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Automatic inspection of pavement cracking distress

机译:自动检查路面开裂危险

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We present an image processing algorithm customized for high-speed, real-time inspection of pavement cracking. In the algorithm, a pavement image is divided into grid cells of 8x8 pixels, and each cell is classified as a noncrack or crack cell using the grayscale information of the border pixels. Whether a crack cell can be regarded as a basic element (or seed) depends on its contrast to the neighboring cells. A number of crack seeds can be called a crack cluster if they fall on a linear string. A crack cluster corresponds to a dark strip in the original image that may or may not be a section of a real crack. Additional conditions to verify a crack cluster include the requirements in the contrast, width, and length of the strip. If verified crack clusters are oriented in similar directions, they will be joined to become one crack. Because many operations are performed on crack seeds rather than on the original image, crack detection can be executed simultaneously when the frame grabber is forming a new image, permitting real-time, online pavement surveys. The trial test results show a good repeatability and accuracy when multiple surveys were conducted at different driving conditions.
机译:我们提出了一种为高速,实时检查路面开裂而定制的图像处理算法。在该算法中,将路面图像划分为8x8像素的网格单元,并使用边界像素的灰度信息将每个单元分类为非裂纹或裂纹单元。裂纹细胞是否可以被视为基本元素(或种子)取决于其与相邻细胞的对比。如果许多裂纹种子落在线性字符串上,则它们可以称为裂纹簇。裂纹簇对应于原始图像中的暗带,该暗带可能是也可能不是真实裂纹的一部分。验证裂纹簇的其他条件包括对带材的对比度,宽度和长度的要求。如果已验证的裂纹簇指向相似的方向,则它们将合并成为一个裂纹。由于对裂纹种子而不是原始图像执行许多操作,因此在抓帧器形成新图像时可以同时执行裂纹检测,从而可以进行实时在线路面测量。当在不同的驾驶条件下进行多次调查时,试验结果显示出良好的重复性和准确性。

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