Сравнительный анализ методов 3D-документации объектов культурного наследия Узбекистана: фотограмметрия против лазерного сканирования в условиях ограниченных ресурсов

A.A. Bahromov

Tashkent University of Applied Sciences, Department of “Computer Engineering” Head of the department1

F.A. Jo‘raboyev

Tashkent University of Applied Sciences, Department of “Computer Engineering” Teacher2

R.T. Gaipnazarov

Tashkent University of Applied Sciences, Department of “Computer Engineering” Teacher3

Keywords: 3D документация, культурное наследие, Узбекистан, фотограмметрия, лазерное сканирование, сравнительный анализ, ограниченные ресурсы, HBIM.


Abstract

Сохранение богатого архитектурного наследия Узбекистана требует эффективных методов 3D-документации, однако выбор оптимальной технологии затруднен из-за ограниченности ресурсов.


References

1. Remondino, F., & Campana, S. (Eds.). (2014). 3D Recording and Modelling in Archaeology and Cultural Heritage: Theory and Best Practices. Archaeopress Publishing Ltd.

2. Grussenmeyer, P., Landes, T., Voegtle, T., & Ringle, K. (2008). Comparison methods of terrestrial laser scanning, photogrammetry and tacheometry data for recording of cultural heritage buildings. The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences, 37(B5), 213-218.

3. Ioannides, M., Fink, E., Brumana, R., Patias, P., Doulamis, A., Martins, J., & Wallace, M. (Eds.). (2016). Digital Heritage. Progress in Cultural Heritage: Documentation, Preservation, and Protection. Springer International Publishing.

4. Stylianidis, E., & Remondino, F. (Eds.). (2016). 3D Recording, Documentation and Management of Cultural Heritage. Whittles Publishing.

5. Boehler, W., & Marbs, A. (2004). 3D scanning and photogrammetry: A rough comparison regarding efficiency and accuracy. Proceedings of the CIPA WG 6 International Workshop on Scanning for Cultural Heritage Recording, Corfu, Greece, 1-2.

6. Luhmann, T., Robson, S., Kyle, S., & Harley, I. (2014). Close-range photogrammetry: principles, methods and applications. Whittles Publishing.

7. Westoby, M. J., Brasington, J., Glasser, N. F., Hambrey, M. J., & Reynolds, J. M. (2012). ‘Structure-from-Motion’photogrammetry: A low-cost, effective tool for geoscience applications. Geomorphology, 179, 300-314.

8. Kersten, T. P., Przybilla, H. J., & Lindstaedt, M. (2017). Comparative investigations into the geometric accuracy of close-range photogrammetry and terrestrial laser scanning. The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences, XLII-2/W3, 387-394.

9. Fernández-Palacios, B. J., Morita, M. M., & Barba, S. (2017). Comparative analysis between TLS and SfM photogrammetry to generate BIM models of existing buildings. The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences, XLII-2/W5, 267-273.

10. Alshawabkeh, Y., & Baik, A. (2020). Integration of TLS and SfM Photogrammetry for Heritage BIM Enhancement. Remote Sensing, 12(3), 385.

11. Fassi, F., Mandelli, A., Perfetti, L., & Rossi, M. (2013). Comparison between laser scanning and automated 3D modelling techniques to reconstruct complex objects. The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences, XL-5/W2, 267-274.

12. Vosselman, G., & Maas, H. G. (Eds.). (2010). Airborne and terrestrial laser scanning. Whittles Publishing.

13. Snavely, N., Seitz, S. M., & Szeliski, R. (2008). Modeling the world from internet photo collections. International Journal of Computer Vision, 80(2), 189-210.

14. Reshetyuk, Y. (2009). Investigation of the geometrical quality of terrestrial laser scanning data. Doctoral dissertation, KTH Royal Institute of Technology.

15. Nex, F., & Remondino, F. (2014). UAV for 3D mapping applications: a review. Applied Geomatics, 6(1), 1-15.

16. Historic England. (2018). 3D Laser Scanning for Heritage: Advice and guidance to users on laser scanning in archaeology and architecture. Second Edition.

17. Lerma, J. L., Navarro, S., Cabrelles, M., & Villaverde, V. (2010). Terrestrial laser scanning and close range photogrammetry for 3D archaeological documentation: the Upper Palaeolithic Cave of Parpalló as a case study. Journal of Archaeological Science, 37(3), 499-507.

18. Remondino, F., Spera, M. G., Nocerino, E., Menna, F., & Nex, F. (2014). State of the art in high density image matching. The Photogrammetric Record, 29(146), 144-166.

19. Al-Manasir, K., & Fraser, C. S. (2006). Registration of terrestrial laser scanner data using imagery. The Photogrammetric Record, 21(115), 255-268.

20. Champion, E. (2019). The role of virtual reality and digital methods in preserving cultural heritage. In Research Methods for Digital Heritage (pp. 111-128). Facet Publishing.

21. McCarthy, J. (2014). Multi-image photogrammetry as a practical tool for cultural heritage recording. Research Report Series (University of Southern Queensland. Faculty of Engineering and Surveying), (1).

22. Open Drone Map Community. (n.d.). OpenDroneMap Documentation. Retrieved from https://docs.opendronemap.org (Пример ссылки на документацию ПО)

23. Logothetis, S., Delinasiou, A., & Stylianidis, E. (2015). Building Information Modelling for Cultural Heritage: A review. The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences, XL-5/W4, 317-323.

24. Barazzetti, L., Binda, L., Scaioni, M., & Taranto, P. (2010). Photogrammetry and laser scanning for historical complex structures survey: The Musmeci bridge. Geoinformatics FCE CTU, 5, 1-10.

25. Murphy, M., McGovern, E., & Pavia, S. (2013). Historic Building Information Modelling (HBIM). Structural Survey, 31(4), 311-327.

26. Bahromov A.A., Ibodullayev S.N. “A Variety of Virtual Reality Implementations For Creative Learning and 5 Ways to Implement Virtual Reality in The Learning Process”. IJEAIS ISSN: 2643-640X Vol. 4, Issue 9, September – 2020, Pages: 60-63.

27. Бекназарова С.С., Бахромов А.А., Ибодуллаев С.Н. “Графовая модель описания процессов электронной торговой площадки”. Social and Economic Aspects of Education in Modern Society. Vol.1, May 25, 2019, Warsaw, Poland

28. Бекназарова С.С., Бахромов А.А., Ибодуллаев С.Н. “Описания процессов электронной торговой площадки графовой моделью”. Научные разработки: Евразийский регион. 20 мая, 2019, Москва

29. G‘iyosov U.E., Nuraliyev F.M., Ibodullayev S.N., “Metaverse muhitida virtual 3D universitetini qurish uchun dasturiy vositasini ishlab chiqish va loyihalashtirish”. Me’morchilik va qurilish muammolari (ilmiy-texnik jurnal) 2024, №3, Samarqand.

30. Nuraliyev F.M.,G‘iyosov U.E, Ibodullaev S.N., “Ta’limning virtual olamdagi ko‘rinishi uchun 3D obektlarni joylashtirish va foydalanish usullari”. // Raqamli iqtisodiyot va axborot texnologiyalari elektron ilmiy jurnali, 2022, 2-son.