Claims
- 1. A method to proof an input image for output imaging with N colorants at a printing resolution RES1, the proofing on a proofer having M proofing color components at a proofing resolution RES2, at least one of the M proofer color components being different from any of the N printing colorants, the output imaging including screening, the method comprising:
providing a screened image of N components at a resolution RES3 that represents the input image, the N components of the RES3 screened image substantially the same as the N colorant components of the output imaging, and the screening of the RES3 screened image having substantially the same properties as the screening of the output imaging; converting the RES3 N-component screened image to a contone image of resolution RES3 having M contone components; and converting the RES3 M-component contone image to an M-component contone image at the proofing resolution RES2.
- 2. A method as described in claim 1, wherein RES3 is the same as RES1, and wherein the input image is the RES3 N-component screened image.
- 3. A method as described in claim 1, further comprising outputting the RES3 M-component contone image on the proofer.
- 4. A method as described in claim 3, wherein the proofer is a screened proofer and the outputting makes use of a screening process.
- 5. A method as described in claim 4, wherein the proofer includes an imagesetter for exposing films, and wherein the M proofer colorants are C, M, Y, and K.
- 6. A method as described in claim 4, where the screening process of the outputting is a stochastic screening process.
- 7. A method as described in claim 1, wherein the input image is a PDL file and wherein the step of providing the RES3 N-component screened image includes RIPping and screening the PDL file to form the RES3 N-component screened image, the screening step substantially matching the screening of the output imaging.
- 8. A method as described in claim 7, wherein the screening of the RIPping and screening step include dot gain compensation.
- 2. A method as described in claim 1, wherein the screens of the RES3 screened image have
screen rulings that differ by at most 5% from the screen rulings of the output imaging screening, screen angles that differ by at most 1% from the screen angles in the output imaging screening, and dot shapes that are substantially the same as the dot shapes in the output imaging screening.
- 9. A method as described in claim 1, wherein the number of proofer color components M is smaller than the number of output imaging color components N.
- 10. A method as described in claim 1, wherein the M proofer colorants are C, M, Y, and K.
- 11. A method as described in claim 10, wherein wherein the proofer includes an imagesetter for exposing film, and wherein the the input image may include one or more parts that require at least one non-CMYK ink in the output imaging process, such that any part of the image that requires at least one non-CMYK is proofed on the films, including substantial color and screening properties matching.
- 12. A method as described in claim 1, wherein the M proofer colorants are R, G, and B and the proofer is a display screen.
- 13. A method as described in claim 1, wherein the intermediate resolution RES3 is less than 1000 dpi and the printer resolution RES1 is higher than 1000 dpi.
- 14. A method as described in claim 1, wherein the intermediate resolution RES3 is the same as the printer resolution RES1.
- 15. A method as described in claim 1, including storing a number SCALE of lines of the M-component contone image, SCALE being the first integer greater or equal to the ratio RES3/RES2.
- 16. A method as described in claim 1, wherein the converting of the N-component screened image and the resolution converting of the M-component contone image are carried out line by line such that intermediate storage of the complete M-component contone image is not required.
- 17. A method as described in claim 1, wherein the converting of the N-component screened image and the resolution converting of the M-component contone image are carried SCALE line at a time such that intermediate storage of the complete M-component contone image is not required, SCALE being the first integer greater or equal to the ratio RES3/RES2.
- 18. A method as described in claim 1, wherein the step of converting to a M-component contone image uses a look-up table to convert a set of N binary values to a set of M contone values.
- 19. A method as described in claim 18, wherein the look-up table has 2N entries and M output values for each entry, and wherein the step of converting a set of N binary values to a set of M contone values includes:
concatenating the set of N binary values to form an N-bit binary number, and indexing the look-up table using the N-bit binary number.
- 20. A method as described in claim 18, wherein the color determined by the imaging process for any region of the input image and the color constructed using the combination of proofer color components determined by the look-up table are substantially color matched.
