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Interactive Exploration of Left Atrium Population-Level Morphology in Atrial Fibrillation Patients

机译:房颤患者左心房人口水平形态学的互动探索

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We have developed computational methods for interactively exploring the shape of the left-atrium in a population of atrial fibrillation patients. We analyze the LA shape through a shape-learning algorithm termed as particle-based modeling (PBM), in which we extract surface contours from a population of images and then parameterize population-level shape statistics through the automatic placement of a dense set of homologous landmark positions (aka correspondences) using an optimization on information content. We then generate a 2-D embedding of the resulting high-dimensional dataset which allows us to visualize the data on a scatter plot, with each data point representing a single sample. This parameterization of the shape characteristics of samples collapsed onto a single plot gives us a visual representation of the population-level morphology of the data. Cardiac MR angiography data from 212 AF patients was collected retrospectively from a database of AF patients at the University of Utah. From the 2-D scatter plot, we were able to interactively select individual samples, view their shapes, and see associated clinical data. We can also map new patients to infer their relations to other patients in the population via querying nearby samples and viewing their clinical data.
机译:我们已经开发了用于交互式探索房颤患者人群中左心房形状的计算方法。我们通过称为基于粒子的建模(PBM)的形状学习算法来分析LA形状,在该算法中,我们从一组图像中提取表面轮廓,然后通过自动放置一组密集的同源序列来对种群级形状统计参数进行参数化使用信息内容的优化来实现地标位置(又称对应关系)。然后,我们生成结果高维数据集的二维嵌入,这使我们可以可视化散点图上的数据,每个数据点代表一个样本。折叠到单个图上的样本的形状特征的这种参数化使我们可以直观地表示出数据的种群级形态。回顾性地从犹他大学的AF患者数据库中收集了212名AF患者的心脏MR血管造影数据。从二维散点图中,我们能够以交互方式选择单个样本,查看其形状并查看相关的临床数据。我们还可以通过查询附近的样本并查看其临床数据来绘制新患者的图谱,以推断他们与人群中其他患者的关系。

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