WO1990004900A1 - Automatic reference control for image scanners - Google Patents

Automatic reference control for image scanners Download PDF

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Publication number
WO1990004900A1
WO1990004900A1 PCT/US1989/004802 US8904802W WO9004900A1 WO 1990004900 A1 WO1990004900 A1 WO 1990004900A1 US 8904802 W US8904802 W US 8904802W WO 9004900 A1 WO9004900 A1 WO 9004900A1
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WO
WIPO (PCT)
Prior art keywords
image
signal
image signals
measured value
gain
Prior art date
Application number
PCT/US1989/004802
Other languages
French (fr)
Inventor
Martin Potucek
Mark E. Stefanik
Original Assignee
Eastman Kodak Company
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Eastman Kodak Company filed Critical Eastman Kodak Company
Priority to EP89912601A priority Critical patent/EP0396708B1/en
Priority to DE68916011T priority patent/DE68916011T2/en
Publication of WO1990004900A1 publication Critical patent/WO1990004900A1/en

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Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N1/00Scanning, transmission or reproduction of documents or the like, e.g. facsimile transmission; Details thereof
    • H04N1/40Picture signal circuits
    • H04N1/401Compensating positionally unequal response of the pick-up or reproducing head
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N1/00Scanning, transmission or reproduction of documents or the like, e.g. facsimile transmission; Details thereof
    • H04N1/40Picture signal circuits
    • H04N1/407Control or modification of tonal gradation or of extreme levels, e.g. background level
    • H04N1/4076Control or modification of tonal gradation or of extreme levels, e.g. background level dependent on references outside the picture

