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Ayesha Ata, Muhammad Adnan Khan, Sagheer Abbas, Muhammad Saleem Khan, Gulzar Ahmad, Adaptive IoT Empowered Smart Road Traffic Congestion Control System Using Supervised Machine Learning Algorithm, The Computer Journal, Volume 64, Issue 11, November 2021, Pages 1672–1679, https://doi.org/10.1093/comjnl/bxz129
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Abstract
The concept of smart systems blessed with different technologies can enable many algorithms used in Machine Learning (ML) and the world of the Internet of Things (IoT). In a modern city many different sensors can be used for information collection. Algorithms that are cast-off in Machine Learning improves the capabilities and intelligence of a system when the amount of data collectedincreases. In this research, we propose a TCC-SVM system model to analyse traffic congestion in the environment of a smart city. The proposed model comprises an ML-enabled IoT-based road traffic congestion control system whereby the occurrence of congestion at a specific point is notified.