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Sequence-Based Identification of First-Person Camera Wearers in Third-Person Views

Ziwei Zhao, Xizi Wang, Yuchen Wang, Feng Cheng, David Crandall

Year
2025
Access
Open access

Abstract

The increasing popularity of egocentric cameras has generated growing interest in studying multi-camera interactions in shared environments. Although large-scale datasets such as Ego4D and Ego-Exo4D have propelled egocentric vision research, interactions between multiple camera wearers remain underexplored-a key gap for applications like immersive learning and collaborative robotics. To bridge this, we present TF2025, an expanded dataset with synchronized first- and third-person views. In addition, we introduce a sequence-based method to identify first-person wearers in third-person footage, combining motion cues and person re-identification.

Keywords

cs.CV

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