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Papers/Deep Adaptive Attention for Joint Facial Action Unit Detec...

Deep Adaptive Attention for Joint Facial Action Unit Detection and Face Alignment

Zhiwen Shao, Zhilei Liu, Jianfei Cai, Lizhuang Ma

2018-03-15ECCV 2018 9Face AlignmentFacial Action Unit DetectionAction Unit Detection
PaperPDFCode

Abstract

Facial action unit (AU) detection and face alignment are two highly correlated tasks since facial landmarks can provide precise AU locations to facilitate the extraction of meaningful local features for AU detection. Most existing AU detection works often treat face alignment as a preprocessing and handle the two tasks independently. In this paper, we propose a novel end-to-end deep learning framework for joint AU detection and face alignment, which has not been explored before. In particular, multi-scale shared features are learned firstly, and high-level features of face alignment are fed into AU detection. Moreover, to extract precise local features, we propose an adaptive attention learning module to refine the attention map of each AU adaptively. Finally, the assembled local features are integrated with face alignment features and global features for AU detection. Experiments on BP4D and DISFA benchmarks demonstrate that our framework significantly outperforms the state-of-the-art methods for AU detection.

Results

TaskDatasetMetricValueModel
Facial Recognition and ModellingDISFAAverage F156JAA-Net
Facial Recognition and ModellingBP4DAverage F160JAA-Net
Face ReconstructionDISFAAverage F156JAA-Net
Face ReconstructionBP4DAverage F160JAA-Net
3DDISFAAverage F156JAA-Net
3DBP4DAverage F160JAA-Net
3D Face ModellingDISFAAverage F156JAA-Net
3D Face ModellingBP4DAverage F160JAA-Net
3D Face ReconstructionDISFAAverage F156JAA-Net
3D Face ReconstructionBP4DAverage F160JAA-Net

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