УДК 528.7 + 551.43
https://doi.org/10.47148/1609-364X-2026-1-24-34
Marina A. Lunina
Senior Laboratory Assistant
Tectonophysics Laboratory
Institute of the Earth’s Crust, Siberian Branch
of Russian Academy of Sciences
128, Lermontova Str., Irkutsk, 664033, Russia
Student
Institute of Mathematics and Information Technologies
of Irkutsk State University
20, Gagarin Boulevard, Irkutsk, 664003, Russia
e-mail: lounina2006@inbox.ru
ORCID: 0009-0000-1027-5794
Oksana V. Lunina
Doctor of Geological and Mineralogical Sciences
Principal Researcher
Tectonophysics Laboratory
Institute of the Earth’s Crust, Siberian Branch
of Russian Academy of Sciences
128, Lermontova Str., Irkutsk, 664033, Russia
e-mail: lounina@crust.irk.ru
ORCID: 0000-0001-7743-8877
ResearcherID: A-8635-2014
Scopus AuthorID: 6603849679
SPIN-code: 1220-3802
Author ID: 65046
1. Cheremisina E.N., Spivak I.L., Spivak L.F., Sokolov A.S. GIS technology maps comparison and management of territory development. Geoinformatika. 2014;4:29–37.
2. Lunina O.V., Gladkov A.A., Bochalgin A.V. Low-amplitude brittle deformations revealed by UAV surveys in alluvial fans along the northwest coast of Lake Baikal: Neotectonic significance and geological hazards. Remote Sensing of Environment. 2024;300:113897. DOI: 10.1016/j.rse.2023.113897.
3. Rossini M., Di Mauro B., Garzonio R., Baccolo G., Cavallini G., Mattavelli M., De Amicis M., Colombo R. Rapid melting dynamics of an alpine glacier with repeated UAV photogrammetry. Geomorphology. 2018;304:159–172. DOI: 10.1016/j.geomorph.2017.12.039.
4. Logachev N.A. History and geodynamics of the Baikal rift. Russian Geology and Geophysics. 2003;44(5):373–387.
5. Chipizubov A.V., Mel’nikov A.I., Stolpovskii A.V., Baskakov V.S. Segmentation of paleoseismic dislocations in the North Baikal fault zone. Doklady Earth sciences. 2003;388(1):77–80.
6. Lunina O.V., Denisenko I.A., Gladkov А.А. Zones of seismogenic ruptures in the Baikal Rift: spatial location and seismic potential. Geodynamics & Tectonophysics. 2025;16(2):0823. DOI: 10.5800/GT-2025-16-2-0823.
7. Kadnichanskii S.A. Obosnovanie dopustimoi vysoty fotografirovaniya pri stereotopograficheskoi s”emke rel’efa [Justification of the permissible height of photography during stereotopographic survey of the relief]. Izvestia vuzov. Geodesy and aerophotosurveying. 2013;3:31–35.
8. Agisoft Metashape User Manual. Standard Edition, Version 1.7. 2021. 89 p. Available at: https://www.agisoft.com/pdf/metashape_1_7_en.pdf (accessed 17.02.2026).
9. QGis User Guide. Available at: https://docs.qgis.org/3.40/en/docs/user_manual/index.html (accessed 17.02.2026).
10. Lopatin D.V., Kandryukova N.A., Korkin S.E., Korkina E.A. Analogovye i tsifrovye metody distantsionnykh issledovanii pri regional’nom geomorfologicheskom analize [Analogue and digital methods of remote sensing in regional geomorphological analysis]. Nizhnevartovsk: NVGU; 2017. 99 p.
11. McCalpin J.P. Paleoseismology. 2nd ed. Amsterdam: Academic Press, Elsevier; 2009. 613 p.
12. Kononov E.E. Lake Baikal terraces and the problems of their study. Proceedings of Irkutsk State Technical University. 2010;(5):42–48.
13. Arzhannikov S., Arzhannikova A., Ivanov A., Demonterova E., Yakhnenko A., Gorovoy V., Jansen J. Lake Baikal highstand during MIS 3 recorded by palaeo-shorelines on Bolshoi Ushkanii Island. BOREAS. 2020;50(1):101–113. DOI: 10.1111/bor.12464.
Key words: GIS software; unmanned aerial system; geomorphological map; landforms; seismogenic rupture; Baikal