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An Uncertainty-Based Traffic Training Approach to Efficiently Identifying Encrypted Proxies

  • Xianlei Zhang
  • , Xiaobo Ma
  • , Xiao Han
  • , Bo She
  • , Wei Li
  • Xi'an Jiaotong University
  • Shaanxi Tobacco Corporation

科研成果: 书/报告/会议事项章节会议稿件同行评审

6 引用 (Scopus)

摘要

Encrypted proxies, such as Shadowsocks and v2ray, are increasingly used to reserve user privacy and circumvent censorship. However, they are also widely misused by attackers to carry out illegal activities like malware downloading, information theft. Therefore, identifying encrypted proxies is a fundamental task concerning cyber security for network administrators. Existing studies focus on traffic feature engineering and designing the classification model. Although indispensable, they do not consider the training efficiency problem, thereby unable to approach the best possible performance when the number of affordable training samples is limited due to resource constraint. In this paper, we propose an uncertainty-based traffic sample selection strategy to boost traffic training of encrypted proxies. The proposed strategy allows one to use fewer samples to quickly learn diverse traffic characteristics. Through experiments, we demonstrate that our strategy significantly outperforms random sample selection, and hence substantially improves identification performance.

源语言英语
主期刊名2020 12th International Conference on Advanced Infocomm Technology, ICAIT 2020
出版商Institute of Electrical and Electronics Engineers Inc.
95-99
页数5
ISBN(电子版)9781728183848
DOI
出版状态已出版 - 23 11月 2020
活动12th International Conference on Advanced Infocomm Technology, ICAIT 2020 - Virtual, Macau, 中国
期限: 23 11月 202025 11月 2020

出版系列

姓名2020 12th International Conference on Advanced Infocomm Technology, ICAIT 2020

会议

会议12th International Conference on Advanced Infocomm Technology, ICAIT 2020
国家/地区中国
Virtual, Macau
时期23/11/2025/11/20

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