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Prediction of growth based on shape analysis of atherosclerotic calcifications from lateral X-ray images

机译:基于横向X射线图像的动脉粥样硬化钙化形状分析的增长预测

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We present a method for prediction of atherosclerotic growth based on a training set of 229 2D manually annotated baseline and corresponding follow-up calcifications from lateral X-ray images over an 8 year period. The prediction uses affine shape analysis based on singular value decomposition where non-rigid shapes are modeled as projections of rigid high-dimensional shapes. The SVD prediction was compared to growth based on dilation and predictive conditional PCA. The SVD model yields the largest Jaccard score indicating that the SVD model captures the most of the growth. We also found that small circular shapes grow the most which is likely due to the higher growth potential in smaller calcifications. Furthermore, we are able to predict the biological risk factors better by a joint shape and biology model that suggests a relationship between the shapes and the risk factors.
机译:我们提出了一种基于229个2D 2D的训练组的动脉粥样硬化生长预测的方法,并在8年期间,来自横向X射线图像的相应随访钙化。 该预测使用基于奇异值分解的仿射形状分析,其中非刚性形状被建模为刚性高维形状的突起。 将SVD预测与基于扩张和预测条件PCA的生长进行比较。 SVD模型产生最大的Jaccard评分,表明SVD模型捕获了大部分增长。 我们还发现,小圆形形状增长最可能导致较小的钙化中的增长潜力较高。 此外,我们能够通过联合形状和生物学模型来预测生物危险因素,这些模型表明形状与危险因素之间的关系。

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