Afonso, J.C., Fullea, J., Yang, Y., Griffin, W.L., Jones, A.G., Connolly, J., Lebedev, S., et al., 2011. 3D multi-observable probabilistic inversion for the compositional and thermal structure of the lithosphere and sublithospheric upper mantle. AGUFM, 2011, DI53A-02. Retrieved from https://ui.adsabs.harvard.edu/abs/2011AGUFMDI53A..02A/abstract
Akbarzadeh Aghdam, M., Ghods, A., Sobouti, F., Motaghi, K., Priestley, K. & Enayat, M., 2024. Seismicity around the boundary between
eastern and western Makran. J Asian Earth Sci, 259, Elsevier Ltd. doi:10.1016/j.jseaes.2023.105926
Backus, G. & Gilbert, F., 1968. The Resolving Power of Gross Earth Data. Geophysical Journal of the Royal Astronomical Society, 16, 169–205, John Wiley & Sons, Ltd. doi:10.1111/J.1365-246X.1968.TB00216.X
Bensen, G.D., Ritzwoller, M.H., Barmin, M.P., Levshin, A.L., Lin, F., Moschetti, M.P., Shapiro, N.M., et al., 2007. Processing seismic ambient noise data to obtain reliable broad-band surface wave dispersion measurements. Geophys J Int, 169, 1239–1260. doi:10.1111/j.1365-246X.2007.03374.x
Bodin, T., Sambridge, M., Tkalćić, H., Arroucau, P., Gallagher, K. & Rawlinson, N., 2012. Transdimensional inversion of receiver functions and surface wave dispersion. J Geophys Res Solid Earth, 117, Blackwell Publishing Ltd. doi:10.1029/2011JB008560
Burg, J.P., 2018. Geology of the onshore Makran accretionary wedge: Synthesis and tectonic interpretation. Earth Sci Rev, 185, 1210–1231, Elsevier. doi:https://doi.org/10.1016/j.earscirev.2018.09.011
Byrne, D.E., Sykes, L.R. & Davis, D.M., 1992. Great thrust earthquakes and aseismic slip along the plate boundary of the Makran subduction zone. J Geophys Res, 97, 449–478. doi:10.1029/91JB02165
DeMets, C., Gordon, R.G. & Argus, D.F., 2010. Geologically current plate motions. Geophys J Int, 181, 1–80, Oxford Academic. doi:10.1111/J.1365-246X.2009.04491.X
Dettmer, J. & Dosso, S.E., 2012. Trans-dimensional matched-field geoacoustic inversion with hierarchical error models and interacting Markov chains. J Acoust Soc Am, 132, 2239–2250, AIP Publishing. doi:10.1121/1.4746016
Ditmar, P.G. & T. B. Yanovskaya, 1987. An extension of the Backus-Gilbert technique for estimating lateral variations of surface wave velocities. Izv., Physics of the Solid Earth 6.
Dziewonski, A.M., Friedman, A., Giardini, D. & Woodhouse, J.H., 1983. Global seismicity of 1982: centroid-moment tensor solutions for 308 earthquakes. Physics of the Earth and Planetary Interiors, 33, 76–90. doi:10.1016/0031-9201(83)90141-3
Enayat, M. & Ghods, A., 2023. 3D Shear-wave Velocity Model of Central Makran using Ambient Noise Adjoint Tomography 3D Shear-wave Velocity Model of Central Makran using Ambient Noise Adjoint Tomography 2. doi:10.22541/essoar.168201720.01832468/v1
Gulick, S.P.S., Bangs, N.L.B., Shipley T.H., Nakamura, Y., Moore, G., and Kuramoto, S., 2004. Three-dimensional architecture of the Nankai accretionary prism’s imbricate thrust zone off Cape Muroto, Japan: Prism reconstruction via en echelon thrust propagation. Journal of Geophysical. Research, 109 (B02105). doi:10.1029/2003JB002654.
