The invention relates generally to color display devices, systems and methods and, more particularly, to display devices, systems and methods having improved color image reproduction capability.
Standard computer monitors and TV displays are typically based on reproduction of three, additive, primary colors (“primaries”), for example, red, green, and blue, collectively referred to as RGB. Unfortunately, these monitors cannot display many colors perceived by humans, since they are limited in the range of color they are capable of displaying.
There are many known types of RGB monitors, using various display technologies, including but not limited to CRT, LED, plasma, projection displays, LCD devices and others. Over the past few years, the use of color LCD devices has been increasing steadily. A typical color LCD device is schematically illustrated in
U.S. Pat. No. 4,800,375 (“the '375 patent”), the disclosure of which is incorporated herein by reference in its entirety, describes an LCD device including an array of LC elements juxtaposed in registry with an array of color filters. The filter array includes the three primary color sub-pixel filters, e.g., RGB color filters, which are interlaced with a fourth type of color filter to form predetermined repetitive sequences. The various repetitive pixel arrangements described by the '375 patent, e.g., repetitive 16-pixel sequences, are intended to simplify pixel arrangement and to improve the ability of the display device to reproduce certain image patterns, e.g., more symmetrical line patterns. Other than controlling the geometric arrangement of pixels, the '375 patent does not describe or suggest any visual interaction between the three primary colors and the fourth color in the repetitive sequences.
LCDs are used in various applications. LCDs are particularly common in portable devices, for example, the small size displays of PDA devices, game consoles and mobile telephones, and the medium size displays of laptop “notebook”) computers. These applications require thin and miniaturized designs and low power consumption. However, LCD technology is also used in non-portable devices, generally requiring larger display sizes, for example, desktop computer displays and TV sets. Different LCD applications may require different LCD designs to achieve optimal results. The more “traditional” markets for LCD devices, e.g., the markets of battery-operated devices (e.g., PDA, cellular phones and laptop computers) require LCDs with high brightness efficiency, which leads to reduced power consumption. In desktop computer displays, high resolution, image quality and color richness are the primary considerations, and low power consumption is only a secondary consideration. Laptop computer displays require both high resolution and low power consumption; however, picture quality and color richness are compromised in many such devices. In TV display applications, picture quality and color richness are generally the most important considerations; power consumption and high resolution are secondary considerations in such devices.
Typically, the light source providing back-illumination to LCD devices is a Cold Cathode Fluorescent Light (CCFL).
Many colors seen by humans are not discernible on standard red-green-blue (RGB) monitors. By using a display device with more than three primary colors, the reproducible color gamut of the display is expanded Additionally or alternatively, the brightness level produced by the display may be significantly increased. Embodiments of the present invention provide systems and methods of displaying color images on a display device, for example, a thin profile display device, such as a liquid crystal display CCD) device, using more than three primary colors.
Exemplary embodiments of an aspect of the invention provide improved multi-primary display devices using more than three sub-pixels of different colors to create each pixel. In embodiments of this aspect of the invention, the use of four or more different color sub-pixels, per pixel, allows for a wider color gamut and higher luminous efficiency. In some embodiments, the number of sub-pixels per pixel and the color spectra of the different sub-pixels may be optimized to obtain a desired combination of a sufficiently wide color gamut, sufficiently high brightness, and sufficiently high contrast.
In some embodiments of the invention, the use of more than three primary colors may expand the reproducible color gamut of the display by enabling the use of relatively narrow wavelength ranges for some of the primary colors, e.g., red, green and blue, thus increasing the saturation of those primary colors. To compensate for a potentially reduced brightness level from such narrower ranges, in some embodiments of the invention, broad wavelength range privy colors, e.g., specifically designed yellow and/or cyan, may be used in addition to the narrow wavelength range colors, thus increasing the overall brightness of the display. In further embodiments of the invention, additional primary colors (e.g., magenta) and/or different primary color spectra may be used to improve various other aspects of the displayed image. In accordance with embodiments of the invention, an optimal combination of color gamut width and over-all display brightness can be achieved, to meet the requirements of a given system, by designing specific primary colors and sub-pixel arrangements.
The color gamut and other attributes of a more-than-three primary color LCD device in accordance with embodiments of the invention may be controlled by controlling the spectral transmission characteristics of the different primary color sub-pixel filter elements used by the device. According to an aspect the invention, four or more different primary color sub-pixel filters are used, to produce four or more, respective, primary colors, for example, RGB and yellow (Y). In further embodiments of the invention, at least five different primary color sub-pixel filters are used, for example, RGB, Y and cyan (C) filters. In additional embodiments of the invention, at least six different primary color sub-pixel filters are used, for example, RGB, Y, C and magenta (M) filters.
The primary color sub-pixel filters for a more-than-three primary color LCD device in accordance with the invention may be selected in accordance with various criteria, for example, to establish sufficient coverage of a desired color gamut, to maximize the brightness level that can be produced by the display, and/or to adjust the relative intensities of the primary colors according to a desired chromaticity standard.
In accordance with embodiments of the invention, a multi-primary display with n primary colors may include an array of pixels, each pixel including n sub-pixels, wherein each sub-pixel has a predetermined aspect ratio, for example, n:1, which yields a desired aspect ratio, for example, 1:1, for each pixel.
