Apparatus and method for driving liquid crystal display device

Abstract
An apparatus for driving a liquid crystal display device is provided. The apparatus includes a converter for detecting a motion vector from externally input source data, converting one frame of an input original image of the input source data into at least two conversion frames, filtering images of the at least two conversion frames according to the motion vector, and generating modulated data; a gate driver for supplying a scan signal to the gate lines; and a data driver for converting the modulated data into an analog video signal and supplying the analog video signal to the data lines.
Description

BRIEF DESCRIPTION OF THE DRAWINGS

The accompanying drawings, which are included to provide a further understanding of the invention and are incorporated in and constitute a part of this application, illustrate embodiment(s) of the invention and together with the description serve to explain the principle of the invention. In the drawings:



FIG. 1 is a schematic view showing an apparatus for driving a liquid crystal display device of the related art.



FIG. 2 is a view showing the response speed and the brightness of a liquid crystal cell shown in FIG. 1.



FIG. 3 is a schematic block diagram showing a high-speed driving apparatus of the related art.



FIG. 4 is a view showing the response speed and the brightness of the liquid crystal cell in a case of using the high-speed driving apparatus shown in FIG. 3.



FIG. 5 is a schematic view showing an apparatus for driving a liquid crystal display device according to an embodiment of the present invention.



FIG. 6 is a schematic block diagram showing a data converter according to a first embodiment of the present invention shown in FIG. 5.



FIG. 7 is a schematic block diagram showing an image modulating unit according to first and second embodiments of the present invention shown in FIG. 6.



FIG. 8 is a schematic block diagram showing a motion detecting unit shown in FIG. 7.



FIG. 9 is a schematic block diagram showing a filter coefficient setting unit shown in FIG. 8.



FIG. 10 is a waveform diagram showing a frame control signal according to a first embodiment of the present invention.



FIGS. 11A and 11B are waveform diagrams showing a boundary between moving display images upon Gaussian filtering according to an embodiment of the present invention.



FIGS. 12A and 12B are waveform diagrams showing a boundary between moving display images upon sharpness filtering according to an embodiment of the present invention.



FIG. 13 is a schematic block diagram showing a motion filter unit according to first and second embodiments of the present invention shown in FIG. 6.



FIG. 14 is a view showing data modulated by the image modulating unit according to the first embodiment of the present invention.



FIG. 15 is a waveform diagram showing a frame control signal according to a second embodiment of the present invention.



FIG. 16 is a schematic block diagram showing a data converter according to a second embodiment of the present invention shown in FIG. 5.



FIG. 17 is a schematic block diagram showing an image modulating unit according to a third embodiment of the present invention shown in FIG. 16.



FIG. 18 is a schematic block diagram showing a motion detecting unit shown in FIG. 17.



FIG. 19 is a schematic block diagram showing a filter coefficient setting unit shown in FIG. 18.



FIGS. 20A to 20D are waveform diagrams showing boundaries between moving display images upon Gaussian and sharpness filtering according to an embodiment of the present invention.



FIG. 21 is a schematic block diagram showing a motion filter unit according to a third embodiment of the present invention shown in FIG. 17.



FIG. 22 is a view showing data modulated by an image modulating unit according to a third embodiment of the present invention.



FIG. 23 is a schematic block diagram showing a data converter according to a third embodiment of the present invention shown in FIG. 5.



FIG. 24 is a schematic block diagram showing a high-speed driving apparatus shown in FIG. 23.


