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    REVISITING BASIC COLOR TERMS

    by Barbara Saunders

    All, at first, was vague in color, but gradually a difference was perceived, and men werecompelled to find some termto express this newly observed appearance... green was for a longtime regarded as yellow ... Not only was the sky not called blue, but nothing was called blue,and it was impossible to call anything blue .. the men of that time did not and could not callanything blue (Geiger, quoted byHopkins 1883:184-5).

    In this paper a historiography of colour science and a re-reading of Rivers and Lenneberg casts new light onBerlin & Kays Basic Color Terms.Unacknowledged commitments are presented, as too, are hints aboutlinks to a larger research programme, namely, Evolutionary Psychology. Throughout I claim that Berlin and

    Kay endow their ambitious project with an aura of strong prima facie evidence by fiat of colour science.Colour science in the relevant sense is not however an empirical but an a priori science, commitment towhich fatally compromises Berlin and Kay's claims.

    PART I

    Introduction

    To excavate the foundations of modern colour science we must return to Roger Bacon (1220-1292), forwhom to speak of colour is to speak of vision tout court. Because the explanansof vision is mathematical,vision is the model for all science, its causal processes following the pattern of optical phenomena,specifically of the rainbow (Kraml 1994). For Bacon, the rainbow held the key not only to an explanation of

    vision but to the whole of science itself.1.Though modern colour science is less candid about its goals, itsambitions are similar. Maxwell (1872) for example said: "All vision is colour vision ... only by observing

    differences in colour [can] we distinguish the forms of objects." 2.When colour vision becomes a discreteproblem-solving device constituted by evolution in the brain, the hubris is clear. As Mollon (1989) says "thebiological advantages of colour vision [lie] in detecting targets, in segregating the visual field and in

    identifying particular objects or states".3. Though Bacon's candour is rare, his aspirations endure.

    There are at least four heroes of early modern colour science: Descartes, Newton, Helmholtz and Hering.Descartes, accused of plagiarising Bacon, reacted against the Aristotelian distinction between spectral and

    object colour, to propose an out-of-the-hat metaphysics:4. all properties which could not be described inpurely quantitative or geometrical terms were banish from science. Sensations, acting as 'filters', account forhow the complexity and diversity of physical light is translated into the simplicity of colour vision. Thatsimplicity, like other central ideas of Cartesian science, is innate, God having implanted the laws of geometrythat define its essence (Bermudez 1997). Against this background, Newton eradicated the last traces ofAristotelian distinctions between lights and surfaces by demonstrating that 'the colours are [specific]dispositions in the rays' - that is, the elementary constituents of light are monochromatic beams (thoughGoethe was to show that the unique relation of hue to refraction was not based on fact, both Newtons

    prismatic spectrum and his own inverted spectrum being spectra or ghosts).5.Nonetheless the unityproposed by Newton led Maxwell to regard the composition of colours as analogous to the composition offorces in classical mechanics.

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    Helmholtz proposed the Cartesian-Newtonian geometrical thesis could be supported by physiology.6. Theinnate geometry was instantiated by three kinds of retinal nerve fibers corresponding to three basic colours,

    combinations of which account for all other spectral possibilities.7. When any frequency of light within thevisible spectrum strikes the retina, each retinal nerve fibre is activated selectively according to disposition.For Helmholtz a human being is little more than a wave length responder: three retinal nerve fibres suffice for

    colour vision.8. But Helmholtz's 'fit' between spectral colour and neurophysiological filters was rivalled by

    Hering's account. He too pursued the innate (or 'intuitive'),9.but focussed higher-up in the neurophysiology,

    proposing a Cyclopean eye as the central innervation.10. It coordinated eye movements and shifts inattention, to produce a unitary visual impression. It occured in neural tissue and embodied three qualitativelydistinct processes, capable of opponent modes of reaction. Light entering the eye was absorbed byphotosensitive material (Empfangsstoffe), which released energy that served as the stimulus for the neuralresponse processes. These processes were bimodal electrical patterns which 'code' the incoming signal inopposed and antagonistic modes to provide sensory 'information'. Instead of Helmholtzs three primitivecolours, Hering proposed in addition to a basic light/dark (white/black) response, two opponent primitive pairs- red/green and yellow/blue.

