CN216671171U - Pixel driving device and display device - Google Patents

Pixel driving device and display device Download PDF

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Publication number
CN216671171U
CN216671171U CN202123116611.7U CN202123116611U CN216671171U CN 216671171 U CN216671171 U CN 216671171U CN 202123116611 U CN202123116611 U CN 202123116611U CN 216671171 U CN216671171 U CN 216671171U
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pixel
driving
sub
unit
data
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赵影
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Shenzhen Aoshi Micro Technology Co Ltd
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Shenzhen Aoshi Micro Technology Co Ltd
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Abstract

The application relates to the technical field of display, and particularly discloses a pixel driving device and a display device, which are used for realizing n-bit gray scale display of a pixel unit, wherein the pixel unit comprises a first sub-pixel unit and a second sub-pixel unit; the pixel driving device includes: the first driving unit is used for sequentially transmitting a-bit gray scale data to the first sub-pixel unit in a display period; the second driving unit is used for sequentially transmitting the b-bit gray scale data to the second sub-pixel unit in the display period; the first current source is used for providing a first driving current and driving the first sub-pixel unit to realize high gray scale display under the action of the first driving current; the second current source is connected with the second sub-pixel unit and used for providing a second driving current and driving the second sub-pixel unit to realize low-gray-scale display under the action of the second driving current; the first driving current is larger than the second driving current, and a + b is equal to n, wherein a, b and n are positive integers. Thereby facilitating accurate low gray scale display.

Description

Pixel driving device and display device
Technical Field
The present disclosure relates to the field of display technologies, and in particular, to a pixel driving device and a display device.
Background
The Micro LED display technology is a display technology which takes self-luminous micron-scale LEDs as light-emitting pixel units and assembles the light-emitting pixel units on a driving panel to form a high-density LED array.
The digital display driving mode of the Micro LED generally comprises the steps of sending n-bit gray scale data into a pixel driving circuit one by one, refreshing and displaying by adopting n subframes, and realizing 2 by utilizing a pulse width modulation modenThe bits display gray levels. Assume that the lighting period of the first subframe is t0, the lighting period of the second subframe is 2 × to, and the lighting period of the third subframe is 22T0, and so on, the lighting time length of the nth sub-frame is 2n-1T 0. When the gray scale precision is high, the low gray scale development time is short, and under the condition of short time, the problems of short holding time, abnormal sampling and the like often occur.
SUMMERY OF THE UTILITY MODEL
In view of the above, it is necessary to provide a pixel driving device and a display device in view of the above problems.
A pixel driving device is used for realizing n-bit gray scale display of a pixel unit, wherein the pixel unit comprises a first sub-pixel unit and a second sub-pixel unit, and the first sub-pixel unit and the second sub-pixel unit are arranged according to a preset rule; the pixel driving device includes:
the first driving unit is connected with the first sub-pixel unit and is used for sequentially transmitting a-bit gray scale data to the first sub-pixel unit in a display period;
the second driving unit is connected with the second sub-pixel unit and is used for sequentially transmitting b-bit gray scale data to the second sub-pixel unit in the display period;
the first current source is connected with the first sub-pixel unit and used for providing a first driving current and driving the first sub-pixel unit to realize high gray scale display under the action of the first driving current;
the second current source is connected with the second sub-pixel unit and used for providing a second driving current and driving the second sub-pixel unit to realize low-gray-scale display under the action of the second driving current;
the first driving current is larger than the second driving current, and a + b is equal to n, wherein a, b and n are positive integers.
In one embodiment, the a-bit gray scale data is a-bit data arranged at a higher level in the n-bit gray scale data, and the b-bit gray scale data is a b-bit data arranged at a lower level in the n-bit gray scale data.
In one embodiment, a ═ b.
In one embodiment, the first driving current and the second driving current satisfy the following relation:
Ib=Ia/2a
wherein, IbRepresenting said second drive current, IaRepresenting the first drive current.