Definitions

  • This invention relates to the shaping of image signals from a photosensitive scanning array to provide a desired output signal level. More particularly, the invention relates to calibration and control of system gain functions that provide shaping of the signals from the array.
  • CCDs charge coupled devices
  • Analog output signals produced by CCDs contain a D.C. component that is attributable to the inherent operating characteristics of the CCD and a video component that is attributable to the exposure of the CCD to light. it is necessary to amplify the desired video component to an optimized reference level.
  • U.S. Patent No. 4,408,231 describes a method of maximizing the usable video signal by periodically scanning a white reference strip and adjusting the system gain until the output signal covers the full range of values for an analog to digital converter.
  • the aforementioned techniques do not provide for adjustment of gain from one line to the next to compensate for such undesirable changes in the CCD outputs.
  • a system that does not provide automatic offset control will have a lesser dynamic range of operation of, say, 243 gray levels, or 13 less than the same system with automatic offset control provided. Disclosure of Invention
  • An object of the present invention is to provide improved means of controlling variations in the output of the CCDs over the full dynamic range of system operation between upper and lower limits that correspond to the limits of reflectivity, from white to black, that can be perceived by the human eye.
  • the present invention provides an image signal gain control device for scanning an original image and generating a series of image signals having a video component which is characteristic of the scanned image, with a reference region of known reflectivity, means for periodically scanning the reference region to generate a measured value signal, processing means for determining from the measured value signal a gain factor required to bring the image signals to a predetermined signal level, and gain correcting means for adjusting the level of succeeding image signals in accordance with said gain factor to provide image signals closer to said predetermined signal level.
  • the reference region is substantially white.
  • means are provided for generating a stored reference value signal having a value corresponding to the reflectivity of the reference region, and the processing means includes means for comparing the measured value signal to the reference value. Further, the measured value signal generating means includes means for averaging the values of a plurality of portions of said reference region.
  • the present invention provides an image signal gain control device for scanning an original image and generating succession of crosstrack line scans comprising a series of image signals having a video component which is characteristic of the scanned image,- in which- the control device includes a reference region of known reflectivity; means for periodically scanning the reference region at least once each crosstrack line scan to generate a measured value signal; processing means for determining from the measured value signal a gain factor required to bring the remaining image signals of the associated crosstrack scan line to a predetermined signal level; and gain correcting means for adjusting the level of succeeding image signals in accordance with said gain factor to provide image signals closer to said predetermined signal level.
  • the present invention provides an image signal gain control device for scanning an original image and generating a series of image signals having a video component which is characteristic of the scanned image and a D.C. offset component, in which the control device includes means for a modifying the image signals to correct for the D.C. offset component; a reference region of known reflectivity; means for periodically scanning the reference region to generate a measured value signal; processing means for determining from the measured value signal a gain factor required to bring the image signals to a predetermined signal level; and gain correcting means for adjusting the level of succeeding image signals in accordance with the gain factor to provide image signals closer to said predetermined signal level.
  • the present invention provides an image signal gain control device having a linear array of photosensitive elements for scanning an original image and generating a succession of crosstrack line scans, each line scan producing a series of image signals having a characteristic related to the intensity of the image portion viewed by each element of the array.
  • the control device includes a reference region of known reflectivity positioned to be viewed by at least one of the elements of the array during each crosstrack line scan to generate a measured value signal; processing means for determining from the measured value signal a gain factor required to bring the image signals to a predetermined signal level; and gain correcting means for adjusting the level of succeeding image signals in accordance with the gain factor to provide image signals closer to the predetermined signal level.
  • Figure la is a schematic of a preferred embodiment of the present invention including an automatic reference control
  • Figure lb is a schematic of another preferred embodiment of the present invention including an automatic reference control
  • FIG. 2 is a more detailed schematic of an embodiment of the present invention including an automatic reference control
  • Figure 3 shows mathematical relationships that are applicable to the automatic reference control
  • Figure 4 is a logic flow chart for the embodiment of Figure la;
  • Figure 5 is a logic flow chart for the embodiment of Figure lb.
  • Figure 6 is a logic flow chart for the automatic reference control. Best Mode for Carrying Out the Invention
  • a light source 10 illuminates an original document on top of a platen surface 12. Light is reflected from the original document, through a lensing means 14 onto a charge coupled device (CCD) 16.
