The invention relates to a display driver; in particular, to a display driving device and method with low power consumption.
Active-Matrix Organic Light-Emitting Diode (AMOLED) display panel has advantages of power saving, excellent dark-state performance, fast response speed due to its self-luminous characteristics, and its self-luminescence is current driven, so its luminous brightness will be proportional to the current. The AMOLED display panel may include a plurality of sub-pixels, and each sub-pixel corresponds to its dedicated pixel circuit to control the driving current, so as to achieve the purpose of changing different display brightness.
To refresh a panel, a gate signal of the display panel selects one row of a frame, and the source driving line of the display driver integrated circuit (DDIC) provides a voltage signal with display information to each sub-pixel in a row of the frame to complete a row data update, and the gate signal and the source signal update each row in sequence until the entire frame is updated.
At early stages, the conventional DDIC design is that each red (R), green (G) and blue (B) sub-pixel of the display panel is correspondingly connected to one source driving line. For example, if the RGB resolution of the display panel is 480, there should be 1440 source driving lines disposed on the DDIC; as a result, the size of the DDIC becomes larger and the chip-on-film (COF) tape connecting the display panel with the DDIC becomes wider, which is not conducive to its mechanism design and cost control.
In order to solve this problem, as shown in
As shown in
Although the driving voltages used to drive the six sub-pixels are all the same, its driving timing is still that the display data is time-divisionally written to the six sub-pixels of the display panel in order. Therefore, during the display data writing period (from the time t2 to the time t8), the driving circuit remains in the turn-on state and the power consumption of the system cannot be effectively reduced, which needs to be further improved.
Therefore, the invention provides a display driving device and method with low power consumption to solve the above-mentioned problems of the prior arts.
A preferred embodiment of the invention is a display driving device with low power consumption. In this embodiment, the display driving device with low power consumption includes a source driving circuit, a display content detection circuit and a display timing driving circuit. An output terminal of the source driving circuit is coupled to a plurality of sub-pixels of a display panel respectively, wherein a plurality of pixel switches is disposed between the output terminal and the sub-pixels respectively. The source driving circuit is coupled to the display timing driving circuit and a power control circuit respectively. The display content detection circuit is coupled to the display timing driving circuit and used to detect the display information. The display timing driving circuit is coupled to the source driving circuit and the display content detection circuit and used to change a driving order according to display information detected by the display content detection circuit to control turn-on times of at least two pixel-switches overlap each other to drive at least two sub-pixels simultaneously.
In an embodiment, the source driving circuit writes a specific voltage to the at least two sub-pixels which are turned on simultaneously according to the display information.
In an embodiment, the power control circuit is coupled to the source driving circuit and the display timing driving circuit respectively and used to turn off the power or change bias voltage or driving strength to reduce power consumption.
In an embodiment, the turn-on times of the at least two pixel switches partially overlap.
In an embodiment, the turn-on times of the at least two pixel switches completely overlap.
In an embodiment, the turn-on times of the plurality of pixel switches overlap each other.
In an embodiment, the display driving device further includes a partition driving circuit. The display panel includes a plurality of display areas. The partition driving circuit controls the plurality of display areas to have the same driving timing, and the display timing driving circuit controls turn-on times of at least two pixel switches corresponding to at least two sub-pixels in at least one display area overlap each other.
In an embodiment, the display driving device further includes a partition driving circuit. The display panel includes a plurality of display areas. The partition driving circuit controls the plurality of display areas to have different driving timings, and the display timing driving circuit controls turn-on times of at least two pixel switches corresponding to at least two sub-pixels in at least one display area overlap each other.
Another preferred embodiment of the invention is a display driving method with low power consumption. In this embodiment, the method includes steps of: coupling an output terminal of a source driving circuit to a plurality of sub-pixels of a display panel respectively; disposing a plurality of pixel switches between the output terminal and the plurality of sub-pixels respectively; and the source driving circuit is coupled to a display timing driving circuit and a power control circuit respectively, the display timing driving circuit is coupled to the source driving circuit and a display content detection circuit respectively, the display timing driving circuit changes a driving order according to the display information to control the turn-on times of at least two pixel switches overlap each other to drive at least two sub-pixels simultaneously.
In an embodiment, the method further includes a step of: writing a specific voltage to the at least two sub-pixels which are turned on simultaneously according to the display information.
In an embodiment, the method further includes a step of: the power control turning off the power or changing bias voltage or driving strength to reduce power consumption.
In an embodiment, the turn-on times of the at least two pixel switches partially overlap.
In an embodiment, the turn-on times of the at least two pixel switches completely overlap.
In an embodiment, the turn-on times of the plurality of pixel switches overlap each other.
In an embodiment, the display panel includes a plurality of display areas. The display driving method controls the plurality of display areas to have the same driving timing, and the display timing driving circuit controls turn-on times of at least two pixel switches corresponding to at least two sub-pixels in at least one display area overlap each other.
In an embodiment, the display panel includes a plurality of display areas. The display driving method controls the plurality of display areas to have different driving timings, and the display timing driving circuit controls turn-on times of at least two pixel switches corresponding to at least two sub-pixels in at least one display area overlap each other.
Compared to the prior art, the display driving device and display driving method with low power consumption proposed by the invention simultaneously write the display data to at least two sub-pixels driven by the same driving voltage to finish the display data writing early and turn off a part of subcircuits of the DDIC. In addition, its driving waveform and timing can be adjusted arbitrarily and can be matched with the driving timing of the pre-charging compensation, and the entire display panel can be divided into multiple display blocks and each display block can have the same driving timing or different driving timings, so that the power consumption can be effectively reduced.
