FLDQN: Cooperative Multi-Agent Federated Reinforcement Learning for Solving Travel Time Minimization Problems in

Abdul Wahab Mamond1, Majid Kundroo1, Seong-Eun Yoo2

  • 1School of Information and Communication Engineering, Chungbuk National University, Cheongju 28644, Republic of Korea.

PubMed
Summary

This study introduces FLDQN, a cooperative multi-agent federated reinforcement learning algorithm. FLDQN significantly reduces travel time and congestion by enabling intelligent agents to share knowledge and collaborate in dynamic traffic environments.

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