Claims
- 1. A digital laser imaging system for imaging film contained in a film receiving mechanism as a function of digital image values representative of an image, user commands, and film information that is characteristic of said film, comprising:image data input means for receiving said digital image values; user command means for receiving said user commands; film information input means for receiving said film information; laser scanning means, responsive to digital laser drive values, for scanning a laser beam to image said film; transfer function memory for storing data characteristic of a plurality of transfer functions, each transfer function representative of a relationship between expected imaged film densities and associated digital image values; film model memory for storing data characteristic of a plurality of film models, each film model representative of a relationship between expected imaged film densities and associated laser drive values; RAM for storing digital data; and a digital processor coupled to the image data input means, user command means, film information input means, laser scanning means, transfer function memory, film model memory and RAM, and including means for: accessing the transfer function memory as a function of said user commands to select the data representative of user-desired transfer functions; accessing the film model memory as a function of the film information to select data representative of the film models for film to be imaged; generating, and storing in the RAM, lookup tables of data characterizing relationships between the laser drive values and the digital image values as a function of the selected transfer functions and film models; and accessing laser drive values in the generated lookup tables as a function of the digital image values, and providing the accessed laser drive values to the laser scanning means to image the film.
- 2. The digital laser imaging system of claim 1 wherein:the transfer function memory stores the transfer functions as data characterizing a relationship between a range of expected transmittance values of an image and associated image values; the film model memory stores the film models as data characterizing a relationship between a range of expected transmittance values of an image and associated film exposure values; and the digital processor further includes means for: accessing the film model memory as a function of transmittance values to determine associated film exposure values; computing laser drive values as a function of the determined film exposure values; generating, and storing in RAM, index tables of data characterizing relationships between laser drive values and corresponding transmittance values; and generating the lookup tables by accessing the index tables as a function of desired transmittance values from selected transfer functions to create lookup tables of data characterizing relationships between the laser drive values and the image input values.
- 3. The digital laser imaging system of claim 2 wherein the transfer function memory and the film model memory each store the data representative of film transmittance values in a form representative of human brightness response.
- 4. The digital laser imaging system of claim 3 wherein the transfer function memory and the film model memory each store the data representative of film transmittance values in the form of cubic roots of the film transmittance values.
- 5. The digital laser imaging system of claim 2 wherein the film model memory stores the film exposure values in the form of logarithms of the exposure values.
- 6. The digital laser imaging system of claim 1 and further comprising:a film processor for developing the imaged film; a densitometer for providing information representative of the density of portions of the developed film; test wedge memory for storing test wedge data that is characteristic of test wedges, the test wedge data being representative of a range of laser drive values associated with expected film density values characterized by the film models; and wherein the digital processor is coupled to the film processor, densitometer and test wedge memory, and further comprises test wedge calibration means having: test wedge print initiation means for accessing the test wedge memory and initiating the imaging of test wedges on film as a function of the laser drive values; test wedge processing means for causing the test wedges on the imaged film to be developed, and for causing the densitometer to provide information representative of actual densities of the developed test wedges; wedge comparison means for comparing the actual densities of the test wedges to the associated expected film density values; and film model modification means for modifying the film model data as a function of the comparison so the film model corresponds to the actual character.
- 7. The digital laser imaging system of claim 6 and further comprising operator-responsive calibration request input means coupled to the digital processor for actuating the test wedge calibration means.
- 8. The digital laser imaging system of claim 6 wherein the digital processor further comprises means for actuating the test wedge calibration means when a new lot of film has been loaded into the film receiving mechanism.
- 9. The digital laser imaging system of claim 6 wherein the digital processor further comprises means for actuating the test wedge calibration means when an elapsed period of time since a most recently imaged film exceeds a predetermined period of time.
