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  Non-euclidean structure of spectral color space

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by Reiner Lenz A, Peter Meer B
http://www.caip.rutgers.edu/riul/research/papers/pdf/noneucol.pdf
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Abstract:

Color processing methods can be divided into methods based on human color vision and spectral based methods. Human vision based methods usually describe color with three parameters which are easy to interpret since they model familiar color perception processes. They share however the limitations of human color vision such as metamerism. Spectral based methods describe colors by their underlying spectra and thus do not involve human color perception. They are often used in industrial inspection and remote sensing. Most of the spectral methods employ a low dimensional (three to ten) representation of the spectra obtained from an orthogonal (usually eigenvector) expansion. While the spectral methods have solid theoretical foundation, the results obtained are often di cult to interpret. In this paper we show that for a large family of spectra the space of eigenvector coe cients has a natural cone structure. Thus we can de ne a natural, hyperbolic coordinate system whose coordinates are closely related to intensity, saturation and hue. The relation between the hyperbolic coordinate system and the perceptually uniform Lab color space is also shown. De ning a Fourier transform in the hyperbolic space can have applications in pattern recognition problems. Keywords: Color spectra, eigenvector decomposition, non-euclidean geometry, Mehler-Fok transform 1.

Citations

130 Color appearance models – FAIRCHILD - 1998
97 Special Functions and Their Applications – Lebedev - 1972
74 Evaluation of linear models of surface spectral reflectance with small numbers of parameters – Maloney - 1986
54 Is colour constancy good enough – Funt, Barnard, et al. - 1998
41 Chiao, “Statistics of Cone Response to Natural images – Ruderman, Cronin, et al.
40 Color Science – Wyszecki, Stiles - 1982
36 Characteristic spectra of munsell colors – Parkkinen, Hallikainen, et al. - 1989
26 Klimyk, Representations of Lie groups, and special functions (Russian), in: Noncommutative Harmonic Analysis 2 – Vilenkin, U - 1990
23 Color Constancy: Basic theory of two stage linear recovery of spectral descriptions for lights and surfaces – D'Zmura, Iverson - 1993
23 The Use of Integral Transforms – Sneddon - 1972
9 Unitary Representations and Harmonic Analysis – Sugiura - 1975
5 Dependency of the spectral re ectance curves of the Munsell color chips – Cohen - 1964
5 Symmetries and Laplacians, Introduction to Harmonic Analysis – Gurarie - 1992
4 Group Representations and Special Functions, D – Wawrzynczyk - 1984
1 Color and luminance information in natural scenes – Troscianko, Moorehead - 1998
1 Reconstruction of Munsell color space by a ve-layer neural network – Usui, Nakauchi, et al. - 1992
1 Unsupervised ltering of color spectra – Lenz, Osterberg, et al. - 1996