Low Complexity Parameter Estimation For Off-the-Grid Targets

Seifallah Jardak, Sajid Ahmed, Mohamed-Slim Alouini
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引用次数: 1

Abstract

In multiple-input multiple-output radar, to estimate the reflection coefficient, spatial location, and Doppler shift of a target, a derived cost function is usually evaluated and optimized over a grid of points. The performance of such algorithms is directly affected by the size of the grid: increasing the number of points will enhance the resolution of the algorithm but exponentially increase its complexity. In this work, to estimate the parameters of a target, a reduced complexity super resolution algorithm is proposed. For off-the-grid targets, it uses a low order two dimensional fast Fourier transform to determine a suboptimal solution and then an iterative algorithm to jointly estimate the spatial location and Doppler shift. Simulation results show that the mean square estimation error of the proposed estimators achieve the Craḿer-Rao lower bound.
离网目标的低复杂度参数估计
在多输入多输出雷达中,为了估计目标的反射系数、空间位置和多普勒频移,通常在点网格上评估和优化派生的代价函数。这类算法的性能直接受到网格大小的影响:增加点的数量会提高算法的分辨率,但会成倍地增加算法的复杂度。为了估计目标的参数,本文提出了一种降低复杂度的超分辨算法。对于离网目标,采用低阶二维快速傅里叶变换确定次优解,然后采用迭代算法联合估计空间位置和多普勒频移。仿真结果表明,所提估计器的均方估计误差达到Craḿer-Rao下界。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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