- 10. The digital laser imaging system of claim 6 wherein:the laser scanning means further comprises an attenuator for adjusting the intensity of the scanned laser beam in response to attenuator control signals; the digital laser imaging system further comprises density patch memory for storing data characteristic of a density patch, the density patch data representative of a digital laser drive value associated with an expected predetermined imaged and developed film density; and the digital processor is coupled to the attenuator and density patch memory and further comprises density patch calibration means having: density patch calibration initiation means for accessing the density patch memory and initiating the imaging of a density patch on each film as a function of the laser drive data; density patch processing means for causing the density patch on the imaged film to be developed by the film processor, and for causing the densitometer to provide information representative of the actual density of the developed patch; patch comparison means for comparing the actual density of the patch to the associated expected film density value; and attenuator control means for generating attenuator control signals as a function of the patch comparison.
- 11. The digital laser imaging system of claim 10 wherein the digital processor further includes means for actuating the test wedge calibration means as a function of the comparison.
- 12. The digital laser imaging system of claim 1 wherein:the film receiving mechanism comprises a mechanism for receiving cartridges of film bearing the film information in machine readable form; and the film information input means comprises a reading mechanism for reading the film information on the cartridge.
- 13. The digital laser imaging system of claim 12 wherein:the film receiving mechanism further comprises a mechanism for receiving cartridges of film bearing bar coded film information; and the film information input means further comprises a bar code reader.
- 14. The digital laser imaging system of claim 12 wherein:the film information input means is configured to receive information representative of film type; and the digital processor accesses the film model memory and selects film models as a function of the film type information.
- 15. The digital laser imaging system of claim 1 wherein:the transfer function memory comprises memory for storing data characteristic of transfer functions representing a plurality of image contrasts; the user command means is configured to receive user commands representative of a desired image contrast; and the digital processor accesses the transfer function memory and selects transfer functions as a function of the desired image contrast information.
- 16. The digital laser imaging system of claim 1 wherein:the transfer function memory comprises means for storing the transfer functions in the form of data representative of ranges of film transmittance values as a function of associated image input values; and the digital processor further comprises means for generating, and storing in RAM, user-customized transfer functions as a linear transformation of the accessed transfer functions and as a function of user commands received at the user command means.
- 17. The digital laser imaging system of claim 16 wherein:the user command means is configured to receive user commands representative of desired maximum image densities; and the digital processor further comprises means for generating, and storing in RAM, user-customized transfer functions as a linear transformation of the accessed transfer functions, and as a function of the user commands representative of desired maximum image densities.
- 18. The digital laser imaging system of claim 1 wherein the system further comprises a plurality of input modules and wherein the transfer function memory is associated with the input modules, wherein each input module is configured to provide access to the system by an associated user, and the transfer function memory associated with the input module includes memory for storing a plurality of user-specific transfer functions used by the associated user.
- 19. The digital laser imaging system of claim 18 wherein the film model memory is associated with the input modules, and wherein the film model memory associated with each input module includes memory for storing a plurality of film models used by the associated user.
- 20. A digital laser imaging system for imaging film as a function of digital image values representative of an image, user commands, and film information that is characteristic of said film, comprising:image data input means for receiving said digital image values; user command means for receiving said user commands; film receiving means for receiving cartridges of said film bearing the film information in machine readable form; film information reading means for reading the film information from cartridges loaded into the film receiving means; laser scanning means, responsive to digital laser drive values, for scanning a laser beam to image said film; a film processor for developing imaged film; a densitometer for providing information representative of the density of portions of the developed film; transfer function memory for storing data characteristic of a plurality of transfer functions, each transfer function representative of a relationship between expected imaged film densities and associated digital image values; film model memory for storing data characteristic of a plurality of film models, each film model representative of a relationship between expected imaged film densities for a particular type of film and associated laser drive values; test wedge memory for storing test wedge data that is characteristic of test wedges, the test wedge data being representative of a range of laser drive values associated with expected film density values characterized by the film models; RAM for storing digital data; and a digital processor including means for: accessing the transfer function memory as a function of said user commands to select user-desired transfer functions; accessing said film model memory as a function of film information read from cartridges to select film models for film to be imaged; accessing said test wedge memory and initiating the imaging of test wedges on film; causing test wedges on the imaged film to be developed by said film processor; causing said densitometer to provide information representative of the actual density of the developed test wedges; comparing the actual densities of the test wedges to the associated expected film density values; modifying data in said film model memory as a function of the comparison so the film model corresponds to the actual characteristics of the film; generating, and storing in the RAM, lookup tables of data characterizing relationships between the laser drive values and the digital image values as a function of the selected transfer functions and film models; and accessing laser drive values in the generated lookup tables as a function of the image values, and providing the accessed laser drive values to the laser scanning means to image the film.
