Primary color (English Wikipedia)

Analysis of information sources in references of the Wikipedia article "Primary color" in English language version.

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  • Bowmaker, James K (May 1998). "Evolution of colour vision in vertebrates". Eye. 12 (3): 543. doi:10.1038/eye.1998.143. PMID 9775215.
  • Stockman, Andrew (2016). "Cone Fundamentals". Encyclopedia of Color Science and Technology. pp. 541–546. doi:10.1007/978-1-4419-8071-7_85. ISBN 978-1-4419-8070-0.
  • Scholtyßek, C.; Kelber, A. (November 2017). "Farbensehen der Tiere: Von farbenblinden Seehunden und tetrachromatischen Vögeln". Der Ophthalmologe. 114 (11): 978–985. doi:10.1007/s00347-017-0543-6. PMID 28752388.
  • Jordan, G.; Deeb, S. S.; Bosten, J. M.; Mollon, J. D. (20 July 2010). "The dimensionality of color vision in carriers of anomalous trichromacy". Journal of Vision. 10 (8): 12. doi:10.1167/10.8.12. PMID 20884587.
  • Brill, Michael H.; Robertson, Alan R. (27 July 2007). "Open Problems on the Validity of Grassmann's Laws". Colorimetry. pp. 245–259. doi:10.1002/9780470175637.ch10. ISBN 978-0-470-17563-7. Grassmann's laws are known not to be exactly true in human color matching. Symmetry could be called into question by color difference formulas, such as CIE94,3 that are asymmetric between batch and standard. Transitivity can be considered to be violated if we take the term color match to mean that two colors are within a just-noticeable difference of each other. In this case, adding two subthreshold differences together could produce a combined difference that is above thresh- old. Proportionality and additivity can also be compromised. Besides the three cone types that herald the trichromacy of vision at high (photopic) light intensities, a fourth photoreceptor type (rods) contributes to vision at low (mesopic and scotopic) light intensities and away from the center of vision (fovea). At very high light intenities, unbleached photopigments deplete and, in aggregate, change their action spectrum. At still higher light intensities, a photopigment molecule can absorb multiple photons but respond as if it absorbed only one photon. All these effects compromise Grassmann's laws, but the successful application of the laws, for example, in photography and television, has led us to believe that the compromises are not serious.
  • Fairman, Hugh S.; Brill, Michael H.; Hemmendinger, Henry (February 1997). "How the CIE 1931 color-matching functions were derived from Wright-Guild data". Color Research & Application. 22 (1): 11–23. doi:10.1002/(SICI)1520-6378(199702)22:1<11::AID-COL4>3.0.CO;2-7. The first of the resolutions offered to the 1931 meeting defined the color-matching functions of the soon-to-be-adopted standard observer in terms of Guild's spectral primaries centered on wavelengths 435.8, 546.1, and 700nm. Guild approached the problem from the viewpoint of a standardization engineer. In his mind, the adopted primaries had to be producible with national-standardizing-laboratory accuracy. The first two wavelengths were mercury excitation lines, and the last named wavelength occurred at a location in the human vision system where the hue of spectral lights was unchanging with wavelength. Slight inaccuracy in production of the wavelength of this spectral primary in a visual colorimeter, it was reasoned, would introduce no error at all.
  • Kuehni, Rolf (2011). "Color mixture". Scholarpedia. 6 (1) 10686. Bibcode:2011SchpJ...610686K. doi:10.4249/scholarpedia.10686.
  • Zena O'Connor (2021). "RYB Color". Encyclopedia of Color Science and Technology – Living Edition. Springer. pp. 1–4. doi:10.1007/978-3-642-27851-8_453-1. ISBN 978-3-642-27851-8. S2CID 241083080. Retrieved 6 June 2021.
  • Raleigh, Henry P. (1968). "Johannes Itten and the Background of Modern Art Education". Art Journal. 27 (3): 284–302. doi:10.2307/775089. JSTOR 775089.
