1. Field of the Invention
The present invention relates to a Gamma voltage driving circuit and a related method, and more particularly, to a Gamma voltage driving circuit and a related method that shares a Gamma voltage generator through timing controls.
2. Description of the Prior Art
In recent times, flat panel display (FPDs) with their flat, thin form factor and high-resolution image quality are getting more and more attention and undergoing explosive growth in the consumer market. The major types of FPDs include plasma display panels (PDP), liquid crystal displays (LCD), and rear projection displays. These flat panel displays feature several shared benefits of thin form factor and high-resolution image quality and have largely replaced cathode ray tube displays (CRT). Hence, flat panel displays are widely applied to information products such as notebook computers, personal digital assistants (PDA), flat televisions and mobile phones. In order to improve the color quality of the flat panel displays, three Gamma voltages (such as Red, Green, and Blue) are adopted to control the flat panel displays in order to make the displayed color more precise.
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Conventional flat panel displays always adopt three Gamma voltage generators for respectively generating Gamma voltages with R, G, and B. However, in order to provide a display panel with higher quality, the Gamma voltage generator needs to provide more different voltage levels to conform to data transmission with more bits. Thus, the more voltage levels the Gamma voltage generator needs to provide, the larger the circuit becomes, which is not economical.
It is therefore one of the objectives of the present invention to provide a Gamma voltage driving circuit and a related method to solve the abovementioned problems.
According to an exemplary embodiment of the present invention, a Gamma voltage driving circuit is provided. The Gamma voltage driving circuit includes a setting circuit, a Gamma voltage generator, and a plurality of voltage output modules. The setting circuit is used for respectively outputting a plurality of Gamma voltage setting signals at different time slots, wherein the plurality of Gamma voltage setting signals respectively correspond to different color constituents. The Gamma voltage generator is coupled to the setting circuit for receiving the plurality of Gamma voltage setting signals and for respectively transforming the plurality of Gamma voltage setting signals into a plurality of corresponding voltage levels. The plurality of voltage output modules are coupled to the Gamma voltage generator. The plurality of voltage output modules respectively correspond to different color constituents and respectively provide voltage outputs at different time slots. Each voltage output module includes a plurality of voltage output circuits and a plurality of output control circuits. Each voltage output circuit includes a voltage selecting unit and an output buffering unit. The voltage selecting unit is used for choosing a target voltage level from the plurality of corresponding voltage levels according to a selecting signal. The output buffering unit is coupled to the voltage selecting unit for buffering the target voltage level selected by the voltage selecting unit. The plurality of output control circuits are respectively coupled to the plurality of voltage output circuits. Each output control circuit is used for controlling the corresponding voltage output circuit to selectively output the target voltage level.
In one embodiment, each output control circuit includes a first switch coupled between an output end of the corresponding voltage output circuit and an output buffering unit of the corresponding voltage output circuit for selectively being turned on or turned off according to a first switch signal.
In one embodiment, the setting circuit includes a plurality of setting switches respectively coupled between the plurality of Gamma voltage setting signals and the Gamma voltage generator. The plurality of setting switches are respectively selectively turned on or turned off according to a plurality of setting switch signals to respectively output the plurality of Gamma voltage setting signals to the Gamma voltage generator at different time slots.
In one embodiment, the Gamma voltage driving circuit is applied to a flat panel display.
According to an exemplary embodiment of the present invention, a method for generating Gamma voltages is provided. The method includes respectively outputting a plurality of Gamma voltage setting signals at different time slots, wherein the plurality of Gamma voltage setting signals respectively correspond to different color constituents; receiving the plurality of Gamma voltage setting signals and respectively transforming the plurality of Gamma voltage setting signals into a plurality of corresponding voltage levels; choosing a target voltage level from the plurality of corresponding voltage levels according to a selecting signal; buffering the target voltage level selected by the voltage selecting unit; and controlling whether to output the target voltage level.
These and other objectives of the present invention will no doubt become obvious to those of ordinary skill in the art after reading the following detailed description of the preferred embodiment that is illustrated in the various figures and drawings.
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Please note that the abovementioned Gamma voltage generator 220 can be implemented by an R-ladder, i.e., being composed of multiple resistors, but is not limited to this only and can be implemented by other elements. Furthermore, the number N is not a fixed value and can be adjusted depending on practical applications.
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In this embodiment, the abovementioned output control circuits 238, 248, and 258 can include a first switch SW1, but is not limited to this and can be implemented by other elements. It will be obvious to those skilled in the art that various modifications of the output control circuits 238, 248, and 258 may be made without departing from the spirit of the present invention. Taking the voltage output circuit 232 and the output control circuit 238 included by the voltage output module 230 as an example, the first switch SW1 of the output control circuit 238 is coupled between an output end of the corresponding voltage output circuit 232 and the output buffering unit 236 of the corresponding voltage output circuit 232 for selectively being turned on or turned off according to a first switch signal SR1. The rest may be deduced by analogy. The first switch SW1 of the output control circuit 248 is selectively turned on or turned off according to a first switch signal SG1, and the first switch SW1 of the output control circuit 258 is selectively turned on or turned off according to a first switch signal SB1.
