Deep Pictorial Gaze Estimation

July 26, 2018 ยท Declared Dead ยท ๐Ÿ› European Conference on Computer Vision

๐Ÿ‘ป CAUSE OF DEATH: Ghosted
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Authors Seonwook Park, Adrian Spurr, Otmar Hilliges arXiv ID 1807.10002 Category cs.CV: Computer Vision Citations 194 Venue European Conference on Computer Vision Last Checked 3 months ago
Abstract
Estimating human gaze from natural eye images only is a challenging task. Gaze direction can be defined by the pupil- and the eyeball center where the latter is unobservable in 2D images. Hence, achieving highly accurate gaze estimates is an ill-posed problem. In this paper, we introduce a novel deep neural network architecture specifically designed for the task of gaze estimation from single eye input. Instead of directly regressing two angles for the pitch and yaw of the eyeball, we regress to an intermediate pictorial representation which in turn simplifies the task of 3D gaze direction estimation. Our quantitative and qualitative results show that our approach achieves higher accuracies than the state-of-the-art and is robust to variation in gaze, head pose and image quality.
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