- 21. The digital laser imaging system of claim 20 and further comprising operator-responsive calibration request input means coupled to the digital processor for initiating the imaging and processing of the test wedge.
- 22. The digital laser imaging system of claim 20 wherein the digital processor further comprises means for initiating the imaging and processing of a test wedge when film information read from the cartridge indicates that a cartridge containing a new lot of film has been loaded into the film receiving means.
- 23. The digital laser imaging system of claim 20 wherein the digital processor further includes means for initiating the imaging and processing of a test wedge when an elapsed period of time since a most recently imaged film exceeds a predetermined period of time.
- 24. The digital laser imaging system of claim 20 wherein:the laser scanning means further comprises an attenuator for adjusting the intensity of the laser beam in response to attenuator control signals; the digital laser imaging system further comprises density patch memory for storing data characteristic of a density patch, the density patch data representative of the digital laser drive value associated with an expected predetermined imaged and developed film density; and the digital processor further comprises: density patch calibration initiation means for accessing the density patch memory and initiating the imaging of a density patch on each film as a function of the laser drive data; density patch processing means for causing the density patch on the imaged film to be developed by the film processor, and for causing the densitometer to provide information representative of the actual density of the developed patch; patch comparison means for comparing the actual density of the patch to the associated expected film density value; and attenuator control means for generating attenuator control signals as a function of the patch comparison.
- 25. The digital laser imaging system of claim 24 wherein the digital processor further includes means for initiating the imaging and processing of test wedges as a function of the comparison.
- 26. The digital laser imaging system of claim 20 wherein:the transfer function memory stores the transfer functions as data characterizing the relationship between a range of expected transmittance values of an image and associated image values; the film model memory stores the film models as data characterizing the relationship between a range of expected transmittance values of an image and associated film exposure values; and the digital processor further comprises means for: accessing the film model memory as a function of transmittance values to determine associated film exposure values; computing laser drive values as a function of the determined film exposure values; generating, and storing in RAM, index tables of data characterizing relationships between laser drive values and corresponding transmittance values; and generating the lookup tables by accessing the index tables as a function of desired transmittance values from selected transfer functions to create lookup tables of data characterizing relationships between the laser drive values and the image values.
- 27. The digital laser imaging system of claim 26 wherein the transfer function memory and the film model memory each store the data representative of film transmittance values in a form representative of human brightness response.
- 28. The digital laser imaging system of claim 27 wherein the transfer function memory and the film model memory each store data representative of film transmittance values in the form of the cubic roots of the film transmittance values.
- 29. The digital laser imaging system of claim 27 wherein the film model memory stores the film exposure values in the form of logarithms of the exposure values.
- 30. The digital laser imaging system of claim 20 wherein:the film receiving mechanism comprises a mechanism for receiving cartridges of film bearing bar coded film information; and the film information reading means comprises a bar code reader.
- 31. The digital laser imaging system of claim 20 wherein:the film information reading means is configured to receive information representative of film type; and the digital processor accesses the film model memory and selects film models as a function of the film type information.
- 32. The digital laser imaging system of claim 20 wherein:the transfer function memory stores data characteristic of transfer functions representing a plurality of image contrasts; the user command means is configured to receive user commands representative of a desired image contrast; and the digital processor accesses the transfer function memory and selects transfer functions as a function of the desired image contrast information.
- 33. The digital laser imaging system of claim 20 wherein:the transfer function memory stores the transfer functions in the form of data representative of ranges of film transmittance values as a function of associated image input values; and the digital processor further comprises means for generating, and storing in RAM, user-customized transfer functions as linear transformations of the accessed transfer functions and as a function of user commands received at the user command means.
- 34. The digital laser imaging system of claim 33 wherein:the user command means is configured to receive user commands representative of desired maximum image densities; and the digital processor further comprises means for generating and storing in RAM, user-customized transfer functions as a linear transformation of the accessed transfer functions and as a function of the user commands representative of desired maximum image densities.
