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Transceiver Design in Full-Duplex MIMO Cognitive Radios Under Channel Uncertainties

机译:信道不确定性下全双工MIMO认知无线电中的收发器设计

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In this paper, the operation of a full-duplex (FD) multiple-input multiple-output (MIMO) underlay cognitive radio (CR) network is studied. Each pair of secondary users (SUs) operate in FD mode, and each SU communicates with its peer within the coverage area of multiple primary users (PUs). Each SU suffers from self-interference, along with interference created by all other SUs and, in its turn, generates interference towards the PU. We assume that the channel-state-information (CSI) of the interference links between the SUs and the PU is imperfectly known and the channel estimation errors are norm bounded. Under such channel uncertainties, we address the problem of robust minimization of the aggregate mean-squared-error (MSE) of all estimated symbols, subject to a set of transmit power constraints, as well as interference constraints, with the aim of protecting PU communication. It is shown that the problem can be cast as a semidefinite programming problem and the optimal precoding matrices can be obtained via an iterative algorithm. By means of simulation, the proposed FD precoding scheme is shown to outperform the standard half-duplex scheme.
机译:本文研究了全双工(FD)多输入多输出(MIMO)底层认知无线电(CR)网络的操作。每对辅助用户(SU)以FD模式运行,并且每个SU在多个主要用户(PU)的覆盖范围内与其对等方进行通信。每个SU都会遭受自干扰,以及其他所有SU所产生的干扰,进而对PU产生干扰。我们假设SU和PU之间的干扰链路的信道状态信息(CSI)不完全已知,并且信道估计误差是有界的。在这种信道不确定性的情况下,我们要解决所有估计符号的总均方误差(MSE)的鲁棒最小化问题,该问题受一组发射功率约束以及干扰约束的影响,目的是保护PU通信。结果表明,该问题可以看作是半定规划问题,并且可以通过迭代算法获得最优的预编码矩阵。通过仿真,表明所提出的FD预编码方案优于标准的半双工方案。

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