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Markov Decision Processes & Artificial Intelligence

O Sigaud (Autor)

Software / Digital Media
480 Seiten
2010
John Wiley & Sons Inc (Hersteller)
978-1-118-55742-6 (ISBN)
179,10 inkl. MwSt
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Markov Decision Processes (MDPs) are a mathematical framework for modeling sequential decision problems under uncertainty as well as Reinforcement Learning problems. Written by experts in the field, this book provides a global view of current research using MDPs in Artificial Intelligence. It starts with an introductory presentation of the fundamental aspects of MDPs (planning in MDPs, Reinforcement Learning, Partially Observable MDPs, Markov games and the use of non-classical criteria). Then it presents more advanced research trends in the domain and gives some concrete examples using illustrative applications.

Olivier Sigaud is a Professor of Computer Science at the University of Paris 6 (UPMC). He is the Head of the "Motion" Group in the Institute of Intelligent Systems and Robotics (ISIR). Olivier Buffet has been an INRIA researcher in the Autonomous Intelligent Machines (MAIA) team of theLORIA laboratory, since November 2007.

Verlagsort New York
Sprache englisch
Maße 150 x 250 mm
Gewicht 3436 g
Themenwelt Informatik Theorie / Studium Künstliche Intelligenz / Robotik
Technik Elektrotechnik / Energietechnik
ISBN-10 1-118-55742-5 / 1118557425
ISBN-13 978-1-118-55742-6 / 9781118557426
Zustand Neuware
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