- 35. The digital laser imaging system of claim 20 wherein the digital laser imaging system further comprises a plurality of input modules and wherein the transfer function memory is associated with the input modules, wherein each input module is configured to provide access to the digital laser imaging system by an associated user, and the transfer function memory associated with the input module includes memory for storing a plurality of user-specific transfer functions used by the associated user.
- 36. The digital laser imaging system of claim 35 wherein the film model memory is associated with the input modules, and wherein the film model memory associated with each input module includes memory for storing a plurality of film models used by the associated user.
- 37. The digital laser imaging system of claim 10 wherein:the patch comparison means compares the difference between the actual density of the patch and the expected film density value to two or more density difference ranges; and the attenuator control means generates the attenuator control signals as a function of the density difference range to which the difference corresponds.
- 38. The digital laser imaging system of claim 24 wherein:the patch comparison means compares the difference between the actual density of the patch and the expected film density value to two or more density difference ranges; and the attenuator control means generates the attenuator control signals as a function of the density difference range to which the difference corresponds.
- 39. A digital laser imaging system for imaging film as a function of digital image values representative of an image, comprising:image data input means for receiving said digital image values; film receiving means for receiving cartridges of film bearing film information in machine readable form; film information reading means for reading the film information from cartridges loaded into the film receiving means; laser scanning means, responsive to digital laser drive values, for scanning a laser beam to image said film; a film processor for developing imaged film; a densitometer for providing information representative of densities of portions of the developed film; lookup table memory for storing lookup table data, the lookup table data representative of the relationship between the laser drive values and the digital image values; density calibration memory for storing data representative of one or more laser drive values associated with expected film density values; and a digital processor coupled to the image data input means, film information reading means, laser scanning means, film processor, densitometer, lookup table memory and density calibration memory, and including means for: accessing the density calibration memory and initiating the printing of one or more density calibration patches on said film; causing the density calibration patches on the film to be developed by the film processor; causing the densitometer to provide information representative of the actual density of the density calibration patches; comparing the actual densities of the density calibration patches to the associated expected film density values; generating the lookup table data as a function of the film information read from the cartridges and the comparison between the actual and expected densities of the density calibration patches; and accessing laser drive values in the generated lookup tables as a function of the image values, and providing the accessed drive values to the laser scanning means to image the film.
- 40. The digital laser imaging system of claim 39 wherein:the film receiving means is configured to receive cartridges of film bearing film type information in machine readable form; and the digital processor means for generating the lookup table data generates the lookup table data as a function of the film type information read from the cartridges and the comparison between the actual and expected densities of the density calibration patches.
- 41. The digital laser imaging system of claim 39 wherein:the density calibration memory stores test wedge data that is characteristic of a plurality of test wedges, the test wedge data being representative of a range of laser drive values associated with expected film density values; the digital processor means for accessing the density calibration memory initiated the printing of the test wedges on the film; the digital processor means for comparing densities compares the actual densities of the test wedges to the associated expected film density values; and the digital processor means for generating the lookup table data generates the lookup table data as a function of the film information read from the cartridges and the comparison between the actual and expected densities of the test wedges.
- 42. The digital laser imaging system of claim 41 and further comprising operator-responsive calibration request input means coupled to the digital processor for causing the digital processor to access the density calibration memory, initiate the printing of the test wedges on the film, compare the densities of the test wedges to the expected film density values and generate the lookup table data.
- 43. The digital laser imaging system of claim 41 wherein the digital processor further comprises means for causing the digital processor to access the density calibration memory, initiate the printing of the test wedges on the film, compare the densities of the test wedges to the expected film density values and generate the lookup table of data when a new lot of film has been loaded into the film receiving mechanism.
- 44. The digital laser imaging system of claim 41 wherein the digital processor further comprises means for causing the digital processor to access the density calibration memory, initiate the printing of the test wedges on the film, compare the densities of the test wedges to the expected film density values and generate the lookup table data when an elapsed period of time since a most recently imaged film exceeds a predetermined period of time.
