Alaei-Taleghani, M., 2007. Geomorphology of Iran. Ghoomes Publishing, Tehran (In Persian).
Andreani, L., Stanek, K.P., Gloaguen, R., Krentz, O. and Domínguez-González, L., 2014. DEM-based analysis of interactions between tectonics and landscapes in the Ore Mountains and Eger Rift (East Germany and NW Czech Republic). Remote Sensing, v. 6(9), p. 7971-8001.
Arian, M., 2013. Physiographic-tectonic zoning of Iran’s sedimentary basins. Open Journal of Geology, v. 3(3), p. 169-177.
Ascione, A., Aucelli, P.P., Cinque, A., Di Paola, G., Mattei, G., Ruello, M. and Valente, E., 2021. Geomorphology of Naples and the Campi Flegrei: Human and natural landscapes in a restless land. Journal of Maps, v. 17(4), p. 18-28.
Azañón, J.M., Galve, J.P., Pérez-Peña, J.V., Giaconia, F., Carvajal, R., Booth-Rea, G. and Roldán, F.J., 2015. Relief and drainage evolution during the exhumation of the Sierra Nevada (SE Spain): Is denudation keeping pace with uplift? Tectonophysics, v. 663, p. 19-32.
https://doi.org/10.1016/j.tecto.2015.06.015
Back, S. and Morley, C.K., 2016. Growth faults above shale–Seismic-scale outcrop analogues from the Makran foreland, SW Pakistan. Marine and Petroleum Geology, v. 70, p. 144-162.
Bagheri, S. and Stampfli, G.M., 2008. The Anarak, Jandaq and Posht-e-Badam metamorphic complexes in central Iran: new geological data, relationships and tectonic implications. Tectonophysics, v. 451(1-4), p. 123-155.
Baoying, Y., 2016. The Geomorphologic and geological characteristics of China Qinling Mountain based on DEM. Earth Sciences, v. 5(6), p. 104-110.
Barbero, E., Delavari, M., Dolati, A., Saccani, E., Marroni, M., Catanzariti, R. and Pandolfi, L., 2020a. The Ganj Complex reinterpreted as a Late Cretaceous volcanic arc: Implications for the geodynamic evolution of the North Makran domain (southeast Iran). Journal of Asian Earth Sciences, v. 195, 104306.
Barbero, E., Delavari, M., Dolati, A., Vahedi, L., Langone, A., Marroni, M. and Saccani, E., 2020b. Early Cretaceous Plume–Ridge Interaction Recorded in the Band-e-Zeyarat Ophiolite (North Makran, Iran): new constraints from petrological, mineral chemistry, and geochronological data. Minerals, v. 10(12), 1100.
Barbero, E., Di Rosa, M., Pandolfi, L., Delavari, M., Dolati, A., Zaccarini, F. and Marroni, M., 2023. Deformation history and processes during accretion of seamounts in subduction zones: the example of the Durkan Complex (Makran, SE Iran). Geoscience Frontiers, v. 14(2), 101522.
Barbero, E., Pandolfi, L., Delavari, M., Dolati, A., Saccani, E., Catanzariti, R. and Marroni, M., 2021. The western Durkan Complex (Makran Accretionary Prism, SE Iran): A Late Cretaceous tectonically disrupted seamounts chain and its role in controlling deformation style. Geoscience Frontiers, v. 12(3), 101106-1.
Barbero, E., Pandolfi, L., Delavari, M., Dolati, A., Saccani, E., Di Rosa, M. and Marroni, M., 2025. A review of Mesozoic geodynamic evolution of the North Makran (SE Iran): A tale of a Neo-Tethyan ocean vanished due to two coexisting subduction zones. Gondwana Research, v. 141, p. 74-101.
Barrier, E., Vrielynck, B., Brouillet, J.F. and Brunet, M.F., 2018. Paleotectonic reconstruction of the Central Tethyan Realm. Tectonono-sedimentary-palinspastic maps from Late Permian to Pliocene.
Baulig, H., 1926. Sur une méthode d’analyse altimétrique appliquéea la Bretagne, B. Assoc. Geogr. Fr, v. 10, p. 7-9.
Bayer, R., Chery, J., Tatar, M., Vernant, P., Abbassi, M., Masson, F. and Bellier, O., 2006. Active deformation in Zagros—Makran transition zone inferred from GPS measurements. Geophysical Journal International, v. 165(1), p. 373-381.
Burbank, D.W. and Anderson, R.S., 2012. Tectonic geomorphology (2nd ed.), Chichester: Wiley-Blackwell.
