BACKGROUND
[0001] Aspects of some embodiments of the present disclosure herein relate to a display
device with relatively improved display quality, a display device luminance compensation
method and an electronic device.
[0002] Various display devices used in multimedia apparatuses such as televisions, mobile
phones, tablet computers, navigation units, and game consoles are being developed.
[0003] As fields in which such display devices are used become various, types of display
layers for displaying images that are displayed on the display devices may vary as
well.
[0004] Recently, a display layer may include an emissive display layer, and the emissive
display layer may include an organic light-emitting display layer, a quantum dot light-emitting
display layer, or the like.
[0005] The above information disclosed in this Background section is only for enhancement
of understanding of the background and therefore the information discussed in this
Background section does not necessarily constitute prior art.
SUMMARY
[0006] Aspects of some embodiments of the present disclosure include a display device with
relatively improved luminance variation, a display device luminance compensation method
and an electronic device.
[0007] According to some embodiments of the present disclosure, a display device includes
a display panel including a plurality of pixels and configured to display an image
and a driving controller configured to drive the display panel, wherein the driving
controller includes a memory part in which a grayscale lookup table is stored, a frequency
determination part configured to determine a driving frequency of the display panel,
a luminance determination part configured to determine a target luminance and a target
grayscale of the image, and a first luminance compensation part configured to output
a first compensation luminance based on the grayscale lookup table, the driving frequency,
the target luminance, and the target grayscale, the driving controller controls the
display panel to display the image based on the first compensation luminance, the
driving frequency includes a first driving frequency and a second driving frequency
having a lower frequency than the first driving frequency, the first compensation
luminance includes a first frequency compensation luminance output at the first driving
frequency and a second frequency compensation luminance output at the second driving
frequency, and the second frequency compensation luminance is higher than the first
frequency compensation luminance.
[0008] According to some embodiments, in the grayscale lookup table, the first compensation
luminance by grayscale, measured using multi-time programming (MTP), may be stored,
the first frequency compensation luminance output at the first driving frequency and
the second frequency compensation luminance output at the second driving frequency
may be stored as the first compensation luminance, and a value obtained by adding
a first offset to a luminance corresponding to a portion of grayscale of the first
frequency compensation luminance may be stored as the second frequency compensation
luminance.
[0009] According to some embodiments, a luminance ratio may be a value obtained by dividing
a value obtained by subtracting a second luminance of the display panel driven at
the first driving frequency from a first luminance of the display panel driven at
the second driving frequency by the first luminance, and an absolute value of the
luminance ratio may be equal to or lower than 6 %.
[0010] According to some embodiments, the second frequency compensation luminance may be
a value obtained by adding the first offset to the first frequency compensation luminance.
[0011] According to some embodiments, the driving controller may further include a temperature
output part configured to output a temperature of the display panel and may further
include a second luminance compensation part configured to add a second offset calculated
based on the temperature to the second frequency compensation luminance and to output
a second compensation luminance.
[0012] According to some embodiments, the second offset may be proportional to the temperature.
[0013] According to some embodiments, the second offset may have a constant value based
on the temperature being equal to or higher than a predetermined first value.
[0014] According to some embodiments, the driving controller may further include a ratio
output part configured to output an effective pixel ratio of the display panel and
may further include a third luminance compensation part configured to add a third
offset calculated based on the effective pixel ratio to the second compensation luminance
and to output a third compensation luminance.
[0015] According to some embodiments, the driving controller may control the display panel
to display the image based on the first compensation luminance, the second compensation
luminance and the third compensation luminance.
[0016] According to some embodiments, the effective pixel ratio may be a ratio of turned-on
pixels to the plurality of pixels, and the third offset may be proportional to the
effective pixel ratio.
[0017] According to some embodiments, the third offset may have a constant value based on
the effective pixel ratio being equal to or higher than a predetermined second value.
[0018] According to some embodiments of the present disclosure, in a display device luminance
compensation method for compensating luminance of an display device comprising a display
panel including a plurality of pixels and configured to display an image and a driving
controller configured to drive the display panel and receive an image signal, the
method includes generating a grayscale lookup table in which compensation luminance
according to grayscale is stored by using multi-time programming (MTP), outputting
a driving frequency of the display panel, outputting a target luminance and a target
grayscale of the image based on the image signal, outputting a first compensation
luminance based on the driving frequency, the target luminance, the target grayscale,
and the grayscale lookup table, and displaying the image based on the first compensation
luminance, wherein the driving frequency includes a first driving frequency and a
second driving frequency having a lower frequency than the first driving frequency,
the first compensation luminance includes a first frequency compensation luminance
output at the first driving frequency and a second frequency compensation luminance
output at the second driving frequency, and the second frequency compensation luminance
is higher than the first frequency compensation luminance.
[0019] According to some embodiments, a value obtained by adding a first offset to a luminance
corresponding to a portion of grayscale may be stored in the grayscale lookup table
at the second driving frequency compared to the grayscale lookup table at the first
driving frequency.
[0020] According to some embodiments, a luminance ratio may be a value obtained by dividing
a value obtained by subtracting a second luminance of the display panel driven at
the first driving frequency from a first luminance of the display panel driven at
the second driving frequency by the first luminance, and an absolute value of the
luminance ratio may be equal to or lower than 6 %.
[0021] According to some embodiments, the second frequency compensation luminance may be
a value obtained by adding the first offset to the first frequency compensation luminance.
[0022] According to some embodiments, the display device luminance compensation method may
include outputting a second compensation luminance which is obtained by adding a second
offset calculated based on a temperature of the display panel to the second frequency
compensation luminance.
[0023] According to some embodiments, the second offset may be proportional to the temperature,
and the second offset may have a constant value based on the temperature being equal
to or higher than a predetermined first value.
[0024] According to some embodiments, the display device luminance compensation method may
further include outputting a third compensation luminance obtained by adding a third
offset calculated based on an effective pixel ratio to the second compensation luminance.
[0025] According to some embodiments, the displaying of the image based on the first compensation
luminance may include generating image data based on the second compensation luminance
and the third compensation luminance.
[0026] According to some embodiments of the present disclosure, an electronic device includes
a display panel including a plurality of pixels and configured to display an image,
a driving controller configured to drive the display panel, and a processor configured
to drive the driving controller, wherein the driving controller includes a memory
part in which a grayscale lookup table is stored, a frequency determination part configured
to determine a driving frequency of the display panel, a luminance determination part
configured to determine a target luminance and a target grayscale of the image, and
a first luminance compensation part configured to output a first compensation luminance
based on the grayscale lookup table, the driving frequency, the target luminance,
and the target grayscale, the driving controller controls the display panel to display
the image based on the first compensation luminance, the driving frequency includes
a first driving frequency and a second driving frequency having a lower frequency
than the first driving frequency, the first compensation luminance includes a first
frequency compensation luminance output at the first driving frequency and a second
frequency compensation luminance output at the second driving frequency, and the second
frequency compensation luminance is higher than the first frequency compensation luminance.