Claims
  • 1. An apparatus for driving a liquid crystal display device including an image display unit including liquid crystal cells, a plurality of gate lines and a plurality of data lines, the apparatus comprising: a converter for detecting a motion vector from externally input source data, converting one frame of an input original image of the input source data into at least two conversion frames, filtering images of the at least two conversion frames according to the motion vector, and generating modulated data;a gate driver for supplying a scan signal to the gate lines; anda data driver for converting the modulated data into an analog video signal and supplying the analog video signal to the data lines.
  • 2. The apparatus according to claim 1, further comprising a timing controller for aligning the modulated data and supplying the aligned modulated data to the data driver, generating a data control signal to control the data driver, and generating a gate control signal to control the gate driver.
  • 3. The apparatus according to claim 1, wherein the converter comprises: a first gamma correcting unit for gamma-correcting the input source data in the one frame and generating first data;a brightness/color separating unit for dividing the first data into a brightness component and a color component;an image modulating unit for detecting the motion vector from the brightness component, converting the brightness component of the one frame into the at least two conversion frames, and filtering the images of the at least two conversion frames according to the motion vector, and generating modulated brightness component;a delay unit for delaying the color component while the image modulating unit generates the modulated brightness component;a mixing unit for mixing the modulated brightness component with the delayed color component and generating second data; anda second gamma correcting unit for gamma-correcting the second data supplied from the mixing unit and generating the modulated data.
  • 4. The apparatus according to claim 3, wherein the image modulating unit comprises: a memory unit for storing the brightness component in the one frame supplied from the brightness/color separating unit;a double frame converting unit for converting the brightness component of the input original image in the one frame supplied from the memory unit into first and second conversion frames corresponding to the input original image and sequentially outputting the first and second conversion frames;a motion detecting unit for setting a Gaussian filter coefficient and a sharpness filter coefficient according to a frame control signal using a brightness component of a previous frame and a brightness component of a current frame of the input original image supplied from the memory unit and detecting a motion size signal of a moving image;a motion filter unit for filtering the brightness components of the conversion frames according to the Gaussian filter coefficient and the sharpness filter coefficient; anda multiplying unit for multiplying the brightness components of the conversion frames filtered by the motion filter unit by the motion size signal and supplying the multiplied signal to the mixing unit.
  • 5. The apparatus according to claim 4, wherein the motion detecting unit comprises: a block motion detecting unit for comparing the brightness component of the previous frame with the brightness component of the current frame in an i×i block unit and detecting an X-axis displacement and a Y-axis displacement of a motion;a pixel gray detecting unit for comparing brightness components of pixels in the current frame, detecting a variation in gray level of a pixel unit to detect a boundary between moving display images, and generating a boundary gray level analysis signal corresponding to the variation in gray level of the boundary;a filter coefficient setting unit for setting the Gaussian filter coefficient and the sharpness filter coefficient according to the boundary gray level analysis signal using the X-axis displacement and the Y-axis displacement; anda motion size detecting unit for detecting the motion size signal using the X-axis displacement and the Y-axis displacement.
  • 6. The apparatus according to claim 5, wherein the pixel gray detecting unit generates the boundary gray level analysis signal having a high level when the gray level of the boundary is changed from a high gray level to a low gray level and generates the boundary gray level analysis signal having a low level when the gray level of the boundary is changed from the low gray level from the high gray level.
  • 7. The apparatus according to claim 6, wherein the filter coefficient setting unit comprises: a motion direction detecting unit for detecting a motion direction signal using the X-axis displacement and the Y-axis displacement;a selecting unit for selectively outputting the motion direction signal according to the frame control signal;a Gaussian filter coefficient setting unit for setting the Gaussian filter coefficient corresponding to the motion direction signal supplied from the selecting unit, according to the boundary gray level analysis signal; anda sharpness filter coefficient setting unit for setting the sharpness filter coefficient corresponding to the motion direction signal supplied from the selecting unit, according to the boundary gray level analysis signal.
  • 8. The apparatus according to claim 7, wherein the Gaussian filter coefficient setting unit sets the Gaussian filter coefficient for smoothly filtering a brightness component of at least one pixel immediately adjacent to the boundary between the moving display images in a direction corresponding to the motion direction signal according to the boundary gray level analysis signal.
  • 9. The apparatus according to claim 8, wherein the Gaussian filter coefficient setting unit sets the Gaussian filter coefficient such that brightness components of two pixels immediately before the boundary are smoothly filtered when the boundary gray level analysis signal has the high level, and sets the Gaussian filter coefficient such that a brightness component of one pixel immediately before the boundary is smoothly filtered when the boundary gray level analysis signal has the low level.
