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Pulse-repetition-interval transform-based vibrating target detection and estimation in synthetic aperture radar

机译:合成孔径雷达中基于脉冲重复间隔变换的振动目标检测与估计

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摘要

A novel algorithm is proposed for detecting and estimating vibrating targets in synthetic aperture radar (SAR) data based on a pulse-repetition-interval (PRI) transform. Azimuthal signals of vibrating targets can be modelled as sinusoidal frequency-modulated (SFM) ones. The algorithm utilises the resemblance between the Doppler spectrum of vibrating-target SFM signals (or ghost image) and a pulse train, and applies to the spectrum the PRI transform originally used for estimating PRIs of pulse trains. The algorithm can detect SAR vibrating targets under moderate signal-to-noise/clutter ratios, and is also capable of accurately estimating the vibration frequencies even if there are multiple targets in a single range cell. The algorithm proposed has been successfully applied to both simulated and quasi-real data, and compared with that of the autocorrelation method, showing its superiority.
机译:提出了一种基于脉冲重复间隔(PRI)变换的合成孔径雷达(SAR)数据中的振动目标检测与估计算法。振动目标的方位角信号可以建模为正弦调频(SFM)信号。该算法利用了振动目标SFM信号(或重影)的多普勒频谱与脉冲序列之间的相似性,并将PRI变换最初用于估计脉冲序列PRI的频谱应用于频谱。该算法可以在适度的信噪比/杂波比下检测SAR振动目标,即使单个测距单元中有多个目标,该算法也能够准确估计振动频率。所提出的算法已成功应用于模拟和准真实数据,并与自相关方法进行了比较,显示出其优越性。

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  • 来源
    《Signal Processing, IET》 |2012年第6期|p.551-558|共8页
  • 作者单位

    College of Electronic Science and Engineering, National University of Defense Technology, Changsha 410073, People's Republic of China;

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