Preface
In this second edition, we have substantially expanded the material relative to the first edition. The first chapter has been completely revamped to provide a broader overview. Core classical nonparametrics chapters on one- and two- sample problems have been expanded to include discussions on ties as well as power and sample size determination. We have added common machine learning topics, including k-nearest neighbors and trees. We have placed methods for categorical data in their own chapter and have added a brief introduction to logistic regression. Two new chapters covering multivariate analyses and big data were also added; the latter being a current research topic.
We have reorganized the material somewhat so that the first six ...
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