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Título : Anova and cluster distance based contributions for feature empirical analysis to fault diagnosis in rotating machinery
Otros títulos : Anova and cluster distance based contributions for feature empirical analysis to fault diagnosis in rotating machinery
Autor: Peña Ortega, Mario Patricio
Alvarez Palomeque, Lourdes Ximena
Jadan Aviles, Diana Carolina
Lucero, Pablo
Barragan Landy, Milton Francisco
Guaman Guachichullca, Noe Rodrigo
Cerrada Lozada, Mariela
Palabras clave : Anova
Bearings
Cluster validity assessment
Fault diagnosis
Feature engineering
Área de conocimiento FRASCATI amplio: 2. Ingeniería y Tecnología
Área de conocimiento FRASCATI detallado: 2.11.2 Otras Ingenierias y Tecnologías
Área de conocimiento FRASCATI específico: 2.11 Otras Ingenierias y Tecnologías
Área de conocimiento UNESCO amplio: 07 - Ingeniería, Industria y Construcción
ÁArea de conocimiento UNESCO detallado: 0714 - Electrónica y Automatización
Área de conocimiento UNESCO específico: 071 - Ingeniería y Profesiones Afines
Fecha de publicación : 2017
Fecha de fin de embargo: 30-dic-2050
Volumen: volumen 2017
Fuente: 2017 International Conference on Sensing, Diagnostics, Prognostics, and Control (SDPC)
metadata.dc.identifier.doi: 10.1109/SDPC.2017.23
Editor: Institute of Electrical and Electronics Engineers
Ciudad: 
Shanghai
Tipo: ARTÍCULO DE CONFERENCIA
Abstract: 
The number of extracted features for fault diagnosis in rotating machinery can grow considerably due to the large amount of available data collected from different monitored signals. Usually, feature selection or reduction are conducted through several techniques proposing a unique set of representative features for all available classes; nevertheless, in feature selection, it has been recognized that a set of individually good features do not necessarily lead to good classification. This paper proposes a general framework to analyse the feature selection oriented to identify the features that can produce clusters of data with a proper structure. In the first stage, the framework uses Analysis of Variance (ANOVA) combined with Tukey's test for ranking the significant features individually. In the second stage, a further analysis based on inter-cluster and intra-cluster distances, is accomplished to rank subsets of significant features previously identified. In this sense, our contribution aims at discovering the subset of features that are discriminating better the clusters of data associated to several faulty conditions of the mechanical devices, to build more robust fault multi-classifiers. Fault severity classification in rolling bearings is studied to test the proposed framework, with data collected from an experimental test bed under real conditions of speed and load on the rotating device. © 2017 IEEE.
Resumen : 
The number of extracted features for fault diagnosis in rotating machinery can grow considerably due to the large amount of available data collected from different monitored signals. Usually, feature selection or reduction are conducted through several techniques proposing a unique set of representative features for all available classes; nevertheless, in feature selection, it has been recognized that a set of individually good features do not necessarily lead to good classification. This paper proposes a general framework to analyse the feature selection oriented to identify the features that can produce clusters of data with a proper structure. In the first stage, the framework uses Analysis of Variance (ANOVA) combined with Tukey's test for ranking the significant features individually. In the second stage, a further analysis based on inter-cluster and intra-cluster distances, is accomplished to rank subsets of significant features previously identified. In this sense, our contribution aims at discovering the subset of features that are discriminating better the clusters of data associated to several faulty conditions of the mechanical devices, to build more robust fault multi-classifiers. Fault severity classification in rolling bearings is studied to test the proposed framework, with data collected from an experimental test bed under real conditions of speed and load on the rotating device. © 2017 IEEE.
URI : http://dspace.ucuenca.edu.ec/handle/123456789/33973
https://ieeexplore.ieee.org/document/8181552
URI Fuente: https://ieeexplore.ieee.org/xpl/conhome/8170482/proceeding
ISBN : 978-150904020-9
ISSN : 0000-0000
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