Key Technologies, Applications and Trends of Internet of Things for Energy-Efficient 6G Wireless Communication in Smart Cities
Abstract
:1. Introduction
1.1. Research Aim and Objectives
1.2. Research Significance
1.3. IoT for 6G in Smart Cities
1.4. Trends
2. Methods and Materials
3. Results and Discussion
3.1. Identified Key Technologies of IoT for Energy-Efficient 6G in Smart Cities
3.2. Applications Key IoT Technologies for Energy-Efficient 6G in Smart Cities
3.3. Key IoT Trends for Energy-Efficient 6G in Smart Cities
4. Conclusions
Funding
Informed Consent Statement
Conflicts of Interest
Appendix A
Serial No. | Author Name | Title | Year | Findings and Results |
---|---|---|---|---|
Key Technologies | ||||
1 | Mohsan et al. | 6G: Envisioning The Key Technologies, Applications and Challenges | 2020 | Real-time intelligence twinned with extremely low latency is enhancing communication through the 6G network. Quantum communication can also increase the reliability of communication. |
2 | Zhang et al. | Quantum Secure Direct Communication With Quantum Memory | 2017 | A direct communication model employing a quantum channel is useful for instant communication through a 6G network, such as blockchain technology. |
3 | Hewa et al. | The Role of Blockchain in 6G: Challenges, Opportunities and Research Directions | 2020 | Blockchain is a disruptive kind of technology that allows for 6G intelligent resource management for smooth functioning. |
4 | Chi et al. | Visible Light Communication in 6G: Advances, Challenges, and Prospects | 2020 | Visible Light Communication (VLC) enhances data transmission through the 6G network. With the ability to transfer data ranging up to 400 and 800 THz, VLC is a time-efficient technology for smart cities. |
5 | Kohli et al. | A Review of Virtual Reality and Augmented Reality Use-Cases of Brain-Computer Interface Based Applications For Smart Cities | 2022 | The brain–computer interface (BCI) allows for the exchange of information and signals through different controlling machines such as sensible wearable headsets and embedded devices. |
6 | Liang et al. | Symbiotic Radio: Cognitive Backscattering Communications For Future Wireless Networks | 2020 | Symbiotic radio technology is effective for smooth communication processes as it employs backscattering link signals for advanced level communication and interaction in smart cities. |
7 | Imoize et al. | 6G Enabled Smart Infrastructure For A Sustainable Society: Opportunities, Challenges, and Research Roadmap | 2021 | Reconfigurable Intelligent Surface (RIS ) is a technology that is used in the doors and windows of buildings in smart cities as it shares signals without any interference among individuals. |
8 | Zhao et al. | A Comprehensive Survey of 6G Wireless Communications | 2020 | MIMO technology in 6G wireless connection can operate without cells and provides spectral efficiency in a communication network. |
9 | Zhang et al. | Wireless Information and Power Transfer: From Scientific Hypothesis to Engineering Practice | 2015 | Simultaneous Wireless Information and Power Transfer (SWIPT), technology is able to detect sensors using wireless connections to improve the communication network. |
10 | Giordani and Zorzi | Satellite Communication At Millimeter Waves: A Key Enabler of The 6G Era | 2020 | the Space–Air–Ground–Sea Integrated Network (SAGSIN) integrates air, land and sea to control traffic and enhance communication. |
11 | Nguyen et al. | 6G Internet of Things: A Comprehensive Survey | 2021 | The use of 6G technology enables the integration of various IoT technologies, such as edge intelligence, space–air–ground–underwater communications, reconfigurable intelligent surfaces, massive ultra-reliable, Terahertz communications, low-latency communications, and blockchain. |
12 | Allam et al. | Fundamentals of Smart Cities | 2022 | IoT-based 6G systems use technologies such as RFID and wireless sensor networks to process and transfer data at a high speed, which ensures their high performance. |
Key Applications | ||||
1 | Saad et al. | A Vision of 6G Wireless Systems: Applications, Trends, Technologies, and Open Research Problems | 2019 | 6G wireless communication can be employed in smart cities to develop a hybrid model of technology in a 3D setting. |
2 | Chowdhury et al. | 6G Wireless Communication Systems: Applications, Requirements, Technologies, Challenges, and Research Directions | 2020 | 6G wireless communication can be used for LiDAR, radar GPS, sonar and odometry and inertial measurement units when autonomous driving patterns are promoted. 6G wireless communication may improve ground-based controller communication when employed in robotics and the autonomous driving of vehicles. Moreover, the 6G wireless communication network can be used in the manufacturing industry with a high-data-quality transfer rate, with minimal chances of error. The 6G system also prevents data loss and ensures the safe transmission of data from the sender to the receiver. 6G is also applicable in haptic communication in smart cities. |
3 | Tariq et al. | A Speculative Study on 6G | 2020 | A smart healthcare system includes 6G precision medical treatment, providing high-level protection and supporting healthcare workers. |
4 | Xiaohu et al. | 6G Internet of Things: A Comprehensive Survey | 2020 | 6G has high potential in the following IoT applications: healthcare IoT, vehicular IoT autonomous driving, unmanned aerial vehicles, satellite IoT, and industrial IoT. |
