Hybrid analog-digital beamforming (HBF) has emerged as a key enabling technology for non-terrestrial networks (NTNs), where large antenna arrays are required to compensate for severe propagation loss but fully digital beamforming is often impractical due to radio-frequency (RF) chain cost, power consumption, and payload limitations. Compared with terrestrial networks, NTN platforms such as low Earth orbit (LEO) satellites and unmanned aerial vehicles (UAVs) impose distinctive HBF design challenges, including high mobility, Doppler effects, sparse line-of-sight-dominant channels, stringent on-board energy budgets, and, for UAVs, the additional coupling between beamforming and controllable platform placement or trajectory. This survey provides a systematic review of HBF techniques for NTN systems, with emphasis on LEO satellite and UAV communications. We first introduce common HBF architectures, signal models, channel representations, analog and digital precoder designs, and learning-aided approaches that form the shared technical foundation of existing works. We then survey both platforms under a common set of five categories, which cover system architecture and precoding design, time-varying beam management, network-level cooperation and scheduling, sensing capability and reconfigurable surfaces, and security and multiple access. Their platform-specific content differs most sharply in the second one, since the dominant time-varying mechanism is traffic-driven beam hopping on an LEO payload but mobility-aware beam tracking on a UAV. Finally, we discuss open research challenges and future directions toward scalable, robust, and hardware-efficient HBF in next-generation NTNs.
Thuan Van Le, Luong Cong Nguyen, H. T. Nguyen et al.· 0 citations
Near-field simultaneously transmitting and reflecting reconfigurable intelligent surface (STAR-RIS) systems enable full-space coverage, but dense multiuser operation requires active-user grouping under practical stream or RF-chain constraints. Gain-based or proportional-fair scheduling may over-serve strong users, while random selection improves service regularity but ignores channel and region information. This work proposes a randomized deficit-aware user grouping (RD-FRUG) scheme for energy-splitting STAR-RIS-aided near-field multiuser systems. RD-FRUG jointly accounts for service deficit, long-term rate imbalance, transmission/reflection region balance, and inter-user channel correlation. Given the selected group, the STAR-RIS energy-splitting coefficients, passive phase profile, and BS precoder are updated with low computational overhead. Simulation results under near-field channels with distance-dependent pathloss show that the proposed heuristic provides a favorable sum-rate–fairness tradeoff under the considered settings. It approaches the Jain’s fairness index of random selection, achieves higher sum-rate than random selection, and improves the fifth-percentile user rate over gain-greedy, proportional-fair greedy, and region-balanced baselines.
Thuan Van Le, Trong-Dai Hoang· IEEE Wireless Communications...· 0 citations
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