[0001] This invention relates to a plasma display apparatus. It more particularly relates
to a method of driving a plasma display apparatus.
[0002] A plasma display apparatus is a type of display which includes a plasma display panel
and a driver for driving the plasma display panel.
[0003] A plasma display panel has a structure in which barrier ribs formed between a front
panel and a rear panel form a unit discharge cell or discharge cells. Each discharge
cell is filled with an inert gas containing a main discharge gas such as neon (Ne),
helium (He) or a mixture of Ne and He, and a small amount of xenon (Xe).
[0004] A plurality of discharge cells may form one pixel. For example, a red (R) discharge
cell, a green (G) discharge cell, and a blue (B) discharge cell may form one pixel.
[0005] When a discharge is caused in the plasma display panel by a high frequency voltage,
the inert gas generates vacuum ultraviolet radiation, which thereby causes phosphors
formed between the barrier ribs to emit visible light, thus displaying an image. Since
the plasma display panel can be manufactured to be thin and light, it has attracted
attention as a next generation display device.
[0006] A rising pulse applied to a scan electrode during a reset period is a high-voltage
pulse such that the quantity of light generated by a discharge generated by the rising
pulse increases proportionately.
[0007] Thus, the luminance (i.e., the black level luminance) in the OFF state of all the
discharge cells of the plasma display panel increases accordingly. This results in
degradation of the contrast characteristic and the generation of image retention.
[0008] Accordingly, a method to apply the rising pulse in only one subfield of one frame
has been proposed such that a portion of the contrast characteristic would be improved.
However, an erroneous discharge may be generated at a specific gray level.
[0009] The present invention seeks to provide an improved plasma display apparatus.
[0010] In accordance with one aspect of the invention, a method of driving a plasma display
apparatus displaying an image, with one frame being time-divided into a plurality
of subfields, comprises applying a first reset pulse including a rising pulse and
a falling pulse to a scan electrode during a reset period of a first subfield of the
plurality of subfields, applying a second reset pulse including a rising pulse and
a falling pulse to the scan electrode during a reset period of a turn-on subfield
next to a turn-off subfield in the remaining subfields except the first subfield,
and applying a third reset pulse including a falling pulse to the scan electrode during
a reset period of another subfield except the subfields during which the first reset
pulse and the second reset pulse are applied.
[0011] The method may further comprise applying a first pre-reset pulse to the scan electrode
prior to the reset period of the first subfield, and applying a second pre-reset pulse
of a polarity opposite the polarity of the first pre-reset pulse to a sustain electrode
correspondingly to the first pre-reset pulse.
[0012] The first subfield may be a subfield of the lowest gray level weight.
[0013] The subfield during which the second reset pulse is applied may range from a fifth
subfield to subfields succeeding the fifth subfield in the plurality of subfields
arranged in an increasing order of gray level weight.
[0014] The peak voltage of the rising pulse of the second reset pulse may be lower than
the peak voltage of the rising pulse of the first reset pulse.
[0015] The first pre-reset pulse may be of negative polarity.
[0016] The first pre-reset pulse may be a falling pulse with gradually falling voltages.
[0017] The falling pulse of the third reset pulse may fall from a predetermined bias voltage.
[0018] The predetermined bias voltage may be substantially equal to a sustain voltage.
[0019] In accordance with another aspect of the invention, a method of driving a plasma
display apparatus displaying an image during a plurality of frames comprises applying
a first reset pulse including a rising pulse and a falling pulse to a scan electrode
during a reset period of a first frame of the plurality of frames, and applying a
second reset pulse including a falling pulse to the scan electrode during all reset
periods of a second frame that succeeds the first frame.
[0020] The falling pulse of the second reset pulse may fall from a predetermined bias voltage.
[0021] The predetermined bias voltage may be substantially equal to a sustain voltage.
[0022] The method may further comprise applying a third reset pulse and a fourth reset pulse
to the scan electrode during a reset period of a first subfield of a third frame that
succeeds the second frame.
[0023] The third reset pulse and the fourth reset pulse may each comprise a rising pulse.
[0024] The peak voltage of the third reset pulse may be higher than the peak voltage of
the fourth reset pulse.
[0025] The difference between the peak voltage of the third reset pulse and the peak voltage
of the fourth reset pulse may be equal to or less than 100V.
[0026] The third reset pulse may comprise a square wave, and the fourth reset pulse may
comprise a rising pulse.
[0027] A time period during which the square wave of the third reset pulse is applied may
be shorter than a time period during which the rising pulse of the fourth reset pulse
is applied.
[0028] In accordance with still another aspect of the invention, a method of driving a plasma
display apparatus displaying an image during a plurality of frames comprises applying
a first reset pulse including a rising pulse and a falling pulse to a scan electrode
during a reset period of a first frame of the plurality of frames, applying a second
reset pulse including at least two rising pulses to the scan electrode during all
reset periods of a second frame that succeeds the first frame, wherein the time period
during which one rising pulse of the second reset pulse is applied is shorter than
the time period during which the rising pulse of the first reset pulse is applied.