In one embodiment, the first driving unit includes a first data driving unit and a first pixel driving unit, and the first pixel driving unit is respectively connected to the first data driving unit, the first current source and the first sub-pixel unit;
the first data driving unit transmits corresponding gray scale data to the first pixel driving unit under the action of a driving signal, and the first pixel driving unit controls the connection of the first current source and the first sub-pixel unit under the driving of the gray scale data.
In one embodiment, the second driving unit includes a second data driving unit and a second pixel driving unit, and the second pixel driving unit is respectively connected to the second data driving unit, the second current source and the second sub-pixel unit;
the second data driving unit transmits corresponding gray scale data to the second pixel driving unit under the action of the driving signal, and the second pixel driving unit controls the connection of the second current source and the second sub-pixel unit under the driving of the gray scale data.
In one embodiment, the first data driving unit is connected with a first data line and a first driving signal line, the first data line is connected with corresponding gray scale data, and the first driving signal line is connected with a driving signal;
the second data driving unit is connected with a second data line and a second driving signal line, the second data line is connected with corresponding gray scale data, and the second driving signal line is connected with a driving signal.
In one embodiment, the first driving signal line is connected to the second driving signal line.
In one embodiment, the first data driving unit, the first pixel driving unit, the second data driving unit and the second pixel driving unit select driving switching tubes.
In one embodiment, the first sub-pixel unit and the second sub-pixel unit are arranged along a horizontal direction, or the first sub-pixel unit and the second sub-pixel unit are arranged along a vertical direction.
In one embodiment, the first sub-pixel unit and the second sub-pixel unit include light emitting diodes.
A display device comprises a plurality of pixel units and the pixel driving device corresponding to each pixel unit, wherein each pixel unit forms a pixel matrix with X rows and Y columns, each pixel unit comprises a first sub-pixel unit and a second sub-pixel unit, and the first sub-pixel unit and the second sub-pixel unit are arranged along the transverse direction or the longitudinal direction; wherein X and Y are positive integers greater than or equal to 2.
In the pixel driving device, the pixel unit is set as the first sub-pixel unit and the second sub-pixel unit, the n-bit gray scale data is divided into the a-bit gray scale data and the b-bit gray scale data, the first sub-pixel unit is controlled to display based on the a-bit gray scale data, and the second sub-pixel unit displays based on the b-bit gray scale data, so that a sub-frames or b sub-frames are included in one frame period and less than n sub-frames are included. The frame period is fixed, the number of the sub-frames is reduced, and each sub-frame period is lengthened, so that the lighting time of each sub-frame is prolonged, the low gray scale expansion time is prolonged, and accurate low gray scale display is facilitated. Meanwhile, by setting a first driving current of the first sub-pixel unit and a second driving current of the second sub-pixel unit, the first sub-pixel unit realizes high gray scale display under the driving of the first driving current, and the second sub-pixel unit realizes low gray scale display and superposition display of high gray scale and low gray scale under the driving of the second driving current, so that the display brightness of each sub-frame is enhanced, and the display effect of one frame of data can reach the n-bit gray scale display effect in the traditional technology.
According to the display device, through the arrangement of double sub-pixels and double drives, low gray scale display is accurately carried out, the first sub-pixel units and the second sub-pixel units contained in the pixel units are independent units, when the first sub-pixel units and the second sub-pixel units are arranged along the transverse direction, the display array with X rows and 2Y columns is formed, the transverse resolution of the display device is doubled, when the first sub-pixel units and the second sub-pixel units are arranged along the longitudinal direction, the display array with 2X rows and Y columns is formed, the longitudinal resolution of the display device is doubled, and therefore the display resolution can be effectively improved.
Drawings
Fig. 1 is a schematic structural diagram of a pixel driving device according to an embodiment of the present disclosure;
fig. 2 is a schematic structural diagram of a pixel driving device according to an embodiment of the present disclosure;
fig. 3 is a schematic structural diagram of a pixel driving device according to an embodiment of the present disclosure.
