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International Journal of Architectural Heritage
Conservation, Analysis, and Restoration
Volume 11, 2017 - Issue 6
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Original Articles

3-D Modeling of Historic Façades Using SFM Photogrammetry Metric Documentation of Different Building Types of a Historic Center

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Pages 871-890 | Received 02 Feb 2017, Accepted 06 Apr 2017, Published online: 05 Jul 2017

References

  • Arayici, Y. 2007. An approach for real world data modelling with the 3D terrestrial laser scanner for built environment. Automation in Construction 16 (6):816–29. doi:10.1016/j.autcon.2007.02.008.
  • Arias, P., C. Ordóñez, H. Lorenzo, J. Herraez, and J. Armesto. 2007. Low-cost documentation of traditional agro-industrial buildings by close-range photogrammetry. Building and Environment 42 (4):1817–27. doi:10.1016/j.buildenv.2006.02.002.
  • Barazzetti, L., L. Binda, M. Scaioni, and P. Taranto. 2011. Photogrammetric survey of complex geometries with low-cost software: Application to the ‘G1′ temple in Myson, Vietnam. Journal of Cultural Heritage 12 (3):253–62. doi:10.1016/j.culher.2010.12.004.
  • Bellotti, F., R. Berta, R. Cardona, and A. De Gloria. 2011. An architectural approach to efficient 3D urban modeling. Computers & Graphics 35 (5):1001–12. doi:10.1016/j.cag.2011.07.004.
  • Boukerch, I., B. Takarli, R. Mahmoudi, S. Tellai, and D. Chadli. 2016. Application of digital terrestrial photogrammetry in architectural conservation: The Mosque of Abdullah Ibn Salam of Oran. ISPRS-international archives of the photogrammetry. Remote Sensing and Spatial Information Sciences 45 (B5):989–94.
  • Brumana, R., D. Oreni, B. Cuca, L. Binda, P. Condoleo, and M. Triggiani. 2014. Strategy for integrated surveying techniques finalized to interpretive models in a byzantine church, Mesopotam, Albania. International Journal of Architectural Heritage 8 (6):886–924. doi:10.1080/15583058.2012.756077.
  • Chandler, J. H. 1999. Effective application of automated digital photogrammetry for geomorphological research. Earth Surface Processes and Landforms 24 (1):51–64. doi:10.1002/(SICI)1096-9837(199901)24:1<51::AID-ESP948>3.0.CO;2-H.
  • Chandler, J. H., J. G. Fryer, and A. Jack. 2005. Metric capabilities of low‐cost digital cameras for close range surface measurement. The Photogrammetric Record 20 (109):12–26. doi:10.1111/phor.2005.20.issue-109.
  • Chandran, V., and S. L. Elgar. 1993. Pattern recognition using invariants defined from higher order spectra-one-dimensional inputs. IEEE Transactions on Signal Processing 41 (1):205–12. doi:10.1109/TSP.1993.193139.
  • Chang, T. C., S. Milne, D. Fallon, and C. Pohlmann. 1996. Urban heritage tourism: The global-local nexus. Annals of Tourism Research 23 (2):284–305. doi:10.1016/0160-7383(95)00064-X.
  • Chiabrando, F., E. Donadio, and F. Rinaudo. 2015. SfM for orthophoto to generation: A winning approach for cultural heritage knowledge. The International Archives of Photogrammetry, Remote Sensing and Spatial Information Sciences 40 (5):91. doi:10.5194/isprsarchives-XL-5-W7-91-2015.
  • Civera, J., D. R. Bueno, A. J. Davison, and J. M. M. Montiel. 2009. Camera self-calibration for sequential bayesian structure from motion. In Robotics and Automation, 2009. ICRA’09. IEEE International Conference on, 403–08. Kobe: IEEE Conference.
  • Clarke, T. A., and J. G. Fryer. 1998. The development of camera calibration methods and models. The Photogrammetric Record 16 (91):51–66. doi:10.1111/phor.1998.16.issue-91.
  • De Reu, J., G. Plets, G. Verhoeven, P. De Smedt, M. Bats, B. Cherretté, and M. Van Meirvenne. 2013. Towards a three-dimensional cost-effective registration of the archaeological heritage. Journal of Archaeological Science 40 (2):1108–21. doi:10.1016/j.jas.2012.08.040.
  • Deseilligny, M. P., and I. Clery. 2011. Apero, an open source bundle adjusment software for automatic calibration and orientation of set of images. In Proceedings of the ISPRS Symposium, 3DARCH11, Vol. 269277. Paris: National Geographic Institute.
  • Fraser, C. S., and S. Cronk. 2009. A hybrid measurement approach for close-range photogrammetry. ISPRS Journal of Photogrammetry and Remote Sensing 64 (3):328–33. doi:10.1016/j.isprsjprs.2008.09.009.
  • Furukawa, Y., B. Curless, S. M. Seitz, and R. Szeliski. 2010. Towards internet-scale multi-view stereo. In Computer Vision and Pattern Recognition (CVPR), 2010 IEEE Conference on, June 13–18, San Francisco, 1434–1441.
  • Furukawa, Y., and J. Ponce 2007. Accurate, dense, and robust multi-view stereopsis. 2007 IEEE Conference on Computer Vision and Pattern Recognition, on 1–8. Minneapolis.
  • Galizia, M., L. Inzerillo, and C. Santagati. 2015. Heritage and technology: Novel approaches to 3D documentation and communication of architectural heritage. In HERITAGE and TECHNOLOGY mind knowledge experience. Le vie dei Mercanti XIII Forum Internazionale di Studi. Napoli: La Scuola di Pitagora 686:695.
