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Papers/Deep Structured Prediction for Facial Landmark Detection

Deep Structured Prediction for Facial Landmark Detection

Lisha Chen, Hui Su, Qiang Ji

2020-10-18NeurIPS 2019 12Face AlignmentStructured PredictionFacial Landmark DetectionPrediction
PaperPDFCode(official)

Abstract

Existing deep learning based facial landmark detection methods have achieved excellent performance. These methods, however, do not explicitly embed the structural dependencies among landmark points. They hence cannot preserve the geometric relationships between landmark points or generalize well to challenging conditions or unseen data. This paper proposes a method for deep structured facial landmark detection based on combining a deep Convolutional Network with a Conditional Random Field. We demonstrate its superior performance to existing state-of-the-art techniques in facial landmark detection, especially a better generalization ability on challenging datasets that include large pose and occlusion.

Results

TaskDatasetMetricValueModel
Facial Recognition and Modelling300WNME_inter-ocular (%, Challenge)4.84CNN-CRF
Facial Recognition and Modelling300WNME_inter-ocular (%, Common)2.93CNN-CRF
Facial Recognition and Modelling300WNME_inter-ocular (%, Full)3.3CNN-CRF
Facial Recognition and Modelling300WNME_inter-pupil (%, Challenge)6.98CNN-CRF
Facial Recognition and Modelling300WNME_inter-pupil (%, Common)4.06CNN-CRF
Facial Recognition and Modelling300WNME_inter-pupil (%, Full)4.63CNN-CRF
Facial Recognition and Modelling300WNME3.3CNN-CRF (Inter-ocular Norm)
Facial Landmark Detection300WNME3.3CNN-CRF (Inter-ocular Norm)
Face Reconstruction300WNME_inter-ocular (%, Challenge)4.84CNN-CRF
Face Reconstruction300WNME_inter-ocular (%, Common)2.93CNN-CRF
Face Reconstruction300WNME_inter-ocular (%, Full)3.3CNN-CRF
Face Reconstruction300WNME_inter-pupil (%, Challenge)6.98CNN-CRF
Face Reconstruction300WNME_inter-pupil (%, Common)4.06CNN-CRF
Face Reconstruction300WNME_inter-pupil (%, Full)4.63CNN-CRF
Face Reconstruction300WNME3.3CNN-CRF (Inter-ocular Norm)
3D300WNME_inter-ocular (%, Challenge)4.84CNN-CRF
3D300WNME_inter-ocular (%, Common)2.93CNN-CRF
3D300WNME_inter-ocular (%, Full)3.3CNN-CRF
3D300WNME_inter-pupil (%, Challenge)6.98CNN-CRF
3D300WNME_inter-pupil (%, Common)4.06CNN-CRF
3D300WNME_inter-pupil (%, Full)4.63CNN-CRF
3D300WNME3.3CNN-CRF (Inter-ocular Norm)
3D Face Modelling300WNME_inter-ocular (%, Challenge)4.84CNN-CRF
3D Face Modelling300WNME_inter-ocular (%, Common)2.93CNN-CRF
3D Face Modelling300WNME_inter-ocular (%, Full)3.3CNN-CRF
3D Face Modelling300WNME_inter-pupil (%, Challenge)6.98CNN-CRF
3D Face Modelling300WNME_inter-pupil (%, Common)4.06CNN-CRF
3D Face Modelling300WNME_inter-pupil (%, Full)4.63CNN-CRF
3D Face Modelling300WNME3.3CNN-CRF (Inter-ocular Norm)
3D Face Reconstruction300WNME_inter-ocular (%, Challenge)4.84CNN-CRF
3D Face Reconstruction300WNME_inter-ocular (%, Common)2.93CNN-CRF
3D Face Reconstruction300WNME_inter-ocular (%, Full)3.3CNN-CRF
3D Face Reconstruction300WNME_inter-pupil (%, Challenge)6.98CNN-CRF
3D Face Reconstruction300WNME_inter-pupil (%, Common)4.06CNN-CRF
3D Face Reconstruction300WNME_inter-pupil (%, Full)4.63CNN-CRF
3D Face Reconstruction300WNME3.3CNN-CRF (Inter-ocular Norm)

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