  • 10. The apparatus according to claim 7, wherein the sharpness filter coefficient setting unit sets the sharpness filter coefficient for sharply filtering a brightness component of at least one pixel immediately adjacent to the boundary between the moving display images in a direction corresponding to the motion direction signal according to the boundary gray analysis signal.
  • 11. The apparatus according to claim 10, wherein the sharpness filter coefficient setting unit sets the sharpness filter coefficient such that brightness components of two pixels immediately before the boundary are sharply filtered when the boundary gray analysis signal has the high level, and sets the sharpness filter coefficient such that a brightness component of one pixel immediately before the boundary is sharply filtered when the boundary gray level analysis signal has the low level.
  • 12. The apparatus according to claim 7, wherein the motion filter unit comprises: a selecting unit for selectively outputting the brightness components of the first and second conversion frames according to the frame control signal;a Gaussian filter for smoothly filtering the brightness component of the first conversion frame supplied from the selecting unit according to the Gaussian filter coefficient and supplying the filtered brightness component to the multiplying unit; anda sharpness filter for sharply filtering the brightness component of the second conversion frame supplied from the selecting unit according to the sharpness filter coefficient and supplying the filtered brightness component to the multiplying unit.
  • 13. The apparatus according to claim 6, wherein the filter coefficient setting unit comprises: a motion direction detecting unit for detecting a motion direction signal using the X-axis displacement and the Y-axis displacement;a Gaussian filter coefficient setting unit for setting the Gaussian filter coefficient to vary depending on the motion direction signal, according to the frame control signal and the boundary gray level analysis signal; anda sharpness filter coefficient setting unit for setting the sharpness filter coefficient to vary depending on the motion direction signal, according to the frame control signal and the boundary gray level analysis signal.
  • 14. The apparatus according to claim 13, wherein the Gaussian filter coefficient setting unit sets the Gaussian filter coefficient for smoothly filtering the brightness of at least one pixel immediately adjacent to a boundary between the moving display images in a direction corresponding to the motion direction signal to vary depending on the boundary gray level analysis signal, according to the frame control signal.
  • 15. The apparatus according to claim 14, wherein the Gaussian filter coefficient setting unit: sets the Gaussian filter coefficient such that brightness components of two pixels immediately before the boundary are smoothly filtered when the frame control signal has a high level and the boundary gray level analysis signal has the high level,sets the Gaussian filter coefficient such that a brightness component of one pixel before the boundary is smoothly filtered when the frame control signal has a low level and the boundary gray level analysis signal has the high level,sets the Gaussian filter coefficient such that a brightness component of one pixel immediately after the boundary is smoothly filtered when the frame control signal has the high level and the boundary gray level analysis signal has the low level, andsets the Gaussian filter coefficient such that brightness components of two pixels immediately after the boundary are smoothly filtered when the frame control signal has the low level and the boundary gray analysis signal has the low level.
  • 16. The apparatus according to claim 13, wherein the sharpness filter coefficient setting unit sets the sharpness filter coefficient for sharply filtering the brightness of at least one pixel immediately adjacent to a boundary between the moving display images in a direction corresponding to the motion direction signal to vary depending on the boundary gray level analysis signal, according to the frame control signal.
  • 17. The apparatus according to claim 16, wherein the sharpness filter coefficient setting unit: sets the sharpness filter coefficient such that a brightness component of one pixel immediately after the boundary is sharply filtered when the frame control signal has a high level and the boundary gray level analysis signal has the high level,sets the sharpness filter coefficient such that brightness components of two pixels immediately after the boundary are sharply filtered when the frame control signal has a low level and the boundary gray level analysis signal has the high level,sets the sharpness filter coefficient such that brightness components of two pixels immediately before the boundary are sharply filtered when the frame control signal has the high level and the boundary gray level analysis signal has the low level, andsets the sharpness filter coefficient such that a brightness component of one pixel immediately before the boundary is sharply filtered when the frame control signal has the low level and the boundary gray level analysis signal has the low level.
  • 18. The apparatus according to claim 13, wherein the motion filter unit comprises: a Gaussian filter for smoothly filtering the brightness components of the conversion frames according to the Gaussian filter coefficient; anda sharpness filter for sharply filtering the brightness components of the conversion frames filtered by the Gaussian filter according to the sharpness filter coefficient and supplying the filtered brightness components to the multiplying unit.
  • 19. The apparatus according to claim 1, wherein the converter comprises: a first gamma correcting unit for gamma-correcting the input source data in the one frame and generating first data;a brightness/color separating unit for dividing the first data into a brightness component and a color component;an image modulating unit for detecting the motion vector from the brightness component, converting the brightness component of the one frame into the at least two conversion frames, and filtering the images of the at least two conversion frames according to the motion vector, and generating modulated brightness component;a delay unit for delaying the color component while the image modulating unit generates the modulated brightness component;a mixing unit for mixing the modulated brightness component with the delayed color component and generating second data;a second gamma correcting unit for gamma-correcting the second data supplied from the mixing unit and generating third data; anda high-speed driving circuit for modulating the third data and generating the modulated data for increasing the response speed of the liquid crystal.
