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Foundations of Machine Learning 2nd Edition 机器学习基础 [推广有奖]

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SleepyTom 发表于 2025-8-15 21:59:48 |AI写论文

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附件中的 PDF 文档包含本書 第一版、第二版、第一版中文版、第二版中文版、以及部分习题答案。第二版中文版的译者不详。


Foundations of Machine Learning 2nd Edition (机器学习基础)

by Mehryar Mohri, Afshin Rostamizadeh and Ameet Talwalkar


ISBN: 9780262039406
Pub date: December 25, 2018
Publisher: The MIT Press
504 pp., 7 x 9 in.
64 color illus.
35 b&w illus.


A new edition of a graduate-level machine learning textbook that focuses on the analysis and theory of algorithms.

This book is a general introduction to machine learning that can serve as a textbook for graduate students and a reference for researchers. It covers fundamental modern topics in machine learning while providing the theoretical basis and conceptual tools needed for the discussion and justification of algorithms. It also describes several key aspects of the application of these algorithms. The authors aim to present novel theoretical tools and concepts while giving concise proofs even for relatively advanced topics.

Foundations of Machine Learning is unique in its focus on the analysis and theory of algorithms. The first four chapters lay the theoretical foundation for what follows; subsequent chapters are mostly self-contained. Topics covered include the Probably Approximately Correct (PAC) learning framework; generalization bounds based on Rademacher complexity and VC-dimension; Support Vector Machines (SVMs); kernel methods; boosting; on-line learning; multi-class classification; ranking; regression; algorithmic stability; dimensionality reduction; learning automata and languages; and reinforcement learning. Each chapter ends with a set of exercises. Appendixes provide additional material including concise probability review.

This second edition offers three new chapters, on model selection, maximum entropy models, and conditional entropy models. New material in the appendixes includes a major section on Fenchel duality, expanded coverage of concentration inequalities, and an entirely new entry on information theory. More than half of the exercises are new to this edition.


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关键词:Foundations foundation Learning earning Edition

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