According to farther embodiments of the invention attributes of a multi-primary LCD display may be controlled and/or affected by specific arrangements of the n sub-pixels forming each pixel and/or specific arrangements of the pixels. Such attributes may include picture resolution, color gamut wideness, luminance uniformity and/or any other display attribute that may depend on the arrangement of the pixels d/or sub-pixels.
According to one exemplary embodiment of the invention, color saturation may be improved by arranging the n primary colors in the n sub-pixels forming each pixel based on a hue order of the n primary colors.
According to another exemplary embodiment of the invention, optimal viewed image uniformity, e.g., optimally uniform luminance across the viewed image may be achieved by arranging the n primary color sub-pixels forming each pixel to yield a minimal variance in luminance between neighboring groups of sub-pixels. In some embodiments of the invention, the sub-pixel arrangement may be determined by mapping a plurality of sub-pixel arrangements, determining a luminance value of each mapped arrangement, transforming the luminance values from spatial coordinates to spatial frequencies, e.g., harmonics, for example, by applying a Fourier Transform to the calculated luminance values, and minimizing the amplitude of a harmonic, e.g., the first harmonic, of the transformation.
According to a further embodiment of the invention, the n primary sub-pixels are arranged within each pixel such that sub-sets of neighboring sub-pixels within the pixels have a relatively neutral white-balance.
According to exemplary embodiments of another aspect of the invention, there is provided a system and method for n-primary subpixel rendering of a displayed graphic object, for example, a character having a certain font The method may enable modification of the viewed contour and/or edges of the displayed graphic, for example, to reduce a color fringes effect of the viewed object. The method may include sampling the graphic image, assigning each sub-pixel an initial coverage value, applying to each sub-pixel a smoothing function, for example, calculating a weighted average of a neighboring group of sub-pixels, and assigning an adjusted coverage value to each sub-pixel in the group based on the values calculated by the smoothing function.
According to exemplary embodiments of yet another aspect of the invention, the reproducible bit-depth of a more-than-three primary color display may be expanded, i.e., a wider span of gray-levels may be obtained, compared to the bit-depth of three primary color displays, by reproducing at least some colors Bring combinations of only some of the primary color sub-pixels. This aspect of the invention may be advantageous in producing low gray-level pixels, because the variety of gray-levels may be particularly significant for the lower gray-levels. In some embodiments of this aspect of the invention, the gray-level of a pixel may be adjusted by adjusting the intensity of a sub-set of the n sub-pixels forming the pixel, for example, a sub-set capable of producing a substantially neutral white-balance.
The invention will be understood and appreciated more fully from the following detailed description of embodiments of the invention; taken in conjunction with the accompanying drawings in which:
In the following description, various aspects of the invention are described, with reference to specific embodiments that provide a thorough understanding of the invention; however, it will be apparent to one skilled in the art that the present invention is not limited to the specific embodiments and examples described herein. Further, to the extent that certain details of the devices, systems and methods described herein are related to known aspects of color display devices, systems and methods, such details may have been omitted or simplified for clarity.
While, in embodiments of the present invention, methods and systems disclosed in the above referenced patent applications may be used, for example, methods of converting source data to primary data, or methods of creating primary color materials or filters; in alternate embodiments, the system and method of the present invention may be used with any other suitable r-primary display technology, wherein n is greater than three. Certain embodiments described in these applications are based on rear or front projection devices, CRT devices, or other types of display devices. While the following description focuses mainly on n-primaries flat panel display devices in accordance with exemplary embodiments of the invention, wherein n is greater than three, preferably using LCDs, it should be appreciated that, in alternate embodiments, the systems, methods and devices of the present invention may also be used in conjunction with other types of display and other types of light sources and modulation techniques. For example, it will be appreciated by persons skilled in the art that the principles of the n-primary color display device of the invention may be readily implemented, with appropriate changes, in CRT displays, Plasma display, Light Emitting Diode (LED) displays, Organic LED (OLED) displays and Field Emissions Display (FED) devices, or any hybrid combinations of such display devices, as are known in the art.
The color gamut and other attributes of LCD devices in accordance with embodiments of the invention may be controlled by a number of parameters. These parameters include: the spectra of the back illumination element (light source), for example a Cold Cathode Fluorescent Light (CCFL); the spectral transmission of the LC cells in the LC array; and the spectral transmission of the color filters. In a 3-primaries display, the first two parameters, namely, the spectra of the light source and the spectral transmission of the LC cell are typically dictated by system constraints and, therefore, the colors for the filters may be selected straightforwardly to provide the required colorimetric values at the “corners” of the desired RGB triangle, as shown in
For a multi-primary display with more than three primary colors, in accordance, with embodiments of the invention, an infinite number of filter combinations can be selected to substantially overlap a required color gamut. The filter selection method of the invention may include optimizing the filter selection according to the following requirements: establishing sufficient coverage of a desired two-dimensional color gamut, for example, the NTSC standard gamut for wide-gamut applications and a “conventional” 3-color LCD gamut for higher brightness applications; maximizing the brightness level of a balanced white point that can be obtained from combining all the primary colors; and adjusting the relative intensities of the primary colors in accordance with a desired illumination standard, e.g., the D65 white point chromaticity standard of High Definition TV (HDTV) systems.