Burg, J.P., Bernoulli, D., Smit, J., Dolati, A. and Bahroudi, A., 2008. A giant catastrophic mud‐and‐debris flow in the Miocene Makran. Terra Nova, v. 20(3), p. 188-193.
Burg, J.P., Dolati, A., Bernoulli, D. and Smith, J., 2013. Structural style of the Makran tertiary accretionary complex in SE Iran. In Lithosphere Dynamics and Sedimentary Basins: The Arabian Plate and Analogues, Frontiers in Earth Sciences, Al Hosani, K., Roure, F., Ellison, R., Lokier, S., (Eds), Springer: Heidelberg, Germany, p. 239-259.
Byrne, D.E., Sykes, L.R. and Davis, D.M., 1992. Great thrust earthquakes and aseismic slip along the plate boundary of the Makran subduction zone. Journal of Geophysical Research: Solid Earth, v. 97(B1), p. 449-478.
Chen, S., Chevalier, M.L. and Li, H., 2024. Tectonic and climatic controls on topographic spatial variability across the Pamir Plateau and implications for drainage evolution. Journal of Asian Earth Sciences, v. 276, 106333.
https://doi.org/10.1016/j.jseaes.2024.106333
D'Agostino, N., Jackson, J.A., Dramis, F. and Funiciello, R., 2001. Interactions between mantle upwelling, drainage evolution and active normal faulting: an example from the central Apennines (Italy). Geophysical Journal International, v. 147(2), p. 475-497.
Delcaillau, B., Deffontaines, B., Floissac, L., Angelier, J., Deramond, J., Souquet, P. and Lee, J.F., 1998. Morphotectonic evidence from lateral propagation of an active frontal fold; Pakuashan anticline, foothills of Taiwan, Geomorphology, v. 24(4), p. 263-290.
Dercourt, J.E.A., Zonenshain, L.P., Ricou, L.E., Kazmin, V.G., Le Pichon, X., Knipper, A.L. and Biju-Duval, B., 1986. Geological evolution of the Tethys belt from the Atlantic to the Pamirs since the Lias. Tectonophysics, v. 123(1-4), p. 241-315.
Dolati, A., 2010. Stratigraphy, structure geology and low-temperature thermochronology across the Makran accretionary wedge in Iran. PhD. thesis, ETH Zurich.
Dolati, A. and Burg, J.P., 2013. Preliminary fault analysis and paleostress evolution in the Makran Fold-and-Thrust Belt in Iran. In Lithosphere dynamics and sedimentary basins: The Arabian Plate and analogues, p. 261-277. Berlin, Heidelberg: Springer Berlin Heidelberg.
Fielding, E., Isacks, B., Barazangi, M. and Duncan, C., 1994. How flat is Tibet?. Geology, v. 22(2), p. 163-167.
Frs, N.L.F., 1975. From Musandam to the Iranian Makran. Geographical Journal, v. 141, p. 55-58.
Giaconia, F., Booth-Rea, G., Martínez-Martínez, J.M., Azañón, J.M., Pérez-Peña, J.V., Pérez-Romero, J. and Villegas, I., 2012. Geomorphic evidence of active tectonics in the Sierra Alhamilla (eastern Betics, SE Spain). Geomorphology, v. 145, p. 90-106.
Gioia, D., Corrado, G., Amodio, A.M. and Schiattarella, M., 2024. Uplift rate calculation based on the comparison between marine terrace data and river profile analysis: A morphotectonic insight from the Ionian coastal belt of Basilicata, Italy. Geomorphology, v. 447, 109030.
https://doi.org/10.1016/j.geomorph.2023.109030
Goorabi, A. and Emami, K., 2017. Neotectonics influences on morphological variations of Makran costal basins, SE Iran. Quantitative Geomorphological Research, v. 6(1), p. 74-89 (In Persian).
Goorabi, A., Zamanzadeh, S.M., Yamani, M. and Pirani, P., 2020. Evaluation and comparison of fractal and fuzzy quantitative methods efficiency in analysis of northwest Zagros tectonic situation. Spatial Planning and Geomatics, v. 24(4), p. 29-67 (In Persian).
Grohmann, C.H., 2004. Morphometric analysis in geographic information systems: applications of free software GRASS and R. Computers & Geosciences, v. 30(9-10), p. 1055-1067.
Grohmann, C.H., 2005. Trend-surface analysis of morphometric parameters: a case study in southeastern Brazil. Computers & geosciences, v. 31(8), p. 1007-1014.
