Claims
- 1. A monolithic, or monolithic-like, AMLCD display having improved mechanical stiffness and controlled contrast, luminance and chromaticity across a wide range of view angles, comprising:
a) a liquid crystal display element comprising pixels disposed in a two-dimensional array organized into rows and columns, each of said pixels comprising at least one sub-pixel; b) support means comprising at least one from the group of cover plate and back plate affixed to and extending beyond said two-dimensional array of pixels; c) row interconnection means disposed in channels proximate said rows of pixels and electrically connected thereto; d) column interconnection means disposed in channels proximate said columns-of pixels and electrically connected thereto; e) insulating means for electrically isolating said row interconnection means from said column interconnection means; and f) electrical connection means comprising a fan-out region and being operatively connected to said row interconnection means and to said column interconnection means and being disposed along at least one edge of said two-dimensional array of pixels; whereby each of said sub-pixels is electrically connected to at least one of said row and said column interconnection means.
- 2. The monolithic, or monolithic-like, AMLCD display as recited in claim 1, wherein said pixels comprise active areas and inactive areas and said row interconnection means and said column interconnection means are placed in said inactive area.
- 3. The monolithic, or monolithic-like, AMLCD display as recited in claim 2, wherein said row interconnection means and said column interconnection means comprise at least one channel placed in at least one from the group: inactive areas between said rows of pixels, inactive areas between said columns of pixels, inactive areas adjacent an outside column of said array, and inactive areas adjacent an outside row of said array of pixels.
- 4. The monolithic, or monolithic-like, AMLCD display as recited in claim 3, wherein said row interconnection means and said column interconnection means comprise at least one electrical conductor disposed in said channels.
- 5. The monolithic, or monolithic-like, AMLCD display as recited in claim 4, wherein said at least one electrical conductor comprises multiple electrical conductors disposed in said channels.
- 6. The monolithic, or monolithic-like, AMLCD display as recited in claim 4, further comprising:
g) parallel access interconnection means disposed in at least one of said channels between said rows or said columns of said two-dimensional array and being selectively electrically connected to at least one of said row interconnection means or said column interconnection means, said parallel access interconnection means providing an electrical connection among said row interconnection means and said column interconnection means, and said electrical connection means.
- 7. The monolithic, or monolithic-like, AMLCD display as recited in claim 6, wherein said at least one edge of said two-dimensional display is a single edge substantially parallel to said row interconnection means.
- 8. The monolithic, or monolithic-like, AMLCD display as recited in claim 6, wherein said at least one edge of said two-dimensional array is a single edge substantially parallel to said column interconnection means.
- 9. The monolithic, or monolithic-like, AMLCD display as recited in claim 6, wherein said at least one edge of said two-dimensional array comprises two adjacent edges.
- 10. The monolithic, or monolithic-like, AMLCD display as recited in claim 6, wherein said at least one edge of said two-dimensional array comprises two opposing, parallel edges.
- 11. The monolithic, or monolithic-like, AMLCD display as recited in claim 6, wherein said electrical connection means comprises external electrical connection means for connecting said display to externally-generated signals.
- 12. The monolithic, or monolithic-like, AMLCD display as recited in claim 11, wherein said external electrical connection means comprises at least one from the group: TABs anisotropic adhesive film connections, solder ball connections, wirebond connections
- 13. The monolithic, or monolithic-like, AMLCD display as recited in claim 12, wherein said electrical connection means connected to said parallel access interconnection means comprises fan-out means comprising fan-out lines to facilitate reordering individual ones of said row interconnection means and said column interconnection means relative to said external electrical connection means.
- 14. The monolithic, or monolithic-like, AMLCD display as recited in claim 1, wherein at least one of said row interconnection means and said column interconnection means comprises a segmented electrical conductor.
- 15. A monolithic, or monolithic-like, AMLCD display having improved mechanical stiffness and controlled contrast, luminance and chromaticity across a wide range of view angles, comprising:
a) a liquid crystal display element comprising pixels disposed in a two-dimensional array organized into rows and columns, each of said pixels comprising at least one sub-pixel having both an active area and an inactive area; b) support means comprising at least one from the group of cover plate and back plate affixed to and extending beyond said two-dimensional array of pixels; c) row interconnection means disposed in channels disposed in said inactive areas proximate said rows of pixels and electrically connected thereto; d) column interconnection means disposed in channels disposed in said inactive areas proximate said columns of pixels and electrically connected thereto; e) insulating means for electrically isolating said row interconnection means from said column interconnection means; and f) electrical connection means operatively connected to said row interconnection means and said column interconnection means and being disposed along at least one edge of said two-dimensional array; whereby each of said sub-pixels is electrically connected to at least one of said row interconnection means and said column interconnection means.
