Device for controlling luminance, method thereof, and display device

Information

  • Patent Grant
  • 10977981
  • Patent Number
    10,977,981
  • Date Filed
    Thursday, April 18, 2019
    5 years ago
  • Date Issued
    Tuesday, April 13, 2021
    3 years ago
Abstract
Embodiments of the present disclosure provide a device for controlling luminance, a method of controlling luminance and a display device. The method of controlling luminance may comprise: obtaining a theoretical white balanced luminance value for each color of sub-pixel included in N pixels; obtaining a luminance controlling value for other colors of sub-pixels except for a ith color of sub-pixel included in each of the N pixels; and adjusting luminance of the other colors of sub-pixels except for the ith color of sub-pixel included in each pixel according to the luminance controlling value. The method of controlling luminance can be used in luminance controlling devices.
Description
CROSS-REFERENCE TO RELATED APPLICATION(S)

This application claims the priority of Chinese Patent Application No. 201811063544.7, filed on Sep. 12, 2018, the entire contents of which are hereby incorporated by reference.


TECHNICAL FIELD

Embodiments of the present disclosure relate to the field of display technologies, and in particular, to a device for controlling luminance, a method thereof and a display device.


BACKGROUND

A display panel configured with a slim bezel may have a high screen occupancy. However, it may have a problem of “edge leakage”. One solution to solve the problem of “edge leakage” is to increase the width of a black bezel toward a display region, thereby blocking part of sub-pixels.


However, such a solution may cause color at edges of a displayed screen to be abnormal when displaying a white image.


SUMMARY

Embodiments of the present disclosure may provide a device for controlling luminance, comprising:


a memory configured to store instructions; and


at least one processor configured to execute the instructions stored in the memory to:


obtain a theoretical white balanced luminance value for each color of sub-pixel included in N pixels, wherein the N pixels are adjacent, and N is an integer greater than or equal to 1;


set a luminance controlling value for other colors of sub-pixels except for a ith color of sub-pixel included in each of the N pixels, according to the theoretical white balanced luminance value for each color of sub-pixel and a sum of luminance loss value for the ith color of sub-pixels included in the N pixels, in response to the ith color of sub-pixel included in a tth pixel of the N pixels having a luminance loss, wherein t is an integer greater than or equal to 1 and less than or equal to N, and i is an integer greater than or equal to 1; and


adjust luminance of the other colors of sub-pixels except for a ith color of sub-pixel included in each of the N pixels according to the luminance controlling value, so that a ratio between a sum of luminance values of the ith color of sub-pixels included in the N pixels and a sum of adjusted luminance values of the other colors of sub-pixels except for the ith color of sub-pixels included in the N pixels is coincident with a white balanced luminance value ratio.


For example, the processor is further configured to set the luminance controlling value for the other colors of sub-pixels, so as to satisfy at least one of:


a ratio between the luminance controlling value and the theoretical white balanced luminance value for each of the other colors of sub-pixels except for the ith color of sub-pixel included in each pixel being equal to a ratio between the sum of the luminance loss values and a sum of theoretical white balanced luminance values for the ith color of sub-pixels included in the N pixels, and


a ratio between a sum of luminance controlling values and a sum of theoretical white balanced luminance values for each of the other colors of sub-pixels except for the ith color of sub-pixel included in the N adjacent pixel being equal to a ratio between the sum of the luminance loss values and the sum of the theoretical white balanced luminance values for the ith color of sub-pixels included in the N pixels.


For example, the processor is further configured to adjust the luminance of the other colors of sub-pixels, so as to satisfy at least one of:


a ratio among the adjusted luminance values of the other colors of sub-pixels except for the ith color of sub-pixel included in each pixel being equal to the theoretical white balanced luminance value ratio of the other colors of sub-pixels; or


a ratio among the adjusted luminance values of the same color of sub-pixels except for the ith color of sub-pixels included in the N pixels being equal to the theoretical white balanced luminance value ratio of the same color of sub-pixels.


For example, the ith color of sub-pixel has an invalid display region; and the processor is further configured to:


obtain an invalid display pixel occupancy






x
a





for the ith color of sub-pixel included in the tth pixel, according to an area of the invalid display region x and the area of a theoretical display region a for the ith color of sub-pixel included in the tth pixel; obtain the luminance loss value ΔLti for the ith color of sub-pixel included in the tth pixel, according to the invalid display pixel occupancy






x
a





and the theoretical white balanced luminance value Lti for the ith color of sub-pixel, wherein








Δ






L
ti


=


x
a



L
ti



;





and obtain the sum of the luminance loss values ΔLi for the ith color of sub-pixels included in the N pixels, according to the luminance loss value ΔLti for the ith color of sub-pixel included in the tth pixel.


For example, the luminance controlling value for other colors of sub-pixels except for the ith color of sub-pixel included in each pixel are set to








Δ






L
js


=




x
a



L
ti






j
=
1

N



L
ji





L
js



,




wherein









j
=
1

N



L
ji






indicates for the sum of the theoretical white balanced luminance values for the ith color of sub-pixels included in the N pixels, Lji indicates for the theoretical white balanced luminance value for the ith color of sub-pixel included in a jth pixel of the N pixels, Ljs indicates for the theoretical white balanced luminance value for a sth color of sub-pixel included in the jth pixel, and ΔLjs indicates for a luminance controlling parameter for a sth color of sub-pixel included in the jth pixel, wherein j is an index number of the pixel which is greater than or equal to 1 and less than or equal to N, and s is an index number of other colors of sub-pixels except for the ith color of sub-pixel included in each pixel, and is an integer greater than 0 and not equal to i.


For example, the processor is further configured to obtain the sum of the theoretical white balanced luminance values for the ith color of sub-pixels included in the N pixels, according to the theoretical white balanced luminance values for the ith color of sub-pixel included in each of the N pixels; obtain a luminance reduction rate ηjs for the other colors of sub-pixels except for the ith color of sub-pixel included in each pixel, according to the sum of the theoretical white balanced luminance values and the sum of the luminance loss values for the ith color of sub-pixels included in the N pixels; and obtain the luminance controlling value for the other colors of sub-pixels except for the ith color of sub-pixel included in each pixel, according to the luminance reduction rate ηjs and the theoretical whites balanced luminance value for the other colors of sub-pixels except for the ith color of sub-pixel included in each pixel.


For example, the luminance reduction rate for the other colors of sub-pixels except for the ith color of sub-pixel included in each pixel is as follows:








η
js

=



x
a



L
ti






j
=
1

N



L
ji




,




wherein j is the index number of the pixel which is greater than or equal to 1 and less than or equal to N, and s is an index number of other colors of sub-pixels except for the ith color of sub-pixel included in each pixel, and is an integer greater than 0 and not equal to i.


The embodiments of the present disclosure may further provide a method of controlling a luminance, comprising:

    • obtaining a theoretical white balanced luminance value for each color of sub-pixel included in N pixels, wherein N is an integer greater than or equal to 1;
    • setting a luminance controlling value for other colors of sub-pixels except for a ith color of sub-pixel included in each of the N pixels, according to the theoretical white balanced luminance value for each color of sub-pixel and a sum of the luminance loss values for the ith color of sub-pixels included in the N pixels, in response to the ith color of sub-pixel included in a tth pixel of the N pixels having a luminance loss, wherein t is an integer greater than or equal to 1 and less than or equal to N, and i is an integer greater than or equal to 1; and
    • adjusting luminance of the other colors of sub-pixels according to the luminance controlling value, so that a ratio between the sum of the luminance values of the ith color of sub-pixels included in the N pixels and the sum of the adjusted luminance values of the other colors of sub-pixels except for the ith color of sub-pixels included in the N pixels is coincident with a white balanced luminance value ratio.


For example, the setting luminance controlling value for the other colors of sub-pixels so as to satisfy at least one of:


a ratio between the luminance controlling value and the theoretical white balanced luminance value for each of the other colors of sub-pixels except for the ith color of sub-pixel included in each pixel being equal to a ratio between the sum of the luminance loss values to the sum of the theoretical white balanced luminance values for the ith color of sub-pixels included in the N pixels, and


a ratio between a sum of the luminance controlling values and the sum of the theoretical white balanced luminance values for each of the other colors of sub-pixels except for the ith color of sub-pixel included in the N adjacent pixel being equal to a ratio between the sum of the luminance loss values and the sum of the theoretical white balanced luminance values for the ith color of sub-pixels included in the N pixels.


