Data-driven predictive maintenance framework for railway systems
Author:
Affiliation:
1. GECAD, Polytechnic Institute of Porto (ISEP/IPP), Porto, Portugal
2. LIAAD, INESC TEC, Porto, Portugal
3. LIDIA – CITIC, University of Coruña, Coruña, Spain
Abstract
Publisher
IOS Press
Subject
Artificial Intelligence,Computer Vision and Pattern Recognition,Theoretical Computer Science
Reference38 articles.
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3. S.C. Tan, K.M. Ting and T.F. Liu, Fast anomaly detection for streaming data, in: Twenty-Second International Joint Conference on Artificial Intelligence, 2011.
4. Anomaly detection in monitoring sensor data for preventive maintenance;Rabatel;Expert Syst. Appl.,2011
5. Improving rail network velocity: A machine learning approach to predictive maintenance;Li;Transportation Research Part C: Emerging Technologies,2014
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