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Automatic Detection of Facial Feature Points via HOGs and Geometric Prior Models

机译:通过HOG和几何先验模型自动检测面部特征点

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Most applications dealing with problems involving the face require a robust estimation of the facial salient points. Nevertheless, this estimation is not usually an automated preprocessing step in applications dealing with facial expression recognition. In this paper we present a simple method to detect facial salient points in the face. It is based on a prior Point Distribution Model and a robust object descriptor. The model learns the distribution of the points from the training data, as well as the amount of variation in location each point exhibits. Using this model, we reduce the search areas to look for each point. In addition, we also exploit the global consistency of the points constellation, increasing the detection accuracy. The method was tested on two separate data sets and the results, in some cases, outperform the state of the art.
机译:处理涉及面部问题的大多数应用程序需要对面部显着点进行可靠的估计。但是,在处理面部表情识别的应用程序中,此估计通常不是自动化的预处理步骤。在本文中,我们提出了一种简单的方法来检测面部中的面部显着点。它基于先前的点分布模型和健壮的对象描述符。该模型从训练数据中学习点的分布,以及每个点展示的位置变化量。使用此模型,我们减少了搜索区域以寻找每个点。此外,我们还利用了点星座的全局一致性,提高了检测精度。该方法在两个单独的数据集上进行了测试,在某些情况下,其结果优于现有技术。

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