conference-paper Open access

Augmenting Rule-based DNS Censorship Detection at Scale with Machine Learning

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Abstract

The proliferation of global censorship has led to the development of a plethora of measurement platforms to monitor and expose it. Censorship of the domain name system (DNS) is a key mechanism used across different countries. It is currently detected by applying heuristics to samples of DNS queries and responses (probes) for specific destinations. These heuristics, however, are both platform-specific and have been found to be brittle when censors change their blocking behavior, necessitating a more reliable automated process for detecting censorship.

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Publication details

DOI
10.1145/3580305.3599775
OpenAlex
W4385562478
Document type
conference-paper
Language
EN
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