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A new image-based method for concrete bridge bottom crack detection

机译:基于图像的混凝土桥底裂缝检测新方法

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Crack detection is crucial for safety and cost-effective maintenance of concrete structures. Researchers have proposed several methods based on machine vision techniques to inspect the cracks on the bottom surface of concrete bridges, such as Fujita's method. However, it is difficult to obtain high-quality images and image processing results because of complex environmental and light conditions under bridges. In this study, we propose a new method of crack image processing for concrete bridge bottom crack inspections to solve this problem. We build a machine vision system based on this method, which could detect cracks in real time. We examine the efficiency of the proposed system by evaluating it with real images of cracks and compare them with other image processing methods. In terms of efficiency and accuracy of detecting cracks, experimental results show that proposed method is superior to conventional methods in complex environments under bridges.
机译:裂缝检测对于混凝土结构的安全性和经济有效的维护至关重要。研究人员提出了几种基于机器视觉技术的方法来检查混凝土桥梁底面的裂缝,例如Fujita方法。但是,由于桥梁下复杂的环境和光照条件,很难获得高质量的图像和图像处理结果。在这项研究中,我们提出了一种用于混凝土桥梁底部裂缝检查的裂缝图像处理新方法,以解决该问题。我们基于这种方法构建了一个机器视觉系统,可以实时检测裂缝。我们通过对裂缝的真实图像进行评估,并与其他图像处理方法进行比较,从而检验了所提出系统的效率。从裂纹检测的效率和准确性方面,实验结果表明,该方法在桥梁复杂环境下优于常规方法。

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