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Wideband compressed sensing for cognitive radios using optimum detector with no reconstruction

机译:使用无需重建的最佳检测器对认知无线电进行宽带压缩感测

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摘要

Cognitive radios need devices capable of sensing a large range of frequencies in order to detect the presence of primary networks and reuse their bands when they are not occupied. Due to the large spectrum to be sensed and the high power signal dynamics, low-cost implementation of the analog front-ends leads to imperfections. In this paper, we solve this problem with compressed sensing. The introduced maximum likelihood method is computationally simple since it does not require any signal reconstruction, unlike most methods in the current literature. Moreover, the metric is optimum, works for any modulation scheme and is independent of the emitted signal knowledge. The results are supported with Matlab simulations, a statistical study is performed and the probability of error is plotted for different cases, proving the efficiency of the estimator in a range of plausible SNRs and subsampling factors.
机译:认知无线电需要能够感知大范围频率的设备,以便检测主要网络的存在并在不占用主要频段时重新使用其频段。由于要检测的频谱很大,并且具有高功率信号动态特性,因此模拟前端的低成本实现会导致缺陷。在本文中,我们通过压缩感测解决了这个问题。引入的最大似然法与当前文献中的大多数方法不同,因为它不需要任何信号重建,因此其计算简单。而且,该度量是最佳的,适用于任何调制方案,并且与发射信号的知识无关。 Matlab仿真为结果提供了支持,进行了统计研究,并针对不同情况绘制了误差概率,从而证明了在合理的SNR和亚采样因子范围内,估计器的效率。

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