Sample Efficient Multiagent Learning in the Presence of...

Sample Efficient Multiagent Learning in the Presence of Markovian Agents

Doran Chakraborty (auth.)
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The problem of Multiagent Learning (or MAL) is concerned with the study of how intelligent entities can learn and adapt in the presence of other such entities that are simultaneously adapting. The problem is often studied in the stylized settings provided by repeated matrix games (a.k.a. normal form games). The goal of this book is to develop MAL algorithms for such a setting that achieve a new set of objectives which have not been previously achieved. In particular this book deals with learning in the presence of a new class of agent behavior that has not been studied or modeled before in a MAL context: Markovian agent behavior. Several new challenges arise when interacting with this particular class of agents. The book takes a series of steps towards building completely autonomous learning algorithms that maximize utility while interacting with such agents. Each algorithm is meticulously specified with a thorough formal treatment that elucidates its key theoretical properties.

عام:
2014
الإصدار:
1
الناشر:
Springer International Publishing
اللغة:
english
الصفحات:
147
ISBN 10:
3319026062
ISBN 13:
9783319026060
سلسلة الكتب:
Studies in Computational Intelligence 523
ملف:
PDF, 1.49 MB
IPFS:
CID , CID Blake2b
english, 2014
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