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Ichimura, T., Agata, R., Hori, T., Hirahara, K., Hashimoto, C., Hori, M., Fukahata, Y., (2016), "An Elastic/Viscoelastic Finite Element Analysis Method for Crustal Deformation using a 3D Island-scale High-fidelity Model", Geophysical Journal International, 206, 1: pg: 114--129, (DOI: 10.1093/gji/ggw123). Cited by:
Cosenza Muralles, Ana Beatriz, (2020), "Earthquake Cycle of the Jalisco-Colima Segment of the Mexico Subduction Zone from Modeling of 1993-2020 GPS Data", ProQuest Dissertations Publishing, The University of Wisconsin - Madison: . Cited by:
Barbot, S., (2012), "RELAX v1.0.3 [software]", Computational Infrastructure for Geodynamics: . Cited by:
Barbot, S., (2012), "RELAX v1.0.4 [software]", Computational Infrastructure for Geodynamics: . Cited by:
Barbot, S., Fialko, Y., (2010), "A unified continuum representation of post-seismic relaxation mechanisms: semi-analytic models of afterslip, poroelastic rebound and viscoelastic flow: Semi-analytic models of postseismic transient", Geophysical Journal International, 182, 3: pg: 1124--1140, (DOI: 10.1111/j.1365-246X.2010.04678.x). Cited by:
Barbot, S., Fialko, Y., (2010), "Fourier-domain Green's function for an elastic semi-infinite solid under gravity, with applications to earthquake and volcano deformation: Fourier-domain elastic solutions", Geophysical Journal International, 182, 2: pg: 568--582, (DOI: 10.1111/j.1365-246X.2010.04655.x). Cited by:
Barbot, S., Fialko, Y., Bock, Y., (2009), "Postseismic deformation due to the Mw 6.0 2004 Parkfield earthquake: Stress-driven creep on a fault with spatially variable rate-and-state friction parameters", Journal of Geophysical Research, 114, B7: pg: B07405, (DOI: 10.1029/2008JB005748). Cited by:
Bruhat, L., Barbot, S., Avouac, J-P, (2011), "Evidence for postseismic deformation of the lower crust following the 2004 Mw6.0 Parkfield earthquake", Journal of Geophysical Research, 116, B8: pg: B08401, (DOI: 10.1029/2010JB008073). Cited by:
Barbot, S., (2014), "RELAX v1.0.6 [software]", Computational Infrastructure for Geodynamics: . Cited by:
Barbot, S., (2014), "RELAX v1.0.7 [software]", Computational Infrastructure for Geodynamics: . Cited by:
Barbot, S., (2012), "RELAX v1.0.0 [software]", Computational Infrastructure for Geodynamics: . Cited by:
Barbot, S., (2012), "RELAX v1.0.1 [software]", Computational Infrastructure for Geodynamics: . Cited by:
Barbot, S., (2012), "RELAX v1.0.2 [software]", Computational Infrastructure for Geodynamics: . Cited by:
Jouanne, F., Gajurel, A., Mugnier, J-L, Bollinger, L., Bijaya Adhikari, L., Koirala, B., Cotte, N., Bhattarai, R., Pecher, A., Bascou, P., Huyghe, P., (2019), "Postseismic deformation following the April 25, 2015 Gorkha earthquake (Nepal): afterslip versus viscous relaxation", Journal of Asian Earth Sciences, 176: pg: 105--119, (DOI: 10.1016/j.jseaes.2019.02.009). Cited by:
Li, Y., Burgmann, R., Zhao, B., (2020), "Evidence of Fault Immaturity from Shallow Slip Deficit and Lack of Postseismic Deformation of the 2017 Mw~6.5 Jiuzhaigou Earthquake", Bulletin of the Seismological Society of America, : (DOI: 10.1785/0120190162). Cited by:
Liu, S., Xu, X., Klinger, Y., Nocquet, J-M, Chen, G., Yu, G., Jonsson, S., (2019), "Lower crustal heterogeneity beneath the northern Tibetan Plateau constrained by GPS measurements following the 2001 Mw7.8 Kokoxili earthquake", Journal of Geophysical Research: Solid Earth, 124, 11: pg: 11992--12022, (DOI: 10.1029/2019JB017732). Cited by:
Masuti, S., Barbot, S. D., Karato, S. -ichiro, Feng, L., Banerjee, P., (2016), "Upper-mantle water stratification inferred from observations of the 2012 Indian Ocean earthquake", Nature, 538: pg: 373--377, (DOI: 10.1038/nature19783). Cited by:
Masuti, Sagar, (2020), "Inferring Upper Manlte Rheology from Numerical Modeling of Experimental and Geodectic Observations", Nanyang Technological University, Singapore: . Cited by:
O., L. E., Rafael, A., Rishav, M., Judith, H., Kyle, B., H., T. L. L., Yixiang, L., Roland, B., M., H. E., (2018), "Structural Control on Down-dip Locking Extent of the Himalayan Megathrust", Journal of Geophysical Research: Solid Earth, 123, 6: pg: 5265--5278, (DOI: 10.1029/2018JB015868). Cited by:
Ohtani, M., Imanishi, K., (2019), "Seismic potential around the 2018 Hokkaido Eastern Iburi earthquake assessed considering the viscoelastic relaxation", Earth, Planets and Space, 71, 1: pg: 57, (DOI: 10.1186/s40623-019-1036-4). Cited by:
Qiu, Q., Feng, L., Hermawan, I., Hill, E. M., (2019), "Co- and post-seismic slip of the 2005 M_w 8.6 Nias-Simeulue earthquake: Spatial overlap and localized viscoelastic flow", Journal of Geophysical Research: Solid Earth, 124, 7: pg: 7445--7460, (DOI: 10.1029/2018JB017263). Cited by:
Rollins, C., Barbot, S., Avouac, J-P, (2015), "Postseismic Deformation Following the 2010 M = 7.2 El Mayor-Cucapah Earthquake: Observations, Kinematic Inversions, and Dynamic Models", Pure and Applied Geophysics, 172, 5: pg: 1305--1358, (DOI: 10.1007/s00024-014-1005-6). Cited by:
Rousset, B., Barbot, S., Avouac, J-P, Hsu, Y-J, (2012), "Postseismic deformation following the 1999 Chi-Chi earthquake, Taiwan: Implication for lower-crust rheology", Journal of Geophysical Research: Solid Earth, 117, B12: pg: B12405, (DOI: 10.1029/2012JB009571). Cited by:
Ruppert, N. A., Rollins, C., Zhang, A., Meng, L., Holtkamp, S. G., West, M. E., Freymueller, J. T., (2018), "Complex faulting and triggered rupture during the 2018 MW 7.9 Offshore Kodiak, Alaska Earthquake", Geophysical Research Letters, 45, 15: pg: 7533--7541, (DOI: 10.1029/2018GL078931). Cited by:
Tian, Z., Freymueller, J. T., Yang, Z., (2020), "Spatio-temporal variations of afterslip and viscoelastic relaxation following the Mw 7.8 Gorkha (Nepal) earthquake", Earth and Planetary Science Letters, 532: pg: 116031, (DOI: 10.1016/j.epsl.2019.116031). Cited by:
Veedu, D. M., Barbot, S., (2016), "The Parkfield tremors reveal slow and fast ruptures on the same asperity", Nature, 532: pg: 361--365, (DOI: 10.1038/nature17190). Cited by:
Wang, K., Fialko, Y., (2014), "Space geodetic observations and models of postseismic deformation due to the 2005 M 7.6 Kashmir (Pakistan) earthquake: Relaxation due to Kashmir Earthquake", Journal of Geophysical Research: Solid Earth, 119, 9: pg: 7306--7318, (DOI: 10.1002/2014JB011122). Cited by:
Aagard, Brad, Williams, Charles, Knepley, Matthew, (2016), "PyLith v2.1.2 [software]", Computational Infrastructure for Geodynamics: . Cited by:
