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Covariate and multinomial: Accounting for distance in movement in capture–recapture analyses

机译:协变量和多项式:在捕获-捕获分析中考虑移动距离

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摘要

Many biological quantities cannot be measured directly but rather need to be estimated from models. Estimates from models are statistical objects with variance and, when derived simultaneously, covariance. It is well known that their variance–covariance (VC) matrix must be considered in subsequent analyses. Although it is always preferable to carry out the proposed analyses on the raw data themselves, a two‐step approach cannot always be avoided. This situation arises when the parameters of a multinomial must be regressed against a covariate. The Delta method is an appropriate and frequently recommended way of deriving variance approximations of transformed and correlated variables. Implementing the Delta method is not trivial, and there is a lack of a detailed information on the procedure in the literature for complex situations such as those involved in constraining the parameters of a multinomial distribution. This paper proposes a how‐to guide for calculating the correct VC matrices of dependant estimates involved in multinomial distributions and how to use them for testing the effects of covariates in post hoc analyses when the integration of these analyses directly into a model is not possible. For illustrative purpose, we focus on variables calculated in capture–recapture models, but the same procedure can be applied to all analyses dealing with correlated estimates with multinomial distribution and their variances and covariances.
机译:许多生物量无法直接测量,而需要从模型中进行估算。来自模型的估计值是具有方差的统计对象,当同时导出时,具有协方差。众所周知,在随​​后的分析中必须考虑它们的方差-协方差(VC)矩阵。尽管总是最好对原始数据本身进行建议的分析,但始终不能避免采用两步法。当多项式的参数必须针对协变量进行回归时,就会出现这种情况。 Delta方法是推导转换后的变量和相关变量的方差近似值的一种合适且经常被推荐的方法。实施Delta方法并非易事,而且对于复杂情况(例如涉及约束多项式分布参数的情况),文献中缺少有关该过程的详细信息。本文提出了一种计算指南,用于计算多项式分布中涉及的相关估计的正确VC矩阵,以及在无法将这些分析直接集成到模型中时如何使用它们来测试事后分析中协变量的影响。为了说明的目的,我们将重点放在捕获-捕获模型中计算出的变量上,但是可以将相同的过程应用于所有涉及多项式分布及其方差和协方差的相关估计的分析。

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