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Accelerating eye movement research via accurate and affordable smartphone eye tracking

机译:通过准确和实惠的智能手机眼镜跟踪加速眼球运动研究

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摘要

Eye tracking has been widely used for decades in vision research, language and usability. However, most prior research has focused on large desktop displays using specialized eye trackers that are expensive and cannot scale. Little is known about eye movement behavior on phones, despite their pervasiveness and large amount of time spent. We leverage machine learning to demonstrate accurate smartphone-based eye tracking without any additional hardware. We show that the accuracy of our method is comparable to state-of-the-art mobile eye trackers that are 100x more expensive. Using data from over 100 opted-in users, we replicate key findings from previous eye movement research on oculomotor tasks and saliency analyses during natural image viewing. In addition, we demonstrate the utility of smartphone-based gaze for detecting reading comprehension difficulty. Our results show the potential for scaling eye movement research by orders-of-magnitude to thousands of participants (with explicit consent), enabling advances in vision research, accessibility and healthcare. Progress in eye movement research has been limited since existing eye trackers are expensive and do not scale. Here, the authors show that smartphone-based eye tracking achieves high accuracy comparable to state-of-the-art mobile eye trackers, replicating key findings from prior eye movement research.
机译:眼镜追踪已广泛用于视力研究,语言和可用性的数十年。但是,大多数现有研究都集中在使用昂贵的专门跟踪器的大型桌面显示器上,这是昂贵的并且无法缩放的。尽管他们普及和花费大量时间,但对于手机上的眼球运动行为而言,很少见过。我们利用机器学习展示准确的基于智能手机的眼睛跟踪,无需任何额外的硬件。我们表明,我们的方法的准确性与最先进的移动眼跟踪器相当,这是一个更昂贵的100倍。使用来自100多个选择的用户的数据,我们在自然图像观察期间从先前的眼睛运动研究中复制了先前眼睛运动研究的关键结果。此外,我们展示了智能手机的凝视效用,以检测阅读理解难度。我们的结果表明,通过数量级别到数千名参与者(具有明确同意),缩放眼球运动研究的可能性,从而实现了视觉研究,可访问性和医疗保健的进步。眼球运动研究的进展受到限制,因为现有的眼跟踪器昂贵并且不扩展。在这里,作者表明,基于智能手机的眼睛跟踪实现了与最先进的移动眼跟踪器相当的高精度,从先前的眼睛运动研究复制了关键发现。

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