Detailed Description
The present invention will be described in further detail with reference to specific examples, but the embodiments of the present invention are not limited thereto.
Example one
Referring to fig. 2, fig. 2 is a flowchart of a pixel matrix driving method according to an embodiment of the invention. The pixel matrix driving method is suitable for displays currently having pixel arrays, such as LCD displays, LED displays, OLED displays, and the like.
Furthermore, the pixel matrix comprises a plurality of sub-pixels which are arranged in a matrix, the polarity of the voltage loaded along the data line is exchanged every two sub-pixels, and any one column of data lines controls the voltage input of one sub-pixel at the two sides of the data line; specifically, for the sub-pixel polarity, the polarity inversion method is 1+2N along the scanning line direction, the single-dot inversion along the data line direction, and the polarity inversion method is 1+ 2N.
Specifically, the method may comprise the steps of:
step 1, receiving image data, and acquiring original pixel data according to the image data;
step 2, obtaining first gray scale data and second gray scale data according to the original pixel data;
step 3, generating a first driving voltage corresponding to the first gray scale data and a second driving voltage corresponding to the second gray scale data according to the first gray scale data and the second gray scale data;
and 4, loading the first driving voltage or the second driving voltage to the pixel matrix along the direction of a data line in one frame.
In the prior art, the original pixel data, that is, a specific pixel value displayed by each sub-pixel in a pixel matrix in each frame correspondingly, the pixel value input to each sub-pixel is directly determined by the image data input to the TCON without processing the original pixel data, which is affected by the polarity of the sub-pixels, and thus, the polarity of the sub-pixels is easily subjected to crosstalk, bright and dark lines and other negative effects.
In this embodiment, the original pixel data is processed to obtain further first gray scale data and second gray scale data, and the pixel gray scales of the first gray scale data and the second gray scale data are different, and then the first gray scale data and the second gray scale data are loaded onto the corresponding sub-pixels at certain arrangement intervals between different pixels or different frames.
In a specific example, the first gray scale data is regarded as high gray scale data, the second gray scale data is regarded as low gray scale data, and accordingly, the voltage input to the sub-pixels is determined by the gray scale, and a high gray scale voltage corresponding to the high gray scale data, namely, a first driving voltage is generated; it should be noted that the low gray scale voltage corresponding to the low gray scale data, i.e. the second driving voltage, represents the relative values of the two gray scales, and the values are not limited separately.
Referring to fig. 3, fig. 3 is a schematic view illustrating polarity loading of a pixel matrix according to an embodiment of the invention. Two consecutive sub-pixels have the same polarity when viewed from a row, the polarity of the next two consecutive sub-pixels is opposite to that of the previous two sub-pixels, the polarities of the sub-pixels are alternately inverted when viewed from a column, and so on, the voltage applied to the sub-pixels is inverted every two sub-pixels in the scan line direction, the voltage applied to the sub-pixels is inverted every sub-pixel polarity in the data line direction, P in fig. 3 represents a positive voltage, N represents a negative voltage, the polarity inversion can be represented as PNPN … PNPN or NPNP … NPNP when viewed from a column, and the polarity inversion can be represented as PNNP … PNNP or NPPN … NPPN when viewed from a row.
Referring to fig. 4, fig. 4 is a schematic view illustrating polarity loading of another pixel matrix according to an embodiment of the invention. The voltage input of one sub-pixel at two sides of any column of data lines is controlled, the polarity of the sub-pixels is alternately inverted when viewed from a certain row, the polarity of the sub-pixels is alternately inverted when viewed from a certain column, and the like, the voltage applied to the sub-pixels is inverted once per sub-pixel polarity along the scanning line direction, the voltage applied to the sub-pixels is inverted once per sub-pixel polarity along the data line direction, specifically, for the sub-pixel polarity, the single-point inversion is carried out along the scanning line direction and the data line direction, and the polarity inversion mode of the data line is 1+ 2N. In fig. 4, P represents a positive voltage, N represents a negative voltage, and the polarity inversion can be represented as PNPN … PNPN or NPNP … NPNP when viewed from a certain column, and can be represented as PNPN … PNPN or NPNP … NPNP when viewed from a certain row.
In one embodiment, obtaining the first gray scale data and the second gray scale data according to the original pixel data comprises: and obtaining an original pixel value of each pixel position according to the original pixel data, and converting the original pixel value of each pixel position into first gray scale data or second gray scale data according to a preset conversion mode.
After the gray scale to be displayed at each pixel position is correspondingly determined according to the rule of the invention, the time schedule controller correspondingly adjusts the original gray scale of the pixel position into a high gray scale or a low gray scale and sends the adjusted gray scale value to the data driving unit, and the data driving unit outputs corresponding voltage according to the gray scale value.
For example, if the original pixel value at the a position is 128 gray, and the a position should output a high gray, i.e. H, according to the above rule of the present invention, after calculation, in this example, H of 128 is 138 gray, 138 gray is output to the a position, the data driving unit receives 138 gray, and according to the predetermined conversion rule, the voltage corresponding to 138 gray is 10V, and finally the voltage signal of 10V is output to the a position. Generally, the high-low gray scale adjustment range is determined according to the material of the liquid crystal or the like.
For example, if the original pixel value at the B position is 128 gray, and the B position should output a low gray, i.e., L, according to the above rule of the present invention, the calculation is performed, in this example, if L of 128 is 118 gray, 118 gray is output to the B position, the data driving unit receives 118 gray, and according to the predetermined conversion rule, the voltage corresponding to 118 gray is 8V, and finally the voltage signal of 8V is output to the B position.
In a specific embodiment, the applying the first driving voltage or the second driving voltage to the pixel matrix along the data line direction includes:
alternately loading the first driving voltage or the second driving voltage to adjacent sub-pixels along a data line direction to the pixel matrix;
and alternately loading the first driving voltage or the second driving voltage to the adjacent sub-pixels along the scanning line direction to the pixel matrix.
The pixel matrix is physically divided into a plurality of small blocks arranged in a matrix by a plurality of data lines and scanning lines which are communicated in an interlaced mode, and each small block is a sub-pixel.
