Acceleration Compensation for Estimation of Along-Track Velocity of Ground Moving Target from Single-Channel SAR SLC Data

Across-track acceleration is a major source of estimation error of along-track velocity in synthetic-aperture radar (SAR) ground moving-target indication (GMTI). This paper presents the theory and a method of compensating across-track acceleration to improve the accuracy of along-track velocity esti...

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Bibliographic Details
Main Authors: Sang-Wan Kim, Joong-Sun Won
Format: Article
Language:English
Published: MDPI AG 2020-05-01
Series:Remote Sensing
Subjects:
SAR
Online Access:https://www.mdpi.com/2072-4292/12/10/1609
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spelling doaj-c542c62b090344cc8b0d52667a1447232020-11-25T02:38:12ZengMDPI AGRemote Sensing2072-42922020-05-01121609160910.3390/rs12101609Acceleration Compensation for Estimation of Along-Track Velocity of Ground Moving Target from Single-Channel SAR SLC DataSang-Wan Kim0Joong-Sun Won1Department of Geoinformation Engineering, Sejong University, Seoul 05006, KoreaDepartment of Earth System Sciences, Yonsei University, Seoul 03722, Korea;Across-track acceleration is a major source of estimation error of along-track velocity in synthetic-aperture radar (SAR) ground moving-target indication (GMTI). This paper presents the theory and a method of compensating across-track acceleration to improve the accuracy of along-track velocity estimated from single-channel SAR single-look complex data. A unique feature of the proposed method is the utilisation of phase derivatives in the Doppler frequency domain, which is effective for azimuth-compressed signals. The performance of the method was evaluated through experimental data acquired by TerraSAR-X and speed-controlled and measured vehicles. The application results demonstrate a notable improvement in along-track velocity estimates. The amount of along-track velocity correction is particularly significant when a target has irregular motion with a low signal-to-clutter ratio. A discontinuous velocity jump rather than a constant acceleration was also observed and verified through comparison between actual data and simulations. By applying this method, the capability of single-channel SAR GMTI could be substantially improved in terms of accuracy of velocity, and moving direction. However, the method is effective only if the correlation between the actual Doppler phase derivatives and a model derived from the residual Doppler rate is sufficiently high. The proposed method will be applied to X-band SAR systems of KOMPSAT-5 and -6.https://www.mdpi.com/2072-4292/12/10/1609SARground moving target indication (GMTI)along-track velocityaccelerationDoppler phase
collection DOAJ
language English
format Article
sources DOAJ
author Sang-Wan Kim
Joong-Sun Won
spellingShingle Sang-Wan Kim
Joong-Sun Won
Acceleration Compensation for Estimation of Along-Track Velocity of Ground Moving Target from Single-Channel SAR SLC Data
Remote Sensing
SAR
ground moving target indication (GMTI)
along-track velocity
acceleration
Doppler phase
author_facet Sang-Wan Kim
Joong-Sun Won
author_sort Sang-Wan Kim
title Acceleration Compensation for Estimation of Along-Track Velocity of Ground Moving Target from Single-Channel SAR SLC Data
title_short Acceleration Compensation for Estimation of Along-Track Velocity of Ground Moving Target from Single-Channel SAR SLC Data
title_full Acceleration Compensation for Estimation of Along-Track Velocity of Ground Moving Target from Single-Channel SAR SLC Data
title_fullStr Acceleration Compensation for Estimation of Along-Track Velocity of Ground Moving Target from Single-Channel SAR SLC Data
title_full_unstemmed Acceleration Compensation for Estimation of Along-Track Velocity of Ground Moving Target from Single-Channel SAR SLC Data
title_sort acceleration compensation for estimation of along-track velocity of ground moving target from single-channel sar slc data
publisher MDPI AG
series Remote Sensing
issn 2072-4292
publishDate 2020-05-01
description Across-track acceleration is a major source of estimation error of along-track velocity in synthetic-aperture radar (SAR) ground moving-target indication (GMTI). This paper presents the theory and a method of compensating across-track acceleration to improve the accuracy of along-track velocity estimated from single-channel SAR single-look complex data. A unique feature of the proposed method is the utilisation of phase derivatives in the Doppler frequency domain, which is effective for azimuth-compressed signals. The performance of the method was evaluated through experimental data acquired by TerraSAR-X and speed-controlled and measured vehicles. The application results demonstrate a notable improvement in along-track velocity estimates. The amount of along-track velocity correction is particularly significant when a target has irregular motion with a low signal-to-clutter ratio. A discontinuous velocity jump rather than a constant acceleration was also observed and verified through comparison between actual data and simulations. By applying this method, the capability of single-channel SAR GMTI could be substantially improved in terms of accuracy of velocity, and moving direction. However, the method is effective only if the correlation between the actual Doppler phase derivatives and a model derived from the residual Doppler rate is sufficiently high. The proposed method will be applied to X-band SAR systems of KOMPSAT-5 and -6.
topic SAR
ground moving target indication (GMTI)
along-track velocity
acceleration
Doppler phase
url https://www.mdpi.com/2072-4292/12/10/1609
work_keys_str_mv AT sangwankim accelerationcompensationforestimationofalongtrackvelocityofgroundmovingtargetfromsinglechannelsarslcdata
AT joongsunwon accelerationcompensationforestimationofalongtrackvelocityofgroundmovingtargetfromsinglechannelsarslcdata
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