Enhancing Classification Performance for Android Small Sample Malicious Families Using Hybrid RGB Image Augmentation Method

Yi Hsuan Ting, Yi Ming Chen, Li Kai Chen

研究成果: 書貢獻/報告類型會議論文篇章同行評審

1 引文 斯高帕斯(Scopus)

摘要

With the improvement of computer computing speed, many researches use deep learning for Android malware detection. In addition to malware detection, malware family classification will help malware researchers understand the behavior of the malware families to optimize detection and prevent However, the new malware family has few samples, which lead to bad classification results. GAN-based method can improve the classification results, but minor data will still lead to the unstable quality of the data generated by the deep learning augmentation method, which will limit the improvement of classification results. In the study, we will propose a hybrid augmentation method, first extracting malware features and converting them into RGB images, and then the minor families will augment by the gaussian noise augmentation method, and then combined with the deep convolutional generative adversarial network (DCGAN) which have better effect on image augmentation, and finally input to CNN for family classification. The experimental results show that using the hybrid augmentation method proposed in the study, compared to no augmentation and augmentation with only using the deep convolutional generative adversarial network, the F1-Score increased between 7%34% and 2%7%.

原文???core.languages.en_GB???
主出版物標題2022 9th International Conference on Soft Computing and Machine Intelligence, ISCMI 2022
發行者Institute of Electrical and Electronics Engineers Inc.
頁面21-25
頁數5
ISBN(電子)9798350320886
DOIs
出版狀態已出版 - 2022
事件9th International Conference on Soft Computing and Machine Intelligence, ISCMI 2022 - Toronto, Canada
持續時間: 26 11月 202227 11月 2022

出版系列

名字2022 9th International Conference on Soft Computing and Machine Intelligence, ISCMI 2022

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???event.eventtypes.event.conference???9th International Conference on Soft Computing and Machine Intelligence, ISCMI 2022
國家/地區Canada
城市Toronto
期間26/11/2227/11/22

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