Joint Seismic and Gravity Data Inversion to Image Intra-Crustal Structures: The Ivrea Geophysical Body Along the Val Sesia Profile (Piedmont, Italy)
Author(s)
Language
English
Obiettivo Specifico
1T. Struttura della Terra
Status
Published
JCR Journal
JCR Journal
Peer review journal
Yes
Journal
Issue/vol(year)
/9 (2021)
Publisher
Frontiers Media S.A.
Pages (printed)
671412
Date Issued
2021
Subjects
Abstract
We present results from a joint inversion of new seismic and recently compiled gravity data to constrain the structure of a prominent geophysical anomaly in the European Alps: the Ivrea Geophysical Body (IGB). We investigate the IGB structure along the West-East oriented Val Sesia profile at higher resolution than previous studies. We deployed 10 broadband seismic stations at 5 km spacing for 27 months, producing a new database of ∼1000 high-quality seismic receiver functions (RFs). The compiled gravity data yields 1 gravity point every 1–2 km along the profile. We set up an inversion scheme, in which RFs and gravity anomalies jointly constrain the shape and the physical properties of the IGB. We model the IGB’s top surface as a single density and shear-wave velocity discontinuity, whose geometry is defined by four, spatially variable nodes between far-field constraints. An iterative algorithm was implemented to efficiently explore the model space, directing the search toward better fitting areas. For each new candidate model, we use the velocity-model structures for both ray-tracing and observed-RFs migration, and for computation and migration of synthetic RFs: the two migrated images are then compared via cross-correlation. Similarly, forward gravity modeling for a 2D density distribution is implemented. The joint inversion performance is the product of the seismic and gravity misfits. The inversion results show the IGB protruding at shallow depths with a horizontal width of ∼30 km in the western part of the profile. Its shallowest segment reaches either 3–7 or 1–3 km depth below sea-level. The latter location fits better the outcropping lower crustal rocks at the western edge of the Ivrea-Verbano Zone. A prominent, steep eastward-deepening feature near the middle of the profile, coincident with the Pogallo Fault Zone, is interpreted as inherited crustal thickness variation. The found density and velocity contrasts of the IGB agree with physical properties of the main rock units observed in the field. Finally, by frequency-dependent analysis of RFs, we constrain the sharpness of the shallowest portion of the IGB velocity discontinuity as a vertical gradient of thickness between 0.8 km and 0.4 km.
Sponsors
The Swiss National Science Foundation (SNF) supported this research (grant numbers PP00P2_157627 and PP00P2_187199 of project OROG3NY), as well as the Grant Agency of the Czech Republic (No. 21-25710). The project CzechGeo/EPOS No. LM2015079 of the MEYS funded the MOBNET station pool.
References
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Ansorge, J. (1979). Crustal section across the zone of Ivrea-Verbano from the Valais to the Lago Maggiore. Bollettino di Geofisica Teorica ed Applicata 21, 149–157.
Basuyau, C., and Tiberi, C. (2011). Imaging lithospheric interfaces and 3D structures using receiver functions, gravity, and tomography in a common inversion scheme. Computers & geosciences 37, 1381–1390.
Bayer, R., Carozzo, M., Lanza, R., Miletto, M., and Rey, D. (1989). Gravity modelling along the ECORS-CROP vertical seismic reflection profile through the Western Alps. Tectonophysics 162, 203–218.
Berckhemer, H. (1968). Topographie des “Ivrea-Körpers” abgeleitet aus seismischen und gravimetrischen Daten: Schweiz. Mineral. Petrogr. Mitt 48, 235–246.
Berger, A., Mercolli, I., Kapferer, N., and Fügenschuh, B. (2012). Single and double exhumation of fault blocks in the internal Sesia-Lanzo Zone and the Ivrea-Verbano Zone (Biella, Italy). International Journal of Earth Sciences 101, 1877–1894.
Bodin, T., Sambridge, M., Tkalèiæ, H., Arroucau, P., Gallagher, K., and Rawlinson, N. (2012). Transdimensional inversion of receiver functions and surface wave dispersion. Journal of Geophysical Research: Solid Earth 117, B02301.
