This application claims priority to a Chinese patent application No. 201910171961.1 filed on Mar. 7, 2019, disclosure of which is incorporated herein by reference in its entirety.
The present disclosure relates to luminance compensation techniques for a display panel and, in particular, to a luminance compensation method for a display panel.
The organic light emitting diode (OLED) has been widely used in various electronic devices due to its advantages, such as self-illumination, requiring no backlight, low power consumption and high luminance.
The present disclosure provides a luminance compensation method for a display panel to implement a better luminance compensation effect by using less compensation coefficient data.
An embodiment of the present disclosure provides a luminance compensation method for a display panel. The display panel includes a display area and a non-display area surrounding the display area, and the luminance compensation method includes:
dividing the display area into at least two sub-display areas, where the at least two sub-display areas include a first sub-display area and a second sub-display area, the display area includes luminance abnormal textures, a density of the luminance abnormal textures in the first sub-display area is less than a density of the luminance abnormal textures in the second sub-display area, types of the luminance abnormal textures in the first sub-display area are less than types of the luminance abnormal textures in the second sub-display area, and the luminance abnormal textures include a plurality of sub-pixels;
dividing the first sub-display area into a plurality of first compensation units, and dividing the second sub-display area into at least one second compensation unit, where the display area includes a plurality of pixel units, the number of the pixel units in each of the plurality of first compensation units is greater than the number of the pixel units in each of the at least one second compensation unit, and each of the plurality of pixel units includes at least two sub-pixels of different colors;
obtaining a compensation coefficient of each of the plurality of first compensation units and the at least one second compensation unit and forming a compensation coefficient table; and
performing luminance compensation for the display panel according to the compensation coefficient table.
According to the luminance compensation method for the display panel provided by the embodiment of the present disclosure, the display area of the display panel is divided into at least two sub-display areas, a manner for dividing compensation units in each sub-display area is determined according to the density and types of the luminance abnormal textures in each sub-display area, the compensation coefficient of each divided compensation unit is obtained and the compensation coefficient table is formed, and the luminance compensation for the display panel is performed according to the compensation coefficient table. In this way, the higher the density of the luminance abnormal textures and the more types of the luminance abnormal textures, the fewer pixel units in the compensation unit, thereby implementing the fine compensation for the sub-display area with poor display quality and the large scale uniform compensation for the sub-display area with better display quality, and obtaining a better luminance compensation effect by using less compensation coefficient data.
Other features, objects and advantages of the present disclosure will become more apparent from a detailed description of non-restrictive embodiments with reference to the drawings.
To elucidate technical means and technical effects for achieving an intended purpose of the present disclosure, embodiments, structures, features and effects of a luminance compensation method for a display panel provided according to the present disclosure are described hereinafter in detail with reference to drawings and exemplary embodiments.
An embodiment of the present disclosure provides a luminance compensation method for a display panel. The display panel includes a display area and a non-display area surrounding the display area, and the luminance compensation method includes:
dividing the display area into at least two sub-display areas, where the at least two sub-display areas include a first sub-display area and a second sub-display area, the display area includes luminance abnormal textures, a density of the luminance abnormal textures in the first sub-display area is smaller than a density of the luminance abnormal textures in the second sub-display area, types of the luminance abnormal textures in the first sub-display area are less than types of the luminance abnormal textures in the second sub-display area, and the luminance abnormal textures include a plurality of sub-pixels;
dividing the first sub-display area into a plurality of first compensation units, and dividing the second sub-display area into at least second compensation unit, where the display area includes a plurality of pixel units, the number of the pixel units in the plurality of first compensation units is greater than the number of the pixel units in the at least one second compensation unit, and each of the plurality of pixel units includes at least two sub-pixels of different colors;
obtaining a compensation coefficient of each of the plurality of first compensation units and the at least one second compensation unit and forming a compensation coefficient table; and
performing luminance compensation for the display panel according to the compensation coefficient table.
The luminance compensation method for the display panel provided by the embodiment of the present disclosure divides the display area of the display panel into at least two sub-display areas, determines a manner for dividing compensation units in each sub-display area according to the density and types of the luminance abnormal textures in each sub-display area, obtains the compensation coefficient of each divided compensation unit and forms the compensation coefficient table, and compensates for the luminance of the display panel according to the compensation coefficient table, so that the higher the density of the luminance abnormal textures and the more types of the luminance abnormal textures, the fewer pixel units in the compensation unit, thereby implementing the fine compensation for the sub-display area with poor display quality and the large scale uniform compensation for the sub-display area with better display quality, and obtaining a better luminance compensation effect by using less compensation coefficient data.
