DISPLAY DEVICE WITH SELECTABLE LED CURRENT LEVELS BASED ON BRIGHTNESS DATA
20220180799 · 2022-06-09
Inventors
- Junjie Zheng (Cupertino, CA, US)
- Richard Landry Gray (Taipei City, TW)
- Chih-Chang Wei (Taoyuan City, TW)
Cpc classification
G09G2330/028
PHYSICS
G09G2320/064
PHYSICS
G09G2320/0633
PHYSICS
G09G3/3426
PHYSICS
International classification
Abstract
A display device comprises a control circuit and a plurality of LED channels coupled to a shared supply voltage. The control circuit obtains respective brightness levels for each of the LED channels and determines, based on the brightness levels, a group current level sufficient to drive all of the LED channels. The control circuit also determines respective duty cycles for each of the LED channels that will achieve the respective brightness levels when each of the LED channels are driven with the group current level. The control circuit configures driver circuits to drive the LED channels in accordance with the group current level and the respective duty cycles. The control circuit may furthermore obtain sensed channel voltages associated with each of the LED channels, and configure the shared voltage supply based on the sensed channel voltages to a voltage level sufficient to drive all of the LED channels.
Claims
1. A method for controlling a display device comprising a group of LED channels having a shared supply voltage, the method comprising: receiving brightness data comprising respective brightness levels for each of the LED channels in the group; determining, based on the brightness levels, a group current level sufficient to drive all of the LED channels; determining a voltage level for the shared supply voltage to drive all of the LED channels when operating with the group current level; configuring driver circuits to drive the LED channels in accordance with the group current level using the voltage level for the shared supply voltage; detecting a non-compliant driver circuit from the driver circuits, the non-compliant driver circuit failing to drive a respective LED channel at the group current level using the voltage level for the shared supply voltage; determining an adjusted current level for the non-compliant driver circuit that the non-compliant driver circuit can drive from the voltage level for the shared supply voltage, the adjusted current level different from the group current level; and configuring the non-compliant driver circuit to drive the respective LED channel in accordance with the adjusted current level using the voltage level for the shared supply voltage.
2. The method of claim 1, wherein determining the group current level comprises: selecting the group current level from a set of predefined current levels.
3. The method of claim 2, wherein selecting the group current level from the set of predefined current levels comprises: mapping the respective brightness levels for each of the LED channels to respective average channel currents for each of the LED channels; and selecting the group current level as a lowest one of the set of predefined current levels that exceeds all of the respective average channel currents.
4. The method of claim 1, further comprising: determining, for each of the LED channels in the group based on the respective brightness levels and the group current level, respective duty cycles for each of the LED channels to achieve the respective brightness levels when each of the LED channels are driven with the group current level, wherein the driver circuits are configured to drive the LED channels in accordance with the group current level using the voltage level for the shared supply voltage and the respective duty cycles for each of the LED channels.
5. The method of claim 4, wherein configuring the respective duty cycles comprises: mapping the respective brightness levels for each of the LED channels to respective average channel currents for each of the LED channels; and determining respective ratios of the respective average channel currents for each of the LED channels to the group current level.
6. The method of claim 1, further comprising: setting the shared supply voltage to a voltage level sufficient to drive all of the LED channels when operating with the group current level.
7. The method of claim 6, where setting the shared supply voltage comprises: determining a preset supply voltage level for the shared supply voltage selected from a set of predefined supply voltage levels each corresponding to one of the predefined current levels.
8. The method of claim 6, wherein setting the shared supply voltage further comprises: obtaining respective channel voltages associated with the each of the LED channels; determining a minimum channel voltage of the respective channel voltages associated with each of the LED channels; and adjusting the shared voltage supply based on the minimum channel voltage across the LED channels.
9. The method of claim 6, wherein setting the shared supply voltage comprises: determining that the group current level for a current frame is unchanged from an immediately prior frame; and setting the shared supply voltage to a same voltage level as the immediately prior frame.
10. The method of claim 1, wherein configuring the non-compliant driver comprises: adjusting a duty cycle for the non-compliant driver circuit to achieve a brightness level for the non-compliant driver circuit at the adjusted current level.
