Methods for fault diagnosis of high-speed railways: A review. Zang, Y., Shangguan, W., Cai, B., Wang, H., & Pecht, M. G Proceedings of the Institution of Mechanical Engineers, Part O: Journal of Risk and Reliability, 233(5):908–922, October, 2019. Publisher: SAGE Publications
Methods for fault diagnosis of high-speed railways: A review [link]Paper  doi  abstract   bibtex   
High-speed railways have a high demand for safety, but they are complex systems when it comes to fault diagnosis. The failure propagation path is difficult to trace which makes it hard to detect and identify a fault in the traditional way like signal-based methods. In recent years, artificial intelligence methods have been successfully applied in system health diagnosis and prognosis. Fault diagnosis methods based on artificial intelligence methods provide a new inspiration for fault diagnosis in the high-speed railway systems. In this article, the current research status of fault diagnosis was introduced, and the practical application of fault diagnosis methods in high-speed railways was summarized. Then taking the train control system as an example, fault diagnosis based on the artificial intelligence methods was discussed using several case studies; the results proved that the fusion of different methods has the potential to improve the diagnostic accuracy. Finally, the future research direction of fault diagnosis for high-speed railways was proposed.
@article{zang_methods_2019,
	title = {Methods for fault diagnosis of high-speed railways: {A} review},
	volume = {233},
	issn = {1748-006X},
	shorttitle = {Methods for fault diagnosis of high-speed railways},
	url = {https://doi.org/10.1177/1748006X18823932},
	doi = {10.1177/1748006X18823932},
	abstract = {High-speed railways have a high demand for safety, but they are complex systems when it comes to fault diagnosis. The failure propagation path is difficult to trace which makes it hard to detect and identify a fault in the traditional way like signal-based methods. In recent years, artificial intelligence methods have been successfully applied in system health diagnosis and prognosis. Fault diagnosis methods based on artificial intelligence methods provide a new inspiration for fault diagnosis in the high-speed railway systems. In this article, the current research status of fault diagnosis was introduced, and the practical application of fault diagnosis methods in high-speed railways was summarized. Then taking the train control system as an example, fault diagnosis based on the artificial intelligence methods was discussed using several case studies; the results proved that the fusion of different methods has the potential to improve the diagnostic accuracy. Finally, the future research direction of fault diagnosis for high-speed railways was proposed.},
	language = {en},
	number = {5},
	urldate = {2022-03-05},
	journal = {Proceedings of the Institution of Mechanical Engineers, Part O: Journal of Risk and Reliability},
	author = {Zang, Yu and Shangguan, Wei and Cai, Baigen and Wang, Huashen and Pecht, Michael G},
	month = oct,
	year = {2019},
	note = {Publisher: SAGE Publications},
	keywords = {High-speed railways, artificial intelligence, case study, development trend, fault diagnosis},
	pages = {908--922},
}

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