A Systematic Review of the Impact of Emerging Technologies on Student Learning, Engagement, and Employability in Built Environment Education
Abstract
:1. Introduction
- (1)
- What are the publication trends and prominent journals that feature research regarding technology integration in BE education?
- (2)
- What are the research hotspots (critical themes) in using state-of-the-art technology to facilitate BE education?
2. Technology in Education
2.1. Enhancing Teaching Methods and Learning Experience
2.2. Addressing Industry Demands and Real-World Applications
2.3. Improving Employability and Soft Skills Development
2.4. Research Gaps
3. Research Method
3.1. The Review Process
3.2. Database and Keywords
3.3. Study Selection Process with Inclusion and Exclusion Criteria
3.4. Data Analysis
4. Review Results
4.1. Descriptive Analysis
4.2. Thematic Analysis
4.2.1. Commonly Used Technologies in BE Education
4.2.2. Enhancing Student Engagement through Technology in BE Education
4.2.3. Improving Learning Outcomes with Technology in BE Education
4.2.4. Enhancing Employability Skills through Technology in BE Education
4.2.5. Challenges in Implementing Technologies in BE Education
5. Conclusions
6. Future Research
7. Theoretical and Practical Implications
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Nomenclature
AEC | architecture, engineering, and construction |
AI | artificial intelligence |
AR | Augmented Reality |
BIM | Building Information Modelling |
BE | Built Environment |
CATs | computer-aided technologies |
DT | Digital Twin |
EV | Enhanced Virtuality |
GBL | gamification-based learning |
ICTs | information and communication technologies |
IoT | Internet of Things |
IVR | Interactive Voice Response |
MR | Mixed Reality |
PRISMA | Preferred Reporting Items for Systematic Reviews and Meta-analyses |
SLR | systematic literature review |
SV | Smart Vision |
VR | Virtual Reality |
XR | Extended Reality |
References
- Portella, A.A. Built environment. In Encyclopedia of Quality of Life and Well-Being Research, 1st ed.; Michalos, A.C., Ed.; Springer Science+Business Media: Dordrecht, The Netherlands, 2014; pp. 454–461. [Google Scholar]
- Kamalipour, H.; Peimani, N. Towards an Informal Turn in the Built Environment Education: Informality and Urban Design Pedagogy. Sustainability 2019, 11, 4163. [Google Scholar] [CrossRef]
- Ndou, M.; Aigbavboa, C.O. A Theoretical Review of Ecological Economic Thinking amongst Professionals in the Built Environment. Procedia Manuf. 2017, 7, 523–528. [Google Scholar] [CrossRef]
- Opoku, A.; Guthrie, P. Education for sustainable development in the built environment. Int. J. Constr. Educ. Res. 2018, 14, 1–3. [Google Scholar] [CrossRef]
- Siriwardena, M.; Malalgoda, C.; Thayaparan, M.; Amaratunga, D.; Keraminiyage, K. Disaster resilient built environment: Role of lifelong learning and the implications for higher education. Int. J. Strateg. Prop. Manag. 2013, 17, 174–187. [Google Scholar] [CrossRef]
- Ebekozien, A.; Aigbavboa, C.O.; Aliu, J.; Thwala, W.D. Generic Skills of Future Built Environment Practitioners in South Africa: Unexplored Mechanism Via Students’ Perception. J. Eng. Des. Technol. 2022, 22, 561–577. [Google Scholar] [CrossRef]
- Hajirasouli, A.; Banihashemi, S.; Sanders, P.; Rahimian, F. BIM-enabled Virtual Reality (VR)-based Pedagogical Framework in Architectural Design Studios. Smart Sustain. Built Environ. 2023. [Google Scholar] [CrossRef]
- Sami Ur Rehman, M.; Abouelkhier, N.; Shafiq, M.T. Exploring the Effectiveness of Immersive Virtual Reality for Project Scheduling in Construction Education. Buildings 2023, 13, 1123. [Google Scholar] [CrossRef]
- Abidoye, R.; Lim, B.T.H.; Lin, Y.C.; Ma, J. Equipping Property Graduates for the Digital Age. Sustainability 2022, 14, 640. [Google Scholar] [CrossRef]