[0027] All embodiments described in this specification may be advantageously combined with
one another to the extent that their respective features are compatible. In particular,
the expressions "according to an embodiment," "in an embodiment," "an embodiment of
the invention provides" etc. mean that the respective features may or may not be part
of specific embodiments of the present invention.
BRIEF DESCRIPTION OF THE DRAWINGS
[0028] The accompanying drawings are included to provide a further understanding of aspects
of some embodiments according to the present disclosure, and are incorporated in and
constitute a part of this specification. The drawings illustrate aspects of some embodiments
of the present disclosure and, together with the description, serve to explain aspects
of some embodiments of the present disclosure. In the drawings:
FIG. 1 is a block diagram of an electronic device according to some embodiments;
FIG. 2 is a schematic view of electronic devices according to some embodiments;
FIG. 3 is a block diagram of a display device according to some embodiments of the
present disclosure;
FIG. 4 illustrates driving frequencies according to a driving operation of an electronic
device according to some embodiments of the present disclosure;
FIG. 5 is a block diagram illustrating a driving controller according to some embodiments
of the present disclosure;
FIG. 6 is a flowchart showing aspects of a method for driving an electronic device
according to some embodiments of the present disclosure;
FIG. 7 is a graph showing a correlation between time, luminance and luminance ratio
according to some embodiments of the present disclosure;
FIG. 8 is a graph showing luminance ratio for each display panel according to some
embodiments of the present disclosure;
FIG. 9 is a block diagram illustrating a driving controller according to some embodiments
of the present disclosure;
FIG. 10 is a graph showing second offset versus temperature according to some embodiments
of the present disclosure;
FIG. 11 is a graph showing third offset versus effective pixel ratio according to
some embodiments of the present disclosure; and
FIG. 12 is a graph showing a correlation between time, luminance and luminance ratio
according to some embodiments of the present disclosure.
DETAILED DESCRIPTION
[0029] In this specification, it will be understood that when an element (or a region, a
layer, a portion, or the like) is referred to as being "on", "connected to" or "coupled
to" another element, it may be directly located on, connected to, or coupled to the
other element, or other elements may be located therebetween.
[0030] Like reference numerals or symbols refer to like elements throughout. In the drawings,
the thickness, ratio, and size of the elements are exaggerated for effectively describing
the technical contents. As used herein, the term "and/or" includes any and all combinations
of one or more of the associated listed elements.
[0031] It will be understood that, although the terms "first", "second", etc. may be used
herein to describe various elements, the elements are not to be limited by these terms.
These terms are only used to distinguish one element, component, region, layer or
section from another element, component, region, layer or section. For instance, a
first element, component, region, layer or section discussed below could be termed
a second element, component, region, layer or section without departing from the technical
scope of embodiments according to the present disclosure as defined by the appended
claims. Similarly, a second element, component, region, layer or section could be
termed a first element, component, region, layer or section. In this specification,
the singular expressions "a", "an" and "the" are intended to include the plural forms
as well, unless the context clearly indicates otherwise.
[0032] In addition, the terms "below", "under", "on the lower side", "above", "over", "on
the upper side", or the like may be used to describe the relationships between the
elements illustrated in the drawings. These terms are relative concepts and are described
based on the directions indicated in the drawings.
[0033] It will be further understood that the terms "comprises, includes, has" and/or "comprising,
including, having", when used in this specification, specify the presence of stated
features, numbers, steps, operations, elements, components or combinations thereof,
but do not preclude the possibility of the presence or addition of one or more other
features, numbers, steps, operations, elements, components, and/or combinations thereof.
[0034] Unless otherwise defined, all terms (including technical and scientific terms) used
herein have the same meaning as commonly understood by one of ordinary skill in the
art to which this invention belongs. It will be further understood that terms, such
as those defined in commonly used dictionaries, should be interpreted as having a
meaning that is consistent with their meaning in the context of the relevant art and
will not be interpreted in an idealized or overly formal sense unless expressly so
defined herein.
[0035] Hereinafter, aspects of some embodiments of the present disclosure are described
in more detail with reference to the drawings.
[0036] FIG. 1 is a block diagram of an electronic device according to some embodiments.
Referring to FIG. 1, an electronic device 10 according to some embodiments may include
a display module 11, a processor 12, a memory 13 and a power module 14.
[0037] The processor 12 may include at least one of a central processing unit (CPU), an
application processor (AP), a graphic processing unit (GPU), a communication processor
(CP), an image signal processor (ISP), or a controller.
[0038] Data information required for an operation of the processor 12 or the display module
11 may be stored in the memory 13. When the processor 12 executes an application stored
in the memory 13, an image data signal and/or an input control signal may be transferred
to the display module 11, and the display module 11 may process the provided signal
and output image information through a display screen.
[0039] The power module 14 may include a power supply module such as a power adaptor or
a battery device and a power conversion module which converts power supplied by the
power supply module and generates power required for an operation of the electronic
device 10.
[0040] At least one of the components of the electronic device 10 described above may be
included in a display device according to some embodiments of the present disclosure.
In addition, some of individual modules included in functionally one module may be
included in the display device, and the other thereof may be provided separately from
the display device. For example, the display device may include the display module
11, and the processor 12, the memory 13 and the power module 14 may be provided in
a form of another device in the electronic device 10, not the display device.
[0041] FIG. 2 is a schematic view of electronic devices according to some embodiments.
[0042] Referring to FIG. 2, various electronic devices to which a display device according
to some embodiments is applied may include not only an electronic device for displaying
images, such as a smartphone 10_1a, a tablet PC 10_1b, a laptop computer 10_1c, a
television 10_1d and a desk monitor 10_1e, but also a wearable electronic device including
a display module, such as smart glasses 10_2a, a head-mounted display 10_2b and a
smart watch 10_2c, automotive electronic devices 10_3 including a display module,
such as a center information display (CID) located on an instrumental panel, center
fascia, and a dashboard of an automobile and a room mirror display, and the like.
[0043] Hereinafter, a display device according to some embodiments of the present disclosure
and an electronic device including the display device are described with reference
to the drawings.
[0044] FIG. 3 is a block diagram of a display device according to some embodiments of the
present disclosure.
[0045] Referring to FIG. 3, the electronic device 10 (see FIG. 1) may include a display
device DD.
[0046] The display device DD may be activated in response to an electrical signal and display
an image IM. The display device DD may include various embodiments. For example, the
display device DD may include medium- and small-sized devices such as a monitor, a
mobile phone, a tablet computer, a navigation unit and a game console as well as large-sized
devices such as a television and an outdoor billboard. embodiments of the display
device DD are examples, and are not limited to any one without departing from the
technical scope of embodiments according to the present disclosure as defined by the
appended claims.
[0047] The display device DD according to some embodiments includes a display panel DP,
a driving controller 100, a data driving circuit 200, and a voltage generator 300.
[0048] The driving controller 100 may be provided with an image signal IDAT and a control
signal CTRL from an external host processor (for example, an application processor
(AP), a graphic processing unit (GPU) or a graphic card). The processor 12 (see FIG.
