Machine Learning of Inductive Bias - the Springer International Series in Engineering and Computer Science - Paul E. Utgoff - Grāmatas - Kluwer Academic Publishers - 9780898382235 - 1986. gada 30. jūnijs
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Machine Learning of Inductive Bias - the Springer International Series in Engineering and Computer Science 1986 edition

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This book is based on the author's Ph. D. dissertation[56]. The the­ sis research was conducted while the author was a graduate student in the Department of Computer Science at Rutgers University. The book was pre­ pared at the University of Massachusetts at Amherst where the author is currently an Assistant Professor in the Department of Computer and Infor­ mation Science. Programs that learn concepts from examples are guided not only by the examples (and counterexamples) that they observe, but also by bias that determines which concept is to be considered as following best from the ob­ servations. Selection of a concept represents an inductive leap because the concept then indicates the classification of instances that have not yet been observed by the learning program. Learning programs that make undesir­ able inductive leaps do so due to undesirable bias. The research problem addressed here is to show how a learning program can learn a desirable inductive bias.


166 pages, biography

Mediji Grāmatas     Hardcover Book   (Grāmata ar cieto muguriņu un vāku)
Izlaists 1986. gada 30. jūnijs
ISBN13 9780898382235
Izdevēji Kluwer Academic Publishers
Lapas 166
Izmēri 155 × 235 × 12 mm   ·   458 g
Valoda Angļu  

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