[0001] The invention relates to a driving circuit of a liquid crystal display and its relating
driving method according to the pre-characterizing clause of claim 1.
[0002] A liquid crystal display (LCD) has advantages of light weight, low power consumption,
and low divergence and is applied to various portable equipment such as notebook computers
and personal digital assistants (PDAs). In addition, LCD monitors and LCD televisions
are gaining in popularity as a substitute for traditional cathode ray tube (CRT) monitors
and televisions. However, an LCD does have some disadvantages. Because of the limitations
of physical characteristics, the liquid crystal molecules need to be twisted and rearranged
when changing input data, which can case the images to be delayed. For satisfying
the rapid switching requirements of multimedia equipment, improving the response speed
of liquid crystal is desired.
[0003] US 2003/0098839 A1 discloses a liquid crystal display and a driving method thereof, herein modification
image signals are generated by considering image signals for present and previous
frames, and then data voltages corresponding to the generated modification image signals
are supplied to the data lines. At this time, the value for modifying the present
frame image signal varies according to a modification parameter that is at least one
among the temperature, an image quality selected by a user and an environment of the
LCD.
[0004] US 2003/0063666 A1 discloses an apparatus and method for correcting gamma voltage and video data in
liquid crystal display.
[0005] US 6, 100,879 discloses a system and method for controlling an active matrix display.
[0006] US 6, 611, 249 B1 discloses a system and method for controlling the white balance and providing gamma
correction without compromising grey-scaled dynamic range in a flat panel liquid crystal
display.
[0007] US 5,910,796 discloses a computer-implemented method of performing gamma correction for a display
device.
[0008] EP 0 961 260 A2 discloses an input/output characteristic measurement method and apparatus for a display
device.
[0009] With these problems in mind, the present invention aims at providing a driving circuit
with an adjustable gamma and an LUT of an LCD along with the relating driving method
to solve the problem mentioned above.
[0010] This is achieved by the present invention as claimed in claim 1 that the present
invention provides a driving method of an LCD. The LCD comprises an LCD panel, the
LCD panel comprising a plurality of scan lines, a plurality of data lines; and a plurality
of pixels, each pixel being connected to a corresponding scan line and a corresponding
data line, and each pixel comprising a switching device connected to the corresponding
scan line and the corresponding data line, wherein the driving method comprises: (a)
applying scan voltages to the scan lines; (b) receiving image data from an image signal
terminal; (c) delaying the image data for a frame period in order to generate delayed
image data; characterized by: (d) selecting a table from a standard table, which stores
overdrive image data corresponding to different combinations of current image data
and delayed image data and which reflects a gamma of 1, and a plurality of tables,
which reflect overdrive image data adjusted to a specific gamma, respectively, according
to a specific gamma; and (e) electing an overdrive image data value from the selected
table according to the current image data actually received at the image signal terminal
and the delayed image data received one frame period earlier at the image signal terminal,
and generating a data line voltage according to the overdrive image data value, applying
the generated data line voltage on a corresponding data line.
[0011] Further, this is achieved by the present invention as claimed in claim 5 that the
present invention provides a driving circuit for driving an LCD, the LCD comprising
an LCD panel, the liquid crystal panel comprises: a plurality of scan lines; a plurality
of data lines; and a plurality of pixels, each pixel being connected to a corresponding
scan line and a corresponding data line, and each pixel having a switching device
connected to the corresponding scan line and the corresponding data line; wherein
the driving circuit comprises: a scan line driving circuit for applying scan voltages
to the scan lines; an image signal terminal for receiving image data; an image memory
for storing the image data and delaying the image data for a frame period; a memory
for storing a plurality of tables; characterized by: a selector for selecting a table
from the pl.urality of tables according to a specific gamma, wherein one of the tables
is a standard table, which reflects a gamma of 1; a look up table for selecting an
overdrive image data value from the selected table according to current image data
actually received at the image signal terminal and delayed image data received one
frame earlier at the image signal terminal; and a data line driving circuit for generating
a data voltage according to the overdrive image data value and applying the data voltage
to a corresponding data line.
