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Combining Head Pose and Eye Location Information for Gaze Estimation

机译:结合头部姿势和眼睛位置信息进行注视估计

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摘要

Head pose and eye location for gaze estimation have been separately studied in numerous works in the literature. Previous research shows that satisfactory accuracy in head pose and eye location estimation can be achieved in constrained settings. However, in the presence of nonfrontal faces, eye locators are not adequate to accurately locate the center of the eyes. On the other hand, head pose estimation techniques are able to deal with these conditions; hence, they may be suited to enhance the accuracy of eye localization. Therefore, in this paper, a hybrid scheme is proposed to combine head pose and eye location information to obtain enhanced gaze estimation. To this end, the transformation matrix obtained from the head pose is used to normalize the eye regions, and in turn, the transformation matrix generated by the found eye location is used to correct the pose estimation procedure. The scheme is designed to enhance the accuracy of eye location estimations, particularly in low-resolution videos, to extend the operative range of the eye locators, and to improve the accuracy of the head pose tracker. These enhanced estimations are then combined to obtain a novel visual gaze estimation system, which uses both eye location and head information to refine the gaze estimates. From the experimental results, it can be derived that the proposed unified scheme improves the accuracy of eye estimations by 16% to 23%. Furthermore, it considerably extends its operating range by more than 15 $^{circ}$ by overcoming the problems introduced by extreme head poses. Moreover, the accuracy of the head pose tracker is improved by 12% to 24%. Finally, the experimentation on the proposed combined gaze estimation system shows that it is accurate (with a mean error between 2$^{circ}$ and 5$^{circ}$ ) and that it can be used in cases where classic approaches would fail without imposing restraints on the position of the head.
机译:在许多文献中,已经分别研究了用于凝视估计的头部姿势和眼睛位置。先前的研究表明,在受限的环境中,可以达到令人满意的头部姿势和眼睛位置估计精度。但是,在没有正面面孔的情况下,眼睛定位器不足以准确定位眼睛的中心。另一方面,头部姿势估计技术能够应对这些情况。因此,它们可能适合提高眼睛定位的准确性。因此,在本文中,提出了一种混合方案,将头部姿势和眼睛位置信息相结合以获得增强的注视估计。为此,将从头部姿势获得的变换矩阵用于归一化眼睛区域,然后,将由找到的眼睛位置生成的变换矩阵用于校正姿势估计过程。该方案旨在增强眼睛位置估计的准确性,尤其是在低分辨率视频中,以扩展眼睛定位器的操作范围,并提高头部姿势跟踪器的准确性。然后,将这些增强的估计进行组合,以获得新颖的视觉注视估计系统,该系统使用眼睛位置和头部信息来完善注视估计。从实验结果可以得出,提出的统一方案将眼图估计的准确性提高了16%至23%。此外,它克服了极端的头部姿势所带来的问题,将其工作范围大大扩展了超过15%。此外,头部姿势跟踪器的准确性提高了12%至24%。最后,对提出的组合式凝视估计系统进行的实验表明,该方法是准确的(平均误差在2 $ ^ {circ} $和5 $ ^ {circ} $之间),并且可以用于经典方法会不对头部的位置施加约束而失败。

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