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On the length and area regularization for multiphase level set segmentation

机译:关于多相水平集分割的长度和面积正则化

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In this paper we introduce novel regularization techniques for level set segmentation that target specifically the problem of multiphase segmentation. When the multiphase model is used to obtain a partitioning of the image in more than two regions, a new set of issues arise with respect to the single phase case in terms of regularization strategies. For example, if smoothing or shrinking each contour individually could be a good model in the single phase case, this is not necessarily true in the multiphase scenario. In this paper, we address these issues designing enhanced length and area regularization terms, whose minimization yields evolution equations in which each level set function involved in the multiphase segmentation can "sense" the presence of the other level set functions and evolve accordingly. In other words, the coupling of the level set function, which before was limited to the data term (i.e. the proper segmentation driving force), is extended in a mathematically principled way to the regularization terms as well. The resulting regularization technique is more suitable to eliminate spurious regions and other kind of artifacts. An extensive experimental evaluation supports the model we introduce in this paper, showing improved segmentation performance with respect to traditional regularization techniques.
机译:在本文中,我们针对水平集分割引入了新颖的正则化技术,专门针对多相分割问题。当多相模型用于获得两个以上区域的图像分割时,就单相情况而言,在正则化策略方面出现了一系列新问题。例如,如果在单相情况下单独平滑或缩小每个轮廓可能是一个很好的模型,则在多相情况下不一定是正确的。在本文中,我们通过设计增强的长度和面积正则项来解决这些问题,将其最小化会产生演化方程,其中参与多相分割的每个水平集函数都可以“感知”其他水平集函数的存在并相应地演化。换句话说,以前以数据项(即适当的分段驱动力)为限的水平集函数的耦合也以数学原理方式扩展到正则项。所得的正则化技术更适合于消除虚假区域和其他种类的伪像。广泛的实验评估为我们在本文中介绍的模型提供了支持,该模型显示了相对于传统正则化技术而言改进的分割性能。

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