A robust homography technique for color correction in high dimensional environment
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Abstract
One of the crucial steps in the processing of images is color correction, which is used to improve
newlinethe color quality of the image during collection or pre-processing before it is being used in
newlinesubsequent steps. Over the years a significant number of techniques have been developed for
newlinemapping colors in target images from reference images. In the present work, an effective and
newlineefficient color correcting method is proposed that is based on Alternate Least Square (ALS) and
newlineRoot Polynomial (RP) techniques. In the proposed work, the two techniques are hybridized to
newlineform a hybrid ALS-RP color correction method. The primary goal of the suggested model is to
newlineminimize discrepancies between two photos, improving overall visual quality.
newlineTo deal with this task, Amsterdam Library of Object Images (ALOI) dataset is used which
newlinecontains thousands of pictures of different objects. These images are obtained under various
newlinelightening conditions and angles. Moreover, a hybrid ALS-RP color correction model is applied
newlineto the target picture in which colors are fixed as per the reference image. The images are
newlineconverted into three color models of LAB, LUV and RGB into XYZ format to match color
newlinecoordinates effectively. Furthermore, the difference in colour between the reference image and
newlinethe target image is calculated using values for characteristics like Mean, Median, 95% Quantile,
newlineand Maximum Error.
newline