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Basis function selection for compressed sensing and sparse representations of pulsed radar echoes

机译:脉冲雷达回波的压缩感测和稀疏表示的基函数选择

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Compressed sensing theory supposes that a sparse signal can be sampled at a rate much lower than theNyquist-Shannon rate and reconstructedwith high probability. Such lower sampling rate commonly requires finding a set of the optimal basis functions to sparsely represent the signal first. This paper provides a simple and effective working process to select the basis functions for a family of pulsed radar echoes. The selection process is performed in two steps. First,the waveform matching based on the the known array excitation is carried out to select a mother function from a wavelet dictionary. Second, the spectrum matching principle is used to produce a small set of basis functions from the selected mother function. The proposed method is numerically validated by a pulsed radar system equipped with two different dipole arrays. The results demonstrate that the new method is quite effective. With the selected basis functions, all echoes can be under-sampled at a rate lower than 5% of the conventional Nyquist-Shannon rate and reconstructed with the root mean-squared error of less than 2%.
机译:压缩感测理论假设稀疏信号的采样率可以比奈奎斯特-香农率低得多,并且很有可能被重建。这种较低的采样率通常需要找到一组最佳基函数来首先稀疏表示信号。本文提供了一个简单有效的工作过程,为一系列脉冲雷达回波选择基本函数。选择过程分两个步骤执行。首先,基于已知的阵列激励进行波形匹配以从小波字典中选择母函数。其次,频谱匹配原理用于从选定的母函数中生成少量基函数。所提出的方法通过配备两个不同偶极子阵列的脉冲雷达系统进行了数值验证。结果表明,该新方法是有效的。利用选定的基函数,可以以低于常规Nyquist-Shannon速率的5%的速率对所有回波进行欠采样,并以小于2%的均方根误差进行重构。

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