[0012] The invention is illustrated by way of example with reference to the accompanying
drawings, in which
Fig.1 is a timing diagram of pixel voltage and transmission rate according to prior
art,
Fig.2 is a timing diagram of pixel voltage and transmission rate according to prior
art using an over-driving method,
Fig. 3 is a circuit diagram of a typical LCD,
Fig.4 is a block diagram of a driving circuit according to the present invention,
Fig.5 illustrates a table used by the LUT in Fig. 4,
Fig.6 illustrates the measured reaction curves of the LCD panel,
Fig.7 illustrates the method to determine overdrive image data in the table, and
Fig.8 illustrates a table in Fig.5 whose gamma is adjusted.
[0013] The prior art is disclosed in
U.S. published application No. 2002/0050965. The
U.S. published application No. 2002/0050965 discloses an over-driving method using a brief table to store the over-driving image
data. The brief table only includes part of the over-driving image data for driving
the pixels switched from one gray scale to another. When the driving circuit receives
the image data from the input terminal, a processor is used to perform an interpolation
operation to expand the brief table. Hence, an extra algorithm is needed in the conventional
over-driving method. The effect of using an extra algorithm is that it will slow down
the response speed.
[0014] Please refer to Fig.1, which is a timing diagram of the pixel voltage and the transmission
rate V1 according to a prior art LCD. In Fig.1, the pixel voltage is shown with the
straight lines, and the transmission rate V1 is shown with a dotted line. In Fig.1,
frame N means a frame period, and frame N+1, N+2... mean the following frame periods.
Due to the physical characteristics of liquid crystal molecules, when the pixel voltage
is switched from a data voltage C1 to a data voltage C2, , the liquid crystal molecules
cannot be twisted to a predetermined angle within a single frame period, resulting
in failure to perform at a predetermined transmission rate. As the curve of the transmission
rate V1 shows, the transmission rate V1 cannot reach a predetermined transmission
rate until the frame period of frame N+2. The delayed response-time will cause blurring
on the LCD.
[0015] An over-driving method is utilized to improve the response-time. Please refer to
Fig.2, which is a timing diagram of the pixel voltage and the transmission rate V2
according to a prior art LCD using an over-driving method. When the pixel voltage
is switched from the data voltage C1 to the data voltage C2, an over-driving data
voltage C3 is added to accelerate the response speed of the liquid crystal molecules.
Since a higher data voltage can obtain a faster response speed of the liquid crystal
molecules, a data voltage C3 that is higher than the data voltage C2 can improve the
response-time enough to reach the predetermined transmission rate in a single frame
period. As Fig.2 shows, the curve of the transmission rate V2 reaches the predetermined
transmission rate in frame N.
[0016] In addition, there is no description relating to the adjustment of gamma of an LCD.
In the prior art, the overdrive and adjustment of gamma depend respectively on two
different circuits, which complicates the whole circuit.
[0017] Hereby the operation of an LCD is described in advance. Please refer to Fig.3, which
is a circuit diagram of a typical LCD 30. The LCD 30 comprises an LCD panel 31, and
the LCD panel 31 includes a plurality of scan lines 32, a plurality of data lines
34, and a plurality of pixels 36. Each pixel 36 is connected to a corresponding scan
line 32 and a corresponding data line 34, and each pixel 36 has a switching device
38 and a pixel electrode 39. The switching device 38 is connected to the corresponding
scan line 32 and the corresponding data line 34. To drive the LCD 30, scan voltages
are applied to the scan lines 32 to turn on the switching devices 38, and data voltages
are applied to the data lines 34 and transmitted to the pixel electrodes 30 through
the switching devices 38. Therefore, when the scan voltages are applied to the scan
lines 32 to turn on the switching devices 38, the data voltages on the data lines
34 will charge the pixel electrodes 39 through the switch devices 38 thereby, twisting
the liquid crystal molecules. When the scan voltages on the scan lines 32 are removed
to turn off the switching devices 38, the data lines 34 and the pixels 36 will disconnect,
and the pixel electrodes 39 will remain charged. The scan lines 32 turn the switching
devices 38 on and off repeatedly so that the pixel electrodes 39 can be repeatedly
charged. Different data voltages cause different twisting angles and show different
transmission rates. Hence, the LCD 30 displays various images.
[0018] Please refer to Fig.4, which is a block diagram of a driving circuit according to
the present invention. The driving circuit 40 is for driving the LCD 30 in Fig.3.
