This Nonprovisional application claims priority under 35 U.S.C. § 119(a) on Patent Application No. 2006/307125 filed in Japan on Nov. 13, 2006, the entire contents of which are hereby incorporated by reference.
The present invention relates to a transmissive display device such as a liquid crystal display device, particularly to a transmissive display device using an active backlight capable of controlling luminance of emitted light.
There are various types of color display in practical use. Thin-shaped displays are classified into (i) a self-emission type display such as a PDP (plasma display panel) and (ii) a non-emission type display such as an LCD (liquid crystal display). A transmissive LCD is well knows as the LCD, which is a non-emission type display. The transmissive LCD is configured such that a backlight is provided behind a liquid crystal panel.
Although not illustrated, electrode layers and alignment films are provided on the inner sides of the transparent substrates 101 and 102. By controlling an applied voltage to the liquid crystal layer 103, a transmission amount of light through the liquid crystal panel 100 is controlled for each pixel. In other words, in the transmissive LCD, the liquid crystal panel 100 controls the transmission amount of light irradiated from the backlight 110, thus carrying out display control.
Mainly employed for the backlight 110 is a backlight emitting white light having respective wavelengths of R, G, and B, which are necessary for color display. The backlight 110 and the color filter 106 work together to adjust each of transmittances for the R, G, and B light beams of the light, thereby arbitrarily setting luminance and hue in each pixel. For the backlight 110, a backlight including light sources for R, G, and B can be used.
For example, in the LCD, transmittance for output display information is controlled by a shutter operation of the liquid crystal panel 100 provided with the color filter 106 having portions corresponding to R, G, and B existing in each pixel. Specifically, the transmittance is controlled in a range from 0% to 100% by performing predetermined steps. Consider a case of allowing light from the light backlight 110 to pass therethrough by 100%. In this case, ideally, the light irradiated from the backlight is outputted with intact intensities in its relevant color components, so luminance is the maximum. Meanwhile, when the transmittance is set to be 0%, black display is attained. As such, in such a normal transmissive LCD carrying out display control through the shutter operation of the liquid crystal panel 100, the backlight 110 keeps on emitting light with the constant luminance.
Because the backlight 110 thus keeps on emitting light with the constant luminance in the above structure, the backlight 110 consumes a lot of electric power. Specifically, even while the LCD displays dark images on its screen as a whole, the backlight 110 emits light with the maximum luminance. Most of the light thus emitted is blocked as a result of the shutter operation of the liquid crystal panel 100. As such, a large amount of light from the backlight 110 is wasted while electric power consumption in the backlight 110 is large. The electric power consumption of the backlight makes up a large proportion of electric power consumption in the LCD. Hence, such a waste is a very great loss for the entire system.
In order to solve the problem, Japanese Unexamined Patent Publication “Tokukai 2006-47594 (published on Feb. 16, 2006)” discloses a technique of reducing electric power consumption of backlights. In the technique, luminance adjustable active backlights are used to carry out display control of an LCD (luminance control) by controlling transmittance in the liquid crystal panel and luminance in the active backlight.
The LCD shown in
With reference to
First, consider a case of carrying out a display operation with 256 grayscale (0 to 255) in accordance with display data shown in
Meanwhile, consider a case of carrying out display control by using the active backlights as shown in
In the transmissive display device using such an active backlight, the luminance of light from each active backlight can be controlled with the entire screen regarded as one area. However, by carrying out backlight luminance control for a plurality of divided areas of the screen individually, it is possible to enhance the effect of reducing electric power consumption.
However, such backlight luminance control for each of the divided areas of the display screen suffers from such a problem that boundaries between display areas are likely to be viewed and recognized due to light leaking from adjacent display areas. The following explains such a problem with reference to
First, consider a case where a display operation is carried out in two adjacent display areas in accordance with display data shown in
b) illustrates the luminance of the backlight and the transmittance of each pixel, both of which are controlled in accordance with the display data shown in
The present invention is made in light of the foregoing problem, and its object is to realize a transmissive display device, which controls the luminance of a backlight based on a plurality of divided areas of a display screen, is capable of alleviating such a problem that a viewer recognizes the boundary of adjacent display areas, and is therefore capable of displaying an image with a desired luminance.
