Approximating the CIECAM97s color appearance model by means of neural networks

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Since the context in which colors are seen on the monitor is very different from that in which they are seen when printed, color imaging demands a reliable color appearance model. We present a method for faithfully approximating the color appearance model CIECAM97s by means of feed-forward neural networks trained with the error back-propagation algorithm. In particular, we show that it is sufficient to train a single neural network to approximate the combination of the forward and reverse CIECAM97s models independently by the adopted whites and the type of medium (CRT and hard copy).

论文关键词:Color matching,Color reproduction,Feed-forward neural networks,Color appearance models,CIECAM97s

论文评审过程:Received 6 April 2000, Revised 30 November 2000, Accepted 18 December 2000, Available online 31 July 2001.

论文官网地址:https://doi.org/10.1016/S0262-8856(01)00041-5