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一种用于高维不平衡数据的新型多模块集成入侵检测系统。

A novel multi-module integrated intrusion detection system for high-dimensional imbalanced data.

作者信息

Cui Jiyuan, Zong Liansong, Xie Jianhua, Tang Mingwei

机构信息

School of Computer and Software Engineering, Xihua University, Chengdu Sichuan, 610039 China.

出版信息

Appl Intell (Dordr). 2023;53(1):272-288. doi: 10.1007/s10489-022-03361-2. Epub 2022 Apr 14.

Abstract

The high dimension, complexity, and imbalance of network data are hot issues in the field of intrusion detection. Nowadays, intrusion detection systems face some challenges in improving the accuracy of minority classes detection, detecting unknown attacks, and reducing false alarm rates. To address the above problems, we propose a novel multi-module integrated intrusion detection system, namely GMM-WGAN-IDS. The system consists of three parts, such as feature extraction, imbalance processing, and classification. Firstly, the stacked autoencoder-based feature extraction module (SAE module) is proposed to obtain a deeper representation of the data. Secondly, on the basis of combining the clustering algorithm based on gaussian mixture model and the wasserstein generative adversarial network based on gaussian mixture model, the imbalance processing module (GMM-WGAN) is proposed. Thirdly, the classification module (CNN-LSTM) is designed based on convolutional neural network (CNN) and long short-term memory (LSTM). We evaluate the performance of GMM-WGAN-IDS on the NSL-KDD and UNSW-NB15 datasets, comparing it with other intrusion detection methods. Finally, the experimental results show that our proposed GMM-WGAN-IDS outperforms the state-of-the-art methods and achieves better performance.

摘要

网络数据的高维度、复杂性和不平衡性是入侵检测领域的热点问题。如今,入侵检测系统在提高少数类检测的准确性、检测未知攻击以及降低误报率方面面临一些挑战。为了解决上述问题,我们提出了一种新颖的多模块集成入侵检测系统,即GMM-WGAN-IDS。该系统由特征提取、不平衡处理和分类三个部分组成。首先,提出了基于堆叠自编码器的特征提取模块(SAE模块)以获得数据的更深层次表示。其次,在结合基于高斯混合模型的聚类算法和基于高斯混合模型的瓦瑟斯坦生成对抗网络的基础上,提出了不平衡处理模块(GMM-WGAN)。第三,基于卷积神经网络(CNN)和长短期记忆(LSTM)设计了分类模块(CNN-LSTM)。我们在NSL-KDD和UNSW-NB15数据集上评估了GMM-WGAN-IDS的性能,并将其与其他入侵检测方法进行比较。最后,实验结果表明,我们提出的GMM-WGAN-IDS优于现有方法并取得了更好的性能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/182e/9009502/775571acf096/10489_2022_3361_Fig1_HTML.jpg

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