Description of reference numerals:
100. a first sub-pixel unit; 110. a first drive unit; 111. a first data driving unit; 112. a first pixel driving unit; 113. a first data line; 114. a first driving signal line; 120. a first current source; 200. a second sub-pixel unit; 210. a second driving unit; 211. a second data driving unit; 212. a second pixel driving unit; 213. a second data line; 214. a second drive signal line; 220. a second current source.
Detailed Description
To facilitate an understanding of the present application, the present application will now be described more fully with reference to the accompanying drawings. Preferred embodiments of the present application are given in the accompanying drawings. This application may, however, be embodied in many different forms and should not be construed as limited to the embodiments set forth herein. Rather, these embodiments are provided so that this disclosure will be thorough and complete.
In this application, unless expressly stated or limited otherwise, the terms "mounted," "connected," "secured," and the like are to be construed broadly and can include, for example, fixed connections, removable connections, or integral parts; can be mechanically or electrically connected; they may be directly connected or indirectly connected through intervening media, or they may be connected internally or in any other suitable relationship, unless expressly stated otherwise. The specific meaning of the above terms in the present application can be understood by those of ordinary skill in the art as appropriate.
The terms "first", "second" and "first" are used for descriptive purposes only and are not to be construed as indicating or implying relative importance or implicitly indicating the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include at least one such feature. In the description of the present application, "plurality" means at least two, e.g., two, three, etc., unless specifically limited otherwise.
Unless defined otherwise, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this application belongs. The terminology used herein in the description of the present application is for the purpose of describing particular embodiments only and is not intended to be limiting of the application. As used herein, the term "and/or" includes any and all combinations of one or more of the associated listed items.
As described in the background, the digital display driving of Micro LEDs generally involves sending n-bit gray scale data to a pixel driving circuit one by one,refreshing display by n subframes, and realizing 2 by using pulse width modulation modenThe bits display gray levels. Assume that the lighting period of the first sub-frame is t0, the lighting period of the second sub-frame is 2 × to, and the lighting period of the third sub-frame is 22T0, and so on, the lighting time length of the nth sub-frame is 2n-1T 0. When the gray scale precision is high, the low gray scale development time is short, for example, when the gray scale development is performed by using n ═ 16, the low gray scale development time is short, and since the driving waveform has a rising edge and a falling edge, in the case of short development time, problems such as short holding time of low gray scale display and sampling abnormality often occur.
In order to solve the above problems, the present application provides a pixel driving device, a pixel driving method, and a display device.
In one embodiment, a pixel driving device is provided for implementing an n-bit grayscale display of a pixel cell.
In the conventional technology, n-bit gray scale data are often sequentially transmitted to the same pixel unit to realize the display of n subframes, and the lighting time of each subframe is controlled to realize the n-bit gray scale display of the pixel unit. The larger the value of n is, the larger the number of sub-frames is, the higher the precision of the gray scale is, and the lighting time length of each sub-frame is in an increasing trend. In practical applications, when the precision of the gray scale reaches a certain degree, the display duration of the first several lit sub-frames is often very short, i.e. the low gray scale development time is short, which further causes the problems of short holding time and abnormal sampling, for example, when n is greater than or equal to 16, the above problems exist. In this embodiment, n is 16 as an example.
Referring to fig. 1, in the present embodiment, a pixel unit includes a first sub-pixel unit 100 and a second sub-pixel unit 200, that is, two sub-pixel units are disposed in parallel in the same pixel unit, where the first sub-pixel unit and the second sub-pixel unit may be disposed according to a predetermined rule, for example, disposed in a horizontal direction or a longitudinal direction. The pixel driving device provided in this embodiment includes a first driving unit 110, a second driving unit 210, a first current source 120, and a second current source 220.
Specifically, the first driving unit 110 is connected to the first sub-pixel unit 100, and is used for sequentially transmitting the a-bit gray scale data to the first sub-pixel unit 100 in the display period. The second driving unit 210 is connected to the second sub-pixel unit 200, and is used for sequentially transmitting the b-bit gray scale data to the second sub-pixel unit 200 in the display period. The first current source 120 is connected to the first sub-pixel unit 100, and is configured to provide a first driving current, so as to drive the first sub-pixel unit 100 to implement high gray scale display under the action of the first driving current. The second current source 220 is connected to the second sub-pixel unit 200 for providing a second driving current, and the second sub-pixel unit 200 is driven by the second driving current to realize low gray scale display. The first driving current is larger than the second driving current, and a + b is equal to n, wherein a, b and n are positive integers.
