Low-Altitude Satellite-AAV Collaborative Joint Mobile Edge Computing and Data Collection via Diffusion-based Deep Reinforcement Learning
Boxiong Wang, Hui Kang, Jiahui Li, Geng Sun, Zemin Sun, Jiacheng Wang, Dusit Niyato, Shiwen Mao

TL;DR
This paper proposes a novel diffusion-based deep reinforcement learning approach for optimizing joint mobile edge computing and data collection in satellite-AAV networks, improving efficiency in remote scenarios.
Contribution
It introduces a Q-weighted variational policy optimization method that handles complex hybrid action spaces for satellite-AAV systems, a first in this context.
Findings
QAGOB outperforms five benchmark algorithms.
Joint MEC-DC optimization yields better results than separate optimization.
Diffusion models enhance policy learning efficiency.
Abstract
The integration of satellite and autonomous aerial vehicle (AAV) communications has become essential for the scenarios requiring both wide coverage and rapid deployment, particularly in remote or disaster-stricken areas where the terrestrial infrastructure is unavailable. Furthermore, emerging applications increasingly demand simultaneous mobile edge computing (MEC) and data collection (DC) capabilities within the same aerial network. However, jointly optimizing these operations in heterogeneous satellite-AAV systems presents significant challenges due to limited on-board resources and competing demands under dynamic channel conditions. In this work, we investigate a satellite-AAV-enabled joint MEC-DC system where these platforms collaborate to serve ground devices (GDs). Specifically, we formulate a joint optimization problem to minimize the average MEC end-to-end delay and AAV energy…
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Taxonomy
TopicsUAV Applications and Optimization · IoT and Edge/Fog Computing · Satellite Communication Systems
