2.4 GHz ism波段盲感知算法在GNU无线电和USRP2上的评估

Christian Weber, G. Hildebrandt
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引用次数: 8

摘要

认知无线电(CR)被认为是一种有前途的、有效的提高无线电频谱利用率的技术。认知无线电系统的主要挑战是可靠地检测其他用户的存在,以尽量减少干扰。因此,频谱感知是认知无线电系统中最重要也是最具挑战性的问题之一。不同的频谱感知算法已经在理论上进行了讨论,并通过仿真进行了评价。本文介绍了三种不同的频谱感知算法的实际应用:能量检测、扩展滤波器组和统计协方差。在GNU Radio平台上使用USRP2在2.4 GHz ISM频段对这些算法的性能进行了测试。性能分析采用IEEE 802.15.1信号。评估了频谱感知算法的检测精度和计算成本。这两个参数对于频谱感知算法在认知无线电系统中的实际应用至关重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Evaluation of blind sensing algorithms in the 2.4 GHz ISM-band on GNU radio and USRP2
Cognitive Radio (CR) is known as a promising and effective technology to improve radio spectrum utilization. The main challenge for cognitive radio systems is to detect the existence of other users reliably in order to minimize interference. Hence, spectrum sensing is one of the most important and most challenging issues in cognitive radio systems. Different spectrum sensing algorithms have been discussed theoretically and evaluated by simulations in literature. In this paper, a practical application of three different spectrum sensing algorithms is presented: energy detection, prolate filter bank and statistical covariance. The performance of these algorithms was evaluated on GNU Radio platform with USRP2 in the license-free 2,4 GHz ISM Band. An IEEE 802.15.1 signal was used for the performance analysis. The spectrum sensing algorithms were evaluated for detection accuracy and computational costs. Both of these parameters are vital for the practical application of spectrum sensing algorithms in cognitive radio systems.
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