Correlating Synthetic Aperture Radar (CoSAR)

被引:9
作者
Lopez-Dekker, Paco [1 ]
Rodriguez-Cassola, Marc [1 ]
De Zan, Francesco [1 ]
Krieger, Gerhard [1 ]
Moreira, Alberto [1 ]
机构
[1] German Aerosp Ctr DLR, Microwaves & Radar Inst, D-82234 Oberpfaffenhofen, Germany
来源
IEEE TRANSACTIONS ON GEOSCIENCE AND REMOTE SENSING | 2016年 / 54卷 / 04期
关键词
Bistatic radar; ocean currents; sea level; sea surface; synthetic aperture radar; PHASE SYNCHRONIZATION; MODEL FUNCTION; SAR; RADIOMETER; CURRENTS; SYSTEMS; TIME;
D O I
10.1109/TGRS.2015.2498707
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
This paper presents the correlating synthetic aperture radar (CoSAR) technique, a novel radar imaging concept to observe statistical properties of fast decorrelating surfaces. A CoSAR system consists of two radars with a relative motion in the along -track (cross -range) dimension. The spatial autocorrelation function of the scattered signal can be estimated by combining quasi -simultaneously received radar echoes. By virtue of the Van Cittert Zernike theorem, estimates of this autocorrelation function for different relative positions can be processed by generating images of several properties of the scene, including the normalized radar cross section, Doppler velocities, and surface topography. Aside from the geometric performance, a central aspect of this paper is a theoretical derivation of the radiometric performance of CoSAR. The radiometric quality is proportional to the number of independent samples available for the estimation of the spatial correlation, and to the ratio between the CoSAR azimuth resolution and the real -aperture resolution. A CoSAR mission concept is provided where two geosynchronous radar satellites fly at opposing sides of a quasi -circular trajectory. Such a mission could provide bidaily images of the ocean backscatter, mean Doppler, and surface topography at resolutions on the order of 500 m over wide areas.
引用
收藏
页码:2268 / 2284
页数:17
相关论文
共 50 条
[41]   A mathematical tutorial on synthetic aperture radar [J].
Cheney, M .
SIAM REVIEW, 2001, 43 (02) :301-312
[42]   Problems of Multiband Synthetic Aperture Radar [J].
Meleshin, Yury M. ;
Oreshkin, Vitaly I. ;
Biryuk, Alexey A. ;
Maksimovskaya, Anna I. .
PROCEEDINGS OF THE 2017 IEEE RUSSIA SECTION YOUNG RESEARCHERS IN ELECTRICAL AND ELECTRONIC ENGINEERING CONFERENCE (2017 ELCONRUS), 2017, :1261-1263
[43]   AN OPTICAL PROCESSOR FOR SYNTHETIC APERTURE RADAR [J].
宋家骏 ;
袁慧坤 ;
王武萍 ;
毛引芳 .
Journal of Electronics(China), 1984, (03) :162-167
[44]   Synthetic Aperture Radar Correlation Imaging [J].
Voccola, Kaitlyn .
SIAM JOURNAL ON IMAGING SCIENCES, 2015, 8 (01) :299-330
[45]   Practical synthetic aperture radar image formation based on realistic spaceborne synthetic aperture radar modeling and simulation [J].
Shim, Sang Heun ;
Ro, Yong Man .
JOURNAL OF APPLIED REMOTE SENSING, 2013, 7
[46]   Joint image formation and two-dimensional autofocusing for synthetic aperture radar data [J].
Scarnati, Theresa ;
Gelb, Anne .
JOURNAL OF COMPUTATIONAL PHYSICS, 2018, 374 :803-821
[47]   Ionospheric effects on synthetic aperture radar (SAR) clutter statistics [J].
Belcher, David P. ;
Cannon, Paul S. .
IET RADAR SONAR AND NAVIGATION, 2013, 7 (09) :1004-1011
[48]   Optical moving target indicator for synthetic aperture radar images [J].
Li, Yuan ;
Lv, Gaohuan .
OPTICAL ENGINEERING, 2013, 52 (08)
[49]   Synthetic Aperture Radar at Millimeter Wavelength for UAV Surveillance Applications [J].
Caris, M. ;
Stanko, S. ;
Palm, S. ;
Sommer, R. ;
Pohl, N. .
2015 IEEE 1ST INTERNATIONAL FORUM ON RESEARCH AND TECHNOLOGIES FOR SOCIETY AND INDUSTRY (RTSI 2015) PROCEEDINGS, 2015,
[50]   Resolution Analysis of Circular Synthetic Aperture Radar Noncoherent Imaging [J].
Chen, Leping ;
An, Daoxiang ;
Huang, Xiaotao .
IEEE TRANSACTIONS ON INSTRUMENTATION AND MEASUREMENT, 2020, 69 (01) :231-240