2024
2023
Békési, E., K. Porkoláb, V. Wesztergom, Z. Wéber, (2023). Updated stress dataset of the Circum-Pannonian region: implications for regional tectonics and geo-energy applications, Tectonophysics, 865, Article 229860, https://doi.org/10.1016/j.tecto.2023.229860
Lee, T., Diehl, T., Kissling, E., Wiemer, S. (2023). New insights into the Rhône–Simplon fault system (Swiss Alps) from a consistent earthquake catalogue covering 35 yr, Geophysical Journal International, Volume 232, Issue 3, March 2023, Pages 1568–1589, https://doi.org/10.1093/gji/ggac407
Hofman, L. J., Kummerow, J., Cesca, S., and the AlpArray–Swath-D Working Group (2023). A new seismicity catalogue of the eastern Alps using the temporary Swath-D network, Solid Earth, 14, 1053–1066, https://doi.org/10.5194/se-14-1053-2023
Jozi Najafabadi, A., Haberland, C., Handy, M.R. et al. (2023). Seismic wave attenuation (1/Qp) in the crust underneath the Eastern and eastern Southern Alps (Europe): imaging effects of faults, fractures, and fluids. Earth Planets Space 75, 187, https://doi.org/10.1186/s40623-023-01942-0
Kalmár, D., Petrescu, L., Stipčević, J., Balázs, A., János Kovács, I., & the AlpArray and PACASE Working Groups (2023). Lithospheric structure of the circum-Pannonian region imaged by S-to-P receiver functions. Geochemistry, Geophysics, Geosystems, 24, https://doi.org/10.1029/2023GC010937
Kind, R., S. M Schmid, F. Schneider, T. Meier, X. Yuan, B. Heit, C. Schiffer, AlpArray and SWATH-D Working Groups (2023). Sp converted waves reveal the structure of the lithosphere below the Alps and their northern foreland, Geophysical Journal International, Volume 235, Issue 2, November 2023, Pages 1832–1848, https://doi.org/10.1093/gji/ggad324
Kraft, T., O. K. A. Ling, T. Toledo, B. Scheu, S. C. Stähler, J. Clinton, S. Stange (2023). An Antipodal Seismic and (Infra)acoustic View from Central Europe on the 15 January 2022 Hunga–Tonga–Hunga–Ha’apai Eruption. Seismological Research Letters; 94 (3): 1318–1333. doi: https://doi.org/10.1785/0220220254
Link, F., & Rümpker, G. (2023). Shear-wave splitting reveals layered-anisotropy beneath the European Alps in response to Mediterranean subduction. Journal of Geophysical Research: Solid Earth, 128, e2023JB027192, https://doi.org/10.1029/2023JB027192
Lu, Y., S. M. Schmid, Q.-Y. Wang, G. Bokelmann (2023). Mapping the mantle transition zone discontinuities across South-Central Europe using body waves from seismic noise correlations, Earth and Planetary Science Letters, Volume 624, 118457, https://doi.org/10.1016/j.epsl.2023.118457.
Pondrelli S, Salimbeni S, Baccheschi P, Confal JM, Margheriti L. (2023). Peeking inside the mantle structure beneath the Italian region through SKS shear wave splitting anisotropy: a review. Ann. Geophys., 2023Jun.27, https://www.annalsofgeophysics.eu/index.php/annals/article/view/8872
Pedersen, H A, FMattern, P Poli, L Stehly (2023). Imaging with seismic noise: improving extraction of body wave phases from the deep Earth through selective stacking based on H/V ratios, Geophysical Journal International, Volume 232, Issue 2, February 2023, Pages 1455–1467, https://doi.org/10.1093/gji/ggac388
Sonnet, M., Labrousse, L., Bascou, J., Plunder, A., Nouibat, A., & Paul, A. (2023). Assessing chemical and mineralogical properties of the Alpine slab based on field analogs and ambient noise tomography. Geochemistry, Geophysics, Geosystems, 24, e2022GC010784. https://doi.org/10.1029/2022GC010784
2022
Xu, Z., Froment, M., Garcia, R. F., Beucler, É., Onodera, K., Kawamura, T., et al. (2022). Modeling seismic recordings of high-frequency guided infrasound on Mars. Journal of Geophysical Research: Planets, 127, e2022JE007483,. https://doi.org/10.1029/2022JE007483
Löberich, E., & Bokelmann, G. (2022). Mantle flow under the Central Alps: Constraints from shear-wave splitting for non-vertically-incident SKS waves. Physics of the Earth and Planetary Interiors, 329, 106904. https://doi.org/10.1016/j.pepi.2022.106904
2021
Diehl, T., Kissling, E., Herwegh, M., & Schmid, S. M. (2021). Improving absolute hypocenter accuracy with 3D Pg and Sg body-wave inversion procedures and application to earthquakes in the Central Alps region. Journal of Geophysical Research: Solid Earth, 126, e2021JB022155, https://doi.org/10.1029/2021JB022155.