- 16. The monolithic, or monolithic-like, AMLCD display as recited in claim 15, wherein said at least one edge of said two-dimensional array comprises one of the configurations: two opposing edges, two adjacent edges, a single edge, and all four edges.
- 17. The monolithic, or monolithic-like, AMLCD display as recited in claim 15, wherein said row interconnection means and said column interconnection means comprise at least one electrical conductor disposed in said channels.
- 18. The monolithic, or monolithic-like, AMLCD display as recited in claim 17, wherein said at least one electrical conductor comprises multiple electrical conductors disposed in said channels.
- 19. The monolithic, or monolithic-like, AMLCD display as recited in claim 17, further comprising:
g) parallel access interconnection means disposed in at least one of said channels between said rows or said columns of said two-dimensional array of pixels and being selectively electrically connected to at least one of said row interconnection means or said column interconnection means, said parallel access interconnection means providing an electrical connection among said row interconnection means and said column interconnection means and said electrical connection means.
- 20. The monolithic, or monolithic-like, AMLCD display as recited in claim 19, wherein said at least one edge of said two-dimensional array is a single edge substantially parallel to said column interconnection means.
- 21. The monolithic, or monolithic-like, AMLCD display as recited in claim 19, wherein said at least one edge of said two-dimensional array is a single edge substantially parallel to said row interconnection means.
- 22. The monolithic, or monolithic-like, AMLCD display as recited in claim 19, wherein said electrical connection means comprises external electrical connection means for connecting said display to externally-generated signals.
- 23. The monolithic, or monolithic-like, AMLCD display as recited in claim 22, wherein said external electrical connection means further comprises at least one driver circuit having a predetermined physical order of drive signal output lines, and wherein said predetermined physical order corresponds to a predetermined order in said electrical connection means.
- 24. The monolithic, or monolithic-like, AMLCD display as recited in claim 23, wherein said predetermined physical order of drive signal output lines corresponds one-to-one with said predetermined order in said electrical connection means whereby fan-out line connections do not cross one another.
- 25. The monolithic, or monolithic-like, AMLCD display as recited in claim 23, wherein said predetermined physical order of drive signal output lines corresponds one-to-one with said predetermined order in said electrical connection means whereby at least two of said fan-out line connections cross one another.
- 26. The monolithic, or monolithic-like, AMLCD display as recited in claim 23, wherein said at least one driver circuit comprises at least one driver circuit generating both row and column signals.
- 27. The monolithic, or monolithic-like, AMLCD display as recited in claim 22, wherein said external electrical connection means comprises at least one from the group: TABs anisotropic adhesive film connections, solder ball connections, wirebond connections.
- 28. The monolithic, or monolithic-like, AMLCD display as recited in claim 19, wherein said electrical connection means connected to parallel access interconnection means comprises fan-out means comprising fan-out lines to facilitate reordering said row interconnection means and said column interconnection means relative to said external electrical connection means.
- 29. The monolithic, or monolithic-like, AMLCD display as recited in claim 15, wherein at least one of said row interconnection means and said column interconnection means comprises a segmented electrical conductor.
- 30. A monolithic, or monolithic-like, AMLCD display having improved mechanical stiffness and controlled contrast, luminance and chromaticity across a wide range of view angles, comprising:
a) a liquid crystal display element comprising pixels having predetermined pixel geometries, disposed in a predetermined pattern in a two-dimensional array organized into rows and columns, each of said pixels comprising at least one sub-pixel having both an active area and an inactive area; b) support means comprising at least one from the group of cover plate and back plate affixed to and extending beyond said two-dimensional array of pixels; c) at least one row electrical conductor disposed in a channel disposed in said inactive area proximate said rows of pixels and electrically connected thereto for supplying at least one of a pixel row control voltage and a pixel row data voltage to said rows of pixels; d) at least one column electrical conductor disposed in a channel disposed in said inactive areas proximate said columns of pixels and electrically connected thereto for supplying at least one of a pixel column control voltage and a pixel column data voltage to said columns of pixels. e) insulating means for electrically isolating said at least one row conductor from said at least one column conductor; and f) electrical connection means operatively connected to said at least one row conductor and said at least one column conductor and disposed along at least one edge of said two-dimensional array of pixels; each of said pixels in combination with said at least one row conductor and said at least one column conductor.
