Procedure
108
Citations
12
References
2001
Year
Fault DiagnosisEngineeringMachine LearningNeural NetworkDiagnosisFault ForecastingFault TypesReliability EngineeringData ScienceData MiningPattern RecognitionSystems EngineeringFault Classification MethodRbf Neural NetworkOls Learning ProcedureElectrical EngineeringStructural Health MonitoringComputer EngineeringAutomatic Fault DetectionRbf ApproachFault Detection
This paper presents a new approach to identify fault types and phases. A fault classification method based on a radial basis function (RBF) neural network with an orthogonal-least-square (OLS) learning procedure was used to identify various patterns of associated voltages and currents. The RBF neural network was also compared with the back-propagation (BP) neural network in this paper. It is shown that the RBF approach can provide a fast and precise operation for various faults. The simulation results also show that the proposed approach can be used as an effective tool for high-speed relaying.
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