11. The method of claim 1, further comprising: determining that a programmed brightness level for the non-compliant driver circuit is unachievable at the adjusted current level; and adjusting the voltage level to an adjusted voltage level that enables the non-compliant driver circuit to achieve the programmed brightness level.
12. A display device comprising: a group of LED channels each comprising a string of LEDs; a shared supply voltage supplying power to each of the LED channels; a set of driver circuits configured to drive the LED channels according to a group current level and respective duty cycles for each of the LED channels; a control circuit configured to: receive brightness data comprising respective brightness levels for each of the LED channels in the group; determine, based on the brightness levels, the group current level sufficient to drive all of the LED channels; determine a voltage level for the shared supply voltage to drive all of the LED channels when operating with the group current level; configure the set of driver circuits to drive the LED channels in accordance with the group current level using the voltage level for the shared supply voltage; detect a non-compliant driver circuit from the set of driver circuits, the non-compliant driver circuit failing to drive a respective LED channel at the group current level using the voltage level for the shared supply voltage; determine an adjusted current level for the non-compliant driver circuit that the non-compliant driver circuit can drive from the voltage level for the shared supply voltage, the adjusted current level different from the group current level; and configure the non-compliant driver circuit to drive the respective LED channel in accordance with the adjusted current level using the voltage level for the shared supply voltage.
13. The display device of claim 11, wherein the control circuit is configured to determine the group current level by selecting the group current level from a set of predefined current levels.
14. The display device of claim 13, wherein the control circuit is configured to select the group current level from the set of predefined current levels by mapping the respective brightness levels for each of the LED channels to respective average channel currents for each of the LED channels, and selecting the group current level as a lowest one of the set of predefined current levels that exceeds all of the respective average channel currents.
15. The display device of claim 12, wherein the control circuit is further configured to determine, for each of the LED channels in the group based on the respective brightness levels and the group current level, respective duty cycles for each of the LED channels to achieve the respective brightness levels when each of the LED channels are driven with the group current level, wherein the driver circuits are configured to drive the LED channels in accordance with the group current level using the voltage level for the shared supply voltage and the respective duty cycles for each of the LED channels.
16. The display device of claim 15, wherein configuring the respective duty cycles comprises: mapping the respective brightness levels for each of the LED channels to respective average channel currents for each of the LED channels; and determining respective ratios of the respective average channel currents for each of the LED channels to the group current level.
17. The display device of claim 12, wherein the control circuit is configured to set the shared supply voltage to a voltage level sufficient to drive all of the LED channels when operating with the group current level.
18. The display device of claim 17, wherein the control circuit is configured to set the shared supply voltage by determining a preset supply voltage level for the shared supply voltage selected from a set of predefined supply voltage levels each corresponding to one of the predefined current levels.
19. The display device of claim 12, wherein the control circuit configures the non-compliant driver by adjusting a duty cycle for the non-compliant driver circuit to achieve a brightness level for the non-compliant driver circuit at the adjusted current level.
20. The display device of claim 12, wherein the control circuit is further configured to: determine that a programmed brightness level for the non-compliant driver circuit is unachievable at the adjusted current level; and adjust the voltage level to an adjusted voltage level that enables the non-compliant driver circuit to achieve the programmed brightness level.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0009] The teachings of the embodiments of the present invention can be readily understood by considering the following detailed description in conjunction with the accompanying drawings.
[0010] Figure (
[0011]
[0012]
[0013]
[0014] The features and advantages described in the specification are not all inclusive and, in particular, many additional features and advantages will be apparent to one of ordinary skill in the art in view of the drawings, specification, and claims. Moreover, it should be noted that the language used in the specification has been principally selected for readability and instructional purposes, and may not have been selected to delineate or circumscribe the inventive aspect matter.
DETAILED DESCRIPTION OF EMBODIMENTS
[0015]
[0016] While
[0017] The display device 100 may comprise a liquid crystal display (LCD) device or an LED display device. In an LCD display device, the LEDs provide white light backlighting that passes through liquid crystal color filters that control the color of individual pixels of the display. In an LED display device, LEDs are directly controlled to emit colored light corresponding to each pixel of the display device 100. The LEDs of each LED zone 130 may be organic light emitting diodes (OLEDs), inorganic light emitting diodes (ILEDs), mini light emitting diodes (mini-LEDs) (e.g., having a size range between 100 to 300 micrometers), micro light emitting diodes (micro-LEDs) (e.g., having a size of less than 100 micrometers), white light emitting diodes (WLEDs), active-matrix OLEDs (AMOLEDs), transparent OLEDs (TOLEDs), or some other type of LEDs.
