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Metaheuristic Optimized Edge Detection for Recognition of Concrete Wall Cracks: A Comparative Study on the Performances of Roberts, Prewitt, Canny, and Sobel Algorithms

机译:元启发式优化边缘检测,用于识别混凝土墙体裂缝:Roberts,Prewitt,Canny和Sobel算法的性能比较研究

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摘要

Crack detection is a crucial task in the periodic survey of high-rise buildings and infrastructure. Manual survey is notorious for low productivity. This study is aimed at establishing an image processing-based method for detecting cracks on concrete wall surfaces in an automatic manner. The Roberts, Prewitt, Canny, and Sobel algorithms are employed as the edge detection methods for revealing the crack textures appearing in concrete walls. The median filtering and object cleaning operations are used to enhance the image and facilitate the crack recognition outcome. Since the edge detectors, the median filter, and the object cleaning operation all require the appropriate selection of tuning parameters, this study relies on the differential flower pollination algorithm as a metaheuristic to optimize the image processing-based crack detection model. Experimental results point out that the newly constructed approach that employs the Prewitt algorithm can achieve a good prediction outcome with classification accuracy rate = 89.95% and area under the curve = 0.90. Therefore, the proposed metaheuristic optimized image processing approach can be a promising alternative for automatic recognition of cracks on the concrete wall surface.
机译:裂缝检测是定期检查高层建筑和基础设施的关键任务。手工调查因生产率低而臭名昭著。这项研究旨在建立一种基于图像处理的方法,以自动方式检测混凝土墙表面的裂缝。 Roberts,Prewitt,Canny和Sobel算法被用作边缘检测方法,以揭示混凝土墙体中出现的裂纹纹理。中值滤波和对象清洁操作用于增强图像并促进裂纹识别结果。由于边缘检测器,中值滤波器和对象清洁操作都需要适当选择调整参数,因此本研究依靠差分花授粉算法作为一种元启发法来优化基于图像处理的裂纹检测模型。实验结果表明,采用Prewitt算法的新方法可以实现良好的预测结果,分类准确率= 89.95%,曲线下面积= 0.90。因此,提出的元启发式优化图像处理方法可以作为自动识别混凝土墙体表面裂缝的有前途的替代方法。

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  • 来源
    《Advances in civil engineering》 |2018年第10期|7163580.1-7163580.16|共16页
  • 作者单位

    Duy Tan Univ, Fac Civil Engn, Inst Res & Dev, P809-03 Quang Trung, Da Nang, Vietnam;

    Duy Tan Univ, Fac Civil Engn, R 202-03 Quang Trung, Da Nang 550000, Vietnam;

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