Brack, P., Ulmer, P., and Schmid, S. M. (2010). A crustal-scale magmatic system from the Earth’s mantle to the Permian surface: Field trip to the area of lower Valsesia and Val d’Ossola (Massiccio dei Laghi, Southern Alps, Northern Italy). Swiss Bulletin für angewandte Geologie 15, 3–21.
Brocher, T. M. (2005). Empirical relations between elastic wavespeeds and density in the Earth’s crust. Bulletin of the seismological Society of America 95, 2081–2092.
Bürki, B. (1990). “Geophysical interpretation of astrogravimetric data in the Ivrea Zone,” in Exposed Cross-Sections of the Continental Crust, eds M. H. Salisbury and D. M. Fountain (Dordrecht: Springer), 545–56
Cattin, R., Mazzotti, S., and Baratin, L.-M. (2015). GravProcess: An easy-to-use MATLAB software to process campaign gravity data and evaluate the associated uncertainties. Computers & geosciences 81, 20–27.
De Franco, R., Biella, G., Boniolo, G., Corsi, A., Demartin, M., Maistrello, M., et al. (1997). Ivrea seismic array: a study of continental crust and upper mantle. Geophysical Journal International 128, 723–736.
Diehl, T., Husen, S., Kissling, E., and Deichmann, N. (2009). High-resolution 3-DP-wave model of the Alpine crust. Geophysical Journal International 179, 1133–1147.
Drahos, D. (2008). Determining the objective function for geophysical joint inversion. Geophysical Transactions 45, 105–121.
Fountain, D. M. (1976). The Ivrea—Verbano and Strona-Ceneri Zones, Northern Italy: a cross-section of the continental crust—new evidence from seismic velocities of rock samples. Tectonophysics 33, 145–165.
Frederiksen, A., and Bostock, M. (2000). Modelling teleseismic waves in dipping anisotropic structures. Geophysical Journal International 141, 401–412.
Handy, M., Franz, L., Heller, F., Janott, B., and Zurbriggen, R. (1999). Multistage accretion and exhumation of the continental crust (Ivrea crustal section, Italy and Switzerland). Tectonics 18, 1154–1177.
Handy, M. R. (1987). The structure, age and kinematics of the Pogallo Fault Zone; Southern Alps, northwestern Italy. Eclogae Geologicae Helvetiae 80, 593–632.
Handy, M. R., Schmid, S. M., Bousquet, R., Kissling, E., and Bernoulli, D. (2010). Reconciling plate-tectonic reconstructions of Alpine Tethys with the geological–geophysical record of spreading and subduction in the Alps. Earth-Science Reviews 102, 121–158.
Handy, M. R., Ustaszewski, K., and Kissling, E. (2015). Reconstructing the Alps–Carpathians–Dinarides as a key to understanding switches in subduction polarity, slab gaps and surface motion. International Journal of Earth Sciences 104, 1–26.
Hetényi, G., Plomerová, J., Bianchi, I., Exnerová, H. K., Bokelmann, G., Handy, M. R., et al. (2018). From mountain summits to roots: Crustal structure of the Eastern Alps and Bohemian Massif along longitude 13.3 E. Tectonophysics 744, 239–255.
Hetényi, G., Plomerová, J., Solarino, S., Scarponi, M., Vecsey, L., Munzarová, H., et al. (2017). IvreaArray—an AlpArray complementary experiment. doi: 10.5281/zenodo.1038209
Hetényi, G., Ren, Y., Dando, B., Stuart, G. W., Hegedûs, E., Kovács, A. C., et al. (2015). Crustal structure of the Pannonian basin: the AlCaPa and Tisza Terrains and the Mid-Hungarian zone. Tectonophysics 646, 106–116.
Hubbert, M. K. (1948). A line-integral method of computing the gravimetric effects of two-dimensional masses. Geophysics 13, 215–225.
James, D. E., Niu, F., and Rokosky, J. (2003). Crustal structure of the Kaapvaal craton and its significance for early crustal evolution. Lithos 71, 413–429.
Julia, J., Ammon, C., Herrmann, R., and Correig, A. M. (2000). Joint inversion of receiver function and surface wave dispersion observations. Geophysical Journal International 143, 99–112.
Kennett, B., and Engdahl, E. (1991). Traveltimes for global earthquake location and phase identification. Geophysical Journal International 105, 429–465.
