
Virendra Palekar,

Aarya A. Adhav,

Unnati Patil,

Avinash R. Sonule,
- Student, Department of Computer Science and Engineering, A.C. Patil College of Engineering, Kharghar, Navi Mumbai, Maharashtra, India
- Student, Department of Computer Science and Engineering, A.C. Patil College of Engineering, Kharghar, Navi Mumbai, Maharashtra, India
- Student, Department of Computer Science and Engineering, A.C. Patil College of Engineering, Kharghar, Navi Mumbai, Maharashtra, India
- Assistant Professor, Department of Computer Science and Engineering, A.C. Patil College of Engineering, Kharghar, Navi Mumbai, Maharashtra, India
Abstract
Students benefit from this approach since it offers an alternative viewpoint on content production and T&L techniques. Managing global projects necessitates the use of techniques and resources to aid in content communication. The development of AR/VR content requires a significant amount of time if efficient design and visualization techniques are not employed. The use of highly detailed 3D games that may have required a large financial commitment for commercial enterprises is more common among the students. Though many educational institutions have fast and free internet available, its use may be limited by big file sizes, which would require high internet rates to download the animation content that may be put on a website. Low-polygon modeling techniques have traditionally been essential for AR and VR development. However, in multidisciplinary projects, teams often use their standard software to create 3D content, which can limit interactivity. This is because optimizing the software for performance tends to increase the file size of the developed media.
Keywords: Augmented reality (AR), Virtual reality (VR), Visualization, CAD drawings, QR Scanning
[This article belongs to Journal of Multimedia Technology & Recent Advancements(jomtra)]
References
- Behzadan AH, Iqbal A, Kamat VR. A collaborative augmented reality based modeling environment for construction engineering and management education. In: Proceedings of the 2011 Winter Simulation Conference (WSC); 2011 Dec 11; p. 3568-3576. IEEE.
- Shirazi A, Behzadan AH. Design and assessment of a mobile augmented reality-based information delivery tool for construction and civil engineering curriculum. J Prof Issues Eng Educ Pract. 2015;141(3):04014012.
- Redondo E, Fonseca D, Sánchez A, Navarro I. New strategies using handheld augmented reality and mobile learning-teaching methodologies, in architecture and building engineering degrees. Procedia Comput Sci. 2013;25:52-61.
- Fonseca D, Martí N, Redondo E, Navarro I, Sánchez A. Relationship between student profile, tool use, participation, and academic performance with the use of Augmented Reality technology for visualized architecture models. Comput Hum Behav. 2014;31:434-45.
- Chen YC, Chi HL, Hung WH, Kang SC. Use of tangible and augmented reality models in engineering graphics courses. J Prof Issues Eng Educ Pract. 2011;137(4):267-76.
- Shirazi A, Behzadan AH. Content delivery using augmented reality to enhance students’ performance in a building design and assembly project. Adv Eng Educ. 2015;4(3).
- Ayer SK, Messner JI, Anumba CJ. Augmented reality gaming in sustainable design education. J Archit Eng. 2016;22(1):04015012.
- Slany W. A mobile visual programming system for Android smartphones and tablets. In: 2012 IEEE Symposium on Visual Languages and Human-Centric Computing (VL/HCC); 2012 Sep 30; p. 265-266. IEEE.
- Dudley JJ, Schuff H, Kristensson PO. Bare-handed 3D drawing in augmented reality. In: Proceedings of the 2018 Designing Interactive Systems Conference; 2018 Jun 8; p. 241-252.
- Ali DF, Omar M, Mokhtar M, Suhairom N, Abdullah AH, Halim ND. A review on augmented reality application in engineering drawing classrooms. Man India. 2017;97(19):195-204.

Journal of Multimedia Technology & Recent Advancements
| Volume | 11 |
| Issue | 03 |
| Received | June 28, 2024 |
| Accepted | September 3, 2024 |
| Published | September 14, 2024 |
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