首页> 外文期刊>Geoscience and Remote Sensing Letters, IEEE >Geometry-Information-Aided Efficient Motion Parameter Estimation for Moving-Target Imaging and Location
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Geometry-Information-Aided Efficient Motion Parameter Estimation for Moving-Target Imaging and Location

机译:用于运动目标成像和定位的几何信息辅助有效运动参数估计

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Efficient motion parameter estimation is a key challenge for moving-target imaging and localization in the synthetic aperture radar ground moving-target indication system. However, the existing methods suffer from ambiguities, complex realization, or heavy computation load of $O(MN)$. To solve these problems, we propose an efficient Radon transform (RT) and an efficient fractional Fourier transform (FRFT) to estimate the radial velocity and azimuth velocity. By exploiting the geometry information, we model a geometry relationship between the motion parameters and two transform angles of RT or FRFT. The matched motion parameters can be estimated by the geometry relationship of the mismatched results, and the computation complexity is reduced from $O(MN)$ to $O(2N)$ effectively. Additionally, the symmetry property can be used for clutter canceling. Simulated and experimental results demonstrate the validity of the proposed methods. Compared with conventional motion parameter estimation methods, the proposed methods are much more efficient in acquiring accurate estimation results.
机译:在合成孔径雷达地面运动目标指示系统中,有效的运动参数估计是运动目标成像和定位的关键挑战。但是,现有方法存在 $ O(MN)$ 含糊不清,实现复杂或计算量大的问题。为了解决这些问题,我们提出了一种有效的Radon变换(RT)和有效的分数阶傅立叶变换(FRFT)来估计径向速度和方位速度。通过利用几何信息,我们对运动参数与RT或FRFT的两个变换角之间的几何关系进行建模。可以通过不匹配结果的几何关系来估计匹配的运动参数,并从 $ O(MN)$ 降低了计算复杂性 $ O(2N)$ 有效。此外,对称属性可用于消除杂波。仿真和实验结果证明了所提方法的有效性。与传统的运动参数估计方法相比,该方法在获取准确的估计结果方面效率更高。

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