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Performance analysis of Low-complexity MVDR beamformer in spherical harmonics domain

机译:低复杂度MVDR波束形成器在球谐域中的性能分析

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Finite sample size usually has a significant impact on the performance of the minimum variance distortionless response (MVDR) beamformer. Here, statistical analysis of a low-complexity spherical harmonics MVDR (LC-SHMVDR) beamformer is conducted using two unitary matrices. Based on the first unitary matrix, the true covariance matrix becomes block-centrohermitian. This block-centrohermitian property is utilized to obtain the probability distribution function (PDF) of the array output. Then, the PDFs of the estimated covariance matrix and the weight vector become available. After the second unitary transformation, the steering vector and forward-backward (FB) averaged covariance matrix become real-valued. With these exact PDFs, we derive some explicit expressions in terms of the variance of the weight vector, the output signal-interference-noise ratio (SINR) and the mean-square error (MSE) to measure the effects of finite sample and real-valued processing. Compared with the traditional MVDR beamformer, the proposed method requires less computational complexity and performs better as verified by theoretical analysis and simulation results. (C) 2018 Elsevier B.V. All rights reserved.
机译:有限的样本大小通常会对最小方差无失真响应(MVDR)波束形成器的性能产生重大影响。在此,使用两个unit矩阵对低复杂度球形谐波MVDR(LC-SHMVDR)波束形成器进行统计分析。基于第一个unit矩阵,真实的协方差矩阵变为块中心hermitian。该块中心百米的特性被用于获得阵列输出的概率分布函数(PDF)。然后,估计的协方差矩阵和权重向量的PDF可用。在第二次ary元变换之后,转向矢量和前后(FB)平均协方差矩阵变为实值。有了这些精确的PDF,我们就权重矢量的方差,输出信号干扰噪声比(SINR)和均方误差(MSE)得出了一些明确的表达式,以测量有限样本和实数样本的影响。重视加工。与传统的MVDR波束形成器相比,该方法所需的计算复杂度更低,并且经过理论分析和仿真结果验证,其性能更好。 (C)2018 Elsevier B.V.保留所有权利。

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