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Optimal Charging Profile Design for Solar-Powered Sustainable UAV Communication Networks

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arxiv 2302.06092 v1 pith:RLNIQH7W submitted 2023-02-13 eess.SY cs.SY

classification eess.SYcs.SY
keywords communicationperformancealgorithmschargingdesignedenergylossnetworks
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This work studies optimal solar charging for solar-powered self-sustainable UAV communication networks, considering the day-scale time-variability of solar radiation and user service demand. The objective is to optimally trade off between the user coverage performance and the net energy loss of the network by proactively assigning UAVs to serve, charge, or land. Specifically, the studied problem is first formulated into a time-coupled mixed-integer non-convex optimization problem, and further decoupled into two sub-problems for tractability. To solve the challenge caused by time-coupling, deep reinforcement learning (DRL) algorithms are respectively designed for the two sub-problems. Particularly, a relaxation mechanism is put forward to overcome the "dimension curse" incurred by the large discrete action space in the second sub-problem. At last, simulation results demonstrate the efficacy of our designed DRL algorithms in trading off the communication performance against the net energy loss, and the impact of different parameters on the tradeoff performance.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Sustainable Air-Ground Integrated Coverage Networks: ISCC Architecture, Technologies, and Testbed

    cs.IT 2026-07 conditional novelty 4.0 of 10

    A closed-loop ISCC control framework for sustainable air-ground networks is shown on a 17-base-station testbed to cut power about 20% while keeping coverage above 90%.

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