The present invention relates to the technical field of light-emitting diode (LED) display, in particular to an LED backlight modulation method based on duty cycle reference point setting.
The LED backlight drive in the prior art generally uses a direct drive mode or a row-column scanning drive mode. As shown in
In addition, as shown in
In the prior art, in order to reduce hardware cost and control cost, LED backlight control also has a row-column scanning mode based on high-end switching. In this mode, a plurality of LED string channels are provided, each LED string channel including a predetermined number of multiple LED strings. For all LED strings in each string channel, the LED strings are connected at the high potential terminals thereof to unique one of a plurality of row scan lines, each of which is provided with a switching device. In this row-column scanning mode, the LED backlight drive control cannot set the turn-on time points and turn-off time points of the LED string channels in different control signal clock cycles, and must ensure the turn-on time points and turn-off time points of the LED string channels to be set within the time period when the switching device of the row scan line is turned on. In this case, it is impossible to effectively achieve staggered setting of the turn-on time point and turn-off time point of each channel, which easily cause the LED strings of multiple channels to be turned on or off at the same time, resulting in occurrence of large current jump at a power drive terminal with a high potential. When the power drive terminal cannot meet the need for large current jump, it is easy to cause degradation of display quality.
It is a technical object of the present invention to realize the staggered setting of the turn-on time point and turn-off time point of different channels in the row-column scanning LED backlight control circuit, so as to avoid large current jump at the power drive terminal.
In order to achieve the above technical object, the present invention provides an LED backlight modulation method based on duty cycle reference point setting, the backlight modulation method being applied to an LED backlight control circuit with row and column scan lines, the LED backlight control circuit with row and column scan lines including a plurality of LED string channels, each consisting of a predetermined number of multiple LED strings, and for all the LED strings in each LED string channel, the LED strings each being connected at high potential terminals thereof to unique one of a plurality of row scan lines, each of the row scan lines being provided with a switching device; wherein
T
rise
=T
SW·(1−P)·X
T
fall
=T
SW
·[P+(1−P)·X]
In one embodiment, the number of the row scan lines is the same as the number of LED strings in the LED string channel.
The present invention also provides an LED backlight modulation method based on duty cycle reference point setting, the backlight modulation method being applied to an LED backlight control circuit with row and column scan lines, the LED backlight control circuit with row and column scan lines including a plurality of LED string channels, each consisting of a predetermined number of multiple LED strings, and for all the LED strings in each LED string channel, the LED strings each being connected at high potential terminals thereof to unique one of a plurality of row scan lines, each of the row scan lines being provided with a switching device; wherein
T
CH
=T
SW
·P;
if TCH≤TSW·(1−X),
T
rise
=T
SW
·X, and
T
fall
=T
SW
·[P+X]
T
rise
=T
SW·(1−P), and
T
fall
=T
SW; and
In one embodiment, the number of the row scan lines is the same as the number of LED strings in the LED string channel.
The present invention also provides an LED backlight modulation method based on duty cycle reference point setting, the LED backlight modulation method being applied to an LED backlight control circuit with row and column scan lines, the LED backlight control circuit with row and column scan lines including a plurality of LED string channels, each consisting of a predetermined number of multiple LED strings, and for all the LED strings in each LED string channel, the LED strings each being connected at high potential terminals thereof to unique one of a plurality of row scan lines, each of the row scan lines being provided with a switching device; wherein
T
CH
=T
SW
·P;
if TCH≤TSW·X,
T
rise
=T
SW·(X−P), and
T
fall
=T
SW
·X
T
rise=0, and
T
fall
=T
SW
·P; and
In one embodiment, the number of the row scan lines is the same as the number of LED strings in the LED string channel.
Compared with the prior art, one or more embodiments of the present invention may have the following advantages:
1. In the present invention, different duty cycle reference points are set for the LED string channels in the LED backlight control circuit in row-column mode, whereby the LED string channels can be turned on or off at different time points during a turn-on duration of the row scan line to achieve lighting in the duty cycle, so as to realize the staggered setting of the turn-on time point and turn-off time point of each channel and avoid the need for large current jump at a power drive terminal.
Additional features and advantages of the present invention will be set forth in the description which follows, and will in part be apparent from the description, or appreciated by implementation of the present invention. The objects and other advantages of the present invention may be realized and attained by the configuration particularly illustrated in the description, claims, and accompanying drawings.
