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Parameter estimation for mW composite sequence with block sparse compressed sensing

机译:块稀疏压缩检测的MW复合序列的参数估计

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Due to the low power spectral density and controllable spectral nulls, m-Walsh (mW) composite sequence spread spectrum communication can be a strong candidate technique for secondary users in cognitive radio (CR). Through detecting the special spectral feature of mW composite sequence spread spectrum signal, we can estimate the carrier frequency and sequence number of Walsh sequence used to compound in mW composite sequence. With these parameters, the complexity of signal receiver can be greatly reduced. So it is very valuable for us to estimate these parameters. But the spectrum access range of the secondary user is so wide, so it requires high sampling rate to realize the spectrum detection. By exploiting the block sparsity property of mW composite sequence spread spectrum signal in the frequency domain, the transmit signal can be reconstructed from sub-Nyquist samples. Then it is available to realize the spectrum detection and parameter estimation for the wideband signal of secondary user. The simulation compares the results of parameter estimation based on BMP, BOMP and BCoSaMP block recovery algorithm in different conditions. The results verify the feasibility of parameter estimation for mW composite sequence by exploiting the block sparse property of signal.
机译:由于低功率谱密度和可控光谱空缺,M-WALSH(MW)复合序列扩频通信可以是认知无线电(CR)中的二次用户的强烈候选技术。通过检测MW复合序列扩频信号的特殊光谱特征,我们可以估计用于MW复合序列中的化合物的载体频率和序列数。利用这些参数,可以大大减少信号接收器的复杂性。因此,我们估计这些参数是非常有价值的。但辅助用户的频谱访问范围如此之宽,因此需要高采样率来实现频谱检测。通过利用MW复合序列扩频信号在频域中的块状稀疏性,可以从子奈奎斯特样本重建发射信号。然后可以实现辅助用户宽带信号的频谱检测和参数估计。模拟在不同条件下基于BMP,BOMP和BCOSAMP阻滞恢复算法的参数估计结果。结果验证了通过利用信号的块稀疏性能来验证MW复合序列的参数估计的可行性。

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