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Predictive Analytics - Parametric Models for Regression and Classification Using R (Hardcover)
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Predictive Analytics - Parametric Models for Regression and Classification Using R (Hardcover)
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Provides a foundation in classical parametric methods of regression
and classification essential for pursuing advanced topics in
predictive analytics and statistical learning This book covers a
broad range of topics in parametric regression and classification
including multiple regression, logistic regression (binary and
multinomial), discriminant analysis, Bayesian classification,
generalized linear models and Cox regression for survival data. The
book also gives brief introductions to some modern
computer-intensive methods such as classification and regression
trees (CART), neural networks and support vector machines. The book
is organized so that it can be used by both advanced undergraduate
or masters students with applied interests and by doctoral students
who also want to learn the underlying theory. This is done by
devoting the main body of the text of each chapter with basic
statistical methodology illustrated by real data examples.
Derivations, proofs and extensions are relegated to the Technical
Notes section of each chapter, Exercises are also divided into
theoretical and applied. Answers to selected exercises are
provided. A solution manual is available to instructors who adopt
the text. Data sets of moderate to large sizes are used in examples
and exercises. They come from a variety of disciplines including
business (finance, marketing and sales), economics, education,
engineering and sciences (biological, health, physical and social).
All data sets are available at the book's web site. Open source
software R is used for all data analyses. R codes and outputs are
provided for most examples. R codes are also available at the
book's web site. Predictive Analytics: Parametric Models for
Regression and Classification Using R is ideal for a one-semester
upper-level undergraduate and/or beginning level graduate course in
regression for students in business, economics, finance, marketing,
engineering, and computer science. It is also an excellent resource
for practitioners in these fields.
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