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Wavelength Theory of Colour Strikes Back: The Return of the Physical

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Abstract

There have been a number of criticisms, based on visual processes, of the Australian view that colour is an objective property of the world. These criticisms have led to subjective theories about colour. These visual processes (metamers, retinex theory, opponent processes, simultaneous contrast, colour constancy, subjective colours) have been examined and it is suggested that they do not carry their supposed critical weight against an objective theory. In particular, it is argued that metamers don’t occur in nature and primate colour vision evolved without metamers. Thus normal colour vision occurs without the problem of metamers. This argument, in conjunction with evidence against the critical roles of opponent processes and retinex theory in colour vision, is taken to suggest that colour can be given a photon energy/wavelengthrealism explanation. This proposal allows an account of the many microstructural bases of colour generation put forward by Nassau (1983). It is argued that neither disjunctive realism or reflectance realism are adequate objective explanations of colour.

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REFERENCES

  • Akins, K. and M. Hahn: 2000, ‘The Peculiarity of Colour’, in S. Davis (ed.), Colour Perception, Vol. IX, Vancouver Studies in Cognitive Science, Oxford University Press, Oxford.

    Google Scholar 

  • Allman, J. M.: 1999, Evolving Brains, Freeman, New York.

    Google Scholar 

  • Anstis, S., B. Rogers, and J. Henry: 1978, ‘Interactions between Simultaneous Contrast and Coloured Afterimages’, Vision Research 18, 899–911.

    Google Scholar 

  • Arend L. and A. Reeves: 1986, ‘Simultaneous Color Constancy’, Journal of the Optical Society of America A 3, 1743–1754.

    Google Scholar 

  • Armstrong, D. M.: 1968, A Materialist Theory of Mind, Routledge and Kegan Paul, London.

    Google Scholar 

  • Armstrong. D. M.: 1980, The Nature of Mind, University of Queensland Press, Brisbane.

    Google Scholar 

  • Armstrong, D. M.: 1987, ‘Smart and the Secondary Qualities’, in P. Petitt, R. Sylvan, and J. Norman (eds), Metaphysics and Morality: Essays in Honour of J. J. C. Smart, Blackwell, Oxford, pp. 1–15.

    Google Scholar 

  • Armstrong, D. M.: 1993, ‘Reply to Campbell’, in J. Bacon, K. Campbell, and L. Reinhardt (eds), Ontology, Causality and Mind, Cambridge University Press, Cambridge, MA, pp. 268–273.

    Google Scholar 

  • Barlow, H. B. and P. Foldiak: 1989, ‘Adaptation and Decorrelation in the Cortex’, in R. M. Dubin, C. Miall, and G. J. Mitchison (eds), The Computing Neuron, Addison-Wesley, Workingham.

    Google Scholar 

  • Benham, E. C.: 1894, ‘Notes’, Nature 51, 113–114.

    Google Scholar 

  • Berlin, B. and P. Kay: 1969, Basic Color Terms: Their Universality and Evolution, University of California Press, Berkeley.

    Google Scholar 

  • Boghossian, P. A. and J. D. Velleman: 1989, ‘Colour as a Secondary Quality’, Mind 98, 81–103.

    Google Scholar 

  • Boynton, R. M.: 1979, Human Color Vision, Holt, Rinehart and Winston, New York.

    Google Scholar 

  • Boynton, R. M.: 1997, ‘Insights Gained from Naming the OSA Colors’, in C. L. Hardin and L. Maffi (eds), Color Categories in Thought and Language, Cambridge University Press, Cambridge, pp. 135–150.

    Google Scholar 

  • Brackel, J. van: 1993, ‘The Plasticity of Categories: the Case of Colour’, British Journal for the Philosophy of Science 44, 103–135.

    Google Scholar 

  • Brackel, J. van and B. A. C. Saunders: 1997, ‘On the Existence of a Fixed Number of Unique Opponent Hues’, in C. Dickinson, I. Murray, and D. Carden (eds), John Dalton’s Colour Vision Legacy, Taylor Francis, London, pp. 393–402.

    Google Scholar 

  • Brady, J. S.: 1954, ‘The Role of Frequency Selective Reverberatory Nets in Cerebral Function’, E. E. G. Clin. Neurophysiol. 6, 469–472.

    Google Scholar 

  • Brainard, D. H. and B. A. Wandell: 1986, ‘Analysis of the Retinex Theory of Color Vision’, Journal of the Optical Society of America A 3, 1651–1661.

    Google Scholar 

  • Byrne, A. and D. R. Hilbert: 1997a, Readings on Color, Volume 1: The Philosophy of Color, The MIT Press, Cambridge, MA.

