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Perception-based evaluation of projection methods for multidimensional data visualization

机译:基于感知的多维数据可视化投影方法评估

摘要

Similarity-based layouts generated by multidimensional projections or other dimension reduction techniques are commonly used to visualize high-dimensional data. Many projection techniques have been recently proposed addressing different objectives and application domains. Nonetheless, very little is known about the effectiveness of the generated layouts from a user’s perspective, how distinct layouts from the same data compare regarding the typical visualization tasks they support, or how domain-specific issues affect the outcome of the techniques. Learning more about projection usage is an important step towards both consolidating their role in high-dimensional data analysis and taking informed decisions when choosing techniques. This work provides a contribution towards this goal. We describe the results of an investigation on the performance of layouts generated by projection techniques as perceived by their users. We conducted a controlled user study to test against the following hypotheses: (1) projection performance is task-dependent; (2) certain projections perform better on certain types of tasks; (3) projection performance depends on the nature of the data; and (4) subjects prefer projections with good segregation capability. We generated layouts of high-dimensional data with five techniques representative of different projection approaches. As application domains we investigated image and document data. We identified eight typical tasks, three of them related to segregation capability of the projection, three related to projection precision, and two related to incurred visual cluttering. Answers to questions were compared for correctness against ‘ground truth’ computed directly from the data. We also looked at subject confidence and task completion times. Statistical analysis of the collected data resulted in Hypotheses 1 and 3 being confirmed, Hypothesis 2 being confirmed partially and Hypotheses 4 could not be confirmed. We discuss our findings in comparison with some numerical measures of projection layout quality. Our results offer interesting insight on the use of projection layouts in data visualization tasks and provide a departing point for further systematic investigations.
机译:由多维投影或其他降维技术生成的基于相似度的布局通常用于可视化高维数据。最近提出了许多解决不同目标和应用领域的投影技术。但是,从用户的角度来看,关于生成的布局的有效性,关于相同数据的不同布局如何比较他们所支持的典型可视化任务,或者特定于域的问题如何影响技术结果的了解甚少。了解有关投影用法的更多信息,是巩固其在高维数据分析中的作用以及在选择技术时做出明智决策的重要一步。这项工作为实现这一目标做出了贡献。我们描述了对投影技术所产生的版面的性能进行调查的结果,这些结果被其用户感知。我们进行了一项受控用户研究,以检验以下假设:(1)投影效果取决于任务; (2)某些预测在某些类型的任务上表现更好; (3)投影效果取决于数据的性质; (4)受试者偏爱具有良好隔离能力的投影。我们使用代表不同投影方法的五种技术生成了高维数据的布局。作为应用领域,我们研究了图像和文档数据。我们确定了八项典型任务,其中三项与投影的分离能力有关,三项与投影精度有关,两项与引起视觉混乱有关。将问题的答案与直接从数据中计算出的“地面真理”的正确性进行了比较。我们还研究了主题信心和任务完成时间。对收集到的数据进行统计分析后,可以确定假设1和3,部分确定了假设2,而不能确定假设4。我们将我们的发现与投影布局质量的一些数值测量结果进行比较。我们的结果提供了关于在数据可视化任务中使用投影布局的有趣见解,并为进一步的系统研究提供了出发点。

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