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Title Data Analysis For Predicting Attacks In Smart Systems Using Ai Techniques
ID_Doc 17139
Authors Albalawi R.M.; Alaazi S.K.; Alshahrani T.S.; Alomrani W.; Alanazi T.M.
Year 2025
Published Proceedings of 2025 4th International Conference on Computing and Information Technology, ICCIT 2025
DOI http://dx.doi.org/10.1109/ICCIT63348.2025.10989284
Abstract This paper presents an AI-driven framework to predict and mitigate DDoS attacks in smart cities using SoftwareDefined Networking (SDN), federated learning, and advanced machine learning algorithms. Parameter optimization significantly enhanced model performance. The Decision Tree algorithm, optimized via Research, achieved an accuracy of 0.9236 and an F1-Score of 0.929, outperforming Logistic Regression. Deep Learning models also improved with strategies like Early Stopping and ReduceLROnPlateau, with SimpleRNN showing the highest improvement, followed by GRU, LSTM, and CNN models. These results surpass previous research, demonstrating the effectiveness of the applied techniques and model preparation. © 2025 IEEE.
Author Keywords Cybersecurity; Distributed Denial of Service (DDoS); Internet of Things (IoT); Smart Cities; Software-Defined Networking (SDN)


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