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SAT Reading Analysis Using Eye-Gaze Tracking Technology and Machine Learning

机译:采用眼光跟踪技术和机器学习的SAT读数分析

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摘要

We propose a method using eye-gaze tracking technology and machine learning for the analysis of the reading section of the Scholastic Aptitude Test (SAT). An eye-gaze tracking device tracks where the reader is looking on the screen and provides the coordinates of the gaze. This collected data allows us to analyze the reading patterns of test takers and discover what features enable test takers to score higher. Using a machine learning approach, we found that the time spent on the passage at the beginning of the test (in minutes), number of times switching between the passage and the questions, and the total time spent doing the reading test (in minutes) have the greatest impact in distinguishing higher scores from lower scores.
机译:我们提出了一种使用眼睛注视跟踪技术和机器学习的方法,用于分析学术能力测试的阅读部分(SAT)。一种眼睛凝视跟踪装置轨道,读者在屏幕上看并提供凝视的坐标。该收集的数据允许我们分析测试者的阅读模式,并发现有什么功能使测试者能够得分更高。使用机器学习方法,我们发现在测试开头(以分钟为单位),在段落和问题之间切换的次数,以及完成阅读测试的总时间(以分钟为单位)在从较低分数中区分更高分数的影响最大。

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