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A Unified Method Based on Wavelet Transform and C-V Model for Crack Segmentation of 3D Industrial CT Images

机译:一种基于小波变换的统一方法和3D工业CT图像裂纹分割的C-V型号

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Accurate segmentation of cracked body from three-dimensional (3D) industrial Computed Tomography (CT) images is an important step in the process of crack measurement and automatic recognition. In this paper we present a fast method for the segmentation of cracked body. The improved algorithm incorporates wavelet transform and Chan and Vese (C-V) model as key components. The 3D wavelet transform is applied for detecting rough edges. Then region growing is used to find a suitable region which contains cracked body. Based on the resulting volume data, 3D C-V model is used to capture the edges of cracked body. The improved method can locate rough regions by using wavelet modulus maxima, which not only reduces the amount of data C-V model processed, but also provides initial contour surface that can accelerate the convergence speed of C-V model. Experimental results illustrate our method can accurately detect the cracked surface, as well as give computational savings of segmentation which satisfy the demand of defects detection of industrial CT.
机译:从三维(3D)工业计算断层扫描(CT)图像的精确分割裂缝体是裂纹测量和自动识别过程中的一个重要步骤。在本文中,我们提出了一种快速的裂纹体分割的方法。改进的算法将小波变换和陈和VESE(C-V)模型作为关键组件。应用3D小波变换检测粗糙边缘。然后地区生长用于找到含有裂纹体的合适区域。基于所得到的卷数据,3D C-V型号用于捕获破裂体的边缘。改进的方法可以通过使用小波模数最大值定位粗糙区域,这不仅降低了处理的数据量C-V型号,而且还提供了可以加速C-V型型号的收敛速度的初始轮廓表面。实验结果说明了我们的方法可以准确地检测裂纹表面,并提供分割的计算节省,这符合工业CT的缺陷检测的需求。

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