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A deep reinforcement learning agent for distributed task offloading based on Graph Neural Networks

Contributo in Atti di convegno
Data di Pubblicazione:
2026
Citazione:
A deep reinforcement learning agent for distributed task offloading based on Graph Neural Networks / M. Dileo, C.Q. - In: PerCom Workshops[s.l] : Institute of Electrical and Electronics Engineers (IEEE), 2026 Mar. - ISBN 979-8-3315-7615-8. - pp. 1-6 (( International Conference on Pervasive Computing and Communications Workshops and other Affiliated Events. SAYGreeN Workshop : March, 16th - 20th Pisa 2026 [10.1109/percomworkshops68308.2026.11585333].
Abstract:
In this work, we propose a distributed task-offloading framework based on deep reinforcement learning (DRL) and graph neural networks (GNNs). Each edge node hosts an agent that autonomously decides whether to execute incoming tasks locally or forward them to neighboring nodes using local and two-hop network information. The problem is formulated as a Markov decision process, and a tailored reward function is designed to encourage deadline-compliant execution while reducing CPU usage and energy consumption. The agent is trained with Proximal Policy Optimization (PPO) over realistic MEC topologies and diverse task-generation patterns. Simulation results show that the proposed approach outperforms shortest-path-based greedy baselines in the most demanding scenarios while achieving comparable performance elsewhere.
Tipologia IRIS:
03 - Contributo in volume
Keywords:
Task offloading; Deep Reinforcement Learning; Graph Neural Networks;
Elenco autori:
M. Dileo, C. Quadri
Autori di Ateneo:
QUADRI CHRISTIAN ( autore )
Link alla scheda completa:
https://air.unimi.it/handle/2434/1261655
Titolo del libro:
PerCom Workshops
Progetto:
CAVIA: enabling the Cloud-to-Autonomous-Vehicles continuum for future Industrial Applications
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