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A Two-Stage Approach to Estimate the Angles of Arrival and the Angular Spreads of Locally Scattered Sources

机译:用两阶段方法估算局部散射源的到达角和角展度

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We propose a new two-stage approach to estimate the nominal angles of arrival (AoAs) and the angular spreads (ASs) of multiple locally scattered sources using a uniform linear array (ULA) of sensors. In contrast to earlier works, we consider both long- and short-term channel variations, typically encountered in wireless links. In the first stage, we exploit sources independence to blindly estimate the channel over several data blocks regularly spaced by intervals larger than the coherence time but each, short enough in length, to make time variations negligible within the block duration. We, thereby, decouple the multisource channel parameters estimation problem in hand into parallel and independent single-source channel parameters estimation subproblems. In the second stage, for each spatially scattered source, we process the corresponding sequence of quasi-independent channel realization estimates as a new single-scattered-source observation over which we apply Taylor series expansions to transform the estimation of the nominal AoA and the AS of the corresponding scattered source into a simple localization of two closely spaced, equi-powered, and uncorrelated rays (i.e., point sources). To localize both rays, we propose new accurate and computationally simple closed-form expressions for the mean value of the spatial harmonics and their separation by means of covariance fitting. An asymptotic performance analysis is also provided to prove the efficiency of the proposed estimators. Then, the AS and the nominal AoA of every source are directly deduced. The whole proposed framework takes advantage of the capabilities of the preprocessing channel identification step (to reduce the noise effect and decouple the estimation of the channel parameters of every source from the others) and the new simple and accurate closed-form estimators to accurately retrieve the channel parameters even in the most adverse conditions, mainly low signal-to-noise ratio (SNR), few sens-ors, no prior knowledge of the angular distribution, and closely spaced sources, as supported by simulations.
机译:我们提出了一种新的两阶段方法,即使用传感器的均匀线性阵列(ULA)来估计多个局部散射源的标称到达角(AoAs)和角展度(ASs)。与早期的工作相比,我们考虑了无线链路中通常会遇到的长期和短期信道变化。在第一阶段,我们利用源独立性来盲目估计几个数据块上的信道,这些数据块以大于相干时间的间隔规则间隔开,但是每个数据块的长度足够短,以使时间变化在块持续时间内可以忽略不计。因此,我们将手中的多源信道参数估计问题解耦为并行和独立的单源信道参数估计子问题。在第二阶段中,对于每个空间分散的源,我们将相应的拟独立信道实现估计序列作为新的单散源观测进行处理,在该观测中,我们将应用泰勒级数展开来转换名义AoA和AS的估计将相应的散射源分解为两个紧密间隔,等功率且不相关的射线(即点源)的简单定位。为了定位两条射线,我们针对空间谐波的平均值及其通过协方差拟合的分离提出了新的精确且计算简单的闭式表达式。还提供了渐近性能分析,以证明所提出的估计器的效率。然后,直接推导每个源的AS和标称AoA。整个提出的框架利用了预处理通道识别步骤的功能(以减少噪声影响并使每个源的通道参数的估计与其他源解耦)和新的简单而精确的封闭形式估计器,可以准确地检索出通道参数,即使在最不利的条件下,如仿真所支持的,主要是低信噪比(SNR),很少的传感器,对角分布没有先验知识以及间隔很小的信号源。

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