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Dynamic Prototype Network Based on Sample Adaptation for Few-Shot Malware Detection

delete2022-01-01
delete51
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OA
AI
Y
Yuhan Chai
L
Lei Du
J
Jing Qiu *
L
Lihua Yin
Z
Zhihong Tian
DOI:10.1109/TKDE.2022.3142820delete
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摘要

摘要

En 中文
The continuous increase and spread of malware have caused immeasurable losses to social enterprises and even the country, especially unknown malware. Most existing methods use predefined class samples to train models, which cannot handle unknown malware detection. In this paper, we formalize unknown malware detection as a Few-Shot Learning problem. However, the existing model cannot dynamically adjust the model parameters according to the samples and does not deeply consider the influence of the correlation between samples, so it achieves sub-optimal performance. We propose a Dynamic Prototype Network based on Sample Adaptation for few-shot malware detection (DPNSA). Specifically, we use dynamic convolution to realize dynamic feature extraction based on sample adaptation. Secondly, we define the class feature (prototype) as the mean of the dynamic embedding of all malware samples of each class in the support set. Then, a dual-sample dynamic activation function is proposed, which uses the correlation of the dual-sample to reduce the impact of unrelated features between samples on the metric. Finally, we use the metric-based method to calculate the distance between the query sample and the prototype to realize malware detection. Experiments show that our method outperforms the existing few-shot malware detection models and achieves significant improvement.
Keyword:
Malware
Feature extraction
Semantics
Convolutional neural networks
Prototypes
Data models
Deep learning
Feature representation
neural nets
similarity measures
security

期刊

IEEE Transactions on Knowledge and Data Engineering 封面图
IEEE Transactions on Knowledge and Data Engineering
IF:
10.4
论文数:
6.8K
被引数:
3.2W

机构

H
harbin institute of technology
学者数:
8.0W
论文数: 6.6W
被引数: 66
G
Guangzhou University
学者数:
1.8W
论文数: 1.3W
被引数: 1.8W
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