SYSTEM AND METHOD FOR COLOR OPTIMIZATION
20170213521 ยท 2017-07-27
Assignee
Inventors
Cpc classification
G09G2320/0666
PHYSICS
H04N1/603
ELECTRICITY
International classification
Abstract
In order to present in a system with a distal server displaying a virtual color image in the form of an image file comprising individual color values on its website, and with a proximal computer connected to the server and comprising a display unit (D), said computer displaying on its display unit (D) the virtual color image of the server by means of an application program,
products on the display unit (D) in the most optimum colors possible, the following is proposed: [a] a reference card (K) is held in front of the computer, said reference card (K) comprising several differently colored translucent reference areas (T1, T2, T3) besides a transparent or translucent area or an opening (G), [b.1] the application program then starts a routine on the server and/or on the computer, said routine firstly outputting a first shade, for example cyan, with a first of the color values, said first shade being complementary to the color, for example red, of one (T1) of the translucent reference areas (T1, T2, T3) of the reference card (K), [b.2] the reference card (K) having that translucent reference area (T1) whose color is complementary to the first shade displayed on the display unit (D) is then held in front of said first shade, and an identifier is determined and stored for that (T1) of the translucent reference areas (T1, T2, T3) for which the shade of grey resulting from color mixture of the first shade and the translucent reference area (T1) comes closest to a shade of grey displayed on the display unit (D) and falling through the area or the opening (G), [c] the step [b.1] and the step [b.2] are repeated at least once to output a second shade, for example magenta, of a second of the color values, said second shade being complementary to the color, for example green, of another (T2) of the translucent reference areas (T1, T2, T3) of the reference card (K), and to determine and store the identifier of said other (T2) of the translucent reference areas (T1, T2, T3), [d] the identifiers of the reference areas (T1, T2, T3) determined in the preceding steps [b.1], [b.2], [c] and stored on the server and/or on the computer are input in this order into a color correction program started on the server and/or on the computer, and [e] for each image file sent by the server the color correction program is used to adjust the virtual color image for each color value included in the image file by applying the identifiers used as correction values whereby said virtual color image is displayed in colors optimized in respect of its recording conditions.
Claims
1. A system with a distal server displaying a virtual color image in the form of an image file comprising individual color values on its website, and with a proximal computer connected to the server and comprising a display unit, said computer displaying on its display unit the virtual color image of the server by means of an application program, [a] wherein a reference card is held in front of the computer, said reference card comprising several differently colored translucent reference areas besides a transparent or translucent area or an opening, [b.1] wherein the application program then starts a routine on the server or on the computer, said routine firstly outputting a first shade, for example cyan, with a first of the color values, said first shade being complementary to the color, for example red, of one of the translucent reference areas of the reference card, [b.2] wherein the reference card having that translucent reference area whose color is complementary to the first shade displayed on the display unit is then held in front of said first shade, and an identifier is determined and stored for that of the translucent reference areas for which the shade of grey resulting from color mixture of the first shade and the translucent reference area comes closest to a shade of grey displayed on the display unit and falling through the area or the opening, [c] wherein the step [b.1] and the step [b.2] are repeated at least once to output a second shade, for example magenta, of a second of the color values, said second shade being complementary to the color, for example green, of another of the translucent reference areas of the reference card, and to determine and store the identifier of said other of the translucent reference areas, [d] wherein the identifiers of the reference areas determined in the preceding steps [b.1], [b.2], [c] and stored on the server or on the computer are input in this order into a color correction program started on the server or on the computer, and [e] wherein for each image file sent by the server the color correction program is used to adjust the virtual color image for each color value included in the image file by applying the identifiers used as correction values whereby said virtual color image is displayed in colors optimized in respect of its recording conditions.
2. The system according to claim 1 wherein the step [b.1] and the step [b.2] are repeated at least once more to output a third shade, for example yellow, of a third of the color values, said third shade being complementary to the color, for example blue, of yet another of the translucent reference areas of the reference card, and to determine and store the identifier of said yet other of the translucent reference areas.
3. The system according to claim 1 wherein the reference card comprises as many differently colored translucent reference areas as shades are output from the routine on the server.
4. The system according to claim 1 wherein the color values are given by R[ed]G[reen]B[lue] pixel triplets.
5. The system according to claim 1 wherein Lambda correction values are calculated and stored as identifier(s).
6. The system according to claim 5 wherein Lambda correction values are calculated for each R[ed]G[reen]B[lue] color.
7. The system according to claim 1 wherein the image file is provided in a normed format.
8. The system according to claim 1 wherein the virtual color image is taken with a camera under normed light and camera conditions.
9. The system according to claim 8 wherein the virtual color image is taken under the normed light condition D50.
10. The system according to claim 8 wherein the virtual color image is taken in the standardised color space sRGB.
11. The system according to claim 1 wherein the server and the computer are connected via the internet.
12. The system according to claim 1 wherein the computer is a P[ersonal]C[omputer], a notebook, a smartphone, a tablet or any other mobile end device.