Referring to the following example, please refer to fig. 5, wherein fig. 5 is a schematic view illustrating gray scale loading of a pixel matrix according to an embodiment of the invention. When viewed from a row, the gray scale voltages applied to the sub-pixels are alternated, when viewed from a column, the gray scale voltages applied to the sub-pixels are alternated, and so on, where H in fig. 5 represents a high gray scale voltage, L represents a low gray scale voltage, when viewed from a column, the gray scale voltages can be represented as HLHL … HLHL or LHLH … LHLH, and when viewed from a row, the gray scale voltages can be represented as HLHL … HLHL or LHLH … LHLH.
According to the driving method of the pixel matrix, the pixels in the pixel matrix are not influenced by polarity by matching the high gray scale voltage and the low gray scale voltage reasonably, the problems of crosstalk, bright and dark lines and the like are avoided, and the display effect is improved.
Example two
Referring to fig. 6, fig. 6 is a schematic view illustrating gray scale loading of another pixel matrix according to an embodiment of the invention. The loading the first driving voltage or the second driving voltage to the pixel matrix along a data line direction comprises:
loading the first driving voltage and the second driving voltage to every two adjacent sub-pixels alternately along the direction of a data line, wherein the gray levels on the adjacent sub-pixels on the two sides of the data line are different;
and alternately loading the first driving voltage and the second driving voltage to adjacent sub-pixels along the direction of a scanning line.
The gray levels of the adjacent sub-pixels on the two sides of the data line are different, namely when the adjacent sub-pixel on the left side of the data line is H, the adjacent sub-pixel on the right side of the data line is L, and vice versa.
The gray scale voltages loaded to two consecutive sub-pixels are the same from a certain column, the gray scale voltages loaded to the sub-pixels are alternately changed from the previous two, and so on, the gray scale voltages loaded to the sub-pixels are represented by H and the low gray scale voltages in fig. 6, the gray scale voltages can be represented by HHLL … HHLL or LLHH … LLHH from a certain column, and the gray scale voltages can be represented by HLHL … HLHL or LHLH … LHLH from a certain row.
According to the driving method of the pixel matrix, the pixels in the pixel matrix are not influenced by polarity by matching the high gray scale voltage and the low gray scale voltage reasonably, the problems of crosstalk, bright and dark lines and the like are avoided, and the display effect is improved.
Referring to the following example, please refer to fig. 7, wherein fig. 7 is a schematic view illustrating gray scale loading of a pixel matrix according to another embodiment of the present invention. The loading the first driving voltage or the second driving voltage to the pixel matrix along a data line direction comprises:
loading the first driving voltage and the second driving voltage to adjacent sub-pixels alternately along the direction of a data line, wherein the gray levels of the adjacent sub-pixels on two sides of the data line are different;
and alternately loading the first driving voltage and the second driving voltage to every two adjacent sub-pixels along the direction of a scanning line.
The gray levels of the adjacent sub-pixels on the two sides of the data line are different, namely when the adjacent sub-pixel on the left side of the data line is H, the adjacent sub-pixel on the right side of the data line is L, and vice versa.
The gray scale voltages loaded to two consecutive sub-pixels are the same from a certain row, the gray scale voltages loaded to the two consecutive sub-pixels are different from the two previous rows, the gray scale voltages loaded to the sub-pixels are alternated from a certain column, and so on, in fig. 7, H represents a high gray scale voltage, L represents a low gray scale voltage, from a certain row, the gray scale voltages can be represented as HLHL … HLHL or LHLH … LHLH, and from a certain row, the gray scale voltages can be represented as HHLL … HHLL or llhhh … LLHH.
According to the driving method of the pixel matrix, the pixels in the pixel matrix are not influenced by polarity by matching the high gray scale voltage and the low gray scale voltage reasonably, the problems of crosstalk, bright and dark lines and the like are avoided, and the display effect is improved.
In another driving scheme, referring to fig. 8, fig. 8 is a schematic view illustrating gray scale loading of a pixel matrix according to another embodiment of the invention. The gray scale voltages loaded to two consecutive sub-pixels are the same from a certain row, the gray scale voltages loaded to the sub-pixels are alternated from the previous two, and so on, in fig. 7, H represents a high gray scale voltage, L represents a low gray scale voltage, from a certain column, the gray scale voltages can be represented as HLHL … HLHL or LHLH … LHLH, and from a certain row, the gray scale voltages can be represented as HHLL … HHLL or LLHH … LLHH.
EXAMPLE III
Referring to fig. 9, fig. 9 is a flowchart of another pixel matrix driving method according to an embodiment of the invention. The pixel matrix comprises a plurality of sub-pixels which are arranged in a matrix, the polarity of the voltage applied to the sub-pixels is reversed once every two sub-pixels along the direction of a data line, and the polarity of the voltage applied to the sub-pixels is reversed once every sub-pixel along the direction of a scanning line;
specifically, the method comprises the following steps:
step 1, receiving image data, and acquiring original pixel data according to the image data;
step 2, obtaining an original data driving signal of each pixel position according to the original pixel data;
step 3, obtaining a first driving voltage and a second driving voltage according to the original data driving signal;
and 4, loading the first driving voltage or the second driving voltage to the pixel matrix along the direction of a data line in one frame.
Alternately loading the first driving voltage or the second driving voltage to adjacent sub-pixels along a data line direction to the pixel matrix;
and alternately loading the first driving voltage or the second driving voltage to the adjacent sub-pixels along the scanning line direction to the pixel matrix.
Or in one frame, the first driving voltage and the second driving voltage are alternately loaded to adjacent sub-pixels along the direction of a data line, and the gray levels on the adjacent sub-pixels on the two sides of the data line are different;
and alternately loading the first driving voltage and the second driving voltage to every two adjacent sub-pixels along the scanning line direction.
Or in one frame, the first driving voltage and the second driving voltage are alternately loaded to adjacent sub-pixels along the direction of a data line, and the gray scales on the adjacent sub-pixels on the two sides of the data line are the same;
and alternately loading the first driving voltage and the second driving voltage to every two adjacent sub-pixels along the direction of a scanning line.
In one implementation, the present embodiment generates the driving signals for driving the sub-pixels by using two different sets of gammas (gammas) to generate the driving signals for driving the sub-pixels, so that the set of original data driving signals generate two sets of driving voltages under the action of different gammas, thereby implementing the driving control of the present invention. In a specific implementation of the embodiment, the Tcon outputs a set of gray scales, and the data driving circuit generates two sets of gammas, each set of gammas respectively driving different sub-pixels, thereby achieving the same technical effect as the embodiment.
