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Machine Learning. A Theoretical Approach

Machine Learning. A Theoretical Approach

Balas K. Natarajan (Auth.)
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This is the first comprehensive introduction to computational learning theory. The authors uniform presentation of fundamental results and their applications offers AI researchers a theoretical perspective on the problems they study. The book presents tools for the analysis of probabilistic models of learning, tools that crisply classify what is and is not efficiently learnable. After a general introduction to Valiants PAC paradigm and the important notion of the Vapnik-Chervonenkis dimension, the author explores specific topics such as finite automata and neural networks. The presentation is intended for a broad audience--the authors ability to motivate and pace discussions for beginners has been praised by reviewers. Each chapter contains numerous examples and exercises, as well as a useful summary of important results. An excellent introduction to the area, suitable either for a first course, or as a component in general machine learning and advanced AI courses. Also an important reference for AI researchers.

Categories:
Year:
1991
Publisher:
Elsevier Inc
Language:
english
Pages:
218
ISBN 10:
0080510531
ISBN 13:
9780080510538
File:
PDF, 9.61 MB
IPFS:
CID , CID Blake2b
english, 1991
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