The present application is based upon and claims priority to Chinese Patent Application No. 201710757114.4, filed on Aug. 29, 2017, and the entire contents thereof are incorporated herein by reference.
The present disclosure relates to the field of display technologies, and in particular, to a pixel compensation method, a pixel compensation apparatus and a display device.
Electroluminescent diodes such as Organic Light Emitting Diodes (OLEDs), Quantum Dot Light Emitting Diodes (QLEDs) and the like have the advantages of self-luminescence, low power consumption, and the like, which have become the application and research hotspots in the electroluminescent display panel filed. Currently, the electroluminescent diodes are generally current-driven and require a stable current to drive their light emission. And a pixel circuit is used in the electroluminescent display panel to drive the electroluminescent diode to emit light.
The embodiments of the present disclosure provide a pixel compensation method, a pixel compensation apparatus, and a display device.
Embodiments of the present disclosure provides a pixel compensation method for compensation of pixels in an electroluminescent display panel, wherein the electroluminescent display panel comprises a plurality of pixels and a plurality of detection lines, each column of the pixels corresponds to one of the detection lines, each of the pixels comprises a plurality of sub-pixels of different colors, respective sub-pixels in a same pixel are coupled to a same detection line, the sub-pixels of a same color in each row are divided into a first sub-pixel column and a second sub-pixel column that are alternately arranged, the first sub-pixel column is one of an odd column of the sub-pixels of the same color in the row and an even column of the sub-pixels of the same color in the row, and the method includes:
in a compensation stage of a compensation period, in a blanking section of a (2n−1)th display frame, charging the detection line corresponding to the first sub-pixel column of the sub-pixels of the same color to be compensated in a nth row, detecting a voltage on the detection line corresponding to each of the sub-pixels of the same color to be compensated in the nth row, and determining a detection voltage corresponding to the first sub-pixel column in the nth row according to a detected voltage, where n is an integer greater than or equal to 1 and less than or equal to N, and N is a number of rows of the sub-pixels of the same color to be compensated in the electroluminescent display panel;
in the blanking section of a (2n)th display frame, charging the detection line corresponding to the second sub-pixel column of the sub-pixels of the same color to be compensated in the nth row, detecting the voltage on the detection line corresponding to each of the sub-pixels of the same color to be compensated in the nth row, and determining a detection voltage corresponding to the second sub-pixel column in the nth row according to a detected voltage; and
determining a data voltage of each of the sub-pixels of the same color to be compensated in the nth row for display frames after the (2n)th display frame according to the detection voltage corresponding to each of the sub-pixels of the same color to be compensated in the nth row.
Optionally, in the pixel compensation method provided by an embodiment of the present disclosure, the sub-pixel includes a pixel circuit and a light emitting device coupled to the pixel circuit, and the pixel circuit is coupled to a corresponding detection line;
the charging the detection line corresponding to the first sub-pixel column of the sub-pixels of the same color to be compensated in a nth row includes: applying a data voltage corresponding to a non-zero gray level to the first sub-pixel column of the sub-pixels of the same color to be compensated in the nth row, and controlling the pixel circuit in the first sub-pixel column to charge the detection line; and
the charging the detection line corresponding to the second sub-pixel column of the sub-pixels of the same color to be compensated in the nth row includes: applying the data voltage corresponding to the non-zero gray level to the second sub-pixel column of the sub-pixels of the same color to be compensated in the nth row, and controlling the pixel circuit in the second sub-pixel column to charge the detection line.
Optionally, in the pixel compensation method provided by an embodiment of the present disclosure, the method further includes:
when applying a data voltage corresponding to a non-zero gray level to the first sub-pixel column of the sub-pixels of the same color to be compensated in the nth row, applying a data voltage corresponding to a zero gray level to the second sub-pixel column of the sub-pixels of the same color to be compensated in the nth row, and controlling the pixel circuit in the second sub-pixel column to charge the detection line; and
when applying the data voltage corresponding to the non-zero gray level to the second sub-pixel column of the sub-pixels of the same color to be compensated in the nth row, applying the data voltage corresponding to the zero gray level to the first sub-pixel column of the sub-pixels of the same color to be compensated in the nth row, and controlling the pixel circuit in the first sub-pixel column to charge the detection line.
Optionally, in the pixel compensation method provided by an embodiment of the present disclosure, the determining a detection voltage corresponding to the first sub-pixel column in the nth row according to a detected voltage includes: according to the detected voltages on the detection lines corresponding to the sub-pixels of the same color to be compensated, calculating a voltage difference between voltages on the detection lines corresponding to two adjacent sub-pixels of the same color to be compensated in the nth row, to determine the detection voltage corresponding to the first sub-pixel column in the nth row; and
the determining a detection voltage corresponding to the second sub-pixel column in the nth row according to a detected voltage includes: according to the detected voltages on the detection lines corresponding to the sub-pixels of the same color to be compensated, calculating the voltage difference between the voltages on the detection lines corresponding to the two adjacent sub-pixels of the same color to be compensated in the nth row, to determine the detection voltage corresponding to the second sub-pixel column in the nth row.
Optionally, in the pixel compensation method provided by an embodiment of the present disclosure, the method further includes after the determining a detection voltage corresponding to the first sub-pixel column in the nth row, and before the determining a data voltage of each of the sub-pixels of the same color to be compensated in the nth row for the display frames after the (2n)th display frame: storing the detection voltage corresponding to the first sub-pixel column in the nth row; and
the method further includes after the determining a detection voltage corresponding to the second sub-pixel column in the nth row, and before the determining a data voltage of each of the sub-pixels of the same color to be compensated in the nth row for the display frames after the (2n)th display frame: storing the detection voltage corresponding to the second sub-pixel column in the nth row.
