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首页> 外文期刊>Internet of Things Journal, IEEE >Wireless-Powered Over-the-Air Computation in Intelligent Reflecting Surface-Aided IoT Networks
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Wireless-Powered Over-the-Air Computation in Intelligent Reflecting Surface-Aided IoT Networks

机译:智能反射表面辅助物联网网络的无线电源过空气计算

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摘要

Fast wireless data aggregation and efficient battery recharging are two critical design challenges of Internet-of-Things (IoT) networks. Over-the-air computation (AirComp) and energy beamforming (EB) turn out to be two promising techniques that can address these two challenges, necessitating the design of wireless-powered AirComp. However, due to severe channel propagation, the energy harvested by IoT devices may not be sufficient to support AirComp. In this article, we propose to leverage the intelligent reflecting surface (IRS) that is capable of dynamically reconfiguring the propagation environment to drastically enhance the efficiency of both downlink EB and uplink AirComp in IoT networks. Due to the coupled problems of downlink EB and uplink AirComp, we further propose the joint design of energy and aggregation beamformers at the access point, downlink/uplink phase-shift matrices at the IRS, and transmit power at the IoT devices, to minimize the mean-squared error (MSE), which quantifies the AirComp distortion. However, the formulated problem is a highly intractable nonconvex quadratic programming problem. To solve this problem, we first obtain the closed-form expressions of the energy beamformer and the device transmit power, and then develop an alternating optimization framework based on difference-of-convex programming to design the aggregation beamformers and IRS phase-shift matrices. Simulation results demonstrate the performance gains of the proposed algorithm over the baseline methods and show that deploying an IRS can significantly reduce the MSE of AirComp.
机译:快速无线数据聚集和高效的电池充电是对网上的两个关键设计挑战(IOT)网络。空中计算(AIRCOMP)和能量波束形成(EB)结果是两个有希望的技术,可以解决这两个挑战,需要设计无线动力的空中障碍。然而,由于严重的信道传播,由物联网设备收获的能量可能不足以支持空气CC1M。在本文中,我们建议利用能够动态地重新配置传播环境的智能反射表面(IRS),以大大提高IoT网络中的下行链路EB和上行链路Aircomp的效率。由于下行链路EB和上行链路空中的耦合问题,我们进一步提出了在IRS的接入点,下行链路/上行相移矩阵处的能量和聚合波束形成器的联合设计,并在物联网设备处传输功率,以最小化平均误差(MSE),其量化了空气曲线失真。然而,配制的问题是一种高度棘手的非核解二次编程问题。为了解决这个问题,我们首先获得能量波束形成器和器件发射功率的闭合形式表达式,然后基于凸面编程开发交替优化框架,以设计聚合波束形成器和IRS相移矩阵。仿真结果表明,通过基线方法的提出算法的性能增益,并显示部署IRS可以显着减少空中COMP的MSE。

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