In one embodiment, the setting circuit 210 can include a plurality of setting switches 212-216 (only three setting switches 212-216 are presented in
Please note that the abovementioned Gamma voltage driving circuit 200 can be applied to a flat panel display, but is not limited to this only and can be applied to other devices.
Please refer to
During the time segment T1, only the first switch SW1 controlled by the first switch signal SR1 and the setting switch 212 controlled by the setting switch signal OE_R are allowed to be turned on. At this time, the setting circuit 210 outputs the Gamma voltage setting signal R_Gamma, and the Gamma voltage generator 220 then transforms the Gamma voltage setting signal R_Gamma into a plurality of (2N) corresponding voltage levels to output. Due to only the first switch SW1 being controlled by the first switch signal SR1 (i.e., the output control circuit 238) being turned on, only the voltage output circuits 232 included in the voltage output module 230 can output the selected target voltage level Vt, and so forth. During the time segment T2, only the first switch SW1 controlled by the first switch signal SG1 and the setting switch 214 controlled by the setting switch signal OE_G are allowed to be turned on. At this time, only the voltage output circuits 242 included by the voltage output module 240 can output the selected target voltage level Vt, and so forth. During the time segment T3, only the first switch SW1 controlled by the first switch signal SB1 and the setting switch 216 controlled by the setting switch signal OE_B are allowed to be turned on. At this time, only the voltage output circuits 252 included by the voltage output module 250 can output the selected target voltage level Vt.
Through collocating the control of each switch of the output control circuits 238, 248, and 258 together with the choices of each switch of the setting circuit 210, the Gamma voltage driving circuit 200 can sequentially drive the Gamma voltages with red, green, and blue within the time T of a scan line. Through the concept of time-sharing and multi-work, only one Gamma voltage generator 220 is needed to complete the abovementioned actions. Not only can circuits be simplified but manufacturing cost and occupied area can also be saved.
Please note that the abovementioned first switch signal SR1 and the setting switch signal OE_R are signals adopting the same timing, the first switch signal SG1 and the setting switch signal OE_G are signals adopting the same timing, and the first switch signal SB1 and the setting signal OE_B are signals adopting the same timing, and that this is merely an example for illustrating the present invention. In other embodiments, these signals can be implemented by signals adopting different timings. For example, a delay time exists between the first switch signal SR1 and the setting switch signal OE_R, and they can be simultaneously turned on during a period of overlapped time.
The abovementioned embodiments are presented merely for describing the present invention, and in no way should be considered to be limitations of the scope of the present invention. Those skilled in the art should observe that various modifications of the output control circuits 238, 248, and 258 may be made without departing from the spirit of the present invention. Please refer to
In one embodiment, the first switch signal SR1, the second switch signal SR2, and the setting switch signal OE_R are signals adopting the same timing. The first switch signal SG1, the second switch signal SG2, and the setting switch signal OE_G are signals adopting the same timing. The first switch signal SB1, the second switch signal SB2, and the setting signal OE_B are signals adopting the same timing. Thus the timing diagram of each switch signal of the Gamma voltage driving circuit 400 is the same as the timing diagram shown in
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Please note that, in this embodiment, only one of the second switch SW2 of each output control circuit and the third switch SW3 of the corresponding voltage output circuit is allowed to be turned on within an identical time slot. Taking the voltage output circuit 532 and the output control circuit 438 included by the voltage output module 530 as an example, the output buffering unit 236 of the voltage output circuit 532 is coupled to the pre-charging voltage VP1 to charge its voltage level to the pre-charging voltage VP1 when the third switch SW3 is turned on. At this time, the second switch SW2 is turned off. When the second switch SW2 is turned on, the output buffering unit 236 of the voltage output circuit 532 is coupled to the voltage selecting unit 234 to output the target voltage level Vt selected by the voltage selecting unit 234. At this time, the third switch SW3 is turned off.