  • 20. The apparatus according to claim 19, wherein the image modulating unit comprises: a memory unit for storing the brightness component in the one frame supplied from the brightness/color separating unit;a double frame converting unit for converting the brightness component of the input original image in the one frame supplied from the memory unit into first and second conversion frames corresponding to the input original image and sequentially outputting the first and second conversion frames;a motion detecting unit for setting a Gaussian filter coefficient and a sharpness filter coefficient according to a frame control signal using a brightness component of a previous frame and a brightness component of a current frame of the input original image supplied from the memory unit and detecting a motion size signal of a moving image;a motion filter unit for filtering the brightness components of the conversion frames according to the Gaussian filter coefficient and the sharpness filter coefficient; anda multiplying unit for multiplying the brightness components of the conversion frames filtered by the motion filter unit by the motion size signal and supplying the multiplied signal to the mixing unit.
  • 21. The apparatus according to claim 20, wherein the motion detecting unit comprises: a block motion detecting unit for comparing the brightness component of the previous frame with the brightness component of the current frame in an i×i block unit and detecting an X-axis displacement and a Y-axis displacement of a motion;a pixel gray detecting unit for comparing brightness components of pixels in the current frame, detecting a variation in gray level of a pixel unit to detect a boundary between moving display images, and generating a boundary gray level analysis signal corresponding to the variation in gray level of the boundary;a filter coefficient setting unit for setting the Gaussian filter coefficient and the sharpness filter coefficient according to the boundary gray level analysis signal using the X-axis displacement and the Y-axis displacement; anda motion size detecting unit for detecting the motion size signal using the X-axis displacement and the Y-axis displacement.
  • 22. The apparatus according to claim 21, wherein the pixel gray detecting unit generates the boundary gray level analysis signal having a high level when the gray level of the boundary is changed from a high gray level to a low gray level and generates the boundary gray level analysis signal having a low level when the gray level of the boundary is changed from the low gray level from the high gray level.
  • 23. The apparatus according to claim 22, wherein the filter coefficient setting unit comprises: a motion direction detecting unit for detecting a motion direction signal using the X-axis displacement and the Y-axis displacement;a selecting unit for selectively outputting the motion direction signal according to the frame control signal;a Gaussian filter coefficient setting unit for setting the Gaussian filter coefficient corresponding to the motion direction signal supplied from the selecting unit, according to the boundary gray level analysis signal; anda sharpness filter coefficient setting unit for setting the sharpness filter coefficient corresponding to the motion direction signal supplied from the selecting unit, according to the boundary gray level analysis signal.
  • 24. The apparatus according to claim 22, wherein the filter coefficient setting unit comprises: a motion direction detecting unit for detecting a motion direction signal using the X-axis displacement and the Y-axis displacement;a Gaussian filter coefficient setting unit for setting the Gaussian filter coefficient to vary depending on the motion direction signal, according to the frame control signal and the boundary gray level analysis signal; anda sharpness filter coefficient setting unit for setting the sharpness filter coefficient to vary depending on the motion direction signal, according to the frame control signal and the boundary gray level analysis signal.
  • 25. The apparatus according to claim 19, wherein the high-speed driving circuit comprises: a frame memory for storing the third data supplied from the second gamma correcting unit; anda look-up table for generating the modulated data using the third data of a current frame supplied from the second gamma correcting unit and the third data of a previous frame from the frame memory.
  • 26. A method for driving a liquid crystal display device having an image display unit for displaying an image, the method comprising: detecting a motion vector from externally input source data, converting one frame of an input original image into at least two conversion frames, filtering images of the at least two conversion frames according to the motion vector, and generating modulated data;supplying a scan signal to the gate lines; andconverting the modulated data into an analog video signal in synchronization with the scan signal and supplying the analog video signal to the data lines.
  • 27. The method according to claim 26, wherein the detecting step comprises: gamma-correcting the input source data in the one frame unit and generating first data;dividing the first data into a brightness component and a color component;detecting the motion vector from the brightness component, converting the brightness component of the one frame into the at least two conversion frames, and filtering the images of the at least two conversion frames according to the motion vector, and generating modulated brightness component;delaying the color component while generating the modulated brightness component;mixing the modulated brightness component with the delayed color component and generating second data; andgamma-correcting the second data and generating the modulated data.
