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Airway Tree Extraction with Locally Optimal Paths

机译:具有局部最优路径的气道树提取

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摘要

This paper proposes a method to extract the airway tree from CT images by continually extending the tree with locally optimal paths. This is in contrast to commonly used region growing based approaches that only search the space of the immediate neighbors. The result is a much more robust method for tree extraction that can overcome local occlusions. The cost function for obtaining the optimal paths takes into account of an airway probability map as well as measures of airway shape and orientation derived from multi-scale Hessian eigen analysis on the airway probability. Significant improvements were achieved compared to a region growing based method, with up to 36% longer trees at a slight increase of false positive rate.
机译:本文提出了一种通过连续扩展局部最优路径从CT图像中提取气道树的方法。这与通常使用的基于区域增长的方法相反,该方法仅搜索直接邻居的空间。结果是可以克服局部遮挡的更加健壮的树提取方法。用于获得最佳路径的成本函数考虑了气道概率图以及从对气道概率的多尺度Hessian特征分析得出的气道形状和方向的度量。与基于区域生长的方法相比,实现了显着的改进,树长了36%,假阳性率略有增加。

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