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An Analysis by Synthesis Approach for Automatic Vertebral Shape Identification in Clinical QCT

机译:临床QCT中椎骨形态自动识别的综合分析方法

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Quantitative computed tomography (QCT) is a widely used tool for osteoporosis diagnosis and monitoring. The assessment of cortical markers like cortical bone mineral density (BMD) and thickness is a demanding task, mainly because of the limited spatial resolution of QCT. We propose a direct model based method to automatically identify the surface through the center of the cortex of human vertebra. We develop a statistical bone model and analyze its probability distribution after the imaging process. Using an as-rigid-as-possible deformation we find the cortical surface that maximizes the likelihood of our model given the input volume. Using the European Spine Phantom (ESP) and a high resolution μCT scan of a cadaveric vertebra, we show that the proposed method is able to accurately identify the real center of cortex ex-vivo. To demonstrate the in-vivo applicability of our method we use manually obtained surfaces for comparison.
机译:定量计算机断层扫描(QCT)是骨质疏松症诊断和监测的一种广泛使用的工具。评估皮质标记物(如皮质骨矿物质密度(BMD)和厚度)是一项艰巨的任务,主要是因为QCT的空间分辨率有限。我们提出了一种基于直接模型的方法,可以通过人的椎骨皮质中心自动识别表面。我们开发了统计骨骼模型,并在成像过程之后分析了其概率分布。通过使用尽可能严格的变形,我们找到了在给定输入体积的情况下最大化模型可能性的皮质表面。使用欧洲脊柱体模(ESP)和尸体椎骨的高分辨率μCT扫描,我们证明了所提出的方法能够准确识别离体皮层的真实中心。为了证明我们的方法在体内的适用性,我们使用人工获得的表面进行比较。

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