To achieve the object, a transmissive display device according to the present invention includes: a backlight, including a plurality of light emitting areas capable of controlling emitted-light luminances respectively; a transmission control panel for controlling transmittances for the light emitted from the backlight for display; emitted-light luminance setting means for setting emitted-light luminances in the light emitting areas of the backlight respectively; and transmittance setting means for setting the transmittances in pixels of the transmission control panel in accordance with the emitted-light luminances in the light emitting areas of the backlight respectively, the emitted-light luminance setting means setting the emitted-light luminances such that either a difference between emitted-light luminances in adjacent emitting areas of the backlight or a ratio of the emitted-light luminances in the adjacent light emitting areas is not more than a tolerance value.
According to the above configuration, the emitted-light luminance setting means sets the emitted-light luminances in the light emitting areas of the backlight such that a difference between the emitted-light luminances in adjacent light emitting areas or a ratio of the emitted-light luminances in the adjacent light emitting areas is not more than the tolerance value. This reduces an undesired difference between the luminances of the adjacent areas due to leakage of light, thereby restraining such a problem that a boundary between the areas is viewed and recognized.
Additional objects, features, and strengths of the present invention will be made clear by the description below. Further, the advantages of the present invention will be evident from the following explanation in reference to the drawings.
a) is a diagram illustrating an exemplary display data used in the liquid crystal display device shown in
Each of
Each of
a) is a diagram illustrating exemplary display data used in a liquid crystal display device.
Each of
One embodiment of the present invention will be described with reference to
The liquid crystal display device is configured such that the CPU 12 sends image information, stored in the RAM 11, to the active BL (backlight) controller 13. The active BL controller 13 uses the liquid crystal drivers 14 and 15 to control transmittance in the liquid crystal panel 20, and uses the backlight luminance adjusting sections 16 to control the luminance of the backlight 17.
Here, the backlight 17 is a backlight emitting white light including the wavelengths of the three colors: R, G, and B. The backlight 17 includes four light emitting areas 17A to 17D so as to correspond to display areas obtained by dividing the display screen of the liquid crystal panel 20 in four, respectively. Further, the backlight 17 is an active backlight capable of adjusting the luminances of light beams from the light emitting areas 17A to 17D individually. The backlight luminance adjusting sections 16 are made up of backlight luminance adjusting sections 16A to 16D, which control the luminances of the emitted light beams respectively.
In other words, in the liquid crystal display device according to the present embodiment, the display screen of the liquid crystal panel 20 is divided into the plurality of areas, and the transmittances in the liquid crystal panel and the luminances of the light beams from the active backlight are controlled for each of the areas thus divided. In accordance with the control, the liquid crystal display device carries out display control.
With reference to
First, consider a case where display grayscale is 256 grayscale (0 to 255) and a display operation is carried out in accordance with display data shown in
In the display control, the luminances of light beams from the backlight are controlled so as to coincide with the maximum luminance values corresponding to the areas A to D and set in the display data, respectively, as shown in
As such, even when the maximum luminance value of the entire screen of the liquid crystal display device is 128, only the backlight luminance value for the area A including the pixels corresponding to the maximum luminance value is set at 128, and the luminance values of the other areas B to D are set at values lower than 128. This makes it possible to further reduce the electric power consumption of the backlight as compared with the structure in which the luminance of the active backlight is controlled with the entire screen regarded as one area, as described in Japanese Unexamined Patent Publication “Tokukai 2006-47594 (published on Feb. 16, 2006)”.
In the above explanation, the display screen is divided into four areas, but the number of divided areas is not limited to this but may be arbitrary in the present invention. Further, the sizes and shapes of the divided areas may be all the same or different from each other.
Exemplified in the above explanation is the liquid crystal display device including the backlight provided with the white light source. With such a structure, it is possible to collectively adjust the respective luminances of the colors of R, G, and B, thereby simplifying the structure of the backlight. However, the present invention is not limited to this, and the liquid crystal display device may employ a structure using a backlight provided with light sources of the colors of R, G, and B.