In this embodiment, the n-bit gray scale data is divided into a-bit gray scale data and b-bit gray scale data, the a-bit gray scale data is sequentially transmitted to the first sub-pixel unit 100 through the first driving unit 110, and the b-bit gray scale data is sequentially transmitted to the second sub-pixel unit 200 through the second driving unit 210, that is, in the same sub-frame period, the first sub-pixel unit 100 and the second sub-pixel unit 200 perform synchronous display according to the respective received gray scale data.
In the conventional technology, a frame period includes n sub-frame periods, where n is divided into a and b in this embodiment, and the first sub-pixel unit 100 is controlled to display based on a-bit gray scale data, and the second sub-pixel unit 200 is controlled to display based on b-bit gray scale data, so that the frame period includes a sub-frames or b sub-frames, which is less than n sub-frames. The frame period is fixed, the number of the sub-frames is reduced, and each sub-frame period is lengthened, so that the lighting time of each sub-frame is prolonged, the low gray scale expansion time is prolonged, and accurate low gray scale display is facilitated. Meanwhile, by setting the first driving current of the first sub-pixel unit 100 and the second driving current of the second sub-pixel unit 200, the first sub-pixel unit 100 realizes high gray scale display under the driving of the first driving current, and the second sub-pixel unit 200 realizes low gray scale display, and superimposed display of high gray scale and low gray scale under the driving of the second driving current, so that the display brightness of each sub-frame is enhanced, and the display effect of one frame data can reach the n-bit gray scale display effect in the conventional technology.
In a first sub-frame period, the first driving unit 110 transmits the 1 st bit gray scale data of the a bit gray scale data to the first sub-pixel unit 100, and the second driving unit 210 transmits the 1 st bit gray scale data of the b bit gray scale data to the second sub-pixel unit 200; in the next sub-frame period, the first driving unit 110 transmits the 2 nd bit gray scale data of the a bit gray scale data to the first sub-pixel unit 100, and simultaneously, the second driving unit 210 transmits the 2 nd bit gray scale data of the b bit gray scale data to the second sub-pixel unit 200; and so on, until the first driving unit 110 transmits the a-th bit gray scale data to the first sub-pixel unit 100, and the second driving unit 210 transmits the b-th bit gray scale data to the second sub-pixel unit 200. Since a and b are not necessarily equal, the number of subframes is the larger of a and b.
Assume that the lighting period of the first subframe is t0, the lighting period of the second subframe is 2 × to, and the lighting period of the third subframe is 22T0, and so on, the lighting time of the i-th sub-frame is 2i-1T 0. That is, the lighting time period of the a-th subframe is 2a-1T0, the lighting time length of the b-th sub-frame is 2b-1*t0。
In one embodiment, the a-bit gray scale data is a-bit data arranged at a higher level among the n-bit gray scale data, and the b-bit gray scale data is a b-bit data arranged at a lower level among the n-bit gray scale data. Let n be 16, and n-bit grayscale data be 1011101010101110; for example, a is 10, b is 6, the a-bit gray scale data is the data 1011101010 with 10 high bits, the b-bit gray scale data is the data 101110 with 6 low bits; for another example, the a-bit gray scale data is 8 bits of data 10111010 with the upper 8 bits, and the b-bit gray scale data is 8 bits of data 10101110 with the lower 8 bits; for example, the a-bit gray scale data is 6-bit data 101110 with 6 high bits, and the b-bit gray scale data is 10 low-bit data 1010101110 with 10 low bits. In practical applications, the n-bit gray scale data may be divided at different positions according to practical situations, and is not limited herein.