    In the 1950's when work on the physiology of isolated fish retinas suggested graded potentials whose signsreverse and whose amplitudes vary with wavelength, it was claimed Hering's opponent mechanism had been

    'found'.11. When similar potentials were claimed for neurons in the monkey-thalamus (in the 1960s), theHelmholtz and Hering traditions were merged into a single two-stage process: Helmhotz in the retina, Hering

    further up-stream. 12.

    The Spectral Creature, Phenomenal Subject and Normal Observer

    The Helmholtz-Hering manifold instantiated by humans, is composite, in contrast to the simplicity of othercreatures. Humans exist in three disjunct worlds: the outer world of physical impingement, the inner world ofpsychology, and the 'real' world of the decontextualised 'normal observer.' In the outer world, the spectralcreature of Helmholtz, like other creatures, is responsive to wavelength and intensity of light impinging onretinal receptors. These responses are governed by the three types of cone filters in the retina which definethe human creature as a 'trichromat'. Other spectrally responsive creatures are referred to as dichromats,tetrachromats, or even pentachromats according to the number of filters, and it is this cross-species 'fact' of

    spectral responsiveness that endows the evolutionary argument with plausibility.13. As Descartes said, God

    designed spectral response for survival value (Cottingham 1988).14.

    In the inner world of Hering-opponency a 'subject' is constructed by phenomenal attributes with'psychological' characterisation. 'Sensations', 'introspection', and 'experience' typify this subject constituting its'psychological reality.' The Hering-world shows itself in modes of appearance, memory effects, light/dark

    adaptation, after images, attention, and preference. To be 'serious science' however, such effects must bequantified. 'Sensation' is expunged in favour of 'percept', characterised as a stimulus dynamically interpretedby the brain in combination with other physical attributes, to become the 'core' response an observer'spercepts ideally approach (Johnston 1996).

    When the spectral creature of the Helmholtz filters and the phenomenal subject of Hering opponency are tiedtogether, a fixed relationship between wavelength and psychological reality results. First proposed in 1922 bythe Optical Society of America (OSA), physicists and psychologists negotiateda definition of colour, inherentto which was the invariant percept-sensation common to the 'normal observer' (Johnston 1996). This 'normalobserver', embodying the spectral creature and phenomenal subject, was in fact nothing more than a passivelyregistering, trichromatic automaton - a photological apparatus instantiating what Russell was to call

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    'sensibilia.' 15.

    Another standardisation also took place. In the wake of Helmholtz, hue, saturation and lightness were derivedby analogy from physical operations, allowing colour perception to become an engineering problem(Mausfeld 1997). Though 'saturation' was rejected by many, in the light of pragmatic results and need for acoherent narrative, caveatswere forgotten. Hue, saturation and lightness became the defining characteristicsof basic chromatic sensations, and with that came the 'intuitive' self-evidence of the three-dimensional 'colourspace', providing the a priori essence of the colour world.

    In the C19th colour-order systems too were developed. These were human engineered, physically exemplifieddatabases of dye and pigment specifications, as well as proto-psychological colour spaces. The mostsuccessful is the Munsell system, introduced in the early C20th, now the national colour standard in America,Japan and Britain and accepted primarily for usefulness in commerce and industry. Organised according to

    Fechner's psychophysical law, Munsell was spaced according to hue-saturation-lightness16. and the principleof JNDs - its phenomenal motivation forgotten as it became a system of samples and stimuli (Sivik 1997).Plotted onto the physical Commission Internationale de L'clairage (CIE) system, all irregularities weresmoothed out. In 1943 a renotation was carried out. Though psychologists objected that psychometricmethods disregarded the phenomenal 'subject', the normal' observer' was reconfigured in CIE-terms. Inconsequence, 'dominant' wavelength, intensity and excitation purity - the physical analogons of hue, lightnessand saturation - were calculated, and all Munsell codes tied to CIE parameters ( Wysezecki and Stiles 1967).Henceforth linguistic response to the Munsell chart could be converted into physical magnitudes to create a

    'linguistic optics'. It is this 'absolute' space 17. that has become the most widely used apparatus inpsychological research (Jameson and d'Andrade 1997; Jameson 1997). Its justification is to provide:

    ... [a] clear mental image of colour relations [that] mustunderlie any intelligent grouping of itshues in the best degrees of strength and light ... [and which] is best produced by using a sphere torepresent the world of color(Birren 1969) (emphasis added).