The technical solutions in the embodiments of the present disclosure will be described clearly and completely in connection with the drawings in the embodiments of the present disclosure. The embodiments described below are part, not all, of the embodiments of the present disclosure. Based on the embodiments of the present disclosure, all other embodiments obtained by those skilled in the art without making creative work are within the scope of the present disclosure.
Details are set forth below to facilitate a thorough understanding of the present disclosure. However, the present disclosure may be implemented by other embodiments different from the embodiments described herein, and those skilled in the art may make similar generalizations without departing from the spirit of the present disclosure. Therefore, the disclosure is not limited to the specific embodiments described below.
In addition, the present disclosure will be described in detail in conjunction with the drawings. In detailed description of embodiments of the present disclosure, for ease of description, schematic diagrams illustrating structures of devices and components are not partially enlarged in accordance with a general proportional scale. The schematic diagrams are merely illustrative and are not intended to limit the scope of the present disclosure. In addition, manufacturing includes three-dimension spatial sizes: length, width and height.
In order to solve the problem of uneven luminance of the display panel, the luminance compensation for the OLED display panel is generally performed in a following manner in the related art: dividing the display area of the OLED display panel into multiple compensation units, where the number and arrangement of pixel units included in each compensation unit are the same; obtaining a compensation coefficient of each compensation unit respectively, and performing luminance compensation on the corresponding compensation unit by using the compensation coefficient. Specifically,
In step 11, the display area is divided into at least two sub-display areas including a first sub-display area and a second sub-display area. Luminance abnormal textures exist in the display area. A density of the luminance abnormal textures in the first sub-display area is less than a density of the luminance abnormal textures in the second sub-display area, and types of the luminance abnormal textures in the first sub-display area are less than types of the luminance abnormal textures in the second sub-display area. The luminance abnormal textures include multiple sub-pixels.
It is to be noted that the luminance abnormal textures are texture visible to the human eye when the display panel normally works, and the luminance of the textures is greatly different from the luminance of the non-texture area. Specifically, the luminance of the abnormal textures is brighter or darker than the non-texture area.
In this embodiment, the density of the luminance abnormal textures refers to the number of luminance abnormal textures per unit area. In addition, the luminance abnormal texture with a certain fixed shape is referred to as a kind of luminance abnormal texture. It may be understood that the luminance abnormal textures with the same shape and size is the same kind of luminance abnormal texture, and otherwise they are different kinds of luminance abnormal texture.
Exemplarily, the display area only includes the first sub-display area and the second sub-display area. The area of both the first sub-display area and the second sub-display area is A. The first sub-display area includes totally 15 luminance abnormal textures in three kinds. The second sub-display area includes totally 20 luminance abnormal textures in five kinds. In this case, the density of the luminance abnormal textures in the first sub-display area is P1=15/A, and the density of the luminance abnormal textures in the second sub-display area is P2=20/A. It may be seen that P2 is greater than P1. That is, the density of the luminance abnormal textures in the first sub-display area is smaller than the density of the luminance abnormal textures in the second sub-display area. In addition, the first sub-display area includes three kinds of luminance abnormal textures, and the second sub-display area includes five kinds of luminance abnormal textures. Therefore, the types of the luminance abnormal textures in the first sub-display area are less than the types of the luminance abnormal textures in the second sub-display area.
It is to be further noted that the display quality of the corresponding sub-display area may be determined according to the density and types of the luminance abnormal textures. The higher the density of the luminance abnormal textures and the more types of the luminance abnormal textures, the poorer the display quality of the sub-display area.
In step 12, the first sub-display area is divided into multiple first compensation units, and the second sub-display area is divided into at least one second compensation unit. The display area includes multiple pixel units. The number of the pixel units in each of the multiple first compensation units is greater than the number of the pixel units in each of the at least one second compensation unit, and each of the multiple pixel units includes at least two sub-pixels of different colors.
Continuously referring to
It is to be noted that the compensation unit is the minimum unit for luminance compensation, and at least one pixel belonging to the same luminance compensation unit adopts the same compensation coefficient for luminance compensation. It may be understood that the more pixel units in the compensation unit, the smaller the total amount of compensation coefficient data used when performing luminance compensation on the display panel, but the coarser the compensation. For the display area with poor display quality, when the number of display units in the compensation unit is large, the luminance difference between adjacent pixel units may not be effectively compensated, and the display effect of the display panel subjected to compensation is not observably improved. For the display area with good display quality, when the number of display units in the compensation unit is small, the compensation coefficients of adjacent multiple compensation units are approximate or even equal, which results in excessive compensation coefficient data and too much processor resources to be occupied. Therefore, the solution in which the entire display is divided into multiple identical compensation units in the same manner may not implement the good compensation effect by using less compensation data. For the above problem, in the embodiment, the display panel is divided into multiple sub-display areas, and the poorer the display quality of the sub-display area, the smaller the number of pixel units in the compensation unit, to effectively improve the display quality of the display panel according to less compensation coefficient data.