In one embodiment, a ═ b. When a is equal to b, the number of subframes is reduced to half of the original number, i.e. n/2, and each subframe period is equivalent to being increased to twice of the original number. Taking a 100hz refresh rate, n-16 as an example, in the conventional scheme, the display period of one frame is 1/100hz, i.e. 10ms, the period of one subframe is 10/16, i.e. 0.625ms, and the lighting duration of the first subframe (i.e. the shortest lighting duration) is 0.625/216-1I.e., 19 ns; in the present embodiment, the display period of one frame is still 10ms, and since one frame is divided into 8 subframes, that is, one subframe period is 10/8, that is, 1.25ms, the lighting period (i.e., the shortest lighting period) of the first subframe is 1.25/28-1I.e. 9.8 mus. It is known that when a is equal to b, the shortest lighting time is increased to the greatest extent, which is effective for developing low gray scales.
The first sub-pixel unit 100 and the second sub-pixel unit 200 are respectively adapted to different current sources, so that the driving currents of the two sub-pixel units can be independently adjusted, and the brightness change caused by different light emitting efficiencies under the condition of the same current source is avoided. Since the first sub-pixel unit 100 and the second sub-pixel unit 200 can be independently driven, the problems of brightness jump at the joint of high gray scale and low gray scale caused by current efficiency can be avoided.
In one embodiment, the first driving current and the second driving current satisfy the following relation:
Ib=Ia/2a
wherein, IbRepresents the second drive current, IaRepresenting a first drive current.
Under the driving of the first driving current, the first sub-pixel unit 100 can realize high gray scale display, under the driving of the second driving current, the second sub-pixel unit 200 can realize low gray scale display, and by setting the values of the first driving current and the second driving current to satisfy the corresponding relation, the display brightness of the first sub-pixel unit 100 can be improved to a corresponding degree in the same sub-frame to be linked with the display brightness of the second sub-pixel unit 200, that is, in the same sub-frame, the lowest display brightness of the first sub-pixel unit 100 corresponds to the highest display brightness of the second sub-pixel unit 200, and further, under the condition that the number of sub-frames is reduced, the n-bit gray scale display effect can be satisfied.
In this embodiment, the display areas and shapes of the first sub-pixel unit 100 and the second sub-pixel unit 200 may be the same or different, and when the current magnitude of the current source is actually set, the display areas and shapes of the sub-pixel units may be set in consideration of the factors such as the display areas and shapes of the sub-pixel units. Preferably, the display area and shape of the first sub-pixel unit 100 and the second sub-pixel unit 200 are set to be the same, which facilitates the relative calculation and configuration of the current sources.
Referring to fig. 2, in one embodiment, the first driving unit 110 includes a first data driving unit 111 and a first pixel driving unit 112, and the first pixel driving unit 112 is respectively connected to the first data driving unit 111, the first current source 120, and the first sub-pixel unit 100. The first data driving unit 111 transmits corresponding gray scale data to the first pixel driving unit 112 under the action of the driving signal, and the first pixel driving unit 112 controls the connection between the first current source 120 and the first sub-pixel unit 100 under the driving of the gray scale data.
That is, the first data driving unit 111 is configured to receive a driving signal and transmit the gray scale data corresponding to the first sub-pixel unit 100 to the first pixel driving unit 112 in response to the driving signal, where the gray scale data may be 0 or 1, and the first pixel driving unit 112 may control the first current source 120 and the first sub-pixel unit 100 to be turned on or off according to the actually received gray scale data, where the first sub-pixel unit 100 is turned on when the first current source is turned on, and the first sub-pixel unit 100 is turned off when the first current source is turned off.
The first data driving unit 111 may be connected to a first data line 113 and a first driving signal line 114, where the first data line 113 is used for receiving corresponding gray-scale data, and the first driving signal line 114 is used for receiving a driving signal. When the first driving signal line 114 receives a driving signal, the first data line 113 and the first pixel driving unit 112 may be turned on, the gray-scale data received by the first data line 113 may be transmitted to the first pixel driving unit 112, or the connection between the first data line 113 and the first pixel driving unit 112 may be turned off.
