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Medical Image Segmentation Using a Geometric Active Contour Model Based on Level Set Method

机译:基于级别集方法的几何活动轮廓模型使用几何活动轮廓模型的医学图像分割

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We present a level set framework for medical image segmentation using a new defined speed function. This function combines the alignment term, which makes a level set as close as possible to a boundary of object, the minimal variance term, which best separates the interior and exterior in the contour and the smoothing term, which makes a segmented boundary become less sensitive to noise. The use of a proposed speed function can improve the segmentation accuracy while making the boundaries of each object much smoother. Finally, we have demonstrated that the design of the speed function plays an important part in segmenting the synthetic and CT images reliably.
机译:我们使用新的定义速度函数为医学图像分割提供了一个级别的框架。该函数组合对准项,使得能够尽可能接近对象的级别,最小方差项,其最佳地分离轮廓中的内部和外部和平滑术语,这使得分段边界变得不太敏感噪音。使用所提出的速度函数可以提高分割精度,同时使每个物体的边界更平滑。最后,我们已经证明了速度函数的设计在可靠地分割了合成和CT图像的重要部分。

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