  • Westland, Stephen (2016). Handbook of Visual Display Technology (PDF). Springer International Publishing. p. 162. doi:10.1007/978-3-319-14346-0_11. ISBN 978-3-319-14346-0. Retrieved 12 December 2017. A common misapprehension is that it is possible to define three color primaries that could create any color by mixture. Unfortunately, the range of reproducible colors (or gamut) for a trichromatic additive (or subtractive) system is limited and is always smaller than the gamut of all the colors possible in the world. However, the gamut is smaller or larger depending upon the choice of primaries. Pragmatically, for additive color mixing the largest gamut is achieved when the primaries are red, green, and blue.
  • Nyholm, Arvid (1914). "Anders Zorn: The Artist and the Man". Fine Arts Journal. 31 (4): 469–481. doi:10.2307/25587278. JSTOR 25587278. It is true that Zorn uses only a very limited palette, especially when he paints indoors, when he considers that black, white, red and yellow should be enough for all ordinary purposes, except when a very decided color is present, as, for instance, a light blue or a positive green in a drapery.
  • Haase, Chet S.; Meyer, Gary W. (1 October 1992). "Modeling pigmented materials for realistic image synthesis". ACM Transactions on Graphics. 11 (4): 305–335. doi:10.1145/146443.146452. S2CID 6890110. Section 2 develops some of the significant differences in additive and subtractive color mixing and discusses the need for different mixing theory for pigmented materials.
  • Lu, Jingwan; DiVerdi, Stephen; Chen, Willa A.; Barnes, Connelly; Finkelstein, Adam (8 August 2014). "RealPigment: Paint compositing by example". Proceedings of the Workshop on Non-Photorealistic Animation and Rendering. pp. 21–30. doi:10.1145/2630397.2630401. ISBN 978-1-4503-3020-6. S2CID 1415118.
  • Curtis, Cassidy J.; Anderson, Sean E.; Seims, Joshua E.; Fleischer, Kurt W.; Salesin, David H. (1997). "Computer-generated watercolor". Proceedings of the 24th annual conference on Computer graphics and interactive techniques - SIGGRAPH '97. pp. 421–430. doi:10.1145/258734.258896. ISBN 0-89791-896-7. S2CID 3051452. In summary, the fact that the KM model appears to work so well could actually be considered quite surprising, given the number of basic assumptions of the model violated by watercolor. We suspect that while the results of the model are probably not very physically accurate, they at least provide very plausible physical approximations, which appear quite adequate for many applications.
  • Stiles, W.S.; Burch, J. M. (December 1955). "Interim Report to the Commission Internationale de l'Eclairage, Zurich, 1955, on the National Physical Laboratory's Investigation of Colour-matching (1955)". Optica Acta: International Journal of Optics. 2 (4): 168–181. Bibcode:1955AcOpt...2..168S. doi:10.1080/713821039.
  • Stiles, W.S.; Burch, J. M. (December 1955). "Interim Report to the Commission Internationale de l'Eclairage, Zurich, 1955, on the National Physical Laboratory's Investigation of Colour-matching (1955)". Optica Acta: International Journal of Optics. 2 (4): 168–181. Bibcode:1955AcOpt...2..168S. doi:10.1080/713821039.
  • Li, Jiaye; Hanselaer, Peter; Smet, Kevin A. G. (17 February 2021). "Impact of Color-Matching Primaries on Observer Matching: Part I – Accuracy". LEUKOS. 18 (2): 104–126. doi:10.1080/15502724.2020.1864395.
  • Conway, Bevil R. (12 May 2009). "Color Vision, Cones, and Color-Coding in the Cortex". The Neuroscientist. 15 (3): 274–290. doi:10.1177/1073858408331369. PMID 19436076. S2CID 9873100.
  • Shamey, Renzo; Kuehni, Rolf G. (2020). Pioneers of Color Science. doi:10.1007/978-3-319-30811-1. ISBN 978-3-319-30809-8. S2CID 241801540.
  • Hirschler, Robert; Csillag, Paula; Manyé, Pablo; Neder, Mônica (December 2018). "How much colour science is not too much?". Color Research & Application. 43 (6): 987. doi:10.1002/col.22275. S2CID 125461782. One of the most typical problems is that of trying to reproduce Itten's colour circle following his instructions. Students may get frustrated, because it is simply not possible to achieve acceptable results using the RYB 'primaries'. Figure 16 illustrates why it is impossible to reproduce Itten's colour circle following strictly his instructions.

