2026· IEEE Transactions on Wireless Communications· Vol 25, pp. 21276-21289· 0 citations· 36 references
Computer Science
Abstract
LEO satellites play a critical role in non-terrestrial networks (NTNs), where beam hopping (BH), enabled by phased-array antennas and flexible time-frequency division multiplexing (TFDM), enhances payload utilization. However, existing BH studies for spectrum-sharing LEO–GEO systems often neglect the co-frequency interference (CFI) imposed by LEO downlink beams on GEO user terminals, and lack a coordinated optimization of the strongly coupled BH pattern and spectrum resource allocation. These limitations hinder effective interference mitigation and restrict system capacity. Therefore, this paper proposes a downlink BH method with CFI avoidance for LEO satellites in spectrum sharing with GEO systems. Specifically, a dynamic multi-objective optimization mechanism is designed to jointly optimize system throughput and delay fairness while reducing the CFI on GEO user terminals through coordinating beam pointing and frequency assignment. Furthermore, a dual-agent soft actor-critic (SAC) framework is proposed to collaboratively optimize BH pattern and resource allocation. It balances exploration and exploitation through entropy maximization, enhances training stability via soft target network updates, and mitigates estimation errors using the actor-critic architecture. Simulation results demonstrate that the proposed method reduces CFI on GEO user terminals by 31%, while ensuring that 83% of LEO cells achieve over 90% traffic satisfaction rate, thereby significantly improving system performance and resource utilization efficiency.
Low Earth Orbit (LEO) satellites are becoming increasingly vital as a complement to terrestrial networks for 6G, owing to the advantages of low latency, high capacity, and low launch cost. However, with the rapid increase in the number of LEO satellites, the limited spectrum resources are severely constraining the deve...
Due to their resilience and global coverage, satellite networks are poised to become a key component for non-terrestrial networks in the future. However, given the scarcity of spectrum resources, the dense deployment of low Earth orbit (LEO) satellites introduces significant interference challenges. Meanwhile, the limi...
Xin Chen, Zhi-Yong Luo· IEEE Transactions on Wireles...· 0 citations
With the rapid deployment of multi-layer low Earth orbit (LEO) constellations, spectrum scarcity has led to severe downlink co-frequency interference. While beam-hopping offers a flexible solution for resource allocation in these systems, its inherent spatio-temporal dynamics introduce significant complexity for interf...
Shen-Rong Li, Hong-Guang Dai, Ke Wang et al.· 2026 IEEE/CIC International...· 0 citations
Beam-Hopping (BH) dynamically adjusts beam pointing and dwell time to overcome the rigid resource allocation of traditional fixed beam coverage. This paper addresses the BH scheduling problem in low-Earth-orbit (LEO) satellite networks for high-priority and time-sensitive services. A system-gain maximization model and...
L. Gou, Yu-Lei Nie, Wei Sun et al.· Italian National Conference...· 0 citations
Comparative analyses against ablation experiment frameworks and multiple access benchmark frameworks demonstrate that the proposed joint resource allocation distributed rate-splitting multiple access framework can improve the performance of low Earth orbit satellite communication systems while satisfying multiple const...
Xian-Peng Wang, Xi Han, Mingqi Gao et al.· IEEE Access· 0 citations
Numerical results indicate that the proposed framework outperforms benchmark schemes while accounting for traffic demands and EE, resulting in a mixed-integer nonlinear program (MINLP) for which finding a globally optimal solution is generally intractable.
Wooseok Cha, Kyeongsoo Kim, Seonghoon Kim et al.· IEEE Transactions on Wireles...· 0 citations
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