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首页> 外文期刊>IEEE transactions on industrial informatics >Toward Precise Gaze Estimation for Mobile Head-Mounted Gaze Tracking Systems
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Toward Precise Gaze Estimation for Mobile Head-Mounted Gaze Tracking Systems

机译:面向移动式头戴式注视跟踪系统的精确注视估计

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摘要

The gaze estimation in the mobile scenario often suffers from the extrapolation and parallax errors. In this paper, we propose a novel calibration framework to achieve the precise gaze estimation for head-mounted gaze trackers. Our proposed framework consists of two steps to learn a point-to-point and a point-to-line relations, respectively. The aim of step I is to infer the relation between pupil centers and spatially constrained points of regard. By adopting the "CalibMe" gaze data acquisition method, a sparse Gaussian Process using pseudo-inputs is used to capture the smooth residual field unmodeled by the polynomial function. Meanwhile, a distraction detection criterion is introduced to identify the moment when user's attention is taken away from the calibration point thereby removing outliers. By combining with the point-to-point relation inferred in step I, the observed parallax errors are leveraged in step II to obtain a point-to-line relation, i.e., each pupil center will correspond to an epipolar line. Thus, the real image gaze point projected from different depths is predicted as the intersection of two epipolar lines inferred from binocular data. The simulation and experimental results show the effectiveness of our proposed calibration framework for head-mounted gaze trackers.
机译:在移动场景中的凝视估计经常遭受外推和视差误差的困扰。在本文中,我们提出了一种新颖的校准框架,以实现针对头戴式凝视追踪器的精确凝视估计。我们提出的框架包括两个步骤,分别学习点对点和点对线关系。步骤I的目的是推断瞳孔中心与空间受限的视点之间的关系。通过采用“ CalibMe”凝视数据采集方法,使用了使用伪输入的稀疏高斯过程来捕获未通过多项式函数建模的平滑残差场。同时,引入干扰检测标准以识别用户的注意力从校准点移开的时刻,从而消除异常值。通过与步骤I中推断的点对点关系相结合,在步骤II中利用观察到的视差误差来获得点对线关系,即,每个瞳孔中心将对应于对极线。因此,从不同深度投影的真实图像凝视点被预测为从双目数据推断出的两条对极线的交点。仿真和实验结果表明,我们提出的用于头戴式凝视追踪器的校准框架是有效的。

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