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Contactless Rail Profile Measurement and Rail Fault Diagnosis Approach Using Featured Pixel Counting

机译:非接触式轨道轮廓测量和轨道故障诊断方法使用特色像素计数

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摘要

The use of railways has continually increased with high-speed trains. The increased speed and usage wear on the rails poses a serious problem. In recent years, to detect wear and cracks in the rails, image-based detection methods have been developed. In this paper, wears on the surface of railheads are detected by contactless image processing and image analysis techniques. The shadow removal algorithm with a minimal entropy method is implemented onto the noise-free images to eliminate the light variations that can occur on the rail. The Hough transform is applied on the noise and shadow free image n order to determine the rail edge and the KNN nearest neighbour algorithm is applied the image to detect the surface of the railhead at the same time. Both of these methods result in new images that are combined. Therefore, minimum errors are seen in detection of rail wear using this method.
机译:用高速列车不断增加铁路。轨道上的速度和使用磨损的增加构成了严重的问题。近年来,在轨道中检测磨损和裂缝,已经开发了基于图像的检测方法。在本文中,通过非接触式图像处理和图像分析技术检测轨道表面上的磨损。具有最小熵方法的阴影去除算法在无噪声图像上实现,以消除轨道上可能发生的光变化。霍夫变换应用于噪声和阴影自由图像N,以确定轨道边缘,并且knn最近邻算法施加图像以同时检测轨道的表面。这两种方法都会导致组合的新图像。因此,使用该方法检测轨道磨损的最小误差。

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