  • CCD charge coupled device
  • V(t) the voltage of a photo receptive element
  • K a proportionality constant
  • T a fixed time of exposure.
  • the CCD output voltage is linear to the reflectivity of the surface that the light is reflecting from.
  • the document is scanned in an intrack direction 18 to cause reflected light from different areas of the original to become focused on the CCD, which serves as an image system to convert the image of the original document to a series of electronic image signals 20.
  • CCD output signals 20 are analog with a D.C. offset component that is characteristic to the device, it is necessary to restore the output signals to a known D.C. level, from which the video signal is referenced.
  • an automatic offset control 22 described in detail in my commonly assigned, co-pending U.S. Patent Application entitled Automatic D.C. Offset Control for Image Scanners.
  • the output 24 of automatic offset control 22 is a D.C. restored signal which is input to an adjustable gain amplifier 26.
  • a white reference strip 28 having a known reflectivity, is scanned and produces a set of picture element signals from the CCD.
  • amplified signals 30, a control signal 32 from a CPU 34, and a reference value 36 from the CPU are received by an automatic reference control 38 for adjustment of the gain of amplifier 26.
  • Reference value 36 is a stored value which is expected from scanning white strip 28.
  • automatic reference control 38 a comparison is made between expected reference value 36 and measured value 30. If measured value 30 differs from expected value 36, a signal 40 is sent from automatic reference control 38 to amplifier 26 to adjust the amplifier gain, thereby closing the feedback loop of the system to compensate for system changes and to maintain the proper white level of the signal. After completion of signal shaping, the rest of the line is scanned.
  • FIG. 2 is a preferred embodiment of the system of Figure la which uses the properties of an analog to digital converter 26' as the adjustable gain amplifier 26 of Figure la.
  • CCD output restored signal 24' is input to analog to digital converter 26' which has a fixed upper reference voltage V and an adjustable lower reference voltage V_.
  • Parallel output signal 30' is input to conventional averaging circuitry 42, which is enabled by signal 44 from CPU 34' for a predetermined number, such as sixteen, consecutive pixels.
  • the average value of the measured pixel values is input to a magnitude comparator 46, which is also sent expected reference value 36'.
  • a counter 48 which is enabled and preloaded with a medium value by enable/preload signal 32', counts up to increase, or down to decrease the final gain.
  • the output value from counter 48 is input to a current digital to analog converter 50.
  • Analog current output from digital to analog converter 50 is converted to lower reference voltage V- by a circuitry 52 as the means for changing the gain of converter 26* .
  • Figure 4 is a flow chart that defines the overall system concept of the invention for the case where the intrack reference strip is located on the rear portion of the platen surface as viewed in
  • Figure la From start, in block 56, the scanner is positioned and begins scanning the next line, which in the initial case is the first line of the calibration procedure.
  • the CPU samples the output from dark reference cells of the CCD. From the sampled outputs, the voltage is generated that is used as an initial D.C. restoration level signal that is subtracted, by automatic offset control 22 ( Figure 2), from CCD output signal 20.
  • the algorithm moves to block 60, wherein the scan of the current line is completed, up to the point of scanning reference strip 28.
  • automatic reference control 38 performs its function to modify the gain of amplifier 26 based upon the aforementioned measured and expected values.
  • decisional block 64 wherein it is determined if the last line has been scanned. If so, the algorithm moves into and remains at a decisional block 66 while awaiting a command to start a new scan.
  • the algorithm moves to block 56 for positioning, to block 58 for dark cell readings, to block 60 for scanning, to block 62 to set the amplifier gain, and into decisional block 64. If there are more lines to scan, the algorithm moves to block 68 for advancing the scan line before beginning the normal scan sequence blocks 56, 58, 60, 62, 64, and 68 until the last scan line is completed.
  • Figure 5 is a flow chart of a second embodiment shown in Figure lb that defines the overall system concept of the invention for the case where the intrack reference strip is located on the front portion of the platen surface.
  • This algorithm consists of all of the blocks from the algorithm of Figure 4, arranged in different order.
  • the normal scan sequence is: 56', 58', 62', 60', 64', 68'.
  • Figure 6 is a logic flow chart of the automatic reference control functional concept.
  • the algorithm enters block 70 whereat hardware for averaging the values of a predetermined number of pixels is enabled at such a time as the scanned pixels correspond to white intrack reference strip 28 of Figure la.
  • the algorithm moves to block 72 for scanning the pixels.
  • the CPU sends a reference value, representing the value that is expected from scanning the reference strip, to a comparator.
  • a magnitude comparator compares the measured value of the scan to the expected value from the CPU.
  • a counter is clocked either up or down, from a preloaded middle value, such as for example, one hundred twenty-eight (128) in the case of an eight-bit data buss.
  • the latched output from the counter which is input to a digital to analog converter whose output sets a reference voltage on an analog to digital converter, changes and fixes the gain of the CCD output signal. This completes the automatic reference control adjustment for the present scan line.

