WO2020135075A1 - 显示器及其显示面板的驱动装置、方法 - Google Patents

显示器及其显示面板的驱动装置、方法 Download PDF

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Publication number
WO2020135075A1
WO2020135075A1 PCT/CN2019/124875 CN2019124875W WO2020135075A1 WO 2020135075 A1 WO2020135075 A1 WO 2020135075A1 CN 2019124875 W CN2019124875 W CN 2019124875W WO 2020135075 A1 WO2020135075 A1 WO 2020135075A1
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data
pixel
target
target pixel
driving
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PCT/CN2019/124875
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English (en)
French (fr)
Inventor
单剑锋
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惠科股份有限公司
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Priority to US17/270,866 priority Critical patent/US11393426B2/en
Publication of WO2020135075A1 publication Critical patent/WO2020135075A1/zh

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Classifications

    • GPHYSICS
    • G09EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
    • G09GARRANGEMENTS OR CIRCUITS FOR CONTROL OF INDICATING DEVICES USING STATIC MEANS TO PRESENT VARIABLE INFORMATION
    • G09G3/00Control arrangements or circuits, of interest only in connection with visual indicators other than cathode-ray tubes
    • G09G3/20Control arrangements or circuits, of interest only in connection with visual indicators other than cathode-ray tubes for presentation of an assembly of a number of characters, e.g. a page, by composing the assembly by combination of individual elements arranged in a matrix no fixed position being assigned to or needed to be assigned to the individual characters or partial characters
    • G09G3/34Control arrangements or circuits, of interest only in connection with visual indicators other than cathode-ray tubes for presentation of an assembly of a number of characters, e.g. a page, by composing the assembly by combination of individual elements arranged in a matrix no fixed position being assigned to or needed to be assigned to the individual characters or partial characters by control of light from an independent source
    • G09G3/36Control arrangements or circuits, of interest only in connection with visual indicators other than cathode-ray tubes for presentation of an assembly of a number of characters, e.g. a page, by composing the assembly by combination of individual elements arranged in a matrix no fixed position being assigned to or needed to be assigned to the individual characters or partial characters by control of light from an independent source using liquid crystals
    • G09G3/3611Control of matrices with row and column drivers
    • G09G3/3696Generation of voltages supplied to electrode drivers
    • GPHYSICS
    • G09EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
    • G09GARRANGEMENTS OR CIRCUITS FOR CONTROL OF INDICATING DEVICES USING STATIC MEANS TO PRESENT VARIABLE INFORMATION
    • G09G3/00Control arrangements or circuits, of interest only in connection with visual indicators other than cathode-ray tubes
    • G09G3/20Control arrangements or circuits, of interest only in connection with visual indicators other than cathode-ray tubes for presentation of an assembly of a number of characters, e.g. a page, by composing the assembly by combination of individual elements arranged in a matrix no fixed position being assigned to or needed to be assigned to the individual characters or partial characters
    • G09G3/2003Display of colours
    • GPHYSICS
    • G09EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
    • G09GARRANGEMENTS OR CIRCUITS FOR CONTROL OF INDICATING DEVICES USING STATIC MEANS TO PRESENT VARIABLE INFORMATION
    • G09G3/00Control arrangements or circuits, of interest only in connection with visual indicators other than cathode-ray tubes
    • G09G3/20Control arrangements or circuits, of interest only in connection with visual indicators other than cathode-ray tubes for presentation of an assembly of a number of characters, e.g. a page, by composing the assembly by combination of individual elements arranged in a matrix no fixed position being assigned to or needed to be assigned to the individual characters or partial characters
    • G09G3/34Control arrangements or circuits, of interest only in connection with visual indicators other than cathode-ray tubes for presentation of an assembly of a number of characters, e.g. a page, by composing the assembly by combination of individual elements arranged in a matrix no fixed position being assigned to or needed to be assigned to the individual characters or partial characters by control of light from an independent source
    • G09G3/3406Control of illumination source
    • GPHYSICS
    • G09EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
    • G09GARRANGEMENTS OR CIRCUITS FOR CONTROL OF INDICATING DEVICES USING STATIC MEANS TO PRESENT VARIABLE INFORMATION
    • G09G3/00Control arrangements or circuits, of interest only in connection with visual indicators other than cathode-ray tubes
    • G09G3/20Control arrangements or circuits, of interest only in connection with visual indicators other than cathode-ray tubes for presentation of an assembly of a number of characters, e.g. a page, by composing the assembly by combination of individual elements arranged in a matrix no fixed position being assigned to or needed to be assigned to the individual characters or partial characters
    • G09G3/34Control arrangements or circuits, of interest only in connection with visual indicators other than cathode-ray tubes for presentation of an assembly of a number of characters, e.g. a page, by composing the assembly by combination of individual elements arranged in a matrix no fixed position being assigned to or needed to be assigned to the individual characters or partial characters by control of light from an independent source
    • G09G3/36Control arrangements or circuits, of interest only in connection with visual indicators other than cathode-ray tubes for presentation of an assembly of a number of characters, e.g. a page, by composing the assembly by combination of individual elements arranged in a matrix no fixed position being assigned to or needed to be assigned to the individual characters or partial characters by control of light from an independent source using liquid crystals
    • G09G3/3607Control arrangements or circuits, of interest only in connection with visual indicators other than cathode-ray tubes for presentation of an assembly of a number of characters, e.g. a page, by composing the assembly by combination of individual elements arranged in a matrix no fixed position being assigned to or needed to be assigned to the individual characters or partial characters by control of light from an independent source using liquid crystals for displaying colours or for displaying grey scales with a specific pixel layout, e.g. using sub-pixels
    • GPHYSICS
    • G09EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
    • G09GARRANGEMENTS OR CIRCUITS FOR CONTROL OF INDICATING DEVICES USING STATIC MEANS TO PRESENT VARIABLE INFORMATION
    • G09G2320/00Control of display operating conditions
    • G09G2320/02Improving the quality of display appearance
    • G09G2320/0242Compensation of deficiencies in the appearance of colours

Definitions

  • the present application relates to the field of display technology, and in particular to a driving method of a display panel, a driving device of a display panel, and a display.
  • VA liquid crystal technology has the advantages of higher production efficiency and lower manufacturing cost, but the optical properties have obvious optical property defects. For example, when a large-size display panel requires a larger viewing angle, VA type liquid crystal technology The LCD panel may have color shift.
  • the way to improve the color shift is to solve the color shift problem by giving different driving voltages to the spatial sub-pixels in the display array or giving different driving voltages to the adjacent sub-pixels spatially, but considering driving the same column of sub-pixels Pixels use the same transmission data line.
  • the data line and other pixel-related electrodes have capacitive resistance effects. Therefore, if the data line frequently switches between high and low voltages, the capacitive resistance effect will distort the high and low voltage signals and affect the display quality of the picture.
  • the main purpose of the present application is to provide a driving method of a display panel, which aims to improve the display quality of a picture.
  • the present application provides a driving method for a display panel
  • the display panel includes a plurality of pixel groups arranged in an array, each of the pixel groups includes a first pixel unit, and the first pixel unit includes At least two first subpixels; define the first subpixel in one of any two adjacent pixel groups as the first target pixel, and define the first subpixel in the other of any two adjacent pixel groups as The second target pixel;
  • the driving method of the display panel includes the following steps:
  • the first target pixel is driven with the first target high voltage drive data
  • the second target pixel is driven with the first target low voltage drive data
  • a driving method for a display panel in a display array of a display panel, a pixel unit is formed in units of at least two sub-pixels, and adjacent pixel units are spatially passed through targets larger than the initial drive data High-voltage driving data and target low-voltage driving data smaller than the initial driving data are driven.
  • the row or column where at least two sub-pixels are located is driven by the same data line, since the sub-pixels in the pixel unit are all high-voltage or uniform For low voltage, the high and low voltages on the data line do not need to be switched frequently in sub-pixel units, but high and low voltage switching in pixel units. Therefore, it is helpful to improve the role of the role and avoid signal distortion caused by the capacitive resistance effect. To improve the picture display quality.
  • FIG. 1 is a schematic diagram of a distribution of driving voltages of sub-pixels of a first embodiment of a display array involved in a driving method of a display panel of the present application;
  • FIG. 2 is a schematic flowchart of a first embodiment of a method for driving a display panel of the present application
  • FIG. 3 is a schematic flowchart of a second embodiment of a method for driving a display panel of the present application
  • FIG. 4 is a schematic flowchart of a third embodiment of a method for driving a display panel of the present application.
  • 5 is a schematic diagram of the distribution of the driving voltage of each sub-pixel of the second embodiment of the display array involved in the driving method of the display panel of the present application;
  • FIG. 6 is a schematic flowchart of a fourth embodiment of a method for driving a display panel of the present application.
  • FIG. 7 is a schematic structural diagram of a display panel driving device of a hardware operating environment according to the solution of the present application.
  • the display panel includes a plurality of pixel groups 01 arranged in an array, each pixel group 01 includes a first pixel unit, and the first pixel unit includes at least two first Sub-pixel; define the first sub-pixel in one of any two adjacent pixel groups 01 as the first target pixel 11, define the first sub-pixel in the other one of any two adjacent pixel groups 01 as the second Target pixel 12.
  • the driving method of the display panel includes the following steps: acquiring first initial driving data corresponding to displaying the first target pixel 11 and acquiring second initial driving data corresponding to displaying the second target pixel 12; determined according to the first initial driving data Corresponding first high voltage data, the corresponding first low voltage data is determined according to the second initial driving data; according to the first high voltage data, the first target high voltage driving data corresponding to the first target pixel 11 is determined, according to the first low voltage The data determines the first target low voltage drive data corresponding to the second target pixel 12; and, the first target high voltage drive data is used to drive the first target pixel 11, and the first target low voltage drive data is used to drive the second target pixel 12.
  • the data line and other pixel-related electrodes have capacitive resistance effects. Therefore, if the data line frequently switches between high and low voltages, the capacitive resistance effect will distort the high and low voltage signals and affect the image display quality.
  • the present application provides a solution, which is beneficial to avoid signal distortion caused by capacitance resistance effect and improve picture display quality.
  • the embodiments of the present application provide a driving method for a display panel, which is applied to driving the display panel.
  • the display panel may specifically include a liquid crystal display panel, especially applied to TN (Twisted Nematic, twisted nematic), OCB (Optically Compensated Birefringence (optically compensated bending arrangement), VA type liquid crystal display panel and other panels can be applied.