- Kahu, E.R.; Nelson, K. Student engagement in the educational interface: Understanding the mechanisms of student success. High. Educ. Res. Dev. 2018, 37, 58–71. [Google Scholar] [CrossRef]
- Zhang, J.; Xie, H.; Schmidt, K.; Xia, B.; Li, H.; Skitmore, M. Integrated experiential learning–based framework to facilitate project planning in civil engineering and construction management courses. J. Prof. Issues Eng. Educ. Pract. 2019, 145, 05019005. [Google Scholar] [CrossRef]
- Ruge, G.; McCormack, C. Building and construction students’ skills development for employability–reframing assessment for learning in discipline-specific contexts. Archit. Eng. Des. Manag. 2017, 13, 365–383. [Google Scholar] [CrossRef]
- Bhoir, S.; Esmaeili, B. State-of-the-art Review of Virtual Reality Environment Applications in Construction Safety. AEI 2015, 2015, 457–468. [Google Scholar]
- Shirazi, A.; Behzadan, A.H. Content Delivery Using Augmented Reality to Enhance Students’ Performance in a Building Design and Assembly Project. Adv. Eng. Educ. 2015, 4, n3. [Google Scholar]
- Obi, N.I.; Obi JS, C.; Okeke, F.O.; Nnaemeka-Okeke, R.C. Pedagogical Challenges of Architectural Education in Nigeria; Study of Curriculum Contents and Physical Learning Environment. Eur. J. Sustain. Dev. 2022, 11, 32. [Google Scholar] [CrossRef]
- Rybakova, A.; Shcheglova, A.; Bogatov, D.; Alieva, L. Using interactive technologies and distance learning in sustainable education. E3S Web Conf. 2021, 250, 07003. [Google Scholar] [CrossRef]
- Hayden, I. An evaluation of the design and use of applied visual interactive resources for teaching building regulations in higher education built environment programmes. Archit. Eng. Des. Manag. 2019, 15, 159–180. [Google Scholar] [CrossRef]
- Gledson, B.J.; Dawson, S. Use of simulation through BIM-enabled virtual projects to enhance learning and soft employability skills in architectural technology education. In Building Information Modelling, Building Performance, Design and Smart Construction; Dastbaz, M., Gorse, C., Moncaster, A., Eds.; Springer: Cham, Switzerland, 2017. [Google Scholar] [CrossRef]
- Al-Maskari, A.; Al Riyami, T.; Ghnimi, S. Factors affecting students’ preparedness for the fourth industrial revolution in higher education institutions. J. Appl. Res. High. Educ. 2022, 16, 246–264. [Google Scholar] [CrossRef]
- Gleason, N.W. Higher Education in the Era of the Fourth Industrial Revolution; Springer Nature Palgrave Macmillan: Singapore, 2018; p. 229. [Google Scholar]
- AbuMezied, A. What Role Will Education Play in the Fourth Industrial Revolution. In World Economic Forum. 2016. Available online: https://www.weforum.org/agenda/2016/01/what-role-will-education-play-in-the-fourth-industrial-revolution (accessed on 12 August 2024).
- Shahroom, A.A.; Hussin, N. Industrial revolution 4.0 and education. Int. J. Acad. Res. Bus. Soc. Sci. 2018, 8, 314–319. [Google Scholar] [CrossRef]
- Oke, A.; Fernandes, F.A.P. Innovations in teaching and learning: Exploring the perceptions of the education sector on the 4th industrial revolution (4IR). J. Open Innov. Technol. Mark. Complex. 2020, 6, 31. [Google Scholar] [CrossRef]
- Garzón, J.; Acevedo, J. Meta-analysis of the impact of Augmented Reality on students’ learning gains. Educ. Res. Rev. 2019, 27, 244–260. [Google Scholar] [CrossRef]
- Solnosky, R.; Parfitt, M.K.; Holland, R. Delivery methods for a multi-disciplinary architectural engineering capstone design course. Archit. Eng. Des. Manag. 2015, 11, 305–324. [Google Scholar] [CrossRef]
- Alizadehsalehi, S.; Hadavi, A.; Huang, J.C. Assessment of AEC students’ performance using BIM-into-VR. Appl. Sci. 2021, 11, 3225. [Google Scholar] [CrossRef]
- Spitzer, B.O.; Ma, J.H.; Erdogmus, E.; Kreimer, B.; Ryherd, E.; Diefes-Dux, H. Framework for the Use of Extended Reality Modalities in AEC Education. Buildings 2022, 12, 2169. [Google Scholar] [CrossRef]