    Google Scholar 

  • Byrne, A. and D. R. Hilbert: 1997b, Readings on Colour, Volume 2: The Science of Color, The MIT Press, Cambridge, MA.

    Google Scholar 

  • Campbell, K.: 1969, ‘Colours’, in R. Brown and C. D. Rollins (eds), Contemporary Philosophy in Australia, Allen and Unwin, London, pp. 132–157.

    Google Scholar 

  • Campbell, K.: 1972, ‘Primary and Secondary Qualities’, Canadian Journal of Philosophy 11, 219–232.

    Google Scholar 

  • Campbell, K.: 1993, ‘David Armstrong and Realism about Colour’, in J. Bacon, K. Campbell, and L. Reinhardt (eds), Ontology, Causality and Mind., Cambridge University Press, Cambridge, pp. 249–268.

    Google Scholar 

  • Charles-Dominique, P.: 1993, ‘Speciation and Coevolution: An Interpretation of Frugivory Phenomena’, Vegetatio 107/108, 75–84.

    Google Scholar 

  • Clark, A.: 1996, ‘True Theories, False Colors’, Philosophy of Science (Proceedings) 63, S143–S150.

    Google Scholar 

  • Day, R. H. and W. R. Webster: 1989, ‘Negative Afterimages and the McCollough Effect’, Perception and Psychophysics 46, 419–424.

    Google Scholar 

  • Dedrick, D.: 1996, ‘Can Colors be Reduced to Anything?’, Philosophy of Science (Proceedings) 63, 134–142.

    Google Scholar 

  • Derrington, A. M., J. Krauskopf, and P. Lennie: 1984, ‘Chromatic Mechanisms in Lateral Geniculate Nucleus of Macaque’, Journal of Physiology 357, 241–265.

    Google Scholar 

  • DeValois, R. L. and K. K. DeValois: 1993, ‘A Multi-stage Color Model’, Vision Research 33, 1053–1065.

    Google Scholar 

  • DeValois, R. L., I. Abramov, and G. H. Jacobs: 1966, ‘Analysis of Response Patterns of LGN Cells’, Journal of the Optical Society of America 56, 966–877.

    Google Scholar 

  • D’Zmura, M.: 1991, ‘Color in Visual Search’, Vision Research 31, 951–966.

    Google Scholar 

  • Endler, J. A.: 1993, ‘The Color of Light in Forests and Its Implications”, Ecological Monographs 63, 1–27.

    Google Scholar 

  • Forsyth, D. A.: 1990, ‘Colour Constancy’, in A. Blake and T. Troscianko (eds), AI and the Eye, John Wiley and Sons, New York, pp. 201–228.

    Google Scholar 

  • Gold, I.: 1999, ‘Dispositions and the Central Problem of Color’, Philosophical Studies 93, 21–44.

    Google Scholar 

  • Gouras, P. and H. Eggers: 1983, ‘Responses of Primate Retinal Ganglion Cells to Moving Spectral Contrast’, Vision Research 23, 1175–1182.

    Google Scholar 

  • Gouras P. and H. Eggers: 1984, ‘Hering’s Opponent Colour Channels do not Exist in Primate Retinogeniculate Pathway’, Ophthalamic Research 16, 31–35.

    Google Scholar 

  • Guth, S. L.: 1991, ‘Model for Color Vision and Light Adaptation’, Journal of the Optical Society of America, A 8, 976–993.

    Google Scholar 

  • Hall, R. J.: 1996, ‘The Evolution of Color Vision without Colors’, Philosophy of Science (Proceedings) 63, S125–S133.

    Google Scholar 

  • Hardin, C. L.: 1988, Color for Philosophers, Hackett, Indianapolis.

    Google Scholar 

  • Hardin, C. L.: 1991, ‘Reply to Teller’, Philosophical Psychology 4, 61–64.

    Google Scholar 

  • Hardin, C. L.: 1992, ‘The Virtues of Illusion’, Philosophical Studies 68, 371–373

    Google Scholar 

  • Helmholtz, H.: 1924, in J. P. C. Southall (ed.), Physiological Optics, 3 volumes, Optical Society of America, Rochester.

    Google Scholar 

  • Helson, H. and V. B. Jeffers: 1940, ‘Fundamental Problems in Color Vision. II. Hue, Lightness, and Saturation of Selective Samples in Chromatic Illumination’, Journal of Experimental Psychology 26, 1–27.

    Google Scholar 

  • Hering, E.: 1920/1964, Outlines of a Theory of the Light Sense, Translated by L. M. Hurvich and D. Jameson, Harvard University Press, Cambridge, MA.

