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Illumination estimation via nonnegative matrix factorization

机译:通过非负矩阵分解进行照明估计

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摘要

The problem of illumination estimation for color constancy and automatic white balancing of digital color imagery can be viewed as the separation of the image into illumination and reflectance components. We propose using nonnegative matrix factorization with sparseness constraints to separate these components. Since illumination and reflectance are combined multiplicatively, the first step is to move to the logarithm domain so that the components are additive. The image data is then organized as a matrix to be factored into nonnegative components. Sparseness constraints imposed on the resulting factors help distinguish illumination from reflectance. The proposed approach provides a pixel-wise estimate of the illumination chromaticity throughout the entire image. This approach and its variations can also be used to provide an estimate of the overall scene illumination chromaticity.
机译:可以将数字彩色图像的色彩恒定性和自动白平衡的照明估计问题看作是将图像分为照明和反射成分。我们建议使用具有稀疏约束的非负矩阵分解来分离这些组件。由于照明和反射率是乘积结合的,因此第一步是移至对数域,以便各分量相加。然后将图像数据组织为要分解为非负分量的矩阵。限制在结果因子上的稀疏性限制有助于区分照明与反射率。所提出的方法在整个图像中提供了照明色度的逐像素估计。该方法及其变体也可以用于提供整体场景照明色度的估计。

著录项

  • 来源
    《Journal of electronic imaging》 |2012年第3期|033022.1-033022.13|共13页
  • 作者单位

    Simon Fraser University School of Computing ScienceBurnaby, British Columbia Canada V5A 1S6;

    Simon Fraser University School of Computing ScienceBurnaby, British Columbia Canada V5A 1S6;

    Omnivision Corporation California 4275 Burton Drive Santa Clara, California 95054;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-18 01:17:45

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