Mroczek, S., Tilmann, F. (2021). Joint ambient noise autocorrelation and receiver function analysis of the Moho, Geophysical Journal International, Volume 225, Issue 3, June 2021, Pages 1920–1934, https://doi.org/10.1093/gji/ggab065
Paffrath, M., Friederich, W., Schmid, S. M., Handy, M. R., and the AlpArray and AlpArray-Swath D Working Group (2021). Imaging structure and geometry of slabs in the greater Alpine area – a P-wave travel-time tomography using AlpArray Seismic Network data, Solid Earth, 12, 2671–2702, https://doi.org/10.5194/se-12-2671-2021
Renouard, A., Maggi, A., Grunberg, M., Doubre, C., Hibert,C. (2021). Toward False Event Detection and Quarry Blast versus Earthquake Discrimination in an Operational Setting Using Semiautomated Machine Learning. Seismological Research Letters; 92 (6): 3725–3742, https://doi.org/10.1785/0220200305
Wolf, F. N., Lange, D., Dannowski, A., Thorwart, M., Crawford, W., Wiesenberg, L., Grevemeyer, I., Kopp, H., and the AlpArray Working Group (2021). 3D crustal structure of the Ligurian Basin revealed by surface wave tomography using ocean bottom seismometer data, Solid Earth, 12, 2597–2613, https://doi.org/10.5194/se-12-2597-2021
Szanyi, G., Gráczer, Z., Balázs, B., & Kovács, I. J. (2021). The transition zone between the Eastern Alps and the Pannonian basin imaged by ambient noise tomography. Tectonophysics, 805, 228770, https://doi.org/10.1016/j.tecto.2021.228770
Thorwart, M., Dannowski, A., Grevemeyer, I., Lange, D., Kopp, H., Petersen, F., Crawford, W. C., Paul, A., and the AlpArray Working Group (2021). Basin inversion: reactivated rift structures in the central Ligurian Sea revealed using ocean bottom seismometers, Solid Earth, 12, 2553–2571, https://doi.org/10.5194/se-12-2553-2021
Handy, M. R., Schmid, S. M., Paffrath, M., Friederich, W., and the AlpArray Working Group (2021). Orogenic lithosphere and slabs in the greater Alpine area – interpretations based on teleseismic P-wave tomography, Solid Earth, 12, 2633–2669, https://doi.org/10.5194/se-12-2633-2021
Kind, R., Schmid, S. M., Yuan, X., Heit, B., Meier, T., and the AlpArray and AlpArray-SWATH-D Working Groups (2021). Moho and uppermost mantle structure in the Alpine area from S-to-P converted waves, Solid Earth, 12, 2503–2521, https://doi.org/10.5194/se-12-2503-2021
Kereszturi, Á , V Barta, I Bondár, Cs Czanik, A Igaz, P Mónus, D Rezes, L Szabados, B D Pál (2021). Review of synergic meteor observations: linking the results from cameras, ionosondes, infrasound and seismic detectors, Monthly Notices of the Royal Astronomical Society, Volume 506, Issue 3, September 2021, Pages 3629–3640, https://doi.org/10.1093/mnras/stab1918
Larroque, C., S. Baize, J. Albaric, H. Jomard, J. Trévisan, M. Godano, M. Cushing, A. Deschamps, C. Sue, B. Delouis, et al. (2022). Seismotectonics of southeast France: From the Jura Mountains to Corsica, C. R. Géosci. 353, no. S1, 105–151, doi: 10.5802/crgeos.69.
Ling O.K.A., Simon C. Stähler, Domenico Giardini, the AlpArray Working Group (2021). Visualizing Global Seismic Phases with AlpArray. Seismological Research Letters 2021; 92 (6): 3845–3855. https://doi.org/10.1785/0220210046
2020
2019
Timkó, M., Kovács, I. & Wéber, Z. (2019) 3D P-wave velocity image beneath the Pannonian Basin using traveltime tomography. Acta Geod Geophys 54, 373–386 (2019). https://doi.org/10.1007/s40328-019-00267-3
2018
2017
2016
2018
2017
2016
2015
Pre-2015