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Rotational Angular Velocity Estimation of Rotor Target via 3D-OMP-Based Parametric Sparse Representation

机译:基于3D-OMP的参数稀疏表示转子目标的旋转角速度估计

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As a special feature of rotor target, rotational angular velocity can provide important information for target classification and recognition. In this paper, a rotational angular velocity estimation method is proposed based on complex empirical mode decomposition (CEMD) and three-dimensional orthogonal matching pursuit (3D-OMP)-based parametric sparse representation (PSR) technique. Firstly, the translational radial velocity is estimated from radar echo via Fourier transform, and then the translational compensation is implemented according to the estimated velocity. Secondly, in order to eliminate the influence of the target main body echo on micro-Doppler parameter estimation, CEMD algorithm is adopted for target echo separation. Then, the separated signal of rotor echo is formulated as a jointly sparse signal through a three-dimensional parametric dictionary matrix, which converts the rotational angular velocity estimation into a problem of dynamic representation of jointly sparse signals. Finally, in order to reduce the computational complexity of the estimation method, we propose a 3D-OMP-based parametric sparse representation algorithm to achieve the sparse solution, and the rotational angular velocity can be estimated by minimizing the reconstruction error. The experimental results verify the effectiveness of the proposed algorithm.
机译:作为转子目标的特殊特征,旋转角速度可以提供目标分类和识别的重要信息。本文提出了一种基于复杂经验模态分解(CEMD)和三维正交匹配追踪(3D-OMP)的参数稀疏表示(PSR)技术的旋转角速度估计方法。首先,通过傅里叶变换从雷达回波估计平移径向速度,然后根据估计的速度来实现平移补偿。其次,为了消除目标主体回波对微多普勒参数估计的影响,采用CEMD算法进行目标回声分离。然后,转子回波的分离信号通过三维参数词典矩阵作为共同稀疏信号,其将旋转角速度估计转换为共同稀疏信号的动态表示的问题。最后,为了降低估计方法的计算复杂性,我们提出了一种基于3D-OMP的参数稀疏表示算法来实现稀疏解,并且可以通过最小化重建误差来估计旋转角速度。实验结果验证了所提出的算法的有效性。

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