In one embodiment, obtaining the first driving voltage and the second driving voltage according to the original data driving signal includes: and obtaining an original gray-scale value and a conversion rule of a corresponding pixel position according to the original data driving signal, and converting the original gray-scale value of the corresponding pixel position into a first driving voltage or a second driving voltage according to the conversion rule.
The method of the invention does not directly carry out gray scale conversion in the time sequence controller, and sends the original gray scale value and the conversion rule of the corresponding H or L to the data driving unit, and the data driving unit directly outputs the corresponding driving voltage according to the original gray scale value and the corresponding H or L according to the rule.
For example, in one embodiment, if the original pixel value at the a position is 128 gray levels, the a position isoutput 128 gray levels, and the a position is H according to the conversion rule, after the driving circuit receives the 128 gray levels, the corresponding voltage 10V is found in the voltage conversion table corresponding to the gray level of H, and finally the driving voltage signal of 10V is output to the a position.
For example, if the original pixel value at the B position is 128 gray levels, the B position isoutput 128 gray levels, and after the L driving circuit receives the 128 gray levels according to the conversion rule, the corresponding voltage 8V is found in the corresponding voltage conversion table corresponding to the gray levels of L, and finally, the data signal of 8V is output to the a position.
In the embodiment, the high gray scale voltage and the low gray scale voltage are reasonably matched, so that the pixels in the pixel matrix are not influenced by polarity, the problems of crosstalk, bright and dark lines and the like are avoided, and the display effect is improved.
Example four
In a specific embodiment, corresponding to one of the above solutions, in order to show the solution of the present invention more clearly, the pixel matrix includes a plurality of sub-pixel regions, each of the sub-pixel regions includes:
a first sub-pixel;
a second sub-pixel adjacent to the first sub-pixel along a scan line direction;
a third sub-pixel adjacent to the second sub-pixel along a scan line direction;
a fourth sub-pixel adjacent to the third sub-pixel along a scan line direction;
a fifth sub-pixel adjacent to the first sub-pixel in a data line direction;
a sixth subpixel adjacent to the second subpixel in a data line direction;
a seventh sub-pixel adjacent to the third sub-pixel in a data line direction;
an eighth subpixel adjacent to the fourth subpixel in a data line direction;
a first data line electrically connected to the first sub-pixel, the second sub-pixel, the fifth sub-pixel, and the sixth sub-pixel;
a second data line electrically connected to the third, fourth, seventh, and eighth sub-pixels;
the first scanning line is electrically connected with the first sub-pixel and the third sub-pixel;
the second scanning line is electrically connected with the second sub-pixel and the fourth sub-pixel;
a third scan line electrically connected to the fifth subpixel and the seventh subpixel;
and the fourth scanning line is electrically connected with the sixth sub-pixel and the eighth sub-pixel.
Referring to fig. 10, fig. 10 is a schematic view of a sub-pixel region according to an embodiment of the invention. The region denoted by the symbol a is denoted as a sub-pixel region, each sub-pixel region includes eight sub-pixels, which are divided into two upper and lower rows of four sub-pixels, wherein the first pixel a1, the second pixel a2, the third pixel A3, and the fourth pixel a4 are in one row, and the fifth pixel a5, the sixth pixel a6, the seventh pixel a7, and the eighth pixel A8 are in the next row opposite to the upper row. The pixel matrix is sequentially filled with a number of sub-pixel regions. A first data line D1 electrically connected to the first subpixel a1, the second subpixel a2, the fifth subpixel a5 and the sixth subpixel a 6; a second data line D2 electrically connected to the third subpixel A3, the fourth subpixel a4, the seventh subpixel a7 and the eighth subpixel a 8; a first scan line G1 electrically connected to the first sub-pixel a1 and the third sub-pixel A3; a second scan line G2 electrically connected to the second subpixel a2 and the fourth subpixel a 4; a third scanning line G3 electrically connected to the fifth subpixel a5 and the seventh subpixel a 7; and a fourth scan line G4 electrically connected to the sixth subpixel a6 and the eighth subpixel a 8.
In one embodiment, the polarity of the voltage applied to the first pixel a1, the fourth pixel a4, the sixth pixel a6 and the seventh pixel a7 is the same, and is opposite to the polarity of the voltage applied to the second pixel a2, the third pixel A3, the fifth pixel a5 and the eighth pixel A8.
The gray scales of voltages applied to the first pixel a1, the third pixel A3, the sixth pixel a6 and the eighth pixel A8 are different from those applied to the second pixel a2, the fourth pixel a4, the fifth pixel a5 and the seventh pixel a 7.
According to the above matching relationship between the voltage polarity and the voltage gray scale loaded on the sub-pixel, a specific embodiment is shown, in one frame, a positive polarity high gray scale voltage, which can be denoted as HP, is loaded on the first pixel a 1; loading the second pixel a2 with a negative polarity low gray scale voltage, which may be denoted as LN; -loading said third pixel a3 with a negative polarity low gray scale voltage, which may be denoted LN; loading the fourth pixel a4 with a positive polarity low gray scale voltage, which may be denoted as LP; -applying a negative polarity low gray scale voltage, which may be denoted LN, to said fifth pixel a 5; applying a positive polarity high grayscale voltage, which may be denoted as HP, to the sixth pixel a 6; loading the seventh pixel a7 with a positive polarity low gray scale voltage, which may be denoted as LP; a negative polarity high grayscale voltage, which may be denoted as HN, is applied to the eighth pixel A8.
For a clearer description of the voltage loading relationship, the voltage loading relationship for each sub-pixel in any column is expressed as follows: HP, LN, HP and LN … are circulated in sequence; from a certain row, the voltage relationship loaded for each sub-pixel in any row is sequentially expressed as: HP, LN, HN, LP, HP, LN, HN, LP … circulate sequentially.
