GAP: Game Theory-Based Approach for Reliability and Power Management in Emerging Fog Computing

Fuente: arXiv
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Main Authors: Younesi, Abolfazl, Ansari, Mohsen, Ejlali, Alireza, Fazli, Mohammad Amin, Shafique, Muhammad, Henkel, Jörg
Format: Preprint
Published: 2024
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_version_ 1866929632523059200
author Younesi, Abolfazl
Ansari, Mohsen
Ejlali, Alireza
Fazli, Mohammad Amin
Shafique, Muhammad
Henkel, Jörg
author_facet Younesi, Abolfazl
Ansari, Mohsen
Ejlali, Alireza
Fazli, Mohammad Amin
Shafique, Muhammad
Henkel, Jörg
contents Fog computing brings about a transformative shift in data management, presenting unprecedented opportunities for enhanced performance and reduced latency. However, one of the key aspects of fog computing revolves around ensuring efficient power and reliability management. To address this challenge, we have introduced a novel model that proposes a non-cooperative game theory-based strategy to strike a balance between power consumption and reliability in decision-making processes. Our proposed model capitalizes on the Cold Primary/Backup strategy (CPB) to guarantee reliability target by re-executing tasks to different nodes when a fault occurs, while also leveraging Dynamic Voltage and Frequency Scaling (DVFS) to reduce power consumption during task execution and maximizing overall efficiency. Non-cooperative game theory plays a pivotal role in our model, as it facilitates the development of strategies and solutions that uphold reliability while reducing power consumption. By treating the trade-off between power and reliability as a non-cooperative game, our proposed method yields significant energy savings, with up to a 35% reduction in energy consumption, 41% decrease in wait time, and 31% shorter completion time compared to state-of-the-art approaches. Our findings underscore the value of game theory in optimizing power and reliability within fog computing environments, demonstrating its potential for driving substantial improvements
format Preprint
id arxiv_https___arxiv_org_abs_2412_11310
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle GAP: Game Theory-Based Approach for Reliability and Power Management in Emerging Fog Computing
Younesi, Abolfazl
Ansari, Mohsen
Ejlali, Alireza
Fazli, Mohammad Amin
Shafique, Muhammad
Henkel, Jörg
Distributed, Parallel, and Cluster Computing
Emerging Technologies
Computer Science and Game Theory
Fog computing brings about a transformative shift in data management, presenting unprecedented opportunities for enhanced performance and reduced latency. However, one of the key aspects of fog computing revolves around ensuring efficient power and reliability management. To address this challenge, we have introduced a novel model that proposes a non-cooperative game theory-based strategy to strike a balance between power consumption and reliability in decision-making processes. Our proposed model capitalizes on the Cold Primary/Backup strategy (CPB) to guarantee reliability target by re-executing tasks to different nodes when a fault occurs, while also leveraging Dynamic Voltage and Frequency Scaling (DVFS) to reduce power consumption during task execution and maximizing overall efficiency. Non-cooperative game theory plays a pivotal role in our model, as it facilitates the development of strategies and solutions that uphold reliability while reducing power consumption. By treating the trade-off between power and reliability as a non-cooperative game, our proposed method yields significant energy savings, with up to a 35% reduction in energy consumption, 41% decrease in wait time, and 31% shorter completion time compared to state-of-the-art approaches. Our findings underscore the value of game theory in optimizing power and reliability within fog computing environments, demonstrating its potential for driving substantial improvements
title GAP: Game Theory-Based Approach for Reliability and Power Management in Emerging Fog Computing
topic Distributed, Parallel, and Cluster Computing
Emerging Technologies
Computer Science and Game Theory
url https://arxiv.org/abs/2412.11310