Title :
Multiple moving target detection and trajectory estimation using a single SAR sensor
Author :
Dias, José M B ; Marques, Paulo A C
Author_Institution :
Instituto de Telecomunicacoes, Instituto Superior Tecnico, Lisbon, Portugal
fDate :
4/1/2003 12:00:00 AM
Abstract :
A novel methodology is presented for determining the velocity and location of multiple moving targets using a single strip-map synthetic aperture radar (SAR) sensor. The so-called azimuth position uncertainty problem is therefore solved. The method exploits the structure of the amplitude and phase modulations of the returned echo from a moving target in the Fourier domain. A crucial step in the whole processing scheme is a matched filtering, depending on the moving target parameters, that simultaneously accounts for range migration and compresses two-dimensional signatures into one-dimensional ones without losing moving target information. A generalized likelihood ratio test approach is adopted to detect moving targets and derive their trajectory parameters. The effectiveness of the method is illustrated with synthetic and real data covering a wide range of targets velocities and signal-to-clutter ratios (SCRs). Even in the case of parallel to platform moving target motion, the most unfavorable scenario, the proposed method yields good results for, roughly, SCR > 10 dB.
Keywords :
amplitude modulation; echo; matched filters; phase modulation; radar clutter; synthetic aperture radar; target tracking; Fourier domain; amplitude modulations; azimuth position uncertainty problem; generalized likelihood ratio test approach; matched filtering; moving target; moving target motion; moving target parameters; multiple moving target detection; one-dimensional signature; phase modulations; range migration; real data; returned echo; signal-to-clutter ratios; single SAR sensor; synthetic data; trajectory estimation; trajectory parameters; Azimuth; Information filtering; Information filters; Matched filters; Object detection; Phase modulation; Synthetic aperture radar; Testing; Trajectory; Uncertainty;
Journal_Title :
Aerospace and Electronic Systems, IEEE Transactions on
DOI :
10.1109/TAES.2003.1207269