- 31. The monolithic, or monolithic-like, AMLCD display as recited in claim 30, wherein variations in said unique, local pixel environments result in variations in the waveform of at least one of; said pixel row control voltage, said pixel row data voltage, said pixel column control voltage, and said pixel column data voltage.
- 32. The monolithic, or monolithic-like, AMLCD display as recited in claim 31, wherein said variations result at least in part from variations in capacitances between said sub-pixels and said at least one row conductor and said at least one column conductor.
- 33. The monolithic, or monolithic-like, AMLCD display as recited in claim 32, wherein said variations are minimized by altering the arrangement of said sub-pixels within at least one of said pixels.
- 34. The monolithic, or monolithic-like, AMLCD display as recited in claim 33, wherein said variations are selectively controlled by altering the arrangement of said sub-pixels to minimize a visually perceptible pattern arising from an artifact of the display.
- 35. The monolithic, or monolithic-like, AMLCD display as recited in claim 32, wherein said variations of capacitances are minimized by controlling a layout parameter of at least one of: said sub-pixels, said at least one row conductor, and said at least one column conductor.
- 36. The monolithic, or monolithic-like, AMLCD display as recited in claim 30, wherein said at least one layout parameter comprises at least one of: width of a line segment, layout of elements contributing to coupling capacitance, selection of a tap point, and implementation of line segmentation.
- 37. The monolithic, or monolithic-like, AMLCD display as recited in claim 30, wherein said liquid crystal display element comprises at least one thin film transistor (TFT) element.
- 38. The monolithic, or monolithic-like, AMLCD display as recited in claim 37, wherein said at least one TFT element comprises plural TFT elements associated with at least one of said sub-pixel elements such that the size of said at least one TFT element may be minimized and whereby double on and triple on TFT drive strategies may be implemented.
- 39. The monolithic, or monolithic-like, AMLCD display as recited in claim 30, further comprising at least one conductive element proximate at least one of said sub-pixels of said array of pixels to offset said differences in capacitance, wherein said variations between said unique pixel local environments are minimized.
- 40. The monolithic, or monolithic-like, AMLCD display as recited in claim 39, wherein said conductive element comprises at least one from the group: electrically floating element, element connected to at least one other element within one of said pixels, element connected to a shield, element connected to a local ground, element connected to a global ground, and element connected to a common element.
- 41. The monolithic, or monolithic-like, AMLCD display as recited in claim 32, wherein said variations in capacitance result in variations in voltage waveforms at said sub-pixels.
- 42. The monolithic, or monolithic-like, AMLCD display as recited in claim 41, wherein said variation in said waveforms is caused at least in part by a kick back voltage.
- 43. The monolithic, or monolithic-like, AMLCD display as recited in claim 42, further comprising at least one discrete component operatively connected to at least one of said sub-pixels, said row conductor and said column conductor, whereby said kick back voltage is made substantially constant across substantially all of said pixels in said array.
- 44. The monolithic, or monolithic-like, AMLCD display as recited in claim 43, further comprising at least one from the group: discrete capacitor, distributed capacitance, wherein said row-to-column coupling capacitance is selectively altered.
- 45. The monolithic, or monolithic-like, AMLCD display as recited in claim 44, wherein said capacitor or capacitance maintains uniformity of total column line capacitance for each pixel of said array.
- 46. The monolithic, or monolithic-like, AMLCD display as recited in claim 32, wherein a ratio of a local pixel cell capacitance to row-to-column coupling capacitance is made substantially constant for each of said pixels.
- 47. The monolithic, or monolithic-like, AMLCD display as recited in claim 46, wherein said capacitor or capacitance maintains uniformity of total row line capacitance for each pixel of said array.
- 48. The monolithic, or monolithic-like, AMLCD display as recited in claim 30, wherein said electrical connection means comprises a fan-out region and wherein said fan-out region further comprises capacitance control means wherein at least one of said row electrical and said column electrical conductor capacitances maintain uniformity of total row line capacitance for each pixel of said array.
- 49. The monolithic, or monolithic-like, AMLCD display as recited in claim 30, further comprising capacitance control means for controlling at least one of said row electrical and said column electrical conductor capacitances such that the total row line capacitance of each pixel of said array is substantially uniform.
- 50. The monolithic, or monolithic-like, AMLCD display as recited in claim 30, wherein said electrical connection means disposed along at least one edge allows for narrow perimeters on at least one side of a frame enclosing said monolithic, or monolithic-like AMLCD display.
