Publication | Closed Access
Q-Learning Based Energy Management Policies for a Single Sensor Node with Finite Buffer
55
Citations
11
References
2012
Year
EngineeringEnergy EfficiencyHeuristic PoliciesLearning ControlConversion FunctionEnergy Management PoliciesOperations ResearchIntelligent Energy SystemEnergy OptimizationSingle Sensor NodeOptimal PoliciesSystems EngineeringEnergy ControlEnergy Demand ManagementComputer ScienceFinite BufferMarkov Decision ProcessSmart GridEnergy ManagementEnergy Policy
In this paper, we consider the problem of finding optimal energy management policies in the presence of energy harvesting sources to maximize network performance. We formulate this problem in the discounted cost Markov decision process framework and apply two reinforcement learning algorithms. Prior work obtains optimal policy in the case when the conversion function mapping energy to data transmitted is linear and provides heuristic policies in the case when the same is nonlinear. Our algorithms, however, provide optimal policies regardless of the form of the conversion function. Through simulations, our policies are seen to outperform those of in the nonlinear case.
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