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Use of transformed reflectance functions for neural network color match prediction systems

机译:变换反射函数在神经网络颜色匹配预测系统中的使用

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Attempts have been made to use different transformed reflectance functions as input for a fixed genetically optimized neural network match prediction system. Two different sets of data depicting dyed samples of known recipes but metameric to each other were used to train and test the network. All the transformed and untransformed reflectance functions gave good recipe predictions when trained and tested by the same data sets (PF/4 being less than 4). However, the transformation based on matrix R of the decomposition theory showed promising results, since it gave very good colorant concentration predictions when trained by the first set of data dyed with one set of colorants while being tested by a completely different second set of data dyed with a different set of colorants (PF/ 4 always being less than 10).
机译:已经尝试使用不同的变换反射率函数作为固定的遗传优化神经网络匹配预测系统的输入。描绘已知配方的染色样品但彼此互变的两组不同数据用于训练和测试网络。当使用相同的数据集(PF / 4小于4)进行训练和测试时,所有经过变换和未经变换的反射率函数都可以提供良好的配方预测。但是,基于分解理论的矩阵R的转换显示出令人鼓舞的结果,因为当由一组染色剂染色的第一组数据训练而由完全不同的第二组染色数据进行测试时,它给出了很好的着色剂浓度预测使用一组不同的着色剂(PF / 4始终小于10)。

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