ASTM E2022-2008 Standard Practice for Calculation of Weighting Factors for Tristimulus Integration《计算三色合成权重因数的标准实施规程》.pdf
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1、Designation: E 2022 08Standard Practice forCalculation of Weighting Factors for Tristimulus Integration1This standard is issued under the fixed designation E 2022; the number immediately following the designation indicates the year oforiginal adoption or, in the case of revision, the year of last re
2、vision. A number in parentheses indicates the year of last reapproval. Asuperscript epsilon () indicates an editorial change since the last revision or reapproval.1. Scope1.1 This practice describes the method to be used forcalculating tables of weighting factors for tristimulus integra-tion using c
3、ustom spectral power distributions of illuminants orsources, or custom color-matching functions.1.2 This practice provides methods for calculating tables ofvalues for use with spectral reflectance or transmittance data,which are corrected for the influences of finite bandpass. Inaddition, this pract
4、ice provides methods for calculating weight-ing factors from spectral data which has not been bandpasscorrected. In the latter case, a correction for the influence ofbandpass on the resulting tristimulus values is built in to thetristimulus integration through the weighting factors.1.3 The values st
5、ated in SI units are to be regarded asstandard. No other units of measurement are included in thisstandard.1.4 This standard does not purport to address all of thesafety concerns, if any, associated with its use. It is theresponsibility of the user of this standard to establish appro-priate safety a
6、nd health practices and determine the applica-bility of regulatory limitations prior to its use.2. Referenced Documents2.1 ASTM Standards:2E 284 Terminology of AppearanceE 308 Practice for Computing the Colors of Objects byUsing the CIE System2.2 CIE Standard:CIE Standard S 002 Colorimetric Observer
7、s33. Terminology3.1 DefinitionsAppearance terms in this practice are inaccordance with Terminology E 284.3.2 Definitions of Terms Specific to This Standard:3.2.1 illuminant, nreal or ideal radiant flux, specified byits spectral distribution over the wavelengths that, in illuminat-ing objects, can af
8、fect their perceived colors.3.2.2 source, nan object that produces light or otherradiant flux, or the spectral power distribution of that light.3.2.2.1 DiscussionA source is an emitter of visible radia-tion. An illuminant is a table of agreed spectral powerdistribution that may represent a source; t
9、hus, Illuminant A is astandard spectral power distribution and Source A is thephysical representation of that distribution. Illuminant D65 is astandard illuminant that represents average north sky daylightbut has no representative source.3.2.3 spectral power distribution, SPD, S(l),nspecification of
10、 an illuminant by the spectral compositionof a radiometric quantity, such as radiance or radiant flux, as afunction of wavelength.4. Summary of Practice4.1 CIE color-matching functions are standardized at 1-nmwavelength intervals. Tristimulus integration by multiplicationof abridged spectral data in
11、to sets of weighting factors occursat larger intervals, typically 10-nm or 20-nm; therefore, inter-mediate 1-nm interval spectral data are missing, but needed.4.2 Lagrange interpolating coefficients are calculated for themissing wavelengths. The Lagrange coefficients, when multi-plied into the appro
12、priate measured spectral data, interpolatethe abridged spectrum to 1-nm interval. The 1-nm intervalspectrum is then multiplied into the CIE 1-nm color-matchingdata, and into the source spectral power distribution. Eachseparate term of this multiplication is collected into a valueassociated with a me
13、asured spectral wavelength, thus formingweighting factors for tristimulus integration.4.3 A correction may be applied to the resulting table ofweighting factors to incorporate a correction for the spectraldatas bandpass dependence.1This practice is under the jurisdiction of ASTM Committee E12 on Col
14、or andAppearance and is the direct responsibility of Subcommittee E12.04 on Color andAppearance Analysis.Current edition approved Dec. 1, 2008. Published January 2009. Originallyapproved in 1999. Last previous edition approved in 2006 as E 2022 - 061.2For referenced ASTM standards, visit the ASTM we
15、bsite, www.astm.org, orcontact ASTM Customer Service at serviceastm.org. For Annual Book of ASTMStandards volume information, refer to the standards Document Summary page onthe ASTM website.3Available from USNC-CIE Publications Office (International Commission onIllumination), C/o Thomas M. Lemons,
16、TLA-Lighting Consultants, Inc., 7 Pond St.,Salem, MA 01970, http:/www.cie-usnc.org.1Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959, United States.5. Significance and Use5.1 This practice is intended to provide a method that willyield uniformity of
17、calculations used in making, matching, orcontrolling colors of objects. This uniformity is accomplishedby providing a method for calculation of weighting factors fortristimulus integration consistent with the methods utilized toobtain the weighting factors for common illuminant-observercombinations
18、contained in Practice E 308.5.2 This practice should be utilized by persons desiring tocalculate a set of weighting factors for tristimulus integrationwho have custom source, or illuminant spectral power distri-butions, or custom observer response functions.5.3 This practice assumes that the measure
19、ment interval isequal to the spectral bandwidth integral when applying correc-tion for bandwidth.6. Procedure6.1 Calculation of Lagrange CoeffcientsObtain by calcu-lation, or by table look-up, a set of Lagrange interpolatingcoefficients for each of the missing wavelengths.46.1.1 The coefficients sho
20、uld be quadratic (three-point) inthe first and last missing interval, and cubic (four-point) in allintervals between the first and the last missing interval.6.1.2 Generalized Lagrange CoeffcientsLagrange coeffi-cients may be calculated for any interval and number ofmissing wavelengths by Eq 1:Ljr! 5
21、)i50 ifijnr ri!rj ri!, for j 5 0,1,.n (1)where:n = degree of coefficients beingcalculated,5iand j = indices denoting the locationalong the abscissa,p = repetitive multiplication ofthe terms in the numeratorand the denominator, andindices ofthe interpolant, r= chosen on the same scale asthe values i
22、and j.6.1.2.1 Fig. 1 assist the user in selecting the values of i, j,and r for these calculations.6.1.2.2 Eq 1 is general and is applicable to any measurementinterval or interpolation interval, regular or irregular.6.1.3 10 and 20-nm Lagrange CoeffcientsWhere themeasured spectral data have a regular
23、 or constant interval, theequation reduces to the following:L05r 1!r 2!r 3!6(2)L15r!r 2!r 3!2(3)L25r 1!r!r 3!2(4)L35r 1!r 2!r!6(5)for the cubic case, and toL05r 1!r 2!2(6)4Hildebrand, F. B., Introduction to Numerical Analysis , Second Edition,Dover, New York, 1974, Chapter 3.5Fairman, H. S., “The Ca
24、lculation of Weight Factors for Tristimulus Integra-tion,” Color Research and Application, Vol 10, 1985, pp. 199203.FIG. 1 The Values of i in Eq 1 are Plotted Above the Abscissa and the Values of r are Plotted Below for A) the First MeasurementInterval; B) the Intermediate Measurement Intervals; and
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