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KRČ, R. PODROUŽEK, J. KRATOCHVÍLOVÁ, M. VUKUŠIČ, I. PLÁŠEK, O.
Original Title
Neural Network-Based Train Identification in Railway Switches and Crossings Using Accelerometer Data
Type
journal article in Web of Science
Language
English
Original Abstract
This paper aims to analyse possibilities of train type identification in railway switches and crossings (S&C) based on accelerometer data by using contemporary machine learning methods such as neural networks. That is a unique approach since trains have been only identified in a straight track. Accelerometer sensors placed around the S&C structure were the source of input data for subsequent models. Data from four S&C at different locations were considered and various neural network architectures evaluated. The research indicated the feasibility to identify trains in S&C using neural networks from accelerometer data. Models trained at one location are generally transferable to another location despite differences in geometrical parameters, substructure, and direction of passing trains. Other challenges include small dataset and speed variation of the trains that must be considered for accurate identification. Results are obtained using statistical bootstrapping and are presented in a form of confusion matrices.
Keywords
Neural Network-Based Train Identification; Railway Switches and Crossings; Accelerometer Data
Authors
KRČ, R.; PODROUŽEK, J.; KRATOCHVÍLOVÁ, M.; VUKUŠIČ, I.; PLÁŠEK, O.
Released
24. 11. 2020
Publisher
Hindawi
ISBN
0197-6729
Periodical
JOURNAL OF ADVANCED TRANSPORTATION
Year of study
2020
Number
1
State
United Kingdom of Great Britain and Northern Ireland
Pages from
Pages to
10
Pages count
URL
https://www.hindawi.com/journals/jat/2020/8841810/
Full text in the Digital Library
http://hdl.handle.net/11012/196564
BibTex
@article{BUT168007, author="Rostislav {Krč} and Jan {Podroužek} and Martina {Floriánová} and Ivan {Vukušič} and Otto {Plášek}", title="Neural Network-Based Train Identification in Railway Switches and Crossings Using Accelerometer Data", journal="JOURNAL OF ADVANCED TRANSPORTATION", year="2020", volume="2020", number="1", pages="1--10", doi="10.1155/2020/8841810", issn="0197-6729", url="https://www.hindawi.com/journals/jat/2020/8841810/" }