For example, the ith color of sub-pixel included in the tth pixel has an invalid display region; and the method further comprising:


obtaining an invalid display pixel occupancy






x
a





for the ith color of sub-pixel included in the tth pixel, according to an area of the invalid display region x and the area of a theoretical display region a for the ith color of sub-pixel included in the tth pixel;


obtaining the luminance loss value ΔLti for the ith color of sub-pixel included in the tth pixel, according to the invalid display pixel occupancy






x
a





and the theoretical white balanced luminance value Lti for the ith color of sub-pixel, wherein








Δ






L
ti


=


x
a



L
ti



;





and


obtaining the sum of the luminance loss values ΔLi for the ith color of sub-pixels included in the N pixels, according to the luminance loss value Δti for the ith color of sub-pixel included in the tth pixel.


For example, the luminance controlling value for other colors of sub-pixels except for the ith color of sub-pixel included in each pixel are set to








Δ






L
js


=




x
a



L
ti






j
=
1

N



L
ji





L
js



,




wherein









j
=
1

N



L
ji






indicates for the sum of the theoretical white balanced luminance values for the ith color of sub-pixels included in the N pixels, Lji indicates for the theoretical white balanced luminance value for the ith color of sub-pixel included in a jth pixel of the N pixels, Ljs indicates for the theoretical white balanced luminance value for a sth color of sub-pixel included in the jth pixel, and ΔLjs indicates for a luminance controlling parameter for a sth color of sub-pixel included in the jth pixel, wherein j is an index number of the pixel which is greater than or equal to 1 and less than or equal to N, and s is an index number of other colors of sub-pixels except for the ith color of sub-pixel included in each pixel, and is an integer greater than 0 and not equal to i.


For example, the luminance controlling value for the other colors of sub-pixels except for the ith color of sub-pixel included in each of the N pixels is set according to the theoretical white balanced luminance value for each color of sub-pixel and a sum of the luminance loss values for the ith color of sub-pixels included in the N pixels by:


obtaining the sum of the theoretical white balanced luminance values for the ith color of sub-pixels included in the N pixels, according to the theoretical white balanced luminance values for the ith color of sub-pixel included in each of the N pixels;


obtaining a luminance reduction rate ηjs for the other colors of sub-pixels except for the ith color of sub-pixel included in each pixel, according to the sum of the theoretical white balanced luminance values and the sum of the luminance loss values for the ith color of sub-pixels included in the N pixels; and


obtaining the luminance controlling value for the other colors of sub-pixels except for the ith color of sub-pixel included in each pixel, according to the luminance reduction rate ηjs and the theoretical whites balanced luminance value for the other colors of sub-pixels except for the ith color of sub-pixel included in each pixel.


For example, the luminance reduction rate for the other colors of sub-pixels except for the ith color of sub-pixel included in each pixel is as follows:








η
js

=



x
a



L
ti






j
=
1

N



L
ji




,





wherein j is the index number of the pixel which is greater than or equal to 1 and less than or equal to N, and s is an index number of other colors of sub-pixels except for the ith color of sub-pixel included in each pixel, and is an integer greater than 0 and not equal to i.


For example, the luminance of the other colors of sub-pixels is adjusted so as to satisfy at least one of:


a ratio among the adjusted luminance values of the other colors of sub-pixels except for the ith color of sub-pixel included in each pixel being equal to the theoretical white balanced luminance value ratio of the other colors of sub-pixels; or


a ratio among the adjusted luminance values of the same color of sub-pixels except for the ith color of sub-pixels included in the N pixels being equal to the theoretical white balanced luminance value ratio of the same color of sub-pixels.


The embodiments of the present disclosure may further provide a display device comprising the device for controlling luminance.


For example, the display device further comprising a bezel; wherein the N pixels are arranged along an extending direction of the bezel, and the tth pixel of the N pixels is closest to the bezel.





BRIEF DESCRIPTION OF THE DRAWINGS

The drawings described herein are intended to provide a further understanding for embodiments of the disclosure, and constitute a part of the embodiments. The examples and descriptions of the embodiments of the disclosure are intended to explain the embodiments, but not to define them. In the drawing:



FIG. 1 shows a schematic diagram illustrating an arrangement of N pixels according to an embodiment of the present disclosure;



FIG. 2 shows a block diagram illustrating an example of a structure of a device for controlling luminance according to an embodiment of the present disclosure;



FIG. 3 shows a flowchart illustrating a method for controlling luminance according to an embodiment of the present disclosure;



FIG. 4 shows a flowchart of calculating a sum of the luminance loss value for an ith color of sub-pixels included in N pixels according to an embodiment of the present disclosure;



FIG. 5 shows a flowchart of setting luminance controlling values of other colors of sub-pixels except for the ith color of sub-pixel included in each pixel according to an embodiment of the present disclosure; and



FIG. 6 shows a block diagram illustrating another example of the structure of the device for controlling luminance according to an embodiment of the present disclosure.





DETAILED DESCRIPTION

Technical solutions of the embodiments of the present disclosure will be clearly and completely described below in conjunction with the drawings. It should be apparent that the described embodiments are only a part of the embodiments of the present disclosure, and not all of them. All other embodiments obtained by those skilled in the art based on the embodiments of the present disclosure without creative efforts are within the scope of the present disclosure.


Display devices may include pixels arranged in an array. Edge sub-pixels included in edge pixels may be partially blocked by a black bezel, so as to solve the problem of “edge leakage” of the display device. However, this also causes the luminance of the light emitted by the edge sub-pixels included in the edge pixels decreasing, causing a ratio among the luminance of the lights emitted by the respective sub-pixels included in the edge pixels failing to meet a requirement for white balance. Therefore, if the display device is used to display, for example, a white image, the color displayed by the edge pixels will be abnormal.


For example, the edge pixel may comprise a red sub-pixel, a green sub-pixel, and a blue sub-pixel. If the red sub-pixel is partially blocked, the luminance of the red light emitted by the red sub-pixel is relatively low when displaying a white image, thereby causing the color displayed by the edge pixel to be blue. If the green sub-pixel is partially blocked, the luminance of the green light emitted by the green sub-pixel is relatively low when the displaying the white image, thereby causing the color displayed by the edge pixel to be purple. If the blue sub-pixel is partially blocked, the luminance of the blue light emitted by the blue sub-pixel is a relatively low when displaying the white image, thereby causing the color displayed by the edge pixel to be yellow.


Referring to FIGS. 1-3, the embodiments of the present disclosure provide a device for controlling luminance, which can be used not only in a liquid crystal display, but also in an organic electroluminescent display. The device for controlling luminance can comprise: a data receiving unit 100, configured to obtain a theoretical white balanced luminance value for each color of sub-pixel included in N pixels, wherein the N pixels are adjacent, and N is an integer greater than or equal to 1.


The device may further include a luminance value calculation unit 300 coupled to the data receiving unit 100 and configured to set a luminance controlling value for other colors of sub-pixels except for a ith color of sub-pixel included in each of the N pixels, according to the theoretical white balanced luminance value for each color of sub-pixel and a sum of the luminance loss values for the ith color of sub-pixels included in the N pixels NPIX, in response to the ith color of sub-pixel included in a tth pixel of the N pixels NPIX having a luminance loss, wherein t is an integer greater than or equal to 1 and less than or equal to N, and i is an integer greater than or equal to 1.


The luminance controlling device may further include a luminance adjustment unit 400 coupled to the data receiving unit 100 and the luminance value calculation unit 300 respectively and configured to adjust luminance of the other colors of sub-pixels according to the luminance controlling value, so that a ratio between the sum of the luminance values of the ith color of sub-pixels included in the N pixels and the sum of the adjusted luminance values of the other colors of sub-pixels except for the ith color of sub-pixels included in the N pixels NPIX is coincident with a white balanced luminance value ratio. Hereinafter, “displaying luminance” is also referred to as “actual luminance”.