    It is of vital importance to recognise that the 'must' in this quotation is not a scientific hypothesis capable ofexplaining and confirming, or verifying and falsifying, but a necessity derived from Cartesian metaphysics andNewtonian mechanical laws. It is a prioribecause all normal humans are required to have this ability as thecondition of possibility for 'seeing colour.' That the system is not empirical, but based on petitio principii(begging the question of 'colour'), is never noted.

    PART II

    Multiple Rediscoveries

    Berlin and Kay, in their (1969) Basic Color Terms, propose an onto-methodology of cross-cultural colourresearch realised by the Munsell system. They claim the relation between Munsell, the workings of the visualsystem, and the colour naming behaviour of people, is so tight it can be taken to be a causative law. Diversity

    of colour-naming behavior is defined as a system-regulated stability evinced by Evolution. The fulllexicalisation of the human colour space is designated Evolutionary Stage Seven, 18.as in American English;

    languages below this level are the fossil record. 19.

    Asserting this to be an 'independent rediscovery' of the problematic tackled by Rivers in his section on"Colour Vision" in Haddon's Reportsof the Cambridge Expedition to Torres Straits, Berlin and Kay claimedthe universality and evolutionary development of eleven Basic Color Terms (BCTs). Acknowledging Riversdrew similar conclusions, his concern had been to test both the mental characteristics of the natives and seewhether there was a necessary connection between colour sense and colour language (Rivers 1901a; 1901b),while their concern was to refute Relativism.

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    Rivers

    With regard to predecessors, Berlin and Kay (1969) accord Rivers a place in the proto-history of colour-naming due to his physiological explanation of "the colour defect".Just as Gladstone, Magnus and Geiger hadproposed evolutionary stages in the lexicalisation of the spectrum (from long to short wavelength) to explainthe colour deficiency of the Ancients, so Rivers experimentally established four evolutionary levels or stagesof colour naming among the Torres Strait and Fly River people of New Guinea.

    Using standardised materials 20. for his experiments, Rivers came to the conclusion that lowest in Evolutionwere the Seven Rivers people, with terms for red, white and black. Then came the Kiwai people with red andyellow and an indefinite term for green - followed by the Murray Islanders with red, yellow and green, but aborrowed term for blue. The Mabuiag people were highest in evolution, having terms for both green and blue,though these were "confused". Rivers comments that:

    ... the order in which these four tribes are thus placed, on the ground of thedevelopment of their colour language, corresponds with the order in which theywould be placed on the ground of their general intellectual and cultural development(Rivers 1901b:47).

    The crucial categories Rivers found were red, green, yellow and blue, their evolution being from long toshort wavelengths (i.e. from red to blue), thus confirming the physiological explanation of Gladstone, Magnusand Geiger (Slobodin 1978). Geiger (1871; 1872) had examined Greek literature, the Vedic hymns and theZend-Avestaamongst other writings, using the employment or non-employment of certain colour terms as anindex of ocular development. With Gladstone (1858) and Magnus (1877), Geiger assumed the lexicalisationof the spectrum was based on physiological development, colour words being the 'reflex' of the spectralstimulus (and thereby exhausting the definition of 'colour'). Possessing a structure of its own, this reflexregistered linguistically the spectral order in an additive progression of stages from long to short wavelengths.The last elementary colour term to develop was short-wave 'blue'. In proposing this, Geiger followedGladstone in arguing that 'primitive' people had fewer colour names because they were physiologically

    underdeveloped. Having no word for blue meant that the person could not seeblue. 21.

    It is not surprising that the four colours Rivers found correspond to the four primitive colours of Hering. Inhis obituary (1923:xliii), Head said:

    Rivers absorbed with avidity the views on colour vision and the nature of vitalprocesses ... expressed by th[e] physiologist of genius [Hering] (quoted by Slobodin1978).

    It is the red/green and yellow/blue opponents of Hering that Rivers 'found', and to which he ascribed anevolutionary development (though internal analysis of the linguistic data reveals nothing but ad hoccoinagein the experimental situation (Hickerson 1971; 1975) - a situation also found in Rivers' so-called 'Eskimo' data

    (Rivers 1902). 22. It is also clear that Gladstone et al.s theories of physiological evolution provided thephilological counterpart to, or convergence with, Hering's theory of opponency (Slobodin 1978).

