Current limiting circuit, display device, and current limiting method

The current limiting circuit addresses sudden brightness changes by delaying video signals and adjusting pixel values to maintain power consumption within limits, enhancing display device efficiency.

JP7747501B2Active Publication Date: 2025-10-01MAGNOLIA BLUE CORP
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Patent Information

Application Number
JP2021192495
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-11-26
Publication Date
2025-10-01
Estimated Expiration
2041-11-26

AI Technical Summary

Technical Problem

Display devices with self-luminous elements face increased power consumption when brightness changes suddenly, exceeding control target power values, as seen in Patent Document 1.

Method used

A current limiting circuit that includes a delay circuit, arithmetic circuit, and gain multiplication circuit to calculate and apply a gain based on power consumption, delaying the video signal by one frame and adjusting pixel values to limit current consumption.

Benefits of technology

Effectively suppresses power consumption of display panels even when brightness increases suddenly, ensuring it remains within control target limits.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide a current limiting circuit capable of suppressing power consumption of a display panel even when luminance indicated by a video signal sharply increases.SOLUTION: A current limiting circuit 40 includes: a delay circuit 42 to which a video signal is input and which outputs a delayed signal obtained by delaying the video signal by a time corresponding to one frame; an arithmetic circuit 50 into which the video signal is input, the arithmetic circuit 50 calculating a gain for multiplying a delay signal based on power consumption at a plurality of pixels corresponding to the delay signal and power consumption at the plurality of pixels corresponding to the video signal; and a gain multiplication circuit 44 for multiplying the delay signal by the gain.SELECTED DRAWING: Figure 2
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Description

[Technical Field]

[0001] The present disclosure relates to a current limiting circuit, a display device, and a current limiting method. [Background technology]

[0002] Conventionally, display devices have been developed in which each pixel includes a self-luminous element, such as organic EL (Electro-Luminescence) display devices. Such display devices require larger display panels. As display panels become larger, the power consumption of the display devices increases. Therefore, a technique for suppressing power consumption in display devices is known (see Patent Document 1). The display device disclosed in Patent Document 1 calculates the power consumption of the display panel for each horizontal period (horizontal synchronization cycle) based on a video signal, and controls the power consumption of the display panel by limiting the current supplied to each pixel of the display panel based on the calculation result. In this way, the display device disclosed in Patent Document 1 attempts to suppress the power consumption of the display panel to a control target power value or less. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2007-212644 Summary of the Invention [Problem to be solved by the invention]

[0004] However, in the display device disclosed in Patent Document 1, when the brightness indicated by the video signal suddenly increases, for example, when switching from an all-black display to an all-white display, the power consumption of the display panel may exceed the control target power value.

[0005] The present disclosure has been made in consideration of the above-mentioned problems, and aims to provide a current limiting circuit and the like that can suppress the power consumption of a display panel even when the brightness indicated by a video signal increases suddenly. [Means for solving the problem]

[0006] In order to achieve the above object, a current limiting circuit according to one embodiment of the present disclosure is a current limiting circuit that receives a video signal for a display panel having a plurality of pixels and limits the current consumption of the plurality of pixels, and includes: a delay circuit that receives the video signal and outputs a delayed signal that is obtained by delaying the video signal by a time equivalent to one frame; an arithmetic circuit that receives the video signal and calculates a gain to be multiplied by the delayed signal based on the power consumption at the plurality of pixels corresponding to the delayed signal and the power consumption at the plurality of pixels corresponding to the video signal; and a gain multiplication circuit that multiplies the delayed signal by the gain.

[0007] In addition, in order to achieve the above object, a current limiting circuit according to one embodiment of the present disclosure is a current limiting circuit that receives a video signal for a display panel having a plurality of pixels and limits the current consumption of the plurality of pixels, and includes: a delay circuit that receives the video signal and outputs a delayed signal that is obtained by delaying the video signal by a time equivalent to one frame; an arithmetic circuit that receives the video signal and calculates a gain to be multiplied by the delayed signal based on the power consumption of the plurality of pixels corresponding to two consecutive frames of the video signal; and a gain multiplication circuit that multiplies the delayed signal by the gain.

[0008] In order to achieve the above object, a display device according to an aspect of the present disclosure includes the current limiting circuit and the display panel.