In the example shown in
In view of this, the liquid crystal display device according to the present embodiment is configured to correct the backlight luminances in the adjacent areas such that the difference between the backlight luminances therein is equal to or smaller than a predetermined value. This is a feature of the liquid crystal display device. The following explains a way of correcting the backlight luminances, with reference to
a) illustrates an example of respective uncorrected backlight luminance values in areas obtained by dividing one screen into 25 (=5×5). Each of the backlight luminance values for the areas shown in
In the example shown in
In
b) illustrates a result of correction in cases where the aforesaid process is carried out by shifting the target area from left to right one after another in each of the rows. Assume that a column of areas each having a backlight luminance value of 0 virtually exist in the left side with respect to the area of the first column. As a result of such a process, the backlight luminance value for each of the areas is never smaller than the backlight luminance value for an area positioned on the left side with respect to the area by 3 or more.
c) illustrates a result of correction in cases where the same process is carried out by shifting the target area from right to left one after another in each of the rows. In this case, a value obtained by subtracting 2 from the backlight luminance value for the comparative area positioned on the right side with respect to the target area is compared with the backlight luminance value for the target area, and a larger one of the backlight luminance values thus compared is adopted as a corrected backlight luminance value for the target area. In this process, it is assumed that a column of areas each having a backlight luminance value of 0 virtually exist in the right side with respect to the area of the fifth row. As a result of such a process, the backlight luminance value of each of the areas is never smaller than the backlight luminance value of an area positioned on the right side with respect to the area by 3 or more.
d) illustrates a result of correction in cases where the same process is carried out by shifting the target area from upward to downward one after another in each of the rows.
As a result of the processes shown in
Note that the processes shown in
In each of the examples shown in
Also in this case, it is assumed that one screen is divided into 25 (=5×5) areas. In the first process, the target area is shifted from the area of the first row and first column to the area of the fifth row and fifth column as shown in
In the case where the difference between the backlight luminances for the adjacent areas meeting with their corners in contact are thus taken into consideration, the tolerance value of the difference between the backlight luminances for the adjacent areas meeting with their corners in contact may be same as or different from the tolerance value of the difference between the backlight luminances for the adjacent areas meeting with their sides in contact. For example, the tolerance value of the difference between the backlight luminances for the adjacent areas meeting with their side in contact can be 2, whereas the tolerance value of the difference between the backlight luminances for the adjacent areas meeting with their corners in contact can be 3.
The tolerance value of the difference between the backlight luminance values for the adjacent areas is not limited to the difference between the luminances of the backlight as with the above case, but may be set in accordance with a relative ratio of luminance values.
Further, the backlight luminance value of the area of the fourth row and first column among the backlight luminance values shown in
In the liquid crystal display device shown in
As shown in
The image data area dividing section 31 carries out a process of allocating input image data to the areas obtained by dividing the display screen of the liquid crystal panel 20. For ease of explanation, assume that the display screen is divided into two areas. The image data, which has been divided so as to correspond to the areas respectively, are stored in the in-area image memories 32a and 32b respectively. Processes by the function sections rendered the suffix “a” and processes by the function sections rendered the suffix “b” are the same apart from areas targeted for the processes. Hence, the following only explains the function sections rendered the suffix “a”.
The maximum luminance extracting section 33a extracts the maximum luminance value from the luminance values of all the pixel data stored in the in-area image memory 32a. The maximum luminance value thus extracted is recorded onto the maximum luminance storage section 34a.
In accordance with the maximum luminance value thus recorded onto each of the maximum luminance storage sections 34a and 34b, the BL candidate value calculating sections 35a and 35b, and the BL luminance difference adjusting section 38 determine the luminance of emitted light from the backlight for an area corresponding to the maximum luminance value.