1) may include a host processor. According to some embodiments, the image signal IDAT
may be RGB image data including red image data, green image data and blue image data.
In addition, according to some embodiments, the control signal CTRL may include a
vertical synchronization signal, a horizontal synchronization signal, an input data
enable signal, a master clock signal, etc., but embodiments according to the present
disclosure are not limited thereto.
[0049] The host processor may provide the image signal IDAT including information about
a driving frequency VIFF (or a variable frame rate) to the driving controller 100,
and the driving controller 100 according to some embodiments of the present disclosure
may receive input image data including the driving frequency VIFF from the host processor.
According to some embodiments, the driving frequency VIFF may be changed to 120 hertz
(Hz) to 60 Hz (or about 120 Hz or about 60 Hz), but embodiments according to the present
disclosure are not limited thereto. The driving controller 100 may control the data
driving circuit 200, a scan driving circuit SD and an emission driving circuit EDC
so that the display panel DP is driven at the driving frequency VIFF. According to
some embodiments, a mode, in which the display panel DP is driven at the driving frequency
VIFF, of the display device DD may be referred to as a variable frame mode. For example,
the variable frame mode may be a Free-Sync mode, a G-Sync mode, a Q-Sync mode, etc.,
but is not limited thereto.
[0050] The driving controller 100 may drive the display panel DP. The driving controller
100 receives the image signal IDAT and the control signal CTRL. The driving controller
100 generates an image data signal DATA by converting data format of the image signal
IDAT to comply with specifications of interface with the data driving circuit 200.
The driving controller 100 outputs a scan control signal SCS, a data control signal
DCS and an emission driving signal ECS.
[0051] The data driving circuit 200 receives the data control signal DCS and the image data
signal DATA from the driving controller 100. The data driving circuit 200 converts
the image data signal DATA into data signals Vd and outputs the data signals Vd to
a plurality of data lines DL1 to DLm to be described in more detail later. The data
signals Vd are analog voltages corresponding to a grayscale value of the image data
signal DATA.
[0052] The voltage generator 300 generates voltages required for an operation of the display
panel DP. According to some embodiments, the voltage generator 300 generates a first
driving voltage ELVDD, a second driving voltage ELVSS, a first initialization voltage
VINT1 and a second initialization voltage VINT2.
[0053] The display panel DP according to some embodiments of the present disclosure may
be an emissive display panel and is not particularly limited. For example, the display
panel DP may be an organic light-emitting display panel, an inorganic light-emitting
display panel, a micro-LED display panel or a nano-LED display panel. An emission
layer of the organic light-emitting display panel may include an organic light-emitting
material. An emission layer of the inorganic light-emitting display panel may include
quantum dots, quantum rods, and the like. An emission layer of the micro-LED display
panel may include a micro-LED. An emission layer of the nano-LED display panel may
include a nano-LED.
[0054] The display panel DP includes scan lines GIL1 to GILn, GCL1 to GCLn, GWL1 to GWLn
and GBL1 to GBLn, emission control lines EML1 to EMLn, data lines DL1 to DLm and pixels
PX. The display panel DP may further include the scan driving circuit SD and the emission
driving circuit EDC. The display panel DP may display an image.
[0055] The display panel DP may be divided into a display region DA and a non-display region
NDA surrounding the display region DA. The pixels PX may be located in the display
region DA. The scan driving circuit SD and the emission driving circuit EDC may be
located in the non-display region NDA.
[0056] The plurality of pixels PX may each include a pixel driving circuit and a light-emitting
element connected to the pixel driving circuit. The pixel driving circuit may include
transistors including low-temperature polycrystalline silicon (LTPS).
[0057] According to some embodiments, the scan driving circuit SD is arranged on a first
side of the display panel DP. The scan lines GIL1 to GILn, GCL1 to GCLn, GWL1 to GWLn
and GBL1 to GBLn extend from the scan driving circuit SD in a first direction DR1.
[0058] The emission driving circuit EDC is arranged on a second side of the display panel
DP. The emission control lines EML1 to EMLn extend from the emission driving circuit
EDC in an opposite direction of the first direction DR1. The emission driving circuit
EDC receives the emission driving signal ECS from the driving controller 100 and outputs
emission control signals to the emission control lines EML1 to EMLn.
[0059] The scan lines GIL1 to GILn, GCL1 to GCLn, GWL1 to GWLn and GBL1 to GBLn and the
emission control lines EML1 to EMLn are arranged spaced apart from each other in a
second direction DR2. The data lines DL1 to DLm extend from the data driving circuit
200 in an opposite direction of the second direction DR2 and are arranged spaced apart
from each other in the first direction DR1.
[0060] The plurality of pixels PX are electrically connected to the scan lines GIL1 to GILn,
GCL1 to GCLn, GWL1 to GWLn and GBL1 to GBLn, the emission control lines EML1 to EMLn
and the data lines DL1 to DLm. Each of the plurality of pixels PX may be electrically
connected to four scan lines and one emission control line. For example, as illustrated
in FIG. 3, pixels of a first row may be connected to the scan lines GIL1, GCL1, GWL1
and GBL1 and the emission control line EML1. In addition, pixels of a j-th row may
be connected to the scan lines GILj, GCLj, GWLj and GBLj and the emission control
line EMLj.
[0061] Each of the plurality of pixels PX receives the first driving voltage ELVDD, the
second driving voltage ELVSS, the first initialization voltage VINT1 and the second
initialization voltage VINT2 from the voltage generator 300.
[0062] The scan driving circuit SD receives the scan control signal SCS from the driving
controller 100. The scan driving circuit SD may output scan signals to the scan lines
GIL1 to GILn, GCL1 to GCLn, GWL1 to GWLn and GBL1 to GBLn in response to the scan
control signal SCS.
[0063] FIG. 4 illustrates driving frequencies according to a driving operation of an electronic
device according to some embodiments of the present disclosure.
[0064] Referring to FIGS. 3 and 4, the display device DD may operate in a driving period
A and a scan period B. The display device DD may control the driving frequency VIFF
of the display panel DP through repeating the scan period B. The display device DD
may synchronize frame generation of a host processor included in the display device
DD and timing of frame output of the display panel DP. That is, the display panel
DP may operate at a variable frequency. In this case, the display panel DP may be
referred to as operating in a variable frequency mode. For example, when an operating
frequency of the display device DD is lowered in specific operating environment such
as displaying a static image, power consumption of the display device DD may be reduced.
[0065] The driving period A may be a period in which the plurality of pixels PX receive
the data signal Vd and emit light, and the scan period B may be a period in which
the plurality of pixels PX emit light without receiving the data signal Vd.
[0066] Each of the driving period A and the scan period B may be a period having a time
of 2.1 (or about 2.1) milliseconds (ms). That is, each of the driving period A and
the scan period B may have a frequency of 480 (or about 480) hertz (Hz). However,
this is an example, and a time of each of the driving period A and the scan period
B according to some embodiments of the present disclosure is not limited thereto.
For example, each of the driving period A and the scan period B may be a period having
a time of 4.2 (or about 4.2) milliseconds (ms).
