This application claims the benefit of Korean Patent Application No. 2003-65222, filed on Sep. 19, 2003, in the Korean Intellectual Property Office, the disclosure of which is incorporated herein by reference.
1. Field of the Invention
The present invention relates to a display device such as a liquid crystal display (LCD) or a plasma display panel (PDP), and more particularly, to an image display apparatus such as a monitor, a television, or a mobile display which includes a display device and displays a subpixel-based color image, an image display method therefor, and a computer-readable recording medium for storing a computer program.
2. Description of the Related Art
Referring to
Such a conventional image display apparatus, which displays an image by subpixel rendering, can decrease occurrence of a jagged pattern. The jagged pattern usually occurs at a boundary of a fine character such as an italic font when the resolution of an input content is higher than a resolution at which an image display apparatus can display an image.
However, a color image displayed on the conventional image display apparatus displaying an image by subpixel rendering may have a color fringe due to a phase shift of subpixels when a brightness value rapidly changes among the subpixels at a boundary of the color image. The color fringe may be different depending on an arrangement of subpixels. For example, in the stripe arrangement shown in
A conventional apparatus for displaying an image based on a subpixel is disclosed in U.S. Pat. No. 5,341,153, entitled “Method of and Apparatus for Displaying a Multicolor Image.” In the conventional method and apparatus for displaying a high resolution multicolor image on a lower resolution display, a single image pixel is expressed with being divided into subpixels displaying R, G and B color components to increase the resolution of the display. However, such a conventional image display method and apparatus in which a subpixel of interest is expressed by an average of adjacent image pixels have disadvantages of increasing image blurring and causing a color fringe when brightness rapidly changes among chrominance components.
Unlike the conventional image display method and apparatus in which a subpixel is expressed by an average of adjacent image pixels, another conventional image display method and apparatus in which a chrominance component of a subpixel is expressed in consideration of characteristics of human sight is disclosed in U.S. Patent Publication No. 2002/0093521 A1, entitled “Methods and Systems for Improving Display Resolution in Images Using Subpixel Sampling and Visual Error Filtering.” In the conventional image display method and apparatus disclosed in U.S. Patent Publication No. 2002/0093521 A1, a luminance value of a chrominance component to be expressed by a subpixel is calculated using an optimal filter that is designed in consideration of the characteristics of human sight, i.e., a theoretical visibility range of a user, thereby improving a display resolution. As shown in
In addition, in the conventional image display methods and apparatuses, each subpixel displays only one among three colors, as shown in
The present invention provides a method of performing subpixel rendering to minimize a color fringe in an image display where each subpixel displays one among four or more colors.
The present invention also provides an image display apparatus for performing subpixel rendering to minimize a color fringe where each subpixel displays one among four or more colors.
The present invention also provides a computer-readable recording medium storing a computer program for performing subpixel rendering to minimize a color fringe where each subpixel displays one among four or more colors.
According to an aspect of the present invention, there is provided a method of displaying an image using a display pixel comprising at least one subpixel displaying one among four or more colors. The method comprises adjusting a target phase of a target subpixel using a difference between an absolute luminance value of a color to be displayed by the target subpixel and an absolute luminance value of a color to be displayed by at least one subpixel adjacent to the target subpixel, and obtaining a relative luminance value of the target subpixel from a relative luminance value of at least one image pixel using a target filter having the adjusted target phase as a center of the target filter. A brightness of the color displayed by the target subpixel may correspond to the relative luminance value of the target subpixel.
According to another aspect of the present invention, there is provided an apparatus for displaying an image using a display pixel comprising at least one subpixel displaying one among four or more colors. The apparatus comprises a phase adjustment unit which adjusts a target phase of a target subpixel using a difference between an absolute luminance value of a color to be displayed by the target subpixel and an absolute luminance value of a color to be displayed by at least one subpixel adjacent to the target subpixel, and a luminance value generation unit which generates a relative luminance value of the target subpixel from a relative luminance value of at least one image pixel using a target filter having the adjusted target phase as its center. A brightness of the color displayed by the target subpixel may correspond to the generated relative luminance value of the target subpixel.
According to still another aspect of the present invention, there is provided a computer-readable recording medium storing at least one computer program to control an apparatus for displaying an image using a display pixel comprising at least one subpixel displaying one among four or more colors. The computer program adjusts a target phase of a target subpixel using a difference between an absolute luminance value of a color to be displayed by the target subpixel and an absolute luminance value of a color to be displayed by at least one subpixel adjacent to the target subpixel, and obtains a relative luminance value of the target subpixel from a relative luminance value of at least one image pixel using a target filter having the adjusted target phase as its center. A brightness of the color displayed by the target subpixel may correspond to the relative luminance value of the target subpixel.
