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  List of Accepted Contributions - SM4 Computational wave propagation

Please, click Abstract Number to find the corresponding abstract as PDF file; if necessary, download Adobe Acrobat Reader 4.0 first to open the file. Any abstract may be freely reproduced for non-commercial, scientific purposes; however, the moral right of the author(s) to be identified as the author(s) of such abstracts is asserted.

Zeljkovic, D.Z.
Earthquake focal domain imaging by inverse downward wave field extrapolation (withdrawn)

Malytskyy, D; Mujla, O.; Pak, R.; Kozlovskyj, E.
Recurrent modeling of seismic waves in layered media.

Gallovic, F.; Barsch, R.; Igel, H.; Moczo, P.; Pazak, P.; Mai, P. M.; Qin, Y.
The SPICE Library: Codes, Training Material and Benchmarking in Computational Seismology

Rabinowitz, P.; Sun, C.
High Resolution Image Stacking in Geophysical Seismic Data Processing

Seriani, G.; Oliveira, S. P.
Optimum blended spectral element operators for forward modelling

Käser, M.; Gallovic, F.; Stupazzini, M.
3D numerical Modeling of Effects of complicated Rupture Geometries and random Media on Earthquake Ground Motions

Cesca, S.; Braun, T.; Tessmer, E.; Dahm, T.
Influence of topography on the seismic waveforms associated to eruptive events at Stromboli volcano

Yedlin, M.; Seymour, B.
Green's functions for the one-dimensional wave equation with variable coefficients

Stiller, M.; Jaeckel, K.-H.; Stier, F.; DESIRE group, &
Suppresion of (sub)harmonic noise on Vibroseis data

Bouchaala, F.; Guennou, C.
A model for viscoelastic waves propagation and its validation

Nguyen, X.N; Heimann, S.; Dahm, T.
Modeling of Scholte wave transmission through the corrugated interface

Essen, K.; Bohlen, T.; Friederich, W.; Meier, T.
Modelling of Rayleigh-type seam waves in disturbed coal seams and around a coal mine roadway

Chaljub, E.; Tsuno, S.; Bard, P.-Y.; Cornou, C.
Comparison of numerical predictions of 3D ground motion in the alpine valley of Grenoble, France

Martin, R.; Barucq, H.; Duquet, B.; Pratt, F.
A 3D Tracing Waves Method for the construction of seismic propagators: The 3D Global Screen Propagator.

Martin, R.; Komatitsch, D.; Ezziani, A.
An optimized Convolution-Perfectly matched layer (CPML) absorbing technique for 3D Poroelastic seismic wave propagation based on finite difference and spectral element methods.

Klien, E.; Haines, A. J.
The perfectly matched layer in a novel triangular finite element method for seismic waves

Krotkiewski, M.; Dabrowski, M.; Podladchikov, Y.Y.
High-resolution 3D modeling of wave scattering by an oil reservoir

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