[0009] In addition, in order to achieve the above-mentioned object, a current limiting method according to one embodiment of the present disclosure is a current limiting method for limiting the current consumption of a plurality of pixels in a display panel, and includes a delay step for outputting a delayed signal obtained by delaying a video signal for a display panel having the plurality of pixels by a time equivalent to one frame, a gain calculation step for calculating a gain to be multiplied by the delayed signal based on the power consumption at the plurality of pixels corresponding to the delayed signal and the power consumption at the plurality of pixels corresponding to the video signal, and a gain multiplication step for multiplying the delayed signal by the gain.

[0010] In addition, in order to achieve the above-mentioned object, a current limiting method according to one embodiment of the present disclosure is a current limiting method for limiting the current consumption of a plurality of pixels in a display panel, and includes a delay step for outputting a delayed signal obtained by delaying a video signal for a display panel having the plurality of pixels by a time equivalent to one frame, a gain calculation step for calculating a gain to be multiplied by the delayed signal based on the power consumption of the plurality of pixels corresponding to the video signal for two consecutive frames, and a gain multiplication step for multiplying the delayed signal by the gain. [Effects of the Invention]

[0011] According to the present disclosure, it is possible to provide a current limiting circuit or the like that can suppress the power consumption of a display panel even when the luminance indicated by a video signal increases suddenly. [Brief explanation of the drawings]

[0012] [Figure 1] FIG. 1 is a block diagram showing a configuration of a display device according to the first embodiment. [Figure 2] FIG. 2 is a block diagram showing a functional configuration of the current limiting circuit according to the first embodiment. [Figure 3] FIG. 3 is a block diagram showing an example of an integration mode of the current limiting circuit according to the first embodiment. [Figure 4] FIG. 4 is a block diagram showing the functional configuration of the weighted average circuit included in the current limiting circuit according to the first embodiment. [Figure 5]FIG. 5 is a block diagram showing a functional configuration of a gain multiplication circuit included in the current limiting circuit according to the first embodiment. [Figure 6] FIG. 6 is a block diagram showing a functional configuration of a display panel included in the display device according to the first embodiment. [Figure 7] FIG. 7 is a circuit diagram showing an example of the configuration of a sub-pixel that constitutes a pixel according to the first embodiment. [Figure 8] FIG. 8 is a diagram showing an example of a write signal input to a sub-pixel according to the first embodiment. [Figure 9] FIG. 9 is a schematic diagram showing transitions of the display state of the display unit according to the first embodiment. [Figure 10] FIG. 10 is a flowchart showing the flow of the current limiting method according to the first embodiment. [Figure 11] FIG. 11 is a schematic diagram showing the configuration of the screen data storage unit according to the first embodiment. [Figure 12] FIG. 12 is a flowchart showing a gain calculation method in the gain calculation circuit according to the first embodiment. [Figure 13] FIG. 13 is a block diagram showing a functional configuration of a current limiting circuit included in a display device according to Comparative Example 2. As shown in FIG. [Figure 14] FIG. 14 is a graph showing the time waveform of power consumption in a plurality of pixels when changing from all black display to all white display in each of the display devices according to Comparative Example 1, Comparative Example 2, and Embodiment 1. In FIG. [Figure 15] FIG. 15 is a graph showing the time waveform of gain when changing from all black display to all white display in each of the display devices according to Comparative Example 1, Comparative Example 2, and Embodiment 1. In FIG. [Figure 16] FIG. 16 is a block diagram showing the functional configuration and integration mode of the current limiting circuit according to the second embodiment. [Figure 17] FIG. 17 is a block diagram illustrating a functional configuration of a current limiting circuit according to the third embodiment. [Figure 18] FIG. 18 is a diagram showing an example of a method for calculating a screen power value according to the third embodiment. [Figure 19]FIG. 19 is a diagram showing another example of a method for calculating a screen power value according to the third embodiment. [Figure 20] Figure 20 is a graph showing the time waveforms of power consumption in multiple pixels when the display device of each of Comparative Example 1, Embodiment 1, and Embodiment 3 is changed from an all-black display to a striped white display and black display, and then the striped white display and black display are inverted to a black display and white display, respectively. [Figure 21] Figure 21 is a graph showing the time waveform of gain when the display devices according to Comparative Example 1, Embodiment 1, and Embodiment 3 are changed from an all-black display to a striped white display and black display, and then the striped white display and black display are inverted to a black display and white display, respectively. [Figure 22] FIG. 22 is a block diagram showing the relationship between a current limiting circuit and a display device according to a modified example. [Figure 23] FIG. 23 is an external view of a PC incorporating a current limiting circuit according to a modified example. [Figure 24] FIG. 24 is an external view of a hard disk recorder incorporating a current limiting circuit according to a modified example. [Figure 25] FIG. 25 is an external view of a thin flat TV incorporating a display device according to each embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0013] Hereinafter, embodiments of the present disclosure will be described with reference to the drawings. Note that each of the embodiments described below represents a specific example of the present disclosure. Therefore, the numerical values, shapes, materials, components, arrangement and connection of the components, steps, and the order of steps shown in the following embodiments are merely examples and are not intended to limit the present disclosure.

