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首页> 外文期刊>IEEE Transactions on Signal Processing >Maximum Likelihood Angle-Frequency Estimation in Partially Known Correlated Noise for Low-Elevation Targets
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Maximum Likelihood Angle-Frequency Estimation in Partially Known Correlated Noise for Low-Elevation Targets

机译:低海拔目标的部分已知相关噪声中的最大似然角频率估计

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In radar applications, the received echo signals reach the array elements via a multiplicity of paths despite the fact that there exists only one target. We address the problem of joint direction of arrival and Doppler frequency estimation using a sensor array in partially known additive noise. We consider a specular reflection model with a radar cross section fluctuating from one pulse repetition interval to another. The proposed model allows the estimation of more paths than sensors. Two approximate maximum likelihood algorithms are proposed. The first approach uses a linear expansion of the noise covariance matrix, whereas the second employs a combination of oblique projections and a zero-forcing solution to alleviate the effect of noise. In contrast to other classical methods, the two approaches are more robust to spatially correlated noise, and they employ more compact cost functions that reduce the dimension of the optimization search. Numerical simulations are provided to assess the basic performance of the two approaches, which are compared to the Cramer-Rao bound.
机译:在雷达应用中,尽管事实上只有一个目标,但接收到的回波信号仍通过多条路径到达阵列元件。我们使用部分已知的加性噪声​​中的传感器阵列解决联合到达方向和多普勒频率估计的问题。我们考虑镜面反射模型,其雷达横截面从一个脉冲重复间隔到另一个脉冲间隔波动。提出的模型允许估计比传感器更多的路径。提出了两种近似最大似然算法。第一种方法使用噪声协方差矩阵的线性扩展,而第二种方法则采用倾斜投影和迫零解决方案的组合来减轻噪声的影响。与其他经典方法相比,这两种方法对空间相关的噪声更健壮,并且它们使用更紧凑的成本函数,从而减小了优化搜索的范围。提供了数值模拟来评估这两种方法的基本性能,并与Cramer-Rao界线进行了比较。

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