  • 28. The method according to claim 27, wherein the step of generating the modulated brightness component comprises: storing the divided brightness component in the one frame;converting the brightness component of an original image in the one frame into first and second conversion frames corresponding to the input original image and sequentially outputting the first and second conversion frames;setting a Gaussian filter coefficient and a sharpness filter coefficient according to a frame control signal using a brightness component of a previous frame and a brightness component of a current frame of the input original image and detecting a motion size signal of a moving image;filtering the brightness components of the conversion frames according to the Gaussian filter coefficient and the sharpness filter coefficient; andmultiplying the brightness components of the conversion frames filtered in the step of filtering the brightness components of the conversion frames by the motion size signal and generating the modulated brightness component.
  • 29. The method according to claim 28, wherein the step of detecting the motion size signal comprises: comparing the brightness component of the previous frame with the brightness component of the current frame in an i×i block unit and detecting an X-axis displacement and a Y-axis displacement of a motion;comparing brightness components of pixels in the current frame, detecting a variation in gray level of a pixel unit to detect a boundary between moving display images, and generating a boundary gray level analysis signal corresponding to the variation in gray level of the boundary;setting the Gaussian filter coefficient and the sharpness filter coefficient according to the boundary gray level analysis signal using the X-axis displacement and the Y-axis displacement; anddetecting the motion size signal using the X-axis displacement and the Y-axis displacement.
  • 30. The method according to claim 29, wherein the step of generating boundary gray level analysis signal comprises generating the boundary gray level analysis signal having a high level when the gray level of the boundary is changed from a high gray level to a low gray level and generating the boundary gray level analysis signal having a low level when the gray level of the boundary is changed from the low gray level from the high gray level.
  • 31. The method according to claim 30, wherein the step of setting the Gaussian filter coefficient and the sharpness filter coefficient comprises: detecting a motion direction signal using the X-axis displacement and the Y-axis displacement;selectively outputting the motion direction signal according to the frame control signal;setting the Gaussian filter coefficient which depends on the selected motion direction signal, according to the boundary gray level analysis signal; andsetting the sharpness filter coefficient which depends on the selected motion direction signal, according to the boundary gray level analysis signal.
  • 32. The method according to claim 31, wherein the step of setting the Gaussian filter coefficient comprises setting the Gaussian filter coefficient for smoothly filtering a brightness component of at least one pixel immediately adjacent to the boundary between the moving display images in a direction corresponding to the motion direction signal according to the boundary gray level analysis signal.
  • 33. The method according to claim 32, wherein the step of setting the Gaussian filter coefficient comprises setting the Gaussian filter coefficient such that brightness components of two pixels immediately before the boundary are smoothly filtered when the boundary gray level analysis signal has the high level, and setting the Gaussian filter coefficient such that a brightness component of one pixel immediately before the boundary is smoothly filtered when the boundary gray level analysis signal has the low level.
  • 34. The method according to claim 31, wherein the step of setting the sharpness filter coefficient comprises setting the sharpness filter coefficient for sharply filtering a brightness component of at least one pixel immediately adjacent to the boundary between the moving display images in a direction corresponding to the motion direction signal according to the boundary gray level analysis signal.
  • 35. The method according to claim 34, wherein the step of setting the sharpness filter coefficient comprises setting the sharpness filter coefficient such that brightness components of two pixels immediately before the boundary are sharply filtered when the boundary gray level analysis signal has the high level, and setting the sharpness filter coefficient such that a brightness component of one pixel immediately before the boundary is sharply filtered when the boundary gray level analysis signal has the low level.
  • 36. The method according to claim 31, wherein the step of filtering the brightness components of the conversion frames comprises: selectively outputting the brightness components of the first and second conversion frames according to the frame control signal;smoothly filtering the brightness component of the selected first conversion frame according to the Gaussian filter coefficient; andsharply filtering the brightness component of the selected second conversion frame according to the sharpness filter coefficient.
  • 37. The method according to claim 30, wherein the step of setting the Gaussian filter coefficient and the sharpness filter coefficient comprises: detecting a motion direction signal using the X-axis displacement and the Y-axis displacement;setting the Gaussian filter coefficient to vary depending on the motion direction signal, according to the frame control signal and the boundary gray level analysis signal; andsetting the sharpness filter coefficient to vary depending on the motion direction signal, according to the frame control signal and the boundary gray level analysis signal.
  • 38. The method according to claim 37, wherein the step of setting the Gaussian filter coefficient comprises setting the Gaussian filter coefficient for smoothly filtering the brightness of at least one pixel immediately adjacent to a boundary between the moving display images in a direction corresponding to the motion direction signal to vary depending on the boundary gray level analysis signal, according to the frame control signal.