- 45. The digital laser imaging system of claim 39 wherein:the laser scanning means further comprises an attenuator for adjusting the intensity of the scanned laser beam in response to attenuator control signals; the digital laser imaging system further includes density patch memory for storing data characteristic of a density patch, the density patch data representative of a digital laser drive value associated with an expected predetermined imaged and developed film density; and the digital processor is coupled to the attenuator and density patch memory and further comprises density patch calibration means having: density patch calibration initiation means for accessing the density patch memory and initiating the imaging of a density patch on each film as a function of the laser drive data; density patch processing means for causing the density patch on the imaged film to be developed by the film processor, and for causing the densitometer to provide information representative of the actual density of the developed patch; patch comparison means for comparing the actual density of the patch to the associated expected film density value; and attenuator control means for generating attenuator control signals an a function of the patch comparison.
- 46. The digital laser imaging system of claim 45 wherein:the density calibration memory stores test wedge data that is characteristic of a plurality of test wedges, the test wedge data being representative of a range of laser drive values associates with expected film density values; the digital processor means for accessing the density calibration memory initiates the printing of the test wedges on the film; the digital processor means for comparing the actual densities of the density calibration patches to the associated expected film density values compares the actual densities of the test wedges to the associated expected film density values; the digital processor means for generating the lookup table data generates the lookup table data as a function of the film information read from the cartridges and the comparison between the actual and expected densities of the test wedges; and the digital processor accesses the density calibration memory, initiates the printing of the test wedges on the film, compares the densities of the test wedges to the expected film density values and generates the lookup table data as a function of the comparison between the actual and expected densities of the density patch.
- 47. An imaging system for imaging film having machine readable film information, comprising:a film receiving mechanism for receiving the film and reading the film information; an input module for receiving digital image values representative of an image; a scanning system responsive to laser drive values for scanning a laser beam to image the film; lookup table memory for storing at least one lookup table defining a relationship between the received digital image values and the laser drive values; and a processor for: generating laser drive values from the lookup table as a function of the received digital image values and the read film information, and providing the laser drive values to the scanning system to image the film.
- 48. The imaging system of claim 47, wherein in processor selects the lookup table from a plurality of stored lookup tables as a function of the read film information.
- 49. The imaging system of claim 47, wherein the processor generates the lookup table as a function of read film information.
- 50. The imaging system of claim 47 further comprising:transfer function memory for storing data characteristic of a plurality of transfer functions, each transfer function representative of a relationship between expected imaged film densities and associated digital image values; and film model memory for storing data characteristic of a plurality of film models, each film model representative of a relationship between expected imaged film densities and associated laser drive values, wherein the processor generates the lookup table as a function of the selected film model and at least one of the transfer functions.
- 51. The imaging system of claim 47, wherein the film information includes a film type.
- 52. The imaging system of claim 47, wherein the film information includes a film size.
- 53. The imaging system of claim 47, wherein the film is contained in a film container on which the film information is fixed.
- 54. The imaging system of claim 53, wherein the film container is a resealable film container.
- 55. The imaging system of claim 47, wherein the film information is present on a bar code label on a film container, and further wherein the film receiving mechanism includes a bar code scanner for reading the film information from the bar code label.
- 56. The imaging system of claim 47, wherein the imaging system is a medical imaging system.
- 57. An imaging system comprising:an input module for receiving digital image values representative of a scanned image; a scanning system responsive to drive values for scanning a laser beam to image film; memory for storing a lookup table defining a relationship between the received digital image values and the laser drive values; a densitometer for providing information representative of an optical density of the imaged film; test wedge memory for storing test wedge data representative of a range of laser drive values; and a processor for: initiating a calibration of the imaging systems by providing the range of laser drive values from the test wedge memory to the scanning system to image a test wedge on the film; controlling the densitometer to provide density information representative of actual densities of the imaged test wedges; and modifying the lookup table as a function of the provided density information.
- 58. The imaging system of claim 57 further comprising:a film receiving mechanism for receiving a container of film having machine readable information that is characteristic of the contained film, wherein the processor initiates the calibration of the imaging system according to the read film information and modifies the lookup table as a function of the provided density information.
