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A Measurement Error Model for Heterogeneous Capture Probabilities in Mark-Recapture Experiments: An Estimating Equation Approach

机译:a measurement Error model for Heterogeneous Capture probabilities in mark-Recapture Experiments: an Estimating Equation approach

摘要

Logistic models for capture probabilities that depend on covariates are effective if the covariates can be measured exactly. If there is measurement error so that a surrogate for the covariate is observed rather than the covariate itself, simple adjustments may be made if the parameters of joint distribution of the covariate and the surrogate are known. Here we consider the case when a surrogate is observed whenever an individual is captured and the parameters must also be estimated from the data. An estimating equation regression calibration approach is developed and it is illustrated on a real dataset where the surrogate is an individual bird's wing-length, which varies from occasion to occasion. This article has supplementary material online.
机译:如果可以精确地测量协变量,则用于捕获概率的逻辑模型将非常有效。如果存在测量误差,从而观察到协变量的替代变量而不是协变量本身,则在已知协变量和替代变量的联合分布参数的情况下,可以进行简单的调整。在这里,我们考虑的情况是,每当一个人被捕获时都会观察到替代,并且还必须从数据中估计参数。开发了一种估计方程回归校准方法,并在实际数据集上进行了说明,其中替代是单个鸟的翅膀长度,随时间而变化。本文在线提供了补充材料。

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  • 作者

    Huggins R.; Hwang W.H.;

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  • 年度 2014
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  • 原文格式 PDF
  • 正文语种 en_US
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