An efficient crack detection method using percolation-based image processing
Crack detection on concrete surfaces is the most popular subject in the inspection of the concrete structures. The conventional method of crack detection is performed by experienced human inspectors by sketching the crack patterns manually. Some automated crack detection techniques utilizing image p...
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| Published in | 2008 3rd IEEE Conference on Industrial Electronics and Applications pp. 1875 - 1880 |
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| Main Authors | , , |
| Format | Conference Proceeding |
| Language | English Japanese |
| Published |
IEEE
01.06.2008
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| Subjects | |
| Online Access | Get full text |
| ISBN | 9781424417179 1424417171 |
| ISSN | 2156-2318 |
| DOI | 10.1109/ICIEA.2008.4582845 |
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| Abstract | Crack detection on concrete surfaces is the most popular subject in the inspection of the concrete structures. The conventional method of crack detection is performed by experienced human inspectors by sketching the crack patterns manually. Some automated crack detection techniques utilizing image processing have been proposed. Although most of the image-based approaches pay attention to the accuracy of the crack detection results, the computation time is also important for practical use, because the size of the digital image reaches 10-mega pixels. In this paper, we introduce an efficient and high-speed method for crack detection employing percolation-based image processing. To reduce the computation time, we consult the ideas of the sequential similarity detection algorithm and active search (SSDA). According to the concept of SSDA, the percolation process is terminated by calculating the circularity midway through the processing. Moreover, percolation processing can be skipped for the next pixel depending on the circularity of neighboring pixels. The experimental result shows that the proposed approach is efficient in reducing the computation cost while preserving the accuracy of crack detection result. |
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| AbstractList | Crack detection on concrete surfaces is the most popular subject in the inspection of the concrete structures. The conventional method of crack detection is performed by experienced human inspectors by sketching the crack patterns manually. Some automated crack detection techniques utilizing image processing have been proposed. Although most of the image-based approaches pay attention to the accuracy of the crack detection results, the computation time is also important for practical use, because the size of the digital image reaches 10-mega pixels. In this paper, we introduce an efficient and high-speed method for crack detection employing percolation-based image processing. To reduce the computation time, we consult the ideas of the sequential similarity detection algorithm and active search (SSDA). According to the concept of SSDA, the percolation process is terminated by calculating the circularity midway through the processing. Moreover, percolation processing can be skipped for the next pixel depending on the circularity of neighboring pixels. The experimental result shows that the proposed approach is efficient in reducing the computation cost while preserving the accuracy of crack detection result. |
| Author | Tomoyuki Yamaguchi Shingo Nakamura Shuji Hashimoto |
| Author_xml | – sequence: 1 surname: Tomoyuki Yamaguchi fullname: Tomoyuki Yamaguchi organization: Department of Applied Physics, Waseda University, 3-4-1, Okubo, Shinjuku, Tokyo, 169-8555 JAPAN – sequence: 2 surname: Shingo Nakamura fullname: Shingo Nakamura organization: Department of Applied Physics, Waseda University, 3-4-1, Okubo, Shinjuku, Tokyo, 169-8555 JAPAN – sequence: 3 surname: Shuji Hashimoto fullname: Shuji Hashimoto organization: Department of Applied Physics, Waseda University, 3-4-1, Okubo, Shinjuku, Tokyo, 169-8555 JAPAN |
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| Snippet | Crack detection on concrete surfaces is the most popular subject in the inspection of the concrete structures. The conventional method of crack detection is... |
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| SubjectTerms | Accuracy Brightness Computational efficiency Costs Hands Image processing Inspection Shape Surface cracks Surface treatment |
| Title | An efficient crack detection method using percolation-based image processing |
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