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27 results for “focal mechanisms”
L'Aquila 2009 seismic sequence: integrated dataset of automatic first motion polarities focal mechanisms and RMT with HypoDD high quality relative earthquake locations
<p>This dataset is related to the L'Aquila 2009 seismic sequence that happened in Central Apennines (Italy).</p> <p>It contains:</p> <ul> <li>2782 quality selected focal mechanisms produced with the standard software FPFIT based on automatically determined first motion polarities of automatically detected and analyzed foreshocks and aftershocks recorded from January 2009 to December 2009 (flag <strong>fty</strong> in the header is MP)</li> <li>475 (out of 627) quality selected focal mechanisms produced with the standard software FPFIT also based on automatically determined first motion polarities but for only 3204 M<sub>L</sub> >= 1.9 earthquakes and by using take-off angles calculated within a local 3d tomographic velocity model (<a href="https://agupubs.onlinelibrary.wiley.com/doi/full/10.1029/2011GL047365">Di Stefano et al., 2011</a>) , published and released in <a href="https://agupubs.onlinelibrary.wiley.com/doi/full/10.1029/2011JB008352">Chiaraluce et al., 2011</a> (flag <strong>fty</strong> in the header is JG)</li> <li>165 (out of 181) Regional Moment Tensors determined for earthquakes M<sub>L</sub> >= 3.0 based on broadband waveform inversion of ground velocities and published by <a href="https://pubs.geoscienceworld.org/ssa/bssa/article-abstract/101/3/975/349796/Regional-Moment-Tensors-of-the-2009-L-Aquila">Hermann et al., 2011</a> (flag <strong>fty</strong> in the header is HM)</li> <li>The hypocenters of the total 3422 earthquakes reported in the present focal solutions dataset have been taken from the very high quality double difference locations of the about 64000 aftershocks reported in <a href="https://agupubs.onlinelibrary.wiley.com/doi/pdf/10.1002/jgrb.50130">Valoroso et al., 2013</a> and published, as part of the full dataset, <a href="https://doi.org/10.5281/zenodo.4036248">on Zenodo</a>. </li> </ul> <p>The association between the focal solutions and the HypoDD hypocenters has been performed through the direct use of the HypoDD event identifier where possible (the whole MP dataset) and through spatial and temporal earthquakes coordinates matching in all the other case by using the capability of a MySQL database. </p> <p>Two files are uploaded, one in plain text with blank separator, the second in plain text with ";" separator and .csv extension.</p> <p>Here below the header is explained.</p> <p><strong>OT_Date:</strong> date of the origin time in the format YYYY-MM-DD</p> <p><strong>OT_Time:</strong> time of the origin time in the format HH:mm:ss.dcm</p> <p><strong>lat:</strong> hypocenter latitude expressed in degrees </p> <p><strong>lon:</strong> hypocenter longitude east of Greenwich, expressed in degrees</p> <p><strong>dep:</strong> hypocenter depth expressed in km </p> <p><strong>ML:</strong> local magnitude (pure number) from <a href="https://agupubs.onlinelibrary.wiley.com/doi/pdf/10.1002/jgrb.50130">Valoroso et al., 2013</a> (see last column notes also)</p> <p> </p> <p><strong>id_dd:</strong> the hypoDD event identifier, allowing to directly connect to the <a href="https://agupubs.onlinelibrary.wiley.com/doi/pdf/10.1002/jgrb.50130">Valoroso et al., 2013</a> full dataset</p> <p><strong>IMPORTANT NOTE about st1 and st2 (below): </strong>the focal solutions are presented here based on the convention they where produced or published, so there are two different (but compatible) conventions for the fault plains orientation in the 3d space</p> <p><strong>st1:</strong></p> <ul> <li><strong>for fty=</strong>HM or JG this is the strike of plane 1 (CMT convention)</li> <li><strong>for fty=</strong>MP this is the <strong>strike of the dip direction </strong>of plain 1 (FPFIT