13. The system according to claim 1 wherein the display unit is a screen, a monitor or a display.
14. The system according to claim 1 wherein the application program is an app[lication] or a browser.
15. A method for color optimization, [a] wherein a reference card is held in front of a proximal computer connected to a distal server and comprising a display unit, said computer displaying on its display unit the virtual color image of the server by means of an application program, said distal server displaying a virtual color image in the form of an image file comprising individual color values on its website, which reference card comprises several differently colored translucent reference areas besides a transparent or translucent area or an opening, [b.1] wherein the application program then starts a routine on the server or on the computer, said routine firstly outputting a first shade, for example cyan, with a first of the color values, said first shade being complementary to the color, for example red, of one of the translucent reference areas of the reference card, [b.2] wherein the reference card having that translucent reference area whose color is complementary to the first shade displayed on the display unit is then held in front of said first shade, and an identifier is determined and stored for that of the translucent reference areas for which the shade of grey resulting from color mixture of the first shade and the translucent reference area comes closest to a shade of grey displayed on the display unit and falling through the area or the opening, [c] wherein the step [b.1] and the step [b.2] are repeated at least once to output a second shade, for example magenta, of a second of the color values, said second shade being complementary to the color, for example green, of another of the translucent reference areas of the reference card, and to determine and store the identifier of said other of the translucent reference areas, [d] wherein the identifiers of the reference areas determined in the preceding steps [b.1], [b.2], [c] and stored on the server or on the computer are input in this order into a color correction program started on the server or on the computer, and [e] wherein for each image file sent by the server the color correction program is used to adjust the virtual color image for each color value included in the image file by applying the identifiers used as correction values whereby said virtual color image is displayed in colors optimized in respect of its recording conditions.
16. The method according to claim 15 wherein the color values are given by R[ed]G[reen]B[lue] pixel triplets.
17. Use of a routine on a server or on a computer of the system according to claim 1, said routine firstly outputting a first shade, for example cyan, of one of the color values, said first shade being aligned to a first of the translucent reference areas, and then being repeated at least once to output another shade, for example magenta, of another of the color values, said other shade being aligned to another of the translucent reference areas.
18. The use according to claim 17 wherein a color correction program is provided on the server or on the computer, the identifiers of the translucent reference areas being input in said color correction program, said identifiers being determined and stored on the server or on the computer by means of the reference card, and said color correction program outputting each optimized color value of the image file to the display unit of the computer.
19. Use of a reference card comprising several differently colored translucent reference areas besides a transparent or translucent area or an opening, said area or said opening letting pass a shade of grey displayed on a display unit, and of a color correction program started by an application program on a proximal computer or on a distal server for displaying a virtual color image on the computer, said virtual color image being displayed in colors optimized in respect of its recording conditions.
20. The use according to claim 19 by applying the components of the system according to claim 1.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0059] As already discussed hereinbefore, there are various possibilities for embodying and further developing the teaching of the present invention in an advantageous manner. To this end, on the one hand reference is made to the explanations above and to the dependent claims, and on the other hand further embodiments, features and advantages of the present invention are explained in greater detail hereinafter, inter alia based upon the exemplary embodiment illustrated by
DETAILED DESCRIPTION OF THE INVENTION
[0060] According to the invention, any display unit D, i.e. any screen or any monitor or any display of a smartphone or of a tablet can be calibrated in an optimized way in terms of colors by means of a reference card K according to
[0067] In this context, the number and the type of the reference areas T1, T2, T3 are to be seen only exemplarily in respect of the colors on the used color foil of the card. It is relevant that each reference area T1, T2, T3 is assigned to one shade or color tone. Thus, the shades need not necessarily be the three basic colors red, green and blue.
[0068] This may be expedient when mixing the colors of a screen from the basic colors R[ed]G[reen]B[lue]; however, any colors can be used for color adapting as long as they are sufficiently remote from each other in the color space, in particular possibly at distal ends of the color space; for example, a reference card K with color fields or color folils of cyan, magenta and yellow is possible, thus being on the basis of the C[yan]M[agenta]Y[ellow] color model.
[0069] In this way, the screen colors may be adapted by means of only two reference areas T1, T2, for example by means of two color foils though in this case without controlling the brightness. In the same way, more than three color foils may be used to optimize the screen colors, resulting in an improved preciseness and/or in a validation of the first calibration steps.
[0070] The reference color displayed in the middle of the card and provided by the screen need not necessarily be a neutral grey (identical R[ed]G[reen]B[lue] value) but it can be provided any RGB variation simulated by mixing the reference color foils and the complementary colors produced on the screen.
[0071] In order to enhance the accuracy, the described method may be performed with several RGB color combinations subsequently.
[0072] Independently thereof or in combination therewith, it is possible that a user does not hold the color foils not immediately at the monitor but in front of her or his eye, or that the user puts on the color foils in the form of glasses (comparable to 3D glasses with red and green color foil).
[0073] A color measuring device or a camera, for example of a smartphone, may be used to evaluate all color fields.
LIST OF REFERENCE SIGNS
[0074] D display unit, in particular screen or monitor or display
[0075] G opening or transparent or translucent area
[0076] K reference card
[0077] T1 first translucent reference area
[0078] T2 second translucent reference area
[0079] T3 third translucent reference area