Optics and Precision Engineering, Volume. 29, Issue 12, 2924(2021)
Geometric correction of optical remote sensing satellite images captured by linear array sensors circular scanning perpendicular to the orbit
[1] [1] 1胡芬, 金淑英. 高分辨率光学遥感卫星宽幅成像技术发展浅析[J]. 地理信息世界, 2017, 24(5): 45-50. doi: 10.3969/j.issn.1672-1586.2017.05.009HUF, JINSH Y. Study on the development of wide swath imaging technology about highresolution optical remote sensing satellites[J]. Geomatics World, 2017, 24(5): 45-50. (in Chinese). doi: 10.3969/j.issn.1672-1586.2017.05.009
[2] [2] 2苗壮. TDICCD空间相机摆扫成像像移匹配残差估计[D]. 长春: 中国科学院研究生院(长春光学精密机械与物理研究所), 2015.MIAOZH. Residual Calculation of TDICCD Space Camera for Whiskbroom of Image Motion Velocity Matching[D]. Changchun: Institute of Optics, Fine Mechanics and Physics, Graduate School of Chinese Academy of Sciences, 2015. (in Chinese)
[3] [3] 3支政, 曲宏松, 李静, 等. 锥摆扫一体化空间相机成像模式设计[J]. 光学 精密工程, 2021, 29(3): 536-546. doi: 10.37188/OPE.20212903.0536ZHIZH, QUH S, LIJ, et al. Design of imaging model for cone-pendulum scanning integrated space camera[J]. Opt. Precision Eng., 2021, 29(3): 536-546. (in Chinese). doi: 10.37188/OPE.20212903.0536
[4] [4] 4李永昌. 敏捷卫星相机像移补偿关键技术研究[D]. 长春: 中国科学院研究生院(长春光学精密机械与物理研究所), 2016.LIY CH. Study on Key Technology of Image Motion Compensation of Agile Satellite Camera[D]. Changchun: Institute of Optics, Fine Mechanics and Physics, Graduate School of Chinese Academy of Sciences, 2016. (in Chinese)
[5] [5] 5莫德林. 航空长焦斜视相机成像模型与几何检校方法研究[D]. 郑州: 战略支援部队信息工程大学, 2018.MOD L. Research on Imaging Model and Geometric Calibration Method for Airborne Long Focal Wiskbroom Camera[D]. Zhengzhou: Information Engineering University, 2018. (in Chinese)
[6] [6] 6夏中秋, 黄巧林, 何红艳, 等. 空间相机摆扫成像立体定位精度仿真分析[J]. 中国空间科学技术, 2017, 37(3): 117-125. doi: 10.16708/j.cnki.1000-758X.2017.0061XIAZH Q, HUANGQ L, HEH Y, et al. Simulation and analysis of stereo geolocation accuracy of space camera by whisk broom imaging[J]. Chinese Space Science and Technology, 2017, 37(3): 117-125. (in Chinese). doi: 10.16708/j.cnki.1000-758X.2017.0061
[7] [7] 7王青. 线阵摆扫式热红外相机几何定标研究[D]. 南京: 南京航空航天大学, 2017. doi: 10.22606/jan.2017.24004WANGQ. Research on Geometric Calibration of Linear Array Whisking Broom Thermal Infrared Camera[D]. Nanjing: Nanjing University of Aeronautics and Astronautics, 2017. (in Chinese). doi: 10.22606/jan.2017.24004
[8] [8] 8曹喜滨, 金光, 王峰, 等. 一种卫星快速旋转超大幅宽摆扫成像方法: CN107152926B[P]. 2018-08-24.CAOX B, JING, WANGF, et al. Quick rotary ultra-wbr>width pendular satellite imaging method: CN107152926B[P]. 2018-08-24. (in Chinese)
[9] [9] 9钟灵毓.面向超宽幅卫星遥感影像的几何校正方法研究[D]. 北京:航天工程大学, 2020. doi: 10.30919/esee8c795ZHONGL Y. Study on Geometric Correction Methods for Ultra-wide Satellites[D]. Beijing: Space Engineering University, 2020. (in Chinese). doi: 10.30919/esee8c795
