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Visualizing Flow of Uncertainty through Analytical Processes

机译:通过分析过程可视化不确定性流

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摘要

Uncertainty can arise in any stage of a visual analytics process, especially in data-intensive applications with a sequence of data transformations. Additionally, throughout the process of multidimensional, multivariate data analysis, uncertainty due to data transformation and integration may split, merge, increase, or decrease. This dynamic characteristic along with other features of uncertainty pose a great challenge to effective uncertainty-aware visualization. This paper presents a new framework for modeling uncertainty and characterizing the evolution of the uncertainty information through analytical processes. Based on the framework, we have designed a visual metaphor called uncertainty flow to visually and intuitively summarize how uncertainty information propagates over the whole analysis pipeline. Our system allows analysts to interact with and analyze the uncertainty information at different levels of detail. Three experiments were conducted to demonstrate the effectiveness and intuitiveness of our design.
机译:在视觉分析过程的任何阶段都可能出现不确定性,尤其是在具有一系列数据转换的数据密集型应用程序中。此外,在多维,多变量数据分析的整个过程中,由于数据转换和集成导致的不确定性可能会分裂,合并,增加或减少。这种动态特性以及不确定性的其他特征对有效的不确定性感知可视化提出了巨大挑战。本文提出了一个用于建模不确定性和通过分析过程表征不确定性信息演变的新框架。基于该框架,我们设计了一个可视化隐喻,称为不确定性流,以直观直观地总结不确定性信息如何在整个分析流程中传播。我们的系统允许分析师与不同细节级别的不确定性信息进行交互和分析。进行了三个实验,以证明我们设计的有效性和直观性。

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