    Rivers' dwelt too on 'threshold' experiments noting that indigenous thresholds for red were "acute", whereas ablue spot close by was "confused" with black - the brilliant blue of the sky and deepest black receiving thesame name. He speculated:

    ... the 'insensitiveness' to blue might depend on the lack of development of somephysiological substance or mechanism... or it may only depend on the fact that theretina of the Papuan is more strongly pigmented than that of the European (Rivers

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    1901b:52).

    Though a pigmented retina was probable, more noteworthy was that in the only complete experimentalstudy to date (i.e. his Torres Straits data), colour language was found to correspond to a "defect" in the coloursense - ie. to "insensitiveness" to blue (ibid.).

    Berlin and Kay (1969) claimed Rivers' thesis of the pigmented retina was "almost certainly wrong"(1969:148). But when "yellow intraocular pigments" were proposed by Bornstein (1973a,b), Berlin and Berlin

    (1975) commended them as "nothing short of sensational" commenting that such "high concentrations ofyellow intraocular pigmentation is found predominantly in highly pigmented peoples" (ibid.: 86n14). Thusintraocular pigments, responsible for the "black, blue, green confusion", were related to phenotypical

    features, namely, pigmented skin, 23. an assertion statistically supported by Ember (1978), co-editor of thenew Encylopedia of Cultural Anthropology (1996). To find correlations in support of the B&K evolutionaryhypothesis, Ember (1978) argued that in thirty-one cases societies with six or more Basic Color Terms weremore likely to be further distant from the equator than those with fewer terms. He suggested that complexityand distance from equator interact, both influencing the size of the colour vocabulary. In the Encyclopedia ofCultural Anthropology it was put like this:

    Some anthropologists ... argue that languages with a large color lexicon should be found in places

    with considerable socioeconomic stratification and occupational specialization... Other socialscientists have offered a biological explanation. They note that humans with dark eyes and darkskins are less able to make certain color distinctions than those with lighter pigmentation.Therefore, languages spoken by dark-eyed, dark-skinned peoples are likely to have small colorlexicons. Because such peoples tend to live near the equator, there should be a relationshipbetween latitude and number of basic color terms. Melvin Ember (1978) has examined thesecompeting hypotheses cross-culturally ... He concluded that the cross-cultural evidencesupported both the explanations (Chibnick 1996:1261-2).

    Undiscussed, these issues continue to be a sub-theme of all colour categorisation research. True, Rivers laterrecanted his evolutionary views in favour of diffusionism (in his 1911 Presidential address to the

    Anthropological Section of the British Association for the Advancement of Science), but it remains a mootpoint whether or not that extends to his colour naming data too. Amongst other colour naming researchers,the evolutionary hypothesis remains an integral feature.

    Lenneberg's Methods

    Berlin and Kay (1969) took advantage of advances made in the standardisation of colour science in theintervening years. A sophisticated methodology had been developed in the 1950s by Lenneberg (of MIT), tograpple with the 'Cassirer-Whorf' Weltanschauungthesis (Lenneberg 1953; Brown and Lenneberg 1954;Lenneberg and Roberts 1956). Lenneberg defined the "language of experience" as a linguistic "reflex" ofsensory mechanisms which in every language would refer to elementary sensations. Stimuli could be ordered

    in systematic ways to provide precise descriptive frames. For colour the frame was hue, saturation andlightness of the Munsell system. Drawing on the Committee on Colorimetry of the OSA (1953), Lennebergdefined hue as the quality of sensation according to which an observer was aware of differences ofwavelengths of radiant energy; saturation as the quality of sensation by which an observer was aware ofdifferent purities of any one 'dominant' wavelength (i.e. relative to human, as distinct from avian, etc.observers), and lightness (or brightness) as the attribute of sensation by which an observer was aware ofdifferences of luminance. With this definition in hand, he reached for the Munsell system (Lenneberg andRoberts 1956).

    Previously Lenneberg had asked five judges to pick out from the most highly saturated outer shell of theMunsell system - what he called "the bestred, orange, yellow, green, blue, purple, pink and brown" (Brown

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    and Lenneberg 1954). These were the "most frequent color terms in English" (ibid: 458n.17), referring toThorndike and Lorge'sTeachers' Wordbook itself derived (albeit indirectly), from standardised coloursystems. With this apparatus he conducted a cross-cultural comparison of Zui and American English. Colourterms were elicited, reorganised according to Munsell, mapped onto the maximally saturated chart, and fociwere indicated.

