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Automated threshold-independent cortex segmentation by 3D-texture analysis of HR-pQCT scans

机译:通过HR-pQCT扫描的3D纹理分析自动进行阈值无关的皮质分割

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The quantitative assessment of metabolic bone diseases relies on tissue properties such as bone mineral density (BMD) and bone microarchitecture. In spite of an increasing number of publications using high-resolution peripheral quantitative computed-tomography (HR-pQCT), the accurate and reproducible separation of cortical and trabecular bone remains challenging. In this paper, we present a novel, fully automated, threshold-independent technique for the segmentation of cortical and trabecular bone in HR-pQCT scans. This novel post-processing method is based on modeling appearance characteristics from manually annotated cases. In our experiments the algorithm automatically selected texture features with high differentiating power and trained a classifier to separate cortical and trabecular bone. From this mask, cortical thickness and tissue volume could be calculated with high accuracy. The overlap between the proposed threshold-independent segmentation tool (TIST) and manual contouring was 0.904 ± 0.045 (Dice coefficient). In our experiments, TIST obtained higher overall accuracy in our measurements than other techniques.
机译:代谢性骨疾病的定量评估依赖于组织特性,例如骨矿物质密度(BMD)和骨微结构。尽管使用高分辨率外围定量计算机断层扫描(HR-pQCT)的出版物数量不断增加,但皮质骨和小梁骨的准确和可重现分离仍然具有挑战性。在本文中,我们为HR-pQCT扫描中的皮质和小梁骨分割提供了一种新颖的,完全自动化的阈值独立技术。这种新颖的后处理方法基于对手动注释案例的外观特征建模。在我们的实验中,该算法自动选择具有高区分能力的纹理特征,并训练了一个分类器来分离皮层和小梁骨。通过该掩模,可以高精度地计算皮层厚度和组织体积。建议的阈值无关分割工具(TIST)和手动轮廓之间的重叠为0.904±0.045(骰子系数)。在我们的实验中,TIST在我们的测量中获得了比其他技术更高的整体精度。

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