Referring to fig. 2, in one embodiment, the second driving unit 210 includes a second data driving unit 211 and a second pixel driving unit 212, and the second pixel driving unit 212 is respectively connected to the second data driving unit 211, the second current source 220, and the second sub-pixel unit 200. The second data driving unit 211 transmits corresponding gray scale data to the second pixel driving unit 212 under the action of the driving signal, and the second pixel driving unit 212 controls the connection between the second current source 220 and the second sub-pixel unit 200 under the driving of the gray scale data.
That is, the second data driving unit 211 is configured to receive a driving signal and transmit the gray scale data corresponding to the second sub-pixel unit 200 to the second pixel driving unit 212 in response to the driving signal, where the gray scale data may be 0 or 1, and the second pixel driving unit 212 may control the second current source 220 and the second sub-pixel unit 200 to be turned on or off according to the actually received gray scale data, where the second sub-pixel unit 200 is turned on when the second current source is turned on, and the second sub-pixel unit 200 is turned off when the second current source is turned off.
The second data driving unit 211 may be connected to a second data line 213 and a second driving signal line 214, where the second data line 213 is used for accessing corresponding gray-scale data, and the second driving signal line 214 is used for accessing a driving signal. When the second driving signal line 214 receives the driving signal, the second data line 213 and the second pixel driving unit 212 may be turned on, the gray-scale data received by the second data line 213 may be transmitted to the second pixel driving unit 212, or the connection between the second data line 213 and the second pixel driving unit 212 may be turned off.
In one embodiment, the first driving signal line 114 is connected to the second driving signal line 214. That is, the first data driving unit 111 and the second data driving unit 211 may be simultaneously supplied with driving signals, whereby a circuit structure may be simplified, a wiring space may be reduced, costs may be reduced, and simultaneously it is convenient to synchronously control the first sub-pixel unit 100 and the second sub-pixel unit 200.
In one embodiment, the first data driving unit 111, the first pixel driving unit 112, the second data driving unit 211, and the second pixel driving unit 212 are driving switches. For example, an NMOSFET (N-type Metal-Oxide-Semiconductor Field-Effect Transistor) or a PMOSFET (P-type Metal-Oxide-Semiconductor Field-Effect Transistor) may be selected.
In one embodiment, the first sub-pixel unit 100 and the second sub-pixel unit 200 may be light emitting diodes, and may specifically include inorganic light emitting diodes, organic light emitting diodes, quantum dot light emitting diodes, and the like.
In one embodiment, a pixel driving method is provided, which can implement n-bit gray scale display of a pixel unit by using the pixel driving device.
The pixel driving method provided by the embodiment comprises the following steps: in the same display period, the display device is in a display period,
step S110, controlling the first driving unit 110 to sequentially transmit the a-bit gray scale data to the first sub-pixel unit 100, so that the first sub-pixel unit 100 realizes the high gray scale display under the action of the first driving current.
Step S120, controlling the second driving unit 210 to sequentially transmit the b-bit gray scale data to the second sub-pixel unit 200, so that the second sub-pixel unit 200 realizes the low gray scale display under the action of the second driving current.
The first driving current is larger than the second driving current, and a + b is equal to n, wherein a, b and n are positive integers.
In the conventional technology, a frame period includes n sub-frame periods, where n is divided into a and b in this embodiment, and the first sub-pixel unit 100 is controlled to display based on a-bit gray scale data, and the second sub-pixel unit 200 is controlled to display based on b-bit gray scale data, so that the frame period includes a sub-frames or b sub-frames, which is less than n sub-frames. The frame period is fixed, the number of the sub-frames is reduced, and each sub-frame period is lengthened, so that the lighting time of each sub-frame is prolonged, the low gray scale expansion time is prolonged, and accurate low gray scale display is facilitated. Meanwhile, by setting the first driving current of the first sub-pixel unit 100 and the second driving current of the second sub-pixel unit 200, the first sub-pixel unit 100 realizes high gray scale display under the driving of the first driving current, and the second sub-pixel unit 200 realizes low gray scale display, and superimposed display of high gray scale and low gray scale under the driving of the second driving current, so that the display brightness of each sub-frame is enhanced, and the display effect of one frame data can reach the n-bit gray scale display effect in the conventional technology.
