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Codebook-Based Precoding and Power Allocation for MU-MIMO Systems for Sum Rate Maximization

机译:基于码本的预编码和功率分配用于MU-MIMO系统,用于总和速率最大化

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In this paper, we study the problem of downlink (DL) sum rate maximization in codebook based multiuser (MU) multiple input multiple output (MIMO) systems. The user equipments (UEs) estimate the DL channels using pilot symbols sent by the access point (AP) and feedback the estimates to the AP over a control channel. We present a closed form expression for the achievable sum rate of the MU-MIMO broadcast system with codebook constrained precoding based on the estimated channels, where multiple data streams are simultaneously transmitted to all users. Next, we present novel, computationally efficient, minorization-maximization (MM) based algorithms to determine the selection of beamforming vectors and power allocation to each beam that maximizes the achievable sum rate. Our solution involves multiple uses of MM in a nested fashion. Based on this approach, we propose and contrast two algorithms, which we call the square-root-MM (SMM) and inverse-MM (IMM) algorithms. The algorithms are iterative and converge to a locally optimal beamforming vector selection and power allocation solution from any initialization. We evaluate the performance and complexity of the algorithms for various values of the system parameters, compare them with existing solutions, and provide further insights into how they can be used in system design.
机译:在本文中,我们研究了基于码本的多用户(MU)多输入多输出(MIMO)系统中的下行链路(DL)总和最大化的问题。用户设备(UE)使用接入点(AP)发送的导频符号来估计DL信道,并通过控制信道将估计反馈到AP。对于基于估计的信道的码本的MU-MIMO广播系统的可实现的MU-MIMO广播系统的可实现的总和速率呈现封闭式表达式,其中多个数据流同时发送到所有用户。接下来,我们提出了基于新颖的,计算的高效,较小的最大化(MM),以确定波束形成矢量的选择和对最大化可实现的总和速率的每个光束的功率分配。我们的解决方案涉及以嵌套方式多次使用mm。基于这种方法,我们提出并对比两种算法,我们称之为方形根本-MM(SMM)和反毫米(IMM)算法。算法迭代并收敛到来自任何初始化的局部最佳波束成形矢量选择和功率分配解决方案。我们评估系统参数各种值的算法的性能和复杂性,将它们与现有解决方案进行比较,并进一步了解如何在系统设计中使用它们。

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