[1] |
靳国旺. 2007. InSAR获取高精度DEM关键处理技术研究[D]. 郑州: 解放军信息工程大学: 29-42.
|
|
JIN Guo-wang. 2007. Research on key processing techniques for deriving accurate DEM from InSAR[D]. PLA Information Engineering University, Zhengzhou: 29-42. (in Chinese)
|
[2] |
王超, 张红, 刘智. 2002. 星载合成孔径雷达干涉测量[M]. 北京: 科学出版社.
|
|
WANG Chao, ZHANG Hong, LIU Zhi. 2002. Spaceborne Synthetic Aperture Radar Interferometry[M]. Science Press, Beijing. (in Chinese)
|
[3] |
王华, 喻永平, 蒋利龙. 2014a. 利用合成孔径雷达干涉监测广州佛山地面沉降[J]. 测绘科学, 39(7): 67-71.
|
|
WANG Hua, YU Yong-ping, JIANG Li-long. 2014a. Monitoring land subsidence in Guangzhou and Foshan using InSAR[J]. Science of Surveying & Mapping, 39(7): 67-71. (in Chinese)
|
[4] |
王华, 罗丽芳. 2014b. 利用 InSAR 相干性提取青藏高原湖泊边界[J]. 广东工业大学学报, 31(1): 118-120, 130.
|
|
WANG Hua, LUO Li-fang. 2014b. Identifying lake boundaries in Tibet using InSAR coherence[J]. Journal of Guangdong University of Technology, 31(1): 118-120, 130. (in Chinese)
|
[5] |
吴文豪, 周志伟, 李陶, 等. 2017. 精密轨道支持下的哨兵卫星TOPS模式干涉处理[J]. 测绘学报, 46(9): 1156-1164.
|
|
WU Wen-hao, ZHOU Zhi-wei, LI Tao, et al. 2017. A study of Sentinel-1 TOPS mode co-registration[J]. Journal of Surveying and Mapping, 46(9): 1156-1164. (in Chinese)
|
[6] |
熊智, 陈方, 王丹, 等. 2011. SAR/INS组合导航中基于SURF的鲁棒景象匹配算法[J]. 南京航空航天大学学报, 43(1): 49-54.
|
|
XIONG Zhi, CHEN Fang, WANG Dan, et al. 2011. Robust scene matching algorithm for SAR/INS integrated navigation system based on SURF[J]. Journal of Nanjing University of Aeronautics and Astronautics, 43(1): 49-54. (in Chinese)
|
[7] |
Bay H, Tuytelaars T, Gool L V. 2006. SURF: Speeded up robust features[C]. Proceedings of the 9th European Conference on Computer Vision-Volume Part I. Springer-Verlag: 404-417. doi: 10.1007/11744023_32.
DOI
|
[8] |
Brown L G. 1992. A survey of image registration techniques[J]. ACM Computing Surveys, 24(4): 326-376.
|
[9] |
Durgam U K, Paul S, Pati U C. 2016. SURF based matching for SAR image registration[C]. IEEE Students’ Conference on Electrical, Electronics and Computer Science(SCEECS), 2016, Vietnam: 1-5. doi: 10.1109/SCEECS.2016.7509292.
DOI
|
[10] |
Eom K. 2011. Anisotropic adaptive filtering for speckle reduction in synthetic aperture radar images[J]. Optical Engineering, 50(5): 219-223.
|
[11] |
Low D G. 2004. Distinctive image features from scale-invariant keypoints[J]. International Journal of Computer Vision, 60(2): 91-110.
DOI
URL
|
[12] |
Ng A, Wang H, Dai Y W, et al. 2018. InSAR reveals land deformation at Guangzhou and Foshan, China between 2011 and 2017 with COSMO-SkyMed data[J]. Remote Sensing, 10(6): 813.
DOI
URL
|
[13] |
Serafino F. 2006. SAR image coregistration based on isolated point scatterers[J]. IEEE Geoscience & Remote Sensing Letters, 3(3):354-358.
|
[14] |
Sun Q, Zhang L, Ding X L, et al. 2015. Slope deformation prior to Zhouqu, China landslide from InSAR time series analysis[J]. Remote Sensing of Environment, 156:45-57.
DOI
URL
|
[15] |
Tarchi D, Casagli N, Fanti R, et al. 2003. Landslide monitoring by using ground-based SAR interferometry: An example of application to the Tessina landslide in Italy[J]. Engineering Geology, 68(1-2): 15-30.
DOI
URL
|
[16] |
Wang H, Ge L L, Xu C J. 2007. Coseismic deformation and slip distribution of the 1997 MW7.5 Manyi, Tibet, earthquake from InSAR measurements[J]. Journal of Geodynamics, 44(3-5): 200-212.
DOI
URL
|
[17] |
Wang H, Wright T J, Biggs J. 2009. Interseismic slip rate of the northwestern Xianshuihe Fault from InSAR data[J]. Geophysical Research Letters, 36(3): 139-145.
|
[18] |
Wang H, Wright T J, Liu Z J, et al. 2019. Strain rate distribution in south-central Tibet from two decades of InSAR and GPS[J]. Geophysical Research Letters, 46(3): 1-10.
DOI
URL
|