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Fast DOA Estimation Algorithm Based on a Combination of an Orthogonal Projection and Noise Pseudo-Eigenvector Approach

机译:正交投影和噪声伪特征向量法相结合的快速DOA估计算法

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This paper presents a new fast direction of arrival (DOA) estimation technique, using both the projection spectrum and the eigenspectrum. First, the rough DOA range is selected using the projection spectrum; then, a linear matrix equation is used to acquire a noise pseudo-eigenvector. Finally, the fine DOA estimation is obtained from an eigenspectrum approach based on the noise pseudo-eigenvector. Without the need to form the covariance matrix from a block of the array data and without a prior knowledge of the number of incoming signals, reduced complexity is achieved, in contrast to conventional subspace-based algorithms. Simulation results show that the proposed algorithm has a good resolution performance and deals well with both uncorrelated and correlated signals. Since the new approach can reduce computational complexity while maintaining better or similar resolution capability, it may provide wider application prospects in real-time DOA estimation when contrasted to other comparable methods.
机译:本文提出了一种新的快速到达方向(DOA)估计技术,该技术同时使用了投影光谱和特征谱。首先,使用投影光谱选择粗略的DOA范围;然后,使用线性矩阵方程获取噪声伪特征向量。最后,基于噪声伪特征向量的特征谱方法获得了良好的DOA估计。与传统的基于子空间的算法相比,无需从阵列数据的一个块中形成协方差矩阵,并且无需事先知道输入信号的数量,就可以降低复杂度。仿真结果表明,该算法具有良好的分辨率性能,能够很好地处理不相关信号和相关信号。由于新方法可以降低计算复杂性,同时保持更好或相似的分辨率,因此与其他可比方法相比,它可以在实时DOA估计中提供更广阔的应用前景。

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