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Multiple-cluster detection test for purely temporal disease clustering: Integration of scan statistics and generalized linear models

机译:纯时间疾病聚类的多聚类检测测试:扫描统计量和广义线性模型的集成

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摘要

The spatial scan statistic is commonly used to detect spatial and/or temporal disease clusters in epidemiological studies. Although multiple clusters in the study space can be thus identified, current theoretical developments are mainly based on detecting a ‘single’ cluster. The standard scan statistic procedure enables the detection of multiple clusters, recursively identifying additional ‘secondary’ clusters. However, their p-values are calculated one at a time, as if each cluster is a primary one. Therefore, a new procedure that can accurately evaluate multiple clusters as a whole is needed. The present study focuses on purely temporal cases and then proposes a new test procedure that evaluates the p-value for multiple clusters, combining generalized linear models with an information criterion approach. This framework encompasses the conventional, currently widely used detection procedure as a special case. An application study adopting the new framework is presented, analysing the Japanese daily incidence of out-of-hospital cardiac arrest cases. The analysis reveals that the number of the incident increases around New Year’s Day in Japan. Further, simulation studies undertaken confirm that the proposed method possesses a consistency property that tends to select the correct number of clusters when the truth is known.
机译:在流行病学研究中,空间扫描统计量通常用于检测空间和/或时间疾病群。尽管可以确定研究空间中的多个聚类,但是当前的理论发展主要基于检测“单个”聚类。标准的扫描统计程序可以检测多个群集,从而递归地识别其他“次级”群集。但是,它们的p值一次只能计算一次,就好像每个群集都是主要群集一样。因此,需要一种可以整体上准确评估多个群集的新过程。本研究着重于纯时间情况,然后提出了一种新的测试程序,该程序将广义线性模型与信息准则方法结合起来,可以评估多个聚类的p值。作为特殊情况,该框架包括常规的,当前广泛使用的检测过程。提出了采用新框架的应用研究,分析了日本医院外心脏骤停病例的日发病率。分析显示,在日本的元旦前后,事件的数量有所增加。此外,进行的仿真研究证实,所提出的方法具有一致性属性,当已知真相时,该属性倾向于选择正确数目的聚类。

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  • 期刊名称 other
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  • 年(卷),期 -1(13),11
  • 年度 -1
  • 页码 e0207821
  • 总页数 15
  • 原文格式 PDF
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