A simple but effective appearance-based gaze estimation method from massive synthetic eye images

Yafei Wang, Tongtong Zhao, Xueyan Ding, Tianyi Shen, Jiming Bian, Xianping Fu
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Abstract

A novel method for appearance-based gaze estimation from massive synthetic eye images is proposed in this paper. This method is a combination of neighbor selection and gaze local regression for gaze mapping. First, a simple cascaded method using multiple k-NN(k-Nearest Neighbor) classifier is employed to select neighbors in feature space joint head pose, pupil center and eye appearance. Second, PLSR (Partial Least Square Regression) is applied to seek for a direct correlation between image feature and gaze angle. Experimental results demonstrate that the proposed method achieves state-of-the-art accuracy below 1 degree for with-in subject gaze estimation on public synthesis eye image dataset.
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一种简单而有效的基于外观的海量人眼注视估计方法
提出了一种基于外观的人眼注视估计方法。该方法将邻居选择和注视局部回归相结合,实现了注视映射。首先,采用简单的级联方法,利用多个k-NN(k-Nearest Neighbor)分类器在特征空间中选择关节头部姿态、瞳孔中心和眼睛外观的邻居;其次,采用偏最小二乘回归(PLSR)方法寻找图像特征与凝视角度之间的直接相关性。实验结果表明,该方法在公共合成眼图像数据集上获得了低于1度的受试者内注视估计精度。
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