- Vasilevski, N.; Birt, J. Analysing Construction Student Experiences of Mobile Mixed Reality Enhanced Learning in Virtual and Augmented Reality Environments. Res. Learn. Technol. 2020, 28. [Google Scholar] [CrossRef]
- Hajirasouli, A.; Banihashemi, S. Augmented Reality in Architecture and Construction Education: State of the Field and Opportunities. Int. J. Educ. Technol. High. Educ. 2022, 19, 39. [Google Scholar] [CrossRef]
- Hussein, H.A.A. Integrating augmented reality technologies into architectural education: Application to the course of landscape design at Port Said University. Smart Sustain. Built Environ. 2023, 12, 721–741. [Google Scholar] [CrossRef]
- Ibáñez, M.B.; Di Serio, Á.; Villarán, D.; Kloos, C.D. Experimenting with Electromagnetism Using Augmented Reality: Impact on Flow Student Experience and Educational Effectiveness. Comput. Educ. 2014, 71, 1–13. [Google Scholar] [CrossRef]
- Thompson, P. The Digital Natives as Learners: Technology Use Patterns and Approaches to Learning. Comput. Educ. 2013, 65, 12–33. [Google Scholar] [CrossRef]
- Sánchez-Mena, A.; Martí-Parreño, J. Drivers and barriers to adopting gamification: Teachers’ perspectives. Electron. J. e-Learn. 2017, 15, 434–443. [Google Scholar]
- Diao, P.H.; Shih, N.J. Trends and Research Issues of Augmented Reality Studies in Architectural and Civil Engineering Education—A Review of Academic Journal Publications. Appl. Sci. 2019, 9, 1840. [Google Scholar] [CrossRef]
- Ayer, S.K.; Messner, J.I.; Anumba, C.J. Augmented Reality Gaming in Sustainable Design Education. J. Archit. Eng. 2016, 22, 04015012. [Google Scholar] [CrossRef]
- Aguayo, C.; Cochrane, T.; Narayan, V. Key Themes in Mobile Learning: Prospects for Learner-generated Learning Through AR and VR. Australas. J. Educ. Technol. 2017, 33. [Google Scholar] [CrossRef]
- Sepasgozar, S.M. Digital Twin and Web-Based Virtual Gaming Technologies for Online Education: A Case of Construction Management and Engineering. Appl. Sci. 2020, 10, 4678. [Google Scholar] [CrossRef]
- Patil, K.R.; Ayer, S.K.; Wu, W.; London, J. Mixed Reality Multimedia Learning to Facilitate Learning Outcomes from Project Based Learning. In Construction Research Congress; American Society of Civil Engineers: Reston, VA, USA, 2020; pp. 153–161. [Google Scholar]
- Kim, J.; Irizarry, J. Evaluating the Use of Augmented Reality Technology to Improve Construction Management Student’s Spatial Skills. Int. J. Constr. Educ. Res. 2021, 17, 99–116. [Google Scholar] [CrossRef]
- Noghabaei, M.; Heydarian, A.; Balali, V.; Han, K. Trend Analysis on Adoption of Virtual and Augmented Reality in the Architecture, Engineering, and Construction industry. Data 2020, 5, 26. [Google Scholar] [CrossRef]
- Cochrane, T.; Smart, F.; Narayan, V. Special Issue on Mobile Mixed Reality. Res. Learn. Technol. 2018, 26. [Google Scholar] [CrossRef]
- Ebekozien, A.; Aigbavboa, C.; Aliu, J. Built environment academics for 21st-century world of teaching: Stakeholders’ perspective. Int. J. Build. Pathol. Adapt. 2023, 41, 119–138. [Google Scholar] [CrossRef]
- Moghayedi, A.; Le Jeune, K.; Massyn, M.; Ekpo, C. Establishing the key elements of incorporation and outcomes of 4th industrial revolution in built environment education: A mixed bibliographic and bibliometric analysis. J. Constr. Proj. Manag. Innov. 2020, 10, 1–19. [Google Scholar] [CrossRef]
- Rennie, L.J.; Stocklmayer, S.; Gilbert, J.K. Supporting Self-Directed Learning in Science and Technology beyond the School Years; Taylor & Francis: Abingdon, UK, 2019; p. 225. [Google Scholar]
- Ku, K.; Mahabaleshwarkar, P.S. Building Interactive Modeling for Construction Education in Virtual Worlds. 2011. Available online: http://hdl.handle.net/10919/92597 (accessed on 12 August 2024).
