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Trajectories bifurcations and pseudo-time in large clinical datasets: applications to myocardial infarction and diabetes data

机译:大型临床数据集中的轨迹分叉和伪时间:对心肌梗死和糖尿病数据的应用

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摘要

Large observational clinical datasets are becoming increasingly available for mining associations between various disease traits and administered therapy. These datasets can be considered as representations of the landscape of all possible disease conditions, in which a concrete disease state develops through stereotypical routes, characterized by “points of no return" and “final states" (such as lethal or recovery states). Extracting this information directly from the data remains challenging, especially in the case of synchronic (with a short-term follow-up) observations.
机译:大型观察临床数据集越来越多地可用于各种疾病性状和施用治疗之间的采矿协会。这些数据集可以被认为是所有可能疾病条件的景观的表示,其中一个具体疾病状态通过陈规定型路线发展,其特征在于“无回报点”和“最终状态”(例如致命或恢复状态)。直接从数据中提取此信息仍然具有挑战性,特别是在同步调整(具有短期随访)观察的情况下。

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