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首页> 外文期刊>Environmetrics >Analyzing environmental-trait interactions in ecological communities with fourth-corner latent variable models
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Analyzing environmental-trait interactions in ecological communities with fourth-corner latent variable models

机译:用第四角潜变模型分析生态社区的环境特征互动

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摘要

In ecological community studies it is often of interest to study the effect of species related trait variables on abundances or presence-absences. Specifically, the interest may lay in the interactions between environmental and trait variables. An increasingly popular approach for studying such interactions is to use the so-called fourth-corner model, which explicitly posits a regression model where the mean response of each species is a function of interactions between covariate and trait predictors (among other terms). On the other hand, many of the fourth-corner models currently applied in the literature are too simplistic to properly account for variation in environmental and trait response and any residual covariation between species. To overcome this problem, we propose a fourth-corner latent variable model which combines the following three features: latent variables to capture the correlation between species, fourth-corner terms to account for environment-trait interactions, and species-specific random slopes for modeling excess heterogeneity between species in their environmental response. We perform an extensive numerical study comparing a variety of fourth-corner models available in the literature which account for the aforementioned sources of variation to varying degrees. Simulation results demonstrate that the proposed fourth-corner latent variable models performed well when testing for the fourth-corner (interaction) coefficients, across both Type I error and power. By comparison, some models that do not full account for all relevant sources of variation suffer from inflated Type I error leading to potentially misleading inference. The proposed method is illustrated by an example on ground beetle data.
机译:在生态社区研究中,研究物种相关性状变量对丰富或存在的缺勤的影响往往有兴趣。具体地,兴趣可能呈现环境和特征变量之间的相互作用。一种越来越流行的学习这种相互作用的方法是使用所谓的第四个角模型,该模型明确地定位了每个物种的平均响应是协变量和特征预测因子之间的相互作用的函数(以及其他术语)。另一方面,目前在文献中应用的许多第四个角模型太简单,无法正确考虑环境和特征反应的变化以及物种之间的任何残留协变量。为了克服这个问题,我们提出了一个第四个角潜变量模型,它结合了以下三个特征:潜在变量来捕获物种,第四个角条款之间的相关性,以考虑环境特性相互作用,以及用于建模的物种特定的随机斜率物种在环境反应之间的过度异质性。我们执行广泛的数值研究,比较文献中可用的各种第四个角模型,其考虑了上述变化的变化来源。仿真结果表明,当跨两种I型错误和电源测试第四角(交互)系数时,所提出的第四个角潜变量模型良好。相比之下,不完全占所有相关变化来源的模型遭受I型误差导致可能误导推断的误差。所提出的方法通过地甲虫数据上的示例说明。

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