Embodiments of the present invention provide systems and methods of displaying color images on a display device, for example, a thin profile display device, such as a liquid crystal display (LCD) device, using more than three colors. A number of embodiments of the invention are described herein in the context of an LCD device with more than three primary colors; wherein the number of color filters used per pixel is greater than three. This arrangement has several advantages in comparison to conventional RGB display devices. First, the n-primary display device in accordance with the invention enables expansion of the color gamut covered by the display. Second, the device in accordance with the invention enables a significant increase in the luminous efficiency of the display; in some cases, an increase of about 50 percent or higher may be achieved, as discussed below. This feature of the invention is particularly advantageous for portable (e.g., battery-operated) display devices, because increased luminous efficiency may extend the usable time of a battery after each recharging and/or reduce the overall weight of the device by using a lighter battery. Third, a device in accordance with the invention enables improved graphics resolution by efficient utilization of a technique for arranging primary colors in sub-pixels, as described in detail below with reference to specific embodiments of the invention.
In some multi-primary display devices in accordance with embodiments of the invention, more than three sub-pixels of different colors are used to create each pixel. In embodiments of the invention, the use of four or more different color sub-pixels, per pixel allows for a wider color gamut and higher luminous efficiency. In some embodiments, the number of sub-pixels per pixel and the transmittance spectrum of the different sub-pixel filters may be optimized to obtain a desired combination of a sufficiently wide color gamut sufficiently high brightness, and sufficiently high contrast.
For example, the use of more than three primaries in accordance with an embodiment of the invention may enable expansion of the reproducible color gamut by enabling the use of filters with narrower transmission curves (e.g., narrower effective transmission ranges) for the R, G and B color filters and, thus, increasing the saturation of the R, G and B sub-pixels. To compensate for such narrower ranges, in some embodiments of the invention, broader band sub-pixel filters may be used in addition to the RGB saturated colors, thus increasing the overall brightness of the display. In accordance with embodiments of the invention, an optimal combination of color gamut width and over-all picture brightness can be achieved, to meet the requirements of a given system, by appropriately designing the sub-pixel filters of the n-primary display and the filter arrangement.
Y(3-colors)=(Y(color1)+Y(color2)+Y(color3))/3
In an analogous manner, the normalized brightness level of a 5-color LCD device in accordance with an embodiment of the present invention may be calculated as follows:
Y(5-colors)=(Y(color1)+Y(color2)+Y(color3)+Y(color4)+Y(color5))/5
wherein Y(color1) denotes the brightness level of the i'th primary color and Y(n-colors) denotes the over-all, normalized, brightness level of the n-primaries display.
Although the color gamut illustrated in
As shown in
Other designs may be used in embodiments of the invention, including the use of different primaries and/or additional primaries (e.g., 6 color displays), to produce higher or lower brightness levels, a wider or narrower color gamut, or any desired combination of brightness level and color gamut, as may be suitable for specific applications.
In accordance with embodiments of the invention, a multi-primary display with n primary colors may include an array of pixels, each pixel including n sub-pixels, wherein each sub-pixel has a predetermined aspect ratio, for example, n:1, which yields a desired aspect ratio, for example, 1:1, for each pixel.
The sub-pixels in each pixel may be configured in a one dimensional or a two-dimensional array.
If n is not a prime number, i.e., if n=1*k wherein k≠1 and 1≠1 are integers, it is possible to configure the sub-pixels in two-dimensional configurations, e.g., in 1 rows and k columns.
For example, as shown in
According to embodiments of the invention, some of the attributes of an n-primary LCD display may be related to the arrangement of the n sub-pixels forming each pixel as described hereinafter. Such attributes may include, for example, image resolution, color saturation, viewed luminance uniformity, and/or any display attribute that may be affected by sub-pixel arrangements described herein.
According to an exemplary embodiment of the invention, desired color saturation may be achieved by arranging the n primary colors forming each pixel based on a hue order of the individual a primary colors. In this context, the hue order may be based on the circumferential sequence of the individual n primary colors on a chromaticity diagram, for example, the horseshoe diagram illustrated in
In order to avoid the viewed leakage effect described above, arrangements of sub-pixels according to exemplary embodiments of the invention may be designed to maximize the distance between sub-pixels of complementary primary colors and/or partly complementary sub-pixels. An arrangement of sub-pixels according to hue order in accordance with exemplary embodiments of the invention may minimize the effect of light leakage from one sub-pixel to another and, thus, increase the color saturation and minimize distortion of entire pixels.
According to another exemplary embodiment of the invention, to improve the viewed spatial uniformity of an image, viewed variations in the brightness of a spatially uniform image may be reduced by appropriately arranging the n primary color sub-pixels internally within each pixel, as follows.
According to exemplary embodiments of the invention, an array of pixels forming the LCD display may be broken-down into a plurality of identical basic repeating units. A basic repeating unit may contain a configuration and/or arrangement of one or more pixels, or a predefined combination of sub-pixels, which is repeated throughout the array of sub-pixels forming display.
A similar approach may be used for a more-than-three primary display wherein the sub-pixels are configured in one-dimensional or two-dimensional configurations as described above. For a two dimensional sub-pixel configuration, the relationships between sub-pixel colors in neighboring pixels on different rows as well as the relationships between sub-pixel colors in neighboring pixels of the same row may be analyzed in an analogous manner.
Luminance values of the primary colors may depend on a set of primary color filters and the type of backlight used by the display. Different filters and light sources may provide different primary color luminance values; therefore, the methods described herein for arranging the sub-pixels may yield sub-pixel arrangements for achieving optimal luminance uniformity for a given combination of backlight and filters.