Alternatively, a negative polarity high grayscale voltage, which may be denoted as HN, is applied to the first pixel a 1; loading the second pixel A2 with a positive polarity low gray scale voltage, which may be denoted as LP; loading the third pixel a3 with a positive polarity low gray scale voltage, which may be denoted as LP; -applying a negative polarity low gray scale voltage, which may be denoted LN, to said fourth pixel a 4; loading the fifth pixel a5 with a positive polarity low gray scale voltage, which may be denoted as LP; loading a negative polarity high grayscale voltage, which may be denoted as HN, to the sixth pixel a 6; -loading said seventh pixel a7 with a negative polarity low gray scale voltage, which may be denoted LN; the eighth pixel A8 is loaded with a positive polarity high grayscale voltage, which may be denoted as HP.
For more clear description of the voltage loading relationship, the voltage loading relationship for each sub-pixel in any column is sequentially expressed as follows: HN, LP, HN, LP … cycle sequentially; from a certain row, the voltage relationship loaded for each sub-pixel in any row is sequentially expressed as: HN, LP, HP, LN, HN, LP, HP, LN … cycle sequentially.
EXAMPLE five
In a specific embodiment, corresponding to one of the above solutions, in order to show the solution of the present invention more clearly, the pixel matrix includes a plurality of sub-pixel regions, each of the sub-pixel regions includes:
a first sub-pixel;
a second sub-pixel adjacent to the first sub-pixel along a scan line direction;
a third sub-pixel adjacent to the second sub-pixel along a scan line direction;
a fourth sub-pixel adjacent to the third sub-pixel along a scan line direction;
a fifth sub-pixel adjacent to the first sub-pixel in a data line direction;
a sixth subpixel adjacent to the second subpixel in a data line direction;
a seventh sub-pixel adjacent to the third sub-pixel in a data line direction;
an eighth subpixel adjacent to the fourth subpixel in a data line direction;
a first data line electrically connected to the first sub-pixel, the second sub-pixel, the fifth sub-pixel, and the sixth sub-pixel;
a second data line electrically connected to the third, fourth, seventh, and eighth sub-pixels;
the first scanning line is electrically connected with the first sub-pixel and the third sub-pixel;
the second scanning line is electrically connected with the second sub-pixel and the fourth sub-pixel;
a third scanning line electrically connected to the fifth sub-pixel and the seventh sub-pixel;
and the fourth scanning line is electrically connected with the sixth sub-pixel and the eighth sub-pixel.
Referring to fig. 11, fig. 11 is a schematic view of another sub-pixel region provided by the embodiment of the invention, in which the region denoted by the symbol a is denoted as a sub-pixel region, each sub-pixel region includes eight sub-pixels, which are divided into an upper row and a lower row, and each row includes four sub-pixels, where the first pixel a1, the second pixel a2, the third pixel A3, and the fourth pixel a4 are in a row, and the fifth pixel a5, the sixth pixel a6, the seventh pixel a7, and the eighth pixel A8 are in a row right opposite to the upper row and the lower row. The pixel matrix is sequentially filled with a number of sub-pixel regions. A first data line D1 electrically connected to the first sub-pixel a1, the second sub-pixel a2, the fifth sub-pixel a5 and the sixth sub-pixel a 6; a second data line D2 electrically connected to the third subpixel A3, the fourth subpixel a4, the seventh subpixel a7 and the eighth subpixel a 8; a first scan line G1 electrically connected to the first subpixel a1 and the third subpixel A3; a second scan line G2 electrically connected to the second subpixel a2 and the fourth subpixel a 4; a third scanning line G3 electrically connected to the fifth subpixel a5 and the seventh subpixel a 7; and a fourth scan line G4 electrically connected to the sixth subpixel a6 and the eighth subpixel a 8.
In one embodiment, the polarity of the voltage applied to the first pixel a1, the fourth pixel a4, the sixth pixel a6 and the seventh pixel a7 is the same, and is opposite to the polarity of the voltage applied to the second pixel a2, the third pixel A3, the fifth pixel a5 and the eighth pixel A8.
The gray levels of voltages applied to the first pixel a1, the third pixel A3, the fifth pixel a5 and the seventh pixel a7 are different from the gray levels of voltages applied to the second pixel a2, the fourth pixel a4, the sixth pixel a6 and the eighth pixel A8.
According to the above matching relationship between the voltage polarity and the voltage gray scale loaded on the sub-pixel, a specific embodiment is shown, in one frame, a positive polarity high gray scale voltage, which may be denoted as HP, is loaded on the first pixel a 1; loading the second pixel a2 with a negative polarity low gray scale voltage, which may be denoted as LN; -loading said third pixel a3 with a negative polarity low gray scale voltage, which may be denoted LN; loading the fourth pixel a4 with a positive polarity low gray scale voltage, which may be denoted as LP; loading a negative polarity high grayscale voltage, which may be denoted as HN, to the fifth pixel A5; loading the sixth pixel a6 with a positive polarity low gray scale voltage, which may be denoted as LP; loading a positive polarity high grayscale voltage, which may be denoted as HP, to the seventh pixel a 7; the eighth pixel A8 is loaded with a negative polarity low gray scale voltage, which may be denoted as LN.
For more clear description of the voltage loading relationship, the voltage loading relationship for each sub-pixel in any column is sequentially expressed as follows: HP, LN, HP and LN … are circulated in sequence; from a certain row, the voltage relationship loaded for each sub-pixel in any row is sequentially expressed as: HP, HN, LP, LN, HP, HN, LP, LN … circulate in sequence.
Alternatively, a negative polarity high grayscale voltage, which may be denoted as HN, is applied to the first pixel a 1; loading the second pixel a2 with a positive polarity low gray scale voltage, which may be denoted as LP; loading the third pixel a3 with a positive polarity low gray scale voltage, which may be denoted as LP; loading a negative polarity low gray scale voltage, which may be denoted as LN, to the fourth pixel a 4; -loading said fifth pixel a5 with a positive polarity low high order voltage, which may be denoted HP; -applying a negative polarity low gray scale voltage, which may be denoted LN, to said sixth pixel a 6; loading a negative polarity high grayscale voltage, which may be denoted as HN, to the seventh pixel a 7; the eighth pixel A8 is loaded with a positive polarity low gray scale voltage, which may be denoted as LP.
For more clear description of the voltage loading relationship, the voltage loading relationship for each sub-pixel in any column is sequentially expressed as follows: HN, LP, HN, LP … cycle sequentially; from a certain row, the voltage relationship loaded for each sub-pixel in any row is sequentially expressed as: HN, HP, LN, LP, HN, HP, LN, LP … circulate sequentially.