The driving circuit 40 includes an image signal terminal 42, a memory controller 44,
an image memory 46, an LUT 48, a memory 50, a table selector 54, a data line driving
circuit 56, and a thermal sensor 58. In the present embodiment, the image signal terminal
42 respectively transmits 8-bit image data of red, greed and blue (RGB) to the memory
controller 44 and the LUT 48. Each group of image data is for controlling the gray
scale value of the pixel 30 in red, green or blue. Each color has 256 (2
8) gray scales, so that 24 (8*3) bits of image data are required to determine the properties
of each pixel 30.
[0019] In the present embodiment, one (image data D8) of the 3 groups of image data is used
for a further description. First, the image signal terminal 42 transmits the 8-bit
image data D8 to the memory controller 44 and the LUT 48. Continuously, the memory
controller 44 transmits the image data D8 to the image memory 46 to store, delays
the image data D8 for a frame period, and then reads the image data D8 out from the
image memory 46 and transmits them to the LUT 48. The image data D8 delayed for a
frame period is hereby defined as delayed image data D8'. Therefore, the delayed image
data D8' and the image data D8 belong to two different frames, and these two image
data D8' and D8 are input from the image signal terminal 42 in sequence at an interval
of a frame period.
[0020] The memory 50 stores a plurality of parameter tables 52. Each table 52 corresponds
to different gammas. The driving circuit 40 can select the proper table 52 to use
as the LUT 48 to drive the LCD panel 31 according to the gamma. For this reason, a
table selector 54 is used to select a table 60 from the plurality of tables 52 according
to the gamma and send it to the LUT 48.
[0021] Please refer to Fig.5 showing a table 60 used by the LUT 48 in Fig.4. The table 60
stores (2
8 x 2
8) pieces of 8-bit overdrive image data 62. Each piece of image data 62 corresponds
to different combinations of the current image data D8 and the delayed image data
D8'. The LUT 48 selects an image data value 62 from the table 60, selected by the
table selector 54, according to the current image data D8 and the delayed image data
D8' and then sends it to the data line driving circuit 56. Continuously, the data
line driving circuit 56 generates a data line voltage according to the image data
value 62 output from the LUT 48 and applies it to a corresponding data line 34. Take
for instance the situation where the delayed image data D8' is 128 and the current
image data D8 is 180, i.e. the corresponding pixel 36 is switched from gray scale
128 to gray scale 180. In this case the LUT 48 selects the image data value 62 with
a value of 210 from the table 60 according to the current image data D8 and the delayed
image data D8'. In response, the data line driving circuit 56 generates a data line
voltage corresponding to the image data value 62 with a value of 210 and applies it
to the corresponding data line 34. In addition, please notice that the selected image
data value 62 is larger than the value of the current image data D8 (i.e. 210>180),
which means the driving circuit 40 overdrives the pixel 36.
[0022] Additionally, in contrast to the prior art, which uses a processor to extract values
in a table by interpolation, the image data values in the tables 52 according to the
present invention are previously stored in the memory 50. Therefore, the driving circuit
40 according to the present invention does not require the processor for extraction
as in the prior art. The image data values in the tables 52 are obtained by measuring
the LCD panel 31 so that the driving circuit 40 can overdrive the LCD panel 31 correctly
without an operation such as interpolation as in the prior art. Please refer to Fig.6
showing the measurement of reaction curves of the LCD panel 31. Before determining
the overdrive image data in the table 52, reaction curves representing a pixel 36
switching from any gray scale value to other gray scale values in a frame period t
can be measured. Fig.6 shows the reaction curves C0∼C255 representing the pixel 36
switching from a gray scale value 128 to any other gray scale values (0∼255). In the
case of measuring the LCD panel 31 used in the above examples, since the pixel 36
is switched among 256 gray scales, there are 256 reaction curve diagrams like Fig.
6 shown respectively for the pixel 36 switching from one gray scale value (0∼225)
to other gray scale values within a frame period t.
