大规模MIMO的LEO卫星通信

Li You, Ke-Xin Li, Jiaheng Wang, Xiqi Gao, X. Xia, Björn Otterstenx
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引用次数: 18

摘要

低地球轨道(LEO)卫星通信预计将被纳入未来的无线网络,以提高数据速率提供全球无线接入。大规模多输入多输出(MIMO)技术虽然广泛应用于地面通信系统,但尚未应用于低轨道卫星通信系统。本文提出了一种利用发射端统计信道状态信息(sCSI)实现低轨道卫星通信系统全频率复用(FFR)的大规模MIMO下行链路传输方案。本文首先建立了低轨道卫星通信的大规模MIMO信道模型,并提出了用户终端的多普勒和时延补偿技术。然后,我们通过最大化平均信漏加噪声比(ASLNR)开发了一种基于sCSI的闭式低复杂度DL预编码器。在DL ASLNR上界的激励下,我们进一步提出了一种基于空间角度的用户分组算法,将服务的ut分配到不同的组中,其中每组ut使用相同的时间和频率资源。数值结果表明,提出的带FFR的大规模MIMO传输方案显著提高了LEO卫星通信系统的数据速率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
LEO Satellite Communications with Massive MIMO
Low earth orbit (LEO) satellite communications are expected to be incorporated in future wireless networks to provide global wireless access with enhanced data rates. Massive multiple-input multiple-output (MIMO) techniques, though widely used in terrestrial communication systems, have not been applied to LEO satellite communication systems. In this paper, we propose a massive MIMO downlink (DL) transmission scheme with full frequency reuse (FFR) for LEO satellite communication systems by exploiting statistical channel state information (sCSI) at the transmitter. We first establish a massive MIMO channel model for LEO satellite communications and propose Doppler and time delay compensation techniques at user terminals (UTs). Then, we develop a closed-form low-complexity sCSI based DL precoder by maximizing the average signal-to-leakage-plus-noise ratio (ASLNR). Motivated by the DL ASLNR upper bound, we further propose a space angle based user grouping algorithm to schedule the served UTs into different groups, where each group of UTs use the same time and frequency resource. Numerical results demonstrate that the proposed massive MIMO transmission scheme with FFR significantly enhances the data rate of LEO satellite communication systems.
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