[0067] When a graphic processing unit generates a frame having a refresh rate of 240 Hz
(or about 240 Hz), a scan driving circuit SD may control each of a period A and a
period B to be driven once in one frame so that the display panel DP operates at a
frequency of 240 (or about 240) Hz.
[0068] When the graphic processing unit generates a frame having a refresh rate of 120 (or
about 120) Hz, the scan driving circuit SD may control the driving period A to be
driven once and the scan period B to be driven three times in one frame so that the
display panel DP operates at a frequency of 120 (or about 120) Hz.
[0069] When the graphic processing unit generates a frame having a refresh rate of 60 (or
about 60) Hz, the scan driving circuit SD may control the driving period A to be driven
once and the scan period B to be driven seven times in one frame so that the display
panel DP operates at a frequency of 60 (or about 60) Hz. However, this is an example,
and the scan driving circuit SD may control ratio of the driving period A and the
scan period B and allow the display panel DP to operate at various frequencies.
[0070] FIG. 5 is a block diagram illustrating aspects of a driving controller according
to some embodiments of the present disclosure, and FIG. 6 is a flowchart showing aspects
of a method for driving an electronic device according to some embodiments of the
present disclosure. Although FIG. 6 illustrates various operations in a method for
driving an electronic device, embodiments according to the present disclosure are
not limited thereto, and according to various embodiments, the method may include
additional operations, or fewer operations, unless otherwise stated or implied, without
departing from the technical scope of embodiments according to the present disclosure
as defined by the appended claims.
[0071] Referring to FIGS. 1, 3, 5 and 6, the electronic device 10 may include the display
panel DP which includes the plurality of pixels PX and displays an image, and the
driving controller 100 which drives the display panel DP. The driving controller 100
may include a memory part (or memory or memory circuit or memory component) P1, a
frequency determination part (or frequency determiner or frequency determination circuit
or frequency determination component) P2, a luminance determination part (or luminance
determiner or luminance determination circuit or luminance determination component)
P3 and a first luminance compensation part (or first luminance compensator or first
luminance compensation circuit or first luminance compensation component) P4. For
example, the memory part P1, the frequency determination part P2, the luminance determination
part P3 and the first luminance compensation part P4 may be referred to as a first
driving part 100a.
[0072] A grayscale lookup table T1 generated from the outside may be stored in the memory
part P1 (S100). Compensation luminance by grayscale of the display panel DP, measured
using multi-time programming (MTP), is stored in the grayscale lookup table T1. The
multi-time programming may refer to an operation of repeatedly correcting reference
offset.
Table 1
| 20 nit(TL) |
Comparative lookup table |
Grayscale lookup table(T1) |
| GRAY(TG) |
120Hz(F1) |
60Hz(F2) |
120Hz(F1) |
60Hz(F2) |
| 255 |
20 |
20 |
20 |
20 |
| 48 |
0.5074 |
0.5074 |
0.5074 |
0.5074 |
| 32 |
0.2080 (FL1) |
0.2080 (FL2) |
0.2080 (FCL1) |
0.2080 + R1 (FCL2) |
| 24 |
0.1104 |
0.1104 |
0.1104 |
0.1104 + R1 |
[0073] Table 1 above is a comparative lookup table according to a comparative example of
the present disclosure and the grayscale lookup table T1 according to some embodiments
of the present disclosure.
[0074] In Table 1 above, 20 nit may refer to a target luminance TL. The target luminance
TL is a luminance of the display panel DP when the data signal Vd provided to the
plurality of pixels PX corresponds to a maximum grayscale. For example, when the target
luminance TL is 20, a luminance of the display panel DP at a grayscale level of 255
may be 20 nit.
[0075] In Table 1 above, GRAY may refer to a target grayscale TG. The target grayscale TG
may be defined as brightness of the image signal IDAT. The target grayscale TG may
be defined gradually from 0 to 255. For example, Table 1 above shows the target grayscale
TG having values of 255, 48, 32 and 24. For example, 255 and 48 may be referred to
as high grayscale, and 32 and 24 may be referred to as low grayscale.
[0076] In Table 1 above, 120 Hz and 60 Hz may refer to the driving frequency VIFF. The driving
frequency VIFF may include a first driving frequency F1 and a second driving frequency
F2 different from the first driving frequency F1. For example, the first driving frequency
F1 may be 120 Hz, and the second driving frequency F2 may be 60 Hz having a lower
frequency than the first driving frequency F1. The first driving frequency F1 may
be referred to as a high frequency, and the second driving frequency F2 may be referred
to as a low frequency.
[0077] In the comparative lookup table in Table 1 above, a luminance of the first driving
frequency F1 and a luminance of the second driving frequency F2 may be the same as
each other at the same target grayscale TG. That is, a first frequency luminance FL1
and a second frequency luminance FL2 may be the same as each other.
[0078] In Table 1 above, the lookup table T1 may store a first compensation luminance CL1
according to the target luminance TL and the target grayscale TG.
[0079] The first compensation luminance CL1 may include a first frequency compensation luminance
FCL1 output at the first driving frequency F1 and a second frequency compensation
luminance FCL2 output at the second driving frequency F2.
[0080] The first frequency compensation luminance FCL1 and the second frequency compensation
luminance FCL2 may be the same at the high grayscale, and the first frequency compensation
luminance FCL1 and the second frequency compensation luminance FCL2 may be different
from each other at the low grayscale. The second frequency compensation luminance
FCL2 may be higher than the first frequency compensation luminance FCL1 due to a first
offset R1 at the low grayscale.
[0081] When the display device DD operates in the variable frequency mode, the first offset
R1 may be applied at the low grayscale of the low frequency to relatively improve
luminance variation of the display panel DP between the high frequency and the low
frequency. The first frequency compensation luminance FCL1 and the first frequency
luminance FL1 corresponding to the high frequency may be the same (or substantially
the same). The second frequency compensation luminance FCL2 and the second frequency
luminance FL2 corresponding to the low frequency may be different.
[0082] When the target luminance TL is 20 nit and the target grayscale TG is 32, a value
obtained by adding the first offset R1 to the first frequency compensation luminance
FCL1 at 120 Hz may be stored as the second frequency compensation luminance FCL2 at
60 Hz in the grayscale lookup table T1. For example, when the target luminance TL
is 20 nit and the target grayscale TG is 32, the second frequency compensation luminance
FCL2 at 60 Hz in the grayscale lookup table T1 may be 0.2080 (or about 0.2080) plus
the first offset R1, and the first frequency compensation luminance FCL1 at 120 Hz
may be 0.2080 (or about 0.2080). In this case, the first compensation luminance CL1
at 120 Hz may be referred to as the first frequency compensation luminance FCL1, and
the first compensation luminance CL1 at 60 Hz may be referred to as the second frequency
compensation luminance FCL2. That is, the second frequency compensation luminance
FCL2 may be higher than the first frequency compensation luminance FCL1.
