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Shape prior based on statistical map for active contour segmentation

机译:基于统计地图以主动轮廓分割的统计地图形状

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摘要

We propose a new method for performing active contour segmentation based on the statistical prior knowledge of the object to detect. From a binary training set of objects, a statistical map describes the possible shapes of the object by computing the probability for each point to belong to the object. This statistical map is treated as a prior distribution and an energy functional is defined such that the object reaches the most probable shape knowing the model. The optimization is done in the level-set framework. Results on both synthetic and medical images are shown.
机译:我们提出了一种基于对象的统计事先知识来执行活动轮廓分段的新方法。根据二进制训练集,统计地图通过计算每个点属于对象的概率来描述对象的可能形状。该统计图被视为先前分布,并且定义了能量函数,使得物体达到最可能知道该模型的形状。优化是在级别设置的框架中完成的。显示了合成和医学图像的结果。

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