In the device for controlling luminance according to the embodiments of the present disclosure, the data receiving unit 100 obtains the theoretical white balanced luminance values for each color of sub-pixels included in the N pixels NPIX. If the ith color of sub-pixel included in the tth pixel of the N pixels NPIX has a luminance loss, the color displayed by the tth pixel may be abnormal during the displaying. Since the ith color of sub-pixel included in the ith pixel has a luminance loss, the sum of the luminance loss values of the ith color of sub-pixels included in the N pixels NPIX may be equal to the luminance loss value of the ith color of sub-pixel included in the tth pixel. Therefore, the luminance calculation unit may set the luminance controlling value for other colors of sub-pixels except for the ith color of sub-pixel included in each pixel, according to the theoretical white balanced luminance value for each color of sub-pixel included in each pixel and the sum of the luminance loss values for the ith color of sub-pixels included in the N pixels. Therefore, the luminance adjustment unit 400 may adjust luminance of the other colors of sub-pixels except for the ith color of sub-pixel included in each pixel by utilizing the luminance controlling value, so that the ratio between the sum of the luminance values of the ith color of sub-pixels included in the N pixels and the actual sum of the adjusted luminance values of the other colors of sub-pixels except for the ith color of sub-pixels included in the N pixels NPIX is coincident with a white balanced luminance value ratio. Although the ratio among the actual luminance values of the respective sub-pixels included in each pixel does not conform to the requirements for white balancing in a view of single pixel, causing the color displayed by this pixel being abnormal, such abnormal displaying of single pixel cannot be distinguished by a naked eye. Therefore, in the device for controlling luminance according to the embodiment of the present disclosure, it is possible to compensate the luminance loss for the ith color of sub-pixel included in the tth pixel by adjusting the luminance of each color of sub-pixels except for the ith color of sub-pixels included in the N pixels NPIX, thereby ensuring that the colors of the N pixels NPIX perceived by a user seems to be normal.


For example, in the display device, when N=1, the tth pixel is the only pixel. When the pixel is used as the edge pixel EPIX0, if the ith color of sub-pixel included in the edge pixel EPIX0 is blocked by the bezel or other shading object, the luminance of the respective sub-pixels included in the edge pixel EPIX0 can be adjusted to conform to the white balanced luminance ratio by reducing the luminance of other colors of sub-pixels except for the ith color of sub-pixel included in this pixel, thereby ensuring that the color displayed by the edge pixel EPIX0 is normal when displaying the white image. At the same time, the luminance of the edge pixel EPIX0 may differ from the luminance of other pixels.


When N≥2 and the tth pixel is the edge pixel EPIX0, if the ith color of sub-pixel included in the edge pixel EPIX0 is blocked by the bezel or other shading object, the color displayed by the N pixels NPIX seems normal to the user when displaying the white image by reducing the luminance of each color of sub-pixels except for the ith color of sub-pixels included in N pixels. At this time, since the reduction for the luminance of each color of sub-pixels except for the ith color of sub-pixels included in N pixels NPIX is relatively small, it is ensured that the actual luminance of the N pixels NPIX will not significantly differ from the luminance of other pixels, thereby improving the uniformity for the luminance of the picture displayed by the display device.


In some embodiments, the device for controlling luminance according to the embodiment of the present disclosure can be applied not only in the case that the edge sub-pixel included in the edge pixel EPIX0 is partially blocked, but also in the case that the sub-pixel included in any pixel of the display device is partially blocked.


In some embodiments, as shown in FIG. 1, the N pixels NPIX are disposed adjacent to each other, and the N pixels NPIX are arranged along a direction away from the bezel. Thus, the N pixels NPIX are arranged along the direction from the edge of a display panel toward the center.


For example, as shown in FIG. 1, among the array-arranged pixels included in the display device, the outermost column of the pixels may experience a color abnormality when displaying the white image. Therefore, the N pixels NPIX are arranged along the direction from the edge of the display device toward the center. It is possible to compensate the luminance of the first color of sub-pixel included in the edge pixel EPIX0 by using the other colors of sub-pixels except for the first color of sub-pixels in the N pixels NPIX.


The outermost column of pixels will experience the color abnormality when displaying a white image. Therefore, the N pixels NPIX are made to be arranged along a row direction from the edge of the display device to the center, so as to compensate the luminance of the first color of sub-pixel included in the edge pixels EPIX0 by using the other colors of sub-pixels except for the first colors of sub-pixels included in the N pixels NPIX.


For example, three pixels are arranged in one row, and the first pixel, the second pixel, and the third pixel each include a red sub-pixel, a green sub-pixel, and a blue sub-pixel. The first pixel EPIX0 is defined as an edge pixel, and the red sub-pixel included in the first pixel is blocked. When the device for controlling luminance is used to compensate the luminance of the red light emitted by the red sub-pixel included in the first pixel, the compensation can be performed in the following three ways.


In the first compensation example, N=1, and the luminance of the green light and the blue light respectively emitted by the green sub-pixel and the blue sub-pixel included in the first pixel is reduced according to the luminance loss of the red light emitted by the red sub-pixel included in the first pixel EPIX0, ensuring that the ratio among the actual luminance of the red light emitted by the red sub-pixel, the actual luminance of the green light emitted by the green sub-pixel, and the actual luminance of the blue light emitted by the blue sub-pixel conforms to the white balanced luminance ratio. At this time, when the row of pixels shown in FIG. 1 emits white light, the light emitted by the first pixel does not have any color cast, but has a luminance smaller than the light emitted by the second pixel and the third pixel.


In the second compensation example, N=2, and the luminance of the green light and the blue light respectively emitted by the green sub-pixels and the blue sub-pixels included in the first pixel EPIX0 and the second pixel CPIX1 may be reduced, ensuring that the ratio among the sum of the actual luminance values of the red light emitted by the red sub-pixels included in the first pixel and the second pixel, the sum of the actual luminance values of the green light emitted by the green sub-pixels included in the first pixel and the second pixel, and the sum of the actual luminance values of the blue light emitted by the blue sub-pixels included in the first pixel and the second pixel conforms to the white balanced luminance ratio. This enables to satisfy the white balance requirement in visual perception when the row of pixels shown in FIG. 1 emits white light. Therefore, when the row of pixels shown in FIG. 1 emits white light, the problem of color abnormality is somewhat alleviated. Although the actual luminance value of the red light emitted by the red sub-pixel included in the first pixel, the actual luminance value of the green light emitted by the green sub-pixel included in the first pixel, and the actual luminance value of the blue light emitted by the blue sub-pixel included in the first pixel do not meet the requirement for white balanced luminance, this cannot be distinguished by the naked eye since the size of the pixels is small. Therefore, when the row of pixels shown in FIG. 1 emits white light, the color of the light emitted by the first pixel may experience a color cast, but the problem of color abnormality can be alleviated.


In the third compensation example, N=3, and the luminance of the green light and the blue light respectively emitted by the green sub-pixels and the blue sub-pixels included in the first pixel EPIX0, the second pixel CPIX1 and the third pixel CPIX2 may be reduced, ensuring that the ratio among the sum of the actual luminance values of the red light emitted by the red sub-pixels included in the first pixel, the second pixel and the third pixel, the sum of the actual luminance values of the green light emitted by the green sub-pixels included in the first pixel, the second pixel and the third pixel, and the sum of the actual luminance values of the blue light emitted by the blue sub-pixels included in the first pixel, the second pixel and the third pixel conforms to the white balanced luminance ratio. This enables to satisfy the white balance requirement in visual perception when the row of pixels shown in FIG. 1 emits white light. Therefore, when the row of pixels shown in FIG. 1 emits white light, the problem of color abnormality is somewhat alleviated. Although the actual luminance value of the red light emitted by the red sub-pixel included in the first pixel, the actual luminance value of the green light emitted by the green sub-pixel included in the first pixel, and the actual luminance value of the blue light emitted by the blue sub-pixel included in the first pixel do not meet the requirement for white balanced luminance requirement, this cannot be distinguished by the naked eye since the size of the pixels is small. Therefore, when the row of pixels shown in FIG. 1 emits white light, the color of the light emitted by the first pixel may experience a color cast, but the display of this row of pixels seem to be normal.


