Biased Sampling, Over-identied Parameter Problems and Beyond - Couverture rigide

Livre 10 sur 19: ICSA Book Series in Statistics

Qin, Jing

 
9789811048548: Biased Sampling, Over-identied Parameter Problems and Beyond

Synopsis

Chapter 1. Some Examples on Biased Sampling Problems.- Chapter 2. Some Results in Parametric Likelihood and Estimating Functions.- Chapter 3. Nonparametric Maximum Likelihood Estimation and Empirical Likelihood Method.- Chapter 4. General Results in Multiple Samples Biased Sampling Problems with Applications in Case and Control and Genetic Epidemiology.- Chapter 5. Outcome Dependent Sampling Problems.- Chapter 6. Missing Data Problem and Causal Inference.- Chapter 7. Applications of Exponential Tilting Models in Finite Mixture Models.- Chapter 8. Applications of Empirical Likelihood Methods in Survey Sampling.- Chapter 9. Some Other Topics.

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À propos de l?auteur

Dr. Jing Qin currently serves as a Mathematical Statistician at the National Institute of Allergy and Infectious Diseases (NIAID). He received his Ph.D. in Statistics from the University of Waterloo, Canada and completed his postdoctoral studies at Stanford University and the University of Waterloo. His research interests include case-control studies, epidemiology studies, missing data analysis, causal inference, and related applied problems.

Les informations fournies dans la section « A propos du livre » peuvent faire référence à une autre édition de ce titre.

Autres éditions populaires du même titre

9789811352492: Biased Sampling, Over-identified Parameter Problems and Beyond

Edition présentée

ISBN 10 :  9811352496 ISBN 13 :  9789811352492
Editeur : Springer Verlag, Singapore, 2018
Couverture souple