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首页> 外文期刊>IEEE Geoscience and Remote Sensing Letters >Subband Maximum Eigenvalue Detection for Radar Moving Target in Sea Clutter
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Subband Maximum Eigenvalue Detection for Radar Moving Target in Sea Clutter

机译:海带最大特征值检测海杂波中的雷达移动目标

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摘要

In this letter, a cascade algorithm combined subband decomposition with an eigenvalue-based detection scheme is proposed to detect moving targets in sea clutter for the radar system with short pulses. Using a discrete Fourier transform-modulated filter bank, on the one hand, subband decomposition can effectively suppress clutter as well as increase the coherent integration time. On the other hand, it transforms the scene where the target spectrum is separated from the clutter spectrum into the scene where the target spectrum overlaps with the clutter spectrum. In the target subband, the noncoherent method using amplitude difference is more favorable for detection due to the nonobvious phase difference caused by the overlap of the target spectrum and the clutter spectrum. Considering that the maximum eigenvalue can reflect the signal intensity and capture the signal correlations well, the maximum eigenvalue of the covariance matrix is adopted to discriminate the target from the clutter. Finally, the simulation results show that the proposed algorithm achieves superior performance.
机译:在这封信中,提出了一种具有基于特征值的检测方案的级联算法组合的子带分解,以检测具有短脉冲的雷达系统的海杂波的移动目标。一方面使用离散的傅里叶变换调制滤波器组,子带分解可以有效地抑制杂波,以及增加相干积分时间。另一方面,它将目标频谱与杂波谱分离到目标频谱与杂波谱重叠的场景中的场景变换。在目标子带中,由于由目标频谱和杂波谱的重叠引起的非摄取相位差,使用幅度差的非组织方法更有利。考虑到最大特征值可以反映信号强度并捕获信号相关性,采用协方差矩阵的最大特征值来区分杂波。最后,仿真结果表明,所提出的算法实现了卓越的性能。

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