论文标题

部分可观测时空混沌系统的无模型预测

Anomal-E: A Self-Supervised Network Intrusion Detection System based on Graph Neural Networks

论文作者

Caville, Evan, Lo, Wai Weng, Layeghy, Siamak, Portmann, Marius

论文摘要

本文研究了图形神经网络(GNNS)应用程序,以进行自我监督的网络入侵和异常检测。 GNN是一种基于图的数据的深度学习方法,它将图形结构纳入学习以概括图表和输出嵌入。由于网络流是自然基于图的,因此GNN非常适合分析和学习网络行为。基于GNN的网络入侵检测系统(NIDSS)的大多数实现很大程度上依赖于标记的网络流量,这不仅可以限制输入流量的数量和结构,还可以限制NIDSS的潜力来适应看不见的攻击。为了克服这些限制,我们提出了异常-E,这是一种在自我监督过程中利用边缘特征和图形拓扑结构的侵入和异常检测方法。据我们所知,这种方法是第一种成功且实用的方法来进行网络入侵检测,该方法利用网络流动在自我监督,边缘利用GNN中。两个现代基准NIDS数据集的实验结果不仅清楚地显示了使用Anomal-E嵌入而不是原始功能的改进,而且还显示了对野生网络流量检测的潜在异常-E具有的可能性。

This paper investigates Graph Neural Networks (GNNs) application for self-supervised network intrusion and anomaly detection. GNNs are a deep learning approach for graph-based data that incorporate graph structures into learning to generalise graph representations and output embeddings. As network flows are naturally graph-based, GNNs are a suitable fit for analysing and learning network behaviour. The majority of current implementations of GNN-based Network Intrusion Detection Systems (NIDSs) rely heavily on labelled network traffic which can not only restrict the amount and structure of input traffic, but also the NIDSs potential to adapt to unseen attacks. To overcome these restrictions, we present Anomal-E, a GNN approach to intrusion and anomaly detection that leverages edge features and graph topological structure in a self-supervised process. This approach is, to the best our knowledge, the first successful and practical approach to network intrusion detection that utilises network flows in a self-supervised, edge leveraging GNN. Experimental results on two modern benchmark NIDS datasets not only clearly display the improvement of using Anomal-E embeddings rather than raw features, but also the potential Anomal-E has for detection on wild network traffic.

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