1. Field of the Invention
The invention relates to a liquid crystal display (LCD) apparatus, and particularly, to a driving circuit applied in the LCD apparatus.
2. Description of the Prior Art
In recent years, with the continuous progress of the image related technology, various new types of displays shown on the market have replaced conventional cathode ray tube (CRT) displays. Among these displays, the LCD apparatus has advantages of power saving and small size and is widely used by ordinary consumers; therefore, it has become the main stream of the display market.
In general, the driving circuit in the LCD display includes a timing controller (TCON), a source driver, and a gate driver. Wherein, the timing controller is a control IC used for generating and outputting a control timing to control the timings of a source driver and a gate driver of a LCD panel.
Please refer to
As shown in
In
In
From
Therefore, the invention provides a source circuit applied in the LCD apparatus to solve the above-mentioned problems occurred in the prior arts.
A scope of the invention is to provide a driving circuit applied in a LCD apparatus. In an embodiment, the driving circuit includes at least one first channel, at least one second channel, a timing controller, and a panel driver. The timing controller includes a digital signal switching unit. The digital signal switching unit selectively performs a polarity exchange to a first digital data signal and a second digital data signal according to a control signal. The panel driver includes an analog signal switching unit. The analog signal switching unit performs a switching corresponding to the polarity exchange according to the control signal to make the driving circuit selectively operated under a first operation mode or a second operation mode.
In practical applications, the panel driver can be a source driver of a panel. When the driving circuit is operated under the first operation mode, the digital signal switching unit inputs the first digital data signal to the first channel and inputs the second digital data signal to the second channel according to the control signal. The first digital-to-analog converting unit converts the first digital data signal into a first analog data signal, and the second digital-to-analog converting unit converts the second digital data signal into a second analog data signal. The analog signal switching unit receives the first analog data signal from the first digital-to-analog converting unit and receives the second analog data signal from the second digital-to-analog converting unit, the analog signal switching unit performs no switch according to the control signal and directly outputs the first analog data signal and the second analog data signal respectively.
When the driving circuit is operated under the second operation mode, the digital signal switching unit inputs the first digital data signal to the second channel and inputs the second digital data signal to the first channel according to the control signal. The first digital-to-analog converting unit converts the second digital data signal into a second analog data signal, and the second digital-to-analog converting unit converts the first digital data signal into a first analog data signal. The analog signal switching unit receives the second analog data signal from the first digital-to-analog converting unit and receives the first analog data signal from the second digital-to-analog converting unit, the analog signal switching unit switches the first analog data signal and the second analog data signal according to the control signal and then outputs the switched first analog data signal and second analog data signal.
Another scope of the invention is to provide a driving circuit operating method. In an embodiment, the driving circuit operating method is applied in a driving circuit of a LCD apparatus. The driving circuit includes at least one first channel, at least one second channel, a timing controller, and a panel driver. The timing controller includes a digital signal switching unit. The panel driver includes an analog signal switching unit. The digital signal switching unit selectively performs a polarity exchange to a first digital data signal and a second digital data signal according to a control signal. The analog signal switching unit performs a switching corresponding to the polarity exchange according to the control signal to make the driving circuit selectively operated under a first operation mode or a second operation mode.
Compared to the prior arts, the driving circuit and operating method thereof disclosed by this invention uses the digital signal switching unit in the timing controller to selectively perform polarity exchange between the digital data signals according to the polarity control signal (POL), and then inputs these digital data signal into the source driver. By doing so, the source driver performs no digital data signal polarity exchange as shown in
The advantage and spirit of the invention may be understood by the following detailed descriptions together with the appended drawings.
An embodiment of the invention is a driving circuit. In this embodiment, the driving circuit is applied in a LCD apparatus and used for driving a LCD panel, but not limited to this. The driving circuit includes at least one first channel, at least one second channel, a timing controller, and a panel driver. The timing controller includes a digital signal switching unit. The panel driver includes an analog signal switching unit. It should be noticed that the driving circuit of the invention has two operation modes. In detail, the driving circuit is selectively operated under a first operation mode or a second operation mode according to the corresponding polarity exchange between the digital signal switching unit of the timing controller and the analog signal switching unit of the panel driver. In fact, the panel driver can be a source driver of a panel, but not limited to this.
At first, please refer to
It should be noticed that there are two channels CH1, CH2 and two digital data signals DS1, DS2 in this embodiment; however, the number of the channels and the digital data signals in driving circuit is not limited to this. In fact, the digital signal switching unit 200 and the analog signal switching unit 226 can be multiplexers; the first amplifying unit 227 and the second amplifying unit 228 can be ordinary amplifiers; the P-type digital-to-analog converting unit 224 can be a positive digital-to-analog converter (DAC); the N-type digital-to-analog converting unit 225 can be a negative digital-to-analog converter (DAC); the first data latch unit 221 and the second data latch unit 222 can be ordinary data latches, but not limited to this.
As shown in
Then, the first data latch unit 221 of the first channel CH1 transmits the first digital data signal DS1 to the P-type digital-to-analog converting unit 224, and the second data latch unit 222 of the second channel CH2 transmits the second digital data signal DS2 to the N-type digital-to-analog converting unit 225.
