Title :
Robust autofocus algorithm for ISAR imaging of moving targets
Author :
Li, Jian ; Wu, Renbiao ; Chen, Victor C.
Author_Institution :
Dept. of Electr. & Comput. Eng., Florida Univ., Gainesville, FL, USA
fDate :
7/1/2001 12:00:00 AM
Abstract :
A robust autofocus approach, referred to as AUTOCLEAN (AUTOfocus via CLEAN), is proposed for the motion compensation in ISAR (inverse synthetic aperture radar) imaging of moving targets. It is a parametric algorithm based on a very flexible data model which takes into account arbitrary range migration and arbitrary phase errors across the synthetic aperture that may be induced by unwanted radial motion of the target as well as propagation or system instability. AUTOCLEAN can be classified as a multiple scatterer algorithm (MSA), but it differs considerably from other existing MSAs in several aspects: (1) Dominant scatterers are selected automatically in the 2D image domain; (2) scatterers may not be well isolated or very dominant; (3) phase and RCS information from each selected scatterer are combined in an optimal way; (4) the troublesome phase unwrapping step is avoided. AUTOCLEAN is computationally efficient and involves only a sequence of FFTs. Another good feature associated with AUTOCLEAN is that its performance can be progressively improved by assuming a larger number of dominant scatterers for the target. Numerical and experimental results have shown that AUTOCLEAN is a very robust autofocus tool for ISAR imaging
Keywords :
computational complexity; convergence of numerical methods; data models; fast Fourier transforms; feature extraction; iterative methods; least squares approximations; motion compensation; radar computing; radar imaging; radar target recognition; radar tracking; synthetic aperture radar; target tracking; 2D image domain; AUTOCLEAN; ISAR imaging; arbitrary phase errors; arbitrary range migration errors; autofocus via clean; computationally efficient; convergence; dominant scatterers selection; fast Fourier transforms; feature extraction; flexible data model; iteration; motion compensation; moving targets; multiple scatterer algorithm; nonlinear least squares; parametric algorithm; propagation instability; radar cross section; robust autofocus algorithm; system instability; unwanted radial motion; Laboratories; Military aircraft; Motion compensation; Radar imaging; Radar polarimetry; Radar scattering; Radar tracking; Robustness; Space technology; Spaceborne radar;
Journal_Title :
Aerospace and Electronic Systems, IEEE Transactions on