Khazanehdari, J., Rutter, E., and Brodie, K. (2000). High−pressure−high−temperature seismic velocity structure of the midcrustal and lower crustal rocks of the Ivrea−Verbano zone and Serie dei Laghi, NW Italy. Journal of Geophysical Research: Solid Earth 105, 13843–13858.
Kissling, E. (1993). Deep structure of the Alps—what do we really know? Physics of the Earth and Planetary Interiors 79, 87–112.
Kissling, E., Wagner, J., and Mueller, S. (1984). “Three-dimensional gravity model of the northern Ivrea-Verbano Zone,” in Geomagnetic and Gravimetric Studies of the Ivrea Zone: Matér. Géol. Suisse. Géophys, Vol. 21, eds J.-J. Wagner and St Müller 55–61.
Langston, C. A. (1979). Structure under Mount Rainier, Washington, inferred from teleseismic body waves: Journal of Geophysical Research. Solid Earth 84, 4749–4762.
Lanza, R. (1982). Models for interpretation of the magnetic anomaly of the Ivrea body. Geologie Alpine 58, 85–94.
Levin, V., and Park, J. (1997). Crustal anisotropy in the Ural Mountains foredeep from teleseismic receiver functions. Geophysical Research Letters 24, 1283–1286.
Ligorría, J. P., and Ammon, C. J. (1999). Iterative deconvolution and receiver-function estimation. Bulletin of the seismological Society of America 89, 1395–1400.
Masson, F., Verdun, J., Bayer, R., and Debeglia, N. (1999). Une nouvelle carte gravimétrique des Alpes occidentales et ses conséquences structurales et tectoniques. Comptes Rendus de l’Académie des Sciences-Series IIA-Earth and Planetary Science 329, 865–871.
Moorkamp, M., Jones, A., and Fishwick, S. (2010). Joint inversion of receiver functions, surface wave dispersion, and magnetotelluric data. Journal of Geophysical Research: Solid Earth 115, B04318.
Nicolas, A., Hirn, A., Nicolich, R., and Polino, R. (1990). Lithospheric wedging in the western Alps inferred from the ECORS-CROP traverse. Geology 18, 587–590.
Niggli, E. (1946). Über den Zusammenhang zwischen der positiven Schwereanomalie am Südfuß der Westalpen und der Gesteinszone von Ivrea. Eclogae Geologicae Helvetiae 39, 211–220.
Petri, B., Duretz, T., Mohn, G., Schmalholz, S. M., Karner, G. D., and Müntener, O. (2019). Thinning mechanisms of heterogeneous continental lithosphere. Earth and Planetary Science Letters 512, 147–162.
Pistone, M., Müntener, O., Ziberna, L., Hetényi, G., and Zanetti, A. (2017). Report on the ICDP workshop DIVE (Drilling the Ivrea–Verbano zonE). Scientific Drilling 23, 47–56.
Pistone, M., Ziberna, L., Hetényi, G., Scarponi, M., Zanetti, A., and Müntener, O. (2020). Joint Geophysical−Petrological Modeling on the Ivrea Geophysical Body Beneath Valsesia, Italy: Constraints on the Continental Lower Crust. Geochemistry, Geophysics, Geosystems 21, e2020GC009397.
Rey, D., Quarta, T., Mouge, P., Miletto, M., and Lanza, R. (1990). Gravity and aeromagnetic maps of the western Alps: contribution to the knowledge of the deep structures along the ECORS-CROP seismic profile. Mémoires de la Société géologique de France (1833) 156, 107–121.
Sambridge, M. (1999). Geophysical inversion with a neighbourhood algorithm—I. Searching a parameter space. Geophysical journal international 138, 479–494.
Sambridge, M., and Mosegaard, K. (2002). Monte Carlo methods in geophysical inverse problems. Reviews of Geophysics 40, 3–1.
Scarponi, M., Hetényi, G., Berthet, T., Baron, L., Manzotti, P., Petri, B., et al. (2020). New gravity data and 3-D density model constraints on the Ivrea Geophysical Body (Western Alps). Geophysical Journal International 222, 1977–1991.
Schmid, S., Aebli, H., Heller, F., and Zingg, A. (1989). The role of the Periadriatic Line in the tectonic evolution of the Alps. Geological Society, London, Special Publications 45, 153–171.
