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VA2: A Visual Analytics Approach for // Evaluating Visual Analytics Applications

机译:VA 2 :用于//评估可视化分析应用程序的可视化分析方法

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摘要

Evaluation has become a fundamental part of visualization research and researchers have employed many approaches from the field of human-computer interaction like measures of task performance, thinking aloud protocols, and analysis of interaction logs. Recently, eye tracking has also become popular to analyze visual strategies of users in this context. This has added another modality and more data, which requires special visualization techniques to analyze this data. However, only few approaches exist that aim at an integrated analysis of multiple concurrent evaluation procedures. The variety, complexity, and sheer amount of such coupled multi-source data streams require a visual analytics approach. Our approach provides a highly interactive visualization environment to display and analyze thinking aloud, interaction, and eye movement data in close relation. Automatic pattern finding algorithms allow an efficient exploratory search and support the reasoning process to derive common eye-interaction-thinking patterns between participants. In addition, our tool equips researchers with mechanisms for searching and verifying expected usage patterns. We apply our approach to a user study involving a visual analytics application and we discuss insights gained from this joint analysis. We anticipate our approach to be applicable to other combinations of evaluation techniques and a broad class of visualization applications.
机译:评估已成为可视化研究的基础部分,研究人员已采用了人机交互领域中的许多方法,例如任务绩效的度量,大声思考协议和交互日志分析。近来,在这种情况下,眼动追踪也变得流行以分析用户的视觉策略。这增加了另一个模式和更多数据,这需要特殊的可视化技术来分析此数据。但是,只有少数几种方法可以对多个并发评估程序进行综合分析。这种耦合的多源数据流的多样性,复杂性和绝对数量需要视觉分析方法。我们的方法提供了一个高度交互式的可视化环境,可以以紧密的关系显示和分析大声思考,交互作用和眼睛运动数据。自动模式查找算法允许进行有效的探索性搜索,并支持推理过程以得出参与者之间常见的眼睛互动思维模式。此外,我们的工具还为研究人员提供了搜索和验证预期使用模式的机制。我们将我们的方法应用于涉及视觉分析应用程序的用户研究,并讨论从联合分析中获得的见解。我们预计我们的方法将适用于评估技术和各种可视化应用程序的其他组合。

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