中程弹道目标宽带回波仿真与速度补偿

Yongjian Sun, Ying Fu, Z. Cheng, Heqiang Mu, Guiling Wang
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引用次数: 0

摘要

弹道导弹中段目标具有高速运动和微运动两大特点。测量到的多普勒频移是模糊的,并且被微多普勒分量调制。BMT微多普勒带宽的估计和微运动参数的提取是一个难点。在考虑BMT运动特性的条件下,首先建立并研究了BMT的宽带回波数学模型。然后,提出了基于简化分数阶傅里叶变换(SFRFT)、粒子群优化(PSO)和最小熵理论的速度补偿技术。仿真结果表明,该方法能够给出准确的参数估计,并对平移多普勒频移进行有效补偿。即使在低信噪比的情况下,仿真结果也证明了该方法的有效性。该技术为微多普勒特征提取提供了前提条件。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Wideband echo simulation and velocity compensation of midcourse ballistic target
Ballistic missile target (BMT) in midcourse possesses two motion features of high velocity and micro-motion. The measured Doppler shift is ambiguous and modulated by the micro-Doppler components. It is difficult to estimate the micro-Doppler bandwidth of BMT and extract its micro-motion parameters. Under the condition of taking account the motion features of BMT, its wideband echo mathematical model is established and investigated at first. Then, the velocity compensation technique is put forward which is based on simplified fractional Fourier transform (SFRFT), Particles Swarm Optimization (PSO) and minimum entropy theories. Simulation results show that the advanced method can present accurate parameter estimation and perform effective compensation for translation Doppler shift. Even in low signal to noise ratio (SNR) case, the simulated outcomes prove it still work well. This technique provides the precondition for micro-Doppler feature extraction.
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