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An Introduction to Statistical Learning / 2nd edition
with Applications in R
2024 || Hardcover || Gareth James e.a. || Springer-Verlag New York Inc.
An Introduction to Statistical Learning provides an accessible overview of the field of statistical learning, an essential toolset for making sense of the vast and complex data sets that have emerged in fields ranging from biology to finance to marketing to astrophysics in the past twenty years. This book presents some of the most important modeling and prediction techniques, along with relevant applications. Topics include linear regression, classification, resampling methods, shrinkage app...
Computational Thinking for the Modern Problem Solver
2014 || Hardcover || David Riley e.a. || Taylor & Francis
Through examples and analogies, Computational Thinking for the Modern Problem Solver introduces computational thinking as part of an introductory computing course and shows how computer science concepts are applicable to other fields. It keeps the material accessible and relevant to noncomputer science majors. With numerous color figures, this classroom-tested book focuses on both foundational computer science concepts and engineering topics.
It covers abstraction, algorithms, logic, graph th...
Using R for Introductory Statistics
2023 || Hardcover || John Verzani || Taylor & Francis
The second edition of a bestselling textbook, Using R for Introductory Statistics guides students through the basics of R, helping them overcome the sometimes steep learning curve. The author does this by breaking the material down into small, task-oriented steps. The second edition maintains the features that made the first edition so popular, while updating data, examples, and changes to R in line with the current version.
Beyond Multiple Linear Regression
Applied Generalized Linear Models And Multilevel Models in R
2021 || Hardcover || Julie Legler e.a. || Taylor & Francis
Offers a unified discussion of generalized linear models and correlated data methods. Provides information suitable for graduate non-statistics majors or advanced undergraduate statistics majors. Includes case studies with real data. Offers material on R at the end of each chapter. Provides a solutions manual.