Optionally, in the pixel compensation method provided by an embodiment of the present disclosure, the electroluminescent display panel includes a red sub-pixel, a green sub-pixel and a blue sub-pixel, the compensation period includes three compensation stages arranged in sequence, and each of the compensation stages corresponds to one of the red sub-pixel, the green sub-pixel and the blue sub-pixel; or
the electroluminescent display panel includes a red sub-pixel, a green sub-pixel, a blue sub-pixel and a white sub-pixel, the compensation period includes four compensation stages arranged in sequence, and each of the compensation stages corresponds to one of the red sub-pixel, the green sub-pixel, the blue sub-pixel and the white sub-pixel.
Optionally, in the pixel compensation method provided by an embodiment of the present disclosure, when the compensation period includes three compensation stages arranged in sequence, the sub-pixels to be compensated in the three compensation stages are in the order of the red sub-pixel, the green sub-pixel and the blue sub-pixel; and
when the compensation period includes four compensation stages arranged in sequence, the sub-pixels to be compensated in the four compensation stages are in the order of the red sub-pixel, the green sub-pixel, the blue sub-pixel and the white sub-pixel.
Correspondingly, the embodiments of the present disclosure also provides a pixel compensation apparatus for compensation of pixels in an electroluminescent display panel, wherein the electroluminescent display panel comprises a plurality of pixels and a plurality of detection lines, each column of the pixels corresponds to one of the detection lines, each of the pixels comprises a plurality of sub-pixels of different colors, respective sub-pixels in a same pixel are coupled to a same detection line, the sub-pixels of a same color in each row are divided into a first sub-pixel column and a second sub-pixel column that are alternately arranged, the first sub-pixel column is one of an odd column of the sub-pixels of the same color in the row and an even column of the sub-pixels of the same color in the row, and the pixel compensation apparatus includes:
a first detection determining circuit, configured to, in a compensation stage of a compensation period, in a blanking section of a (2n−1)th display frame, charge the detection line corresponding to the first sub-pixel column of the sub-pixels of the same color to be compensated in a nth row, detect a voltage on the detection line corresponding to each of the sub-pixels of the same color to be compensated in the nth row, and determine a detection voltage corresponding to the first sub-pixel column in the nth row according to a detected voltage, where n is an integer greater than or equal to 1 and less than or equal to N, and N is a number of rows of the sub-pixels of the same color to be compensated in the electroluminescent display panel;
a second detection determining circuit, configured to, in the blanking section of a (2n)th display frame, charge the detection line corresponding to the second sub-pixel column of the sub-pixels of the same color to be compensated in the nth row, detect the voltage on the detection line corresponding to each of the sub-pixels of the same color to be compensated in the nth row, and determine a detection voltage corresponding to the second sub-pixel column in the nth row according to a detected voltage; and
a data determining circuit, configured to determine a data voltage of each of the sub-pixels of the same color to be compensated in the nth row for display frames after the (2n)th display frame according to the detection voltage corresponding to each of the sub-pixels of the same color to be compensated in the nth row.
Optionally, in the pixel compensation apparatus provided by an embodiment of the present disclosure, the sub-pixel comprises a pixel circuit and a light emitting device coupled to the pixel circuit, and the pixel circuit is coupled to a corresponding detection line;
the first detection determining circuit is configured to apply a data voltage corresponding to a non-zero gray level to the first sub-pixel column of the sub-pixels of the same color to be compensated in the nth row, and control the pixel circuit in the first sub-pixel column to charge the detection line; and
the second detection determining circuit is configured to apply the data voltage corresponding to the non-zero gray level to the second sub-pixel column of the sub-pixels of the same color to be compensated in the nth row, and control the pixel circuit in the second sub-pixel column to charge the detection line.
Optionally, in the pixel compensation apparatus provided by an embodiment of the present disclosure, the first detection determining circuit is further configured to apply a data voltage corresponding to a zero gray level to the second sub-pixel column of the sub-pixels of the same color to be compensated in the nth row, and control the pixel circuit in the second sub-pixel column to charge the detection line; and
the second detection determining circuit is further configured to apply the data voltage corresponding to the zero gray level to the first sub-pixel column of the sub-pixels of the same color to be compensated in the nth row, and control the pixel circuit in the first sub-pixel column to charge the detection line.
Optionally, in the pixel compensation apparatus provided by an embodiment of the present disclosure, the first detection determining circuit is configured to: according to the detected voltages on the detection lines corresponding to the sub-pixels of the same color to be compensated, calculate a voltage difference between voltages on the detection lines corresponding to two adjacent sub-pixels of the same color to be compensated in the nth row, to determine the detection voltage corresponding to the first sub-pixel column in the nth row; and
the second detection determining circuit is configured to: according to the detected voltages on the detection lines corresponding to the sub-pixels of the same color to be compensated, calculate the voltage difference between the voltages on the detection lines corresponding to the two adjacent sub-pixels of the same color to be compensated in the nth row, to determine the detection voltage corresponding to the second sub-pixel column in the nth row.
Optionally, in the pixel compensation apparatus provided by an embodiment of the present disclosure, the pixel compensation apparatus further includes:
a first storage circuit configured to store the detection voltage corresponding to the first sub-pixel column in the nth row; and
a second storage circuit configured to store the detection voltage corresponding to the second sub-pixel column in the nth row
Optionally, in the pixel compensation apparatus provided by an embodiment of the present disclosure, the electroluminescent display panel includes a red sub-pixel, a green sub-pixel and a blue sub-pixel, the compensation period includes three compensation stages arranged in sequence, and each of the compensation stages corresponds to one of the red sub-pixel, the green sub-pixel and the blue sub-pixel; or
the electroluminescent display panel includes a red sub-pixel, a green sub-pixel, a blue sub-pixel and a white sub-pixel, the compensation period includes four compensation stages arranged in sequence, and each of the compensation stages corresponds to one of the red sub-pixel, the green sub-pixel, the blue sub-pixel and the white sub-pixel.