  • the display panel includes pixel groups 01 arranged in an array, the pixel group 01 includes a first pixel unit 10, and the first pixel unit 10 includes at least two first sub-pixels; any two adjacent pixels are defined Each first sub-pixel in one of the groups 01 is the first target pixel 11, and each first sub-pixel in the other of any two adjacent pixel groups 01 is defined as the second target pixel 12.
  • each sub-pixel is connected to the gate data line and the source data line, wherein the sub-pixels of the same row are connected by the same gate data line, the same The sub-pixels of the column are connected by the same source data line.
  • the sub-pixels in each row receive the gate driving signal input by the gate driver through the gate data line to control the thin film transistors in the sub-pixels to be turned on or off. When the thin film transistor is turned on, the sub-pixel receives the source driving signal input from the source driver through the source data line.
  • the voltage difference between the source driving signal and the common voltage charges the capacitor, and the voltage between the capacitors causes the liquid crystal molecules in it Deflection occurs, so that the backlight transmits a corresponding degree of light according to the degree of deflection of the liquid crystal molecules, so that the sub-pixels exhibit corresponding brightness.
  • the display array 1 of the display panel of this embodiment includes pixel groups 01, and each pixel group 01 includes a first pixel unit 10, and the pixel groups 01 arranged in the array form the display array 1 of the display panel.
  • the first pixel unit 10 may include at least two first sub-pixels arranged in the column direction.
  • the first sub-pixel may specifically be a red sub-pixel, a green sub-pixel, a blue sub-pixel, or the like.
  • the driving method of the display panel includes the following steps:
  • Step S10 acquiring and displaying first initial driving data corresponding to the first target pixel, and acquiring and displaying second initial driving data corresponding to the second target pixel;
  • the first initial driving data is a preset driving voltage determined according to the gray level to be displayed by the first target pixel. Different gray levels correspond to different preset driving voltages. Specifically, the gray scale corresponding to each first target pixel in the image data of the current image frame may be obtained, and the corresponding first initial driving data may be determined according to the gray scale of each first target pixel.
  • the second initial driving data is a preset driving voltage determined according to the gray level to be displayed by the second target pixel. Different gray levels correspond to different preset driving voltages. Specifically, the gray scale corresponding to each second target pixel in the image data of the current image frame may be obtained, and the corresponding second initial driving data may be determined according to the gray scale of each second target pixel.
  • Step S20 Determine corresponding first high voltage data according to the first initial driving data, and determine corresponding first low voltage data according to the second initial driving data;
  • the first high voltage data of each first target pixel 11 is greater than the first initial drive data corresponding to the first target pixel 11, and the first low voltage data of the second target pixel 12 is less than the second corresponding to the second target pixel 12 Initial drive data.
  • the first initial driving data may be increased by a preset voltage increase to obtain first high voltage data
  • the second initial driving data may be decreased by a preset voltage decrease to obtain first low voltage data
  • the preset voltage increase corresponding to the first initial driving data may be defined as a first preset amplitude
  • the preset voltage decrease corresponding to the second initial driving data may be defined as a second preset amplitude.
  • the preset voltage increase and the preset voltage decrease can be determined according to the specific gray level of the first sub-pixel, and the first sub-pixels with different gray levels can correspond to different preset voltage increase and preset voltage decrease, so As the first sub-pixel of the first target pixel, the first preset amplitude can be determined according to the gray scale of the first target pixel, and as the first sub-pixel of the second target pixel, the second preset pixel can be determined according to the gray scale of the second target pixel Preset amplitude.
  • Step S30 Determine the first target high voltage driving data corresponding to the first target pixel 11 according to the first high voltage data, and determine the first target corresponding to the second target pixel 12 according to the first low voltage data Low voltage drive data;
  • first pixel units 10 include a first unit and a second unit, each first sub-pixel in the first unit serves as the first target pixel 11, and each first sub-pixel in the second unit All as the second target pixel 12.
  • the first target high voltage drive data is the drive voltage of the first target pixel 11, and each first target pixel 11 has a corresponding first target high voltage drive data; the first target low voltage drive data is that of the second target pixel 12 For the driving voltage, each second target pixel 12 has the corresponding first target low voltage driving data.
  • the first target high voltage driving data corresponding to each first target pixel 11 can be determined according to the first high voltage data corresponding to the first target pixel 11, and the first high voltage data can be directly used as the first target high voltage driving data
  • the first target high voltage driving data may also be calculated according to the first high voltage data and other compensation voltages, and the obtained first target high voltage driving data may be used to drive the first target pixel 11.
  • the first target low voltage driving data corresponding to each second target pixel 12 can be determined according to the first low voltage data corresponding to the second target pixel 12, and the first low voltage data can be directly used as the first target low voltage driving data
  • the first target low voltage driving data may be calculated according to the first low voltage data and other compensation voltages, and the obtained first target low voltage driving data may be used to drive the second target pixel 12.
  • step S40 the first target pixel 11 is driven using the first target high voltage drive data, and the second target pixel 12 is driven using the first target low voltage drive data.
  • FIG. 1 for the schematic diagram of the driving voltage distribution of each sub-pixel in the display array 1.
  • a driving method for a display panel in a display array of a display panel, a pixel unit is formed in units of at least two sub-pixels, and adjacent pixel units are spatially passed through targets larger than the initial drive data High-voltage driving data and target low-voltage driving data smaller than the initial driving data are driven.
  • the row or column where at least two sub-pixels are located is driven by the same data line, since the sub-pixels in the pixel unit are all high-voltage or uniform For low voltage, the high and low voltages on the data line do not need to be switched frequently in sub-pixel units, but high and low voltage switching in pixel units. Therefore, it is helpful to improve the role of the role and avoid signal distortion caused by the capacitive resistance effect. To improve the picture display quality.
  • a second target pixel 12 adjacent to the first target pixel 11 is defined as a first compensation pixel, and the third corresponding to the first target pixel 11 is determined according to the first high voltage data.
  • the steps of a target high voltage drive data include:
  • Step S31 Determine the first compensation pixel corresponding to the first target pixel 11;
  • Step S32 Determine corresponding first compensated high voltage data according to the second initial driving data of the first compensated pixel
  • the first compensation high voltage data corresponding to each first compensation pixel can be determined according to the second initial driving data.
  • the first compensated high voltage data of each first compensated pixel is greater than the second initial drive data corresponding to the first compensated pixel.
  • the first initial high-voltage data may be obtained by increasing the second initial driving data by a preset voltage increase corresponding to the sub-pixel.
  • the preset voltage increase corresponding to the first compensation pixel may be defined as a third preset amplitude.
  • Step S33 Determine the first target high voltage driving data according to the first high voltage data and the first compensated high voltage data.
  • Each first compensation pixel corresponds to a first compensation high voltage data.
  • the first target high voltage driving data can be obtained according to the first target pixel 11's own first high voltage data and the first compensation pixel's first compensated high voltage data. Specifically, the sum of the first high-voltage data of the first target pixel 11 itself and the first compensated high-voltage data corresponding to all the first compensation pixels adjacent to the first target pixel 11 may be used as the first target high-voltage drive data ; The sum of the first high-voltage data of the first target pixel 11 itself and the first compensated high-voltage data corresponding to the portion of the first compensation pixel adjacent to the first target pixel 11 may also be used as the first target high-voltage drive data.
  • the second target pixel 12 itself displays the first target low voltage data
  • the second target pixel 12 adjacent to the first target pixel 11 is allocated part or all of the first compensated high voltage data originally to be displayed to the first
  • the target pixel 11 serves as the compensation voltage for the first target pixel 11
  • the first target high voltage drive data displayed by the first target pixel 11 has both its own first high voltage data and its adjacent second target pixel 12
  • the characteristics of the first compensated high-voltage data obtained by the distribution are displayed, thereby improving the color shift and ensuring the resolution of the picture.
  • step S33 may include:
  • Step S331 Obtain the first preset weight corresponding to the first compensation pixel
  • different first compensation pixels are correspondingly set with the same or different first preset weights.
  • the resolution of the current screen display may be obtained, and the size of the first preset weight corresponding to each first compensation pixel may be determined according to the obtained resolution.
  • Step S322 Determine the first target high voltage driving data according to the first high voltage data, the first compensated high voltage data, and the first preset weight;
  • the first compensated high voltage data of each first compensated pixel adjacent to the first target pixel 11 is assigned to the first target pixel 11 according to weight, and the first compensated high voltage data and the first A target pixel 11 has its own first high voltage data, and the first target high voltage driving data corresponding to the first target pixel 11 is calculated.
  • the first high voltage data of the subpixel corresponding to H34 is H'34
  • the first compensation pixel of the subpixel corresponding to H34 are the sub-pixel corresponding to L33, the sub-pixel corresponding to L44, and the sub-pixel corresponding to L35.
  • the first compensated high-voltage data of the sub-pixel corresponding to L33 is H33
  • the first compensated high-voltage data of the sub-pixel corresponding to L44 The voltage data is H44
  • the first compensated high voltage data of the sub-pixel corresponding to L35 is H35
  • the first target pixel 11 driven by the first target high voltage can be equivalent to the image to be presented when driving each sub-pixel with initial drive data (first initial drive data and second initial drive data) during display
  • initial drive data first initial drive data and second initial drive data
  • the first target pixel 11 adjacent to the second target pixel 12 is defined as a second compensation pixel, and the third corresponding to the second target pixel 12 is determined according to the first low voltage data.
  • the steps of a target low voltage drive data include:
  • Step S34 Determine the second compensation pixel corresponding to the second target pixel 12;
  • Step S35 Determine corresponding first compensated low voltage data according to the first initial driving data of the second compensated pixel
  • the first compensation low voltage data corresponding to each second compensation pixel can be determined according to the first initial driving data.
  • the first compensation low voltage data of each second compensation pixel is smaller than the first initial driving data corresponding to the second compensation pixel.
  • the first initial driving data can be reduced by reducing the preset voltage corresponding to the sub-pixel to obtain the first compensated low voltage data.
  • the preset voltage reduction corresponding to the second compensation pixel may be defined as a fourth preset amplitude.
  • Step S36 Determine the first target low voltage driving data according to the first low voltage data and the first compensated low voltage data.
  • Each second compensation pixel corresponds to a first compensation low voltage data.
