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research article

Spectral prediction model for color prints on paper with fluorescent additives

Hersch, R. D.  
2008
Applied Optics

I propose a model for predicting the total reflectance of color halftones printed on paper incorporating fluorescent brighteners. The total reflectance is modeled as the additive superposition of the relative fluorescent emission and the pure reflectance of the color print. The fluorescent emission prediction mod- el accounts for both the attenuation of light by the halftone within the excitation wavelength range and for the attenuation of the fluorescent emission by the same halftone within the emission wavelength range. The model’s calibration relies on reflectance measurements of the optically brightened paper and of the solid colorant patches with two illuminants, one including and one excluding the UV components. The part of the model predicting the pure reflectance relies on an ink-spreading extended Clapper–Yule model. On uniformly distributed surface coverages of cyan, magenta, and yellow halftone patches, the proposed model predicts the relative fluorescent emission with a high accuracy (mean ΔE94 1⁄4 0:42 under a D65 standard illuminant). For optically brightened paper exhibiting a moderate fluorescence, the total reflectance prediction improves the spectral reflectance prediction mainly for high- light color halftones, comprising a proportion of paper white above 12%. Applications include the creation of improved printer characterization tables for color management purposes and the prediction of color gamuts for new combinations of optically brightened papers and inks. © 2008 Optical Society of America

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Type
research article
DOI
10.1364/AO.47.006710
Web of Science ID

WOS:000262494800004

Author(s)
Hersch, R. D.  
Date Issued

2008

Published in
Applied Optics
Volume

47

Issue

26

Start page

6710

End page

6722

Subjects

Spectral prediction

•

color prints

•

fluorescent additives

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LSP  
Available on Infoscience
February 13, 2009
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/35276
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