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PropagationNet: Propagate Points to Curve to Learn Structure Information

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Deep learning technique has dramatically boosted the performance of face alignment algorithms. However, due to large variability and lack of samples, the alignment problem in unconstrained situations, \emph{e.g}\onedot large head poses, exaggerated expression, and uneven illumination, is still largely unsolved. In this paper, we explore the instincts and reasons behind our two proposals, \emph{i.e}\onedot Propagation Module and Focal Wing Loss, to tackle the problem. Concretely, we present a novel structure-infused face alignment algorithm based on heatmap regression via propagating landmark heatmaps to boundary heatmaps, which provide structure information for further attention map generation. Moreover, we propose a Focal Wing Loss for mining and emphasizing the difficult samples under in-the-wild condition. In addition, we adopt methods like CoordConv and Anti-aliased CNN from other fields that address the shift-variance problem of CNN for face alignment. When implementing extensive experiments on different benchmarks, \emph{i.e}\onedot WFLW, 300W, and COFW, our method outperforms state-of-the-arts by a significant margin. Our proposed approach achieves 4.05\% mean error on WFLW, 2.93\% mean error on 300W full-set, and 3.71\% mean error on COFW.

Xiehe Huang, Weihong Deng, Haifeng Shen, Xiubao Zhang, Jieping Ye• 2020

Related benchmarks

TaskDatasetResultRank
Facial Landmark Detection300-W (Common)--
180
Facial Landmark Detection300-W (Fullset)
Mean Error (%)2.93
174
Facial Landmark Detection300W (Challenging)--
159
Face AlignmentWFLW (test)
NME (%) (Testset)4.05
144
Facial Landmark DetectionWFLW (test)
Mean Error (ME) - All3.76
122
Face Alignment300W (Challenging)
NME3.99
93
Face AlignmentCOFW (test)
NME3.71
72
Face Alignment300-W (Full)
NME2.93
66
Facial Landmark LocalizationWFLW Occlusion
NME (%)4.58
44
Face Alignment300W common subset
NME2.67
33
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