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Real-time Prediction of User Performance based on Pupillary Assessment via Eye Tracking

机译:通过眼动追踪基于瞳孔评估的用户性能实时预测

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We propose a method to predict user performance based on eye-tracking. The method uses eye-tracking-based pupillometry to capture pupil diameter data and calculates—based on a Random Forest algorithm—user performance expectations. We conducted a large-scale experimental evaluation (125 participants aged from 21 to 61 years) and found promising results that pave the way for a dynamic real-time adaption of IT to a user’s mental effort and expected user performance. We have already achieved a good classification accuracy of user performance after only 40 seconds (5% of the mean total trial time that our participants took to complete our experiment). The non-invasive contact-free method can be applied cost-efficiently both in research and practical environments.
机译:我们提出了一种基于眼动追踪来预测用户性能的方法。该方法使用基于眼动追踪的瞳孔测量法来捕获瞳孔直径数据,并基于随机森林算法计算用户性能期望值。我们进行了大规模的实验评估(125位年龄在21至61岁之间的参与者),发现了令人鼓舞的结果,这些结果为IT实时动态适应用户的心理努力和预期的用户性能铺平了道路。仅40秒(我们的参与者完成实验所花费的平均总试用时间的5%),我们就已经获得了良好的用户表现分类准确度。这种非侵入性的非接触式方法可以经济高效地应用于研究和实际环境中。

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