论文标题
学生不可见的高级描述和绩效评估
A High-Level Description and Performance Evaluation of Pupil Invisible
论文作者
论文摘要
头部安装的眼睛跟踪器有望在不受约束的环境中方便地访问可靠的凝视数据。但是,由于有几个限制,他们通常只能部分兑现这一诺言。 Among those are the following: (i) the necessity of performing a device setup and calibration prior to every use of the eye tracker, (ii) a lack of robustness of gaze-estimation results against perturbations, such as outdoor lighting conditions and unavoidable slippage of the eye tracker on the head of the subject, and (iii) behavioral distortion resulting from social awkwardness, due to the unnatural appearance of current head-mounted eye跟踪器。 最近,学生实验室释放了学生隐形眼镜,该眼镜是一种旨在应对这些限制的头戴式眼镜跟踪器。在这里,我们对其目光估计功能进行了广泛的评估。为此,我们设计了一种数据收集协议和评估方案,旨在提供对学生无形眼镜的现实用法的忠实描绘。 特别是,我们开发了一个几何框架,用于测量凝视估计精度,而不仅仅是报告平均角度精度。我们证明,无需校准的学生隐形眼镜提供了凝视估计值,这些估计值适用于扰动,包括室外照明条件和耳机滑动。
Head-mounted eye trackers promise convenient access to reliable gaze data in unconstrained environments. Due to several limitations, however, often they can only partially deliver on this promise. Among those are the following: (i) the necessity of performing a device setup and calibration prior to every use of the eye tracker, (ii) a lack of robustness of gaze-estimation results against perturbations, such as outdoor lighting conditions and unavoidable slippage of the eye tracker on the head of the subject, and (iii) behavioral distortion resulting from social awkwardness, due to the unnatural appearance of current head-mounted eye trackers. Recently, Pupil Labs released Pupil Invisible glasses, a head-mounted eye tracker engineered to tackle these limitations. Here, we present an extensive evaluation of its gaze-estimation capabilities. To this end, we designed a data-collection protocol and evaluation scheme geared towards providing a faithful portrayal of the real-world usage of Pupil Invisible glasses. In particular, we develop a geometric framework for gauging gaze-estimation accuracy that goes beyond reporting mean angular accuracy. We demonstrate that Pupil Invisible glasses, without the need of a calibration, provide gaze estimates which are robust to perturbations, including outdoor lighting conditions and slippage of the headset.