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3D-Assisted Coarse-to-Fine Extreme-Pose Facial Landmark Detection

机译:3D辅助粗至细小的极端姿势面部地标检测

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We propose a novel 3D-assisted coarse-to-fine extreme-pose facial landmark detection system in this work. For a given face image, our system first refines the face bounding box with landmark locations inferred from a 3D face model generated by a Recurrent 3D Regressor at coarse level. Another R3R is then employed to fit a 3D face model onto the 2D face image cropped with the refined bounding box at fine-scale. 2D landmark locations inferred from the fitted 3D face are further adjusted with the popular 2D regression method, i.e. LBF. The 3D-assisted coarse-to-fine strategy and the 2D adjustment process explicitly ensure both the robustness to extreme face poses and bounding box disturbance and the accuracy towards pixel-level landmark displacement. Extensive experiments on the Menpo Challenge test sets demonstrate the superior performance of our system.
机译:我们在这项工作中提出了一种新颖的3D辅助粗对细微姿势面部地标检测系统。对于给定的面部图像,我们的系统首先通过从经常性3D回归在粗地位产生的3D面部模型中推断出与地标位置的面边界位置。然后采用另一R3R以将3D面模型拟合到与精细尺寸的细化边界框裁剪的2D面部图像上。通过流行的2D回归方法,即LBF进一步调整从装配的3D面部推断的2D地标位置。 3D辅助粗略策略和2D调整过程明确地确保了极端面部姿势和边界盒干扰以及对像素级地标位移的准确性的鲁棒性。 MENPO挑战测试集的广泛实验证明了我们系统的卓越性能。

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