Schmid, S. M., Kissling, E., Diehl, T., van Hinsbergen, D. J., and Molli, G. (2017). Ivrea mantle wedge, arc of the western alps, and kinematic evolution of the alps-apennines orogenic system. Swiss J. Geosci. 110, 581–612. doi: https://doi.org/10.1007/s00015-016-0237-0
Schmid, S., and Kissling, E. (2000). The arc of the western Alps in the light of geophysical data on deep crustal structure. Tectonics 19, 62–85.
Schmid, S., Zingg, A., and Handy, M. (1987). The kinematics of movements along the Insubric Line and the emplacement of the Ivrea Zone. Tectonophysics 135, 47–66.
Schmid, S. M., Fügenschuh, B., Kissling, E., and Schuster, R. (2004). Tectonic map and overall architecture of the Alpine orogen. Eclogae Geologicae Helvetiae 97, 93–117.
Shibutani, T., Sambridge, M., and Kennett, B. (1996). Genetic algorithm inversion for receiver functions with application to crust and uppermost mantle structure beneath eastern Australia. Geophysical Research Letters 23, 1829–1832.
Solarino, S., Malusà, M. G., Eva, E., Guillot, S., Paul, A., Schwartz, S., et al. (2018). Mantle wedge exhumation beneath the Dora-Maira (U) HP dome unravelled by local earthquake tomography (Western Alps). Lithos 296, 623–636.
Spada, M., Bianchi, I., Kissling, E., Agostinetti, N. P., and Wiemer, S. (2013). Combining controlled-source seismology and receiver function information to derive 3-D Moho topography for Italy. Geophysical Journal International 194, 1050–1068.
Subedi, S., Hetényi, G., Vergne, J., Bollinger, L., Lyon-Caen, H., Farra, V., et al. (2018). Imaging the Moho and the Main Himalayan Thrust in Western Nepal with receiver functions. Geophysical Research Letters 45, 13222–13230.
Syracuse, E. M., Maceira, M., Prieto, G. A., Zhang, H., and Ammon, C. J. (2016). Multiple plates subducting beneath Colombia, as illuminated by seismicity and velocity from the joint inversion of seismic and gravity data. Earth and Planetary Science Letters 444, 139–149.
Thouvenot, F., Paul, A., Senechal, G., Hirn, A., and Nicolich, R. (1990). ECORS-CROP wide-angle reflection seismics: constraints on deep interfaces beneath the Alps: Mém. Soc. Géol. France 156, 97–106.
Vecchia, O. (1968). La zone Cuneo-Ivrea-Locarno, élément fondamental des Alpes. Géophysique et géologie: Schweizerische Mineralogische Petrographische Mitteilungen 48, 215–226.
Vinnik, L. P., Reigber, C., Aleshin, I. M., Kosarev, G. L., Kaban, M. K., Oreshin, S. I., et al. (2004). Receiver function tomography of the central Tien Shan. Earth and Planetary Science Letters 225, 131–146.
Won, I., and Bevis, M. (1987). Computing the gravitational and magnetic anomalies due to a polygon: Algorithms and Fortran subroutines. Geophysics 52, 232–238.
Zappone, A., Wenning, Q. C., and Kissling, E. (2015). “SAPHYR: The Swiss Atlas of physical properties of rocks,” in Proceedings 2015 AGU Fall Meeting2015, (Washington, D.C: AGU).
Zingg, A., Handy, M., Hunziker, J., and Schmid, S. (1990). Tectonometamorphic history of the Ivrea Zone and its relationship to the crustal evolution of the Southern Alps. Tectonophysics 182, 169–192.
Ansorge, J. (1979). Crustal section across the zone of Ivrea-Verbano from the Valais to the Lago Maggiore. Bollettino di Geofisica Teorica ed Applicata 21, 149–157.
Basuyau, C., and Tiberi, C. (2011). Imaging lithospheric interfaces and 3D structures using receiver functions, gravity, and tomography in a common inversion scheme. Computers & geosciences 37, 1381–1390.
Bayer, R., Carozzo, M., Lanza, R., Miletto, M., and Rey, D. (1989). Gravity modelling along the ECORS-CROP vertical seismic reflection profile through the Western Alps. Tectonophysics 162, 203–218.
Berckhemer, H. (1968). Topographie des “Ivrea-Körpers” abgeleitet aus seismischen und gravimetrischen Daten: Schweiz. Mineral. Petrogr. Mitt 48, 235–246.