EXAMPLE six
In a specific embodiment, corresponding to one of the above solutions, in order to show the solution of the present invention more clearly, the pixel matrix includes a plurality of sub-pixel regions, each of the sub-pixel regions includes:
a first sub-pixel;
a second sub-pixel adjacent to the first sub-pixel along a scan line direction;
a third sub-pixel adjacent to the second sub-pixel along a scan line direction;
a fourth sub-pixel adjacent to the third sub-pixel along a scan line direction;
a fifth sub-pixel adjacent to the first sub-pixel in a data line direction;
a sixth subpixel adjacent to the second subpixel in a data line direction;
a seventh sub-pixel adjacent to the third sub-pixel in a data line direction;
an eighth subpixel adjacent to the fourth subpixel in a data line direction;
a first data line electrically connected to the first sub-pixel, the second sub-pixel, the fifth sub-pixel, and the sixth sub-pixel;
a second data line electrically connected to the third, fourth, seventh, and eighth sub-pixels;
the first scanning line is electrically connected with the first sub-pixel and the fourth sub-pixel;
the second scanning line is electrically connected with the second sub-pixel and the third sub-pixel;
a third scanning line electrically connected to the fifth subpixel and the eighth subpixel;
and the fourth scanning line is electrically connected with the sixth sub-pixel and the seventh sub-pixel.
Referring to fig. 12, fig. 12 is a schematic diagram of another sub-pixel region provided in the embodiment of the present invention, in which the region denoted by the symbol a is denoted as a sub-pixel region, each sub-pixel region includes eight sub-pixels, which are divided into an upper row and a lower row, and each row includes four sub-pixels, where a first pixel a1, a second pixel a2, a third pixel A3, and a fourth pixel a4 are in a row, and a fifth pixel a5, a sixth pixel a6, a seventh pixel a7, and an eighth pixel A8 are in a row right below the upper row. The pixel matrix is sequentially filled with a number of sub-pixel regions. A first data line D1 electrically connected to the first sub-pixel a1, the second sub-pixel a2, the fifth sub-pixel a5 and the sixth sub-pixel a 6; a second data line D2 electrically connected to the third subpixel A3, the fourth subpixel a4, the seventh subpixel a7 and the eighth subpixel a 8; a first scan line G1 electrically connected to the first sub-pixel a1 and the third sub-pixel A3; a second scan line G2 electrically connected to the second subpixel a2 and the fourth subpixel a 4; a third scanning line G3 electrically connected to the fifth subpixel a5 and the seventh subpixel a 7; and a fourth scan line G4 electrically connected to the sixth subpixel a6 and the eighth subpixel a 8.
In one embodiment, the polarity of the voltage applied to the first pixel a1, the third pixel A3, the sixth pixel a6 and the eighth pixel A8 is the same, and is opposite to the polarity of the voltage applied to the second pixel a2, the fourth pixel a4, the fifth pixel a5 and the seventh pixel a 7.
The gray levels of voltages applied to the first pixel a1, the fourth pixel a4, the sixth pixel a6 and the seventh pixel a7 are different from the gray levels of voltages applied to the second pixel a2, the third pixel A3, the fifth pixel a5 and the eighth pixel A8.
According to the above matching relationship between the voltage polarity and the voltage gray scale loaded on the sub-pixel, a specific embodiment is shown, in one frame, a positive polarity high gray scale voltage, which can be denoted as HP, is loaded on the first pixel a 1; loading the second pixel a2 with a negative polarity low gray scale voltage, which may be denoted as LN; loading the third pixel a3 with a positive polarity low gray scale voltage, which may be denoted as LP; loading a negative polarity high grayscale voltage, denoted as HN, to the fourth pixel a 4; -applying a negative polarity low gray scale voltage, which may be denoted LN, to said fifth pixel a 5; applying a positive polarity high grayscale voltage, which may be denoted as HP, to the sixth pixel a 6; loading a negative polarity high grayscale voltage, which may be denoted as HN, to the seventh pixel a 7; the eighth pixel A8 is loaded with a positive polarity low gray scale voltage, which may be denoted as LP.
For more clear description of the voltage loading relationship, the voltage loading relationship for each sub-pixel in any column is sequentially expressed as follows: HP, LN, LP, HN, HP, LN, LP and HN … are circulated in sequence; from a certain row, the voltage relationship loaded for each sub-pixel in any row is sequentially expressed as: HP, LN, HP, LN … circulate in sequence.
Alternatively, a negative polarity high grayscale voltage, which may be denoted as HN, is applied to the first pixel a 1; loading the second pixel A2 with a positive polarity low gray scale voltage, which may be denoted as LP; -loading said third pixel a3 with a negative polarity low gray scale voltage, which may be denoted LN; applying a positive polarity high grayscale voltage, which may be denoted as HP, to the fourth pixel A4; loading the fifth pixel a5 with a positive polarity low gray scale voltage, which may be denoted as LP; loading a negative polarity high grayscale voltage, which may be denoted as HN, to the sixth pixel a 6; loading a positive polarity high grayscale voltage, which may be denoted as HP, to the seventh pixel a 7; the eighth pixel A8 is loaded with a negative polarity low gray scale voltage, which may be denoted as LN.
For more clear description of the voltage loading relationship, the voltage loading relationship for each sub-pixel in any column is sequentially expressed as follows: HN, LP, LN, HP, HN, LP, LN, HP … cycle in turn; from a certain row, the voltage relationship loaded for each sub-pixel in any row is sequentially expressed as: HN, LP, HN, LP … cycle sequentially.