[10] [10] 10唐新明, 周平, 等. 资源三号卫星影像产品及其应用[M]. 北京: 科学出版社, 2018.TANGX M, ZHOUP. Image products and applications of ZY-3 satellite[M]. Beijing: Science Press, 2018. (in Chinese)
[11] [11] 11张过. 线阵推扫式光学卫星几何高精度处理[M]. 北京: 科学出版社, 2016. doi: 10.3390/s19184003ZHANGG. High precision geometric processing of linear push broom optical satellite[M]. Beijing: Science Press, 2016. (in Chinese). doi: 10.3390/s19184003
[12] [12] 12王密, 杨博, 潘俊, 金淑英. 高分辨率光学卫星遥感影像高精度几何处理与应用[M]. 北京: 科学出版社, 2017. doi: 10.1142/9789813222359_0062WANGM, YANGB, PANJ, JINS Y. High precision geometric processing and application of high resolution optical satellite remote sensing image[M]. Beijing: Science Press, 2017. (in Chinese). doi: 10.1142/9789813222359_0062
[13] [13] 13孟伟灿, 朱述龙, 曹闻, 等. TDI CCD交错拼接推扫相机严格几何模型构建与优化[J]. 测绘学报, 2015, 44(12): 1340-1350. doi: 10.11947/j.AGCS.2015.20150256MENGW C, ZHUSH L, CAOW, et al. Establishment and optimization of rigorous geometric model of push-broom camera using TDI CCD arranged in an alternating pattern[J]. Acta Geodaetica et Cartographica Sinica, 2015, 44(12): 1340-1350. (in Chinese). doi: 10.11947/j.AGCS.2015.20150256
[14] [14] 14耿则勋, 张保明, 范大昭. 数字摄影测量学[M]. 北京: 测绘出版社, 2010. doi: 10.1061/41127(382)278GENGZ X, ZHANGB M, FAND ZH. Digital photogrammetry[M]. Beijing: Sino Maps Press, 2010. (in Chinese). doi: 10.1061/41127(382)278
[15] [15] 15岳娟, 高思莉, 李范鸣, 等. 具有近似仿射尺度不变特征的快速图像匹配[J]. 光学 精密工程, 2020, 28(10): 2349-2359. doi: 10.37188/OPE.20202810.2349YUEJ, GAOS L, LIF M, et al. Fast image matching algorithm with approximate affine and scale invariance[J]. Opt. Precision Eng., 2020, 28(10): 2349-2359. (in Chinese). doi: 10.37188/OPE.20202810.2349
[16] [16] 16刘杰, 游品鸿, 占建斌, 等. 改进SIFT快速图像拼接和重影优化[J]. 光学 精密工程, 2020, 28(9): 2076-2084. doi: 10.37188/OPE.20202809.2076LIUJ, YOUP H, ZHANJ B, et al. Improved SIFT fast image stitching and ghosting optimization algorithm[J]. Opt. Precision Eng., 2020, 28(9): 2076-2084. (in Chinese). doi: 10.37188/OPE.20202809.2076
[17] [17] 17司守奎, 孙玺菁. 数学建模算法与应用[M]. 北京: 国防工业出版社, 2011.SISH K, SUNX J. Mathematical modeling algorithm and Application[M]. Beijing: National Defense Industry Press, 2011. (in Chinese)
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Wu XUE, Peng WANG, Ling-yu ZHONG. Geometric correction of optical remote sensing satellite images captured by linear array sensors circular scanning perpendicular to the orbit[J]. Optics and Precision Engineering, 2021, 29(12): 2924
Category: Information Sciences
Received: May. 7, 2021
Accepted: --
Published Online: Jan. 20, 2022
The Author Email: Peng WANG (zbxysimon@163.com)