[0029] The number of rising pulses of the second reset pulse may range from 2 to 3 for each
subfield.
[0030] The method may further comprise applying a third reset pulse and a fourth reset pulse
to the scan electrode during a reset period of a first subfield of a third frame that
succeeds the second frame.
[0031] The third reset pulse and the fourth reset pulse may each comprise a rising pulse.
[0032] The peak voltage of the third reset pulse may be higher than the peak voltage of
the fourth reset pulse.
[0033] The difference between the peak voltage of the third reset pulse and the peak voltage
of the fourth reset pulse may be equal to or less than 100V.
[0034] The third reset pulse may comprise a square wave, and the fourth reset pulse may
comprise a rising pulse.
[0035] The time period during which the square wave of the third reset pulse is applied
may be shorter than the time period during which the rising pulse of the fourth reset
pulse is applied.
[0036] In accordance with yet another aspect of the invention, a method of driving a plasma
display apparatus displaying an image during a plurality of frames comprises applying
a first reset pulse including a rising pulse and a falling pulse to a scan electrode
during a reset period of a first frame of the plurality of frames, and applying a
second reset pulse including a falling pulse instead of the first reset pulse to the
scan electrode during a reset period of at least one subfield of a second frame that
succeeds the first frame, wherein the number of second reset pulses increases each
time there is a variation from one frame to another frame.
[0037] The number of second reset pulses may increase by one each time there is a variation
from one frame to another frame.
[0038] The second reset pulse may be first applied in a subfield of the highest gray level
weight.
[0039] The first reset pulse may be applied in one or more subfields of one frame.
[0040] The falling pulse of the second reset pulse may fall from a predetermined bias voltage.
[0041] The predetermined bias voltage may be substantially equal to the sustain voltage.
[0042] Embodiments of the invention will now be described by way of non-limiting example
only, with reference to the drawings, in which:
[0043] FIG. 1 illustrates a plasma display panel;
[0044] FIG. 2 illustrates a method for representing a gray level of an image in the plasma
display panel;
[0045] FIG. 3 illustrates a plasma display apparatus;
[0046] FIG. 4 illustrates a method of driving a plasma display apparatus according to a
first embodiment;
[0047] FIG. 5 illustrates a method of driving a plasma display apparatus according to a
second embodiment;
[0048] FIG. 6 is a diagram for comparing areas A and B of FIG. 5;
[0049] FIG. 7 is a diagram for explaining in detail a first subfield in a method of driving
a plasma display apparatus according to a third embodiment;
[0050] FIG. 8 illustrates a method of driving a plasma display apparatus according to a
fourth embodiment;
[0051] FIG. 9 is a diagram for explaining in detail an area A of FIG. 8;
[0052] FIG. 10 illustrates a method of driving a plasma display apparatus according to a
fifth embodiment;
[0053] FIG. 11 is a diagram for explaining in detail an area B of FIG. 10;
[0054] FIG. 12 illustrates a method of driving a plasma display apparatus according to a
sixth embodiment;
[0055] FIG. 13 illustrates a method of driving a plasma display apparatus according to a
seventh embodiment;
[0056] FIG. 14 is a diagram for explaining in detail an area A of FIG. 13; and
[0057] FIG. 15 is a diagram for explaining in detail a driving waveform depending on the
method of driving the plasma display apparatus according to the seventh embodiment.
[0058] Referring to FIG. 1, a plasma display panel includes a front panel 100 and a rear
panel 110 which are coupled in parallel opposite to each other with a predetermined
distance apart. The front panel 100 includes a front substrate 101 which is a display
surface. The rear panel 110 includes a rear substrate 111 constituting a rear surface.
A plurality of scan electrodes 102 and a plurality of sustain electrodes 103 are formed
in pairs on the front substrate 101, on which an image is displayed, to form a plurality
of maintenance electrode pairs. A plurality of address electrodes 113 are arranged
on the rear substrate 111 to intersect the plurality of maintenance electrode pairs.
[0059] The scan electrode 102 and the sustain electrode 103 each include transparent electrodes
102a and 103a made of a transparent indium-tin-oxide (ITO) material and bus electrodes
102b and 103b made of a metal material. The scan electrode 102 and the sustain electrode
103 are used to generate a mutual discharge therebetween in one discharge cell and
maintain light-emissions of discharge cells.
[0060] The scan electrode 102 and the sustain electrode 103 are covered by one or more upper
dielectric layers 104 for limiting discharge current and providing insulation between
the maintenance electrode pairs. A protective layer 105 having a deposit of magnesium
oxide (MgO) is formed on an upper surface of the upper dielectric layer 104 to facilitate
discharge conditions.
[0061] A plurality of stripe-type or well-type barrier ribs 112 are formed in parallel to
each other on the rear substrate 111 of the rear panel 110 to form a plurality of
discharge spaces, i.e., a plurality of discharge cells. The plurality of address electrodes
113 for performing an address discharge to generate vacuum ultraviolet radiation are
arranged in parallel to the barrier ribs 112.