- Keenaghan, G.; Horváth, I. State of the Art of Using Virtual Reality Technologies in Built Environment Education. In Proceedings of the TMCE 2014, Budapest, Hungary, 19–23 May 2014. [Google Scholar]
- Tumpa, R.J.; Ahmad, T.; Naeni, L.M.; Kujala, J. Computer-based Games in Project Management Education: A Review. Proj. Leadersh. Soc. 2024, 5, 100130. [Google Scholar] [CrossRef]
- Wang, L.H.; Chen, B.; Hwang, G.J.; Guan, J.Q.; Wang, Y.Q. Effects of digital game-based STEM education on students’ learning achievement: A meta-analysis. Int. J. STEM Educ. 2022, 9, 26. [Google Scholar] [CrossRef]
- Li, X.; Yi, W.; Chi, H.L.; Wang, X.; Chan, A.P. A critical review of virtual and augmented reality (VR/AR) applications in construction safety. Autom. Constr. 2018, 86, 150–162. [Google Scholar] [CrossRef]
- Zhang, Y.; Liu, H.; Kang, S.C.; Al-Hussein, M. Virtual reality applications for the built environment: Research trends and opportunities. Autom. Constr. 2020, 118, 103311. [Google Scholar] [CrossRef]
- Skaik, S.; Tumpa, R.J. A case study of the practical implications of using interactive technology in teaching international postgraduate students. Contemp. Educ. Technol. 2021, 14, ep335. [Google Scholar] [CrossRef] [PubMed]
- Sampaio, A.Z.; Ferreira, M.M.; Rosário, D.P.; Martins, O.P. 3D and VR models in Civil Engineering education: Construction, rehabilitation and maintenance. Autom. Constr. 2010, 19, 819–828. [Google Scholar] [CrossRef]
- Repetto, C.; Serino, S.; Macedonia, M.; Riva, G. Virtual reality as an embodied tool to enhance episodic memory in elderly. Front. Psychol. 2016, 7, 214435. [Google Scholar] [CrossRef] [PubMed]
- Okada, Y.; Kaneko, K.; Shi, W. Web-based VR Education Contents Supporting VR-goggles and User Study. In Proceedings of the 31st International Conference on Computers in Education, ICCE 2023, Matsue, Japan, 4–8 December 2023; Asia-Pacific Society for Computers in Education: Taoyuan City, Taiwan, 2023; pp. 774–779. [Google Scholar]
- Young, B.; Ellobody, E.; Hu, T.W. 3D visualization of structures using finite-element analysis in teaching. J. Prof. Issues Eng. Educ. Pract. 2012, 138, 131–138. [Google Scholar] [CrossRef]
- Han, I. Immersive virtual field trips in education: A mixed-methods study on elementary students’ presence and perceived learning. Br. J. Educ. Technol. 2020, 51, 420–435. [Google Scholar] [CrossRef]
- Lin, Y.J.; Wang, H.C. Using virtual reality to facilitate learners’ creative self-efficacy and intrinsic motivation in an EFL classroom. Educ. Inf. Technol. 2021, 26, 4487–4505. [Google Scholar] [CrossRef]
- Rahimian, F.P.; Ibrahim, R. Impacts of VR 3D sketching on novice designers’ spatial cognition in collaborative conceptual architectural design. Des. Stud. 2011, 32, 255–291. [Google Scholar] [CrossRef]
- Jin, R.; Yang, T.; Piroozfar, P.; Kang, B.G.; Wanatowski, D.; Hancock, C.M.; Tang, L. Project-based pedagogy in interdisciplinary building design adopting BIM. Eng. Constr. Archit. Manag. 2018, 25, 1376–1397. [Google Scholar] [CrossRef]
- Tumpa, R.J.; Skaik, S.; Ham, M.; Chaudhry, G. Authentic Design and Administration of Group-based Assessments to Improve the Job-readiness of Project Management Graduates. Sustainability 2022, 14, 9679. [Google Scholar] [CrossRef]
- Balogun, T.B. Built environment professionals’ perspective on digital technology skills. Educ. + Train. 2024, 66, 181–194. [Google Scholar] [CrossRef]
- Underwood, J.; Shelbourn, M. (Eds.) Handbook of Research on Driving Transformational Change in the Digital Built Environment; IGI Global: London, UK, 2021. [Google Scholar]
- Leon, I.; Sagarna, M.; Mora, F.; Otaduy, J.P. BIM Application for Sustainable Teaching Environment and Solutions in the Context of COVID-19. Sustainability 2021, 13, 4746. [Google Scholar] [CrossRef]
- Tumpa, R.J.; Skaik, S.; Ham, M.; Chaudhry, G. Enhancing project management graduates’ employability through group assessment innovations: An empirical study. Proj. Leadersh. Soc. 2023, 4, 100084. [Google Scholar] [CrossRef]
