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Statistical methods for constructing disease comorbidity networks from longitudinal inpatient data

机译:从纵向住院患者数据构建疾病合并症网络的统计方法

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摘要

Tools from network science can be utilized to study relations between diseases. Different studies focus on different types of inter-disease linkages. One of them is the comorbidity patterns derived from large-scale longitudinal data of hospital discharge records. Researchers seek to describe comorbidity relations as a network to characterize pathways of disease progressions and to predict future risks. The first step in such studies is the construction of the network itself, which subsequent analyses rest upon. There are different ways to build such a network. In this paper, we provide an overview of several existing statistical approaches in network science applicable to weighted directed networks. We discuss the differences between the null models that these models assume and their applications. We apply these methods to the inpatient data of approximately one million people, spanning approximately 17 years, pertaining to the Montreal Census Metropolitan Area. We discuss the differences in the structure of the networks built by different methods, and different features of the comorbidity relations that they extract. We also present several example applications of these methods.
机译:网络科学的工具可以用来研究疾病之间的关系。不同的研究侧重于疾病间联系的不同类型。其中之一是从医院出院记录的大规模纵向数据得出的合并症模式。研究人员试图将合并症关系描述为一个网络,以表征疾病进展的路径并预测未来的风险。这些研究的第一步是网络本身的构建,随后的分析将基于此。建立这种网络有不同的方法。在本文中,我们提供了适用于加权定向网络的网络科学中几种现有统计方法的概述。我们讨论了这些模型假定的空模型与其应用之间的差异。我们将这些方法应用于涉及蒙特利尔人口普查都市区的大约一百万人(约17年)的住院数据。我们讨论了用不同方法构建的网络结构的差异,以及它们提取的合并症关系的不同特征。我们还将介绍这些方法的几个示例应用程序。

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