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Bi-Directional Training for Adaptive Beamforming and Power Control in Interference Networks

机译:干扰网络中自适应波束成形和功率控制的双向训练

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We study distributed algorithms for adapting transmit beamformers and linear receiver filters in a Time-Division Duplex Multiple-Input Multiple-Output (MIMO) interference network. Each transmitter transmits a single beam, and neither the transmitters nor receivers have a priori Channel State Information (CSI). Given a fixed set of powers, we present an adaptive version of the Max-SINR algorithm: pilot symbols are alternately transmitted in the forward direction (transmitters to receivers) and in the reverse direction (receivers to transmitters). Unlike previous channel estimation schemes, transmissions in each direction are synchronized across the source or destination nodes, and the pilots are used to update the filters/beams directly using a least squares criterion. To improve the performance with limited training, we include exponential weighting of the least squares objective across data frames. In addition, bi-directional training can be used to implement analog interference pricing for power control: training in the forward direction is used to measure received signal-to-interference plus noise ratios (SINRs) and interference prices, and those estimates combined with synchronous backward training are used to update the powers. Given sufficient training this method achieves the same performance as interference pricing updates with perfect CSI. Numerical results are presented that illustrate the performance of these methods in different settings.
机译:我们研究在时分双工多输入多输出(MIMO)干扰网络中适应发射波束成形器和线性接收器滤波器的分布式算法。每个发射器发射单个波束,并且发射器和接收器都不具有先验信道状态信息(CSI)。给定一组固定的功率,我们提出Max-SINR算法的自适应版本:导频符号在正向(从发射机到接收机)和反向(从接收机到发射机)之间交替传输。与先前的信道估计方案不同,在每个方向上的传输在源或目标节点之间是同步的,并且使用导频直接使用最小二乘准则来更新滤波器/波束。为了通过有限的训练来提高性能,我们包括了跨数据帧的最小二乘目标的指数加权。此外,双向训练可用于实现功率控制的模拟干扰定价:正向训练用于测量接收到的信号干扰加噪声比(SINR)和干扰价格,并将这些估计与同步向后训练用于更新能力。经过足够的培训,此方法可获得与具有完善CSI的干扰定价更新相同的性能。数值结果表明了这些方法在不同环境下的性能。

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