Optionally, in the pixel compensation apparatus provided by an embodiment of the present disclosure, when the compensation period includes the three compensation stages arranged in sequence, the sub-pixels to be compensated in the three compensation stages are in the order of the red sub-pixel, the green sub-pixel and the blue sub-pixel; and
when the compensation period includes the four compensation stages arranged in sequence, the sub-pixels to be color compensated in the four compensation stages are in the order of the red sub-pixel, the green sub-pixel, the blue sub-pixel and the white sub-pixel.
Correspondingly, the embodiments of the present disclosure also provide a display device including the pixel compensation apparatus according to the above embodiment.
In order to make the objectives, technical solutions and advantages of the present disclosure clearer, a specific implementation of a pixel compensation method, a pixel compensation apparatus, and a display device provided by the embodiments of the present disclosure will be described in detail below with reference to the accompanying drawings. It should be understood that the embodiments described below are only used to illustrate and explain the present disclosure and are not intended to limit the present disclosure. The embodiments in the present application and the features in the embodiments can be combined with each other without conflict.
A pixel circuit is as shown in
In order to ensure the display quality, the threshold voltage and the mobility of the driving transistor can be compensated by external compensation. As shown in
An embodiment of the present disclosure provides a pixel compensation method for compensation for pixels in an electroluminescent display panel. As shown in
As shown in
step S301, in a compensation stage of a compensation period, in a blanking section of a (2n−1)th display frame, charging the detection line corresponding to the first sub-pixel column of the sub-pixels of the same color to be compensated in a nth row, detecting a voltage on the detection line corresponding to each of the sub-pixels of the same color to be compensated in the nth row, and determining a detection voltage corresponding to the first sub-pixel column in the nth row according to a detected voltage, where n is an integer greater than or equal to 1 and less than or equal to N, and N is a number of rows of the sub-pixels of the same color to be compensated in the electroluminescent display panel;
step S302, in the blanking section of a (2n)th display frame, charging the detection line corresponding to the second sub-pixel column of the sub-pixels of the same color to be compensated in the nth row, detecting the voltage on the detection line corresponding to each of the sub-pixels of the same color to be compensated in the nth row, and determining a detection voltage corresponding to the second sub-pixel column in the nth row according to a detected voltage; and
step S303, determining a data voltage of each of the sub-pixels of the same color to be compensated in the nth row for display frames after the (2n)th display frame according to the detection voltage corresponding to each of the sub-pixels of the same color to be compensated in the nth row.
The pixel compensation method provided by the embodiment of the present disclosure is applied to compensate the pixels in the electroluminescent display panel. In the blanking section of the (2n−1)th display frame of the compensation stage of the compensation period, the detection line corresponding to the first sub-pixel column of sub-pixels of the same color to be compensated in the nth row is charged with an additional detection voltage V0, such that the detected voltage on the detection line corresponding to the first sub-pixel column is the sum of the detection voltage V0 and a coupling voltage ΔV caused by coupling that is, V0+ΔV. In the blanking section of the (2n−1)th display frame, the detection line corresponding to the second sub-pixel column of the sub-pixels of the same color to be compensated is not charged with the additional detection voltage V0, such that the detected voltage on the detection line corresponding to the second sub-pixel column is only the coupling voltage ΔV. Then, it is possible to obtain the detection voltage V0 corresponding to each sub-pixel in the first sub-pixel column according to the voltages on the detection lines corresponding to the sub-pixels of the same color to be compensated. Similarly, in the blanking section of the (2n)th display frame, the detection line corresponding to the second sub-pixel column of the sub-pixels of the same color to be compensated in the nth row is charged with the additional detection voltage V0, such that the detected voltage on the detection line corresponding to the second sub-pixel column is V0+ΔV. In the blanking section of the (2n)th display frame, the detection line corresponding to the first sub-pixel column of the sub-pixels of the same color to be compensated is not charged with the additional detection voltage V0, such that the detected voltage on the detection line corresponding to the first sub-pixel column is only the coupling voltage ΔV. Then, it is possible to obtain the detection voltage V0 corresponding to each sub-pixel in the second sub-pixel column according to the voltages on the detection lines corresponding to the sub-pixels of the same color to be compensated. In this way, the detection voltage V0 corresponding to each sub-pixel of the same color to be compensated in the nth row can be obtained, therefore the influence of the coupling action on the detection voltage V0 may be eliminated, and the accuracy of the detected voltage corresponding to each sub-pixel of the same color to be compensated is improved. Therefore, the problem that the data voltage obtained by the compensation calculation is inaccurate due to the voltage change on the detection line caused by the coupling action can be avoided, and the display effect of the screen can be improved.
It should be noted that during the scanning process of the display panel, the scanning always starts from the upper left corner of the image and travels horizontally forward while the scanning point also moves downward at a slower rate. When scanning a complete frame of the image, after the scanning of the frame is completed at the scanning points, it is necessary to return from the lower right corner of the image to the upper left corner of the image to start a new frame scan. This time interval is called field blanking. During the field blanking, the transmission of the data voltage for displaying the image is not performed. In order to achieve signal detection, since image display is not performed during the field blanking, the time of field blanking can be used for signal detection and determination. In a specific implementation, in the pixel compensation method provided in the embodiment of the present disclosure, the blanking section of the (2n−1)th display frame is the time duration of the field blanking in the (2n−1)th display frame, and the blanking section of the (2n)th display frame is the time duration of the field blanking in the (2n)th display frame.
