An explainable machine learning framework for railway predictive maintenance using data streams from the metro

Silvia García-Méndez1, Francisco de Arriba-Pérez2, Fátima Leal3

  • 1Information Technologies Group, atlanTTic, University of Vigo, Vigo, Spain. sgarcia@gti.uvigo.es.

Scientific Reports
|July 28, 2025
PubMed
Summary

This study introduces a real-time predictive maintenance solution for Intelligent Transportation Systems, achieving over 99% accuracy in fault prediction. The system enhances railway operations by anticipating failures and enabling swift, data-driven maintenance actions.

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