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BIBLIOGRAPHY.bib
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@misc{ANSI2003a,
title = {Specification of {{ROMM RGB}}},
author = {{ANSI}},
year = 2003,
pages = {1--2},
}
@book{ANSI2018,
title = {{{ANSI}}/{{IES TM-30-18}} - {{IES Method}} for
{{Evaluating Light Source Color Rendition}}},
author = {{ANSI} and {IES Color Committee}},
year = 2018,
publisher = {ANSI/IES},
isbn = {978-0-87995-379-9},
annotation = {[email protected]},
}
@misc{ARRI2012a,
title = {{{ALEXA}} - {{Log C Curve}} - {{Usage}} in {{VFX}}},
author = {{ARRI}},
year = 2012,
}
@misc{ASTMInternational1989a,
title = {{{ASTM D1535-89}} - {{Standard Practice}} for
{{Specifying Color}} by the {{Munsell System}}},
author = {{ASTM International}},
year = 1989,
pages = {1--29},
urldate = {2014-09-25},
keywords = {color,D1535,Munsell,Munsell color order
system,Munsell notation},
}
@misc{ASTMInternational2007,
title = {{{ASTM D2244-07}} - {{Standard Practice}} for
{{Calculation}} of {{Color Tolerances}} and {{Color Differences}}
from {{Instrumentally Measured Color Coordinates}}},
author = {{ASTM International}},
year = 2007,
volume = {i},
pages = {1--10},
doi = {10.1520/D2244-16},
}
@misc{ASTMInternational2008a,
title = {{{ASTM D1535-08e1}} - {{Standard Practice}} for
{{Specifying Color}} by the {{Munsell System}}},
author = {{ASTM International}},
year = 2008,
doi = {10.1520/D1535-08E01},
}
@misc{ASTMInternational2011a,
title = {{{ASTM E2022-11}} - {{Standard Practice}} for
{{Calculation}} of {{Weighting Factors}} for {{Tristimulus
Integration}}},
author = {{ASTM International}},
year = 2011,
pages = {1--10},
doi = {10.1520/E2022-11},
abstract = {This standard is issued under the fixed designation
E2022; the number immediately following the designation indicates
the year of original adoption or, in the case of revision, the
year of last revision. A number in parentheses indicates the year
of last reapproval. A superscript epsilon) indicates an editorial
change since the last revision or reapproval.},
}
@misc{ASTMInternational2015,
title = {{{ASTM E313-15e1}} - {{Standard Practice}} for
{{Calculating Yellowness}} and {{Whiteness Indices}} from
{{Instrumentally Measured Color Coordinates}}},
author = {{ASTM International}},
year = 2015,
doi = {10.1520/E0313-20},
}
@misc{ASTMInternational2015b,
title = {{{ASTM E308-15}} - {{Standard Practice}} for
{{Computing}} the {{Colors}} of {{Objects}} by {{Using}} the {{CIE
System}}},
author = {{ASTM International}},
year = 2015,
pages = {1--47},
doi = {10.1520/E0308-15},
}
@article{Abasi2020a,
title = {Distance Metrics for Very Large Color Differences},
author = {Abasi, Saeedeh and Amani Tehran, Mohammad and
Fairchild, Mark D.},
year = 2020,
month = apr,
journal = {Color Research \& Application},
volume = 45,
number = 2,
pages = {208--223},
issn = {0361-2317, 1520-6378},
doi = {10.1002/col.22451},
urldate = {2024-10-23},
abstract = {Abstract Small, supra-threshold color differences
are typically described with Euclidean distance metrics, or
dimension-weighted Euclidean metrics, in color appearance spaces
such as CIELAB. This research examines the perception and modeling
of very large color differences in the order of 10 CIELAB units or
larger, with an aim of describing the salience of color
differences between distinct objects in real-world scenes and
images. A psychophysical experiment was completed to compare
directly large color-difference pairs designed to probe various
Euclidean and non-Euclidean distance metrics. The results indicate
that very large color differences are best described by HyAB, a
combination of a Euclidean metric in hue and chroma with a
city-block metric to incorporate lightness differences.},
langid = {english},
}
@article{Abebe2017,
title = {Perceptual {{Lightness Modeling}} for
{{High-Dynamic-Range Imaging}}},
author = {Abebe, Mekides Assefa and Pouli, Tania and Larabi,
Mohamed-Chaker and Reinhard, Erik},
year = 2017,
month = jul,
journal = {ACM Transactions on Applied Perception},
volume = 15,
number = 1,
pages = {1--19},
issn = 15443558,
doi = {10.1145/3086577},
abstract = {{\copyright} 2017 ACM. The human visual system (HVS)
non-linearly processes light from the real world, allowing us to
perceive detail over a wide range of illumination. Although models
that describe this non-linearity are constructed based on
psycho-visual experiments, they generally apply to a limited range
of illumination and therefore may not fully explain the behavior
of theHVS under more extreme illumination conditions. We propose a
modified experimental protocol for measuring visual responses to
emissive stimuli that do not require participant training, nor
requiring the exclusion of non-expert participants. Furthermore,
the protocol can be applied to stimuli covering an extended
luminance range. Based on the outcome of our experiment, we
propose a new model describing lightness response over an extended
luminance range. The model can be integrated with existing color
appearance models or perceptual color spaces. To demonstrate the
effectiveness of our model in high dynamic range applications, we
evaluate its suitability for dynamic range expansion relative to
existing solutions.},
}
@misc{AdobeSystems2005a,