Haghipour, N., Burg, J.P., Kober, F., Zeilinger, G., Ivy-Ochs, S., Kubik, P.W. and Faridi, M., 2012. Rate of crustal shortening and non-Coulomb behaviour of an active accretionary wedge: The folded fluvial terraces in Makran (SE, Iran). Earth and Planetary Science Letters, v. 355, p. 187-198.
He, C., Rao, G., Yang, R., Hu, J., Yao, Q. and Yang, C.J., 2019. Divide migration in response to asymmetric uplift: Insights from the Wula Shan horst, North China. Geomorphology, v. 339, p. 44-57.
Hergarten, S., Robl, J. and Stüwe, K., 2014. Extracting topographic swath profiles across curved geomorphic features. Earth Surface Dynamics, v. 2(1), p. 97-104.
https://doi.org/10.5194/esurf-2-97-2014
Irandoust, M.A., Priestley, K. and Sobouti, F., 2022. High‐resolution lithospheric structure of the Zagros collision zone and Iranian Plateau. Journal of Geophysical Research: Solid Earth, v. 127(11), e2022JB025009.
Keller, E.A. and Pinter, N., 2002. Active Tectonics Earthquake, Uplift, and Landscape (2nd Ed.). Prentice Hall Publisher. New, Jersey.
Kirby, E. and Whipple, K.X., 2012. Expression of active tectonics in erosional landscapes. Journal of structural geology, v. 44, p. 54-75.
Kopp, C., Fruehn, J., Flueh, E.R., Reichert, C., Kukowski, N., Bialas, J. and Klaeschen, D., 2000. Structure of the Makran subduction zone from wide-angle and reflection seismic data. Tectonophysics, v. 329(1-4), p. 171-191.
Lv, L., Wang, L., Li, C., Li, H., Wang, X. and Wang, S., 2020. Formation mechanism for upland low-relief surface landscapes in the Three Gorges region, China. Remote Sensing, v. 12(3899).
https://doi.org/10.3390/rs12233899
Mansouri, R. and Fotoohi, S., 2021. The Relative Evaluation of Active Neotectonic Activities in the Kateh Pifak Anticline; Eyvan-e Qarb, Ilam. Geography and Environmental Studies, v. 10(39), p. 55-72. 20.1001.1.20087845.1400.10.39.4.0 (In Persian).
Mansouri, R., Fotoohi, S. and Sarbazi, Z., 2023. Application of Geomorphic Indices in Evaluating Active Neotectonic Activities in Bayeh Anticline; Eyven-e Qarb, Ilam. Ilam Culture, v. 23(76-77), p. 39-61. 10.22034/FARHANG.2023.169583 (In Persian).
Masson, F., Chéry, J., Hatzfeld, D., Martinod, J., Vernant, P., Tavakoli, F. and Ghafory-Ashtiani, M., 2005. Seismic versus aseismic deformation in Iran inferred from earthquakes and geodetic data. Geophysical Journal International, v. 160(1), p. 217-226.
McCall, G.J.H. and Kidd, R.G.W., 1982. The Makran, Southeastern Iran: the anatomy of a convergent plate margin active from Cretaceous to Present. Geological Society, London, Special Publications, v. 10(1), p. 387-397.
Mitchell, S.G. and Montgomery, D.R., 2006a. Influence of a glacial buzzsaw on the height and morphology of the Cascade Range in central Washington State, USA. Quaternary Research, v. 65(1), p. 96-107.
Mitchell, S.G. and Montgomery, D.R., 2006b. Polygenetic topography of the Cascade Range, Washington state, USA. American journal of science, v. 306(9), p. 736-768.
Moghadam, H.S., Arai, S., Griffin, W.L., Khedr, M.Z., Saccani, E., Henry, H. and Ghorbani, G., 2022. Geochemical variability among stratiform chromitites and ultramafic rocks from Western Makran, South Iran. Lithos, v. 412, 106591.
Mohammadi, A., Burg, J.P., Winkler, W., Ruh, J. and von Quadt, A., 2016. Detrital zircon and provenance analysis of Late Cretaceous–Miocene onshore Iranian Makran strata: Implications for the tectonic setting. Bulletin, v. 128(9-10), p. 1481-1499.
Molin, P., Fubelli, G., Nocentini, M., Sperini, S., Ignat, P., Grecu, F. and Dramis, F., 2012. Interaction of mantle dynamics, crustal tectonics, and surface processes in the topography of the Romanian Carpathians: A geomorphological approach. Global and planetary change, v. 90, p. 58-72.
Molin, P., Pazzaglia, F.J. and Dramis, F., 2004. Geomorphic expression of active tectonics in a rapidly-deforming forearc, Sila massif, Calabria, southern Italy. American journal of science, v. 304(7), p. 559-589.
