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Reinforcement learning to minimize age of information with an energy Harvesting sensor with HARQ and sensing cost
File | Description | Size | Format | |
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1902.09467v1.pdf | Working paper | 447.26 kB | Adobe PDF | View/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 |