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Bakir, A. C., Nowack, R. L., (2012), "Modeling Seismic Attributes of Pn Waves using the Spectral-Element Method", Pure and Applied Geophysics, 169, 9: pg: 1539--1556, (DOI: 10.1007/s00024-011-0414-z). Cited by:
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Barrière, Julien, Bordes, Clarisse, Brito, Daniel, Sénéchal, Pascale, Perroud, Hervé, (2012), "Laboratory monitoring of P waves in partially saturated sand", Geophysical Journal International, 191, 3: pg: 1152--1170, (DOI: 10.1111/j.1365-246X.2012.05691.x). Cited by:
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Cristini, P., Komatitsch, D., (2012), "Some illustrative examples of the use of a spectral-element method in ocean acoustics", The Journal of the Acoustical Society of America, 131, 3: pg: El229, (DOI: 10.1121/1.3682459). Cited by:
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Dong, S-L, Chen, J-B, Li, Z., (2021), "Viscoelastic wave finite-difference modeling in the presence of topography with adaptive free-surface boundary condition", Acta Geophysica, : (DOI: 10.1007/s11600-021-00666-7). Cited by:
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Favretto-Cristini, N., Tantsereva, A., Cristini, P., Ursin, B., Komatitsch, D., Aizenberg, A. M., (2014), "Numerical modeling of zero-offset laboratory data in a strong topographic environment: results for a spectral-element method and a discretized Kirchhoff integral method", Earthquake Science, 27, 4: pg: 391--399, (DOI: 10.1007/s11589-014-0061-4). Cited by:
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Godinho, L., Amado Mendes, P., Tadeu, A., Cadena-Isaza, A., Smerzini, C., Sanchez-Sesma, F. J., Madec, R., Komatitsch, D., (2009), "Numerical Simulation of Ground Rotations along 2D Topographical Profiles under the Incidence of Elastic Plane Waves", Bulletin of the Seismological Society of America, 99, 2b: pg: 1147--1161, (DOI: 10.1785/0120080096). Cited by:
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Komatitsch, D., Barnes, C., Tromp, J., (2000), "Simulation of anisotropic wave propagation based upon a spectral element method", Geophysics, 65, 4: pg: 1251--1260, (DOI: 10.1190/1.1444816). Cited by:
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Komatitsch, D., Barnes, C., Tromp, J., (2000), "Wave propagation near a fluid-solid interface: A spectral-element approach", Geophysics, 65, 2: pg: 623--631, (DOI: 10.1190/1.1444758). Cited by:
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Komatitsch, D., Martin, R., Tromp, J., Taylor, M. A., Wingate, B. A., (2001), "Wave Propagation In 2-D Elastic Media Using A Spectral Element Method With Triangles And Quadrangles", Journal of Computational Acoustics, 09, 02: pg: 703--718, (DOI: 10.1142/S0218396X01000796). Cited by:
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Komatitsch, D., Tromp, J., (2003), "A perfectly matched layer absorbing boundary condition for the second-order seismic wave equation", Geophysical Journal International, 154, 1: pg: 146--153, (DOI: 10.1046/j.1365-246X.2003.01950.x). Cited by:
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Komatitsch, D., Tromp, J., (1999), "Introduction to the spectral element method for three-dimensional seismic wave propagation", Geophysical Journal International, 139, 3: pg: 806--822, (DOI: 10.1046/j.1365-246x.1999.00967.x). Cited by:
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Komatitsch, D., Vilotte, J-P, Cristini, P., Labarta, J., Le Goff, N., Le Loher, P., Liu, Q., Martin, R., Matzen, R., Morency, C., Peter, D., Tape, C., Tromp, J., Xie, Z., (2012), "SPECFEM2D v7.0.0 [software]", Computational Infrastructure for Geodynamics: . Cited by:
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Komatitsch, D., Vilotte, J-P, Vai, R., Castillo-Covarrubias, J. M., Sánchez-Sesma, F. J., (1999), "The spectral element method for elastic wave equations--application to 2-D and 3-D seismic problems", International Journal for Numerical Methods in Engineering, 45, 9: pg: 1139--1164, (DOI: 10.1002/(SICI)1097-0207(19990730)45:9<1139::AID-NME617>3.0.CO;2-T). Cited by:
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Luo, Y., Zhu, H., Nissen-Meyer, T., Morency, C., Tromp, J., (2009), "Seismic modeling and imaging based upon spectral-element and adjoint methods", The Leading Edge, 28, 5: pg: 568--574, (DOI: 10.1190/1.3124932). Cited by:
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Morency, C., Luo, Y., Tromp, J., (2009), "Finite-frequency kernels for wave propagation in porous media based upon adjoint methods", Geophysical Journal International, 179, 2: pg: 1148--1168, (DOI: 10.1111/j.1365-246X.2009.04332.x). Cited by:
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Morency, C., Tromp, J., (2008), "Spectral-element simulations of wave propagation in porous media", Geophysical Journal International, 175, 1: pg: 301--345, (DOI: 10.1111/j.1365-246X.2008.03907.x). Cited by:
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N.J. Mancinelli, K. M. Fischer, (2017), "The spatial sensitivity of Sp converted wavesScattered wave kernels and their applications to receiver-function migration and inversion", Geophysical Journal International, 212, 3: pg: 1722--1735, (DOI: 10.1093/gji/ggx506). Cited by:
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Sieminski, A., Paulssen, H., Trampert, J., Tromp, J., (2008), "Finite-Frequency SKS Splitting: Measurement and Sensitivity Kernels", Bulletin of the Seismological Society of America, 98, 4: pg: 1797--1810, (DOI: 10.1785/0120070297). Cited by:
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Tape, C., Liu, Q., Tromp, J., (2007), "Finite-frequency tomography using adjoint methods-Methodology and examples using membrane surface waves", Geophysical Journal International, 168, 3: pg: 1105--1129, (DOI: 10.1111/j.1365-246X.2006.03191.x). Cited by:
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Tong, P., Chen, C-W, Komatitsch, D., Basini, P., Liu, Q., (2014), "High-resolution seismic array imaging based on an SEM-FK hybrid method", Geophysical Journal International, 197, 1: pg: 369--395, (DOI: 10.1093/gji/ggt508). Cited by:
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Vai, R., Castillo-Covarrubias, J. M., Sánchez-Sesma, F. J., Komatitsch, D., Vilotte, J-P, (1999), "Elastic wave propagation in an irregularly layered medium", Soil Dynamics and Earthquake Engineering, 18, 1: pg: 11--18, (DOI: 10.1016/S0267-7261(98)00027-X). Cited by:
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Wijk, K., Komatitsch, D., Scales, J. A., Tromp, J., (2004), "Analysis of strong scattering at the micro-scale", The Journal of the Acoustical Society of America, 115, 3: pg: 1006, (DOI: 10.1121/1.1647480). Cited by:
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Wang, X., Cai, M., (2017), "Numerical modeling of seismic wave propagation and ground motion in underground mines", Tunnelling and Underground Space Technology, 68: pg: 211--230, (DOI: 10.1016/j.tust.2017.05.019). Cited by:
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Xie, Y., Rychert, C. A., Harmon, N., Liu, Q., Gajewski, D., (2021), "On-the-Fly Full Hessian Kernel Calculations Based upon Seismic-Wave Simulations", Seismological Research Letters, : (DOI: 10.1785/0220200410). Cited by:
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Zheng, L., Zhao, Q., Milkereit, B., Grasselli, G., Liu, Q., (2014), "Spectral-element simulations of elastic wave propagation in exploration and geotechnical applications", Earthquake Science, 27, 2: pg: 179--187, (DOI: 10.1007/s11589-014-0069-9). Cited by:
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Zhu, H., Luo, Y., Nissen-Meyer, T., Morency, C., Tromp, J., (2009), "Elastic imaging and time-lapse migration based on adjoint methods", Geophysics, 74, 6: pg: Wca167-Wca177, (DOI: 10.1190/1.3261747). Cited by:
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Goddeke, D., Komatitsch, D., Moller, M., Kindratenko, V. (2014), "Numerical Computations with GPUs", Finite and Spectral Element Methods on Unstructured Grids for Flow and Wave Propagation Problems, Springer International Publishing, Cham: pg: 183--206, 978-3-319-06548-9, (DOI: 10.1007/978-3-319-06548-9_9). Cited by:
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Hanasoge, S. M., Komatitsch, D., Gizon, L., (2010), "An absorbing boundary formulation for the stratified, linearized, ideal MHD equations based on an unsplit, convolutional perfectly matched layer", Astronomy & Astrophysics, 522: pg: A87, (DOI: 10.1051/0004-6361/201014345). Cited by:
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Komatitsch, D., Carcione, J. M., Cavallini, F., Favretto-Cristini, N., (2011), "Elastic surface waves in crystals -- Part 2: Cross-check of two full-wave numerical modeling methods", Ultrasonics, 51, 8: pg: 878--889, (DOI: 10.1016/j.ultras.2011.05.001). Cited by:
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Komatitsch, D., Martin, R., (2012), "SEISMIC_CPML v1.1.4 [software]", Computational Infrastructure for Geodynamics: . Cited by:
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Komatitsch, D., Martin, R., (2011), "SEISMIC_CPML v1.1.3 [software]", Computational Infrastructure for Geodynamics: . Cited by:
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Komatitsch, D., Martin, R., (2010), "SEISMIC_CPML v1.1.2 [software]", Computational Infrastructure for Geodynamics: . Cited by:
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