Causal Inference in Graph-Text Constellations: Designing Verbally Annotated Graphs*

IF 5.2 1区 计算机科学 Q1 COMPUTER SCIENCE, INFORMATION SYSTEMS
Christopher Habel , Cengiz Acartürk
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引用次数: 6

Abstract

Multimodal documents combining language and graphs are wide-spread in print media as well as in electronic media. One of the most important tasks to be solved in comprehending graph-text combinations is construction of causal chains among the meaning entities provided by modalities. In this study we focus on the role of annotation position and shape of graph lines in simple line graphs on causal attributions concerning the event presented by the annotation and the processes (i.e. increases and decreases) and states (no-changes) in the domain value of the graphs presented by the process-lines and state-lines. Based on the experimental investigation of readers’ inferences under different conditions, guidelines for the design of multimodal documents including text and statistical information graphics are suggested. One suggestion is that the position and the number of verbal annotations should be selected appropriately, another is that the graph line smoothing should be done cautiously.

图-文星座的因果推理:设计口头注释图*
结合语言和图形的多模态文件在印刷媒体和电子媒体中广泛传播。在图形-文本组合理解中需要解决的最重要的任务之一是在模态提供的意义实体之间构建因果链。本文研究了简单线形图中标注位置和图线形状对标注所表示的事件与过程线和状态线所表示的图域值中的过程(即增加和减少)和状态(无变化)的因果归因的作用。通过对不同条件下读者推理的实验研究,提出了文本和统计信息图形等多模态文档的设计准则。一个建议是适当选择文字注释的位置和数量,另一个建议是图形线条平滑要谨慎。
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
12.10
自引率
0.00%
发文量
2340
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