Fundamentals of Probability and Statistics for Machine Learning
An introductory textbook for undergraduate or beginning graduate students that integrates probability and statistics with their applications in machine learning.

Most curricula have students take an undergraduate course on probability and statistics before turning to machine learning. In this innovative textbook, Ethem Alpaydın offers an alternative tack by integrating these subjects for a first course on learning from data. Alpaydın accessibly connects machine learning to its roots in probability and statistics, starting with the basics of random experiments and probabilities and eventually moving to complex topics such as artificial neural networks. With a practical emphasis and learn-by-doing approach, this unique text offers comprehensive coverage of the elements fundamental to an empirical understanding of machine learning in a data science context.

  • Consolidates foundational knowledge and key techniques needed for modern data science
  • Emphasizes hands-on learning
  • Covers mathematical fundamentals of probability and statistics and ML basics
  • Suits undergraduates as well as self-learners with basic programming experience
  • Includes slides, solutions, and code
1147078406
Fundamentals of Probability and Statistics for Machine Learning
An introductory textbook for undergraduate or beginning graduate students that integrates probability and statistics with their applications in machine learning.

Most curricula have students take an undergraduate course on probability and statistics before turning to machine learning. In this innovative textbook, Ethem Alpaydın offers an alternative tack by integrating these subjects for a first course on learning from data. Alpaydın accessibly connects machine learning to its roots in probability and statistics, starting with the basics of random experiments and probabilities and eventually moving to complex topics such as artificial neural networks. With a practical emphasis and learn-by-doing approach, this unique text offers comprehensive coverage of the elements fundamental to an empirical understanding of machine learning in a data science context.

  • Consolidates foundational knowledge and key techniques needed for modern data science
  • Emphasizes hands-on learning
  • Covers mathematical fundamentals of probability and statistics and ML basics
  • Suits undergraduates as well as self-learners with basic programming experience
  • Includes slides, solutions, and code
54.99 Pre Order
Fundamentals of Probability and Statistics for Machine Learning

Fundamentals of Probability and Statistics for Machine Learning

by Ethem Alpaydin
Fundamentals of Probability and Statistics for Machine Learning

Fundamentals of Probability and Statistics for Machine Learning

by Ethem Alpaydin

eBook

$54.99 
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Available for Pre-Order. This item will be released on December 2, 2025

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Overview

An introductory textbook for undergraduate or beginning graduate students that integrates probability and statistics with their applications in machine learning.

Most curricula have students take an undergraduate course on probability and statistics before turning to machine learning. In this innovative textbook, Ethem Alpaydın offers an alternative tack by integrating these subjects for a first course on learning from data. Alpaydın accessibly connects machine learning to its roots in probability and statistics, starting with the basics of random experiments and probabilities and eventually moving to complex topics such as artificial neural networks. With a practical emphasis and learn-by-doing approach, this unique text offers comprehensive coverage of the elements fundamental to an empirical understanding of machine learning in a data science context.

  • Consolidates foundational knowledge and key techniques needed for modern data science
  • Emphasizes hands-on learning
  • Covers mathematical fundamentals of probability and statistics and ML basics
  • Suits undergraduates as well as self-learners with basic programming experience
  • Includes slides, solutions, and code

Product Details

ISBN-13: 9780262383813
Publisher: MIT Press
Publication date: 12/02/2025
Sold by: Penguin Random House Publisher Services
Format: eBook
Pages: 560
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