Weakly Supervised Video Emotion Detection and Prediction via Cross-Modal Temporal Erasing Network
Zhicheng Zhang, Lijuan Wang, Jufeng Yang
摘要
Automatically predicting the emotions of user-generated videos (UGVs) receives increasing interest recently. However, existing methods mainly focus on a few key visual frames, which may limit their capacity to encode the context that depicts the intended emotions. To tackle that, in this paper, we propose a cross-modal temporal erasing network that locates not only keyframes but also context and audio-related information in a weakly-supervised manner. In specific, we first leverage the intra-and inter-modal relationship among different segments to accurately select keyframes. Then, we iteratively erase keyframes to encourage the model to concentrate on the contexts that include complementary information. Extensive experiments on three challenging video emotion benchmarks demonstrate that our method performs favorably against state-of-the-art approaches. The code is released on https://github.com/nku-zhichengzhang/WECL .
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它引用的顶会 Paper13
- Context-Aware Emotion Recognition NetworksJiyoung Lee, Seungryong Kim, Sunok Kim, Jungin Park 等ICCV 2019 · 被引用 285 次
- M3ER: Multiplicative Multimodal Emotion Recognition using Facial, Textual, and Speech CuesTrisha Mittal, Uttaran Bhattacharya, Rohan Chandra, Aniket Bera 等AAAI 2020 · 被引用 282 次
- Group-aware Contrastive Regression for Action Quality AssessmentXumin Yu, Yongming Rao, Wenliang Zhao, Jiwen Lu 等ICCV 2021 · 被引用 147 次
- An End-to-End Visual-Audio Attention Network for Emotion Recognition in User-Generated VideosSicheng Zhao, Yunsheng Ma, Yang Gu, Jufeng Yang 等AAAI 2020 · 被引用 123 次
- Foreground-Action Consistency Network for Weakly Supervised Temporal Action LocalizationLinjiang Huang, Liang Wang, Hongsheng LiICCV 2021 · 被引用 91 次
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