Toward the Interactive 3D Modelling Applied to Ponte Rotto in Rome
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  • 作者:Wissam Wahbeh (1)
    Carla Nardinocchi (1)

    1. DICEA
    ; Sapienza Universitdi Roma ; Via Eudossiana 18 ; Rome ; Italy
  • 关键词:Photogrammetry ; Image ; based modeling ; Panoramic photos ; 3D modelling ; Epipolar geometry ; Homolog points ; Polylines ; Spherical photogrammetry
  • 刊名:Nexus Network Journal
  • 出版年:2015
  • 出版时间:April 2015
  • 年:2015
  • 卷:17
  • 期:1
  • 页码:55-71
  • 全文大小:4,515 KB
  • 参考文献:1. Fangi, Gabriele. 2007. The multi-image spherical panoramas as a tool for architectural survey. / International Archives of Photogrammetry, Remote Sensing and Spatial Information Sciences 36 (5/C53): 311鈥?16.
    2. Fangi, Gabriele, Livia Piermattei and Wissam Wahbeh. 2013. Beni dell鈥橴NESCO in Siria documentati metricamente prima della guerra con la tecnica della fotogrammetria sferica. Pp. 433-442 in / Patrimoni e Siti UNESCO. Memoria, Misura e Armonia. Atti del XXXV Congresso Internazionale dei Docenti della Rappresentazione鈥擠ecimo Congresso UID, Mario Docci, ed.. Matera: Gangemi Editore.
    3. Fangi, Gabriele, Carla, Nardinocchi (2013) Photogrammetric processing of spherical panoramas. The Photogrammetric Record 28: pp. 293-311 CrossRef
    4. Luhmann, Thomas and Werner Tecklenburg. 2004. 3D object reconstruction from multiple-station panorama imagery. / International Archives of Photogrammetry, Remote Sensing and Spatial Information Sciences 34 (5/W16). (on CD-ROM). dings/XXXIV/5-W16/papers/PanoWS_Dresden2004_Luhmann_b.pdf" class="a-plus-plus">http://www.isprs.org/proceedings/XXXIV/5-W16/papers/PanoWS_Dresden2004_Luhmann_b.pdf, accessed 03 January 2015
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    6. Pisa, Cecilia, Fabiana Zeppa and Gabriele Fangi. 2010. Spherical photogrammetry for cultural heritage. Pp. 3鈥? in / Proceeding of the Second Workshop on eHeritage and Digital Art Preservation, 25鈥?9 October 2010, Florence, Italy. New York: ACM.
    7. P毛ntinen, Petteri (2004) On the geometrical quality of panoramic images. International Archives of Photogrammetry, Remote Sensing and Spatial Information Sciences 35: pp. 82-87
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    9. Szeliski, Richard. and Heung-Yeung Shum. 1997. Creating full view panoramic image mosaics and environment maps. Pp. 251鈥?58 in / Proceedings of SIGGRAPH 1997. http://research.microsoft.com/pubs/75673/Szeliski-SG97.pdf, accessed 02 January 2015.
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    11. Torii, Akihiko and Atsushi Imiya. 2007. Computation of epipolar geometry and trifocal tensor from spherical images. / Computer Vision Winter Workshop, St Lambrecht, Austria (on CD-ROM).
    12. Torii, Akihiko, Atsushi Imiya and Naoya Ohnishi, N., 2000. Two- and three-view geometry for spherical cameras. / 6th Workshop on Omnidirectional Vision, Camera Network and Non-classical Cameras, Beijing, China (on CD-ROM).
    13. Wahbeh, Wissam. 2012. Architectural Digital Photogrammetry. Pp. 175鈥?80 in / Nexus Ph.D. Day: Relationships between Architecture And Mathematics. Milan: McGraw-Hill.
    14. Wahbeh, Wissam. 2013. Architectural Photogrammetry panoramic Image-Based Photogrammetry. Pp. 199鈥?01 in / Linee di Ricerca nell鈥檃rea del Disegno, Contributi dalle tesi di dottorato. Laura Carlevaris, ed. Atti del X congresso UID, Matera 2013. Rome: Aracne editrice.
  • 刊物类别:Mathematics and Statistics
  • 刊物主题:Mathematics
    Mathematics
    Architectural History and Theory
    History of Physics
    Popular Science, general
    History
  • 出版者:Birkh盲user Basel
  • ISSN:1522-4600
文摘
We present the first step of a research aimed at automating a driven interactive 3D modeling of an existing architectural object. The method is based on oriented multi-image spherical panoramas produced by stitching techniques. The photogrammetric process has two steps: the creation of a semi-automatic process to find homolog points in two panoramas; the creation of parametric definitions for an interactive modeling creating points, segments, and surfaces based on the plotted points in the first step. By connecting these two steps, the creation of the model will be automatic, as we indicate the necessary points in just one panoramic photo. The principals of multi-view geometry and epipolar geometry were applied to simplify the calculation in the first step in order to create an automatic identification of the correspondent points in the other panorama. The epipolar geometry is described by both analytical and graphical programming, implementing in the first case a C++ application and in the second case a Rhinoceros and Grasshopper application. A case study of the Ponte Rotto in Rome (Italy) is presented.

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