Specifically, the maximum luminance values having been recorded onto the maximum luminance storage sections 34a and 34b are first written in the BL candidate value calculating sections 35a and 35b. The BL luminance difference adjusting section 38 reads out the maximum luminance values recorded onto the BL candidate value calculating sections 35a and 35b from the maximum luminance storage sections 34a and 34b respectively, and then compares and corrects the luminance values in accordance with, e.g., the processes shown in
The above explanation deals with the case where the backlight emits white light. However, the present invention is applicable to a case where the backlight is not provided with a white light source but is a color backlight provided with respective light sources for the colors of R, G, and B. In this case, the aforesaid processes may be carried out with respect to the respective luminance values of the R, G, and B light sources of the backlight. For example, consider a case where the light sources of the three colors of R, G, and B in the backlight are controlled independently. In this case, it is necessary to control differences between adjacent areas in the luminances of the light sources of the backlight for these three colors. For the control, the luminance values of the same colors are compared between the adjacent areas such that the luminance of the light of the backlight for each of the adjacent areas falls within a tolerable range. For example, in cases where a difference is set at, e.g., not more than 10 between the luminance value of each of R, G, and B of a first area having luminance values of (R, G, B)=(100, 100, 100) and the luminance value of each of R, G, and B of a second area adjacent to the first area and having luminance values of (R, G, B)=(200, 110, 80), the backlight luminance for the first area is changed to be (190, 100, 100) and the backlight luminance for the second area is changed to be (200, 110, 90).
The process of correcting the backlight luminance value in this liquid crystal display device (e.g., process of correcting the backlight luminance data shown in
In Step S1 of this algorithm, row is set for the number of dividing the display screen vertically into areas, column is set for the number of dividing the display screen horizontally, and diff is set for a tolerance value for a difference between the luminances of the areas. Next, in Step S2, initial values of the backlight for the areas are set. The luminances of the white backlight for the areas are stored in variables W[r,c] (where r falls within a range from 1 to the value indicated by row, and c falls within a range from 1 to the value indicated by column). In the case where the backlight is a color backlight, the luminances of the light sources of the backlight are stored in R[r,c], G[r,c], and B[r,c], not in W. The following explains a process in the case where the backlight is a white backlight. In the case where the backlight is a color backlight, the process is carried out three times for R, G, and B, not for W.
For the process, it is preferable to set at 0 the luminance value of a virtual area assumed to be positioned outside and adjacent to the display screen, but a memory area may be reduced with a method of judging the boundary. For easy understanding, it is assumed herein that the virtually existing adjacent area has a luminance value of 0.
In Step S3 to Step S6, processes corresponding to the processes shown in
Next, the process is carried out from the right end to the left end one after another in each of all the rows sequentially. Then, the process is carried out in the same manner in the vertical direction from downward to upward, and then from upward to downward. With the scanning thus done for four times, the values of W[r,c] are regarded as the luminance values of the backlight. A difference between the value of W[r,c] of an area and the luminance value of its adjacent area is not more than the tolerance value indicated by diff.
When the value of diff is set at 0 in the processes carried out in Step S3 to Step S6, the same effect is obtained as that in cases where all the backlight areas are handled as one area. Meanwhile, when the value of diff is set at the maximum value in the luminance value range (e.g., 255 in the case of 8 bits), the backlight luminance values after the processes are the same as those before the processes, i.e., the same as the uncorrected backlight luminance values, irrespective of the processes.
As described above, an area, which has a luminance value of 0 at a moment of input of data, may keep the luminance value of 0 after the processes of finding values to be finally used, as long as the transmittance of the liquid crystal is set at 0. However, such a process is omitted in this flowchart. In the case of the backlight provided with the light sources of the three colors R, G, and B, the aforesaid processes make it possible that a difference between luminances of areas respectively corresponding to the colors is a value not more than the value indicated by diff.
Further, by setting diff/2 as diff, the algorithm shown in
As described above, in cases where light leaks from one area to another area due to a difference between the areas in the luminance of the backlight, image quality is deteriorated more as the difference in luminance is larger. On the contrary, if the luminances of light from the backlight for the divided areas are rendered less different from each other, electric power consumption is less effectively reduced even by reducing the luminances of light of the backlight. Hence, it is important to actually determine a tolerance luminance value through experiment and simulation in consideration of liquid crystal and a degree of leakage of light between areas.
