Complementary-View Co-Interest Person Detection
Ruize Han, Jiewen Zhao, Wei Feng, Yiyang Gan, Liang Wan, Song Wang
Abstract
Fast and accurate identification of the co-interest persons, who draw joint interest of the surrounding people, plays an important role in social scene understanding and surveillance. Previous study mainly focuses on detecting co-interest persons from a single-view video. In this paper, we study a much more realistic and challenging problem, namely co-interest person (CIP) detection from multiple temporally-synchronized videos taken by the complementary and time-varying views. Specifically, we use a top-view camera, mounted on a flying drone at a high altitude to obtain a global view of the whole scene and all subjects on the ground, and multiple horizontal-view cameras, worn by selected subjects, to obtain a local view of their nearby persons and environment details. We present an efficient top- and horizontal-view data fusion strategy to map multiple horizontal views into the global top view. We then propose a spatial-temporal CIP potential energy function that jointly considers both intra-frame confidence and inter-frame consistency, thus leading to an effective Conditional Random Field (CRF) formulation. We also construct a complementary-view video dataset, which provides a benchmark for the study of multi-view co-interest person detection. Extensive experiments validate the effectiveness and superiority of the proposed method.
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Install the CLIlune papers get 8df139b9-a211-4d9e-90a9-2fdf55190e06Cited by top-tier papers3
- Self-supervised Multi-view Multi-Human Association and TrackingYiyang Gan, Ruize Han, Liqiang Yin, Wei Feng et al.ACM MM 2021 · 44 citations
- Connecting the Complementary-view Videos: Joint Camera Identification and Subject AssociationRuize Han, Yiyang Gan, Jiacheng Li, Feifan Wang et al.CVPR 2022 · 12 citations
- From a Bird's Eye View to See: Joint Camera and Subject Registration without the Camera CalibrationZekun Qian, Ruize Han, Wei Feng, Song WangCVPR 2024 · 8 citations
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