GraphTrack: A Graph-based Cross-Device Tracking Framework
Binghui Wang, Tianchen Zhou, Song Li, Yinzhi Cao, Neil Zhenqiang Gong

TL;DR
GraphTrack introduces a graph-based framework for cross-device user tracking that models complex browsing history correlations, outperforming existing methods without relying heavily on labeled device pairs.
Contribution
The paper presents a novel graph-based approach that captures latent correlations in browsing data and is robust to uncertainties, improving cross-device tracking accuracy.
Findings
Outperforms state-of-the-art methods on real-world datasets.
Does not require labeled device pairs for tracking.
Effectively models complex browsing history correlations.
Abstract
Cross-device tracking has drawn growing attention from both commercial companies and the general public because of its privacy implications and applications for user profiling, personalized services, etc. One particular, wide-used type of cross-device tracking is to leverage browsing histories of user devices, e.g., characterized by a list of IP addresses used by the devices and domains visited by the devices. However, existing browsing history based methods have three drawbacks. First, they cannot capture latent correlations among IPs and domains. Second, their performance degrades significantly when labeled device pairs are unavailable. Lastly, they are not robust to uncertainties in linking browsing histories to devices. We propose GraphTrack, a graph-based cross-device tracking framework, to track users across different devices by correlating their browsing histories. Specifically,…
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Taxonomy
TopicsPrivacy, Security, and Data Protection · Human Mobility and Location-Based Analysis · Recommender Systems and Techniques
