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    Data-driven Evaluation of Visual Quality Measures

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    Date
    2015
    Author
    Sedlmair, Michael
    Aupetit, Michael ORCID
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    Abstract
    Visual quality measures seek to algorithmically imitate human judgments of patterns such as class separability, correlation, or outliers. In this paper, we propose a novel data-driven framework for evaluating such measures. The basic idea is to take a large set of visually encoded data, such as scatterplots, with reliable human ''ground truth'' judgements, and to use this human-labeled data to learn how well a measure would predict human judgements on previously unseen data. Measures can then be evaluated based on predictive performance-an approach that is crucial for generalizing across datasets but has gained little attention so far. To illustrate our framework, we use it to evaluate 15 state-of-the-art class separation measures, using human ground truth data from 828 class separation judgments on color-coded 2D scatterplots.
    BibTeX
    @article {10.1111:cgf.12632,
    journal = {Computer Graphics Forum},
    title = {{Data-driven Evaluation of Visual Quality Measures}},
    author = {Sedlmair, Michael and Aupetit, Michael},
    year = {2015},
    publisher = {The Eurographics Association and John Wiley & Sons Ltd.},
    DOI = {10.1111/cgf.12632}
    }
    URI
    http://dx.doi.org/10.1111/cgf.12632
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    • 34-Issue 3
    • EuroVis15: Eurographics Conference on Visualization

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