Liquid crystal display device and driving method thereof
09734746 · 2017-08-15
Assignee
Inventors
Cpc classification
G09G2320/0242
PHYSICS
G09G2300/0452
PHYSICS
International classification
G09G3/20
PHYSICS
Abstract
A liquid crystal display device and a driving method thereof are disclosed. The method for driving the liquid crystal display device comprises the following steps: converting three primary color gray-scale data of a frame image to be displayed into multiple color gray-scale data; and presenting a first color field and a second color field of the frame image in sequence, wherein when each color field is presented, different sub pixels are driven according to a color of the backlight of the color field, the multiple color gray-scale data of the frame image, and pre-stored gray-scale data. According to the method, the color shift phenomena of the traditional liquid crystal display device can be eliminated.
Claims
1. A method for driving a liquid crystal display device, comprising the following steps: converting three primary color gray-scale data of a frame image to be displayed into multiple color gray-scale data, wherein multiple colors comprise three primary colors and a color different from the three primary colors; and presenting a first color field and a second color field of the frame image in sequence, wherein when each color field is presented, a backlight of a designated color of multiple colors is taken as a backlight of the color field, so that different sub pixels are driven according to a color of the backlight of the color field, the multiple color gray-scale data of the frame image, and pre-stored gray-scale data, the pre-stored gray-scale data comprising gray-scale data corresponding to said color different from the three primary colors of multiple color gray-scale data of a previous frame image.
2. The method according to claim 1, further comprising storing the gray-scale data corresponding to the color different from the three primary colors of multiple color gray-scale data of the frame image after the frame image is displayed and before a next frame image is displayed.
3. The method according to claim 1, wherein when the first color field of the frame image is presented, a backlight of one color of the three primary colors is taken as a backlight of the color field, gray-scale data of a color the same as a color of the backlight of the multiple color gray-scale data of the frame image is output to transparent sub pixels, and the pre-stored gray-scale data is output to other sub pixels.
4. The method according to claim 1, wherein when the second color field of the frame image is presented, a backlight of the color different from the three primary colors is taken as a backlight of the color field, gray-scale data of a color the same as a color of the backlight of the multiple color gray-scale data of the frame image is output to transparent sub pixels, and gray-scale data corresponding to colors of other sub pixels is output to other sub pixels.
5. The method according to claim 1, wherein when the frame image to be displayed is a first frame image, the pre-stored gray-scale data is zero.
6. The method according to claim 1, wherein brightness of the backlight of the color different from the three primary colors is lower than brightness of the backlight of one color of the three primary colors.
7. The method according to claim 1, wherein the color different from the three primary colors is white color or cyan color.
8. The method according to claim 2, further comprising substituting the pre-stored gray-scale data with the gray-scale data corresponding to the color different from the three primary colors of multiple color gray-scale data of the frame image.
9. A liquid crystal display device, which is driven through a driving method comprising the following steps: converting three primary color gray-scale data of one frame image to be displayed into multiple color gray-scale data, wherein multiple colors comprise the three primary colors and a color different from the three primary colors; and presenting a first color field and a second color field of the frame image in sequence, wherein when each color field is presented, a backlight of a designated color of multiple colors is taken as a backlight of the color field, so that different sub pixels are driven according to a color of the backlight of the color field, the multiple color gray-scale data of the frame image, and pre-stored gray-scale data, the pre-stored gray-scale data comprising gray-scale data corresponding to said color different from the three primary colors of multiple color gray-scale data of a previous frame image.
10. The liquid crystal display device according to claim 9, wherein an image refresh rate of the liquid crystal display device is higher than or equal to 120 Hz.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The accompanying drawings provide further understandings of the present disclosure and constitute one part of the description. The drawings are used for interpreting the present disclosure together with the embodiments, not for limiting the present disclosure. In the drawings:
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DETAILED DESCRIPTION OF THE EMBODIMENTS
(7) The present disclosure will be explained in details with reference to the embodiments and the accompanying drawings, whereby it can be fully understood how to solve the technical problem by the technical means according to the present disclosure and achieve the technical effects thereof, and thus the technical solution according to the present disclosure can be implemented. It should be noted that, as long as there is no structural conflict, all the technical features mentioned in all the embodiments may be combined together in any manner, and the technical solutions obtained in this manner all fall within the scope of the present disclosure.