convention)</li> </ul> <p><strong>dip1: </strong>dip of plane 1</p> <p><strong>rk1: </strong>rake of plane 1</p> <p><strong>st2:</strong></p> <ul> <li><strong>for fty=</strong>HM or JG this is the strike of plane 2 (CMT convention)</li> <li><strong>for fty=</strong>MP this is the <strong>strike of the dip direction </strong>of plain 2 (FPFIT convention)</li> </ul> <p><strong>dip2: </strong>dip of plane 2</p> <p><strong>rk2: </strong>rake of plane 2</p> <p><strong>fty:</strong> flag to distinguish the type of solution, CMT=HM or JG, FPFIT=MP</p> <p><strong>MW:</strong> only for HM, this columns reports also MW from <a href="https://pubs.geoscienceworld.org/ssa/bssa/article-abstract/101/3/975/349796/Regional-Moment-Tensors-of-the-2009-L-Aquila">Hermann et al., 2011</a></p>
Focal mechanisms of the Southeastern Alps and surroundings
<p>We report the focal mechanisms (FPS) of earthquakes that occurred in the southeastern Alps and surrounding areas (latitude ~ 45°N-47.5°N and longitude ~ 10°E-15°E) from 1928 to 2023.</p> <p>The FPS have been collected and revised from literature or, depending on data availability, newly computed both by first polarities inversion or by means of seismic moment tensor.</p> <p>For more details about the catalogue (V 1.0, V 1.1) refer to the paper:</p> <p>Saraò, A., Sugan, M., Bressan, G., Renner, G., and Restivo, A.: A focal mechanism catalogue of earthquakes that occurred in the southeastern Alps and surrounding areas from 1928–2019, Earth Syst. Sci. Data, 13, 2245–2258, https://doi.org/10.5194/essd-13-2245-2021, 2021</p> <p>Cite as:</p> <p>Sugan, M., Saraò, A., Magrin, A., Snidarcig, A., Bressan, G., Renner, G., Romano, M. A., Guidarelli, M., Santulin, M., Di Bartolomeo, P., & Restivo, A. (2024). Focal mechanisms of the Southeastern Alps and surroundings (2.0) [Data set]. Zenodo. https://doi.org/10.5281/zenodo.10853582</p> <p> </p> <p>V 2.0, March - doi: 10.5281/zenodo.10853582</p> <ul> <li>corrected some typos;</li> <li>added new FPS solutions for the period 2014-2023</li> </ul> <p>V 1.1, April 2021 - doi: 10.5281/zenodo.4660412</p> <ul> <li>corrected some typos; </li> <li>added priority criteria code</li> <li>added code to describe the changes applied with respect to the original solutions </li> </ul> <p>V 1.0, November 2020 - doi: 10.5281/zenodo.4284971 </p> <pre> </pre> <pre> </pre> <pre> </pre>
Stress regimes in the Himalaya-Karakoram-Tibet, the western part of India-Eurasia collision: stress field implications based on focal mechanism solution data
<p>This dataset contains valuable information on earthquake events, including their location, magnitude, depth, and focal mechanism solutions. This README file provides detailed explanations of each header in the dataset, as well as information about the files included in the repository.<br><br><em>"Stress regimes in the Himalaya-Karakoram-Tibet, the western part of India-Eurasia collision: stress field implications based on focal mechanism solution data"</em> <strong>(Under Review)</strong><br> </p>
First motion data and focal mechanism solutions of 108 earthquakes occurred between 1928 and 2019 in the Southeastern Alps
<p>This dataset contains the P-wave polarities readings (FPS_polarities_input.zip) and the focal mechanisms (FPFIT_solution.pdf, FPFIT_solution.csv) obtained by the FPFIT algorithm (Reasenberger and Oppenheimer, 1985) of 108 earthquakes with 1.9 ≤ M<sub> </sub>≤ 4.8 occurring between 1928 and 2019 in the Southeastern Alps area (latitude 45°N-47.5°N and longitude 10°E-15°E). The preferred solution for each earthquake has been reported in the focal mechanism catalogue of Saraò et al. (2020).