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Alternating Minimization Algorithms for Hybrid Precoding in Millimeter Wave MIMO Systems

机译:毫米波MIMO系统中混合预编码的交替最小化算法。

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Millimeter wave (mmWave) communications has been regarded as a key enabling technology for 5G networks, as it offers orders of magnitude greater spectrum than current cellular bands. In contrast to conventional multiple-input–multiple-output (MIMO) systems, precoding in mmWave MIMO cannot be performed entirely at baseband using digital precoders, as only a limited number of signal mixers and analog-to-digital converters can be supported considering their cost and power consumption. As a cost-effective alternative, a hybrid precoding transceiver architecture, combining a digital precoder and an analog precoder, has recently received considerable attention. However, the optimal design of such hybrid precoders has not been fully understood. In this paper, treating the hybrid precoder design as a matrix factorization problem, effective alternating minimization (AltMin) algorithms will be proposed for two different hybrid precoding structures, i.e., the fully-connected and partially-connected structures. In particular, for the fully-connected structure, an AltMin algorithm based on manifold optimization is proposed to approach the performance of the fully digital precoder, which, however, has a high complexity. Thus, a low-complexity AltMin algorithm is then proposed, by enforcing an orthogonal constraint on the digital precoder. Furthermore, for the partially-connected structure, an AltMin algorithm is also developed with the help of semidefinite relaxation. For practical implementation, the proposed AltMin algorithms are further extended to the broadband setting with orthogonal frequency division multiplexing modulation. Simulation results will demonstrate significant performance gains of the proposed AltMin algorithms over existing hybrid precoding algorithms. Moreover, based on the proposed algorithms, simulation comparisons between the two hybrid precoding structures will provide valuable design insights.
机译:毫米波(mmWave)通信被视为5G网络的关键启用技术,因为它提供的频谱比当前蜂窝频段大几个数量级。与传统的多输入多输出(MIMO)系统相比,mmWave MIMO中的预编码无法完全使用数字预编码器在基带上执行,因为考虑到它们的数量,仅能支持有限数量的信号混频器和模数转换器成本和功耗。作为一种具有成本效益的替代方案,混合预编码收发器体系结构结合了数字预编码器和模拟预编码器,最近受到了广泛的关注。但是,这种混合预编码器的最佳设计还没有被完全理解。在本文中,将混合预编码器设计视为矩阵分解问题,将针对两种不同的混合预编码结构(即完全连接和部分连接的结构)提出有效的交替最小化(AltMin)算法。特别是,对于全连接结构,提出了一种基于流形优化的AltMin算法来逼近全数字预编码器的性能,但是该算法具有很高的复杂度。因此,通过对数字预编码器施加正交约束,提出了一种低复杂度的AltMin算法。此外,对于部分连接的结构,还借助半确定松弛来开发AltMin算法。为了实际实施,将所提出的AltMin算法进一步扩展到具有正交频分复用调制的宽带设置。仿真结果将证明与现有的混合预编码算法相比,拟议的AltMin算法具有显着的性能提升。此外,基于所提出的算法,两个混合预编码结构之间的仿真比较将提供有价值的设计见解。

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