In one embodiment, the a-bit gray scale data is a-bit data arranged at a higher level in the n-bit gray scale data, and the b-bit gray scale data is a b-bit data arranged at a lower level in the n-bit gray scale data.
In one embodiment, a ═ b.
In one embodiment, the first driving current and the second driving current satisfy the following relation:
Ib=Ia/2a
wherein, IbDenotes the second drive current, IaRepresenting a first drive current.
In one embodiment, the first driving unit 110 includes a first data driving unit 111 and a first pixel driving unit 112, and the first pixel driving unit 112 is respectively connected to the first data driving unit 111, the first current source 120 and the first sub-pixel unit 100.
In step S110, the first data driving unit 111 transmits the corresponding gray-scale data to the first pixel driving unit 112 under the action of the driving signal, and the first pixel driving unit 112 controls the connection between the first current source 120 and the first sub-pixel unit 100 under the driving of the gray-scale data.
In one embodiment, the second driving unit 210 includes a second data driving unit 211 and a second pixel driving unit 212, and the second pixel driving unit 212 is respectively connected to the second data driving unit 211, the second current source 220, and the second sub-pixel unit 200.
In step S120, the second data driving unit 211 transmits the corresponding gray-scale data to the second pixel driving unit 212 under the action of the driving signal, and the second pixel driving unit 212 controls the connection between the second current source 220 and the second sub-pixel unit 200 under the driving of the gray-scale data.
In one embodiment, the first driving signal line 114 is connected to the second driving signal line 214.
In one embodiment, the first data driving unit 111, the first pixel driving unit 112, the second data driving unit 211, and the second pixel driving unit 212 are driving switches.
In one embodiment, the first sub-pixel unit and the second sub-pixel unit comprise light emitting diodes.
The pixel driving method provided in this embodiment and the pixel driving device provided in the previous embodiment belong to the same application concept, and for the specific content of the pixel driving method provided in this embodiment, reference may be made to the related description of the pixel driving device, and no further description is given here.
In one embodiment, there is provided a display device comprising a number of pixel units, and a pixel driving device as described above corresponding to each pixel unit, i.e. each pixel unit has its corresponding pixel driving device. Each pixel unit forms a pixel matrix with X rows and Y columns, each pixel unit comprises a first sub-pixel unit and a second sub-pixel unit, and the first sub-pixel unit and the second sub-pixel unit are arranged along the transverse direction or the longitudinal direction; wherein X and Y are positive integers greater than or equal to 2.
According to the display device, through the arrangement of double sub-pixels and double drives, low gray scale display is accurately carried out, the first sub-pixel units and the second sub-pixel units contained in the pixel units are independent units, when the first sub-pixel units and the second sub-pixel units are arranged along the transverse direction, the display array with X rows and 2Y columns is formed, the transverse resolution of the display device is doubled, when the first sub-pixel units and the second sub-pixel units are arranged along the longitudinal direction, the display array with 2X rows and Y columns is formed, the longitudinal resolution of the display device is doubled, and therefore the display resolution can be effectively improved.
The display device provided in this embodiment and the pixel driving device provided in the previous embodiment belong to the same inventive concept, and for the specific content of the pixel driving device in the display device provided in this embodiment, reference may be made to the related description of the pixel driving device, and no further description is given here.
The technical features of the embodiments described above may be arbitrarily combined, and for the sake of brevity, all possible combinations of the technical features in the embodiments described above are not described, but should be considered as being within the scope of the present specification as long as there is no contradiction between the combinations of the technical features.
The above-mentioned embodiments only express several embodiments of the present application, and the description thereof is more specific and detailed, but not construed as limiting the claims. It should be noted that, for a person skilled in the art, several variations and modifications can be made without departing from the concept of the present application, which falls within the scope of protection of the present application. Therefore, the protection scope of the present application shall be subject to the appended claims.