- 21. A carrier medium carrying one or more computer readable code segments for controlling a processing system to carry out a method to proof an input image for output imaging with N colorants at a printing resolution RES1, the proofing on a proofer having M proofing color components at a proofing resolution RES2, at least one of the M proofer color components being different from any of the N printing colorants, the output imaging including screening, the carrier medium comprising:
computer readable code to effect one or more processors of the processing system to accept a screened image of N components at a resolution RES3 that represents the input image, the N components of the RES3 screened image substantially the same as the N colorant components of the output imaging, and the screening of the RES3 screened image having substantially the same properties as the screening of the output imaging; computer readable code to effect one or more processors of the processing system to convert the RES3 N-component screened image to a contone image of resolution RES3 having M contone components; and computer readable code to effect one or more processors of the processing system to convert the RES3 M-component contone image to an M-component contone image at the proofing resolution RES2.
- 22. A carrier medium as described in claim 21, wherein RES3 is the same as RES1, and wherein the input image is the RES3 N-component screened image.
- 23. A carrier medium as described in claim 21, further comprising
computer readable code to effect one or more processors of the processing system to output the RES3 M-component contone image on the proofer.
- 24. A carrier medium as described in claim 23, wherein the proofer is a screened proofer and the outputting to the proofer makes use of a screening process.
- 25. A carrier medium as described in claim 4, wherein the proofer includes an imagesetter for exposing films, and wherein the M proofer colorants are C, M, Y, and K.
- 26. A carrier medium as described in claim 24, where the screening process of the outputting is a stochastic screening process.
- 27. A carrier medium as described in claim 21, wherein the input image is a PDL file and wherein the code to accept the RES3 N-component screened image includes:
computer readable code to effect one or more processors of the processing system to RIP and screen the PDL file to form the RES3 N-component screened image, the screening substantially matching the screening of the output imaging.
- 28. A carrier medium as described in claim 27, wherein the screening of the RIPping and screening code include dot gain compensation.
- 22. A carrier medium as described in claim 21, wherein the screens of the RES3 screened image have
screen rulings that differ by at most 5% from the screen rulings of the output imaging screening, screen angles that differ by at most 1% from the screen angles in the output imaging screening, and dot shapes that are substantially the same as the dot shapes in the output imaging screening.
- 29. A carrier medium as described in claim 21, wherein the number of proofer color components M is smaller than the number of output imaging color components N.
- 30. A carrier medium as described in claim 21, wherein the M proofer colorants are C, M, Y, and K.
- 31. A carrier medium as described in claim 21, wherein the M proofer colorants are R, G, and B and the proofer is a display screen.
- 32. A carrier medium as described in claim 21, wherein the intermediate resolution RES3 is less than 1000 dpi and the printer resolution RES1 is higher than 1000 dpi.
- 33. A carrier medium as described in claim 21, wherein the intermediate resolution RES3 is the same as the printer resolution RES1.
- 34. A carrier medium as described in claim 21, wherein the processing system includes a memory, the medium further comprising computer readable code to effect one or more processors of the processing system to store a number SCALE of lines of the M-component contone image in the memory, SCALE being the first integer greater or equal to the ratio RES3/RES2.
- 35. A carrier medium as described in claim 21, wherein the code to of convert to a M-component contone image includes code to fetch a set of M contone values for a set of N binary values of a pixel of the N-component RES3 screened image from a look-up table stored in the processing system, the look-up table having 2N entries and M output values for each entry.
- 36. A carrier medium as described in claim 35, wherein the color determined by the imaging process for any region of the input image and the color constructed using the combination of proofer color components determined by the look-up table are substantially color matched.
