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The aim of this book is an applied and unified introduction into
parametric, non- and semiparametric regression that closes the gap
between theory and application. The most important models and
methods in regression are presented on a solid formal basis, and
their appropriate application is shown through many real data
examples and case studies. Availability of (user-friendly) software
has been a major criterion for the methods selected and presented.
Thus, the book primarily targets an audience that includes
students, teachers and practitioners in social, economic, and life
sciences, as well as students and teachers in statistics programs,
and mathematicians and computer scientists with interests in
statistical modeling and data analysis. It is written on an
intermediate mathematical level and assumes only knowledge of basic
probability, calculus, and statistics. The most important
definitions and statements are concisely summarized in boxes. Two
appendices describe required matrix algebra, as well as elements of
probability calculus and statistical inference.
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