</p> <p>The first polarities used to compute the focal mechanisms were manually picked from seismograms of the National Institute of Oceanography and Applied Geophysics (OGS) northeastern Italy seismic and deformation network (Priolo et al., 2005; Bragato et al., 2011, Bragato et al., 2020)or extracted from the Bulletin of the International Seismological Centre the Seismological Bulletin of Slovenia. The polarities were also read from the seismograms archived in various Italian and European seismological observatories, many of which are no longer operating (Osservatorio meteorico-sismico nel Seminario - Chiavari; ENEL, Osservatorio Ximeniano - Florence, Osservatorio Astronomico "Brera" -Milan, &nbspDipartimento di Fisica dell’Università di Padova - Padua,;Osservatorio S. Domenico – Prato, Osservatorio meteoro-sismico nel Santuario di N.S. - Oropa, Osservatorio Bina - Perugia, Osservatorio "Valerio"- Pesaro, Osservatorio meteorico-sismico nel Collegio Alberoni - Piacenza, Osservatorio Meteorico Istituto Fisica - University of Siena,Sismografi Lungo Periodo di Mantovani (Bologna, Bolzano, Grosseto, Naples, Olbia, Palermo, Turin), Osservatorio meteorico-sismico nel Seminario Maggiore - Treviso, Osservatorio meteorico-sismico nel Seminario Patriarcale – Venice, Ljubljana, Munich, Stuttgart, Vienna).</p> <p>For more details</p> <p>Saraò, A., Sugan, M., Bressan, G., Renner, G., and Restivo, A.: A focal mechanism catalogue of earthquakes that occurred in the southeastern Alps and surrounding areas from 1928–2019, Earth Syst. Sci. Data Discuss. [preprint], https://doi.org/10.5194/essd-2020-369, in review, 2021.</p> <p> </p> <p>References:</p> <p>Bragato, P.L., Di Bartolomeo, P., Pesaresi, D., Plasencia Linares, M., and Saraò A.: Acquiring, archiving, analyzing and exchanging seismic data in real time at the Seismological Research Center of the OGS in Italy, Ann. Geophys. 54, 67–75, https://doi.org/10.4401/ag-4958, 2011.</p> <p>Bragato P.L., P. Comelli, A. Saraò, D. Zuliani, L. Moratto, V. Poggi, G. Rossi, C. Scaini, M. Sugan, C. Barnaba, P. Bernardi, M. Bertoni, G. Bressan, A. Compagno, P. Di Bartolomeo, E. Del Negro, P. Fabris, M. Garbin, M. Grossi, A. Magrin, E. Magrin, D. Pesaresi, B. Petrovic, M.P. Plasencia Linares, M. Romanelli, A. Snidarcig, L. Tunini, S. Urban, E. Venturini and S. Parolai (2020). The OGS- North-Eastern Italy Seismic and Deformation Network: current status and outlook. Submitted to Seism. Res. Lett. </p> <p>Priolo, E., Barnaba, C., Bernardi, P., Bernardis, G., Bragato, P.L., Bressan, G., Candido, M., Cazzador, E., Di Bartolomeo, P., Durì, G., Gentili, S., Govoni, A., Klinc, P., Kravanja, S., Laurenzano, G., Lovisa, L., Marotta, P., Michelini, A., Ponton F., Restivo, A., Romanelli, A., Snidarcig, A., Urban, S., Vuan, A., Zuliani, D.: Seismic monitoring in northeastern Italy: A ten-year experience, Seismol. Res. Lett., 76, 446–454, https://doi.org/10.1785/gssrl.76.4.446, 2005.</p> <p>Reasenberg, P., Oppenheimer, D.: FPFIT, FPPLOT and FPPAGE: Fortran computer programs for calculating and displaying earthquake fault-plane solutions, Open-File Rep., 85-739, USGS, Menlo Park, 109 pp., 1985.</p> <p>Saraò A., Sugan M., Bressan G., Renner G., Restivo A., 2020: Focal mechanisms of Southeastern Alps and surroundings, doi: 10.5281/zenodo.4284971 .</p>
Supplementary data and code to article "Single-Well Microseismic Focal Mechanism Inversions Using Different Source Models: A Case Study in the Ordos Basin, China"
<p>Supplementary data and code to article "Single-Well Microseismic Focal Mechanism Inversions Using Different Source Models: A Case Study in the Ordos Basin, China".</p><p>Transformations among the parameters of the moment tensor model refer to the code package from Tape and Tape (https://github.com/carltape/mtbeach/; https://github.com/carltape/surfacevel2strain; Tape and Tape, 2009, 2012, 2013, 2015).</p><p>Tape, C., P. Muse, M. Simons, D. Dong, and F. Webb (2009). Multiscale estimation of GPS velocity fields, Geophys. J. Int. 179, no.2, 945-971, doi: 10.1111/j.1365-246X.2009.04337.x.</p><p>Tape, W., and C. Tape (2012). A geometric setting for moment tensors, Geophys. J. Int. 190, no. 1, 476–498, doi: 10.1111/j.1365-246X.2012.05491.x.</p><p>Tape, W., and C. Tape (2013). The classical model for moment tensors, Geophys. J. Int. 195, no. 3, 1701–1720, doi: 10.1093/gji/ggt302.</p><p>Tape, W., and C. Tape (2015). A uniform parametrization of moment tensors, Geophys. J. Int. 202, no. 3, 2074–2081, doi: 10.1093/gji/ggv262.</p>