  • 39. The method according to claim 38, wherein the step of setting the Gaussian filter coefficient comprises: setting the Gaussian filter coefficient such that brightness components of two pixels immediately before the boundary are smoothly filtered when the frame control signal has a high level and the boundary gray level analysis signal has the high level,setting the Gaussian filter coefficient such that a brightness component of one pixel immediately before the boundary is smoothly filtered when the frame control signal has a low level and the boundary gray level analysis signal has the high level,setting the Gaussian filter coefficient such that a brightness component of one pixel immediately after the boundary is smoothly filtered when the frame control signal has the high level and the boundary gray level analysis signal has the low level, andsetting the Gaussian filter coefficient such that brightness components of two pixels immediately after the boundary are smoothly filtered when the frame control signal has the low level and the boundary gray level analysis signal has the low level.
  • 40. The method according to claim 37, wherein the step of setting the sharpness filter coefficient comprises setting the sharpness filter coefficient for sharply filtering the brightness of at least one pixel immediately adjacent to a boundary between the moving display images in a direction corresponding to the motion direction signal to vary depending on the boundary gray level analysis signal, according to the frame control signal.
  • 41. The method according to claim 40, wherein the step of setting the sharpness filter coefficient comprises: setting the sharpness filter coefficient such that a brightness component of one pixel immediately after the boundary is sharply filtered when the frame control signal has a high level and the boundary gray level analysis signal has the high level,setting the sharpness filter coefficient such that brightness components of two pixels immediately after the boundary are sharply filtered when the frame control signal has a low level and the boundary gray level analysis signal has the high level,setting the sharpness filter coefficient such that brightness components of two pixels immediately before the boundary are sharply filtered when the frame control signal has the high level and the boundary gray level analysis signal has the low level, andsetting the sharpness filter coefficient such that a brightness component of one pixel immediately before the boundary is sharply filtered when the frame control signal has the low level and the boundary gray level analysis signal has the low level.
  • 42. The method according to claim 37, wherein the step of filtering the brightness components of the conversion frames comprises: smoothly filtering the brightness components of the conversion frames according to the Gaussian filter coefficient; andsharply filtering the brightness components of the conversion frames filtered in the step of smoothly filtering the brightness components, according to the sharpness filter coefficient.
  • 43. The method according to claim 35, wherein the detecting step comprises: gamma-correcting the input source data in the one frame unit and generating first data;dividing the first data into a brightness component and a color component;detecting the motion vector from the brightness component, converting the brightness component of the one frame into the at least two conversion frames, and filtering the images of the at least two conversion frames according to the motion vector, and generating modulated brightness component;delaying the color component while generating the modulated brightness component;mixing the modulated brightness component with the delayed color component and generating second data;gamma-correcting the second data and generating third data; andmodulating the third data and generating the modulated data for increasing the response speed of the liquid crystal.
  • 44. The method according to claim 43, wherein the step of generating the modulated brightness component comprises: storing the divided brightness component in the one frame;converting the brightness component of an original image in the one frame into first and second conversion frames corresponding to the input original image and sequentially outputting the first and second conversion frames;setting a Gaussian filter coefficient and a sharpness filter coefficient according to a frame control signal using a brightness component of a previous frame and a brightness component of a current frame of the input original image and detecting a motion size signal of a moving image;filtering the brightness components of the conversion frames according to the Gaussian filter coefficient and the sharpness filter coefficient; andmultiplying the brightness components of the conversion frames filtered in the step of filtering the brightness components of the conversion frames by the motion size signal and generating the modulated brightness component.
  • 45. The method according to claim 44, wherein the step of detecting the motion size signal comprises: comparing the brightness component of the previous frame with the brightness component of the current frame in an i×i block unit and detecting an X-axis displacement and a Y-axis displacement of a motion;comparing brightness components of pixels in the current frame, detecting a variation in gray level of a pixel unit to detect a boundary between moving display images, and generating a boundary gray level analysis signal corresponding to the variation in gray level of the boundary;setting the Gaussian filter coefficient and the sharpness filter coefficient according to the boundary gray level analysis signal using the X-axis displacement and the Y-axis displacement; anddetecting the motion size signal using the X-axis displacement and the Y-axis displacement.
  • 46. The method according to claim 45, wherein the step of generating boundary gray level analysis signal comprises generating the boundary gray level analysis signal having a high level when the gray level of the boundary is changed from a high gray level to a low gray level and generating the boundary gray level analysis signal having a low level when the gray level of the boundary is changed from the low gray level from the high gray level.
  • 47. The method according to claim 46, wherein the step of setting the Gaussian filter coefficient and the sharpness filter coefficient comprises: detecting a motion direction signal using the X-axis displacement and the Y-axis displacement;selectively outputting the motion direction signal according to the frame control signal;setting the Gaussian filter coefficient which depends on the selected motion direction signal, according to the boundary gray level analysis signal; andsetting the sharpness filter coefficient which depends on the selected motion direction signal, according to the boundary gray level analysis signal.
