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<dc:creator>Sánchez-Fernández, Alvar</dc:creator>
<dc:creator>Fuente Aparicio, María Jesús de la</dc:creator>
<dc:creator>Sáinz Palmero, Gregorio Ismael</dc:creator>
<dc:date>2018</dc:date>
<dc:description>Producción Científica</dc:description>
<dc:description>This paper proposes a dynamic and decentralized fault detection method. The plant is divided in groups whose members are selected using linear and non-linear modelling techniques. In each group a Principal Component Analysis model does the fault detection, including delayed data to get a dynamic&#xd;
method. Then, a central node fuses the results of each group, using Bayesian Index Criterion (BIC), to get a global detection outcome. The method was tested on a widely used benchmark and compared with other proposal to check its effectiveness.</dc:description>
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<dc:publisher>IEEE</dc:publisher>
<dc:title>Decentralized and Dynamic Fault Detection Using PCA and Bayesian Inference</dc:title>
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