    Aware of the limitations of the Munsell system, Lenneberg raised the question of how culture-bound itsdimensions might be (Lenneberg and Roberts 1956). But just as C19th sceptics buried doubts about

    saturation, so Lenneberg claimed that though the Munsell dimensions were not "natural, logical or necessary"they did provide a pragmatic "measuring stick" to describe cross-cultural similarities or differences (ibid.).24.

    However his refusal to grant epistemic priority to American English colour terms or the Munsell system hasearned him the epithet of 'Relativist'.

    Berlin and Kay of 1969

    Disregarding Lenneberg's cautions, Berlin and Kay (B&K) took over his equipment, procedures, colourcategories and foci. Other than to acknowledge the "classic" Zui-English study, they merely "reported"where the Munsell system could be bought, what its 1960's price was, and what kind of lighting had beenemployed in their tests (B&K1969:160n.3).

    Twenty languages were mapped according to Lenneberg's procedures onto the Munsell chart. His AmericanEnglish categories were confirmed by these mappings (as 'universal') on the grounds that the foci of the colourcategories clustered together. B&K then added data from a further seventy eight ethnographic accounts(amongst which Rivers' data figured prominently). On the basis of the initial 'universal' foci, plus theethnographic accounts, they concluded there were eleven Basic Color Terms (BCTs), whose orderlyemergence in the world's languages constituted an evolutionary law. The eleven BCTS were a metalanguagefor characterising both the Munsell chart and the mysterious biological entities that emerged linguistically inresponse to it. These entities, which coincided perfectly with American-English colour terms, wererecapitulationist pan-human universals based on species-specific bio-morphological structures underlying the'perceptual-linguistic functions' (1969:109 passim). All that remained was to locate the cerebral structures

    governing them.25.

    Though Berlin and Kay insist their tests were 'empirical', it is worth looking at them more closely. There werelabelling, transcription and factual errors, empirical deficiencies in the experiments, a language sample thatwas not random, and a bilingual and colonial factor that was ignored. The informants were narrowlyhomogenous, often with one bilingual speaker for each of nineteen language, all foreign students, presumably

    at Berkeley (Rosch 1972).26. Finally, fifteen of the twenty mapped languages were at Evolutionary StageSeven, meaning that B&K's hardest datum - the universal clusteringof foci - was a foregone conclusion.

    Among their peers the criterion of empirical adequacy was waived in favour of the 'simplicity' of the elevenBCTs, the 'coherent ' clustering of foci, and the 'surprising' evolutionary sequence. Commentators prophesiedBasic Color Terms would become one of the most remarkable discoveries of anthropology (Durbin 1972;Sahlins 1976), a 'bio-cultural' finding, merely awaiting its inevitable neuro-reduction (Hays et al. 1972). Thissuspension of critical faculties must be put down to such factors as weariness with the Relativist Zeitgeist,local factional politics, congruence with structuralist and Chomskian principles, the status of BerkeleyAnthropology and a sychophantic adulation of scientistic methodology.

    Problems and developments

    Only a failure of nerve prevented specification of the neuro-reduction in 1969. But in 1978, Hering'sopponent processes were wedded to the theory of BCTs. Unacknowledged of course was the opponency built

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    into Rivers' Torres Straits data. Rather, it was claimed, on the basis of colour science:

    ... basic color categories ... can be derived directlyfrom the neural response patternsthat underlie the perception of color (Kay&McDaniel 1978:630) emphasis added.

    Thus Basic Color Terms became Fundamental Neural Response Categories (FNRs). In contrast to theprogressive encoding of foci, now the colour space evolutionarily split. Fissipating into warm and coolcomposite categories, into primaries (the Hering opponents), and into secondaries (orange, purple, etc), these

    three types of category have a two-fold purpose: they explain why the six unique hue sensations do notemerge all at once, and they save the original eleven BCTs which would otherwise be incompatible with theHering unique hues.