It is seen from the above three compensation examples that as the number of pixels participating in the luminance compensation increases, the luminance reduction ratio of the green sub-pixel and the blue sub-pixel included in each pixel reduces, making the ratio among the actual luminance of the red light emitted by the red sub-pixel, the actual luminance of the green light emitted by the green sub-pixel, and the actual luminance of the blue light emitted by the blue sub-pixel include in each pixel is closer to the luminance ratio for the white balanced light. At this time, when the white light is emitted, the color abnormalities of the second pixel and the third pixel participating in the luminance compensation can be negligible, and the luminance loss for each pixel is approximate to each other, ensuring a better uniformity for the luminance of the pixels when emitting white light.


In some embodiments, in order to make the ratio among the sum of the actual luminance values of the ith color of sub-pixels included in the N pixels and the sum of the actual luminance values of each color of sub-pixels except for the ith color of sub-pixels included in the N pixels NPIX to conform to the white balanced luminance ratio, the light emitted by each colors of the sub-pixels included in the N pixels NPIX should meet at least one of the following conditions.


First, the ratio between the luminance controlling value and the theoretical white balanced luminance value for each color of sub-pixel except for the ith color of sub-pixel in each pixel is equal to the ratio between the sum of the luminance loss values and the sum of the theoretical white balanced luminance values for the ith color of sub-pixels included in the N pixels, such that the ratio among the actual sum of the luminance values of each color of sub-pixels except for the ith color of sub-pixels included in the N pixels is equal to the theoretical white balanced luminance value ratio of each color of sub-pixels except for the ith color of sub-pixel included in the N pixel.


Secondly, the ratio between a sum of the luminance controlling values and the sum of the theoretical white balanced luminance values for each of the other colors of sub-pixels except for the ith color of sub-pixel included in the N pixel is equal to a ratio between the luminance loss values and the sum of the theoretical white balanced luminance values for the ith color of sub-pixels included in the N pixels NPIX, such that the ratio among the actual sum of the luminance values of each color of sub-pixels except for the ith color of sub-pixels included in the N pixels NPIX is equal to the theoretical white balanced luminance value ratio of each color of sub-pixels except for the ith color of sub-pixel included in the N pixel NPIX.


In addition, the luminance adjustment unit 400 is further configured to adjust the luminance of other colors of sub-pixels except for the ith color of sub-pixel included in each pixel, such that at least one of the following conditions is satisfied: a ratio among the actual luminance values of the other colors of sub-pixels except for the ith color of sub-pixel included in each pixel being equal to the theoretical white balanced luminance value ratio of the other colors of sub-pixels; a ratio among the actual luminance values of the same color of sub-pixels except for the ith color of sub-pixels included in the N pixels NPIX being equal to the theoretical white balanced luminance value ratio of the same color of sub-pixels.


In some embodiments, as shown in FIG. 1, FIG. 2 and FIG. 4, the ith color of sub-pixel included in the tth pixel has an invalid display area with a width of w1. The device for controlling luminance further includes a luminance loss calculation unit 200 coupled to the data receiving unit 100 and the luminance calculation unit 300 respectively. The luminance loss calculation unit 200 may be configured to, for example, before obtaining the luminance controlling value for the other colors of sub-pixels except for the ith color of sub-pixel included in each pixel according to the theoretical balanced luminance value of each color of sub-pixel included in each pixel and the sum of the luminance loss values for the ith color of sub-pixels included in the N pixels NPIX, obtain an invalid display pixel occupancy






x
a





for the ith color of sub-pixel included in the V″ pixel according to an area x of an invalid display region and the area a of the theoretical display region of the ith color of sub-pixel included in the V″ pixel; obtain the luminance loss value ΔLti for the ith color of sub-pixel included in the tth pixel, according to the invalid display pixel occupancy






x
a





and me theoretical white balanced luminance value for the ith color of sub-pixel included in the tth pixel, wherein








Δ






L
ti


=


x
a



L
ti



;





obtain the sum of the luminance loss values ΔLi for the ith color of sub-pixels included in the N pixels according to the luminance loss value ΔLti for the ith color of sub-pixel included in the tth pixel.


In some embodiments, considering that the size of the pixel cannot be distinguished by the naked eye, it is reasonable to deem that the ith color of sub-pixel included in the tth pixel may have a luminance loss equivalent to the sum of the luminance loss values of the ith color of sub-pixels included in the N pixels NPIX participating in the luminance compensation. Based on this, the sum of the luminance loss values of the ith color of sub-pixels included in the N pixels NPIX is







Δ






L
i


=


x
a




L
ti

.






In some embodiments, the ratio between the luminance controlling value ΔLjs and the theoretical white balanced luminance value Ljs for each color of sub-pixel except for the ith color of sub-pixel included in each pixel is equal to the ratio between the sum of the luminance loss values ΔLi and the sum of the theoretical white balanced luminance values Li for the ith color of sub-pixels included in the N pixels, which can be expressed as:









x
a



L
ti



L
i


=



Δ






L
js



L
js


.





Since








L
i

=




j
=
1

N



L
ji



,





the luminance controlling values for other colors of sub-pixels except for the ith color of sub-pixel included in each pixel are:








Δ






L
js


=




x
a



L
ti






j
=
1

N



L

ji










L
js



,




wherein









j
=
1

N



L
ji






indicates for the sum of the theoretical white balanced luminance values for the ith color of sub-pixels included in the N pixels, Lji indicates for the theoretical white balanced luminance value for the ith color of sub-pixel included in a jth pixel of the N pixels, Ljs indicates for the theoretical white balanced luminance value for a sth color of sub-pixel included in the jth pixel, and ΔLjs indicates for a luminance controlling parameter for the sth color of sub-pixel included in the jth pixel, wherein j is an index number of the pixel which is greater than or equal to 1 and less than or equal to N, and s is an index number of other colors of sub-pixels except for the ith color of sub-pixel included in each pixel, and is an integer greater than 0 and not equal to i.


It can be seen that in the case where the number N of pixels is constant, the sum of the theoretical white balanced luminance values









j
=
1

N



L
ji






and the sum of the luminance loss values







x
a



L
ti






for the ith color of sub-pixels included in the N pixels NPIX are both constant. Therefore, the ratio between the theoretical white balanced luminance value and the actual luminance value for each of the other colors of sub-pixels except for the ith color of sub-pixel included in each pixel is the same, i.e.









x
a



L
ti






j
=
1

N



L

ji








.





Based on this, the luminance calculation unit 300 can obtain the sum of the theoretical white balanced luminance values for the ith color of sub-pixels included in the N pixels NPIX, according to the theoretical white balanced luminance values for the ith color of sub-pixel included in each of the N pixels NPIX; obtain a luminance reduction rate ηjs for the other colors of sub-pixels except for the ith color of sub-pixel included in each pixel, according to the sum of the theoretical white balanced luminance values and the sum of the luminance loss values for the ith color of sub-pixels included in the N pixels; and obtain the luminance controlling value for the other colors of sub-pixels except for the ith color of sub-pixel included in each pixel, according to the luminance reduction rate 1ηjs and the theoretical whites balanced luminance value for the other colors of sub-pixels except for the ith color of sub-pixel included in each pixel.


The luminance reduction rate of the other colors of sub-pixels except for the ith color of sub-pixel included in each pixel is:








η
js

=



x
a



L

1

i







j
=
1

N



L
ji




,





wherein j is the index number of the pixel, and s is an index number of other colors of sub-pixels except for the ith color of sub-pixel included in each pixel, and is an integer greater than 0 and not equal to i. It can be seen that by sharing the luminance loss value for the ith sub-pixel included in the tth pixel via the ith sub-pixels included in the N pixels NPIX, it is possible to reduce the luminance reduction rate for the other colors of sub-pixels except for the ith color of sub-pixels included in the N pixels NPIX in a subsequent luminance reduction process.


