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An analysis of eye-movements during reading for the detection of mild cognitive impairment

机译:阅读期间眼动的分析以检测轻度认知障碍

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We present a machine learning analysis of eye-tracking data for the detection of mild cognitive impairment, a decline in cognitive abilities that is associated with an increased risk of developing dementia. We compare two experimental configurations (reading aloud versus reading silently), as well as two methods of combining information from the two trials (concatenation and merging). Additionally, we annotate the words being read with information about their frequency and syntactic category, and use these annotations to generate new features. Ultimately, we are able to distinguish between participants with and without cognitive impairment with up to 86% accuracy.
机译:我们提出了眼动数据的机器学习分析,用于检测轻度认知障碍,认知能力下降与发展痴呆症的风险增加有关。我们比较了两种实验配置(朗读与静默阅读),以及两种结合两种试验信息的方法(串联和合并)。此外,我们使用有关其词频和句法类别的信息对正在阅读的单词进行注释,并使用这些注释生成新功能。最终,我们能够以高达86%的准确度区分有认知障碍和无认知障碍的参与者。

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