[0083] However, this is an example, and a value obtained by adding the first offset R1 to
the first frequency compensation luminance FCL1 at 120 Hz may be stored as the second
frequency compensation luminance FCL2 at 60 Hz in the grayscale lookup table T1 corresponding
to a portion of grayscale. The portion of grayscale may be low grayscale, and a luminance
corresponding to the portion of grayscale may be a low luminance region.
[0084] In addition, when the target luminance TL is 20 nit and the target grayscale TG is
48, the second frequency compensation luminance FCL2 at 60 Hz in the grayscale lookup
table T1 may be the same as the first frequency compensation luminance FCL1 at 120
Hz. For example, when the target luminance TL is 20 nit and the target grayscale TG
is 48, the second frequency compensation luminance FCL2 at 60 Hz in the grayscale
lookup table T1 may be 0.5074 (or about 0.5074), and the first frequency compensation
luminance FCL1 at 120 Hz may be 0.5074 (or about 0. 5074). That is, the first frequency
compensation luminance FCL1 and the second frequency compensation luminance FCL2 may
be the same at the high grayscale.
[0085] The frequency determination part P2 may output the driving frequency VIFF of the
display panel DP. (S200)
[0086] The luminance determination part P3 may determine the target luminance TL and the
target grayscale TG of an image based on the image signal IDAT. (S300)
[0087] The first luminance compensation part P4 may output the first compensation luminance
CL1 based on the grayscale lookup table T1, the driving frequency VIFF, the target
luminance TL and the target grayscale TG. (S400)
[0088] The display panel DP may display an image based on the first compensation luminance
CL1. The driving controller 100 may control the display panel DP to display an image
based on the first compensation luminance CL1. The image data signal DATA may be output
in consideration of the first compensation luminance CL1, and the plurality of pixels
PX may output an image based on the image data signal DATA. Thus, the electronic device
10 with relatively improved display quality may be provided.
[0089] According to some embodiments of the present disclosure, the driving controller 100
may correct variation in the amount of luminance by using the grayscale lookup table
T1. When the display device DD operates in the variable frequency mode, luminance
variation of the display panel DP may be relatively improved. Thus, the electronic
device 10 (see FIG. 1) with relatively improved display quality and a luminance compensation
method may be provided.
[0090] FIG. 7 is a graph showing a correlation between time, luminance and luminance ratio
according to some embodiments of the present disclosure.
[0091] Referring to FIGS. 3, 5 and 7, a horizontal axis indicates time, a main vertical
axis indicates luminance, and an auxiliary vertical axis indicates luminance ratio.
A unit of the luminance may be nit, a unit of the luminance ratio may be %, and a
unit of the time may be second. Graphs may indicate luminance or luminance ratio measured
by aging the display panel DP according to time indicated on the horizontal axis.
[0092] A first luminance L1 is a value obtained by measuring a luminance of the display
panel DP according to time, the luminance being corrected based on the first frequency
compensation luminance FCL1 and output at the first driving frequency F1. A second
luminance L2 is a value obtained by measuring a luminance of the display panel DP
according to time, the luminance being corrected based on the second frequency compensation
luminance FCL2 and output at the second driving frequency F2. A second comparative
luminance LL2 is a value obtained by measuring a luminance of the display panel DP
according to time, the luminance being output based on the second frequency luminance
FL2 at the second driving frequency F2. A comparative luminance ratio VRR may be defined
as a value obtained by dividing a value obtained by subtracting the second comparative
luminance LL2 from a first comparative luminance, which is output based on the first
frequency luminance FL1 at the first driving frequency F1, of the display panel DP
by the first comparative luminance.
[0093] A luminance ratio VRR-a may be defined as a value obtained by dividing a value obtained
by subtracting the second luminance L2 from the first luminance L1 by the first luminance
L1.
[0094] Individual data of the first luminance L1, the second comparative luminance LL2,
the second luminance L2, the comparative luminance ratio VRR, and the luminance ratio
VRR-a are indicated by circular, quadrangular, triangular, pentagonal, and star-shaped
markers, which are connected with lines, respectively.
[0095] The first luminance L1, the second comparative luminance LL2 and the second luminance
L2 may be interpreted based on the main vertical axis, and the comparative luminance
ratio VRR and the luminance ratio VRR-a may be interpreted based on the auxiliary
vertical axis.
[0096] The second luminance L2 may be different from the second comparative luminance LL2
output using the second frequency luminance FCL2 due to the first offset R1. The second
luminance L2 may be a value of luminance, which is corrected as the second frequency
compensation luminance FL2 obtained by adding the first offset R1 to the second frequency
luminance FL2 and output, of the display panel DP.
[0097] Accordingly, the second luminance L2 may have a shape of a graph in which the second
comparative luminance LL2 is moved in parallel in a direction of a vertical axis.
[0098] The comparative luminance ratio VRR may be obtained by measuring an electronic device
to which a luminance compensation method according to some embodiments of the present
disclosure is not applied.
[0099] The luminance ratio VRR-a may be obtained by measuring the electronic device 10 (see
FIG. 1) to which the luminance compensation method according to the present disclosure
is applied.
[0100] For example, when comparing respective absolute values of the comparative luminance
ratio VRR and the luminance ratio VRR-a with respect to the aged display panel DP,
the value may be relatively improved from 3.5% to 2.5% (or about 3.5 % to about 2.5
%).
[0101] The first luminance L1 may be affected by the first frequency compensation luminance
FCL1. The second luminance L2 may be affected by the second frequency compensation
luminance FCL2. An absolute value of the luminance ratio VRR-a may be used for quality
evaluation of the variable frequency mode. In a luminance compensation method of the
electronic device 10 (see FIG. 1) according to some embodiments of the present disclosure,
the display panel DP may be driven so that an absolute value of the luminance ratio
VRR-a is within a range (e.g., a set or predetermined range). For example, the range
(e.g., the predetermined range) may be 6% (or about 6 %).
[0102] According to the present disclosure, an absolute value of the luminance ratio VRR-a
may be smaller than that of the comparative luminance ratio VRR. When the display
device DD operates in the variable frequency mode, luminance variation of the display
panel DP between the high frequency and the low frequency may be relatively improved.
Thus, the electronic device 10 (see FIG. 1) with relatively improved display quality
and a luminance compensation method may be provided.
[0103] T1 bias is related to setting of a threshold voltage Vth of a driving transistor
of each of the plurality of pixels PX. When a voltage is applied to the driving transistor,
the voltage needs to be equal to or higher than a certain threshold voltage to allow
current to flow in the driving transistor. T1 Bias may refer to a bias voltage which
adjusts the threshold voltage and may change as time goes on. In particular, when
a panel is used for a long time, the threshold voltage may change due to a field effect
(charge trapping, hot carrier effect), and panel deterioration may occur.
[0104] Electroluminescent capacitor (EL Cap) serves to store charges to control emission
of a light-emitting element of each of the plurality of pixels PX. When the pixel
PX is driven, a capacitor may be repeatedly charged and discharged, and a luminance
of the display panel DP may be determined. An initialization period may be changed
as the driving frequency VIFF is changed. When the initialization period is long,
stress of an element may be less accumulated, whereas when the initialization period
is short, stress of an element may increase due to frequent charging and discharging
of the capacitor. In addition, as time goes on, charge storage capability of the capacitor
may be deteriorated, and panel deterioration may occur.
