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基于波束跳变的卫星-地面融合网络资源分配

Beam-Hopping-Based Resource Allocation in Integrated Satellite-Terrestrial Networks.

作者信息

Zhang Mengying, Yang Xiumei, Bu Zhiyong

机构信息

Shanghai Institute of Microsystem and Information Technology, Chinese Academy of Sciences, Shanghai 200050, China.

University of Chinese Academy of Sciences, Beijing 100049, China.

出版信息

Sensors (Basel). 2024 Jul 19;24(14):4699. doi: 10.3390/s24144699.

Abstract

The integrated satellite-terrestrial network (ISTN) provides a promising solution to achieve high-data-rate and ubiquitous connectivity in next-generation communication networks. Considering the scarce spectrum resources and unevenly distributed traffic demands, we investigate the resource allocation algorithms for ISTNs, where the beam-hopping (BH)-based satellite system and terrestrial systems share the same frequency band. Taking advantage of the scheduling flexibility of BH technology, the dynamical protection zones are constructed to avoid co-channel interference and improve the spectrum efficiency. Since both spectrum efficiency and user fairness are the key optimization indexes in practical systems, two resource allocation problems are formulated to maximize the weighted sum of capacity (MWSC) and maximize the minimum capacity-to-demand ratio (MMCDR) of ISTNs, respectively. By reformulating the problems as mixed-integer linear programming problems, optimal solutions are obtained. To reduce the computational complexity, two greedy suboptimal algorithms are proposed for the MWSC and MMCDR, respectively. The simulation results show that the proposed algorithms achieve higher spectrum efficiency and guarantee fairness between the satellite and terrestrial systems. It is also shown that both the greedy algorithms perform similarly to the optimal algorithms while having much lower complexity.

摘要

集成卫星-地面网络(ISTN)为在下一代通信网络中实现高数据速率和无处不在的连接提供了一个有前景的解决方案。考虑到稀缺的频谱资源和分布不均的流量需求,我们研究了ISTN的资源分配算法,其中基于波束跳变(BH)的卫星系统和地面系统共享相同频段。利用BH技术的调度灵活性,构建动态保护区域以避免同频干扰并提高频谱效率。由于频谱效率和用户公平性都是实际系统中的关键优化指标,因此分别提出了两个资源分配问题,以最大化ISTN的加权容量总和(MWSC)和最大化最小容量需求比(MMCDR)。通过将问题重新表述为混合整数线性规划问题,获得了最优解。为了降低计算复杂度,分别针对MWSC和MMCDR提出了两种贪婪次优算法。仿真结果表明,所提算法实现了更高的频谱效率,并保证了卫星系统和地面系统之间的公平性。还表明,两种贪婪算法的性能与最优算法相似,但复杂度要低得多。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b065/11280986/62261a5ab3cf/sensors-24-04699-g001.jpg

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