[0001] The present invention relates to a display device, comprising a liquid-crystal material
between two support plates held at a defined spacing from one another and having surfaces
facing one another, a pattern of N line electrodes being provided on one surface and
a pattern of column electrodes on the other surface in which the line electrodes cross
the column electrodes and a matrix of display elements is thus formed at the position
of the crossovers, and the device comprises a control circuit for presenting square-wave
data signals to the column electrodes and a line-scanning circuit for periodically
scanning the line electrodes and presenting square-wave line selection voltages signals.
[0002] Display devices of that kind are known from GB 2 020 875 A or US 5 151 690 A. The
first reference shows an adressable matrix which consists of liquid crystals defined
by the crossing regions of row and column electrodes. The state of such a liquid crystal
is related to the magnitude of electrical signals applied to those electrodes and
to the number of elements in the matrix. The electric signals are modified according
to the number of elements in the matrix so that the operating margin between on and
off potentials can be maximized. A certain number of columns are scanned and energized
in succession while the states of the certain number of elements displayed in each
row are prestored and ciculated in a register for that row. Via a circuit the voltage
levels for on and off are determined to be applied to the row electrode according
to each bit in the register and an elector is operated as each column in turn is scanned.
[0003] The second reference shows a very similar device where the scanning electrodes are
formed on one of two subtrates between which a liquid-crystal-layer is interposed.
Scanning electrode voltage driving wave forms consisting of selective and non-selective
voltages are applied to the scanning electrodes of the liquid-crystal-panel.
[0004] Such display devices are normally operated with multiplex addressing in accordance
with the so-called RMS mode.
[0005] The method of addressing (based on the so-called RMS behavior of the liquid-crystal
material) is described, inter alia, by Alt and Pleshko in IEEE Trans. El. Dev. ED
21, 1974, pages 146-155, by Neahing and Kmetz in IEEE Trans. El. Dev. ED 26, 1979,
pages 795-802, and by Kawakami et al. in SID-IEEE Record of Biennial Display Conference,
1976, pages 50-52. This method of addressing is regarded as the commonest for the
addressing of liquid-crystal display devices which are constructed as a matrix of
picture elements such as that described above, in which no active electronic switch
(such as, for example, thin-film transistor) is used for each picture element.
[0006] With this method of addressing, the picture elements are switched from a first state
to a second state which is optically different therefrom with the aid of the line-scanning
circuit which periodically scans the line electrodes with a line-selection pulse of
magnitude V
s and with the aid of the control circuit for presenting data signals to the column
electrodes, which control circuit feeds data voltages of magnitude +/- V
d to the column electrodes for the time in which a line electrode is scanned, in such
a way that the optical state which is achieved in a display element is determined
by the so-called root-mean-square (RMS) voltage value across the element concerned.
[0007] The RMS voltage value V
2 for the selected display elements, i.e., the display elements in the on state, is
given by:

The RMS voltage value V
1 for the unselected display elements, i.e., the display elements in the off state
is given by:

Figure 2 diagrammatically shows a transmission-voltage characteristic of a picture
cell belonging to this display device.
[0008] Alt and Pleshko derived relationships which, for a given value of the ratio S = V
2/V
1 (also referred to as threshold steepness in the transmission-voltage characteristic),
show how great the maximum number of lines N
max is which can be addressed by this method while retaining a predetermined contrast,
and the way in which the voltage V
s of the line selection pulse and the data voltages +/- V
d must be chosen in order to achieve this. These relationships are as follows:



where Q
2 = N
max-1
[0009] If the line selection voltage V
s and the data voltage V
d are now chosen in accordance with the expressions (2) and (3), and if N
max lines are used, the resulting RMS voltage across a selected picture element will
be equal to V
2 and the resulting RMS voltage across an unselected picture element will be equal
to V
1.
[0010] A greater degree of multiplexing, in other words a higher value of N
max, requires a steeper slope in the transmission-voltage characteristic, i.e., a value
of the quantity S = V
2/V
1 closer to 1.0.
[0011] With the so-called "SUPER-TWISTED" liquid-crystal effects at present known (and already
used), very high N
max values can be achieved because the threshold steepness S of the transmission-voltage
characteristic of these effects has a value which is very close to the limit value
of 1.0.
[0012] Figure 1 diagrammatically shows a portion of a matrix-oriented display device 1 having
N
max selection lines (row electrodes) 2 and describes the operating principle of the abovementioned
RMS multiplex address method. This address method is generally referred to as "line-at-a-time"
RMS multiplex addressing.
[0013] The information to be displayed is presented on the data lines (column electrodes)
3. There are display elements 4 situated at the position of the crossover points of
the selection lines 2 and the data lines 3. Depending on the information presented
on the data lines 3, the display elements 4 are in an on state or an off state. The
picture information (data voltage +/- V
d) is supplied synchronously with the selection of the lines or row electrodes with
the aid of the line-selection voltage V
s. Thus, starting from the time instant t
1 the line 2
a is selected for a period t
1 (also referred to as line time), which line, together with the information then present
on the data lines 3
a, 3
b, 3
c (i.e. +/- V
d) determines the optical state of the picture elements 4
aa, 4
bb, 4
cc.
[0014] During this period t
1 in which the line 2
a is selected, there is a voltage +/- V
d across all the other picture elements which correspond to the line electrodes 2
b, 2
c, etc.
[0015] Starting from the time instant t
2 (where t
2 - t
1 = t
1) the line 2
b is selected for the period t
1. The information then present on the data lines 3 (i.e. +/- V
d) determines the state of the picture elements 4
ba, 4
bb, 4
bc.
[0016] After this line time t
1, the next line is then selected. The entire picture is thus written in line by line.
After the last line of the matrix has been selected, the entire cycle is repeated
(so-called "repeated scan procedure"). The duration of a single write-in cycle is
referred as the raster time or frame time t
f:t
f = N * t
1, where N is the number of lines which are successively scanned in this way.
[0017] In this RMS address method, it is important that both the rise time and the fall
time (or the switching time for transition to the 'on' or the 'off' state, respectively)
of the optical effect are much greater than the raster time. Under these conditions,
the display element responds to the cumulative effect of a number of address pulses
(or selection pulses). In this case, a liquid-crystal display element, in particular,
responds in the same way as if it has been addressed by a sinusoidal or square-wave
signal having the same RMS voltage value as that of the 'on' and 'off' voltages V
2 and V
1 given by the expressions (1) and (2).
[0018] As already discussed, the maximum number of selection lines N
max is related to the value of the ratio V
2/V
1 (threshold steepness).
[0019] Recently novel address schemes have been described which, in contrast to the "line-at-a-time"
addressing described above, make use of "multi-line-at-a-time" selection of line electrodes
during the raster time.
[0020] This multiline addressing is described in:
1. Dutch Patent Application 9200606 in the name of Welzen;
2. The Proceedings of SID-IEEE Display Conference, Boston (USA), May '92, pages 228-231,
authors: Scheffer and Clifton.
3. The Proceedings of SID-IEEE Display Conference, Boston (USA), May '92, pages 232-235,
authors: Ihara et al.
[0021] This multi-line addressing is used to reduce or to eliminate the so-called "FRAME
RESPONSE" behavior. Said characteristic "FRAME RESPONSE" behavior occurs, in particular,
in the case of fast-switching liquid-crystal display devices having a high degree
of multiplexing (= large number of lines to be multiplexed) and having the standard
line-at-a-time addressing. "FRAME RESPONSE" behavior results in loss of contrast and
brightness.
[0022] With multi-line addressing, simultaneous selection of a plurality of lines takes
place during the scanning of the matrix. These factors have the consequence that the
single, high selection pulse which is necessary in line-at-a-time addressing for each
line during each raster time is replaced by a plurality of smaller pulses which are
regularly distributed over the raster time.
[0023] Both the occurrence of a plurality of separate selection pulses having a shortened
pulse duration and the lower voltage levels of said selection pulses in multi-line
addressing reduce or eliminate the "FRAME RESPONSE" behavior and ensure that the optical
effect exhibits RMS behavior.
[0024] With a suitable choice of the voltage form (and amplitude) of the selection voltage
and of the data wave signals, multi-line addressing does not lead to a reduction in
the maximum number of lines to be addressed. For a given transmission-voltage characteristic
with a steepness V
2/V
1, N
max is in turn determined in accordance with expression (3) derived for RMS behavior
occurring.
[0025] Both in the case of the line-at-a-time and in the case of multi-line addressing,
the actual RMS voltage value for an "on" element (or selected display element) in