gutenberg.org (Global: 629th place; English: 427th place)

  • Boyle, Robert (1664). Experiments and Considerations touching Colours. Henry Herringman. p. 220. But I think I may easily be excus'd (though I do not altogether pass it by) if I restrain my self to the making of a Transient mention of some few of their Practices about this matter; and that only so far forth, as may warrant me to observe to you, that there are but few Simple and Primary Colours (if I may so call them) from whose Various Compositions all the rest do as it were Result. For though Painters can imitate the Hues (though not always the Splendor) of those almost Numberless differing Colours that are to be met with in the Works of Nature, and of Art, I have not yet found, that to exhibit this strange Variety they need imploy any more than White, and Black, and Red, and Blew, and Yellow; these five, Variously Compounded, and (if I may so speak) Decompounded, being sufficient to exhibit a Variety and Number of Colours, such, as those that are altogether Strangers to the Painters Pallets, can hardly imagine.
  • Munsell, Albert H. (1907). A Color Notation. Studio and school-room practice still cling to the discredited theory, claiming that, if it fails to describe our color sensations, yet it may be called practically true of pigments, because a red, yellow, and blue pigment suffice to imitate most natural colors.
  • Newton, Isaac (1730). Opticks: Or, A Treatise of the Reflections, Refractions, Inflections and Colours of Light. William Innys at the West-End of St. Paul's. p. 135. Whiteness and all grey Colours between white and black, may be compounded of Colours, and the whiteness of the Sun's Light is compounded of all the primary Colours mix'd in a due Proportion
  • Munsell, A.H. (1907). A Color Notation. The wide discrepancies of red, yellow, and blue, which have been falsely taught as primary colors, can no more be tuned by a child than the musical novice can tune his instrument. Each of these hues has three variable factors (see page 14, paragraph 14), and scientific tests are necessary to measure and relate their uneven degrees of Hue, Value, and Chroma.

handprint.com (Global: low place; English: low place)

  • Bruce MacEvoy. "Do 'Primary' Colors Exist?" (imaginary or imperfect primaries section Archived 17 July 2008 at the Wayback Machine). Handprint. Accessed 10 August 2007.
  • MacEvoy, Bruce. "handprint: learning color through paints". www.handprint.com. Retrieved 27 April 2021.
  • MacEvoy, Bruce. "palette paintings". www.handprint.com. Retrieved 3 February 2021.
  • MacEvoy, Bruce. "handprint: basic mixing method". www.handprint.com.
  • MacEvoy, Bruce. "imaginary or imperfect primaries". handprint.com. Retrieved 13 June 2021.
  • MacEvoy, Bruce. "do "primary" colors exist?". handprint : colormaking attributes. Retrieved 1 December 2020. From a modern perspective, the most peculiar feature of d'Aguilon's theory is that these three "noble" hues were themselves created from the mysterious blending of white and black, or light and dark (upper curved lines in the figure), so that light and dark were the two "simple" or primary colors. The "composite" hues green, orange (gold), and purple (lower curved lines) were mixed from the "noble" triad colors. D'Aguilon's diagram was reprinted by the Jesuit scholar Athanasius Kircher in his optical treatise Ars magna lucis et umbrae (The Great Art of Light and Shadow, 1646). Both sources were widely read in the 17th century, and shaped the explanation of color mixing dominant during the Baroque.
  • MacEvoy, Bruce. "handprint: colormaking attributes". www.handprint.com. The Scottish physicist David Brewster (1781-1868) was an especially pugnacious holdout, arguing as late as the 1840's that all spectral hues could be explained by red, yellow, and blue fundamental colors of light, which Brewster equated with three colored filters or transmittance curves that could reproduce the entire spectrum...
  • MacEvoy, Bruce. "handprint: colormaking attributes". www.handprint.com.
  • MacEvoy, Bruce. "handprint: colormaking attributes". www.handprint.com.

