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Enhancing intrusion detection system using rectified linear unit function in pigeon inspired optimization algorithm

Tedyyana, AgusGhazali, OsmanW. Purbo, Onno
IAES International Journal of Artificial Intelligence (IJ-AI) (Sinta 1)Vol. 0 No. 01 Juni 2024
DOI10.11591/ijai.v13.i2.pp1526-1534

Abstrak

The increasing rate of cybercrime in the digital world highlights the importance of having a reliable intrusion detection system (IDS) to detect unauthorized attacks and notify administrators. IDS can leverage machine learning techniques to identify patterns of attacks and provide real-time notifications. In building a successful IDS, selecting the right features is crucial as it determines the accuracy of the predictions made by the model. This paper presents a new IDS algorithm that combines the rectified linear unit (ReLU) activation function with a pigeon-inspired optimizer in feature selection. The proposed algorithm was evaluated on network security layer - knowledge discovery in databases (NSL-KDD) datasets and demonstrated improved performance in terms of training speed and accuracy compared to previous IDS models. Thus, the use of the ReLU activation function and a pigeon-inspired optimizer in feature selection can significantly enhance the effectiveness of an IDS in detecting unauthorized attacks.

Kata Kunci

Particle Swarm OptimizationFeature selectionIntrusion detection system neural networkMachine learningPigeon inspired optimizationRectified linear unit

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Enhancing intrusion detection system using rectified linear unit function in pigeon inspired optimization algorithm | IAES International Journal of Artificial Intelligence (IJ-AI) | Publiora