Abstract

A system for calibration and closed loop feedback control of image signals from charge coupled imaging devices. During periodic iterative calibration, sampling the output of dark reference cells on a CCD (16) nets an initial D.C. restoration voltage (black) level. A white reference strip (28) is scanned and the system gain (26) is adjusted. The process continues until the scanned values equal the expected values, whereat the calibration process is concluded and the offset value becomes fixed for subsequent scanning. During each scan line of regular scanning, black and white signal levels are adjusted to provide full dynamic range of system operation. Dark cells are sampled and produce a voltage that is modified by the offset voltage, that was determined during calibration. The white reference strip is scanned and the system gain is adjusted.

Description

AUTOMATIC REFERENCE CONTROL FOR IMAGE SCANNERS Cross Reference to Related Applications Technical Field
This invention relates to the shaping of image signals from a photosensitive scanning array to provide a desired output signal level. More particularly, the invention relates to calibration and control of system gain functions that provide shaping of the signals from the array. Bac ground Art
Machines designed for printing document reproductions require a means for scanning an original document. Systems for scanning and reproducing image information employ devices such as charge coupled devices (CCDs). Analog output signals produced by CCDs contain a D.C. component that is attributable to the inherent operating characteristics of the CCD and a video component that is attributable to the exposure of the CCD to light. it is necessary to amplify the desired video component to an optimized reference level.
Operating characteristics, signal gain, and charge integration rates of CCDs may vary from one CCD to another, causing variable output. Further, the use of multichannel devices requires a means of balancing the outputs of the channels. Therefore, systems that employ CCDs require means for calibration and signal shaping in order for the systems to operate over an acceptable range of reflected densities. One technique for calibration and signal shaping is taught by U.S. Patent No. 4,216,503 entitled, "Signal Restoration and Gain Control for Image Viewing Devices". The average value of the output of CCD cells that have been charged to a potential voltage corresponding to a predetermined white level is used with the average value of scanned values from the output of dark cells to provide a system gain function that is used to amplify the CCD output signal. After determination of the gain function, the CCD output signal, for the subsequent scan, is open loop modified by the function.
U.S. Patent No. 4,408,231 describes a method of maximizing the usable video signal by periodically scanning a white reference strip and adjusting the system gain until the output signal covers the full range of values for an analog to digital converter.
During the dynamic process of scanning, any variations in illumination intensity due to fluctuations in input power, contamination, or drifts in electronics due to thermal fluctuations, or degrading components such as .E.D.'s or capacitors, can cause undesirable changes in the analog output of a CCD. The aforementioned techniques do not provide for adjustment of gain from one line to the next to compensate for such undesirable changes in the CCD outputs. Nor do they provide optimization of the dark level of the output signal which would increase the dynamic range of operation of the overall systems. For example, an eight-bit system has 256 possible discrete gray levels. A system that does not provide automatic offset control will have a lesser dynamic range of operation of, say, 243 gray levels, or 13 less than the same system with automatic offset control provided. Disclosure of Invention
An object of the present invention is to provide improved means of controlling variations in the output of the CCDs over the full dynamic range of system operation between upper and lower limits that correspond to the limits of reflectivity, from white to black, that can be perceived by the human eye.
Another object of the present invention is to provide control of variations due to changes in illumination intensity and drifts in electronics. According to these and other objects, the present invention provides an image signal gain control device for scanning an original image and generating a series of image signals having a video component which is characteristic of the scanned image, with a reference region of known reflectivity, means for periodically scanning the reference region to generate a measured value signal, processing means for determining from the measured value signal a gain factor required to bring the image signals to a predetermined signal level, and gain correcting means for adjusting the level of succeeding image signals in accordance with said gain factor to provide image signals closer to said predetermined signal level. In a preferred embodiment of the present invention, the reference region is substantially white. Also, means are provided for generating a stored reference value signal having a value corresponding to the reflectivity of the reference region, and the processing means includes means for comparing the measured value signal to the reference value. Further, the measured