title = {Adobe {{RGB}} (1998) {{Color Image Encoding}}},
author = {{Adobe Systems}},
year = 2005,
}
@misc{AdobeSystems2013,
title = {Adobe {{DNG Software Development Kit}} ({{SDK}}) -
1.3.0.0 -
Dng\_sdk\_1\_3/Dng\_sdk/Source/Dng\_temperature.Cpp::Dng\_temperature::{{Set}}\_xy\_coord},
author = {{Adobe Systems}},
year = 2013,
}
@misc{AdobeSystems2013a,
title = {Adobe {{DNG Software Development Kit}} ({{SDK}}) -
1.3.0.0 -
Dng\_sdk\_1\_3/Dng\_sdk/Source/Dng\_temperature.Cpp::Dng\_temperature::Xy\_coord},
author = {{Adobe Systems}},
year = 2013,
}
@misc{AdobeSystems2013b,
title = {Cube {{LUT Specification}}},
author = {{Adobe Systems}},
year = 2013,
keywords = {Iridas,look-up table,specification},
}
@misc{AppleInc.2019,
title = {{{displayP3}}},
author = {{Apple Inc.}},
year = 2019,
urldate = {2019-12-18},
howpublished = {https://developer.apple.com/documentation/coregraphics/cgcolorspace/1408916-displayp3},
}
@misc{AppleInc.2023,
title = {Apple {{Log Profile White Paper}}},
author = {{Apple Inc.}},
year = 2023,
langid = {english},
}
@misc{AssociationofRadioIndustriesandBusinesses2015a,
title = {Essential {{Parameter Values}} for the {{Extended
Image Dynamic Range Television}} ({{EIDRTV}}) {{System}} for
{{Programme Production}}},
author = {{Association of Radio Industries and Businesses}},
year = 2015,
}
@misc{BabelColor2012b,
title = {The {{ColorChecker}} (since 1976!)},
author = {{BabelColor}},
year = 2012,
urldate = {2014-09-26},
howpublished = {http://www.babelcolor.com/main\_level/ColorChecker.htm},
}
@misc{BabelColor2012c,
title = {{{ColorChecker RGB}} and Spectra},
author = {{BabelColor}},
year = 2012,
}
@book{Barten1999,
title = {Contrast {{Sensitivity}} of the {{Human Eye}} and
{{Its Effects}} on {{Image Quality}}},
author = {Barten, Peter G.},
year = 1999,
month = dec,
number = 1999,
publisher = {SPIE},
issn = 10924388,
doi = {10.1117/3.353254},
isbn = {978-0-8194-7849-8},
pmid = 18723593,
}
@inproceedings{Barten2003,
title = {Formula for the Contrast Sensitivity of the Human
Eye},
booktitle = {Proceedings of {{SPIE}}},
author = {Barten, Peter G. J.},
editor = {Miyake, Yoichi and Rasmussen, D. Rene},
year = 2003,
month = dec,
volume = 5294,
pages = {231--238},
issn = {0277786X},
doi = {10.1117/12.537476},
abstract = {The contrast sensitivity of the human eye and its
dependence on luminance and display size is described on the basis
of internal noise in the visual system. With the addition of a
global description of the optical MTF of the eye, a complete
physical model is presented for the spatial contrast sensitivity
function. Calculation results obtained with this model are
compared with measurements published in literature.},
isbn = {0-8194-3496-5},
keywords = {contrast sensitivity,csf,human eye,orientation
angle,standard observer,surround luminance},
}
@article{Bianco2010a,
title = {Two New von {{Kries}} Based Chromatic Adaptation
Transforms Found by Numerical Optimization},
author = {Bianco, S. and Schettini, R.},
year = 2010,
month = jun,
journal = {Color Research \& Application},
volume = 35,
number = 3,
pages = {184--192},
issn = 03612317,
doi = {10.1002/col.20573},
urldate = {2014-09-26},
}
@misc{BlackmagicDesign2020,
title = {{{DaVinci Wide Gamut}} - {{DaVinci Resolve Studio}}
17 {{Public Beta}} 1},
author = {{Blackmagic Design}},
year = 2020,
month = nov,
}
@misc{BlackmagicDesign2020a,
title = {Wide {{Gamut Intermediate DaVinci Resolve}}},
author = {{Blackmagic Design}},
year = 2020,
urldate = {2020-12-12},
}
@misc{BlackmagicDesign2021,
title = {Blackmagic {{Generation}} 5 {{Color Science}}},
author = {{Blackmagic Design}},
year = 2021,
}
@article{Bodhaine1999a,
title = {On {{Rayleigh Optical Depth Calculations}}},
author = {Bodhaine, Barry A. and Wood, Norman B. and Dutton,
Ellsworth G. and Slusser, James R.},
year = 1999,
month = nov,
journal = {Journal of Atmospheric and Oceanic Technology},
volume = 16,
number = 11,
pages = {1854--1861},
issn = {0739-0572},
doi = {10.1175/1520-0426(1999)016<1854:ORODC>2.0.CO;2},
urldate = {2014-09-25},
abstract = {Many different techniques are used for the
calculation of Rayleigh optical depth in the atmosphere. In some
cases differences among these techniques can be important,
especially in the UV region of the spectrum and under clean
atmospheric conditions. The authors recommend that the calculation
of Rayleigh optical depth be approached by going back to the first
principles of Rayleigh scattering theory rather than the variety
of curve- fitting techniques currently in use. A survey of the
literature was conducted in order to determine the latest values
of the physical constants necessary and to review the methods
available for the calculation of Rayleigh optical depth. The
recommended approach requires the accurate calculation of the
refractive index of air based on the latest published
measurements. Calculations estimating Rayleigh optical depth
should be done as accurately as possible because the inaccuracies
that arise can equal or even exceed other quantities being
estimated, such as aerosol optical depth, particularly in the UV
region of the spectrum. All of the calculations are simple enough
to be done easily in a spreadsheet.},
}
@misc{Borer2017a,
title = {Private {{Discussion}} with {{Mansencal}}, {{T}}.
