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首页> 外文期刊>IEEE Transactions on Signal Processing >Robust Tomlinson–Harashima Precoding With Gaussian Uncertainties for SWIPT in MIMO Broadcast Channels
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Robust Tomlinson–Harashima Precoding With Gaussian Uncertainties for SWIPT in MIMO Broadcast Channels

机译:MIMO广播信道中SWIPT的鲁棒Tomlinson–Harashima预编码和高斯不确定性

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摘要

Nonlinear transceiver based on Tomlinson-Harashima (TH) precoding outperforms the linear minimum mean-square-error (MSE) architecture in terms of minimum achievable MSE. In this paper, we investigate nonlinear TH precoding design problem for simultaneous wireless information and power transfer in multiple-input-multiple-output broadcast channels, where there are one information-decoding (ID) receiver and multiple energy harvesting (EH) receivers. We consider the scenario that the transmitter knows imperfect channel state information of all links and the channel uncertainties are modeled by Gaussian random variables. Our objective is to jointly optimize TH precoding matrices and linear equalizer to minimize average MSE subject to transmit power constraint and EH constraints on average harvested power. We transform the robust transceiver design problem into a difference of convex programming and propose a constrained concave convex procedure (CCCP) based locally optimal solution. To reduce computational complexity, we propose a noniterative upper bound based suboptimal solution that minimizes the upper bound on average MSE. We also extend the CCCP-based locally optimal solution to the single group multicast scenario where there are multiple ID receivers. Simulation results demonstrate that our proposed TH precoding transceiver design achieves lower average MSE than linear precoding transceiver design.
机译:就最小可实现的MSE而言,基于Tomlinson-Harashima(TH)预编码的非线性收发器优于线性最小均方误差(MSE)架构。在本文中,我们研究了在多输入多输出广播信道中同时进行无线信息和功率传输的非线性TH预编码设计问题,其中有一个信息解码(ID)接收器和多个能量收集(EH)接收器。我们考虑这样一种情况,即发射机知道所有链路的信道状态信息不完善,并且信道不确定性由高斯随机变量建模。我们的目标是共同优化TH预编码矩阵和线性均衡器,以使平均MSE最小化,该平均MSE受发射功率约束和EH约束(平均收获功率)的影响。我们将鲁棒的收发器设计问题转化为凸编程的差异,并提出了基于约束的凸凸程序(CCCP)的局部最优解。为了降低计算复杂度,我们提出了一个基于非迭代上限的次优解决方案,该方案将平均MSE的上限最小化。我们还将基于CCCP的本地最优解决方案扩展到存在多个ID接收者的单组多播场景。仿真结果表明,我们提出的TH预编码收发器设计比线性预编码收发器设计具有更低的平均MSE。

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