Introduction to Probability and Statistics for Data Science

Introduction to Probability and Statistics for Data Science

EnglishPaperback / softbackPrint on demand
Rigdon Steven E.
Cambridge University Press
EAN: 9781009568357
Print on demand
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Detailed information

Introduction to Probability and Statistics for Data Science provides a solid course in the fundamental concepts, methods and theory of statistics for students in statistics, data science, biostatistics, engineering, and physical science programs. It teaches students to understand, use, and build on modern statistical techniques for complex problems. The authors develop the methods from both an intuitive and mathematical angle, illustrating with simple examples how and why the methods work. More complicated examples, many of which incorporate data and code in R, show how the method is used in practice. Through this guidance, students get the big picture about how statistics works and can be applied. This text covers more modern topics such as regression trees, large scale hypothesis testing, bootstrapping, MCMC, time series, and fewer theoretical topics like the Cramer-Rao lower bound and the Rao-Blackwell theorem. It features more than 250 high-quality figures, 180 of which involve actual data. Data and R are code available on our website so that students can reproduce the examples and do hands-on exercises.
EAN 9781009568357
ISBN 1009568353
Binding Paperback / softback
Publisher Cambridge University Press
Publication date November 14, 2024
Pages 828
Language English
Dimensions 254 x 202 x 41
Country United Kingdom
Authors Fricker, Jr, Ronald D.; Montgomery Douglas C.; Rigdon Steven E.
Illustrations Worked examples or Exercises
Manufacturer information
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