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An efficient scaled maximum likelihood algorithm for translational motion estimation in ISAR imaging

机译:一种有效的比例最大似然算法,用于ISAR成像中的平移运动估计

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In ISAR imaging, the relative motion between the target and the radar must be known precisely to produce focused radar images. The translational motion of the target must be compensated for to use only the rotational motion around a fixed centre point for the imaging of the target. An efficient implementation of a maximum likelihood (ML) algorithm for translational motion estimation based on the Chirp-Z transform is described. If the line of sight vector from the radar to the target is not within the rotational plane of the object, or the rotational plane changes during the observation time, and strong reflectors tend to bias the estimate of translational motion. A scaling of range profiles is shown to reduce the bias. The shear average algorithm is similar to the algorithm described here, but it only estimates translational motion to within half the carrier wavelength. Simulated and experimental data are used to show the effectiveness of the algorithm. An image sharpness measure is used to indicate the effects of scaling as a preprocessing step on experimental data. All results are compared to those obtained by shear average and prominent point processing techniques.
机译:在ISAR成像中,必须精确知道目标与雷达之间的相对运动才能产生聚焦的雷达图像。必须补偿目标的平移运动,以仅将围绕固定中心点的旋转运动用于目标的成像。描述了一种基于Chirp-Z变换的最大似然(ML)算法用于平移运动估计的有效实现。如果从雷达到目标的视线矢量不在对象的旋转平面内,或者旋转平面在观察时间内改变,则强反射器会偏向平移运动的估计。显示了范围轮廓的缩放以减小偏差。剪切平均算法类似于此处描述的算法,但是它仅将平移运动估计在载波波长的一半以内。仿真和实验数据用于证明该算法的有效性。图像清晰度度量用于指示缩放比例,作为对实验数据的预处理步骤。将所有结果与通过剪切平均和突出点处理技术获得的结果进行比较。

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