[0062] The upper surface of the rear substrate 111 is selectively coated with red (R), green
(G) and blue (B) phosphors 114 for emitting visible light for an image display during
the generation of the sustain discharge. A lower dielectric layer 115 is formed between
the address electrodes 113 and the phosphors 114 to protect the address electrodes
113.
[0063] In the plasma display panel of the above-described structure, the plurality of discharge
cells are formed in a matrix form. A driver including a driving circuit for applying
a predetermined pulse to the discharge cells is attached to the plasma display panel,
thereby driving the plasma display panel.
[0064] Referring to FIG. 2, the plasma display panel is driven using a frame divided into
a plurality of subfields having respective different emission times. Each subfield
is subdivided into a reset period for uniformly generating a discharge, an address
period for selecting a discharge cell, and a sustain period for representing a gray
level in accordance with the number of discharges.
[0065] For example, if an image with 256-gray level is to be displayed, a frame period (for
example, 16.67 ms) corresponding to 1/60 sec is divided into eight subfields SF1 to
SF8. Each of the eight subfields SF1 to SF8 is subdivided into a reset period, an
address period, and a sustain period.
[0066] The duration of the reset period in a subfield is equal to the duration of the reset
periods in the other subfields. The duration of the address period in a subfield is
equal to the duration of the address periods in the other subfields. However, the
respective durations of the sustain period of each subfield may be different from
one another, and the respective number of sustain pulses assigned during the sustain
period of each subfield may be different from one another. For example, the sustain
period increases in a ratio of 2
n (where, n = 0, 1, 2, 3, 4, 5, 6, 7) in each of the subfields. Although the above
description has been made with respect to a case where one frame includes 8 subfields,
it is not limited thereto. A frame may for example include 10 to 12 subfields.
[0067] Referring to FIG. 3, a plasma display apparatus includes a plasma display panel 300
including a scan electrode, a timing controller 301, a data driver 302, a scan driver
303, a sustain driver 304, and a subfield mapping unit 305.
[0068] The timing controller 301 receives a vertical/horizontal synchronization signal and
a predetermined clock signal. The controller 121 generates timing control signals
CTRX, CTRY and CTRZ for controlling each of the drivers 302, 303 and 304, and applies
the timing control signals CTRX, CTRY and CTRZ to the corresponding drivers 302, 303
and 304, respectively.
[0069] Accordingly, the timing controller 301 controls operations of the drivers 302, 303
and 304. Further, the timing controller 301 controls the scan driver 303 to apply
a reset pulse including only a falling pulse to the scan electrodes Y1 to Yn during
a portion of a plurality of subfields. This results in the prevention of an erroneous
discharge caused by an unstable discharge.
[0070] The data driver 122 applies a data pulse, which is sampled and latched in response
to the timing control signal CTRX received from the timing controller 301, to the
address electrodes X1 to Xm.
[0071] Under the control of the timing controller 301, the scan driver 303 controls the
reset pulse applied to the scan electrodes Y1 to Yn during a reset period.
[0072] Under the control of the timing controller 301, the scan driver 303 consecutively
applies scan pulses with a scan voltage -Vy to the scan electrodes Y1 to Yn during
an address period.
[0073] Under the control of the timing controller 301, the sustain driver 304 applies a
bias voltage of a sustain voltage Vs to the sustain electrodes Z during a set-down
period of the reset period and the address period. The scan driver 303 and the sustain
driver 304 operate alternately during a sustain period to apply a sustain pulse to
the scan electrodes Y1 to Yn and the sustain electrodes Z.
[0074] The last sustain discharge ends in one subfield, and then the sustain driver 304
may apply an erase pulse to the sustain electrodes Z.
[0075] The subfield mapping unit 305 maps video data, which is processed through a predetermined
imaging process, for each subfield, and then outputs the mapped video data.
[0076] For example, in this embodiment the subfield mapping unit 305 maps video data for
each subfield, after performing a motion process, an average power level (APL) process,
an halftone correction process, and the like, on video data input from an external
signal processor (not illustrated), for example, a video signal controller (VSC) chip
(not illustrated). Then, the subfield mapping unit 305 produces the mapped video data
and outputs it.
[0077] Referring to FIG. 4, a driving method of the plasma display apparatus according to
the first embodiment displays an image during a plurality of frames, and each frame
is divided into a plurality of subfields, each having a respective different number
of emission times. Each frame may for example be divided into 10 or 12 subfields,
each having a different number of times of emission.
[0078] The driving method according to the first embodiment is performed with each subfield
being subdivided into a reset period for initializing the whole screen, an address
period for selecting cells to be discharged, a sustain period for maintaining discharges
of the selected cells, and an erase period for erasing wall charges within the discharged
cells.
