Grouping Decision Algorithm for Dynamic Terminals in Random Access Networks

Hongliang Sun;Tongfei Chen;Chuangye Zhao;Mengxin Chen
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Abstract

This paper proposes a grouping decision algorithm for random access networks with the carrier sense multiple access (CSMA) mechanism, which can balance the traffic load and solve the hidden terminal issue. Considering the arrival characteristics of terminals and quality of service (QoS) requirements, the traffic load is evaluated based on the effective bandwidth theory. Additionally, a probability matrix of hidden terminals is constructed to take into account the dynamic nature of hidden terminal relations. In the grouping process, an income function is established with a view to the benefits of decreasing the probability of hidden terminal collisions and load balancing. Then, we introduce the grey wolf optimization (GWO) algorithm to implement the grouping decision. Simulation results demonstrate that the grouping algorithm can effectively alleviate the performance degradation and facilitate the management of network resources.
随机接入网络中动态终端的分组决策算法
本文提出了一种采用载波感知多路访问(CSMA)机制的随机接入网络分组决策算法,该算法可平衡流量负载并解决隐藏终端问题。考虑到终端的到达特性和服务质量(QoS)要求,本文基于有效带宽理论评估了流量负载。此外,考虑到隐藏终端关系的动态性,还构建了隐藏终端概率矩阵。在分组过程中,考虑到降低隐藏终端碰撞概率和负载平衡的好处,建立了收益函数。然后,我们引入灰狼优化(GWO)算法来实现分组决策。仿真结果表明,分组算法能有效缓解性能下降问题,促进网络资源管理。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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