This text provides a state-of-the-art treatment of distributional regression, accompanied by real-world examples from diverse areas of application. Maximum likelihood, Bayesian and machine learning approaches are covered in-depth and contrasted, providing an integrated perspective on GAMLSS for researchers in statistics and other data-rich fields.
This text provides a state-of-the-art treatment of distributional regression, accompanied by real-world examples from diverse areas of application. Maximum likelihood, Bayesian and machine learning approaches are covered in-depth and contrasted, providing an integrated perspective on GAMLSS for researchers in statistics and other data-rich fields.Hinweis: Dieser Artikel kann nur an eine deutsche Lieferadresse ausgeliefert werden.
Produktdetails
Produktdetails
Cambridge Series in Statistical and Probabilistic Mathematics
Mikis D. Stasinopoulos is Professor of Statistics at the School of Computing and Mathematical Sciences, University of Greenwich. He is, together with Professor Bob Rigby, coauthor of the original Royal Statistical Society article on GAMLSS. He has also coauthored three books on distributional regression, and in particular the theoretical and computational aspects of the GAMLSS framework.
Inhaltsangabe
Preface Notation and Termanology Part I. Introduction and Basics: 1. Distributional Regression Models 2. Distributions 3. Additive Model Terms Part II. Statistical Inference in GAMLSS: 4. Inferential Methods 5. Penalized Maximum Likelihood Inference 6. Bayesian Inference 7. Statistical Boosting for GAMLSS Part. III Applications and Case Studies: 8. Fetal Ultrasound 9. Speech Intelligibility Testing 10. Social Media Post Performance 11. Childhood Undernutrition in India 12. Socioeconomic Determinants of Federal Election Outcomes in Germany 13. Variable Selection for Gene Expression Data Appendix A. Continuous Distributions Appendix B. Discrete Distributions Bibliography Index.
Preface Notation and Termanology Part I. Introduction and Basics: 1. Distributional Regression Models 2. Distributions 3. Additive Model Terms Part II. Statistical Inference in GAMLSS: 4. Inferential Methods 5. Penalized Maximum Likelihood Inference 6. Bayesian Inference 7. Statistical Boosting for GAMLSS Part. III Applications and Case Studies: 8. Fetal Ultrasound 9. Speech Intelligibility Testing 10. Social Media Post Performance 11. Childhood Undernutrition in India 12. Socioeconomic Determinants of Federal Election Outcomes in Germany 13. Variable Selection for Gene Expression Data Appendix A. Continuous Distributions Appendix B. Discrete Distributions Bibliography Index.
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