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Improved Unitary Root-MUSIC for DOA Estimation Based on Pseudo-Noise Resampling

机译:基于伪噪声重采样的改进的单根-MUSIC DOA估计

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A novel pseudo-noise resampling (PR) based unitary root-MUSIC algorithm for direction-of-arrival (DOA) estimation is derived in this letter. Our solution is able to eliminate the abnormal DOA estimator called outlier and obtain an approximate outlier-free performance in the unitary root-MUSIC algorithm. In particular, we utilize a hypothesis test to detect the outlier. Meanwhile, a PR process is applied to form a DOA estimator bank and a corresponding root estimator bank. We propose a distance detection strategy which exploits the information contained in the estimated root estimator to help determine the final DOA estimates when all the DOA estimators fail to pass the reliability test. Furthermore, the proposed method is realized in terms of real-valued computations, leading to an efficient implementation. Simulations show that the improved MUSIC scheme can significantly improve the DOA resolution at low signal-to-noise ratios and small samples.
机译:在这封信中,得出了一种新颖的基于伪噪声重采样(PR)的单根MUSIC算法,用于到达方向(DOA)估计。我们的解决方案能够消除称为异常值的异常DOA估计量,并在单一根MUSIC算法中获得近似无异常值的性能。特别是,我们利用假设检验来检测异常值。同时,PR处理被应用以形成DOA估计器库和相应的根估计器库。我们提出一种距离检测策略,该策略利用所有估计的根估计量中包含的信息来帮助确定所有DOA估计量均未通过可靠性测试时的最终DOA估计量。此外,所提出的方法是根据实值计算实现的,从而实现了有效的实现。仿真表明,改进的MUSIC方案可以在低信噪比和小样本情况下显着提高DOA分辨率。

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