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Segmentation of medical images using a geometric deformable model and its visualization

机译:使用几何可变形模型分割医学图像及其可视化

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摘要

An automatic segmentation method for medical images that uses a geometric deformable model is presented, and the segmented results are visualized with the help of a modified marching cubes algorithm. The geometric deformable model is based on evolution theory and the level set method. In particular, the level set method utilizes a new derived speed function to improve the segmentation performance. This function is defined by the linear combination of three terms, namely, the alignment term, the minimal-variance term, and the smoothing term. The alignment term makes a level set as close as possible to the boundary of an object. The minimal-variance term best separates the interior and exterior of the contour. The smoothing term renders a segmented boundary less sensitive to noise. The use of the proposed speed function can improve the segmentation accuracy while making the boundaries of each object much smoother. Finally, it is demonstrated that the design of the speed function plays an important role in the reliable segmentation of synthetic and computed tomography (CT) images, and the segmented results are visualized effectively with the help of a modified marching cubes algorithm.
机译:提出了一种使用几何可变形模型的医学图像自动分割方法,并借助改进的行进立方体算法可视化了分割结果。几何可变形模型基于演化理论和水平集方法。特别地,水平设置方法利用新的导出速度函数来改善分割性能。该函数由三个项的线性组合定义,即对齐项,最小方差项和平滑项。对齐项使级别设置得尽可能接近对象的边界。最小方差术语最好将轮廓的内部和外部分开。平滑项使分段边界对噪声不太敏感。使用建议的速度函数可以提高分割精度,同时使每个对象的边界更加平滑。最后,证明了速度函数的设计在合成和计算机断层扫描(CT)图像的可靠分割中起着重要作用,并且借助改进的行进立方体算法可以有效地可视化分割结果。

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