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A Deep Learning Approach for Intrusion Detection Using Recurrent Neural Networks

IEEE Access · 2017 · Vol. 5 · pp. 21954–21961

Abstract

Intrusion detection plays an important role in ensuring information security, and the key technology is to accurately identify various attacks in the network. In this paper, we explore how to model an intrusion detection system based on deep learning, and we propose a deep learning approach for intrusion detection using recurrent neural networks (RNN-IDS). Moreover, we study the performance of the model in binary classification and multiclass classification, and the number of neurons and different learning rate impacts on the performance of the proposed model. We compare it with those of J48, artificial neural network, random forest, support vector machine, and other machine learning methods proposed by previous researchers on the benchmark data set. The experimental results show that RNN-IDS is very suitable for modeling a classification model with high accuracy and that its performance is superior to that of traditional machine learning classification methods in both binary and multiclass classification. The RNN-IDS model improves the accuracy of the intrusion detection and provides a new research method for intrusion detection.

Network Security and Intrusion DetectionAnomaly Detection Techniques and ApplicationsInternet Traffic Analysis and Secure E-votingComputer scienceArtificial intelligenceIntrusion detection systemMachine learningRecurrent neural networkDeep learningMulticlass classificationBenchmark (surveying)Support vector machineRandom forest

Funding

  • National Key Research and Development Program of China
Citations
1,900
FWCI
108.82
field-weighted impact
References
27
Percentile
100%
vs. same field & year
Citations per year
References
Deep learning in neural networks: An overview
Neural Networks · 2014 · 17,774 citations
A novel hybrid KPCA and SVM with GA model for intrusion detection
Applied Soft Computing · 2014 · 422 citations
Deep learning
Nature · 2015 · 79,164 citations
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