Snake Optimization Technique for Spectrum Handoff in Cluster based Cognitive Radio Network

Judith J, Rahul Raj K, Prawin A, Jothi Venkatajalapathi T G
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Abstract

In Cognitive Radio (CR) networks, the use of Secondary Users (SU) in the spectrum has an undesirable effect on spectrum handoff, which causes a handoff delay. The handoff procedure can result in service outages and considerable transmission quality delays, making it a regular source of concern for the SU. An effective spectrum handoff strategy that utilizes the Spectrum Binary Snake Optimization (SBSO) algorithm and the M/G/1 queuing model has been proposed in this study. The use of Cluster Based Cooperative Spectrum Sensing improves SU performance and reduces channel congestion. In order to report the active and inactive channels in the spectrum, the cluster head is connected to the SU base station, and a decision report is subsequently generated by the fusion center. With the use of a bitwise and mutation operator format, SBSO reduces the overall service time required for handoff in the approach that is being proposed. The proposed methodology also provides a framework for observing how primary user activity and spectrum handoff delays behave in the presence of potential interruptions in a CR network. The simulation model of the proposed work optimizes the packet delivery ratio with the three benchmark functions, and provides optimal handoff, and is compared to SBSO and other models that offer a better trade off over delay achievement.
基于聚类认知无线电网络频谱切换的Snake优化技术
在认知无线电(Cognitive Radio, CR)网络中,在频谱中使用辅助用户(Secondary user, SU)会对频谱切换产生不良影响,导致切换延迟。切换过程可能导致服务中断和相当大的传输质量延迟,使其成为SU经常关注的问题。本研究提出了一种有效的频谱切换策略,该策略利用频谱二进制蛇优化(SBSO)算法和M/G/1排队模型。采用基于集群的协同频谱感知技术提高了系统性能,减少了信道拥塞。为了报告频谱中的活动和非活动信道,将集群头连接到SU基站,然后由融合中心生成决策报告。通过使用按位和突变操作符格式,SBSO减少了所提出的方法中切换所需的总体服务时间。所提出的方法还提供了一个框架,用于观察在CR网络中存在潜在中断时主用户活动和频谱切换延迟的行为。所提工作的仿真模型通过三个基准函数优化了分组传输率,并提供了最佳的切换,并与SBSO和其他模型进行了比较,这些模型提供了更好的延迟实现折衷。
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