[0105] Unlike the present disclosure, the display panel DP may display an image at the first
comparative luminance and the second comparative luminance LL2 by using the first
frequency luminance FL1 and the second frequency luminance FL2 stored in the comparative
lookup table. The first comparative luminance and the second comparative luminance
LL2 may be similar to each other and a difference therebetween may not be significant
at an early stage, but when the display panel DP is aged, panel deterioration may
occur as time goes on due to variation in EL cap initialization period and T1 bias,
and the luminance variation may occur. That is, the amount of change in luminance
according to time at the low frequency may be smaller than the amount of change in
luminance according to time at the high frequency due to the panel deterioration.
Accordingly, luminance variation due to panel deterioration between the high frequency
and the low frequency may occur. However, according to the present disclosure, the
display panel DP may correct an image by using the second frequency compensation luminance
FCL2 stored in the grayscale lookup table T1, and the display panel DP may be displayed
at the second luminance L2. Thus, luminance variation due to panel deterioration between
the high frequency and the low frequency of the display panel DP may be relatively
improved. The electronic device 10 (see FIG. 1) with relatively improved display quality
may be provided.
[0106] FIG. 8 is a graph showing luminance ratio for each display panel according to some
embodiments of the present disclosure.
[0107] Referring to FIGS. 5, 7 and 8, box plot graphs are shown according to whether a luminance
compensation method according to some embodiments of the present disclosure is applied
or not. The graphs represent measurements of First Comparative Example PN1, Second
Comparative Example PN2, Third Comparative Example PN3, Fourth Comparative Example
PN4 and Example PN5. In this case, a vertical axis may refer to luminance ratio.
[0108] First Comparative Example PN1, Second Comparative Example PN2, Third Comparative
Example PN3 and Fourth Comparative Example PN4 each show luminance ratio obtained
by measuring an electronic device to which the luminance compensation method according
to some embodiments of the present disclosure is not applied.
[0109] Example PN5 shows luminance ratio obtained by measuring the electronic device 10
(see FIG. 1) to which the luminance compensation method according to some embodiments
of the present disclosure is applied. Example PN5 may have the luminance ratio VRR-a.
[0110] A box plot may include a Spear style and a Tukey style. The box plot is a data visualization
type, which shows distribution and an outlier of data at the same time, thereby making
it possible to easily compare data groups different from each other, and may process
and visualize data with a statistical concept which is five-number summary. The five-number
summary is a method in which data is represented using five kinds of statistics and
may include a minimum value Min, a maximum value Max, a first quartile Q1, a second
quartile Q2 (a median) and a third quartile Q3.
[0111] In the box plot, 50% (or about 50 %) of data is distributed above a second quartile,
and the remaining 50% (or about 50 %) is distributed below the second quartile. Each
piece of data is indicated by a dot having a shape. Data of First Comparative Example
PN1 is indicated in a circular shape, data of Second Comparative Example PN2 is indicated
in a quadrangular shape, data of Third Comparative Example PN3 is indicated in a triangular
shape, data of Fourth Comparative Example PN4 is indicated in a pentagonal shape,
and data of Example PN5 is indicated in a rhombic shape.
[0112] A line connected to both ends of a box is referred to as a whisker WH. The top of
the whisker WH is referred to as the maximum value Max, the bottom of the whisker
WH is referred to as the minimum value Min, and data indicated by a dot outside this
line is considered as an outlier which exhibits unusual distribution and is referred
to as an outlier Out. From the outlier Out at a lowermost end to the outlier Out at
an uppermost end may be considered as a range of data.
[0113] Unlike embodiments according to the present disclosure, absolute values of luminance
ratio measured in First Comparative Example PN1 to Fourth Comparative Example PN4
may not be defined within a range (e.g., a set or predetermined range). The outliers
Out of luminance ratio measured in First Comparative Example PN1 to Fourth Comparative
Example PN4 may be out of range. For example, the range (e.g., the set or predetermined
range) may be -6% (or about -6 %) to 6% (or about 6 %). A luminance ratio of one of
First Comparative Example PN1 to Fourth Comparative Example PN4 may be the comparative
luminance ratio VRR. However, according to some embodiments of the present disclosure,
the luminance ratio VRR-a measured in Example PN5 may be defined within the range
(e.g., the set or predetermined range). The outlier Out of the luminance ratio VRR-a
may not be out of range. An absolute value of the luminance ratio VRR-a may be smaller
than an absolute value of the comparative luminance ratio VRR. When the display device
DD operates in the variable frequency mode, luminance variation of the display panel
DP may be relatively improved. Thus, the electronic device 10 (see FIG. 1) with relatively
improved display quality and a luminance compensation method may be provided.
[0114] FIG. 9 is a block diagram illustrating a driving controller according to some embodiments
of the present disclosure. In describing with reference to FIG. 9, components described
with reference to FIG. 5 are denoted as the same reference numerals or symbols, and
some descriptions thereof may be omitted.
[0115] Referring to FIGS. 1, 3, 5 and 9, a driving controller 100-1 may include the first
driving part 100a (see FIG. 5). In addition, the driving controller 100-1 may further
include a temperature output part (or temperature output component or temperature
output circuit or temperature outputter) P5, a second luminance compensation part
(or second luminance compensator or second luminance compensation component or second
luminance compensation circuit) P6, a ratio output part (or ratio outputter or ratio
output circuit or ratio output component) P8, a third luminance compensation part
(or third luminance compensator or third luminance compensation component or third
luminance compensation circuit) P7, and an image output part (or image outputter or
image output component or image output circuit) P9. For example, the temperature output
part P5, the second luminance compensation part P6, the ratio output part P8, the
third luminance compensation part P7, and the image output part P9 may be referred
to as a second driving part 100b.
[0116] The temperature output part P5 may output a temperature T of the display panel DP.
[0117] The second luminance compensation part P6 may output a second compensation luminance
CL2 by using a second offset R2 (see FIG. 10) calculated based on the temperature
T of the temperature output part P5. This will be described later with reference to
FIG. 10.
[0118] The ratio output part P8 may output an effective pixel ratio OPR of the display panel
DP. The effective pixel ratio OPR may be a ratio of turned-on pixels to the plurality
of pixels PX. This will be described in more detail later with reference to FIG. 11.
[0119] The third luminance compensation part P7 may output a third compensation luminance
CL3 by using a third offset R3 (see FIG. 11) calculated based on the effective pixel
ratio OPR of the ratio output part P8.
[0120] The image output part P9 may control the display panel DP to display an image based
on the first compensation luminance CL1, the second compensation luminance CL2 and
the third compensation luminance CL3. An image data signal DATA may be output in consideration
of the first compensation luminance CL1, the second compensation luminance CL2 and
the third compensation luminance CL3, and the plurality of pixels PX may output an
image based on the image data signal DATA. That is, the driving controller 100-1 may
compensate luminance variation in consideration of the effective pixel ratio OPR and
the temperature T according to panel deterioration. Thus, the electronic device 10
with relatively improved display quality may be provided.