[0023] Please refer to Fig.7 showing the method used to determine overdrive image data in
the table 52. Take a pixel 36 switched from gray scale value 128 to gray scale value
180 for an example. As shown in Fig.7, if the pixel electrode 39 of the pixel 36 is
subject to a data voltage corresponding to gray scale 180, the gray scale is not able
to reach 180 in a frame period t. Thus, an overdrive voltage is required to be applied
to the pixel electrode 39 of the pixel 36. Therefore, the data voltage required to
have the pixel electrode 39 of the pixel 36 switch from the gray scale value 128 to
180 in a frame period can be known by using the reaction curves C0∼C225 in Fig.6.
The method to determine overdrive image data is as follows:
- (1) Find an intersection A (as shown in Fig.7) between a vertical line of frame period
t and a horizontal line of the gray scale value 180 in Fig.6; and
- (2) Determine which one of the reaction curves C0∼C225 is closer to A. Image data
(or gray scale value) corresponding to the reaction curve closer to A is the required
overdrive image data.
[0024] In the said example, since the reaction curve corresponding to image data 210 passes
A, the required overdrive image data for the pixel 36 switched from gray scale value
128 to 180 is 210. Moreover, each table 50 stores (2
8 x 2
8) 8-bit overdrive image data, and each piece of the image data is obtained by measuring
the LCD panel 31. In addition, please notice that during the gray scale switching
of the pixel 36, if the difference between two neighboring gray scales is too large
(e.g. 128 to 255) so that the switching cannot be completed in a frame period t, the
overdrive data value will be 0 or 255, wherein 0 is for a high gray scale value to
a low gray scale value, and 255 is for a low gray scale value to a high gray scale
value.
[0025] In addition, the table 60 in Fig.5 obtained by measurement is defined as a standard
table. The overdrive image data 62 in the column along a diagonal line 64 from the
upper-left to the lower-right equals to the corresponding delayed image data D8' and
the corresponding image data D8. That means the gamma of the table 60 has not been
adjusted, i.e. the gamma corresponding to the table 60 is 1. Compared with the table
60 in Fig.6, Fig.8 shows a table 70 whose gamma has been adjusted. Being the same
as the standard table 60, the table 70 is selected from the plurality of tables 52
in the memory 50, and it stores a plurality of overdrive image data 72 for the LUT
48. The difference is that in the table 70, the gamma is adjusted so that all the
overdrive image data 72 in the columns along the diagonal line 74 do not necessarily
equal to the corresponding delayed image data D8' and the corresponding image data
D8. Moreover, the overdrive image data 72 in the table 70 is relative to the overdrive
image data 62 in the table 60 because the overdrive image data 72 is obtained through
the following steps:
- (1) Measure an adjustment gray scale value of every gray scale value of the pixel
36 for a specific gamma. Take the table 70 for example. Now measure all the overdrive
image data 72 in the columns along the diagonal line 74; and
- (2) Solve other overdrive image data 72 to fill in the rest of the table (i.e. the
spaces not along the diagonal) by using the adjustment gray scale value and the standard
table 60. To solve for an image data value 72 on the table 70, find the diagonal image
data 72 located on the same row i.e. D8' as the image data 72 that needs to be solved.
Replace the D8' coordinate with the diagonal image data 72 value and look up the value
using the new coordinates on the standard table 60. The image data value 62 located
at the new coordinates is the value of the image data 72 to be solved. Take the overdrive
image data 72 located at (D8', D8) = (2, 1) in the table 70 for example. The overdrive
image data 72 in the column along the diagonal line 74 and on the same line as (2,1)
has an the image data value of 3. Replacing the old D8' coordinate (2) with the image
data value of 3, the new coordinates become (3,1) after adjustment. Using the new
coordinates on table 60, it is found that the image data 62 has a value of 1. By this
way, it can be known that the overdrive image data 72 (D8', D8) = (2, 1) in the table
70 is equal to the overdrive image data 62 (D8', D8) = (3, 1) in the table 60, the
overdrive image data being equal to 1.
[0026] Moreover, tables 50 corresponding to other gammas can be generated according to the
method mentioned above. Measure overdrive image data in columns along a diagonal line
of each table 50, and then solve other overdrive image data according to the standard
table 60 and the overdrive data in the columns along the diagonal line.
