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An Efficient ISAR Imaging of Targets with Complex Motions Based on a Quasi-Time-Frequency Analysis Bilinear Coherent Algorithm

机译:基于准时频分析双线性相干算法的复杂运动目标的有效ISAR成像

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摘要

The inverse synthetic aperture radar (ISAR) imaging for targets with complex motions has always been a challenging task due to the time-varying Doppler parameter, especially at the low signal-to-noise ratio (SNR) condition. In this paper, an efficient ISAR imaging algorithm for maneuvering targets based on a noise-resistance bilinear coherent integration is developed without the parameter estimation. First, the received signals of the ISAR in a range bin are modelled as a multicomponent quadratic frequency-modulated (QFM) signal after the translational motion compensation. Second, a novel quasi-time-frequency representation noise-resistance bilinear Radon-cubic phase function (CPF)-Fourier transform (RCFT) is proposed, which is based on the coherent integration of the energy of auto-terms along the slope line trajectory. In doing so, the RCFT also effectively suppresses the cross-terms and spurious peaks interference at no expense of the time-frequency resolution loss. Third, the cross-range positions of target’s scatters in ISAR image are obtained via a simple maximization projection from the RCFT result to the Doppler centroid axis, and the final high-resolution ISAR image is thus produced by regrouping all the range-Doppler frequency centroids. Compared with the existing time-frequency analysis-based and parameter estimation-based ISAR imaging algorithms, the proposed method presents the following features: (1) Better cross-term interference suppression at no time-frequency resolution loss; (2) computationally efficient without estimating the parameters of each scatters; (3) higher signal processing gain because of 2-D coherent integration realization and its bilinear function feature. The simulation results are provided to demonstrate the performance of the proposed method.
机译:由于时变多普勒参数,特别是在低信噪比(SNR)条件下,具有复杂运动的目标的逆合成孔径雷达(ISAR)成像一直是一项艰巨的任务。本文提出了一种无需参数估计的,基于抗噪双线性相干积分的机动目标有效ISAR成像算法。首先,在平移运动补偿之后,将距离仓中的ISAR接收信号建模为多分量二次调频(QFM)信号。其次,提出了一种新的准时频表示抗噪双线性Rad立方相位函数(CPF)-傅立叶变换(RCFT),其基于沿坡线轨迹的自项能量的相干积分。这样,RCFT还可以有效地抑制交叉项和杂散峰干扰,而不会损失时频分辨率。第三,通过从RCFT结果到多普勒质心轴的简单最大化投影,获得目标散射在ISAR图像中的跨范围位置,从而通过重新组合所有范围多普勒频率质心来生成最终的高分辨率ISAR图像。与现有的基于时频分析和基于参数估计的ISAR成像算法相比,该方法具有以下特点:(1)更好的跨时干扰抑制,无时频分辨率损失; (2)计算效率高而不估计每个散点的参数; (3)由于二维相干积分实现及其双线性函数特性,信号处理增益更高。仿真结果表明了该方法的有效性。

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