论文标题
近场中的三极全息含量表面:通道建模和预编码设计
Tri-Polarized Holographic MIMO Surface in Near-Field: Channel Modeling and Precoding Design
论文作者
论文摘要
本文研究了三极化(TP)对多用户(MU)全息多输入多输出表面(HMIMOS)无线通信系统的利用,靶向容量升高和多样性开发而不扩大天线阵列大小。我们特别认为,发射器和接收器均配备了由紧凑型亚波长TP贴片天线组成的近场(NF)状态中的Hmimos。为了表征TP MU-HMIMOS系统,使用Dyadic Green的功能构建了TP NF通道模型,该功能将其特征利用来设计两个预码方案,以减轻交叉极化和用户间干扰贡献。具体而言,基于用户群集的预编码方案将不同的用户分配给三个极化之一,但以系统的多样性为代价,而两层的预码方案则使用高斯消除方法以高计算成本来消除干扰。还研究了NF区域中HMIMOS的理论相关性分析,表明传输贴片天线的间距和用户距离影响传输相关因子。我们的数值结果表明,用户远非传输Hmimos经历的相关性比NF制度内更接近的相关性更高,从而导致较低的通道容量。同时,就通道容量而言,与双极化的Hmimos相比,TP Hmimos几乎可以达到1.25倍的增益,而与常规Hmimos相比,TP Hmimos的增长率几乎可以达到1.25倍,而TP Hmimos的增益几乎可以达到1.25倍。此外,提出的两层预码方案与两层功率分配相结合,比其他方案实现了更高的光谱效率,而无需牺牲多样性。
This paper investigates the utilization of triple polarization (TP) for multi-user (MU) holographic multiple-input multi-output surface (HMIMOS) wireless communication systems, targeting capacity boosting and diversity exploitation without enlarging the antenna array sizes. We specifically consider that both the transmitter and receiver are both equipped with an HMIMOS consisting of compact sub-wavelength TP patch antennas within the near-field (NF) regime. To characterize TP MU-HMIMOS systems, a TP NF channel model is constructed using the dyadic Green's function, whose characteristics are leveraged to design two precoding schemes for mitigating the cross-polarization and inter-user interference contributions. Specifically, a user-cluster-based precoding scheme assigns different users to one of three polarizations at the expense of the system's diversity, and a two-layer precoding scheme removes interference using the Gaussian elimination method at a high computational cost. The theoretical correlation analysis for HMIMOS in the NF region is also investigated, revealing that both the spacing of transmit patch antennas and user distance impact transmit correlation factors. Our numerical results show that the users far from transmitting HMIMOS experience higher correlation than those closer within the NF regime, resulting in a lower channel capacity. Meanwhile, in terms of channel capacity, TP HMIMOS can almost achieve 1.25 times gain compared with dual-polarized HMIMOS, and 3 times compared with conventional HMIMOS. In addition, the proposed two-layer precoding scheme combined with two-layer power allocation realizes a higher spectral efficiency than other schemes without sacrificing diversity.