TY - GEN
T1 - Distance-Only Task Orchestration Algorithm for Energy Efficiency in Satellite-Based Mist Computing
AU - Babaghayou, Messaoud
AU - Chaib, Noureddine
AU - Maglaras, Leandros
AU - Yigit, Yagmur
AU - Ferrag, Mohamed Amine
N1 - Publisher Copyright:
© 2024 IEEE.
PY - 2024
Y1 - 2024
N2 - This paper addresses the challenge of efficiently offloading heavy computing tasks from ground mobile devices to the satellite-based mist computing environment. With ground-based edge and cloud servers often being inaccessible, the exploitation of satellite mist computing becomes imperative. Existing offloading algorithms have shown limitations in adapting to the unique characteristics of heavy computing tasks. Thus, we propose a heavy computing task offloading algorithm that prioritizes satellite proximity. This approach not only reduces energy consumption during telecommunications but also ensures tasks are executed within the specified timing constraints, which are typically non-time-critical. Our proposed algorithm outperforms other offloading schemes in terms of satellites energy consumption, average end-to-end delay, and tasks success rates. Although it exhibits a higher average VM CPU usage, this increase does not pose critical challenges. This distance-based approach offers a promising solution to enhance energy efficiency in satellite-based mist computing, making it well-suited for heavy computing tasks demands.
AB - This paper addresses the challenge of efficiently offloading heavy computing tasks from ground mobile devices to the satellite-based mist computing environment. With ground-based edge and cloud servers often being inaccessible, the exploitation of satellite mist computing becomes imperative. Existing offloading algorithms have shown limitations in adapting to the unique characteristics of heavy computing tasks. Thus, we propose a heavy computing task offloading algorithm that prioritizes satellite proximity. This approach not only reduces energy consumption during telecommunications but also ensures tasks are executed within the specified timing constraints, which are typically non-time-critical. Our proposed algorithm outperforms other offloading schemes in terms of satellites energy consumption, average end-to-end delay, and tasks success rates. Although it exhibits a higher average VM CPU usage, this increase does not pose critical challenges. This distance-based approach offers a promising solution to enhance energy efficiency in satellite-based mist computing, making it well-suited for heavy computing tasks demands.
KW - energy efficiency
KW - heavy computing offloading
KW - proximity-based offloading algorithm
KW - satellite-based mist computing
KW - task orchestration
UR - https://www.scopus.com/pages/publications/85195373097
U2 - 10.1109/ISPA59904.2024.10536806
DO - 10.1109/ISPA59904.2024.10536806
M3 - Conference contribution
AN - SCOPUS:85195373097
T3 - Proceedings - 8th IEEE International Conference on Image and Signal Processing and their Applications, ISPA 2024
BT - Proceedings - 8th IEEE International Conference on Image and Signal Processing and their Applications, ISPA 2024
PB - Institute of Electrical and Electronics Engineers Inc.
T2 - 8th IEEE International Conference on Image and Signal Processing and their Applications, ISPA 2024
Y2 - 21 April 2024 through 22 April 2024
ER -