Focal mechanism solutions of 162 earthquakes occurred between 2014 and 2023 in the Southeastern Alps
<p>Focal mechanism solutions of 162 earthquakes occurred between 2014 and 2023 in the Southeastern Alps</p> <p>Andrea Magrin, Monica Sugan, Adriano Snidarcig, Maria Adelaide Romano, Mariangela Guidarelli, Marco Santulin, Paolo Di Bartolomeo, Angela Saraò</p> <p><strong> </strong></p> <p>Description</p> <p>This dataset includes focal mechanisms (FPFIT_solution.pdf, FPFIT_solution.csv) obtained with the FPFIT algorithm (Reasenberger and Oppenheimer, 1985) for 162 earthquakes with magnitudes Md between 2.8 and 3.6 that occurred between 2014 and 2023 in the Southeastern Alps region (45°N-47.5°N and 10°E-15°E). This dataset updates the catalogues Saraò et al., 2021a, b, and Sugan et al., 2020.</p> <p>The first polarities used to calculate the focal mechanisms are manually picked from seismograms recorded by the National Institute of Oceanography and Applied Geophysics (OGS) northeastern Italy seismic and deformation network (Sistema di Monitoraggio terrestre dell’Italia Nord Orientale - SMINO) (Priolo et al., 2005; Bragato et al., 2011; Bragato et al., 2021) and various Italian and European seismological observatories using temporary and permanent seismic networks. The permanent and temporary networks are as follows: CH – Swiss Seismological Service, 1983; GU – University of Genoa, 1967; IV – INGV Seismological Data Centre, 2005; MN – MedNet Project Partner Institutions, 1990; NI – OGS and University of Trieste, 2002; OE – ZAMG, 1987, 1990; OX – OGS, 2016; RF – University of Trieste, 1993; SI - Sudtirol Network, Italy (https://www.fdsn.org/networks/detail/S.I/; SL – Slovenian Environment Agency, 1990; ST – Geological Survey – Provincia Autonoma Di Trento, 1981; XT – Zhao et al, 2018; Y5 – Swiss Seismological Service, 2022; Z3 – AASN, 2015; ZO - Massa et al, 2021; ZS - Heit et al., 2017.</p> <p>The locations of the events are taken from the seismological bulletins of the OGS and the associated catalogues, which were published continuously from 1977 to 2014 (annual files) and are accessible via the Internet (http://www.crs.ogs.it/bollettino/RSFVG/). Since 2015, annual catalogues have been published in text format and annual bulletins in Quakeml format (Snidarcig et al., 2015, 2016, 2017, 2018, 2019, 2020a, 2021a, 2022a).</p> <p>In addition, unpublished solutions calculated for the studied area are extracted, reviewed and added from the annual reports of the OGS (Snidarcig et al., 2020b, 2021b, 2022b, 2023).</p> <p><strong> </strong></p> <p>References:</p> <p>Bragato, P.L., Di Bartolomeo, P., Pesaresi, D., Plasencia Linares, M., Saraò, A.: Acquiring, archiving, analyzing and exchanging seismic data in real time at the Seismological Research Center of the OGS in Italy, Ann. Geophys. 54, 67–75, https://doi.org/10.4401/ag-4958, 2011.</p> <p>Bragato, P. L., Comelli, P., Saraò, A., Zuliani, D., Moratto, L., Poggi, V., Rossi, G., Scaini, C., Sugan, M., Barnaba, C., Bernardi, P., Bertoni, M., Bressan, G., Compagno, A., Del Negro, E., Di Bartolomeo, P., Fabris, P., Garbin, M., Grossi, M., Magrin, A., Magrin, E., Pesaresi, D., Petrovic, B., Linares, M. P. P., Romanelli, M., Snidarcig, A., Tunini, L., Urban, S., Venturini, E., Parolai, S.: The OGS–Northeastern Italy Seismic and Deformation Network: Current Status and Outlook, Seismol. Res. Lett., 92, 1704–1716, https://doi.org/10.1785/0220200372, 2021. </p> <p>Priolo, E., Barnaba, C., Bernardi, P., Bernardis, G., Bragato, P.L., Bressan, G., Candido, M., Cazzador, E., Di Bartolomeo, P., Durì, G., Gentili, S., Govoni, A., Klinc, P., Kravanja, S., Laurenzano, G., Lovisa, L., Marotta, P., Michelini, A., Ponton F., Restivo, A., Romanelli, A., Snidarcig, A., Urban, S., Vuan, A., Zuliani, D.: Seismic monitoring in northeastern Italy: A ten-year experience, Seismol. Res. Lett., 76, 446–454, https://doi.org/10.1785/gssrl.76.4.446, 2005.