Abstract:
A sparsity-based adaptive beamforming (ABF) method is introduced to effectively process coherent signals with polarized sensor arrays (PSA). This method exploits the spat...Show MoreMetadata
Abstract:
A sparsity-based adaptive beamforming (ABF) method is introduced to effectively process coherent signals with polarized sensor arrays (PSA). This method exploits the spatial sparsity of observed signals by transforming it into row-sparsity within a waveform-polarization composite matrix through data reorganization. This row-sparsity is subsequently cast as an \ell _{2,1} norm minimization problem, characterized by a gridless and compact mathematical expression with a Hermitian Toeplitz matrix. Then, a matrix factorization-based gradient descent (GD) algorithm is introduced to effectively resolve this optimization problem. The experimental evaluations demonstrate that the GD algorithm significantly outperforms the MOSEK solver in terms of computational efficiency. Further comparative analysis demonstrates that the proposed method outperforms the existing techniques, especially in contexts of low signal-to-noise ratio (SNR), with a moderate increase in computational runtime.
Published in: IEEE Signal Processing Letters ( Volume: 31)
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- IEEE Keywords
- Index Terms
- Coherent Signal ,
- Adaptive Beamforming ,
- Signal-to-noise ,
- Gradient Descent ,
- Gradient Descent Algorithm ,
- Increase In Runtime ,
- Computational Runtime ,
- Performance Of Method ,
- Covariance Matrix ,
- Matrix Factorization ,
- Beampattern ,
- Kronecker Product ,
- Signal-to-interference-plus-noise Ratio ,
- Sample Covariance Matrix ,
- Uniform Linear Array ,
- Polarization Orientation ,
- Polarization Parameters ,
- Number Of Orientations ,
- Augmented Matrix ,
- Rank Deficiency
- Author Keywords
Keywords assist with retrieval of results and provide a means to discovering other relevant content. Learn more.
- IEEE Keywords
- Index Terms
- Coherent Signal ,
- Adaptive Beamforming ,
- Signal-to-noise ,
- Gradient Descent ,
- Gradient Descent Algorithm ,
- Increase In Runtime ,
- Computational Runtime ,
- Performance Of Method ,
- Covariance Matrix ,
- Matrix Factorization ,
- Beampattern ,
- Kronecker Product ,
- Signal-to-interference-plus-noise Ratio ,
- Sample Covariance Matrix ,
- Uniform Linear Array ,
- Polarization Orientation ,
- Polarization Parameters ,
- Number Of Orientations ,
- Augmented Matrix ,
- Rank Deficiency
- Author Keywords