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Application of technical measures and software in constructing photorealistic 3D models of historical building using ground-based and aerial (UAV) digital images

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Języki publikacji
EN
Abstrakty
EN
Preparing digital documentation of historical buildings is a form of protecting cultural heritage. Recently there have been several intensive studies using non-metric digital images to construct realistic 3D models of historical buildings. Increasingly often, non-metric digital images are obtained with unmanned aerial vehicles (UAV). Technologies and methods of UAV flights are quite different from traditional photogrammetric approaches. The lack of technical guidelines for using drones inhibits the process of implementing new methods of data acquisition.This paper presents the results of experiments in the use of digital images in the construction of photo-realistic 3D model of a historical building (Raphaelsohns’ Sawmill in Olsztyn). The aim of the study at the first stage was to determine the meteorological and technical conditions for the acquisition of aerial and ground-based photographs. At the next stage, the technology of 3D modelling was developed using only ground-based or only aerial non-metric digital images. At the last stage of the study, an experiment was conducted to assess the possibility of 3D modelling with the comprehensive use of aerial (UAV) and ground-based digital photographs in terms of their labour intensity and precision of development. Data integration and automatic photo-realistic 3D construction of the models was done with Pix4Dmapper and Agisoft PhotoScan software Analyses have shown that when certain parameters established in an experiment are kept, the process of developing the stock-taking documentation for a historical building moves from the standards of analogue to digital technology with considerably reduced cost.
Rocznik
Tom
Strony
54--63
Opis fizyczny
Bibliogr. 14 poz., rys., tab., wykr.
Twórcy
autor
  • Department of Geoinformatics, Koszalin University of Technology, Koszalin, Poland, Śniadeckich 2, 75-453, Koszalin, Poland
autor
  • University of Warmia and Mazury, Faculty of Geodesy, Geospatial and Civil Engineering, Department of Real Estate Resources, Prawocheńskiego 15, 10-724, Olsztyn, Poland
autor
  • Dron House S. A., Twarda 18, 00-105, Warszawa, Poland
Bibliografia
  • [1] Boroń, A., Borowiec, M., & Wróbel, A. (2009). Rozwój cyfrowej technologii w inwentaryzacji obiektów zabytkowych na przykładzie doświadczeń Zakładu Fotogrametrii i Informatyki Teledetekcyjnej AGH. Archiwum Fotogrametrii, Kartografii i Teledetekcji, 19, 11-22.
  • [2] Bruno, F., Bruno, S., De Sensi, G., Luchi, M. L., Mancuso, S., & Muzzupappa, M. (2010). From 3D reconstruction to virtual reality: A complete methodology for digital archaeological exhibition. Journal of Cultural Heritage, 11(1), 42-49.
  • [3] Brumana, R., Oreni, D., Alba, M., Barazzetti, L., Cuca, B., & Scaioni, M. (2012). Panoramic UAV Views for Landscape Heritage Analysis Integrated with Historical Maps Atlases. Geoinformatics FCE CTU, 9, 39-50.
  • [4] Bykov, A., Kostiuk, A., Bykov, V., Bykov, L., Tataurova L., Orlov P., & Pogarsky, P. (2014). Geodetic support archeological work using UAV and methods stereophotogrammetry. InterEkspo Geo-Sybir, 1(4), 1-6.
  • [5] Diara, F. (2013). New software and technologies applied to documentation and communication of Cultural Heritage. Proceedings of the 18th International Conference on Cultural Heritage and New Technologies 2013 (CHNT 18, 2013)
  • [6] Hirschmuller, H. (2008). Stereo processing by semi-global matching and mutual information. IEEE Transactions on Pattern Analysis and Machine Intelligence, 30, 328-341. doi:10.1109/TPAMI.2007.1166
  • [7] Koch, R., Pollefeys, M., & Van Gool, L. (1998). Automatic 3D Model Acquisition from Uncalibrated Image Sequences. Computer Graphics International, Proceedings, 597-604. doi:10.1109/CGI.1998.694318
  • [8] Pierrot-Deseilligny, M., De Luca, L., & Remondino, F. (2011). Automated image-based procedures for accurate artifacts 3D modeling and orthoimage generation. Geoinformatics FCE CTU, 6, 291-299.
  • [9] Pollefeys, M., Koch, R., Vergauwen, M., & Van Gool, L. (1999). Hand-held acquisition of 3D models with a video camera. 3-D Digital Imaging and Modeling, Proceedings, 14-23. doi:10.1109/IM.1999.805330
  • [10] Preuss, R. (2014). Automation of image data processing. Archiwum Fotogrametrii, Kartografii i Teledetekcji, 26, 119-127. doi:10.14681/afkit.2014.010
  • [11] Pueschel, H., Sauerbier, M., & Eisenbeiss, H. (2008). A 3D model of Castle Landenberg (CH) from combined photogrammetric processing of terrestrial and UAV-based images. The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences, Vol. XXXVII, 93-98.
  • [12] Remondino, F. (2011). Digital 3D recording for heritage documentation and preservation – latest developments and perspectives. In M. Fioravanti, S. Mecca (Ed.), The Safeguard of Cultural Heritage: A Challenge From the Past for the Europe of Tomorrow: COST strategic workshop (pp. 261-264). Firenze: Firenze University Press.
  • [13] Sauerbier, M., & H. Eisenbeiss, H. (2010). UAVS for the documentation of archaeological excavations. International Archives of Photogrammetry, Remote Sensing and Spatial Information Sciences, Vol. XXXVIII, 526-531.
  • [14] Uysal. M., Toprak, & A.S., Polat, N. (2013). Photo realistic 3D modeling with UAV: Gedik Ahmet Pasha Mosque in Afyonkarahisar. International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences, XL-5/W2, 659-662.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-e70e82c6-7c42-4392-b746-bac0364cde7e
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