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A Video Is Worth Three Views: Trigeminal Transformers for Video-based Person Re-identification

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arxiv 2104.01745 v1 pith:JIYP27J6 submitted 2021-04-05 cs.CV cs.AI

classification cs.CVcs.AI
keywords personvideore-idvideo-basedspatialspatial-temporaltemporaltransformer
verification ladder T0 review T1 audit T2 compute T3 formal
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Video-based person re-identification (Re-ID) aims to retrieve video sequences of the same person under non-overlapping cameras. Previous methods usually focus on limited views, such as spatial, temporal or spatial-temporal view, which lack of the observations in different feature domains. To capture richer perceptions and extract more comprehensive video representations, in this paper we propose a novel framework named Trigeminal Transformers (TMT) for video-based person Re-ID. More specifically, we design a trigeminal feature extractor to jointly transform raw video data into spatial, temporal and spatial-temporal domain. Besides, inspired by the great success of vision transformer, we introduce the transformer structure for video-based person Re-ID. In our work, three self-view transformers are proposed to exploit the relationships between local features for information enhancement in spatial, temporal and spatial-temporal domains. Moreover, a cross-view transformer is proposed to aggregate the multi-view features for comprehensive video representations. The experimental results indicate that our approach can achieve better performance than other state-of-the-art approaches on public Re-ID benchmarks. We will release the code for model reproduction.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. OpenAlex reports about 27 citations worldwide. Full citation record

  1. Causality and "In-the-Wild" Video-Based Person Re-ID: A Survey

    cs.CV 2025-05 reject novelty 3.0 of 10

    A survey of causal reasoning for video person re-identification that reviews DIR-ReID, identity-shuffle GANs, and causal transformers, but contains unverified performance claims.

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