Robust Nonparametric Statistical Methods - Hettmansperger, Thomas P.
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Résumé :
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Biographie: Thomas P. Hettmansperger is a professor emeritus of statistics at Penn State University. Dr. Hettmansperger is a fellow of the American Statistical Association and Institute of Mathematical Statistics and an elected member of the International Statistical Institute. His research interests span nonparametric statistics, robust methods, and mixture models. Joseph W. McKean is a professor of statistics at Western Michigan University. His research interests include robust nonparametric procedures for linear, nonlinear, and mixed models and times series designs. A fellow of the American Statistical Association, Dr. McKean has developed highly efficient and high breakdown procedures.
Sommaire: One-Sample Problems. Two-Sample Problems. Linear Models. Experimental Designs: Fixed Effects. Models with Dependent Error Structure. Multivariate. Appendix. References. Index.
! more logical and concise and more user-friendly ! the book will be equally attractive to instructors, students, and researchers. In summary, this is a well written, structured, and presented book and offers readers plenty of examples and exercises. If I have the opportunity in the near future to offer a graduate course on robust nonparametric methods, I will definitely adopt this book with no hesitation. --Technometrics, November 2011 This book gives an excellent treatment of modern rank-based methods with a special attention to their practical application to data. ! a welcome highly up-to-date and very readable contribution to the field. It will certainly become a standard reference for nonparametric and robust methods. I recommend the book as an important textbook for research libraries. The book will soon find its place on the shelves and the tables of many kind of researchers and will serve as a graduate course textbook. --Hannu Oja, International Statistical Review (2011), 79 ! a fine capstone course in non-parametric statistics. --MAA Reviews, June 2011