A review of augmented reality applied to underground construction

被引:0
作者
Fenais A.S. [1 ]
Ariaratnam S.T. [1 ]
Ayer S.K. [1 ]
Smilovsky N. [2 ]
机构
[1] Civil Environmental and Sustainable Engineering, School of Sustainable Engineering and the Built Environment, Arizona State University
[2] School of Geographical Sciences and Urban Planning, Arizona State University
来源
Journal of Information Technology in Construction | 2020年 / 25卷
关键词
Augmented reality; Underground construction; Utilities;
D O I
10.36680/J.ITCON.2020.018
中图分类号
学科分类号
摘要
Unintentional striking of underground utilities from construction activities often results in high economic consequences. Advanced technology and sophisticated visualization techniques such as augmented reality (AR) has the potential to play a significant role in mitigating such devastating consequences. To better understand the state-of-the-art technology of AR applications in the underground construction industry, it is important to identify challenges and barriers. This paper provides a systematic literature review of applications in the construction industry in general in which journal articles were reviewed, analysed, and summarized. Through this method, the main challenges associated with AR were revealed and feasible solutions were suggested. Issues were found with 1) data collection; 2) modelling and alignment barriers; 3) hardware limitations; 4) tracking; and 5) managing data. This research examined an efficient solution to the problems of AR by proposing a framework for future implementation with main applications in the United States, Canada, and Australia. COPYRIGHT: © 2020 The author(s). This is an open access article distributed under the terms of the Creative Commons Attribution 4.0 International (https://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
引用
收藏
页码:308 / 324
页数:16
相关论文
共 64 条
[11]  
Blanco-Novoa O., Fernandez-Carames T. M., Fraga-Lamas P., Vilar-Montesinos M. A., A practical evaluation of commercial industrial augmented reality systems in an industry 4.0 shipyard, IEEE Access, 6, pp. 8201-8218, (2018)
[12]  
Bosche F., Abdel-Wahab M., Carozza L., Towards a mixed reality system for construction trade training, Journal of Computing in Civil Engineering, 30, 2, (2016)
[13]  
Chen Y., Zhao S., Farrell J. A., Computationally efficient carrier integer ambiguity resolution in multiepoch GPS/INS: a common-position-shift approach, IEEE Transactions on Control Systems Technology, 24, 5, pp. 1541-1556, (2016)
[14]  
Chi H. L., Kang S. C., Wang X., Research trends and opportunities of augmented reality applications in architecture, engineering, and construction, Automation in Construction, 33, pp. 116-122, (2013)
[15]  
Damage information reporting tool (DIRT): analysis and recommendations, Common Ground Alliance, 13, (2016)
[16]  
Dawood N., Marasini R., Dean J., VR - roadmap: a vision for 2030 in the built environment, Virtual Futures for Design, Construction & Procurement, pp. 259-277, (2009)
[17]  
De Wit A., Measurement of project success, International Journal of Project Management, 6, 3, pp. 164-170, (1988)
[18]  
Dong S., Kamat V. R., SMART: scalable and modular augmented reality template for rapid development of engineering visualization applications, Visualization in Engineering, 1, 1, (2013)
[19]  
Dong S., Feng C., Kamat V. R., Sensitivity analysis of augmented reality-assisted building damage reconnaissance using virtual prototyping, Automation in Construction, 33, pp. 24-36, (2013)
[20]  
Fenais A., Ariaratnam S. T., Ayer S. K., Smilovsky N., Integrating Geographic Information Systems and Augmented Reality for Mapping Underground Utilities, Infrastructures, 4, 4, (2019)