EXAMPLE seven
Referring to fig. 13 and 14 together, fig. 13 is a schematic diagram illustrating a pixel matrix driving method according to an embodiment of the invention; FIG. 14 is a schematic view of one embodiment of the drive of FIG. 13; in an optional 4 × 4 region, in this embodiment, the first pixel a1, the second pixel a2, the fifth pixel a5, the sixth pixel A6, the ninth pixel a9, the tenth pixel a10, the thirteenth pixel a13, and the fourteenth pixel a14 are connected to the first data line D1, and the third pixel A3, the fourth pixel a4, the seventh pixel a7, the eighth pixel A8, the eleventh pixel a11, the twelfth pixel a12, the fifteenth pixel a15, and the sixteenth pixel a16 are connected to the second data line D2;
at a first time in a frame, a scan signal is loaded on the scan line G1 of the first row, and a voltage corresponding to HP is loaded on the first data line D1 to the first pixel a1, a voltage corresponding to HN is loaded on the second data line D2 to the third pixel A3, and so on;
at the next time (i.e., the second time), the scan signal is loaded on the scan line G2 of the second row, and the voltage corresponding to LN is loaded on the first data line D1 to the second pixel a2, the voltage corresponding to LP is loaded on the second data line D2 to the fourth pixel a4, and so on;
at the next time (i.e., the third time), the scan signal is loaded on the scan line G3 in the third row, and the voltage corresponding to LN is loaded on the first data line D1 to the fifth pixel a5, the voltage corresponding to LP is loaded on the second data line D2 to the seventh pixel a7, and so on;
at the next time (i.e., the fourth time), the scan signal is loaded on the scan line G4 of the fourth row, and the voltage corresponding to HP is loaded on the first data line D1 to the sixth pixel a6, the voltage corresponding to HN is loaded on the second data line D2 to the eighth pixel a8, and so on;
at the next time (i.e., the fifth time), the scan signal is loaded on the scan line G5 of the fifth row, and the voltage corresponding to HP is loaded on the first data line D1 to the ninth pixel a9, the voltage corresponding to HN is loaded on the second data line D2 to the eleventh pixel a11, and so on;
at the next time (i.e., the sixth time), the scan signal is loaded on the scan line G6 of the sixth row, and the voltage corresponding to LN is loaded on the first data line D1 to the tenth pixel a10, the voltage corresponding to LP is loaded on the third data line D2 to the twelfth pixel a12, and so on;
at the next time (i.e., the seventh time), the scan signal is loaded on the scan line G7 of the seventh row, and the voltage corresponding to LN is loaded on the first data line D1 to the thirteenth pixel a13, the voltage corresponding to LP is loaded on the second data line D2 to the fifteenth pixel a15, and so on;
at the next time (i.e., the eighth time), the scan signal is loaded on the scan line G8 of the eighth row, the voltage corresponding to HP is loaded on the first data line D1 to the fourteenth pixel a14, the voltage corresponding to HN is loaded on the second data line D2 to the sixteenth pixel a16, and so on.
In this embodiment, the voltage loading case of 4 × 4 is exemplified, and the voltages are sequentially loaded to other sub-pixels and other time points according to the above rule.
By adopting the embodiment of the invention, the positive and negative polarity voltages and the high and low gray scale voltages are loaded to the pixel matrix alternately, so that the side visibility can be improved, the pixels in the pixel matrix are not influenced by the polarity, the problems of crosstalk, bright and dark lines and the like are solved, and the display effect is improved.
Example eight
Referring to fig. 13 and fig. 15 together, fig. 13 is a schematic diagram illustrating a pixel matrix driving method according to an embodiment of the invention; FIG. 15 is a schematic view of another embodiment of the drive of FIG. 13; in an optional 4 × 4 region, in this embodiment, the first pixel a1, the second pixel a2, the fifth pixel a5, the sixth pixel A6, the ninth pixel a9, the tenth pixel a10, the thirteenth pixel a13, and the fourteenth pixel a14 are connected to the first data line D1, and the third pixel A3, the fourth pixel a4, the seventh pixel a7, the eighth pixel A8, the eleventh pixel a11, the twelfth pixel a12, the fifteenth pixel a15, and the sixteenth pixel a16 are connected to the second data line D2;
at a first time in a frame, a scan signal is loaded on the scan line G1 of the first row, and a voltage corresponding to HP is loaded on the first data line D1 to the first pixel a1, a voltage corresponding to HN is loaded on the second data line D2 to the third pixel A3, and so on;
at the next time (i.e., the second time), the scan signal is loaded on the scan line G2 of the second row, and the voltage corresponding to LN is loaded on the first data line D1 to the second pixel a2, the voltage corresponding to LP is loaded on the second data line D2 to the fourth pixel a4, and so on;
at the next time (i.e., the third time), the scan signal is loaded on the scan line G3 of the third row, and the voltage corresponding to HN is loaded on the first data line D1 to the fifth pixel a5, the voltage corresponding to HP is loaded on the second data line D2 to the seventh pixel a7, and so on;
at the next time (i.e., the fourth time), the scan signal is loaded on the scan line G4 of the fourth row, and the voltage corresponding to LP is loaded on the first data line D1 to the sixth pixel a6, the voltage corresponding to LN is loaded on the second data line D2 to the eighth pixel a8, and so on;
at the next time (i.e., the fifth time), a scan signal is loaded on the scan line G5 of the fifth row, and a voltage corresponding to LP is loaded on the first data line D1 to the ninth pixel a9, a voltage corresponding to LN is loaded on the second data line D2 to the eleventh pixel a11, and so on;
at the next time (i.e., the sixth time), the scan signal is loaded on the scan line G6 of the sixth row, and the voltage corresponding to HN is loaded on the first data line D1 to the tenth pixel a10, the voltage corresponding to HP is loaded on the third data line D2 to the twelfth pixel a12, and so on;
at the next time (i.e., the seventh time), a scan signal is loaded on the scan line G7 of the seventh row, and the voltage corresponding to LN is loaded on the first data line D1 to the thirteenth pixel a13, the voltage corresponding to LP is loaded on the second data line D2 to the fifteenth pixel a15, and so on;
at the next time (i.e., the eighth time), the scan signal is loaded on the scan line G8 of the eighth row, and the voltage corresponding to HP is loaded on the first data line D1 to the fourteenth pixel a14, the voltage corresponding to HN is loaded on the second data line D2 to the sixteenth pixel a16, and so on.
In this embodiment, the voltage loading case of 4 × 4 is exemplified, and the voltages are sequentially loaded to other sub-pixels and other time points according to the above rule.
By adopting the embodiment of the invention, the positive and negative polarity voltages and the high and low gray scale voltages are loaded to the pixel matrix alternately, so that the side visibility can be improved, the pixels in the pixel matrix are not influenced by the polarity, the problems of crosstalk, bright and dark lines and the like are solved, and the display effect is improved.
