基于贝叶斯压缩感知的主用户检测

M. Başaran, Serhat Erküçük, H. A. Çırpan
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引用次数: 13

摘要

在基于压缩感知(CS)的频谱感知文献中,大多数研究考虑的是主用户信号的准确重建,而不是信号的检测。此外,在评估频谱感知性能时,不考虑信号可能缺失的情况。本研究详细研究了贝叶斯CS在主用户检测中的应用。除了评估信号重建性能并将其与传统的基追踪方法和相应的下界进行比较外,还通过分析和仿真研究来考虑信号检测性能。在没有主用户信号的情况下,研究了检测概率和虚警概率之间的权衡,因为在没有活动主用户的情况下,确定CS方法的性能同样重要。为了在减少计算时间的同时获得相似的检测性能,最后研究了迭代次数对不同系统参数的影响,包括信噪比、压缩比、累积能量均值和阈值。本研究中提出的框架在实际实现(如LTE下行链路OFDMA)中用于主用户检测的基于cs的方法的总体实施中非常重要,因为它同时考虑了信号重建和检测。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Bayesian compressive sensing for primary user detection
In compressive sensing (CS)-based spectrum sensing literature, most studies consider accurate reconstruction of the primary user signal rather than detection of the signal. Furthermore, possible absence of the signal is not taken into account while evaluating the spectrum sensing performance. In this study, Bayesian CS is studied in detail for primary user detection. In addition to assessing the signal reconstruction performance and comparing it with the conventional basis pursuit approach and the corresponding lower bounds, signal detection performance is also considered both analytically and through simulation studies. In the absence of a primary user signal, the trade-off between probabilities of detection and false alarm is studied as it is equally important to determine the performance of a CS approach when there is no active primary user. To reduce the computation time and yet achieve a similar detection performance, finally the effect of number of iterations is studied for various systems parameters including signal-to-noise-ratio, compression ratio, mean value of accumulated energy and threshold values. The presented framework in this study is important in the overall implementation of CS-based approaches for primary user detection in practical realisations such as LTE downlink OFDMA as it considers both signal reconstruction and detection.
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