[0121] FIG. 10 is a graph showing second offset versus temperature according to some embodiments
of the present disclosure.
[0122] Referring to FIGS. 9 and 10, a horizontal axis indicates temperature of the display
panel DP (see FIG. 3). A vertical axis indicates the second offset R2 that is added
when the second compensation luminance CL2 is output.
[0123] A first graph GP1 may be stored in the second luminance compensation part P6. The
second luminance compensation part P6 may select the second offset R2 corresponding
to the temperature T which is received from the temperature output part P5 by using
the first graph GP1. The second luminance compensation part P6 may output the second
compensation luminance CL2 by using the second offset R2.
[0124] The second offset R2 may be proportional to the temperature T. For example, as the
temperature T of the display panel DP (see FIG. 3) increases, the second offset R2
may increase, and as the temperature T decreases, the second offset R2 may decrease.
[0125] The second offset R2 may have the same value (or a constant value) when the temperature
T is equal to or higher than a first value (e.g., a set or predetermined first value)
M1.
[0126] Unlike embodiments according to the present disclosure, when the temperature T does
not have a maximum value (e.g., a set or predetermined maximum value), compensation
due to the second offset exceeding the maximum value may occur. Accordingly, reversal
of luminance ratio may occur. However, according to some embodiments of the present
disclosure, the temperature T may have a maximum value (e.g., a set or predetermined
maximum value) in the first graph GP1. Reversal of the luminance ratio VRR-a may be
prevented, reduced, or removed. Thus, a luminance compensation method with relatively
improved reliability may be provided.
[0127] FIG. 11 is a graph showing second offset versus effective pixel ratio according to
some embodiments of the present disclosure.
[0128] Referring to FIGS. 9 and 11, a horizontal axis indicates the effective pixel ratio
OPR of the display panel DP (see FIG. 3). A vertical axis indicates the third offset
R3 added when the third compensation luminance CL3 is output.
[0129] A second graph GP2 may be stored in the third luminance compensation part P7. The
third luminance compensation part P7 may select the third offset R3 corresponding
to the effective pixel ratio OPR which is received from the ratio output part P8 by
using the second graph GP2. The third luminance compensation part P7 may output the
third compensation luminance CL3 by using the third offset R3.
[0130] The third offset R3 may be proportional to the effective pixel ratio OPR. For example,
as the effective pixel ratio OPR increases, the third offset R3 may increase, and
as the effective pixel ratio OPR decreases, the third offset R3 may decrease.
[0131] The third offset R3 may have the same value (or a constant value) when the effective
pixel ratio OPR is equal to or higher than a second value (e.g., a set or predetermined
second value) M2.
[0132] Unlike embodiments according to the present disclosure, when the effective pixel
ratio OPR does not have a maximum value (e.g., a set or predetermined maximum value),
compensation due to the third offset exceeding the maximum value may occur. Accordingly,
reversal of luminance ratio may occur. However, according to some embodiments of the
present disclosure, the effective pixel ratio OPR may have a maximum value (e.g.,
a set or predetermined maximum value) in the second graph GP2. Reversal of the luminance
ratio VRR-a may be prevented, reduced, or removed. Thus, a luminance compensation
method with relatively improved reliability may be provided.
[0133] FIG. 12 is a graph showing a correlation between compensation luminance and luminance
ratio according to some embodiments of the present disclosure. In describing with
reference to FIG. 12, components described with reference to FIG. 7 are denoted as
the same reference numerals or symbols, and some descriptions thereof may be omitted.
[0134] Referring to FIGS. 3, 9 and 12, a second luminance L2-b is a value obtained by measuring
a luminance, which is output based on the first compensation luminance CL1, the second
compensation luminance CL2 and the third compensation luminance CL3 at the second
driving frequency F2, of the display panel DP.
[0135] A luminance ratio VRR-b may be defined as a value obtained by dividing a value obtained
by subtracting the second luminance L2-b from a first luminance L1 by the first luminance
L1. Individual data of the second luminance L2-b is indicated by triangular markers,
which are connected with a line.
[0136] The second luminance L2-b may be different from a second comparative luminance LL2
output using the second frequency luminance FL2. The second luminance L2-b may be
a value of luminance, which is corrected as a value obtained by adding the second
offset R2 and the third offset R3 to the second frequency compensation luminance FCL2
and output, of the display panel DP.
[0137] The luminance ratio VRR-b may be obtained by measuring the electronic device 10 (see
FIG. 1) to which a luminance compensation method using the driving controller 100-1
according to some embodiments of the present disclosure is applied.
[0138] An absolute value of the luminance ratio VRR-b may be used for quality evaluation
of the variable frequency mode. In a luminance compensation method of the electronic
device 10 (see FIG. 1) according to some embodiments of the present disclosure, the
display panel DP may be driven so that an absolute value of the luminance ratio VRR-b
is within a range (e.g., a set or predetermined range). For example, the range (e.g.,
the set or predetermined range) may be 1.5% (or about 1.5 %).
[0139] According to some embodiments of the present disclosure, the driving controller 100-1
may compensate luminance variation in consideration of the effective pixel ratio OPR
and the temperature T according to panel deterioration. The plurality of pixels PX
may output an image based on the image data signal DATA output by the driving controller
100-1. In this case, when the luminance ratio VRR-b and a comparative luminance ratio
VRR are measured, an absolute value of the luminance ratio VRR-b may be smaller than
that of the comparative luminance ratio VRR. When the display device DD operates in
the variable frequency mode, luminance variation of the display panel DP between the
high frequency and the low frequency may be relatively improved. Thus, the electronic
device 10 (see FIG. 1) with relatively improved display quality and a luminance compensation
method may be provided.
[0140] According to the descriptions above, a driving controller may correct variation in
the amount of luminance by using a grayscale lookup table. A display panel may be
controlled to display an image based on a first compensation luminance stored in the
grayscale lookup table. An image data signal may be output in consideration of the
first compensation luminance, and a plurality of pixels may output an image based
on the image data signal.
[0141] Also for the case of panel deterioration according to temperature and an effective
pixel, the display panel may be controlled to display an image based on second and
third compensation luminance stored in the grayscale lookup table. Thus, an electronic
device with relatively improved display quality may be provided.
[0142] In addition, according to the descriptions above, temperature and effective pixel
ratio in a second graph may each have a maximum value (e.g., a set or predetermined
maximum value). Reversal of luminance ratio may be prevented, reduced, or removed.
Thus, a luminance compensation method with relatively improved reliability may be
provided.
[0143] In the above, description has been made with reference to aspects of some embodiments
of the present disclosure, but those skilled or of ordinary skill in the art may understand
that various modifications and changes may be made to the embodiments according to
the present disclosure insofar as such modifications and changes do not depart from
the technical scope of embodiments according to the present disclosure as defined
by the claims.
[0144] Therefore, the technical scope of embodiments according to the present disclosure
is not to be limited to the contents stated in the detailed description of the specification,
but is defined by the appended claims.