  • the first target low-voltage driving data may be obtained according to the first low-voltage data of the second target pixel 12 itself and the first compensated low-voltage data of the second compensation pixel. Specifically, the sum of the first low voltage data of the second target pixel 12 itself and the first compensated low voltage data corresponding to all second compensation pixels adjacent to the second target pixel 12 may be used as the first target low voltage drive data ; The sum of the first low voltage data of the second target pixel 12 itself and the first compensated low voltage data corresponding to the portion of the second compensation pixel adjacent to the second target pixel 12 can also be used as the first target low voltage drive data.
  • the first target pixel 11 itself displays the first target high voltage data
  • the first target pixel 11 adjacent to the second target pixel 12 is allocated part or all of the first compensated low voltage data originally to be displayed to the second
  • the target pixel 12 serves as the compensation voltage for the second target pixel 12
  • the first target low voltage drive data displayed by the second target pixel 12 has both its own first low voltage data and its adjacent second target pixel 12
  • the characteristics of the first compensated low voltage data obtained by the distribution are to be displayed, thereby improving the color shift and ensuring the resolution of the picture.
  • step S31, step S32, step S33, step S34, step S35, step S36 are performed at the same time, the first target pixel 11 using the first compensated high voltage data and the second target pixel 12 using the first compensated low voltage data Compensation is helpful to improve the overall resolution of the display screen, so that the displayed screen presents the effect of complete picture quality.
  • step S36 may include:
  • Step S361 Obtain a second preset weight corresponding to the second compensation pixel
  • different second compensation pixels are correspondingly provided with the same or different second preset weights.
  • the resolution of the current screen display may be obtained, and the size of the second preset weight corresponding to each second compensation pixel may be determined according to the obtained resolution.
  • Step S362 Determine the first target low voltage driving data according to the first low voltage data, the first compensated low voltage data, and the second preset weight.
  • the first compensated low voltage data of each second compensation pixel adjacent to the second target pixel 12 is assigned to the second target pixel 12 according to the weight, and the first compensated low voltage data and the first The second target pixel 12 has its own first low voltage data, and the first target low voltage driving data corresponding to the second target pixel 12 is calculated.
  • the first low-voltage data of the sub-pixel corresponding to L44 is L'44
  • the first compensation pixel of the sub-pixel corresponding to L44 Respectively, the sub-pixel corresponding to H43, the sub-pixel corresponding to H34, and the sub-pixel corresponding to H45.
  • the first compensation low voltage data of the sub-pixel corresponding to H43 is L43
  • the first compensation low of the sub-pixel corresponding to H34 is The voltage data is L34
  • the first compensated low voltage data of the sub-pixel corresponding to H45 is L45
  • the second preset weight corresponding to each second compensated pixel is 1/3
  • the first target low voltage data L44 ( L'44+1/3*( L43+ L34+ L45))/2.
  • the second target pixel 12 driven by the first target low voltage can be equivalent to the image to be presented when driving each sub-pixel with initial drive data (first initial drive data and second initial drive data) during display
  • initial drive data first initial drive data and second initial drive data
  • each pixel group 01 further includes a second pixel unit 20 and a third pixel unit 30, the second pixel unit 20 includes at least two second sub-pixels, and the third pixel unit 30 includes at least two third sub-pixels, and the first pixel unit 10, the second pixel unit 20, and the third pixel unit 30 in each pixel group 01 are arranged in sequence along the row direction; any two adjacent pixels are defined
  • the second sub-pixel in one of group 01 is the third target pixel 21, and the second sub-pixel in the other of any two adjacent pixel groups 01 is defined as the fourth target pixel 22; any two adjacent pixels are defined
  • the third sub-pixel in one of the pixel groups 01 is the fifth target pixel 31, and the third sub-pixel in the other of any two adjacent pixel groups 01 is defined as the sixth target pixel 32;
  • the pixel group 01 includes a second pixel unit 20 and a third pixel unit 30 in addition to the first pixel unit 10.
  • the first pixel unit 10, the second pixel unit 20, and the third pixel unit 30 are sequentially arranged along the row direction.
  • a plurality of pixel groups 01 composed of a first pixel unit 10, a second pixel unit 20, and a third pixel unit 30 are arranged in an array to form the display array 1 of the display panel.
  • the second pixel unit 20 may include at least two second sub-pixels arranged in the column direction
  • the third pixel unit 30 may include At least two third sub-pixels arranged along the column direction.
  • the first sub-pixel, the second sub-pixel, and the third sub-pixel may be a red sub-pixel, a green sub-pixel, a blue sub-pixel, etc., respectively, so as to realize multi-color display of a display screen.
  • the driving method of the display panel further includes the following steps:
  • Step S50 acquiring and displaying the third initial driving data corresponding to the third target pixel 21, acquiring and displaying the fourth initial driving data corresponding to the fourth target pixel 22, and acquiring and displaying the fifth corresponding to the fifth target pixel 31
  • Initial driving data acquiring and displaying sixth initial driving data corresponding to the sixth target pixel 32;
  • Step S60 Determine the corresponding second high voltage data according to the third initial drive data, determine the corresponding second low voltage data according to the fourth initial drive data, and determine the corresponding third according to the fifth initial drive data High voltage data, determining the corresponding third low voltage data according to the sixth initial driving data;
  • Step S70 Determine the second target high voltage driving data corresponding to the third target pixel 21 according to the second high voltage data, and determine the second target corresponding to the fourth target pixel 22 according to the second low voltage data Low voltage drive data, determine the third target high voltage drive data corresponding to the fifth target pixel 31 according to the third high voltage data, and determine the third target high voltage drive data corresponding to the sixth target pixel 32 according to the third low voltage data Three target low voltage drive data;
  • Step S80 driving the third target pixel 21 with the second target high voltage drive data, driving the fourth target pixel 22 with the second target low voltage drive data, and driving with the third target high voltage
  • the data drives the fifth target pixel 31, and the third target low voltage drive data is used to drive the sixth target pixel 32.
  • the fourth target pixel 22 adjacent to the third target pixel 21 is defined as a third compensation pixel, and the second target high voltage drive data corresponding to the third target pixel 21 is determined according to the second high voltage data.
  • the steps include: determining the third compensation pixel corresponding to the third target pixel 21; determining the corresponding second compensation high voltage data according to the fourth initial driving data of the third compensation pixel; and according to the second high voltage data and The second compensated high voltage data determines the second target high voltage drive data.
  • a third target pixel 21 adjacent to the fourth target pixel 22 is defined as a fourth compensation pixel, and the second target low voltage driving data corresponding to the fourth target pixel 22 is determined according to the second low voltage data.
  • the steps include: determining a fourth compensation pixel corresponding to the fourth target pixel 22; determining corresponding second compensation low voltage data according to the third initial driving data of the fourth compensation pixel; and according to the second low voltage data and The second compensated low voltage data determines the second target low voltage drive data.
  • a sixth target pixel 32 adjacent to the fifth target pixel 31 is defined as a fifth compensation pixel, and the third target high voltage drive data corresponding to the fifth target pixel 31 is determined according to the third high voltage data.
  • the steps include: determining a fifth compensation pixel corresponding to the fifth target pixel 31; determining corresponding third compensation high voltage data according to the sixth initial driving data of the fifth compensation pixel; and according to the third high voltage data and The third compensated high voltage data determines the third target high voltage drive data.
  • a fifth target pixel 31 adjacent to the sixth target pixel 32 is defined as a sixth compensation pixel, and the determination of the third target low voltage drive data corresponding to the sixth target pixel 32 according to the third low voltage data
  • the steps include: determining the sixth compensation pixel corresponding to the sixth target pixel 32; determining the corresponding third compensation low voltage data according to the fifth initial driving data of the sixth compensation pixel; and according to the third low voltage data and The third compensated low voltage data determines the third target low voltage drive data.
  • the determination method of the first target high-voltage driving data corresponding to the first target pixel 11 in the first pixel unit 10 of the medium is determined by analogy, and details are not described herein again.
  • the method for determining the first target low-voltage driving data corresponding to the second target pixel 12 in the one-pixel unit 10 is determined by analogy, and details are not described herein again.
  • the second pixel unit 20 and the third pixel unit 30 respectively drive the second sub-pixel and the third sub-pixel in analogy to the driving method of the first pixel unit 10, thereby realizing an improved viewing angle for the three-color display panel At the same time, it avoids the signal distortion caused by the capacitive resistance effect and improves the display quality of the picture.
  • one of the two adjacent pixel groups 01 includes the first target pixel 11, the fourth target pixel 22, and the fifth target pixel 31, and the other of the two adjacent pixel groups 01 includes all The second target pixel 12, the third target pixel 21, and the sixth target pixel 32; or, one of the two adjacent pixel groups 01 includes the first target pixel 11, the third target pixel 21 and the fifth target pixel 31, the other one of the two adjacent pixel groups 01 includes the second target pixel 12, the fourth target pixel 22, and the sixth target pixel 32.
  • the first pixel unit 10, the second pixel unit 20, and the third pixel unit 30 in the same pixel group 01 can be simultaneously driven by high voltage or low voltage.
  • a pixel group 01 includes the first target pixel 11, the third target pixel 21, and the fifth target pixel 31 at the same time, and the pixel group 01 adjacent thereto includes the second target pixel 12, the fourth target pixel 22, and the third Six target pixels 32.
  • the first sub-pixel in the first pixel unit 10 may be driven by using the first target high-voltage driving data.
  • the second sub-pixel in the two-pixel unit 20 is driven by the second target high-voltage drive data, and the third sub-pixel in the third pixel unit 30 adjacent to the second pixel unit 20 is driven by the third target high-voltage drive data Drive; in another pixel group 01 of two adjacent pixel groups 01, the first sub-pixel in the first pixel unit 10 can be driven by using the first target low voltage drive data, the first pixel unit 10 is adjacent.
  • the second sub-pixel in the second pixel unit 20 is driven by the second target low-voltage drive data, and the third sub-pixel in the third pixel unit 30 adjacent to the second pixel unit 20 uses the third target low-voltage drive data To drive.
  • the first pixel unit 10, the second pixel unit 20, and the third pixel unit 30 in the same pixel group 01 can be driven by high voltage and low voltage, respectively. That is to say, the first target pixel, the third target pixel 21 and the fifth target pixel 31 driven by the high voltage do not simultaneously exist in one pixel group 01, and the second target pixel and the fourth target pixel 22 driven by the low voltage It does not exist in one pixel group 01 at the same time as the sixth target pixel 32.
  • a pixel group 01 includes the first target pixel 11, the fourth target pixel 22, and the fifth target pixel 31 at the same time, and the pixel group 01 adjacent thereto includes the second target pixel 12, the The third target pixel 21 and the sixth target pixel 32.