In step 13, a compensation coefficient of each compensation unit is obtained and a compensation coefficient table is formed.
Optionally, the compensation coefficient of each compensation unit may be obtained according to a conventional method. For example, as shown in
It is to be noted that the compensation coefficient is obtained according to the grayscale, thus the greyscale of the sub-pixel is compensated when the luminance compensation is performed. Accordingly, the luminance compensation is achieved along with the grayscale compensation due to a correspondence between the grayscale and the luminance.
It is to be noted that a correspondence between the pixel unit and the compensation coefficient of the pixel unit is generally stored in the compensation coefficient table. For a compensation unit including multiple pixel units, the compensation coefficients of the multiple pixel units in the compensation unit are the same and equal to the compensation coefficient of the compensation unit. Therefore, in order to reduce the amount of data storage, a correspondence between one pixel unit in each compensation unit and the compensation coefficient of the compensation unit may be stored in the compensation coefficient table. The pixel unit is a flag pixel unit in the corresponding compensation unit. The position of the flag pixel unit of each compensation unit in each sub-display area is the same, and the position is simultaneously stored.
In step 14, performing luminance compensation on the display panel according to the compensation coefficient table.
It is to be noted that when the luminance compensation is performed, the other pixel units in the compensation unit may be determined according to the position of the flag pixel unit in the compensation unit, and the luminance of the multiple pixel units in the compensation unit is compensated according to the compensation coefficient of the compensation unit corresponding to the flag pixel unit.
According to the luminance compensation method for the display panel provided by the embodiment, the display area of the display panel is divided into at least two sub-display areas, a manner for dividing compensation units in each sub-display area is determined according to the density and types of the luminance abnormal textures in each sub-display area, the compensation coefficient of each divided compensation unit is obtained to form the compensation coefficient table, and the luminance compensation is performed on the display panel according to the compensation coefficient table. Therefore, the higher the density of the luminance abnormal textures and the more types of the luminance abnormal textures the sub-display area has, the fewer pixel units in the compensation unit, thereby implementing the fine compensation for the sub-display area with poor display quality and the large scale uniform compensation for the sub-display area with better display quality, and obtaining a better luminance compensation effect by using less compensation coefficient data.
Exemplarily, a reference luminance difference of the luminance abnormal textures in the first sub-display area is smaller than the reference luminance difference of the luminance abnormal textures in the second sub-display area, where the reference luminance difference of the luminance abnormal textures is an absolute value of a difference between a luminance average of the multiple sub-pixels in the luminance abnormal textures and a preset luminance value.
It is to be noted that, besides the density and the number of luminance abnormal textures, the display quality of the display panel is also related to the reference luminance of the luminance abnormal textures. The higher the density of the luminance abnormal textures, the larger the number of luminance abnormal textures and the larger the reference luminance, the poorer the display quality of the sub-display area. When the sub-display area is divided based on the reference luminance as well as the density and type of the luminance abnormal textures, the difference in display quality of each sub-display area subjected to division is more obvious, and the compensation effect is further improved.
It is to be further noted that the preset luminance value may be a luminance value of pre-designed by the designer, or may be an average of luminance of multiple sub-pixels in a certain area with a good display quality determined according to a preset rule.
Optionally, the at least two sub-display areas further include a third sub-display area. The third sub-display area is divided into at least one third compensation unit. The density of the luminance abnormal textures in the third sub-display area is higher than the density of the luminance abnormal textures in the second sub-display area, and types of the luminance abnormal textures in the third sub-display area are greater than the types of the luminance abnormal textures in the second sub-display area. The number of the pixel units in the third compensation unit is less than the number of the pixel units in the second compensation unit.
It is to be noted that the number of the at least two sub-display areas in the display area is not specifically limited in the embodiment. The foregoing description is made by using the at least two sub-display areas including two or three sub-display areas as an example.
It is to be noted that the higher the density of the luminance abnormal textures and the more types of the luminance abnormal textures, the poorer the display quality of the sub-display area. Therefore, the display quality of the first sub-display area, the second sub-display area and the third sub-display area in the embodiment is sequentially deteriorated. Accordingly, the number of pixel units in compensation units of the first sub-display area, the second sub-display area and the third sub-display area is sequentially decreased to implement finer compensation in the sub-display area with poor display quality, thereby improving the compensation effect.
