A SRTM-DEM-controlled Ortho-rectification Method for Optical Satellite Remote Sensing Stereo Images

  • ZHANG Hao ,
  • ZHANG Guo ,
  • JIANG Yonghua ,
  • WANG Taoyang
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  • 1. Faculty of Earth Resources, China University of Geosciences, Wuhan 430074, China;
    2. State Key Laboratory of Information Engineering in Surveying, Mapping and Remote Sensing, Wuhan University, Wuhan 430079, China;
    3. Satellite Surveying and Mapping Application Center, State Bureau of Surveying, Mapping and Geoinformation, Beijing 100830, China;
    4. School of Remote Sensing and Information Engineering, Wuhan University, Wuhan 430079, China

Received date: 2015-07-07

  Revised date: 2015-08-28

  Online published: 2016-03-25

Supported by

The National Natural Science Foundation of China(Nos.91538106;41501503;41201361);Public Science Research Programme of Surveying, Mapping and Geoinformation(No.201512022)

Abstract

In response to the problem of lacking of control base in the project of global mapping, a method to ortho-rectify satellite remote sensing images is proposed, which uses SRTM-DEM as control base. First, stereo images pairs which compose of optical images are adjusted by block adjustment of free networks and DEMs are extracted.Then SRTM-DEM is used as control base, the single DEM is the cell model and DEM block adjustment of independent models is implemented to get orientation parameters of each model.Finally, the geometric model parameters of each stereo image pair are corrected to ortho-rectify the nadir image. The ZY-3 images in Xianning and Jiangxi are taken as test data and the results show that the planar orientation accuracy of the pan nadir image is improved from 12.93 pixels to 6.85 pixels.

Cite this article

ZHANG Hao , ZHANG Guo , JIANG Yonghua , WANG Taoyang . A SRTM-DEM-controlled Ortho-rectification Method for Optical Satellite Remote Sensing Stereo Images[J]. Acta Geodaetica et Cartographica Sinica, 2016 , 45(3) : 326 -331 . DOI: 10.11947/j.AGCS.2016.20150358