[0079] The driving method according to the first embodiment includes applying a first reset
pulse RP1 including a rising pulse and a falling pulse to the scan electrode during
a reset period of a subfield (for example, a first subfield SF1) of the lowest gray
level weight, and applying a third reset pulse RP3 including only a falling pulse
to the scan electrode in a subfield except the first subfield SF1.
[0080] The falling pulse of third reset pulse RP3 is maintained at a sustain voltage Vs
being a bias voltage, and then falls from the sustain voltage Vs. The contrast characteristic
is improved by reducing the number of applications of a rising pulse having a high
voltage.
[0081] In a case where a rising pulse is applied once during one frame, an erroneous discharge
may occur at a specific gray level. To prevent the erroneous discharge, a second reset
pulse RP2 including a rising pulse and a falling pulse is applied to the scan electrode
during the reset period of a turn-on subfield next to a turn-off subfield.
[0082] For example, in a case where all subfields of one frame are turned on, one subfield
of subfields with a relative low gray level weight may be unstable. However, since
all the subfields succeeding the unstable subfield have been turned on, a stable discharge
occurs due to the discharges of many sustain pulses.
[0083] However, as illustrated in FIG. 4, if three subfields SF1-SF3 in subfields SF1-SF5
of a relative low gray level weight are turned on and the fifth subfield SF5 is turned
on, the number of sustain pulses generated in the subfields succeeding the turn-on
subfield SF3 is not sufficient. This results in the generation of an erroneous discharge
in the turn-on subfield SF5.
[0084] The generation of an erroneous discharge in the turn-on subfield SF5 is prevented
by applying the second reset pulse RP2 including the rising pulse and the falling
pulse in the turn-on subfield SF5 next to the unstable subfield SF3.
[0085] Although the subfields SF1, SF2, SF3 and SF5 as a turn-on subfield were optionally
set in FIG. 4 for the easy explanation, the first embodiment is not limited thereto.
[0086] For example, if it is assumed that the first subfield SF1 is turned on and the fifth
subfield SF5 is turned on again, then the third reset pulse RP3 including only the
falling pulse is applied during reset periods of the second to fourth subfields SF2-SF4.
Therefore, there is a great likelihood of the generation of an erroneous discharge
in the fifth subfield SF5.
[0087] Accordingly, the second reset pulse RP2 including the rising pulse and the falling
pulse is applied in the fifth subfield SF5 such that the generation of the erroneous
discharge is prevented in the fifth subfield SF5.
[0088] In the first embodiment, the subfields during which the third reset pulse RP3 is
applied may be low gray level subfields. The low gray level subfields may for example
range from the first to fourth subfields SF1-SF4 in the subfields SF1-SF12 of one
frame arranged in an increasing order of gray level weight.
[0089] The subfields during which the second reset pulse RP2 is applied may for example
range from the fifth to twelfth subfields SF5-SF12 in the subfields SF1-SF12 of one
frame arranged in an increasing order of gray level weight.
[0090] If the first reset pulse RP1 including the rising pulse and the falling pulse is
applied in the subfield SF1 of the lowest gray level and the third reset pulse RP3
including only the falling pulse is applied in the first to fourth subfields SF1-SF4
in the subfields SF1-SF12 of one frame arranged in an increasing order of gray level
weight, there is a great likelihood of the generation of an erroneous discharge due
to the unstable discharge. Therefore, the second reset pulse RP2 is applied in the
fifth to twelfth subfields SF5-SF12 in the subfields SF1-SF12 of one frame arranged
in an increasing order of gray level weight.
[0091] Accordingly, the number of rising pulses applied during one frame is reduced considerably
such that the contrast characteristic is improved and erroneous discharge at a specific
gray level is prevented.
[0092] Referring now to the second embodiment illustrated in FIG. 5, the first reset pulse
RP1 and a second reset pulse RP2 are applied during the reset period of a subfield
SF1 having the lowest gray level weight and a reset period of turn-on subfield SF5
next to turn-off subfield SF4 in a plurality of subfields SF1-SF12, respectively,
so that the peak voltage Vpeak1 of the rising pulse of the first reset pulse RP1 is
higher than the peak voltage Vpeak2 of the rising pulse of the second reset pulse
RP2.
[0093] In the first embodiment illustrated in FIG. 4, to prevent the generation of the erroneous
discharge, the peak voltage of the rising pulse of the first reset pulse RP1 applied
during the reset period of the lowest gray level subfield SF1 was equal to the peak
voltage of the rising pulse of the second reset pulse RP2 applied during the reset
period of the fifth subfield SF5. However, unlike the first embodiment, in FIG. 5,
the generation of flicker is prevented by applying the second reset pulse RP2 having
a peak voltage Vpeak2, that is lower than the peak voltage Vpeak1 of the first reset
pulse RP1 applied during the reset period of the lowest gray level subfield SF1, during
the reset period of the turn-on subfield SF5 next to the turn-off subfield SF4.
[0094] FIG. 6 is a diagram for comparing areas A and B of FIG. 5. As illustrated in FIG.
