Hybrid Satellite-Terrestrial Cooperative Communication with Mobile Terrestrial Nodes

Neeraj Varshney, A. Jagannatham
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引用次数: 4

Abstract

This work investigates the performance of hybrid satellite-terrestrial systems over time-selective fading links arising due to the node mobility with multiple relay based selective decode-and-forward cooperation. The aerial satellite-to-relay and satellite-to-destination links are non-identical time-selective shadowed Rician fading in nature, whose parameters depend on the elevation angle of the satellite, whereas the terrestrial relay-destination links are assumed to be non-identical time-selective generalized Nakagami faded. Closed form expressions are derived for the per-frame average symbol error rate (SER) and asymptotic SER floor considering the transmission of Mary PSK modulated symbols. It is observed that the time-varying nature of the links significantly degrades the system performance. Further, the impact of the satellite elevation angles at the terrestrial nodes is explicitly demonstrated through simulations, along with the effect of preamble versus midamble for channel estimation. The error rate of the system is seen to reduce significantly with increasing satellite elevation angle at the relay when the satellite-destination link experiences frequent heavy shadowing (FHS) and the relay-destination links are relatively strong. However, for other scenarios when the relay-destination links are relatively weak and satellite-relay links experience FHS, significant performance improvement can be seen by increasing the satellite elevation angle at the destination UE.
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基于移动地面节点的星地混合协同通信
本文研究了卫星-地面混合系统在时间选择性衰落链路上的性能,这种衰落链路是由基于多中继的选择性译码转发合作的节点移动性引起的。航空星中继链路和卫星目标链路本质上是非同时选择性的阴影时延衰落,其参数取决于卫星的仰角,而地面中继链路本质上是非同时选择性的广义Nakagami衰落。考虑多个PSK调制符号的传输,导出了每帧平均误码率(SER)和渐近误码率层的封闭表达式。可以观察到,链路的时变特性显著降低了系统的性能。此外,卫星仰角在地面节点上的影响通过模拟得到了明确的证明,以及前置和中前置对信道估计的影响。当卫星-目的链路频繁发生重阴影(FHS)且中继-目的链路相对较强时,随着中继处卫星仰角的增大,系统的误差率显著降低。然而,对于中继-目的链路相对较弱且卫星-中继链路经历FHS的其他场景,通过增加目标终端的卫星仰角可以看到显著的性能改善。
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