Rail Track Irregularity Detection Method Based on Computer Vision and Gesture Analysis

Author:

Rong Jian,Song Shiyang,Dang Zhen,Shi Hongliang,Cao Yong

Abstract

In this paper, rail track irregularity detection system based on computer vision and SVD analysis is proposed and located in the train's operator cabin near the front. Images are captured by FLEA3 camera of Point-Grey, and vibration signals are collected by sensor device MPU6050 integrating 3-axis accelerometer and 3-axis gyroscope. Root mean square of gray-scale threshold Pulse Coupled Neural Network (RMS-PCNN) is used for segmentation of the rail track's image in a single loop, and the improved coupled map lattice(CML) is used for filtering the image and signifying the rail track. After perspective, the track radius can be fetched by analysis of regression. Vibration signal filtered by SVD-unscented Kalman filter(UKF) can reflect the wagon movements. In unscented Kalman filter, Cholesky is replaced by SDV in UT(unscented transform), which can solve negative definite matrix caused by covariance matrix on account of calculation error and round-off error. Also numerical stability is improved under the guarantee of filtering accuracy and the same complexity level of algorithm based on SVD-UKF. Looking up the radius record table, the corresponding threshold in gyroscope signal can be selected, and Compared to the super elevation, the invisible irregularity defects of rail bed will be found out.

Publisher

International Association of Online Engineering (IAOE)

Subject

General Engineering

Cited by 4 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Data measurement system for track panel vibrations;THE 6TH INTERNATIONAL CONFERENCE ON ENERGY, ENVIRONMENT, EPIDEMIOLOGY AND INFORMATION SYSTEM (ICENIS) 2021: Topic of Energy, Environment, Epidemiology, and Information System;2023

2. Towards Cargo Wagons Brake Health Scoring through Image Processing;Proceedings of the 11th International Conference on Pattern Recognition Applications and Methods;2022

3. Real time fault detection in railway tracks using Fast Fourier Transformation and Discrete Wavelet Transformation;International Journal of Information Technology;2021-08-31

4. Multistage Estimators for the Distributed Drive Articulated Steering Vehicle;Mathematical Problems in Engineering;2020-10-01

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