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During the time segment T0, only the third switch SW3 controlled by the third switch signal S3 is allowed to be turned on. At this time, the output buffering units 236-256 of the voltage output circuits 532-552 are coupled to the pre-charging voltage VP1 to charge its corresponding voltage level to the pre-charging voltage VP1. During the time segment T11, only the first switch SW1 controlled by the first switch signal SR1, the second switch SW2 controlled by the second switch signal SR2, and the setting switch 212 controlled by the setting switch signal OE_R are allowed to be turned on. At this time, the setting circuit 210 outputs the Gamma voltage setting signal R_Gamma, and the Gamma voltage generator 220 then transforms the Gamma voltage setting signal R_Gamma into a plurality of (2N) corresponding voltage levels to be output. Due to only the first switch SW1 controlled by the first switch signal SR1 and the second switch SW2 controlled by the second switch signal SR2 (i.e., the output control circuit 438) being turned on, only the voltage output circuits 532 included by the voltage output module 530 can output the selected target voltage level Vt, and so forth. During the time segment T22, only the first switch SW1 controlled by the first switch signal SG1, the second switch SW2 controlled by the second switch signal SG2, and the setting switch 214 controlled by the setting switch signal OE_G are allowed to be turned on. At this time, only the voltage output circuits 542 included by the voltage output module 540 can output the selected target voltage level Vt, and so forth. During the time segment T33, only the first switch SW1 controlled by the first switch signal SB1, the second switch SW2 controlled by the second switch signal SB2, and the setting switch 216 controlled by the setting switch signal OE_B are allowed to be turned on. At this time, only the voltage output circuits 552 included by the voltage output module 550 can output the selected target voltage level Vt.
Please note that the abovementioned first switch signal SR1, the second switch signal SR2, and the setting switch signal OE_R are signals adopting the same timing; the first switch signal SG1, the second switch signal SG2, and the setting switch signal OE_G are signals adopting the same timing; and the first switch signal SB1, the second switch signal SB2, and the setting signal OE_B are signals adopting the same timing, and that this is merely an example for illustrating the present invention. In other embodiments, these signals can be implemented by signals adopting different timings. For example, there is a delay time exists between the first switch signal SR1, the second switch signal SR2, and the setting switch signal OE_R, and they can be simultaneously turned on during a period of overlapped time.
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In one embodiment, the abovementioned voltage regulating devices 760 and 860 can be implemented by a MOSFET, but are not limited to this implementation only and can be implemented by other elements.
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Step 1002: Start.
Step 1004: Respectively output a plurality of Gamma voltage setting signals at different time slots.
Step 1006: Receive the plurality of Gamma voltage setting signals and respectively transform the plurality of Gamma voltage setting signals into a plurality of corresponding voltage levels.
Step 1008: Select a target voltage level from the plurality of corresponding voltage levels according to a selecting signal.
Step 1010: Buffer the selected target voltage level.
Step 1012: Control whether to output the target voltage level.
Step 1014: End.
The following description details how each element operates by collocating the steps shown in
Please note that the steps of the abovementioned flowchart are merely an exemplary embodiment of the present invention, and in no way should be considered to be limitations of the scope of the present invention. The method can include other intermediate steps without departing from the spirit of the present invention. Those skilled in the art should observe that various modifications of these methods may be made.
The abovementioned embodiments are presented merely for describing the present invention, and in no way should be considered to be limitations of the scope of the present invention. The abovementioned Gamma voltage generator 220 can be implemented by an R-ladder circuit, but is not limited to this only and can be implemented by other elements. In addition, the number N is not a fixed value and can be adjusted depending on practical applications. In one embodiment, the output control circuit can include at least one switch, but is not limited to this only and can be implemented by other elements. It will be obvious to those skilled in the art that various modifications of the output control circuits may be made without departing from the spirit of the present invention. The setting circuit 210 can include a plurality of setting switches. This is merely an example for describing the present invention, and in no way should be considered a limitation of the present invention. Please note that the abovementioned Gamma voltage driving circuit can be applied to a flat panel display, but is not limited to this only and can be applied to other devices. Please also note that the timing sequences of each switch signal mentioned above are presented merely for describing the present invention, and in no way should be considered to be limitations of the scope of the present invention. Those skilled in the art should observe that various modifications of the timing sequences of each switch signal may be made without departing the spirit of the present invention. The abovementioned embodiments are merely examples for describing the present invention, and in no way should be considered a limitation of the present invention. It will be obvious to those skilled in the art that various modifications of the Gamma voltage driving circuit may be made without departing from the spirit of the present invention. For example, the voltage level is pre-charged to the pre-charging voltage VP1, or the voltage regulating device is added into each voltage output module, and this also belongs within the scope of the present invention. Furthermore, the steps of the method shown in
In summary, the present invention provides a Gamma voltage driving circuit and related method. Through controlling the timing sequences of each switch of the output control circuit collocating with the choice of each setting switch of the setting circuit, the Gamma voltages with Red, Green, and Blue can be sequentially driven (or the Gamma voltages with Blue, Green, and Red can be sequentially driven) by the Gamma voltage driving circuit within a period T of a scan line. In addition, through a concept of multiplexing with timing sharing, only one Gamma voltage generator 220 is necessary to complete the abovementioned actions. Therefore, even if the number of the voltage levels needs to be provided by the Gamma voltage driving circuit gets bigger, the manufacturing cost will not be increased.
Those skilled in the art will readily observe that numerous modifications and alterations of the device and method may be made while retaining the teachings of the invention.
Number | Date | Country | Kind |
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097101322 | Jan 2008 | TW | national |