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Presenting an extensive set of tools and methods for data analysis,
Robust Nonparametric Statistical Methods, Second Edition covers
univariate tests and estimates with extensions to linear models,
multivariate models, times series models, experimental designs, and
mixed models. It follows the approach of the first edition by
developing rank-based methods from the unifying theme of geometry.
This edition, however, includes more models and methods and
significantly extends the possible analyses based on ranks. New to
the Second Edition * A new section on rank procedures for nonlinear
models * A new chapter on models with dependent error structure,
covering rank methods for mixed models, general estimating
equations, and time series * New material on the development of
computationally efficient affine invariant/equivariant sign methods
based on transform-retransform techniques in multivariate models
Taking a comprehensive, unified approach to statistical analysis,
the book continues to describe one- and two-sample problems, the
basic development of rank methods in the linear model, and fixed
effects experimental designs. It also explores models with
dependent error structure and multivariate models. The authors
illustrate the implementation of the methods using many real-world
examples and R. More information about the data sets and R packages
can be found at www.crcpress.com
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