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Adaptive Surface Interference Suppression for Matched-Mode Source Localization

delete2010-01-01
delete26
PRE
AI
W
Woojae Seong
K
Keunhwa Lee
DOI:10.1109/JOE.2009.2036948delete
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Abstract

Abstract

En 中文
Localizing a quiet submerged target in the presence of loud interfering surface ships is an important problem for matched-field processing (MFP) in shallow water. Typically, a data-driven interference suppression scheme is employed which requires neither prior information of the interferer's location nor filter design optimization and iterative estimation. However, the target and the interferers are usually in motion resulting in spreading or mixing of signal energies in their subspaces, thus making it difficult to determine the interference subspace dimension. In this paper, we exploit the difference in modal amplitudes for surface and submerged sources by eigenanalysis of the modal cross-spectral density matrix (CSDM). Simulation and experimental data results show that the interference subspace can be estimated adaptively and the beam output for the target is enhanced.
Keywords:
Eigenvector decomposition (EVD)
interference suppression
matched-mode processing (MMP)
mode-space estimation

Journal

IEEE Journal of Oceanic Engineering cover
IEEE Journal of Oceanic Engineering
IF:
5.3
Papers:
2.6K
Citations:
7.4K

Organization

S
seoul national university (snu)
Scholars:
7.2W
Papers: 6.6W
Citations: 86