[1] Shen Z, Lü J, Wang M, et al. Contemporary crustal deformation around the southeast borderland of the Tibetan Plateau[J]. Journal of geophysical research: Solid Earth., 2005, 110(b11): B11409. [2] 徐锡伟, 闻学泽, 陈桂华, 等. 巴颜喀拉地块东部龙日坝断裂带的发现及其大地构造意义[J]. 中国科学(D辑: 地球科学) , 2008, 38(5): 529-542. [3] Shen Z K, Sun J, Zhang P, et al. Slip maxima at fault junctions and rupturing of barriers during the 2008 Wenchuan earthquake[J]. Nat. Geosci., 2009, 2: 718-724. [4] Feng G, Hetland E A, Ding X, et al. Coseismic fault slip of the 2008 MW7.9 Wenchuan earthquake estimated from InSAR and GPS measurements[J]. Geophys Res Lett., 2010, 37: L01302. [5] Xu C, Liu Y, Wen Y, et al. Coseismic Slip Distribution of the 2008 MW7.9 Wenchuan Earthquake from Joint Inversion of GPS and InSAR Data[J]. Bulletin of the Seismological Society of America, November 2010, 100(5B): 2736-2749. [6] Wang Q, Qiao X, Lan Q, et al. Rupture of deep faults in the 2008 Wenchuan earthquake and uplift of the Longmen Shan[J]. Nature Geoscience, 2011, 4(9): 634-640. [7] Fielding E J, Sladen A, Li Z, et al. Kinematic fault slip evolution source models of the 2008 M7.9 Wenchuan earthquake in China from SAR interferometry, GPS and teleseismic analysis and implications for Longmen Shan tectonics[J]. Geophysical Journal International, 2013, 194(2): 1138-1166. [8] Xu X, Wen X, Yu G, et al. Coseismic reverse- and oblique-slip surface faulting generated by the 2008 MW7.9 Wenchuan earthquake, China[J]. Geology, 2009, 37(6): 515-518. [9] Ken X S, Si H J, Fujiwara H, et al. Coseismic surface-ruptures and crustal deformations of the 2008 Wenchuan earthquake MW7.9, China[J]. Geophys Res Lett, 2009, 36: L11303. [10] Li Z H, Elliott J R, Feng W P, et al. The 2010 MW6.8 Yushu (Qinghai, China) earthquake: Constraints provided by InSAR and body wave seismology[J]. J Geophys Res., 2011, 116: B10302. [11] Wen Y, Xu C, Liu Y, et al. Deformation and source parameters of the 2015 MW6.5 earthquake in Pishan, western China, from Sentinel-1A and ALOS-2 data[J]. Remote Sens, 2016, 8(2): 134. [12] Jiang H, Feng G, Wang T, et al. Toward full exploitation of coherent and incoherent information in Sentinel-1 TOPS data for retrieving surface displacement: Application to the 2016 Kumamoto (Japan) earthquake[J]. Geophysical Research Letters, 2016, 10.1002/2016GL072253. [13] 白泽朝, 徐青, 靳国旺, 等. 利用Sentinel-lA数据反演2016年青海门源MW5.9地震的同震形变场及断层参数[J]. 地震, 2017, 37(3): 12-21. [14] Ferretti A, Prati C, Rocca F. Permanent scatterers in SAR interferometry[J]. IEEE Transactions on Geoscience and Remote Sensing, 2001, 39(1): 8-19. [15] Kampes B, Adam N. Velocity field retrieval from long term coherent points in radar interferometric stacks[J]. IEEE, 2003, 0-7803-7929-2: 941-944. [16] Hooper A, Zebker H A, Segall P, et al. A new method for measuring deformation on volcanoes and other natural terrains using InSAR persistent scatterers[J]. Geophysical Research Letters, 2004, L23611. [17] Kim J S, Kim D J, Kim S W, et al. Monitoring of urban land surface subsidence using PSInSAR[J]. Geosciences Journal, 2007, 11(1): 59-73. [18] 廖明生, 裴媛媛, 王寒梅, 等. 永久散射体雷达干涉技术监测上海地面沉降[J]. 上海国土资源, 2012, 33(3): 5-10. [19] 罗三明, 单新建, 朱文斌, 等. 多轨PSInSAR监测华北平原地表垂直形变场[J]. 地球物理学报, 2014, 57(10): 3129-3139. [20] Shokrzade S, Voosoghi B, Amighpey M, et al. Investigation of Post-seismic and Inter-seismic Displacement Field Following 2003 Bam Earthquake in Iran Based on PS-InSAR Technique[J]. Journal of the Indian Society of Remote Sensing, 2017, 45(3): 541-552. [21] 张志清, 唐文清, 刘宇平, 等. 基于高精度GPS监测龙门山断裂带中段及邻区现今地壳活动性研究[J]. 地球物理学进展, 2013, 28(1): 190-198. [22] 沈正康, 王敏, 王凡, 等. 汶川地震震后形变过程与龙门山断裂带及周边介质流变学性质研究[C]. 中国地球物理学会年会, 2012. [23] 丁开华, 徐才军, 温扬茂. 汶川地震震后形变的GPS反演[J]. 武汉大学学报·信息科学版, 2013, 38(2): 131-135. [24] 朱良玉, 王双绪, 蒋锋云. 利用震后GPS数据反演汶川地区有效黏滞系数[J]. 地震学报, 2014, 36(1): 32-41. [25] Huang M, Bürgmann R, Freed A M, Probing the lithospheric rheology across the eastern margin of the Tibetan Plateau[J]. Earth and Planetary Science Letters, 2014, 396(15 June 2014): 88-96. [26] Hooper A, Segall P, Zebker H. Persistent scatterer interferometric syntheticaperture radar for crustal deformation analysis, with application to Volcán Alcedo, Galápagos[J]. Journal of geophysical research, 2007, 112: B07407. [27] Hooper A. A multi-temporal InSAR method incorporating both persistent scatterer and small baseline approaches[J]. Geophys Res Lett., 2008, 35: L16302. [28] Hooper A, Zebker H. Phase unwrapping in three dimensions with application to InSAR time series[J]. J. Opt. Soc. Am. A, 2007, 24(9): 2737-2747. |