JOURNAL ARTICLE

A Deep Auto-Encoder based LightGBM Approach for Network Intrusion Detection System

Abstract

With the development of the network in recent years, cyber security has become one of the most challenging aspects of modern society. Machine learning is one of extensively used techniques in Intrusion Detection System, which has achieved comparable performance. To extract more important features, this paper proposes an efficient model based Auto-Encoder and LightGBM to classify network traffic. KDD99 dataset [1], as the benchmark dataset, is used for computing the performance and analyse the metrics of the method. Based on Auto-Encoder, we extract more important features, and then mix them with existing features to improve the effectiveness of the LightGBM [2] model. The experimental results show that the proposed algorithm produces the best performance in terms of overall accuracy.

Keywords:
Computer science Benchmark (surveying) Intrusion detection system Artificial intelligence Machine learning Data mining Autoencoder Deep learning Encoder Network security Pattern recognition (psychology) Computer security

Metrics

3
Cited By
0.19
FWCI (Field Weighted Citation Impact)
0
Refs
0.52
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Network Security and Intrusion Detection
Physical Sciences →  Computer Science →  Computer Networks and Communications
Network Packet Processing and Optimization
Physical Sciences →  Computer Science →  Hardware and Architecture
Anomaly Detection Techniques and Applications
Physical Sciences →  Computer Science →  Artificial Intelligence

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