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An image-based pavement distress detection and classification

机译:基于图像的路面破损检测与分类

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摘要

This paper presents a pavement segmentation and crack detection system from pavement images with complicated background information. The proposed method consists of three steps. In the first step, a Support Vector Machine, which shows a high degree of accuracy in classifying data, was employed to classify the image into two categories: a pavement group and a background group. In the second step, the crack was extracted by a fractal thresholding. Finally, a Radon Transform was applied to the crack image to classify the cracks into four different types. The experimental results show that the proposed system is robust and can effectively be used in pavement images with complicated background components such as trees, houses, etc.
机译:本文提出了一种具有复杂背景信息的路面图像分割与裂缝检测系统。所提出的方法包括三个步骤。第一步,使用支持向量机(在图像数据分类中显示出很高的准确性)将图像分类为两类:路面组和背景组。第二步,通过分形阈值提取裂纹。最后,将Radon变换应用于裂缝图像,将裂缝分为四种不同类型。实验结果表明,所提出的系统是鲁棒的,可以有效地用于具有复杂背景成分(例如树木,房屋等)的路面图像。

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