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Optimal Spectrum Sensing in Cognitive Radio Systems Using Signal Segmentation Algorithm

机译:信号分割算法在认知无线电系统中的最佳频谱感知

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In the last two decades, wireless spectrum resource shortage has been the bottleneck in the development of wireless communication systems. More than that, many measurement campaigns confirmed the fact that the frequency spectrum is inefficiently used. Cognitive radio is a promising technology for the efficient allocation and usage of the available spectrum. It identifies the available spectrum and reallocates them for efficient utilization of frequency bands. In this paper, a novel spectrum sensing technique is proposed. The proposed method involves two levels of segmentation in time domain. In first level, running mean of the samples are considered and compared with the threshold. In second level, difference statistics is taken and the segmentation of signal is carried out. Further, frequency of the detected signal is computed, and the graph between the probability of detection and Signal to Noise Ratio (SNR) is plotted for input signals of various SNR. Two previous methods were considered for performance comparison, they are energy detection method, covariance based spectrum sensing method. The proposed method performs better than the above mentioned methods, especially in low SNR values.
机译:在过去的二十年中,无线频谱资源的短缺一直是无线通信系统发展的瓶颈。不仅如此,许多测量活动还证实了频谱使用效率低的事实。认知无线电是一种有效分配和使用可用频谱的有前途的技术。它识别可用频谱并重新分配它们以有效利用频带。在本文中,提出了一种新颖的频谱感测技术。所提出的方法在时域中涉及两个级别的分割。在第一级,考虑样本的运行平均值,并将其与阈值进行比较。在第二级,进行差异统计并执行信号分割。此外,计算检测到的信号的频率,并针对各种SNR的输入信号绘制检测概率与信噪比(SNR)之间的关系图。考虑了以前的两种方法进行性能比较,它们是能量检测方法,基于协方差的频谱感测方法。所提出的方法比上面提到的方法表现更好,特别是在低SNR值方面。

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