Cohort-based smoothing methods for age-specific contact rates.

IF 1.8 3区 数学 Q3 MATHEMATICAL & COMPUTATIONAL BIOLOGY
Yannick Vandendijck, Oswaldo Gressani, Christel Faes, Carlo G Camarda, Niel Hens
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引用次数: 0

Abstract

The use of social contact rates is widespread in infectious disease modeling since it has been shown that they are key driving forces of important epidemiological parameters. Quantification of contact patterns is crucial to parameterize dynamic transmission models and to provide insights on the (basic) reproduction number. Information on social interactions can be obtained from population-based contact surveys, such as the European Commission project POLYMOD. Estimation of age-specific contact rates from these studies is often done using a piecewise constant approach or bivariate smoothing techniques. For the latter, typically, smoothness is introduced in the dimensions of the respondent's and contact's age (i.e., the rows and columns of the social contact matrix). We propose a smoothing constrained approach-taking into account the reciprocal nature of contacts-introducing smoothness over the diagonal (including all subdiagonals) of the social contact matrix. This modeling approach is justified assuming that when people age their contact behavior changes smoothly. We call this smoothing from a cohort perspective. Two approaches that allow for smoothing over social contact matrix diagonals are proposed, namely (i) reordering of the diagonal components of the contact matrix and (ii) reordering of the penalty matrix ensuring smoothness over the contact matrix diagonals. Parameter estimation is done in the likelihood framework by using constrained penalized iterative reweighted least squares. A simulation study underlines the benefits of cohort-based smoothing. Finally, the proposed methods are illustrated on the Belgian POLYMOD data of 2006. Code to reproduce the results of the article can be downloaded on this GitHub repository https://github.com/oswaldogressani/Cohort_smoothing.

基于队列的年龄接触率平滑方法。
由于社会接触率是重要流行病学参数的关键驱动力,因此在传染病建模中广泛使用社会接触率。接触模式的量化对于动态传播模型的参数化和提供有关(基本)繁殖数量的见解至关重要。有关社会互动的信息可以从基于人群的接触调查中获得,例如欧盟委员会的 POLYMOD 项目。从这些研究中估算特定年龄段的接触率通常采用片断常数法或双变量平滑技术。对于后者,通常会在受访者和接触者的年龄维度(即社会接触矩阵的行和列)上引入平滑性。考虑到接触的互惠性,我们提出了一种平滑约束方法,即在社会接触矩阵的对角线(包括所有子对角线)上引入平滑性。这种建模方法的合理性在于,假设人们随着年龄的增长,其接触行为会发生平滑变化。我们称之为队列平滑。我们提出了两种允许社会接触矩阵对角线平滑化的方法,即 (i) 对接触矩阵的对角线成分重新排序,以及 (ii) 对惩罚矩阵重新排序,以确保接触矩阵对角线的平滑化。参数估计是在似然法框架下,利用受约束的惩罚迭代加权最小二乘法进行的。模拟研究强调了基于队列的平滑化的好处。最后,在 2006 年比利时 POLYMOD 数据上对所提出的方法进行了说明。重现文章结果的代码可从 GitHub 存储库 https://github.com/oswaldogressani/Cohort_smoothing 下载。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Biostatistics
Biostatistics 生物-数学与计算生物学
CiteScore
5.10
自引率
4.80%
发文量
45
审稿时长
6-12 weeks
期刊介绍: Among the important scientific developments of the 20th century is the explosive growth in statistical reasoning and methods for application to studies of human health. Examples include developments in likelihood methods for inference, epidemiologic statistics, clinical trials, survival analysis, and statistical genetics. Substantive problems in public health and biomedical research have fueled the development of statistical methods, which in turn have improved our ability to draw valid inferences from data. The objective of Biostatistics is to advance statistical science and its application to problems of human health and disease, with the ultimate goal of advancing the public''s health.
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