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Optimal Distributed Beamforming for Two-Way Relay Networks

机译:双向中继网络的最佳分布式波束成形

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摘要

In this paper, we consider a relay network which consists of two single-antenna transceivers and $n_{r}$ single-antenna relay nodes. Considering a two time slot two-way relaying scheme, each relay adjusts the phase and the amplitude of the mixture signal it receives from the two transceivers during the first time slot, by multiplying it with a complex beamforming coefficient. Then each relay transmits the so-obtained signal in the second time slot. Aiming at optimally calculating the beamforming coefficients as well as the transceiver transmit powers, we study two different approaches. In the first approach, we minimize the total transmit power (dissipated in the whole network) subject to two constraints on the transceivers' received signal-to-noise ratios (SNRs). We prove that such a power minimization technique has a unique solution. We also show that the optimal weight vector can be obtained through a simple iterative algorithm which enjoys a linear computational complexity per iteration. We also prove that for symmetric relaying schemes (where the two constraints on the transceiver SNRs are the same), half of the minimum total transmit power will be allocated to the two transceivers and the remaining half will be shared among the relaying nodes. In the second approach, we will study an SNR balancing technique. In this technique, the smaller of the two transceiver SNRs is maximized while the total transmit power is kept below a certain power budget. We show that this problem has also a unique solution which can be obtained through an iterative procedure with a linear computational complexity per iteration. We also prove that this approach leads to a power allocation scheme, where half of the maximum power budget is allocated to the two transceivers and the remaining half will be shared among all the relay nodes. For both approaches, we devise dist-nributed schemes which require a minimal cooperation among the two transceivers and the relays. In fact, we show that both techniques can be implemented such that the bandwidth, required to obtain the beamforming weights in a distributed manner, remains constant as the size of the network grows.
机译:在本文中,我们考虑一个中继网络,该网络由两个单天线收发器和$ n_ {r} $个单天线中继节点组成。考虑到两个时隙双向中继方案,每个中继通过将其与复数波束成形系数相乘,来调整在第一时隙期间从两个收发器接收的混合信号的相位和幅度。然后,每个继电器在第二时隙中发送如此获得的信号。为了最佳地计算波束成形系数以及收发器的发射功率,我们研究了两种不同的方法。在第一种方法中,我们在收发器的接收信噪比(SNR)受到两个约束的情况下,将总发射功率(在整个网络中耗散的)最小化。我们证明了这种功率最小化技术具有独特的解决方案。我们还表明,可以通过一个简单的迭代算法来获得最佳权向量,该迭代算法每次迭代都具有线性计算复杂度。我们还证明,对于对称中继方案(其中对收发器SNR的两个约束相同),最小总发射功率的一半将分配给两个收发器,其余一半将在中继节点之间共享。在第二种方法中,我们将研究SNR平衡技术。在此技术中,两个收发器SNR中的较小者会最大化,而总发射功率会保持在某个功率预算以下。我们表明,该问题还有一个独特的解决方案,可以通过迭代过程以每次迭代的线性计算复杂度来获得。我们还证明了这种方法导致了一种功率分配方案,其中最大功率预算的一半分配给两个收发器,其余一半将在所有中继节点之间共享。对于这两种方法,我们设计了分布式方案,要求在两个收发器和继电器之间进行最少的协作。实际上,我们表明可以实现这两种技术,以便随着网络规模的增长,以分布式方式获得波束成形权重所需的带宽保持恒定。

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