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Joint Optimization of Beamforming and Power Allocation for Multicell Downlink Systems

机译:多型下行链路系统的波束形成和功率分配联合优化

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This paper investigates a joint optimization design method for beamforming and power allocation to improve the energy efficiency (EE) of a multicell MIMO downlink system considering the effect of channel estimation errors. The channel state information (CSI) imperfections can be well modeled with the power for training sequence. Assuming that both base stations and users are equipped with multiple antennas, this research focuses on the joint optimization of the beamforming vectors and the power allocation ratio between training sequence power and transmit data in order to maximize the EE under power constraints. A robust alternating optimization based on iterative algorithm to solve this problem which is in a nonconvex fractional form is proposed. First, the fractional problem is transformed into a linear form using the Dinkelbach method. The sumrate maximization problem is, then, replaced by the sum-MSE minimization problem by applying weighted mean square error minimization (WMMSE) method. Finally, the expectation taken over the distribution of the channels can be approximated using the sample average approximation (SAA) and the problem can be solved by computing a second order cone programming (SOCP). The robustness and effectiveness of the proposed method are validated by the simulation results.
机译:本文研究了波束形成和功率分配,以提高考虑信道估计误差的影响的多小区MIMO下行链路系统的能量效率(EE)的联合优化设计方法。信道状态信息(CSI)的缺陷可以与用于训练序列的功率被很好建模。假设两个基站和用户都配备有多个天线,这研究主要集中在波束成形向量的联合优化和训练序列的功率和发送数据以最大化下功率约束EE之间的功率分配比。基于迭代算法的鲁棒交替优化来解决这个问题,其是在提出了一种非凸数学形式。首先,分数问题转化为使用Dinkelbach方法的线性形式。所述sumrate最大化问题,那么,取代的总和-MSE最小化问题通过应用加权均方误差最小化(WMMSE)方法。最后,接管通道的分布预期可以使用样本平均近似(SAA)来近似,问题可以通过计算二阶锥规划(SOCP)来解决。该方法的稳健性和有效性由模拟结果进行验证。

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