将搜索任务与低级眼动模式联系起来

Michael J. Cole, J. Gwizdka, R. Bierig, N. Belkin, Jingjing Liu, Chang Liu, Xiangmin Zhang
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引用次数: 19

摘要

动机——在任务中检测任务类型和任务属性有利于信息系统的个性化和适应性。研究方法——利用多流日志系统,对32名参与者进行了基于网络的信息搜索实验。现实任务与被试的背景直接相关,具有不同的任务类型。研究结果/设计——我们报告了任务和个人阅读行为之间的关系。具体来说,我们表明在眼球运动模式中扫描和阅读行为之间的过渡是当前任务的隐含指标。研究局限/启示——这项工作表明,从眼动模式推断信息任务的类型是合理的。一个限制是缺乏对人群中不同类型任务的一般阅读模型差异的了解。虽然这是一项实验研究,但我们认为它可以推广到现实世界中面向文本的信息搜索任务。原创性/价值——本研究提出了一种新的方法来模拟用户信息搜索任务行为。这为基于眼球运动模式的信息任务类型检测提供了希望。带走信息——随着计算机交互的日益复杂,关于信息任务类型的知识对于系统个性化是有价值的。对眼球运动的阅读/扫描模式进行建模可以对任务类型和任务属性进行推断。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Linking search tasks with low-level eye movement patterns
Motivation -- On-the-task detection of the task type and task attributes can benefit personalization and adaptation of information systems. Research approach -- A web-based information search experiment was conducted with 32 participants using a multi-stream logging system. The realistic tasks were related directly to the backgrounds of the participants and were of distinct task types. Findings/Design -- We report on a relationship between task and individual reading behaviour. Specifically we show that transitions between scanning and reading behaviour in eye movement patterns are an implicit indicator of the current task. Research limitations/Implications -- This work suggests it is plausible to infer the type of information task from eye movement patterns. One limitation is a lack of knowledge about the general reading model differences across different types of tasks in the population. Although this is an experimental study we argue it can be generalized to real world text-oriented information search tasks. Originality/Value -- This research presents a new methodology to model user information search task behaviour. It suggests promise for detection of information task type based on patterns of eye movements. Take away message -- With increasingly complex computer interaction, knowledge about the type of information task can be valuable for system personalization. Modelling the reading/scanning patterns of eye movements can allow inference about the task type and task attributes.
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