id |
caadria2017_079 |
authors |
Miyake, Munetoshi, Fukuda, Tomohiro, Yabuki, Nobuyoshi and Motamedi, Ali |
year |
2017 |
title |
Outdoor MarkerLess Augmented Reality - A System for Visualizing Building Models Using Simultaneous Localization and Mapping |
source |
P. Janssen, P. Loh, A. Raonic, M. A. Schnabel (eds.), Protocols, Flows, and Glitches - Proceedings of the 22nd CAADRIA Conference, Xi'an Jiaotong-Liverpool University, Suzhou, China, 5-8 April 2017, pp. 95-104 |
doi |
https://doi.org/10.52842/conf.caadria.2017.095
|
summary |
In this study, an Augmented Reality (AR) system is developed to be used for visualizing design projects of buildings. In such design projects, it is desirable to enable design stakeholders visualizing the outcomes of different design options to reduce the resistance and hesitation towards new design challenges. The research proposes an outdoor mark-er-less AR using Simultaneous Localization and Mapping (SLAM) for the AR tracking. Our proposed system performs reconstruction and localization steps in real-time, as opposed to similar methods in which the reconstruction step is done offline. A case study has been performed for a de-sign scenario of buildings. The case study verified the performance of visualization and tracking. |
keywords |
Architecture and urban environment; Augmented Reality (AR); Simultaneous Localization and Mapping (SLAM); Visualization |
series |
CAADRIA |
email |
|
full text |
file.pdf (7,863,109 bytes) |
references |
Content-type: text/plain
|
Bae, H, Golparvar-Fard, M and White, J (2013)
High-precision vision-based mobile augmented reality system for context-aware architectural, engineering, construction and facility management (AEC/FM) applications
, Visualization in Engineering, 1, pp 1-13
|
|
|
|
Dellaert, F, Seitsz, S, Thorpe, C and Thrum, S (2000)
Structure from Motion without Correspondence
, IEEE Computer Society Conference on Computer Vision and Pattern Recogni-tion, pp 557-564
|
|
|
|
Engel, J, Schops, T and Cremers, D (2014)
LSD-SLAM: Large-scale direct monocular SLAM
, European Conference on Computer Vision, pp 834-849
|
|
|
|
Frey, N and Antone, M (2013)
Grouping Crowd-Sourced Mobile Videos for Cross-Camera Tracking
, 2013 IEEE Conference on Computer Vision and Pattern Recognition Workshops, pp 800-807
|
|
|
|
Karlekar, J, Zhou, S, Lu, W and Loh, Z (2010)
Positioning, tracking and mapping for outdoor augmentation
, Proceedings of 9th IEEE International Symposium on In mixed and Augmented Reality, pp 175-184
|
|
|
|
Martin, P, Marchand, E, Houlier, P and Marchal, I (2014)
Decoupled mapping and localization for Augmented Reality on a mobile phone
, 2014 IEEE Virtual Reality (VR), pp 97-98
|
|
|
|
Reitmayer, G and Drummond, T (2006)
Going out: robust model-based tracking for outdoor augmented reality
, Mixed and Augmented Reality, IEEE/ACM International Symposium on, pp 109-118
|
|
|
|
Sato, Y, Fukuda, T, Yabuki, N and Motamedi, A (2016)
A Marker-less Augmented Reality System using Image Processing Techniques for Architecture and Urban Environment
, Proceedings of the 21th International Conference on Computer-Aided Architectural Design Research in Asia (CAADRIA 2016), pp 713-722
|
|
|
|
Schubert, G, Tonnis, D, Klinker, M and Petzold, F (2015)
Tangible Mixed Reality On-Site: Interactive Augmented Visualisations from Ar-chitectural Working Models in Urban Design
, Computer-Aided Architectural Design, Communications in Computer and Infor-mation Science, pp 55-74
|
|
|
|
Watanabe, S (2011)
Simulating 3D Architecture and Urban Landscapes in Real Space
, Proceedings of the 16th International Conference on Computer-Aided Architectural Design Research in Asia, pp 261-270
|
|
|
|
Yabuki, N, Hamada, Y and Fukuda, T (2011)
An invisible height evaluation system for building height regulation to preserve good landscapes using augmented reality
, Automation in Construction, 20, pp 228-235
|
|
|
|
Yabuki, N, Hamada, Y and Fukuda, T (2012)
Development of an accurate registration technique for outdoor augmented reality using point cloud data
, 14th International Conference on Computing in Civil and Building Engineering
|
|
|
|
last changed |
2022/06/07 07:58 |
|