Claims (12)

1. A pixel driving device is characterized in that the pixel driving device is used for realizing n-bit gray scale display of a pixel unit, wherein the pixel unit comprises a first sub-pixel unit and a second sub-pixel unit, and the first sub-pixel unit and the second sub-pixel unit are arranged according to a preset rule; the pixel driving device includes:
the first driving unit is connected with the first sub-pixel unit and is used for sequentially transmitting a-bit gray scale data to the first sub-pixel unit in a display period;
the second driving unit is connected with the second sub-pixel unit and is used for sequentially transmitting b-bit gray scale data to the second sub-pixel unit in the display period;
the first current source is connected with the first sub-pixel unit and used for providing a first driving current and driving the first sub-pixel unit to realize high gray scale display under the action of the first driving current;
the second current source is connected with the second sub-pixel unit and used for providing a second driving current and driving the second sub-pixel unit to realize low-gray-scale display under the action of the second driving current;
the first driving current is larger than the second driving current, and a + b is equal to n, wherein a, b and n are positive integers.
2. The pixel driving device according to claim 1, wherein the a-bit gray scale data is a-bit data arranged higher in the n-bit gray scale data, and the b-bit gray scale data is a-bit data arranged lower in the n-bit gray scale data.
3. A pixel driving device according to claim 1, wherein a-b.
4. The pixel driving device according to claim 1, wherein the first driving current and the second driving current satisfy the following relation:
Ib=Ia/2a
wherein, IbRepresenting said second drive current, IaRepresenting the first drive current.
5. The pixel driving device according to claim 1, wherein the first driving unit comprises a first data driving unit and a first pixel driving unit, and the first pixel driving unit is respectively connected to the first data driving unit, the first current source and the first sub-pixel unit;
the first data driving unit transmits corresponding gray scale data to the first pixel driving unit under the action of a driving signal, and the first pixel driving unit controls the connection of the first current source and the first sub-pixel unit under the driving of the gray scale data.
6. The pixel driving device according to claim 5, wherein the second driving unit comprises a second data driving unit and a second pixel driving unit, and the second pixel driving unit is respectively connected to the second data driving unit, the second current source and the second sub-pixel unit;
the second data driving unit transmits corresponding gray scale data to the second pixel driving unit under the action of the driving signal, and the second pixel driving unit controls the connection of the second current source and the second sub-pixel unit under the driving of the gray scale data.
7. The pixel driving device according to claim 6, wherein the first data driving unit is connected to a first data line and a first driving signal line, the first data line is connected to corresponding gray scale data, and the first driving signal line is connected to a driving signal;
the second data driving unit is connected with a second data line and a second driving signal line, the second data line is connected with corresponding gray scale data, and the second driving signal line is connected with a driving signal.
8. The pixel driving device according to claim 7, wherein the first driving signal line is connected to the second driving signal line.
9. The pixel driving device according to claim 7, wherein the first data driving unit, the first pixel driving unit, the second data driving unit, and the second pixel driving unit are driving switches.
10. The pixel driving device according to claim 1, wherein the first sub-pixel unit and the second sub-pixel unit are arranged along a transverse direction, or the first sub-pixel unit and the second sub-pixel unit are arranged along a longitudinal direction.
11. The pixel driving device according to any one of claims 1-10, wherein the first sub-pixel unit and the second sub-pixel unit comprise light emitting diodes.
12. A display device comprising a plurality of pixel units, and the pixel driving device according to any one of claims 1 to 11 corresponding to each of the pixel units, each of the pixel units forming a pixel matrix of X rows and Y columns, each of the pixel units comprising a first sub-pixel unit and a second sub-pixel unit, the first sub-pixel unit and the second sub-pixel unit being arranged in a lateral direction or in a longitudinal direction; wherein X and Y are positive integers greater than or equal to 2.
CN202123116611.7U 2021-12-09 2021-12-09 Pixel driving device and display device Active CN216671171U (en)

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