论文标题

Leo卫星通信的大量MIMO传输

Massive MIMO Transmission for LEO Satellite Communications

论文作者

You, Li, Li, Ke-Xin, Wang, Jiaheng, Gao, Xiqi, Xia, Xiang-Gen, Ottersten, Björn

论文摘要

低地球轨道(LEO)卫星通信预计将被纳入未来的无线网络,尤其是5G和其他网络,以提供全球无线访问,并增强了数据速率。大量的MIMO技术虽然在地面通信系统中广泛使用,但尚未应用于Leo卫星通信系统。在本文中,我们提出了一个大规模的MIMO传输方案,其中具有全频率重复使用(FFR),用于LEO卫星通信系统,并利用统计通道状态信息(SCSI)来解决在发射器上获得瞬时CSI(ICSI)的困难。我们首先为LEO卫星通信建立了庞大的MIMO通道模型,并通过执行多普勒和延迟用户终端(UTS)延迟补偿来简化传输设计。然后,我们以封闭形式开发了低复杂性SCSI基于SCSI的下行链路(DL)预编码器和上行链路(UL)接收器,旨在最大程度地提高平均信噪比 - 透露率 - 噪声比率(ASLNR)和平均信号与信号到互动率 - 差距差异(ASINR)。结果表明,在某些通道条件下,所有UTS的DL ASLNR和UL ASINR都达到了上限。在此激励的情况下,我们提出了一种基于空间角度的用户分组(SAUG)算法,以将服务UTS安排为不同的组,其中每组UTS都使用同一时间和频率资源。在卫星天线或UT组的数量足够大时,所提出的算法在渐近上是最佳的,即可实现速率的下限和上限重合。数值结果表明,提出的具有FFR的大规模MIMO传输方案显着提高了LEO卫星通信系统的数据速率。值得注意的是,拟议的基于SCSI的预编码器和接收器与基于ICSI的相似性能在实践中通常是不可行的。

Low earth orbit (LEO) satellite communications are expected to be incorporated in future wireless networks, in particular 5G and beyond networks, to provide global wireless access with enhanced data rates. Massive 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 transmission scheme with full frequency reuse (FFR) for LEO satellite communication systems and exploit statistical channel state information (sCSI) to address the difficulty of obtaining instantaneous CSI (iCSI) at the transmitter. We first establish the massive MIMO channel model for LEO satellite communications and simplify the transmission designs via performing Doppler and delay compensations at user terminals (UTs). Then, we develop the low-complexity sCSI based downlink (DL) precoder and uplink (UL) receiver in closed-form, aiming to maximize the average signal-to-leakage-plus-noise ratio (ASLNR) and the average signal-to-interference-plus-noise ratio (ASINR), respectively. It is shown that the DL ASLNRs and UL ASINRs of all UTs reach their upper bounds under some channel condition. Motivated by this, we propose a space angle based user grouping (SAUG) algorithm to schedule the served UTs into different groups, where each group of UTs use the same time and frequency resource. The proposed algorithm is asymptotically optimal in the sense that the lower and upper bounds of the achievable rate coincide when the number of satellite antennas or UT groups is sufficiently large. Numerical results demonstrate that the proposed massive MIMO transmission scheme with FFR significantly enhances the data rate of LEO satellite communication systems. Notably, the proposed sCSI based precoder and receiver achieve the similar performance with the iCSI based ones that are often infeasible in practice.

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