Reducing E2E Delay in Wireless Multi-Hop Networks: A Multi-Agent DRL-Based Approach

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초록

Recently, bio-inspired algorithms have gained popularity among researchers due to their capability to handle complex optimization problems in a distributed manner by imitating natural processes of the living organisms on earth. In previous studies, two bio-inspired algorithms called desynchronization (DESYNC) and multi-hop DESYNC (MH-DESYNC) have been proposed to improve the throughput in wireless networks in a distributed way. These decentralized algorithms have shown promise for scalability and adaptability, making them suitable for real-world applications. Although the MH-DESYNC has effectively improved the throughput of the wireless multi-hop networks, it still faces the problem of end-to-end (E2E) delay. In this work, we aim to fill the gap of our previous study (MH-DESYNC algorithm) by using machine learning (ML). We propose a design of decentralized multi-agent deep reinforcement learning (DRL), a type of ML algorithm, incorporated with MH-DESYNC for improving not only the throughput but also the E2E delay in wireless multi-hop networks. To evaluate our proposed method, we compare it with the multi-agent DRL (MA-DRL), the MH-DESYNC, and expected E2E delay (EED) by performing under the simulation of multiple routing paths in wireless multi-hop networks. The training result shows that our proposed method converges faster with low fluctuation compared to the MA-DRL method. Additionally, our proposed method outperforms the MA-DRL, the MH-DESYNC, and EED methods for both E2E delay and throughput performances. Copyright © 2025 KSII.

키워드

Bio-inspired; DESYNC; E2E delay; MH-DYSYNC; Multiagent DRL; Wireless multi-hop networks
제목
Reducing E2E Delay in Wireless Multi-Hop Networks: A Multi-Agent DRL-Based Approach
저자
Muy, Sengly; Ron, Dara; Lee, Jung-Ryun
DOI
10.3837/tiis.2025.05.011
발행일
2025-05
유형
Article
저널명
KSII Transactions on Internet and Information Systems
권
19
호
5
페이지
1607 ~ 1624