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Utility Loss of Information Minimization With Long Erasure Coding for Task-Adaptive Communications in Satellite-Integrated Internet

  • Harbin Institute of Technology Shenzhen
  • Peng Cheng Laboratory
  • The University of Sydney

Research output: Contribution to journalArticlepeer-review

Abstract

The existing task-agnostic and resource-constrained satellite communication fails to meet diverse task demands in the upcoming sixth-generation (6G) network. In this paper, to enable the ubiquitous intelligent services with massive traffic for global users through satellite-Integrated Internet, we first propose a novel semantic metric named utility loss of information (UoI), which can capture the task-oriented aspects by quantifying both value loss of semantic mismatch, and energy loss of unnecessary transmissions. Then, we design a UoI minimization data generation and transmission (UMGT) scheme for task-adaptive communications in satellite-Integrated Internet with energy constraint and reliability requirement. For the time-varying satellite-terrestrial link with high bit error rate (BER) and delayed feedback, we derive the closed-form expressions of BER, and apply the long erasure coding (LEC) to combat the deep fading. Subsequently, we transform the optimization problem to minimize the upper bound of an unconstrained Lyapunov drift-plus-penalty (DPP). Further, we propose two deep reinforcement learning (DRL) algorithms to intelligently choose when to generate data, how to adjust the number of LEC packets and whether to retransmit, thereby minimizing the average UoI. Simulation results validate that our UMGT scheme can achieve the lowest UoI than several state-of-the-art schemes, and demonstrate its adaptability to various task demands.

Original languageEnglish
Pages (from-to)2604-2619
Number of pages16
JournalIEEE Journal on Selected Areas in Communications
Volume43
Issue number7
DOIs
StatePublished - 2025
Externally publishedYes

Keywords

  • Lyapunov optimization
  • Satellite-integrated internet
  • deep reinforcement learning
  • long erasure coding
  • task-adaptive communications

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