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Learning from Good and Bad Data

Langue AnglaisAnglais
Livre Livre relié
Livre Learning from Good and Bad Data Philip D. Laird
Code Libristo: 01401089
This monograph is a contribution to the study of the identification problem: the problem of identify... Description détaillée
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This monograph is a contribution to the study of the identification problem: the problem of identifying an item from a known class us ing positive and negative examples. This problem is considered to be an important component of the process of inductive learning, and as such has been studied extensively. In the overview we shall explain the objectives of this work and its place in the overall fabric of learning research. Context. Learning occurs in many forms; the only form we are treat ing here is inductive learning, roughly characterized as the process of forming general concepts from specific examples. Computer Science has found three basic approaches to this problem: Select a specific learning task, possibly part of a larger task, and construct a computer program to solve that task . Study cognitive models of learning in humans and extrapolate from them general principles to explain learning behavior. Then construct machine programs to test and illustrate these models. xi Xll PREFACE Formulate a mathematical theory to capture key features of the induction process. This work belongs to the third category. The various studies of learning utilize training examples (data) in different ways. The three principal ones are: Similarity-based (or empirical) learning, in which a collection of examples is used to select an explanation from a class of possible rules.

À propos du livre

Nom complet Learning from Good and Bad Data
Langue Anglais
Reliure Livre - Livre relié
Nombre de pages 212
EAN 9780898382631
ISBN 0898382637
Code Libristo 01401089
Poids 512
Dimensions 162 x 240 x 18
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