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Revealing uncertainty for information visualization

机译:揭示信息可视化的不确定性

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摘要

Uncertainty in data occurs in domains ranging from natural science to medicine to computer science. By developing ways to include uncertainty in our information visualizations, we can provide more accurate depictions of critical data sets so that people can make more informed decisions. One hindrance to visualizing uncertainty is that we must first understand what uncertainty is and how it is expressed. We reviewed existing work from several domains on uncertainty and created a classification of uncertainty based on the literature. We empirically evaluated and improved upon our classification by conducting interviews with 18 people from several domains, who self-identified as working with uncertainty. Participants described what uncertainty looks like in their data and how they deal with it. We found commonalities in uncertainty across domains and believe our refined classification will help us in developing appropriate visualizations for each category of uncertainty.
机译:数据的不确定性发生在从自然科学到医学再到计算机科学的各个领域。通过开发在信息可视化中包含不确定性的方法,我们可以对关键数据集提供更准确的描述,以便人们可以做出更明智的决策。可视化不确定性的一个障碍是,我们必须首先了解什么是不确定性以及如何表达不确定性。我们回顾了关于不确定性的多个领域的现有工作,并根据文献对不确定性进行了分类。通过与来自几个领域的18个人进行访谈,我们从经验上评估和改进了我们的分类,他们自认为具有不确定性。参与者描述了数据中的不确定性以及如何处理。我们发现了跨领域不确定性的共性,并相信我们完善的分类将有助于我们为每种不确定性类别开发适当的可视化。

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