[0014] It should be noted that the drawings are schematic diagrams and are not necessarily strict illustrations. In addition, in the drawings, substantially the same components are denoted by the same reference numerals, and redundant explanations will be omitted or simplified.

[0015] (Embodiment 1) A current limiting circuit, a display device, and a current limiting method according to a first embodiment will be described.

[0016] [1-1. Overall configuration of the display device] The overall configuration of a display device according to an embodiment will be described with reference to FIGS.

[0017] Fig. 1 is a block diagram showing the configuration of a display device 10 according to the present embodiment. Fig. 2 is a block diagram showing the functional configuration of a current limiting circuit 40 according to the present embodiment. Fig. 3 is a block diagram showing an example of an integration mode of the current limiting circuit 40 according to the present embodiment. Figs. 4 and 5 are block diagrams showing the functional configurations of a weighted average circuit 51 and a gain multiplication circuit 44 included in the current limiting circuit 40 according to the present embodiment, respectively. Fig. 6 is a block diagram showing the functional configuration of a display panel 60 included in the display device 10 according to the present embodiment.

[0018] As shown in FIG. 1, the display device 10 includes a current limiting circuit 40 and a display panel 60.

[0019] The display panel 60 has a plurality of pixels, each including a self-luminous element, and displays an image corresponding to a video signal. As shown in FIG. 6, the display panel 60 has a display unit 70, a write processing unit 62, a source driver 68, and a write shift register 64. The display unit 70 has a plurality of pixels arranged in a matrix and displays an image corresponding to a video signal. The write processing unit 62 outputs control signals and data signals for writing display data to the display unit 70. The write processing unit 62 is a circuit included in a so-called TCON (Timing-Controller) chip. The source driver 68 outputs a data signal to the display unit 70. The write shift register 64 outputs a write signal, which is a control signal for writing the data signal to the display unit 70, to the display unit 70.

[0020] The current limiting circuit 40 is a circuit that receives a video signal for a display panel 60 having a plurality of pixels and limits the current consumption of the plurality of pixels to suppress the power consumption of the display panel 60. In the present embodiment, the current limiting circuit 40 limits the current supplied to the plurality of pixels when a power value supplied to the plurality of pixels corresponding to the power consumption of the display panel 60 exceeds a control target power value. The current limiting circuit 40 reduces the pixel values ​​of the video signal by multiplying the pixel values ​​included in the video signal by a gain of 1 or less, and outputs a video signal including the reduced pixel values ​​to the display panel 60, thereby limiting the current consumption of the plurality of pixels. As shown in FIG. 2, the current limiting circuit 40 includes a delay circuit 42, a gain multiplication circuit 44, and an arithmetic circuit 50.

[0021] The current limiting circuit 40 is realized, for example, as an integrated circuit. The current limiting circuit 40 may be integrated as part of a TCON chip together with the write processing unit 62 included in the display panel 60, or may be a standalone integrated circuit. The integration form of the current limiting circuit 40 is not limited to these. For example, as shown in FIG. 3, the current limiting circuit 40 may have two integrated circuit units: a front-end circuit unit 31 and a control circuit unit 32. The front-end circuit unit 31 includes a delay circuit 42. The control circuit unit 32 includes all the components of the current limiting circuit 40 except for the delay circuit 42. In the example shown in FIG. 3, the control circuit unit 32 may be integrated as part of the TCON chip, and the front-end circuit unit 31 may be integrated as an integrated circuit other than the TCON chip. The current limiting circuit 40 may also be realized using electrical circuits other than integrated circuits.