</p> <p>Reasenberg, P., Oppenheimer, D.: FPFIT, FPPLOT and FPPAGE: Fortran computer programs for calculating and displaying earthquake fault-plane solutions, Open-File Rep., 85-739, USGS, Menlo Park, 109 pp., 1985.</p> <p>Saraò A., Sugan M., Bressan G., Renner G., Restivo A.: Focal mechanisms of Southeastern Alps and surroundings, doi: 10.5281/zenodo.4284971, 2020, a.</p> <p>Saraò, A., Sugan, M., Bressan, G., Renner, G., Restivo, A.: A focal mechanism catalogue of earthquakes that occurred in the southeastern Alps and surrounding areas from 1928–2019, Earth Syst. Sci. Data, 13, 2245–2258, https://doi.org/10.5194/essd-13-2245-2021, 2021, b.</p> <p>Snidarcig, A., Bernardi, P., Bragato, P.L., Di Bartolomeo, P., Garbin, M., Urban, S.: Bollettino della Rete Sismometrica dell’Italia Nord Orientale (RSINO), [Data set]. Istituto Nazionale di Oceanografia e di Geofisica Sperimentale - OGS, Trieste, Italy, doi: 10.6092/58ff169a-2f02-46ae-908a-bdfcacea069c, 2015.</p> <p>Snidarcig, A., Bernardi, P., Bragato, P.L., Di Bartolomeo, P., Garbin, M., Urban, S.: Bollettino della Rete Sismometrica dell’Italia Nord Orientale (RSINO), [Data set]. Istituto Nazionale di Oceanografia e di Geofisica Sperimentale - OGS, Trieste, Italy, doi: 10.6092/a608d853-755e-4177-aada-992857ccb44e, 2016.</p> <p>Snidarcig, A., Bernardi, P., Bragato, P.L., Di Bartolomeo, P., Garbin, M., Urban, S.: Bollettino della Rete Sismometrica dell’Italia Nord Orientale (RSINO), [Data set]. Istituto Nazionale di Oceanografia e di Geofisica Sperimentale - OGS, Trieste, Italy, doi: 10.6092/3ff3c323-d7a4-4183-bea0-1a53814ac8b9, 2017.</p> <p>Snidarcig, A., Bernardi, P., Bragato, P.L., Di Bartolomeo, P., Garbin, M., Urban, S.: Bollettino della Rete Sismometrica dell’Italia Nord Orientale (RSINO), [Data set]. Istituto Nazionale di Oceanografia e di Geofisica Sperimentale - OGS, Trieste, Italy, doi: 10.6092/c53f37ce-bcf3-453c-a2cf-1894d48cfbbb, 2018.</p> <p>Snidarcig, A., Bernardi, P., Bragato, P.L., Di Bartolomeo, P., Garbin, M., Urban, S.: Bollettino della Rete Sismometrica dell’Italia Nord Orientale (RSINO), [Data set]. Istituto Nazionale di Oceanografia e di Geofisica Sperimentale - OGS, Trieste, Italy, doi: 10.6092/58ff169a-2f02-46ae-908a-bdfcacea069c, 2019.</p> <p>Snidarcig, A., Bernardi, P., Bragato, P.L., Di Bartolomeo, P., Garbin, M., Urban, S.: Bollettino della Rete Sismometrica dell’Italia Nord Orientale (RSINO), [Data set]. Istituto Nazionale di Oceanografia e di Geofisica Sperimentale - OGS, Trieste, Italy, doi: 10.13120/108b8d94-361a-45f3-8195-fc4e8f73d264, 2020a</p> <p>Snidarcig, A., Bragato, P.L., Barnaba, C., Bertoni, M., Bressan, G., Comelli, P., Del Negro, E., Fabris, P., Gentili, S., Moratto, L., Peresan, A., Peruzza, L., Poggi, V., Priolo, E ,Rebez, A., Rossi, G., Sandron, D., Saraò, A., Scaini, C., Sugan, M., Tufaro, T., Urban, S., Zuliani, D., Bernardi, P., Di Bartolomeo, P., Grossi, M., Pesaresi, D., Pettenati, F., Plasencia Linares, M., Ponton, C., Restivo, A., Romanelli, M.: Accordo tra la Regione Autonoma Friuli Venezia Giulia e l’OGS per la collaborazione nell’ambito del monitoraggio sismico e meteomarino Relazione 2019 – Ambito Sismologico. Relazione Interna OGS 2020/22 CRS 7 SIRE. http://hdl.handle.net/20.500.14083/6700, 2020b.</p> <p>Snidarcig, A., Bernardi, P., Bragato, P.L., Di Bartolomeo, P., Garbin, M., Urban, S.: Bollettino della Rete Sismometrica dell’Italia Nord Orientale (RSINO), [Data set]. Istituto Nazionale di Oceanografia e di Geofisica Sperimentale - OGS, Trieste, Italy, doi: 10.13120/8b252b09-314f-456f-812a-b05268ecd001, 2021a.