多网关多波束卫星系统联合预编码与波束形成设计

Vahid Joroughi, B. Shankar, S. Maleki, S. Chatzinotas, J. Grotz, B. Ottersten
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引用次数: 2

摘要

本文旨在设计一种考虑波束间全频率复用的空地混合模式下多网关多波束卫星系统的联合地面预编码和星载波束形成。在这样的体系结构中,每个网关为相邻波束的集群提供服务,使得相邻集群通过位于不同地理区域的一组网关提供服务。然而,这种系统带来了两个需要克服的挑战。首先,波束间干扰是整个系统的瓶颈,必须采用抗干扰技术。其次,随着数据需求的增加,地面和空间段应相应地在馈线链路中使用大量的带宽资源。这需要嵌入额外数量的网关,旨在支持不断增长的需求和相应所需的馈线链路资源之间的公平平衡。为了解决这些问题,本研究探讨了采用联合多网关架构和机载波束形成方案的影响。结果表明,通过合理设计星载波束形成方案,即使在数据需求增加的情况下,也可以使网关数量保持在可承受范围内。采用零强迫(Zero Forcing, ZF)预编码技术来解决波束间干扰问题,其中每个网关都构建了一部分分组ZF预编码矩阵。用接近真实的波束方向图和最新的卫星通信宽带通信标准对设想的设计进行了评估。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Designing joint precoding and beamforming in a multiple gateway multibeam satellite system
This paper aims to design joint on-ground precoding and on-board beamforming of a multiple gateway multibeam satellite system in a hybrid space-ground mode where full frequency reuse pattern is considered among the beams. In such an architecture, each gateway serves a cluster of adjacent beams such that the adjacent clusters are served through a set of gateways that are located at different geographical areas. However, such a system brings in two challenges to overcome. First, the inter-beam interference is the bottleneck of the whole system and applying interference mitigation techniques becomes necessary. Second, as the data demand increases, the ground and space segments should employ extensive bandwidth resources in the feeder link accordingly. This entails embedding an extra number of gateways aiming to support a fair balance between the increasing demand and the corresponding required feeder link resources. To solve these problems, this study investigates the impact of employing a joint multiple gateway architecture and onboard beamforming scheme. It is shown that by properly designing the on-board beamforming scheme, the number of gateways can be kept affordable even if the data demand increases. Moreover, Zero Forcing (ZF) precoding technique is considered to cope with the inter-beam interference where each gateway constructs a part of block ZF precoding matrix. The conceived designs are evaluated with a close-to-real beam pattern and the latest broadband communication standard for satellite communications.
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