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Optimal Beamforming in Cooperative Cognitive Backscatter Networks for Wireless-Powered IoT

机译:无线物联网的协作认知背向散射网络中的最佳波束形成

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Cognitive backscatter communication enables wireless powered backscatter devices (BDs) to transmit information by modulating ambient radio frequency (RF) carriers, which shares both the same spectrum and the same radio-frequency (RF) source as the legacy (ambient) system, thus has become a promising technology for energy-and spectrum-efficient Internet-of-things (IoT) communications. In this paper, we consider a cooperative cognitive backscatter network (CCBN) consisting of a multi-antenna RF-Source, multiple (ambient) BDs, and a multi-antenna cooperative receiver (C-RX). We derive the achievable rates for the C-RX decoding the direct-link signal from the RF-Source and the backscatter-link signal from all BDs, respectively. We further formulate an optimization problem to maximize the backscatter-link sum rate by optimizing the beamforming weights (i.e., the precoding matrix) subject to the RF-Source's minimum rate requirement and the BDs' minimum energy requirements. Based on the sequential parametric convex approximation (SPCA) method, we propose an algorithm to find the optimal solution to the original non-convex problem, by using a sequence of semidefinite programming (SDP) problems to approximate the original problem iteratively. Finally, extensive numerical results show that the optimal beamforming solution enhances the BDs' sum rate significantly compared to the omnidirectional transmission, and demonstrate the tradeoff among the direct-link rate of the RF-Source, the sum rate of all BDs, as well as the energy requirements at the BDs.
机译:认知反向散射通信使无线供电的反向散射设备(BDS)能够通过调制环境射频(RF)载波来传输信息,该载波共享与传统(环境)系统相同的频谱和相同的射频(RF)源,因此具有成为能源和谱有效的互联网(物联网)通信的有希望的技术。在本文中,我们考虑由多天线RF源,多个(环境)BDS和多天线协作接收器(C-RX)组成的协同认知反向散射网络(CCBN)。我们可以分别从RF-Source和所有BDS中解码直接链路信号的C-RX可实现的速率。我们进一步制定了优化问题,以通过优化受RF源的最小速率要求和BDS的最小能量要求来最大化反向散射连杆和速率。基于顺序参数凸近似(SPCA)方法,我们提出了一种算法来找到原始非凸面问题的最佳解决方案,通过使用一系列SEMIDEFINITE编程(SDP)问题来迭代地近似原始问题。最后,广泛的数值结果表明,与全向传输相比,最优波束形成溶液提高了BDS的总和速率,并在RF源的直接链路速率下展示了所有BDS的总和率之间的权衡BDS的能源要求。

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