Aagard, Brad, Williams, Charles, Knepley, Matthew, (2016), "PyLith v2.1.3 [software]", Computational Infrastructure for Geodynamics: . Cited by:
Aagard, Brad, Williams, Charles, Knepley, Matthew, (2015), "PyLith v2.1.0 [software]", Computational Infrastructure for Geodynamics: . Cited by:
Aagard, Brad, Williams, Charles, Knepley, Matthew, (2015), "PyLith v2.1.1 [software]", Computational Infrastructure for Geodynamics: . Cited by:
Aagard, Brad, Williams, Charles, Knepley, Matthew, (2014), "PyLith v2.0.0 [software]", Computational Infrastructure for Geodynamics: . Cited by:
Aagard, Brad, Williams, Charles, Knepley, Matthew, (2014), "PyLith v2.0.1 [software]", Computational Infrastructure for Geodynamics: . Cited by:
Aagard, Brad, Williams, Charles, Knepley, Matthew, (2014), "PyLith v2.0.3 [software]", Computational Infrastructure for Geodynamics: . Cited by:
Aagard, Brad, Williams, Charles, Knepley, Matthew, (2013), "PyLith v1.9.0 [software]", Computational Infrastructure for Geodynamics: . Cited by:
Aagard, Brad, Williams, Charles, Knepley, Matthew, (2012), "PyLith v1.7.1 [software]", Computational Infrastructure for Geodynamics: . Cited by:
Aagard, Brad, Williams, Charles, Knepley, Matthew, (2012), "PyLith v1.7.0 [software]", Computational Infrastructure for Geodynamics: . Cited by:
Aagard, Brad, Williams, Charles, Knepley, Matthew, (2012), "PyLith v1.8.0 [software]", Computational Infrastructure for Geodynamics: . Cited by:
Aagard, Brad, Williams, Charles, Knepley, Matthew, (2011), "PyLith v1.5.2 [software]", Computational Infrastructure for Geodynamics: . Cited by:
Aagard, Brad, Williams, Charles, Knepley, Matthew, (2011), "PyLith v1.6.0 [software]", Computational Infrastructure for Geodynamics: . Cited by:
Aagard, Brad, Williams, Charles, Knepley, Matthew, (2011), "PyLith v1.6.1 [software]", Computational Infrastructure for Geodynamics: . Cited by:
Aagard, Brad, Williams, Charles, Knepley, Matthew, (2011), "PyLith v1.6.2 [software]", Computational Infrastructure for Geodynamics: . Cited by:
Aagard, Brad, Williams, Charles, Knepley, Matthew, (2010), "PyLith v1.4.3 [software]", Computational Infrastructure for Geodynamics: . Cited by:
Aagard, Brad, Williams, Charles, Knepley, Matthew, (2010), "PyLith v1.5.0 [software]", Computational Infrastructure for Geodynamics: . Cited by:
Aagard, Brad, Williams, Charles, Knepley, Matthew, (2010), "PyLith v1.5.1 [software]", Computational Infrastructure for Geodynamics: . Cited by:
Aagard, Brad, Williams, Charles, Knepley, Matthew, (2009), "PyLith v1.4.0 [software]", Computational Infrastructure for Geodynamics: . Cited by:
Aagard, Brad, Williams, Charles, Knepley, Matthew, (2009), "PyLith v1.4.2 [software]", Computational Infrastructure for Geodynamics: . Cited by:
Aagard, Brad, Williams, Charles, Knepley, Matthew, (2008), "PyLith v1.1.0 [software]", : . Cited by:
Aagard, Brad, Williams, Charles, Knepley, Matthew, (2008), "PyLith v1.1.1 [software]", Computational Infrastructure for Geodynamics: . Cited by:
Aagard, Brad, Williams, Charles, Knepley, Matthew, (2008), "PyLith v1.1.2 [software]", Computational Infrastructure for Geodynamics: . Cited by:
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