value signal generating means includes means for averaging the values of a plurality of portions of said reference region. In another form, the present invention provides an image signal gain control device for scanning an original image and generating succession of crosstrack line scans comprising a series of image signals having a video component which is characteristic of the scanned image,- in which- the control device includes a reference region of known reflectivity; means for periodically scanning the reference region at least once each crosstrack line scan to generate a measured value signal; processing means for determining from the measured value signal a gain factor required to bring the remaining image signals of the associated crosstrack scan line to a predetermined signal level; and gain correcting means for adjusting the level of succeeding image signals in accordance with said gain factor to provide image signals closer to said predetermined signal level.
In still another form, the present invention provides an image signal gain control device for scanning an original image and generating a series of image signals having a video component which is characteristic of the scanned image and a D.C. offset component, in which the control device includes means for a modifying the image signals to correct for the D.C. offset component; a reference region of known reflectivity; means for periodically scanning the reference region to generate a measured value signal; processing means for determining from the measured value signal a gain factor required to bring the image signals to a predetermined signal level; and gain correcting means for adjusting the level of succeeding image signals in accordance with the gain factor to provide image signals closer to said predetermined signal level.
In yet another form, the present invention provides an image signal gain control device having a linear array of photosensitive elements for scanning an original image and generating a succession of crosstrack line scans, each line scan producing a series of image signals having a characteristic related to the intensity of the image portion viewed by each element of the array. The control device includes a reference region of known reflectivity positioned to be viewed by at least one of the elements of the array during each crosstrack line scan to generate a measured value signal; processing means for determining from the measured value signal a gain factor required to bring the image signals to a predetermined signal level; and gain correcting means for adjusting the level of succeeding image signals in accordance with the gain factor to provide image signals closer to the predetermined signal level.
Brief Description of Drawings
The subsequent description of the preferred embodiments of the present invention refers to the attached drawings, wherein: Figure la is a schematic of a preferred embodiment of the present invention including an automatic reference control;
Figure lb is a schematic of another preferred embodiment of the present invention including an automatic reference control;
Figure 2 is a more detailed schematic of an embodiment of the present invention including an automatic reference control;
Figure 3 shows mathematical relationships that are applicable to the automatic reference control;
Figure 4 is a logic flow chart for the embodiment of Figure la;
Figure 5 is a logic flow chart for the embodiment of Figure lb; and
Figure 6 is a logic flow chart for the automatic reference control. Best Mode for Carrying Out the Invention
In the scanning device of Figure la, a light source 10 illuminates an original document on top of a platen surface 12. Light is reflected from the original document, through a lensing means 14 onto a charge coupled device (CCD) 16.
The analog output voltage MV(t)" of a CCD that is exposed to light intensity "I" for a fixed interval of time "T" is linear to the intensity of the light to which the CCD is exposed, as expressed by the following equation:
V(t) - KITt where:
V(t) = the voltage of a photo receptive element; K = a proportionality constant;
I - the light intensity at the photo receptive surface; t = time; and
T = a fixed time of exposure. In the case where the light that exposes the
CCD is reflected, the CCD output voltage is linear to the reflectivity of the surface that the light is reflecting from.
The document is scanned in an intrack direction 18 to cause reflected light from different areas of the original to become focused on the CCD, which serves as an image system to convert the image of the original document to a series of electronic image signals 20. Since CCD output signals 20 are analog with a D.C. offset component that is characteristic to the device, it is necessary to restore the output signals to a known D.C. level, from which the video signal is referenced. During each scan line "dark reference cells" on the CCD are sampled and the voltage from the sampling is subtracted from signal 20 by an automatic offset control 22 described in detail in my commonly assigned, co-pending U.S. Patent Application entitled Automatic D.C. Offset Control for Image Scanners. The output 24 of automatic offset control 22 is a D.C. restored signal which is input to an adjustable gain amplifier 26.