- 37. An apparatus to proof an input image for output imaging with N colorants at a printing resolution RES1, the proofing on a proofer having M proofing color components at a proofing resolution RES2, at least one of the M proofer color components being different from any of the N printing colorants, the output imaging including screening, the method comprising:
input means to provide a screened image of N components at a resolution RES3 that represents the input image, the N components of the RES3 screened image substantially the same as the N colorant components of the output imaging, and the screening of the RES3 screened image having substantially the same properties as the screening of the output imaging; a color converter coupled to the input means to convert the RES3 N-component screened image to a contone image of resolution RES3 having M contone components; and a resolution converter coupled to the proofer and to the color converter to convert the RES3 M-component contone image to an M-component contone image at the proofing resolution RES2.
- 38. An apparatus as described in claim 37, wherein RES3 is the same as RES1, and wherein the input image is the RES3 N-component screened image.
- 39. An apparatus as described in claim 37, wherein the input image is a PDL file and wherein the means to provide the RES3 N-component screened image includes a RIP to RIP and screen the PDL file to form the RES3 N-component screened image, the screening substantially matching the screening of the output imaging.
- 38. An apparatus as described in claim 37, wherein the screens of the RES3 screened image have
screen rulings that differ by at most 5% from the screen rulings of the output imaging screening, screen angles that differ by at most 1% from the screen angles in the output imaging screening, and dot shapes that are substantially the same as the dot shapes in the output imaging screening.
- 40. An apparatus as described in claim 37, wherein the number of proofer color components M is smaller than the number of output imaging color components N.
- 41. An apparatus as described in claim 37, wherein the M proofer colorants are C, M, Y, and K.
- 42. An apparatus as described in claim 41, wherein the proofer includes an imagesetter for exposing films.
- 43. An apparatus as described in claim 37, wherein the M proofer colorants are R, G, and B and the proofer is a display screen.
- 44. An apparatus as described in claim 37, wherein the intermediate resolution RES3 is less than 1000 dpi and the printer resolution RES1 is higher than 1000 dpi.
- 45. An apparatus as described in claim 37, wherein the intermediate resolution RES3 is the same as the printer resolution RES1.
- 46. An apparatus as described in claim 37, further comprising a memory coupled to the color converter and to the resolution converter, the memory capable of storing at least a number SCALE of lines of the M-component contone image, SCALE being the first integer greater or equal to the ratio RES3/RES2.
- 47. An apparatus as described in claim 37, wherein the image converting includes a look-up table to convert a set of N binary values to a set of M contone values.
- 48. An apparatus as described in claim 47, wherein the look-up table has 2N entries and M output values for each entry, and wherein the color converter includes:
a mechanism coupled to the look-up table to concatenate the set of N binary values of a pixel to form an N-bit binary number, and to index the look-up table using the N-bit binary number.
- 49. An apparatus as described in claim 47, wherein the color determined by the imaging process for any region of the input image and the color constructed using the combination of proofer color components determined by the look-up table are substantially color matched.
- 50. A method to proof an input image for output imaging with N colorants at a printing resolution RES1, the proofing using a film based proofing or printing process having M color components at a resolution RES2, at least one of the M proofer color components being different from any of the N final printing colorants, the output imaging including screening, the method comprising:
providing a screened image of N components at a resolution RES3 that represents the input image, the N components of the RES3 screened image substantially the same as the N colorant components of the output imaging, and the screening of the RES3 screened image having substantially the same properties as the screening of the output imaging; converting the RES3 N-component screened image to a contone image of resolution RES3 having M contone components; and converting the RES3 M-component contone image to an M-component contone image at the proofing resolution RES2.
RELATED U.S. APPLICATION
[0001] This application claims the benefit of Provisional Patent Application Ser. No. 60/188929, filed Mar. 8, 2000, entitled “PROOFING METHOD MATCHING COLOR AND HALFTONE SCREEN PROPERTIES” (Attorney/Agent Docket No. BARCO-018). Provisional Patent Application Ser. No. 60/188,929 is incorporated herein by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60188929 |
Mar 2000 |
US |