  • Guarnieri, A., N. Milan, and A. Vettore. 2013. Monitoring of complex structure for structural control using terrestrial laser scanning (TLS) and photogrammetry. International Journal of Architectural Heritage 7 (1):54–67. doi:10.1080/15583058.2011.606595.
  • Harris, C., and M. Stephens. 1988. A combined corner and edge detector. In Proceedings of the fourth alvey vision conference, 147–51. Manchester: Fourth Alvey Vision Conference.
  • Kang, Z., L. Zhang, S. Zlatanova, and J. Li. 2010. An automatic mosaicking method for building facade texture mapping using a monocular close-range image sequence. ISPRS Journal of Photogrammetry and Remote Sensing 65 (3):282–93. doi:10.1016/j.isprsjprs.2009.11.003.
  • Lane, S. N., T. D. James, and M. D. Crowell. 2000. Application of digital photogrammetry to complex topography for geomorphological research. The Photogrammetric Record 16 (95):793–821. doi:10.1111/phor.2000.16.issue-95.
  • Lavy, A., G. Eyal, B. Neal, R. Keren, Y. Loya, and M. Ilan. 2015. A quick, easy and non‐intrusive method for underwater volume and surface area evaluation of benthic organisms by 3D computer modelling. Methods in Ecology and Evolution 6 (5):521–31. doi:10.1111/2041-210X.12331.
  • Lerones, P. M., J. L. Fernández, Á. M. Gil, J. Gómez-García-Bermejo, and E. Z. Casanova. 2010. A practical approach to making accurate 3D layouts of interesting cultural heritage sites through digital models. Journal of Cultural Heritage 11 (1):1–9. doi:10.1016/j.culher.2009.02.007.
  • Martínez, J., A. Soria-Medina, P. Arias, and A. F. Buffara-Antunes. 2012. Automatic processing of terrestrial laser scanning data of building facades. Automation in Construction 22:298–305. doi:10.1016/j.autcon.2011.09.005.
  • Martínez, S., J. Ortiz, M. L. Gil, and M. T. Rego. 2013. Recording complex structures using close range photogrammetry: The cathedral of Santiago De Compostela. Photogrammetry Record 28:375–95. doi:10.1111/phor.12040.
  • Mason, S. 1995. Expert system-based design of close-range photogrammetric networks. ISPRS Journal of Photogrammetry and Remote Sensing 50 (5):13–24. doi:10.1016/0924-2716(95)90117-W.
  • Orteu, J. J. 2009. 3-D computer vision in experimental mechanics. Optics and Lasers in Engineering 47 (3):282–91. doi:10.1016/j.optlaseng.2007.11.009.
  • Otto, G. P., and T. K. Chau. 1989. ‘Region-growing’algorithm for matching of terrain images. Image and Vision Computing 7 (2):83–94. doi:10.1016/0262-8856(89)90001-2.
  • Remondino, F., and S. El‐Hakim. 2006. Image‐based 3D modelling: A review. The Photogrammetric Record 21 (115):269–91. doi:10.1111/(ISSN)1477-9730.
  • Ružić, I., I. Marović, Č. Benac, and S. Ilić. 2014. Coastal cliff geometry derived from structure-from-motion photogrammetry at Stara Baška. Krk Island, Croatia. Geo-Marine Letters 34 (6):555–65. doi:10.1007/s00367-014-0380-4.
  • Sanz, J. O., M. G. Docampo, S. M. Rodríguez, M. T. R. Sanmartín, and G. M. Cameselle. 2010. A simple methodology for recording petroglyphs using low-cost digital image correlation photogrammetry and consumer-grade digital cameras. Journal of Archaeological Science 37 (12):3158–69. doi:10.1016/j.jas.2010.07.017.
  • Snavely, N., S. M. Seitz, and R. Szeliski. 2008. Modeling the world from internet photo collections. International Journal of Computer Vision 80 (2):189–210. doi:10.1007/s11263-007-0107-3.
  • Spetsakis, M., and J. Y. Aloimonos. 1991. A multi-frame approach to visual motion perception. International Journal of Computer Vision 6 (3):245–55. doi:10.1007/BF00115698.
  • Steinberg, F. 1996. Conservation and rehabilitation of urban heritage in developing countries. Habitat International 20 (3):463–75. doi:10.1016/0197-3975(96)00012-4.
  • Stojakovic, V., and B. Tepavcevic. 2011. Image-based modeling approach in creating 3D morphogenetic reconstruction of liberty square in novi sad. Journal of Cultural Heritage 12 (1):105–10. doi:10.1016/j.culher.2010.06.001.
  • Szeliski, R., and S. B. Kang. 1994. Recovering 3D shape and motion from image streams using nonlinear least squares. Journal of Visual Communication and Image Representation 5 (1):10–28. doi:10.1006/jvci.1994.1002.
  • Tingdahl, D., and L. Van Gool. 2011. A public system for image based 3d model generation. In International conference on computer vision/computer graphics collaboration techniques and applications, 262–73. Springer Berlin Heidelberg.
  • Turner, D., A. Lucieer, and L. Wallace. 2014. Direct georeferencing of ultrahigh-resolution UAV imagery. IEEE Transactions on Geoscience and Remote Sensing 52 (5):2738–45. doi:10.1109/TGRS.2013.2265295.
  • Westoby, M. J., J. Brasington, N. F. Glasser, M. J. Hambrey, and J. M. Reynolds. 2012. ‘Structure-from-Motion’photogrammetry: A low-cost, effective tool for geoscience applications. Geomorphology 179:300–14. doi:10.1016/j.geomorph.2012.08.021.
  • Yilmaz, H. M., M. Yakar, and F. Yildiz. 2008. Documentation of historical caravansaries by digital close range photogrammetry. Automation in Construction 17 (4):489–98. doi:10.1016/j.autcon.2007.09.003.

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