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Use of frequency-randomized SAR waveforms for the detection and mitigation of small-motion effects in precision RCS measurement

机译:使用频率随机的SAR波形进行精密RCS测量中的小运动效果的检测和减轻

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The use of SAR and ISAR imaging is an important tool in the laboratory RCS characterization of scattering patterns across signature critical platforms. Despite measures to the contrary, air turbulence and mechanical vibration can produce unwanted complex perturbations of the target during the imaging process. The slow sweep time of many laboratory stepped-frequency CW radars means that a target can undergo significant motion even during a sweep, leading to substantial and time-varying defocusing of range profiles, unsuited to conventional motion-correction schemes. Model code was written to provide simulations of representative complex motions for a string-suspended target. Comparison of images produced using monotonic and randomized waveforms could detail the presence and pattern of very small motion-related changes in RCS. The ability to do this was found to have a complex dependence on the relative lengths of the radar sweep time and the characteristic oscillation period of the motion. When the sweep time and oscillation period are comparable, it may be possible to accurately retrieve the target’s entire motion history, from the phase perturbation recoverable from the difference of the monotonic and randomized waveforms in the raw frequency domain. This can then be applied back to the data as a motion correction.
机译:SAR和ISAR成像的使用是实验室RCS中的重要工具,其特征在于跨签名关键平台的散射模式。尽管措施相反,空气湍流和机械振动可以在成像过程中产生不希望的靶的复杂扰动。许多实验室阶梯频率CW雷达的慢扫描时间意味着即使在扫描期间,目标也可以经历显着的运动,导致范围剖面的显着且时变散焦,不合适地传统的运动校正方案。编写了模型代码,以便为字符串暂停目标提供代表性复杂运动的模拟。使用单调和随机波形产生的图像的比较可以详细说明RCS中非常小的运动相关变化的存在和模式。发现该方法的能力具有对雷达扫描时间的相对长度和运动的特征振荡周期的复杂依赖性。当扫描时间和振荡周期相当时,可以从原始频域中的单调和随机波形的差异可恢复的相位扰动来精确地检索目标的整个运动历史。然后可以将其施加回数据作为运动校正。

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