Secrecy Rate Maximization of RIS-assisted SWIPT Systems: A Two-Timescale Beamforming Design Approach
Ming-Min Zhao, Kaidi Xu, Yunlong Cai, Yong Niu, and Lajos Hanzo

TL;DR
This paper proposes a two-timescale beamforming approach using RIS to maximize secrecy rate in SWIPT systems, effectively balancing security, power transfer, and computational complexity.
Contribution
It introduces a novel stochastic optimization framework with SA-SSCA and heuristic algorithms for secure RIS-assisted SWIPT systems with joint beamforming and phase shift design.
Findings
RIS significantly enhances system security and power transfer efficiency.
Proposed algorithms outperform benchmark schemes in simulations.
The two-timescale approach reduces complexity and training overhead.
Abstract
Reconfigurable intelligent surfaces (RISs) achieve high passive beamforming gains for signal enhancement or interference nulling by dynamically adjusting their reflection coefficients. Their employment is particularly appealing for improving both the wireless security and the efficiency of radio frequency (RF)-based wireless power transfer. Motivated by this, we conceive and investigate a RIS-assisted secure simultaneous wireless information and power transfer (SWIPT) system designed for information and power transfer from a base station (BS) to an information user (IU) and to multiple energy users (EUs), respectively. Moreover, the EUs are also potential eavesdroppers that may overhear the communication between the BS and IU. We adopt two-timescale transmission for reducing the signal processing complexity as well as channel training overhead, and aim for maximizing the average…
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Taxonomy
TopicsAdvanced Wireless Communication Technologies · Antenna Design and Analysis · Energy Harvesting in Wireless Networks
