Abstract
The rapid development of geo-referenced information changed the way on how we access and interlink data. Smartphones as enabling devices for information access are main driving factor. Thus, the hash key to information is the actual position registered via camera and sensory of the mobile device. A rising technology in this context is Augmented Reality (AR) as its fuses the real world captured with the smartphone camera with geo-referenced data. The technological building blocks analyse the intrinsic sensor data (camera, GPS, inertial) to derive a detailed pose of the smartphone aiming to align geo-referenced information to our real environment. In particular, this is interesting to applications where 3D models are used in planning and organization processes as, e.g., facility management. Here, Building Information Models (BIM) were established in order to hold “as built” information, but also to manage the vast amount of additional information coming with the design, such as building components, properties, maintenance logs, documentation, etc. One challenge is to enable stakeholders involved in the overall building lifecycle to get mobile access to the management system within on-site inspections and to automatise feedback of newly generated information into the BIM. This paper describes a new AR framework that offers on-site access to BIM information and user centric annotation mechanism.












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Archibus: www.archibus.com (2012)
Arth, C., Wagner, D., Klopschitz, M., Irschara, A., Schmalstieg, D.: Wide area localization on mobile phones. In: 8th IEEE International Symposium on Mixed and Augmented Reality, ISMAR 2009, pp. 73–82 (2009). doi:10.1109/ISMAR.2009.5336494
Becker, M., Bleser, G., Pagani, A., Strieker, D., Wuest, H.: An architecture for prototyping and application development of visual tracking systems. In: 3DTV Conference, pp. 1–4 (2007). doi:10.1109/3DTV.2007.4379440
Behzadan, A.H., Kamat, V.R.: Visualization of construction graphics in outdoor augmented reality. In: Proceedings of the 37th Conference on Winter Simulation, WSC’05, pp. 1914–1920 (2005). http://dl.acm.org/citation.cfm?id=1162708.1163041
Billinghurst, M., Poupyrev, I., Kato, H., May, R.: Mixing realities in shared space: an augmented reality interface for collaborative computing. In: IEEE International Conference on Multimedia and Expo, ICME 2000, vol. 3, pp. 1641–1644 (2000). doi:10.1109/ICME.2000.871085
Bleser, G.: Towards visual-inertial slam for mobile augmented reality. Ph.D. Thesis, TU, Kaiserslautern (2009)
Bleser, G., Wuest, H., Strieker, D.: Online camera pose estimation in partially known and dynamic scenes. In: IEEE/ACM International Symposium on Mixed and Augmented Reality, ISMAR 2006, pp. 56–65 (2006). doi:10.1109/ISMAR.2006.297795
Dong, Z., Zhang, G., Jia, J., Bao, H.: Keyframe-based real-time camera tracking. In: IEEE 12th International Conference on Computer Vision, pp. 1538–1545 (2009). doi:10.1109/ICCV.2009.5459273
Dunston, P., Shin, D.: Key areas and issues for augmented reality applications on construction sites. In: Wang, X., Schnabel, M. (eds.) Mixed Reality in Architecture, Design and Construction, pp. 157–170. Springer, Dordrecht (2009). doi:10.1007/978-1-4020-9088-2_10
Dunston, P., Wang, X.: Mixed reality-based visualization interfaces for architecture, engineering, and construction industry. J. Constr. Eng. Manage. 131(12), 1301–1309 (2005)
Eastman, C., Teicholz, P., Sacks, R., Liston, K.: BIM Handbook: A Guide to Building Information Modeling for Owners, Managers, Designers. Wiley, New York (2008). ISBN 978-0-470-18528-5
El-Tawil, S., Kamat, V.: Rapid Reconnaissance of Post-Disaster Building Damage Using Augmented Situational Visualization, pp. 1–10 (2006). doi:10.1061/40878(202)2
Franke, T., Kahn, S., Olbrich, M., Jung, Y.: Enhancing realism of mixed reality applications through real-time depth-imaging devices in x3d. In: Proceedings of the 16th International Conference on 3D Web Technology, Web3D’11, pp. 71–79. ACM, New York (2011). doi:10.1145/2010425.2010439
Graf, H., Soubra, S., Picinbono, G., Keough, I., Tessier, A., Khan, A.: Lifecycle building card: toward paperless and visual lifecycle management tools. In: Proceedings of the 2011 Symposium on Simulation for Architecture and Urban Design, SimAUD’11, pp. 5–12. Society for Computer Simulation International, San Diego (2011). http://dl.acm.org/citation.cfm?id=2048536.2048537
