9781461486862-1461486866-Bayesian Essentials with R (Springer Texts in Statistics)

Bayesian Essentials with R (Springer Texts in Statistics)

ISBN-13: 9781461486862
ISBN-10: 1461486866
Edition: 2nd ed. 2014
Author: Christian P. Robert, Jean-Michel Marin
Publication date: 2013
Publisher: Springer
Format: Hardcover 310 pages
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Book details

ISBN-13: 9781461486862
ISBN-10: 1461486866
Edition: 2nd ed. 2014
Author: Christian P. Robert, Jean-Michel Marin
Publication date: 2013
Publisher: Springer
Format: Hardcover 310 pages

Summary

Bayesian Essentials with R (Springer Texts in Statistics) (ISBN-13: 9781461486862 and ISBN-10: 1461486866), written by authors Christian P. Robert, Jean-Michel Marin, was published by Springer in 2013. With an overall rating of 3.6 stars, it's a notable title among other Mathematical & Statistical (Software) books. You can easily purchase or rent Bayesian Essentials with R (Springer Texts in Statistics) (Hardcover) from BooksRun, along with many other new and used Mathematical & Statistical books and textbooks. And, if you're looking to sell your copy, our current buyback offer is $1.89.

Description

This Bayesian modeling book provides a self-contained entry to computational Bayesian statistics. Focusing on the most standard statistical models and backed up by real datasets and an all-inclusive R (CRAN) package called bayess, the book provides an operational methodology for conducting Bayesian inference, rather than focusing on its theoretical and philosophical justifications.

Readers are empowered to participate in the real-life data analysis situations depicted here from the beginning. Special attention is paid to the derivation of prior distributions in each case and specific reference solutions are given for each of the models. Similarly, computational details are worked out to lead the reader towards an effective programming of the methods given in the book. In particular, all R codes are discussed with enough detail to make them readily understandable and expandable.

Bayesian Essentials with R can be used as a textbook at both undergraduate and graduate levels. It is particularly useful with students in professional degree programs and scientists to analyze data the Bayesian way. The text will also enhance introductory courses on Bayesian statistics. Prerequisites for the book are an undergraduate background in probability and statistics, if not in Bayesian statistics.

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