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Document Classification on Relevance: A Study on Eye Gaze Patterns for Reading

机译:关于相关性的文件分类:阅读眼睛凝视图案的研究

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This paper presents a study that investigates the connection between the way that people read and the way that they understand content. The experiment consisted of having participants read some information on selected documents while an eye-tracking system recorded their eye movements. They were then asked to answer some questions and complete some tasks, on the information they had read. With the intention of investigating effective analysis approaches, both statistical methods and Artificial Neural Networks (ANN) were applied to analyse the collected gaze data in terms of several defined measures regarding the relevance of the text. The results from the statistical analysis do not show any significant correlations between those measures and the relevance of the text. However, good classification results were obtained by using an Artificial Neural Network. This suggests that using advanced learning approaches may provide more insightful differentiations than simple statistical methods particularly in analysing eye gaze reading patterns.
机译:本文提出了一项研究,调查人们阅读方式与他们了解内容的方式之间的联系。实验包括让参与者阅读有关所选文件的一些信息,而引人注目的系统记录了他们的眼球运动。然后,他们被要求回答一些问题并完成一些读取的任务,就他们阅读的信息。旨在调查有效分析方法,统计方法和人工神经网络(ANN)被应用于分析收集的凝视数据,以分析关于文本相关性的若干规定措施。来自统计分析的结果没有显示这些措施与文本相关性之间的任何显着相关性。然而,通过使用人工神经网络获得了良好的分类结果。这表明,使用高级学习方法可以提供比简单的统计方法更具洞察力的差异,特别是在分析眼睛凝视读取模式方面。

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