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首页> 外文期刊>Optik: Zeitschrift fur Licht- und Elektronenoptik: = Journal for Light-and Electronoptic >Active contour model based on LIF model and optimal DoG operator energy for image segmentation
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Active contour model based on LIF model and optimal DoG operator energy for image segmentation

机译:基于LIF模型的活动轮廓模型和最优狗操作员能量的图像分割

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摘要

In order to solve the problem that the region-based active contour model is sensitive to the initial contour position, the convergence is poor, and the active contour model can not obtain good segmentation results when segmenting complex background images and severe intensity inhomogeneous images. In this paper, an active contour model which combines Local Image Fitting (LIF) and Difference of Gaussian (DoG) operator energy for image segmentation is proposed. Firstly, an optimal DoG operator is obtained by using the edge energy term, it can enhance the edge while smoothing inhomogeneous regions. Then, using the DoG energy term which is obtained in the first step and the LIF energy term to construct the total function energy terms. In this process, the regularization term is also established, it can control the smoothness of evolution curve, avoiding over-segmentation and re-initialization step. Finally, the variational method and gradient descent flow method are adopted to minimize the total energy functional for segmentation. Compared with other region-based active contour models, the experimental results show that the proposed method can achieve a better segmentation performance with less iterations and high calculation efficiency while segmenting the synthetic and real images with intensity inhomogeneity.
机译:为了解决基于区域的主动轮廓模型对初始轮廓位置敏感的问题,收敛性差,并且当分割复杂背景图像和严重的强度不均匀图像时,活动轮廓模型无法获得良好的分段结果。在本文中,提出了一种与局部图像拟合(LIF)相结合的主动轮廓模型和高斯(狗)操作员能量对图像分割的差异。首先,通过使用边缘能量术语获得最佳狗操作员,它可以在平滑不均匀区域的同时增强边缘。然后,使用在第一步和LiF能量术语中获得的狗能量术语来构建总功能能量术语。在此过程中,还建立了正则化术语,它可以控制进化曲线的平滑度,避免过分分割和重新初始化步骤。最后,采用变分法和梯度下降流动方法来最小化分割的总能量功能。与其他基于区域的活性轮廓模型相比,实验结果表明,该方法可以通过更少的迭代和高计算效率实现更好的分割性能,同时将合成和实际图像分割强度不均匀性。

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