and {{Shaw}}, {{N}}.},
author = {Borer, Tim},
year = 2017,
}
@misc{Bourkea,
title = {Intersection Point of Two Line Segments in 2
Dimensions},
author = {Bourke, Paul},
urldate = {2016-01-15},
howpublished = {http://paulbourke.net/geometry/pointlineplane/},
}
@misc{Bourkeb,
title = {Trilinear {{Interpolation}}},
author = {Bourke, Paul},
urldate = {2018-01-13},
howpublished = {http://paulbourke.net/miscellaneous/interpolation/},
}
@article{Breneman1987b,
title = {Corresponding Chromaticities for Different States of
Adaptation to Complex Visual Fields},
author = {Breneman, Edwin J.},
year = 1987,
month = jun,
journal = {Journal of the Optical Society of America A},
volume = 4,
number = 6,
pages = 1115,
issn = {1084-7529},
doi = {10.1364/JOSAA.4.001115},
urldate = {2014-09-27},
abstract = {While each of his or her two eyes was independently
adapted to a different illuminant in viewing a complex visual
field, each of a number of observers matched a series of test
colors seen by one eye with a juxtaposed variable stimulus seen by
the other eye. The 2 degrees test and matching stimuli were
located centrally in the complex adapting field, which subtended
an angle of 31 degrees X 24 degrees. In making the matches, the
observer viewed the test and matching stimuli for a series of
brief intervals (approximately 1 sec) while viewing the complex
adapting field with normal eye movements. Nine experiments were
performed with different pairs of illuminants and different
illuminances ranging from that of an average living room to that
of a scene illuminated with hazy sunlight. In three other
experiments each of the observer's two eyes was adapted to a
different illuminance of D55. The amount of adaptation was more
nearly complete at high levels of illuminance than at low levels,
and the proportional amount of adaptation was less for the "blue"
receptors. When adaptation coefficients were determined from the
actual adaptation differences (e.g., from corresponding
tristimulus values for matching neutrals) rather than from the
adapting illuminants, a linear von Kries transformation based on
experimentally determined visual primaries gave corresponding
chromaticities that were in good agreement with the results
obtained in each of the chromatic-adaptation experiments, except
at the lowest illuminances. The results of the experiments in
which each eye was adapted to different levels of the same
illuminant indicated again that adaptation to the different levels
was incomplete, the proportional amount of adaptation being less
at low illuminances and for the "blue" receptors. This caused a
change in chromatic adaptation with the level of illuminance even
when the chromaticities of the adapting lights were equal. The
results of these experiments also indicated that higher purities
are needed in order to produce the same absolute color appearances
at low levels of illuminance.},
pmid = 3598755,
}
@article{Brill2008a,
title = {Repairing Gamut Problems in {{CIECAM02}}: {{A}}
Progress Report},
author = {Brill, Michael H. and Susstrunk, Sabine},
year = 2008,
month = oct,
journal = {Color Research \& Application},
volume = 33,
number = 5,
pages = {424--426},
issn = 03612317,
doi = {10.1002/col.20432},
urldate = {2014-10-02},
abstract = {The color-appearance model CIECAM02 has several
problems. which can result in mathematical instabilities, due to
the position of the chromatic-adaptation primaries relative to the
spectrum locus and to the presumed physiological cone primaries.
