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Joint time-frequency ISAR using adaptive processing

机译:使用自适应处理的联合时频ISAR

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摘要

A new joint time-frequency inverse synthetic aperture radar (ISAR) algorithm that combines ISAR processing with the joint time-frequency signal representation is presented as a means of extracting the nonpoint-scattering features from the standard ISAR image. The adaptive Gaussian representation, applied to the range aids of the ISAR image, is used as the time-frequency processing engine. This technique uses Gaussian basis functions to adaptively parameterize the data and, as a consequence, the point-scattering mechanisms and resonance phenomena can be readily separated based on the width of the Gaussian bases. The adaptive joint time-frequency ISAR algorithm is tested using data generated by the moment-method simulation of simple structures and the chamber measurement data from a scaled model airplane. The results show that nonpointscattering mechanisms can be completely removed from the original ISAR image, leading to a cleaned image containing only physically meaningful scattering centers. The nonpoint-scattering mechanisms, when displayed in the frequency-aspect plane, can be used to identify target resonances and cutoff phenomena
机译:提出了一种新的联合时频逆合成孔径雷达(ISAR)算法,该算法将ISAR处理与联合时频信号表示相结合,作为一种从标准ISAR图像中提取非点散射特征的方法。应用于ISAR图像测距的自适应高斯表示用作时频处理引擎。该技术使用高斯基函数对数据进行自适应参数化,因此,可以基于高斯基的宽度轻松分离点散射机制和共振现象。使用简单结构的矩量法仿真生成的数据和比例模型飞机的舱室测量数据对自适应联合时频ISAR算法进行了测试。结果表明,可以从原始ISAR图像中完全消除非点散射机制,从而生成仅包含物理上有意义的散射中心的清洁图像。当在频率方面显示时,非点散射机制可用于识别目标共振和截止现象。

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