优化低轨卫星通信延迟,提升多波束系统服务质量和抗干扰能力。
Latency Optimization in LEO Satellite Communications with Hybrid Beam Pattern and Interference Control
- 采用混合波束成形与动态同频干扰控制,灵活应对地面流量不均。
- 降低传输延迟,支持多用户并发,性能优于全频复用和单通道方案。
- 适合高密度低轨星座部署场景,对卫星网络设计者有实用参考价值。
低地球轨道(LEO)卫星通信系统的快速发展显著提升了全球连通性,为下一代应用提供高容量、低延迟服务。然而,密集的LEO星座配置在资源分配优化和干扰管理方面带来挑战,影响与其他通信系统的共存。为此,本文提出一种新型框架,用于优化多波束LEO系统的波束调度与资源分配。为满足地面流量需求不均,采用混合波束成形以提升下行服务质量并最小化从卫星到地面终端的传输延迟。同时,开发了动态同频干扰(CCI)控制机制,缓解星座内波束间干扰,并限制对其他网络受保护用户的影响。用户-波束-频率分配与功率优化问题被建模为混合整数动态规划模型,并通过低复杂度神经网络图生成算法求解。仿真结果表明,该方法优于全频复用和单通道传输基线方案,且多用户传输具备进一步性能提升潜力。
原文摘要 · Abstract (English)
The rapid advancement of low Earth orbit (LEO) satellite communication systems has significantly enhanced global connectivity, offering high-capacity, low-latency services crucial for next-generation applications. However, the dense configuration of LEO constellations poses challenges in resource allocation optimization and interference management, complicating coexistence with other communication systems. To address these limitations, this paper proposes a novel framework for optimizing the beam scheduling and resource allocation in multi-beam LEO systems. To satisfy the uneven terrestrial traffic demand, a hybrid beam pattern is employed to enhance the downlink quality of service and minimize the transmission latency from LEO satellites to ground user terminals. Additionally, a dynamic co-channel interference (CCI) control mechanism is developed to mitigate inter-beam interference within the LEO constellation and limit cross-system interference affecting protected users from other networks. The problem of user-beam-frequency allocation with power optimization is formulated as a mixed-integer dynamic programming model and solved using a low-complexity neural network-based graph generation algorithm. Simulation results show that the proposed approach outperforms the baseline methods of full frequency reuse and single-channel transmission, and highlights the potential for further performance improvement with multi-user transmissions.
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