In this paper, we study an active IRS-aided simultaneous wireless information and power transfer (SWIPT) system. Specifically, an active IRS is deployed to assist a multi-antenna access point (AP) to convey information and energy simultaneously to multiple single-antenna information users (IUs) and energy users (EUs). Two joint transmit and reflect beamforming optimization problems are investigated with different practical objectives. The first problem maximizes the weighted sum-power harvested by the EUs subject to individual signal-to-interference-plus-noise ratio (SINR) constraints at the IUs, while the second problem maximizes the weighted sum-rate of the IUs subject to individual energy harvesting (EH) constraints at the EUs. The optimization problems are non-convex and difficult to solve optimally. To tackle these two problems, we first rigorously prove that dedicated energy beams are not required for their corresponding semidefinite relaxation (SDR) reformulations and the SDR is tight for the first problem, thus greatly simplifying the AP precoding design. Then, by capitalizing on the techniques of alternating optimization (AO), SDR, and successive convex approximation (SCA), computationally efficient algorithms are developed to obtain suboptimal solutions of the resulting optimization problems. Simulation results demonstrate that, given the same total system power budget, significant performance gains in terms of operating range of wireless power transfer (WPT), total harvested energy, as well as achievable rate can be obtained by our proposed designs over benchmark schemes (especially the one adopting a passive IRS). Moreover, it is advisable to deploy an active IRS in the proximity of the users for the effective operation of WPT/SWIPT.
翻译:在本文中,我们研究一个活跃的IRS辅助的同步无线信息和电源传输(SWIPT)系统。具体地说,一个积极的IRS被部署来协助一个多保险接入接入点(AP),向多个单保险信息用户(IUs)和能源用户(EUs)同时传递信息和能源。两个联合传输并反映波形优化问题,以不同的实际目标来调查。第一个问题使欧盟在独立单位受到单个信号对干涉+噪声比(SINR)限制的加权总和力最大化,而第二个问题则是协助一个多保险接入接入接入接入点(AP)的加权总和率,在欧盟的单个能源收获(EH)的限制下,将信息和能量同时传送给多个单一保险信息用户。为了解决这两个问题,我们首先严格地证明,不需要专门的能源链来进行相应的半定期放松(SDRR)调整,对于第一个问题来说,特别提款比(SIP)的设计非常简化,从而大大简化了AP前的设计。然后,通过对不断升级的运行的系统进行资本化的升级(AVLISA、连续的SBIA),从而展示整个预算的计算结果。