Abstract
Abstract: The rapid growth of urbanization and the increasing number of vehicles on roads have led to significant challenges in traffic management, including congestion, delays, and accidents. Traditional traffic signal control systems are often rigid and incapable of adapting to real-time traffic conditions. To address these challenges, this paper proposes a smart traffic signal control system using the Internet of Things (IoT), which enables dynamic and real-time adjustment of traffic signals based on data from IoT-enabled sensors and communication devices. The system leverages edge computing and AI-based algorithms to optimize traffic flow, reduce congestion, and improve road safety.However, the integration of IoT into traffic management systems introduces a wide range of cybersecurity threats, including unauthorized access, data tampering, denial-of-service (DoS) attacks, and physical attacks on IoT devices. To mitigate these risks, this paper integrates robust cybersecurity mechanisms into the smart traffic system, employing encryption, secure communication protocols, device authentication, and blockchain-based identity management to protect data integrity and system functionality. Additionally, AI-powered anomaly detection is deployed to monitor traffic patterns and detect potential cyber threats in real time.The proposed system was evaluated in a smart city environment, demonstrating significant improvements in traffic flow and system resilience to cyberattacks. This research highlights the critical role of cybersecurity in ensuring the reliability and safety of IoT-based traffic signal systems, paving the way for secure and efficient traffic management in modern cities.
Cite
CITATION STYLE
S, R., Patel, Mr. R., Singh, J., Yuvaraj, V., Meena, Dr. S. G., Bajaj, Dr. S. H., … Gokila, Dr. D. (2025). Cyber Attack of Data Analysis in Smart Traffic Signal Control Using IOT with Cybersecurity and Big Data. International Journal for Research in Applied Science and Engineering Technology, 13(3), 2712–2720. https://doi.org/10.22214/ijraset.2025.67925
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