Rank and Pseudo-Rank Procedures for Independent Observations in Factorial Designs : Using R and SAS
2018 ed.
Book Details
Format
Hardback or Cased Book
Book Series
Springer Series in Statistics
ISBN-10
3030029123
ISBN-13
9783030029128
Edition
2018 ed.
Publisher
Springer Nature Switzerland AG
Imprint
Springer Nature Switzerland AG
Country of Manufacture
CH
Country of Publication
GB
Publication Date
Jul 26th, 2019
Print length
521 Pages
Ksh 19,800.00
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This book explains how to analyze independent data from factorial designs without having to make restrictive assumptions, such as normality of the data, or equal variances.
This book explains how to analyze independent data from factorial designs without having to make restrictive assumptions, such as normality of the data, or equal variances. The general approach also allows for ordinal and even dichotomous data. The underlying effect size is the nonparametric relative effect, which has a simple and intuitive probability interpretation. The data analysis is presented as comprehensively as possible, including appropriate descriptive statistics which follow a nonparametric paradigm, as well as corresponding inferential methods using hypothesis tests and confidence intervals based on pseudo-ranks. Offering clear explanations, an overview of the modern rank- and pseudo-rank-based inference methodology and numerous illustrations with real data examples, as well as the necessary R/SAS code to run the statistical analyses, this book is a valuable resource for statisticians and practitioners alike.
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