This application claims priority to Taiwan Application Serial Number 107113385, filed Apr. 19, 2018, which is herein incorporated by reference.
The present invention relates to a driving circuit and an operating method therefor, and specifically, particular to a driving circuit for an touch display panel and an operating method therefor.
A driving IC of a common liquid crystal display (LCD) panel continuously writes images into the panel. All conditions such as a gate pulse, a source line voltage, and a VCOM voltage are consecutive.
However, if a touch IC is integrated into the driving IC of the display panel, because the panel needs to insert time for touch sensing, a different image write state is caused, and stripes occurs. Further, as shown in
Therefore, when a signal on the first data line DL1 is off and when a signal on the second data line DL2 is off, VCOM voltages are obviously different from each other. Consequently, a voltage difference is caused. As shown in the figure, a voltage VTD of the data driving period TD is obviously different from a voltage VTT of the touch period TT. Consequently, inconsecutive images are caused, and a line or a stripe occurs.
In view of this, an embodiment of the present invention is to provide a driving circuit that can eliminate lines or stripes of a display image. The driving circuit is applied to an In-cell touch display panel, where the touch display panel is operated in a touch mode in a touch period and is operated in a data driving mode in a data driving period, the touch period occurs between the data driving period corresponding to a first data line and another data driving period corresponding to a second data line, a common voltage of the touch display panel has a first level when the data driving period corresponding to the first data line ends, and the common voltage has a second level when the another data driving period corresponding to the second data line starts. The driving circuit includes a determining module and a compensating module. The determining module is configured to determine whether a difference between the first level and the second level is greater than a preset value. The compensating module is coupled to the determining module. Under a condition that a determining result of the determining module is that the difference between the first level and the second level is greater than the preset value, the compensating module compensates the common voltage in the touch period, so that the first level and the second level are substantially equal.
Another embodiment of the present invention is to provide an operating method for a driving circuit that can eliminate lines or stripes of a display image. The operating method is applied to an In-cell touch display panel, where the touch display panel is operated in a touch mode in a touch period and is operated in a data driving mode in a data driving period, the touch period occurs between the data driving period corresponding to a first data line and another data driving period corresponding to a second data line, a common voltage of the touch display panel has a first level when the data driving period corresponding to the first data line ends, the common voltage has a second level when the another data driving period corresponding to the second data line starts, and the driving circuit includes a determining module and a compensating module; and including the following steps: (S1) the determining module determines whether a difference between the first level and the second level is greater than a preset value; and (S2) under a condition that a determining result of the determining module is that the difference between the first level and the second level is greater than the preset value, the compensating module compensates the common voltage in the touch period, so that the first level and the second level are substantially equal.
Compared with the prior art, the driving circuit and the operating method therefor of one embodiment of the present invention eliminate lines or stripes of a display image through compensating the common voltage.
The following describes a plurality of implementations of the present invention with reference to the accompanying drawings and words. For clarity, practical details will be described in the following descriptions. However, it should be understood that the practical details are not intended to limit the present invention. In addition, to simplify the figures, some conventional structures and elements are schematically drawn in a simple manner in the figures.
Referring to
A common voltage VCOM of the touch display panel has a first level LV1 when the data driving period TD corresponding to the first data line DL1 ends, and the common voltage VCOM has a second level LV2 when the another data driving period TD corresponding to the second data line DL2 starts. In this embodiment, the compensating module 15 is coupled to the determining module 11, and is an operational amplifier 12 (OPAMP), configured to control (e.g., drive, provide, and/or adjust) the common voltage VCOM. The determining module 11 may be a voltage sensing circuit, but is not limited thereto.
As shown in the figure, the determining module 11 determines the first level LV1 and the second level LV2. The determining module 11 determines whether a difference between the first level LV1 and the second level LV2 is greater than a preset value. When a determining result of the determining module 11 is that the difference between the first level LV1 and the second level LV2 is greater than the preset value, the compensating module 15 compensates the common voltage VCOM in the touch period TT, so that the first level LV1 and the second level LV2 are substantially equal. It should be noted that the preset value in this embodiment may be set based on different requirements, and is not particularly limited.