According to an exemplary embodiment of the invention, a 5-primary display may include a set of five primary colors, denoted P1, P2, P3, P4 and P5, having luminance values of for example, 0.06, 0.13, 0.18, 0.29 and 0.34, respectively. According to this exemplary embodiment of the invention, there may be 24 different one dimensional arrangements of the primary colors. To determine an optimal arrangement of the sub-pixels, in an embodiment of the invention, a function transforming spatial coordinates to spatial frequencies, e.g., harmonics, for example, a Fourier Transform, may be applied to each arrangement, and the amplitude of the first harmonic of the transformation may be analyzed as a criterion for choosing an optimal arrangement. For example, a Fourier Transform analysis as described with reference to
The method may include mapping all possible arrangements of the n primary colors to the n sub-pixels for a selected sub-pixel configuration, as indicated at block 1001.
As indicated at block 1002, the known luminance values of each of the primary colors are used to calculate a set of luminance values as a function of sub-pixel position for each of the mapped sub-pixel arrangements of block 1001.
As indicated at block 1003, a transformation function, for example, a Fourier Transform of the position-dependent luminance values calculated at block 1002, may be calculated.
Since the eye is more sensitive to contrast variations at low spatial frequencies, the amplitude of the first harmonic of the transform may be analyzed for all arrangements, to select arrangements with a relatively small amplitude of the first harmonic, as indicated at block 1004.
According to alternative embodiments of the invention, block 1004 may include further operation techniques, for example, since the sensitivity of the eye may be different in different directions, the selection of an optimal arrangement may also be based on the direction of variation of the first harmonic.
According to exemplary embodiments of the invention, a computer running suitable software, or any other suitable combination of hardware and/or software, may be used to perform the method described above.
According to a further embodiment of the invention, the primary colors may be arranged in sub-pixels in a combination wherein each su-set of neighboring sub-pixels within a pixel may have a substantially neutral white-balance, i.e., each sub-set may be capable of producing light as close as possible to white light. An advantage of this arrangement is that it may enable high-resolution rendering of black-and-white images, for example, images of characters, e.g., black text over white background.
In the 5-primary one-dimensional configuration illustrated in
Another embodiment of the invention relates to a method of n-primary sub-pixel rendering of a displayed graphic object, for example, a character of a text font. When displaying a graphic object on a screen, resolution may be an important factor, especially when extrapolation or interpolation methods are used to resize graphic objects to a given screen resolution. For example, when a relatively small graphic object is enlarged, using up-scaling methods as are known in the art, to display a relatively large image of the graphic object, the clarity of the enlarged image may be impaired because of inaccurate extrapolation of data to create new pixels. This problem may be particularly apparent at or near the edges of a displayed graphic object, e.g., along the contour of the graphic object.
In order to improve the resolution and readability of monochromatic, high-contrast images, e.g., a black graphic image on white background, a gray-scale pixel rendering method may be used. A gray-scale pixel rendering method may include sampling each pixel of a pixel-matrix representation of the image to determine a percentage of the pixel-area covered by the graphic object for each partly-covered pixel and reproducing the pixel with a gray-level responsive, e.g., proportional, to the percentage of the pixel area covered by the graphic object. A drawback of this method may be a fuzziness of the object as shown in
An improvement of graphic object rendering may include sub-pixel rendering. Sub-pixel rendering for a LCD display may utilize a subpixel matrix instead of a full-pixel matrix.
According to an exemplary embodiment of the invention, a method for minimizing color fringes may be applied to a given sub-pixel configuration, for example, five-primary one dimensional arrangement 1101 (
Reference is made to
According to exemplary embodiments of the sub-pixel rendering method of the invention, each sub-pixel may be assigned with an initial coverage value, which may be related, e.g., proportional, to the percentage of the sub-pixel area covered by the graphic object, as illustrated schematically in
Reference is also made to
According to exemplary embodiments of the sub-pixel rendering method of the invention, an adjusted coverage value may be assigned to each of three subpixels, composing a pre-defined triad, based on a predetermined smoothing function, for example, a weighted average. The smoothing function may be used to reduce or eliminate variations in the initial coverage values of the different sub-pixels composing each sub-pixel triad. By adjusting the brightness of the sub-pixel in accordance with the adjusted coverage values, a substantially color-neutral luminance, e.g., a gray color, may be viewed throughout the image, and particularly along the contour of the graphic object, as described below.
According to an exemplary embodiment of the invention, the smoothing function may include a weighted average, wherein predetermined weights are assigned to the sub-pixels of the triad, for example, a weight of 1 may be assigned to each subpixel in the triad. According to one exemplary embodiment of the invention, an adjusted coverage value 1210 assigned to sub-pixel 1201 may be determined by averaging initial coverage value 1204 of subpixel 1201 and initial coverage values 1202 and 1206 of neighboring sub-pixels 1205 and 1203, respectively. According to this exemplary embodiment, sub-pixel 1201 may be assigned an adjusted coverage value of ⅙, which corresponds to a weighted average of a set of initial coverage values of the triad containing sub-pixel 1201, for example, initial coverage values (0, 0, 0.5). According to another exemplary embodiment of the invention, sub-pixel 1203 may be assigned an adjusted coverage value 1212 corresponding to a weighted average of initial coverage values 1204, 1206 and 1208 of sub-pixels 1201 and 1203 and 1207, respectively. According to this exemplary embodiment, sub-pixel 1203 may be assigned an effective coverage value of ⅓, which corresponds to a weighted avenge of a set of initial coverage values of the triad containing sub-pixel 1203, for example, coverage values (0, 0.5, 0.5).
