ENGLISH

Learning from good and bad data

Book information

Publisher
Kluwer Academic Publishers
Year
1988
ISBN
9780898382631, 0-89838-263-7
LCC
Q325 .L35 1988
Open Library ID
OL2404452M
Language
english
Format
DJVU
Filesize
6 MB (6415512 bytes)
Series
The Kluwer international series in engineering and computer science Knowledge representation, learning, and expert systems 47
Edition
1
Pages
230\230
Topic
Education
Library
mexmat
Time added
2009-07-20 03:45:11

Description

Learning from Good and Bad Data explains the firm theoretical foundation that underlies much of the experimental research in machine learning. While the thrust of the work is theoretical, the presentation is accessible to theorists and practitioners, specialists and nonspecialists in the rapidly developing field of machine learning. Empirical learning (learning from example) is studied mathematically in order to uncover the formal structures common to much of the artificial intelligence experimental work on the subject.

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