PrivateFetch: Scalable Catalog Delivery in Privacy-Preserving Advertising
Muhammad Haris Mughees, Gon\c{c}alo Pestana, Alex Davidson, Benjamin, Livshits

TL;DR
PrivateFetch is a cryptography-based framework enabling privacy-preserving targeted ad delivery by pre-fetching ads without revealing user preferences, achieving practical performance and low costs.
Contribution
It introduces a scalable, privacy-preserving ad delivery system using cryptographic techniques that outperforms existing methods in efficiency and privacy guarantees.
Findings
Delivered 30 ads in 40 seconds for a database of over 1 million ads.
Total communication cost of 192KB for ad pre-fetching.
Operational costs are less than 1% of average ad revenue.
Abstract
In order to preserve the possibility of an Internet that is free at the point of use, attention is turning to new solutions that would allow targeted advertisement delivery based on behavioral information such as user preferences, without compromising user privacy. Recently, explorations in devising such systems either take approaches that rely on semantic guarantees like -anonymity -- which can be easily subverted when combining with alternative information, and do not take into account the possibility that even knowledge of such clusters is privacy-invasive in themselves. Other approaches provide full privacy by moving all data and processing logic to clients -- but which is prohibitively expensive for both clients and servers. In this work, we devise a new framework called PrivateFetch for building practical ad-delivery pipelines that rely on cryptographic hardness and best-case…
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Taxonomy
TopicsPrivacy-Preserving Technologies in Data · Cryptography and Data Security · Internet Traffic Analysis and Secure E-voting