- 51. A monolithic, AMLCD display being a robust laminate and having controlled contrast, luminance and chromaticity across a wide view angle range, comprising:
a) an AMLCD flat-panel assembly having a front, viewing face and a rear face; b) backlighting means proximate said rear face of said AMLCD flat-panel assembly for providing illumination thereto; c) light collimating means proximate said rear face and said backlighting means; and d) means for decollimating light proximate said front, viewing face of said AMLCD flat-panel for decollimating light therefrom.
- 52. The monolithic, AMLCD display being a robust laminate and having controlled contrast, luminance and chromaticity across a wide view angle range as recited in claim 51, wherein said AMLCD flat-panel assembly comprises an optical stack, comprising:
i) a liquid crystal TFT AMLCD display element; ii) at least one from the group of cover plate and back plate affixed to said display element.
- 53. The monolithic, AMLCD display being a robust laminate and having controlled contrast, luminance and chromaticity across a wide view angle range as recited in claim 52, wherein said means for decollimating light comprises a screen.
- 54. The monolithic, AMLCD display being a robust laminate and having controlled contrast, luminance and chromaticity across a wide view angle range as recited in claim 53, wherein said screen is disposed between a viewer of said display and said viewing face of said liquid crystal TFT AMLCD display element.
- 55. The monolithic, AMLCD display being a robust laminate and having controlled contrast, luminance and chromaticity across a wide view angle range as recited in claim 54, wherein said screen has a predetermined angular distribution of intensity of light exiting said display toward said viewer thereof.
- 56. The monolithic, AMLCD display in accordance with claim 51, wherein non-uniformities are minimized, said non-uniformities being selected from the group of: electronic boundaries, lighting effects, birefringence, stress effects, temperature, ambient light, optical stack, mechanical deformation, and spacer balls.
- 57. The monolithic, AMLCD display being a robust laminate and having controlled contrast, luminance and chromaticity across a wide view angle range as recited in claim 53, wherein said screen comprises a first screen and a second screen, both disposed between a viewer of said display and said viewing face of said liquid crystal TFT AMLCD display element.
- 58. The monolithic, AMLCD display being a robust laminate and having controlled contrast, luminance and chromaticity across a wide view angle range as recited in claim 51, wherein said light collimating means comprises an optical collimator.
- 59. The monolithic, AMLCD display being a robust laminate and having controlled contrast, luminance and chromaticity across a wide view angle range as recited in claim 58, wherein said optical collimator comprises a brightness-enhancing film.
- 60. The monolithic, AMLCD display being a robust laminate and having controlled contrast, luminance and chromaticity across a wide view angle range as recited in claim 59, wherein said brightness-enhancing film comprises micro-geometric prismatic arrays.
- 61. The monolithic, AMLCD display being a robust laminate and having controlled contrast, luminance and chromaticity across a wide view angle range as recited in claim 51, wherein said light collimating means comprises a lattice having a predetermined cell structure having a shape from the group: square, rectangle, triangle, hexagon, circle, other polygon.
- 62. The monolithic, AMLCD display being a robust laminate and having controlled contrast, luminance and chromaticity across a wide view angle range as recited in claim 61, wherein said predetermined cell structure has at least one defined cell width.
- 63. The monolithic, AMLCD display being a robust laminate and having controlled contrast, luminance and chromaticity across a wide view angle range as recited in claim 62, wherein said at least one defined cell width is in the range of approximately 3 to 5 mm.
- 64. The monolithic, AMLCD display being a robust laminate and having controlled contrast, luminance and chromaticity across a wide view angle range as recited in claim 61, wherein said lattice structure is constructed of a material from the group plastic, paper, aluminum, or other metals.
- 65. The monolithic, AMLCD display being a robust laminate and having controlled contrast, luminance and chromaticity across a wide view angle range as recited in claim 61, wherein said lattice structure comprises an aluminum honeycomb lattice.
- 66. The monolithic, AMLCD display being a robust laminate and having controlled contrast, luminance and chromaticity across a wide view angle range as recited in claim 61, wherein said lattice cells have a predetermined depth which defines cell walls.
- 67. The monolithic, AMLCD display being a robust laminate and having controlled contrast, luminance and chromaticity across a wide view angle range as recited in claim 66, wherein said cell walls further comprise a wall treatment.
- 68. The monolithic, AMLCD display being a robust laminate and having controlled contrast, luminance and chromaticity across a wide view angle range as recited in claim 67, wherein said treatment comprises an optical surface treatment having at least one of the properties: absorbent, reflective, specular, diffuse.
- 69. The monolithic, AMLCD display being a robust laminate and having controlled contrast, luminance and chromaticity across a wide view angle range as recited in claim 67, wherein said treatment is imparted to said walls by at least one of the processes: plating, dying, painting, or other optical surface treatment method.
