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An Intrinsic Mode Function based energy detector for spectrum sensing in cognitive radio

机译:基于内在模式的基于功能探测器,用于认知无线电频谱感测

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In this paper, the filtering characteristics of Empirical Mode Decomposition (EMD) are used to create a blind and adaptive energy detector for single or multi-channel spectrum sensing. EMD is an adaptive tool that decomposes time-series signals into a set of modes called Intrinsic Mode Functions (IMF). Due to the EMD filtering behavior, the first IMF is mostly contaminated by noise from the received noisy signal. The proposed approach takes advantage of Cell Averaging Constant False Alarm Rate (CA-CFAR) as an optimal detector to enhance the probability of detection. Alternative to conventional CA-CFAR (which requires at least one nearby vacant channel for good noise estimation), the first IMF will be used as a training function for noise estimation purposes. Based on the first IMF characteristics in frequency domain, the noise floor of the received signal is estimated and a threshold is derived for a given false alarm rate. Simulations show the improvement of the proposed detector in comparison with other conventional detectors.
机译:在本文中,使用经验模式分解(EMD)的滤波特性来创建用于单通道或多信道频谱感测的盲和自适应能量检测器。 EMD是一个自适应工具,将时间序列信号分解成一组名为内联模式功能(IMF)的模式。由于EMD过滤行为,第一个IMF主要被来自所接收的嘈杂信号的噪声污染。所提出的方法利用细胞平均常数误报(CA-CFAR)作为最佳探测器,以增强检测的概率。常规CA-CFAR的替代方案(需要至少一个附近的空置通道用于良好的噪声估计),第一IMF将被用作噪声估计目的的训练功能。基于频域中的第一IMF特性,估计接收信号的噪声底板并且为给定的误报率导出阈值。与其他传统探测器相比,模拟显示所提出的检测器的改进。

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