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Parameter Estimation of LFM Signals Based on Scaled Ambiguity Function

机译:基于比例模糊函数的LFM信号参数估计

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摘要

A method based on the scaled ambiguity function for parameter estimation of LFM signals under noncooperative conditions is presented. In the proposed algorithm, the scaling principle is employed to remove the linear frequency migration brought by the coupling between the time variable and the lag variable. Afterward, the Fourier transform is performed for feature extraction of LFM signals on the centroid frequency versus chirp rate plane. The method avoids centroid frequency information loss, which is almost inevitable in the Radon-ambiguity transform. Furthermore, fractional lower-order statistics and the scaled ambiguity transform are combined to improve the performance in practical impulsive noise environments. Simulation results show that the fractional lower-order scaled ambiguity transform is robust for both Gaussian and impulsive noise, and it achieves significant performance improvement in a heavy noise environment.
机译:提出了一种基于比例模糊函数的非合作状态下LFM信号参数估计方法。在所提出的算法中,采用比例缩放原理消除了时间变量和滞后变量之间的耦合所带来的线性频率迁移。之后,执行傅立叶变换,以在质心频率与线性调频率平面上提取LFM信号的特征。该方法避免了质心频率信息的丢失,这在Radon-歧义变换中几乎是不可避免的。此外,分数阶低阶统计量和比例模糊度变换相结合以提高实际脉冲噪声环境中的性能。仿真结果表明,分数阶低阶比例模糊度变换对于高斯噪声和脉冲噪声均具有鲁棒性,并且在重噪声环境中可以显着提高性能。

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