Introduction to Bayesian Econometrics
eBook - ePub

Introduction to Bayesian Econometrics

A GUIded Toolkit using R

  1. 596 pages
  2. English
  3. ePUB (mobile friendly)
  4. Available on iOS & Android
eBook - ePub

Introduction to Bayesian Econometrics

A GUIded Toolkit using R

About this book

Introduction to Bayesian Econometrics: A GUIded Toolkit Using R offers a practical, conceptually clear, and computationally accessible pathway into Bayesian data analysis. Designed for readers who wish to apply Bayesian methods without necessarily investing years in programming, the book combines rigorous treatment of foundational ideas with a graphical user interface (GUI) that allows users to run Bayesian regression models in a user-friendly environment.

The first part develops the mathematical foundations of Bayesian inference by presenting all derivations step-by-step. This transparent treatment of conjugate models, including posterior analysis, marginal likelihoods, and posterior predictive distributions, provides readers with a strong theoretical base for the more advanced material that follows.

The second part focuses on implementation. It introduces the custom GUI for readers with little or no programming experience, demonstrates how to fit Bayesian models using established R packages, and guides more advanced users through programming key components of Bayesian samplers from scratch. This integrated approach enables readers with different backgrounds to engage with Bayesian methods at their preferred level of computational depth.

The third part extends the framework to modern Bayesian econometrics. It covers Bayesian machine learning, causal inference, and approximate methods, illustrating how Bayesian ideas can be applied to contemporary empirical challenges. By combining theory, software, and hands-on computation, the book provides a comprehensive entry point into both classical and modern Bayesian analysis.

Across all parts, the book is designed to support a wide range of users -beginners, intermediate programmers, and advanced learners-. To the best of the author's knowledge, no existing text combines mathematical transparency, software accessibility, and modern Bayesian topics in a single, integrated resource.

Information

Year
2026
Print ISBN
9781032354668
9781032353661
Edition
1
eBook ISBN
9781040711590

Table of contents

  1. Cover Page
  2. Half-Title Page
  3. Series Page
  4. Title Page
  5. Copyright Page
  6. Dedication Page
  7. Contents
  8. Foreword
  9. Preface
  10. Introduction
  11. Symbols
  12. I Foundations: Theory, simulation methods and programming
  13. 1 Basic formal concepts
  14. 2 Conceptual differences between the Bayesian and Frequentist approaches
  15. 3 Cornerstone models: Conjugate families
  16. 4 Simulation methods
  17. II Regression models: A GUIded toolkit
  18. 5 Graphical user interface
  19. 6 Univariate models
  20. 7 Multivariate models
  21. 8 Time Series models
  22. 9 Longitudinal/Panel data models
  23. 10 Bayesian model averaging
  24. III Advanced methods: A brief introduction
  25. 11 Semi-parametric and non-parametric models
  26. 12 Bayesian machine learning
  27. 13 Causal inference
  28. 14 Approximate Bayesian methods
  29. A Appendix
  30. Bibliography
  31. Index

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Yes, you can access Introduction to Bayesian Econometrics by Andre Ramirez Hassan,Andrés Ramírez-Hassan in PDF and/or ePUB format, as well as other popular books in Economics & Econometrics. We have over 1.5 million books available in our catalogue for you to explore.