通过非逼真的视觉效果吸引观众

Laura G. Tateosian, C. Healey, J. Enns
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引用次数: 28

摘要

人类视觉认知的研究表明,美丽的图像可以吸引视觉系统,促使它在图像中的某些位置停留,并吸收微妙的细节。通过开发美观的数据可视化,我们的目标是吸引观众并促进长时间的检查,这可以导致数据中的新发现。我们提出了三种新的可视化技术,它们应用绘画渲染风格来改变解释复杂性(IC)、指示和细节(ID)和视觉复杂性(VC),图像属性对美学很重要。人类视觉感知的知识和美学的心理物理模型为我们的设计提供了理论基础。计算几何和非真实感算法用于预处理数据和渲染可视化。我们用真实天气和超新星数据的可视化来演示这些技术。
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Engaging viewers through nonphotorealistic visualizations
Research in human visual cognition suggests that beautiful images can engage the visual system, encouraging it to linger in certain locations in an image and absorb subtle details. By developing aesthetically pleasing visualizations of data, we aim to engage viewers and promote prolonged inspection, which can lead to new discoveries within the data. We present three new visualization techniques that apply painterly rendering styles to vary interpretational complexity (IC), indication and detail (ID), and visual complexity (VC), image properties that are important to aesthetics. Knowledge of human visual perception and psychophysical models of aesthetics provide the theoretical basis for our designs. Computational geometry and nonphotorealistic algorithms are used to preprocess the data and render the visualizations. We demonstrate the techniques with visualizations of real weather and supernova data.
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