- 70. The monolithic, AMLCD display being a robust laminate and having controlled contrast, luminance and chromaticity across a wide view angle range as recited in claim 67, wherein said lattice cell walls comprise a lower portion being nearest said backlighting means and an upper portion being nearest said rear face, said lower and said upper portions having different optical surface treatments thereupon.
- 71. The monolithic, AMLCD display being a robust laminate and having controlled contrast, luminance and chromaticity across a wide view angle range as recited in claim 70, wherein said surface treatment of said lower portion of said lattice is substantially specularly reflective and said surface treatment of said upper portion is substantially absorptive.
- 72. The monolithic, AMLCD display being a robust laminate and having controlled contrast, luminance and chromaticity across a wide view angle range as recited in claim 52, further comprising:
e) light diffusing means proximate said backlighting means.
- 73. The monolithic, AMLCD display being a robust laminate and having controlled contrast, luminance and chromaticity across a wide view angle range as recited in claim 52, further comprising:
e) at least one mask means disposed on at least one of said front and said back plates.
- 74. The monolithic, AMLCD display being a robust laminate and having controlled contrast, luminance and chromaticity across a wide view angle range as recited in claim 51, wherein said backlighting means comprises at least one from the group: diffuser, optical light collimator, lattice light collimator.
- 75. The monolithic, AMLCD display being a robust laminate and having controlled contrast, luminance and chromaticity across a wide view angle range as recited in claim 52, wherein said AMLCD flat-panel display assembly is assembled by a substantially full face seal formed by an optically transmissive adhesive film having a predetermined elastic modulus and predetermined thickness range.
- 76. The monolithic, AMLCD display being a robust laminate and having controlled contrast, luminance and chromaticity across a wide view angle range as recited in claim 52, further comprising a front polarizer disposed between said front, viewing face of said AMLCD display and a viewer thereof for controlling and at least partially counteracting effects of ambient light entering said AMLCD display from said front face thereof, and being directed back toward said viewer.
- 77. A monolithic, AMLCD display being a robust laminate and having controlled contrast, luminance and chromaticity across a wide view angle range, comprising:
a) a liquid crystal TFT AMLCD display element having a front, viewing face and a rear face; b) a substantially transparent cover support plate resiliently affixed to said front, viewing face of said AMLCD display element and comprising a first mask and light decollimating means; c) a substantially transparent back support plate resiliently affixed to said rear face of said AMLCD display element and comprising a second mask; d) backlighting means having a front face for providing illumination to an AMLCD display element disposed proximate said back support plate; e) at least one of the group light optical collimator, light enhancing film, light lattice collimator and light diffuser disposed intermediate said front face of said backlighting means and said back support plate; and f) light decollimating means comprising at least one of the group screen, polarizer, mask disposed proximate said cover support plate.
- 78. The monolithic, AMLCD display being a robust laminate and having controlled contrast, luminance and chromaticity across a wide view angle range as recited in claim 55, wherein said screen is adhesively mounted on said AMLCD flat-panel display assembly minimizing refraction index discontinuities.
- 79. The monolithic, AMLCD display being a robust laminate and having controlled contrast, luminance and chromaticity across a wide view angle range as recited in claim 53, wherein said screen is selected from the group of diffusing, refractive and hybrid diffusing/refractive screens.
- 80. In a monolithic, or monolithic-like, AMLCD having improved mechanical stiffness and controlled contrast, luminance and chromaticity across a wide range of view angles, and comprising a liquid crystal display element comprising pixels disposed in a two-dimensional array organized into rows and columns, each of said pixels comprising at least one sub-pixel, and support means comprising at least one from the group of cover plate and back plate affixed to and extending beyond said two-dimensional array of pixels, the improvement comprising means for compensating for non-uniformities by selectively altering said pixel stimulation signals responsive to said non-uniformities, whereby variations in luminance and chromaticity of modified, transmitted light from said pixels are reduced below a predetermined perceptual threshold.
- 81. The monolithic, or monolithic-like, AMLCD display in accordance with claim 80, wherein said non-uniformities are selected from the group of: electronic boundaries, lighting effects, birefringence, stress effects, temperature, ambient light, view angles, viewer preference, optical stack, mechanical deformation, and spacer balls.
- 82. The monolithic, or monolithic-like AMLCD as recited in claim 80, wherein said pixels comprise sub-pixels, and said pixel stimulation signals comprise sub-pixel stimulation signals, each of said sub-pixels being adapted to transmit light having a distinct, predetermined chromaticity and luminance upon stimulation by a corresponding sub-pixel stimulation signal, and said means for selectively altering said pixel stimulation signals comprises means for altering said sub-pixel stimulation signals.
