Wireless Power Meets Energy Harvesting: A Joint Energy Allocation Approach in OFDM-based System
arXiv:1410.1266 · doi:10.1109/TWC.2016.2522410
Abstract
This paper investigates an orthogonal frequency division multiplexing (OFDM)-based wireless powered communication system, where one user harvests energy from an energy access point (EAP) to power its information transmission to a data access point (DAP). The channels from the EAP to the user, i.e., the wireless energy transfer (WET) link, and from the user to the DAP, i.e., the wireless information transfer (WIT) link, vary over both time slots and sub-channels (SCs) in general. To avoid interference at DAP, WET and WIT are scheduled over orthogonal SCs at any slot. Our objective is to maximize the achievable rate at the DAP by jointly optimizing the SC allocation over time and the power allocation over time and SCs for both WET and WIT links. Assuming availability of full channel state information (CSI), the structural results for the optimal SC/power allocation are obtained and an offline algorithm is proposed to solve the problem. Furthermore, we propose a low-complexity online algorithm when causal CSI is available.
This is a longer version of a paper to be appear in IEEE Transactions on Wireless Communications
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- Wireless Power Meets Energy Harvesting: A Joint Energy Allocation Approach in OFDM-based System
- Joint Interleaver and Modulation Design For Multi-User SWIPT-NOMA
- Optimal Online Transmission Policy for Energy-Constrained Wireless-Powered Communication Networks
- Movable Antennas Enabled Wireless-Powered NOMA: Continuous and Discrete Positioning Designs
- Optimizing Joint Data and Power Transfer in Energy Harvesting Multiuser Wireless Networks