Studyguide for Bayesian Population Analysis Using WinBUGS, a Hierarchical Perspective by Kery, Marc

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Studyguide for Bayesian Population Analysis Using WinBUGS, a Hierarchical Perspective by Kery, Marc - read free eBook in online reader or directly download on the web page. Select files or add your book in reader. Download and read online ebook Studyguide for Bayesian Population Analysis Using WinBUGS, a Hierarchical Perspective by Kery, Marc write by Cram101. This book was released on . Studyguide for Bayesian Population Analysis Using WinBUGS, a Hierarchical Perspective by Kery, Marc available in PDF, EPUB and Kindle.

Studyguide for Bayesian Population Analysis Using Winbugs

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Release : 2013-05
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Book Rating : 193/5 ( reviews)

Studyguide for Bayesian Population Analysis Using Winbugs - read free eBook in online reader or directly download on the web page. Select files or add your book in reader. Download and read online ebook Studyguide for Bayesian Population Analysis Using Winbugs write by Cram101 Textbook Reviews. This book was released on 2013-05. Studyguide for Bayesian Population Analysis Using Winbugs available in PDF, EPUB and Kindle. Never HIGHLIGHT a Book Again Includes all testable terms, concepts, persons, places, and events. Cram101 Just the FACTS101 studyguides gives all of the outlines, highlights, and quizzes for your textbook with optional online comprehensive practice tests. Only Cram101 is Textbook Specific. Accompanies: 9780872893795. This item is printed on demand.

Bayesian Population Analysis Using WinBUGS

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Release : 2012
Genre : Computers
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Book Rating : 208/5 ( reviews)

Bayesian Population Analysis Using WinBUGS - read free eBook in online reader or directly download on the web page. Select files or add your book in reader. Download and read online ebook Bayesian Population Analysis Using WinBUGS write by Marc Kéry. This book was released on 2012. Bayesian Population Analysis Using WinBUGS available in PDF, EPUB and Kindle. Bayesian statistics has exploded into biology and its sub-disciplines, such as ecology, over the past decade. The free software program WinBUGS, and its open-source sister OpenBugs, is currently the only flexible and general-purpose program available with which the average ecologist can conduct standard and non-standard Bayesian statistics. Comprehensive and richly commented examples illustrate a wide range of models that are most relevant to the research of a modern population ecologist All WinBUGS/OpenBUGS analyses are completely integrated in software R Includes complete documentation of all R and WinBUGS code required to conduct analyses and shows all the necessary steps from having the data in a text file out of Excel to interpreting and processing the output from WinBUGS in R

Bayesian Methods and Applications Using WinBUGS

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Release : 2010
Genre : Bayesian statistical decision theory
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Bayesian Methods and Applications Using WinBUGS - read free eBook in online reader or directly download on the web page. Select files or add your book in reader. Download and read online ebook Bayesian Methods and Applications Using WinBUGS write by Palavinnage Saman Muthukumarana. This book was released on 2010. Bayesian Methods and Applications Using WinBUGS available in PDF, EPUB and Kindle. In Bayesian statistics we are interested in the posterior distribution of parameters. In simple cases we can derive analytical expressions for the posterior. However in most situations, the posterior expectations cannot be calculated analytically due to the complexity of the integrals. This thesis develops some new methodologies for applied problems which deal with multidimensional parameters, complex model structures and complex likelihood functions. The first project is concerned with the simulation of one-day cricket matches. Given that only a finite number of outcomes can occur on each ball, a discrete generator on a finite set is developed where the outcome probabilities are estimated from historical data. The probabilities depend on the batsman, the bowler, the number of wickets lost, the number of balls bowled and the innings. The proposed simulator appears to do a reasonable job at producing realistic results. The simulator allows investigators to address complex questions involving one-day cricket matches. The second project investigates the suitability of Dirichlet process priors in the Bayesian analysis of network data. Dirichlet process priors allow the researcher to weaken prior assumptions by going from a parametric to a semiparametric framework. This is important in the analysis of network data where complex nodal relationships rarely allow a researcher the confidence in assigning parametric priors. The Dirichlet process also provides a clustering mechanism which is often suitable for network data where groups of individuals in a network can be thought of as arising from the same cohort. The approach is highlighted on two network models and implemented using WinBUGS. The third project develops a Bayesian latent variable model to analyze ordinal survey data. The data are viewed as multivariate responses arising from a class of continuous latent variables with known cut-points. Each respondent is characterized by two parameters that have a Dirichlet process as their joint prior distribution. The proposed mechanism adjusts for classes of personality traits. As the resulting posterior distribution is complex and high-dimensional, posterior expectations are approximated by MCMC methods. The methodology is tested through simulation studies and illustrated using student feedback data from course evaluations at Simon Fraser University.

A First Course in Bayesian Statistical Methods

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Release : 2009-06-02
Genre : Mathematics
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Book Rating : 078/5 ( reviews)

A First Course in Bayesian Statistical Methods - read free eBook in online reader or directly download on the web page. Select files or add your book in reader. Download and read online ebook A First Course in Bayesian Statistical Methods write by Peter D. Hoff. This book was released on 2009-06-02. A First Course in Bayesian Statistical Methods available in PDF, EPUB and Kindle. A self-contained introduction to probability, exchangeability and Bayes’ rule provides a theoretical understanding of the applied material. Numerous examples with R-code that can be run "as-is" allow the reader to perform the data analyses themselves. The development of Monte Carlo and Markov chain Monte Carlo methods in the context of data analysis examples provides motivation for these computational methods.