- 83. The monolithic, or monolithic-like AMLCD as recited in claim 82, wherein each of said pixels comprises at least one primary color sub-pixel.
- 84. The monolithic, or monolithic-like AMLCD as recited in claim 83, wherein said primary color sub-pixel comprises red, green and blue sub-pixels.
- 85. The monolithic, or monolithic-like AMLCD as recited in claim 82, wherein said means for selectively altering said sub-pixel stimulation signals is adapted to reduce variations in luminance and chromaticity of said modified, transmitted light across a predetermined region of said display below a discernable threshold.
- 86. The monolithic, or monolithic-like AMLCD as recited in claim 85, wherein said variations in luminance and chromaticity of said modified, transmitted light comprise at least one from the group: abrupt variations and gradual variations.
- 87. The monolithic, or monolithic-like AMLCD as recited in claim 86, wherein said means for selectively altering said sub-pixel stimulation signals is applied to individual sub-pixels.
- 88. The monolithic, or monolithic-like AMLCD as recited in claim 86, wherein said means for selectively altering said sub-pixel stimulation signals is applied to a predetermined subset of said sub-pixels.
- 89. The monolithic, or monolithic-like AMLCD as recited in claim 88, wherein said predetermined subset of said pixels comprises pixels having substantially identical light output characteristics.
- 90. The monolithic, or monolithic-like AMLCD as recited in claim 89, wherein said light output characteristics are described by effective T-V curves.
- 91. The monolithic, or monolithic-like AMLCD as recited in claim 88, wherein said means for selectively altering said sub-pixel stimulation signals is adapted to reduce variations in luminance and chromaticity in a predetermined subset of said pixels below a predetermined, discernable threshold.
- 92. The monolithic, or monolithic-like AMLCD as recited in claim 86, wherein said means for selectively altering said sub-pixel stimulation signals responsive to said non-uniformities comprises means for smoothing said sub-pixel stimulation signals, whereby abrupt variations are reduced to gradual variations below a predetermined perceptual threshold.
- 93. The monolithic, or monolithic-like AMLCD as recited in claim 92, wherein said achieved variation in luminance and chromaticity renders said non-uniformities visually imperceptible to a viewer at a predetermined position relative to said LCD and under predetermined viewing conditions.
- 94. A method for correcting luminance and chromaticity variations caused by non-uniformities in monolithic, or monolithic-like AMLCDs, having improved mechanical stiffness and controlled contrast, luminance and chromaticity across a wide range of view angles, and comprising a liquid crystal display element comprising pixels disposed in a two-dimensional array organized into rows and columns, each of said pixels comprising at least one sub-pixel, and support means comprising at least one from the group of cover plate and back plate affixed to and extending beyond said two-dimensional array of pixels, the steps comprising:
a) providing a display comprising pixels, said pixels being adapted to modify transmitted light upon stimulation by respective pixel stimulation signals; b) mapping at least one region of said pixels, each of said pixels in said region having a similar effective T-V curve; c) determining a transfer function for said mapped region to change one of said effective T-V curves to a predetermined, reference effective T-V curve; and d) applying an inverse of said transfer function to said pixel stimulation signals so that said pixels in said region appear to exhibit said predetermined, reference effective T-V curve.
- 95. The method for correcting luminance and chromaticity variations in monolithic, or monolithic-like AMLCDs as recited in claim 94, wherein said pixels comprise sub-pixels; said mapping step (a) comprises mapping regions of said sub-pixels, each having a similar effective T-V curve, said pixel stimulation signals comprising sub-pixel stimulation signals; and said applying an inverse transfer function step (c) further comprises applying an inverse of said transfer function to said sub-pixel stimulation signals.
- 96. The method for correcting luminance and chromaticity variations in monolithic, or monolithic-like AMLCDs as recited in claim 95, wherein said inverse transfer function comprises a look-up table.
- 97. The method for correcting luminance and chromaticity variations in monolithic, or monolithic-like AMLCDs as recited in claim 95, wherein said inverse transfer function comprises piece-wise interpolation.
- 98. The method for correcting luminance and chromaticity variations in monolithic, or monolithic-like AMLCDs as recited in claim 95, wherein said inverse transfer function is constructed using mathematical interpolation techniques based on at least one of: constants, slopes and higher-order terms.
- 99. The method for correcting luminance and chromaticity variations in monolithic, or monolithic-like AMLCDs as recited in claim 96, wherein said look-up table comprises at least one of the group of slope data and offset data.
