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New Subspace-Based Method for Localization of Multiple Near-Field Signals and Statistical Analysis

机译:基于子空间的多个近场信号定位新方法及统计分析

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This paper investigates the localization of multiple near-field narrowband signals impinging on a symmetrical uniform linear array (ULA), and a new computationally efficient subspace-based method is proposed. The directions-of-arrival (DOAs) and ranges are estimated separately with a one-dimensional (1-D) subspaced-based estimation technique without eigendecomposition, where the null spaces are obtained through a linear operation of the matrices formed from the anti-diagonal elements of the noiseless array covariance matrix, and the estimated DOAs and ranges are automatically paired without any additional processing. Furthermore, the statistical analysis of the proposed method is studied, and the asymptotic mean-square-error (MSE) expressions of the estimation errors are derived. The effectiveness and the theoretical analysis of the proposed method are verified through numerical examples, and the simulation results show that our method provides good estimation performance for both the DOAs and ranges.
机译:本文研究了撞击在对称均匀线性阵列(ULA)上的多个近场窄带信号的定位,并提出了一种基于子空间的高效计算新方法。使用一维(1-D)基于子空间的估计技术分别对到达方向(DOA)和范围进行估计,而无需进行特征分解,其中零位空间是通过对由反矩阵形成的矩阵进行线性运算而获得的无噪声阵列协方差矩阵的对角线元素以及估计的DOA和范围将自动配对,而无需任何其他处理。此外,对该方法进行了统计分析,得出了估计误差的渐近均方误差(MSE)表达式。通过数值算例验证了该方法的有效性和理论分析,仿真结果表明,该方法对DOA和范围均具有良好的估计性能。

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