According to further embodiments of the invention, the weighted average may include assigning a different weight to each sub-pixel.
According to exemplary embodiments of the invention, there may be n different triad arrangements for a one dimensional n-primary configuration. Thus, according to an exemplary embodiment of the invention, n different weighting functions may be defined to allow calculating an adjusted coverage value for each sub-pixel of the arrangement, e.g., arrangement 1101 (
According to another embodiment of the invention, a method forming color fringes may be applied to a six primary, two dimensional arrangement, e.g., arrangement 1102 (
As indicated at block 1301, the method may include, according to embodiments of the invention, sampling a two-dimensional graphic object at sub-pixel resolution and assigning an initial coverage value to each sub-pixel according to the corresponding relative coverage of the graphic object. For example, if the graphic object covers 50% of a certain sub-pixel, then the sub-pixel may be assigned an initial coverage value of 0.5.
As indicated at block 1302, the method according to embodiments of the invention may include calculating a smoothing function, for example, a running weighted average, i.e., a continual re-calculation, of the initial coverage values of sub-pixel triads.
As indicated at block 1303, an adjusted coverage value may be assigned to each sub-pixel according to the result of the smoothing function applied at block 1302.
According to embodiments of the invention, the sub-pixel rendering system may include receiving an input corresponding to a graphic object from a suitable application software 1310, for example, a word-processing software. The system may further include a graphic interpreter 1320, a sub-pixel rendering unit 1330, a video card Same buffer 1340, and an n-primary display 1350, which may include any type of more-than-three pry color display, for example, an n-primary color LCD display according to embodiments of the invention.
Application software 1310 may be used to define graphic objects, e.g., text characters, and their size and position.
Graphic interpreter 1320 may be used to translate the text and/or other graphic objects defined by application software 1310 into continuous two-dimensional objects, the contours of which may be defined by simple curves.
The two-dimensional graphic objects may be processed by sub-pixel rendering unit 1330, which may sample the graphic objects at the sub-pixel resolution of the display, to obtain a relative coverage at each sub-pixel, and may apply a smoothing function, as discussed above, to provide a smooth bitmap defining the image to be displayed.
The bitmap provided by sub-pixel rendering unit 1330 may be temporarily stored in graphic card frame buffer 1340 and may be further transferred and displayed on n-primary display 1350.
In TV applications, text and graphic information may appear in the form of sub-titles, closed captioning, or TELETEXT signals. In digital TV application, this information may be included in a broadcast MPEG format, and may be decoded by a MPEG decoder, for example, by a set-off box or a DVD player. According to embodiments of the invention, a data flow system supporting sub-pixel rendering as described herein may be used to support fee applications of digital TV, for example, interactive text and graphics presentations.
According to another embodiment of the invention, the n-primary color arrangements described above may be used to display a wider range of gray levels compared to a RGB LCD display.
A pre-defined bit depth of size bd may yield a range of 2bd gray levels for each one of the primary colors used in a display, e.g., an 8-bit depth may yield 256 gray-levels for each primary color. In conventional RGB LCD displays, a combination of all 3 primary colors is used in order to display most colors, or to adjust the gray-level of a given color. Therefore, the maximum number of gray-levels for each displayed color depends on the bit-depth, e.g., 256 gray levels, numbered 0 to 255, for an 8-bit depth, wherein levels 0 and 255 correspond to black and white, respectively. In such a display, the brightest displayable white may be obtained using level 255 for all three primaries. In a similar manner, the darkest displayable gray is obtained when all three primary-color sub-pixels are activated at level 1.
Since the pixels of an input image may include a wider range of gray-levels, i.e., a larger bitmap, for example, a 10-bit depth, many gray-levels may not be reproducible by existing displays. This problem may be particularly significant at low gray levels. Embodiments of the present invention may expand the reproducible bit-depth of a displayed image in a more-than-three primary display, for example, to a bit-depth of more than 8 bits, by reproducing additional gray-levels using combinations of only some of the sub-pixels in certain pixels or repeating units. This aspect of the invention may be advantageous in producing low gray-level pixels, because the variety of gray-levels may be particularly significant for the lower gray-levels.
According to exemplary embodiments of the invention, a more-than-three primary color sub-pixel arrangement, for example, 6-primary RGBMCY sub-pixel arrangement 1102 (
Although the above exemplary embodiments have been described for gray-level display, it will be appreciated by persons sided in the art that the n-primary arrangements described above may also be used to produce an expanded bit depth, i.e., a wider range of gray-levels, for colors of different tints and hues.
Reference is also made to
The method of
A first channel may be used to process the input data and to create an n-primary output as indicated at block 1402.
For the 6 primary colors illustrated in
Referring again to
As indicated at block 1404, a second channel may be used to process the input data based on the three-primary colors selected at block 1403.
The Input data may be further used to calculate a combination parameter as indicated at block 1405. The combination parameter calculation may be based on providing a smooth display, a required level of brightness or any other related display attribute. For example, for a high luminance input, combining the channels may provide an output including substantially the multi-primary output of the first channel. For a low-luminance input, combining the channels may provide an output including substantially the 3-primary output of the second channel. For a substantially medium luminance input, the output may include a combination of both channels.
The first and second channels may be smoothly combined as indicated at block 1406, as a function of the combination parameter calculated at block 1405.
