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Cloak of Visibility: Detecting When Machines Browse a Different Web.

, , , , , and . IEEE Symposium on Security and Privacy, page 743-758. IEEE Computer Society, (2016)

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Hiding in Plain Site: Detecting JavaScript Obfuscation through Concealed Browser API Usage., , and . Internet Measurement Conference, page 648-661. ACM, (2020)Towards Realistic and ReproducibleWeb Crawl Measurements., , , , , , , and . WWW, page 80-91. ACM / IW3C2, (2021)Revolver: An Automated Approach to the Detection of Evasive Web-based Malware., , , , and . USENIX Security Symposium, page 637-652. USENIX Association, (2013)Mininode: Reducing the Attack Surface of Node.js Applications., and . RAID, page 121-134. USENIX Association, (2020)SoK: Workerounds - Categorizing Service Worker Attacks and Mitigations., , , and . EuroS&P, page 555-571. IEEE, (2022)Manifest V3 Unveiled: Navigating the New Era of Browser Extensions., and . CoRR, (2024)Browserprint: an Analysis of the Impact of Browser Features on Fingerprintability and Web Privacy., , , , , and . ISC, volume 13118 of Lecture Notes in Computer Science, page 161-176. Springer, (2021)ARGUS: A Framework for Staged Static Taint Analysis of GitHub Workflows and Actions., , , , , , , , and . USENIX Security Symposium, page 6983-7000. USENIX Association, (2023)Fingerprinting in Style: Detecting Browser Extensions via Injected Style Sheets., , , , and . USENIX Security Symposium, page 2507-2524. USENIX Association, (2021)Characterizing the Security of Github CI Workflows., , , , , , and . USENIX Security Symposium, page 2747-2763. USENIX Association, (2022)