[0027] Additionally, when the liquid crystal molecules are twisted according to data voltage
change, the response time of the twisting differs according to the temperature of
the LCD panel 31. For better performance under various temperature, the driving circuit
40 selects the table according to the temperature of the LCD panel 31 by generates
temperature compensation signals St sending them to the table selector 54 so that
the table selector 54 selects a table from the plurality of tables 52 stored in the
memory 50, according to both gamma and the temperature compensation signals St, and
transmits the selected table to the LUT 48.
[0028] In contrast to the prior art, the tables according to the present invention are built
by actually measuring the over-driving voltages needed for properly driving the liquid
crystal panel within a frame period. The tables include all the over-driving image
data that drives the pixels from any gray scale to another so that the processor used
to extract the brief table is no longer required. Additionally, the driving circuit
and the driving method of the present invention is capable of selecting different
tables according to gamma and temperature of the LCD panel for the LUT.
[0029] Those skilled in the art will readily observe that numerous modifications and alterations
of the device and method may be made while retaining the teachings of the invention.
Accordingly, the above disclosure should be construed as limited only by the scope
of the appended claims.
1. A driving method of a liquid crystal display (LCD) (30), the LCD (30) comprising:
an LCD panel (31), the LCD panel (31) comprising:
a plurality of scan lines (32);
a plurality of data lines (34); and
a plurality of pixels (36), each pixel (36) being connected to a corresponding scan
line (32) and a corresponding data line (34), and each pixel (36) comprising a switching
device (38) connected to the corresponding scan line (32) and the corresponding data
line (34);
wherein the driving method comprises:
(a) applying scan voltages to the scan lines (32);
(b) receiving image data from an image signal terminal (42);
(c) delaying the image data for a frame period in order to generate delayed image
data;
characterized by:
(d) selecting a table (70) from a standard table (60), which stores overdrive image
data (62) corresponding to different combinations of current image data (D8) and delayed
image data (D8') and which reflects a gamma of 1, and a plurality of tables (52),
which reflect overdrive image data adjusted to a specific gamma, respectively, according
to a specific gamma; and
(e) selecting an overdrive image data value from the selected table (70) according
to the current image data actually received at the image signal terminal (42) and
the delayed image data received one frame period earlier at the image signal terminal
(42), and generating a data line voltage according to the overdrive image data value,
applying the generated data line voltage on a corresponding data line (34).
2. The driving method of claim 1
characterized in that the driving method further comprises:
(f) measuring reaction curves representing the switching of the pixels (36) of the
LCD panel (31) from any gray scale value to other gray scale values in a frame period
to generate the standard table (60) according to the reaction curves measured.
3. The driving method of claim 2
characterized in that the driving method further comprises:
(g) measuring adjustment gray scale values of every gray scale value of the pixels
(36) for different specific gammas; and
(h) generating the plurality of tables (52) according to the adjustment gray scale
values and the standard table (60);
4. The driving method of claim 1
characterized in that the driving method further comprises:
(i) generating temperature compensation signals according to temperature of the LCD
panel (31), which compensate the differing of the response time of the twisting of
the liquid crystal molecules according to the temperature of the LCD panel (31); and
(j) selecting the table (70) from the standard table (60) and the tables (52) according
to the specific gamma and the temperature compensation signals, in step (d).
5. A driving circuit for driving an LCD (30), the LCD (30) comprising:
an LCD panel (31), the liquid crystal panel (31) comprising:
a plurality of scan lines (32);
a plurality of data lines (34); and
a plurality of pixels (36), each pixel (36) being connected to a corresponding scan
line (32) and a corresponding data line (34), and each pixel (36) having a switching
device (38) connected to the corresponding scan line (32) and the corresponding data
line (34);
wherein the driving circuit (40) comprises:
a scan line driving circuit for applying scan voltages to the scan lines (32);
an image signal terminal (42) for receiving image data;
an image memory (46) for storing the image data and delaying the image data for a
frame period;
a memory (50) for storing a plurality of tables (52);
characterized by:
a selector (54) for selecting a table (70) from the plurality of tables (52) according
to a specific gamma, wherein one of the tables is a standard table, which reflects
a gamma of 1;
a look up table (48) for selecting an overdrive image data value from the selected
table (70) according to current image data actually received at the image signal terminal
(42) and delayed image data received one frame earlier at the image signal terminal
(42); and
a data line driving circuit (56) for generating a data voltage according to the overdrive
image data value and applying the data voltage to a corresponding data line (34).
