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Learning gaze biases with head motion for head pose-free gaze estimation

机译:通过头部运动学习凝视偏见以进行无头姿势凝视估计

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摘要

When estimating human gaze directions from captured eye appearances, most existing methods assume a fixed head pose because head motion changes eye appearance greatly and makes the estimation inaccurate. To handle this difficult problem, in this paper, we propose a novel method that performs accurate gaze estimation without restricting the user's head motion. The key idea is to decompose the original free-head motion problem into sub-problems, including an initial fixed head pose problem and subsequent compensations to correct the initial estimation biases. For the initial estimation, automatic image rectification and joint alignment with gaze estimation are introduced. Then compensations are done by either learning-based regression or geometric-based calculation. The merit of using such a compensation strategy is that the training requirement to allow head motion is not significantly increased; only capturing a 5-s video clip is required. Experiments are conducted, and the results show that our method achieves an average accuracy of around 3° by using only a single camera.
机译:当根据捕获的眼神来估计人的注视方向时,大多数现有方法都采用固定的头部姿势,因为头部运动会极大地改变眼神并且使估计不准确。为了解决这个困难的问题,在本文中,我们提出了一种新颖的方法,该方法可以在不限制用户头部运动的情况下执行准确的凝视估计。关键思想是将原始的自由头运动问题分解为子问题,包括初始的固定头位问题和随后的补偿,以纠正初始估计偏差。对于初始估计,引入了自动图像校正和带有视线估计的联合对准。然后通过基于学习的回归或基于几何的计算来完成补偿。使用这种补偿策略的优点是,允许头部运动的训练要求没有明显增加;仅需要捕获5秒视频剪辑。进行了实验,结果表明,我们的方法仅使用单个摄像机即可达到3°左右的平均精度。

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