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Head pose estimation based on fuzzy systems using facial geometric features

机译:基于使用面部几何特征的模糊系统的头部姿态估计

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Head pose estimation has many applications in the field of computer vision and it is a useful part of pose-invariant face recognition. In this paper, we propose a novel method to estimate head pose (yaw and pitch rotations) based on fuzzy systems by facial geometric features. Firstly, seven certain points are selected on face. These points includes some main properties. They are all visible even for large pose variations. Since no point is selected on mouth region, obviously this method is insensitive to facial expression. By these points, some ratios and angles are computed as the inputs of two fuzzy systems. The output data of these systems are the corresponding yaw and pitch angles. After training them and determining some parameters, they are used for head yaw and pitch estimation. This method is evaluated on two databases and the experimental results demonstrate that our proposed method is strongly accurate, robust, and beneficial for head pose estimation.
机译:头部姿势估计在计算机视野领域有许多应用,并且它是姿势不变的面部识别的有用部分。在本文中,我们提出了一种新颖的方法来基于面部几何特征基于模糊系统来估计头部姿势(偏航和俯仰旋转)。首先,在面部上选择七个某些点。这些点包括一些主要属性。即使对于大的姿势变化,它们也都是可见的。由于口腔区域没有选择任何点,显然这种方法对面部表情不敏感。通过这些点,将一些比率和角度计算为两个模糊系统的输入。这些系统的输出数据是相应的偏航和俯仰角。在培训并确定一些参数后,它们用于头部偏航和音高估计。在两个数据库中评估该方法,实验结果表明,我们的提出方法是强大的准确,鲁棒性,有利于头部姿势估计。

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