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A parametric approach to nonparametric statistics [Documento electrónico] / Mayer Alvo, Philip L. H. Yu

Main Author: Alvo, MayerCoauthor: Yu, Philip L. H., co-aut.Language: eng.Country: US - United States of America.Publication: Cham : Springer International Publishing, Springer, 2018Description: XIV, 279 p. : il.ISBN: 978-3-319-94153-0.Series: Springer Series in the Data SciencesSubject - Topical Name: Estatística matemática Online Resources:Click here to access online
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E-Books Biblioteca NOVA FCT Online Não Ficção QA273 | QA274. FCT 98107 (Browse shelf(Opens below)) 1 Available

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This book demonstrates that nonparametric statistics can be taught from a parametric point of view. As a result, one can exploit various parametric tools such as the use of the likelihood function, penalized likelihood and score functions to not only derive well-known tests but to also go beyond and make use of Bayesian methods to analyze ranking data. The book bridges the gap between parametric and nonparametric statistics and presents the best practices of the former while enjoying the robustness properties of the latter. This book can be used in a graduate course in nonparametrics, with parts being accessible to senior undergraduates. In addition, the book will be of wide interest to statisticians and researchers in applied fields.

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