In a specific implementation, in the pixel compensation method provided in the embodiment of the present disclosure, the sub-pixel of the electroluminescent display panel may specifically include a pixel circuit and a light emitting device coupled to the pixel circuit, and the pixel circuit is coupled to the detection line corresponding to the sub-pixel in which the pixel circuit is disposed. The light emitting device may be an organic light emitting diode; alternatively, the light emitting device may also be a quantum dot light emitting diode. However, the light emitting device may also be another type of electroluminescent diode capable of emitting light by itself, which is not limited herein.
To charge the detection line corresponding to the first sub-pixel column of the sub-pixels of the same color to be compensated in the nth row, the compensation method may specifically include: applying a data voltage corresponding to a non-zero gray level to the first sub-pixel column of the sub-pixels of the same color to be compensated in the nth row, and controlling the pixel circuit in the first sub-pixel column to charge the coupled detection line. In this way, the detection line corresponding to the first sub-pixel column of the sub-pixels of the same color to be compensated in the nth row is charged with the detection voltage.
In addition, to charge the detection line corresponding to the second sub-pixel column of the sub-pixels of the same color to be compensated in the nth row, the compensation method may specifically include: applying the data voltage corresponding to the non-zero gray level to the second sub-pixel column of the sub-pixels of the same color to be compensated in the nth row, and controlling the pixel circuit in the second sub-pixel column to charge the coupled detection line. In this way, the detection line corresponding to the second sub-pixel column of the sub-pixels of the same color to be compensated in the nth row is charged with the detection voltage.
In specific implementation, in the pixel compensation method provided in the embodiment of the present disclosure, as shown in
The display panel generally uses 64 gray levels, 256 gray levels, or 1024 gray levels to achieve image display. 64 gray levels represent 64 gray level values, where 0 represents the lowest gray level, that is, the gray level at which the display panel displays the darkest image, and 63 represents the highest gray level, that is, the gray level at which the display panel displays the whitest image. 256 gray levels represent 256 gray level values, where 0 represents the lowest gray level, that is, the gray level at which the display panel displays the darkest image, and 255 represents the highest gray level, that is, the gray level at which the display panel displays the whitest image. 1024 gray levels represent 1024 gray level values, where 0 represents the lowest gray level, that is, the gray level at which the display panel displays the darkest image, and 1023 represents the highest gray level, that is, the gray level at which the display panel displays the whitest image. Therefore, when the display panel has 64 gray levels or 256 gray levels or 1024 gray levels, the non-zero gray levels are the gray levels other than 0. In specific implementation, in the pixel compensation method provided by the embodiment of the present disclosure, the data voltage corresponding to the non-zero gray level may be a data voltage corresponding to the gray level value
where Vth is the threshold voltage of the driving transistor. However, in practical applications, the data voltages corresponding to the non-zero gray levels may also be other voltage values. This requires design based on the actual application environment and is not limited herein.
The display panel generally applies the data voltage to the pixel circuit in the sub-pixel through the data line. When the data voltage corresponding to the non-zero gray level is applied to the first sub-pixel column of the sub-pixels of the same color to be compensated in the nth row, in order to prevent the data line corresponding to the sub-pixel in the second sub-pixel column from being in a floating state, in a specific implementation, in the pixel compensation method provided in the embodiment of the present disclosure, when the data voltage corresponding to the non-zero gray level is applied to the first sub-pixel column of the sub-pixels of the same color to be compensated in the nth row, the compensation method may further include: applying a data voltage corresponding to a zero gray level to the second sub-pixel column of the sub-pixels of the same color to be compensated in the nth row, and controlling the pixel circuit in the second sub-pixel column to charge the coupled detection line. Thus, the data voltage corresponding to the zero gray level can be applied to the data line corresponding to the sub-pixel in the second sub-pixel column of the sub-pixels of the same color to be compensated in the nth row. Since the zero gray level corresponds to the darkest picture, the data voltage corresponding to the zero gray level generally does not cause an operating current to be generated by the driving transistor in the pixel circuit, so the data voltage corresponding to the zero gray level charges a voltage 0V to the detection line corresponding to the second sub-pixel column through the pixel circuit, which can ensure that no additional detection voltage is applied to the detection line corresponding to each sub-pixel in the second sub-pixel column.
In addition, when the data voltage corresponding to the non-zero gray level is applied to the second sub-pixel column of the sub-pixels of the same color to be compensated in the nth row, in order to prevent the data line corresponding to the sub-pixel in the first sub-pixel column from being in a floating state, when the data voltage corresponding to the non-zero gray level is applied to the second sub-pixel column of the sub-pixels of the same color to be compensated in the nth row, the compensation method may further include: applying the data voltage corresponding to the zero gray level to the first sub-pixel column of the sub-pixels of the same color to be compensated in the nth row, and controlling the pixel circuit in the first sub-pixel column to charge the coupled detection line. Thus, the data voltage corresponding to the zero gray level can be applied to the data line corresponding to the sub-pixel in the first sub-pixel column of the sub-pixels of the same color to be compensated in the nth row. Since the zero gray level corresponds to the darkest picture, the data voltage corresponding to the zero gray level generally does not cause an operating current to be generated by the driving transistor in the pixel circuit, so the data voltage corresponding to the zero gray level charges a voltage 0V to the detection line corresponding to the sub-pixel in the first sub-pixel column through the pixel circuit, which can ensure that no additional detection voltage is applied to the detection line corresponding to each sub-pixel in the first sub-pixel column.