a column in which all the picture elements are in the "on" state may differ from the
RMS voltage value for a selected display element in a column in which the picture
elements are, for example, alternately "on" and "off".
[0026] This difference is due, inter alia, to resistive and capacitive effects as a result
of which the address-voltage signals supplied (and in particular the data signals)
are applied in a more or less "deformed" manner across the picture elements concerned.
[0027] It will be apparent that this 'deformation' results in a reduction in the RMS voltage
value and that this reduction in the RMS voltage value across a picture element becomes
greater as more "on"-"off" transitions (always including the "off"-"on" transitions)
occur in a column. For the transmission characteristic, shown in Figure 2, of a so-called
negative-contrast display device (in which the unselected, or "off", elements have
a low transmission and the selected, or "on", elements have a high transmission),
these factors can result in perceptible brightness differences between "on" elements
in columns having different picture contents (or having a different number of "on"-"off"
transitions).
[0028] These brightness differences (generally referred to as "crosstalk" or "ghost" phenomena)
are, in particular, perceptible in highly multiplexed dot-matrix liquid-crystal display
devices.
[0029] A method of reducing crosstalk due to differences in data-voltage patterns (the so-called
vertical crosstalk) has recently been described in the Proceedings of SID-IEEE Display
Conference, Las Vegas (USA), May '90, pages 412-415, authors: Kaneka et al.
[0030] This method makes use of a special polarity change sequence in which the polarities
of the address-voltage signals always change in sign after scanning 2 lines during
the raster scan. The start position of these polarity changes is also changed or shifted
for successive frames.
[0031] The object of the invention which will be described in this patent application is
to provide a display device in which the abovementioned crosstalk effect is reduced
as much as possible without making use of special polarity-change sequences.
[0032] For this purpose the display device of the invention is characterized in that the
display device comprises an electronic circuit unit generating grey values by means
of pulse-height modulation and which registers the associated value of the parameter
X
au (j) which is defined as the number of times the level of the data voltage changes
for each column j of the matrix of display elements and for each raster scan, whereby
during the raster scan, the amplitude V
d of the data voltage +/- V
d, which is across a picture element during the non-select period in the case of the
given description of the line-at-a-time addressing is different for columns having
a different X
au value and the chosen value of V
d is greater to the extent that X
au is greater and, in particular, in accordance with a relationship V
d = V
d(X
au) which is determined by proceeding from the requirement that picture elements which
are assumed to be in the same state but occur in columns with a different X
au value must have equal, or virtually equal V
RMS voltages, further the same V
d value is used for a range of X
au values, viz. from X
au up to and including (X
au + n) where n = 1, 2, 3, and that an appropriate voltage whose amplitude (AMP
c) is determined by the X
au value of the column concerned is presented to the separate columns for a certain
time interval after each raster scan, whereby the same AMP
c value is used for a range of X
au values, viz. from X
au up to and including (X
au + n) where n = 1,2,3,.... .
[0033] The control circuit should comprise a "counter unit" which registers the number of
"on" -"off" transistions in each column of the matrix of the display device.
[0034] The (increasing) loss in RMS voltage value over a certain picture element as a consequence
of a (increasing) number of "on"-"off" transistions in the column concerned can be
compensated for by using a modified (or higher) amplitude of the data voltage during
the raster scan.
[0035] It is also possible to carry out this compensation not by using a modified data voltage
during the raster scan but, of example, presenting a voltage pulse whose magnitude
is determined by the number of "on"-"off" transistions in the column concerned simultaneously
to the separate columns, after every frame scan for a certain time interval (for example,
equal to the line time t
1).
[0036] The presentation of these voltage pulses and the abovementioned different data voltages
may take place by means of the driver ICs which are used in the multi-line addressing.
BRIEF DESCRIPTION OF DRAWINGS
[0037]
Figure 1 shows a portion of a matrix-oriented display device;
Figure 2 shows a transmission characteristic of so-called negative-contrast display
device;
Figure 3 shows a relationship between the voltage VLC across an LC element and time elapsed; and
Figures 4A and 4B show waveforms of voltages across an element A and B, respectively.
Best Mode for Carrying Out the Invention
[0038] The invention with which the crosstalk effect can be reduced will now be explained
in greater detail.
[0039] In this description use will be made of the line-at-a-time addressing. The invention
is, however, not limited to line-at-a-time addressing and anyone who is to some extent
familiar with this specialist field can establish that the invention can also be used
for multi-line addressing.
[0040] Figure 3 diagrammatically shows the way in which the voltage V
lc across an LC element (represented as a capacitor C) increases with time on presenting
a voltage jump of V
in in the presence of a resistor R. The time dependence of V
lc is given as:

where τ is the RC time constant.
[0041] The RMS voltage value follows from:

After some mathematics, the following expression is found for the RMS voltage value
(normalized with respect to V
in):

For practical values of τ and T (such as those which will occur in 'real' display
devices) it can be assumed that τ/T << 1, and consequently expression (8) can be reduced
to:

If a square-wave voltage sequence is involved which has square-waves having durations
of T
1, T
2 ... T
n, where T
1 + T
2 + ... T
n = T
T, the resulting V
RMS is given by:

Thus, the effective (RMS) voltage is determined by the number of square-wave voltages
and therefore, in reality, by the number of passages through zero.
[0042] Consider, for example, 2 selected elements A and B in column i and column j, respectively,
of the dot-matrix display device, the elements in column i being alternately "on"
and "off". The voltage across element A during a raster time can be reproduced diagrammatically
as shown in Figure 4A.
[0043] Figure 4B diagrammatically shows the voltage across element B with the assumption
that only one "on"-"off" transition occurs in column j.
[0044] The deformation of the square-wave voltages (as a consequence of the RC behavior
as explained on page 8) is reproduced diagrammatically both in Figure 4A and in Figure
4B. It will be clear that the V
RMS of element A is less than the RMS voltage associated with element B.
[0045] This reduction in V
RMS can be compensated for by making use of a data-voltage amplitude which is higher
than prescribed according to the Alt and Pleshko relationships (in which case ideal,
undeformed square-wave voltage signals are assumed).
[0046] For column i and column j, different data-voltage levels will then have to be used.
[0047] How large these voltage levels should be in order to compensate for the loss in V
RMS (in order to achieve equal V
RMS voltages for the elements A and B, and also for any randomly selected element in
a random column k having a random number of "on"-"off" transitions) can be derived
if the extent of deformation of the square-wave voltages is known.
[0048] The height of the data-voltage levels for compensating for V
RMS losses can, however, also be determined experimentally by means of transmission (or
brightness) measurement of an "on" element as a function of the number of "on"-"off"
transitions. In this connection a procedure to be followed may be as follows:
1. Determine the transmission of an "on" element in a column having only selected
picture elements; this transmission value serves as reference value.
2. Then determine, as a function of the number of "on"-"off" transitions, the data-voltage
level that should be set in order to achieve the reference transmission mentioned
under 1. for an "on" element.
[0049] The relationship V
d = V
d(X
au) is thus determined experimentally (X
au = number of "on"-"off" transitions).
[0050] In principle, a large number of data-voltage levels are required with this compensation
method, and this can be achieved with multi-level TFT column drivers.
[0051] In practice, the number of voltage levels required can be reduced appreciably because
the use of one and the same V
d value in the case of, for example, X
au and (X
au + 1) transitions does not necessarily result in visually perceptible brightness differences.
[0052] For the practical implementation of this compensation method, it is therefore useful
to determine the range of "on"-"off" transitions: X
au up to and including (X
au + n) where n = 1, 2, 3, ... for which one and the same V
d voltage can be used without all these factors giving rise to perceptible brightness
differences.
[0053] In the compensation method described above, different V
d values are used for columns with different X
au values during the raster scan.
[0054] Compensation for V
RMS losses as a consequence of "on"-"off" transitions can also be achieved by using the
same V
d value during the scanning of the N-line matrix for columns having different X
