论文标题

引入各向异性Minkowski功能和生物医学成像中局部结构分析的定量各向异性测量

Introducing Anisotropic Minkowski Functionals and Quantitative Anisotropy Measures for Local Structure Analysis in Biomedical Imaging

论文作者

Wismueller, Axel, De, Titas, Lochmueller, Eva, Eckstein, Felix, Nagarajan, Mahesh B.

论文摘要

Minkowski功能在各种医学图像处理任务中都证明了Minkowski功能在不同生物组织类型中表征局部结构的能力。我们引入各向异性Minkowski功能(AMF)作为一种新型变体,可捕获基础灰度结构的固有各向异性。为了量化以我们方法为特征的各向异性,我们进一步引入了一种方法,以计算通过MR扩散张量成像(即分数各向异性)中使用的技术动机的定量度量。我们在研究背景下展示了我们的方法在表征小梁骨微体系结构在近端股骨中的局部结构特性的适用性,如在多探测器CT上可视化。为此,对从头部,颈部和转子区域提取的每个ROI的像素进行了本地计算AMF。然后使用分数各向异性来量化这些ROI中的小梁结构的局部各向异性,并比较其在不同解剖区域中的分布。我们的结果表明,与转子区域相比,头部和颈部区域中各向异性小梁结构的浓度明显更高(p <10-4)。我们还评估了此类AMF预测从50个供体获得的股骨近端标本股头的骨强度的能力。我们的结果表明,当与多回归模型结合使用时,此类AMF可以胜过更多常规特征,例如预测故障负载。我们得出的结论是,这种各向异性Minkowski功能可以捕获有关局部结构方向性属性的有价值的信息,这在广泛的生物医学成像应用范围内可能很有用。

The ability of Minkowski Functionals to characterize local structure in different biological tissue types has been demonstrated in a variety of medical image processing tasks. We introduce anisotropic Minkowski Functionals (AMFs) as a novel variant that captures the inherent anisotropy of the underlying gray-level structures. To quantify the anisotropy characterized by our approach, we further introduce a method to compute a quantitative measure motivated by a technique utilized in MR diffusion tensor imaging, namely fractional anisotropy. We showcase the applicability of our method in the research context of characterizing the local structure properties of trabecular bone micro-architecture in the proximal femur as visualized on multi-detector CT. To this end, AMFs were computed locally for each pixel of ROIs extracted from the head, neck and trochanter regions. Fractional anisotropy was then used to quantify the local anisotropy of the trabecular structures found in these ROIs and to compare its distribution in different anatomical regions. Our results suggest a significantly greater concentration of anisotropic trabecular structures in the head and neck regions when compared to the trochanter region (p < 10-4). We also evaluated the ability of such AMFs to predict bone strength in the femoral head of proximal femur specimens obtained from 50 donors. Our results suggest that such AMFs, when used in conjunction with multi-regression models, can outperform more conventional features such as BMD in predicting failure load. We conclude that such anisotropic Minkowski Functionals can capture valuable information regarding directional attributes of local structure, which may be useful in a wide scope of biomedical imaging applications.

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