Additional aspects and/or advantages of the invention will be set forth in part in the description which follows and, in part, will be obvious from the description, or may be learned by practice of the invention.
These and/or other aspects and advantages of the invention will become apparent and more readily appreciated from the following description of the embodiments, taken in conjunction with the accompanying drawings of which:
Reference will now be made in detail to the embodiments of the present invention, examples of which are illustrated in the accompanying drawings, wherein like reference numerals refer to the like elements throughout. The embodiments are described below to explain the present invention by referring to the figures.
Hereinafter, a method of displaying an image according to the present invention will be described with reference to the accompanying drawings.
In the method of displaying an image according to the present invention, an image is displayed by display pixels as follows. A single display pixel comprises at least one subpixel. For example, the subpixels 9, 111 and 17 may asymmetrically constitute a display pixel, and the subpixels 13, 15 and 19 may asymmetrically constitute another display pixel. Each of the subpixels 9, 11, 13, 15, 17 and 19 displays one among four or more colors that may include, for example, red (R), green (G), blue (B) and white (W). For example, the six subpixels 9, 11, 13, 15, 17 and 19 may display R, G, G, R, B and W, respectively.
According to the present invention, the four or more colors may necessarily include a color having a high absolute luminance value, e.g., W.
In the method of displaying an image according to an embodiment of the present invention, three externally input colors, for example, R, G and B, are converted into four or more colors, for example, R, G, B and W, in operation 8. In addition to color conversion, gamma compensation may be performed in operation 8. In another embodiment of the present invention, the image display method shown in
A target phase of a target subpixel is adjusted using a difference between an absolute luminance value of a color to be displayed by the target subpixel and an absolute luminance value of a color to be displayed by at least one subpixel adjacent to the target subpixel in operation 10. A target subpixel is defined as a subpixel that is a current target in obtaining a relative luminance value according to the method of displaying an image according to the present invention. The absolute luminance value is defined as a luminance value that identifies a particular color included in a color gamut from white to black and differs from a relative luminance value defined as a degree of brightness of each color included in the color gamut. A phase indicates the center of a filter corresponding to a subpixel. Accordingly, the center of a target filter corresponding to a target subpixel is defined as a target phase (also referred to as a target phase of a target subpixel), and the center of an adjacent filter corresponding to a subpixel adjacent to the target subpixel is defined as an adjacent phase.
According to a first embodiment of the present invention, when an adjacent subpixel displays color having a high absolute luminance value, a target phase may be shifted such that a distance between the target phase and the center of gravity of the adjacent subpixel becomes farther. The center of gravity indicates the center of an area occupied by a subpixel in physical space. For example, when an adjacent subpixel displays white, a target phase must be shifted such that a distance between the target phase and the center of gravity of the adjacent subpixel displaying white becomes larger in order to reduce a color fringe. However, when the target phase is shifted too far from the center of gravity of the adjacent subpixel, a resolution of an image displayed by the target subpixel decreases. Accordingly, an appropriate trade-off may be set.
Each subpixel shown in
When the target subpixel 52 displays B and the adjacent subpixel 56 displays a color, for example, W, having a high absolute luminance value, the target phase 40 can be shifted such that a distance between the target phase 40 and the center-of-gravity 44 of the adjacent subpixel 56 becomes larger. For example, the target phase 40 shown in
According to a second embodiment of the present invention, a target filter may be made to overlap at least one adjacent filter by shifting a target phase and an adjacent phase of at lease one adjacent subpixel.
According to a third embodiment of the present invention, a target filter can be made to overlap one or more adjacent filters in a single common area by shifting a target phase and an adjacent phase of at lease one adjacent subpixel.
When a target filter overlaps at least one adjacent filter, as described in the second and third embodiments, a color fringe caused by a radical change in brightness of color between subpixels is minimized.
The second and third embodiments of the present invention will be described in detail with reference to
According to the second and third embodiments, all of the target phase 40 and the adjacent phases 38 and 42 may be shifted, for example, to the left, as shown in
According to the present invention, a determination whether the absolute luminance value of the color to be displayed by the target subpixel is greater than the predetermined luminance value is made in operation 60. According to the present invention, the predetermined luminance value may be set to be close to an absolute luminance value of green.
Where a determination is made that the absolute luminance value of the color to be displayed by the target subpixel is greater than the predetermined luminance value, a high-luminance filter is determined as the target filter in operation 62, and the process goes to operation 12. The color displayed by the target subpixel having the higher absolute luminance value than the predetermined luminance value is Y in YCbCr, luminance (L) in Lab, white, cyan, or yellow in an opponent color space. A high-luminance filter has a characteristic of filtering a high luminance component of the color.
