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In reinforcement learning (RL) problems, learning agents sequentially execute actions with the goal of maximizing a reward signal. The RL framework has gained popularity with the developm… Mehr…

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In reinforcement learning (RL) problems, learning agents sequentially execute actions with the goal of maximizing a reward signal. The RL framework has gained popularity with the developm… Mehr…

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Transfer in Reinforcement Learning Domains / Matthew Taylor / Buch / XII / Englisch / 2009 / Springer / EAN 9783642018817 - Taylor, Matthew
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Transfer in Reinforcement Learning Domains / Matthew Taylor / Buch / XII / Englisch / 2009 / Springer / EAN 9783642018817 - neues Buch

2009

ISBN: 9783642018817

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2009, ISBN: 9783642018817

Erscheinungsdatum: 05.06.2009, Medium: Buch, Einband: Gebunden, Titel: Transfer in Reinforcement Learning Domains, Autor: Taylor, Matthew E., Verlag: Springer-Verlag GmbH // Springer Berl… Mehr…

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Taylor, Matthew E.:
Transfer in Reinforcement Learning Domains - gebunden oder broschiert

2009, ISBN: 3642018815

Gebundene Ausgabe Intelligenz / Künstliche Intelligenz, KI, Künstliche Intelligenz - AI, Roboter - Robotik - Industrieroboter, Künstliche Intelligenz, Ingenieurswesen, Maschinenbau allge… Mehr…

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Transfer in Reinforcement Learning Domains Matthew Taylor Author

In reinforcement learning (RL) problems, learning agents sequentially execute actions with the goal of maximizing a reward signal. The RL framework has gained popularity with the development of algorithms capable of mastering increasingly complex problems, but learning difficult tasks is often slow or infeasible when RL agents begin with no prior knowledge. The key insight behind "transfer learning" is that generalization may occur not only within tasks, but also across tasks. While transfer has been studied in the psychological literature for many years, the RL community has only recently begun to investigate the benefits of transferring knowledge. This book provides an introduction to the RL transfer problem and discusses methods which demonstrate the promise of this exciting area of research. The key contributions of this book are: Definition of the transfer problem in RL domains Background on RL, sufficient to allow a wide audience to understand discussed transfer concepts Taxonomy for transfer methods in RL Survey of existing approaches In-depth presentation of selected transfer methods Discussion of key open questions By way of the research presented in this book, the author has established himself as the pre-eminent worldwide expert on transfer learning in sequential decision making tasks. A particular strength of the research is its very thorough and methodical empirical evaluation, which Matthew presents, motivates, and analyzes clearly in prose throughout the book. Whether this is your initial introduction to the concept of transfer learning, or whether you are a practitioner in the field looking for nuanced details, I trust that you will find this book to be an enjoyable and enlightening read. Peter Stone, Associate Professor of Computer Science

Detailangaben zum Buch - Transfer in Reinforcement Learning Domains Matthew Taylor Author


EAN (ISBN-13): 9783642018817
ISBN (ISBN-10): 3642018815
Gebundene Ausgabe
Erscheinungsjahr: 2009
Herausgeber: Springer Berlin Heidelberg Core >2 >T
229 Seiten
Gewicht: 0,511 kg
Sprache: eng/Englisch

Buch in der Datenbank seit 2009-07-27T20:42:32+02:00 (Berlin)
Detailseite zuletzt geändert am 2024-02-24T20:43:12+01:00 (Berlin)
ISBN/EAN: 3642018815

ISBN - alternative Schreibweisen:
3-642-01881-5, 978-3-642-01881-7
Alternative Schreibweisen und verwandte Suchbegriffe:
Autor des Buches: taylor
Titel des Buches: transfer, domai, learning englisch


Daten vom Verlag:

Autor/in: Matthew Taylor
Titel: Studies in Computational Intelligence; Transfer in Reinforcement Learning Domains
Verlag: Springer; Springer Berlin
230 Seiten
Erscheinungsjahr: 2009-06-05
Berlin; Heidelberg; DE
Gedruckt / Hergestellt in Niederlande.
Sprache: Englisch
106,99 € (DE)
109,99 € (AT)
118,00 CHF (CH)
POD
XII, 230 p.

BB; Hardcover, Softcover / Technik/Allgemeines, Lexika; Künstliche Intelligenz; Verstehen; Informatik; Computational Intelligence; Data Mining; Distributed Environments; Information Retrieval; Signal; agents; algorithm; algorithms; computer science; development; knowledge; learning; reinforcement learning; Computational Intelligence; Artificial Intelligence; EA; BC

In reinforcement learning (RL) problems, learning agents sequentially execute actions with the goal of maximizing a reward signal. The RL framework has gained popularity with the development of algorithms capable of mastering increasingly complex problems, but learning difficult tasks is often slow or infeasible when RL agents begin with no prior knowledge. The key insight behind "transfer learning" is that generalization may occur not only within tasks, but also across tasks. While transfer has been studied in the psychological literature for many years, the RL community has only recently begun to investigate the benefits of transferring knowledge. This book provides an introduction to the RL transfer problem and discusses methods which demonstrate the promise of this exciting area of research. The key contributions of this book are: Definition of the transfer problem in RL domains Background on RL, sufficient to allow a wide audience to understand discussed transfer concepts Taxonomy for transfer methods in RL Survey of existing approaches In-depth presentation of selected transfer methods Discussion of key open questions By way of the research presented in this book, the author has established himself as the pre-eminent worldwide expert on transfer learning in sequential decision making tasks. A particular strength of the research is its very thorough and methodical empirical evaluation, which Matthew presents, motivates, and analyzes clearly in prose throughout the book. Whether this is your initial introduction to the concept of transfer learning, or whether you are a practitioner in the field looking for nuanced details, I trust that you will find this book to be an enjoyable and enlightening read. Peter Stone, Associate Professor of Computer Science
Introductory book to the new concept of transfer learning Recent research in transfer learning which is a current important topic in the field of Computational Intelligence

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