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A New Approach for Tubular Structure Modeling andSegmentation Using Graph-Based Techniques

机译:基于曲线图技术的管状结构建模和缩放的一种新方法

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In this work, a new approach for tubular structure segmentation is presented. This approach consists of two parts: (1) automatic model construction from manually segmented exemplars and (2) segmentation of structures in unknown images using these models. The segmentation problem is solved by finding an optimal path in a high-dimensional graph. The graph is designed with novel structures that permit the incorporation of prior information from the model into the optimization process and account for several weaknesses of traditional graph-based approaches. The generality of the approach is demonstrated by testing it on four challenging segmentation tasks: the optic pathways, the facial nerve, the chorda tympani, and the carotid artery. In all four cases, excellent agreement between automatic and manual segmentations is achieved.
机译:在这项工作中,提出了一种对管状结构分割的新方法。这种方法由两部分组成:(1)自动模型构造从手动分段示例和(2)使用这些模型的未知图像中结构的分割。通过在高维图中找到最佳路径来解决分割问题。该图设计有新颖的结构,允许将先前信息从模型中纳入优化过程,并考虑到传统的基于图形的方法的几个弱点。通过在四个具有挑战性的分割任务中测试:光学途径,面神经,Chorda Tympani和颈动脉,通过测试方法的一般性。在所有四种情况下,实现了自动和手动分段之间的良好协议。

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