6. The driving circuit of claim 5 characterized in that the driving circuit (40) further comprises a thermal sensor (58) for sensing temperature
of the LCD panel(31) and generating temperature compensation signals according to
the temperature, and the selector (54) selecting the table (70) from the plurality
of tables (52) stored in the memory (50) according to gamma and the temperature compensation
signals, which compensate the differing of the response time of the twisting of the
liquid crystal molecules according to the temperature of the LCD panel (31).
1. Ansteuerverfahren für eine Flüssigkristallanzeige (LCD) (30), wobei die LCD (30) umfasst:
ein LCD-Panel (31), wobei das LCD-Panel (31) umfasst:
eine Vielzahl von Abtastleitungen (32);
eine Vielzahl von Datenleitungen (34); und
eine Vielzahl von Pixeln (36), wobei jedes Pixel (36) mit einer korrespondierenden
Abtastleitung (32) und einer korrespondierenden Datenleitung (34) verbunden ist, und
jedes Pixel (36) eine Schaltvorrichtung (38) umfasst, die mit der korrespondierenden
Abtastleitung (32) und der korrespondierenden Datenleitung (34) verbunden ist;
wobei das Ansteuerverfahren umfasst:
(a) Anlegen von Abtastspannungen an die Abtastleitungen (32);
(b) Empfangen von Bilddaten von einem Bildsignalanschluss (42);
(c) Verzögern der Bilddaten für eine Vollbild-Periode, um verzögerte Bilddaten zu
erzeugen;
gekennzeichnet durch:
(d) Auswählen einer Tabelle (70) aus einer Standardtabelle (60), welche Übersteuerungs-Bilddaten
(62), die zu verschiedenen Kombinationen von aktuellen Bilddaten (D8) und verzögerten
Bilddaten (D8') korrespondieren, speichert, und welche eine Kontraststärke 1 reflektiert,
und einer Vielzahl von Tabellen (52), welche die Übersteuerungs-Bilddaten reflektieren,
die jeweils gemäß einer bestimmten Kontraststärke auf eine bestimmte Kontraststärke
eingestellt sind; und
(e) Auswählen eines Übersteuerungs-Bilddatenwerts aus der ausgewählten Tabelle (70)
gemäß den aktuellen Bilddaten, die derzeitig am Bildsignalanschluss (42) empfangen
werden, und den verzögerten Bilddaten, die eine Vollbild-Periode früher am Bildsignalanschluss
(42) empfangen wurden, und Erzeugen einer Datenleitungsspannung gemäß dem Übersteuerungs-Bilddatenwert,
wobei die erzeugte Datenleitungsspannung an eine korrespondierende Datenleitung (34)
angelegt wird.
2. Ansteuerverfahren nach Anspruch 1,
dadurch gekennzeichnet, dass das Ansteuerverfahren ferner umfasst:
(f) Messen von Reaktionskurven, welche das Umschalten der Pixel (36) des LCD-Panels
(31) von einem beliebigen Graustufenwert zu anderen Graustufenwerten in einer Vollbild-Periode
darstellen, um die Standardtabelle (60) gemäß den gemessenen Reaktionskurven zu erzeugen.
3. Ansteuerverfahren nach Anspruch 2,
dadurch gekennzeichnet, dass das Ansteuerverfahren ferner umfasst:
(g) Messen von Korrektur-Graustufenwerten jedes Graustufenwerts der Pixel (36) für
verschiedene bestimmte Kontraststärken; und
(h) Erzeugen der Vielzahl von Tabellen (52) gemäß den Korrektur-Graustufenwerten und
der Standardtabelle (60).
4. Ansteuerverfahren nach Anspruch 1,
dadurch gekennzeichnet, dass das Ansteuerverfahren ferner umfasst:
(i) Erzeugen von Temperaturkompensationssignalen gemäß der Temperatur des LCD-Panels
(31), welche den Unterschied der Reaktionszeit des Drehens der Flüssigkristallmoleküle
gemäß der Temperatur des LCD-Panels (31) ausgleichen; und
(j) Auswählen der Tabelle (70) aus der Standardtabelle (60) und den Tabellen (52)
gemäß der bestimmten Kontraststärke und den Temperaturkompensationssignalen in Schritt
(d).