[0018] In an embodiment, the driver circuits 120 are distributed in a display area of the display device 100. Here, each driver circuit 120 and its corresponding LED channel 130 may be embodied in an integrated package such that the LEDs of the LED channel 130 are stacked over the driver circuit 120 on a substrate. Alternatively, the driver circuits 120 and LEDs of the LED channels 130 may be embodied in separate packages. In further embodiments, the driver circuits 120 are not necessarily distributed in the display area and may instead be physically located around an edge of the display area. The driver circuits 120 in a device array 115 may be separate devices as illustrated in
[0019] The driver circuits 120 control brightness of their respective LED channels 130 based on a current control signal Id.sub.CONTROL and respective duty cycle signals D.sub.1 . . . D.sub.N. In an embodiment, for each image frame, the set of driver circuits 120 in an array all receive the same current control signal Id.sub.CONTROL but receive different duty cycle signals D.sub.1 . . . D.sub.N. The duty cycle signals D.sub.1 . . . D.sub.N control the percentage of time during each frame period when the LED are on. During the on-times, the LED channels 130 each conduct channel currents Id set by the current control signal Id.sub.CONTROL. During the off-times, the channel currents Id are zero or near zero. The current control signal Id.sub.CONTROL and duty cycle signals D.sub.1 . . . D.sub.N may be updated for each image frame. The average brightness of an LED channel 130 is proportional to the product of its current Id and duty cycle. Thus, brightness may be adjusted from frame-to-frame by either changing the current Id, the duty cycle signals D.sub.1 . . . D.sub.N, or both.
[0020] The control circuit 110 receives brightness data 140 for each image frame that specifies brightness levels for each LED channel 130 of the display device 100. Based on the brightness data 140, the control circuit 110 generates the current control signal Id.sub.CONTROL for the group of LED channels 130 and the respective duty cycles D.sub.1 . . . D.sub.N that achieve the specified brightness levels. The control circuit 110 also sets the LED supply voltage VLED based on the determined current Id (or directly based on the brightness data 140). In at least some frames (e.g., when the current Id changes), the control circuit 110 also obtains sensed channel voltages VCH.sub.1 . . . VCH.sub.N for each LED channel 130 (representing a voltage across the driver circuit 120), and may further adjust the LED supply voltage VLED based on the sensed channel voltages VCH.sub.1 . . . VCH.sub.N. A process for setting the channel current Id, the respective duty cycles D.sub.1 . . . D.sub.N, and the voltage supply VLED is described in further detail below with respect to
[0021]
[0022] where I.sub.A, I.sub.B, I.sub.C are predefined selectable current levels (e.g., I.sub.A=20 mA, I.sub.B, =10 mA, I.sub.C=1 mA). The control circuit 110 sets all LED channels 130 in the device array 115 to operate using the same group current level Id.
