Kuramoto-Inspired Wireless Resource Allocation for Weighted Networks

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초록

Considering the exponential growth of wireless devices with data-starving applications fused with artificial intelligence, the significance of wireless network scalability using distributed behavior and fairness among users is a crucial feature in guaranteeing reliable service to numerous users in the network environment. In this work, we apply the Kuramoto model to achieve a weighted fair resource allocation in a wireless network, where each user has different quality of service (QoS) requirements. We propose a new weighting parameter for representing requirement of each node resource and modify the Kuramoto model to achieve weighted fair resource allocation for users with different QoS requirements. The proposed modified Kuramoto model allocates all users the resource based on their weight among contending nodes in a distributed manner. We analyze the convergence condition for the proposed model, and the results reveal that the proposed algorithm achieves a weighted fair resource allocation and with potentially high convergence speed compared to previous algorithm.

키워드

fair resource allocation; Kuramoto model; weighted de-synchronization
제목
Kuramoto-Inspired Wireless Resource Allocation for Weighted Networks
저자
Chhea, K.; Muy, S.; Lee, J.-R.
DOI
10.1109/ICOIN56518.2023.10048922
발행일
2023-01
유형
Proceedings Paper
저널명
International Conference on Information Networking
권
2023-January
페이지
449 ~ 453