Background Suppression Network for Weakly-Supervised Temporal Action Localization
Pilhyeon Lee, Youngjung Uh, Hyeran Byun
摘要
Weakly-supervised temporal action localization is a very challenging problem because frame-wise labels are not given in the training stage while the only hint is video-level labels: whether each video contains action frames of interest. Previous methods aggregate frame-level class scores to produce video-level prediction and learn from video-level action labels. This formulation does not fully model the problem in that background frames are forced to be misclassified as action classes to predict video-level labels accurately. In this paper, we design Background Suppression Network (BaS-Net) which introduces an auxiliary class for background and has a two-branch weight-sharing architecture with an asymmetrical training strategy. This enables BaS-Net to suppress activations from background frames to improve localization performance. Extensive experiments demonstrate the effectiveness of BaS-Net and its superiority over the state-of-the-art methods on the most popular benchmarks – THUMOS'14 and ActivityNet. Our code and the trained model are available at https://github.com/Pilhyeon/BaSNet-pytorch.
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- Dual Memory Units with Uncertainty Regulation for Weakly Supervised Video Anomaly DetectionHang Zhou, Junqing Yu, Wei YangAAAI 2023 · 被引用 180 次
- A Hybrid Attention Mechanism for Weakly-Supervised Temporal Action LocalizationAshraful Islam, Chengjiang Long, Richard J. RadkeAAAI 2021 · 被引用 145 次
- Weakly-supervised Temporal Action Localization by Uncertainty ModelingPilhyeon Lee, Jinglu Wang, Yan Lu, Hyeran ByunAAAI 2021 · 被引用 141 次
- Cross-modal Consensus Network for Weakly Supervised Temporal Action LocalizationFa-Ting Hong, Jia-Chang Feng, Dan Xu, Ying Shan 等ACM MM 2021 · 被引用 104 次
- ASM-Loc: Action-aware Segment Modeling for Weakly-Supervised Temporal Action LocalizationBo He, Xitong Yang, Le Kang, Zhiyu Cheng 等CVPR 2022 · 被引用 104 次
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