
CLC number: TN959.73
On-line Access: 2024-08-27
Received: 2023-10-17
Revision Accepted: 2024-05-08
Crosschecked: 2016-09-12
Cited: 1
Clicked: 7851
Hui Zhang, Jun Hong, Xiao-lan Qiu, Ji-chuan Li, Fang-fang Li, Feng Ming. Effects of residual motion compensation errors on the performance of airborne along-track interferometric SAR[J]. Frontiers of Information Technology & Electronic Engineering,in press.https://doi.org/10.1631/FITEE.1500311 @article{title="Effects of residual motion compensation errors on the performance of airborne along-track interferometric SAR", %0 Journal Article TY - JOUR
Abstract: The article adresses the correction of ATI-SAR based on DEM.
运动补偿残余误差对机载顺轨干涉SAR性能的影响关键词组: Darkslateblue:Affiliate; Royal Blue:Author; Turquoise:Article
Reference[1]Budillon, A., Pascazio, V., Schirinzi, G., 2008. Estimation of radial velocity of moving targets by along-track interferometric SAR systems. IEEE Geosci. Remote Sens. Lett., 5(3):349-353. ![]() [2]Chapin, E., Chen, C.W., 2009. Airborne along-track interferometry for GMTI. IEEE Aerosp. Electron. Syst. Mag., 24(5):13-18. ![]() [3]Chen, C.W., 2004. Performance assessment of along-track interferometry for detecting ground moving targets. Proc. IEEE Radar Conf., 99-104. ![]() [4]Cumming, I.G., Wong, F.H., 2004. Digital Processing of Synthetic Aperture Radar Data: Algorithms and Implementation. Artech House, London. ![]() [5]Dall, J., Grinder-Pedersen, J., Madsen, S.N., 1997. Calibration of a high resolution airborne 3D SAR. IEEE Int. Geoscience and Remote Sensing Symp., p.1018-1021. ![]() [6]Fischer, J., Baumgartner, S., Reigber, A., et al., 2008. Geometric, radiometric, polarimetric and along-track interferometric calibration of the new F-SAR system of DLR in X-Band. 7th European Conf. on Synthetic Aperture Radar, p.109-112. ![]() [7]Fornaro, G., 1999. Trajectory deviations in airborne SAR: analysis and compensatin. IEEE Trans. Aerosp. Electron. Syst., 35(3):997-1009. ![]() [8]Fornaro, G., Franceschetti, G., Perna, S., 2005. Motion compemsatiom errors: effects on the accuracy of airborne SAR images. IEEE Trans. Aerosp. Electr. Syst., 41(4): 1338-1352. ![]() [9]Fornaro, G., Franceschetti, G., Perna, S., 2006. On center-beam approximation in SAR motion compensation. IEEE Geosci. Remote Sens. Lett., 3(2):276-280. ![]() [10]Gierull, C.H., 2003. Digital Channel Balancing of Along-Track Interferometric SAR Data. Technical Memorandum No. DRDC-OTTAWA-TM-2003-024, Defence R&D Canada-Ottawa. ![]() [11]Glerull, C.H., 2002. Moving Target Detection with Along-Track SAR Interferometry: a Theoretical Analysis. Technical Memorandum No. DRDC-OTTAWA-TR-2002-084, Defence R&D Canada-Ottawa. ![]() [12]Goldstein, R.M., Zebker, H.A., 1987. Interferometric radar measurement of ocean surface currents. Nature, 328(6132):707-709. ![]() [13]Gonzalez, J.H., Bachmann, M., Krieger, G., et al., 2010. Development of the TanDEM-X calibration concept: analysis of systematic errors. IEEE Trans. Geosci. Remote Sens., 48(2):716-726. ![]() [14]Hirsch, O., 2001. Calibration of an airborne along-track interferometric SAR system for accurate measurement of velocities. IEEE Int. Geoscience and Remote Sensing Symp., p.558-560. ![]() [15]Imel, D.A., 2002. AIRSAR along-track interferometry data. AIRSAR Earth Science and Applications Workshop, p.1-58. ![]() [16]Li, F.F., Qiu, X.L., Meng, D.D., et al., 2014. Effects of motion compensation errors on performance of airborne dual-antenna InSAR. J. Electr. Inform. Technol., 35(3): 559-567 (in Chinese). ![]() [17]Madsen, S.N., Skou, N., Woelders, K., et al., 1996. EMISAR single pass topographic SAR interferometer modes. IEEE Geoscience and Remote Sensing Symp., p.674-676. ![]() [18]Marom, M., Goldstein, R.M., Thornton, E.B., et al., 1990. Remote sensing of ocean wave spectra by interferometric synthetic aperture radar. Nature, 345(6278):793-795. ![]() [19]Moccia, A., Rufino, G., 2001. Spaceborne along-track SAR interferometry: performance analysis and mission scenarios. IEEE Trans. Aerosp. Electron. Syst., 37(1): 199-213. ![]() [20]Moreira, A., Huang, Y.H., 1994. Airborne SAR processing of highly squinted data using a chirp scaling approach with integrated motion compensation. IEEE Trans. Geosci. Remote Sens., 32(5):1029-1040. ![]() [21]Raney, R.K., 1971. Synthetic aperture imaging radar and moving targets. IEEE Trans. Aerosp. Electron. Syst., AES-7(3):499-505. ![]() [22]Reigber, A., Alivizatos, E., Potsis, A., et al., 2006. Extended wavenumber-domain synthetic aperture radar focusing with integrated motion compensation. IEE Proc.-Radar Sonar Navig., 153(3):301-310. ![]() [23]Rosen, P.A., Hensley, S., Joughin, I.R., et al., 2000. Synthetic aperture radar interferometry. Proc. IEEE, 88(3):333-382. ![]() [24]Zebker, H.A., Villasenor, J., 1992. Decorrelation in interferometric radar echoes. IEEE Trans. Geosci. Remote Sens., 30(5):950-959. ![]() [25]Zhang, H., Hong, J., 2013. Sensitivity analysis of along-track interferometric synthetic aperture radar (ATI-SAR) in the presence of squint. IET Int. Radar Conf., p.1-5. ![]() [26]Zhang, Y.H., 2006. Along Track Interferometry Synthetic Aperture Radar Techniques for Ground Moving Target Detection. Technical Report No. AFRL-SN-RS-TR-2005-410, Stiefvater Consultants. ![]() [27]Zink, M., Krieger, G., Fiedler, H., et al., 2007. The TanDEM-X mission: overview and status. IEEE Int. Geoscience and Remote Sensing Symp., p.3944-3947. h ttp://dx.doi.org/10.1109/igarss.2007.4423711 ![]() Journal of Zhejiang University-SCIENCE, 38 Zheda Road, Hangzhou
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