At the start of each scan line, a white reference strip 28, having a known reflectivity, is scanned and produces a set of picture element signals from the CCD. During scanning of white intrack reference strip 28, amplified signals 30, a control signal 32 from a CPU 34, and a reference value 36 from the CPU are received by an automatic reference control 38 for adjustment of the gain of amplifier 26. Reference value 36 is a stored value which is expected from scanning white strip 28.
Within automatic reference control 38, a comparison is made between expected reference value 36 and measured value 30. If measured value 30 differs from expected value 36, a signal 40 is sent from automatic reference control 38 to amplifier 26 to adjust the amplifier gain, thereby closing the feedback loop of the system to compensate for system changes and to maintain the proper white level of the signal. After completion of signal shaping, the rest of the line is scanned.
Figure 2 is a preferred embodiment of the system of Figure la which uses the properties of an analog to digital converter 26' as the adjustable gain amplifier 26 of Figure la. CCD output restored signal 24' is input to analog to digital converter 26' which has a fixed upper reference voltage V and an adjustable lower reference voltage V_. Parallel output signal 30' is input to conventional averaging circuitry 42, which is enabled by signal 44 from CPU 34' for a predetermined number, such as sixteen, consecutive pixels. The average value of the measured pixel values is input to a magnitude comparator 46, which is also sent expected reference value 36'. A counter 48, which is enabled and preloaded with a medium value by enable/preload signal 32', counts up to increase, or down to decrease the final gain. The output value from counter 48 is input to a current digital to analog converter 50. Analog current output from digital to analog converter 50 is converted to lower reference voltage V- by a circuitry 52 as the means for changing the gain of converter 26* .
Changes in a decimal equivalent "D" of a binary coded output of analog to digital converter 26' are generally nonlinear to changes in applied reference voltages "V " and "V ". However, for fixed reference voltages, the decimal equivalent of a flash analog to digital converter output is linear to changes in an input voltage "V ". For further details, see the mathematical relationships given in Figure 3.
Figure 4 is a flow chart that defines the overall system concept of the invention for the case where the intrack reference strip is located on the rear portion of the platen surface as viewed in
Figure la. From start, in block 56, the scanner is positioned and begins scanning the next line, which in the initial case is the first line of the calibration procedure. During block 58 of the algorithm, the CPU samples the output from dark reference cells of the CCD. From the sampled outputs, the voltage is generated that is used as an initial D.C. restoration level signal that is subtracted, by automatic offset control 22 (Figure 2), from CCD output signal 20. The algorithm moves to block 60, wherein the scan of the current line is completed, up to the point of scanning reference strip 28. In block 62 of the algorithm, automatic reference control 38 performs its function to modify the gain of amplifier 26 based upon the aforementioned measured and expected values.
The algorithm moves to decisional block 64 wherein it is determined if the last line has been scanned. If so, the algorithm moves into and remains at a decisional block 66 while awaiting a command to start a new scan. When the command to start scan is received, the algorithm moves to block 56 for positioning, to block 58 for dark cell readings, to block 60 for scanning, to block 62 to set the amplifier gain, and into decisional block 64. If there are more lines to scan, the algorithm moves to block 68 for advancing the scan line before beginning the normal scan sequence blocks 56, 58, 60, 62, 64, and 68 until the last scan line is completed. Figure 5 is a flow chart of a second embodiment shown in Figure lb that defines the overall system concept of the invention for the case where the intrack reference strip is located on the front portion of the platen surface. This algorithm consists of all of the blocks from the algorithm of Figure 4, arranged in different order. The normal scan sequence is: 56', 58', 62', 60', 64', 68'. Figure 6 is a logic flow chart of the automatic reference control functional concept. The algorithm enters block 70 whereat hardware for averaging the values of a predetermined number of pixels is enabled at such a time as the scanned pixels correspond to white intrack reference strip 28 of Figure la. The algorithm moves to block 72 for scanning the pixels. In block 74 the CPU sends a reference value, representing the value that is expected from scanning the reference strip, to a comparator. During block*76 a magnitude comparator compares the measured value of the scan to the expected value from the CPU. As the algorithm moves into blocks 78, 80, 82 and 84, a counter is clocked either up or down, from a preloaded middle value, such as for example, one hundred twenty-eight (128) in the case of an eight-bit data buss. When the algorithm goes into block 86, the latched output from the counter, which is input to a digital to analog converter whose output sets a reference voltage on an analog to digital converter, changes and fixes the gain of the CCD output signal. This completes the automatic reference control adjustment for the present scan line.

