The present application is related to and claims priority from and the benefit under 35 U.S.C. §119(a) of Korean Patent Application No. 10-2013-0134337, filed on Nov. 6, 2013, which is hereby incorporated by reference for all purposes as if fully set forth herein.
The present disclosure relates to a method and apparatus for controlling a power or a voltage applied to each pixel of a display unit.
An organic light emitting display device uses an Organic Light Emitting Diode, which utilizes a light emission phenomenon caused by an electric field. The organic light emitting display device is considered as a next-generation flat panel display due to its high contrast ratio and excellent view ability caused from a self-emission characteristic, a high luminance and a wide viewing angle, and a high speed response characteristics.
To address the above-discussed deficiencies, it is a primary object to provide an electronic device includes an image processing unit to process a gray level corresponding to an image data, a gray data processing unit to determine a voltage applied to each pixel of a display unit by using the gray level; and a power controller to control the voltage applied to each pixel of the display unit based on the determined voltage.
In accordance with another aspect of the present disclosure, an electronic device includes a power adjustment unit to adjust voltages according to a color layout of a display unit; and a power controller to control the voltages applied to each pixel of the display unit based on the adjusted voltage according to image data.
In accordance with another aspect of the present disclosure, a power control method includes: processing a gray level corresponding to an image data, determining voltages applied to each pixel of a display unit by using the gray level, and controlling the voltages applied to each pixel of the display unit based on the determined voltage.
Before undertaking the DETAILED DESCRIPTION below, it may be advantageous to set forth definitions of certain words and phrases used throughout this patent document: the terms “include” and “comprise,” as well as derivatives thereof, mean inclusion without limitation; the term “or,” is inclusive, meaning and/or; the phrases “associated with” and “associated therewith,” as well as derivatives thereof, may mean to include, be included within, interconnect with, contain, be contained within, connect to or with, couple to or with, be communicable with, cooperate with, interleave, juxtapose, be proximate to, be bound to or with, have, have a property of, or the like; and the term “controller” means any device, system or part thereof that controls at least one operation, such a device may be implemented in hardware, firmware or software, or some combination of at least two of the same. It should be noted that the functionality associated with any particular controller may be centralized or distributed, whether locally or remotely. Definitions for certain words and phrases are provided throughout this patent document, those of ordinary skill in the art should understand that in many, if not most instances, such definitions apply to prior, as well as future uses of such defined words and phrases.
For a more complete understanding of the present disclosure and its advantages, reference is now made to the following description taken in conjunction with the accompanying drawings, in which like reference numerals represent like parts:
An organic light emitting display device supplies a current corresponding to data voltage applied to a pixel circuit to an organic light emitting diode, thereby enabling the organic light emitting diode to emit a light with a luminance corresponding to the supplied current. In the meantime, the organic light emitting display device controls an output voltage for image data by using an output value outputted from an automatic current limiter (ACL). However, in this case, unnecessary voltage consumption is generated due to a difference between a gray level processed in the ACL and a gray level processed in an image processing unit.
According to an embodiment of the present disclosure, voltages applied to each pixel of a display unit can be determined by using a gray level processed through an image processing unit, so that a power consumed when displaying the image data can be reduced. Further, the gray level can be processed by using a pre-processing gray level obtained from the ACL so that a distortion of image data processed by the image processing unit can be prevented.
According to an embodiment of the present disclosure, a trend line indicating a correlation between a luminance value and a voltage value can be generated by using a gray level reflecting the pre-processing gray level obtained from the ACL, and voltages applied to each pixel of the display unit can be controlled based on the generated trend line, so that the voltage can be adjusted according to luminance value which has a high correlation with voltage. Further, two colors which have a high correlation of luminance value can be adjusted from among red, green and blue into a single voltage, so that a power required for the red, green blue can be adjusted respectively.
Referring to
The electronic device 100 of
The image processing unit 120 can process a gray level corresponding to an image data. The image processor 120 can serve to process the gray level of the image data appropriately in accordance with the characteristic of the display unit 150. According to an embodiment of the present disclosure, the image processing unit 120 can process the gray level corresponding to the image data according to a color filter pattern of the display unit 150. The color filter pattern means an arrangement in which colors such as red, green, blue, and white are differently disposed.
The color filter pattern can be a PenTile type pattern in which red, green, blue, and white are arranged, or can be a Bayer pattern in which red, green, blue, and green are arranged. The Bayer pattern is a pattern in which green, red and blue can be cross-arranged so that green can occupy 50% of a pattern and red and blue can occupy 25% of the pattern respectively. The image processing unit 120 can differently process each gray level corresponding to the image data according to the color filter pattern of the display unit 150.
Referring to
In this case, the image processing unit 120 can process and output the pre-processing gray level 210 as red, green, blue and white according to the color filter pattern of the display unit to display the image data. Referring to the reference numeral 220, a gray level processed by the image processing unit 120 can have values of 225 for red, 190 for green, 182 for blue, and 20 for white. That is, the image processing unit 120 can process the gray level according to the color filter pattern of display unit 150.
In
In the meantime, in the related art, the output voltage for the image data is controlled by using an output value of the automatic current limiter. However, an unnecessary output voltage is consumed due to a generation of a difference between the output value outputted from the automatic current limiter and the output value processed in the image processing unit.
