A New Design Paradigm for Secure Full-Duplex Multiuser Systems
Van-Dinh Nguyen, Hieu V. Nguyen, Octavia A. Dobre, Oh-Soon Shin

TL;DR
This paper introduces a novel time-splitting scheme for full-duplex multiuser systems to improve secrecy rates by mitigating interference and optimizing power allocation, with algorithms guaranteeing convergence under perfect and partial CSI conditions.
Contribution
It proposes a new time-division approach and a low-complexity path-following algorithm for secrecy rate maximization in full-duplex systems with imperfect CSI.
Findings
The scheme effectively mitigates self-interference and co-channel interference.
The path-following algorithm converges to a local optimum.
Numerical results demonstrate significant secrecy rate improvements.
Abstract
We consider a full-duplex (FD) multiuser system where an FD base station (BS) is designed to simultaneously serve both downlink (DL) and uplink (UL) users in the presence of half-duplex eavesdroppers (Eves). The problem is to maximize the minimum (max-min) secrecy rate (SR) among all legitimate users, where the information signals at the FD-BS are accompanied with artificial noise to debilitate the Eves' channels. To enhance the max-min SR, a major part of the power budget should be allocated to serve the users with poor channel qualities, such as those far from the FD-BS, undermining the SR for other users, and thus compromising the SR per-user. In addition, the main obstacle in designing an FD system is due to the self-interference (SI) and co-channel interference (CCI) among users. We therefore propose an alternative solution, where the FD-BS uses a fraction of the time block to…
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Taxonomy
TopicsFull-Duplex Wireless Communications · Wireless Communication Security Techniques · Cooperative Communication and Network Coding