5 | Atitallah et al. | Leveraging Deep Learning and Iot Big Data Analytics to Support The Smart Cities Development: Review and Future Directions | 2020 | The application of IoT based on 6G has the potential to handle big datasets and integrate cloud-based technologies to provide various services to smart cities. |
6 | Ye et al. | Big Data Analysis Technology For Electric Vehicle Networks in Smart Cities | 2020 | The application of 6G and IoT has enhanced the application of electric vehicles and autonomous cars. |
7 | Liu et al. | An Overview of Key Technologies and Challenges of 6G | 2021 | The use of 6G in IoT has widened the scope of applications, as various advanced technologies, such as VR and AR, can be implemented easily with great speed and security. |
8 | Ho et al. | Next-Generation Wireless Solutions For The Smart Factory, Smart Vehicles, The Smart Grid and Smart Cities | 2019 | IoT based on 6G has enhanced the application of smart grids with the potential to save various power losses and make energy systems more efficient. |
9 | Al-Turjman and Lemayian | Intelligence, Security, and Vehicular Sensor Networks in The Internet of Things (Iot)-Enabled Smart-Cities: An Overview | 2020 | IoT smart cities have taken the communication of information to another level due to the use of 6G, as it has very high speeds and ensures the fast travel of large data. |
10 | Wang et al. | Security and Privacy in 6G Networks: New Areas and New Challenges | 2020 | The use of 6G in IoT has also enhanced security applications, making smart cities safe from privacy and data breaches. This ensures large-scale applications and easy adoption by the public. |
Trends | ||||
1 | Kamruzzaman | 6G wireless communication assisted security management using cloud edge computing | 2022 | Security management is the process of identifying a company’s assets (such as people, buildings, equipment, systems, and information assets) and then developing, documenting, and implementing policies and procedures to secure those assets. Meanwhile, artificial intelligence (AI) applications are flourishing thanks to advances in deep learning and numerous hardware architecture improvements based on cloud edge computing (CEC) issues are associated with the Internet of Things (IoT), including inadequate security measures, user ignorance, and the dreaded active monitoring. |
2 | Wang et al. | Security and Privacy in 6G Networks: New Areas and New Challenges | 2020 | 6G is facilitating holographic connectivity, which implies that each and every device is connected to the network. Based on this integration of technologies, holographic connectivity may provide a strong connection between devices with a real-time simulation experience. In countries such as China and the US, augmented reality (AR) holographic technology with security features may be seen in the future. Thus, holographic technology in 6G may emerge as a new trend due to the security and privacy of the system. |
3 | Chowdhury et al. | 6G Wireless Communication Systems: Applications, Requirements, Technologies, Challenges, and Research Directions | 2020 | 6G communication systems may create access points and mobile terminals for fast and error-free communication. This can be helpful in reducing heterogeneous hardware constraints. MIMO techniques may advance the 6G architecture in the future. |
4 | Imoize et al. | 6G Enabled Smart Infrastructure For a Sustainable Society: Opportunities, Challenges, and Research Roadmap | 2021 | 6G wireless communication may be employed in smart reflective surfaces and environments in smart cities. This trend may increase when smart reflective surfaces are used in walls, roads and doors. |
5 | Luo | Machine Learning For Future Wireless Communications | 2020 | 6G may help in network layers such as traffic and mobility prediction in smart cities, prediction and accuracy in traffic, promoting mobility and handover management to reduce the chance of accidents. |
6 | Mahmoud et al. | A Comprehensive Survey on Technologies, Applications, Challenges, and Research Problems | 2021 | 6G wireless communication is a new trend in wireless energy transfer and harvesting in smart cities, allowing for energy transmission for harvesting to be possible in smart cities. |
7 | Sher et al. | An Overview of Key Technologies and Challenges of 6G | 2021 | Virtual reality (VR), Terahertz (THz) communication, visible light communication, radio stripes, quantum networks communication, and large intelligent surface (IRS) are the six different technologies that can be useful for 6G wireless communication. |
8 | Ji et al. | Amalgamation of Blockchain and Iot For Smart Cities Underlying 6G Communication: A Comprehensive Review | 2021 | The use IoT and 6G together increases efficiency in smart cities, but a single point of failure can negatively impact the lives of individuals. Therefore, blockchain can be effective in overcoming the challenges of implementing IoT and 6G in smart cities. |
9 | Elmeadawy and Shubair | Fundamentals of Smart Cities | 2019 | Smart cities include wireless sensor networks, IoT, RFID and 6G to increase intelligent urban facilities. |
10 | Han et al. | Role of Iot-Cloud Ecosystem in Smart Cities: Review and Challenges | 2020 | There is a limited computational capacity of end-devices in IoT infrastructure in smart cities. However, the future of smart cities may require both IoT and cloud infrastructure for better activities. |
13 | Fang et al. | Intelligence, Security, and Vehicular Sensor Networks in The Internet of Things (IoT)-Enabled Smart-Cities: An Overview | 2021 | The IoT smart cities paradigm is based on different design features such as reliability and robustness. However, 6G communication networks in smart cities may give rise to security concerns that must be addressed, and one way of doing this is to develop security standards for IoT devices. |