[0022] The delay circuit 42 is a circuit that receives a video signal, delays the video signal by a time equivalent to one frame, and outputs a delayed signal. The time equivalent to one frame corresponds to the vertical period (vertical synchronization cycle) of the display panel 60. The time equivalent to one frame will hereinafter also be referred to as one frame time.

[0023] The arithmetic circuit 50 receives a video signal and calculates a gain to be multiplied by the delay signal. The arithmetic circuit 50 calculates the gain to be multiplied by the delay signal based on the power consumption at multiple pixels corresponding to the delay signal and the power consumption at multiple pixels corresponding to the video signal. In this embodiment, the arithmetic circuit 50 calculates a screen power value, which is a predicted value of power consumption at multiple pixels corresponding to one frame of the delayed signal and one frame of the video signal. If the screen power value exceeds a control target power value, which is the upper control target limit for the power consumption of the multiple pixels, the arithmetic circuit 50 sets the gain to a value less than 1. If the screen power value exceeds a control target power value, which is the upper control target limit for the power consumption of the multiple pixels, the arithmetic circuit 50 calculates a value obtained by dividing the control target power value by the screen power value and sets the gain to a value equal to or less than this value. If the screen power value does not exceed the control target power value, the arithmetic circuit 50 sets the gain to 1. The arithmetic circuit 50 calculates and outputs the gain for each cycle shorter than the vertical period of the video signal. In this embodiment, the calculation circuit 50 calculates and outputs a gain for each horizontal period. The calculation circuit 50 includes weighted average circuits 51 and 53, horizontal period data calculation circuits 52 and 54, a comparison circuit 55, a screen data storage unit 56, and a gain calculation circuit 57.

[0024] The weighted average circuits 51 and 53 are circuits that calculate a weighted average of pixel values ​​included in a video signal. In this embodiment, the video signal (and the delayed signal) includes an RGB signal. The weighted average circuit 53 is an example of a first weighted average circuit that calculates a weighted average of pixel values ​​of each RGB signal included in the delayed signal. The weighted average circuit 51 is an example of a second weighted average circuit that calculates a weighted average of pixel values ​​of each RGB signal included in the video signal. As shown in FIG. 4, the weighted average circuit 51 multiplies each RGB display data by a weighting coefficient (an R signal weighting coefficient, a G signal weighting coefficient, and a B signal weighting coefficient) according to the power consumption characteristics of each RGB pixel of the display unit 70, and calculates the sum of the multiplied values. The weighted average circuit 53 has a circuit configuration similar to that of the weighted average circuit 51. The video signal is input to the weighted average circuit 51, and the delayed signal output from the delay circuit 42 is input to the weighted average circuit 53.

[0025] The horizontal period data calculation circuits 52 and 54 calculate horizontal period power conversion data corresponding to the display data for each horizontal period. In this embodiment, the horizontal period data calculation circuits 52 and 54 calculate the integrated value or average value of the weighted averages output by the weighted average circuits 51 and 53 in the horizontal period as horizontal period power conversion data (level integrated value).

[0026] The comparison circuit 55 compares power conversion data calculated based on the delayed signal output from the delay circuit 42 with power conversion data calculated based on the video signal of the frame following the delayed signal, and outputs the larger power conversion data. More specifically, the comparison circuit 55 receives first power conversion data representing the power consumption of a plurality of pixels corresponding to a first signal including a delayed signal for at least one horizontal period, and second power conversion data representing the power consumption of a plurality of pixels corresponding to a second signal including a video signal for at least one horizontal period one frame after the first signal, and outputs the larger of the first power conversion data and the second power conversion data. In this embodiment, the first signal includes a delayed signal for one horizontal period, and the second signal includes a video signal for one horizontal period one frame after the first signal. Note that the first signal and the second signal may include a delayed signal for two or more horizontal periods and a video signal for two or more horizontal periods, respectively. The first power conversion data is power conversion data calculated by the horizontal period data calculation circuit 54 based on the first signal, and the second power conversion data is power conversion data calculated by the horizontal period data calculation circuit 52 based on the second signal.

