Reinforcement Learning

Richard S. Sutton

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Lingua: inglese

Editore: Springer, Springer US Mai 1992, 1992

0792392345 / 9780792392347

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This item is printed on demand - Print on Demand Titel. Neuware -Reinforcement learning is the learning of a mapping from situations to actions so as to maximize a scalar reward or reinforcement signal. The learner is not told which action to take, as in most forms of machine learning, but instead must discover which actions yield the highest reward by trying them. In the most interesting and challenging cases, actions may affect not only the immediate reward, but also the next situation, and through that all subsequent rewards. These two characteristics -- trial-and-error search and delayed reward -- are the most important distinguishing features of reinforcement learning.Reinforcement learning is both a new and a very old topic in AI. The term appears to have been coined by Minsk (1961), and independently in control theory by Walz and Fu (1965). The earliest machine learning research now viewed as directly relevant was Samuel's (1959) checker player, which used temporal-difference learning to manage delayed reward much as it is used today. Of course learning and reinforcement have been studied in psychology for almost a century, and that work has had a very strong impact on the AI/engineering work. One could in fact consider all of reinforcement learning to be simply the reverse engineering of certain psychological learning processes (e.g. operant conditioning and secondary reinforcement).Reinforcement Learning is an edited volume of original research, comprising seven invited contributions by leading researchers.Springer-Verlag KG, Sachsenplatz 4-6, 1201 Wien 180 pp. Englisch.

Codice articolo 9780792392347

Titolo
Reinforcement Learning
Autore
Richard S. Sutton
Editore
Springer, Springer US Mai 1992
Anno di pubblicazione
1992
Condizione
Neu
Rilegatura
Buch
Lingua
inglese
ISBN 10
0792392345
ISBN 13
9780792392347
Peso dell'articolo
442 grammi
Dimensioni
241x160x15 mm

buchversandmimpf2000

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