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Underdetermined Blind Identification for Uniform Linear Array by a New Time-Frequency Method

机译:新的时频方法对均匀线性阵列的欠定盲识别

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This paper proposes a novel underdetermined blind identification method with several new single-source points (SSPs) detection criteria for uniform linear array, where the mixing matrix is complex-valued. These new criteria are based on quadratic time-frequency distribution and employed to detect the SSPs so that the complex-valued mixing matrix can be estimated more precisely. To further enhance the estimation accuracy, a modified peak detection method is presented by exploiting the known source number. Finally, the complex-valued mixing matrix can be obtained by performing a clustering algorithm on samples at selected SSPs. One of the outstanding superiorities for the proposed algorithm is that the new criteria are strict enough for the points that are not the SSPs, which ensures the estimation accuracy of the mixing matrix. The other is that the performance of estimation precision is high even in the noisy case. Numerical simulation results verify the superiority of the proposed algorithm over the existing algorithms.
机译:本文提出了一种新颖的欠定的盲识别方法,该方法具有多个新的统一线性阵列的单源点(SSP)检测标准,其中混合矩阵是复数值。这些新标准基于二次时频分布,并用于检测SSP,因此可以更精确地估计复值混合矩阵。为了进一步提高估计精度,通过利用已知源编号提出了一种改进的峰值检测方法。最后,可以通过对所选SSP上的样本执行聚类算法来获得复值混合矩阵。所提出算法的突出优点之一是,对于不是SSP的点,新标准足够严格,从而确保了混合矩阵的估计精度。另一个是即使在嘈杂的情况下,估计精度也很高。数值仿真结果验证了该算法优于现有算法的优越性。

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