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Robust Lattice Alignment for $K$-User MIMO Interference Channels With Imperfect Channel Knowledge

机译:具有不完善信道知识的$ K $用户MIMO干扰信道的稳健晶格对准

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In this paper, we consider a robust lattice alignment design for $K$-user quasi-static multiple-input multiple-output (MIMO) interference channels with imperfect channel knowledge. With random Gaussian inputs, the conventional interference alignment (IA) method has the feasibility problem when the channel is quasi-static. On the other hand, structured lattices can create structured interference as opposed to the random interference caused by random Gaussian symbols. The structured interference space can be exploited to transmit the desired signals over the gaps. However, the existing alignment methods on the lattice codes for quasi-static channels either require infinite signal-to-noise ratio (SNR) or symmetric interference channel coefficients. Furthermore, perfect channel state information (CSI) is required for these alignment methods, which is difficult to achieve in practice. In this paper, we propose a robust lattice alignment method for quasi-static MIMO interference channels with imperfect CSI at all SNR regimes, and a two-stage decoding algorithm to decode the desired signal from the structured interference space. We derive the achievable data rate based on the proposed robust lattice alignment method, where the design of the precoders, decorrelators, scaling coefficients and interference quantization coefficients is jointly formulated as a mixed integer and continuous optimization problem. The effect of imperfect CSI is also accommodated in the optimization formulation, and hence the derived solution is robust to imperfect CSI. We also design a low complex iterative optimization algorithm for our robust lattice alignment method by using the existing iterative IA algorithm that was designed for the conventional IA method. Numerical results verify the advantages of the proposed robust lattice alignment method compared with the time-division multiple-access (TDMA), two-stage maximum-likelihood (ML) decoding, generalized Han–Kobayashi (HK), distributive IA and conventional IA methods in the literature.
机译:在本文中,我们考虑了 $ K $ -用户准静态多输入多输出的鲁棒晶格对齐设计。 (MIMO)具有不完善信道知识的干扰信道。对于随机的高斯输入,当信道为准静态时,传统的干扰对准(IA)方法存在可行性问题。另一方面,与由随机高斯符号引起的随机干扰相反,结构化格子可以产生结构化干扰。可以利用结构化的干扰空间在间隙上传输所需的信号。但是,针对准静态信道的晶格码上现有的对齐方法要么需要无限的信噪比(SNR),要么需要对称的干扰信道系数。此外,这些对齐方法需要完美的信道状态信息(CSI),这在实践中很难实现。在本文中,我们针对在所有SNR体制下具有不完善CSI的准静态MIMO干扰信道,提出了一种鲁棒的晶格对准方法,并提出了一种二级解码算法,用于从结构化干扰空间中解码所需信号。我们基于提出的鲁棒晶格对准方法得出可达到的数据速率,其中将预编码器,解相关器,缩放系数和干扰量化系数的设计联合制定为混合整数和连续优化问题。 CSI不完美的影响也包含在优化公式中,因此,导出的解决方案对于CSI不完美。通过使用为常规IA方法设计的现有迭代IA算法,我们还为鲁棒晶格对齐方法设计了一种低复杂度的迭代优化算法。数值结果验证了与时分多址(TDMA),两阶段最大似然(ML)解码,广义Han–Kobayashi(HK),分布式IA和常规IA方法相比,所提出的鲁棒晶格对准方法的优势。在文学中。

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