In specific implementation, in the pixel compensation method provided by the embodiment of the present disclosure, the determining a detection voltage corresponding to the first sub-pixel column in the nth row according to a detected voltage may specifically include: according to the detected voltages on the detection lines corresponding to the sub-pixels of the same color to be compensated, calculating a voltage difference between voltages on the detection lines corresponding to two adjacent sub-pixels of the same color to be compensated in the nth row, to determine the detection voltage corresponding to the first sub-pixel column in the nth row.
In addition, the determining a detection voltage corresponding to the second sub-pixel column in the nth row according to a detected voltage may specifically include: according to the detected voltages on the detection lines corresponding to the sub-pixels of the same color to be compensated, calculating the voltage difference between the voltages on the detection lines corresponding to the two adjacent sub-pixels of the same color to be compensated in the nth row, to determine the detection voltage corresponding to the second sub-pixel column in the nth row.
In specific implementation, the pixel compensation method provided in the embodiment of the present disclosure further includes after the determining a detection voltage corresponding to the first sub-pixel column in the nth row, and before the determining a data voltage of each of the sub-pixels of the same color to be compensated in the nth row for the display frames after the (2n)th display frame: storing the detection voltage corresponding to the first sub-pixel column in the nth row.
The pixel compensation method provided in the embodiment of the present disclosure further includes after the determining a detection voltage corresponding to the second sub-pixel column in the nth row, and before the determining a data voltage of each of the sub-pixels of the same color to be compensated in the nth row for the display frames after the (2n)th display frame: storing the detection voltage corresponding to the second sub-pixel column in the nth row.
In a specific implementation, in the pixel compensation method provided by the embodiment of the present disclosure, the data voltage of each of the sub-pixels of the same color to be compensated in the nth row for the display frames after the (2n)th display frame may be determined according to the detection voltage corresponding to each of the sub-pixels of the same color to be compensated in the nth row with a preset compensation algorithm. In specific implementation, the preset compensation algorithm is the same as the compensation algorithm in the related art, which can be understood by those skilled in the art, and will not be described here.
In specific implementation, in the pixel compensation method provided in the embodiment of the present disclosure, when the electroluminescent display panel includes N rows of sub-pixels, the compensation stage may include 2N consecutive display frames. The (2n−1)th display frame is the (2n−1)th display frame among the 2N consecutive display frames. The (2n)th display frame is the (2n)th display frame among the 2N consecutive display frames. In addition, when there are sub-pixels of M types of colors in the electroluminescent display panel, the compensation period may include the same number of compensation stages as the total number of color types. For example, when M=1, the compensation period may include only one compensation stage. When M=2, the compensation period may include two compensation stages, and the display frames in the two compensation stages are consecutive. That is, in the two compensation stages, the last display frame of the first compensation stage is next to the first display frame of the second compensation stage. When M=3, the compensation period may include three compensation stages, and the display frames in the three compensation stages are consecutive. That is, in the three compensation stages, the last display frame of the first compensation stage is next to the first display frame of the second compensation stage, and the last display frame of the second compensation stage is next to the first display frame of the third compensation stage. When M=4, the compensation period may include four compensation stages, and the display frames in the four compensation stages are consecutive. That is, in the four compensation stages, the last display frame of the first compensation stage is next to the first display frame of the second compensation stage, the last display frame of the second compensation stage is next to the first display frame of the third compensation stage, and the last display frame of the third compensation stage is next to the first display frame of the fourth compensation stage. When M is other value, the situation is similar, which will not be repeated herein.
In specific implementation, in the pixel compensation method provided by the embodiment of the present disclosure, the electroluminescent display panel may be a high resolution display panel. In practical applications, the high resolution may include: 3840×2160, 1920×1080, etc., which is not limited herein.
In specific implementation, as shown in
In specific implementation, as shown in
In the following, detailed description will be given to the pixel compensation method provided in the present disclosure, with reference to an example in which the first sub-pixel column is the odd column of the same color sub-pixels in the corresponding row, n=1, K=3840 and the to-be-compensated sub-pixel is a red sub-pixel.
The first sub-pixel column is an odd column of the same color sub-pixels in the corresponding row, and the second sub-pixel column is an even column of the same color sub-pixels in the corresponding row. The pixel compensation method provided in the present disclosure may include the following steps.
(1) In the compensation stage of the compensation period, in the blanking section of the first display frame, the detection line corresponding to the odd column of sub-pixels of the red sub-pixels in the first row is charged, a voltage on the detection line corresponding to each red sub-pixel in the first row is detected, and a detection voltage corresponding to the odd column of sub-pixels of the red sub-pixels in the first row is determined according to the detected voltage.
Specifically, in the compensation stage of the compensation period, in the blanking section of the first display frame, a data voltage Vdata1 corresponding to a non-zero gray level is applied to the odd column of sub-pixels of the red sub-pixels in the first row, and the pixel circuit in the odd column of sub-pixels of the red sub-pixels is controlled to charge the coupled detection line. The operation process of charging the coupled detection line by the pixel circuit will be described with reference to the pixel circuit shown in
The voltage VSLk_1 on the detection line corresponding to each red sub-pixel in the first row is detected, to obtain VSL1_1=V0+ΔV, VSL2_1=ΔV, VSL3_1=V0+ΔV, VSL4_1=ΔV, . . . , VSL3839_1=V0+ΔV, and VSL3840_1=ΔV. According to the detected voltage VSLk_1 on the detection line corresponding to each red sub-pixel, a voltage difference ΔVSL2i−1_1 between voltages VSLk_1 on the detection lines corresponding to two adjacent red sub-pixels in the first row is calculated, that is, a voltage difference ΔVSL2i−1_1 between the voltage VSL2i−1_1 on the detection line corresponding to the (2i−1)th column of red sub-pixels and the voltage VSL2i_1 on the detection line corresponding to the (2i)th column of red sub-pixels is calculated, to obtain ΔVSL1_1=VSL1_1−VSL2_1=V0, ΔVSL3_1=VSL3_1−VSL4_1=V0, . . . , ΔVSL3839_1=VSL3839_1−VSL3840_1=V0. In this way, the detection voltage V0 corresponding to the odd column of sub-pixels of the red sub-pixels in the first row, with the coupling voltage ΔV eliminated, can be obtained, and 1920 detection voltages V0 can be obtained. The 1920 detection voltages V0 are stored.
