首页> 外文会议>International Conference on Information Processing in Medical Imaging(IPMI 2007) >Incorporation of Regional Information in Optimal 3-D Graph Search with Application for Intraretinal Layer Segmentation of Optical Coherence Tomography Images
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Incorporation of Regional Information in Optimal 3-D Graph Search with Application for Intraretinal Layer Segmentation of Optical Coherence Tomography Images

机译:在最佳3-D图形搜索中纳入区域信息,以应用光学相干断层扫描图像的intraretinal层分割

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We present a method for the incorporation of regional image information in a 3-D graph-theoretic approach for optimal multiple surface segmentation. By transforming the multiple surface segmentation task into finding a minimum-cost closed set in a vertex-weighted graph, the optimal set of feasible surfaces with respect to an objective function can be found. In the past, this family of graph search applications only used objective functions which incorporated "on-surface" costs. Here, novel "in-region" costs are incorporated. Our new approach is applied to the segmentation of seven intraretinal layer surfaces of 24 3-D macular optical coherence tomography images from 12 subjects. Compared to an expert-defined independent standard, unsigned border positioning errors are comparable to the inter-observer variability (7.8±5.0μm and 8.1±3.6μm, respectively).
机译:我们提出了一种在三维图 - 理论方法中纳入区域图像信息的方法,以获得最佳多表面分割。通过将多个表面分割任务转换为在顶点加权图中找到最小成本闭合,可以找到关于目标函数的最佳可行性表面。在过去,这家族的图表搜索应用程序仅使用了具有“表面”成本的客观函数。这里,结合了新的“区域”成本。我们的新方法适用于来自12个受试者的24个3-D Mathular光学相干断层扫描图像的七个鼻内层表面的分割。与专业定义的独立标准相比,无符号边界定位误差与观察者间变异性相当(分别为7.8±5.0μm和8.1±3.6μm)。

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