This application claims the benefits of the Taiwan Patent Application Serial Number 109112951, filed on Apr. 17, 2020, the subject matter of which is incorporated herein by reference.
The present disclosure relates to an AMOLED display driving device with switching frame rate and, more particularly, to an AMOLED display driving device with switching frame rate, which is capable of keeping the display brightness of the AMOLED unchanged.
Due to the fast response characteristics of the Active Matrix Organic Light Emitting Diode (AMOLED) panel, the dynamic display effect can be greatly improved, but the power saving requirement during static display has to be addressed, resulting in that the switching of the frame rate is necessary. Therefore, in the design of the AMOLED display driving device, consideration should be given to avoiding the display variation caused by the switching of the frame rate during the switching process, and reducing the complexity of circuit design and the difficulty in use.
With the design of the conventional AMOLED display driving device, to achieve switching among different frame rates, different panel driving timings are generally used to drive the AMOLED display panel, which may cause different panel charging time and result in change of the display brightness of the panel. Moreover, because of the need to use a plurality of different panel drive timings, the AMOLED display driving device requires a larger memory to store a plurality of different settings, and has to retain sufficient conversion time in timing control, resulting in that the design of the driving circuit becomes difficult. In addition, for the change of the display brightness caused by different panel charging time, it not only needs to be compensated with other functions (such as Gamma) to reduce the change, but also affects other characteristics of the AMOLED display panel (such as Mura).
Therefore, it is desirable to provide an improved AMOLED display driving device to mitigate and/or obviate the aforementioned problems.
An object of the present disclosure is to provide an AMOLED display driving device with switching frame rate, which is capable of keeping the display brightness of the AMOLED unchanged by controlling the display driving time unchanged and controlling the emission duty ratio of the entire frame unchanged when switching the frame rate.
To achieve the object, the present disclosure provides an AMOLED display driving device, which is switchable among a plurality of frame rates for display driving, each frame rate corresponding to a frame period, each frame period having a display time and a vertical blanking time, a display time in the frame period corresponding to a highest frame rate in the plurality of frame rates being a standard display time. The AMOLED display driving device includes: a timing control unit, which extends the vertical blanking time based on an input frame rate, to change the display time and the vertical blanking time in the frame period corresponding to the frame rate, so that the display time in the frame period corresponding to the frame rate is equal to the standard display time; a panel driving unit, which drives an AMOLED display panel based on input frame data and frame timing according to the display time and the vertical blanking time in the frame period corresponding to the frame rate changed by the timing control unit, so as to display the input frame data on the AMOLED display panel; and an emission duty ratio control unit, which applies a plurality of emission pulses to the AMOLED display panel during the frame period corresponding to the frame rate.
Other objects, advantages, and novel features of the disclosure will become more apparent from the following detailed description when taken in conjunction with the accompanying drawings.
The following embodiments describe the implementation and operation principles of the AMOLED display driving device with switching frame rate disclosed in the present disclosure. Those skilled in the art to which the present disclosure pertains may understand the features and effects of this disclosure through the above-mentioned embodiments, and may perform combination, modification, replacement or adaption based on the spirit of the present disclosure.
The aforementioned AMOLED display driving device 11 may be switched among a plurality of frame rates FR-i (i=1˜n, n is an integer greater than 1) for display driving, wherein, the frame rate information for display driving is included in the input frame timing, or may be configured by the application processor (AP). Furthermore, as shown in
Since the AMOLED display driving device 11 is switched or shifted among the plurality of frame rates FR-1, FR-2, FR-3, . . . FR-n for display driving, in order to achieve the purpose of changing the frame rate but keeping the brightness of the panel unchanged, the timing control unit 115 changes the display time (DT) and the vertical blanking time (VB) in the frame period 15 corresponding to the frame rate FR-i by extending the vertical blanking time (VB), so that the display time (DT) in the frame period 15 corresponding to the frame rate FR-i is equal to the standard display time (SDT).
Please refer to
With the display time (DT=SDT) and the vertical blanking time (VB) in the frame period 15 corresponding to the frame rate FR-i that are changed by the timing control unit 115, based on the input frame data and frame timing, the panel driving unit 111 drives the AMOLED display panel 13 according to the frame period 15 corresponding to the frame rate FR-i changed by the timing control unit 115, so as to display the input frame data on the AMOLED display panel 13.