- 100. The method for correcting luminance and chromaticity variations in monolithic, or monolithic-like AMLCDs as recited in claim 95, wherein said mapping step (b) comprises producing a contour map.
- 101. The method for correcting luminance and chromaticity variations in monolithic, or monolithic-like AMLCDs as recited in claim 100, wherein said contour map represents regions of sub-pixels each having a substantially identical effective T-V curve.
- 102. The method for correcting luminance and chromaticity variations in monolithic, or monolithic-like AMLCDs as recited in claim 101, wherein said mapping step (b) comprises the sub-steps of:
i) measuring non-uniformities at a plurality of locations in said display; and ii) determining effective T-V curves representative of said measured mechanism responsible for said non-uniformities.
- 103. The method for correcting luminance and chromaticity variations in monolithic, or monolithic-like AMLCDs as recited in claim 101, wherein said determining transfer function step (c) comprises determining a transfer function for sub-pixels for a mapped region.
- 104. The method for correcting luminance and chromaticity variations in monolithic, or monolithic-like AMLCDs as recited in claim 103, wherein said transfer function is selectively applied to said sub-pixels dependent upon said primary colors thereof.
- 105. The method for correcting luminance and chromaticity variations in a monolithic, or monolithic-like, AMLCD in accordance with claim 94, wherein said non-uniformities are selected from the group of: electronic boundaries, lighting effects, birefringence, stress effects, temperature, ambient light, view angles, viewer preference, optical stack, mechanical deformation, and spacer balls.
- 106. A method for correcting luminance and chromaticity variations caused by optical aberrations or non-uniformities in monolithic, or monolithic-like AMLCDs, having improved mechanical stiffness and controlled contrast, luminance and chromaticity across a wide range of view angles, and comprising a liquid crystal display element comprising pixels disposed in a two-dimensional array organized into rows and columns, each of said pixels comprising at least one sub-pixel, and support means comprising at least one from the group of cover plate and back plate affixed to and extending beyond said two-dimensional array of pixels, the steps comprising:
a) identifying an optical aberration affecting sub-pixels, each of said sub-pixels having an effective T-V curve associated therewith; b) determining a transfer function for said affected sub-pixels to change one of said effective T-V curves to a predetermined, reference effective T-V curve; and c) applying an inverse of said transfer function to said affected sub-pixels so that each pixel appears to have substantially said predetermined, reference effective T-V curve.
- 107. The method for correcting luminance and chromaticity variations in monolithic, or monolithic-like AMLCDs as recited in claim 106, wherein said inverse transfer function comprises a look-up table.
- 108. The method for correcting luminance and chromaticity variations in monolithic, or monolithic-like AMLCDs as recited in claim 107, wherein said look-up table comprises at least one of the group of slope data and offset data.
- 109. The method for correcting luminance and chromaticity variations in monolithic, or monolithic-like AMLCDs as recited in claim 108, the steps further comprising: (d) producing a contour map.
- 110. The method for correcting luminance and chromaticity variations in monolithic, or monolithic-like AMLCDs as recited in claim 109, wherein said contour map represents regions of sub-pixels each having a substantially identical effective T-V curve.
- 111. The method for correcting luminance and chromaticity variations in monolithic, or monolithic-like AMLCDs as recited in claim 110, wherein said producing a contour map step (d) comprises the sub-steps of:
i) measuring variations of at least one of chromaticity and luminance caused by optical aberrations at a plurality of locations in said display; and ii) determining effective T-V curves representative, of sub-pixels at said plurality of locations.
- 112. A method for correcting luminance and chromaticity variations in monolithic, or monolithic-like AMLCDs as recited in claim 110, wherein said pixels comprise sub-pixels, each transmitting a predetermined, primary color.
- 113. A method for correcting luminance and chromaticity variations in monolithic, or monolithic-like AMLCDs as recited in claim 112, wherein said determining transfer function step (b) comprises determining a transfer function for sub-pixels for a mapped region dependent upon said primary color thereof.
- 114. A method for correcting luminance and chromaticity variations in monolithic, or monolithic-like AMLCDs as recited in claim 113, said transfer function is selectively applied to said sub-pixels dependent upon said primary colors thereof.
