In this letter, we study a rate-splitting multiple access (RSMA)-based intelligent reflecting surface (IRS)-aided multi-user multiple-input single-output (MISO) secure communication system with a potential eavesdropper (Eve). Aiming to maximize the minimum secrecy rate (SR) among all the legitimate users (LUs), a design problem for jointly optimizing the transmit beamforming with artificial noise (AN), the IRS beamforming, and the secrecy common rate allocation is formulated. Since the design problem is highly non-convex with coupled optimization variables, we develop a computationally efficient algorithm based on the alternating optimization (AO) technique to solve it suboptimally. Numerical results demonstrate that the proposed design can significantly improve the max-min SR over the benchmark schemes without IRS or adopting other multiple access techniques. In particular, employing the RSMA strategy can substantially reduce the required numbers of IRS elements for achieving a target level of secrecy performance compared with the benchmark schemes.
翻译:在这封信中,我们研究了一种分率的多重存取(RSMA)基础智能反射表面(IRS)辅助多用户多投入单输出安全通信系统(MISO),该系统具有潜在的窃听器(Eve),目的是在所有合法用户中最大限度地提高最低保密率(SR),这是联合优化以人工噪音成形的传输波束、IRS波束成形和保密通用费率分配的设计问题。由于设计问题是高度非冷却的,同时有优化变量,我们根据交替优化技术开发一种计算高效的算法,以便以最理想的方式解决这一问题。数字结果表明,拟议的设计可以在没有IRS或采用其他多重接入技术的情况下大大改进基准方案的最低保密率。特别是,使用RSMA战略可以大大减少离子要素的所需数量,以便实现与基准计划相比的保密性业绩目标水平。