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Fault Detection and Diagnosis of Railway Point Machines by Sound Analysis

Authors
Lee, JongukChoi, HeesuPark, DaiheeChung, YongwhaKim, Hee-YoungYoon, Sukhan
Issue Date
4월-2016
Publisher
MDPI
Keywords
railway point machine; railway condition monitoring system; audio data; support vector machine
Citation
SENSORS, v.16, no.4
Indexed
SCIE
SCOPUS
Journal Title
SENSORS
Volume
16
Number
4
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/89023
DOI
10.3390/s16040549
ISSN
1424-8220
Abstract
Railway point devices act as actuators that provide different routes to trains by driving switchblades from the current position to the opposite one. Point failure can significantly affect railway operations, with potentially disastrous consequences. Therefore, early detection of anomalies is critical for monitoring and managing the condition of rail infrastructure. We present a data mining solution that utilizes audio data to efficiently detect and diagnose faults in railway condition monitoring systems. The system enables extracting mel-frequency cepstrum coefficients (MFCCs) from audio data with reduced feature dimensions using attribute subset selection, and employs support vector machines (SVMs) for early detection and classification of anomalies. Experimental results show that the system enables cost-effective detection and diagnosis of faults using a cheap microphone, with accuracy exceeding 94.1% whether used alone or in combination with other known methods.
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College of Science and Technology > Department of Computer Convergence Software > 1. Journal Articles
Graduate School > Department of Computer and Information Science > 1. Journal Articles
College of Public Policy > Division of Big Data Science > 1. Journal Articles

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공공정책대학 (빅데이터사이언스학부)
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