To keep a corresponding (adapted) color within the positive gamut
given by the chromatic adaptation primaries, the gamut must he
within the cone primary octant. To contain adapted colors within
the positive cone-primary octan, it suffices to truncate the
action of adaptation at the boundary of that octant. Such
modifications may be needed to avoid the mathematical problems in
CIECAM02.},
keywords = {Chromatic adaptation,CIECAM02,Color
appearance,Gamut,Model,Primary},
}
@misc{Broadbent2009a,
title = {Calculation from the {{Original Experimental Data}}
of the {{Cie}} 1931 {{RGB Standard Observer Spectral Chromaticity
Co-Ordinates}} and {{Color Matching Functions}}.},
author = {Broadbent, A. D.},
year = 2009,
journal = {Qu{\'e}bec, Canada: D{\'e}partement de g{\'e}nie
chimique, {\dots}},
pages = {1--17},
urldate = {2014-06-12},
abstract = {This paper describes all the steps in the
calculations of the CIE 1931 RGB spectral chromaticity
co-ordinates and color matching functions starting from the
initial experimental data of W. D. Wright and J. Guild. Sufficient
information is given to allow the reader to reproduce and verify
the results obtained at each stage of the calculations and to
critically analyze the procedures used. In some instances, the
available literature only provides limited descriptions of the
actual steps in the calculations and, in others, important data
were not published. Nevertheless, it has been possible to more or
less reproduce the entire sequence of calculations. All the tables
of numerical data are given in the accompanying computer worksheet
file CIE1931\_RGB.xls.},
howpublished = {http://www.cis.rit.edu/mcsl/research/1931.php},
}
@book{Burger2009b,
title = {Principles of {{Digital Image Processing}}},
author = {Burger, Wilhelm and Burge, Mark James},
year = 2009,
publisher = {Springer London},
address = {London},
doi = {10.1007/978-1-84800-195-4},
isbn = {978-1-84800-194-7},
}
@book{CIEDivision12022,
title = {{{CIE}} 248:2022 {{The CIE}} 2016 {{Colour
Appearance Model}} for {{Colour Management Systems}}: {{CIECAM16}}},
author = {{CIE Division 1} and {CIE Division 8}},
year = 2022,
publisher = {Commission Internationale de l'Eclairage},
isbn = {978-3-902842-94-7},
}
@book{CIETC1-321994b,
title = {{{CIE}} 109-1994 {{A Method}} of {{Predicting
Corresponding Colours}} under {{Different Chromatic}} and
{{Illuminance Adaptations}}},
author = {{CIE TC 1-32}},
year = 1994,
publisher = {Commission Internationale de l'Eclairage},
isbn = {978-3-900734-51-0},
}
@book{CIETC1-362006a,
title = {{{CIE}} 170-1:2006 {{Fundamental Chromaticity
Diagram}} with {{Physiological Axes}} - {{Part}} 1},
author = {{CIE TC 1-36}},
year = 2006,
publisher = {Commission Internationale de l'Eclairage},
isbn = {978-3-901906-46-6},
}
@incollection{CIETC1-382005e,
title = {9. {{INTERPOLATION}}},
booktitle = {{{CIE}} 167:2005 {{Recommended Practice}} for
{{Tabulating Spectral Data}} for {{Use}} in {{Colour
Computations}}},
author = {{CIE TC 1-38}},
year = 2005,
pages = {14--19},
isbn = {978-3-901906-41-1},
}
@incollection{CIETC1-382005f,
title = {9.2.4 {{Method}} of Interpolation for Uniformly
Spaced Independent Variable},
booktitle = {{{CIE}} 167:2005 {{Recommended Practice}} for
{{Tabulating Spectral Data}} for {{Use}} in {{Colour
Computations}}},
author = {{CIE TC 1-38}},
year = 2005,
pages = {1--27},
isbn = {978-3-901906-41-1},
}
@incollection{CIETC1-382005g,
title = {{{EXTRAPOLATION}}},
booktitle = {{{CIE}} 167:2005 {{Recommended Practice}} for
{{Tabulating Spectral Data}} for {{Use}} in {{Colour
Computations}}},
author = {{CIE TC 1-38}},
year = 2005,
pages = {19--20},
isbn = {978-3-901906-41-1},
}
@incollection{CIETC1-382005h,
title = {Table {{V}}. {{Values}} of the c-Coefficients of
{{Equ}}.s 6 and 7.},
booktitle = {{{CIE}} 167:2005 {{Recommended Practice}} for
{{Tabulating Spectral Data}} for {{Use}} in {{Colour
Computations}}},
author = {{CIE TC 1-38}},
year = 2005,
pages = 19,
isbn = {978-3-901906-41-1},
}
@incollection{CIETC1-482004,
title = {{{EXPLANATORY COMMENTS}} - 5},
booktitle = {{{CIE}} 015:2004 {{Colorimetry}}, 3rd {{Edition}}},
author = {{CIE TC 1-48}},
year = 2004,
pages = {68--68},
isbn = {978-3-901906-33-6},
}
@book{CIETC1-482004h,
title = {{{CIE}} 015:2004 {{Colorimetry}}, 3rd {{Edition}}},
author = {{CIE TC 1-48}},
year = 2004,
journal = {CIE 015:2004 Colorimetry, 3rd Edition},