- Bai, X.; He, Y.; Kohlbacher, F. Older people’s adoption of e-learning services: A qualitative study of facilitators and barriers. Gerontol. Geriatr. Educ. 2020, 41, 291–307. [Google Scholar] [CrossRef] [PubMed]
- Papadonikolaki, E.; Krystallis, I.; Morgan, B. Digital technologies in built environment projects: Review and future directions. Proj. Manag. J. 2022, 53, 501–519. [Google Scholar] [CrossRef]
- Sawhney, A.; Riley, M.; Irizarry, J. Construction 4.0: An Innovation Platform for the Built Environment; Routledge: London, UK, 2020; ISBN 9780367027308. [Google Scholar]
- Fernandes, J.O.; Singh, B. Accreditation and ranking of higher education institutions (HEIs): Review, observations and recommendations for the Indian higher education system. TQM J. 2022, 34, 1013–1038. [Google Scholar] [CrossRef]
- Darwish, M.; Kamel, S.; Assem, A.M. A Theoretical Model of Using Extended Reality in Architecture Design Education. Eng. Res. J.-Fac. Eng. (Shoubra) 2023, 52, 36–45. [Google Scholar] [CrossRef]
- Lu, Y. Teaching Architectural Technology Knowledge Using Virtual Reality Technology. Can. J. Learn. Technol. 2022, 48, 1–26. [Google Scholar] [CrossRef]
- Lucas, J.; Gajjar, D. Influence of Virtual Reality on Student Learning in Undergraduate Construction Education. Int. J. Constr. Educ. Res. 2022, 18, 374–387. [Google Scholar] [CrossRef]
- Marinelli, M.; Male, S.A.; Valentine, A.; Guzzomi, A.; Van Der Veen, T.; Hassan, G.M. Using VR to Teach Safety in Design: What and How Do Engineering Students Learn? Eur. J. Eng. Educ. 2023, 48, 538–558. [Google Scholar] [CrossRef]
- Xiao, Y.; Watson, M. Guidance on Conducting a Systematic Literature Review. J. Plan. Educ. Res. 2017, 39, 93–112. [Google Scholar] [CrossRef]
- Rauniyar, S.; Awasthi, M.K.; Kapoor, S.; Mishra, A.K. Agritourism: Structured literature review and bibliometric analysis. Tour. Recreat. Res. 2021, 46, 52–70. [Google Scholar] [CrossRef]
- Gao, Y.; Gonzalez, V.A.; Yiu, T.W. The Effectiveness of Traditional Tools and Computer-aided Technologies for Health and Safety Training in the Construction Sector: A Systematic Review. Comput. Educ. 2019, 138, 101–115. [Google Scholar] [CrossRef]
- Wen, J.; Gheisari, M. Using Virtual Reality to Facilitate Communication in the AEC Domain: A Systematic Review. Constr. Innov. 2020, 20, 509–542. [Google Scholar] [CrossRef]
- Ummihusna, A.; Zairul, M. Exploring Immersive Learning Technology as Learning Tools in Experiential Learning for Architecture Design Education. Open House Int. 2022, 47, 605–619. [Google Scholar] [CrossRef]
- Liberati, A.; Altman, D.G.; Tetzlaff, J.; Mulrow, C.; Gøtzsche, P.C.; Ioannidis, J.P.; Clarke, M.; Devereaux, P.J.; Kleijnen, J.; Moher, D. The PRISMA Statement for Reporting Systematic Reviews and Meta-analyses of Studies that Evaluate Health Care Interventions: Explanation and Elaboration. Ann. Intern. Med. 2009, 151, W-65–W-94. [Google Scholar] [CrossRef] [PubMed]
- Page, M.J.; McKenzie, J.E.; Bossuyt, P.M.; Boutron, I.; Hoffmann, T.C.; Mulrow, C.D.; Shamseer, L.; Tetzlaff, J.M.; Akl, E.A.; Brennan, S.E.; et al. The PRISMA 2020 Statement: An Updated Guideline for Reporting Systematic Reviews. Int. J. Surg. 2021, 88, 105906. [Google Scholar] [CrossRef]
- Benavides, L.M.C.; Tamayo Arias, J.A.; Arango Serna, M.D.; Branch Bedoya, J.W.; Burgos, D. Digital transformation in higher education institutions: A systematic literature review. Sensors 2020, 20, 3291. [Google Scholar] [CrossRef]
- Mukul, E.; Büyüközkan, G. Digital transformation in education: A systematic review of education 4.0. Technol. Forecast. Soc. Chang. 2023, 194, 122664. [Google Scholar] [CrossRef]
- Cui, C.; Liu, Y.; Hope, A.; Wang, J. Review of Studies on the Public–Private Partnerships (PPP) for Infrastructure Projects. Int. J. Proj. Manag. 2018, 36, 773–794. [Google Scholar] [CrossRef]
- Zhang, S.; Chan, A.P.; Feng, Y.; Duan, H.; Ke, Y. Critical Review on PPP Research—A Search from the Chinese and International Journals. Int. J. Proj. Manag. 2016, 34, 597–612. [Google Scholar] [CrossRef]
- Grimaldi, M.; Corvello, V.; De Mauro, A.; Scarmozzino, E. A systematic literature review on intangible assets and open innovation. Knowl. Manag. Res. Pract. 2017, 15, 90–100. [Google Scholar] [CrossRef]
