Multi-user Scheduling Schemes for Simultaneous Wireless Information and Power Transfer
Rania Morsi, Diomidis S. Michalopoulos, and Robert Schober

TL;DR
This paper introduces novel multi-user scheduling schemes for simultaneous wireless information and power transfer, balancing data rates and energy harvesting in fading channels, with proven theoretical performance bounds.
Contribution
It proposes order-based scheduling schemes that control the tradeoff between ergodic capacity and harvested energy, extending fair scheduling methods for SWIPT systems.
Findings
Higher energy harvesting with lower scheduling order j.
Reduced ergodic capacity with increased energy harvesting.
Closed-form performance results for Rayleigh fading channels.
Abstract
In this paper, we study the downlink multi-user scheduling problem for a time-slotted system with simultaneous wireless information and power transfer. In particular, in each time slot, a single user is scheduled to receive information, while the remaining users opportunistically harvest the ambient radio frequency (RF) energy. We devise novel scheduling schemes in which the tradeoff between the users' ergodic capacities and their average amount of harvested energy can be controlled. To this end, we modify two fair scheduling schemes used in information-only transfer systems. First, proportionally fair maximum normalized signal-to-noise ratio (N-SNR) scheduling is modified by scheduling the user having the jth ascendingly ordered (rather than the maximum) N-SNR. We refer to this scheme as order-based N-SNR scheduling. Second, conventional equal-throughput (ET) fair scheduling is…
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Taxonomy
TopicsEnergy Harvesting in Wireless Networks · Wireless Power Transfer Systems · Advanced MIMO Systems Optimization
