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It’s Written All Over Your Face: Full-Face Appearance-Based Gaze Estimation

机译:它写在您的脸上:基于全脸外观的凝视估计

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Eye gaze is an important non-verbal cue for human affect analysis. Recent gaze estimation work indicated that information from the full face region can benefit performance. Pushing this idea further, we propose an appearance-based method that, in contrast to a long-standing line of work in computer vision, only takes the full face image as input. Our method encodes the face image using a convolutional neural network with spatial weights applied on the feature maps to flexibly suppress or enhance information in different facial regions. Through extensive evaluation, we show that our full-face method significantly outperforms the state of the art for both 2D and 3D gaze estimation, achieving improvements of up to 14.3% on MPIIGaze and 27.7% on EYEDIAP for person-independent 3D gaze estimation. We further show that this improvement is consistent across different illumination conditions and gaze directions and particularly pronounced for the most challenging extreme head poses.
机译:注视是人类情感分析的重要非语言提示。最近的凝视估计工作表明,来自整个面部区域的信息可以提高性能。进一步推动这一想法,我们提出了一种基于外观的方法,与计算机视觉中长期存在的工作方式不同,该方法仅将全脸图像作为输入。我们的方法使用卷积神经网络对面部图像进行编码,并在特征图上应用空间权重,以灵活地抑制或增强不同面部区域中的信息。通过广泛的评估,我们表明,对于2D和3D凝视估计,我们的全脸方法明显优于最新技术,对于独立于人的3D凝视估计,MPIIGaze和EYEDIAP的改进幅度分别达到14.3 \%和27.7 \% 。我们进一步表明,这种改进在不同的照明条件和注视方向上是一致的,对于最具挑战性的极端头部姿势尤其明显。

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