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Please use this identifier to cite or link to this item: http://hdl.handle.net/10016/6908

Google™ Scholar. Others By: Giráldez, J. Ignacio - Borrajo, Daniel
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Title: Distributed reinforcement learning in multi-agent decision systems
Author(s): Giráldez, J. Ignacio
Borrajo, Daniel
Publisher: Springer
Issued date: Jan-1998
Citation: Progress in artificial intelligence, Iberamia 98: 6th Ibero-American Conference on AI, Lisbon, Portugal, October 1998, p. 148-478
URI: http://hdl.handle.net/10016/6908
ISBN: 978-3-540-64992-2 (Print)
978-3-540-49795-0 (Online)
ISSN: 0302-9743 (Print)
1611-3349 (Online)
DOI: http://dx.doi.org/10.1007/3-540-49795-1_13
Description: Proceeding of: 6th Ibero-American Conference on AI (IBERAMIA '98),Lisbon, Portugal, October 5–9, 1998
Abstract: Decision problems can be usually solved using systems that implement different paradigms. These systems may be integrated into a single distributed system, with the expectation of obtaining a group performance more satisfactory than individual performances. Such a distributed system is what we call a Multi Agent Decision System (MADES), a special kind of Multi Agent System, that integrates several heterogeneous autonomous decision systems (agents). A MADES must produce a single solution proposal for the problem instance it faces, despite the fact that its decision making is distributed, and every agent produces solution proposals according to its local view and to its idiosyncrasy. We present a distributed reinforcement algorithm for learning how to combine the decisions the agents make in a distributed way, into a single group decision (solution proposal).
Review: PeerReviewed
Serie / Nº.: Lecture notes in computer science, vol. 1484
Publisher version: http://dx.doi.org/10.1007/3-540-49795-1_13
Keywords: Multi agent systems
Machine learning
Distributed artificial intelligence
Rights: © Springer
Appears in Collections:DI - PLG - Capítulos de Monografías
DI - PLG - Comunicaciones en Congresos y otros eventos

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