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Prediction of the Location of the Lumbar Aorta using the First Four Lumbar Vertebrae as a Predictor

机译:使用前四个腰椎作为预测器预测腰主动脉的位置

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This paper is one of the first steps towards the development of a mass-screening tool, well-suited for quantizing the extend of calcific deposits in the lumbar aorta, which should deliver reliable and easily reproducible data. The major problem is that non-calcified parts of the aorta are not visible on conventional x-ray images. We investigate whether or not it is possible to predict the location of the lumbar aorta, using the first four lumbar vertebrae as prior. We build a conditional probabilistic model from 90 manually annotated datasets. Using this model we made inferences on the position of the aortic walls given the position and shape of the four vertebrae. Of particular interest is the performance of the probabilistic model in comparison to the mean aortic shape. Due to the fact that our data set for this particular study only contained 90 hand-annotated images, we evaluated the model using the "leave-one-out" method. The resulting distance from the predicted to the actual aorta was then compared to the distance from the mean aorta to the actual aorta. The obtained results are encouraging; our conditional model provides results that are up to 38% better than the prediction using only the mean shape, and yields an overlap index of 0.89, whereas the mean shape only produces 0.83.
机译:本文是开发大规模筛查工具的第一步,该工具非常适合量化腰主动脉中钙化沉积物的范围,该方法应可提供可靠且易于再现的数据。主要问题是主动脉的未钙化部分在常规X射线图像上不可见。我们调查是否有可能使用前四个腰椎来预测腰主动脉的位置。我们从90个手动注释的数据集中建立了条件概率模型。使用该模型,我们根据四个椎骨的位置和形状推断了主动脉壁的位置。与平均主动脉形状相比,概率模型的性能尤为令人关注。由于我们针对该特定研究的数据集仅包含90张带有手注释的图像,因此我们使用“留一法”方法对模型进行了评估。然后将所得的从预测主动脉到实际主动脉的距离与从平均主动脉到实际主动脉的距离进行比较。获得的结果令人鼓舞;我们的条件模型提供的结果比仅使用平均形状的预测结果高38%,并且重叠指数为0.89,而平均形状仅产生0.83。

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