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首页> 外文期刊>IEEE Transactions on Aerospace and Electronic Systems >Iterative MMSE method and recurrent Kalman procedure for ISAR imagereconstruction
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Iterative MMSE method and recurrent Kalman procedure for ISAR imagereconstruction

机译:迭代MMSE方法和递归Kalman程序用于ISAR图像重建。

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This work presents a novel approximate iterative and recurrent approach for image reconstruction from inverse synthetic aperture radar (ISAR) data. Mathematical models of the quadrature components of the ISAR signal, reflected by an object with a complex geometry, are devised. Approximation matrix functions are used to describe deterministic signals reflected by point scatterers located at nodes of the uniform grid (model) during inverse aperture synthesis. Minimum mean square error (MMSE) equations and Kalman equations are derived. To prove the validity and correctness of the developed iterative MMSE method and recurrent Kalman procedure, numerical experiments were performed. The computational results demonstrate high resolution images, unambiguous and convergent estimates of the point scatterers' intensities of a target from simulated ISAR data
机译:这项工作提出了一种新颖的近似迭代和递归方法,用于从逆合成孔径雷达(ISAR)数据重建图像。设计了ISAR信号正交分量的数学模型,该数学模型被具有复杂几何形状的物体反射。近似矩阵函数用于描述逆孔径合成过程中位于均匀网格(模型)节点上的点散射体反射的确定性信号。推导最小均方误差(MMSE)方程和卡尔曼方程。为了证明所开发的迭代MMSE方法和递归Kalman程序的有效性和正确性,进行了数值实验。计算结果表明,高分辨率图像,模拟ISAR数据对目标点散射体强度的明确和收敛估计

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