The Making of Smart Campus: A Review and Conceptual Framework
Abstract
:1. Introduction
2. Materials and Methods
2.1. Research Design
2.2. Category Formulation
3. Results
3.1. General Observations
3.2. Economy Domain of Smart Campus
3.2.1. Business Services
3.2.2. Improved Efficiency
3.2.3. Innovation Ecosystem
3.2.4. Utility Cost Savings
3.3. Society Domain of Smart Campus
3.3.1. Community Engagement
3.3.2. Quality of Campus Life
3.3.3. Social Responsibility
3.3.4. Versatile Learning
3.4. Environment Domain of Smart Campus
3.4.1. Environmentally Friendly Services
3.4.2. Renewable Energy
3.4.3. Sustainable Development
3.4.4. Zero Waste
3.5. Governance Domain of Smart Campus
3.5.1. Cybersecurity
3.5.2. Data Governance
3.5.3. Decision-Making
3.5.4. Service Management
4. Discussion
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Appendix A
No | Reference | Title | Paper Type | Domain Covered | ||||
---|---|---|---|---|---|---|---|---|
Concept | Prototype | Economy | Society | Governance | Environment | |||
1 | [66] | Smart Green Campus: The Campus of Tomorrow | √ | √ | √ | √ | ||
2 | [91] | Studies in Computational Intelligence | √ | √ | √ | |||
3 | [65] | Smart UTB: An IoT Platform for Smart Campus | √ | √ | √ | |||
4 | [59] | Building Smart University Using Innovative Technology and Architecture | √ | √ | √ | √ | ||
5 | [105] | Modifiable Campus-Wide Appraisal Model for Sustainability | √ | √ | ||||
6 | [92] | Stakeholder’s Perspective of Digital Technologies and Platforms Towards Smart Campus Transition | √ | √ | ||||
7 | [108] | Nature-Inspired Search Method and Custom Waste Object Detection and Classification Model | √ | √ | ||||
8 | [78] | Internet-of-Things in Higher Education: A Study on Future Learning | √ | √ | ||||
9 | [87] | Named Data Networking for Efficient IoT-based Disaster Management | √ | √ | ||||
10 | [62] | IoT-Based Hybrid Renewable Energy System | √ | √ | √ | |||
11 | [112] | Intelligent Techniques for Detecting Network Attacks: Review and Research Directions | √ | √ | ||||
12 | [93] | Modeling the Impact of Massive Open Online Courses Implementation Factors on Continuance Intention of Students | √ | √ | ||||
13 | [61] | Smart Campus and Microgrid | √ | √ | √ | √ | ||
14 | [3] | Review on Smart Universities and Artificial Intelligence | √ | √ | √ | |||
15 | [113] | Computational Intelligence Approaches in Developing Cyberattack Detection System | √ | √ | ||||
16 | [110] | Hybrid deep-learning model to detect botnet attacks over internet-of-things environments | √ | √ | ||||
17 | [63] | Lessons from unsuccessful energy and buildings sustainability actions | √ | √ | √ | √ | ||
18 | [88] | Challenges and Solutions of Surveillance Systems in IoT-Enabled Smart Campus | √ | √ | ||||
19 | [11] | Facilitating Successful Smart Campus Transitions: A Systems Thinking-SWOT Analysis Approach | √ | √ | √ | |||
20 | [103] | A Building Energy Management System Based on an Equivalent Electric Circuit Model | √ | √ | √ | |||
21 | [70] | Scheduling and Sizing of Campus Microgrid | √ | √ | ||||
22 | [117] | Promoting Digital Campus to Smart Campus Based on Artificial Intelligence | √ | √ | ||||
23 | [107] | On exploiting Data Visualization and IoT for Increasing Sustainability and Safety | √ | √ | √ | |||
24 | [26] | Research and Construction of University Data Governance | √ | √ | √ | √ | ||
25 | [111] | Statistical Analysis of threatening IP in Universities Based Automated Script | √ | √ | ||||
26 | [43] | Smart campus communication, Internet-of-Things, and data governance: Understanding student tensions and imaginaries | √ | √ | √ | |||
27 | [68] | A Win-Win Scheme for Improving the Environmental Sustainability of University Commuters’ Mobility and Getting Environmental Credits | √ | √ | √ | √ | ||
28 | [79] | Joining Sustainable Design and Internet-of-Things Technologies on Campus: The IPVC Smartbottle | √ | √ | √ | |||
29 | [60] | Improving the Environmental Sustainability | √ | √ | √ | √ | ||
30 | [84] | Education and Digital Transformation | √ | √ | ||||
31 | [48] | I-Campus: Towards the Information Integration | √ | √ | √ | √ | √ | |
32 | [73] | On Campus: a mobile platform towards a smart campus | √ | √ | √ | √ | √ | |
33 | [24] | Smart campus: definition, framework, technologies, and services | √ | √ | √ | √ | ||
34 | [116] | Quantum-Inspired Blockchain-Based Cybersecurity: Securing Smart Edge Utilities in IoT-Based Smart Cities | √ | √ | ||||
35 | [69] | Optimal Scheduling of Campus Microgrid Considering the Electric Vehicle Integration | √ | √ | √ | |||
