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A New Method for Railway Fastener Detection Using the Symmetrical Image and Its EA-HOG Feature

机译:一种使用对称图像及其EA-HOG特征的铁路紧固件检测方法

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摘要

Railway fastener recognition and detection is an important task for railway operation safety. However, the current automatic inspection methods based on computer vision can effectively detect the intact or completely missing fasteners, but they have weaker ability to recognize the partially worn ones. In our method, we exploit the EA-HOG feature fastener image, generate two symmetrical images of original test image and turn the detection of the original test image into the detection of two symmetrical images, then integrate the two recognition results of symmetrical image to reach exact recognition of original test image. The potential advantages of the proposed method are as follows: First, we propose a simple yet efficient method to extract the fastener edge, as well as the EA-HOG feature of the fastener image. Second, the symmetry images indeed reflect some possible appearance of the fastener image which are not shown in the original images, these changes are helpful for us to judge the status of the symmetry samples based on the improved sparse representation algorithm and then obtain an exact judgment of the original test image by combining the two corresponding judgments of its symmetry images. The experiment results show that the proposed approach achieves a rather high recognition result and meets the demand of railway fastener detection.
机译:铁路紧固件识别和检测是铁路操作安全的重要任务。然而,基于计算机视觉的目前的自动检查方法可以有效地检测完整或完全缺失的紧固件,但它们具有识别部分磨损的能力较弱。在我们的方法中,我们利用EA-Hog特征紧固件图像,生成原始测试图像的两个对称图像,并将原始测试图像的检测转到两个对称图像的检测,然后集成了对称图像的两个识别结果到达精确识别原始测试图像。所提出的方法的潜在优点如下:首先,我们提出了一种简单而有效的方法来提取紧固件边缘,以及紧固件图像的EA-HOG特征。其次,对称图像确实反映了在原始图像中未示出的紧固件图像的一些可能的外观,这些变化是有助于我们基于改进的稀疏表示算法判断对称样本的状态,然后获得精确的判断通过组合其对称图像的两个相应判断来实现原始测试图像。实验结果表明,该方法实现了相当高的识别结果,符合铁路紧固件检测的需求。

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