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Under-determined Training and Estimation for Distributed Transmit Beamforming Systems

机译:分布式传输波束成形系统的欠定训练和估计

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Distributed transmit beamforming (DTB) can significantly boost the signal-to-noise ratio (SNR) of a wireless communication system. To realize the benefits of DTB, generating and feeding back beamforming vector are very challenging tasks. Existing schemes have either enormous overhead or weak robustness in noisy channels. In this paper, we investigate the design of training sequences and beamforming vector estimators in DTB systems. We consider an under-determined case, where the length of training sequence N sent from each node is smaller than the number of source nodes M. We derive the optimal estimation of the beamforming vector that maximizes the beamforming gain and show that it can be well approximated as the linear minimum mean square error (LMMSE) estimator. Based on the LMMSE estimator, we investigate the optimal design of training sequences and propose efficient DTB schemes. We analytically show that these schemes can achieve approximately N times increased SNR in uncorrelated channels, and even higher gain in correlated ones. We also propose a concatenated training scheme which optimally combines the training signals over multiple frames to obtain the beamforming vector. Simulation results demonstrate that the proposed DTB schemes can yield significant gains even at very low SNRs, with total feedback bits much less than those required in the existing schemes.
机译:分布式发射波束成形(DTB)可以大大提高无线通信系统的信噪比(SNR)。为了实现DTB的优势,生成和反馈波束成形矢量是非常具有挑战性的任务。现有方案在嘈杂的信道中要么开销很大,要么鲁棒性差。在本文中,我们研究了DTB系统中训练序列和波束成形矢量估计器的设计。我们考虑了一个不确定的情况,其中从每个节点发送的训练序列N的长度小于源节点M的数量。我们得出了使波束成形增益最大化的波束成形向量的最优估计,并证明它可以很好近似为线性最小均方误差(LMMSE)估计量。基于LMMSE估计器,我们研究了训练序列的最佳设计并提出了有效的DTB方案。我们的分析表明,这些方案可以在不相关的信道中获得大约N倍的信噪比提高,甚至在相关的信道中获得更高的增益。我们还提出了一种级联训练方案,该方案可以最佳地组合多个帧上的训练信号以获得波束形成向量。仿真结果表明,即使在非常低的SNR情况下,提出的DTB方案也可以产生显着的增益,总反馈位远小于现有方案所需的反馈位。

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