Data-Driven Color Manifolds

ACM Trans. Graph. Pub Date : 2015-03-02 DOI:10.1145/2699645
Chuong H. Nguyen, Tobias Ritschel, H. Seidel
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引用次数: 20

Abstract

Color selection is required in many computer graphics applications, but can be tedious, as 1D or 2D user interfaces are employed to navigate in a 3D color space. Until now the problem was considered a question of designing general color spaces with meaningful (e.g., perceptual) parameters. In this work, we show how color selection usability improves by applying 1D or 2D color manifolds that predict the most likely change of color in a specific context. A typical use-case is manipulating the color of a banana; instead of presenting a 2D+1D RGB, CIE Lab, or HSV widget, our approach presents a simple 1D slider that captures the most likely change for this context. Technically, for each context, we learn a lower-dimensional manifold with varying density from labeled Internet examples. We demonstrate the increase in task performance of color selection in a user study.
数据驱动的颜色流形
颜色选择在许多计算机图形应用程序中都是必需的,但是可能很繁琐,因为使用1D或2D用户界面在3D色彩空间中导航。到目前为止,这个问题被认为是设计具有有意义(例如,感知)参数的一般色彩空间的问题。在这项工作中,我们展示了如何通过应用1D或2D颜色流形来预测特定环境中最可能的颜色变化,从而提高颜色选择的可用性。一个典型的用例是操纵香蕉的颜色;我们的方法不是呈现2D+1D RGB、CIE Lab或HSV小部件,而是呈现一个简单的1D滑块,它可以捕捉到这种情况下最可能发生的变化。从技术上讲,对于每个上下文,我们从标记的互联网示例中学习具有不同密度的低维流形。我们在用户研究中展示了颜色选择对任务性能的提高。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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