Haberland, C., Mokhtari, M., Babaei, H.A., Ryberg, T., Masoodi, M., Partabian, A. & Lauterjung, J., 2021. Anatomy of a crustal-scale accretionary complex: Insights from deep seismic sounding of the onshore western Makran subduction zone, Iran. Geology, 49, 3–7, Geological Society of America. doi:10.1130/G47700.1
Herrmann, R.B., 1973. Some aspects of band-pass filtering of surface waves. Bulletin of the Seismological Society of America, 63, 663–671, GeoScienceWorld. doi:10.1785/BSSA0630020663
Irandoust, M.A., Priestley, K. & Sobouti, F., 2022. High-Resolution Lithospheric Structure of the Zagros Collision Zone and Iranian Plateau. J Geophys Res Solid Earth, 127, John Wiley and Sons Inc. doi:10.1029/2022JB025009
Kopp, C., Fruehn, J., Flueh, E.R., Reichert, C., Kukowski, N., Bialas, J. & Klaeschen, D., (n.d.). Structure of the Makran subduction zone from wide-angle and re¯ection seismic data. Retrieved from www.elsevier.com/locate/tecto
Kumar, N., Aoudia, A., Guidarelli, M., Babu, V.G., Hazarika, D. & Yadav, D.K., 2019. Delineation of lithosphere structure and characterization of the Moho geometry under the himalaya–karakoram– tibet collision zone using surface-wave tomography. Geol Soc Spec Publ, 481, 19–40, Geological Society of London. doi:10.1144/SP481-2017-172
Manu-Marfo, D., Aoudia, A., Pachhai, S. & Kherchouche, R., 2019. 3D shear wave velocity model of the crust and uppermost mantle beneath the Tyrrhenian basin and margins. Sci Rep, 9, Nature Publishing Group. doi:10.1038/s41598-019-40510-z
Motaghi, K., Shabanian, E. & Nozad-Khalil, T., 2020. Deep structure of the western coast of the Makran subduction zone, SE Iran. Tectonophysics, 776, Elsevier B.V. doi:10.1016/j.tecto.2019.228314
Movaghari, R., & Doloei, G. J. (2020). 3-D crustal structure of the Iran plateau using phase velocity ambient noise tomography. Geophysical Journal International, 220(3), 1555-1568.
Ninkabou, D., Agard, P., Nielsen, C., Smit, J., Gorini, C., Rodriguez, M., Haq, B., et al., 2021. Structure of the Offshore Obducted Oman Margin: Emplacement of Semail Ophiolite and Role of Tectonic Inheritance. J Geophys Res Solid Earth, 126, Blackwell Publishing Ltd. doi:10.1029/2020JB020187
Pajang, S., Cubas, N., Letouzey, J., Pourhiet, L. Le, Seyedali, S., Fournier, M., Agard, P., et al., (n.d.). Seismic hazard of the western Makran subduction zone: insight from mechanical modelling and inferred frictional properties.
Paul, A, Kaviani, A., Hatzfeld, D., … J.V.-G.J. & 2006, undefined, 2006. Seismological evidence for crustal-scale thrusting in the Zagros mountain belt (Iran). academic.oup.comA Paul, A Kaviani, D Hatzfeld, J Vergne, M MokhtariGeophysical Journal International, 2006•academic.oup.com, 166, 227–237. doi:10.1111/j.1365-246X.2006.02920.x
Platt, J.P., Leggett, J.K., Young, J., Raza, H., Alam, S., Platt, J.P., Leggett, J.K., et al., 1985. Large-scale sediment underplating in the Makran accretionary prism, southwest Pakistan. Geo, 13, 507. doi:10.1130/0091-7613(1985)13
Priestley, K., Sobouti, F., Mokhtarzadeh, R., A. Irandoust, M., Ghods, R., Motaghi, K. & Ho, T., 2022. New Constraints for the On-Shore Makran Subduction Zone Crustal Structure. J Geophys Res Solid Earth, 127, John Wiley and Sons Inc. doi:10.1029/2021JB022942
Regard, V., Hatzfeld, D., Molinaro, M., Aubourg, C., Bayer, R., Bellier, O., Yamini-Fard, F., et al., 2010. The transition between Makran subduction and the Zagros collision: Recent advances in its structure and active deformation. Geol Soc Spec Publ, 330, 43–64. doi:10.1144/SP330.4
Ruh, J.B., 2020. Numerical modeling of tectonic underplating in accretionary wedge systems. Geosphere, 16, 1385–1407, Geological Society of America. doi:10.1130/GES02273.1
Shearman, D.J., Walker, G.P.L., Booth, B. & Falcon, N.L., 1976. The Geological Evolution of Southern Iran: The Report of the Iranian Makran Expedition. Geogr J, 142, 393, JSTOR. doi:10.2307/1795293
Simmons, N.A., Myers, S.C. & Johannesson, G., 2011. Global-scale P wave tomography optimized for prediction of teleseismic and regional travel times for Middle East events: 2. Tomographic inversion. J Geophys Res Solid Earth, 116, John Wiley & Sons, Ltd. doi:10.1029/2010JB007969
Teknik, V. & Ghods, A., 2017. Depth of magnetic basement in Iran based on fractal spectral analysis of aeromagnetic data. Geophys J Int, 209, 1878–1891, Oxford Academic. doi:10.1093/GJI/GGX132
Yanovskaya, T.B. & Ditmar, P.G., 1990. Smoothness criteria in surface wave tomography. Geophys. J. Int, Vol. 102. Retrieved from https://academic.oup.com/gji/article/102/1/63/580908
Yanovskaya, T.B., Maaz, R., Ditmar, P.G. & Neunhöfer, H., 1988. A method for joint interpretation of the phase and group surface-wave velocities to estimate lateral variations of the Earth’s structure. Physics of the Earth and Planetary Interiors, 51, 59–67, Elsevier. doi:10.1016/0031-9201(88)90023-4.