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STANOVA: a smoothed-ANOVA-based model for spatio-temporal disease mapping

机译:STANOVA:基于时空分析的平滑ANOVA模型

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摘要

Spatio-temporal disease mapping can be viewed as a multivariate disease mapping problem with a given order of the geographic patterns to be studied. As a consequence, some of the techniques in multivariate literature could also be used to build spatio-temporal models. In this paper we propose using the smoothed ANOVA multivariate model for spatio-temporal problems. Under our approach the time trend for each geographic unit is modeled parametrically, projecting it on a preset orthogonal basis of functions (the contrasts in the smoothed ANOVA nomenclature), while the coefficients of these projections are considered to be spatially dependent random effects. Despite the parametric temporal nature of our proposal, we show with both simulated and real datasets that it may be as flexible as other spatio-temporal smoothing models proposed in the literature and may model spatio-temporal data with several sources of variability.
机译:时空疾病图谱可以看作是具有给定顺序的待研究地理模式的多元疾病图谱问题。结果,多元文献中的某些技术也可以用来建立时空模型。在本文中,我们建议使用平滑的ANOVA多元模型来解决时空问题。在我们的方法下,每个地理单位的时间趋势都是参数化建模的,并在预设的正交函数基础上进行投影(平滑的ANOVA术语中的对比),而这些投影的系数被认为是空间相关的随机效应。尽管我们建议的参数具有时间性,但我们通过模拟数据集和实际数据集都表明,它可能与文献中提出的其他时空平滑模型一样灵活,并且可以使用多种可变性来源对时空数据进行建模。

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