au values and by presenting a voltage pulse whose amplitude V
j(X
au) is dependent on the X
au value in the column concerned simultaneously to the separate columns j after every
frame scan for a certain time interval t
x (for example, equal to the line time t
1). During this time interval t
x, one and the same voltage, for example the non-select line voltage (which, according
to the address scheme shown in Figure 1, is equal to zero) is fed to all the rows.
The height of the voltage pulse to be supplied V
j(X
au) can be determined relatively simply experimentally with the aid of transmission
measurements according to a procedure such as is described for the determination of
the different column voltages V
d(X
au) which are used in the first-mentioned compensation method.
[0055] In connection with the practical implementation of this second compensation method,
it is also now the case that it is useful to determine the range of "on"-"off" transitions:
X
au up to and including (X
au + n), where n = 1, 2, 3, ... for which one and the same V
j voltage can be used without all these factors resulting in perceptible brightness
differences.
[0056] For the line-at-a-time addressing, the polarities of both the data signals and of
the line-select signals should change in sign, for example after every raster time;
this is done in order to prevent the occurrence of direct-voltage components. In practice,
this polarity change is often used after a certain number of line times, the number
being less than N.
[0057] This means that the number of "on"-"off" transitions (including the transitions "off"-"on")
no longer needs to be equal to the number of changes in polarity of V
d (or changes in the V
d level) as is reproduced diagrammatically in Figure 1 and Figure 4.
[0058] In the description of both compensation methods, X
au can therefore be better interpreted as the number of changes in polarity of V
d during a raster time or, still more generally, as the number of times the level of
the data voltage changes.
[0059] This last interpretation of X
au is, in particular, of importance for multi-line addressing.
[0060] The idea of presenting voltage pulses having different amplitudes to the separate
columns after each frame scan can also be used to achieve grey values in display devices
having a dot-matrix structure such as those described in this patent application.
[0061] This will be explained below in greater detail.
[0062] At present grey levels are produced by frame modulation (FM) or by pulse-width modulation
(PWM).
[0063] FM is described, inter alia, in SID Digest of Technical Papers XIV, pages 32-33,
1983. A disadvantage of FM is the occurrence of "flicker" in fast-switching liquid-crystal
display devices. PWM is described, inter alia, in SID Digest of Technical Papers XI,
pages 28-29, 1980. PWM has, inter alia, the disadvantage that highfrequency signals
are necessary for a large number of grey levels.
[0064] A third method of achieving grey levels makes use of pulse-height modulation (PHM)
and is essentially used in display devices in which each picture element is provided
with an active electronic switch such as, for example, a thin-film transistor. In
such actively controlled matrix display devices, a grey level is in fact achieved
for a picture element by supplying the element concerned with a voltage having a certain
amplitude. This method cannot, however, readily be used in the matrix display devices
which are described in this patent application and which are addressed by the line-at-a-time
or multi-line RMS addressing.
[0065] All this is connected with the fact that any change in the amplitude of the column
voltage is 'felt' by all the elements in the column concerned. Suppose, for example,
that, in a particular column, and element is to have a grey level which is achieved
by presenting a data voltage of magnitude f*V
d, where -1 <= f <= +1, during the line-selection time (line-at-a-time addressing is
assumed for simplicity). For an "on" element in this column, it is then true that:

In other words, according to expression (11), the RMS voltage of an "on" element is
dependent on the (absolute) value of the parameter f. Obviously, this is undesirable.
[0066] The loss in RMS voltage can be compensated for by supplying a voltage pulse to the
column concerned after each frame scan (for, for example, a line time t
1). In that case it is generally true that the height of this voltage pulse is dependent
on the number of elements in the column concerned having a particular grey level,
expressed, for example, in the value of the factor f, in which case completely "on"
and completely "off" may also be regarded as grey levels.
[0067] Given this number of 'grey' element and their respective grey value, the height of
the voltage pulse can in principle be determined (or calculated) by deriving expressions
under these circumstances for, for example, the RMS voltage of an "on" and an "off"
element and equating the RMS voltage values calculated in this way to those according
to expressions (1) and (2).
[0068] The following example serves to illustrate the procedure which can be followed in
this case. In this example, it is assumed that the compensation pulse V
c is supplied for a line time t
1.
EXAMPLE: 4-line matrix, in which one "on" element and three picture elements having
different grey levels (or f values) occur in a particular column.
[0069] For the 4-line matrix, the RMS voltage of an "on" element (and of an "off" element)
is given according to the Alt and Pleshko line-at-a-time address scheme by:


where: S
4 = D
4 * SQRT(4);
S
4 = line-select voltage and D
4 = data voltage.
[0070] In achieving grey values with PHM (and, consequently, using a compensation voltage
pulse), a 5th line is, as it were, added to the 4-line matrix. This line does not
actually need to be present: it is a virtual line.
[0071] The "on" element in this example now has the following RMS voltage:

where: f
i*D
5 is the amplitude of the data voltage which is supplied to the element i concerned
having a grey value with parameter value f
i.
[0072] The contribution V
c 2/5 arises because, during selection of the 5th (virtual) line, a certain voltage is
presented to the column.
[0073] The value of V
c can be derived from the requirement: V
on2 according to (12) = V
on2 according to (14).
[0074] On choosing


we find that:

Or:


Thus, if V
c is chosen in accordance with expression (19), the resulting V
on2 will be identical to that according to expression (12). If we had considered an "off"
element instead of an "on" element, the result would have been identical. Consider,
for example, the element having a grey level corresponding to f
1. The RMS voltage V
f1 of this element is given by:

After substituting expressions (18), (15) and (16) in (20), it is found that:

With S
4 = SQRT(4) * D
4, we find that:

It is also true that:

If we compare expression (22) with (23) it follows that for f
1 < 1, the RMS voltage V
f12 is in fact less than V
on2. It is possible to set up (more general) equations for the general case of an N-line
matrix. The value of V
c can then be derived by a procedure such as that described above, in which case, inter
alia, the choice made will be:


Suppose that the ith element in a certain column should be "on". The RMS voltage
of this element if the 'virtual' (N+1)-line matrix is addressed then becomes:

After substituting the above relationships between S
N+1 and S
N and between D
N+1 and D
N in expression (24) and equating this expression to that according to the standard
Alt and Pleshko RMS addressing of N-lines:
[0075] V
on2 = (S
N + D
N)
2/N + (N-1)*D
N2/N, where S
N2 = N * D
N2, it is found that:


where the factor f
i = 1 is included in this last summation. In other words, given the information content
(of a particular column), the height of the voltage pulse V
c to be supplied (to the column concerned), which ensures that grey levels can be achieved
with the aid of PHM while maintaining the correct RMS voltages of the "on" and "off"
elements, can be determined.
[0076] One of the typical embodiment of the display device of the present invention, is
characterized in that the device comprises an electronic circuit unit which registers
the accosicated value of the parameter X
au(j), which is defined in the above mentioned description, for each column j of the
matrix of display element s and for each raster scan.
[0077] And the display device of the present invention is further characterized in that
during the raster scan, the amplitude V
d of the data voltage +/- V
d (which is across a picture element during the non-select period in the case of the
given description of the line-at-a-time addressing) is different for columns having
a different X
au value.
[0078] In the case of multi-line addressing, there is no question of a bi-level data voltage
+/- V
d, but multi-level data voltages are ures; for example, for 3-line addressing, 4 voltage
levels will be used with 2 different amplitudes; +/- V
3 and +/- V
3/3.
[0079] Note that, the value of V
3 will be chosen as different, as mentioned above.