(2) In the blanking section of the second display frame, the detection line corresponding to the even column of sub-pixels of the red sub-pixels in the first row is charged, a voltage on the detection line corresponding to each red sub-pixel in the first row is detected, and a detection voltage corresponding to the even column of sub-pixels of the red sub-pixels in the first row is determined according to the detected voltage.
Specifically, in the blanking section of the second display frame, the data voltage Vdata1 corresponding to the non-zero gray level is applied to the even column of sub-pixels of the red sub-pixels in the first row, and the pixel circuit in the even column of sub-pixels of the red sub-pixels is controlled to charge the coupled detection line. The operation process of charging the coupled detection line by the pixel circuit will be described with reference to the pixel circuit shown in
The voltage VSLk_1 on the detection line corresponding to each red sub-pixel in the first row is detected, to obtain VSL1_1=ΔV, VSL2_1=V0+ΔV, VSL3_1=ΔV, VSL4_1=V0+ΔV, . . . VSL3839_1=ΔV, and VSL3840_1=V0+ΔV. According to the detected voltage VSLk_1 on the detection line corresponding to each red sub-pixel, a voltage difference ΔVSL2i_1 between voltages VSLk_1 on the detection lines corresponding to two adjacent red sub-pixels in the first row is calculated, that is, a voltage difference ΔVSL2i_1 between the voltage VSL2i_1 the detection line corresponding to the (2i)th column of red sub-pixels and the voltage ΔVSL2i−1_1 ion the detection line corresponding to the (2i−1)th column of red sub-pixels is calculated, to obtain VSL2_1=VSL2_1−VSL1_1=V0, ΔVSL4_1=VSL4_1−VSL3_1=V0, . . . , ΔVSL3840_1=VSL3840_1−VSL3839_1=V0. In this way, the detection voltage V0 corresponding to the even column of sub-pixels of the red sub-pixels in the first row, with the coupling voltage ΔV eliminated, can be obtained, and 1920 detection voltages V0 can be obtained. The 1920 detection voltages V0 are stored.
(3) A data voltage of each red sub-pixel in the first row for the display frames after the (2n)th display frame is determined according to the detection voltage corresponding to each red sub-pixel in the first row through a preset compensation algorithm.
Specifically, according to the formula IT=CV, T represents the time taken for charging the detection line with the voltage V, C represents the capacitance value of the storage capacitor coupled to the detection line, and V represents the voltage value which is changed after the detection line is charged. According to the above formula, the operating current I generated by the driving transistor can be calculated according to the detection voltage V0, and then the relationship between the input data voltage and the threshold voltage Vth and the mobility of the driving transistor can be obtained according to the calculated operating current I. The data voltage of each red sub-pixel in the first row for the display frames after the second display frame is determined for the compensation according to the determined relationship between the data voltage and the threshold voltage Vth and the mobility of the driving transistor, and the display frames after the second display frame are displayed with the determined data voltage for compensation, to improve the display effect.
In practical applications, the above compensation method generally uses a device combining software and hardware to achieve its function. In the electroluminescent display panel, one storage capacitor corresponding to each detection line is also provided in advance. One terminal of the storage capacitor is coupled to the corresponding detection line and the above-mentioned device combining software and hardware, and the other terminal of the storage capacitor is grounded. The capacitance value C of the storage capacitor is a value that has been preset in advance in the process of manufacturing the organic display panel, and T is a preset charging time, and the charging time T is the same for each sub-pixel.
Similarly, when the first sub-pixel column is an even column of the same color sub-pixels in the corresponding row, and the second sub-pixel column is an odd column of the same color sub-pixels in the corresponding row, the operation process of the pixel compensation method provided by the present disclosure can refer to the above embodiment, only with that the odd column of sub-pixels in the above embodiment is changed into even column of sub-pixels, and the even column of sub-pixels is changed into odd column of sub-pixels. The detailed process is not described here.
Based on the same inventive concept, an embodiment of the present disclosure further provides a pixel compensation apparatus for compensation of pixels in an electroluminescent display panel. As shown in
The pixel compensation apparatus includes:
a first detection determining circuit 20, configured to, in a compensation stage of a compensation period, in a blanking section of a (2n−1)th display frame, charge the detection line corresponding to the first sub-pixel column of the sub-pixels of the same color to be compensated in a nth row, detect a voltage on the detection line corresponding to each of the sub-pixels of the same color to be compensated in the nth row, and determine a detection voltage corresponding to the first sub-pixel column in the nth row according to a detected voltage, where n is an integer greater than or equal to 1 and less than or equal to N, and N is a number of rows of the sub-pixels of the same color to be compensated in the electroluminescent display panel 10;
a second detection determining circuit 30, configured to, in the blanking section of a (2n)th display frame, charge the detection line corresponding to the second sub-pixel column of the sub-pixels of the same color to be compensated in the nth row, detect the voltage on the detection line corresponding to each of the sub-pixels of the same color to be compensated in the nth row, and determine a detection voltage corresponding to the second sub-pixel column in the nth row according to a detected voltage; and
a data determining circuit 40, configured to determine a data voltage of each of the sub-pixels of the same color to be compensated in the nth row for display frames after the (2n)th display frame according to the detection voltage corresponding to each of the sub-pixels of the same color to be compensated in the nth row.
