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Multiphase Dynamic Labeling for Variational Recognition-Driven Image Segmentation

机译:变分识别驱动图像分割的多相动态标记

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We propose a variational framework for the integration multiple competing shape priors into level set based segmentation schemes. By optimizing an appropriate cost functional with respect to both a level set function and a (vector-valued) labeling function, we jointly generate a segmentation (by the level set function) and a recognition-driven partition of the image domain (by the labeling function) which indicates where to enforce certain shape priors. Our framework fundamentally extends previous work on shape priors in level set segmentation by directly addressing the central question of where to apply which prior. It allows for the seamless integration of numerous shape priors such that - while segmenting both multiple known and unknown objects - the level set process may selectively use specific shape knowledge for simultaneously enhancing segmentation and recognizing shape.
机译:我们向基于水平集的分割方案提出了一个分类框架,以将多个竞争形状前沿分成级别集的分段方案。通过对级别集合函数和(向量值)标记函数的适当成本函数优化,我们共同生成分段(通过级别设置函数)和图像域的识别驱动分区(由标签函数)表示强制执行某些形状前沿的位置。我们的框架通过直接解决先前申请的核心问题,从根本上扩展了级别设置分割中的形状前瞻。它允许许多形状前导者的无缝集成,使得 - 在分割多个已知和未知对象的同时 - 电平集处理可以选择性地使用特定的形状知识来同时增强分段和识别形状。

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