The Privacy-Utility Trade-off in the Topics API

June 21, 2024 Β· Declared Dead Β· πŸ› Conference on Computer and Communications Security

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Authors MΓ‘rio S. Alvim, Natasha Fernandes, Annabelle McIver, Gabriel H. Nunes arXiv ID 2406.15309 Category cs.CR: Cryptography & Security Citations 5 Venue Conference on Computer and Communications Security Last Checked 5 months ago
Abstract
The ongoing deprecation of third-party cookies by web browser vendors has sparked the proposal of alternative methods to support more privacy-preserving personalized advertising on web browsers and applications. The Topics API is being proposed by Google to provide third-parties with "coarse-grained advertising topics that the page visitor might currently be interested in". In this paper, we analyze the re-identification risks for individual Internet users and the utility provided to advertising companies by the Topics API, i.e. learning the most popular topics and distinguishing between real and random topics. We provide theoretical results dependent only on the API parameters that can be readily applied to evaluate the privacy and utility implications of future API updates, including novel general upper-bounds that account for adversaries with access to unknown, arbitrary side information, the value of the differential privacy parameter $Ξ΅$, and experimental results on real-world data that validate our theoretical model.
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