In some embodiments, a specific controlling strategy for the luminance controlling device according to the embodiment of the present disclosure during an operation is described in detail. As shown in FIG. 1, it is assumed that there are N pixels NPIX, each of which includes a red sub-pixel, a green sub-pixel, and a blue sub-pixel. The shape and size of the red sub-pixel, the green sub-pixel, and the blue sub-pixel are same (in terms of area).


For example, the red sub-pixel, the green sub-pixel, and the blue sub-pixel included in each pixel are rectangles with the same length and width. The rectangle has a width of w0 and a length of I0. One pixel is defined as the edge pixel EPIX0, and (N−1) pixels are defined as the compensation pixel, N−1=k. The red sub-pixel included in the edge pixel EPIX0 is blocked by the bezel to have a width w1. In order to describe the following procedure clearly, the subscript indicating the edge pixel EPIX0 is defined as 0, and the subscript indicating the N−1 compensation pixels is defined as 1 to k.


The data receiving unit 100 can obtain the following related theoretical white balanced luminance values, which are relative values expressed by gray scale values, ranging from 1 to 255.


The theoretical white balanced luminance value for the red sub-pixel included in the edge pixel is L0R, the theoretical white balanced luminance value for the green sub-pixel included in the edge pixel is L0G, and the theoretical white balanced luminance value for the blue sub-pixel included in the edge pixel is L0B.


The theoretical white balanced luminance value for the red sub-pixel included in the first compensation pixel CPIX1 is L1R, the theoretical white balanced luminance value for the green sub-pixel included in the first compensation pixel CPIX1 is L1G, and the theoretical white balanced luminance value for the blue sub-pixel included in the first compensation pixel CPIX1 is L1B.


The theoretical white balanced luminance value for the red sub-pixel included in the second compensation pixel CPIX2 is L2R, the theoretical white balanced luminance value for the green sub-pixel included in the second compensation pixel CPIX2 is L2G, and the theoretical white balanced luminance value for the blue sub-pixel included in the second compensation pixel CPIX2 is L2B.


The theoretical white balanced luminance value for the red sub-pixel included in the kth compensation pixel CPIXk is LkR, the theoretical white balanced luminance value for the green sub-pixel included in the kth compensation pixel CPIXk is LkG, and the theoretical white balanced luminance value for the blue sub-pixel included in the kth compensation pixel CPIXk is LkB.


In order to simplify the luminance controlling values for the green sub-pixels and the blue sub-pixels included in each pixel, the above data can be processed in the following manner.

L1R/L0R=K1R L2R/L0R=K2R . . . LkR/L0R=KkR
L1G/L0G=K1G L2G/L0G=K2G . . . LkG/L0G=KkG
L1B/L0B=K1B L2B/L0B=K2B . . . LkB/L0B=KkB


The sum of the theoretical white balanced luminance values LR for the red sub-pixels included in the N pixels NPIX is expressed by:

LR=L0R+L1R+L2R+ . . . +LkR=L0R(1+K1R+K2R+ . . . +KkR).


The sum of the theoretical white balanced luminance values LG for the green sub-pixels included in the N pixels NPIX is expressed by:

LG=L0G+L1G+L2G+ . . . +KkG=L0G(1+K1G+K2G+ . . . +KkG)


The sum of the theoretical white balanced luminance values LB for the blue sub-pixels included in the N pixels NPIX is expressed by:

LB=L0B+L1B+L2B+ . . . LkB=L0B(1+K1B+K2B+ . . . +KkB)


By setting the luminance loss value ΔL0R for the red sub-pixel included in the edge pixel EPIX0 as the luminance loss value ΔLR for the red sub-pixels included in the N pixels NPIX, the luminance loss value ΔLR for the red sub-pixels included in the N pixels NPIX is enabled to be equal to the luminance loss value ΔL0R for the red sub-pixel included in the edge pixel EPIX0. Since








Δ






L

0

R



=




l
0



w
1




L
0



w
0





L

0

R




,





the luminance loss value ΔLR for the red sub-pixels included in the N pixels NPIX is







Δ






L
R


=





l
0



w
1




L
0



w
0





L

0

R



=


x
a




L

0

R


.







When the luminance controlling device according to the embodiment of the present disclosure is applied to the display device to control the luminance, the ratio between the sum of the luminance controlling values ΔLB and the sum of the theoretical white balanced luminance values LB for the green sub-pixels included in the N pixels NPIX and the ratio between the sum of the luminance controlling values ΔLG and the sum of the theoretical white balanced luminance values LG for the blue sub-pixels included in the N pixels NPIX are the same as the ratio between the sum of the luminance loss values and the sum of the theoretical white balanced luminance values for the red sub-pixels included in the N pixels NPIX. The sum of the luminance loss values for the red sub-pixels included in the N pixels NPIX is equal to the loss value for the red sub-pixel included in the edge pixel EPIX0, which can be expressed by:








Δ






L
B



L
B


=



Δ






L
G



L
G


=



Δ






L
R



L
R


=




x
a



L

0

R




L
R


=




x
a



L

0

R





L

0

R




(

1
+

K

1

R


+

K

2

R


+

+

K
kR


)



=


x

a


(

1
+

K

1

R


+

K

2

R


+

+

K
kR


)



.









That is,








Δ






L
G


=



L
G



x

a


(

1
+

K

1

R


+

K

2

R


+

+

K
kR


)




=



x


(

1
+

K

1

G


+

K

2

G


+

+

K

k





G



)



a


(

1
+

K

1

R


+

K

2

R


+

+

K
kR


)





L

0

G





,








and







Δ






L
B


=



L
B



x

a


(

1
+

K

1

R


+

K

2

R


+

+

K
kR


)




=



x


(

1
+

K

1

B


+

K

2

B


+

+

K
kB


)



a


(

1
+

K

1

R


+

K

2

R


+

+

K
kR


)






L

0

B


.







Since ΔLB=ΔL0B+ΔL1B+ΔL2B+ . . . +ΔLkB and ΔLG=ΔL0G+ΔL1G+ΔL2G+ . . . +LkG, it can be derived that:









Δ






L

0

G



+

Δ






L

1

G



+

Δ






L

2

G



+

+

Δ






L

k





G




=



x


(

1
+

K

1

G


+

K

2

G


+

+

K

k





G



)



a


(

1
+

K

1

R


+

K

2

R


+

+

K
kR


)





L

0

G




,
and








Δ






L

0

B



+

Δ






L

1

B



+

Δ






L

2

B



+

+

Δ






L
kB



=



x


(

1
+

K

1

B


+

K

2

B


+

+

K
kB


)



a


(

1
+

K

1

R


+

K

2

R


+

+

K
kR


)






L

0

B


.






wherein ΔL0G indicates for the luminance controlling value of the green sub-pixel included in the edge pixel EPIX0;


ΔL0B indicates for the luminance controlling value of the blue sub-pixel included in the edge pixel EPIX0;


ΔL1G indicates for the luminance controlling value of the green sub-pixel included in the first compensation pixel CPIX1;


ΔL1B indicates for the luminance controlling value of the blue sub-pixel included in the first compensation pixel CPIX1;


ΔL1B indicates for the luminance controlling value of the green sub-pixel included in the second compensation pixel CPIX2;


ΔL2B indicates for the luminance controlling value of the blue sub-pixel included in the second compensation pixel CPIX2;


. . .


ΔLkG indicates for the luminance controlling value of the green sub-pixel included in the kth compensation pixel CPIXk; and


ΔLkB indicates for the luminance controlling value of the blue sub-pixel included in the kth compensation pixel CPIXk.


When the ratio among the actual luminance values for the green sub-pixels included in the N pixels NPIX is the same as the theoretical white balanced luminance ratio for the green sub-pixels included in the N pixels NPIX and the ratio among the actual luminance values for the blue sub-pixels included in the N pixels NPIX is the same as the theoretical white balanced luminance ratio for the blue sub-pixels included in the N pixels NPIX, the above luminance controlling value can be expressed as:








Δ






L

1

G




Δ






L

0

G




=



L

1

G



L

0

G



=

K

1

G












Δ






L

2

G




Δ






L

0

G




=



L

2

G




L


0

G













=



K

2

G















Δ






L

k





G




Δ






L

0

G





=



L

k





G



L

0

G



=

K

k





G






,




Thus,







Δ






L

1

G



=



L

1

G



L

0

G




Δ






L

0

G










Δ






L

2

G



=




L

2

G



L

0

G




Δ






L

0

G













Δ






L

k





G



=


Δ






L

0

G






L

k





G



L

0

G



.