</p> <p>Snidarcig, A., Bragato, P.L., Barnaba, C., Bertoni, M., Bressan, G., Comelli, P., Del Negro, E., Gentili, S., Magrin, A., Moratto, L., Peresan, A., Rebez, A., Rossi, G., Sandron, D., Saraò, A., Sugan, M., Tamaro, A., Urban, S., Zuliani, D., Bernardi, P., Compagno, A., Di Bartolomeo, P., Bottaro, G., Grossi, M., Magrin, E., Pesaresi, D., Pettenati, F., Plasencia Linares, M., Poggi, V., Ponton, C., Restivo, A., Romanelli, M.: Accordo tra la Regione Autonoma Friuli Venezia Giulia e l’OGS per la collaborazione nell’ambito del monitoraggio sismico e meteomarino. Relazione 2020 – Ambito Sismologico. Relazione Interna OGS 2021/29 CRS 7 RETI. https://hdl.handle.net/20.500.14083/18770, 2021b.</p> <p>Snidarcig, A., Bernardi, P., Bragato, P.L., Di Bartolomeo, P., Garbin, M., Urban, S.: Bollettino della Rete Sismometrica dell’Italia Nord Orientale (RSINO), [Data set]. Istituto Nazionale di Oceanografia e di Geofisica Sperimentale - OGS, Trieste, Italy, http://www.crs.ogs.it/bollettino_new/, last access 16/02/2024, 2022a.</p> <p>Snidarcig, A., Bragato, P.L., Barnaba, C., Bertoni, M., Bressan, G., Comelli, P., Del Negro, E., Gentili, S., Klin, P., Laurenzano, G., Magrin, A., Moratto, L., Parolai, S., Peresan, A., Petrovic, B., Poggi, V., Priolo, E., Rebez, A., Rossi, G., Sandron, D., Saraò, A., Scaini, C., Sugan, M., Tamaro, A., Urban, S., Vuan, A., Zuliani, D., Bernardi, P., Compagno, A., Di Bartolomeo, P., Bottaro, G., Grossi, M., Magrin, E., Pesaresi, D., Pettenati, F., Plasencia Linares, M., Ponton, C., Romanelli, M.: Accordo tra la Regione Autonoma Friuli Venezia Giulia e l’OGS per la collaborazione nell’ambito del monitoraggio sismico e meteomarino. Relazione 2021 – Ambito Sismologico. Relazione 2022/74 Sez. CRS 7 RETI. https://hdl.handle.net/20.500.14083/17863, 2022b.</p> <p>Snidarcig, A., Bragato, P.L., Barnaba, C., Bertoni, M., Brondi, P., Comelli, P., Del Negro, E., Gentili, S., Magrin, A., Magrin, E., Moratto, L., Peresan, A., Petrovic, B., Poggi, V., Rebez, A., Rossi, G., Sandron, D., Saraò, A., Scaini, C., Sugan, M., Tunini, L., Zuliani, D., Bernardi, P., Compagno, A., Di Bartolomeo, P., Bottaro, G., Grossi, M., Pesaresi, D., Pettenati, F., Plasencia Linares, M., Ponton, C., Romanelli, M.: Accordo tra la Regione Autonoma Friuli Venezia Giulia e l’OGS per la collaborazione nell’ambito del monitoraggio sismico e meteomarino Relazione 2022 – Ambito Sismologico. Relazione Interna OGS 2023/72. https://hdl.handle.net/20.500.14083/24083, 2023.</p> <p>Sugan, M., Renner, G., Bressan, G., Restivo, A., Saraò, A.: First motion data and focal mechanism solutions of 108 earthquakes occurred between 1928 and 2019 in the Southeastern Alps [Data set]. Zenodo. https://doi.org/10.5281/zenodo.4284929, 2020</p> <p>CH - Swiss Seismological Service (SED) At ETH Zurich: National Seismic Networks of Switzerland [Data set], ETH Zürich, Zurich, <a href="https://doi.org/10.12686/sed/networks/ch">https://doi.org/10.12686/sed/networks/ch</a>, 1983.</p> <p>GU - University of Genoa: Regional Seismic Network of North Western Italy [Data set], International Federation of Digital Seismograph Networks, <a href="https://doi.org/10.7914/SN/GU">https://doi.org/10.7914/SN/GU</a>, 1967.</p> <p>IV - INGV Seismological Data Centre: Rete Sismica Nazionale (RSN) [Data set], Istituto Nazionale di Geofisica e Vulcanologia (INGV), Italy, <a href="https://doi.org/10.13127/SD/X0FXnH7QfY">https://doi.org/10.13127/SD/X0FXnH7QfY</a>, 2005.</p> <p>MN - MedNet Project Partner Institutions: Mediterranean Very Broadband Seismographic Network (MedNet) [Data set], Istituto Nazionale di Geofisica e Vulcanologia (INGV), <a href="https://doi.org/10.13127/SD/fBBBtDtd6q">https://doi.org/10.13127/SD/fBBBtDtd6q</a>, 1990.</p> <p>NI - OGS – Istituto Nazionale Di Oceanografia E Di Geofisica Sperimentale – and University Of Trieste: North-East Italy Broadband Network [Data set], International Federation of Digital Seismograph Networks, <a href="https://doi.org/10.7914/SN/NI">https://doi.org/10.7914/SN/NI</a>, 2002.