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glmmTMB Balances Speed and Flexibility Among Packages for Zero-inflated Generalized Linear Mixed Modeling

机译:glmmTMB平衡了零充气广义线性混合建模的包之间的速度和灵活性

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摘要

Count data can be analyzed using generalized linear mixed models when observations are correlated in ways that require random effects. However, count data are often zero-inflated, containing more zeros than would be expected from the typical error distributions. We present a new package, glmmTMB, and compare it to other R packages that fit zero-inflated mixed models. The glmmTMB package fits many types of GLMMs and extensions, including models with continuously distributed responses, but here we focus on count responses. glmmTMB is faster than glmmADMB, MCMCglmm, and brms, and more flexible than INLA and mgcv for zero-inflated modeling. One unique feature of glmmTMB (among packages that fit zero-inflated mixed models) is its ability to estimate the Conway-Maxwell-Poisson distribution parameterized by the mean. Overall, its most appealing features for new users may be the combination of speed, flexibility, and its interface’s similarity to lme4.
机译:当观测值以需要随机效应的方式关联时,可以使用广义线性混合模型来分析计数数据。但是,计数数据通常是零膨胀的,包含的零比典型误差分布所期望的多。我们提供了一个新的包glmmTMB,并将其与其他适合零膨胀混合模型的R包进行了比较。 glmmTMB软件包适合许多类型的GLMM和扩展,包括具有连续分布的响应的模型,但是这里我们重点关注计数响应。 glmmTMB的速度比glmmADMB,MCMCglmm和brms快,并且在零膨胀建模方面比INLA和mgcv更灵活。 glmmTMB的一个独特功能(在适合零膨胀混合模型的软件包中)是能够估计均值参数化的Conway-Maxwell-Poisson分布。总体而言,它对新用户最有吸引力的功能可能是速度,灵活性以及它与lme4的相似性的结合。

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