While certain features of the invention have been illustrated and described herein, many modifications, substitutions, changes, and equivalents will now occur to those of ordinary skill in the art. It is, therefore, to be understood that the appended claims are intended to cover all such modifications and changes as the within the true spirit of the invention.
This application is a National Phase Application of PCT International Application No PCT/IL03/00307, International Filing Date Apr. 13, 2003, claiming priority of U.S. Provisional Patent Application 60/371,419, filed Apr. 11, 2002.
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/IL03/00307 | 4/13/2003 | WO | 00 | 2/2/2005 |
Publishing Document | Publishing Date | Country | Kind |
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WO03/088203 | 10/23/2003 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
3699244 | Cohen et al. | Oct 1972 | A |
3870517 | Ota et al. | Mar 1975 | A |
4390893 | Russell et al. | Jun 1983 | A |
4751535 | Myers | Jun 1988 | A |
4800375 | Silverstein et al. | Jan 1989 | A |
4843381 | Baron | Jun 1989 | A |
4843573 | Taylor et al. | Jun 1989 | A |
4892391 | Stewart et al. | Jan 1990 | A |
4952972 | Someya | Aug 1990 | A |
4953953 | Fergason | Sep 1990 | A |
4985853 | Taylor et al. | Jan 1991 | A |
4994901 | Parulski et al. | Feb 1991 | A |
5042921 | Sato et al. | Aug 1991 | A |
5087610 | Hed | Feb 1992 | A |
5184114 | Brown | Feb 1993 | A |
5191450 | Yajima et al. | Mar 1993 | A |
5214418 | Fukumura et al. | May 1993 | A |
5233183 | Field | Aug 1993 | A |
5233385 | Sampsell | Aug 1993 | A |
5243414 | Dalrymple et al. | Sep 1993 | A |
5337068 | Stewart et al. | Aug 1994 | A |
5345322 | Fergason | Sep 1994 | A |
5375002 | Kim et al. | Dec 1994 | A |
5416890 | Beretta | May 1995 | A |
5447811 | Buhr et al. | Sep 1995 | A |
5455600 | Friedman et al. | Oct 1995 | A |
5563621 | Silsby | Oct 1996 | A |
5565742 | Shichao | Oct 1996 | A |
5592188 | Doherty et al. | Jan 1997 | A |
5614925 | Braudaway et al. | Mar 1997 | A |
5631734 | Stern et al. | May 1997 | A |
5642176 | Abukawa et al. | Jun 1997 | A |
5650942 | Granger | Jul 1997 | A |
5657036 | Markandey et al. | Aug 1997 | A |
5724062 | Hunter | Mar 1998 | A |
5736754 | Shi et al. | Apr 1998 | A |
5740334 | Lin et al. | Apr 1998 | A |
5751385 | Heinze | May 1998 | A |
5784038 | Irwin | Jul 1998 | A |
5821913 | Mamiya | Oct 1998 | A |
5835099 | Marimont | Nov 1998 | A |
5841494 | Hall | Nov 1998 | A |
5844540 | Terasaki | Dec 1998 | A |
5844699 | Usami et al. | Dec 1998 | A |
5859508 | Ge | Jan 1999 | A |
5863125 | Doany | Jan 1999 | A |
5870530 | Balasubramanian | Feb 1999 | A |
5872898 | Mahy | Feb 1999 | A |
5892891 | Dalal et al. | Apr 1999 | A |
5909227 | Silverbrook | Jun 1999 | A |
5936617 | Uchino et al. | Aug 1999 | A |
5982347 | Shigeta et al. | Nov 1999 | A |
5982541 | Li et al. | Nov 1999 | A |
5999153 | Lind et al. | Dec 1999 | A |
6018237 | Havel | Jan 2000 | A |
6058207 | Tuijn et al. | May 2000 | A |
6069601 | Lind et al. | May 2000 | A |
6072464 | Ozeki | Jun 2000 | A |
6097367 | Kuriwaki et al. | Aug 2000 | A |
6100861 | Cohen et al. | Aug 2000 | A |
6115016 | Yoshihara et al. | Sep 2000 | A |
6144420 | Jung | Nov 2000 | A |
6147720 | Guerinot et al. | Nov 2000 | A |
6160596 | Sylvester et al. | Dec 2000 | A |
6191826 | Murakami et al. | Feb 2001 | B1 |
6198512 | Harris | Mar 2001 | B1 |
6220710 | Raj et al. | Apr 2001 | B1 |
6224216 | Parker et al. | May 2001 | B1 |
6231190 | Dewald | May 2001 | B1 |
6236390 | Hitchcock | May 2001 | B1 |
6236406 | Li | May 2001 | B1 |
6239783 | Hill et al. | May 2001 | B1 |
6243070 | Hill et al. | Jun 2001 | B1 |
6246396 | Gibson et al. | Jun 2001 | B1 |
6256073 | Pettitt | Jul 2001 | B1 |
6259430 | Riddle et al. | Jul 2001 | B1 |
6262710 | Smith | Jul 2001 | B1 |
6262744 | Carrein | Jul 2001 | B1 |
6280034 | Brennesholtz | Aug 2001 | B1 |
6304237 | Karakawa | Oct 2001 | B1 |
6324006 | Morgan | Nov 2001 | B1 |