Berger, A., Mercolli, I., Kapferer, N., and Fügenschuh, B. (2012). Single and double exhumation of fault blocks in the internal Sesia-Lanzo Zone and the Ivrea-Verbano Zone (Biella, Italy). International Journal of Earth Sciences 101, 1877–1894.
Bodin, T., Sambridge, M., Tkalèiæ, H., Arroucau, P., Gallagher, K., and Rawlinson, N. (2012). Transdimensional inversion of receiver functions and surface wave dispersion. Journal of Geophysical Research: Solid Earth 117, B02301.
Brack, P., Ulmer, P., and Schmid, S. M. (2010). A crustal-scale magmatic system from the Earth’s mantle to the Permian surface: Field trip to the area of lower Valsesia and Val d’Ossola (Massiccio dei Laghi, Southern Alps, Northern Italy). Swiss Bulletin für angewandte Geologie 15, 3–21.
Brocher, T. M. (2005). Empirical relations between elastic wavespeeds and density in the Earth’s crust. Bulletin of the seismological Society of America 95, 2081–2092.
Bürki, B. (1990). “Geophysical interpretation of astrogravimetric data in the Ivrea Zone,” in Exposed Cross-Sections of the Continental Crust, eds M. H. Salisbury and D. M. Fountain (Dordrecht: Springer), 545–56
Cattin, R., Mazzotti, S., and Baratin, L.-M. (2015). GravProcess: An easy-to-use MATLAB software to process campaign gravity data and evaluate the associated uncertainties. Computers & geosciences 81, 20–27.
De Franco, R., Biella, G., Boniolo, G., Corsi, A., Demartin, M., Maistrello, M., et al. (1997). Ivrea seismic array: a study of continental crust and upper mantle. Geophysical Journal International 128, 723–736.
Diehl, T., Husen, S., Kissling, E., and Deichmann, N. (2009). High-resolution 3-DP-wave model of the Alpine crust. Geophysical Journal International 179, 1133–1147.
Drahos, D. (2008). Determining the objective function for geophysical joint inversion. Geophysical Transactions 45, 105–121.
Fountain, D. M. (1976). The Ivrea—Verbano and Strona-Ceneri Zones, Northern Italy: a cross-section of the continental crust—new evidence from seismic velocities of rock samples. Tectonophysics 33, 145–165.
Frederiksen, A., and Bostock, M. (2000). Modelling teleseismic waves in dipping anisotropic structures. Geophysical Journal International 141, 401–412.
Handy, M., Franz, L., Heller, F., Janott, B., and Zurbriggen, R. (1999). Multistage accretion and exhumation of the continental crust (Ivrea crustal section, Italy and Switzerland). Tectonics 18, 1154–1177.
Handy, M. R. (1987). The structure, age and kinematics of the Pogallo Fault Zone; Southern Alps, northwestern Italy. Eclogae Geologicae Helvetiae 80, 593–632.
Handy, M. R., Schmid, S. M., Bousquet, R., Kissling, E., and Bernoulli, D. (2010). Reconciling plate-tectonic reconstructions of Alpine Tethys with the geological–geophysical record of spreading and subduction in the Alps. Earth-Science Reviews 102, 121–158.
Handy, M. R., Ustaszewski, K., and Kissling, E. (2015). Reconstructing the Alps–Carpathians–Dinarides as a key to understanding switches in subduction polarity, slab gaps and surface motion. International Journal of Earth Sciences 104, 1–26.
Hetényi, G., Plomerová, J., Bianchi, I., Exnerová, H. K., Bokelmann, G., Handy, M. R., et al. (2018). From mountain summits to roots: Crustal structure of the Eastern Alps and Bohemian Massif along longitude 13.3 E. Tectonophysics 744, 239–255.
Hetényi, G., Plomerová, J., Solarino, S., Scarponi, M., Vecsey, L., Munzarová, H., et al. (2017). IvreaArray—an AlpArray complementary experiment. doi: 10.5281/zenodo.1038209
Hetényi, G., Ren, Y., Dando, B., Stuart, G. W., Hegedûs, E., Kovács, A. C., et al. (2015). Crustal structure of the Pannonian basin: the AlCaPa and Tisza Terrains and the Mid-Hungarian zone. Tectonophysics 646, 106–116.