- 115. A method for producing a monolithic, or monolithic-like AMLCD having substantially uniform luminance and chromaticity, and having improved mechanical stiffness and controlled contrast, luminance and chromaticity across a wide range of view angles, and comprising a liquid crystal display element comprising pixels disposed in a two-dimensional array organized into rows and columns, each of said pixels comprising at least one sub-pixel, and support means comprising at least one from the group of cover plate and back plate affixed to and extending beyond said two-dimensional array of pixels, the steps comprising:
a) providing a display having an array of pixels, said pixels comprising sub-pixels, each of said sub-pixels comprising a liquid crystal cell having a respective effective T-V curve; b) providing driver means for presenting sub-pixel stimulation signals to said sub-pixels, said driver means comprising a plurality of driver chips, each of said plurality of driver chips being operatively connected to a predetermined group of said sub-pixels; c) modifying the effective T-V curve of said sub-pixels and associated driver chips in a predetermined manner; d) adjusting the luminance and chromaticity of sub-pixels between regions of non-uniformity of said display to a predetermined level; e) adjusting the luminance and chromaticity of said sub-pixels within regions of non-uniformity substantially to said predetermined grey scale excitation level.
- 116. The method for producing a monolithic, or monolithic-like AMLCD as recited in claim 115, wherein said modifying step (c) comprises at least one from the operations of linearizing and creating a weighted responses.
- 117. The method for producing a monolithic, or monolithic-like AMLCD as recited in claim 115, wherein said adjusting step (e) comprises blending.
- 118. The method for producing a monolithic, or monolithic-like AMLCD as recited in claim 115, wherein said predetermined level comprises an externally chosen reference level.
- 119. The method for producing a monolithic, or monolithic-like AMLCD as recited in claim 115, wherein said predetermined level comprises a relative level dependant upon at least one operational parameter of said display.
- 120. The method for producing a monolithic, or monolithic-like AMLCD display having substantially uniform luminance and chromaticity as recited in claim 117, wherein said predetermined level comprises a plurality of predetermined levels.
- 121. The method for producing a monolithic, or monolithic-like AMLCD display having substantially uniform luminance and chromaticity as recited in claim 120, wherein said blending process results in luminance and chromaticity variations below a predetermined perceptual threshold.
- 122. The method for producing a monolithic, or monolithic-like AMLCD having substantially uniform luminance and chromaticity as recited in claim 115, wherein said driver chips comprise digital-to-analog converters (DACs) and said modifying step (c) comprises setting DAC voltage values at predetermined points in a non-linear response curve of said driver chips to provide an inverse response function of a response curve of said liquid crystal cell whereby said effective T-V curve associated with said liquid crystal cell is made substantially linear.
- 123. A method for producing a monolithic, or monolithic-like AMLCD having substantially uniform luminance and chromaticity and having improved mechanical stiffness and controlled contrast, luminance and chromaticity across a wide range of view angles, and comprising a liquid crystal display element comprising pixels disposed in a two-dimensional array organized into rows and columns, each of said pixels comprising at least one sub-pixel, and support means comprising at least one from the group of cover plate and back plate affixed to and extending beyond said two-dimensional array of pixels, the steps comprising:
a) providing a display comprising an array of pixels, said pixels comprising sub-pixels for transmitting a predetermined primary color upon application of a sub-pixel stimulation signal; b) adjusting luminance and chromaticity of a first set of said sub-pixels to a first, predetermined level; c) adjusting luminance and chromaticity of a second set of said sub-pixels to a second, predetermined level; and d) blending said first and said second predetermined levels to reduce differences in luminance and chromaticity below a predetermined perceptual threshold.
- 124. The method for producing a monolithic, or monolithic-like AMLCD having substantially uniform luminance and chromaticity as recited in claim 123, the steps further comprising:
e) adjusting luminance and chromaticity of said sub-pixels.
RELATED APPLICATIONS
[0001] This application is a Continuation-in-Part of United States Provisional Application Serial No. 60/177,477, filed Jan. 21, 2000.
[0002] The present invention is related to copending U.S. patent applications: Ser. No. 09/024,481, filed Feb. 17, 1998; Ser. No. 09/396,142, filed Sept. 15, 1999; Ser. No. 60/153,962, filed Sept. 15, 1999 (now replaced by Ser. No. 09/490,776, filed Jan. 24, 2000); Ser. No. 09/322,047, filed May 28, 1999; Ser. No. 09/461,060 filed May 28, 1999, all of which are hereby incorporated by reference. It is also related to issued U.S. Pat. Nos. 5,661,531, 5,668,569, 5,889,568, 5,867,236 and 6,020,868 which are commonly assigned to the assignee of the instant application, all of which are also hereby incorporated by reference.
PCT Information
Filing Document |
Filing Date |
Country |
Kind |
PCT/US01/01912 |
1/19/2001 |
WO |
|