To make a good balance between performance, cost, and power consumption, a hybrid intelligent reflecting surface (IRS)-aided directional modulation (DM) network is investigated in this paper, where the hybrid IRS consists of passive and active reflecting elements. To maximize the achievable rate, two optimization algorithms, called maximum signal-to-noise ratio (SNR)-fractional programming (FP) (Max-SNR-FP) and maximum SNR-equal amplitude reflecting (EAR) (Max-SNR-EAR), are proposed to jointly design the beamforming vector and phase shift matrix (PSM) of hybrid IRS by alternately optimizing one and giving another. The former employs the successive convex approximation and FP methods to derive the beamforming vector and hybrid IRS PSM, while the latter adopts the maximum signal-to-leakage-noise ratio method and the criteria of phase alignment and EAR to design them. Simulation results show that the rates harvested by the proposed two methods are slightly lower than those of active IRS with higher power consumption, which are 35 percent higher than those of no IRS and random phase IRS, while passive IRS achieves only about 17 percent rate gain over the latter. Moreover, compared to Max-SNR-FP, the proposed Max-SNR-EAR method makes an obvious complexity degradation at the price of a slight performance loss.
翻译:为了在性能、成本和电力消耗之间取得良好的平衡,本文件对混合智能反映表面(IRS)辅助方向调制(DM)网络进行了调查,混合IRS由被动和主动反射元素组成。为了最大限度地提高可实现的速率,建议采用两种优化算法,称为最大信号对噪音比率(SNR)-违规编程(FP)(Max-SNR-FP)和最大信号对泄漏-噪音比率(EAR)(Max-SNR-EAR),以及最高SNR平等反射(EAR)(MAx-SNR-EAR),建议联合设计混合IRS的矢量和分阶段调控矩阵(PSM),通过交替优化一个和给予另一个混合型IRS(PS),采用相接续的凝聚和FP(FP)方法来生成波控矢量矢量的矢量和混合的矢量比率,后者采用最大信号对泄漏-泄漏-泄漏-噪音比率,而IRS(IRS-R-R-R)的拟议最低比率为35,后者为最低的递增至最高压。