6366291 | Taniguchi et al. | Apr 2002 | B1 |
6380961 | Van Der Loop et al. | Apr 2002 | B1 |
6384839 | Paul | May 2002 | B1 |
6388648 | Clifton et al. | May 2002 | B1 |
6407766 | Ramanujan et al. | Jun 2002 | B1 |
6456301 | Huang | Sep 2002 | B1 |
6459425 | Holub et al. | Oct 2002 | B1 |
6467910 | Sato | Oct 2002 | B1 |
6498592 | Matthies | Dec 2002 | B1 |
6538742 | Ohsawa | Mar 2003 | B1 |
6570584 | Cok et al. | May 2003 | B1 |
6577291 | Hill et al. | Jun 2003 | B2 |
6580482 | Hiji et al. | Jun 2003 | B1 |
6594387 | Pettitt et al. | Jul 2003 | B1 |
6595648 | Woodgate et al. | Jul 2003 | B1 |
6633302 | Ohsawa | Oct 2003 | B1 |
6687414 | Edgar | Feb 2004 | B1 |
6707516 | Johnson et al. | Mar 2004 | B1 |
6750992 | Holub | Jun 2004 | B1 |
6833888 | Song et al. | Dec 2004 | B2 |
6870523 | Ben-David et al. | Mar 2005 | B1 |
6882384 | Sharp | Apr 2005 | B1 |
6897876 | Murdoch et al. | May 2005 | B2 |
6952194 | Yanfazaki et al. | Oct 2005 | B1 |
6972736 | Wada et al. | Dec 2005 | B1 |
7129955 | Motomura | Oct 2006 | B2 |
7136083 | Tezuka et al. | Nov 2006 | B2 |
7206005 | Yamashita et al. | Apr 2007 | B2 |
7268757 | Ben-David et al. | Sep 2007 | B2 |
7492379 | Credelle et al. | Feb 2009 | B2 |
20010035922 | Park et al. | Nov 2001 | A1 |
20020005829 | Ouchi | Jan 2002 | A1 |
20020015046 | Okada et al. | Feb 2002 | A1 |
20020024618 | Imai | Feb 2002 | A1 |
20020051111 | Greene et al. | May 2002 | A1 |
20020054424 | Miles | May 2002 | A1 |
20020060689 | Iwata et al. | May 2002 | A1 |
20020061369 | Kunimatsu et al. | May 2002 | A1 |
20020097365 | Yang et al. | Jul 2002 | A1 |
20020122019 | Baba et al. | Sep 2002 | A1 |
20020149546 | Ben-Chorin et al. | Oct 2002 | A1 |
20020163526 | Haseltine | Nov 2002 | A1 |
20020167528 | Edge | Nov 2002 | A1 |
20020186229 | Brown Elliott | Dec 2002 | A1 |
20020191130 | Liang et al. | Dec 2002 | A1 |
20030085906 | Elliott et al. | May 2003 | A1 |
20030146891 | Poliakine | Aug 2003 | A1 |
20040177323 | Kaasila et al. | Sep 2004 | A1 |
20070001994 | Roth | Jan 2007 | A1 |
20080024410 | Ben-David et al. | Jan 2008 | A1 |
20080030447 | Ben-David et al. | Feb 2008 | A1 |
Number | Date | Country |
---|---|---|
0367848 | May 1990 | EP |
0367849 | May 1990 | EP |
0547603 | Jun 1993 | EP |
0653879 | May 1995 | EP |
1 087 341 | Mar 2001 | EP |
2 139 393 | Nov 1984 | GB |
59 159131 | Sep 1984 | JP |
60 263122 | Dec 1985 | JP |
62 222774 | Sep 1987 | JP |
3092888 | Apr 1991 | JP |
07043658 | Feb 1995 | JP |
8-248410 | Sep 1996 | JP |
09251160 | Sep 1997 | JP |
10-307205 | Nov 1998 | JP |
2000-171799 | Jun 2000 | JP |
2000253263 | Sep 2000 | JP |
2000321993 | Nov 2000 | JP |
2000-34732 | Dec 2000 | JP |
2000338950 | Dec 2000 | JP |
2001209047 | Aug 2001 | JP |
2001-306023 | Nov 2001 | JP |
2000116789 | Nov 2001 | JP |
2001105148 | Jan 2002 | JP |
2002041022 | Feb 2002 | JP |
2002-091369 | Mar 2002 | JP |
2002173783 | Jun 2002 | JP |
2001123661 | Oct 2002 | JP |
2008280038 | Nov 2008 | JP |
2009230301 | Oct 2009 | JP |
1091083 | Nov 2010 | JP |
11-052327 | Mar 2011 | JP |
WO 9510160 | Apr 1995 | WO |
WO 9735424 | Sep 1997 | WO |
WO 9742770 | Nov 1997 | WO |
WO 0045368 | Aug 2000 | WO |
WO 0195544 | Dec 2001 | WO |
WO 0211112 | Feb 2002 | WO |
WO 0250763 | Jun 2002 | WO |
WO 02091299 | Nov 2002 | WO |
WO 02091348 | Nov 2002 | WO |
WO 02091349 | Nov 2002 | WO |
WO 02099557 | Dec 2002 | WO |
WO 02101644 | Dec 2002 | WO |
WO 03058587 | Jul 2003 | WO |
Entry |
---|
U.S. Appl. No. 10/017,546, filed Dec. 18, 2001, Ben Chorin et al. |
Supplementary European Search Report for EP 03706857 Date: Sep. 20, 2006. |
Mashairo Yamaguchi, Taishi Terji, Kenro Ohsawa, Toshio Uchiyama, Hideto Motomuro, Yuri Murakami and Nagaaki Ohyama “Color image reproduction based on the multispectral and multiprimary imaging: Experimental evaluation”, Device Independent Color, Color Hardcopy and applications VII, Proc SPIE, vol. 4663, pp. 15-26 (2002). |
Yamada et al., “12.1: LED Backlight for LCDs”, IBM Research, Tokyo Research Laboratory, Yamato, Japan, 1998, SID, pp. 1-4. |
