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Automatic darkest filament detection (ADFD): a new algorithm for crack extraction on two-dimensional pavement images

机译:自动暗淡的灯丝检测(ADFD):一种新的二维路面图像裂纹提取算法

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Pavement condition information is a significant component in pavement management systems. Precise extraction of road degradations particularly cracks is a critical task for surface safety. Manual surveys, which are labor intensive and costly, have induced several researchers to investigate the use of image processing to achieve automated pavement distress ratings. In the context of fine structures extraction, we present in this paper a novel approach for road crack detection under real conditions using several systems installed differently on a vehicle. It is such an automatic and effective approach that relies on both photometric and geometric characteristics of cracks. Based on an edge detection technique to avoid the bad conditions of image acquisition and an examination algorithm to verify the presence of high concentration of cracking pixels, this approach allows in a first step to select pixels that have great probability of belonging to a crack. Indeed, the originality of this approach stems from the proposed way to compute a set of thin filaments connecting the pixels selected at the first step between them. Finally, a post-processing step is applied to refine the obtained result and confirm either the presence or the absence of cracks in the image. Our proposed approach provides very robust and precise results on 2D pavement images in a wide range of situations and in a fully unsupervised manner. Furthermore, its innovative aspect is reflected in its ability to analyze easily both 2D and 3D pavement images.
机译:路面状况信息是路面管理系统中的重要组成部分。精确提取道路降低特别裂缝是表面安全的关键任务。手动调查是劳动密集型和昂贵的,诱导了几位研究人员调查图像处理的使用以实现自动化路面遇险评级。在精细结构提取的背景下,我们在本文中展示了一种新的道路裂纹检测方法,在现实条件下使用不同的系统在车辆上安装不同的系统。它是一种自动和有效的方法,依赖于裂缝的光度和几何特征。基于边缘检测技术来避免图像采集的不良条件和验证高浓度的裂缝像素的存在,这种方法允许在第一步中选择具有较大概率的像素。实际上,这种方法的原创性源于所提出的方式来计算连接在它们之间第一步中选择的像素的一组薄细丝。最后,应用后处理步骤以优化所获得的结果并确认存在或不存在图像中的裂缝。我们所提出的方法在广泛的情况下在2D路面图像上提供了非常强大和精确的结果,并以完全无人监督的方式。此外,它的创新方面反映了其易于分析2D和3D路面图像的能力。

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