6, the peak voltage Vpeak1 of the first reset pulse RP1 applied in the area A (i.e.,
the lowest gray level subfield SF1) is higher than the peak voltage Vpeak2 of the
second reset pulse RP2 applied in the area B (i.e., the turn-on subfield SF5 next
to the turn-off subfield SF4).
[0095] FIG. 7 is a diagram for explaining in detail a first subfield in a method of driving
a plasma display apparatus according to a third embodiment.
[0096] As illustrated in FIG. 7, before applying a first reset pulse RP1 having a rising
pulse and a falling pulse to the scan electrode during the reset period of a first
subfield SF1 as illustrated in FIGs. 4 and 5, a first pre-reset pulse PRP1 is applied
to the scan electrode and a second pre-reset pulse PRP2 of the polarity opposite the
polarity of the first pre-reset pulse PRP1 is applied to the sustain electrode correspondingly
to the first pre-reset pulse PRP1.
[0097] The first pre-reset pulse PRP1 has a negative polarity, and may, as shown, be a falling
pulse gradually falling from a ground level voltage GND. The second pre-reset pulse
PRP2 is a positive polarity, and may, as shown, be a square wave.
[0098] As above, since the first and second pre-reset pulses PRP1 and PRP2 are applied prior
to the reset period of the first subfield SF1, the peak voltage of the rising pulse
of the first reset pulse RP1 applied during the reset period of the first subfield
SF1 is lowered. This results in a reduction in the black level luminance in a reset
process.
[0099] As illustrated in FIG. 8, the driving method of the plasma display apparatus according
to the fourth embodiment displays an image during a plurality of frames, and each
frame is divided into a plurality of subfields having respective different numbers
of emission times. Each frame may for example be divided into 10 or 12 subfields,
each having a respective different number of emission times.
[0100] The driving method according to the fourth embodiment is performed with each subfield
being subdivided into a reset period for initializing the whole screen, an address
period for selecting cells to be discharged, a sustain period for maintaining discharges
of the selected cells, and an erase period for erasing wall charges within the discharged
cells.
[0101] The driving method according to the fourth embodiment applies a first reset pulse
RP1 including a rising pulse and a falling pulse to the scan electrode during the
respective reset periods of each of subfields SF1-SF12 of a first frame.
[0102] Then, in the case where a second frame succeeding the first frame is an OFF-cell,
a second reset pulse RP2 including only a falling pulse is applied to the scan electrode
during the respective reset periods of each of subfields SF1-SF12 of the second frame.
[0103] For example, if the first frame corresponding to a portion of a display surface (not
illustrated) of the plasma display panel is an ON-cell, the first reset pulse RP1
is applied in the twelve subfields SF1-SF12 of the first frame, and the second frame
is the OFF-cell in the whole panel, a window pattern displayed on the portion of the
panel display surface appears as a image retention pattern.
[0104] Accordingly, when there is a variation from the first frame being the ON-cell to
the second frame being the OFF-cell, the second reset pulse RP2 including only the
falling pulse is applied in all the subfields SF1-SF12 of the second frame.
[0105] FIG. 9 is a diagram for explaining in detail an area A of FIG. 8. As illustrated
in FIG. 9, the second reset pulse RP2 applied in all the subfields SF1-SF12 of the
second frame includes only the falling pulse.
[0106] The falling pulse is maintained at a sustain voltage Vs, being a bias voltage, and
then gradually falls from the sustain voltage Vs.
[0107] As above, since the second reset pulse RP2 applied in the second frame has a luminance
of about 0 cd/m
2 per pulse as compared with the first reset pulse RP1 having a luminance of about
0.1 cd/m
2 or more per pulse, the application of the second reset pulse RP2 lowers the image
retention level when there is the variation from the first frame being the ON-cell
to the second frame being the OFF-cell and the contrast characteristic is improved.
[0108] As illustrated in FIG. 10, the driving method according to the fifth embodiment applies
a first reset pulse RP1 including a rising pulse and a falling pulse to the scan electrode
during a reset period of each of subfields SF1-SF12 of a first frame.
[0109] Then, in the case where a second frame succeeding the first frame is an OFF-cell,
a second reset pulse RP2 including at least two rising pulses is applied to the scan
electrode during reset periods of all subfields SF1-SF12 of the second frame.
[0110] As illustrated in FIG. 11, which is a diagram for explaining in detail an area B
of FIG. 10, a time period A in the subfields SF1-SF12 of the second frame during which
one rising pulse of the second reset pulse RP2 is applied, is shorter than a time
period B in the subfields SF1-SF12 of the first frame during which the rising pulse
of the first reset pulse RP1 is applied.
[0111] The number of rising pulses applied in all the subfields SF1-SF12 of the second frame
may range from 1 to 3 for each subfield of the second frame.
[0112] Since the rising pulses applied in the subfields of the first frame has a luminance
of about 0.1 cd/m
2 per pulse, flicker may occur due to luminance deviation when an ON-cell and an OFF-cell
are alternately varied to each other such that the contrast characteristics may worsen.
