具有非均匀流量需求的低地轨道卫星网络中单播和多播联合传输的速率分配

Jaehyup Seong;Juha Park;Dong-Hyun Jung;Jeonghun Park;Wonjae Shin
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摘要

全球无所不在的低地球轨道卫星通信(SATCOM)被认为是推进5G及以后无线通信系统的关键催化剂。LEO SATCOM擅长于在广阔的领域提供多功能信息服务,通过高速宽带能力促进单播和多播传输。然而,考虑到低轨卫星通信的宽带覆盖范围,服务区域内的业务需求分布不均匀,低轨卫星可用的时间/频率/功率资源仍然非常有限。针对这些挑战,我们提出了一种非正交单播和组播(NOUM)传输的速率匹配框架。我们的方法旨在最小化单播和多播消息的提供速率和流量需求之间的差异。通过在同一无线资源上复用单播和组播传输,采用RSMA (rate-splitting multiple access)来管理LEO卫星上单播和组播流之间的干扰以及信道状态信息不完全情况下的用户间干扰。为了解决公式化问题的非光滑性和非凸性,使用LogSumExp技术对公共速率进行近似。然后,我们将公共速率部分表示为近似函数的比率,将问题转化为无约束形式。在此基础上,提出了一种基于广义功率迭代(GPI)的算法GPI- rs - noum。通过对各种模拟设置的综合数值分析,我们证明了所提出的框架优于具有不均匀流量需求的LEO卫星通信的各种基准。
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Rate-Splitting for Joint Unicast and Multicast Transmission in LEO Satellite Networks With Non-Uniform Traffic Demand
Low Earth orbit (LEO) satellite communications (SATCOM) with ubiquitous global connectivity is deemed a pivotal catalyst in advancing wireless communication systems for 5G and beyond. LEO SATCOM excels in delivering versatile information services across expansive areas, facilitating both unicast and multicast transmissions via high-speed broadband capability. Nonetheless, given the broadband coverage of LEO SATCOM, traffic demand distribution within the service area is non-uniform, and the time/frequency/power resources available at LEO satellites remain significantly limited. Motivated by these challenges, we propose a rate-matching framework for non-orthogonal unicast and multicast (NOUM) transmission. Our approach aims to minimize the difference between offered rates and traffic demands for both unicast and multicast messages. By multiplexing unicast and multicast transmissions over the same radio resource, rate-splitting multiple access (RSMA) is employed to manage interference between unicast and multicast streams, as well as inter-user interference under imperfect channel state information at the LEO satellite. To address the formulated problem’s non-smoothness and non-convexity, the common rate is approximated using the LogSumExp technique. Thereafter, we represent the common rate portion as the ratio of the approximated function, converting the problem into an unconstrained form. A generalized power iteration (GPI)-based algorithm, coined GPI-RS-NOUM, is proposed upon this reformulation. Through comprehensive numerical analysis across diverse simulation setups, we demonstrate that the proposed framework outperforms various benchmarks for LEO SATCOM with uneven traffic demands.
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Table of Contents IEEE Communications Society Information Corrections to “Coverage Rate Analysis for Integrated Sensing and Communication Networks” IEEE Journal on Selected Areas in Communications Publication Information Guest Editorial: Integrated Ground-Air-Space Wireless Networks for 6G Mobile—Part II
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