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Analysis and implementation of a wavelet based spectrum sensing method for low SNR scenarios

机译:低信噪比场景下基于小波的频谱感知方法的分析与实现

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In Cognitive Radio applications, spectrum sensing plays a fundamental role in order to learn the behavior of primary users (PUs) and access to the spectral resource opportunistically. Among the available methods, a surely promising approach is the wavelet based one. It allows to subdivide the wide-band spectrum under analysis in a proper number of sub-bands, based on Power Spectral Density (PSD) irregularities, remarked by the extrema of the Continuous Wavelet Transform (CWT) first derivative. Generally, such kind of methods works well as long as good Signal-to-Noise Ratio (SNR) can be experienced over the span of interest. In this context, starting from an approach present in literature, the present work proposes, customizes and implements a wavelet based spectrum sensing method, thought to operate also in challenging SNR scenarios.
机译:在认知无线电应用中,频谱感测起着重要的作用,以了解主要用户(PU)的行为并机会性地访问频谱资源。在可用的方法中,一种肯定有希望的方法是基于小波的方法。它允许根据功率谱密度(PSD)的不规则性,将分析中的宽带频谱细分为适当数量的子带,以连续小波变换(CWT)一阶导数的极值表示。通常,只要可以在感兴趣的范围内体验到良好的信噪比(SNR),此类方法就可以很好地工作。在这种情况下,从文献中提出的方法开始,本工作提出,定制和实现了基于小波的频谱感知方法,认为该方法也可以在具有挑战性的SNR场景中运行。

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