Since








Δ






L

1

B




Δ






L

0

B





=



L

1

B



L

0

B



=

K

1

B














Δ






L

2

B




Δ






L

0

B




=



L

2

B



L

0

B



=



K

2

B















Δ






L
kB



Δ






L

0

B





=



L
kB


L

0

B



=

K
kB





,






Δ






L

1

B



=



L

1

B



L

0

B




Δ






L

0

B











Δ






L

1

B



=




L

1

B



L

0

B




Δ






L

0

B













Δ






L

k





B



=



L
kB


L

0

B




Δ







L

0

B


.







Further,








since





Δ






L

0

G



+

Δ






L

1

G



+

Δ






L

2

G



+

+

Δ






L

k





G




=



x


(

1
+

K

1

G


+

K

2

G


+

+

K

k





G



)



a


(

1
+

K

1

R


+

K

2

R


+

+

K
kR


)





L

0

G












and





Δ






L

0

B



+

Δ






L

1

B



+

Δ






L

2

B



+

+

Δ






L

k





B




=



x


(

1
+

K

1

B


+

K

2

B


+

+

K
kB


)



a


(

1
+

K

1

R


+

K

2

R


+

+

K

k





R



)





L

0

B




,







Δ






L

0

G



+


K

1

G



Δ






L

0

G



+


K

2

G



Δ






L

0

G



+

+


K

k





G



Δ






L

0

G




=


Δ







L

0

G




(

1
+

K

1

G


+

K

2

G


+

+

K

k





G



)



=



x


(

1
+

K

1

G


+

K

2

G


+

+

K

k





G



)



a


(

1
+

K

1

R


+

K

2

R


+

+

K

k





R



)





L

0

G





,








and








Δ






L

0

B



+


K

1

B







Δ






L

0

B



+


K

2

B



Δ






L

0

B



+

+


K
kB


Δ






L

0

B




=


Δ







L

0

B




(

1
+

K

1

B


+

K

2

B


+

+

K

k





B



)



=



x


(

1
+

K

1

B


+

K

2

B


+

+

K

k





B



)



a


(

1
+

K

1

R


+

K

2

R


+

+

K

k





R



)






L

0

B


.







Thus, the luminance controlling value for the green sub-pixel included in the edge pixel EPIX0 is expressed as:







Δ






L

0

G



=


x

a


(

1
+

K

1

R


+

K

2

R


+

+

K
kR


)






L

0

G


.






The luminance controlling value for the blue sub-pixel included in the edge pixel EPIX0 is expressed as:







Δ






L

0

B



=


x

a


(

1
+

K

1

R


+

K

2

R


+

+

K

k





R



)






L

0

B


.






The luminance controlling value for the green sub-pixel included in the first compensation pixel CPIX1 is expressed as:








Δ






L

1

G



=




L

1

G



L

0

G




Δ






L

0

G



=




L

1

G



L

0

G





x

a


(

1
+

K

1

R


+

K

2

R


+

+

K

k





R



)





L

0

G



=


x

a


(

1
+

K

1

R


+

K

2

R


+

+

K

k





R



)





L

1

G






,









that





is

,










Δ






L

1

G



=



x

a


(

1
+

K

1

R


+

K

2

R


+

+

K

k





R



)





L

1

G



=


η

1

G





L

1

G


.








The luminance controlling value for the blue sub-pixel included in the first compensation pixel CPIX1 is expressed as:








Δ






L

1

B



=




L

1

B



L

0

B




Δ






L

0

B



=




L

1

B



L

0

B





x

a


(

1
+

K

1

R


+

K

2

R


+

+

K

k





R



)





L

0

B



=


x

a


(

1
+

K

1

R


+

K

2

R


+

+

K

k





R



)





L

1

B






,









that





is

,










Δ






L

1

B



=



x

a


(

1
+

K

1

R


+

K

2

R


+

+

K

k





R



)





L

1

B



=


η

1

B





L

1

B


.








The luminance controlling value for the green sub-pixel included in the second compensation pixel CPIX2 is expressed as:








Δ






L

2

G



=




L

2

G



L

0

G




Δ






L

0

G



=




L

2

G



L

0

G





x

a


(

1
+

K

1

R


+

K

2

R


+

+

K

k





R



)





L

0

G



=


x

a


(

1
+

K

1

R


+

K

2

R


+

+

K

k





R



)





L

2

G






,









that





is

,










Δ






L

2

G



=



x

a


(

1
+

K

1

R


+

K

2

R


+

+

K

k





R



)





L

2

G



=


η

2

G





L

2

G


.








The luminance controlling value for the blue sub-pixel included in the second compensation pixel CPIX2 is expressed as:








Δ






L

2

B



=




L

2

B



L

0

B




Δ






L

0

B



=




L

2

B



L

0

B





x

a


(

1
+

K

1

R


+

K

2

R


+

+

K

k





R



)





L

0

B



=


x

a


(

1
+

K

1

R


+

K

2

R


+

+

K

k





R



)





L

2

B






,









that





is

,










Δ






L

2

B



=



x

a


(

1
+

K

1

R


+

K

2

R


+

+

K

k





R



)





L

2

B



=


η

2

B





L

2

B


.








The luminance controlling value for the green sub-pixel included in the kth compensation pixel CPIXk is expressed as:








Δ






L

k





G



=




L

k





G



L

0

G




Δ






L

0

G



=




L

k





G



L

0

G





x

a


(

1
+

K

1

R


+

K

2

R


+

+

K

k





R



)





L

0

G



=


x

a


(

1
+

K

1

R


+

K

2

R


+

+

K

k





R



)





L

k





G






,









that





is

,










Δ






L

k





G



=



x

a


(

1
+

K

1

R


+

K

2

R


+

+

K

k





R



)





L

k





G



=


η

k





G





L

k





G


.








The luminance controlling value for the blue sub-pixel included in the kth compensation pixel CPIXk is expressed as:








Δ






L

k





B



=




L

k





B



L

0

B




Δ






L

0

B



=




L

k





B



L

0

B





x

a


(

1
+

K

1

R


+

K

2

R


+

+

K

k





R



)





L

0

B



=


x

a


(

1
+

K

1

R


+

K

2

R


+

+

K

k





R



)





L

k





B






,









that





is

,










Δ






L

k





B



=



x

a


(

1
+

K

1

R


+

K

2

R


+

+

K

k





R



)





L

k





B



=


η

k





B





L

k





B


.








As shown in FIG. 3, an embodiment of the present disclosure further provides a method for controlling luminance comprising the following steps.


The method comprises in step S100, obtaining a theoretical white balanced luminance value for each color of sub-pixels included in the N pixels NPIX, wherein N is an integer greater than or equal to 1.


The method further comprises in step S200, setting a luminance controlling value for other colors of sub-pixels except for a ith color of sub-pixel included in each of the N pixels, according to the theoretical white balanced luminance value for each color of sub-pixel and a sum of the luminance loss values for the ith color of sub-pixels included in the N pixels NPIX, in response to the ith color of sub-pixel included in a tth pixel of the N pixels having a luminance loss, wherein t is an integer greater than or equal to 1 and less than or equal to N, and i is an integer greater than or equal to 1.


The method further comprises in step S300, adjusting luminance of the other colors of sub-pixels according to the luminance controlling value, so that a ratio among the sum of the luminance values of the ith color of sub-pixels included in the N pixels and the sum of the adjusted luminance values of the other colors of sub-pixels except for the ith color of sub-pixels included in the N pixels NPIX is coincident with a white balanced luminance value ratio.


The method for controlling luminance according to the embodiment of the present disclosure is provided for compensating the luminance for any sub-pixel included in any pixel of the display device. The pixel may be the edge pixel EPIX0 or other pixels.