publisher = {Commission Internationale de l'Eclairage},
isbn = {978-3-901906-33-6},
}
@incollection{CIETC1-482004i,
title = {{{APPENDIX E}}. {{INFORMATION ON THE USE OF
PLANCK}}'{{S EQUATION FOR STANDARD AIR}}},
booktitle = {{{CIE}} 015:2004 {{Colorimetry}}, 3rd {{Edition}}},
author = {{CIE TC 1-48}},
year = 2004,
pages = {77--82},
isbn = {978-3-901906-33-6},
}
@incollection{CIETC1-482004j,
title = {{{CIE}} 1976 Uniform Chromaticity Scale Diagram
({{UCS}} Diagram)},
booktitle = {{{CIE}} 015:2004 {{Colorimetry}}, 3rd {{Edition}}},
author = {{CIE TC 1-48}},
year = 2004,
pages = 24,
isbn = {978-3-901906-33-6},
}
@incollection{CIETC1-482004k,
title = {The Evaluation of Whiteness},
booktitle = {{{CIE}} 015:2004 {{Colorimetry}}, 3rd {{Edition}}},
author = {{CIE TC 1-48}},
year = 2004,
pages = 24,
isbn = {978-3-901906-33-6},
}
@incollection{CIETC1-482004l,
title = {Extrapolation},
booktitle = {{{CIE}} 015:2004 {{Colorimetry}}, 3rd {{Edition}}},
author = {{CIE TC 1-48}},
year = 2004,
pages = 24,
isbn = {978-3-901906-33-6},
}
@incollection{CIETC1-482004m,
title = {{{CIE}} 1976 Uniform Colour Spaces},
booktitle = {{{CIE}} 015:2004 {{Colorimetry}}, 3rd {{Edition}}},
author = {{CIE TC 1-48}},
year = 2004,
pages = 24,
isbn = {978-3-901906-33-6},
}
@incollection{CIETC1-482004n,
title = {3.1 {{Recommendations}} Concerning Standard Physical
Data of Illuminants},
booktitle = {{{CIE}} 015:2004 {{Colorimetry}}, 3rd {{Edition}}},
author = {{CIE TC 1-48}},
year = 2004,
pages = {12--13},
isbn = {978-3-901906-33-6},
}
@incollection{CIETC1-482004o,
title = {9.1 {{Dominant}} Wavelength and Purity},
booktitle = {{{CIE}} 015:2004 {{Colorimetry}}, 3rd {{Edition}}},
author = {{CIE TC 1-48}},
year = 2004,
pages = {32--33},
isbn = {978-3-901906-33-6},
}
@book{CIETC1-902017,
title = {{CIE 2017 colour fidelity index for accurate
scientific use}},
author = {{CIE TC 1-90}},
year = 2017,
series = {{Technical report / CIE}},
number = 224,
publisher = {CIE Central Bureau},
address = {Vienna},
isbn = {978-3-902842-61-9},
langid = {eng fre ger},
annotation = {OCLC: 988568299},
}
@misc{CIEce,
title = {{{CIE}} 15:2004 {{Tables Data}}},
author = {{CIE}},
year = 2004,
}
@misc{CIEcf,
title = {{{CIE Spectral Data}}},
author = {{CIE}},
}
@misc{CVRLp,
title = {{{CIE}} (2012) 10-Deg {{XYZ}}
"Physiologically-Relevant" Colour Matching Functions},
author = {{CVRL}},
urldate = {2014-06-25},
howpublished = {http://www.cvrl.org/database/text/cienewxyz/cie2012xyz10.htm},
}
@misc{CVRLq,
title = {Luminous Efficiency},
author = {{CVRL}},
urldate = {2014-04-19},
howpublished = {http://www.cvrl.org/lumindex.htm},
}
@misc{CVRLr,
title = {New {{CIE XYZ}} Functions Transformed from the
{{CIE}} (2006) {{LMS}} Functions},
author = {{CVRL}},
urldate = {2014-02-24},
howpublished = {http://cvrl.ioo.ucl.ac.uk/ciexyzpr.htm},
}
@misc{CVRLs,
title = {Older {{CIE Standards}}},
author = {{CVRL}},
urldate = {2014-02-24},
howpublished = {http://cvrl.ioo.ucl.ac.uk/cie.htm},
}
@misc{CVRLt,
title = {Stiles \& {{Burch}} Individual 10-Deg Colour
Matching Data},
author = {{CVRL}},
urldate = {2014-02-24},
howpublished = {http://www.cvrl.org/stilesburch10\_ind.htm},
}
@misc{CVRLu,
title = {Cone {{Fundamentals}}},
author = {Stockman, Andrew and Sharpe, Lindsay T.},
year = 2000,
urldate = {2014-06-23},
howpublished = {http://www.cvrl.org/cones.htm},
}
@misc{CVRLv,
title = {{{CIE}} (2012) 2-Deg {{XYZ}}
"Physiologically-Relevant" Colour Matching Functions},
author = {{CVRL}},
urldate = {2014-06-25},
howpublished = {http://www.cvrl.org/database/text/cienewxyz/cie2012xyz2.htm},
}
@misc{CVRLw,
title = {Stiles \& {{Burch}} Individual 2-Deg Colour Matching
Data},
author = {{CVRL}},
urldate = {2014-02-24},
howpublished = {http://www.cvrl.org/stilesburch2\_ind.htm},
}
@misc{Cabello2015,
title = {{{PlaneGeometry}}.Js},
author = {Cabello, Ricardo},
urldate = {2015-05-12},
howpublished = {https://github.com/mrdoob/three.js/blob/dev/src/geometries/PlaneGeometry.js},
}
@misc{Canon2014a,
title = {{{EOS C500 Firmware Update}}},
author = {{Canon}},
year = 2014,
urldate = {2016-08-27},
howpublished = {https://www.usa.canon.com/internet/portal/us/home/explore/product-showcases/cameras-and-lenses/cinema-eos-firmware/c500},
}
@misc{Canon2016,
title = {Input {{Transform Version}} 201612 for {{EOS C300
Mark II}}},
author = {{Canon}},
year = 2016,
urldate = {2016-08-23},
