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A new comprehensive eye-tracking test battery concurrently evaluating the Pupil Labs glasses and the EyeLink 1000

机译:全新的综合眼动测试电池可同时评估Pupil Labs眼镜和EyeLink 1000

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摘要

Eye-tracking experiments rely heavily on good data quality of eye-trackers. Unfortunately, it is often the case that only the spatial accuracy and precision values are available from the manufacturers. These two values alone are not sufficient to serve as a benchmark for an eye-tracker: Eye-tracking quality deteriorates during an experimental session due to head movements, changing illumination or calibration decay. Additionally, different experimental paradigms require the analysis of different types of eye movements; for instance, smooth pursuit movements, blinks or microsaccades, which themselves cannot readily be evaluated by using spatial accuracy or precision alone. To obtain a more comprehensive description of properties, we developed an extensive eye-tracking test battery. In 10 different tasks, we evaluated eye-tracking related measures such as: the decay of accuracy, fixation durations, pupil dilation, smooth pursuit movement, microsaccade classification, blink classification, or the influence of head motion. For some measures, true theoretical values exist. For others, a relative comparison to a reference eye-tracker is needed. Therefore, we collected our gaze data simultaneously from a remote EyeLink 1000 eye-tracker as the reference and compared it with the mobile Pupil Labs glasses. As expected, the average spatial accuracy of 0.57° for the EyeLink 1000 eye-tracker was better than the 0.82° for the Pupil Labs glasses (N = 15). Furthermore, we classified less fixations and shorter saccade durations for the Pupil Labs glasses. Similarly, we found fewer microsaccades using the Pupil Labs glasses. The accuracy over time decayed only slightly for the EyeLink 1000, but strongly for the Pupil Labs glasses. Finally, we observed that the measured pupil diameters differed between eye-trackers on the individual subject level but not on the group level. To conclude, our eye-tracking test battery offers 10 tasks that allow us to benchmark the many parameters of interest in stereotypical eye-tracking situations and addresses a common source of confounds in measurement errors (e.g., yaw and roll head movements). All recorded eye-tracking data (including Pupil Labs’ eye videos), the stimulus code for the test battery, and the modular analysis pipeline are freely available ().
机译:眼动追踪实验严重依赖于眼动追踪器的良好数据质量。不幸的是,通常情况下,制造商只能提供空间精度和精度值。仅这两个值不足以作为眼动仪的基准:在实验过程中,由于头部移动,照明变化或校准衰减,眼动质量会下降。另外,不同的实验范式需要分析不同类型的眼睛运动。例如,平滑的追踪运动,眨眼或微扫视,它们本身不能轻易通过单独使用空间精度或精确度来评估。为了获得更全面的性能描述,我们开发了一种广泛的眼动测试电池。在10个不同的任务中,我们评估了与眼动追踪相关的指标,例如:准确性下降,注视持续时间,瞳孔散大,平滑追随运动,微扫视分类,眨眼分类或头部运动的影响。对于某些措施,存在真实的理论值。对于其他人,需要与参考眼动仪进行相对比较。因此,我们同时从远程EyeLink 1000眼动仪收集了凝视数据作为参考,并将其与移动Pupil Labs眼镜进行了比较。不出所料,EyeLink 1000眼动仪的平均空间精度为0.57°,优于Pupil Labs眼镜的0.82°(N = 15)。此外,我们为Pupil Labs眼镜分类了较少的注视和较短的扫视时间。同样,我们发现使用Pupil Labs眼镜的微扫视镜更少。对于EyeLink 1000,随着时间的推移,准确性只会略有下降,而对于Pupil Labs眼镜而言,准确性会大大下降。最后,我们观察到,在单个受试者水平上,但在群体水平上,眼动仪之间测得的瞳孔直径不同。总而言之,我们的眼动追踪测试电池提供了10个任务,可让我们对定型眼动追踪情况下的许多重要参数进行基准测试,并解决常见的测量误差(例如偏航和摇头运动)混杂问题的来源。所有记录的眼动数据(包括Pupil Labs的眼动视频),测试电池的刺激代码和模块化分析管道都是免费提供的()。

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