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A subspace method for direction of arrival estimation of uncorrelated emitter signals

机译:不相关发射信号到达方向估计的子空间方法

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A novel eigenstructure-based method for direction estimation is presented. The method assumes that the emitter signals are uncorrelated. Ideas from subspace and covariance matching methods are combined to yield a noniterative estimation algorithm when a uniform linear array is employed. The large sample performance of the estimator is analyzed. It is shown that the asymptotic variance of the direction estimates coincides with the relevant Cramer-Rao lower bound (CRB). A compact expression for the CRB is derived for the ease when it is known that the signals are uncorrelated, and it is lower than the CRB that is usually used in the array processing literature (assuming no particular structure for the signal covariance matrix). The difference between the two CRBs can be large in difficult scenarios. This implies that in such scenarios, the proposed methods has significantly better performance than existing subspace methods such as, for example, WSF, MUSIC, and ESPRIT. Numerical examples are provided to illustrate the obtained results.
机译:提出了一种新的基于特征结构的方向估计方法。该方法假定发射器信号不相关。当采用统一线性阵列时,将子空间和协方差匹配方法的思想相结合,以产生非迭代估计算法。分析估计器的大样本性能。结果表明,方向估计的渐近方差与相关的Cramer-Rao下界(CRB)一致。当已知信号不相关时,可以轻松得出CRB的紧凑表达式,并且它比数组处理文献中通常使用的CRB低(假定信号协方差矩阵没有特定的结构)。在困难的情况下,两个CRB之间的差异可能很大。这意味着在这种情况下,所提出的方法比现有的子空间方法(例如WSF,MUSIC和ESPRIT)具有更好的性能。提供了数值示例来说明获得的结果。

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