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基于二项分布改进的宽带压缩频谱检测方案
引用本文:马彬,王宏明,谢显中.基于二项分布改进的宽带压缩频谱检测方案[J].电子学报,2020,48(2):243-248.
作者姓名:马彬  王宏明  谢显中
作者单位:1. 重庆邮电大学移动通信技术重庆市重点实验室, 重庆 400065; 2. 重庆邮电大学通信与信息工程学院, 重庆 400065
摘    要:宽带压缩频谱检测存在依赖稀疏度先验信息和信号重构时延较高的问题.因此,本文提出了一种高效可靠的宽带压缩频谱检测方案.首先,推导出了基于二项分布精确置信区间改进的稀疏度估计模型.其次,利用稀疏度估计上下界改进了稀疏度自适应匹配追踪算法.最后,提出了一种宽带压缩频谱检测方案.仿真结果表明,本文所提出方法可以同时精确的估计信号稀疏度的上下界,提高了频谱检测的效率和可靠性,加快了算法的收敛速度.

关 键 词:宽带频谱检测  压缩感知  稀疏度估计  置信区间  信号重构  
收稿时间:2019-01-28

An Improved Wideband Compressed Spectrum Sensing Scheme Based on Binomial Distribution
MA Bin,WANG Hong-ming,XIE Xian-zhong.An Improved Wideband Compressed Spectrum Sensing Scheme Based on Binomial Distribution[J].Acta Electronica Sinica,2020,48(2):243-248.
Authors:MA Bin  WANG Hong-ming  XIE Xian-zhong
Affiliation:1. Chongqing Key Laboratory of Mobile Communications Technology, Chongqing University of Posts and Telecommunications, Chongqing 400065, China; 2. School of Communication and Information Engineering, Chongqing University of Posts and Telecommunications, Chongqing 400065, China
Abstract:Wideband compressed spectrum sensing has the problem of relying on sparsity prior information and high signal reconstruction delay.Therefore, this paper proposes an efficient and reliable wideband compressed spectrum sensing scheme.Firstly, the sparsity estimation model based on the improved confidence interval of binomial distribution is derived.Secondly, using the sparsity estimation upper and lower bounds improves the sparsity adaptive matching pursuit algorithm.Finally, a wideband compressed spectrum sensing scheme is proposed.The simulation results show that the proposed method can accurately estimate the upper and lower bounds of signal sparsity at the same time, improve the efficiency and reliability of spectrum sensing, and accelerate the convergence speed of the algorithm.
Keywords:wideband spectrum sensing  compressed sensing  sparsity estimation  confidence interval  signal reconstruction  
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