The advantage and spirit of the invention may be understood by the following detailed descriptions together with the appended drawings.
A preferred embodiment of the invention is a display driving device with low power consumption. In this embodiment, the display panel can be an active-matrix organic light-emitting diode (AMOLED) display panel or other various types of display panels, and there is no specific limitation. When the display panel is driven by the display driving device with low power consumption, its power consumption can be significantly reduced compared with the prior art, but not limited to this.
Please refer to
The display driving device 4 with low power consumption includes a display content detection circuit 40, a display timing driving circuit 42, a source driving circuit 44 and a power control circuit 46. The display content detection circuit 40 is coupled to the display timing driving circuit 42. The display timing driving circuit 42 is coupled to the source driving circuit 44 and the power control circuit 46 respectively. The source driving circuit 44 is coupled to the display timing driving circuit 42, the power control circuit 46 and the display panel PL respectively. The power control circuit 46 is coupled to the display timing driving circuit 42 and the source driving circuit 44 respectively.
In this embodiment, the output terminal of the source driving circuit 44 is coupled to a plurality of sub-pixels (for example, six sub-pixels R1, G1, B1, R2, G2, B2 in
The display content detection circuit 40 is used to detect the change of the display information. The display timing driving circuit 42 is used to change driving timing (for example, driving waveforms of the switch control signals MUX1˜MUX6 in
It should be noted that, as shown in
When the turn-on times of the at least two pixel switches (for example, the switches SW1˜SW6, but not limited to this) overlap each other, the driving voltage provided by the source driving circuit 44 according to the display information will drive at least two sub-pixels corresponding to the at least two pixel switches (for example, the sub-pixels R1, G1, B1, R2, G2 and B2 corresponding to the switches SW1˜SW6, but not limit to this) of the plurality of sub-pixels at the same time. The power control circuit 46 is coupled to the source driving circuit 44 and the display timing driving circuit 42 respectively and used to turn off the power or change bias voltage and driving strength after the writing operation is completed to reduce power consumption.
For example, as shown in
Next, please refer to
As shown in
As shown in
In practical applications, in addition to the above switching driving waveforms of the pixel switches SW1˜SW6, other arbitrary waveform changes can be also matched according to the actual situation; for example, the pre-charging waveform can be added before the switch driving waveform (as shown in
In another embodiment, the display panel PL can include a plurality of display areas, and the display panel PL can be divided into the plurality of display areas up and down or divided into the plurality of display areas left and right, but not limited to this.
In practical applications, the display driving device can further include a partition driving circuit (for example, the display driving integrated circuit DDIC in
Similarly, the partition driving circuit can also control the plurality of display areas to have different driving timings. The display timing driving circuit 42 will control the on-times of at least two pixel switches corresponding to at least two sub-pixels in at least one display area to overlap each other (actually can be completely overlapped or partially overlapped) according to the display information, but not limited to this.
In other words, no matter how many display areas the display panel PL is divided into, there will be two or more sub-pixel switches corresponding to the same driving voltage in the display panel PL whose turn-on times will completely overlap or partially overlap to achieve the purpose of reducing power consumption.
For example, as shown in
It should be noted that although the above-mentioned embodiments are described by taking six sub-pixels and their corresponding six-pixel switches as an example, the number of sub-pixels and their corresponding pixel switches in practical applications can be determined according to actual needs and not limited to the above-mentioned embodiments.
Another preferred embodiment of the invention is a display driving method with low power consumption. It should be noticed that when the display panel is driven by the display driving method in this embodiment, its power consumption can be effectively reduced compared to the prior art, but not limited to this.
Please refer to
Step S10: an output terminal of the source driving circuit is coupled to sub-pixels of the display panel respectively;
Step S12: pixel switches are disposed between the output terminal and the sub-pixels respectively; and
Step S14: the source driving circuit is coupled to a display timing driving circuit and a power control circuit respectively, the display timing driving circuit is coupled to the source driving circuit and a display content detection circuit respectively, the display timing driving circuit changes a driving order according to the display information to control the turn-on times of at least two pixel switches of the pixel switches overlap to drive at least two sub-pixels of the sub-pixels corresponding to the at least two pixel switches of the pixel switches simultaneously.
In different embodiments, the method can further write a specific voltage to the at least two sub-pixels which are turned on simultaneously according to the display information, but not limited to this; the power control circuit can turn off the power or change bias voltage or driving strength to reduce power consumption, but not limited to this; the turn-on times of the at least two pixel switches can partially overlap or completely overlap, but not limited to this; all turn-on times of the plurality of pixel switches can overlap each other, but not limited to this.
In an embodiment, the display panel can include a plurality of display areas. The display driving method can control the plurality of display areas to have the same driving timing. The display timing driving circuit controls turn-on times of at least two pixel switches corresponding to at least two sub-pixels in at least one display area overlap each other, but not limited to this.
In another embodiment, the display driving method can control the plurality of display areas to have different driving timings. The display timing driving circuit can control turn-on times of at least two pixel switches corresponding to at least two sub-pixels in at least one display area overlap each other.
Compared to the prior art, the display driving device and display driving method with low power consumption proposed by the invention simultaneously write the display data to at least two sub-pixels driven by the same driving voltage to finish the display data writing early and turn off a part of subcircuits of the DDIC. In addition, its driving waveform and timing can be adjusted arbitrarily and can be matched with the driving timing of the pre-charging compensation, and the entire display panel can be divided into multiple display blocks and each display block can have the same driving timing or different driving timings, so that the power consumption can be effectively reduced.
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