    Unfortunately the incommensurability of Munsell and Hering is evident the moment one steps outside its'paradigm' (Sivek 1997). To balance their conflicting characteristics, Kay "hypothesised" that there may be aspecific basis only for the primary categories, (white, black, red, green, blue and yellow), while in the case ofderived categories (secondaries) and perhaps also the composites ("warm-cool" categories) it may rather be amatter of colour-specific hard-wired neural mechanisms interactingwith some more general cognitive

    mechanismsthat preside over category formation.27. However in Behavioral and Brain Sciences, theyabandon the assertion about "more general cognitive mechanisms", claiming that a recently published

    psychophysical model suggests how the early stage composites are hardwired). They say "... these twocomposites [red or yellow; green or blue] based on cross-language color naming data, correspond preciselytothe two channels of hue information at one stage of a recent 4-stage model of color perception ..." (Kay andBerlin 1997:200emphasis added). However, unless Kay and Berlin provide a similar neurophysiological-psychophysical model to explain the other composites - yellow-green, yellow-green-blue, blue-black, white-

    red-yellow, black-blue-green, and so on28. - these pronouncements fail in their own terms. This accountmerely raises more problems of reconciliation with Hering opponency than it can solve. The new position nowconstitutes a total volte face from the earlier pronouncement and seeks to vindicate the hardwired account ofthe evolution of Basic Color Terms. In the history of the colour naming/categorisation programme this meansthat B&K have 'found' (that is, have a model for) Geiger's, Magnus and Rivers' evolutionarily emergentphysiological mechanisms.

    Conclusion

    Basic Color Terms (1969), derived from Rivers and Lenneberg, appealed to a prioribiology and bio-physicsfor universality and perceptual evolution. With the re-discovery of Hering opponency, Rivers' conclusionswere recapitulated. Differing only in method and scale,'better' method, derived initially from Lenneberg,allowed colour science to warrant claims, and Big(gish) Science to provide resources. What can now beanticipated for the future is that Munsell will be substituted by the Swedish Natural Colour System (NCS) -itself based on Hering opponency, a larger research group - probably the Max Planck Institute - will provide

    manpower and field-data, and Evolutionary Psychology will be the 'paradigm.' 29.The phenomena will besaved, the model simplified, the culture-boundness and fragility of colour science ignored, and faith and hope

    pinned on the redemptive science to come. 30.

    Paper presented to conference on Anthropology and Psychology: The Legacy of the Torres StraitExpedition, St. Johns College, Cambridge 10-12 August 1998. To appear in Science as Culture

    Conference description: The 1898 Cambridge Expedition to the Torres Strait is widely recognised as havingbeen formative in the development of anthropology and psychology in Britain. It was a turning-point in thecareers of several participants who went on to found what have become highly specialised disciplines in the

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    twentieth century [e.g., A. C. Haddon, W. H. R. Rivers, William McDougall].

    The aim of the conference is to look forward by reflecting on the past, to ask whether the dynamic interactionof embryonic disciplines a century ago offers a useful framework for thinking about the possibilities forintellectual synthesis today. The conference will provide a unique opportunity for anthropologists,psychologists and historians of science to carry forward a conversation whose relevance is sharpened bywidespread discontent with the forms of academic division of labour today.

    Notes

    1.Regarding himself as a pupil of the Arabs, in particular of Ibn al-Haitam (Alhazen), Bacon propagated thenew science. contributing both to the history of science and to the theory of science. The explanation of therainbow occurs in the 6th part (On Experimental Science) of his Opus Maius.See Kraml (1994:353).

    2. Maxwell (1860) quoted in Koenderinck (1995/6:vii).

    3. Others extend the biological theory of colour vision to account for basic colour categories (Hardin 1988)and unique hues (Shepard 1991).

    4. Cottingham (1989/90:233).

    5. Koenderinck (1995/6:62 ) says: If you look through a small light spot on a dark background you seenNewton's spectrum. If you look at a dark spot on a light background you see Goethe's 'inverted spectrum'. Itbehaves in many respects like the Newtonean one, the rays of diverse colours being at equal intervalsunequally refracted. The interpretation of Newton's experimentumcrucis(the monochromatic beams are theelementary constituents of light) is mistaken. The invariant correspondence between 'refrangeability'(refraction) and hue is unwarranted. Monochromatic colours are black, the purest beams being invisiblebecause dark. If the colours of the inverted spectrum are purified they become invisible because they becomeequal to (white) light at the source. Thus both the Newtonean and the inverted spectrum are really 'spectra'i.e. ghosts, though Goethe's is the more elementary because more stable. Because Newton was so preoccupied

    with reduction, other kinds of experiments did not occur to him. The idea of using an opaque object and not ahole never occured to him. In geometrical optics the images from complementary apertures (such as a slit anda bar) will necessarily lead to complementary colours. Because of the similar status of the inverted spectrum,Newton's presumed one-to-one relation between hues and refrangeability (refraction) is not based on fact

    6. Helmholtz adopted the Kantian metaphysic that the necessary order that we suppose to exist in nature is insome way identical with that which has been imposed by our cognitive constitution.

