An Introduction to Statistical Learning, 9781071614204
Paperback
Unlock data insights: Accessible statistical learning for science, industry, and beyond.

An Introduction to Statistical Learning

with applications in r

$129.49

  • Paperback

    607 pages

  • Release Date

    30 July 2022

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Summary

Unlock Insights: An Introduction to Statistical Learning

An Introduction to Statistical Learning offers a clear and concise exploration of statistical learning, a vital toolkit for navigating today’s complex data landscapes. From biology to finance, marketing to astrophysics, this book equips you with the essential techniques for modeling and prediction.

Topics covered include:

  • Linear Regression
  • Classification
  • Resampling Metho…

Book Details

ISBN-13:9781071614204
ISBN-10:1071614207
Series:Springer Texts in Statistics
Author:Gareth James, Daniela Witten, Trevor Hastie, Robert Tibshirani
Publisher:Springer-Verlag New York Inc.
Imprint:Springer-Verlag New York Inc.
Format:Paperback
Number of Pages:607
Edition:2nd
Release Date:30 July 2022
Weight:926g
Dimensions:43mm x 233mm x 157mm
About The Author

Gareth James

Gareth James is a professor of data sciences and operations, and the E. Morgan Stanley Chair in Business Administration, at the University of Southern California. He has published an extensive body of methodological work in the domain of statistical learning with particular emphasis on high-dimensional and functional data. The conceptual framework for this book grew out of his MBA elective courses in this area.

Daniela Witten is a professor of statistics and biostatistics, and the Dorothy Gilford Endowed Chair, at the University of Washington. Her research focuses largely on statistical machine learning techniques for the analysis of complex, messy, and large-scale data, with an emphasis on unsupervised learning.

Trevor Hastie and Robert Tibshirani are professors of statistics at Stanford University, and are co-authors of the successful textbook Elements of Statistical Learning. Hastie and Tibshirani developed generalized additive models and wrote a popular book of that title. Hastie co-developed much of the statistical modeling software and environment in R/S-PLUS and invented principal curves and surfaces. Tibshirani proposed the lasso and is co-author of the very successful An Introduction to the Bootstrap.

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