JOURNAL ARTICLE

Analysis of Capture–Recapture Models with Individual Covariates Using Data Augmentation

J. Andrew Royle

Year: 2008 Journal:   Biometrics Vol: 65 (1)Pages: 267-274   Publisher: Oxford University Press

Abstract

Summary I consider the analysis of capture–recapture models with individual covariates that influence detection probability. Bayesian analysis of the joint likelihood is carried out using a flexible data augmentation scheme that facilitates analysis by Markov chain Monte Carlo methods, and a simple and straightforward implementation in freely available software. This approach is applied to a study of meadow voles ( Microtus pennsylvanicus ) in which auxiliary data on a continuous covariate (body mass) are recorded, and it is thought that detection probability is related to body mass. In a second example, the model is applied to an aerial waterfowl survey in which a double‐observer protocol is used. The fundamental unit of observation is the cluster of individual birds, and the size of the cluster (a discrete covariate) is used as a covariate on detection probability.

Keywords:
Covariate Markov chain Monte Carlo Mark and recapture Statistics Bayesian probability Computer science Dropout (neural networks) Gibbs sampling Markov chain Mathematics Machine learning Population

Metrics

106
Cited By
6.76
FWCI (Field Weighted Citation Impact)
35
Refs
0.98
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Census and Population Estimation
Physical Sciences →  Mathematics →  Statistics and Probability
Wildlife Ecology and Conservation
Physical Sciences →  Environmental Science →  Ecology
Animal Ecology and Behavior Studies
Physical Sciences →  Environmental Science →  Ecology

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