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Haptic Exploration Patterns in Virtual Line-Graph Comprehension

机译:虚拟线图理解中的触觉探索模式

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Multi-modal interfaces that provide haptic access to statistical line graphs combined with verbal assistance are proposed as an effective tool to fulfill the needs of visually impaired people. Graphs do not only present data, they also provide and elicit the extraction of second order entities (such as maxima or trends), which are closely linked to shape properties of the graphs. In an experimental study, we investigated collaborative joint activities between haptic explorers of graphs and verbal assistants who helped haptic explorers to conceptualize local and non-local second-order concepts. The assistants have not only to decide what to say but in particular when to say it. Based on the empirical data of this experiment, we describe in the present paper the design of a feature set for describing patterns of haptic exploration, which is able to characterize the need for verbal assistance during the course of haptic exploration. We employed a (supervised) classification algorithm, namely the J48 decision tree. The constructed features within the range from basic (low-level) user-action features to complex (high-level) conceptual were categorized into four feature sets. All feature set combinations achieved high accuracy level. The best results in terms of sensitivity and specificity were achieved by adding the low-level graphical features.
机译:提出了一种多模态界面,该界面提供了对统计折线图的触觉访问,并提供了言语帮助,是满足视觉障碍者需求的有效工具。图不仅提供数据,还提供并引发与图的形状属性紧密相关的二阶实体(例如最大值或趋势)的提取。在一项实验研究中,我们调查了图的触觉探索者与语言助手之间的协作联合活动,这些语言帮助触觉探索者概念化了本地和非本地二阶概念。助手不仅要决定说什么,而且尤其要决定何时说。基于该实验的经验数据,我们在本文中描述了用于描述触觉探索模式的功能集的设计,该功能集能够表征在触觉探索过程中对口头帮助的需求。我们采用了(监督)分类算法,即J48决策树。从基本(低级)用户操作功能到复杂(高级)概念范围内的构造功能分为四个功能集。所有功能集组合均达到了较高的准确性水平。通过添加低级图形功能,可以在灵敏度和特异性方面获得最佳结果。

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