Keith Jack, Video Demystified, 3rd Edition, LLH Technology Publishing 2001, pp. 215-219. |
Sugiura, T, “11.4: Invited Paper: EBU color Filter for LCDs”, Toppan Printing Co., Japan, SID, 2001, pp. 146-149. |
Horbie et al., “High Efficiency and high Visual Quality LCD Backlighting System”, Faculty of Science and Technology, Kelo University, Japan, pp. 1-4. |
International Search Report from PCT/IL02/00452, mailed on Dec. 9, 2002. |
International Search Report from PCT/IL03/00020. |
Supplementary European Search Report for EP 02 73 3203 Date: Sep. 25, 2005. |
Supplementary European Search Report for EP 04 01 1262 Date: Oct. 17, 2005. |
U.S. Appl. No. 09/710,895, filed Nov. 14, 2000, Ben-Chorin et al. |
Ken-ichi Takatori, Hiroshi Imai, Hideki Asada and Masao Imai “Field-Sequential Smectic LCD with TFT Pixel Amplifier ”, Functional Devices Research Labs, NEC Corp., Kawasaki, Kanagawa 216-8555, Japan, SID 01 Digest. |
“A critical view of Spectral Models Applied to Binary Color Printing”, Wyble and Berns, Color Research and Application, vol. 25, 2000, pp. 4-19. |
Jeffrey A. Shimizu, “Scrolling Color LCOS for HDTV Rear Projection”, SID 01 Digest, pp. 1072-1075. |
Francisco H. Imai, Color Science; “Spectral reproduction from scene to hardcopy”, Part 1-Multi-spectral acquisition ans spectral estimation using a Trichromatic Digital Camera System associated with absorbtion filters. |
Rosen et al., “Spectral Reproduction from Scene to Hardcopy II”, Image Processing. Munsell Color Science Laboratory, RIT-Proceedings of SPIE vol. 4300 (2001). |
Pointer, M. R., “The Gamut of Real Surface Colors”, Color Research & Appl. 5(3): 145-155, 1980. |
Ajito et al., “Expanded Color Gamut Reproduced by Six-Primary Projection Display”, Proc. SPIE, vol. 2954 (2000) pp. 130-137. |
Ajito et al., “Multiprimary Color Display for Liquid Crystal Display Projectors Using Diffraction Granting”, Optical Eng. 38(11) 1883-1888 (Nov. 1999). |
Ajito et al., “Color Conversion Method for Multiprimary Display Using Matrix Switching”, Optical Review, vol. 9, No. 3 (Dec. 2001), 191-197. |
Gunter Wyszecki and W.S. Stiles, Color Science: Concepts and methods, Quantative Data and Formulae, 2d Ed., 1982, pp. 179-183. |
Elliott et al., “13.3: Co-Optimization of Color AMLCD Subpixel Architecture and Rendering Algorithms”, ClairVoyante Laboratories, USA and AMLCD, Semiconductor Business, Korea, pp. 1-4. |
Elliott, C., “Active Matrix Display Layout Optimization for Sub-pixel Image Rendering”, ClairVoyante Laboratories, USA, pp. 1-5. |
Betrisey et al., “20.4: Displaced Filtering for Patterned Displays”, Microsoft Corporation, Society for Information Display, 2000, SID, pp. 1-4. |
Daly, Scott, “47.3: Analysis of Subtriad Addressing Algorithms by Visoal System Models” Center for Displayed Appearance, Sharp Laboratories of America, Camas, WA, USA, 2001, SID, pp. 1200-1203. |
Klompenhouwer et al., “13.4: Subpixel Image Scaling for Color Matrix Displays”, Phillips Research Laboratories, Einhoven, the Netherlands, 2002, SID, pp. 176-179. |
Credelle et al., “9-2: MTF of High-Resolution Pen Tile Matrix Displays”, Eurodisplay 2002, pp. 159-162. |
Bg Platt, J., “Optimal Filtering for Patterned Displays”, Microsoft Research, pp. 1-4. |
Hiyama et al., “LN-3: Four-Primary Color 15-in. XGA TFT-LCD with Wide Color Gamut”, Japan, Eurodisplay 2002, pp. 827-830 I I. |
Sugiura et al., “P-24: LCD Module Adopting a Color Conversion Circuit”, Japan, SID, 2002,pp. 288-291. |
Search Report from PCT/IL03/00307, mailed on Sep. 11, 2003. |
Supplementary European Search Report for Application No. EP 03 71 5317 mailed Feb. 11, 2009. |
Parameter Values for the HDTV Standards for Production and International Programme Exchange, Recommendation BT.709-6 (Jun. 2015), Approved in Jun. 17, 2015. |
Number | Date | Country | |
---|---|---|---|
20050122294 A1 | Jun 2005 | US |
Number | Date | Country | |
---|---|---|---|
60371419 | Apr 2002 | US |