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Understanding Machine Learning: From Theory to Algorithms.
・ISBN 978-1-107-05713-5 hard GB£ 53.00
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| 著者・編者 | Shalev-Shwartz, Shai / Ben-David, Shai, |
|---|---|
| 出版社 | (Cambridge University Press, UK) |
| 出版年月 | 2014 |
| ページ数 | 410 pp. |
| 言語 | ENG |
| ニュース番号 | <A00-24298> |
解説
Machine learning is one of the fastest growing areas of computer science, with far-reaching applications. The aim of this textbook is to introduce machine learning, and the algorithmic paradigms it offers, in a principled way. The book provides a theoretical account of the fundamentals underlying machine learning and the mathematical derivations that transform these principles into practical algorithms. Following a presentation of the basics, the book covers a wide array of central topics unaddressed by previous textbooks. These include a discussion of the computational complexity of learning and the concepts of convexity and stability; important algorithmic paradigms including stochastic gradient descent, neural networks, and structured output learning; and emerging theoretical concepts such as the PAC-Bayes approach and compression-based bounds. Designed for advanced undergraduates or beginning graduates, the text makes the fundamentals and algorithms of machine learning accessible to students and non-expert readers in statistics, computer science, mathematics and engineering.