Introduction to Nonparametric Statistics

£91.99

Introduction to Nonparametric Statistics

Probability and statistics

Author: John E. Kolassa

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Collection: Chapman & Hall/CRC Texts in Statistical Science

Language: English

Published by: Chapman and Hall/CRC

Published on: 28 September 2020

Format: LCP-protected ePub

Size: 5 Mb

ISBN: 9780429514791


An Introduction to Nonparametric Statistics

presents techniques for statistical analysis in the absence of strong assumptions about the distributions generating the data. Rank-based and resampling techniques are heavily represented, but robust techniques are considered as well. These techniques include one-sample testing and estimation, multi-sample testing and estimation, and regression.

Attention is paid to the intellectual development of the field, with a thorough review of bibliographical references. Computational tools, in R and SAS, are developed and illustrated via examples. Exercises designed to reinforce examples are included.

Features

Rank-based techniques including sign, Kruskal-Wallis, Friedman, Mann-Whitney and Wilcoxon tests are presented

Tests are inverted to produce estimates and confidence intervals

Multivariate tests are explored

Techniques reflecting the dependence of a response variable on explanatory variables are presented

Density estimation is explored

The bootstrap and jackknife are discussed

This text is intended for a graduate student in applied statistics. The course is best taken after an introductory course in statistical methodology, elementary probability, and regression. Mathematical prerequisites include calculus through multivariate differentiation and integration, and, ideally, a course in matrix algebra.

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