According to embodiments of the present invention, where a determination is made that an absolute luminance value of a color to be displayed by a target subpixel 70 is greater than the predetermined luminance value, a target phase may be positioned at a center of gravity 74 of the target subpixel 70 in physical space in operation 62. Accordingly, a target phase positioned at the center-of-gravity 74 becomes the center of the high-luminance filter determined as a target filter 72. As described above, the high-luminance filter to be applied to a subpixel displaying a color having a relatively high absolute luminance value is formed to be independent of adjacent filters.
According to embodiments of the present invention, where a determination is made that an absolute luminance value of a color to be displayed by the target subpixel 70 is greater than the predetermined luminance value, the target phase 74 may be shifted such that a distance between the target phase 74 and the adjacent phases 80, 82 and 84 becomes larger in operation 62. Low-luminance filters 90, 92 and 94 have the adjacent phases 80, 82 and 84, respectively, as their centers. The shifted position of the target phase becomes the center 74 of the high-luminance filter determined as the target filter 72. In other words, when adjacent filters are low-luminance filters, a target filter is shifted such that a distance between the target filter and the adjacent filters becomes larger.
Meanwhile, where a determination is made that the absolute luminance value of the color to be displayed by the target subpixel is equal to or less than the predetermined luminance value, a low-luminance filter is determined as the target filter in operation 64, and the process goes to operation 12. A low luminance filter has a characteristic of filtering a low luminance component of the color.
According to embodiments of the present invention, where a determination is made that an absolute luminance value of a color to be displayed by the target subpixel 50 shown in
Similarly, where a determination is made that an absolute luminance value of a color to be displayed by the target subpixel 54 shown in
Consequently, referring to
According to embodiments of the present invention, where it is determined that an absolute luminance value of a color displayed by a target subpixel 116 is equal to or less than the predetermined luminance value, a target phase positioned at the center of gravity of the target subpixel 116 and adjacent phases respectively positioned at the centers of gravity of adjacent subpixels 118 and 120 are shifted so that a target filter 110 overlaps adjacent filters 112 and 114. Here, the low-luminance filter 110 overlapping the adjacent filters 112 and 114 is determined as a target filter corresponding to the target subpixel 116. In other words, the target filter 110 shown in
The high-luminance filter and the low-luminance filter may change according to the position of a display pixel comprising a target subpixel in physical space.
After operation 10 shown in
After operation 10, contribution degrees of respective M×N coefficients included in the target filter (where M and N are positive integers equal to or greater than 1) are determined in operation 140. A contribution degree indicates how much a coefficient included in the target filter contributes to displaying the color of the target subpixel. For example, an image pixel corresponding to a coefficient having a contribution degree of “0” does not contribute to the color display of a display subpixel and an image pixel corresponding to a coefficient having a contribution degree of “1” fully contributes to the color display of the display subpixel. Such a contribution degree may change according to at least one among a ratio between a resolution of an image and a resolution of an image display apparatus, an arrangement of subpixels, a color or luminance to be displayed by a subpixel, and a type of target filter. A type of target filter indicates whether a target filter is a high-luminance filter or a low-luminance filter.
For example, when M=N=3, the target filter may be implemented as shown in
More specifically, a size M×N of the target filter is determined in operation 160. The size of the target filter may be determined according to a ratio between a resolution of an image and a resolution of an image display apparatus. For example, when an image has a resolution of A×B and an image display apparatus has a resolution of C×D, the size of the target filter may be determined such that M is proportional to A/C and N is proportional to B/D.
After operation 160, contribution degrees of respective coefficients included in the high- or low-luminance filter determined as the target filter are determined using the determined size of the target filter in operation 162.
After operation 140, the determined contribution degrees are respectively multiplied by relative luminance values of image pixels corresponding to the coefficients of the target filter in operation 142.
For example, where the target filter is implemented as shown in
Operations 142 and 144 are expressed as Expression (1).
In Expression (1), Sout(i) indicates a relative luminance value of a target subpixel, (k, l) is an index of a coefficient fkl included in the target filter, 1≦k≦M, and 1≦l≦N. M(k, l) is a contribution degree of the coefficient fkl, and 0≦M(k, l)≦1≦l(k, l) indicates a relative luminance value of an image pixel corresponding to the coefficient fkl. In other words, a target filter having M×N coefficient(s) converts the relative luminance value(s) of respective M×N image pixel(s) into a relative luminance value to be expressed by a single subpixel.