For example, continue to refer to
It should be noted that if the determining result of the determining module is that the difference between the first level LV1 and the second level LV2 is not greater than the preset value, the compensating module 15 is switched off, and cannot compensate the common voltage VCOM in the touch period TT.
In an actual application, the determining module 11 determines a voltage difference between the common voltage VCOM when touch sensing starts and the common voltage VCOM when the touch sensing ends, that is, determines whether the difference between the first level LV1 of the common voltage VCOM when the data driving period TD ends (when the touch period TT starts) and the second level LV2 of the common voltage VCOM when the another data driving period TD starts (when the touch period TT ends) is greater than the preset value. If the difference between the first level LV1 and the second level LV2 is greater than the preset value, the compensating module 15 increases the driving voltage output in the touch period TD; or if the difference between the first level LV1 and the second level LV2 is not greater than the preset value, the compensating module 15 does not perform compensation.
For another embodiment of the present invention, refer to
In this embodiment, the high-resistance switch 13 is turned on and off, and the first level LV1 is greater than the second level LV2. Therefore, the compensating module 15 turns on (off) the high-resistance switch 13 in the touch period TT, so that the common voltage VCOM is maintained the same. Due to lack of driving of the operational amplifier 12, the common voltage VCOM cannot be restored to the output value of the operational amplifier 12. That is, a fixed value is maintained. Briefly, the common voltage VCOM is maintained unchanged in the touch period TT, so that the first level LV1 and the second level LV2 are substantially equal. Therefore, the first data line DL1 and the second data line DL2 can have substantially equal common voltages VCOM when they are driven. As shown in the figure, the first level LV1 and the second level LV2 are equal. Based on this design, a line or a stripe originally on a display image can be eliminated.
Another embodiment of the present invention provides an operating method applicable to the foregoing driving circuit, and is applied to an In-cell touch display panel. The touch display panel is operated in a touch mode in a touch period, and is operated in a data driving mode in a data driving period. The touch period occurs between the data driving period corresponding to a first data line and another data driving period corresponding to a second data line. A common voltage (VCOM) of the touch display panel has a first level when the data driving period TD corresponding to the first data line ends, and the common voltage has a second level when the another data driving period corresponding to the second data line starts.
The driving circuit includes a determining module and a compensating module. The operating method includes the following steps: (S1) the determining module determines whether a difference between the first level and the second level is greater than a preset value; and (S2) if a determining result of the determining module is that the difference between the first level and the second level is greater than the preset value, the compensating module compensates the common voltage in the touch period, so that the first level and the second level are substantially equal.
It should be noted that if the determining result in step (S1) is that the difference between the first level and the second level is not greater than the preset value, step (S3) is performed. The compensating module is switched off, and cannot compensate the common voltage in the touch period.
In this embodiment, the compensating module includes an operational amplifier (OPAMP), configured to control (e.g., drive, provide, and/or adjust) the common voltage. When the determining result of the determining module is that the difference between the first level and the second level is greater than the preset value, the compensating module compensates the common voltage by changing a driving voltage output by the operational amplifier in the touch period. For example, when the second level is less than the first level, the compensating module increases the driving voltage output by the operational amplifier in the touch period, so that the second level is increased to be substantially equal to the first level.
In another embodiment, a compensating module includes an operational amplifier and a high-resistance switch. The high-resistance switch is coupled to an output end of the operational amplifier, so that a common voltage is maintained unchanged in a touch period, and a first level and a second level are substantially equal.
Details of actions of the elements in the foregoing embodiments are similar to those in the device embodiments, and details are not described herein. Based on this design, a line or a stripe originally on a display image can be eliminated.
The foregoing specific embodiments are described in detail to more clearly describe features and the spirit of the present invention rather than limit the scope of the present invention. A person skilled in the art may make various alternations and modifications without departing from the sprit and scope of the present invention. Therefore, the protection scope of the present invention shall be subject to the scope defined by the appended claims.
Number | Date | Country | Kind |
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107113385 | Apr 2018 | TW | national |