  • 48. The method according to claim 46, wherein the step of setting the Gaussian filter coefficient and the sharpness filter coefficient comprises: detecting a motion direction signal using the X-axis displacement and the Y-axis displacement;setting the Gaussian filter coefficient to vary depending on the motion direction signal, according to the frame control signal and the boundary gray level analysis signal; andsetting the sharpness filter coefficient to vary depending on the motion direction signal, according to the frame control signal and the boundary gray level analysis signal.
  • 49. The method according to claim 43, wherein the step of modulating the modulated data generated at the step of gamma-correcting the second data comprises: storing the modulated data generated at the step of gamma-correcting the second data in a frame memory; andgenerating the modulated data for the converting step using the modulated data of a current frame and the modulated data of a previous frame from the frame memory using a look-up table.
  • 50. The method according to claim 49, wherein the step of generating the modulated data for the converting step further comprises mixing the modulated data from the look-up table with the modulated data generated at the step of gamma-correcting the second data.
  • 51. A converter for a driver driving a liquid crystal display device, comprising: a first gamma correcting unit for gamma-correcting input source data in one frame and generating first data;a brightness/color separating unit for dividing the first data into a brightness component and a color component; andan image modulating unit for detecting the motion vector from the brightness component, converting the brightness component of the one frame into at least two conversion frames, and filtering the images of the at least two conversion frames according to the motion vector, and generating modulated brightness component based on the filtered images of the at least two conversion frames.
  • 52. The converter according to claim 51, further comprising: a delay unit for delaying the color component while the image modulating unit generates the modulated brightness component;a mixing unit for mixing the modulated brightness component with the delayed color component and generating second data; anda second gamma correcting unit for gamma-correcting the second data supplied from the mixing unit and generating the modulated data.
  • 53. The converter according to claim 51, wherein the image modulating unit comprises: a memory unit for storing the brightness component in the one frame supplied from the brightness/color separating unit;a double frame converting unit for converting the brightness component of the input original image in the one frame supplied from the memory unit into first and second conversion frames corresponding to the input original image and sequentially outputting the first and second conversion frames;a motion detecting unit for setting a Gaussian filter coefficient and a sharpness filter coefficient according to a frame control signal using a brightness component of a previous frame and a brightness component of a current frame of the input original image supplied from the memory unit and detecting a motion size signal of a moving image;a motion filter unit for filtering the brightness components of the conversion frames according to the Gaussian filter coefficient and the sharpness filter coefficient; anda multiplying unit for multiplying the brightness components of the conversion frames filtered by the motion filter unit by the motion size signal and supplying the multiplied signal to the mixing unit.
  • 54. The converter according to claim 53, wherein the motion detecting unit comprises: a block motion detecting unit for comparing the brightness component of the previous frame with the brightness component of the current frame in an i×i block unit and detecting an X-axis displacement and a Y-axis displacement of a motion;a pixel gray detecting unit for comparing brightness components of pixels in the current frame, detecting a variation in gray level of a pixel unit to detect a boundary between moving display images, and generating a boundary gray level analysis signal corresponding to the variation in gray level of the boundary;a filter coefficient setting unit for setting the Gaussian filter coefficient and the sharpness filter coefficient according to the boundary gray level analysis signal using the X-axis displacement and the Y-axis displacement; anda motion size detecting unit for detecting the motion size signal using the X-axis displacement and the Y-axis displacement.
  • 55. The converter according to claim 54, wherein the pixel gray detecting unit generates the boundary gray level analysis signal having a high level when the gray level of the boundary is changed from a high gray level to a low gray level and generates the boundary gray level analysis signal having a low level when the gray level of the boundary is changed from the low gray level from the high gray level.
  • 56. The converter according to claim 55, wherein the filter coefficient setting unit comprises: a motion direction detecting unit for detecting a motion direction signal using the X-axis displacement and the Y-axis displacement;a selecting unit for selectively outputting the motion direction signal according to the frame control signal;a Gaussian filter coefficient setting unit for setting the Gaussian filter coefficient corresponding to the motion direction signal supplied from the selecting unit, according to the boundary gray level analysis signal; anda sharpness filter coefficient setting unit for setting the sharpness filter coefficient corresponding to the motion direction signal supplied from the selecting unit, according to the boundary gray level analysis signal.
  • 57. The converter according to claim 55, wherein the filter coefficient setting unit comprises: a motion direction detecting unit for detecting a motion direction signal using the X-axis displacement and the Y-axis displacement;a Gaussian filter coefficient setting unit for setting the Gaussian filter coefficient to vary depending on the motion direction signal, according to the frame control signal and the boundary gray level analysis signal; anda sharpness filter coefficient setting unit for setting the sharpness filter coefficient to vary depending on the motion direction signal, according to the frame control signal and the boundary gray level analysis signal.