  • the first sub-pixel in the first pixel unit 10 may be driven by using the first target high-voltage driving data.
  • the first pixel unit 10 is adjacent The second sub-pixel in the second pixel unit 20 is driven by the second target low-voltage drive data, and the third sub-pixel in the third pixel unit 30 adjacent to the second pixel unit 20 uses the third target high-voltage drive data Drive; in another pixel group 01 of two adjacent pixel groups 01, the first sub-pixel in the first pixel unit 10 can be driven by using the first target low voltage drive data, the first pixel unit 10 is adjacent The second sub-pixel in the second pixel unit 20 is driven by the second target high voltage drive data, and the third sub-pixel in the third pixel unit 30 adjacent to the second pixel unit 20 is driven by the third target low voltage Data to drive.
  • one of the two adjacent pixel groups 01 may include the first target pixel 11, the fourth target pixel 22, and the sixth target pixel 32, and the other of the two adjacent pixel groups 01 includes all The second target pixel 12, the third target pixel 21, and the fifth target pixel 31.
  • one of the two adjacent pixel groups 01 may include the first target pixel 11, the third target pixel 21, and the sixth target pixel 32, and the other of the two adjacent pixel groups 01 includes all The second target pixel 12, the fourth target pixel 22, and the fifth target pixel 31.
  • one of the two adjacent pixel groups 01 may include the second target pixel 12, the third target pixel 21, and the fifth target pixel 31, and the other of the two adjacent pixel groups 01 includes all The first target pixel 11, the fourth target pixel 22, and the sixth target pixel 32.
  • the method in the above embodiment may be used to determine the target high-voltage drive data and target low-voltage drive data corresponding to the sub-pixel, and the target high-voltage drive data and the target low-voltage drive data Enter the corresponding sub-pixels in chronological order.
  • the sub-pixels defined to be driven by high-voltage drive data include the first target pixel 11, the third target pixel 21, and the fifth target pixel 31, and the sub-pixels driven by low-voltage drive data are defined Including the second target pixel 12, the fourth target pixel 22 and the sixth target pixel 32;
  • the method further includes:
  • Step S01 Determine the corresponding fourth low voltage data according to the initial driving data corresponding to each of the sub-pixels driven by the high-voltage driving data; respectively according to the initial driving data corresponding to the sub-pixels driven by the low-voltage driving data The driving data determines the corresponding fourth high voltage data;
  • Step S02 Determine, according to the fourth low voltage data, fourth target low voltage drive data corresponding to each of the sub-pixels driven by the high voltage drive data; determine each use low voltage according to the fourth high voltage data The fourth target high voltage driving data corresponding to the sub-pixels driven by the driving data;
  • the method for determining the fourth target low voltage driving data reference may be made to the above-mentioned first target low voltage driving data, which will not be repeated here.
  • the method for determining the fourth target high-voltage driving data can be specifically referred to the above-mentioned first target high-voltage driving data, which will not be repeated here.
  • the method further includes:
  • Step S03 switching the sub-pixels driven by the high-voltage drive data to the corresponding fourth target low-voltage drive data for driving, and switching the sub-pixels driven by the low-voltage drive data to the corresponding fourth target high-voltage drive data To drive.
  • the fourth target low-voltage driving data is used to drive the first target pixel 11.
  • the fourth target low voltage driving data here is determined according to the first low voltage data of the first target pixel 11, specifically, it can be based on the first low voltage data of the first target pixel 11 and the corresponding of the first target pixel 11
  • the first compensated low voltage data of the first compensated pixel is determined.
  • the determination method of the fourth target low-voltage driving data corresponding to the third target pixel 21 and the fifth target pixel 31 may refer to the first target pixel 11, and details are not described herein.
  • the fourth target high voltage drive data is used to drive the second target pixel 12.
  • the fourth target high voltage drive data here is determined according to the first high voltage data of the second target pixel 12; specifically, according to the first high voltage data of the second target pixel 12 and the corresponding of the second target pixel 12
  • the first high voltage data of the second compensation pixel determines the fourth target high voltage drive data.
  • the determination method of the fourth target high-voltage driving data corresponding to the fourth target pixel 22 and the sixth target pixel 32 may refer to the second target pixel 12, which will not be repeated here.
  • the preset time can be set according to actual display requirements.
  • the driving device for the display panel includes:
  • the data input module is configured to obtain and display first initial driving data corresponding to the first target pixel, and obtain and display second initial driving data corresponding to the second target pixel;
  • the data conversion module is configured to determine corresponding first high voltage data according to the first initial driving data, and determine corresponding first low voltage data according to the second initial driving data;
  • the processing module is configured to determine the first target high voltage drive data corresponding to the first target pixel 11 according to the first high voltage data, and determine the first target voltage corresponding to the second target pixel 12 according to the first low voltage data A target low voltage drive data;
  • the driving module uses the first target high voltage driving data to drive the first target pixel 11, and uses the first target low voltage driving data to drive the second target pixel 12.
  • the driving device of the display panel in the embodiment of the present application includes all the technical features of the driving method of the display panel in the above embodiment, so it has the same technical effect as the above embodiment, and will not be repeated here.
  • the embodiments of the present application also provide a display panel driving device, which is mainly used for driving a display panel, especially a liquid crystal display panel.
  • the driving device of the display panel includes: a processor 1001, such as a CPU, and a memory 1002.
  • the above-mentioned processor 1001 is in communication with the memory 1002.
  • the memory 1002 may be a high-speed RAM memory or a stable memory (non-volatile memory), such as disk storage.
  • the memory 1002 may optionally be a storage device independent of the foregoing processor 1001.
  • FIG. 7 does not constitute a limitation on the device, and may include more or less components than shown, or combine certain components, or different component arrangements.
  • the driver of the panel can be displayed in the memory 1002 as a computer storage medium.
  • the processor 1001 may be used to call the driver of the display panel stored in the memory 1002 and perform the relevant steps of the above-mentioned display panel driving method.
  • the present application also proposes a display including the display panel and the driving device for the display panel in the above-mentioned embodiments.
  • the display panel communicates with the drive device of the display panel.
  • the present application also proposes a readable storage medium on which a driver for a display panel is stored.
  • the driver for the display panel is executed by a processor, the driver for the display panel described in the above embodiment is implemented. The steps of the driving method.

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Abstract

一种显示器及其显示面板的驱动装置和驱动方法,驱动方法根据第一目标像素(11)的第一初始驱动数据确定对应的第一高电压数据,根据第二目标像素(12)的第二初始驱动数据确定对应的第一低电压数据(S20);根据第一高电压数据确定第一目标高电压驱动数据,根据第一低电压数据确定第一目标低电压驱动数据(S30);采用第一目标高电压驱动数据驱动第一目标像素(11),采用第一目标低电压驱动数据驱动第二目标像素(12)(S40)。

Description

显示器及其显示面板的驱动装置、方法
相关文件
本申请要求于2018年12月26日申请的,申请号为201811608395.8,申请名称为“显示面板驱动方法、装置和可读存储介质”的中国专利申请的优先权,其全部内容通过引用结合在本申请中。
技术领域
本申请涉及显示技术领域,尤其涉及显示面板的驱动方法、显示面板的驱动装置和显示器。
背景技术
这里的陈述仅提供与本申请有关的背景信息,而不必然地构成现有技术。
大尺寸液晶显示面板多半采用负型VA (Vertical Alignment,广视角)液晶或IPS (In-Panel Switching,平面转换)液晶技术。VA型液晶技术相较于IPS液晶技术存在较高的生产效率及低制造成本的优势,但光学性质存在较明显的光学性质缺陷,比如大尺寸显示面板在需要较大的视角呈现时,VA型液晶显示面板会存在色偏现象。
目前,改善色偏的方式为将显示阵列中的空间子像素,通过时序上给予不同的驱动电压或空间上给予相邻的子像素不同的驱动电压来解决色偏问题,但考虑到驱动同一列子像素使用同一传输资料线,该资料线与其他画素相关电极存在电容电阻效应,因此如果该资料线频繁高低电压切换,电容电阻效应会使得高低电压信号失真,影响画面显示质量。
发明内容
本申请的主要目的在于提供一种显示面板的驱动方法,旨在提高画面显示质量。
为实现上述目的,本申请提供一种显示面板的驱动方法,所述显示面板包括多个呈阵列排布的像素组,每个所述像素组包括第一像素单元,所述第一像素单元包括至少两个第一子像素;定义任意两个相邻的像素组之一中的第一子像素为第一目标像素,定义任意两个相邻的像素组之另一中的第一子像素为第二目标像素;所述显示面板的驱动方法包括以下步骤:
获取显示所述第一目标像素对应的第一初始驱动数据,获取显示所述第二目标像素对应的第二初始驱动数据;
根据所述第一初始驱动数据确定对应的第一高电压数据,根据所述第二初始驱动数据确定对应的第一低电压数据;
根据所述第一高电压数据确定所述第一目标像素对应的第一目标高电压驱动数据,根据所述第一低电压数据确定所述第二目标像素对应的第一目标低电压驱动数据;以及,
采用所述第一目标高电压驱动数据驱动所述第一目标像素,采用所述第一目标低电压驱动数据驱动所述第二目标像素。
本申请实施例提出的一种显示面板的驱动方法,在显示面板的显示阵列中,以至少两个子像素为单位形成像素单元,在空间上对相邻的像素单元分别通过大于初始驱动数据的目标高电压驱动数据和小于初始驱动数据的目标低电压驱动数据进行驱动,至少两个子像素所在的行或者列在使用同一条资料线进行驱动时,由于像素单元中的子像素均为高电压或均为低电压,资料线上的高低电压不需以子像素为单位频繁切换,而是以像素单元为单位进行高低压切换,因此,有利于改善视角色偏的同时避免电容电阻效应造成的信号失真,提高画面显示质量。
附图说明
图1是本申请显示面板的驱动方法所涉及的显示阵列第一实施例的各子像素的驱动电压的分布示意图;
图2为本申请显示面板的驱动方法第一实施例的流程示意图;
图3为本申请显示面板的驱动方法第二实施例的流程示意图;
图4为本申请显示面板的驱动方法第三实施例的流程示意图;
图5是本申请显示面板的驱动方法所涉及的显示阵列第二实施例的各子像素的驱动电压的分布示意图;
图6为本申请显示面板的驱动方法第四实施例的流程示意图;
图7是本申请方案涉及的硬件运行环境的显示面板的驱动设备的结构示意图。
本申请目的的实现、功能特点及优点将结合实施例,参照附图做进一步说明。
具体实施方式
应当理解,此处所描述的具体实施例仅仅用以解释本申请,并不用于限定本申请。
本申请实施例的主要解决方案是,在显示面板中,显示面板包括多个呈阵列排布的像素组01,每个像素组01包括第一像素单元,第一像素单元包括至少两个第一子像素;定义任意两个相邻的像素组01之一中的第一子像素为第一目标像素11,定义任意两个相邻的像素组01之另一中的第一子像素为第二目标像素12。基于上述设置,显示面板的驱动方法包括以下步骤:获取显示第一目标像素11对应的第一初始驱动数据,获取显示第二目标像素12对应的第二初始驱动数据;根据第一初始驱动数据确定对应的第一高电压数据,根据第二初始驱动数据确定对应的第一低电压数据;根据第一高电压数据确定第一目标像素11对应的第一目标高电压驱动数据,根据第一低电压数据确定第二目标像素12对应的第一目标低电压驱动数据;以及,采用第一目标高电压驱动数据驱动第一目标像素11,采用第一目标低电压驱动数据驱动第二目标像素12。由于驱动同一列子像素使用同一传输资料线,该资料线与其他画素相关电极存在电容电阻效应,因此如果该资料线频繁高低电压切换,电容电阻效应会使得高低电压信号失真,影响画面显示质量。本申请提供一种解决方案,有利于避免电容电阻效应造成的信号失真,提高画面显示质量。
本申请实施例提出一种显示面板的驱动方法,应用于显示面板的驱动。显示面板具体可包括液晶显示面板,尤其是应用于TN(Twisted Nematic,扭曲向列型)、OCB(Optically Compensated Birefringence,光学补偿弯曲排列)、VA型的液晶显示面板等面板适用即可。所述显示面板包括呈阵列排布的像素组01,所述像素组01包括第一像素单元10,所述第一像素单元10包括至少两个第一子像素;定义任意两个相邻的像素组01之一中的各第一子像素为第一目标像素11,定义任意两个相邻的像素组01之另一中的各第一子像素为第二目标像素12。