howstuffworks.com (Global: 1,354th place; English: 958th place)

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  • Gage, John (1982). "Colour at the Bahaus". AA Files (2): 50–54. ISSN 0261-6823. JSTOR 29543325.
  • Raleigh, Henry P. (1968). "Johannes Itten and the Background of Modern Art Education". Art Journal. 27 (3): 284–302. doi:10.2307/775089. JSTOR 775089.
  • Nyholm, Arvid (1914). "Anders Zorn: The Artist and the Man". Fine Arts Journal. 31 (4): 469–481. doi:10.2307/25587278. JSTOR 25587278. It is true that Zorn uses only a very limited palette, especially when he paints indoors, when he considers that black, white, red and yellow should be enough for all ordinary purposes, except when a very decided color is present, as, for instance, a light blue or a positive green in a drapery.

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  • Rood, Ogden (1973). Modern chromatics; students' text-book of color, with applications to art and industry (PDF). New York: Van Nostrand Reinhold Co. p. 108. ISBN 0-442-27028-3. Archived (PDF) from the original on 2017-01-18. It is well known to painters that approximate representations of all colours can be produced by the use of very few pigments. Three pigments or coloured powders will suffice, a red, yellow, and a blue; for example, crimson lake, gamboge, and Prussian blue. The red and yellow mingled in various proportions will furnish different shades of orange and orange-yellow; the blue and yellow will give a great variety of greens; the red and blue all the purple and violet hues. There have been instances of painters in water-colours who used only these three pigments, adding lampblack for the purpose of darkening them and obtaining the browns and greys.

loc.gov

nga.gov (Global: 3,083rd place; English: 2,589th place)

  • "Color". www.nga.gov. Archived from the original on 11 December 2017. Retrieved 10 December 2017. Red, blue, and yellow are the primary colors. With paints of just these three colors, artists can mix them to create all the other colors.

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  • Poynton, Charles. "Frequently Asked Questions about Color" (PDF). Charles Poynton, PhD. Archived (PDF) from the original on 2018-02-19. Retrieved 26 April 2021. The NTSC in 1953 specified a set of primaries that were representative of phosphors used in color CRTs of that era. But phosphors changed over the years, primarily in response to market pressures for brighter receivers, and by the time of the first the videotape recorder the primaries in use were quite different from those "on the books". So although you may see the NTSC primary chromaticities documented, they are of no use today.
  • Poynton, Charles. "Color FAQ - Frequently Asked Questions Color". poynton.ca. Retrieved 27 April 2021. Printing black by overlaying cyan, yellow and magenta ink in offset printing has three major problems. First, coloured ink is expensive. Replacing coloured ink by black ink – which is primarily carbon – makes economic sense. Second, printing three ink layers causes the printed paper to become quite wet. If three inks can be replaced by one, the ink will dry more quickly, the press can be run faster, and the job will be less expensive. Third, if black is printed by combining three inks, and mechanical tolerances cause the three inks to be printed slightly out of register, then black edges will suffer coloured tinges. Vision is most demanding of spatial detail in black and white areas. Printing black with a single ink minimizes the visibility of registration errors.

