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Forge: A Robust Multi-tab Website Fingerprinting Attack via Blind Source Separation

  • Yitan Huang*
  • , Wei Qiao
  • , Ding Wang
  • , Meng Shen
  • , Di Zhao
  • , Linxu Li
  • , Susu Cui*
  • , Bo Jiang
  • , Zhigang Lu
  • , Baoxu Liu
  • *此作品的通讯作者
  • CAS - Institute of Information Engineering
  • Beijing Institute of Technology

科研成果: 书/报告/会议事项章节会议稿件同行评审

摘要

While Tor's strong anonymity shields users' privacy, it also enables malicious activities, motivating attacks that bypass its protections. Website Fingerprinting (WF) has emerged as a primary threat in this domain. However, existing WF methods struggle with realistic multi-tab browsing scenarios, often relying on prior knowledge of the number of open tabs and lacking robustness against network noise and defenses. To address these challenges, we propose Forge, a robust WF attack framework inspired by the classic cocktail party problem. Specifically, Forge reframes multi-tab WF as a task of Blind Source Separation(BSS), decomposing mixed traffic into individual signals without requiring a predefined number of concurrent tabs. A robust website identifier then classifies separated components using a dual-domain attention mechanism across time and frequency, allowing Forge to effectively resist WF defenses and network noise. We evaluate our model on a comprehensive collection of datasets covering open-world, defense-enabled, and dynamic scenarios. The results demonstrate that Forge can improve Mean Average Precision by 78.6% over the state-of-the-art average in the challenging multi-tab open-world scenario.

源语言英语
主期刊名WWW 2026 - Proceedings of the ACM Web Conference 2026
出版商Association for Computing Machinery, Inc
3018-3029
页数12
ISBN(电子版)9798400723070
DOI
出版状态已出版 - 12 4月 2026
已对外发布
活动35th ACM Web Conference, WWW 2026 - Dubai, 阿拉伯联合酋长国
期限: 29 6月 20263 7月 2026

出版系列

姓名WWW 2026 - Proceedings of the ACM Web Conference 2026

会议

会议35th ACM Web Conference, WWW 2026
国家/地区阿拉伯联合酋长国
Dubai
时期29/06/263/07/26

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