</p> <p>OE - ZAMG – Zentralanstalt Für Meterologie Und Geodynamik: Austrian Seismic Network [Data set], International Federation of Digital Seismograph Networks, <a href="https://doi.org/10.7914/SN/OE">https://doi.org/10.7914/SN/OE</a>, 1987.</p> <p>OX - OGS – Istituto Nazionale Di Oceanografia E Di Geofisica Sperimentale: North-East Italy Seismic Network [Data set], International Federation of Digital Seismograph Networks, <a href="https://doi.org/10.7914/SN/OX">https://doi.org/10.7914/SN/OX</a>, 2016.</p> <p>RF - University of Trieste: Friuli Venezia Giulia Accelerometric Network [Data set], International Federation of Digital Seismograph Networks, Trieste, <a href="https://doi.org/10.7914/SN/RF">https://doi.org/10.7914/SN/RF</a>, 1993.</p> <p>SL - Slovenian Environment Agency, Seismic Network of the Republic of Slovenia [Data set]. International Federation of Digital Seismograph Networks. <a href="https://doi.org/10.7914/SN/SL">https://doi.org/10.7914/SN/SL</a>, 1990</p> <p>ST - Geological Survey – Provincia Autonoma Di Trento: Trentino Seismic Network, International Federation of Digital Seismograph Networks [Data set], Trento, <a href="https://doi.org/10.7914/SN/ST">https://doi.org/10.7914/SN/ST</a>, 1981.</p> <p>XT - Zhao, L., Paul, A., Solarino, S., & RESIF., Seismic network XT: CIFALPS-2 temporary experiment (China-Italy-France Alps seismic transect #2 [Data set]. RESIF - Réseau Sismologique et géodésique Français. <a href="https://doi.org/10.15778/RESIF.XT2018">https://doi.org/10.15778/RESIF.XT2018</a>, 2018</p> <p>Y5 - Swiss Seismological Service (SED) at ETH Zurich, Swiss Contribution to AdriaArray Temporary Network; ETH Zurich. Other/Seismic network. <a href="https://doi.org/10.12686/SED/NETWORKS/Y5">https://doi.org/10.12686/SED/NETWORKS/Y5</a>, 2022</p> <p>Z3 - AlpArray Seismic Network: AlpArray Seismic Network (AASN) temporary component [Data set], AlpArray Working Group, <a href="https://doi.org/10.12686/alparray/z3_2015">https://doi.org/10.12686/alparray/z3_2015</a>, 2015.</p> <p>ZO - Massa, M., Rizzo, A. L., Lorenzetti, A., Lovati, S., D’Alema, E., Puglia, R., … Luzi, L.: Rete di monitoraggio multiparametrico del Garda (Nord Italia) - PDnet (Version 1.0) [Data set]. Istituto Nazionale di Geofisica e Vulcanologia (INGV). <a href="https://doi.org/10.13127/SD/YHCFOMCBO_">https://doi.org/10.13127/SD/YHCFOMCBO_</a>, 2021.</p> <p>ZS - Heit, B.; Weber, M.; Tilmann, F.; Haberland, C.; Jia, Y.; Pesaresi, D.: The Swath-D Seismic Network in Italy and Austria. GFZ Data Services. Other/Seismic Network. <a href="http://doi.org/10.14470/MF7562601148">doi:10.14470/MF7562601148</a>, 2017.</p>
Plate interface geometry complexity and persistent heterogenous coupling revealed by a high-resolution earthquake focal mechanism catalog in Mentawai, Sumatra
<p>This website contains all the outputs from the study entitled “Plate interface geometry complexity and persistent heterogenous coupling revealed by a high-resolution earthquake focal mechanism catalog in Mentawai, Sumatra”. The contents include the seismic stations used in this study, obtained focal mechanism solutions, corresponding waveform fits, relocation results, and depth-phase modeling results. Each figure (started with ${ID}) is corresponding to the Earthquake ID as shown in Table S1.txt.</p>
Focal mechanism solutions and relocated earthquake catalog for the Charlevoix Seismic Zone (CSZ)
<p>The relocated catalog for the CSZ (Relocated_earthquakes_CSZ.dat) represent a combination of the catalogs from Yu et al. (2016, BSSA) and Onwuemeka et al. (2018, GRL). The focal mechanism solutions catalog (FMS_CSZ.txt) includes original data combined with the solutions from Mazzotti and Townend (2010, Lithosphere). </p>
Population-based computational simulations elucidate mechanisms of focal arrhythmia following stem cell injection
Open the record for dataset details and reuse information.
