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Application of Weighted Alternating Least Squares on Constructing the Disease Networks in the Heterogeneous Process of Aging

机译:加权交替最小二乘在老龄化异构过程中疾病网络构建中的应用

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Nowadays, the number of comorbidities (physical-physical, mental-mental, physical-mental) is growing fast. The potential network structure of highly related diseases could be revealed and found by several approaches with the concept of disease network, such as Weighted Alternating Least Squares (WALS). The 2012 medical history of the Health Examination for the Elderly of Taipei City was used for this study. Based on traditional correlation analysis, the results show that physical and mental diseases/disorders have some special comorbid structure. Moreover, the correlations had some potential clusters with significant between-cluster separation. However, while we used WALS approach to explore the hidden structure of disease networks, the complex and unexpected disease networks of the aging population were revealed according to subjects' medical history. The hidden structure could be identified and further used for WALS calculating via matching controls who had no the specific disease to cases who carried it by other disease diagnosis. Our findings showed the predictive accuracy with 0.83 for the diagnostic model. It indicated the importance of hidden factors being used for further calculating the disease correlations of multisystem disorders.
机译:如今,合并症(生理,生理,心理,心理)的数量正在快速增长。高度相关疾病的潜在网络结构可以通过疾病网络概念的几种方法来揭示和发现,例如加权最小二乘法(WALS)。这项研究使用了2012年台北市老年人健康检查的病历。根据传统的相关分析,结果表明,身心疾病/疾病具有某些特殊的共病结构。此外,相关性具有一些潜在的簇,簇之间的分离明显。然而,尽管我们使用WALS方法探索疾病网络的隐藏结构,但根据受试者的病史揭示了人口老龄化的复杂而出乎意料的疾病网络。可以识别出隐藏的结构,并将其通过与没有其他疾病诊断的特定疾病相匹配的对照进行进一步的WALS计算,这些对照没有特定的疾病。我们的发现表明诊断模型的预测准确性为0.83。它表明了用于进一步计算多系统疾病的疾病相关性的隐藏因素的重要性。

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