Example nine
Referring to fig. 13 and fig. 16 together, fig. 13 is a schematic diagram illustrating a pixel matrix driving method according to an embodiment of the invention; FIG. 16 is a schematic view of another embodiment of the driving scheme of FIG. 13; in an optional 4 × 4 region, in this embodiment, the first pixel a1, the second pixel a2, the fifth pixel a5, the sixth pixel A6, the ninth pixel a9, the tenth pixel a10, the thirteenth pixel a13, and the fourteenth pixel a14 are connected to the first data line D1, and the third pixel A3, the fourth pixel a4, the seventh pixel a7, the eighth pixel A8, the eleventh pixel a11, the twelfth pixel a12, the fifteenth pixel a15, and the sixteenth pixel a16 are connected to the second data line D2;
at a first time in a frame, a scan signal is loaded on the scan line G1 in the first row, and a voltage corresponding to HP is loaded on the first data line D1 to the first pixel a1, a voltage corresponding to HN is loaded on the second data line D2 to the third pixel A3, and so on;
at the next time (i.e., the second time), the scan signal is loaded on the scan line G2 of the second row, and the voltage corresponding to LN is loaded on the first data line D1 to the second pixel a2, the voltage corresponding to LP is loaded on the second data line D2 to the fourth pixel a4, and so on;
at the next time (i.e., the third time), the scan signal is loaded on the scan line G3 in the third row, and the voltage corresponding to LN is loaded on the first data line D1 to the fifth pixel a5, the voltage corresponding to LP is loaded on the second data line D2 to the seventh pixel a7, and so on;
at the next time (i.e., the fourth time), the scan signal is loaded on the scan line G4 of the fourth row, and the voltage corresponding to HP is loaded on the first data line D1 to the sixth pixel a6, the voltage corresponding to HN is loaded on the second data line D2 to the eighth pixel a8, and so on;
at the next time (i.e., the fifth time), a scan signal is loaded on the scan line G5 of the fifth row, and a voltage corresponding to LP is loaded on the first data line D1 to the ninth pixel a9, a voltage corresponding to LN is loaded on the second data line D2 to the eleventh pixel a11, and so on;
at the next time (i.e., the sixth time), the scan signal is loaded on the scan line G6 of the sixth row, and the voltage corresponding to HN is loaded on the first data line D1 to the tenth pixel a10, the voltage corresponding to HP is loaded on the third data line D2 to the twelfth pixel a12, and so on;
at the next time (i.e., the seventh time), the scan signal is loaded on the scan line G7 of the seventh row, and the voltage corresponding to HN is loaded on the first data line D1 to the thirteenth pixel a13, the voltage corresponding to HP is loaded on the second data line D2 to the fifteenth pixel a15, and so on;
at the next time (i.e., the eighth time), the scan signal is applied to the scan line G8 in the eighth row, and the voltage corresponding to LP is applied to the fourteenth pixel a14 in the first data line D1, and the voltage corresponding to LN is applied to the sixteenth pixel a16 in the second data line D2, and so on.
In this embodiment, the voltage loading case of 4 × 4 is exemplified, and the voltages are sequentially loaded to other sub-pixels and other time points according to the above rule.
By adopting the embodiment of the invention, the positive and negative polarity voltages and the high and low gray scale voltages are loaded to the pixel matrix alternately, so that the side visibility can be improved, the pixels in the pixel matrix are not influenced by the polarity, the problems of crosstalk, bright and dark lines and the like are solved, and the display effect is improved.
Example ten
Referring to fig. 17 and 18, fig. 17 is a schematic view illustrating another pixel matrix driving method according to an embodiment of the invention; FIG. 18 is a schematic view of one embodiment of the drive of FIG. 17;
in an optional 4 × 4 region, in this embodiment, the first pixel a1, the second pixel a2, the fifth pixel a5, the sixth pixel A6, the ninth pixel a9, the tenth pixel a10, the thirteenth pixel a13, and the fourteenth pixel a14 are connected to the first data line D1, and the third pixel A3, the fourth pixel a4, the seventh pixel a7, the eighth pixel A8, the eleventh pixel a11, the twelfth pixel a12, the fifteenth pixel a15, and the sixteenth pixel a16 are connected to the second data line D2;
at a first time in a frame, a scan signal is loaded on the scan line G1 in the first row, and a voltage corresponding to HP is loaded on the first data line D1 to the first pixel a1, a voltage corresponding to HN is loaded on the second data line D2 to the fourth pixel a4, and so on;
at the next time (i.e., the second time), the scan signal is loaded on the scan line G2 of the second row, and the voltage corresponding to LN is loaded on the first data line D1 to the second pixel a2, the voltage corresponding to LP is loaded on the second data line D2 to the third pixel A3, and so on;
at the next time (i.e., the third time), the scan signal is loaded on the scan line G3 in the third row, and the voltage corresponding to LN is loaded on the first data line D1 to the fifth pixel a5, the voltage corresponding to LP is loaded on the second data line D2 to the seventh pixel a7, and so on;
at the next time (i.e., the fourth time), the scan signal is loaded on the scan line G4 of the fourth row, and the voltage corresponding to HP is loaded on the first data line D1 to the sixth pixel a6, the voltage corresponding to HN is loaded on the second data line D2 to the seventh pixel a7, and so on;
at the next time (i.e., the fifth time), the scan signal is loaded on the scan line G5 of the fifth row, and the voltage corresponding to HP is loaded on the first data line D1 to the ninth pixel a9, the voltage corresponding to HN is loaded on the second data line D2 to the twelfth pixel a12, and so on;
at the next time (i.e., the sixth time), the scan signal is loaded on the scan line G6 of the sixth row, and the voltage corresponding to LN is loaded on the first data line D1 to the tenth pixel a10, the voltage corresponding to LP is loaded on the third data line D2 to the eleventh pixel a11, and so on;
at the next time (i.e., the seventh time), the scan signal is loaded on the scan line G7 of the seventh row, and the voltage corresponding to LN is loaded on the first data line D1 to the thirteenth pixel a13, the voltage corresponding to LP is loaded on the second data line D2 to the sixteenth pixel a16, and so on;
at the next time (i.e., the eighth time), the scan signal is loaded on the scan line G8 of the eighth row, and the voltage corresponding to HP is loaded on the first data line D1 to the fourteenth pixel a14, the voltage corresponding to HN is loaded on the second data line D2 to the fifteenth pixel a15, and so on.