1. A display device (DD) comprising:
a display panel (DP) including a plurality of pixels (PX) and configured to display
an image; and
a driving controller (100, 100-1) configured to drive the display panel (DP),
wherein the driving controller (100, 100-1) comprises:
a memory (P1) in which a grayscale lookup table (T1) is stored;
a frequency determiner (P2) configured to determine a driving frequency (VIFF) of
the display panel (DP);
a luminance determiner (P3) configured to determine a target luminance (TL) and a
target grayscale (TG) of the image; and
a first luminance compensator (P4) configured to output a first compensation luminance
(CL1) based on the grayscale lookup table (T1), the driving frequency (VIFF), the
target luminance (TL), and the target grayscale (TG);
wherein the driving controller (100, 100-1) is configured to control the display panel
(DP) to display the image based on the first compensation luminance (CL1),
the driving frequency (VIFF) includes a first driving frequency (F1) and a second
driving frequency (F2) having a lower frequency than the first driving frequency (F1),
the first compensation luminance (CL1) includes a first frequency compensation luminance
(FCL1) output at the first driving frequency (F1) and a second frequency compensation
luminance (FCL2) output at the second driving frequency (F2), and
the second frequency compensation luminance (FCL2) is higher than the first frequency
compensation luminance (FCL1).
2. The display device (DD) of claim 1, wherein, in the grayscale lookup table (T1), the
first compensation luminance (CL1) by grayscale, measured using multi-time programming,
MTP, is stored,
the first frequency compensation luminance (FCL1) output at the first driving frequency
(F1) and the second frequency compensation luminance (FCL2) output at the second driving
frequency (F2) are stored as the first compensation luminance (CL1), and
a value obtained by adding a first offset (R1) to a luminance corresponding to a portion
of grayscale of the first frequency compensation luminance (FCL1) is stored as the
second frequency compensation luminance (FCL2).
3. The display device (DD) of claim 1 or 2,
wherein a luminance ratio (VRR) is a value obtained by dividing a value obtained by
subtracting a second luminance (L2) of the display panel (DP) driven at the first
driving frequency (F1) from a first luminance (L1) of the display panel (DP) driven
at the second driving frequency (F2) by the first luminance (L1), and an absolute
value of the luminance ratio (VRR) is equal to or lower than 6 %; and/or
wherein the second frequency compensation luminance (FCL2) is a value obtained by
adding the first offset (R1) to the first frequency compensation luminance (FCL1).
4. The display device (DD) of any one of the preceding claims, wherein the driving controller
(100, 100-1) further comprises:
a temperature outputter (P5) configured to output a temperature (T) of the display
panel (DP); and
a second luminance compensator (P6) configured to add a second offset (R2) calculated
based on the temperature (T) to the second frequency compensation luminance (FCL2)
and to output a second compensation luminance (CL2).
5. The display device (DD) of claim 4, wherein the second offset (R2) is proportional
to the temperature (T) or has a constant value based on the temperature (T) being
equal to or higher than a predetermined first value (M1).
6. The display device (DD) of claim 4 or 5, wherein the driving controller (100, 100-1)
further comprises:
a ratio outputter (P8) configured to output an effective pixel ratio (OPR) of the
display panel (DP); and
a third luminance compensator (P7) configured to add a third offset (R3) calculated
based on the effective pixel ratio (OPR) to the second compensation luminance (CL2)
and to output a third compensation luminance (CL3).
7. The display device (DD) of claim 6,
wherein the driving controller (100, 100-1) is configured to control the display panel
(DP) to display the image based on the first compensation luminance (CL1), the second
compensation luminance (CL2), and the third compensation luminance (CL3); and/or
wherein the effective pixel ratio (OPR) is a ratio of turned-on pixels (PX) to the
plurality of pixels (PX), and the third offset (R3) is proportional to the effective
pixel ratio (OPR) or has a constant value based on the effective pixel ratio (OPR)
being equal to or higher than a predetermined second value (M2).
8. A display device luminance compensation method, for compensating luminance of a display
device (DD) comprising a display panel (DP) including a plurality of pixels (PX) and
configured to display an image and a driving controller (100, 100-1) configured to
drive the display panel (DP) and receive an image signal (IDAT), comprising:
generating a grayscale lookup table (T1) in which compensation luminance according
to grayscale is stored by using multi-time programming, MTP;
outputting a driving frequency (VIFF) of the display panel (DP);
outputting a target luminance (TL) and a target grayscale (TG) of the image based
on the image signal (IDAT);
outputting a first compensation luminance (CL1) based on the driving frequency (VIFF),
the target luminance (TL), the target grayscale (TG), and the grayscale lookup table
(T1); and
displaying the image based on the first compensation luminance (CL1),
wherein the driving frequency (VIFF) includes a first driving frequency (F1) and a
second driving frequency (F2) having a lower frequency than the first driving frequency
(F1),
the first compensation luminance (CL1) includes a first frequency compensation luminance
(FCL1) output at the first driving frequency (F1) and a second frequency compensation
luminance (FCL2) output at the second driving frequency (F2), and
the second frequency compensation luminance (FCL2) is higher than the first frequency
compensation luminance (FCL1).
9. The display device luminance compensation method of claim 8, wherein a value obtained
by adding a first offset (R1) to a luminance corresponding to a portion of grayscale
is stored in the grayscale lookup table (T1) at the second driving frequency (F2)
compared to the grayscale lookup table (T1) at the first driving frequency (F1).
10. The display device luminance compensation method of claims 8 or 9,
wherein a luminance ratio (VRR) is a value obtained by dividing a value obtained by
subtracting a second luminance (L2) of the display panel (DP) driven at the first
driving frequency (F1) from a first luminance (L1) of the display panel (DP) driven
at the second driving frequency (F2) by the first luminance (L1), and an absolute
value of the luminance ratio (VRR) is equal to or lower than 6 %; and/or
wherein the second frequency compensation luminance (FCL2) is a value obtained by
adding the first offset (R1) to the first frequency compensation luminance (FCL1).
11. The display device luminance compensation method of any one of claims 8 to 10, comprising
outputting a second compensation luminance (CL2) which is obtained by adding a second
offset (R2) calculated based on a temperature (T) of the display panel (DP) to the
second frequency compensation luminance (FCL2).
12. The display device luminance compensation method of claim 11,
wherein the second offset (R2) is proportional to the temperature (T), and the second
offset (R2) has a constant value based on the temperature (T) being equal to or higher
than a predetermined first value (M2).
13. The display device luminance compensation method of claim 11 or 12, further comprising
outputting a third compensation luminance (CL3) obtained by adding a third offset
(R3) calculated based on an effective pixel ratio (OPR) to the second compensation
luminance (CL2).
14. The display device luminance compensation method of claim 13, wherein the displaying
of the image based on the first compensation luminance (CL1) comprises generating
image data based on the second compensation luminance (CL2) and the third compensation
luminance (CL3).
15. An electronic device (10) comprising:
a display device of any one of claims 1 to 7; and
a processor (12) configured to drive the driving controller (100, 100-1).