Data presented in Stress regimes and dynamic implications of the southeastern margin of the Tibetan Plateau: Insights from a refined focal mechanism catalog
<p>The dataset includes thewaveform data required for source mechanism inversion presented in the paper Stress regimes and dynamic implications of the southeastern margin of the Tibetan Plateau: Insights from a refined focal mechanism catalog</p>
Hypocenters, Focal Mechanisms, and Radiated Energy of Small Earthquakes in Northern Ibaraki Prefecture, Japan
<p>Estimated hypocenters, focal mechanisms, and radiated energy of small earthquakes in northern Ibaraki Prefecture, Japan, are available here.</p> <ul> <li>ASCII file "hypo.dat" contains the relocated hypocenters.</li> <li>ASCII files "mec1.dat" and "mec2.dat" contain the focal mechanisms estimated for the MJMA2.0-4.0 and MJMA1.0-2.0 earthquakes, respectively.</li> <li>ASCII file "er. dat" contains the estimated radiated energy.</li> </ul> <p>The contents of each file are listed on the first line of the file.</p>
Focal mechanism solutions of the earthquakes in the SE Tibetan Plateau (Sichuan-Yunnan region)
<p>Focal mechanism solutions determined by the CAP method</p>
Focal mechanisms for the 2016 Gyeongju earthquake sequence
<p>Focal mechanism solutions for the 138 earthquakes that occurred in Gyeongju, South Korea from 12 Sepetember to 15 December 2016</p>
Focal Mechanism Catalog (Shallow Depth) for West Java-Indonesia (2009 to 2015)
<p>Please refer to:</p> <p>Supendi, P., Nugraha, A.D., Puspito, N.T., Widiyantoro, S., Daryono, D. (2018). Identification of active faults in West Java, Indonesia, based on earthquake hypocenter determination, relocation, and focal mechanism analysis. Geosci. Lett. 5, 31, https://doi.org/10.1186/s40562-018-0130-y</p>
Focal Muscle Vibration on Flexibility and Perceived Stiffness in Patients With Mechanical Low Back Pain.
ClinicalTrials.gov study NCT04760379. IPD Sharing: NO. Countries: 1. Publications: 5.
Mechanism of Action of Focal Extracorporeal Shock Waves as a Treatment of Upper Limb Stroke Spasticity: a Pilot Study
ClinicalTrials.gov study NCT06311526. IPD Sharing: UNDECIDED. Countries: 1. Publications: 6.
Focal mechanisms and hypocenter locations detected by temporal deployed seismic networks in and around hypocentral area of the 2000 Western Tottori Earthquake
<p>Hypocenter and focal mechanism data in the hypocentral area of the 2000 Western Tottori Earthquake. Detailed description of the datafiles is in README.docx.</p>
A Phase II, Repeat Dose, Proof of Mechanism Study of Losmapimod to Reduce Proteinuria in Patients With Focal Segmental Glomerulosclerosis (FSGS)
ClinicalTrials.gov study NCT02000440. IPD Sharing: Not stated. Countries: 2. Publications: 0.
c-MYC drives a subset of high-risk pediatric neuroblastomas and is activated through mechanisms including enhancer hijacking and focal enhancer amplification [RNA-seq]
GEO Series GSE107518. Danio rerio. 12 samples. Type: Expression profiling by high throughput sequencing.
c-MYC drives a subset of high-risk pediatric neuroblastomas and is activated through mechanisms including enhancer hijacking and focal enhancer amplification
GEO Series GSE101297. Homo sapiens; Danio rerio. 27 samples. Type: Genome binding/occupancy profiling by high throughput sequencing; Expression profiling by high throughput sequencing.
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Allen Brain Atlas
Allen Brain Atlas is an Allen Institute collection of brain map atlases, datasets, APIs, and analysis tools covering mouse, human, and non-human primate brain resources.
Annotated Behaviour and Observability Dataset (ABODe)
ABODe is a University of Edinburgh DataShare dataset for behavior classification in group-housed mice using home-cage video, identities, bounding boxes, ground-plate positions, and annotator labels.
DANDI Archive for NWB datasets
DANDI is a BRAIN Initiative archive for publishing and sharing neurophysiology data, including electrophysiology, optophysiology, and behavioral data packaged as NWB and related standards.
International Brain Laboratory public data
The International Brain Laboratory public data releases expose standardized mouse decision-making experiments, including Neuropixels recordings, widefield calcium imaging, behavior, and session metadata accessed through the ONE API.
OpenNeuro
OpenNeuro is a free, open platform for sharing neuroimaging datasets, with public search, dataset pages, and download paths for web, S3, DataLad, and the OpenNeuro CLI.