Montgomery, D.R., 2001. Slope distributions, threshold hillslopes, and steady-state topography. American Journal of science, v. 301(4-5), p. 432-454.
Omrani, H., Moazzen, M., Oberhänsli, R. and Moslempour, M.E., 2017. Iranshahr blueschist: subduction of the inner Makran oceanic crust. Journal of Metamorphic Geology, v. 35(4), p. 373-392.
Ouayah, M., Namous, M., Ourribane, M., Elaloui, A., Krimissa, S., Eloudi, H. and Ziadi, K., 2021. Assessment of relative tectonic activity using morphotectonic analysis in the Central High Atlas, Demnate Region, Morocco. Arabian Journal of Geosciences, v. 14(9), 813 p.
Page, W.D., Alt, J.N., Cluff, L.S. and Plafker, G., 1979. Evidence for the recurrence of large-magnitude earthquakes along the Makran coast of Iran and Pakistan. Tectonophysics, v. 52(1-4), 533-547.
Penney, C., Copley, A. and Oveisi, B., 2015. Subduction tractions and vertical axis rotations in the Zagros–Makran transition zone, SE Iran: The 2013 May 11 M w 6.1 Minab earthquake. Geophysical Journal International, v. 202(2), p. 1122-1136.
Penney, C., Tavakoli, F., Saadat, A., Nankali, H.R., Sedighi, M., Khorrami, F. and Priestley, K., 2017. Megathrust and accretionary wedge properties and behaviour in the Makran subduction zone. Geophysical Journal International, v. 209(3), p. 1800-1830.
Pérez-Peña, J.V., Al-Awabdeh, M., Azañón, J.M., Galve, J.P., Booth-Rea, G. and Notti, D., 2017. SwathProfiler and NProfiler: Two new ArcGIS Add-ins for the automatic extraction of swath and normalized river profiles. Computers & Geosciences, v. 104, p. 135-150.
https://doi.org/10.1016/j.cageo.2016.08.008
Pérez-Peña, J.V., Azañón, J.M. and Azor, A., 2009a. CalHypso: An ArcGIS extension to calculate hypsometric curves and their statistical moments. Applications to drainage basin analysis in SE Spain. Computers & Geosciences, v. 35(6), p. 1214-1223.
Pérez‐Peña, J.V., Azañón, J.M., Azor, A., Delgado, J. and González‐Lodeiro, F., 2009b. Spatial analysis of stream power using GIS: SLk anomaly maps. Earth Surface Processes and Landforms, v. 34(1), p. 16-25.
Pérez‐Peña, J.V., Azañón, J.M., Booth‐Rea, G., Azor, A. and Delgado, J., 2009c. Differentiating geology and tectonics using a spatial autocorrelation technique for the hypsometric integral. Journal of Geophysical Research: Earth Surface, v. 114 (2), p. 22-41.
Pérez-Peña, J.V., Azor, A., Azañón, J.M. and Keller, E.A., 2010. Active tectonics in the Sierra Nevada (Betic Cordillera, SE Spain): Insights from geomorphic indexes and drainage pattern analysis. Geomorphology, v. 119(1-2), p. 74-87.
Pike, R.J. and Wilson, S.E., 1971. Elevation-relief ratio, hypsometric integral, and geomorphic area-altitude analysis. Geological Society of America Bulletin, v. 82(4), p. 1079-1084.
Pirani, P., Goorabi, A., Zamanzadeh, S.M. and Yamani, M., 2022. Analysis of the Effect of Tectonics and Erosion on the Evolution of Northwestern Zagros Landscapes Using Topographic Swath Profiles. Environmental Erosion Research Journal, v. 12(4), p. 79-100 (In Persian).
Pirnia, T., Saccani, E., Torabi, G., Chiari, M., Goričan, Š. and Barbero, E., 2020. Cretaceous tectonic evolution of the Neo-Tethys in Central Iran: Evidence from petrology and age of the Nain-Ashin ophiolitic basalts. Geoscience Frontiers, v. 11(1), p. 57-81.
Priestley, K., Sobouti, F., Mokhtarzadeh, R.A., Irandoust, M., Ghods, R., Motaghi, K. and Ho, T., 2022. New constraints for the on‐shore Makran subduction zone crustal structure. Journal of Geophysical Research: Solid Earth, v. 127(1), e2021JB022942.
Rehak, K., Strecker, M.R. and Echtler, H.P., 2008. Morphotectonic segmentation of an active forearc, v. 37–41 S, Chile. Geomorphology, v. 94(1-2), p. 98-116.