- 59. The imaging system of claim 57 further comprising:a film receiving mechanism for receiving a container of film having machine readable information that is characteristic of the contained film; transfer function memory for storing data characteristic of a plurality of transfer functions, each transfer function representative of a relationship between expected imaged film densities and associated digital image values; and film model memory for storing data characteristic of a plurality of film models, each film model representative of a relationship between expected imaged film densities and associated laser drive values, wherein the processor modifies the lookup table by: selecting one of the film models based on the read film information, updating the film model according to the provided density information, and generating the lookup table as a function of the selected film model and at least one of the transfer functions.
- 60. The imaging system of claim 57 further comprising a film receiving mechanism for receiving a container of film having machine readable information that is characteristic of the contained film, wherein the processor selects the lookup table for modification from a plurality of stored lookup tables as a function of the machine readable information.
- 61. The imaging system of claim 57, wherein the imaging system is a medical imaging system.
- 62. A method for forming an image on film comprising the steps of:receiving film having machine readable film information therewith; reading the film information; receiving digital image values representative of a scanned image; generating laser drive values from a lookup table as a function of the received digital image values and the read film information, wherein the lookup table defines a relationship between the received digital image values and the laser drive values; and providing the laser drive values to a scanning system responsive to drive values for scanning a laser beam to image the film.
- 63. The method of claim 62, wherein the step of reading film information includes the step of reading a film type.
- 64. The method of claim 62, wherein the step of reading film information includes the step of reading a film size.
- 65. The method of claim 62, wherein the step of generating laser drive values comprises the step of generating the lookup table as function of the read film information.
- 66. The method of claim 62, wherein the step of generating laser drive values comprises the steps of:selecting a transfer function from a plurality of transfer functions representative of a relationship between expected imaged film densities and associated digital image values; selecting a film model from a plurality of film models based on the read film information, wherein the film model representative of a relationship between expected imaged film densities and associated laser drive values; and generating the lookup table as a function of the selected film model and the selected transfer function.
- 67. The method of claim 62, wherein the step of generating laser drive values includes the step of selecting the lookup table from a plurality of lookup tables based on the read film information.
- 68. The method of claim 62, wherein the reading step comprises the step of reading the film information from a film container on which the film information is affixed.
- 69. The method of claim 62, wherein the imaging system is a medical imaging system.
- 70. A method for automatically calibrating an imaging system having an input module for receiving digital image values representative of a scanned image and a laser system for imaging the film in response to laser drive values, the method comprising the steps of:automatically initiating a calibration of the imaging system based on a detected change in an imaging parameter; accessing test wedge data representative of a range of laser drive values; providing the range of laser drive values to the laser scanning system to image a test wedge on the film; controlling a densitometer to provide density information representative of actual densities of the imaged test wedge; and modifying a lookup table as a function of the provided density information, wherein the lookup table defines a relationship between the received digital image values and the laser drive values.
- 71. The method of claim 70, wherein the initiating step further comprises the steps of detecting a received container of film having machine readable information that is characteristic of the contained film and reading the machine readable film information, and further wherein the modifying step includes the step of selecting the lookup table to be modified from a plurality of stored lookup tables based on the machine readable information.
- 72. The method of claim 70, wherein the initiating step further comprises the steps of detecting a received container of film having machine readable information that is characteristic of the contained film and reading the machine readable film information, and further wherein the modifying step includes the step of modifying the lookup table as a function of the read film information and the provided density information.
- 73. The method of claim 70, wherein the modifying step further comprises the steps of:receiving a container of film having machine readable information that is characteristic of the contained film; reading the machine readable film information from the film container; selecting a transfer function from a plurality of transfer functions, wherein each transfer function is representative of a relationship between expected imaged film densities and associated digital image values; selecting a film model from a plurality of film models based on the read film information, wherein each model is representative of a relationship between expected imaged film densities and associated laser drive values; updating the selected film model according to the provided density information; and generating the lookup table as a function of the updated film model and the selected transfer function.
- 74. The method of claim 70, wherein the imaging system is a medical imaging system.