Furthermore, in order to achieve the purpose of changing the frame rate but keeping the brightness of the panel unchanged, during the frame period 15 corresponding to the frame rate FR-i, the emission duty ratio control unit 113 applies a plurality of emission pulses to the AMOLED display panel 13. The number of emission pulses applied is given such that the emission duty ratio of the frame period 15 corresponding to the frame rate FR-i is a fixed preset value; that is, for all frame rates FR-i, the corresponding emission duty ratio remains unchanged.
In order to keep the emission duty ratio of the frame period 15 corresponding to the frame rate FR-i unchanged, when switching to a specific frame rate FR-j (j=1˜n−1) (in this example, 60 Hz, 68.6 Hz, 80 Hz, or 96 Hz) other than the highest frame rate FR-n (in this example, 120 Hz) for display driving, the number of emission pulses applied by the emission duty ratio control unit 113 is equal to M, wherein M is determined by dividing the frame period 15 corresponding to the specific frame rate FR-j by a basic emission pulse cycle time. The basic emission pulse cycle time is equal to the frame period 151 corresponding to the highest frame rate FR-n divided by N. In this example, the basic emission pulse cycle time is 1/120 seconds÷4= 1/480 seconds and thus, when using the frame rate of 96 Hz for display driving, the number of emission pulses applied by the emission duty ratio control unit 113 is M= 1/96 seconds÷ 1/480 seconds=5; when using the frame rate of 80 Hz for display driving, the number of emission pulses applied by the emission duty ratio control unit 113 is M= 1/80 seconds÷ 1/480 seconds=6; when using the frame rate of 68.6 Hz for display driving, the number of emission pulses applied by the emission duty ratio control unit 113 is M=1/68.6 seconds÷ 1/480 seconds=7; when using the frame rate of 60 Hz for display driving, the number of emission pulses applied by the emission duty ratio control unit 113 is M= 1/60 seconds÷ 1/480 seconds=8. Similarly, in this way, it is able to calculate the number of emission pulses corresponding to a desired frame rate between any two frame rates.
Furthermore, an emission pulse cycle time corresponding to the specific frame rate FR-j is equal to the frame period 15 corresponding to the specific frame rate divided by M. In this example, the emission pulse cycle time corresponding to the frame rate of 96 Hz is 1/96 seconds÷5= 1/480 seconds; the emission pulse cycle time corresponding to the frame rate of 80 Hz is 1/80 seconds÷6= 1/480 seconds; the emission pulse cycle time corresponding to a frame rate of 68.6 Hz is 1/68.6 seconds÷7=1/480.2 seconds; the emission pulse cycle time corresponding to the frame rate of 60 Hz is 1/60 seconds÷8= 1/480 seconds. Similarly, in this way, it is able to calculate the emission pulse cycle time corresponding to a desired frame rate between any two frame rates. It is noted that the calculated emission pulse cycle time may be fine-tuned so that M emission pulses can be completely applied to the frame period 15 corresponding to the specific frame rate FR-j, and the emission duty ratio of the frame period 15 corresponding to the specific frame rate FR-j is maintained to be the fixed preset value.
In addition, each frame rate corresponds to an emission frequency, and the emission frequency is defined as the frame rate multiplied by the number of emission pulses. As shown in
As can be seen from the above description, with the AMOLED display driving device of the present disclosure, by only controlling the display driving time to be unchanged and controlling the emission duty ratio of the entire frame to be unchanged, the AMOLED display driving device of the present disclosure is capable of switching or shifting the frame rate without changing or causing variation of brightness of the AMOLED display panel.
The aforementioned embodiments are examples only for convenience of description. The scope of the present disclosure is claimed hereinafter in the claims and is not limited to the embodiments.
Number | Date | Country | Kind |
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109112951 | Apr 2020 | TW | national |
Number | Name | Date | Kind |
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20190035337 | Kato | Jan 2019 | A1 |
20200192500 | Tripathi | Jun 2020 | A1 |
Number | Date | Country |
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109785782 | May 2019 | CN |
2019091190 | May 2019 | WO |