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Bayesian Statistical Modeling with Stan, R, and Python

Kentaro Matsuura ()
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Kentaro Matsuura: HOXO-M Inc.

in Springer Books from Springer

Date: 2022
ISBN: 978-981-19-4755-1
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Chapters in this book:

Ch Chapter 1 Overview of Statistical Modeling
Kentaro Matsuura
Ch Chapter 10 Discrete Parameters
Kentaro Matsuura
Ch Chapter 11 Time Series Data Analysis with State Space Model
Kentaro Matsuura
Ch Chapter 12 Spatial Data Analysis Using Gaussian Markov Random Fields and Gaussian Processes
Kentaro Matsuura
Ch Chapter 13 Usages of MCMC Samples from Posterior and Predictive Distributions
Kentaro Matsuura
Ch Chapter 14 Other Advanced Topics
Kentaro Matsuura
Ch Chapter 2 Overview of Bayesian Inference
Kentaro Matsuura
Ch Chapter 3 Overview of Stan
Kentaro Matsuura
Ch Chapter 4 Simple Linear Regression
Kentaro Matsuura
Ch Chapter 5 Basic Regressions and Model Checking
Kentaro Matsuura
Ch Chapter 6 Introduction of Probability Distributions
Kentaro Matsuura
Ch Chapter 7 Issues of Regression
Kentaro Matsuura
Ch Chapter 8 Hierarchical Model
Kentaro Matsuura
Ch Chapter 9 How to Improve MCMC ConvergenceMCMC convergence
Kentaro Matsuura

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DOI: 10.1007/978-981-19-4755-1

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