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Multi-view based face chin contour extraction

机译:基于多视角的脸颊下巴轮廓提取

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摘要

Chin contour is an important facial feature to build a 3D morphable model, the core step of which is to establish feature points correspondence between each face in the training set and the reference face. In this paper, robust face detection is implemented firstly using probabilistic method. A probability of detection is obtained for each image of different position and at several scales and poses. Then, the chin contours are extracted accurately using the active shape model (ASM), which depends on the parameters obtained from the face detection. From frontal (0°) to profile (90°) faces that are equally divided into 10 parts, we train 10 flexible models. Then, different flexible models are used to extract the face chin contour according to the corresponding face pose. Experimental results show that the proposed approach can extract the chin contours of different people across different poses with good accuracy.
机译:下巴轮廓是建立3D可变形模型的重要面部特征,其核心步骤是在训练集中的每个面部和参考面部之间建立特征点对应关系。在本文中,首先使用概率方法实现鲁棒的人脸检测。对于不同位置,几个比例和姿势的每个图像,都获得了检测的概率。然后,使用活动形状模型(ASM)准确提取下巴轮廓,该形状取决于从面部检测获得的参数。从正面(0°)到轮廓(90°)的面部(均分为10个部分),我们训练了10个灵活的模型。然后,根据对应的面部姿势,使用不同的柔性模型提取下巴轮廓。实验结果表明,该方法能够准确提取不同姿势下不同人群的下巴轮廓。

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