In the present disclosure, the voltage is controlled by using the output value outputted from the image processing unit 120, not by using the output value outputted from the automatic current limiter 110, so that the use of an unnecessary voltage can be reduced. To this end, the image processing unit 120 can process the gray level by using the preprocessing gray level obtained from the automatic current limiter 110.
Thus, the image processing unit 120 can process the gray level by using the pre-processing gray level obtained from the automatic current limiter 120 such that the distortion can be prevented.
The gray data processing unit 130 can determine voltage applied to each pixel of display unit by using the gray level processed by the image processing unit 120. According to an embodiment of the present disclosure, the gray data processing unit 130 can determine voltage applied to each pixel of display unit by using the gray level having a maximum value. The gray data processing unit 130 can determine voltage based on the maximum value of the gray level among the gray level processed in the image processing unit 120.
According to various embodiments of the present disclosure, the gray data processing unit 130 can determine voltage applied to each pixel of display unit by using the gray level having an average value. The gray data processing unit 130 can determine a voltage based on the average value of the gray level processed in the image processing unit 120.
According to various embodiments of the present disclosure, the gray data processing unit 130 can generate a trend line indicating a correlation between a luminance and a voltage by using the gray level reflecting the pre-processing gray level, and can determine voltages applied to each pixel of display unit based on the generated trend line.
Referring to
y=−0.118x+24. (Equation. 1)
The trend line 1 is indicated by a solid line in
y=−0.077x+23.05. (Equation 2)
The trend line 2 is indicated by a dotted line in
Referring to
In Equation 3, y is a calculated luminance value, A is a reference setting value, x is a brightness ratio (OPR). At this time, A can be set based on a change of luminance value according to the brightness ratio (OPR) at the time of continuously turning the LED on.
In this case, the gray data processing unit 130 can determine an optimal voltage from the calculated luminance value y and the reference setting value A based on the trend line (noted by the reference numeral 420) indicating a correlation between the luminance and the voltage.
The power controller 140 can control voltages applied to each pixel of the display unit based on the determined voltage. According to an embodiment of the present disclosure, the power controller 140 can control an ELVSS voltage (the second voltage) applied to each pixel of AMOLED display.
The power controller 140 can control the voltage applied to each pixel of the display unit through the Power Management IC. The Power Management IC can include a state machine unit (not shown) to control at least one frame included in the image data in the order of voltage control. According to an embodiment of the present disclosure, the state machine unit can divide the image data into a plurality of areas, and can control in the order of the voltage control of the divided area.
Hereinafter,
Referring to
The electronic device of
Referring to
The electronic device of
Referring to
The power adjustment unit 720 can adjust voltages according to a color layout of the display unit 740. The power adjustment unit 720 can adjust the voltage into three voltages for red, green and blue respectively. According to various embodiments of the present disclosure, the power adjustment unit 720 can adjust at least two of red, green, and blue into a single voltage.
Referring to a first graph shown in reference numeral 810 of
Referring to
According to various embodiments of the present disclosure, the power adjustment unit 720 can adjust the display unit 740 into a plurality of areas, and can adjust voltages for each adjusted area.
Referring to
The power controller 730 can control a voltage applied to each pixel of the display unit based on the separated voltage according to image data.
Referring to
At operation 20, the electronic device can determine voltages applied to each pixel of display unit by using the gray level. According to an embodiment of the present disclosure, a gray data processing unit of the electronic device can determine the voltage applied to each pixel of display unit by using a maximum value of the processed gray level, or a mean value of the gray level. According to various embodiments of the present disclosure, the electronic device can generate a trend line indicating a correlation between a luminance and a voltage by using a gray level that reflects the pre-processing gray level, and can determine the voltage applied to each pixel of display unit based on the generated trend line.
According to various embodiments of the present disclosure, the power adjustment unit of the electronic device can adjust voltages according to a layout of the display unit. For example, the power adjustment unit can adjust at least two of red, green and blue into a single voltage. That is, the power adjustment unit can adjust two colors having a similar voltage value into a single voltage. For example, the power adjustment unit can adjust red and blue into a single voltage, can adjust red and green into a single voltage, or can adjust green and blue into a single voltage. Accordingly, the power adjustment unit may not adjust red, blue, and green into three voltages, but can adjust into two voltages, such that the voltage consumption can be reduced.
According to various embodiments of the present disclosure, the power adjustment unit can adjust the display unit into a plurality of areas, and can determine voltages for each adjusted area. Alternatively, the power adjustment unit can adjust the image data into a plurality of areas, and can determine voltages for each adjusted area.
At operation 30, the electronic device can control the voltage applied to each pixel of display unit based on the determined voltage. The power controller of the electronic device can control the voltage applied to each pixel of display unit by using a power management (or IC) unit. The power management unit can include a state machine unit to control at least one frame included in the image data in the order of voltage control.
Although the present disclosure has been described with an exemplary embodiment, various changes and modifications may be suggested to one skilled in the art. It is intended that the present disclosure encompass such changes and modifications as fall within the scope of the appended claims.
Number | Date | Country | Kind |
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10-2013-0134337 | Nov 2013 | KR | national |