[0113] Accordingly, a weak discharge is made to occur several times by applying the second
reset pulse RP2 including the 2 or 3 rising pulses having a luminance of about 0.04
cd/m
2 per pulse. As a result, several weak discharges lower the level of dark image retention
as compared with one strong discharge, and the generation of flicker due to luminance
deviation is prevented.
[0114] (a) of FIG. 12 illustrates a prior art reset pulse applied during the last subfield
of a second frame and the first subfield of a third frame next to the second frame.
[0115] As illustrated in (a) of FIG. 12, after applying a second reset pulse illustrated
in FIGs. 8 and 10 in the second frame, one reset pulse is applied during the reset
period of the first subfield of the third frame next to the second frame. In this
case, it is difficult to vary a discharge when there is a variation from the second
frame being an OFF-cell to the third frame being an ON-cell.
[0116] (b) of FIG. 12 illustrates a reset pulse according to the sixth embodiment applied
during the last subfield of a second frame and the first subfield of a third frame
next to the second frame. As illustrated in (b) of FIG. 12, a third reset pulse RP3
and a fourth reset pulse RP4 are applied in the first subfield of the third frame.
[0117] The third reset pulse RP3 and the fourth reset pulse RP4 each include a rising pulse.
[0118] The first peak voltage Vpeak1 of the third reset pulse RP3 is higher than the second
peak voltage Vpeak2 of the fourth reset pulse RP4.
[0119] The difference (Vpeak1-Vpeak2) between the first peak voltage Vpeak1 and the second
peak voltage Vpeak2 may be equal to or less than 100V.
[0120] As above, since the third reset pulse RP3 that is higher than the fourth reset pulse
RP4 by 100V or less is applied, the unstableness of discharge is solved when there
is a variation from the second frame being an OFF-cell to the third frame being an
ON-cell.
[0121] A third reset pulse RP3 having a different form from the third reset pulse RP3 illustrated
in (b) of FIG. 12 may be applied. This will be described with reference to (c) of
FIG. 12.
[0122] As illustrated in (c) of FIG. 12, the third reset pulse RP3 applied in the first
subfield of the third frame includes a square wave.
[0123] The voltage of the square wave is equal to the second peak voltage Vpeak2 of the
fourth reset pulse RP4. The time period C during which the square wave of the third
reset pulse RP3 is applied, is shorter than the time period D during which the rising
pulse of the fourth reset pulse RP4 is applied.
[0124] As above, since the third reset pulse RP3 is applied during the time period C, that
is shorter than the time period D during which the fourth reset pulse RP4 is applied,
the unstableness of discharge is solved when there is a variation from the second
frame being an OFF-cell to the third frame being an ON-cell.
[0125] As illustrated in FIG. 13, the driving method of the plasma display apparatus according
to the seventh embodiment displays an image during a plurality of frames, and each
frame is divided into a plurality of subfields, each having a respective different
number of emission times. Each frame may for example be divided into 10 or 12 subfields,
each having a respective different number of emission times.
[0126] The driving method according to the seventh embodiment is performed with each subfield
being subdivided into a reset period for initializing the whole screen, an address
period for selecting cells to be discharged, a sustain period for maintaining discharges
of the selected cells, and an erase period for erasing wall charges within the discharged
cells.
[0127] The driving method according to the seventh embodiment applies a first reset pulse
RP1 including a rising pulse and a falling pulse to the scan electrode during a reset
period of each of subfields SF1-SF12 of a first frame.
[0128] Then, in a case where a second frame succeeding the first frame is an OFF-cell, a
second reset pulse RP2 including only a falling pulse instead of the first reset pulse
RP1 is applied to the scan electrode during a reset period of at least one subfield
(for example, a twelfth subfield SF12 in FIG. 13) of the second frame.
[0129] For example, if the first frame is an ON-cell, the 12 first reset pulses RP1 are
applied in the 12 subfields of the first frame, respectively, and the second frame
is an OFF-cell, an image retention pattern appears in the second frame.
[0130] When there is a variation from the first frame being the ON-cell to the second frame
being the OFF-cell, the second reset pulse RP2 starts to be applied from the last
subfield SF12 of the second frame.
[0131] In other words, if the second frame includes 12 subfields, the first reset pulse
RP1 is applied in 11 subfields of the second frame and the second reset pulse RP2
is applied in the remaining one subfield.
[0132] Subsequently, if a third frame succeeding the second frame is an OFF-cell, the first
reset pulse RP1 is applied in 10 subfields of the third frame and the second reset
pulse RP2 is applied in the remaining two subfields.
[0133] If subfields succeeding the third frame are in a state of an OFF-cell, the number
of second reset pulses may increase by one each time there is a variation from one
frame to another frame.
[0134] As illustrated in FIG. 14, which is a diagram for explaining in detail an area A
of FIG. 13, the second reset pulse RP2 applied instead of the first reset pulse RP1
in at least one subfield of the second frame includes only the falling pulse.
[0135] The falling pulse is maintained at a sustain voltage Vs, being a bias voltage, and
gradually falls from the sustain voltage Vs.