  • 58. A liquid crystal display device comprising: an image display unit including liquid crystal cells, a plurality of gate lines and a plurality of data lines;a converter for detecting a motion vector from externally input source data, converting one frame of an input original image of the input source data into at least two conversion frames, filtering images of the at least two conversion frames according to the motion vector, and generating modulated data;a gate driver for supplying a scan signal to the gate lines; anda data driver for converting the modulated data into an analog video signal and supplying the analog video signal to the data lines.
  • 59. The liquid crystal display device according to claim 58, further comprising a timing controller for aligning the modulated data and supplying the aligned modulated data to the data driver, generating a data control signal to control the data driver, and generating a gate control signal to control the gate driver.
  • 60. The liquid crystal display device according to claim 58, wherein the converter includes: a first gamma correcting unit for gamma-correcting input source data in one frame and generating first data;a brightness/color separating unit for dividing the first data into a brightness component and a color component; andan image modulating unit for detecting the motion vector from the brightness component, converting the brightness component of the one frame into at least two conversion frames, and filtering the images of the at least two conversion frames according to the motion vector, and generating modulated brightness component based on the filtered images of the at least two conversion frames;
  • 61. The liquid crystal display device according to claim 60, wherein the converter further includes: a delay unit for delaying the color component while the image modulating unit generates the modulated brightness component;a mixing unit for mixing the modulated brightness component with the delayed color component and generating second data; anda second gamma correcting unit for gamma-correcting the second data supplied from the mixing unit and generating the modulated data.
  • 62. The liquid crystal display device according to claim 60, wherein the image modulating unit comprises: a memory unit for storing the brightness component in the one frame supplied from the brightness/color separating unit;a double frame converting unit for converting the brightness component of the input original image in the one frame supplied from the memory unit into first and second conversion frames corresponding to the input original image and sequentially outputting the first and second conversion frames;a motion detecting unit for setting a Gaussian filter coefficient and a sharpness filter coefficient according to a frame control signal using a brightness component of a previous frame and a brightness component of a current frame of the input original image supplied from the memory unit and detecting a motion size signal of a moving image;a motion filter unit for filtering the brightness components of the conversion frames according to the Gaussian filter coefficient and the sharpness filter coefficient; anda multiplying unit for multiplying the brightness components of the conversion frames filtered by the motion filter unit by the motion size signal and supplying the multiplied signal to the mixing unit.
  • 63. The liquid crystal display device according to claim 62, wherein the motion detecting unit comprises: a block motion detecting unit for comparing the brightness component of the previous frame with the brightness component of the current frame in an i×i block unit and detecting an X-axis displacement and a Y-axis displacement of a motion;a pixel gray detecting unit for comparing brightness components of pixels in the current frame, detecting a variation in gray level of a pixel unit to detect a boundary between moving display images, and generating a boundary gray level analysis signal corresponding to the variation in gray level of the boundary;a filter coefficient setting unit for setting the Gaussian filter coefficient and the sharpness filter coefficient according to the boundary gray level analysis signal using the X-axis displacement and the Y-axis displacement; anda motion size detecting unit for detecting the motion size signal using the X-axis displacement and the Y-axis displacement.
  • 64. The liquid crystal display device according to claim 63, wherein the pixel gray detecting unit generates the boundary gray level analysis signal having a high level when the gray level of the boundary is changed from a high gray level to a low gray level and generates the boundary gray level analysis signal having a low level when the gray level of the boundary is changed from the low gray level from the high gray level.
  • 65. The liquid crystal display device according to claim 64, wherein the filter coefficient setting unit comprises: a motion direction detecting unit for detecting a motion direction signal using the X-axis displacement and the Y-axis displacement;a selecting unit for selectively outputting the motion direction signal according to the frame control signal;a Gaussian filter coefficient setting unit for setting the Gaussian filter coefficient corresponding to the motion direction signal supplied from the selecting unit, according to the boundary gray level analysis signal; anda sharpness filter coefficient setting unit for setting the sharpness filter coefficient corresponding to the motion direction signal supplied from the selecting unit, according to the boundary gray level analysis signal.
  • 66. The liquid crystal display device according to claim 64, wherein the filter coefficient setting unit comprises: a motion direction detecting unit for detecting a motion direction signal using the X-axis displacement and the Y-axis displacement;a Gaussian filter coefficient setting unit for setting the Gaussian filter coefficient to vary depending on the motion direction signal, according to the frame control signal and the boundary gray level analysis signal; anda sharpness filter coefficient setting unit for setting the sharpness filter coefficient to vary depending on the motion direction signal, according to the frame control signal and the boundary gray level analysis signal.
Priority Claims (1)
Number Date Country Kind
10-2006-012637 Feb 2006 KR national