Statistical Practice for Data Science
eBook - ePub

Statistical Practice for Data Science

With Hands-On Illustrations Using R

  1. 270 pages
  2. English
  3. ePUB (mobile friendly)
  4. Available on iOS & Android
eBook - ePub

Statistical Practice for Data Science

With Hands-On Illustrations Using R

About this book

Statistical Practice for Data Science: with Hands-on Illustrations using R is a comprehensive guide designed to equip students from diverse fields—engineering, science, and the biological, physical, and social sciences—with the statistical tools and techniques essential for data science. This book bridges the gap between theoretical concepts and practical applications, offering a clear and accessible introduction to statistics with minimal mathematical prerequisites. With a focus on real-world datasets and hands-on implementation using R, it empowers students to analyze, interpret, and communicate data effectively.

The book begins with foundational concepts in probability and statistics, ensuring that students with only college-level algebra can grasp the material. It progresses through key topics such as data visualization, hypothesis testing, regression modeling, and modern machine learning methods like random forests and gradient boosting. Each chapter is enriched with practical examples and coding exercises in R, making it an invaluable resource for students embarking on a data science program.

Designed as a one-semester course, the book provides flexibility for instructors to tailor the content to their curriculum. Whether exploring generalized linear models, mixed-effects models, or dependent data analysis, students will gain a deep understanding of statistical methods and their applications across various domains. By the end of the book, readers will be equipped to make informed decisions, quantify uncertainty, and communicate their findings effectively.

This book is not just a learning tool—it's a practical companion for aspiring data scientists seeking to master statistical practice and R programming.

Information

Year
2026
Print ISBN
9780367698744
9780367684846
Edition
1
eBook ISBN
9781040945582

Table of contents

  1. Cover Page
  2. Half-Title Page
  3. Title Page
  4. Copyright Page
  5. Contents
  6. Preface
  7. 1 Useful Preliminaries
  8. 2 Data Visualization
  9. 3 Two Sample Inference
  10. 4 Fixed Effects Analysis of Variance Models
  11. 5 Linear Regression Analysis
  12. 6 Linear Regression – More Topics
  13. 7 Generalized Linear Models (GLIM)
  14. 8 More on GLIM and Related Methods
  15. 9 Some Extensions to ANOVA Models
  16. 10 Models for Dependent Data
  17. Bibliography
  18. Index

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Yes, you can access Statistical Practice for Data Science by Nalini Ravishanker,Asha Gopalakrishnan,Haim Bar in PDF and/or ePUB format, as well as other popular books in Economics & Statistics for Business & Economics. We have over 1.5 million books available in our catalogue for you to explore.