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  • Zena O'Connor (2021). "RYB Color". Encyclopedia of Color Science and Technology – Living Edition. Springer. pp. 1–4. doi:10.1007/978-3-642-27851-8_453-1. ISBN 978-3-642-27851-8. S2CID 241083080. Retrieved 6 June 2021.
  • Haase, Chet S.; Meyer, Gary W. (1 October 1992). "Modeling pigmented materials for realistic image synthesis". ACM Transactions on Graphics. 11 (4): 305–335. doi:10.1145/146443.146452. S2CID 6890110. Section 2 develops some of the significant differences in additive and subtractive color mixing and discusses the need for different mixing theory for pigmented materials.
  • Lu, Jingwan; DiVerdi, Stephen; Chen, Willa A.; Barnes, Connelly; Finkelstein, Adam (8 August 2014). "RealPigment: Paint compositing by example". Proceedings of the Workshop on Non-Photorealistic Animation and Rendering. pp. 21–30. doi:10.1145/2630397.2630401. ISBN 978-1-4503-3020-6. S2CID 1415118.
  • Curtis, Cassidy J.; Anderson, Sean E.; Seims, Joshua E.; Fleischer, Kurt W.; Salesin, David H. (1997). "Computer-generated watercolor". Proceedings of the 24th annual conference on Computer graphics and interactive techniques - SIGGRAPH '97. pp. 421–430. doi:10.1145/258734.258896. ISBN 0-89791-896-7. S2CID 3051452. In summary, the fact that the KM model appears to work so well could actually be considered quite surprising, given the number of basic assumptions of the model violated by watercolor. We suspect that while the results of the model are probably not very physically accurate, they at least provide very plausible physical approximations, which appear quite adequate for many applications.
  • Conway, Bevil R. (12 May 2009). "Color Vision, Cones, and Color-Coding in the Cortex". The Neuroscientist. 15 (3): 274–290. doi:10.1177/1073858408331369. PMID 19436076. S2CID 9873100.
  • Shamey, Renzo; Kuehni, Rolf G. (2020). Pioneers of Color Science. doi:10.1007/978-3-319-30811-1. ISBN 978-3-319-30809-8. S2CID 241801540.
  • Hirschler, Robert; Csillag, Paula; Manyé, Pablo; Neder, Mônica (December 2018). "How much colour science is not too much?". Color Research & Application. 43 (6): 987. doi:10.1002/col.22275. S2CID 125461782. One of the most typical problems is that of trying to reproduce Itten's colour circle following his instructions. Students may get frustrated, because it is simply not possible to achieve acceptable results using the RYB 'primaries'. Figure 16 illustrates why it is impossible to reproduce Itten's colour circle following strictly his instructions.

si.edu (Global: 256th place; English: 197th place)

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  • Westland, Stephen (2016). Handbook of Visual Display Technology (PDF). Springer International Publishing. p. 162. doi:10.1007/978-3-319-14346-0_11. ISBN 978-3-319-14346-0. Retrieved 12 December 2017. A common misapprehension is that it is possible to define three color primaries that could create any color by mixture. Unfortunately, the range of reproducible colors (or gamut) for a trichromatic additive (or subtractive) system is limited and is always smaller than the gamut of all the colors possible in the world. However, the gamut is smaller or larger depending upon the choice of primaries. Pragmatically, for additive color mixing the largest gamut is achieved when the primaries are red, green, and blue.

stanford.edu (Global: 194th place; English: 182nd place)

graphics.stanford.edu

  • Levoy, Marc. "Additive versus subtractive color mixing". graphics.stanford.edu. Retrieved 4 November 2020. On the other hand, if you reflect light from a colored surface, or if you place a colored filter in front of a light, then some of the wavelengths present in the light may be partially or fully absorbed by the colored surface or filter. If we characterize the light as an SPD, and we characterize absorption by the surface or filter using a spectrum of reflectivity or transmissivity, respectively, i.e. the percentage of light reflected or transmitted at each wavelength, then the SPD of the outgoing light can be computed by multiplying the two spectra. This multiplication is (misleadingly) called subtractive mixing.

tufts.edu (Global: 192nd place; English: 165th place)

