Suppressing Uncertainties for Large-Scale Facial Expression Recognition
Kai Wang, Xiaojiang Peng, Jianfei Yang, Shijian Lu, Yu Qiao
摘要
Annotating a qualitative large-scale facial expression dataset is extremely difficult due to the uncertainties caused by ambiguous facial expressions, low-quality facial images, and the subjectiveness of annotators. These uncertainties lead to a key challenge of large-scale Facial Expression Recognition (FER) in deep learning era. To address this problem, this paper proposes a simple yet efficient Self-Cure Network (SCN) which suppresses the uncertainties efficiently and prevents deep networks from over-fitting uncertain facial images. Specifically, SCN suppresses the uncertainty from two different aspects: 1) a self-attention mechanism over mini-batch to weight each training sample with a ranking regularization, and 2) a careful relabeling mechanism to modify the labels of these samples in the lowest-ranked group. Experiments on synthetic FER datasets and our collected WebEmotion dataset validate the effectiveness of our method. Results on public benchmarks demonstrate that our SCN outperforms current state-of-theart methods with 88.14% on RAF-DB, 60.23% on Affect-Net, and 89.35% on FERPlus. The code will be available at https://github.com/kaiwang960112/Self-Cure-Network .
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- Emotion-LLaMA: Multimodal Emotion Recognition and Reasoning with Instruction TuningZebang Cheng, Zhi-Qi Cheng, Jun-Yan He, Kai Wang 等NeurIPS 2024 · 被引用 293 次
- TransFER: Learning Relation-aware Facial Expression Representations with TransformersFanglei Xue, Qiangchang Wang, Guodong GuoICCV 2021 · 被引用 276 次
- Relative Uncertainty Learning for Facial Expression RecognitionYuhang Zhang, Chengrui Wang, Weihong DengNeurIPS 2021 · 被引用 232 次
- MSDN: Mutually Semantic Distillation Network for Zero-Shot LearningShiming Chen, Ziming Hong, Guo-Sen Xie, Wenhan Yang 等CVPR 2022 · 被引用 141 次
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