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  4. Methods for segmenting cracks in 3d images of concrete: A comparison based on semi-synthetic images
 
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2022
Journal Article
Title

Methods for segmenting cracks in 3d images of concrete: A comparison based on semi-synthetic images

Abstract
Concrete is the standard construction material for buildings, bridges, and roads. As safety plays a central role in the design, monitoring, and maintenance of such constructions, it is important to understand the cracking behavior of concrete. Computed tomography captures the microstructure of building materials and allows to study crack initiation and propagation. Manual segmentation of crack surfaces in large 3d images is not feasible. In this paper, automatic crack segmentation methods for 3d images are reviewed and compared. Classical image processing methods (edge detection filters, template matching, minimal path and region growing algorithms) and learning methods (convolutional neural networks, random forests) are considered and tested on semi-synthetic 3d images. Their performance strongly depends on parameter selection which should be adapted to the grayvalue distribution of the images and the geometric properties of the concrete. In general, the learning methods perform best, in particular for thin cracks and low grayvalue contrast.
Author(s)
Barisin, Tin
Fraunhofer-Institut für Techno- und Wirtschaftsmathematik ITWM  
Jung, C.
Technische Universität Kaiserslautern
Müsebeck, F.
Technische Universität Kaiserslautern
Redenbach, C.
Technische Universität Kaiserslautern
Schladitz, Katja  
Fraunhofer-Institut für Techno- und Wirtschaftsmathematik ITWM  
Journal
Pattern recognition  
Open Access
DOI
10.1016/j.patcog.2022.108747
Language
English
Fraunhofer-Institut für Techno- und Wirtschaftsmathematik ITWM  
Keyword(s)
  • 3d segmentation

  • Computed tomography

  • Crack detection

  • Deep learning

  • Fractional Brownian surface

  • Machine learning

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