- Ghanbaripour, A.N.; Tumpa, R.J.; Sunindijo, R.Y.; Zhang, W.; Yousefian, P.; Camozzi, R.N.; Hon, C.; Talebian, N.; Liu, T.; Hemmati, M. Retention over attraction: A review of women’s experiences in the Australian construction industry; challenges and solutions. Buildings 2023, 13, 490. [Google Scholar] [CrossRef]
- Braun, V.; Clarke, V. Using thematic analysis in psychology. Qual. Res. Psychol. 2006, 3, 77–101. [Google Scholar] [CrossRef]
- Beekhuyzen, J. Putting the pieces of the puzzle together: Using NVivo for a literature review. In Proceedings of the QualIT2007: Qualitative Research, From the Margins to the Mainstream, Wellington, New Zealand, 18–20 November 2007. [Google Scholar]
- King, S.; Boyer, J.; Bell, T.; Estapa, A. An Automated Virtual Reality Training System for Teacher-Student Interaction: A Randomized Controlled Trial. JMIR Serious Games 2022, 10, e41097. [Google Scholar] [CrossRef]
- Le, Q.T.; Pedro, A.; Park, C.S. A Social Virtual Reality Based Construction Safety Education System for Experiential Learning. J. Intell. Robot. Syst. 2015, 79, 487–506. [Google Scholar] [CrossRef]
- Lotfi, Y.A.; Aly, T.F.; Sadek, R. Virtual Reality as A Tool to Enhance Students’ Perceptions of Architectural Historical Spaces. Eng. J. 2023, 2, 596–607. [Google Scholar] [CrossRef]
- Pham, H.C.; Dao, N.; Pedro, A.; Le, Q.T.; Hussain, R.; Cho, S.; Park, C.S.I.K. Virtual Field trip for Mobile Construction Safety Education Using 360-degree Panoramic Virtual Reality. Int. J. Eng. Educ. 2018, 34, 1174–1191. [Google Scholar]
- Ceylan, S. Using Virtual Reality to Improve Visual Recognition Skills of First Year Architecture Students: A Comparative Study. In Proceedings of the 12th International Conference on Computer Supported Education (CSEDU), Prague, Czech Republic, 2–4 May 2020; Volume 2, pp. 54–63. [Google Scholar]
- Hendricks, D. Applications of Augmented Reality as a Blended Learning Tool for Architectural Education. Scholarsh. Teach. Learn. South 2022, 6, 79–94. [Google Scholar] [CrossRef]
- Wolf, M.; Teizer, J.; Wolf, B.; Bükrü, S.; Solberg, A. Investigating Hazard Recognition in Augmented Virtuality for Personalized Feedback in Construction Safety Education and Training. Adv. Eng. Inform. 2022, 51, 101469. [Google Scholar] [CrossRef]
- Mastrolembo Ventura, S.; Castronovo, F.; Nikolić, D.; Ciribini, A. Implementation of Virtual Reality in Construction Education: A Content-Analysis Based Literature Review. J. Inf. Technol. Constr. 2022, 27, 705–731. [Google Scholar] [CrossRef]
- Kuncoro, T.; Ichwanto, M.A.; Muhammad, D.F. VR-Based Learning Media of Earthquake-resistant Construction for Civil Engineering Students. Sustainability 2023, 15, 4282. [Google Scholar] [CrossRef]
- Mahat, N.; Azman, M.A.; Bohari, A.A.M.; Rashid, A.F.A.; Khamaksorn, A.; Abd, M.I. BC-DIGIT: A Digital Game Application for Learning Building Construction Technology Course among Undergraduate Students. Development 2022, 11, 467–473. [Google Scholar] [CrossRef] [PubMed]
- Lucas, J.D. Identifying learning objectives by seeking a balance between student and industry expectations for technology exposure in construction education. J. Prof. Issues Eng. Educ. Pract. 2017, 143, 05016013. [Google Scholar] [CrossRef]
- Xu, L.; Zhang, J.; Ding, Y.; Sun, G.; Zhang, W.; Philbin, S.P.; Guo, B.H. Assessing the Impact of Digital Education and the Role of the Big Data Analytics Course to Enhance the Skills and Employability of Engineering Students. Front. Psychol. 2022, 13, 974574. [Google Scholar] [CrossRef]
- Pugacheva, N.; Kirillova, T.; Kirillova, O.; Luchinina, A.; Korolyuk, I.; Lunev, A. Digital Paradigm in Educational Management: The Case of Construction Education Based on Emerging Technologies. Int. J. Emerg. Technol. Learn. 2020, 15, 96–115. [Google Scholar] [CrossRef]
- Landorf, C.; Ward, S. The Learning Impact of a 4-dimensional Digital Construction Learning Environment. Int. J. Educ. Pedagog. Sci. 2017, 11, 1266–1271. [Google Scholar]
