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March 3, 20260 citationsOpen Access

Adaptive Resource Initialization for IoMT Task Offloading in NTNs

ACAlejandro Flores C.KNKonstantinos NtontinSCSymeon Chatzinotas

Key Points

  • Total delay is minimized through dynamic computing resource allocation in IoMT systems and satellite networks.
  • Simulation results reveal the effectiveness of various resource initialization methods based on system parameters.
  • Sequential greedy heuristic addresses the NP-hard offloading decision problem, improving task distribution.
  • Dynamic resource initialization prevents bias, enhancing decision-making across low-altitude platforms and LEO satellites.

Abstract

In this work we study the offloading decision and computing resource allocation of tasks generated by internet-of-medical-things (IoMT) devices into a non-terrestrial network, comprised of local coordinating low-altitude platforms (LAPs) working also as multi-access edge computing (MEC) servers, and a common low Earth-orbit (LEO) satellite, which acts as a common MEC server across the LAPs. We solve the problem of total delay minimization across the tasks in the system. Given the NP-hard nature of the offloading decision problem, we solve it with a sequential greedy heuristic. To avoid biasing the of-floading decision due to the computing resource initialization, we formulate a mechanism for dynamically initializing the resources at each step. We propose several methods for the computing resource initialization, and show in simulations, regions where each method is the most effective depending on the parameters of the system.

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Cite This Study

C. et al. (2025) studied this question.

synapsesocial.com/papers/69a75e4ac6e9836116a28bd6https://doi.org/10.1109/nfv-sdn66355.2025.11349522
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