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Asphalt Pavement Pothole Detection and Segmentation Based on Wavelet Energy Field

机译:基于小波能量场的沥青路面坑洼检测与分割

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摘要

Potholes are one type of pavement surface distresses whose assessment is essential for developing road network maintenance strategies. Existing methods for automatic pothole detection either rely on expensive and high-maintenance equipment or could not segment the pothole accurately. In this paper, an asphalt pavement pothole detection and segmentation method based on energy field is put forward. The proposed method mainly includes two processes. Firstly, the wavelet energy field of the pavement image is constructed to detect the pothole by morphological processing and geometric criterions. Secondly, the detected pothole is segmented by Markov random field model and the pothole edge is extracted accurately. This methodology has been implemented in a MATLAB prototype, trained, and tested on 120 pavement images. The results show that it can effectively distinguish potholes from cracks, patches, greasy dirt, shadows, and manhole covers and accurately segment the pothole. For pothole detection, the method reaches an overall accuracy of 86.7%, with 83.3% precision and 87.5% recall. For pothole segmentation, the overlap degree between the extracted pothole region and the original pothole region is mostly more than 85%, which accounts for 88.6% of the total detected pavement pothole images.
机译:坑洼是一种路面表面问题,其评估对于制定道路网络维护策略至关重要。现有的自动坑洼检测方法要么依靠昂贵且维护量高的设备,要么无法准确地分割坑洼。提出了一种基于能量场的沥青路面坑洼检测与分割方法。所提出的方法主要包括两个过程。首先,构造路面图像的小波能量场,通过形态学处理和几何准则检测坑洼。其次,利用马尔可夫随机场模型对检测出的坑洼进行分割,准确提取坑洼边缘。该方法已在MATLAB原型中实现,经过训练并在120个路面图像上进行了测试。结果表明,它可以有效地将坑洞与裂缝,斑块,油污,阴影和人孔盖区分开,并准确分割坑洞。对于坑洼检测,该方法的总精度为86.7%,精度为83.3%,召回率为87.5%。对于坑洼分割,提取的坑洼区域与原始坑洼区域之间的重叠度大部分大于85%,占检测到的路面坑洼图像总数的88.6%。

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  • 来源
    《Mathematical Problems in Engineering》 |2017年第2017期|1604130.1-1604130.13|共13页
  • 作者单位

    Changan Univ, Natl Engn Lab Highway Maintenance Equipment, Xian, Peoples R China;

    Changan Univ, Natl Engn Lab Highway Maintenance Equipment, Xian, Peoples R China;

    Changan Univ, Natl Engn Lab Highway Maintenance Equipment, Xian, Peoples R China;

    Changan Univ, Natl Engn Lab Highway Maintenance Equipment, Xian, Peoples R China;

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