Map-based Visual Analytics of Moving Learners

IF 0.2 Q4 COMPUTER SCIENCE, CYBERNETICS
Christian Sailer, P. Kiefer, Joram Schito, M. Raubal
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引用次数: 8

Abstract

Location-based mobile learning LBML is a type of mobile learning in which the learning content is related to the location of the learner. The evaluation of LBML concepts and technologies is typically performed using methods known from classical usability engineering, such as questionnaires or interviews. In this paper, the authors argue for applying visual analytics to spatial and spatio-temporal visualizations of learners' trajectories for evaluating LBML. Visual analytics supports the detection and interpretation of spatio-temporal patterns and irregularities in both, single learners' as well as multiple learners' trajectories, thus revealing learners' typical behavior patterns and potential problems with the LBML software, hardware, the didactical concept, or the spatial and temporal embedding of the content.
移动学习者的基于地图的可视化分析
基于位置的移动学习LBML是一种移动学习,其学习内容与学习者的位置相关。对LBML概念和技术的评估通常使用传统可用性工程中已知的方法来执行,例如问卷调查或访谈。在本文中,作者主张将视觉分析应用于学习者轨迹的空间和时空可视化,以评估LBML。视觉分析支持对单个学习者和多个学习者轨迹中的时空模式和不规则性的检测和解释,从而揭示学习者的典型行为模式和LBML软件、硬件、教学概念或内容的时空嵌入的潜在问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
4.70
自引率
0.00%
发文量
5
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