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Illuminant estimation using pixels spatially close to the illuminant in the rg-chromaticity space

机译:光源估计在RG-色度空间中使用空间靠近光源的像素估计

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摘要

Color constancy algorithms can provide us with illuminant invariant descriptions for a scene, and it is often accomplished by illuminant estimation. Most statistics-based methods estimate the illuminant color from the information provided by all pixels of an image. However, this research reveals that, for most images, the color of many pixels is quite different from the illuminant, and these pixels may severely trim the performance of statistics-based methods. Based on this fact, we propose a color constancy algorithm that finds a subset of image pixels with r, g components similar to those of the illuminant through a shallow neural network, and this subset of pixels is called illuminant close pixels (ICPs). Then the illuminant color is estimated from these pixels by some statistics-based methods. The proposed method has been evaluated and investigated on two benchmark datasets. Compared to using all pixels in an image, these statistics-based methods have been efficiently improved using ICPs. (C) 2020 SPIE and IS&T
机译:颜色恒定算法可以为我们提供场景的发光不变​​的描述,并且通常通过发光体估计来完成。基于大多数统计数据的方法从图像的所有像素提供的信息中估计光源颜色。然而,该研究表明,对于大多数图像,许多像素的颜色与发光体有很大不同,并且这些像素可能会严重修剪基于统计的方法的性能。基于这一事实,我们提出了一种彩色恒定算法,其通过浅神经网络与照明器的r,g组件一起找到图像像素的子集,并且该像素的该子集被称为发光封闭像素(ICPS)。然后通过基于统计学的方法从这些像素估计光源颜色。已经在两个基准数据集中进行了评估和研究了该方法。与使用图像中的所有像素相比,使用ICPS有效地提高了基于统计的方法。 (c)2020个SPIE和IS&T

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