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Doppler-Hitchhiker: A Novel Passive Synthetic Aperture Radar Using Ultranarrowband Sources of Opportunity

机译:多普勒搭便车者:一种使用机会的超窄带源的新型被动合成孔径雷达

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In this paper, we present a novel synthetic aperture radar imaging modality that uses ultranarrowband sources of opportunity and passive airborne receivers to form an image of the ground. Due to its combined passive synthetic aperture and high Doppler resolution of the transmitted waveforms, we refer to this modality as the Doppler Synthetic Aperture Hitchhiker or Doppler-hitchhiker for short. Our imaging method first correlates the windowed signal obtained from one receiver with the scaled and translated version of the received signal in another window from the same or another receiver. We show that this correlation processing removes the transmitter-related variables from the phase of the resulting operator that maps the radiance of the scene to the correlated signals. We define a concept of passive Doppler scale factor using the radial velocities of the receivers. Next, we show that the scaled, translated, and correlated signal is the projection of the scene radiance onto the contours that are formed by the intersection of the surfaces of constant passive Doppler scale factor and ground topography. We use microlocal analysis to design a generalized filtered-backprojection operator to reconstruct the scene radiance from its projections. Our analysis shows that the resolution of the reconstructed images improves with the increased time duration and center frequency of the transmitted ultranarrowband signals. Our reconstruction method is analytic and therefore can be made computationally efficient. Furthermore, it easily accommodates arbitrary flight trajectories, nonflat topography, and system-related parameters. We present numerical simulations to demonstrate the performance of our imaging method.
机译:在本文中,我们提出了一种新颖的合成孔径雷达成像方法,该方法使用机会的超窄带源和无源机载接收器来形成地面图像。由于其结合了无源合成孔径和发射波形的高多普勒分辨率,我们将此模式简称为“多普勒合成孔径”旅行者或“多普勒旅行者”。我们的成像方法首先将从一个接收器获得的加窗信号与从同一接收器或另一个接收器在另一个窗口中接收到的信号的缩放和转换版本相关联。我们表明,这种相关处理从结果运算符的相位中删除了与发射机相关的变量,该运算符将场景的辐射度映射到相关信号。我们使用接收器的径向速度定义了无源多普勒比例因子的概念。接下来,我们证明缩放,转换和相关的信号是场景辐射到轮廓上的投影,这些轮廓是由恒定无源多普勒比例因子和地面地形的表面相交形成的。我们使用微局部分析来设计广义滤波反投影算子,以根据其投影重建场景辐射度。我们的分析表明,重构图像的分辨率随着所传输的超窄带信号的持续时间和中心频率的增加而提高。我们的重建方法具有解析性,因此可以提高计算效率。此外,它可以轻松适应任意飞行轨迹,非平坦地形以及与系统相关的参数。我们目前的数值模拟来证明我们的成像方法的性能。

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