[0023] The control circuit 110 then configures 206 duty cycles D.sub.1 . . . D.sub.N for the respective LED channels 130 based on the group current level Id and the brightness levels. Here, the control circuit 110 sets the duty cycles D.sub.1 . . . D.sub.N so that the average brightness for the frame period meets the brightness levels set by the brightness data when the respective LED channels 130 are all driven according to the group current level Id. For example, the duty cycles D.sub.1 . . . D.sub.N are set to a ratio between the desired average channel current ICH that will achieve the brightness level and the group current level. In an embodiment, the duty cycles D.sub.1 . . . D.sub.N can be determined as:
[0024] The control circuit 110 also sets the LED voltage supply VLED to a preset voltage level VLED.sub.PRE based on the selected group current level Id (or directly based on the brightness data). In an embodiment, the preset voltage level VLED.sub.PRE may be selected from a set of predefined voltage levels each corresponding to one of the predefined current levels. The relationship between the preset supply voltage VLED.sub.PRE and the group current level Id may be predetermined based on the number of LEDs in each channel, the forward voltage Vf (Id) across each LED when operating at the group current level Id, and a predefined target channel voltage VCH.sub.TARGET representing an operating voltage across the driver circuit 120. For example, the relationship may be as follows:
VLED.sub.PRE(Id)=Vf(Id)*N+VCH.sub.TARGET (3)
where Vf (Id) may be approximated based on observed device characteristics as described in
[0025] The control circuit 110 may furthermore obtain 210 channel voltages VCH.sub.1 . . . VCH.sub.N for each of the LED channels 130 during the on-times of at least some of the frames. The channel voltages VCH.sub.1 . . . VCH.sub.N may be obtained, for example, based on sensors integrated in the driver circuit 120 or from separate voltage sensors. The control circuit 110 adjusts 212 the preset supply voltage VLED.sub.PRE based on the sensed channel voltages VCH.sub.1 . . . VCH.sub.N. Here, the control circuit 110 may detect the lowest channel voltage VCILvliN and adjust the LED supply voltage VLED as a function of the lowest channel voltage VCH.sub.MIN. For example, in one embodiment, the control circuit 110 may adjust VLED from the preset supply voltage VLED.sub.PRE as follows:
VLED=VLED.sub.PRE−VCH.sub.MIN+VCH.sub.TARGET (4)
[0026] Adjusting the supply voltage VLED in this way enables the control circuit 110 to maintain the supply voltage VLED at or near a minimum operating voltage level sufficient to drive the LED channels 130 while minimizing power consumption of the display device 100.
[0027] In an embodiment, the control circuit 110 configures the supply voltage VLED according to steps 208, 210, 212 only during frames in which the group current level Id changes from the previous frame, i.e., when Id.sub.i≠Id.sub.i-1 where i is the frame number. Otherwise, the control circuit 110 maintains the same supply voltage VLED as the previous frame and need not necessarily adjust the preset supply voltage VLED.sub.PRE or perform any channel sensing. Alternatively, the control circuit 110 senses the channel voltages VCH every frame or every fixed number of frames even when the group current level Id stays the same.
[0028] In display devices 100 with multiple device arrays 115 (e.g., each corresponding to a row of the display device 100), the process of
[0029] In an embodiment, the set of predefined current levels from which the group current level Id is selected and the corresponding preset supply voltages VLED.sub.PRE are derived from an approximation of the non-linear relationship between the current level Id and the forward voltage (Vf) representing the voltage drop across each LED in the LED channel 130.
[0030] At Id.sub.1=20 mA, the expected forward voltage drop is Vf.sub.1=2.8V. The power consumption per LED is therefore computed as:
P.sub.1=Vf.sub.1.Math.Id.sub.1.Math.D.sub.1=2.8V.Math.20 mA.Math.0.4=22.4 mW (6)
[0031] For a second LED channel, operating at Id.sub.2=10 mA, the appropriate duty cycle is computed as:
[0032] At Id.sub.2=10 mA, the expected forward voltage drop is Vf.sub.2=2.5V. The power consumption per LED is therefore computed as:
P.sub.2=Vf.sub.2.Math.Id.sub.2.Math.D.sub.2=2.5V.Math.10 mA.Math.0.8=20 mW (8)
[0033] As can be seen from the calculations of P.sub.1 and P.sub.2, it is favorable from a power consumption standpoint to operate the LED channel 130 at the lower current level Id.sub.2=10 mA and higher duty cycle D.sub.2=0.8 to achieve the desired brightness than to operate a higher current level Id.sub.2=20 mA and lower duty cycle D.sub.1=0.4. Thus, by varying both the current level and duty cycles of the LED channels 130 dependent on the brightness data, the display device 100 can achieve lower power consumption than devices operating with fixed current levels that only vary the duty cycles.
[0034] In another embodiment, the control circuit 110 can send current control signals Id.sub.CONTROL that cause one or more LED channels 130 within a group to operate with current levels Id that are not necessarily identical for every LED channel 130 in a given frame.
[0035] Upon reading this disclosure, those of skill in the art will appreciate still additional alternative embodiments through the disclosed principles herein. Thus, while particular embodiments and applications have been illustrated and described, it is to be understood that the disclosed embodiments are not limited to the precise construction and components disclosed herein. Various modifications, changes and variations, which will be apparent to those skilled in the art, may be made in the arrangement, operation and details of the method and apparatus disclosed herein without departing from the scope described herein.