[0136] Since the second reset pulse RP2 including only the falling pulse has a luminance
of about 0 cd/m
2 per pulse as compared with the first reset pulse RP1 having a luminance of about
0.1 cd/m
2 or more per pulse, the application of the second reset pulse RP2 lowers the image
retention level when there is a variation from the first frame being the ON-cell to
the second frame being the OFF-cell.
[0137] FIG. 15 is a diagram for explaining in detail a driving waveform depending on the
method of driving the plasma display apparatus according to the seventh embodiment.
[0138] As illustrated in (a) of FIG. 15, the second reset pulse RP2 applied in at least
one subfield of the second frame is applied in reverse order from a subfield of the
highest gray level weight.
[0139] For example, if one frame includes 12 subfields and a subsequent frame of a first
frame being an ON-cell is an OFF-cell, the second reset pulse RP2 is applied during
a reset period of a last subfield SF12 of the subsequent frame.
[0140] If a subsequent frame of a frame being an OFF-cell is an OFF-cell, the second reset
pulse RP2 is applied during a reset period of a last subfield SF12 of the subsequent
frame and an eleventh subfield SF11 in reverse order from the last subfield SF12.
Accordingly, the increasing number of frames being an OFF-cell is proportional to
the increasing number of second reset pulses RP2.
[0141] On the other hand, if a subsequent frame of a frame being an OFF-cell is varied to
an ON-cell, the first reset pulse RP1 is applied in all subfields of the subsequent
frame.
[0142] Although frames being an OFF-cell are repeated constantly such that the number of
first reset pulses RP1 is reduced and the number of second reset pulses RP2 increases
when there is a variation from one frame to another frame, at least one first reset
pulses RP1 is applied during one frame.
[0143] For example, in a case where second to fifteenth frames succeeding a first frame
being an ON-cell are constantly an OFF-cell, the first reset pulses RP1 is applied
in one subfield of an eleventh frame and the second reset pulses RP2 is applied in
the remaining 11 subfields of the eleventh frame.
[0144] Subsequently, in a case where a twelfth frame next to the eleventh frame is an OFF-cell,
the second reset pulses RP2 is not applied in all subfields of the twelfth frame.
In the same way as the eleventh frame, the first reset pulses RP1 is applied in one
subfield of the twelfth frame and the second reset pulses RP2 is applied in the remaining
11 subfields of the twelfth frame.
[0145] As above, since the second reset pulse RP2 is applied in reverse order from a subfield
of the highest gray level weight, the generation of an erroneous discharge is prevented
and the time required to remove dark image retention is reduced.
[0146] The second reset pulse RP2 may be applied in other ways. An example of another way
will be described with reference to (b) of FIG. 15.
[0147] As illustrated in (b) of FIG. 15, the second reset pulse RP2 applied in at least
one subfield of the second frame may be applied irrespective of the order of subfield
when there is a variation from one frame to another frame.
[0148] For example, if one frame includes 12 subfields and a subsequent frame of a first
frame being an ON-cell is an OFF-cell, the second reset pulse RP2 may be applied during
a reset period of a last subfield SF12 of the subsequent frame, and the second reset
pulse RP2 may be applied during a reset period of a tenth subfield SF10 of the subsequent
frame.
[0149] Subsequently, if a subsequent frame of a frame being an OFF-cell is an OFF-cell,
the second reset pulse RP2 may be applied during a reset period of a third subfield
SF3 of the subsequent frame. Accordingly, the increasing number of frames being an
OFF-cell is proportional to the increasing number of second reset pulses RP2.
[0150] On the other hand, when there is a variation from a frame being an OFF-cell to a
frame being an ON-cell, the first reset pulse RP1 is applied in all subfields of the
frame being an ON-cell
[0151] Accordingly, the generation of an erroneous discharge is prevented and time required
to remove dark image retention is reduced.
[0152] The foregoing embodiments and advantages are merely exemplary and are not to be construed
as limiting the present invention. The present teaching can be readily applied to
other types of apparatuses. The description of the foregoing embodiments is intended
to be illustrative, and not to limit the scope of the claims. Many alternatives, modifications,
and variations will be apparent to those skilled in the art including but not limited
to, those specifically mentioned.
1. A method of driving a plasma display apparatus displaying an image with one frame
being time-divided into a plurality of subfields, the method comprising:
applying a first reset pulse including a rising pulse and a falling pulse to a scan
electrode during a reset period of a first subfield of the plurality of subfields;
applying a second reset pulse including a rising pulse and a falling pulse to the
scan electrode during a reset period of a turn-on subfield next to a turn-off subfield
in the remaining subfields except the first subfield; and
applying a third reset pulse including a falling pulse to the scan electrode during
a reset period of another subfield except the subfields during which the first reset
pulse and the second reset pulse are applied.
