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Reinforcement learning to minimize age of information with an energy Harvesting sensor with HARQ and sensing cost

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1902.09467v1.pdfWorking paper447.26 kBAdobe PDFView/Open
Title: Reinforcement learning to minimize age of information with an energy Harvesting sensor with HARQ and sensing cost
Authors: Ceran, ET
Gündüz, D
György, A
Item Type: Working Paper
Abstract: The time average expected age of information (AoI) is studied for status updates sent from an energy-harvesting transmitter with a finite-capacity battery. The optimal scheduling policy is first studied under different feedback mechanisms when the channel and energy harvesting statistics are known. For the case of unknown environments, an average-cost reinforcement learning algorithm is proposed that learns the system parameters and the status update policy in real time. The effectiveness of the proposed methods is verified through numerical results.
Issue Date: 24-Jan-2019
URI: http://hdl.handle.net/10044/1/71539
Keywords: eess.SP
eess.SP
cs.IT
cs.NI
cs.SI
math.IT
eess.SP
eess.SP
cs.IT
cs.NI
cs.SI
math.IT
Appears in Collections:Electrical and Electronic Engineering
Faculty of Engineering



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