Hidden Semi-Markov Models to Segment Reading Phases from Eye Movements.

IF 1.3 4区 心理学 Q3 OPHTHALMOLOGY
Brice Olivier, Anne Guérin-Dugué, Jean-Baptiste Durand
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引用次数: 0

Abstract

Our objective is to analyze scanpaths acquired through participants achieving a reading task aiming at answering a binary question: Is the text related or not to some given target topic? We propose a data-driven method based on hidden semi-Markov chains to segment scanpaths into phases deduced from the model states, which are shown to represent different cognitive strategies: normal reading, fast reading, information search, and slow confirmation. These phases were confirmed using different external covariates, among which semantic information extracted from texts. Analyses highlighted some strong preference of specific participants for specific strategies and more globally, large individual variability in eye-movement characteristics, as accounted for by random effects. As a perspective, the possibility of improving reading models by accounting for possible heterogeneity sources during reading is discussed.

Abstract Image

Abstract Image

Abstract Image

从眼动中分割阅读阶段的隐半马尔可夫模型。
我们的目标是分析通过参与者完成阅读任务获得的扫描路径,该任务旨在回答一个二元问题:文本是否与某个给定的目标主题相关?我们提出了一种基于隐藏半马尔可夫链的数据驱动方法,将扫描路径分割为从模型状态推导出的阶段,这些阶段显示了不同的认知策略:正常阅读、快速阅读、信息搜索和慢速确认。使用不同的外部协变量来确定这些阶段,其中从文本中提取的语义信息。分析强调了特定参与者对特定策略的一些强烈偏好,更广泛地说,眼动特征的个体差异很大,这是随机效应造成的。作为一个视角,本文讨论了通过考虑阅读过程中可能的异质性来源来改进阅读模型的可能性。
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来源期刊
CiteScore
2.90
自引率
33.30%
发文量
10
审稿时长
10 weeks
期刊介绍: The Journal of Eye Movement Research is an open-access, peer-reviewed scientific periodical devoted to all aspects of oculomotor functioning including methodology of eye recording, neurophysiological and cognitive models, attention, reading, as well as applications in neurology, ergonomy, media research and other areas,
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