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Resampling Technique in the Orthogonal Direction for Down-looking Synthetic Aperture Imaging Ladar

机译:向下方向的合成孔径成像激光雷达正交采样技术

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The implementation of down-looking Synthetic Aperture Imaging Ladar(SAIL) uses quadratic phase history reconstruction in the travel direction and linear phase modulation reconstruction in the orthogonal direction. And the linear phase modulation in the orthogonal direction is generated by the shift of two cylindrical lenses in the two polarization-orthogonal beams. Therefore, the fast-moving of two cylindrical lenses is necessary for airborne down-looking SAIL to match the aircraft flight speed and to realize the compression of the orthogonal direction, but the quick start and the quick stop of the cylindrical lenses must greatly damage the motor and make the motion trail non-uniform. To reduce the damage and get relatively well trajectory, we make the motor move like a sinusoidal curve to make it more realistic movement, and through a resampling interpolation imaging algorithm, we can transform the nonlinear phase to linear phase, and get good reconstruction results of point target and area target in laboratory. The influences on imaging quality in different sampling positions when the motor make a sinusoidal motion and the necessity of the algorithm are analysed. At last, we perform a comparison of the results of two cases in resolution.
机译:俯视合成孔径成像激光雷达(SAIL)的实现在行进方向上使用二次相位历史重建,在正交方向上使用线性相位调制重建。并且通过两个柱面透镜在两个偏振正交光束中的移位来产生在正交方向上的线性相位调制。因此,两个柱面透镜的快速移动对于机载向下航行的SAIL来说是必要的,以匹配飞机的飞行速度并实现垂直方向的压缩,但是柱面透镜的快速启动和快速停止必须极大地损坏飞行器。电机,使运动轨迹不均匀。为了减少损坏并获得相对良好的轨迹,我们使电动机像正弦曲线一样运动以使其运动更逼真,并且通过重采样插值成像算法,我们可以将非线性相位转换为线性相位,并获得良好的重建结果。实验室中的点目标和区域目标。分析了电机正弦运动时不同采样位置对成像质量的影响,并分析了算法的必要性。最后,我们对两种情况下解决方案的结果进行了比较。

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