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Erschienen in: Population Ecology 1/2016

07.09.2015 | Special feature: Review

Bayesian data analysis in population ecology: motivations, methods, and benefits

verfasst von: Robert M. Dorazio

Erschienen in: Population Ecology | Ausgabe 1/2016

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Abstract

During the 20th century ecologists largely relied on the frequentist system of inference for the analysis of their data. However, in the past few decades ecologists have become increasingly interested in the use of Bayesian methods of data analysis. In this article I provide guidance to ecologists who would like to decide whether Bayesian methods can be used to improve their conclusions and predictions. I begin by providing a concise summary of Bayesian methods of analysis, including a comparison of differences between Bayesian and frequentist approaches to inference when using hierarchical models. Next I provide a list of problems where Bayesian methods of analysis may arguably be preferred over frequentist methods. These problems are usually encountered in analyses based on hierarchical models of data. I describe the essentials required for applying modern methods of Bayesian computation, and I use real-world examples to illustrate these methods. I conclude by summarizing what I perceive to be the main strengths and weaknesses of using Bayesian methods to solve ecological inference problems.

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1
I use bracket notation (Gelfand and Smith 1990) to specify probability density functions; thus, [xy] denotes the joint density of random variables X and Y, [x | y] denotes the conditional density of X given \(Y=y\), and [x] denotes the unconditional (marginal) density of X.
 
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Metadaten
Titel
Bayesian data analysis in population ecology: motivations, methods, and benefits
verfasst von
Robert M. Dorazio
Publikationsdatum
07.09.2015
Verlag
Springer Japan
Erschienen in
Population Ecology / Ausgabe 1/2016
Print ISSN: 1438-3896
Elektronische ISSN: 1438-390X
DOI
https://doi.org/10.1007/s10144-015-0503-4

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