(8)
(9) As shown in
(10) After a scanning of the first color field is completed, a second color field of the frame image is presented, and the white backlight is converted into a red backlight. The transparent sub pixels T is turned on, while the green sub pixels G and blue sub pixels B are both turned off. Since the transparent sub pixels T have reached 128 gray-scale when the first color field is presented before, a liquid crystal response process of the transparent sub pixels T is shown by curve R1 (i.e., a curve of the first group of curves in a dotted line box of the upper figure) in
(11) It can be seen from further analysis that, red color information of the frame image is formed through transmission during a time period in the dotted line box of the first group of curves in the upper figure of
(12) In order to solve the color shift problem of the traditional FSC liquid crystal display device, the embodiment of the present disclosure provides a new driving method. In the driving method, with respect to one frame image, gray-scale calculation is performed, and the frame image can be displayed using pre-stored gray-scale information of a previous frame image. The color shift phenomena can be eliminated through the above method.
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(14) In step S310, three primary color (RGB) gray-scale data of a frame image to be displayed is converted into multiple color gray-scale data, wherein multiple colors comprise three primary colors and a color different from the three primary colors, and RGB represent red color, green color, and blue color respectively.
(15) Specifically, the RGB gray-scale data (which is a data group in general) of a frame image to be displayed is converted into XR′G′B′ gray-scale data according to a certain conversion algorithm, wherein X represents the color different from the three primary colors. According to the present embodiment, multiple colors comprise four colors, i.e., the three primary colors and white color. That is, X is white color, which can be represented by W.
(16) For example, if the RGB gray-scale data of one pixel of one frame image is (63, 127, 191), the WR′G′B′ gray-scale data obtained after conversion is (66, 0, 119, 191).
(17) Of course, in other embodiments, X can be arranged to be cyan, which can be represented by C. The cyan color being selected as the color different from the three primary colors would facilitate the expanding of the color gamut of the liquid crystal display device, and thus the image displayed therein would become more colorful.
(18) In step S320, a first color field and a second color field of the frame image are presented in sequence, wherein when each color field is presented, a backlight of a designated color of multiple colors is taken as the backlight of the color field, and different sub pixels are driven according to a color of the backlight of the color field, the multiple color gray-scale data of the frame image, and pre-stored gray-scale data.
(19) Specifically, the step S320 comprises sub steps S3210 and S3220.
(20) In sub step S3210, when the first color field of the frame image is presented, a backlight of one color of the three primary colors is taken as the backlight of the color field, gray-scale data of a color, which is the same as the color of the backlight, of the multiple color gray-scale data of the frame image is output to transparent sub pixels, and the pre-stored gray-scale data is output to other sub pixels.
(21) In order to better illustrate the sub step S3210, a scanning process of the first color field will be described below with reference to
(22) It is assumed that the image to be displayed is a second frame image.
(23) Specifically, when the second frame image is displayed, the first color field is presented at first. A backlight of red color (i.e., one color of the three primary colors) is taken as the backlight of the color field, and the red backlight is activated. As shown by the data in row five of the “backlight” column of
(24) It should be noted that, the pre-stored gray-scale data comprises gray-scale data corresponding to said color different from the three primary colors of multiple color gray-scale data of a previous frame image. Specifically, according to the present embodiment, the pre-stored gray-scale data refers to gray-scale data corresponding to said color different from the three primary colors of a first frame image which is stored before the second frame image is displayed, i.e., the white color gray-scale data W1 of the first frame image.
(25) The output results of each of the sub pixels are shown by the data in row five of
(26) In addition, it should be noted that, when the frame image to be displayed is the first frame image, the pre-stored gray-scale data, i.e., the gray-scale data of the previous frame image, is zero.
(27) In sub step S3220, when the second color field of the frame image is presented, a backlight of the color different from the three primary colors is taken as the backlight of the color field, gray-scale data of a color, which is the same as the color of the backlight, of the multiple color gray-scale data of the frame image is output to transparent sub pixels, and gray-scale data corresponding to colors of other sub pixels is output to other sub pixels.
(28) Specifically, reference can be still made to
(29) When the scanning of the second color field comes to an end, the display of the second frame image is completed. The second frame image can be combined by the eyes taking advantage of the persistence of vision and based on the information received in sequence therein.