In some embodiments, when performing the luminance adjustment, the luminance controlling value is set for each of the other colors of sub-pixels except for the ith sub-pixel included in each pixel, so as to satisfy that:


the ratio between the luminance controlling value and the theoretical white balanced luminance value for each of the other colors of sub-pixels except for the ith color of sub-pixel included in each pixel is equal to the ratio between the sum of the luminance loss values and a sum of the theoretical white balanced luminance values for the ith color of sub-pixels included in the N pixels NPIX.


In some embodiments, when performing the luminance adjustment, the luminance controlling value is set for each of the other colors of sub-pixels except for the ith sub-pixel included in each pixel, so as to satisfy that:


the ratio between a sum of the luminance controlling values and the sum of the theoretical white balanced luminance values for each of the other colors of sub-pixels except for the ith color of sub-pixel included in the N adjacent pixel is equal to the ratio between the sum of the luminance loss values and the sum of the theoretical white balanced luminance values for the ith color of sub-pixels included in the N pixels.


In some embodiments, the luminance is adjusted, such that the luminance of each color of sub-pixel included in each pixel satisfies that:


the ratio among the adjusted luminance values of the other colors of sub-pixels except for the ith color of sub-pixel included in each pixel is equal to the theoretical white balanced luminance value ratio of the other colors of sub-pixels.


In some embodiments, the luminance is adjusted, such that the luminance of each color of sub-pixel included in each pixel satisfies that:


the ratio among the adjusted luminance values of the same color of sub-pixels except for the ith color of sub-pixels included in the N pixels NPIX is equal to the theoretical white balanced luminance value ratio of the same color of sub-pixels.


In some embodiments, as shown in FIG. 1, FIG. 3 and FIG. 4, the ith color of sub-pixel included in the tth pixel has an invalid display region. The step 200 of setting the luminance controlling value for the other colors of sub-pixels except for the ith color of sub-pixel included in each pixel may further include the following steps.


In step S210, the invalid display pixel occupancy






x
a





for the ith color of sub-pixel included in the tth pixel is obtained according to an area x of the invalid display region and the area of a theoretical display region a for the ith color of sub-pixel included in the tth pixel.


In step S220, the luminance loss value ΔLti for the ith color of sub-pixel included in the tth pixel is obtained according to the invalid display pixel occupancy






x
a





and the theoretical white balanced luminance value Ltia for the ith color of sub-pixel, wherein







Δ






L
ti


=


x
a




L
ti

.






In step S230, the sum of the luminance loss values ΔLi for the ith color of sub-pixels included in the N pixels is obtained according to the luminance loss values ΔLti for the ith color of sub-pixel included in the tth pixel.


In some embodiments, the sum of the luminance loss values for the ith sub-pixels included in the N pixels NPIX is








Δ






L
i


=


x
a



L
ti



,





wherein Lti is the theoretical white balanced luminance value for the ith sub-pixel included in the tth pixel,






x
a





is the invalid display pixel occupancy for the ith sub-pixel included in the tth pixel, a is the area of the theoretical display region for the ith sub-pixel included in the tth pixel, and x is the area of the invalid display pixel region for the ith sub-pixel included in the tth pixel.


The luminance controlling values for the other colors of sub-pixels except for the ith color of sub-pixel included in each pixel are set to:








Δ






L
js


=




x
a



L
ti






j
=
1

N



L
ji





L
js



,




wherein









j
=
1

N







L
ji






indicates for the sum of the theoretical white balanced luminance values for the ith color of sub-pixels included in the N pixels, Lji indicates for the theoretical white balanced luminance value for the ith color of sub-pixel included in a jth pixel of the N pixels, Ljs indicates for the theoretical white balanced luminance value for a sth color of sub-pixel included in the jth pixel, and ΔLjs indicates for a luminance controlling parameter for a sth color of sub-pixel included in the jth pixel, wherein j is an index number of the pixel which is greater than or equal to 1 and less than or equal to N, and s is an index number of other colors of sub-pixels except for the ith color of sub-pixel included in each pixel which is an integer greater than 0 and not equal to i.


In some embodiments, as shown in FIG. 5, the step of setting a luminance controlling value for other colors of sub-pixels except for a ith color of sub-pixel included in each of the N pixels, according to the theoretical white balanced luminance value for each color of sub-pixel included in each pixel and a sum of the luminance loss values for the ith color of sub-pixels included in the N pixels NPIX may include the following steps.


In step S310, the sum of the theoretical white balanced luminance values for the ith color of sub-pixels included in the N pixels NPIX is obtained according to the theoretical white balanced luminance values for the ith color of sub-pixels included in each of the N pixels NPIX.


In step S320, a luminance reduction rate ηjs for the other colors of sub-pixels except for the ith color of sub-pixel included in each pixel is obtained according to the sum of the theoretical white balanced luminance values and the sum of the luminance loss values for the ith color of sub-pixels included in the N pixels. For example, the luminance reduction rate for the other colors of sub-pixels except for the ith color of sub-pixel included in each pixel is








η
js

=



x
a



L
ti






j
=
1

N







L
ji




,





wherein j is the index number of the pixel which is greater than or equal to 1 and less than or equal to N, and s is an index number of other colors of sub-pixels except for the ith color of sub-pixel included in each pixel which is an integer greater than 0 and not equal to i.


In step S330, the luminance controlling value for the other colors of sub-pixels except for the ith color of sub-pixel included in each pixel is set according to the luminance reduction rate ηjs and the theoretical whites balanced luminance value for the other colors of sub-pixels except for the ith color of sub-pixel included in each pixel.


As shown in FIG. 6, an embodiment of the present disclosure also provides an exemplary luminance controlling terminal 600. The luminance controlling terminal 600 can include a processor 601 and a memory 602. The processor 601 and the memory 602 can communicate with each another via a bus 603. The memory 601 is configured to store a plurality of instructions so as to implement the method for controlling luminance described above.


The processor 601 according to the embodiment of the present disclosure may be one processor or a collective name for multiple processing elements. For example, the processor 601 may be a central processing unit (CPU), or may be an application specific integrated circuit (ASIC), or one or more integrated circuit configured to implement the embodiments of the present disclosure, such as one or more digital signal processors (DSPs), or one or more Field Programmable Gate Arrays (FPGAs).


The memory 602 may be one storage device or a collective name for multiple storage elements, and is used to store executable program code or the like. The memory 602 may include random access memory (RAM), or non-volatile memory such as a magnetic disk memory, a flash memory, or the like.


The bus 603 may be an Industry Standard Architecture (ISA) bus, a Peripheral Component Interconnection (PCI) bus, or an Extended Industry Standard Architecture (EISA) bus. The bus 603 can be divided into an address bus, a data bus, a control bus, and the like. For ease of representation, only one bold line is shown in FIG. 6, but it does not mean that there is only one bus or only one type of bus.


The various embodiments in the specification are described in a progressive manner. The same or similar parts between the various embodiments may be referred to each other. Each embodiment focuses on the differences from the other embodiments. In particular, for the device embodiment, since it is basically similar to the method embodiment, the description is relatively simple, and the relevant parts can be referred to the description of the method embodiment.


Those skilled in the art can understand that all or part of the processes for implementing the above embodiment method can be achieved by instructing related hardware via a computer program. The computer program can be stored in a computer readable storage medium. and configured to implement a flow of the method embodiments as described above when being executed. The computer readable storage medium may be a magnetic disk, an optical disk, a read-only memory (ROM), or a random access memory (RAM).


An embodiment of the present disclosure also provides a display device including the luminance controlling device discussed above.


The display device according to the above embodiments may be any product or component having a display function, such as a mobile phone, a tablet computer, a television, a display, a notebook computer, a digital photo bezel, or a navigator.


If the edge pixel EPIX0 is blocked, as shown in FIG. 1, the N pixels NPIX are arranged along an extending direction of the bezel of the display device, and the tth pixel in the N pixels NPIX is closest to the bezel.


In the description of the above embodiments, specific features, structures, materials or characteristics may be combined in any suitable manner in any one or more embodiments or examples.