在液晶显示面板的显示阵列1中,多个子像素呈阵列排布,每个子像素均与栅极数据线和源极数据线相连,其中同一行的子像素通过同一条栅极数据线相连,同一列的子像素通过同一条源极数据线相连。每行的子像素通过栅极数据线接收栅极驱动器输入的栅极驱动信号,以控制子像素中的薄膜晶体管打开或关闭。在薄膜晶体管打开时,该子像素通过源极数据线接收源极驱动器输入的源极驱动信号,源极驱动信号与公共电压之间的电压差使电容充电,电容间的电压使处于其中的液晶分子发生偏转,使背光根据液晶分子的偏转程度透射出相应程度的光,从而使该子像素呈现相应的亮度。
基于上述设置,参照图1,本实施例显示面板的显示阵列1包括像素组01,每个像素组01均包括第一像素单元10,阵列排布的像素组01形成显示面板的显示阵列1。具体的,由于目前同一列的子像素一般采用同一条源极数据线进行驱动,因此,第一像素单元10可包括至少两个沿列方向排列的第一子像素。第一子像素可具体为红色子像素、绿色子像素、蓝色子像素等。
参照图2,所述显示面板的驱动方法包括以下步骤:
步骤S10,获取显示所述第一目标像素对应的第一初始驱动数据,获取显示所述第二目标像素对应的第二初始驱动数据;
第一初始驱动数据为根据第一目标像素所要显示的灰阶确定的预设驱动电压。不同的灰阶对应设置有不同的预设驱动电压。具体的,可获取当前图像帧的图像数据中各第一目标像素对应的灰阶,根据各第一目标像素的灰阶确定对应的第一初始驱动数据。
第二初始驱动数据为根据第二目标像素所要显示的灰阶确定的预设驱动电压。不同的灰阶对应设置有不同的预设驱动电压。具体的,可获取当前图像帧的图像数据中各第二目标像素对应的灰阶,根据各第二目标像素的灰阶确定对应的第二初始驱动数据。
步骤S20,根据所述第一初始驱动数据确定对应的第一高电压数据,根据所述第二初始驱动数据确定对应的第一低电压数据;
每个第一目标像素11的第一高电压数据大于该第一目标像素11对应的第一初始驱动数据,第二目标像素12的第一低电压数据小于该第二目标像素12对应的第二初始驱动数据。
具体的,可将第一初始驱动数据增加预设电压增幅后得到第一高电压数据,可将第二初始驱动数据减小预设电压减幅后得到第一低电压数据。这里,第一初始驱动数据对应的预设电压增幅可定义为第一预设幅度,第二初始驱动数据对应的预设电压减幅可定义为第二预设幅度。其中,预设电压增幅和预设电压减幅可依据第一子像素具体的灰阶进行确定,不同灰阶的第一子像素可对应有不同的预设电压增幅和预设电压减幅,因此作为第一目标像素的第一子像素,可依据第一目标像素的灰阶确定第一预设幅度,作为第二目标像素的第一子像素,可依据第二目标像素的灰阶确定第二预设幅度。
步骤S30,根据所述第一高电压数据确定所述第一目标像素11对应的第一目标高电压驱动数据,根据所述第一低电压数据确定所述第二目标像素12对应的第一目标低电压驱动数据;
定义相邻的两个第一像素单元10包括第一单元和第二单元,第一单元中的每个第一子像素均作为第一目标像素11,第二单元中的每个第一子像素均作为第二目标像素12。
第一目标高电压驱动数据为第一目标像素11的驱动电压,每个第一目标像素11具有与其对应的第一目标高电压驱动数据;第一目标低电压驱动数据为第二目标像素12的驱动电压,每个第二目标像素12具有与其对应的第一目标低电压驱动数据。
每个第一目标像素11对应的第一目标高电压驱动数据可依据与第一目标像素11对应的第一高电压数据进行确定,可将第一高电压数据直接作为第一目标高电压驱动数据对第一目标像素11进行驱动,也可依据第一高电压数据和其他补偿电压计算得到第一目标高电压驱动数据,将得到的第一目标高电压驱动数据对第一目标像素11进行驱动。每个第二目标像素12对应的第一目标低电压驱动数据可依据与第二目标像素12对应的第一低电压数据进行确定,可将第一低电压数据直接作为第一目标低电压驱动数据对第二目标像素12进行驱动,也可依据第一低电压数据和其他补偿电压计算得到第一目标低电压驱动数据,将得到的第一目标低电压驱动数据对第二目标像素12进行驱动。
步骤S40,采用所述第一目标高电压驱动数据驱动所述第一目标像素11,采用所述第一目标低电压驱动数据驱动所述第二目标像素12。
显示阵列1中各子像素的驱动电压分布示意图可参照图1。
本申请实施例提出的一种显示面板的驱动方法,在显示面板的显示阵列中,以至少两个子像素为单位形成像素单元,在空间上对相邻的像素单元分别通过大于初始驱动数据的目标高电压驱动数据和小于初始驱动数据的目标低电压驱动数据进行驱动,至少两个子像素所在的行或者列在使用同一条资料线进行驱动时,由于像素单元中的子像素均为高电压或均为低电压,资料线上的高低电压不需以子像素为单位频繁切换,而是以像素单元为单位进行高低压切换,因此,有利于改善视角色偏的同时避免电容电阻效应造成的信号失真,提高画面显示质量。
进一步的,参照图3,定义所述第一目标像素11相邻的第二目标像素12为第一补偿像素,所述根据所述第一高电压数据确定所述第一目标像素11对应的第一目标高电压驱动数据的步骤包括:
步骤S31,确定所述第一目标像素11对应的第一补偿像素;
确定与第一目标像素11(如图1中的H34所对应的子像素)相邻的所有第一补偿像素(如图1中的L33所对应的子像素、L44所对应的子像素、L35所对应的子像素)。
步骤S32,根据所述第一补偿像素的第二初始驱动数据确定对应的第一补偿高电压数据;
由于每个第二目标像素12均具有与其对应的第二初始驱动数据,可依据第二初始驱动数据确定每个第一补偿像素对应的第一补偿高电压数据。每个第一补偿像素的第一补偿高电压数据大于该第一补偿像素对应的第二初始驱动数据。具体的,可将第二初始驱动数据增加该子像素对应的预设电压增幅后得到第一补偿高电压数据。其中,第一补偿像素所对应的预设电压增幅可定义为第三预设幅度。
步骤S33,根据所述第一高电压数据和所述第一补偿高电压数据,确定所述第一目标高电压驱动数据。
每个第一补偿像素对应一个第一补偿高电压数据。第一目标高电压驱动数据可依据第一目标像素11自己本身的第一高电压数据以及第一补偿像素的第一补偿高电压数据得到第一目标高电压驱动数据。具体的,可将第一目标像素11自己本身的第一高电压数据与第一目标像素11相邻的所有第一补偿像素对应的第一补偿高电压数据之和作为第一目标高电压驱动数据;也可将第一目标像素11自己本身的第一高电压数据与第一目标像素11相邻的部分第一补偿像素对应的第一补偿高电压数据之和作为第一目标高电压驱动数据。由于第二目标像素12本身显示的为第一目标低电压数据,因此将与第一目标像素11相邻的第二目标像素12原本要显示的第一补偿高电压数据部分或全部分配给第一目标像素11作为第一目标像素11的补偿电压,第一目标像素11所显示的第一目标高电压驱动数据同时具备其本身的第一高电压数据以及其由其相邻的第二目标像素12分配得到的第一补偿高电压数据所要显示的特性,从而改善色偏的同时保证画面的解析度。
此外,为了进一步提高画面的解析度,步骤S33可包括:
步骤S331,获取所述第一补偿像素对应的第一预设权重;
依据不同的解析度要求,不同的第一补偿像素对应设置有相同或不同的第一预设权重。具体的,可获取当前画面显示的解析度,根据获取的解析度确定各第一补偿像素对应的第一预设权重的大小。
步骤S322,根据所述第一高电压数据、所述第一补偿高电压数据和所述第一预设权重,确定所述第一目标高电压驱动数据;
将与第一目标像素11相邻的每一个第一补偿像素的第一补偿高电压数据按权重分配给第一目标像素11,根据第一目标像素11分配得到的第一补偿高电压数据和第一目标像素11自己本身的第一高电压数据,计算得到第一目标像素11对应的第一目标高电压驱动数据。
例如,以确定H34所对应的子像素的第一目标高电压数据H34为例,H34所对应的子像素自身的第一高电压数据为H’34,H34所对应的子像素的第一补偿像素分别为L33所对应的子像素、L44所对应的子像素、L35所对应的子像素,L33所对应的子像素的第一补偿高电压数据为H33,L44所对应的子像素的第一补偿高电压数据为H44,L35所对应的子像素的第一补偿高电压数据为H35,每个第一补偿像素对应的第一预设权重均为1/3,则H34=(H’34+1/3*( H33+ H44+ H35))/2。
通过上述方法,以第一目标高电压驱动的第一目标像素11在显示时可等效出以初始驱动数据(第一初始驱动数据和第二初始驱动数据)驱动各子像素时所要呈现的图像效果,保证视角补偿的同时兼具图像解析度的呈现。
进一步的,参照图4,定义所述第二目标像素12相邻的第一目标像素11为第二补偿像素,所述根据所述第一低电压数据确定所述第二目标像素12对应的第一目标低电压驱动数据的步骤包括:
步骤S34,确定所述第二目标像素12对应的第二补偿像素;
确定与第二目标像素12(如图1中的L44所对应的子像素)相邻的所有第二补偿像素(如图1中的H43所对应的子像素、H34所对应的子像素、H45所对应的子像素)。
步骤S35,根据所述第二补偿像素的第一初始驱动数据确定对应的第一补偿低电压数据;
由于每个第一目标像素11均具有与其对应的第一初始驱动数据,可依据第一初始驱动数据确定每个第二补偿像素对应的第一补偿低电压数据。每个第二补偿像素的第一补偿低电压数据小于该第二补偿像素对应的第一初始驱动数据。具体的,可将第一初始驱动数据减小该子像素对应的预设电压减幅后得到第一补偿低电压数据。其中,第二补偿像素对应的预设电压减幅可定义为第四预设幅度。
步骤S36,根据所述第一低电压数据和所述第一补偿低电压数据,确定所述第一目标低电压驱动数据。
每个第二补偿像素对应一个第一补偿低电压数据。第一目标低电压驱动数据可依据第二目标像素12自己本身的第一低电压数据以及第二补偿像素的第一补偿低电压数据得到第一目标低电压驱动数据。具体的,可将第二目标像素12自己本身的第一低电压数据与第二目标像素12相邻的所有第二补偿像素对应的第一补偿低电压数据之和作为第一目标低电压驱动数据;也可将第二目标像素12自己本身的第一低电压数据与第二目标像素12相邻的部分第二补偿像素对应的第一补偿低电压数据之和作为第一目标低电压驱动数据。由于第一目标像素11本身显示的为第一目标高电压数据,因此将与第二目标像素12相邻的第一目标像素11原本要显示的第一补偿低电压数据部分或全部分配给第二目标像素12作为第二目标像素12的补偿电压,第二目标像素12所显示的第一目标低电压驱动数据同时具备其本身的第一低电压数据以及其由其相邻的第二目标像素12分配得到的第一补偿低电压数据所要显示的特性,从而改善色偏的同时保证画面的解析度。
其中,同时执行步骤S31、步骤S32、步骤S33、步骤S34、步骤S35、步骤S36,采用第一补偿高电压数据对第一目标像素11以及采用第一补偿低电压数据对第二目标像素12进行补偿,有利于提高显示画面整体的解析度,使所显示的画面呈现完整画质的效果。
此外,为了进一步提高画面的解析度,步骤S36可包括:
步骤S361,获取所述第二补偿像素对应的第二预设权重;
依据不同的解析度要求,不同的第二补偿像素对应设置有相同或不同的第二预设权重。具体的,可获取当前画面显示的解析度,根据获取的解析度确定各第二补偿像素对应的第二预设权重的大小。
步骤S362,根据所述第一低电压数据、所述第一补偿低电压数据和所述第二预设权重,确定所述第一目标低电压驱动数据。
将与第二目标像素12相邻的每一个第二补偿像素的第一补偿低电压数据按权重分配给第二目标像素12,根据第二目标像素12分配得到的第一补偿低电压数据和第二目标像素12自己本身的第一低电压数据,计算得到第二目标像素12对应的第一目标低电压驱动数据。
例如,以确定L44所对应的子像素的第一目标低电压数据L44为例,L44所对应的子像素自身的第一低电压数据为L’44,L44所对应的子像素的第一补偿像素分别为H43所对应的子像素、H34所对应的子像素、H45所对应的子像素,H43所对应的子像素的第一补偿低电压数据为L43,H34所对应的子像素的第一补偿低电压数据为L34,H45所对应的子像素的第一补偿低电压数据为L45,每个第二补偿像素对应的第二预设权重均为1/3,则第一目标低电压数据L44=(L’44+1/3*( L43+ L34+ L45))/2。
通过上述方法,以第一目标低电压驱动的第二目标像素12在显示时可等效出以初始驱动数据(第一初始驱动数据和第二初始驱动数据)驱动各子像素时所要呈现的图像效果,保证视角补偿的同时兼具图像解析度的呈现。