    7. Helmholtz (Physiological Optics Vol. I.: 145; 162) notes that though the character of a colour is a functionof only three variables, which three fundamental spectral colours are chosen is to a great extent arbitrary; anythree that can be mixed to get white, might be chosen.

    8. Helmholtz (ibid.1909: 142-4) says, "When we speak of reducing the colours to three fundamental colours,this must be understood in a subjective sense, and as being an attempt to trace the colour sensationsto threefundamental sensations....Young's hypothesis ... is [not] opposed to the anatomical facts..."

    9. Hering's links to Kant were noted by Helmholtz in Section 26 of the Optics: "In its more recentdevelopment, especially as developed by E. Hering, there is an ideated subjective visual space, wherein thesensations of the separate nerve fibres are supposed to be registered according to certain innate laws. Thus inthis theory not only is Kant's assertion adopted, that the general apperception of space is an original form ofour ideation, but there are laid down as innate certain special space perceptions."

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    10. Hurvich and Jameson (1964:x; xiv-xv).

    11. Hurvich and Jameson, (1964:xvi-xvii) refer to the "findings of G. Svaetichin and his collaborators onneural elements in the retina of the fish." See Svaetichin and MacNichol (1958).

    12. See De Valois, Abramov and Jacobs (1966) and De Valois and Jacobs (1968)

    13. See Thompson et al. 1991; Thompson 1995.

    14. Shepard (1991) reiterates the point in a neo-Darwinian context.

    15. Cf. Ayer (1971:57-65).

    16. Munsell employs the terms Hue, Value and Chroma for what I have termed Hue, Lightness andSaturation.

    17. This is a play on Newton's absolute (Euclidean) space used to represent his mechanical laws.

    18. Reminiscent both of the seven bands of Newton's spectrum and Morgan's seven stages of civilization.

    19. Broadly in what follows, 'Berlin and Kay' will cover all publications concerning colour, authored orco-authored by at least one of them.

    20.Rivers explains that he "obtained the names of a set of papers, sold by Rothe, of Leipzig which ... [were]so widely used by workers on colour vision that they may be regarded as standard" (Rivers 1901a:53). Theseprismatic (or aperture) colours may therefore be presumed to have been axiomatic.

    21. Interestingly among relativists there is a similar story that is told about 'justice': because the Greeks couldnot 'see' the 'injustice' of slavery, they could not formulate a critique of it (see Moody-Adams 1997 on Rorty).

    22. Though a dictionary compiled by the Reverend MacFarlane may also have had something to do with

    Rivers' choice of terms.23. In view of this textual evidence, it is difficult to see Hardin and Maffi's (1997:5) pronouncements on theinnocence or disingenuousness of B&K (and their followers) regarding evolution, as anything but whitewash.

    24. The implication of Lenneberg's cautions about the Munsell system was that the mental characteristics tobe found were set against a series of categories embodied in test materials, held as an indubitable standard forevaluating or measuring development. See also Hickerson (1975) and Ratner (1989).

    25. There is a sense in which these mysterious entities could be characterised as 'fragments of rationality' -though perhaps they are 'better than rational'. See Cosmides and Tooby (1994).

    26. Kay, Berlin, Maffi and Merrifield claim that "the number of speakers interviewed for most of thelanguages was three or fewer..." (1997:22)

    27. According to Maffi and Hardin (1997:362).

    28. See Hardin and Maffi (1997:31-3).

    29. This point was adumbrated but not fully developed in (Kay et al. 1991)

    30. When the eliminativist metaphysics, tendentious opponent processes and flimsy scientific model areappreciated, the evolutionary thesis becomes an empty schemata, the cherished integrative causal model

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    evaporates, and no conceptual orchestration is available for Evolutionary Psychology.

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    Copyright: The Author

    Address for correspondence: Barbara Saunders, Departments of Philosophy and Anthropology, University ofLeuven, Belgium email:[email protected]

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