(30) It should be noted that, when the first color field of one frame image is presented, the gray-scale data corresponding to a color different from the three primary colors of the pre-stored multiple color gray-scale data of a previous frame image being output to other sub pixels would not result in that the present result of the first color field goes wrong. This is because, although the green sub pixels and the blue sub pixels are both turned on with a certain gray-scale in the first color field, the red backlight cannot transmit through the green sub pixels and the blue sub pixels due to the color filters arranged at the green sub pixels and the blue sub pixels respectively.
(31) The scanning processes of the first color field and the second color field are performed according to the above steps, whereby the color shift phenomena as shown in
(32) It can be discovered based on a principle of the method for driving the liquid crystal display device as shown in
(33) Specifically, as shown by the data in rows four, five and six of
(34) In addition, it should be noted that, a brightness of the backlight of the color different from the three primary colors is lower than a brightness of the backlight of one color of the three primary colors. Specifically, in the TGB display scheme, the brightness of the white backlight is lower than the brightness of the red backlight. In this case, not only the color shift phenomena can be eliminated, but also the power consumption of the device can be reduced.
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(36) In step S330, the gray-scale data corresponding to the color different from the three primary colors of multiple color gray-scale data of the frame image is stored.
(37) Specifically, the gray-scale data corresponding to the color different from the three primary colors of multiple color gray-scale data of the frame image is stored after the frame image is displayed and before a next frame image is displayed.
(38) For example, as shown in
(39) Preferably, in order to save the storage space, the pre-stored gray-scale data, i.e., the gray-scale data corresponding to the color different from the three primary colors of multiple color gray-scale data of the previous frame image, can be substituted with the gray-scale data corresponding to the color different from the three primary colors of multiple color gray-scale data of the frame image. Of course, in other embodiments, the gray-scale data corresponding to the color different from the three primary colors of multiple color gray-scale data of each frame image can be stored respectively in a form of a table.
(40) Then, the display method of the third frame image is the same as that of the second frame image. If the gray-scale data corresponding to the color different from the three primary colors of multiple color gray-scale data is stored through substituting the data of the previous frame image, the stored gray-scale data corresponding to the color different from the three primary colors of multiple color gray-scale data of the previous frame image is updated to W2 before a first color field of the third frame image is presented. In this case, in the first color field of the third frame image, W2 is output as the gray-scale of the green sub pixels and the blue sub pixels, the details of which are no longer repeated here.
(41) In addition, since 60 frame images being displayed in one second is the lowest standard of fluency for the eyes, at present, the image refresh rate that 60 frame images are displayed in one second is widely used in the traditional liquid crystal display devices. Therefore, the image refresh rate of the liquid crystal display device which is driven according to the method of the present embodiment is higher than or equal to 120 Hz. That is, the switching frequency of the first color field and the second color field is higher than or equal to 120 Hz.
(42) Compared with the prior art, the driving method according to the embodiment of the present disclosure not only can eliminate the color shift phenomena effectively, but also has the advantages of small data amount and high calculation speed when the gray-scale values which drive each of the sub pixels are calculated. Meanwhile, only the gray-scale data of one frame image is calculated during the calculation, and the stored multiple color gray-scale data of the previous frame image can be used. In this manner, the storage data amount and the cost can be reduced significantly, the processing speed can be accelerated, and thus the fluency of the images can be improved.
(43) It should be noted that, although the steps of the method for driving the liquid crystal display device to eliminate the color shift thereof are illustrated taking the TGB-FSC liquid crystal display device as an example, the present method is applicable for other types of liquid crystal display devices. For example, the present method is applicable for the liquid crystal display devices with RTB or RGT pixel design to eliminate the color shift problem that the image contains more green color ingredient or blue color ingredient, wherein RTB represent red sub pixels, transparent sub pixels, and blue sub pixels respectively, and RGT represent red sub pixels, green sub pixels, and transparent sub pixels respectively.
(44) The above embodiments are described only for better understanding, rather than restricting, the present disclosure. Any person skilled in the art can make amendments to the implementing forms or details without departing from the spirit and scope of the present disclosure. The protection scope of the present disclosure shall be determined by the scope as defined in the claims.