利用色彩强度提高色彩校正

L. Brown, A. Datta, Sharath Pankanti
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引用次数: 14

摘要

色彩信息是许多视觉算法的重要特征,包括色彩校正、图像检索和跟踪。在本文中,我们研究了色彩测量精度的局限性,并探讨了如何利用这些信息来提高色彩校正的性能。特别是,我们表明,色相测量误差与饱和度和强度之间存在很强的相关性。我们引入了色彩强度的概念,它是饱和度和强度信息的组合,用于确定场景中的色调信息何时可靠。我们利用地面真色信息在两个不同的数据集上验证了该模型的预测能力。此外,我们展示了如何使用颜色强度信息来显着提高11K真实世界SFU灰球数据集的颜色校正精度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Exploiting Color Strength to Improve Color Correction
Color information is an important feature for many vision algorithms including color correction, image retrieval and tracking. In this paper, we study the limitations of color measurement accuracy and explore how this information can be used to improve the performance of color correction. In particular, we show that a strong correlation exists between the error in hue measurements on one hand and saturation and intensity on the other hand. We introduce the notion of color strength, which is a combination of saturation and intensity information to determine when hue information in a scene is reliable. We verify the predictive capability of this model on two different datasets with ground truth color information. Further, we show how color strength information can be used to significantly improve color correction accuracy for the 11K real-world SFU gray ball dataset.
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