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估计三维时空注视点:设备评估。

Estimating 3D spatiotemporal point of regard: a device evaluation.

出版信息

J Opt Soc Am A Opt Image Sci Vis. 2022 Aug 1;39(8):1343-1351. doi: 10.1364/JOSAA.457663.

Abstract

This paper presents and evaluates a system and method that record spatiotemporal scene information and location of the center of visual attention, i.e., spatiotemporal point of regard (PoR) in ecological environments. A primary research application of the proposed system and method is for enhancing current 2D visual attention models. Current eye-tracking approaches collapse a scene's depth structures to a 2D image, omitting visual cues that trigger important functions of the human visual system (e.g., accommodation and vergence). We combined head-mounted eye-tracking with a miniature time-of-flight camera to produce a system that could be used to estimate the spatiotemporal location of the PoR-the point of highest visual attention-within 3D scene layouts. Maintaining calibration accuracy is a primary challenge for gaze mapping; hence, we measured accuracy repeatedly by matching the PoR to fixated targets arranged within a range of working distances in depth. Accuracy was estimated as the deviation from estimated PoR relative to known locations of scene targets. We found that estimates of 3D PoR had an overall accuracy of approximately 2° omnidirectional mean average error (OMAE) with variation over a 1 h recording maintained within 3.6° OMAE. This method can be used to determine accommodation and vergence cues of the human visual system continuously within habitual environments, including everyday applications (e.g., use of hand-held devices).

摘要

本文提出并评估了一种系统和方法,用于记录生态环境中的时空场景信息和视觉注意中心的位置,即时空关注点(PoR)。该系统和方法的主要研究应用是增强当前的 2D 视觉注意模型。当前的眼动追踪方法将场景的深度结构简化为 2D 图像,忽略了触发人类视觉系统重要功能的视觉线索(例如调节和聚散)。我们结合头戴式眼动追踪和微型飞行时间相机,开发了一种系统,可以用来估计 3D 场景布局中 PoR(即最高视觉注意点)的时空位置。保持校准精度是注视映射的主要挑战;因此,我们通过将 PoR 与在不同工作距离范围内排列的注视目标进行匹配,来反复测量精度。准确性是通过相对于场景目标的已知位置估计 PoR 的偏差来估计的。我们发现,3D PoR 的估计总体上具有约 2°的全方位平均误差(OMAE),在 1 小时的记录过程中,其变化范围保持在 3.6° OMAE 以内。这种方法可以用于在习惯环境中连续确定人类视觉系统的调节和聚散线索,包括日常应用(例如,使用手持设备)。

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