进一步的,参照图5,每个所述像素组01还包括第二像素单元20和第三像素单元30,所述第二像素单元20包括至少两个第二子像素,所述第三像素单元30包括至少两个第三子像素,每个所述像素组01中的第一像素单元10、第二像素单元20、第三像素单元30沿行方向依次排列;定义任意两个相邻的像素组01之一中的第二子像素为第三目标像素21,定义任意两个相邻的像素组01之另一中的第二子像素为第四目标像素22;定义任意两个相邻的像素组01之一中的第三子像素为第五目标像素31,定义任意两个相邻的像素组01之另一中的第三子像素为第六目标像素32;
像素组01除了第一像素单元10外,还包括第二像素单元20和第三像素单元30。在一个像素组01中第一像素单元10、第二像素单元20、第三像素单元30沿行方向依次排列。分别由第一像素单元10、第二像素单元20、第三像素单元30构成的多个像素组01阵列排布形成显示面板的显示阵列1。具体的,由于目前同一列的子像素一般采用同一条源极数据线进行驱动,因此,第二像素单元20可包括至少两个沿列方向排列的第二子像素,第三像素单元30可包括至少两个沿列方向排列的第三子像素。第一子像素、第二子像素、第三子像素可分别为红色子像素、绿色子像素、蓝色子像素等,以实现显示画面的多色彩显示。
参照图6,所述显示面板的驱动方法还包括以下步骤:
步骤S50,获取显示所述第三目标像素21对应的第三初始驱动数据,获取显示所述第四目标像素22对应的第四初始驱动数据,获取显示所述第五目标像素31对应的第五初始驱动数据,获取显示所述第六目标像素32对应的第六初始驱动数据;
步骤S60,根据所述第三初始驱动数据确定对应的第二高电压数据,根据所述第四初始驱动数据确定对应的第二低电压数据,根据所述第五初始驱动数据确定对应的第三高电压数据,根据所述第六初始驱动数据确定对应的第三低电压数据;
步骤S70,根据所述第二高电压数据确定所述第三目标像素21对应的第二目标高电压驱动数据,根据所述第二低电压数据确定所述第四目标像素22对应的第二目标低电压驱动数据,根据所述第三高电压数据确定所述第五目标像素31对应的第三目标高电压驱动数据,根据所述第三低电压数据确定所述第六目标像素32对应的第三目标低电压驱动数据;
步骤S80,采用所述第二目标高电压驱动数据驱动所述第三目标像素21,采用所述第二目标低电压驱动数据驱动所述第四目标像素22,采用所述第三目标高电压驱动数据驱动所述第五目标像素31,采用所述第三目标低电压驱动数据驱动所述第六目标像素32。
定义所述第三目标像素21相邻的第四目标像素22为第三补偿像素,所述根据所述第二高电压数据确定所述第三目标像素21对应的第二目标高电压驱动数据的步骤包括:确定所述第三目标像素21对应的第三补偿像素;根据所述第三补偿像素的第四初始驱动数据确定对应的第二补偿高电压数据;根据所述第二高电压数据和所述第二补偿高电压数据,确定所述第二目标高电压驱动数据。定义所述第四目标像素22相邻的第三目标像素21为第四补偿像素,所述根据所述第二低电压数据确定所述第四目标像素22对应的第二目标低电压驱动数据的步骤包括:确定所述第四目标像素22对应的第四补偿像素;根据所述第四补偿像素的第三初始驱动数据确定对应的第二补偿低电压数据;根据所述第二低电压数据和所述第二补偿低电压数据,确定所述第二目标低电压驱动数据。定义所述第五目标像素31相邻的第六目标像素32为第五补偿像素,所述根据所述第三高电压数据确定所述第五目标像素31对应的第三目标高电压驱动数据的步骤包括:确定所述第五目标像素31对应的第五补偿像素;根据所述第五补偿像素的第六初始驱动数据确定对应的第三补偿高电压数据;根据所述第三高电压数据和所述第三补偿高电压数据,确定所述第三目标高电压驱动数据。定义所述第六目标像素32相邻的第五目标像素31为第六补偿像素,所述根据所述第三低电压数据确定所述第六目标像素32对应的第三目标低电压驱动数据的步骤包括:确定所述第六目标像素32对应的第六补偿像素;根据所述第六补偿像素的第五初始驱动数据确定对应的第三补偿低电压数据;根据所述第三低电压数据和所述第三补偿低电压数据,确定所述第三目标低电压驱动数据。
其中,第二像素单元20中第三目标像素21所对应的第二目标高电压驱动数据、第三像素单元30中第五目标像素31所对应的第三目标高电压驱动数据可参照上述实施例中第一像素单元10中第一目标像素11所对应的第一目标高电压驱动数据的确定方式类比进行确定,在此不作赘述。第二像素单元20中第四目标像素22所对应的第二目标低电压驱动数据、第三像素单元30中第六目标像素32所对应的第三目标低电压驱动数据可参照上述实施例中第一像素单元10中第二目标像素12所对应的第一目标低电压驱动数据的确定方式类比进行确定,在此不作赘述。
在本实施例中,第二像素单元20、第三像素单元30分别类比第一像素单元10的驱动方式对其中的第二子像素和第三子像素进行驱动,从而实现三色显示面板改善视角色偏的同时避免电容电阻效应造成的信号失真,提高画面显示质量。
其中,相邻的两像素组01中之一包括所述第一目标像素11、所述第四目标像素22和所述第五目标像素31,相邻的两像素组01中之另一包括所述第二目标像素12、所述第三目标像素21和所述第六目标像素32;或,相邻的两像素组01中之一包括所述第一目标像素11、所述第三目标像素21和所述第五目标像素31,相邻的两像素组01中之另一包括所述第二目标像素12、所述第四目标像素22和所述第六目标像素32。
在本实施例中,同一个像素组01中的第一像素单元10、第二像素单元20、第三像素单元30可同时采用高电压驱动或低电压驱动。也就是说一像素组01中同时包括第一目标像素11、第三目标像素21和第五目标像素31,与其相邻的像素组01同时包括第二目标像素12、第四目标像素22和第六目标像素32。具体的,在相邻两像素组01其中一个像素组01中,第一像素单元10中的第一子像素可采用第一目标高电压驱动数据进行驱动,该第一像素单元10相邻的第二像素单元20中的第二子像素采用第二目标高电压驱动数据进行驱动,该第二像素单元20相邻的第三像素单元30中的第三子像素采用第三目标高电压驱动数据进行驱动;在相邻两像素组01其中的另一个像素组01中,第一像素单元10中的第一子像素可采用第一目标低电压驱动数据进行驱动,该第一像素单元10相邻的第二像素单元20中的第二子像素采用第二目标低电压驱动数据进行驱动,该第二像素单元20相邻的第三像素单元30中的第三子像素采用第三目标低电压驱动数据进行驱动。
此外,为了减少画面的颗粒感,提高画面质量,同一个像素组01中的第一像素单元10、第二像素单元20、第三像素单元30可分别采用高电压驱动和低电压驱动。也就是说,采用高电压驱动的第一目标像素、第三目标像素21和第五目标像素31不同时存在于一个像素组01中,采用低电压驱动的第二目标像素、第四目标像素22和第六目标像素32不同时存在于一个像素组01中。也就是说一像素组01中同时包括第一目标像素11、所述第四目标像素22和所述第五目标像素31,与其相邻的像素组01同时包括所述第二目标像素12、所述第三目标像素21和所述第六目标像素32。具体的,在相邻两像素组01其中的一个像素组01中,第一像素单元10中的第一子像素可采用第一目标高电压驱动数据进行驱动,该第一像素单元10相邻的第二像素单元20中的第二子像素采用第二目标低电压驱动数据进行驱动,该第二像素单元20相邻的第三像素单元30中的第三子像素采用第三目标高电压驱动数据进行驱动;在相邻两像素组01其中的另一个像素组01中,第一像素单元10中的第一子像素可采用第一目标低电压驱动数据进行驱动,该第一像素单元10相邻的第二像素单元20中的第二子像素采用第二目标高电压驱动数据进行驱动,该第二像素单元20相邻的第三像素单元30中的第三子像素采用第三目标低电压驱动数据进行驱动。
另外,相邻的两像素组01中之一可包括所述第一目标像素11、所述第四目标像素22和所述第六目标像素32,相邻的两像素组01之另一包括所述第二目标像素12、所述第三目标像素21和所述第五目标像素31。或者,相邻的两像素组01中之一可包括所述第一目标像素11、所述第三目标像素21和所述第六目标像素32,相邻的两像素组01之另一包括所述第二目标像素12、所述第四目标像素22和所述第五目标像素31。或者,相邻的两像素组01中之一可包括所述第二目标像素12、所述第三目标像素21和所述第五目标像素31,相邻的两像素组01之另一包括所述第一目标像素11、所述第四目标像素22和所述第六目标像素32。
进一步的,为了避免子像素长时间保持高电压或低电压的驱动使肉眼容易发现画面中亮暗子像素的缺陷。在显示图像帧时,对同一个子像素,可采用上述实施例中的方式,确定该子像素对应的目标高电压驱动数据和目标低电压驱动数据,将目标高电压驱动数据和目标低电压驱动数据按照时间先后顺序输入至对应的子像素中。具体的,定义采用高电压驱动数据进行驱动的子像素包括所述第一目标像素11、所述第三目标像素21和所述第五目标像素31,定义采用低电压驱动数据进行驱动的子像素包括所述第二目标像素12、所述第四目标像素22和所述第六目标像素32;
所述采用所述第一目标高电压驱动数据驱动所述第一目标像素11,采用所述第一目标低电压驱动数据驱动所述第二目标像素12的步骤,且所述采用所述第二目标高电压驱动数据驱动所述第三目标像素21,采用所述第二目标低电压驱动数据驱动所述第四目标像素22,采用所述第三目标高电压驱动数据驱动所述第五目标像素31,采用所述第三目标低电压驱动数据驱动所述第六目标像素32的步骤之前,还包括:
步骤S01,分别根据各所述采用高电压驱动数据进行驱动的子像素对应的初始驱动数据确定相应的第四低电压数据;分别根据各所述采用低电压驱动数据进行驱动的子像素对应的初始驱动数据确定相应的第四高电压数据;
根据第一初始驱动数据确定第一目标像素11对应的第四低电压数据;根据第三初始驱动数据确定第三目标像素21对应的第四低电压数据;根据第五初始驱动数据确定第五目标像素31对应的第四低电压数据。采用高电压驱动数据进行驱动的子像素各自对应的第四低电压数据的确定方式可具体参照上述的第一低电压数据、第一补偿低电压数据,在此不做赘述。
根据第二初始驱动数据确定第二目标像素12对应的第四高电压数据;根据第四初始驱动数据确定第四目标像素22对应的第四高电压数据;根据第六初始驱动数据确定第六目标像素32对应的第四高电压数据。采用低电压驱动数据进行驱动的子像素各自对应的第四高电压数据的确定方式可具体参照上述的第一高电压数据、第一补偿高电压数据,在此不做赘述。
步骤S02,根据所述第四低电压数据确定各所述采用高电压驱动数据进行驱动的子像素对应的第四目标低电压驱动数据;根据所述第四高电压数据确定各所述采用低电压驱动数据进行驱动的子像素对应的第四目标高电压驱动数据;
第四目标低电压驱动数据确定的方式可具体参照上述的第一目标低电压驱动数据,在此不作赘述。第四目标高电压驱动数据确定的方式可具体参照上述的第一目标高电压驱动数据,在此不作赘述。
所述采用所述第一目标高电压驱动数据驱动所述第一目标像素11,采用所述第一目标低电压驱动数据驱动所述第二目标像素12的步骤,且所述采用所述第二目标高电压驱动数据驱动所述第三目标像素21,采用所述第二目标低电压驱动数据驱动所述第四目标像素22,采用所述第三目标高电压驱动数据驱动所述第五目标像素31,采用所述第三目标低电压驱动数据驱动所述第六目标像素32的步骤之后,还包括:
步骤S03,将采用高电压驱动数据进行驱动的子像素切换为对应的第四目标低电压驱动数据进行驱动,将采用低电压驱动数据进行驱动的子像素切换为对应的第四目标高电压驱动数据进行驱动。
以第一目标像素11为例,采用第一目标高电压驱动数据驱动第一目标像素11预设时间后,采用第四目标低电压驱动数据对第一目标像素11进行驱动。其中,这里的第四目标低电压驱动数据,根据第一目标像素11的第一低电压数据确定,具体的,可根据第一目标像素11的第一低电压数据和第一目标像素11所对应的第一补偿像素的第一补偿低电压数据确定。此外,第三目标像素21、第五目标像素31所对应的第四目标低电压驱动数据的确定方式可参照第一目标像素11,在此不作赘述。
以第二目标像素12为例,采用第一目标低电压驱动数据驱动第二目标像素12预设时间后,采用第四目标高电压驱动数据对第二目标像素12进行驱动。其中,这里的第四目标高电压驱动数据,根据第二目标像素12的第一高电压数据确定;具体的,根据第二目标像素12的第一高电压数据和第二目标像素12所对应的第二补偿像素的第一高电压数据确定第四目标高电压驱动数据。此外,第四目标像素22、第六目标像素32所对应的第四目标高电压驱动数据的确定方式可参照第二目标像素12,在此不作赘述。
