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Head Pose Detection Using Fast Robust PCA for Side Active Appearance Models Under Occlusion

机译:使用快速鲁棒PCA在遮挡下使用快速鲁棒PCA进行侧面主动外观模型的头部姿势检测

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Face detection and the numerous applications it leads to are now a part of our everyday lives and can be found in any electronic device. Detecting a face and its facial features in uncontrolled environments, however, come along with two main problems that we address in this paper: handling large variations in pose and facial occlusions. The Active appearance model (AAM) is a very efficient method to model and describe the face, but it is not robust against neither of these problems. In this paper we propose to use different AAMs for different pose configurations and introduce a switching method that makes use of the Fast Robust PCA reconstruction technique to decide on the final model to use. The presented method is a very simple and efficient one that is also robust against occlusions. We give results of experiments performed on a database of artificially occluded images to prove that the method is highly effective in detecting the pose of faces even in presence of occlusions.
机译:面部检测和它导致的众多应用现在是我们日常生活的一部分,并且可以在任何电子设备中找到。然而,在不受控制的环境中检测面部及其面部特征以及我们在本文中解决的两个主要问题:处理姿势和面部闭合的大变化。主动外观模型(AAM)是一种非常有效的模拟和描述面部的方法,但对这些问题没有任何稳健。在本文中,我们建议使用不同的AAM用于不同的姿势配置,并引入使用快速鲁棒PCA重建技术来决定要使用的快速鲁棒PCA重建技术的交换方法。呈现的方法是一个非常简单且有效的方法,其对闭塞也很健壮。我们给出对人工封闭图像数据库进行的实验结果,以证明该方法在闭塞存在下也能够检测面孔的姿势。

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