Classifier-Ensemble Incremental-Learning Procedure for Nuclear Transient Identification at Different Operational ConditionsReportar como inadecuado




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* Corresponding author 1 Dipartimento di Energia 2 Chaire Sciences des Systèmes et Défis Energétiques EDF-ECP-Supélec SSEC - Chaire Sciences des Systèmes et Défis Energétiques EDF-ECP-Supélec, Dipartimento di Energia

Abstract : An important requirement for the practical implementation of empirical diagnostic systems is the capability of classifying transients in all plant operational conditions. The present paper proposes an approach based on an ensemble of classifiers for incrementally learning transients under different operational conditions. New classifiers are added to the ensemble where transients occurring in new operational conditions are not satisfactorily classified. The construction of the ensemble is made by bagging; the base classifier is a supervised Fuzzy C Means FCM classifier whose outcomes are combined by majority voting. The incremental learning procedure is applied to the identification of simulated transients in the feedwater system of a Boiling Water Reactor BWR under different reactor power levels.

Keywords : Classification Fuzzy C Means FCM clustering Bagging Ensemble Incremental learning BWR nuclear power plant Transient identification





Autor: Piero Baraldi - Roozbeh Razavi-Far - Enrico Zio -

Fuente: https://hal.archives-ouvertes.fr/



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