After the P-type digital-to-analog converting unit 224 receives the first digital data signal DS1, the P-type digital-to-analog converting unit 224 will convert the first digital data signal DS1 into a first analog data signal AS1 and output the first analog data signal AS1 to the analog signal switching unit 226.
Similarly, after the N-type digital-to-analog converting unit 225 receives the second digital data signal DS2, the N-type digital-to-analog converting unit 225 will convert the second digital data signal DS2 into a second analog data signal AS2 and output the second analog data signal AS2 to the analog signal switching unit 226.
After the analog signal switching unit 226 receives the first analog data signal AS1 and the second analog data signal AS2 from the P-type digital-to-analog converting unit 224 and the N-type digital-to-analog converting unit 225 respectively, since the digital signal switching unit 200 of the timing controller 20 does not perform the polarity exchange between the digital signals under the first operation mode, the analog signal switching unit 226 will determine not to switch according the polarity control signal POL, and still transmit the first analog data signal AS1 outputted from the first channel CH1 to the first amplifying unit 227 and transmit the second analog data signal AS2 outputted from the second channel CH2 to the second amplifying unit 228. Afterward, the first analog data signal AS1 and the second analog data signal AS2 will be amplified by the first amplifying unit 227 and the second amplifying unit 228 and outputted to the LCD panel (not shown in the figures).
Then, please refer to
As shown in
It should be noticed that when the digital signal switching unit 200 receives the polarity control signal POL, the digital signal switching unit 200 will find out that the driving circuit 2 is operated under the second operation mode according to the polarity control signal POL; therefore, the digital signal switching unit 200 will determine to perform the polarity exchange between the digital signals. That is to say, the digital signal switching unit 200 will output the first digital data signal DS1 to the second data latch unit 222 of the second channel CH2 and output the second digital data signal DS2 to the first data latch unit 221 of the first channel CH1 to exchanging them.
Then, the first data latch unit 221 of the first channel CH1 will transmit the second digital data signal DS2 to the P-type digital-to-analog converting unit 224, and the second data latch unit 222 of the second channel CH2 will transmit the first digital data signal DS1 to the N-type digital-to-analog converting unit 225.
After the P-type digital-to-analog converting unit 224 receives the second digital data signal DS2, the P-type digital-to-analog converting unit 224 will convert the second digital data signal DS2 into a second analog data signal AS2 and output the second analog data signal AS2 to the analog signal switching unit 226.
Similarly, after the N-type digital-to-analog converting unit 225 receives the first digital data signal DS1, the N-type digital-to-analog converting unit 225 will convert the first digital data signal DS1 into a first analog data signal AS1 and output the first analog data signal AS1 to the analog signal switching unit 226.
After the analog signal switching unit 226 receives the second analog data signal AS2 and the first analog data signal AS1 from the P-type digital-to-analog converting unit 224 and the N-type digital-to-analog converting unit 225 respectively, since the digital signal switching unit 200 of the timing controller 20 performs the polarity exchange between the digital signals under the second operation mode, the analog signal switching unit 226 will determine to switch according the polarity control signal POL, and transmit the second analog data signal AS2 outputted from the first channel CH1 to the second amplifying unit 228 and transmit the first analog data signal AS1 outputted from the second channel CH2 to the first amplifying unit 227. Afterward, the first analog data signal AS1 and the second analog data signal AS2 will be amplified by the first amplifying unit 227 and the second amplifying unit 228 and outputted to the LCD panel (not shown in the figures).
As shown in
Another embodiment of the invention is a driving circuit operating method. In this embodiment, the driving circuit operating method is applied in a driving circuit of a LCD apparatus, but not limited to this. The driving circuit has two operation modes. The driving circuit includes at least one first channel, at least one second channel, a timing controller, and a panel driver. The timing controller includes a digital signal switching unit. The panel driver includes an analog signal switching unit. Please refer to
As shown in
Next, the first operation mode and the second operation mode of the above-mentioned driving circuit will be further introduced respectively.
At first, please refer to
In practical applications, after the first analog data signal AS1 and the second analog data signal AS2 are amplified by the first amplifying unit and the second amplifying unit respectively, the first amplifying unit and the second amplifying unit will output the amplified first analog data signal AS1 and second analog data signal AS2 to the LCD panel respectively.
Then, please refer to
In practical applications, after the first analog data signal AS1 and the second analog data signal AS2 are amplified by the first amplifying unit and the second amplifying unit respectively, the first amplifying unit and the second amplifying unit will output the amplified first analog data signal AS1 and second analog data signal AS2 to the LCD panel respectively.
As to the detail of the driving circuit practical operation, since it is introduced in the above-mentioned embodiments, it is not described again here.
Compared to the prior arts, the driving circuit and operating method thereof disclosed by this invention uses the digital signal switching unit in the timing controller to selectively perform polarity exchange between the digital data signals according to the polarity control signal (POL), and then inputs these digital data signal into the source driver. By doing so, the source driver performs no digital data signal polarity exchange as shown in
With the example and explanations above, the features and spirits of the invention will be hopefully well described. Those skilled in the art will readily observe that numerous modifications and alterations of the device may be made while retaining the teaching of the invention. Accordingly, the above disclosure should be construed as limited only by the metes and bounds of the appended claims.
Number | Date | Country | Kind |
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100119535 | Jun 2011 | TW | national |