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  • "32". Pliny the Elder, The Natural History, Book XXXV. An Account of Paintings and Colours. It was with four colours only, that Apelles, Echion, Melanthius, and Nicomachus, those most illustrous painters, executed their immortal works; melinum for the white, Attic sil for the yellow, Pontic sinopis for the red, and atramentum for the black; and yet a single picture of theirs has sold before now for the treasures of whole cities. But at the present day, when purple is employed for colouring walls even, and when India sends to us the slime of her rivers, and the corrupt blood of her dragons and her elephants, there is no such thing as a picture of high quality produced. Everything, in fact, was superior at a time when the resources of art were so much fewer than they now are. Yes, so it is; and the reason is, as we have already stated, that it is the material, and not the efforts of genius, that is now the object of research.

ucl.ac.uk (Global: 1,187th place; English: 756th place)

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  • Bruce MacEvoy. "Do 'Primary' Colors Exist?" (imaginary or imperfect primaries section Archived 17 July 2008 at the Wayback Machine). Handprint. Accessed 10 August 2007.
  • Poynton, Charles. "Frequently Asked Questions about Color" (PDF). Charles Poynton, PhD. Archived (PDF) from the original on 2018-02-19. Retrieved 26 April 2021. The NTSC in 1953 specified a set of primaries that were representative of phosphors used in color CRTs of that era. But phosphors changed over the years, primarily in response to market pressures for brighter receivers, and by the time of the first the videotape recorder the primaries in use were quite different from those "on the books". So although you may see the NTSC primary chromaticities documented, they are of no use today.
  • Rood, Ogden (1973). Modern chromatics; students' text-book of color, with applications to art and industry (PDF). New York: Van Nostrand Reinhold Co. p. 108. ISBN 0-442-27028-3. Archived (PDF) from the original on 2017-01-18. It is well known to painters that approximate representations of all colours can be produced by the use of very few pigments. Three pigments or coloured powders will suffice, a red, yellow, and a blue; for example, crimson lake, gamboge, and Prussian blue. The red and yellow mingled in various proportions will furnish different shades of orange and orange-yellow; the blue and yellow will give a great variety of greens; the red and blue all the purple and violet hues. There have been instances of painters in water-colours who used only these three pigments, adding lampblack for the purpose of darkening them and obtaining the browns and greys.
  • "Application Note AN 1005.00 Measuring color using Hunter L, a, b versus CIE 1976 L*a*b*" (PDF). HunterLab. Hunter Associates Laboratory Inc. Archived (PDF) from the original on 2021-08-29. Retrieved 10 March 2021. Hunter L, a, b and CIE 1976 L*a*b* (CIELAB) are both color scales based on the Opponent-Color Theory.
  • Beran, Ondrej (2014). "The Essence (?) of Color, According to Wittgenstein". From the ALWS Archives: A Selection of Papers from the International Wittgenstein Symposia in Kirchberg Am Wechsel. Archived from the original on 2017-12-11. Retrieved 2017-12-11.
  • Newton, Isaac (19 February 1671). "A Letter of Mr. Isaac Newton … containing his New Theory about Light and Color". Philosophical Transactions of the Royal Society (80): 3075–3087. Archived from the original on 15 February 2022. Retrieved 19 November 2020. The Original or primary colours are, Red, Yellow, Green, Blew, and a Violet-purple, together with Orange, Indico, and an indefinite variety of Intermediate gradations.
  • Kuehni, Rolf G. "Philipp Otto Runge's Color Sphere A translation, with related materials and an essay" (PDF). Archived (PDF) from the original on 2019-01-20. Retrieved 2 February 2021.
  • "Crayola Support FAQ-What are the primary colors?". www.crayola.com. Archived from the original on 2021-04-14. Retrieved 2021-02-21. What are the primary colors? Primary colors include red, blue, and yellow. Primary colors cannot be mixed from other colors. They are the source of all other colors.
  • "Color". www.nga.gov. Archived from the original on 11 December 2017. Retrieved 10 December 2017. Red, blue, and yellow are the primary colors. With paints of just these three colors, artists can mix them to create all the other colors.

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