- 75. A method for imaging film with an imaging system having a scanning system responsive to drive values for scanning the film with a laser beam, the method comprising the steps of:receiving a container of film having information in machine readable form; reading the film information from film container; receiving digital image values representative of a scanned image; accessing density calibration data representative of one or more laser drive values associated with expected film density values; providing the density calibration data to the scanning system to form a density calibration patch on the film; controlling a densitometer to provide density information representative of actual densities of the density calibration patch; modifying a lookup table as a function of the provided density information and the read film information, wherein each lookup table defines a relationship between the received digital image values and the laser drive values; generating laser drive values from the modified lookup table based on the received digital image values; and providing the laser drive values to the scanning system to form an image on the film.
- 76. The method of claim 75, wherein the modifying step further comprises the steps of:comparing the provided density information to the associated expected film density values; and modifying the lookup table as a function of the film information read from the cartridges and the comparison between the provided density information and the expected densities of the density calibration patches.
- 77. The method of claim 75, wherein the modifying step further comprising the step of selecting the lookup table to be modified from a plurality of stored lookup tables based on the machine readable information.
- 78. The method of claim 75, wherein the modifying step further comprises the steps of:selecting a transfer function from a plurality of transfer functions, wherein each transfer function is representative of a relationship between expected imaged film densities and associated digital image values; selecting a film model from a plurality of film models based on the read film information, wherein each film model is representative of a relationship between expected imaged film densities and associated laser drive values; comparing the provided density information to the associated expected film density values; updating the selected film model according to the comparison between the provided density information and the expected densities of the density calibration patches; and generating the lookup table as a function of the updated film model and the selected transfer function.
- 79. The method of claim 75, wherein the imaging system is a medical imaging system.
- 80. An imaging system for imaging film having machine readable film information, comprising:a film receiving mechanism for receiving the film and reading the film information; an input module for receiving input image values representative of an image; an output module responsive to output image values for imaging the film; lookup table memory for storing at least one lookup table defining a relationship between the received input image values and the output image values; and a processor for: generating output image values from the lookup table as a function of the received input image values and the read film information, and providing the generated output image values to the output module to image the film.
- 81. An imaging system comprising:an input module for receiving input image values representative of an image; an output module responsive to output image values for imaging the film; memory for storing a lookup table defining a relationship between the received input image values and the output image values; a densitometer for providing information representative of an optical density of the imaged film; test wedge memory for storing test wedge data representative of a range of output image values; and a processor for: initiating a calibration of the imaging system by providing the range of output image values from the test wedge memory to the output module to image a test wedge on the film; controlling the densitometer to provide density information representative of actual densities of the imaged test wedges; and modifying the lookup table as a function of the provided density information.
- 82. A method for forming an image on film comprising the steps of:receiving film having machine readable film information therewith; reading the film information; receiving input image values representative of a scanned image; generating output image values from a lookup table as a function of the received input image values and the read film information, wherein the lookup table defines a relationship between the received input image values and the output image values; and providing the output image values to an output module responsive to output module responsive to output image values for imaging the film.
- 83. A method for automatically calibrating an imaging system having an input module for receiving input image values representative of an image and an output module for imaging the film in response to output image values, the method of comprising the steps of:detecting a change in an imaging parameter; accessing test wedge data representative of a range of output image values; providing the range of output image values to the output module to image a test wedge on the film; controlling a densitometer to provide density information representative of actual densities of the imaged test wedge; and modifying a lookup table as a function of the provided density information and the detected change in the imaging parameter, wherein the lookup table defines a relationship between the received input image values and the output image values.
- 84. The method of claim 83, wherein the detecting step further includes the steps of detecting a received container of film having machine readable information that is characteristic of the contained film and reading the machine readable film information, and further wherein the modifying step includes the step of modifying the lookup table as a function of the read film information and the provided density information.
Parent Case Info
This is a Re-issue Application of U.S. Pat. No. 5,481,657, issued Jan. 2, 1996. This is a continuation of application Ser. No. 07/981,075 filed nov. 25, 1992, now abandoned.
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Non-Patent Literature Citations (1)
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H. W. Bodmann, “A Unified Relationship Between Brightness and Luminance”, CIE Proceedings, Kyoto Session 1979 (CIE Central Bureau, Paris 1980). |
Divisions (1)
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Continuations (1)
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07/981075 |
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Reissues (1)
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