其中,预设时间可依据实际显示需求进行设定。
此外,本申请实施例还提出一种显示面板的驱动装置,所述显示面板的驱动装置包括:
数据输入模块,设置为获取显示所述第一目标像素对应的第一初始驱动数据,获取显示所述第二目标像素对应的第二初始驱动数据;
数据转换模块,设置为根据所述第一初始驱动数据确定对应的第一高电压数据,根据所述第二初始驱动数据确定对应的第一低电压数据;
处理模块,设置为根据所述第一高电压数据确定所述第一目标像素11对应的第一目标高电压驱动数据,根据所述第一低电压数据确定所述第二目标像素12对应的第一目标低电压驱动数据;以及,
驱动模块,采用所述第一目标高电压驱动数据驱动所述第一目标像素11,采用所述第一目标低电压驱动数据驱动所述第二目标像素12。
本申请实施例中的显示面板的驱动装置包含上述实施例中显示面板的驱动方法的所有技术特征,因此具备与上述实施例同样的技术效果,在此不作赘述。
此外,本申请实施例还提出一种显示面板的驱动设备,主要用于显示面板,尤其是液晶显示面板的驱动。如图7所示,该显示面板的驱动设备包括:处理器1001,例如CPU,存储器1002。上述的处理器1001与存储器1002通讯连接。存储器1002可以是高速RAM存储器,也可以是稳定的存储器(non-volatile memory),例如磁盘存储器。存储器1002可选的还可以是独立于前述处理器1001的存储装置。本领域技术人员可以理解,图7中示出的设备结构并不构成对设备的限定,可以包括比图示更多或更少的部件,或者组合某些部件,或者不同的部件布置。作为一种计算机存储介质的存储器1002中可以显示面板的驱动程序。在图7所示的设备中,处理器1001可以用于调用存储器1002中存储的显示面板的驱动程序,并执行上述显示面板的驱动方法的相关步骤操作。
此外,本申请还提出一种显示器,显示器包括如显示面板和上述的实施例中的显示面板的驱动设备。显示面板与显示面板的驱动设备通讯连接。
此外,本申请还提出一种可读存储介质,所述可读存储介质上存储有显示面板的驱动程序,所述显示面板的驱动程序被处理器执行时实现上面实施例所述的显示面板的驱动方法的步骤。

Claims (17)

  1. 一种显示面板的驱动方法,其中,所述显示面板包括多个呈阵列排布的像素组,每个所述像素组包括第一像素单元,所述第一像素单元包括至少两个第一子像素;
    定义任意两个相邻的像素组之一中的第一子像素为第一目标像素,定义任意两个相邻的像素组之另一中的第一子像素为第二目标像素;所述显示面板的驱动方法包括以下步骤:
    获取显示所述第一目标像素对应的第一初始驱动数据,获取显示所述第二目标像素对应的第二初始驱动数据;
    根据所述第一初始驱动数据确定对应的第一高电压数据,根据所述第二初始驱动数据确定对应的第一低电压数据;
    根据所述第一高电压数据确定所述第一目标像素对应的第一目标高电压驱动数据,根据所述第一低电压数据确定所述第二目标像素对应的第一目标低电压驱动数据;以及,
    采用所述第一目标高电压驱动数据驱动所述第一目标像素,采用所述第一目标低电压驱动数据驱动所述第二目标像素。
  2. 如权利要求1所述的显示面板的驱动方法,其中,所述根据所述第一初始驱动数据确定对应的第一高电压数据,根据所述第二初始驱动数据确定对应的第一低电压数据的步骤包括:
    根据所述第一初始驱动数据增加第一预设幅度,得到所述第一高电压数据,根据所述第二初始驱动数据减小第二预设幅度,得到所述第一低电压数据。
  3. 如权利要求1所述的显示面板的驱动方法,其中,所述显示面板的驱动方法还包括:
    根据所述第一目标像素的灰阶确定所述第一预设幅度,根据所述第二目标像素的灰阶确定所述第二预设幅度。
  4. 如权利要求1所述的显示面板的驱动方法,其中,定义所述第一目标像素相邻的第二目标像素为第一补偿像素,所述根据所述第一高电压数据确定所述第一目标像素对应的第一目标高电压驱动数据的步骤包括:
    确定所述第一目标像素对应的第一补偿像素;
    根据所述第一补偿像素的第二初始驱动数据确定对应的第一补偿高电压数据;以及,
    根据所述第一高电压数据和所述第一补偿高电压数据,确定所述第一目标高电压驱动数据。
  5. 如权利要求4所述的显示面板的驱动方法,其中,所述根据所述第一补偿像素的第二初始驱动数据确定对应的第一补偿高电压数据的步骤包括:
    将所述第一补偿像素的第二初始驱动数据增加所述第三预设幅度,得到所述第一补偿高电压数据;其中,所述第三预设幅度为所述第一补偿像素对应的预设电压增幅。
  6. 如权利要求4所述的显示面板的驱动方法,其中,所述根据所述第一高电压数据和所述第一补偿高电压数据,确定所述第一目标高电压驱动数据的步骤包括:
    获取所述第一补偿像素对应的第一预设权重;以及,
    根据所述第一高电压数据、所述第一补偿高电压数据和所述第一预设权重,确定所述第一目标高电压驱动数据。
  7. 如权利要求6所述的显示面板的驱动方法,其中,所述获取所述第一补偿像素对应的第一预设权重的步骤包括:
    获取当前画面显示的解析度;以及,
    根据获取的解析度确定所述第一补偿像素对应的第一预设权重。
  8. 如权利要求4所述的显示面板的驱动方法,其中,定义所述第二目标像素相邻的第一目标像素为第二补偿像素,所述根据所述第一低电压数据确定所述第二目标像素对应的第一目标低电压驱动数据的步骤包括:
    确定所述第二目标像素对应的第二补偿像素;
    根据所述第二补偿像素的第一初始驱动数据确定对应的第一补偿低电压数据;以及,
    根据所述第一低电压数据和所述第一补偿低电压数据,确定所述第一目标低电压驱动数据。
  9. 如权利要求8所述的显示面板的驱动方法,其中,所述根据所述第二补偿像素的第一初始驱动数据确定对应的第一补偿低电压数据的步骤包括:
    将所述第二补偿像素的第一初始驱动数据减小第四预设幅度,得到所述第一补偿低电压数据;其中,所述第四预设幅度为所述第二补偿像素对应的预设电压减幅。
  10. 如权利要求8所述的显示面板的驱动方法,其中,根据所述第一低电压数据和所述第一补偿低电压数据,确定所述第一目标低电压驱动数据的步骤包括:
    获取所述第二补偿像素对应的第二预设权重;以及,
    根据所述第一低电压数据、所述第一补偿低电压数据和所述第二预设权重,确定所述第一目标低电压驱动数据。
  11. 如权利要求10所述的显示面板的驱动方法,其中,所述获获取所述第二补偿像素对应的第二预设权重的步骤包括:
    获取当前画面显示的解析度;以及,
    根据获取的解析度确定所述第二补偿像素对应的第二预设权重。
  12. 如权利要求1所述的显示面板的驱动方法,其中,各所述像素组还包括第二像素单元和第三像素单元,所述第二像素单元包括至少两个第二子像素,所述第三像素单元包括至少两个第三子像素,每个所述像素组中的第一像素单元、第二像素单元、第三像素单元沿行方向依次排列;
    定义任意两个相邻的像素组之一中的第二子像素为第三目标像素,定义任意两个相邻的像素组之另一中的第二子像素为第四目标像素;定义任意两个相邻的像素组之一中的第三子像素为第五目标像素,定义任意两个相邻的像素组之另一中的第三子像素为第六目标像素;
    所述显示面板的驱动方法还包括以下步骤:
    获取显示所述第三目标像素对应的第三初始驱动数据,获取显示所述第四目标像素对应的第四初始驱动数据,获取显示所述第五目标像素对应的第五初始驱动数据,获取显示所述第六目标像素对应的第六初始驱动数据;
    根据所述第三初始驱动数据确定对应的第二高电压数据,根据所述第四初始驱动数据确定对应的第二低电压数据,根据所述第五初始驱动数据确定对应的第三高电压数据,根据所述第六初始驱动数据确定对应的第三低电压数据;
    根据所述第二高电压数据确定所述第三目标像素对应的第二目标高电压驱动数据,根据所述第二低电压数据确定所述第四目标像素对应的第二目标低电压驱动数据,根据所述第三高电压数据确定所述第五目标像素对应的第三目标高电压驱动数据,根据所述第三低电压数据确定所述第六目标像素对应的第三目标低电压驱动数据;以及,
    采用所述第二目标高电压驱动数据驱动所述第三目标像素,采用所述第二目标低电压驱动数据驱动所述第四目标像素,采用所述第三目标高电压驱动数据驱动所述第五目标像素,采用所述第三目标低电压驱动数据驱动所述第六目标像素。
  13. 如权利要求12所述的显示面板的驱动方法,其中,相邻的两像素组中之一包括所述第一目标像素、所述第四目标像素和所述第五目标像素,相邻的两像素组中之另一包括所述第二目标像素、所述第三目标像素和所述第六目标像素。
  14. 如权利要求12所述的显示面板的驱动方法,其中,相邻的两像素组中之一包括所述第一目标像素、所述第三目标像素和所述第五目标像素,相邻的两像素组中之另一包括所述第二目标像素、所述第四目标像素和所述第六目标像素。
  15. 如权利要求13所述的显示面板的驱动方法,其中,定义采用高电压驱动数据进行驱动的子像素包括所述第一目标像素、所述第三目标像素和所述第五目标像素,定义采用低电压驱动数据进行驱动的子像素包括所述第二目标像素、所述第四目标像素和所述第六目标像素;
    所述采用所述第一目标高电压驱动数据驱动所述第一目标像素,采用所述第一目标低电压驱动数据驱动所述第二目标像素的步骤,且所述采用所述第二目标高电压驱动数据驱动所述第三目标像素,采用所述第二目标低电压驱动数据驱动所述第四目标像素,采用所述第三目标高电压驱动数据驱动所述第五目标像素,采用所述第三目标低电压驱动数据驱动所述第六目标像素的步骤之前,还包括:
    分别根据各所述采用高电压驱动数据进行驱动的子像素对应的初始驱动数据确定相应的第四低电压数据;分别根据各所述采用低电压驱动数据进行驱动的子像素对应的初始驱动数据确定相应的第四高电压数据;
    根据所述第四低电压数据确定各所述采用高电压驱动数据进行驱动的子像素对应的第四目标低电压驱动数据;根据所述第四高电压数据确定各所述采用低电压驱动数据进行驱动的子像素对应的第四目标高电压驱动数据;
    所述采用所述第一目标高电压驱动数据驱动所述第一目标像素,采用所述第一目标低电压驱动数据驱动所述第二目标像素的步骤,且所述采用所述第二目标高电压驱动数据驱动所述第三目标像素,采用所述第二目标低电压驱动数据驱动所述第四目标像素,采用所述第三目标高电压驱动数据驱动所述第五目标像素,采用所述第三目标低电压驱动数据驱动所述第六目标像素的步骤之后,还包括:
    将采用高电压驱动数据进行驱动的子像素切换为对应的第四目标低电压驱动数据进行驱动,将采用低电压驱动数据进行驱动的子像素切换为对应的第四目标高电压驱动数据进行驱动。
  16. 一种显示面板的驱动装置,其中,所述显示面板的驱动装置包括:存储器、处理器及存储在所述存储器上并可在所述处理器上运行的显示面板的驱动程序,所述显示面板的驱动程序被所述处理器执行时实现如下所述的显示面板的驱动方法的步骤:
    获取显示第一目标像素对应的第一初始驱动数据,获取显示第二目标像素对应的第二初始驱动数据;
    根据所述第一初始驱动数据确定对应的第一高电压数据,根据所述第二初始驱动数据确定对应的第一低电压数据;
    根据所述第一高电压数据确定所述第一目标像素对应的第一目标高电压驱动数据,根据所述第一低电压数据确定所述第二目标像素对应的第一目标低电压驱动数据;以及,
    采用所述第一目标高电压驱动数据驱动所述第一目标像素,采用所述第一目标低电压驱动数据驱动所述第二目标像素。
  17. 一种显示器,其中,所述显示器包括:
    显示面板;以及,
    显示面板的驱动设备,所述显示面板和所述显示面板的驱动设备连接,所述显示面板的驱动设备包括:存储器、处理器及存储在所述存储器上并可在所述处理器上运行的显示面板的驱动程序,所述显示面板的驱动程序被所述处理器执行时实现如下所述的显示面板的驱动方法的步骤:
    获取显示第一目标像素对应的第一初始驱动数据,获取显示第二目标像素对应的第二初始驱动数据;
    根据所述第一初始驱动数据确定对应的第一高电压数据,根据所述第二初始驱动数据确定对应的第一低电压数据;
    根据所述第一高电压数据确定所述第一目标像素对应的第一目标高电压驱动数据,根据所述第一低电压数据确定所述第二目标像素对应的第一目标低电压驱动数据;以及,
    采用所述第一目标高电压驱动数据驱动所述第一目标像素,采用所述第一目标低电压驱动数据驱动所述第二目标像素。
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