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Evaluating Statistical Tests on OLAP Cubes to Compare Degree of Disease

机译:评估OLAP多维数据集的统计测试以比较疾病程度

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摘要

Statistical tests represent an important technique used to formulate and validate hypotheses on a dataset. They are particularly useful in the medical domain, where hypotheses link disease with medical measurements, risk factors, and treatment. In this paper, we propose to compute parametric statistical tests treating patient records as elements in a multidimensional cube. We introduce a technique that combines dimension lattice traversal and statistical tests to discover significant differences in the degree of disease within pairs of patient groups. In order to understand a cause--effect relationship, we focus on patient group pairs differing in one dimension. We introduce several optimizations to prune the search space, to discover significant group pairs, and to summarize results. We present experiments showing important medical findings and evaluating scalability with medical datasets.
机译:统计检验代表一种重要的技术,用于在数据集上制定和验证假设。它们在医学领域特别有用,在医学领域中,假设将疾病与医学测量,危险因素和治疗联系起来。在本文中,我们建议计算参数统计检验,将患者记录作为多维多维数据集中的元素。我们引入了一种结合维度格遍历和统计检验的技术,以发现成对的患者组中疾病程度的显着差异。为了理解因果关系,我们集中于一维上不同的患者组对。我们介绍了几种优化方法,以修剪搜索空间,发现重要的组对并汇总结果。我们提出的实验显示出重要的医学发现并评估了医学数据集的可扩展性。

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