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首页> 外文期刊>IEEE Geoscience and Remote Sensing Letters >Adaptive Subspace Detection for Wideband Radar Using Sparsity in Sinc Basis
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Adaptive Subspace Detection for Wideband Radar Using Sparsity in Sinc Basis

机译:基于稀疏度的宽带雷达自适应子空间检测

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摘要

The scenario that the moving range spread target (RST) contains the complicated motion is assumed in this letter, which means that its motion includes different nonconstant elements. Based on sparse representation, a new coherent integration method is proposed to improve the detection performance of the moving RST in Gaussian noise. Here, the sinc basis is introduced to sparsely represent the high-range-resolution profile (HRRP). Basis pursuit denoising (BPDN) recovers the HRRPs from their noisy measurements; hence, aligning the range bins can be implemented at low signal-to-noise ratios via the entropy minimization of adjacent coefficient vectors of the sparse HRRPs. Then, phase compensation is achieved by the recursive multiple-scatterer algorithm (RMSA) in order to acquire the coherent integration gain. Using the sinc basis, the adaptive subspace detector (ASD) is adopted to realize RST detection. Finally, the experimental results on raw data demonstrate the effectiveness of the proposed method.
机译:在此字母中假设移动范围扩展目标(RST)包含复杂的运动,这意味着它的运动包含不同的非恒定元素。在稀疏表示的基础上,提出了一种新的相干积分方法,以提高运动RST在高斯噪声中的检测性能。在这里,引入了Sinc基础来稀疏表示高分辨分辨率轮廓(HRRP)。基本追踪去噪(BPDN)可从噪声测量中恢复HRRP。因此,通过稀疏HRRP的相邻系数矢量的熵最小化,可以在低信噪比的情况下实现对测距仓的对齐。然后,通过递归多散射算法(RMSA)实现相位补偿,以获得相干积分增益。以sinc为基础,采用自适应子空间检测器(ASD)实现RST检测。最后,原始数据的实验结果证明了该方法的有效性。

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