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An Efficient Way in Image Preprocessing for Pavement Crack Images

机译:路面裂缝图像图像预处理的一种有效方法

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Automatic pavement detection based on video or image acquisition has become a common means of modern pavement management. However, the effect of pavement image processing is not quite well understood due to large amounts of noise. The low portion of crack pixels to the entire image makes the situation even worse. In this research, an efficient way of image preprocessing was developed for pavement crack images. This study included three steps, background correction, Gaussian smoothing and histogram transformation. Actual pavement crack images were preprocessed by the new method and then segmented by Otsu method. The results show that the preprocessing steps presented in this study dramatically dampened the impact of noise on image segmentation and retained most of the distress details at the same time. The Otsu method provided good segmented crack images if the images have been properly preprocessed. In the case of the crack images tested in this study, the preprocessing effect in the line cracking images was good enough for the following segmentation, and the effect in the alligator cracking images was even better.
机译:基于视频或图像采集的自动路面检测已成为现代路面管理的常用手段。然而,由于大量的噪声,路面图像处理的效果还不是很清楚。裂纹像素在整个图像中所占的比例较低,使情况变得更糟。在这项研究中,为路面裂缝图像开发了一种有效的图像预处理方法。这项研究包括三个步骤:背景校正,高斯平滑和直方图变换。用新方法对实际路面裂缝图像进行预处理,然后用大津法进行分割。结果表明,该研究中提出的预处理步骤极大地降低了噪声对图像分割的影响,并同时保留了大多数遇险细节。如果对图像进行了适当的预处理,则Otsu方法可提供良好的分割裂纹图像。在本研究中测试的裂纹图像的情况下,线裂纹图像中的预处理效果足以进行后续分割,而鳄鱼裂纹图像中的预处理效果甚至更好。

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