The above description is only a specific implementation of the present disclosure, but the scope of the present disclosure is not limited thereto. Those skilled in the art can make various changes or substitutions without departing from the scope of the disclosure. Such changes or substitutions should be also covered within the scope of the present disclosure. Therefore, the scope of the present disclosure should be defined by the claims.

Claims
  • 1. A device for controlling luminance, comprising: a memory configured to store instructions; andat least one processor configured to execute the instructions stored in the memory to: obtain a theoretical white balanced luminance value for each color of sub-pixel included in N pixels, wherein the N pixels are adjacent, and N is an integer greater than or equal to 1;set a luminance controlling value for other colors of sub-pixels except for an ith color of sub-pixel included in each of the N pixels, according to the theoretical white balanced luminance value for each color of sub-pixel and a sum of the luminance loss values for the ith color of sub-pixels included in the N pixels, in response to the ith color of sub-pixel included in a tth pixel of the N pixels having a luminance loss, wherein t is an integer greater than or equal to 1 and less than or equal to N, and i is an integer greater than or equal to 1; andadjust luminance of the other colors of sub-pixels except for the ith color of sub-pixels included in the N pixels according to the luminance controlling value, so that a ratio among a sum of the luminance values of the ith color of sub-pixels included in the N pixels and a sum of the adjusted luminance values of the other colors of sub-pixels except for the ith color of sub-pixels included in the N pixels is coincident with a white balanced luminance value ratio.
  • 2. The device of claim 1, wherein the processor is further configured to set the luminance controlling value for the other colors of sub-pixels, so as to satisfy at least one of: a ratio between the luminance controlling value and the theoretical white balanced luminance value for each of the other colors of sub-pixels except for the ith color of sub-pixel included in each pixel being equal to a ratio between the sum of the luminance loss values and a sum of the theoretical white balanced luminance values for the ith color of sub-pixels included in the N pixels, anda ratio between a sum of the luminance controlling values and the sum of theoretical white balanced luminance value for each of the other colors of sub-pixels except for the ith color of sub-pixel included in the N adjacent pixel being equal to a ratio between the sum of the luminance loss values and the sum of the theoretical white balanced luminance values for the ith color of sub-pixels included in the N pixels.
  • 3. The device of claim 1, wherein the processor is further configured to adjust the luminance of the other colors of sub-pixels, so as to satisfy at least one of: a ratio among the adjusted luminance values of the other colors of sub-pixels except for the ith color of sub-pixel included in each pixel being equal to the theoretical white balanced luminance value ratio of the other colors of sub-pixels; ora ratio among the adjusted luminance values of the same color of sub-pixels except for the ith color of sub-pixels included in the N pixels being equal to the theoretical white balanced luminance value ratio of the same color of sub-pixels.
  • 4. The device of claim 3, wherein the processor is further configured to obtain the sum of the theoretical white balanced luminance values for the ith color of sub-pixels included in the N pixels, according to the theoretical white balanced luminance values for the ith color of sub-pixel included in each of the N pixels; obtain a luminance reduction rate ηjs for the other colors of sub-pixels except for the ith color of sub-pixel included in each pixel, according to the sum of the theoretical white balanced luminance values and the sum of the luminance loss values for the ith color of sub-pixels included in the N pixels; and obtain the luminance controlling value for the other colors of sub-pixels except for the ith color of sub-pixel included in each pixel, according to the luminance reduction rate ηjs and the theoretical whites balanced luminance value for the other colors of sub-pixels except for the ith color of sub-pixel included in each pixel.
  • 5. The device of claim 4, wherein the luminance reduction rate for the other colors of sub-pixels except for the ith color of sub-pixel included in each pixel is as follows:
  • 6. The device of claim 1, wherein the ith color of sub-pixel has an invalid display region; and the processor is further configured to: obtain an invalid display pixel occupancy
  • 7. The device of claim 6, wherein the luminance controlling value for other colors of sub-pixels except for the ith color of sub-pixel included in each pixel are set to
  • 8. A display device comprising the device of claim 1.
  • 9. The display device of claim 8, further comprising a bezel; wherein the N pixels are arranged along an extending direction of the bezel, and the tth pixel of the N pixels is closest to the bezel.
  • 10. A method of controlling a luminance, comprising: obtaining a theoretical white balanced luminance value for each color of sub-pixel included in N pixels, wherein N is an integer greater than or equal to 1;setting a luminance controlling value for other colors of sub-pixels except for an ith color of sub-pixel included in each of the N pixels, according to the theoretical white balanced luminance value for each color of sub-pixel and a sum of the luminance loss values for the ith color of sub-pixels included in the N pixels, in response to the ith color of sub-pixel included in a tth pixel of the N pixels having a luminance loss, wherein t is an integer greater than or equal to 1 and less than or equal to N, and i is an integer greater than or equal to 1; andadjusting luminance of the other colors of sub-pixels according to the luminance controlling value, so that a ratio among a sum of the luminance values of the ith color of sub-pixels included in the N pixels and a sum of the adjusted luminance values of the other colors of sub-pixels except for the ith color of sub-pixels included in the N pixels is coincident with a white balanced luminance value ratio.
  • 11. The method of claim 10, wherein setting luminance controlling value for the other colors of sub-pixels so as to satisfy at least one of: a ratio between the luminance controlling value and the theoretical white balanced luminance value for each of the other colors of sub-pixels except for the ith color of sub-pixel included in each pixel being equal to a ratio between the sum of the luminance loss values and a sum of the theoretical white balanced luminance values for the ith color of sub-pixels included in the N pixels, anda ratio between a sum of the luminance controlling values and the sum of the theoretical white balanced luminance values for each of the other colors of sub-pixels except for the ith color of sub-pixel included in the N adjacent pixel being equal to a ratio between the sum of the luminance loss values and the sum of the theoretical white balanced luminance values for the ith color of sub-pixels included in the N pixels.
  • 12. The method of claim 10, wherein the ith color of sub-pixel included in the tth pixel has an invalid display region; and the method further comprising: obtaining an invalid display pixel occupancy
  • 13. The method of claim 12, wherein the luminance controlling value for other colors of sub-pixels except for the ith color of sub-pixel included in each pixel are set to
  • 14. The method of claim 10, wherein the luminance controlling value for the other colors of sub-pixels except for the ith color of sub-pixel included in each of the N pixels is set according to the theoretical white balanced luminance value for each color of sub-pixel and a sum of the luminance loss values for the ith color of sub-pixels included in the N pixels by: obtaining the sum of the theoretical white balanced luminance values for the ith color of sub-pixels included in the N pixels, according to the theoretical white balanced luminance values for the ith color of sub-pixel included in each of the N pixels;obtaining a luminance reduction rate ηjs for the other colors of sub-pixels except for the ith color of sub-pixel included in each pixel, according to the sum of the theoretical white balanced luminance values and the sum of the luminance loss values for the ith color of sub-pixels included in the N pixels; andobtaining the luminance controlling value for the other colors of sub-pixels except for the ith color of sub-pixel included in each pixel, according to the luminance reduction rate ηjs and the theoretical whites balanced luminance value for the other colors of sub-pixels except for the ith color of sub-pixel included in each pixel.
  • 15. The method of claim 14, wherein the luminance reduction rate for the other colors of sub-pixels except for the ith color of sub-pixel included in each pixel is as follows:
  • 16. The method of claim 10, wherein the luminance of the other colors of sub-pixels is adjusted so as to satisfy at least one of: a ratio among the adjusted luminance values of the other colors of sub-pixels except for the ith color of sub-pixel included in each pixel being equal to the theoretical white balanced luminance value ratio of the other colors of sub-pixels; ora ratio among the adjusted luminance values of the same color of sub-pixels except for the ith color of sub-pixels included in the N pixels being equal to the theoretical white balanced luminance value ratio of the same color of sub-pixels.
Priority Claims (1)
Number Date Country Kind
201811063544.7 Sep 2018 CN national
US Referenced Citations (3)
Number Name Date Kind
20100007595 Chiang Jan 2010 A1
20150084996 Yamakawa Mar 2015 A1
20150138260 Yamakawa May 2015 A1
Related Publications (1)
Number Date Country
20200082748 A1 Mar 2020 US