36 | [102] | Exploring Sustainable E-Learning Platforms for Improved Universities’ Faculty Engagement in the New World of Work | √ | √ | √ | |||
37 | [50] | Adaptive Learning Supported by Learning Analytics for Student Teachers’ Personalized Training during in-School Practices | √ | √ | √ | √ | ||
38 | [121] | The Campus as a Smart City: University of Málaga Environmental, Learning, and Research Approaches | √ | √ | √ | |||
39 | [21] | Design and Experimental Validation of a LoRaWAN Fog Computing Based Architecture for IoT Enabled Smart Campus | √ | √ | √ | √ | ||
40 | [115] | Deep learning architectures in emerging cloud computing architectures | √ | √ | ||||
41 | [71] | Optimal Energy Management of a Campus Microgrid | √ | √ | √ | |||
42 | [86] | Higher Education Institutions as Knowledge Brokers in Smart Specialization | √ | √ | ||||
43 | [114] | Hybrid Intrusion Detection using MapReduce based Black Widow Optimized Convolutional Long Short-Term Memory | √ | √ | ||||
44 | [49] | A Bibliometric Analysis of Blockchain Technology Research Using VOSviewer | √ | √ | √ | |||
45 | [118] | Design and Optimization of University Management Information System Based on Internet-of-Things and Intelligent Computing Model | √ | √ | ||||
46 | [94] | Methods of College Education Reform under the Background of Wireless Communication and VR Wireless | √ | √ | ||||
47 | [54] | A 5G-Enabled Smart Waste Management System | √ | √ | √ | √ | √ | |
48 | [64] | A Methodology for Designing Smart Urban Living Labs | √ | √ | √ | √ | ||
49 | [47] | Adapting Universities for Sustainability Education in Industry 4.0 | √ | √ | √ | |||
50 | [95] | Integrating mobile technologies in a smart classroom to improve the quality of the educational process: Synergy of technological and pedagogical tools | √ | √ | ||||
51 | [80] | Modelling and Implementing Smart Universities: An IT Conceptual Framework | √ | √ | √ | |||
52 | [83] | Study of Smart Campus Development Using Internet-of- Things | √ | √ | ||||
53 | [98] | A Blended Learning Model Based on Smart Learning Environment to Improve College Students’ Information Literacy | √ | √ | √ | |||
54 | [56] | Design and Implementation of a Blockchain-Based Energy Trading Platform for Electric Vehicles | √ | √ | ||||
55 | [122] | Software toolchain to enhance the management and integration of a sustainable campus | √ | √ | √ | √ | ||
56 | [15] | A Smart Campus Framework: Challenges and Opportunities for Education Based on the Sustainable Development Goals | √ | √ | √ | √ | ||
57 | [90] | Smart Academic and Professional Education | √ | √ | ||||
58 | [77] | Factors Affecting the Adoption of IoT-Based Smart Campus: An Investigation Using Analytical Hierarchical Process (AHP) | √ | √ | √ | √ | ||
59 | [51] | Smart Campus with A Learning Management System | √ | √ | √ | |||
60 | [52] | Fostering Equality in Education: The Blockchain Business Model for Higher Education (BBM-HE) | √ | √ | √ | √ | ||
61 | [57] | Modelling and Optimization of Resource Usage in an IoT Enabled Smart Campus | √ | √ | √ | √ | ||
62 | [81] | A Smart Education Model for Future Learning and Teaching Using IoT Smart Innovation, Systems and Technologies | √ | √ | ||||
63 | [109] | Fostering Environmental Awareness with Smart IoT Planters | √ | √ | √ | |||
64 | [96] | Integrating Entrepreneurship and Innovation Education into Higher Vocational Education Teaching Methods Based on Big Data Analysis | √ | √ | ||||
65 | [67] | Incorporating External Effects into Project Sustainability Assessments: The Case of a Green Campus Initiative Based on a Solar PV System | √ | √ | √ | √ | ||
66 | [119] | A Methodology for Creating a Macro Action Plan to Improve IT Use and Its Governance in Organizations | √ | √ | ||||
67 | [82] | A Low-Cost IoT Cyber-Physical System for Vehicle and Pedestrian Tracking | √ | √ | √ | |||
68 | [72] | An Optimal Energy Management System for University Campus Using the Hybrid Firefly Lion Algorithm (FLA) | √ | √ | √ | |||
69 | [8] | Application of a Big Data Framework for Data Monitoring | √ | √ | √ | √ | ||
70 | [106] | Integration of IoT and Blockchain to in the Processes of a University Campus | √ | √ | √ | |||
71 | [74] | An IoT Raspberry Pi-based parking management system | √ | √ | √ | √ | √ | |
72 | [76] | Application of Intelligent Algorithm Big Data Analysis in Smart Campus Construction | √ | √ | ||||
73 | [55] | A BIM-Based Smart System for Fire Evacuation | √ | √ | √ | |||
