基于OFDM认知无线网络信道分配的粒子群算法

Shubham Sharma1
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引用次数: 0

摘要

随着无线通信的发展,带宽短缺成为一个日益明显的问题。另一种方法是使用频谱感知技术检测授权用户。光谱传感器可以检测能量、匹配滤波器和循环平稳特征。然而,这些方法也有一些缺点。能量检测器的性能受到噪声、功率不确定度的影响。每个主用户都需要一个专用的接收器来匹配滤波器频谱感知。循环平稳特征检测需要大量的计算量和观测时间。使用粒子群优化(PSO)来确定频谱的使用,这是一种确定最佳频率分配和最高精度的算法。利用粒子群算法,提出了一种改进的能量检测方法。对能量检测和利用粒子群信道分配技术检测衰落信道进行了数学描述。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Novel Particle Swarm Optimization for Channel Allocation in OFDM Based Cognitive Radio Networks
It has become increasingly apparent that bandwidth scarcity is an issue as wireless communications advance. Alternatively, spectrum sensing techniques are used to detect licensed users. A spectrum sensor can detect energy, matched filters, and cyclostationary features. There are, however, some drawbacks to these methods. Energy detector performance is affected by noise power uncertainty. Every primary user needs a dedicated receiver for matched filter spectrum sensing. Computational effort and observation time are required for cyclo-stationary feature detection. Spectrum use is determined using particle swarm optimization (PSO), an algorithm for determining the best frequency allocation and highest accuracy. Using PSO operations, this paper proposes an improved energy detection method compared to conventional energy detection methods. Detecting energy and using the PSO channel allocation technique to detect fading channels is also mathematically described.
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