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Low-Complexity DOA Estimation Based on Compressed MUSIC and Its Performance Analysis

机译:基于压缩MUSIC的低复杂度DOA估计及其性能分析

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This paper presents a new computationally efficient method for direction-of-arrival (DOA) estimation with arbitrary arrays. The total angular field-of-view is first divided into several small sectors and the original noise subspace exploited by the multiple signal classification (MUSIC) algorithm is mapped from one sector to the other sectors by a Hadarmard product transformation. This transformation gives a new noise-like subspace cluster (NLSC), whose intersection is found to be simultaneously orthogonal to the steering vectors associated with the true DOAs and several virtual DOAs. Based on such a multiple orthogonality, a novel compressed MUSIC (C-MUSIC) spatial spectrum at hand is derived. Unlike MUSIC with tremendous spectral search, C-MUSIC involves a limited search over only one sector, and hence it is computationally very attractive. To obtain the intersection of NLSC for more than two sectors, a low-complexity method is also proposed in the present work, which shows advantages over the existing alternative projection method (APM) and singular value decomposition (SVD) techniques. Furthermore, the mean square errors (MSEs) of the proposed estimator is derived. Simulation results illustrate that C-MUSIC trades-off MSEs by complexity and resolution as compared to the standard MUSIC efficiently.
机译:本文提出了一种新的计算有效的方法,用于任意阵列的到达方向(DOA)估计。首先将总视角范围划分为几个小扇区,然后通过Hadarmard乘积变换将多信号分类(MUSIC)算法所利用的原始噪声子空间从一个扇区映射到另一个扇区。该变换给出了一个新的类似噪声的子空间簇(NLSC),发现其交点同时正交于与真实DOA和几个虚拟DOA相关的操纵向量。基于这种多重正交性,可以得出一种新颖的压缩MUSIC(C-MUSIC)空间光谱。与具有巨大频谱搜索的MUSIC不同,C-MUSIC仅在一个扇区上进行有限的搜索,因此在计算上非常有吸引力。为了获得两个以上扇区的NLSC的交点,目前的工作中还提出了一种低复杂度的方法,该方法比现有的替代投影方法(APM)和奇异值分解(SVD)技术更具优势。此外,推导了所提出的估计器的均方误差(MSE)。仿真结果表明,与标准MUSIC相比,C-MUSIC通过复杂性和分辨率权衡了MSE。

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