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Compressed Wavelet Packet-Based Spectrum Sensing With Adaptive Thresholding for Cognitive Radio

机译:基于压缩小波包自适应感知阈值的频谱感知

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Cognitive radio is a system to utilize spectrum holes efficiently as a solution of spectrum scarcity. The availability of channels for secondary users is determined in the spectrum sensing phase by energy detection. Energy levels of sampled primary user’s (PU’s) signal can be measured by wavelet transform with more accuracy compared with Fourier-based methods. Wavelet packet-based spectrum sensing measures the energy level at each subcarrier and sets the decision threshold. However, at the first step of energy detection for wideband spectrum sensing, high-rate analog-to-digital converter (ADC) sampling requires a large dynamic range and high-speed signal processors. In this paper, compressed sampling for PU’s signal acquisition is proposed to reduce the rate of sampling and solve the implementation complexity of ADC. The simulation results verify that this mechanism is promising to estimate the power spectrum density (PSD) of PU’s signals. The graphs prove low side-lobes of the detected PSD and acceptable probability of detection and false alarm due to the target values and certain compression ratio.
机译:认知无线电是一种有效利用频谱空缺作为频谱稀缺解决方案的系统。在频谱感测阶段,通过能量检测来确定次用户信道的可用性。与基于傅立叶的方法相比,通过小波变换可以更精确地测量采样的主要用户(PU)信号的能量水平。基于小波包的频谱感知可测量每个子载波的能级并设置决策阈值。但是,在宽带频谱检测的能量检测的第一步,高速率模数转换器(ADC)采样需要较大的动态范围和高速信号处理器。本文提出了用于PU信号采集的压缩采样,以降低采样率并解决ADC的实现复杂性。仿真结果证明,这种机制有望用于估计PU信号的功率谱密度(PSD)。这些图证明了由于目标值和一定的压缩比,所检测到的PSD的旁瓣较低,检测和误报的可接受概率。

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