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Patch-Based Label Fusion for Automatic Multi-Atlas-Based Prostate Segmentation in MR Images

机译:基于补丁的标签融合用于MR图像中基于多图集的前列腺自动分割

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摘要

In this paper, we propose a 3D multi-atlas-based prostate segmentation method for MR images, which utilizes patch-based label fusion strategy. The atlases with the most similar appearance are selected to serve as the best subjects in the label fusion. A local patch-based atlas fusion is performed using voxel weighting based on anatomical signature. This segmentation technique was validated with a clinical study of 13 patients and its accuracy was assessed using the physicians’ manual segmentations (gold standard). Dice volumetric overlapping was used to quantify the difference between the automatic and manual segmentation. In summary, we have developed a new prostate MR segmentation approach based on nonlocal patch-based label fusion, demonstrated its clinical feasibility, and validated its accuracy with manual segmentations.
机译:在本文中,我们提出了一种基于3D多图谱的MR图像前列腺分割方法,该方法利用了基于补丁的标签融合策略。选择外观最相似的地图集作为标签融合中的最佳主题。使用基于解剖特征的体素加权执行基于局部补丁的图集融合。这项分割技术经过一项针对13位患者的临床研究的验证,并使用医师的手动分割技术(金标准)评估了其准确性。骰子体积重叠用于量化自动分割和手动分割之间的差异。总而言之,我们已经开发了一种基于基于非局部补丁的标签融合技术的新型前列腺MR分割方法,展示了其临床可行性,并通过手动分割验证了其准确性。

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