Elevation, azimuth, and polarization estimation with nested electromagnetic vector-sensor arrays via tensor modeling

被引:0
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作者
Ming-Yang Cao
Xingpeng Mao
Lei Huang
机构
[1] School of Electronics and Information Engineering,
[2] Harbin Institute of Technology,undefined
[3] Key Laboratory of Marine Environmental Monitoring and Information Processing,undefined
[4] Ministry of Industry and Information Technology,undefined
[5] College of Information Engineering,undefined
[6] Shenzhen University,undefined
关键词
Electromagnetic vector-sensor; Nested array; Parameter estimation; Tensor decomposition; Cramér-Rao bound (CRB);
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摘要
In this paper, we address the joint estimation problem of elevation, azimuth, and polarization with nested array consists of complete six-component electromagnetic vector-sensors (EMVS). Taking advantage of the tensor permutation, we convert the sample covariance matrix of the receive data into a tensorial form which provides enhanced degree-of-freedom. Moreover, the parameter estimation issue with the proposed model boils down to a Vandermonde constraint Canonical Polyadic Decomposition problem. The structured least squares estimation of signal parameters via rotational invariance techniques is tailored for joint auto-pairing elevation, azimuth, and polarization estimation, ending up with a computational efficient method that avoids exhaustive searching over spatial and polarization region. Furthermore, the sufficient uniqueness analysis of our proposed approach is addressed, and the stochastic Cramér-Rao bound for underdetermined parameter estimation is derived. Simulation results are given to verify the effectiveness of the proposed method.
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