5. Ansteuerschaltkreis zum Ansteuern einer LCD (30), wobei die LCD (30) umfasst:
ein LCD-Panel (31), wobei das Flüssigkristallpanel (31) umfasst:
eine Vielzahl von Abtastleitungen (32);
eine Vielzahl von Datenleitungen (34); und
eine Vielzahl von Pixeln (36), wobei jedes Pixel (36) mit einer korrespondierenden
Abtastleitung (32) und einer korrespondierenden Datenleitung (34) verbunden ist, und
jedes Pixel (36) eine Schaltvorrichtung (38) umfasst, die mit der korrespondierenden
Abtastleitung (32) und der korrespondierenden Datenleitung (34) verbunden ist;
wobei der Ansteuerschaltkreis (40) umfasst:
einen Abtastleitung-Ansteuerschaltkreis zum Anlegen von Abtastspannungen an die Abtastleitungen
(32);
einen Bildsignalanschluss (42) zum Empfangen von Bilddaten;
einen Bildspeicher (46) zum Speichern der Bilddaten und zum Verzögern der Bilddaten
für eine Vollbild-Periode;
einen Speicher (50) zum Speichern einer Vielzahl von Tabellen (52);
gekennzeichnet durch:
eine Auswahlvorrichtung (54) zum Auswählen einer Tabelle (70) aus der Vielzahl von
Tabellen (52) gemäß einer bestimmten Kontraststärke, wobei eine der Tabellen eine
Standardtabelle ist, die eine Kontraststärke von 1 reflektiert;
eine Nachschlagetabelle (48) zum Auswählen eines Übersteuerungs-Bilddatenwerts aus
der ausgewählten Tabelle (70) gemäß aktuellen Bilddaten, die derzeitig am Bildsignalanschluss
(42) empfangen werden, und verzögerten Bilddaten, die ein Vollbild früher am Bildsignalanschluss
(42) empfangen wurden; und
einen Datenleitung-Ansteuerschaltkreis (56) zum Erzeugen einer Datenspannung gemäß
dem Übersteuerungs-Bilddatenwert und Anlegen der Datenspannung an eine korrespondierende
Datenleitung (34).
6. Ansteuerschaltkreis nach Anspruch 5, dadurch gekennzeichnet, dass der Ansteuerschaltkreis (40) ferner einen Wärmesensor (58) zum Messen der Temperatur
des LCD-Panels (31) und zum Erzeugen von Temperaturkompensationssignalen gemäß der
Temperatur umfasst, und die Auswahlvorrichtung (54) die Tabelle (70) aus der Vielzahl
der im Speicher (50) gespeicherten Tabellen (52) gemäß der Kontraststärke und den
Temperaturkompensationssignalen auswählt, welche den Unterschied der Reaktionszeit
des Drehens der Flüssigkristallmoleküle gemäß der Temperatur des LCD-Panels (31) ausgleichen.
1. Procédé de commande d'un afficheur à cristaux liquides (LCD) (30), le LCD (30) comprenant
:
un panneau LCD (31), le panneau LCD (31) comprenant :
dans lequel le procédé de commande comprend les étapes consistant à :
une pluralité de lignes de balayage (32) ;
une pluralité de lignes de données (34) ; et
une pluralité de pixels (36), chaque pixel (36) étant connecté à une ligne de balayage
(32) correspondante et à une ligne de données (34) correspondante, et chaque pixel
(36) comprenant un dispositif de commutation (38) connecté à la ligne de balayage
(32) correspondante et à la ligne de données (34) correspondante ;
(a) appliquer des tensions de balayage aux lignes de balayage (32) ;
(b) recevoir des données d'image à partir d'une borne de signal d'image (42) ;
(c) retarder les données d'image pendant une période de trame afin de générer des
données d'image retardées ;
caractérisé par les étapes consistant à :
(d) sélectionner une table (70) parmi une table standard (60), qui mémorise des données
d'image de remplacement (62) correspondant à différentes combinaisons de données d'image
actuelles (D8) et de données d'image retardées (D8') et qui reflète un gamma de 1,
et une pluralité de tables (52), qui reflètent des données d'image de remplacement
ajustées à un gamma spécifique, respectivement, conformément à un gamma spécifique
; et
(e) sélectionner une valeur de données d'image de remplacement dans la table (70)
sélectionnée conformément aux données d'image actuelles réellement reçues au niveau
de la borne de signal d'image (42) et aux données d'image retardées reçues une période
de trame plus tôt au niveau de la borne de signal d'image (42), et générer une tension
de ligne de données conformément à la valeur de données d'image de remplacement, en
appliquant la tension de ligne de données générée à une ligne de données (34) correspondante.