Hubbert, M. K. (1948). A line-integral method of computing the gravimetric effects of two-dimensional masses. Geophysics 13, 215–225.
James, D. E., Niu, F., and Rokosky, J. (2003). Crustal structure of the Kaapvaal craton and its significance for early crustal evolution. Lithos 71, 413–429.
Julia, J., Ammon, C., Herrmann, R., and Correig, A. M. (2000). Joint inversion of receiver function and surface wave dispersion observations. Geophysical Journal International 143, 99–112.
Kennett, B., and Engdahl, E. (1991). Traveltimes for global earthquake location and phase identification. Geophysical Journal International 105, 429–465.
Khazanehdari, J., Rutter, E., and Brodie, K. (2000). High−pressure−high−temperature seismic velocity structure of the midcrustal and lower crustal rocks of the Ivrea−Verbano zone and Serie dei Laghi, NW Italy. Journal of Geophysical Research: Solid Earth 105, 13843–13858.
Kissling, E. (1993). Deep structure of the Alps—what do we really know? Physics of the Earth and Planetary Interiors 79, 87–112.
Kissling, E., Wagner, J., and Mueller, S. (1984). “Three-dimensional gravity model of the northern Ivrea-Verbano Zone,” in Geomagnetic and Gravimetric Studies of the Ivrea Zone: Matér. Géol. Suisse. Géophys, Vol. 21, eds J.-J. Wagner and St Müller 55–61.
Langston, C. A. (1979). Structure under Mount Rainier, Washington, inferred from teleseismic body waves: Journal of Geophysical Research. Solid Earth 84, 4749–4762.
Lanza, R. (1982). Models for interpretation of the magnetic anomaly of the Ivrea body. Geologie Alpine 58, 85–94.
Levin, V., and Park, J. (1997). Crustal anisotropy in the Ural Mountains foredeep from teleseismic receiver functions. Geophysical Research Letters 24, 1283–1286.
Ligorría, J. P., and Ammon, C. J. (1999). Iterative deconvolution and receiver-function estimation. Bulletin of the seismological Society of America 89, 1395–1400.
Masson, F., Verdun, J., Bayer, R., and Debeglia, N. (1999). Une nouvelle carte gravimétrique des Alpes occidentales et ses conséquences structurales et tectoniques. Comptes Rendus de l’Académie des Sciences-Series IIA-Earth and Planetary Science 329, 865–871.
Moorkamp, M., Jones, A., and Fishwick, S. (2010). Joint inversion of receiver functions, surface wave dispersion, and magnetotelluric data. Journal of Geophysical Research: Solid Earth 115, B04318.
Nicolas, A., Hirn, A., Nicolich, R., and Polino, R. (1990). Lithospheric wedging in the western Alps inferred from the ECORS-CROP traverse. Geology 18, 587–590.
Niggli, E. (1946). Über den Zusammenhang zwischen der positiven Schwereanomalie am Südfuß der Westalpen und der Gesteinszone von Ivrea. Eclogae Geologicae Helvetiae 39, 211–220.
Petri, B., Duretz, T., Mohn, G., Schmalholz, S. M., Karner, G. D., and Müntener, O. (2019). Thinning mechanisms of heterogeneous continental lithosphere. Earth and Planetary Science Letters 512, 147–162.
Pistone, M., Müntener, O., Ziberna, L., Hetényi, G., and Zanetti, A. (2017). Report on the ICDP workshop DIVE (Drilling the Ivrea–Verbano zonE). Scientific Drilling 23, 47–56.
Pistone, M., Ziberna, L., Hetényi, G., Scarponi, M., Zanetti, A., and Müntener, O. (2020). Joint Geophysical−Petrological Modeling on the Ivrea Geophysical Body Beneath Valsesia, Italy: Constraints on the Continental Lower Crust. Geochemistry, Geophysics, Geosystems 21, e2020GC009397.
Rey, D., Quarta, T., Mouge, P., Miletto, M., and Lanza, R. (1990). Gravity and aeromagnetic maps of the western Alps: contribution to the knowledge of the deep structures along the ECORS-CROP seismic profile. Mémoires de la Société géologique de France (1833) 156, 107–121.
