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- W4200411194 abstract "With the wide application of HTTPs, malware HTTPs traffic classification is usually the first step in anomaly detection system. The existing classification methods mainly use the raw bytes (containing the discriminative features) or the statistical features (containing the global information) as the input, which leads to a low Fl-score. Therefore, this paper presents a novel Attention-based Fusion Network (FA-net), which combines two types of features properly to improve the classification performance. FA-net consists of three sub-networks: RF -net and SF -net extract the representative features of raw bytes and statistical features through the Convolutional Neural Network (CNN) and reconstruction mechanism respectively, and C-net combines two types of features through the attention mechanism and a regulating factor. The experiments indicate that FA-net obtains markedly better results (the average Fl-score of 0.941 and 0.997 respectively on two datasets) than the baselines. We also explore the influence of different regulating factor values on classification performance." @default.
- W4200411194 created "2021-12-31" @default.
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- W4200411194 date "2021-09-05" @default.
- W4200411194 modified "2023-10-12" @default.
- W4200411194 title "FA-net: Attention-based Fusion Network For Malware HTTPs Traffic Classification" @default.
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- W4200411194 doi "https://doi.org/10.1109/iscc53001.2021.9631419" @default.
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