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arXiv · 2609.09963

CrossLink: Breaking Location Privacy by Linking Device Identifiers Across Protocols

Abstract

Smartphones simultaneously transmit temporary identifiers over LTE, WiFi, and BLE. Existing privacy defenses analyze identifier randomization per protocol, implicitly assuming that these protections compose across protocols. We show that they do not: Even when each protocol leaks only temporary identifiers and the adversary is fully passive, unsynchronized identifier rotations allow cross-protocol stitching of device traces. We present CrossLink, an uncertainty-aware tracing algorithm that links identifiers across time, space, and protocols under noisy localization and mobility. We evaluate CrossLink using controlled lab experiments with commodity devices and large-scale mobility simulation. Under large-scale mobility simulation, CrossLink reconstructs full traces for 83% of users, versus 22% for the best single-protocol baseline, showing that location privacy must be analyzed jointly across protocols. We further show that CrossLink remains effective under partial coverage: strategically placed sniffers near LTE handover regions, mobile sniffers, and limited high-coverage subregions retain sufficient cross-protocol evidence to bridge observation gaps, achieving substantially higher linkability than random deployments.

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Aneet Kumar Dutta, Mihirraj Dixit, Kevin Gni, Wouter Lueks, Mridula Singh. 2026-09-09. CrossLink: Breaking Location Privacy by Linking Device Identifiers Across Protocols. https://arxiv.org/abs/2609.09963

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