In this embodiment, the voltage loading case of 4 × 4 is exemplified, and the voltages are sequentially loaded to other sub-pixels and other time points according to the above rule.
By adopting the embodiment of the invention, the positive and negative polarity voltages and the high and low gray scale voltages are loaded to the pixel matrix alternately, so that the side visibility can be improved, the pixels in the pixel matrix are not influenced by the polarity, the problems of crosstalk, bright and dark lines and the like are solved, and the display effect is improved.
EXAMPLE eleven
Referring to fig. 19, fig. 19 is a schematic view of a display device according to an embodiment of the invention. The invention also provides a display device for implementing the method, which comprises atiming controller 81, adata driving unit 82, ascanning driving unit 83 and adisplay panel 84, wherein thedisplay panel 84 is provided with apixel matrix 85; thetiming controller 81 is connected to thedata driving unit 82 and thescan driving unit 83, and both thedata driving unit 82 and thescan driving unit 83 are connected to thepixel matrix 85;
thetiming controller 81 is configured to output first gray scale data and second gray scale data to thedata driving unit 82;
thedata driving unit 82 is configured to generate a first driving voltage according to the first gray scale data, and generate a second driving voltage according to the second gray scale data;
thescan driving unit 83 is used for loading scan signals to thepixel matrix 85;
and thedata driving unit 82 is further configured to apply a first driving voltage corresponding to the first gray-scale data or a second driving voltage corresponding to the second gray-scale data to thepixel matrix 85 along the data line direction within one frame.
In a specific embodiment, thedata driving unit 82 is further configured to alternately apply the first driving voltage and the second driving voltage to adjacent sub-pixels along a data line direction;
and alternately loading the first driving voltage and the second driving voltage to every two adjacent sub-pixels along the direction of a scanning line.
In one embodiment, thetiming controller 81 is specifically configured to obtain an original pixel value of each pixel position according to the original pixel data, and convert the original pixel value of each pixel position into the first gray scale data or the second gray scale data according to a predetermined conversion manner.
In one embodiment, thedata driving unit 82 is further configured to alternately apply the first driving voltage and the second driving voltage to adjacent sub-pixels along a data line direction; and alternately loading the first driving voltage and the second driving voltage to adjacent sub-pixels along the direction of a scanning line.
In one embodiment, thedata driving unit 82 is further configured to alternately apply the first driving voltage and the second driving voltage to adjacent sub-pixels along a data line direction; and alternately loading the first driving voltage and the second driving voltage to every two adjacent sub-pixels along the direction of a scanning line.
In one embodiment, thedata driving unit 82 is further configured to alternately apply the first driving voltage and the second driving voltage to every two adjacent sub-pixels along a data line direction; and alternately loading the first driving voltage and the second driving voltage to adjacent sub-pixels along the direction of a scanning line.
Thedisplay panel 84 includes a plurality of data lines, a plurality of scan lines, and a plurality of sub-pixels connected to the data lines and the scan lines, the sub-pixels being arranged in apixel matrix 85 along a data line direction and along a scan line direction on the display panel, thetiming controller 81 inputs RGB data signals of an image from the outside,
thetiming controller 81 can input red image data R, green image data G, blue image data B, or image data of other colors from the outside, and generate corresponding original pixel data according to the image data, and make the original pixel data correspond to two sets of gray scales, high gray scale data, and low gray scale data according to the above-described rule of the present invention. The data driving circuit converts the high gray scale data and the low gray scale data respectively by using a fixed gamma and outputs corresponding high gray scale voltage and low gray scale voltage. Thedata driving unit 82 controls the specific output operation according to the above method of the present invention, and outputs of high gray scale, low gray scale, positive voltage, and negative voltage are selected according to the timing.
In another implementation, the display device includes atiming controller 81, adata driving unit 82, ascan driving unit 83, and adisplay panel 84, where apixel matrix 85 is disposed on thedisplay panel 84; thetiming controller 81 is connected to thedata driving unit 82 and thescan driving unit 83, and both thedata driving unit 82 and thescan driving unit 83 are connected to thepixel matrix 85;
thetiming controller 81 is configured to obtain an original data driving signal according to the original pixel data;
thedata driving unit 82 is configured to obtain a first driving voltage and a second driving voltage according to the original data driving signal;
thescan driving unit 83 is used for loading scan signals to thepixel matrix 85;
and within a frame, thedata driving unit 82 is further configured to apply the first driving voltage or the second driving voltage to thepixel matrix 85 along a data line direction.
Thedata driving unit 82 is further configured to obtain an original gray-scale value and a conversion rule of a corresponding pixel position according to the original data driving signal, and convert the original gray-scale value of the corresponding pixel position into a first driving voltage or a second driving voltage according to the conversion rule.
In one embodiment, thedata driving unit 82 is further configured to alternately apply the first driving voltage and the second driving voltage to adjacent sub-pixels along a data line direction; and alternately loading the first driving voltage and the second driving voltage to adjacent sub-pixels along the direction of a scanning line.
In one embodiment, thedata driving unit 82 is further configured to alternately apply the first driving voltage and the second driving voltage to adjacent sub-pixels along a data line direction; and alternately loading the first driving voltage and the second driving voltage to every two adjacent sub-pixels along the direction of a scanning line.
In one embodiment, thedata driving unit 82 is further configured to alternately apply the first driving voltage and the second driving voltage to every two adjacent sub-pixels along a data line direction; and alternately loading the first driving voltage and the second driving voltage to adjacent sub-pixels along the direction of a scanning line.
Thetiming controller 81 inputs image data from the outside, generates corresponding original pixel data according to the image data, and outputs an original data driving signal to the data driving circuit, and the data driving circuit correspondingly generates a high gray scale voltage of high gamma and a low gray scale voltage of low gamma through two different sets of gamma because the data driving circuit only receives the original gray scale value and a corresponding H or L conversion rule. Thedata driving unit 82 controls the specific output operation according to the above method of the present invention, and outputs of high gray scale, low gray scale, positive voltage, and negative voltage are selected according to the timing.
The foregoing is a more detailed description of the invention in connection with specific preferred embodiments and it is not intended that the invention be limited to these specific details. For those skilled in the art to which the invention pertains, several simple deductions or substitutions can be made without departing from the spirit of the invention, and all shall be considered as belonging to the protection scope of the invention.