Energy Efficient RSMA-Based LEO Satellite Communications Assisted by UAV-Mounted BD-Active RIS: A DRL Approach
Rahman Saadat Yeganeh, and Hamid Behroozi

TL;DR
This paper introduces a novel energy-efficient satellite communication system combining RSMA, UAV-mounted BD-ARIS, and DRL algorithms to optimize performance in non-terrestrial networks.
Contribution
It proposes a new architecture integrating RSMA with UAV-mounted BD-ARIS and employs DRL algorithms for joint optimization, enhancing energy efficiency and robustness.
Findings
TRPO achieves the best EE and sum rate performance.
TD3 converges faster and performs well in moderate scenarios.
A3C shows instability under high variance and CSI uncertainty.
Abstract
This paper proposes an advanced non-terrestrial communication architecture that integrates Rate-Splitting Multiple Access (RSMA) with a Beyond-Diagonal Active Reconfigurable Intelligent Surface (BD-ARIS) mounted on a UAV under the coverage of a Low Earth Orbit (LEO) satellite. The BD-ARIS adopts a group-connected structure to enhance signal amplification and adaptability, while RSMA enables efficient multi-user access by dividing messages into common and private components. The system jointly optimizes satellite beamforming, UAV positioning, power allocation, and rate-splitting ratios to maximize the overall energy efficiency (EE). To solve the resulting non-convex and high-dimensional problem, we employ three state-of-the-art deep reinforcement learning (DRL) algorithms: Trust Region Policy Optimization (TRPO), Twin Delayed Deep Deterministic Policy Gradient (TD3), and Asynchronous…
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Taxonomy
TopicsAdvanced Wireless Communication Technologies · Satellite Communication Systems · UAV Applications and Optimization
Methods*Communicated@Fast*How Do I Communicate to Expedia? · Adam · Clipped Double Q-learning · Dense Connections · Experience Replay · Entropy Regularization · Target Policy Smoothing · Trust Region Policy Optimization · Twin Delayed Deep Deterministic · Softmax