The pixel compensation apparatus provided by the embodiment of the present disclosure is applied to compensate the pixels in the electroluminescent display panel. In the blanking section of the (2n−1)th display frame of the compensation stage of the compensation period, the detection line corresponding to the first sub-pixel column of sub-pixels of the same color to be compensated in the nth row is charged with an additional detection voltage V0, such that the detected voltage on the detection line corresponding to the first sub-pixel column is the sum of the detection voltage V0 and a coupling voltage ΔV caused by coupling that is, V0+ΔV. In the blanking section of the (2n−1)th display frame, the detection line corresponding to the second sub-pixel column of the sub-pixels of the same color to be compensated is not charged with the additional detection voltage V0, such that the detected voltage on the detection line corresponding to the second sub-pixel column is only the coupling voltage ΔV. Then, it is possible to obtain the detection voltage V0 corresponding to each sub-pixel in the first sub-pixel column according to the voltages on the detection lines corresponding to the sub-pixels of the same color to be compensated. Similarly, in the blanking section of the (2n)th display frame, the detection line corresponding to the second sub-pixel column of the sub-pixels of the same color to be compensated in the nth row is charged with the additional detection voltage V0, such that the detected voltage on the detection line corresponding to the second sub-pixel column is V0+ΔV. In the blanking section of the (2n)th display frame, the detection line corresponding to the first sub-pixel column of the sub-pixels of the same color to be compensated is not charged with the additional detection voltage V0, such that the detected voltage on the detection line corresponding to the first sub-pixel column is only the coupling voltage ΔV. Then, it is possible to obtain the detection voltage V0 corresponding to each sub-pixel in the second sub-pixel column according to the voltages on the detection lines corresponding to the sub-pixels of the same color to be compensated. In this way, the detection voltage V0 corresponding to each sub-pixel of the same color to be compensated in the nth row can be obtained, therefore the influence of the coupling action on the detection voltage V0 may be eliminated, and the accuracy of the detected voltage corresponding to each sub-pixel of the same color to be compensated is improved. Therefore, the problem that the data voltage obtained by the compensation calculation is inaccurate due to the voltage change on the detection line caused by the coupling action can be avoided, and the display effect of the screen can be improved.
In specific implementation, in the pixel compensation apparatus provided in the embodiment of the present disclosure, the sub-pixel in the electroluminescent display panel may specifically include a pixel circuit and a light emitting device coupled to the pixel circuit, and the pixel circuit is coupled to a corresponding detection line. The light emitting device may be an organic light emitting diode; alternatively, the light emitting device may also be a quantum dot light emitting diode. However, the light emitting device may also be another type of electroluminescent diode capable of emitting light by itself, which is not limited herein.
The first detection determining circuit is specifically configured to apply a data voltage corresponding to a non-zero gray level to the first sub-pixel column of the sub-pixels of the same color to be compensated in the nth row, and control the pixel circuit in the first sub-pixel column to charge the detection line.
In addition, the second detection determining circuit is specifically configured to apply the data voltage corresponding to the non-zero gray level to the second sub-pixel column of the sub-pixels of the same color to be compensated in the nth row, and control the pixel circuit in the second sub-pixel column to charge the detection line.
In specific implementation, in the pixel compensation apparatus provided in the embodiment of the present disclosure, the first detection determining circuit is further configured to apply a data voltage corresponding to a zero gray level to the second sub-pixel column of the sub-pixels of the same color to be compensated in the nth row, and control the pixel circuit in the second sub-pixel column to charge the detection line.
In addition, the second detection determining circuit is further configured to apply the data voltage corresponding to the zero gray level to the first sub-pixel column of the sub-pixels of the same color to be compensated in the nth row, and control the pixel circuit in the first sub-pixel column to charge the detection line.
In specific implementation, in the pixel compensation apparatus provided in the embodiment of the present disclosure, the first detection determining circuit is specifically configured to, according to the detected voltages on the detection lines corresponding to the sub-pixels of the same color to be compensated, calculate a voltage difference between voltages on the detection lines corresponding to two adjacent sub-pixels of the same color to be compensated in the nth row, to determine the detection voltage corresponding to the first sub-pixel column in the nth row.
In addition, the second detection determining circuit is specifically configured to, according to the detected voltages on the detection lines corresponding to the sub-pixels of the same color to be compensated, calculate the voltage difference between the voltages on the detection lines corresponding to the two adjacent sub-pixels of the same color to be compensated in the nth row, to determine the detection voltage corresponding to the second sub-pixel column in the nth row.
In specific implementation, in the pixel compensation apparatus provided in the embodiment of the present disclosure, the first detection determining circuit may include a first processor, and the first processor may adopt a combination of software and hardware to achieve the function to be performed by the first detection determining circuit. The second detection determining circuit may include a second processor, and the second processor may adopt a combination of software and hardware to achieve the function to be performed by the second detection determining circuit. The data determining circuit may include a third processor, and the third processor may adopt a combination of software and hardware to achieve the function to be performed by the data determining circuit. A storage capacitor corresponding to each detection line is also pre-arranged in the electroluminescent display panel. One terminal of the storage capacitor is coupled to the corresponding detection line, the first processor and the second processor, and the other terminal of the storage capacitor is grounded. However, the first detection determining circuit, the second detection determining circuit, and the data determining circuit may all be provided in a processor that combines software and hardware to achieve high integration. In this case, one terminal of the storage capacitor in the electroluminescent display panel is coupled to the corresponding detection line and the processor. The other terminal of the storage capacitor is grounded.
In a specific implementation, in the pixel compensation apparatus provided by the embodiment of the present disclosure, the pixel compensation apparatus further includes: a first storage circuit configured to store the detection voltage corresponding to the first sub-pixel column in the nth row; and a second storage circuit configured to store the detection voltage corresponding to the second sub-pixel column in the nth row.