2. Procédé de commande selon la revendication 1,
caractérisé en ce que le procédé de commande comprend en outre les étapes consistant à :
(f) mesurer des courbes de réaction représentant la commutation des pixels (36) du
panneau LCD (31) d'une quelconque valeur de niveau de gris vers d'autres valeurs de
niveau de gris dans une période de trame pour générer la table standard (60) conformément
aux courbes de réaction mesurées.
3. Procédé de commande selon la revendication 2,
caractérisé en ce que le procédé de commande comprend en outre les étapes consistant à :
(g) mesurer des valeurs de niveau de gris d'ajustement de chaque valeur de niveau
de gris des pixels (36) pour différents gammas spécifiques ; et
(h) générer la pluralité de tables (52) conformément aux valeurs de niveau de gris
d'ajustement et à la table standard (60).
4. Procédé de commande selon la revendication 1,
caractérisé en ce que le procédé de commande comprend en outre les étapes consistant à :
(i) générer des signaux de compensation de température en fonction de la température
du panneau LCD (31), qui compensent la différence du temps de réponse de la torsion
des molécules de cristaux liquides en fonction de la température du panneau LCD (31)
; et
(j) sélectionner la table (70) parmi la table standard (60) et les tables (52) en
fonction du gamma spécifique et des signaux de compensation de température, à l'étape
(d).
5. Circuit de commande pour commander un LCD (30), le LCD (30) comprenant :
un panneau LCD (31), le panneau à cristaux liquides (31) comprenant :
une pluralité de lignes de balayage (32) ;
une pluralité de lignes de données (34) ; et
une pluralité de pixels (36), chaque pixel (36) étant connecté à une ligne de balayage
(32) correspondante et à une ligne de données (34) correspondante, et chaque pixel
(36) comportant un dispositif de commutation (38) connecté à la ligne de balayage
(32) correspondante et à la ligne de données (34) correspondante ;
dans lequel le circuit de commande (40) comprend :
un circuit de commande de ligne de balayage pour appliquer des tensions de balayage
aux lignes de balayage (32) ;
une borne de signal d'image (42) pour recevoir des données d'image ;
une mémoire d'image (46) pour mémoriser les données d'image et retarder les données
d'image pendant une période de trame ;
une mémoire (50) pour mémoriser une pluralité de tables (52) ;
caractérisé par :
un sélecteur (54) pour sélectionner une table (70) parmi la pluralité de tables (52)
conformément à un gamma spécifique, dans lequel l'une des tables est une table standard,
qui reflète un gamma de 1 ;
une table de correspondance (48) pour sélectionner une valeur de données d'image de
remplacement dans la table (70) sélectionnée conformément à des données d'image actuelles
réellement reçues au niveau de la borne de signal d'image (42) et des données d'image
retardées reçues une trame plus tôt au niveau de la borne de signal d'image (42) ;
et
un circuit de commande de ligne de données (56) pour générer une tension de données
conformément à la valeur de données d'image de remplacement et appliquer la tension
de données à une ligne de données (34) correspondante.
6. Circuit de commande selon la revendication 5, caractérisé en ce que le circuit de commande (40) comprend en outre un capteur thermique (58) pour détecter
la température du panneau LCD (31) et générer des signaux de compensation de température
en fonction de la température, et le sélecteur (54) sélectionnant la table (70) parmi
la pluralité de tables (52) mémorisées dans la mémoire (50) en fonction du gamma et
des signaux de compensation de température, qui compensent la différence du temps
de réponse de la torsion des molécules de cristaux liquides en fonction de la température
du panneau LCD (31).