howpublished = {https://www.usa.canon.com/internet/portal/us/home/support/details/cameras/cinema-eos/eos-c300-mark-ii},
}
@misc{Canon2020,
title = {Input {{Transform Version}} 202007 for {{EOS C300
Mark II}}},
author = {{Canon}},
year = 2020,
urldate = {2023-07-16},
howpublished = {https://www.usa.canon.com/internet/portal/us/home/support/details/cameras/cinema-eos/eos-c300-mark-ii},
}
@article{Cao2013,
title = {Comparison of the Performance of Inverse
Transformation Methods from {{OSA-UCS}} to {{CIEXYZ}}},
author = {Cao, Renbo and Trussell, H Joel and Shamey, Renzo},
year = 2013,
month = aug,
journal = {Journal of the Optical Society of America A},
volume = 30,
number = 8,
pages = 1508,
issn = {1084-7529},
doi = {10.1364/JOSAA.30.001508},
abstract = {The Optical Society of America's Uniform Color
Scales (OSA-UCS) is one of the color spaces that most closely
approximate a "true" uniform color space. Different techniques
have been used to convert OSA-UCS-based color specification
parameters, L, j, and g, to the CIE tristimulus values, X, Y, and
Z. However, none of these methods provides a direct method of
inverting OSA-UCS to CIEXYZ values. Thus, numerical algorithms,
such as the Newton-Raphson method, have been employed to obtain
the transformations. The relative low accuracy and long
computation time of this method makes it undesirable for practical
applications. An artificial neural network (ANN) was employed to
convert OSA-UCS to CIEXYZ. Its performance was compared with that
of numerical methods. After optimization, ANN gave a better
performance with a mean error (DeltaEXYZ) of 1.0x10(-4) and a
conversion time of less than 1 s for 1891 samples.},
isbn = {1520-8532 (Electronic){\textbackslash}r1084-7529
(Linking)},
pmid = 24323208,
}
@techreport{Carter2018,
title = {{{CIE}} 015:2018 {{Colorimetry}}, 4th {{Edition}}},
author = {Carter, E.C. and Schanda, J.D. and Hirschler, R. and
Jost, S. and Luo, M.R. and Melgosa, M. and Ohno, Y. and Pointer,
M.R. and Rich, D.C. and Vienot, F. and Whitehead, L. and Wold,
J.H.},
year = 2018,
month = oct,
address = {Vienna},
institution = {International Commission on Illumination},
doi = {10.25039/TR.015.2018},
isbn = 9783902842138,
}
@misc{Castro2014a,
title = {Numpy: {{Fastest}} Way of Computing Diagonal for
Each Row of a 2d Array},
author = {Castro, Saullo},
year = 2014,
urldate = {2014-08-22},
howpublished = {http://stackoverflow.com/questions/26511401/numpy-fastest-way-of-computing-diagonal-for-each-row-of-a-2d-array/26517247\#26517247},
}
@article{Centore2012a,
title = {An Open-Source Inversion Algorithm for the
{{Munsell}} Renotation},
author = {Centore, Paul},
year = 2012,
month = dec,
journal = {Color Research \& Application},
volume = 37,
number = 6,
pages = {455--464},
issn = 03612317,
doi = {10.1002/col.20715},
urldate = {2014-09-26},
keywords = {algorithm,inverse renotation,munsell,open
source,renotation},
}
@misc{Centore2014k,
title = {{{MunsellAndKubelkaMunkToolboxApr2014}} -
{{MunsellRenotationRoutines}}/{{MunsellHueToASTMHue}}.m},
author = {Centore, Paul},
year = 2014,
}
@misc{Centore2014l,
title = {{{MunsellAndKubelkaMunkToolboxApr2014}} -
{{MunsellSystemRoutines}}/{{LinearVsRadialInterpOnRenotationOvoid}}.m},
author = {Centore, Paul},
year = 2014,
}
@misc{Centore2014m,
title = {{{MunsellAndKubelkaMunkToolboxApr2014}} -
{{MunsellRenotationRoutines}}/{{MunsellToxyY}}.m},
author = {Centore, Paul},
year = 2014,
}
@misc{Centore2014n,
title = {{{MunsellAndKubelkaMunkToolboxApr2014}} -
{{MunsellRenotationRoutines}}/{{FindHueOnRenotationOvoid}}.m},
author = {Centore, Paul},
year = 2014,
}
@misc{Centore2014o,
title = {{{MunsellAndKubelkaMunkToolboxApr2014}} -
{{MunsellSystemRoutines}}/{{BoundingRenotationHues}}.m},
author = {Centore, Paul},
year = 2014,
}
@misc{Centore2014p,
title = {{{MunsellAndKubelkaMunkToolboxApr2014}} -
{{MunsellRenotationRoutines}}/{{xyYtoMunsell}}.m},
author = {Centore, Paul},
year = 2014,
}
@misc{Centore2014q,
title = {{{MunsellAndKubelkaMunkToolboxApr2014}} -
{{MunsellRenotationRoutines}}/{{MunsellToxyForIntegerMunsellValue}}.m},
author = {Centore, Paul},
year = 2014,
}
@misc{Centore2014r,
title = {{{MunsellAndKubelkaMunkToolboxApr2014}} -
{{MunsellRenotationRoutines}}/{{MaxChromaForExtrapolatedRenotation}}.m},
author = {Centore, Paul},
year = 2014,
}
@misc{Centore2014s,
title = {{{MunsellAndKubelkaMunkToolboxApr2014}} -
