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A Low Complexity Signal Recovery Algorithm Based on Compressed Sensing

机译:基于压缩感知的低复杂度信号恢复算法

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Compressed sensing (CS) can give a sparse representation of compressible signals. We consider the problem of blind signal recovery based on CS and propose a novel algorithm for sparse signal reconstruction with low complexity. From the CS sampled measurements, we first get the signal parameters' estimation, such as the carrier frequency, and reconstruct the narrow band signal using the estimated result. In particular, we focus on its noise performance and get approximate analytical expressions of the output signal-to-noise ratio. Simulation results show that our proposed algorithm has good noise performance, as well as low computation complexity.
机译:压缩感知(CS)可能会给出可压缩信号的稀疏表示。我们考虑了基于CS的盲信号恢复问题,提出了一种低复杂度的稀疏信号重构新算法。从CS采样的测量结果中,我们首先获得信号参数的估计值,例如载波频率,然后使用估计的结果重构窄带信号。特别是,我们专注于其噪声性能,并获得输出信噪比的近似解析表达式。仿真结果表明,该算法具有良好的噪声性能和较低的计算复杂度。

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