Reiners, P.W., Ehlers, T.A., Mitchell, S.G. and Montgomery, D.R., 2003. Coupled spatial variations in precipitation and long-term erosion rates across the Washington Cascades. Nature, v. 426(6967), p. 645-647.
Reyss, J.L., Pirazzoli, P.A., Haghipour, A., Hatte, C. and Fontugne, M., 1999. Quaternary marine terraces and tectonic uplift rates on the south coast of Iran. In: Stewart, I.S., Vita-Finzi, C. (Eds.), Coastal Tectonics, Geological Society, London, Special Publications, v. 146(1), p. 225-237.
Riquelme, R., Martinod, J., Hérail, G., Darrozes, J. and Charrier, R., 2003. A geomorphological approach to determining the Neogene to Recent tectonic deformation in the Coastal Cordillera of northern Chile (Atacama). Tectonophysics, v. 361(3-4), p. 255-275.
Robl, J., Hergarten, S. and Stüwe, K., 2008. Morphological analysis of the drainage system in the Eastern Alps. Tectonophysics, v. 460(1-4), p. 263-277.
Roy, A., Patel, P.P. and Sen, A., 2025. Unravelling litho-structural and tectonic influences on geomorphic and river longitudinal profile character in the Brahmani River Basin of eastern India. Geomorphology, v. 471, 109574.
Royden, L. and Taylor Perron, J., 2013. Solutions of the stream power equation and application to the evolution of river longitudinal profiles. Journal of Geophysical Research: Earth Surface, v. 118(2), p. 497-518.
Scotti, V.N., Molin, P., Faccenna, C., Soligo, M. and Casas-Sainz, A., 2014. The influence of surface and tectonic processes on landscape evolution of the Iberian Chain (Spain): Quantitative geomorphological analysis and geochronology. Geomorphology, v. 206, p. 37-57.
Stöcklin, J., 1968. Structural history and tectonics of Iran: a review. AAPG bulletin, v. 52(7), p. 1229-1258.
Struth, L., Garcia-Castellanos, D., Viaplana-Muzas, M. and Vergés, J., 2019. Drainage network dynamics and knickpoint evolution in the Ebro and Duero basins: From endorheism to exorheism. Geomorphology, v. 327, p. 554-571.
Telbisz, T., Kovács, G., Székely, B. and Szabó, J., 2013. Topographic swath profile analysis: A generalization and sensitivity evaluation of a digital terrain analysis tool. Zeitschrift für Geomorphologie, v. 57(4), p. 485-513.
https://doi.org/10.1127/0372-8854/2013/0110
Tricart, J. and Cailleux, A., 1958. Cours de Geomorphologie I: Geomorphologie Structurale. C.D.U., Paris.
Vernant, P., Nilforoushan, F., Hatzfeld, D., Abbassi, M.R., Vigny, C., Masson, F. and Chéry, J., 2004. Present-day crustal deformation and plate kinematics in the Middle East constrained by GPS measurements in Iran and northern Oman, Geophysical Journal International, v. 157(1), p. 381-398.
Vita-Finzi, C., 1975. Quaternary deposits in the Iranian Makran. Geographical Journal, v. 141, p. 415-420.
Willett, S.D., McCoy, S.W., Perron, J.T., Goren, L. and Chen, C.Y., 2014. Dynamic reorganization of river basins. Science, v. 343(6175), 1248765.
Wobus, C.W., Whipple, K.X. and Hodges, K.V., 2006. Neotectonics of the central Nepalese Himalaya: Constraints from geomorphology, detrital 40Ar/39Ar thermochronology, and thermal modeling. Tectonics, v. 25(4), p. 1-18.
Zelenin, E., Bachmanov, D., Garipova, S., Trifonov, V. and Kozhu-rin, A., 2022. The Active Faults of Eurasia Database (AFEAD): The Ontology and Design behind the Continental-Scale Dataset. Earth System Science Data, v. 14(10), p. 4489-4503.
https://doi.org/10.5194/essd-14-4489-2022
Zhou, C., Tan, X., Liu, Y. and Shi, F., 2024. Quantifying the migration rate of drainage divides from high-resolution topographic data. Earth Surface Dynamics, v. 12, p. 433-448.
https://doi.org/10.5194/esurf-12-433-2024
Zhu, Y., Dortch, J.M., Massey, M.A., Haneberg, W.C. and Curl, D., 2021. An intelligent swath tool to characterize complex topographic features: Theory and application in the Teton Range, Licking River, and Olympus Mons. Geomorphology, v. 387, 107778.
https://doi.org/10.1016/j.geomorph.2021.107778.