References

[1] 王桂芝. 全球测图项目及其应用浅谈[J]. 地理信息世界, 2005, 3(1):28-33, 38. WANG Guizhi. Brief Introduction to Global Mapping Project and Its Applications[J]. Geomatics World, 2005, 3(1):28-33, 38.
[2] 张过, 汪韬阳, 李德仁, 等. 轨道约束的资源三号标准景影像区域网平差[J]. 测绘学报, 2014, 43(11):1158-1164. DOI:10.13485/j.cnki.11-2089.2014.0179. ZHANG Guo, WANG Taoyang, LI Deren, et al. Block Adjustment for ZY-3 Satellite Standard Imagery Based on Strip Constraint[J]. Acta Geodaetica et Cartographica Sinica, 2014, 43(11):1158-1164. DOI:10.13485/j.cnki.11-2089.2014.0179.
[3] 刘楚斌, 张永生, 范大昭, 等. 资源三号卫星三线阵影像自检校区域网平差[J]. 测绘学报, 2014, 43(10):1046-1050.DOI:10.13485/j.cnki.11-2089.2014.0148. LIU Chubin, ZHANG Yongsheng, FAN Dazhao, et al. Self-calibration Block Adjustment for Three Line Array Image of ZY-3[J]. Acta Geodaetica et Cartographica Sinica, 2014, 43(10):1046-1050. DOI:10.13485/j.cnki.11-2089.2014.0148.
[4] 程春泉, 邓喀中, 孙钰珊, 等. 长条带卫星线阵影像区域网平差研究[J]. 测绘学报, 2010, 39(2):162-168. CHENG Chunquan, DENG Kazhong, SUN Yushan,et al. Study of Block Adjustment for Long-strip Satellite CCD Images[J]. Acta Geodaetica et Cartographica Sinica, 2010, 39(2):162-168.
[5] WESER T, ROTTENSTEINER F, WILLNEFF J, et al. Development and Testing of a Generic Sensor Model for Pushbroom Satellite Imagery[J]. The Photogrammetric Record, 2008, 23(123):255-274.
[6] ROTTENSTEINER F, WESER T, LEWIS A, et al. A Strip Adjustment Approach for Precise Georeferencing of ALOS Optical Imagery[J]. IEEE Transactions on Geoscience and Remote Sensing, 2009, 47(12):4083-4091.
[7] FRASER C S,RAVANBAKHSH M.Precise Georefrencing of Long Strips of ALOS Imagery[J]. Photogrammetric Engineering & Remote Sensing, 2011, 77(1):87-93.
[8] MASSERA S, FAVÉ P, GACHET R, et al. Toward a Global Bundle Adjustment of SPOT5-HRS Images[C]//Proceedings of ISPRS International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences. Melbourne, Australia:ISPRS, 2012, XXXIX-B1:251-256.
[9] ZHANG Guo, WANG Taoyang, LI Deren, et al. Block Adjustment for Satellite Imagery Based on the Strip Constraint[J]. IEEE Transactions on Geoscience & Remote Sensing, 2015, 53(2):933-941.
[10] 汪韬阳, 张过, 李德仁, 等. 资源三号测绘卫星影像平面和立体区域网平差比较[J]. 测绘学报, 2014, 43(4):389-395.DOI:10.13485/j.cnki.11-2089.2014.0058. WANG Taoyang, ZHANG Guo, LI Deren, et al. Comparison between Plane and Stereo Block Adjustment for ZY-3 Satellite Images[J]. Acta Geodaetica et Cartographica Sinica, 2014, 43(4):389-395. DOI:10.13485/j.cnki.11-2089.2014.0058.
[11] ZHANG Yongjun, ZHENG Maoteng, XIONG Xiaodong, et al. Multistrip Bundle Block Adjustment of ZY-3 Satellite Imagery by Rigorous Sensor Model without Ground Control Point[J]. IEEE Geoscience and Remote Sensing Letters, 2015, 12(4):865-869.
[12] BOUILLON A, BERNARD M, GIGORD P, et al. SPOT 5 HRS Geometric Performances:Using Block Adjustment as a Key Issue to Improve Quality of DEM Generation[J]. ISPRS Journal of Photogrammetry and Remote Sensing, 2006, 60(3):134-146.
[13] 江万寿. 航空影像多视匹配与规则建筑物自动提取方法研究[D]. 武汉:武汉大学, 2004. JIANG Wanshou. Multiple Aerial Image Matching and Automatic Building Detection[D]. Wuhan:Wuhan University, 2004.
[14] D'ANGELO P,LEHNER M,KRAUSS T,et al.Towards Automated DEM Generation from High Resolution Stereo Satellite Images[C]//The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences. Beijing:Copernicus Publications, 2008:1137-1142.
[15] 张过. 缺少控制点的高分辨率卫星遥感影像几何纠正[D]. 武汉:武汉大学, 2005. ZHANG Guo. Rectification for High Resolution Remote Sensing Image under Lack of Ground Control Points[D]. Wuhan:Wuhan University, 2005.
[16] FRASER C S, HANLEY H B. Bias-compensated RPCs for Sensor Orientation of High-resolution Satellite Imagery[J]. Photogrammetric Engineering & Remote Sensing, 2005, 71(8):909-915.
[17] 李德仁, 郑肇葆. 解析摄影测量学[M]. 北京:测绘出版社, 1992:138-139. LI Deren, ZHENG Zhaobao. Analytical Photogrammetry[M]. Beijing:Surveying and Mapping Press, 1992:138-139.
[18] GRUEN A,AKCA D.Least Squares 3D Surface and Curve Matching[J]. ISPRS Journal of Photogrammetry and Remote Sensing, 2005, 59(3):151-174.
[19] ZHANG Tonggang, CEN Minyi, REN Zizhen, el al. Efficient Correspondence Criterion for Gridded DEM Coregistration[C]//The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences. Beijing:Copernicus Publications, 2008:1241-1246.
[20] NOH M J, HOWATIM.Automated Coregistration of Repeat Digital Elevation Models for Surface Elevation Change Measurement Using Geometric Constraints[J]. IEEE Transactions on Geoscience and Remote Sensing, 2014, 52(4):2247-2260.[21] GRODECKI J, DIAL G. Block Adjustment of High-resolution Satellite Images Described by Rational Polynomials[J]. Photogrammetric Engineering & Remote Sensing, 2003, 69(1):59-68.
[22] 蒋永华, 张过, 唐新明, 等. 资源三号测绘卫星多光谱影像高精度谱段配准[J]. 测绘学报, 2013, 42(6):884-890. JIANG Yonghua, ZHANG Guo, TANG Xinming, et al. Research on the High Accuracy Band-to-band Registration Method of ZY-3 Multispectral image[J]. Acta Geodaetica et Cartographica Sinica, 2013, 42(6):884-890.
[23] 潘红播, 张过, 唐新明, 等. 资源三号测绘卫星影像产品精度分析与验证[J]. 测绘学报, 2013, 42(5):738-744, 751. PAN Hongbo, ZHANG Guo, TANG Xinming, et al. Accuracy Analysis and Verification of ZY-3 Products[J]. Acta Geodaetica et Cartographica Sinica, 2013, 42(5):738-744, 751.
[24] 张同刚. 无控制DEM匹配与差异探测及其在泥石流灾害地区的应用[D]. 成都:西南交通大学, 2006. ZHANG Tonggang. DEM Matching without Control Points for Detecting the Earth's Surface Deformation and Its Application on Debris-flow Area[D]. Chengdu:Southwest Jiaotong University, 2006.
[25] [JP+4] RODRÍGUEZ E, MORRIS C S, BELZ J E. A Global Assessment of the SRTM Performance[J]. Photogrammetric Engineering & Remote Sensing, 2006, 72(3):249-260.
[26] 李德仁, 张过, 坚持政产学研用实现中国遥感卫星质量的飞跃——以我国第一颗民用测绘卫星"资源三号"为例[J]. 中国科学院院刊, 2013, 28(S):25-32. LI Deren, ZHANG Guo. Achieving Great Leap of Remote Sensing Satellites in China with Adhering to the Model of Government, Industry, Academy, Research, and Users-Our Nation's First Civil Surveying and Mapping Satellite ZY-3 for an Example[J]. Bullentin of Chinese Academy of Sciences, 2013, 28(S):25-32.
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