利用相关分布信息改进基于自相关的传感

R. Sharma, J. Wallace
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引用次数: 5

摘要

准确、高效的频谱感知是认知无线电技术的重要组成部分,是提高未来无线网络动态资源管理水平的关键技术。与能量检测等简单方法相比,自相关开发已被证明可以提高传感性能。提出了假设相关分布信息(CDI)下基于NP检验的自相关检测器性能的上界,其中信号自相关随机参数不已知,但其分布已知。这不仅揭示了现有的基于自相关的自相关检测器与最佳性能的接近程度,而且还表明了在理论上可以比能量检测提高多少性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Improved autocorrelation-based sensing using correlation distribution information
Accurate and efficient spectrum sensing is a critical component of cognitive radio, which is a technology poised to improve dynamic resource management in future wireless networks. Autocorrelation exploitation has been shown to provide improvements in sensing performance over simple methods like energy detection. A new upper bound on the performance of autocorrelation-based detectors based on an NP test under the assumption of correlation distribution information (CDI) is presented, where random parameters of the signal autocorrelation are not known, but their distribution is assumed to be known. Not only does this reveal how close existing ad-hoc autocorrelation-based detectors are to optimal performance, but also it indicates how much performance improvement over energy detection is theoretically possible.
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