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Underdetermined DOA estimation for uniform circular array based on sparse signal reconstruction

机译:基于稀疏信号重构的均匀圆形阵列欠定DOA估计

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This paper proposes a novel sparsity-aware method that can estimate more sources than the number of sensors available based on the I1 optimization technique. This approach enforces sparsity by £1 penalization and restricting error by £2-norm which enables the reconstruction of sparse signals. By using the Khatri-Rao (KR) subspace approach, we obtain an increase in the degrees of freedom (DOFs). Thus, using uniform circular array (UCA), we can perform underdetermined DOA estimation for sparse signals. Simulation results confirms the effectiveness of the proposed method.
机译:本文提出了一种新颖的稀疏感知方法,该方法可以估计比基于I1优化技术的可用传感器数量更多的来源。这种方法通过减少1英镑的罚款来增强稀疏性,并通过减少2英镑的范数来限制错误,从而能够重建稀疏信号。通过使用Khatri-Rao(KR)子空间方法,我们获得了自由度(DOF)的增加。因此,使用统一圆形阵列(UCA),我们可以对稀疏信号执行不确定的DOA估计。仿真结果证实了该方法的有效性。

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