Publication | Closed Access
Minimizing communication cost in a distributed Bayesian network using a decentralized MDP
38
Citations
10
References
2003
Year
Unknown Venue
EngineeringNetwork PlanningNetwork AnalysisDistributed Ai SystemOperations ResearchDistributed CoordinationDistributed Bayesian NetworkDistributed Problem SolvingNetwork OptimizationCombinatorial OptimizationCommunication CostDecentralised SystemDistributed Constraint OptimizationComputer ScienceProblem StructureNetwork ScienceLayer Bayesian NetworkDistributed Artificial IntelligenceMultiple Agents
In complex distributed applications, a problem is often decomposed into a set of subproblems that are distributed to multiple agents. We formulate this class of problems with a two layer Bayesian Network. Instead of merely providing a statistical view, we propose a satisficing approach to predict the minimum expected communication needed to reach a desired solution quality. The problem is modelled with a decentralized MDP, and two approximate algorithms are developed to find the near optimal communication strategy for a given problem structure and a required solution quality.
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