{{MunsellRenotationRoutines}}/{{MunsellHueToChromDiagHueAngle}}.m},
author = {Centore, Paul},
year = 2014,
}
@misc{Centore2014t,
title = {{{MunsellAndKubelkaMunkToolboxApr2014}} -
{{MunsellRenotationRoutines}}/{{ChromDiagHueAngleToMunsellHue}}.m},
author = {Centore, Paul},
year = 2014,
}
@misc{Centore2014u,
title = {{{MunsellAndKubelkaMunkToolboxApr2014}} -
{{GeneralRoutines}}/{{CIELABtoApproxMunsellSpec}}.m},
author = {Centore, Paul},
year = 2014,
}
@misc{Centorea,
title = {The {{Munsell}} and {{Kubelka-Munk Toolbox}}},
author = {Centore, Paul},
urldate = {2018-01-23},
howpublished = {http://www.munsellcolourscienceforpainters.com/MunsellAndKubelkaMunkToolbox/MunsellAndKubelkaMunkToolbox.html},
}
@misc{Chamberlain2015,
title = {{{LUT}} Documentation (to Create from Another
Program)},
author = {Chamberlain, Peter},
year = 2015,
urldate = {2018-08-23},
howpublished = {https://forum.blackmagicdesign.com/viewtopic.php?f=21\&t=40284\#p232952},
}
@article{Cheung2004,
title = {A Comparative Study of the Characterisation of
Colour Cameras by Means of Neural Networks and Polynomial
Transforms},
author = {Cheung, Vien and Westland, Stephen and Connah, David
and Ripamonti, Caterina},
year = 2004,
journal = {Coloration Technology},
volume = 120,
number = 1,
pages = {19--25},
issn = 14723581,
doi = {10.1111/j.1478-4408.2004.tb00201.x},
abstract = {The proliferation of low-cost colour imaging devices
in the consumer market has led to a greater need to transfer
images from one medium or device to another without loss of colour
fidelity. A common solution is to characterise each device in
terms of its CIE tristimulus values. In this paper two general
techniques, artificial neural networks and polynomial transforms,
are compared for their usefulness in characterising colour
cameras. The neural and polynomial techniques are shown to give
approximately similar performance once the parameters of the
models are optimised. Since neural networks can be difficult and
time-consuming to train, it is concluded that polynomial
transforms offer the better alternative for camera
characterisation.},
}
@misc{Colblindora,
title = {Deuteranopia - {{Red-Green Color Blindness}}},
author = {{Colblindor}},
urldate = {2015-07-04},
howpublished = {http://www.color-blindness.com/deuteranopia-red-green-color-blindness/},
}
@misc{Colblindorb,
title = {Protanopia - {{Red-Green Color Blindness}}},
author = {{Colblindor}},
urldate = {2015-07-04},
howpublished = {http://www.color-blindness.com/protanopia-red-green-color-blindness/},
}
@misc{Colblindorc,
title = {Tritanopia - {{Blue-Yellow Color Blindness}}},
author = {{Colblindor}},
urldate = {2015-07-04},
howpublished = {http://www.color-blindness.com/tritanopia-blue-yellow-color-blindness/},
}
@misc{Cooper2022,
title = {{{ARRI LogC4 Logarithmic Color Space SPECIFICATION}}},
author = {Cooper, Sean and Brendel, Harald},
year = 2022,
urldate = {2022-10-24},
}
@misc{Cottrella,
title = {The {{Russell RGB}} Working Color Space},
author = {Cottrell, Russell},
}
@article{Cowan2004,
title = {Contrast {{Sensitivity Experiment}} to {{Determine}}
the {{Bit Depth}} for {{Digital Cinema}}},
author = {Cowan, Matthew and Kennel, Glenn and Maier, Thomas
and Walker, Brad},
year = 2004,
month = sep,
journal = {SMPTE Motion Imaging Journal},
volume = 113,
number = 9,
pages = {281--292},
issn = {2160-2492},
doi = {10.5594/j11549},
abstract = {The SMPTE Color ad hoc group was formed in 2001
(under DC28.2) to investigate the colorimetric requirements for
the Digital Cinema Distribution Master (DCDM). A draft
specification on color image encoding was published in September
2002 that recommended the use of XYZ color space, a gamma 1/2.6
transfer function, and 12 bits per color. With the support of
Digital Cinema Initiatives (DCI), a test was designed to verify
these color image encoding parameters. This paper reports the
results of the contrast sensitivity experiment, which showed that
many of our observers could see a modulation corresponding to a
one code value change with 10-bit encoding, but few observers
would see a one-code value change with 12-bit encoding. This
result matches the results of published contrast sensitivity
experiments.},
}
@article{Cui2002,
ids = {Cui2002a},
title = {Uniform Colour Spaces Based on the {{DIN99}}
Colour-Difference Formula},
author = {Cui, G. and Luo, M. R. and Rigg, B. and Roesler, G.