    Google Scholar 

  • Hilbert, D. R.: 1987, Color and Color Perception: A Study in Anthropocentric Realism, CSLI, Stanford.

    Google Scholar 

  • Hurlbert, A.: 1997, ‘Colour Vision’, Current Biology 7, 400–402.

    Google Scholar 

  • Hurvich, L. M. and D. Jameson: 1957, ‘An Opponent Process Theory of Color Vision’, Psychological Review 64, 456–470.

    Google Scholar 

  • Jackson, F. C.: 1996, ‘The Primary Quality View of Color’, in J. E. Tomberlin (ed.), Philosophical Perspectives, 10, Metaphysics, Blackwell, Cambridge, pp. 199–220.

    Google Scholar 

  • Jackson, F. C. and R. Pargetter: 1987, ‘An Objectivists Guide to Subjectivism about Color’, Revue International de Philosophie 68, 221–263.

    Google Scholar 

  • Jacobs, G. H., M. Neitz, J. F. Deegan, and J. Neitz: 1996, ‘Trichromatic Colour Vision in New World Monkeys’, Nature 382, 156–158.

    Google Scholar 

  • Jameson, K. and R. G. D’Andrade: 1997, ‘It’s not Really Red, Green, Yellow, Blue: An Inquiry into Perceptual Color Space’, in C. L. Hardin and L. Maffi (eds), Color Categories in Thought and Language, Cambridge University Press, Cambridge, pp. 295–319.

    Google Scholar 

  • Johnston, M.: 1992, ‘How to Speak of the Colors’, Philosophical Studies 68, 221–263.

    Google Scholar 

  • Kaiser, P. K. and R. M. Boynton: 1996, Human Color Vision, Optical Society of America, Washington.

    Google Scholar 

  • Kauzmann, W.: 1957, Quantum Chemistry, Academic Press, New York.

    Google Scholar 

  • Krauskopf, J.: 1997, ‘The Paucity of Evidence for Cardinal Mechanisms’, in C. Dickinson, I. Murray, and D. Carden (eds), John Dalton’s Colour Vision Legacy, Taylor Francis, London, pp. 431–440.

    Google Scholar 

  • Krauskopf, J., D. R. Williams, and D. W. Heeley: 1982, ‘Cardinal Directions of Colour Space’, Vision Research 22, 1123–1131.

    Google Scholar 

  • Krauskopf, J., Hai-Jung Wu, and B. Farell: 1997, ‘Coherence, Cardinal Directions and Higher-order Mechanisms’, Vision Research 36, 1235–1245.

    Google Scholar 

  • Krauskopf, J., D. R. Williams, M. B. Mandler, and A. M. Brown: 1986, ‘Higher Order Color Mechanisms’, Vision Research 26, 23–32.

    Google Scholar 

  • Land, E. H.: 1977, ‘The Retinex Theory of Color Vision’, Scientific American 237(6), 108–128.

    Google Scholar 

  • Land, E. H.: 1983, ‘Recent Advances in Retinex Theory and Some Implications for Cortical Computations: Color Vision and the Natural Image’, Proceedings of the National Academy of Sciences USA 80, 5163–5169.

    Google Scholar 

  • Land, E. H. and J. J. McCann: 1971, ‘Lightness and Retinex Theory’, Journal of the Optical Society of America 61, 1–11.

    Google Scholar 

  • Lindburg, D. G.: 1977, ‘Feeding Behaviour and Diet of Rhesus Monkeys (Macaca Mulatta) in Siwalik Forest in North India’, in T. H. Clutton-Brock (ed.), Primate Ecology, Academic Press, London, pp. 223–250.

    Google Scholar 

  • Livingstone M. S. and D. H. Hubel: 1984, ‘Anatomy and Physiology of a Color System in the Primate Visual Cortex’, The Journal of Neuroscience 4, 309–356.

    Google Scholar 

  • Lund, D. H.: 1994, Perception, Mind and Personal Identity: a Critique of Materialism, University Press of America, Lanham.

    Google Scholar 

  • Lycan, W. G.: 1987, Consciousness, Bradford Books/MIT Press, Cambridge, MA.

    Google Scholar 

  • Lythgoe, J. N.: 1979, The Ecology of Vision, Oxford University Press, Oxford.

    Google Scholar 

  • MacAdam, D. L.: 1985, Color Measurement: Theme and Variations, Springer-Verlag, New Yor k.

    Google Scholar 

  • Maloney, L. T.: 1986, ‘Evaluation of Linear Models of Surface Reflectance with Small Numbers of Parameters’, Journal of the Optical Society of America A 3, 1673–1683.

