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dalmatian: A Package for Fitting Double Hierarchical Linear Models in R via JAGS and nimble

机译:达尔马提亚:通过Jags和灵活性地拟合双层线性模型的包装

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Traditional regression models, including generalized linear mixed models, focus on understanding the deterministic factors that affect the mean of a response variable. Many biological studies seek to understand non-deterministic patterns in the variance or dispersion of a phenotypic or ecological response variable. We describe a new R package, dalmatian, that provides methods for fitting double hierarchical generalized linear models incorporating fixed and random predictors of both the mean and variance. Models are fit via Markov chain Monte Carlo sampling implemented in either JAGS or nimble and the package provides simple functions for monitoring the sampler and summarizing the results. We illustrate these functions through an application to data on food delivery by breeding pied flycatchers (Ficedula hypoleuca). Our intent is that this package makes it easier for practitioners to implement these models without having to learn the intricacies of Markov chain Monte Carlo methods.
机译:传统回归模型,包括广义线性混合模型,专注于理解影响响应变量的平均值的确定性因素。 许多生物学研究寻求了解表型或生态反应变量的方差或分散中的非确定性模式。 我们描述了一个新的R包,达尔马提亚人,提供了包含拟合和随机预测器的拟合和随机预测器的拟合双倍分层通用线性模型的方法。 模型适用于Markov链Monte Carlo采样,在JAG或NIMBEL中实现,包提供了监控采样器的简单功能并概述结果。 我们通过培育染色捕蝇器(Ficedula Hypoleuca)来说明这些功能。 我们的意图是,本次方案使从业者更容易实现这些模型,而无需了解马尔可夫链蒙特卡罗方法的复杂性。

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