Predicting DoS and DDoS attacks in network security scenarios using a hybrid deep learning model
Azhar F. Al-zubidi,
Alaa Kadhim Farhan,
Sayed M. Towfek
Abstract:Network security faces increasing threats from denial of service (DoS) and distributed denial of service (DDoS) attacks. The current solutions have not been able to predict and mitigate these threats with enough accuracy. A novel and effective solution for predicting DoS and DDoS attacks in network security scenarios is presented in this work by employing an effective model, called CNN-LSTM-XGBoost, which is an innovative hybrid approach designed for intrusion detection in network security. The system is appli… Show more
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