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Mutual coupling self-calibration algorithm for uniform linear array based on ESPRIT

机译:基于ESPRIT的均匀线性阵列互联耦合自校准算法

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By exploiting the banded symmetric and Toeplitz matrix model for the mutual coupling of uniformly linear array (ULA), an efficient self-calibration algorithm based on estimation of signal parameter via rotational invariance techniques (ESPRIT) is proposed. The DOA and mutual coupling parameters can be decoupled by a smart choosing of subarrays for ESPRIT method, and favorable DOA estimation can be provided without the knowledge of the sensor mutual coupling matrix. Based on the estimated DOAs, an accurate estimation of mutual coupling matrix (MCM) can also be achieved for the self-calibration of ULA. The DOA estimation and mutual coupling estimation could be completed without any angle-searching and iterative procedure, so its computational burden is low. The correction and efficiency of the proposed algorithm are verified by the computer simulation results.
机译:通过利用用于均匀线性阵列(ULA)的相互耦合的带状对称和ToEplitz矩阵模型,提出了一种基于旋转不变性技术(ESPRIT)的信号参数估计的有效的自校准算法。 DOA和互联耦合参数可以通过智能选择对ESPRIT方法的智能选择分离,并且可以在没有传感器相互耦合矩阵的知识的情况下提供有利的DOA估计。 基于估计的DOA,对于ULA的自校准,也可以实现对相互耦合矩阵(MCM)的精确估计。 可以在没有任何角度搜索和迭代过程的情况下完成DOA估计和相互耦合估计,因此其计算负担很低。 通过计算机仿真结果验证了所提出的算法的校正和效率。

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