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Spectrum Sensing for Cognitive Radio Using Genetic Algorithm

机译:基于遗传算法的认知无线电频谱感知

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摘要

Cognitive Radio has been skillful technology to improve the spectrum sensing as it enables Cognitive Radio to find Primary User (PU) and let secondary User (SU) to utilize the spectrum holes. However detection of PU leads to longer sensing time and interference. Spectrum sensing is done in specific “time frame” and it is further divided into Sensing time and transmission time. Higher the sensing time better will be detection and lesser will be the probability of false alarm. So optimization technique is highly required to address the issue of trade-off between sensing time and throughput. This paper proposed an application of Genetic Algorithm technique for spectrum sensing in cognitive radio. Here results shows that ROC curve of GA is better than PSO in terms of normalized throughput and sensing time. The parameters that are evaluated are throughput, probability of false alarm, sensing time, cost and iteration.
机译:认知无线电技术一直在提高频谱感测能力,因为它使认知无线电能够找到主要用户(PU)并让次要用户(SU)利用频谱漏洞。然而,对PU的检测导致更长的感测时间和干扰。频谱感测是在特定的“时间范围”内完成的,并且进一步分为感测时间和传输时间。感测时间越长,检测越好,错误警报的可能性越小。因此,迫切需要优化技术来解决传感时间与吞吐量之间的权衡问题。本文提出了遗传算法技术在认知无线电频谱感知中的应用。结果表明,在归一化处理量和检测时间方面,GA的ROC曲线优于PSO。评估的参数是吞吐量,错误警报的概率,检测时间,成本和迭代。

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