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Interactive segmentation of medical images using belief propagation with level sets

机译:使用水平集的置信传播对医学图像进行交互式分割

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In this paper, we propose an interactive segmentation method to apply user information during the segmentation of a specific anatomic structure. This method is formulated to use belief propagation to minimize a global cost function according to local level sets. The propagation starts with one user labeled point, and iteratively extends the user information from the labeled pixel to its neighborhood by calculating the beliefs of the pixels in the same level as the labeled pixel. Since the segmentation relies on both local user information and global image features, it is less interrupted by noise, and works well even the target is not obvious to its neighbor. The promising segmentation results also show that our method is robust to the objects with high shape variation and inhomogeneous intensity value appearance.
机译:在本文中,我们提出了一种交互式分割方法,以在特定解剖结构的分割过程中应用用户信息。制定此方法的目的是使用信念传播来根据局部级别集最小化全局成本函数。传播从一个用户标记的点开始,并通过计算与标记的像素处于同一级别的像素的置信度,将用户信息从标记的像素迭代扩展到其像素附近。由于分割既依赖于本地用户信息又依赖于全局图像特征,因此分割不会受到噪声的干扰,即使目标对它的邻居来说并不明显,分割效果也很好。有希望的分割结果还表明,我们的方法对于形状变化大且强度值外观不均匀的对象具有鲁棒性。

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