Thus far, the method of reducing a difference between adjacent areas in luminance to a certain value or less have been explained. However, in some cases, a ratio of the luminances therebetween is significant, rather than the difference in luminance. For example, when the backlight luminance value of one area is 1 and that of its adjacent area is 2, the backlight luminance values are different by 1 in value but are twice different in the ratio. Meanwhile, when the backlight luminance value of one area is 100 and that of its adjacent area is 99, the luminance values are different by 1 in value but are different by 1% in the ratio. Comparing the differences in luminance in the above cases, it is found that the difference in the luminance in the latter case is smaller as compared with that in the former case. As such, in some cases, it is preferable to use a ratio of the luminances of adjacent areas, instead of the absolute value of a difference therebetween. The following explains a method of causing a ratio of the luminance values of adjacent areas to fall within a certain ratio. Specifically, for example, in cases where the difference between the luminances by 10% or greater is not tolerated and the luminance values of the areas are 10 and 8 respectively, the luminance values are different by 20%, so a smaller one of the luminance values, i.e., the luminance value of 8 is increased to 9. Meanwhile, in cases where the luminance values of the areas are 100 and 90, a ratio of the luminance values is 90%, which is in the tolerance range, so no luminance value is changed.
Such a method using a ratio of luminances can be realized in substantially the same way as above. For example, in cases where scanning is carried out from right to left in the flowchart of
W[r,c]=max((W[r,(c−1)]−diff),W[r,c])
On the other hand, to adjust the luminances of the adjacent areas in accordance with not the difference therebetween but the ratio thereof, the following formula is used:
W[r,c]=max((W[r,(c−1)]×diff),W[r,c])
where diff is a parameter indicating a tolerance ratio of the luminances of the adjacent areas. In cases where the ratio thereof is tolerated up to, e.g., 90% as is the case with the above example, 0.9 is set at diff. In cases where the backlight is a color backlight, the same process is carried out for each of R, G, and B, as with the method using the tolerance value of the difference between the luminance values.
Further, by setting square root of diff as diff, the algorithm shown in
As with the aforesaid case of securely causing the difference between the luminances of the areas to be equal to or smaller than the luminance difference tolerance value diff, when securely causing the “ratio” to be equal to or smaller than the luminance difference tolerance value diff, it is possible to render the luminance of a certain area 0 as a luminance to be finally used, as long as the luminance of a certain area is originally 0.
The processing functions for comparing luminances in displaying an image are realized by a program. In the present embodiment, the program is stored in a computer-readable storage medium.
In the present embodiment, the storage medium may be a memory necessary for processing carried out by a computer provided in the liquid crystal display device shown in
In addition, the storage medium is a storage medium arranged so that it can be separated from the computer main body. The storage media hold a program in a fixed manner. Examples of such a storage medium include a tape, such as a magnetic tape and a cassette tape; a magnetic disk, such as a FD (Floppy® disk) and a hard disk; an optical disc, such as a CD-ROM/MO (Magnetic Optical Disc)/MD (Mini Disc)/DVD (Digital Versatile Disc); a card, such as an IC card (inclusive of a memory card)/optical card; and a semiconductor memory, such as a mask ROM, an EPROM (erasable programmable read only memory), an EEPROM (electrically erasable programmable read only memory), or a flash ROM. Alternatively, it is preferable if the storage medium is a storage medium carrying the program in a flowing manner as in the downloading of a program over the communications network. Further, when the program is downloaded over a communications network in this manner, it is preferable if the program for download is stored in the computer main body in advance or installed from another storage medium to the computer main body in advance.
Note that the content of the storage medium is not limited to the program, but may be data.
Note also that the description of embodiments describes a case where the present invention is applied to a liquid crystal display; however, the present invention is applicable to a general transmissive display in the same way.