Sambridge, M. (1999). Geophysical inversion with a neighbourhood algorithm—I. Searching a parameter space. Geophysical journal international 138, 479–494.
Sambridge, M., and Mosegaard, K. (2002). Monte Carlo methods in geophysical inverse problems. Reviews of Geophysics 40, 3–1.
Scarponi, M., Hetényi, G., Berthet, T., Baron, L., Manzotti, P., Petri, B., et al. (2020). New gravity data and 3-D density model constraints on the Ivrea Geophysical Body (Western Alps). Geophysical Journal International 222, 1977–1991.
Schmid, S., Aebli, H., Heller, F., and Zingg, A. (1989). The role of the Periadriatic Line in the tectonic evolution of the Alps. Geological Society, London, Special Publications 45, 153–171.
Schmid, S. M., Kissling, E., Diehl, T., van Hinsbergen, D. J., and Molli, G. (2017). Ivrea mantle wedge, arc of the western alps, and kinematic evolution of the alps-apennines orogenic system. Swiss J. Geosci. 110, 581–612. doi: https://doi.org/10.1007/s00015-016-0237-0
Schmid, S., and Kissling, E. (2000). The arc of the western Alps in the light of geophysical data on deep crustal structure. Tectonics 19, 62–85.
Schmid, S., Zingg, A., and Handy, M. (1987). The kinematics of movements along the Insubric Line and the emplacement of the Ivrea Zone. Tectonophysics 135, 47–66.
Schmid, S. M., Fügenschuh, B., Kissling, E., and Schuster, R. (2004). Tectonic map and overall architecture of the Alpine orogen. Eclogae Geologicae Helvetiae 97, 93–117.
Shibutani, T., Sambridge, M., and Kennett, B. (1996). Genetic algorithm inversion for receiver functions with application to crust and uppermost mantle structure beneath eastern Australia. Geophysical Research Letters 23, 1829–1832.
Solarino, S., Malusà, M. G., Eva, E., Guillot, S., Paul, A., Schwartz, S., et al. (2018). Mantle wedge exhumation beneath the Dora-Maira (U) HP dome unravelled by local earthquake tomography (Western Alps). Lithos 296, 623–636.
Spada, M., Bianchi, I., Kissling, E., Agostinetti, N. P., and Wiemer, S. (2013). Combining controlled-source seismology and receiver function information to derive 3-D Moho topography for Italy. Geophysical Journal International 194, 1050–1068.
Subedi, S., Hetényi, G., Vergne, J., Bollinger, L., Lyon-Caen, H., Farra, V., et al. (2018). Imaging the Moho and the Main Himalayan Thrust in Western Nepal with receiver functions. Geophysical Research Letters 45, 13222–13230.
Syracuse, E. M., Maceira, M., Prieto, G. A., Zhang, H., and Ammon, C. J. (2016). Multiple plates subducting beneath Colombia, as illuminated by seismicity and velocity from the joint inversion of seismic and gravity data. Earth and Planetary Science Letters 444, 139–149.
Thouvenot, F., Paul, A., Senechal, G., Hirn, A., and Nicolich, R. (1990). ECORS-CROP wide-angle reflection seismics: constraints on deep interfaces beneath the Alps: Mém. Soc. Géol. France 156, 97–106.
Vecchia, O. (1968). La zone Cuneo-Ivrea-Locarno, élément fondamental des Alpes. Géophysique et géologie: Schweizerische Mineralogische Petrographische Mitteilungen 48, 215–226.
Vinnik, L. P., Reigber, C., Aleshin, I. M., Kosarev, G. L., Kaban, M. K., Oreshin, S. I., et al. (2004). Receiver function tomography of the central Tien Shan. Earth and Planetary Science Letters 225, 131–146.
Won, I., and Bevis, M. (1987). Computing the gravitational and magnetic anomalies due to a polygon: Algorithms and Fortran subroutines. Geophysics 52, 232–238.
Zappone, A., Wenning, Q. C., and Kissling, E. (2015). “SAPHYR: The Swiss Atlas of physical properties of rocks,” in Proceedings 2015 AGU Fall Meeting2015, (Washington, D.C: AGU).
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Data_Sheet_1_Joint Seismic and Gravity Data Inversion to Image Intra-Crustal Structures The Ivrea Geophysical Body Along the Val Sesia Profile (Piedm.ZIP
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