- Pedro, A.; Le, Q.T.; Park, C.S. Framework for integrating safety into construction methods education through interactive virtual reality. J. Prof. Issues Eng. Educ. Pract. 2016, 142, 04015011. [Google Scholar] [CrossRef]
- Tan, Y.; Xu, W.; Li, S.; Chen, K. Augmented and Virtual Reality (AR/VR) for Education and Training in the AEC Industry: A Systematic Review of Research and Applications. Buildings 2022, 12, 1529. [Google Scholar] [CrossRef]
- Fauzi, A.F.A.A.; Ali, K.N.; Amirudin, R. Evaluating Students Readiness, Expectancy, Acceptance and Effectiveness of Augmented Reality Based Construction Technology Education. Int. J. Built Environ. Sustain. 2019, 6, 7–13. [Google Scholar] [CrossRef]
- Kassem, M.; Benomran, L.; Teizer, J. Virtual Environments for Safety Learning in Construction and Engineering: Seeking Evidence and Identifying Gaps for Future Research. Vis. Eng. 2017, 5, 16. [Google Scholar] [CrossRef]
- Park, C.S.; Le, Q.T.; Pedro, A.; Lim, C.R. Interactive Building Anatomy Modeling for Experiential Building Construction Education. J. Prof. Issues Eng. Educ. Pract. 2016, 142, 04015019. [Google Scholar] [CrossRef]
- Lasheen, R.; Khodeir, L.; Nessim, A. Identifying the Gap Between Practical and Educational Fields in the Egyptian AEC Industry in the Age of Digitalization. Eng. Res. J. 2022, 176, 281–303. [Google Scholar] [CrossRef]
- Mohamed, N.A.G.; Sadek, M.R. Artificial Intelligence as a Pedagogical Tool for Architectural Education: What Does the Empirical Evidence Tell Us? MSA Eng. J. 2023, 2, 133–148. [Google Scholar]
- Shanbari, H.A.; Blinn, N.M.; Issa, R.R. Laser Scanning Technology and BIM in Construction Management Education. J. Inf. Technol. Constr. 2016, 21, 204–217. [Google Scholar]
- Urban, H.; Pelikan, G.; Schranz, C. Augmented Reality in AEC Education: A Case Study. Buildings 2022, 12, 391. [Google Scholar] [CrossRef]
- Jacobsson, M.; Linderoth, H.C. Newly Graduated Students’ Role as Ambassadors for Digitalisation in Construction Firms. Constr. Manag. Econ. 2021, 39, 759–772. [Google Scholar] [CrossRef]
- Kandi, V.R.; Castronovo, F.; Brittle, P.; Mastrolembo Ventura, S.; Nikolic, D. Assessing the Impact of a Construction Virtual Reality Game on Design Review Skills of Construction Students. J. Archit. Eng. 2020, 26, 04020035. [Google Scholar] [CrossRef]
- Vassigh, S.; Davis, D.; Behzadan, A.H.; Mostafavi, A.; Rashid, K.; Alhaffar, H.; Elias, A.; Gallardo, G. Teaching Building Sciences in Immersive Environments: A Prototype Design, Implementation, and Assessment. Int. J. Constr. Educ. Res. 2020, 16, 180–196. [Google Scholar] [CrossRef]
- Shojaei, A.; Rokooei, S.; Mahdavian, A.; Carson, L.; Ford, G. Using immersive video technology for construction management content delivery: Pilot study. J. Inf. Technol. Constr. 2021, 26, 886–901. [Google Scholar] [CrossRef]
- Baduge, S.K.; Thilakarathna, S.; Perera, J.S.; Arashpour, M.; Sharafi, P.; Teodosio, B.; Shringi, A.; Mendis, P. Artificial intelligence and smart vision for building and construction 4.0: Machine and deep learning methods and applications. Autom. Constr. 2022, 141, 104440. [Google Scholar] [CrossRef]
- Zamora-Polo, F.; Luque Sendra, A.; Aguayo-Gonzalez, F.; Sanchez-Martin, J. Conceptual Framework for the Use of Building Information Modeling in Engineering Education. Int. J. Eng. Educ. 2019, 35, 744–755. [Google Scholar]
- Kraus, M.; Rust, R.; Rietschel, M.; Hall, D. Improved Perception of AEC Construction Details via Immersive Teaching in Virtual Reality. arXiv 2022, arXiv:2209.10617. [Google Scholar]
Themes | Codes | Articles | Frequency |
---|---|---|---|
Technology and Student Engagement in BE Education | Improved students’ understanding, engagement, interests, and comprehension | [27,69,72,75,88,89,90,91] | 9 |
Increased students’ motivation | [7,28,75,92,93,94] | 6 | |
Better engagement in the design process | [37,70,71,92,95] | 5 | |
Providing real-time experiences in safe settings | [37,72,91,96] | 4 | |
Interaction with virtual architectural details and understand spatial linkages | [29,70,92,95] | 4 | |
Facilitation of active learning | [7,28,97] | 3 | |
Improved critical thinking | [7,98,99] | 3 | |
