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Transmit Beamforming for Physical-Layer Multicasting

机译:传输波束成形用于物理层组播

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This paper considers the problem of downlink transmit beamforming for wireless transmission and downstream precoding for digital subscriber wireline transmission, in the context of common information broadcasting or multicasting applications wherein channel state information (CSI) is available at the transmitter. Unlike the usual "blind" isotropic broadcasting scenario, the availability of CSI allows transmit optimization. A minimum transmission power criterion is adopted, subject to prescribed minimum received signal-to-noise ratios (SNRs) at each of the intended receivers. A related max-min SNR "fair" problem formulation is also considered subject to a transmitted power constraint. It is proven that both problems are NP-hard; however, suitable reformulation allows the successful application of semidefinite relaxation (SDR) techniques. SDR yields an approximate solution plus a bound on the optimum value of the associated cost/reward. SDR is motivated from a Lagrangian duality perspective, and its performance is assessed via pertinent simulations for the case of Rayleigh fading wireless channels. We find that SDR typically yields solutions that are within 3-4 dB of the optimum, which is often good enough in practice. In several scenarios, SDR generates exact solutions that meet the associated bound on the optimum value. This is illustrated using measured very-high-bit-rate Digital Subscriber line (VDSL) channel data, and far-field beamforming for a uniform linear transmit antenna array.
机译:本文考虑了在公共信息广播或多播应用(其中在发射机处有信道状态信息(CSI))的情况下,用于无线传输的下行链路发射波束成形和用于数字用户有线传输的下行链路预编码的问题。与通常的“盲”各向同性广播方案不同,CSI的可用性允许进行传输优化。采用最小发射功率标准,但要遵守每个预期接收器的规定的最小接收信噪比(SNR)。还考虑了相关的最大-最小SNR“合理”问题公式,该公式受发射功率约束的影响。事实证明,这两个问题都是NP问题。但是,适当的重新安排可以成功应用半定松弛(SDR)技术。特别提款权产生一个近似的解决方案,加上相关成本/报酬的最优值的界限。 SDR从拉格朗日对偶性的角度出发,并通过针对瑞利衰落无线信道情况的相关仿真评估了SDR的性能。我们发现,SDR通常产生的解决方案在最佳值的3-4 dB之内,在实践中通常足够好。在几种情况下,SDR会生成满足最佳值相关范围的精确解决方案。使用已测量的非常高比特率的数字用户线路(VDSL)信道数据以及用于均匀线性发射天线阵列的远场波束形成对此进行了说明。

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