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April 15, 2026International Journal of Satellite Communications and Networking1 citations

Energy‐Efficient Optimization for RSMA‐Based Integrated Satellite–Terrestrial Networks Under Shadowed‐Rician Fading

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HTHuu Q. Tran

Key Points

  • To develop an optimization framework for RSMA in integrated satellite-terrestrial networks under fading conditions, enhancing efficiency.
  • Developed closed-form expressions for ergodic sum rate using Meijer-functions.
  • Proposed a gradient-projection algorithm with Dinkelbach's method for power-split optimization.
  • Considered constraints related to quality of service and successive interference cancellation.
  • Achieved 8%-20% ergodic sum-rate gains compared to NOMA and OMA.
  • Demonstrated 10%-18% energy-efficiency improvements under various shadowing conditions.
  • Confirmed analytical results with numerical and Monte Carlo simulations.

Abstract

ABSTRACT This paper develops a unified analytical and optimization framework for rate‐splitting multiple access (RSMA) in integrated satellite–terrestrial networks operating over shadowed‐Rician fading channels. Closed‐form integral expressions for the ergodic sum rate are derived using Meijer‐ functions, explicitly accounting for imperfect successive interference cancellation (SIC), multibeam satellite gains, and power splitting between common and private streams. Building on these expressions, a gradient‐projection algorithm combined with Dinkelbach's method is proposed to optimize the power‐split coefficients under quality‐of‐service and SIC constraints, jointly enhancing spectral and energy efficiency. Numerical and Monte Carlo results confirm the analytical accuracy and show that the optimized RSMA design achieves approximately 8%–20% ergodic sum‐rate and 10%–18% energy‐efficiency gains over non‐orthogonal multiple access (NOMA) and orthogonal multiple access (OMA) baselines across both average and heavy shadowing conditions. The proposed framework provides implementation‐oriented design insights into power‐split adaptation and SIC robustness for future 6G non‐terrestrial networks.

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Huu Q. Tran (2026) studied this question.

synapsesocial.com/papers/69df2bece4eeef8a2a6b0d8fhttps://doi.org/10.1002/sat.70049
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