and Witt, K.},
year = 2002,
journal = {Color Research \& Application},
volume = 27,
number = 4,
pages = {282--290},
issn = {1520-6378},
doi = {10.1002/col.10066},
urldate = {2021-01-21},
abstract = {Several colour-difference formulas such as CMC,
CIE94, and CIEDE2000 have been developed by modifying CIELAB.
These formulas give much better fits for experimental data based
on small colour differences than does CIELAB. None of these has an
associated uniform colour space (UCS). The need for a UCS is
demonstrated by the widespread use of the a*b* diagram despite the
lack of uniformity. This article describes the development of
formulas, with the same basic structure as the DIN99 formula, that
predict the experimental data sets better than do the CMC and
CIE94 colour-difference formulas and only slightly worse than
CIEDE2000 (which was optimized on the experimental data). However,
these formulas all have an associated UCS. The spaces are similar
in form to L*a*b*. {\copyright} 2002 Wiley Periodicals, Inc. Col
Res Appl, 27, 282--290, 2002; Published online in Wiley
InterScience (www.interscience.wiley.com). DOI 10.1002/col.10066},
copyright = {Copyright {\copyright} 2002 Wiley Periodicals, Inc.},
langid = {english},
keywords = {colour discrimination ellipses,colour-difference
metrics,uniform colour space},
}
@misc{DJI2017,
title = {White {{Paper}} on {{D-Log}} and {{D-Gamut}} of
{{DJI Cinema Color System}}},
author = {{Dji}},
year = 2017,
pages = {1--5},
}
@article{Darrodi2015a,
title = {Reference Data Set for Camera Spectral Sensitivity
Estimation},
author = {Darrodi, Maryam Mohammadzadeh and Finlayson, Graham
and Goodman, Teresa and Mackiewicz, Michal},
year = 2015,
month = mar,
journal = {Journal of the Optical Society of America A},
volume = 32,
number = 3,
pages = 381,
issn = {1084-7529},
doi = {10.1364/JOSAA.32.000381},
}
@article{David2015,
title = {Development of the {{IES}} Method for Evaluating the
Color Rendition of Light Sources},
author = {David, Aurelien and Fini, Paul T. and Houser, Kevin
W. and Ohno, Yoshi and Royer, Michael P. and Smet, Kevin A. G. and
Wei, Minchen and Whitehead, Lorne},
year = 2015,
month = jun,
journal = {Optics Express},
volume = 23,
number = 12,
pages = 15888,
issn = {1094-4087},
doi = {10.1364/OE.23.015888},
urldate = {2021-05-22},
abstract = {We have developed a two-measure system for
evaluating light sources' color rendition that builds upon
conceptual progress of numerous researchers over the last two
decades. The system quantifies the color fidelity and color gamut
(change in object chroma) of a light source in comparison to a
reference illuminant. The calculations are based on a newly
developed set of reflectance data from real samples uniformly
distributed in color space (thereby fairly representing all
colors) and in wavelength space (thereby precluding artificial
optimization of the color rendition scores by spectral
engineering). The color fidelity score Rf is an improved version
of the CIE color rendering index. The color gamut score Rg is an
improved version of the Gamut Area Index. In combination, they
provide two complementary assessments to guide the optimization of
future light sources. This method summarizes the findings of the
Color Metric Task Group of the Illuminating Engineering Society of
North America (IES). It is adopted in the upcoming IES TM-30-2015,
and is proposed for consideration with the International
Commission on Illumination (CIE).},
langid = {english},
}
@article{Davis2010a,
title = {Color Quality Scale},
author = {Davis, Wendy and Ohno, Yoshiro},
year = 2010,
month = mar,