The accompanying drawings are used to provide further understanding of the present invention, and constitute a part of the description, and are used along with the examples of the present invention to explain the present invention, but is not a limitation to the present invention. In the accompanying drawings:
In order to clarify the object, technical solution, and advantages of the present invention, the present invention will be further described in detail below in conjunction with the accompanying drawings.
As shown in
In addition, when a conduction duration of the LED string channel is TCH and a conduction duty cycle of the channel is P,
T
CH
=T
SW
·P.
In this example, taking the duty cycle reference point as a reference point, a duration T1 before the duty cycle reference point in the conduction duration TCH of the LED string channel is expressed as:
T1=TCH·X, and
T2=TCH·(1−X).
Under this premise, a rising edge time point position Trise of the conduction duration of the LED string channel is expressed as:
T
rise
=T
X
−T1,
The above relationship is substituted thereinto, and
T
rise
=T
SW·(1−P)·X is obtained.
In the same manner, a falling edge time point position Tfall of the conduction duration of the LED string channel is expressed as:
T
fall
=T
SW
·[P+(1−P)·X].
In this example, the duty cycle of the LED string channels is set to 50%, and settings for each channel are as follows:
According to the above formula, it can be found that:
For the conduction duration of the LED strings of channel CH1, the rising edge time point position Trise is 5%, and the falling edge time point position Tfall is 55%;
For the conduction duration of the LED strings of channel CH2; the rising edge time point position Trise is 12.5%, and the falling edge time point position Tfall is 62.5%;
For the conduction duration of the LED strings of channel CH3, the rising edge time point position Trise is 25%, and the falling edge time point position Tfall is 75%; and
For the conduction duration of the LED strings of channel CH4, the rising edge time point position Trise is 37.5%, and the falling edge time point position Tfall is 87.5%;
The above duty cycle sequence is shown in
In this example, the duty cycle reference point percentage X value can be changed according to actual needs. When the number of channels changes, for each channel, a duty cycle reference point percentage X value different from those of other channels can be set, thereby realizing staggered setting of the turn-on time point and turn-off time point of the conduction of the channel.
Similarly, in this example, different duty cycle reference points are set for the channels, and the duty cycle reference point is located in a selected duration of the row scan line. When a line selection duration of the row scan line is TSW and the time point at which the duty cycle reference point is located is expressed as TX, the duty cycle reference point percentage X is expressed as:
In addition, when a conduction duration of the LED string channel is TCH and a conduction duty cycle of the channel is P,
T
CH
=T
SW
·P.
The difference of this example from Example 1 is that, taking the duty cycle reference point as a reference point, the conduction duration TCH of the LED string channel is obtained by extending afterward from the reference point. That is:
if,TCH≤TSW·(1−X,
T
rise
=T
SW
·X
then,Tfall=TSW·[P+X],
T
rise
=T
SW·(1−P)
otherwise,Tfall=TSW.
In this example, similarly, taking the duty cycle reference point as a reference point, the conduction duration TCH of the LED string channel is obtained by extending forward from the reference point. That is:
if,TCH≤TSW·X,
T
rise
=T
SW·(X−P)
then,Tfall=TSW·X,
T
rise=0
otherwise,Tfall=TSW·P.
Through the above-mentioned method, it is also possible to set different duty cycle reference point percentages X for the channels, so that the rising edges and falling edges of the conduction of all the channels can be staggered and set at different times, thereby avoiding; the need to drive a power supply terminal to provide a large sudden change in current at the same time.
The above description is merely specific implementation examples of the present invention, and the protective scope of the present invention is not limited thereto. The modification and substitution of the present invention made by any skilled person in the art within the technical specifications described in the present invention should fall within the protective scope of the present invention.
Number | Date | Country | Kind |
---|---|---|---|
202210217571.5 | Mar 2022 | CN | national |
This application is the continuation application of International Application No. PCT/CN2022/136048, filed on Dec. 2, 2022, which is based upon and claims priority to Chinese Patent Application No. 202210217571.5, filed on Mar. 7, 2022, the entire contents of which are incorporated herein by reference.
Number | Date | Country | |
---|---|---|---|
Parent | PCT/CN2022/136048 | Dec 2022 | US |
Child | 18228005 | US |