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- W4254091680 abstract "Anomaly traffic detection in industrial networks plays a key role in protecting critical infrastructure assets and private data. Deep Neural Networks (DNNs) based anomaly traffic detection has received increased attention in recent work. Although their high accuracy, the lack of interpretability of deep learning models has seriously hindered its application in industrial high-risk decision-making fields. To address this issue, this paper presents a framework for DNN based interpretable anomaly traffic detection and interpretation verification based on an adversarial approach. When the DNN detects an anomalous event, in addition to the prediction, the framework provides the user with the confidence of the prediction and the input features that were relevant in making the prediction. In order to verify the validity of the interpretation, we use an adversarial method to find the minimum modifications of real features that make the classification change. This paper implements an experimental evaluation of the presented framework on the benchmark CICDDoS2019 dataset and KDD-NSL dataset for attack detection. The experimental results which are shown using intuitive visualizations prove the validity of the interpretation presented in this paper." @default.
- W4254091680 created "2022-05-12" @default.
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- W4254091680 date "2021-10-01" @default.
- W4254091680 modified "2023-10-18" @default.
- W4254091680 title "Anomaly Traffic Detection with Verifiable Interpretation in Industrial Networks" @default.
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- W4254091680 doi "https://doi.org/10.1109/dasc-picom-cbdcom-cyberscitech52372.2021.00083" @default.
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