Particle Swarm Optimization Based Methodology for Solving Network Selection Problem in Cognitive Radio Networks

N. Hasan, W. Ejaz, H. Kim, Jae-Hun Kim
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引用次数: 4

Abstract

Measurements by regulatory bodies has revealed in the last decade that due to fixed spectrum assignment to different network operators has led to the temporal and spatial inefficient spectrum utilization. This underutilization of the most portion of the frequency band under different network operators has created opportunities for the secondary /cognitive radio users to access these unused frequency bands. While accessing the licensed spectrum opportunistically secondary user needs to avoid the harmful interference with the licensed/primary users. When there are multiple primary networks with spare spectrum, secondary user has the option of selecting any of these networks, this is referred to as the network selection problem. This paper presents a novel particle swarm optimization algorithm for network selection problem. This study aims to achieve higher throughput for the secondary users with reduced cost as well as less interference incurred by the licensed users. The experimental results manifest that the proposed method is effective in finding near optimal solution.
基于粒子群优化的认知无线网络网络选择方法
在过去十年中,监管机构的测量显示,由于对不同网络运营商的固定频谱分配导致频谱利用在时间和空间上效率低下。不同网络运营商对大部分频带的利用不足,为次级/认知无线电用户利用这些未使用的频带创造了机会。辅助用户在利用许可频谱时,需要避免对许可/主用户造成有害干扰。当有多个主网络有空闲频谱时,辅助用户可以选择其中任何一个网络,这称为网络选择问题。针对网络选择问题,提出了一种新的粒子群优化算法。本研究的目的是在降低成本的情况下,为二级用户提供更高的吞吐量,并减少受授权用户的干扰。实验结果表明,该方法能有效地找到近似最优解。
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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