74 | [99] | Exploring the Innovative Blockchain-Based Application of Online Learning System in University | √ | √ | ||||
75 | [7] | Situational Awareness System | √ | √ | ||||
76 | [75] | A cloud-based automated parking system for smart campus | √ | √ | √ | √ | ||
77 | [53] | Trends and Challenges of Internet-of-Things in the Educational Domain | √ | √ | √ | |||
78 | [58] | A Systematic Review on Technologies and Applications in Smart Campus: A Human-Centered Case Study | √ | √ | √ | |||
79 | [25] | Challenges and Strategies of Student Management in Universities in the Context of Big Data Mobile Information Systems | √ | √ | √ | √ | ||
80 | [85] | Explore the Ubiquitous Learning on Campus: A Friendship-Based Knowledge Diffusion Approach | √ | √ | ||||
Total | 60 | 21 | 34 | 58 | 29 | 39 |
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Theme | Definition | Source |
---|---|---|
Smart city development focused | “Considered a small smart city that acts within the context of smart cities, which offer intelligent services and applications to their citizens to improve their quality of life.” | [16,17] (p. 6) |
“Acts within the context of smart cities, which offer intelligent services and applications to their citizens to improve their quality of life.” | [17] (p. 6) | |
Advanced technology infrastructure focused | “Refers to the hardware and software required to provide advanced intelligent context-aware services and applications to university students and staff.” | [18] (p. 3) |
“A data-oriented, networked, intelligent and collaborative teaching, management and scientific research system based on big data, internet-of-things, mobile internet and other advanced information technologies.” | [19] (p. 204) | |
“A collaboration of technologies such as big data, cloud computing, IoT, internet and high-performance computing, virtualization, mobile network and social network, sensors and common communication interfaces.” | [20] (p. 2) | |
“Intelligent infrastructure where smart sensors and actuators collaborate to collect information and interact with the machines, tools, and users of a university campus.” | [21] (p. 1) | |
“Utilizes and integrates smart physical and digital spaces to establish responsive, intelligent, and improved services for creating productive, creative, and sustainable environment.” | [22] (p. 3) | |
“Not only about deploying smart platforms to effectively perform campus-related services but it is a broad concept that includes many electronic and physical objects that communicate and interact with each other.” | [23] (p. 255) | |
Enhanced education experience focused | “An educational environment that is penetrated with enabling technologies for smart services to enhance educational performance while meeting stakeholders’ interests, with broad interactions with other interdisciplinary domains in the smart city context.” | [24] (p. 4) |
“Is the high-end form of education systems.” | [25] (p. 16145) | |
“To integrate information technology into teaching and education to provide a teaching environment with network, data, integration, and intelligence.” | [26] (p. 450) |
Primary Inclusionary Criteria | Primary Exclusionary Criteria | Secondary Inclusionary Criteria | Secondary Exclusionary Criteria |
---|---|---|---|
Academic journal articles | Duplicate records | Relevant to the smart campus notion | Irrelevant to the smart campus notion |
Peer-reviewed | Books and chapters | Relevant to research objective | Irrelevant to research objective |
Full-text available online | Industry reports | ||
Published in English | Government reports |
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© 2023 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/).
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Polin, K.; Yigitcanlar, T.; Limb, M.; Washington, T. The Making of Smart Campus: A Review and Conceptual Framework. Buildings 2023, 13, 891. https://doi.org/10.3390/buildings13040891
Polin K, Yigitcanlar T, Limb M, Washington T. The Making of Smart Campus: A Review and Conceptual Framework. Buildings. 2023; 13(4):891. https://doi.org/10.3390/buildings13040891
Chicago/Turabian StylePolin, Ken, Tan Yigitcanlar, Mark Limb, and Tracy Washington. 2023. "The Making of Smart Campus: A Review and Conceptual Framework" Buildings 13, no. 4: 891. https://doi.org/10.3390/buildings13040891
APA StylePolin, K., Yigitcanlar, T., Limb, M., & Washington, T. (2023). The Making of Smart Campus: A Review and Conceptual Framework. Buildings, 13(4), 891. https://doi.org/10.3390/buildings13040891