Continuously referring to
It is to be noted that, in the actual product, the display area of a mobile phone may be the display area 20 shown in
Exemplarily, continuously referring to
It is to be noted that
Exemplarily, the compensation coefficient of the compensation unit may be obtained as follows: when the number of pixel units in the compensation unit is 1, the compensation coefficient of the pixel unit in the compensation unit is used as the compensation coefficient of the compensation unit; when the number of the pixel units in the compensation unit is 2, an average of compensation coefficients of the two pixel units in the compensation unit is used as the compensation coefficient of the compensation unit; and when the number of the pixel units in the compensation unit is at least 3, an average of compensation coefficients of the at least three pixel units in the compensation unit is used as the compensation coefficient of the compensation unit. Alternatively, the maximum compensation coefficient and/or the minimum compensation coefficient among the compensation coefficients of the at least three pixel units is removed and an average of the remained compensation coefficients is used as the compensation coefficient of the compensation unit.
It is to be noted that the compensation coefficient, obtained through solving the average or solving the average after removing the maximum and/or minimum value, is close to the compensation coefficient of more pixel units so that the compensation effect is improved. It may be understood that the compensation coefficient of the compensation units may be obtained through other calculation manners, which is not specifically limited in the embodiment.
Optionally, a correspondence between the compensation coefficient of the compensation unit and a flag pixel unit in the compensation unit is stored in the compensation coefficient table, where the flag pixel unit is a pixel unit in the compensation unit selected according to a preset condition, and positions of the flag pixel units in the different compensation units in the same sub-display area are the same in these compensation units.
Exemplarily,
It is to be noted that such a design may reduce the data amount stored in the compensation coefficient table, thereby reducing the storage space occupancy and the transmission space occupancy of the compensation coefficient table.
Furthermore,
In step 21, a correspondence between the compensation coefficient of the first one of the compensation units and the flag pixel unit in the compensation unit in the compensation coefficient table is extracted.
In step 22, pixel units other than the flag pixel unit in the first one of the compensation units are determined according to a position of the flag pixel unit in the first one of the compensation units.
In step 23, the luminance compensation is performed on each pixel unit in the first one of the compensation units based on the extracted compensation coefficient.
In step 24, the above operation is performed on the rest of compensation units until all the compensation units in the display panel are traversed.
It is to be noted that the position of the first compensation unit may be determined according to a preset condition. Exemplarily, for the display area in which the compensation units are arranged in an array, the first compensation unit may be a compensation unit located in the first column and the first row.
Continuously referring to
Exemplarily, colors of the three sub-pixels in the same pixel unit 410 are respectively one of red, blue and green.
It is to be noted that red, green and blue are the three primary colors of light, and different intensities of red light, green light and blue light may be mixed to obtain light of various colors. Therefore, the above-mentioned arrangement may make the display panel display various colors and enrich the display color of the display device.
It may be understood that, in the implementation modes of the embodiment, the number and the color of sub-pixels in the pixel unit 410 may further be different, which is not specifically limited in the embodiment.
In step 31, the display area is divided into at least two sub-display areas. The at least two sub-display areas include a first sub-display area and a second sub-display area. The display area includes luminance abnormal textures. The density of the luminance abnormal textures in the first sub-display area is smaller than the density of the luminance abnormal textures in the second sub-display area, types of the luminance abnormal textures in the first sub-display area are less than types of the luminance abnormal textures in the second sub-display area. The luminance abnormal textures include multiple sub-pixels.
In step 32, the first sub-display area is divided into multiple first compensation units, and the second sub-display area is divided into at least one second compensation unit. The display area includes multiple pixel units, the number of the pixel units in each first compensation unit is greater than the number of the pixel units in each second compensation unit. Each pixel unit includes at least two sub-pixels of different colors.
In step 33, a compensation coefficient of each compensation unit is obtained and a compensation coefficient table is formed.
In step 34, the compensation coefficient table is compressed and stored.
In step 35, an image display instruction is detected and the compressed compensation coefficient table is obtained for decompression processing.
In step 36, luminance compensation for the display panel is performed according to the compensation coefficient table. It is to be noted that, the storage space of the compensation coefficient table is effectively reduced by storing the compensation coefficient table being compressed, and the resource occupancy is reduced.
It to be noted that the above are only exemplary embodiments of the present disclosure and the technical principles used therein. It will be understood by those skilled in the art that the present disclosure is not limited to the embodiments described herein. Those skilled in the art can make various apparent modifications, adaptations, combinations and substitutions without departing from the scope of the present disclosure. Therefore, while the present disclosure has been described in detail via the above-mentioned embodiments, the present disclosure is not limited to the above-mentioned embodiments and may include more other equivalent embodiments without departing from the concept of the present disclosure. The scope of the present disclosure is determined by the scope of the appended claims.
Number | Date | Country | Kind |
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201910171961.1 | Mar 2019 | CN | national |