    Google Scholar 

  • Matthen, M.: 1988, ‘Biological Functions and Perceptual Content’, Journal of Philosophy 85, 5–27.

    Google Scholar 

  • Matthen, M.: 1999, ‘The Disunity of Color’, The Philosophical Review 108, 47–84.

    Google Scholar 

  • Maund, B.: 1994, Colours: Their Nature and Representation, Cambridge University Press, Cambridge.

    Google Scholar 

  • McCann, J. J., S. P. McKee, and T. H. Taylor: 1976, ‘Quantitative Studies in Retinex Theory’, Vision Research 16, 445–458.

    Google Scholar 

  • McGilvray, J. A.: 1983, ‘To Color’, Synthese 54, 37–70.

    Google Scholar 

  • McGilvray, J. A.: 1994, ‘Constant Colors in the Head’, Synthese 100, 197–239.

    Google Scholar 

  • McGilvray, J. A.: 1996, ‘Making Colored Objects’, in M. Marion and R. S. Cohen (eds), Quebec Studies in the Philosophy of Science II, Kluwer Academic Publishers, Netherlands, pp. 81–97.

    Google Scholar 

  • Mollon, J. D.: 1989, ‘Tho’ She Kneel’d in that Place Where They Grew -’, Journal of Experimental Biology 146, 21–38.

    Google Scholar 

  • Mollon, J. D.: 1991, ‘Uses and Evolutionary Origins of Primate Colour Vision’, in J. R. Cronly-Dillon and R. L. Gregory (eds), Evolution of the Eye and Visual System, Visi on and Visual Dysfunction, Vol. 2, MacMillan, London, pp. 306–319.

    Google Scholar 

  • Mollon, J. D.: 1995, ‘Seeing Colour’, in T. Lamb and J. Bourriau (eds), Colour: Art and Science, Cambridge University Press, Cambridge, pp. 127–150.

    Google Scholar 

  • Mollon, J. D.: 1997, ‘”On the Basis of Velocity Cues Alone”: Some Perceptual Themes 1946-1996’, The Quarterly Journal of Experimental Psychology 50A, 859–878.

    Google Scholar 

  • Mollon, J. D. and C. R. Cavonius: 1987, ‘The Chromatic Antagonisms of Opponent Process Theory Are Not the Same as Those Revealed in Studies of Detection and Discrimination’, in G. Verriest (ed.), Colour Vision Deficiencies, Martinus Nijhoff/Dr W Junk Publishers, Dordrecht, pp. 473–483.

    Google Scholar 

  • Mollon, J. D. and G. Jordan: 1997, ‘On the Nature of Unique Hues’, in C. Dickinson, I. Murray, and D. Carden (eds), John Dalton’s Colour Vision Legacy, Taylor Francis, London, pp. 381–392.

    Google Scholar 

  • Nassau, K.: 1980, ‘The Causes of Color’, Scientific American 243(4), 106–203.

    Google Scholar 

  • Nassau, K.: 1983, The Physics and Chemistry of Color, John Wiley and Sons, New York.

    Google Scholar 

  • Nathans, J., T. P. Piantanida, R. L. Eddy, T. B. Shows, and D. S. Hogness: 1986, ‘Molecular Genetics of Inherited Variation in Human Color Vision’, Science 232, 203–210.

    Google Scholar 

  • Osorio, D. and T. R. J. Bossomaier: 1992, ‘Human Cone-pigment Spectral Sensitivities and the Reflectance of Natural Surfaces’, Biological Cybernetic 67, 217–222.

    Google Scholar 

  • Osorio, D. and Vorobyev, M.: 1996, ‘Colour Vision as an Adaptation to Frugivory in Primates’, Proc. R. Soc. B 263, 593–599.

    Google Scholar 

  • Saunders, B. A. C. and J. van Brackel: 1997, ‘Are There Nontrivial Constraints on Colour Categorization ?’, Behavioral and Brain Sciences 20, 167–228.

    Google Scholar 

  • Shepard, R. N.: 1997, ‘The Perceptual Organization of Colors: An Adaptation to Regularities of the Terrestrial World?’, in A. Byrne and D.R. Hilbert (eds), Readings on Color, Volume 2: The Science of Color, The MIT Press, Cambridge MA.

    Google Scholar 

  • Smart, J. J. C.: 1959, ‘Sensations and Brain Processes’, Philosophical Review LXVIII, 141-156. Reprinted in C. V. Borst (ed.), The Mind/Brain Identity Theory, MacMillan, London, 1970, pp. 52–66.

