An Investigation of the Policies and Crucial Sectors of Smart Cities Based on IoT Application
Abstract
:1. Introduction
2. Motivation and Objective of the Critical Review
3. Methodology
4. Results and Discussion
4.1. Recognizing the Existing Obstacles in the Development of SCs
4.1.1. Environment
4.1.2. Public Transport
4.1.3. Utilities
4.1.4. Street Lighting
4.1.5. Waste Management
4.1.6. Public Safety
4.1.7. Smart Parking
4.2. Strategic Policies for Boosting Economic Recovery of Smart Cities through the IoT
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Sectors | Barriers | Solution | References |
---|---|---|---|
Public transport | More CO2 emissions due to increased private cars, increase in noise from private cars in cities, lack of monitoring patterns of transport use by citizens, absence or low use of monitoring systems, lack of safety and efficiency in roads, congestion and traffic, sudden accidents, and defective roads | Utilization of proper patterns and use of monitoring sensors, utilization of different types of sensors to accurately monitor roads and improve GPS systems using data from drivers’ smartphones, and improvement in the quality of roads | [29,31,34,36,76,77,78,79,80] |
Street lighting | Lack of sensor-equipped street lights and defective lights | Streetlights with sensors and establishment of a connection between the sensors and cloud management, utilization of a monitoring-system switch to scan conditions and send signals to increase or dim the lights, and use of new lights (low consumption) | [43,44,45,46,81,82,83,84] |
Utilities | Excessive consumption, extra expenses for fuel and electricity for which there is no need, lack of or improper use of smart meters and smart billing, shortage of revealing consumption patterns, and limited remote monitoring for citizens | T-equipped smart-connected meters, proper consumption patterns, and management services to improve the quality of the services | [46,85,86,87] |
Smart parking | Lack of or limited smart parking options for drivers, improper parking of cars on the street, and reduction in street width due to traffic | Utilization of GPS data from drivers’ smartphones or road-surface sensors embedded in the ground on parking spots | [58,59,60,88,89] |
Waste management | Release of garbage and the resultant unpleasant odor in cities due to absence of accurate systems to monitor the proper time to collect waste in order to prevent fuel losses and empty containers | Installation of a sensor on waste containers to optimize waste-collection schedules by tracking waste levels | [90,91] |
Environment | Increased CO2 emissions and threats public health and lack of water and air quality monitoring | Utilization of different types of sensors such as water sensors and air sensors to improve and provide more accurate monitoring | [24,25,26,27,28,92,93,94] |
Public safety | Weak security of public safety in cities, increase in crimes such as robbery, lack of ethics regarding law and regulatory rights, and weak infrastructure | Utilization of IoT technologies such as CCTV cameras and acoustic sensors in different areas of cities, blockchain-based security management of IoT infrastructure for maintaining security and privacy, improvement of interoperability, leading to vendor lock-in, and control of corruption | [95,96,97,98,99,100,101,102,103] |
Present Work | Types of Consideration in Other Work | Reference |
---|---|---|
Environment | Reviews of IoT-based environment monitoring systems | [114] |
Public transport | Managing the public transport systems through applying digital technologies | [115] |
Utilities | Investigation of the role of digitalization for smart water networks and improvement by the IoT, artificial intelligence, blockchain, and other novel technologies | [116] |
Street lighting | Investigation of the street lighting framework using IoT systems to reduce cost and energy consumption | [117] |
Waste management | Proposal of a proof-of-concept municipal waste management system to reduce the cost of waste classification, monitoring, and collection using the IoT | [118] |
Public safety | Increase in public safety against theft using IoT systems | [119] |
Smart parking | Investigation the role the Internet of Things (IoT) in overcoming the challenges of parking cars. Presentation of smart parking solutions | [120] |
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Razmjoo, A.; Gandomi, A.; Mahlooji, M.; Astiaso Garcia, D.; Mirjalili, S.; Rezvani, A.; Ahmadzadeh, S.; Memon, S. An Investigation of the Policies and Crucial Sectors of Smart Cities Based on IoT Application. Appl. Sci. 2022, 12, 2672. https://doi.org/10.3390/app12052672
Razmjoo A, Gandomi A, Mahlooji M, Astiaso Garcia D, Mirjalili S, Rezvani A, Ahmadzadeh S, Memon S. An Investigation of the Policies and Crucial Sectors of Smart Cities Based on IoT Application. Applied Sciences. 2022; 12(5):2672. https://doi.org/10.3390/app12052672
Chicago/Turabian StyleRazmjoo, Armin, Amirhossein Gandomi, Maral Mahlooji, Davide Astiaso Garcia, Seyedali Mirjalili, Alireza Rezvani, Sahar Ahmadzadeh, and Saim Memon. 2022. "An Investigation of the Policies and Crucial Sectors of Smart Cities Based on IoT Application" Applied Sciences 12, no. 5: 2672. https://doi.org/10.3390/app12052672
APA StyleRazmjoo, A., Gandomi, A., Mahlooji, M., Astiaso Garcia, D., Mirjalili, S., Rezvani, A., Ahmadzadeh, S., & Memon, S. (2022). An Investigation of the Policies and Crucial Sectors of Smart Cities Based on IoT Application. Applied Sciences, 12(5), 2672. https://doi.org/10.3390/app12052672