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2006 IEEE/WIC/ACM International Conference on Intelligent Agent Technology (IAT'06)
A Q-decomposition LRTDP Approach to Resource Allocation
Hong Kong, China
December 18-December 22
ISBN: 0-7695-2748-5
Pierrick Plamondon, Laval University, Canada
Brahim Chaib-draa, Laval University, Canada
Abder Rezak Benaskeur, Deference R&D Canada, Canada
This paper contributes to solve effectively stochastic resource allocation problems known to be NP-Complete. To address this complex resource management problem, the merging of two approaches is made: The Q-decomposition model, which coordinates reward separated agents through an arbitrator, and the Labeled Real-Time Dynamic Programming (LRTDP) approaches are adapted in an effective way. The Q-decomposition permits to reduce the set of states to consider, while LRTDP concentrates the planning on significant states only. As demonstrated by the experiments, combining these two distinct approaches permits to further reduce the planning time to obtain the optimal solution of a resource allocation problem.
Citation:
Pierrick Plamondon, Brahim Chaib-draa, Abder Rezak Benaskeur, "A Q-decomposition LRTDP Approach to Resource Allocation," iat, pp.432-435, 2006 IEEE/WIC/ACM International Conference on Intelligent Agent Technology (IAT'06), 2006
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