Simultaneous wireless information and power transfer (SWIPT) has been envisioned as a promising technology to support ubiquitous connectivity and reliable sustainability in Internet-of-Things (IoT) networks, which, however, generally suffers from severe attenuation caused by long distance propagation, leading to inefficient wireless power transfer (WPT) for energy harvesting receivers (EHRs). This paper proposes to introduce emerging intelligent reflecting surface (IRS) and movable antenna (MA) technologies into SWIPT systems aiming at enhancing information transmission for information decoding receivers (IDRs) and improving receive power of EHRs. We consider to maximize the weighted sum-rate of IDRs via jointly optimizing the active and passive beamforming at the base station (BS) and IRS, respectively, as well as the positions of MAs, while guaranteeing the requirements of all EHRs. To tackle this challenging task due to the non-convexity of associated optimization, we develop an efficient algorithm combining weighted minimal mean square error (WMMSE), block coordinate descent (BCD), majorization-minimization (MM), and penalty duality decomposition (PDD) frameworks. Besides, we present a feasibility characterization method to examine the achievability of EHRs' requirements. Simulation results demonstrate the significant benefits of our proposed solutions. Particularly, the optimized IRS configuration may exhibit higher performance gain than MA counterpart under our considered scenario.
翻译:同时无线信息与能量传输(SWIPT)被视为支持物联网(IoT)网络中泛在连接与可靠可持续性的关键技术,但其通常受长距离传播导致的严重衰减影响,导致能量收集接收器(EHRs)的无线能量传输(WPT)效率低下。本文提出将新兴智能反射表面(IRS)和可移动天线(MA)技术引入SWIPT系统,旨在增强信息解码接收器(IDRs)的信息传输并提升EHRs的接收功率。我们考虑通过联合优化基站(BS)和IRS的有源与无源波束成形,以及MAs的位置,在满足所有EHRs需求的前提下最大化IDRs的加权和速率。为应对因优化问题非凸性带来的挑战,我们开发了一种高效算法,结合加权最小均方误差(WMMSE)、块坐标下降(BCD)、主化-最小化(MM)和惩罚对偶分解(PDD)框架。此外,我们提出了一种可行性表征方法以检验EHRs需求的可实现性。仿真结果验证了所提方案的显著优势。特别地,在我们考虑的场景下,优化后的IRS配置可能比MA方案表现出更高的性能增益。