Hardin, B.: BIM and Construction Management: Proven Tools, Methods and Workflows. Wiley, New York (2009). ISBN 978-0-470-40235-1
Irschara, A., Zach, C., Frahm, J.M., Bischof, H.: From structure-from-motion point clouds to fast location recognition. In: IEEE Conference on Computer Vision and Pattern Recognition, CVPR 2009, pp. 2599–2606 (2009). doi:10.1109/CVPR.2009.5206587
Klein, G., Murray, D.: Parallel tracking and mapping on a camera phone. In: 8th IEEE International Symposium on Mixed and Augmented Reality, ISMAR 2009, pp. 83–86 (2009). doi:10.1109/ISMAR.2009.5336495
Nemetschek: http://www.nemetschek.de/ (2012)
PhoneGap: http://www.phonegap.com/ (2012)
Reitmayr, G., Drummond, T.: Initialisation for visual tracking in urban environments. In: 6th IEEE and ACM International Symposium on Mixed and Augmented Reality, ISMAR 2007, pp. 161–172 (2007). doi:10.1109/ISMAR.2007.4538842
Roberts, G., Evans, A., Dodson, A., Denby, B., Cooper, S., Hollands, R.: The use of augmented reality, gps and ins for subsurface data visualisation. In: FIG XXII International Congress (2002)
Shibata, F., Hashimoto, T., Furuno, K., Kimura, A., Tamura, H.: Scalable architecture and content description language for mobile mixed reality systems. In: Pan, Z., Cheok, A., Haller, M., Lau, R., Saito, H., Liang, R. (eds.) Advances in Artificial Reality and Tele-Existence. Lecture Notes in Computer Science, vol. 4282, pp. 122–131. Springer, Berlin (2006). doi:10.1007/11941354_14
Shin, D.H., Dunston, P.S.: Identification of application areas for augmented reality in industrial construction based on technology suitability. Autom. Constr. 17(7), 882–894 (2008). doi:10.1016/j.autcon.2008.02.012. http://www.sciencedirect.com/science/article/pii/S0926580508000289.
Shin, D.H., Dunston, P.S.: Evaluation of augmented reality in steel column inspection. Autom. Constr. 18(2), 118–129 (2009). doi:10.1016/j.autcon.2008.05.007. http://www.sciencedirect.com/science/article/pii/S092658050800085X.
SpeedikonFM: http://www.speedikonfm.com/ (2012)
Stangeland, B.K.: Open BIM collaboration format (2012). http://iug.buildingsmart.com/resources/process-room-workshop-20-march-2012/2012_03_21_OpenBCF_Format.pdf
Steven, A.W., Steven, A.W., Feiner, S., Macintyre, B., Massie, W., Krueger, T.: Augmented reality in architectural construction, inspection, and renovation (1996). doi:10.1.1.30.477
Taylor, S., Drummond, T.: Binary histogrammed intensity patches for efficient and robust matching. Int. J. Comput. Vis. 94, 241–265 (2011). doi:10.1007/s11263-011-0430-6
The Apache Foundation: Couchdb (2012). http://couchdb.apache.org/
Wagner, D.: Handheld augmented reality. Ph.D. Thesis, Graz University of Technology (2009)
Wang, X., Schnabel, M.A.: Mixed Reality in Architecture, Design and Construction. Springer, Berlin (2009)
Wientapper, F., Wuest, H., Kuijper, A.: Reconstruction and accurate alignment of feature maps for augmented reality. In: International Conference on 3D Imaging, Modeling, Processing, Visualization and Transmission (3DIMPVT), pp. 140–147 (2011). doi:10.1109/3DIMPVT.2011.25
Wix, J.: Improving information delivery. In: Collaborative Construction Information Management, pp. 156–165. Spon, London (2009)
Wuest, H.: Efficient line and patch feature characterization and management for real-time camera tracking. Ph.D. Thesis, TU Darmstadt (2008)
Wuest, H., Wientapper, F., Stricker, D.: Adaptable model-based tracking using analysis-by-synthesis techniques. In: Kropatsch, W., Kampel, M., Hanbury, A. (eds.) Computer Analysis of Images and Patterns. Lecture Notes in Computer Science, vol. 4673, pp. 20–27. Springer, Berlin (2007). doi:10.1007/978-3-540-74272-2_3
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This work was funded by the Inter Carnot Fraunhofer project LifeBC.
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Olbrich, M., Graf, H., Kahn, S. et al. Augmented reality supporting user-centric building information management. Vis Comput 29, 1093–1105 (2013). https://doi.org/10.1007/s00371-013-0840-2
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DOI: https://doi.org/10.1007/s00371-013-0840-2