AI-Enabled 6G Internet of Things: Opportunities, Key Technologies, Challenges, and Future Directions
Abstract
:1. Introduction
1.1. First-Generation (1G) Technology
1.2. Second-Generation (2G) Technology
1.3. Third-Generation (3G) Technology
1.4. Fourth-Generation (4G) Technology
1.5. Fifth-Generation (5G) Technology
1.6. Sixth-Generation (6G) Technology
2. Methodology
3. Artificial Intelligence Techniques for 6G Networks
3.1. AI-Empowered Mobile Edge Computing
3.2. Intelligent Mobility and Handover Management
3.3. Intelligent Spectrum Management
3.4. Terahertz Band Communication
3.5. Intelligent Communication Environment
3.6. Pervasive Artificial Intelligence
3.7. Ambient Backscatter Communications
3.8. Internet of Space Things with Cubesats and UAVs
3.9. Cell-Free Massive MIMO Communications
3.10. Tentative Timeline for 6G
3.11. Channel Estimation
3.12. Semantic Interoperability
3.13. Modulation Recognition
3.14. Intelligent Routing
4. AI-Enabled Intelligent 6G Network Applications
4.1. Smart Cities
4.2. Autonomous-Vehicle Communications
4.3. UAV Communication
4.4. Smart Robotic
4.5. Smart Agriculture
4.6. Virtual Reality
4.7. Online Video Games
4.8. Remote Surgery
5. AI-Enabled 6G Network Challenges
5.1. Channel Estimation
5.2. Network Traffic Prediction and Classification
5.3. Intelligent Routing
5.4. Radio Resource Management
5.5. Network Fault Management
5.6. Mobility Management
5.7. Network Botnet Detection
5.8. Network Energy Optimization
6. Future Research Directions
6.1. Computation Efficiency and Accuracy
6.2. Real-Time Video Analytics
6.3. Big Data Analytics for 6G
6.4. Robustness, Scalability, and Flexibility of Learning Frameworks
6.5. Hardware Development
6.6. Energy Management
6.7. Public Trust and Responsible Development
6.8. Human AI
6.9. AI-Enabled 6G for IoT
7. Discussion
8. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Technology | Features |
---|---|
First-Generation Technology (1G) | Analog, voice-only, limited coverage, large phones, low capacity |
Second-Generation Technology (2G) | Digital, text messaging (SMS), improved voice quality, better security, limited data services |
Third-Generation Technology (3G) | Higher data rates, mobile internet, video calling, better coverage, multimedia messaging (MMS), location-based services |
Fourth-Generation Technology (4G) | Mobile broadband, high data rates (up to 1 Gbps), seamless handovers, HD streaming, VoIP, improved spectral efficiency, reduced latency |
Fifth-Generation Technology (5G) | Ultra-fast data (up to 10 Gbps), massive device connectivity (IoT), network slicing, low latency (1 ms), enhanced mobile broadband (eMBB), ultra-reliable low-latency communications (URLLCs), massive machine-type communications (mMTCs) |
Sixth-Generation Technology (6G) | Terabit data rates, satellite integration, advanced AI for network management, ubiquitous connectivity, tactile internet, enhanced security, energy efficiency, holographic communication, integrated sensing and communication (ISAC) |
Research Direction | Description | Expected Outcomes |
---|---|---|
AI-Driven Network Management | Using AI to optimize network performance and resource allocation | More efficient and resilient networks |
Integration with Emerging Technologies | Combining 6G IoT with technologies like VR/AR and autonomous systems | Enhanced user experiences, new applications |
Sustainable IoT Solutions | Developing eco-friendly IoT technologies | Reduced environmental impact, sustainable growth |
Advanced Security Mechanisms | Creating robust security protocols for AI-enabled IoT systems | Increased trust and adoption of IoT technologies |
Human-Centric IoT Applications | Designing IoT solutions with a focus on user needs and experiences | Improved user satisfaction and usability |
Challenge | Description | Potential Solutions |
---|---|---|
Data Privacy and Security | Ensuring the protection of sensitive data in IoT systems | Advanced encryption, blockchain technology |
Scalability | Managing the vast number of IoT devices and data generated | Edge computing, hierarchical IoT architecture |
Interoperability | Ensuring seamless communication between diverse IoT devices | Standardization, open protocols |
Energy Efficiency | Reducing the energy consumption of IoT devices and networks | Energy-efficient hardware, AI-driven optimization |
Regulatory and Ethical Issues | Navigating the legal and ethical implications of AI and IoT | Clear regulations, ethical guidelines |
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Maduranga, M.W.P.; Tilwari, V.; Rathnayake, R.M.M.R.; Sandamini, C. AI-Enabled 6G Internet of Things: Opportunities, Key Technologies, Challenges, and Future Directions. Telecom 2024, 5, 804-822. https://doi.org/10.3390/telecom5030041
Maduranga MWP, Tilwari V, Rathnayake RMMR, Sandamini C. AI-Enabled 6G Internet of Things: Opportunities, Key Technologies, Challenges, and Future Directions. Telecom. 2024; 5(3):804-822. https://doi.org/10.3390/telecom5030041
Chicago/Turabian StyleMaduranga, Madduma Wellalage Pasan, Valmik Tilwari, R. M. M. R. Rathnayake, and Chamali Sandamini. 2024. "AI-Enabled 6G Internet of Things: Opportunities, Key Technologies, Challenges, and Future Directions" Telecom 5, no. 3: 804-822. https://doi.org/10.3390/telecom5030041
APA StyleMaduranga, M. W. P., Tilwari, V., Rathnayake, R. M. M. R., & Sandamini, C. (2024). AI-Enabled 6G Internet of Things: Opportunities, Key Technologies, Challenges, and Future Directions. Telecom, 5(3), 804-822. https://doi.org/10.3390/telecom5030041