    Google Scholar 

  • Smart, J. J. C.: 1975, ‘On Some Criticisms of a Physicalist Theory of Colors’, in Chung-Ying Cheng (ed.), Philosophical Aspects of the Mind-Body Problem, University of Hawaii Press, Honolulu, pp. 54–63.

    Google Scholar 

  • Smart, J. J. C.: 1995, ‘“Looks Red” and Dangerous Talk’, Philosophy 70, 545–554.

    Google Scholar 

  • Stout, G. F.: 1904, ‘Primary and Secondary Qualities’, Proceedings of the Aristotelian Society 4, 141–160.

    Google Scholar 

  • Svaetichin, G. and E. F. MacNichol: 1958, ‘Retinal Mechanisms for Chromatic and Achromatic Vision’, Annals of the New York Academy of Sciences 74, 385–404.

    Google Scholar 

  • Teller, D. Y.: 1991, ‘Simpler Arguments Might Work Better’, Philosophical Psychology 4, 51–60.

    Google Scholar 

  • Thompson, E.: 1995, Colour Vision, Routledge, London.

    Google Scholar 

  • Tolliver, J. T.: 1994, ‘Interior Colors’, Philosophical Topics 22, 411–441.

    Google Scholar 

  • Valberg, A. and B. Lange-Malecki: 1990, ‘“Colour Constancy” in Mondrian Patterns: a Partial Cancellation of Physical Chromaticity Shifts by Simultaneous Contrast’, Visi on Research 30, 371–380.

    Google Scholar 

  • Walraven, P. L.: 1962, On the Mechanisms of Colour Vision, Institute for Perception RVO-TNO, The Netherlands.

    Google Scholar 

  • Watkins, M.: 1997, ‘Colours and Causes: A Reply to Jackson and Pargetter’, Dialogue 36, 281–285.

    Google Scholar 

  • Webster, M. A.: 1996, ‘Human Colour Perception and its Adaptation’, Network: Computation in Neural Systems 7, 587–634.

    Google Scholar 

  • Webster, M. A. and J. D. Mollon: 1991, ‘Changes in Colour Appearance Following Post-Receptoral Adaptation’, Nature 349, 235–238.

    Google Scholar 

  • Webster, M. A. and J. D. Mollon: 1993, ‘Contrast Adaptation Dissociates Different Measures of Luminous Efficiency’, Journal of the Optical Society of America A 10, 1332–1340.

    Google Scholar 

  • Webster, M. A. and J. D. Mollon: 1994, ‘The Influence of Contrast Adaptation on Color Appearance’, Vision Research 34, 1993–2020.

    Google Scholar 

  • Webster, M. A. and J. D. Mollon: 1997, ‘Adaptation and the Color Statistics of Natural Images’, Vision Research 37, 3283–3298.

    Google Scholar 

  • Westphal, J.: 1987, Colour: Some Philosophical Problems from Wittgenstein, Basil Blackwell, Oxford.

    Google Scholar 

  • Wright, W. D.: 1959, ‘Colour Vision: A Field of Unsolved Problems’, New Scientist 6, 447–449.

    Google Scholar 

  • Yoshioka, T., Dow, B. M., and Vautin, R. G.: 1996a, ‘Neuronal Mechanisms of Color Categorization in Areas V1, V2 and V4 of Macaque Monkey Visual Cortex’, Behavioural Brain Research 76, 51–70.

    Google Scholar 

  • Yoshioka T. and Dow, B. M.: 1996b, ‘Color, Orientation and Cytochrome Oxidase Reactivity in Areas V1, V2 and V4 of Macaque Monkey Visual Cortex’, Behavioural Brain Research 76, 71–88.

    Google Scholar 

  • Young, R. A.: 1977, ‘Some Observations on Temporal Coding of Color Vision: Psycho-physical Results’, Vision Research 17, 957–965.

    Google Scholar 

  • Young, R. A.: 1987, ‘Color Vision and the Retinex Theory’, Science 238, 1731–1732.

    Google Scholar 

  • Zrenner, E.: 1985, ‘The Zero Signal Detector’, in T. Ottoson and S. Zeki (eds), Central and Peripheral Mechanisms of Colour Vision, MacMillan, London, pp. 165–182.

    Google Scholar 

  • Zrenner, E., Abramov, I., Akita, M., Cowey, A., Livingstone, M., and Valberg, A.: 1990, ‘Color Perception: Retina to Cortex’, in L. Spillman and J. S. Werner (eds), Visual Perception: The Neurophysiological Foundations, Academic Press, San Diego, pp. 163–204.

    Google Scholar 

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Webster, W.R. Wavelength Theory of Colour Strikes Back: The Return of the Physical. Synthese 132, 303–334 (2002). https://doi.org/10.1023/A:1020345513372

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