2. The method of claim 1, further comprising applying a first pre-reset pulse to the
scan electrode prior to the reset period of the first subfield, and applying a second
pre-reset pulse of a polarity opposite the polarity of the first pre-reset pulse to
a sustain electrode correspondingly to the first pre-reset pulse.
3. The method of claim 2, wherein the first subfield is a subfield of the lowest gray
level weight.
4. The method of claim 2 or 3, wherein the subfield during which the second reset pulse
is applied ranges from a fifth subfield to subfields succeeding the fifth subfield
in the plurality of subfields arranged in an increasing order of gray level weight.
5. The method of any one of claims 2 to 4, wherein the peak voltage of the rising pulse
of the second reset pulse is lower than the peak voltage of the rising pulse of the
first reset pulse.
6. The method of any one of claims 2 to 5, wherein the first pre-reset pulse has a negative
polarity.
7. The method of claim 6, wherein the first pre-reset pulse is a falling pulse with gradually
falling voltages.
8. The method of any one of claims 2 to 7, wherein the falling pulse of the third reset
pulse falls from a predetermined bias voltage.
9. The method of claim 8, wherein the predetermined bias voltage is substantially equal
to a sustain voltage.
10. A method of driving a plasma display apparatus displaying an image during a plurality
of frames, the method comprising:
applying a first reset pulse including a rising pulse and a falling pulse to a scan
electrode during a reset period of a first frame of the plurality of frames; and
applying a second reset pulse including a falling pulse to the scan electrode during
all reset periods of a second frame that succeeds the first frame.
11. The method of claim 10, wherein the falling pulse of the second reset pulse falls
from a predetermined bias voltage.
12. The method of claim 11, wherein the predetermined bias voltage is substantially equal
to a sustain voltage.
13. The method of any one of claims 10 to 12, further comprising applying a third reset
pulse and a fourth reset pulse to the scan electrode during the reset period of a
first subfield of a third frame that succeeds the second frame.
14. The method of claim 13, wherein the third reset pulse and the fourth reset pulse each
comprise a rising pulse.
15. The method of claim 14, wherein the peak voltage of the third reset pulse is higher
than the peak voltage of the fourth reset pulse.
16. The method of claim 15, wherein the difference between the peak voltage of the third
reset pulse and the peak voltage of the fourth reset pulse is equal to or less than
100V.
17. The method of any one of claims 13 to 16, wherein the third reset pulse comprises
a square wave, and the fourth reset pulse comprises a rising pulse.
18. The method of claim 17, wherein the time period during which the square wave of the
third reset pulse is applied, is shorter than the time period during which the rising
pulse of the fourth reset pulse is applied.
19. A method of driving a plasma display apparatus displaying an image during a plurality
of frames, the method comprising:
applying a first reset pulse including a rising pulse and a falling pulse to a scan
electrode during a reset period of a first frame of the plurality of frames; and
applying a second reset pulse including at least two rising pulses to the scan electrode
during all reset periods of a second frame that succeeds the first frame,
wherein the time period during which one rising pulse of the second reset pulse is
applied is shorter than the time period during which the rising pulse of the first
reset pulse is applied.
20. The method of claim 19, wherein the number of rising pulses of the second reset pulse
ranges from 2 to 3 for each subfield.
21. The method of claim 19, further comprising applying a third reset pulse and a fourth
reset pulse to the scan electrode during the reset period of a first subfield of a
third frame that succeeds the second frame.
22. The method of claim 21, wherein the third reset pulse and the fourth reset pulse each
comprise a rising pulse.
23. The method of claim 22, wherein the peak voltage of the third reset pulse is higher
than the peak voltage of the fourth reset pulse.
24. The method of claim 23, wherein the difference between the peak voltage of the third
reset pulse and the peak voltage of the fourth reset pulse is equal to or less than
100V.
25. The method of any one of claims 21 to 24, wherein the third reset pulse comprises
a square wave, and the fourth reset pulse comprises a rising pulse.
26. The method of claim 25, wherein the time period during which the square wave of the
third reset pulse is applied is shorter than a time period during which the rising
pulse of the fourth reset pulse is applied.
27. A method of driving a plasma display apparatus displaying an image during a plurality
of frames, the method comprising:
applying a first reset pulse including a rising pulse and a falling pulse to a scan
electrode during a reset period of a first frame of the plurality of frames; and
applying a second reset pulse including a falling pulse instead of the first reset
pulse to the scan electrode during a reset period of at least one subfield of a second
frame that succeeds the first frame,
wherein the number of second reset pulses increases each time there is a variation
from one frame to another frame.
28. The method of claim 27, wherein the number of second reset pulses increases by one
each time there is a variation from one frame to another frame.
29. The method of claim 28, wherein the second reset pulse is first applied in a subfield
of the highest gray level weight.
30. The method of claim 29, wherein the first reset pulse is applied in one or more subfields
of one frame.
31. The method of any one of claims 27 to 30, wherein the falling pulse of the second
reset pulse falls from a predetermined bias voltage.
32. The method of claim 31, wherein the predetermined bias voltage is substantially equal
to a sustain voltage.