A transmissive display device according to the embodiment of the present invention includes: a backlight 17, including a plurality of light emitting areas capable of controlling emitted-light luminances respectively; a liquid crystal panel 20 for controlling transmittances for the light emitted from the backlight 17 for display; an active BL controller 13 for setting emitted-light luminances in the light emitting areas of the backlight 17 respectively; and the active BL controller 13 for setting the transmittances in pixels of the liquid crystal panel 20 in accordance with the emitted-light luminances in the light emitting areas of the backlight 17 respectively, the active BL controller 13 setting the emitted-light luminances such that either a difference between emitted-light luminances in adjacent emitting areas of the backlight 17 or a ratio of the emitted-light luminances in the adjacent light emitting areas is not more than a tolerance value.
According to the above configuration, the active BL controller 13 sets the emitted-light luminances in the light emitting areas of the backlight 17 such that a difference between the emitted-light luminances in adjacent light emitting areas or a ratio of the emitted-light luminances in the adjacent light emitting areas is not more than the tolerance value. This reduces an undesired difference between the luminances of the adjacent areas due to leakage of light, thereby restraining such a problem that a boundary between the areas is viewed and recognized.
The transmissive display device according to the embodiment of the present invention can be configured such that: the active BL controller 13 includes: maximum luminance extracting section 33a and 33b and maximum luminance storage sections 34a and 34b for setting each of the emitted-light luminances of the light emitting areas of the backlight 17 at an emitted-light luminance minimally required for display on a pixel with a maximum luminance in the light emitting area; and BL candidate value calculating sections 35a and 35b for correcting the emitted-light luminances, set by the maximum luminance extracting section 33a and 33b and maximum luminance storage sections 34a and 34b, of the light emitting areas such that either the difference between the emitted-light luminances in the adjacent emitting areas or the ratio of the emitted-light luminances in the adjacent light emitting areas is not more than the tolerance value.
The transmissive display device according to the embodiment of the present invention can be configured such that: among the emitted-light luminances set by the maximum luminance extracting sections 33a and 33b and the maximum luminance storage sections 34a and 34b, the BL candidate value calculating sections 35a and 35b and the BL luminance difference adjusting section 38 extract a light emitting area having an emitted-light luminance whose difference from an emitted-light luminance of an adjacent light emitting area or whose ratio to the emitted-light luminance of the adjacent light emitting area is not less than the tolerance value, and increases the emitted-light luminance of the light emitting area thus extracted, so as to correct the difference between the emitted-light luminances of the adjacent light emitting areas or the ratio of the emitted-light luminances such that the difference or the ratio is not more than the tolerance value.
The transmissive display device according to the embodiment of the present invention can be configured such that: to correct the emitted-light luminances, the BL candidate value calculating sections 35a and 35b and the BL luminance difference adjusting section 38 repeat a correction process of (1) comparing an emitted-light luminance of a target area for correction with either (i) a value obtained by subtracting the tolerance value from an emitted-light luminance of at least one comparative area adjacent to the target area, or (ii) a value obtained by multiplying the tolerance value by the emitted-light luminance of said at least one comparative area, and (2) adopting a maximum value of the compared values as a corrected emitted-light luminance of the target area, the correction process includes a first process of sequentially shifting the target area from left to right in a display screen, a second process of sequentially shifting the target area from right to left in the display screen, a third process of sequentially shifting the target area from upward to downward in the display screen, and a fourth process of sequentially shifting the target area from downward to upward in the display screen, and during each of the first to fourth processes, the comparative area is a light emitting area having been set as a target area earlier than the target area currently being subjected to the correction process.
The transmissive display device according to the embodiment of the present invention can be configured such that: the BL candidate calculating sections 35a and 35b and the BL luminance difference adjusting section 38 maintain a light emitting area having an emitted-light luminance of 0 before correction such that the light emitting area has an emitted-light luminance of 0 after the correction.
According to the above configuration, the light emitting area having an emitted-light luminance of 0 before correction carries out a black display operation, so i is possible to save electric power by maintaining the emitted-light luminance to be 0 after the correction.
The present invention is not limited to the description of the embodiments above, but may be altered by a skilled person within the scope of the claims. An embodiment based on a proper combination of technical means disclosed in different embodiments is encompassed in the technical scope of the present invention.
Number | Date | Country | Kind |
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2006-307125 | Nov 2006 | JP | national |