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Study Type (n = 60) | ||
---|---|---|
Number | Percentage | |
Overview | 39 | 65% |
Methodological | 21 | 35% |
Study designs (n = 60) | ||
Descriptive | 27 | 45% |
Experimental | 33 | 55% |
AMSTAR assessment (n = 60) | ||
Yes | 19 | 32% |
No | 41 | 68% |
Number of reviewers in total (n = 60) | ||
2 | 11 | 18% |
>2 | 49 | 82% |
IRR reported (n = 60) | ||
Yes | 42 | 70% |
No | 18 | 30% |
Publication Year > 2015 (n = 60) | ||
Yes | 58 | 23% |
No | 2 | 77% |
Technologies | Application | Trend | Challenges |
---|---|---|---|
Quantum communication | The application of quantum communication with respect to wireless communication and smart cities protects information channels against eavesdropping by means of using quantum cryptography [61]. | Among the key trends relating to quantum communication with respect to wireless communication and smart cities is the security of sensitive information, as the technology allows for strong encryption protocols to protect the communication messages [64]. Quantum communication has the ability to transform multiple markets, including many tech giants and startups, due to its unique abilities. Moreover, quantum communication is also expected to facilitate long-distance communication such as transmission across ocean, as the technology relies on satellite for the transfer of information [62]. | The key challenges include maintaining a quantum communication network, transferring of quantum states, a secure infrastructure and encryption, along with the creation of public trust [63]. |
Blockchain | Blockchain technology can facilitate the interconnection of cities through its vertical services such as accessibility, mobility, transversal system and security benefits. | The technology has the ability to empower smart cities by allowing for data exchange with a higher degree of transparency and reliability without the need for a centralized administrator. | The challenges include a lack of awareness relating to the usage and working of the technology, which results in a waste of resources during the exploration process. |
Visible light communication (VLC) | VLC is a wireless communication method, which allows for the transmission of information at a high speed with visible light. The information acquired through this technology is transmitted by modulating the intensity of light from the light source. | The key trends in VLC in smart cities include traffic management by facilitating vehicle-to-vehicle and vehicle-to-infrastructure communication. Moreover, streetlights that communicate with pedestrians’ VLC-enabled smart phone devices can help to regulate traffic. The technology leads to possibilities for hybrid communication. | The key challenges in the technology include flicker, which is a major problem as light travelling at such a high speed can cause damage to the human eye. For indoor environments, dimming also is a challenge as the light needs to be adjusted as per the requirements. |
6G BCI | The 6G applications include optical wireless communication, wireless power transfer and 3D networking. In addition, the technology can facilitate unmanned aerial vehicles, along with the advanced usage of AI in the smart cities. | Among the key trend of the technology include improved privacy in communication and transmission of information, improvement in global health, improved transportation, logistic facilities and security, all of which contribute to the building of smart cities. | The challenges relating to 6G communication include the attainment of a cost-effective approach for network deployment and expansion, data privacy enforcement, security concerns and the challenge of reducing the price of mobile communications. |
Symbiotic radio | Symbiotic radio technology is a batteryless smart device that allows for the sharing of data with corresponding access points by employing Wi-Fi TV signals through backscattering waves. | The key challenges of the technology include the establishment of an accurate channel model to capture the essential behavior of backscattering channel and the management of the limited resources required to fulfill the wireless communication requirements. Moreover, privacy and security are also concerns in the wireless communication system; since the primary and secondary transmissions in symbiotic radio technology are connected, if an attacker disrupts primary transmission, the probability of affecting the secondary transmission becomes increasingly easy. |
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Kamruzzaman, M.M. Key Technologies, Applications and Trends of Internet of Things for Energy-Efficient 6G Wireless Communication in Smart Cities. Energies 2022, 15, 5608. https://doi.org/10.3390/en15155608
Kamruzzaman MM. Key Technologies, Applications and Trends of Internet of Things for Energy-Efficient 6G Wireless Communication in Smart Cities. Energies. 2022; 15(15):5608. https://doi.org/10.3390/en15155608
Chicago/Turabian StyleKamruzzaman, M. M. 2022. "Key Technologies, Applications and Trends of Internet of Things for Energy-Efficient 6G Wireless Communication in Smart Cities" Energies 15, no. 15: 5608. https://doi.org/10.3390/en15155608
APA StyleKamruzzaman, M. M. (2022). Key Technologies, Applications and Trends of Internet of Things for Energy-Efficient 6G Wireless Communication in Smart Cities. Energies, 15(15), 5608. https://doi.org/10.3390/en15155608