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Estimation of Spectral Distribution of Scene Illumination from a Single Image with Chromatic Illuminant

机译:从色光发光分布唯一图像场景照明光谱分布的估计

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The current paper proposes an illuminant estimation algorithm that estimates the spectral power distribution of an incident light source using its chromaticity determined based on the perceived illumination and highlight method. The proposed algorithm is composed of three steps. First, the illuminant chromaticity of the global incident light is estimated using a hybrid method that combines the perceived illumination and highlight region. Second, the surface spectral reflectance is then recovered from the image after decoupling the global incident illuminant for each channel. The surface spectral reflectance calculation is limited to the maximum achromatic region (MAR), which is the most achromatic and brightest region in the image, and estimated using the principal component analysis (PCA) method along with a set of given Munsell samples. Third, the closest colors are selected from a spectral database composed of reflected-lights generated by the given Munsell samples and a set of illuminants. Finally, the illuminant of the image is calculated using the average spectral distributions of the reflected-lights selected for the MAR region and its average surface reflectance. Simulations were performed using artificial color-biased images and the results confirmed the accuracy of the estimates produced by the proposed method for various illuminants.
机译:本文提出了一种光源估计算法,其使用基于感知的照明和突出法测定的色度来估计入射光源的光谱功率分布。该算法由三个步骤组成。首先,使用结合感知的照明和突出区域的混合方法估计全局入射光的光学体色度。其次,然后在向每个通道解耦全局入射光剂之后从图像中回收表面光谱反射率。表面光谱反射率计算限于最大消色差区域(MAR),其是图像中最无源性和最亮的区域,并使用主成分分析(PCA)方法以及一套给定的Munsell样本估计。第三,最接近的颜色是由由给定的通道样本和一组光源产生的反射灯组成的光谱数据库。最后,使用为MAR区域选择的反射灯的平均光谱分布和其平均表面反射率来计算图像的光源。使用人工彩色偏置图像进行模拟,结果证实了通过所提出的各种光源的方法产生的估计的准确性。

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