Improved collaborative learning and teamwork | [89,98,99] | 3 | |
Improved engagement with equipment | [37,91,93] | 3 | |
Providing interesting and realistic learning settings | [29,39] | 2 | |
Improved comprehension and practical abilities | [71] | 1 | |
Dynamic interaction with information | [95] | 1 | |
Technology and Learning Outcomes in BE Education | Improved immersive and interactive learning experiences | [7,28,37,69,70,71,90,92,95] | 9 |
Increased knowledge and skills | [7,8,27,28,88,89,97,100] | 8 | |
Improved learning experiences and environment | [7,28,37,70,71,92,95] | 7 | |
Enhanced learning outcomes | [69,90,101,102,103] | 5 | |
Improved visualization and understanding of construction processes and complex concepts | [8,27,77,104] | 5 | |
Increased safety training and education | [72,89,91,94,105] | 5 | |
Enhanced students’ comprehension of structural elements | [37,70,71,92,95] | 5 | |
Facilitation of construction methodologies | [37,70,71,92,95] | 5 | |
Improved hazard identification | [72,89,105] | 3 | |
Improved students’ academic performance and decision-making | [26,77,106] | 3 | |
Self-directed learning resources and problem-based learning | [101,103] | 2 | |
Improved understanding of subjects, grades, and educational experiences | [101,103] | 2 | |
Improved both hard and soft skills | [98,99] | 2 | |
Ability to carry out a virtual exploration of construction sites | [37,91] | 2 | |
Improved spatial and graphical skills | [29,39] | 2 | |
Comprehension of challenging assembly processes | [29,39] | 2 | |
Integrating in-class demonstration | [101,103] | 2 | |
Ability to test ideas and receive immediate feedback | [95] | 1 | |
Technology and Employability in BE Education | By equipping students with necessary knowledge and competencies, and more competitive in the job market by expanding their knowledge of cutting-edge technologies | [9,70,98,99,100,107] | 6 |
Challenges in Implementing Technologies in BE Education | Restricted access to resources, high costs, need for training, and requirement for a foundational understanding of usage | [8,27,69,88,90,92,98,103,108,109,110] | 11 |
Complexity of implementation | [27,103,111] | 3 | |
Poor integration with other design methodologies | [28,69,95] | 3 | |
Faculty reluctance | [27,103] | 2 | |
Motion sickness | [88] | 1 |
Emerging Technologies in BE Education | Articles | Frequency |
---|---|---|
Virtual Reality (VR) | [7,26,27,28,29,37,69,70,71,72,88,89,91,92,93,95,96,100,103,105,106,112,113] | 23 |
Augmented Reality (AR) | [26,27,28,29,72,93,100,103,104,105,107,110,113] | 13 |
Building Information Modeling (BIM) | [7,26,98,99,100,105,109,110] | 8 |
Gamification | [29,37,70,92,95,97,105] | 7 |
Extended Reality (XR) | [8,27,69,90,103] | 6 |
Mixed Reality (MR) | [26,27,28] | 4 |
3D scanning | [26,27,28] | 3 |
Drones | [26,27,28] | 3 |
Interactive Voice Response (IVR) | [8,27] | 2 |
Computer-aided technologies (CATs) | [75] | 1 |
Enhanced virtuality (EV) | [94] | 1 |
Laser scanning | [109] | 1 |
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© 2024 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Ghanbaripour, A.N.; Talebian, N.; Miller, D.; Tumpa, R.J.; Zhang, W.; Golmoradi, M.; Skitmore, M. A Systematic Review of the Impact of Emerging Technologies on Student Learning, Engagement, and Employability in Built Environment Education. Buildings 2024, 14, 2769. https://doi.org/10.3390/buildings14092769
Ghanbaripour AN, Talebian N, Miller D, Tumpa RJ, Zhang W, Golmoradi M, Skitmore M. A Systematic Review of the Impact of Emerging Technologies on Student Learning, Engagement, and Employability in Built Environment Education. Buildings. 2024; 14(9):2769. https://doi.org/10.3390/buildings14092769
Chicago/Turabian StyleGhanbaripour, Amir Naser, Nima Talebian, Dane Miller, Roksana Jahan Tumpa, Weiwei Zhang, Mehdi Golmoradi, and Martin Skitmore. 2024. "A Systematic Review of the Impact of Emerging Technologies on Student Learning, Engagement, and Employability in Built Environment Education" Buildings 14, no. 9: 2769. https://doi.org/10.3390/buildings14092769