In specific implementation, in the pixel compensation apparatus provided by the embodiment of the present disclosure, the first storage circuit may include a first storage, and the first storage may adopt a combination of software and hardware to achieve the function of storing the determined detection voltage corresponding to the first sub-pixel column in the nth row. The second storage circuit may include a second storage, and the second storage may adopt a combination of software and hardware to achieve the function of storing the determined detection voltage corresponding to the second sub-pixel column in the nth row. However, the first storage circuit and the second storage circuit may both be disposed in a storage that combines software and hardware to achieve high integration.
In specific implementation, as shown in
In specific implementation, as shown in
It should be noted that the size and shape of each graphic in the above drawings do not reflect the true ratio between the pixel compensation apparatus and the electroluminescent display panel, and the purpose is only to schematically illustrate the content of the present disclosure.
In specific implementation, in the pixel compensation apparatus provided by the embodiment of the present disclosure, the data determining circuit may be specifically configured to determine the data voltage of each of the sub-pixels of the same color to be compensated in the nth row for the display frames after the (2n)th display frame according to the detection voltage corresponding to each of the sub-pixels of the same color to be compensated in the nth row with a preset compensation algorithm. In specific implementation, the preset compensation algorithm is the same as the compensation algorithm in the related art, which can be understood by those skilled in the art, and will not be described here.
Generally, the electroluminescent display panel further includes a source driving circuit. In a specific implementation, in the pixel compensating apparatus provided by the embodiment of the present disclosure, the data determining circuit is configured to provide the determined data voltage of each of the sub-pixels of the same color to be compensated in the nth row for the display frames after the (2n)th display frame to the source driving circuit, and control the source driving circuit to apply the data voltage to the corresponding sub-pixel for the display frame after the (2n)th display frame, to compensate the threshold voltage and the mobility of the driving transistor in the pixel circuit of the sub-pixel.
Based on the same inventive concept, an embodiment of the present disclosure further provides a display device including the above-mentioned pixel compensation apparatus provided by the embodiment of the present disclosure. For the implementation of the display device, please refer to the embodiment of the pixel compensation apparatus described above, and the repeated description is omitted.
In specific implementation, the display device provided by the embodiment of the present disclosure further includes an electroluminescent display panel. The electroluminescent display panel may be an organic light emitting display panel; or the electroluminescent display panel may also be a quantum dot light emitting display panel, which is not limited herein.
In specific implementation, the display device provided by the embodiment of the present disclosure may be any product or component having a display function such as a mobile phone, a tablet computer, a television, a monitor, a notebook computer, a digital photo frame, a navigator, and the like. Other essential components of the display device are understood by those of ordinary skill in the art, which are not described herein, and should not be construed as limiting the present disclosure.
In the pixel compensation method, the pixel compensation apparatus and the display device provided by the embodiment of the present disclosure, in the blanking section of the (2n−1)th display frame of the compensation stage of the compensation period, the detection line corresponding to the first sub-pixel column of sub-pixels of the same color to be compensated in the nth row is charged with an additional detection voltage V0, such that the detected voltage on the detection line corresponding to the first sub-pixel column is the sum of the detection voltage V0 and a coupling voltage ΔV caused by coupling that is, V0+ΔV. In the blanking section of the (2n−1)th display frame, the detection line corresponding to the second sub-pixel column of the sub-pixels of the same color to be compensated is not charged with the additional detection voltage V0, such that the detected voltage on the detection line corresponding to the second sub-pixel column is only the coupling voltage ΔV. Then, it is possible to obtain the detection voltage V0 corresponding to each sub-pixel in the first sub-pixel column according to the voltages on the detection lines corresponding to the sub-pixels of the same color to be compensated. Similarly, in the blanking section of the (2n)th display frame, the detection line corresponding to the second sub-pixel column of the sub-pixels of the same color to be compensated in the nth row is charged with the additional detection voltage V0, such that the detected voltage on the detection line corresponding to the second sub-pixel column is V0+ΔV. In the blanking section of the (2n)th display frame, the detection line corresponding to the first sub-pixel column of the sub-pixels of the same color to be compensated is not charged with the additional detection voltage V0, such that the detected voltage on the detection line corresponding to the first sub-pixel column is only the coupling voltage ΔV. Then, it is possible to obtain the detection voltage V0 corresponding to each sub-pixel in the second sub-pixel column according to the voltages on the detection lines corresponding to the sub-pixels of the same color to be compensated. In this way, the detection voltage V0 corresponding to each sub-pixel of the same color to be compensated in the nth row can be obtained, therefore the influence of the coupling action on the detection voltage V0 may be eliminated, and the accuracy of the detected voltage corresponding to each sub-pixel of the same color to be compensated is improved. Therefore, the problem that the data voltage obtained by the compensation calculation is inaccurate due to the voltage change on the detection line caused by the coupling action can be avoided, and the display effect of the screen can be improved.
It will be apparent to those skilled in the art that various modifications and variations can be made in the present disclosure without departing from the spirit and scope of the present disclosure. Thus, if these modifications and variations of the present disclosure fall within the scope of the claims of the present disclosure and their equivalents, the present disclosure is also intended to include these modifications and variations.
Number | Date | Country | Kind |
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2017 1 0757114 | Aug 2017 | CN | national |
Number | Name | Date | Kind |
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10229636 | Kim | Mar 2019 | B2 |
20120139955 | Jaffari | Jun 2012 | A1 |
20170256198 | Hwang | Sep 2017 | A1 |
20190066590 | Li | Feb 2019 | A1 |
Number | Date | Country | |
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20190066591 A1 | Feb 2019 | US |