Claims

Claims
1. In an image signal gain control device for scanning an original image and generating a series of image signals having a video component which is characteristic of the scanned image, the improvement comprising: a reference region 28 of known reflectivity; means 16 for periodically scanning said reference region to generate a measured value signal; processing means 38 for determining from said measured value signal a gain factor required to bring the image signals to a predetermined signal level; and gain correcting means 26 for adjusting the level of succeeding image signals in accordance with said gain factor to provide image signals closer to said predetermined signal level.
2. The improvement of Claim 1 wherein said . reference region 28 is substantially white.
3. The improvement of Claim 1: further comprising means 34 for generating a stored reference value signal having a value corresponding to the reflectivity of said reference region, and wherein said processing means 38 includes means 46 for comparing said measured value signal to said reference value.
4. The improvement of Claim 1 wherein said measured value signal generating means includes means 42 for averaging the values of a plurality of portions of said reference region.
5. An image signal gain control device for scanning an original image and generating succession of crosstrack line scans comprising a series of image signals having a video component which is characteristic of the scanned image, said control device comprising: a reference region 28 of known reflectivity; means 16 for scanning said reference region during at least selected crosstrack line scans to generate a measured value signal; processing means 38 for determining from said measured value signal a gain factor required to bring the remaining image signals of the associated crosstrack scan line to a predetermined signal level; and gain correcting means 26 for adjusting the level of succeeding image signals in accordance with said gain factor to provide image signals closer to said predetermined signal level.
6. In an image signal gain control device for scanning an original image and generating a series of image signals having a video component which is characteristic of the scanned image and a D.C. offset component, the improvement comprising: means 22 for a modifying the image signals to correct for the D.C. offset component; a reference region 28 of known reflectivity; means 16 for periodically scanning said reference region to generate a measured value signal; processing means 38 for determining from said measured value signal a gain factor required to bring the image signals to a predetermined signal level; and gain correcting means 26 for adjusting the level of succeeding image signals in accordance with said gain factor to provide image signals closer to said predetermined signal level.
7. An image signal gain control device having a linear array of photosensitive elements for scanning an original image and generating a succession of crosstrack line scans, each line scan producing a series of image signals having a characteristic related to the intensity of the image portion viewed by each element of the array, said control device comprising: a reference region 28 of known reflectivity positioned to be viewed by at least one of the elements of the array during each crosstrack line scan to generate a measured value signal; processing means 38 for determining from said measured value signal a gain factor required to bring the image signals to a predetermined signal level; and gain correcting means 26 for adjusting the level of succeeding image signals in accordance with said gain factor to provide image signals closer to said predetermined signal level.
8. An image signal gain control device having an array of photosensitive elements for scanning an original image and generating a series of image signals in response thereto, each of said image signals having a potential proportional to the intensity of the image portion viewed by the associated elements, said control device comprising: means 26 for amplifying the image signals; a reference region 28 of known reflectivity positioned to be viewed by a portion of the photosensitive elements to generate a measured value signal; means 46 for comparing the measured value signal to a signal 36 having a predetermined expected value corresponding to the reflectivity of the reference region; and means 48, 50, 52 for adjusting the gain of said amplifying means in response to any difference between the measured value signal and the predetermined expected value signal
9. An image signal gain control device as defined in Claim 8 wherein said amplifier means 26 comprises an analog to digital converter with a fixed and an adjustable reference voltage.
10. An image signal gain control device as defined in Claim 9 wherein said gain adjusting means comprises means for changing the adjustable reference value depending on the sign of the comparison between the average measured value signal and the predetermined expected value signal.
11. An image signal gain control device as defined in Claim 8 wherein said comparing means comprise a counter 48 dockable up and down from a predetermined middle value depending on the sign of the comparison between the average measured value signal and the predetermined expected value signal.
12. An image signal gain control device having an array of photosensitive elements for scanning an original image and generating image signals in response thereto, said image signals each being comprised of an image potential proportional to the intensity of the image portion viewed by said elements, said control device comprising: means 26 for amplifying the image signals; a reference region 28 of known reflectivity which is viewed by a portion of the photosensitive elements to generate a measured value signal; means 42 for averaging the measured value signals of the photosensitive elements which view the reference region; means 46 for comparing the averaged measured value signals to a signal having a predetermined expected value corresponding to the reflectivity of the reference region; and means 48, 50, 52 for adjusting the gain of said amplifying means in response to any difference between the averaged measured value signals and the predetermined expected value signal
PCT/US1989/004802 1988-10-27 1989-10-25 Automatic reference control for image scanners WO1990004900A1 (en)

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Application Number Priority Date Filing Date Title
EP89912601A EP0396708B1 (en) 1988-10-27 1989-10-25 Automatic reference control for image scanners
DE68916011T DE68916011T2 (en) 1988-10-27 1989-10-25 AUTOMATIC REFERENCE CONTROL FOR IMAGE SCANTER.

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US07/263,461 US5267053A (en) 1988-10-27 1988-10-27 Automatic reference control for image scanners
US263,461 1988-10-27

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US5278674A (en) * 1990-01-25 1994-01-11 Hewlett-Packard Company Method and apparatus for providing illumination compensation in a document scanner
EP0581971A1 (en) * 1992-02-25 1994-02-09 Pfu Limited Image scanner
EP0585124A1 (en) * 1992-08-28 1994-03-02 Howtek, Inc. Calibrated color scanner
EP0591543A1 (en) * 1992-03-19 1994-04-13 Pfu Limited Image reader
EP0632644A2 (en) * 1993-07-01 1995-01-04 Xerox Corporation An apparatus and method for correcting offset and gain drift present during communication of data
EP0689340A3 (en) * 1994-06-22 1996-12-11 Sharp Kk Signal-processing circuit
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DE68916011T2 (en) 1995-01-05
EP0396708B1 (en) 1994-06-08
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DE68916011D1 (en) 1994-07-14
JPH03501916A (en) 1991-04-25
US5267053A (en) 1993-11-30

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