According to embodiments of the present invention, taking into account a visual modulation transfer function (MTF) characteristic, the target filter may be formed to be a mask having a predetermined shape by minimizing a contribution of a particular coefficient among the coefficient(s) included in the target filter, and the relative luminance value of the target subpixel may be obtained from a relative luminance value of at least one image pixel using the mask in operation 12.
For example, where the target filter is implemented, as shown in
Alternatively, where the target filter is implemented, as shown in
Alternatively, where the target filter is implemented, as shown in
Consequently, based on human perception of spatial resolution of color being lower than human perception of brightness shown in
In addition, in an image display method of the present invention, for a target filter of a target subpixel displaying a color having a relatively low absolute luminance value, the target filter is made to overlap adjacent filters, as shown in
Hereinafter, the structure and operations of an image display apparatus according to the present invention will be described with reference to the attached drawings.
The image display apparatus shown in
To perform the operation 8 shown in
To perform the operation 10 shown in
The phase adjustment unit 182 may be used to perform the above-described embodiments of an image display method. For example, to perform the above-described first embodiment, the phase adjustment unit 182 shifts a target phase such that a distance between the target phase and the center of gravity of an adjacent subpixel displaying a color having a high absolute luminance value becomes larger. To perform the above-described second embodiment, the phase adjustment unit 182 shifts a target phase and at least one adjacent phase such that a target filter overlaps an adjacent filter. To perform the above-described third embodiment, the phase adjustment unit 182 shifts a target phase and at least one adjacent phase such that a target filter overlaps at least one adjacent filter in a single common area.
To perform operation 60 shown in
To perform operation 62 or 64, the filter determiner 192 determines a high-luminance filter or a low-luminance filter as a target filter in response to the comparison result received from the comparator 190 and outputs the determination result to the luminance value generation unit 184 through an output terminal OUT2. For example, where a determination is made that the absolute luminance value of the color to be displayed by the target subpixel is greater than the predetermined luminance value based on the comparison result, the filter determiner 192 determines a high-luminance filter as the target filter. However, where a determination is made that the absolute luminance value of the color to be displayed by the target subpixel is equal to or less than the predetermined luminance value based on the comparison result, the filter determiner 192 determines a low-luminance filter as the target filter.
To perform the operation 12 shown in
To perform operation 140 shown in
To perform operation 142, the multiplier 212 multiplies each contribution degree determined by the contribution degree determiner 210 by a relative luminance value of an image pixel corresponding to a coefficient and outputs a multiplication result to the accumulator 214. For these operations, the multiplier 212 receives a relative luminance value of an image pixel corresponding to each coefficient through an input terminal IN6.
To perform operation 144, the accumulator 214 accumulates M×N multiplication results received from the multiplier 212 and outputs an accumulation result as a relative luminance value of a target subpixel through an output terminal OUT3.
Consequently, according to the apparatus for and method of displaying an image according to the present invention, relative luminance values of all subpixels are determined, and a color of each target subpixel is displayed at a brightness corresponding to a relative luminance value output through the output terminal OUT1.
A computer program for controlling an image display apparatus according to the present invention may be stored on a computer-readable recording medium. The computer program comprises instructions for operating a computer to adjust a target phase of a target subpixel using a difference between an absolute luminance value of a color to be displayed by the target subpixel and an absolute luminance value of a color to be displayed by a subpixel adjacent to the target subpixel, and instructions for operating the computer to obtain a relative luminance value of the target subpixel from a relative luminance value of at least one image pixel using a target filter having the adjusted target phase as a center of the target filter.
As described above, in an image display method and apparatus and a computer-readable recording medium for storing a computer program according to the present invention, subpixel rendering is achieved using different filters, that is, a relative luminance value to be displayed by a target subpixel is obtained using a target filter generated based on a difference in absolute luminance value between the target subpixel and adjacent subpixels, so that a color having a relatively low absolute luminance value may be displayed with a reduced color fringe and a color having a relatively high absolute luminance value may be displayed with an increased resolution. As a result, aliasing, which is a cause of quality degradation generated in displaying high-resolution images, is reduced. In addition, since a resolution of an image is improved without increasing a number of physical subpixels, a size of a driver chip may be reduced in comparison with increasing the number of physical subpixels to improve the resolution, fine processes are eliminated, and an amount of light transmitted by filters is increased. In particular, where white is additionally displayed by subpixels besides red, green and blue, an amount of output light is increased. Also, when a primary color is additionally displayable besides red, green, and blue, a color gamut displayed by an image display apparatus is extended.
Although a few embodiments of the present invention have been shown and described, it would be appreciated by those skilled in the art that changes may be made in these embodiments without departing from the principles and spirit of the invention, the scope of which is defined in the claims and their equivalents.
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