[0027] The screen data storage unit 56 stores the power conversion data for at least one frame. In the present embodiment, the power conversion data output by the comparison circuit 55 is input to the screen data storage unit 56, and the screen data storage unit 56 stores the power conversion data for one frame.

[0028] The gain calculation circuit 57 calculates a gain to be multiplied by the delay signal based on the power conversion data stored in the screen data storage unit 56 and the control target power value. In this embodiment, the gain calculation circuit 57 calculates a screen power value, which is the power consumption for one frame in a plurality of pixels, based on the power conversion data stored in the screen data storage unit 56. In this embodiment, the gain calculation circuit 57 calculates the sum of the horizontal period power conversion data for the number of horizontal lines stored in the screen data storage unit 56 as the screen power value. In other words, the gain calculation circuit 57 calculates the screen power value by integrating the output of the comparison circuit 55 for one frame, and calculates a gain based on this screen power value.

[0029] The gain calculated by the gain calculation circuit 57 is less than 1 when the screen power value exceeds the control target power value. More specifically, when the screen power value exceeds the control target power value, the gain calculated by the gain calculation circuit 57 is a value equal to or less than the value obtained by dividing the control target power value by the screen power value. In this embodiment, when the screen power value exceeds the control target power value, the gain is the value obtained by dividing the control target power value by the screen power value. If the screen power value does not exceed the control target power value, the gain calculation circuit 57 sets the gain to 1. In this embodiment, when the screen power value exceeds the control target power value, the gain calculation circuit 57 calculates the gain by dividing the control target power value by the screen power value. Note that the method of setting the gain is not limited to this. For example, the gain calculation circuit 57 may have a lookup table showing the relationship between values ​​corresponding to screen power values ​​and gains, and set the gain corresponding to the screen power value based on the lookup table.

[0030] The gain multiplication circuit 44 is a circuit that multiplies the delay signal by a gain. The gain multiplication circuit 44 multiplies the video signal by the gain calculated by the gain calculation circuit 57. In this embodiment, as shown in FIG. 5, each RGB signal included in the delay signal is multiplied by a gain. As a result, when the screen power value exceeds the control target power value, the delay signal is multiplied by a gain less than 1, so that the luminance of the delay signal can be reduced. Therefore, the current supplied to multiple pixels of the display panel 60 is limited.

[0031] The plurality of pixels included in the display panel 60 will be described with reference to FIG. 7. FIG. 7 is a circuit diagram showing an example of the configuration of a sub-pixel constituting a pixel according to the present embodiment. FIG. 7 shows a sub-pixel that uses an organic EL element as a self-luminous element. The pixel according to the present embodiment includes three sub-pixels corresponding to the three colors, RGB. The sub-pixel shown in FIG. 7 is a sub-pixel for emitting red (R) light. Note that the sub-pixels for emitting green and blue light also have a circuit configuration similar to that shown in FIG. 7.

[0032] As shown in FIG. 7, the sub-pixel has a TFT (Thin Film Transistor) 81, a capacitor 84, a TFT 82, and a self-luminous element 85r.

[0033] A data signal, which is an output signal of the source driver 68, is input to one end of the TFT 81. The capacitor 84 is connected to the TFT 81. A control terminal of the TFT 82 is connected to the connection point between the TFT 81 and the capacitor 84. The light emitting element 85r is connected to the TFT 82.

[0034] The TFT 81 switches on / off based on a write signal, which is a control signal output from the write shift register 64. When the TFT 81 is turned on by the write signal within one horizontal period, a data signal, which is a source driver output signal corresponding to the signal level to be written to the pixel, is held in the capacitor 84.

[0035] After the write signal is turned off, a current corresponding to the voltage held in the capacitor 84 flows through the TFT 82, and the light emitting element 85r lights up.

[0036] [1-2. Current limiting circuit operation and current limiting method] The operation of the current limiting circuit 40 and the current limiting method will now be described.

[0037] First, before describing the operation of the current limiting circuit 40, the signals input to the sub-pixels shown in FIG. 7 will be described with reference to FIG. 8. FIG. 8 is a diagram showing an example of a write signal input to the sub-pixels according to the present embodiment. The display device 10 writes the data signal output by the source driver 68 for each horizontal period to the display unit 70 using the write signal, and emits light in units of horizontal lines (hereinafter simply referred to as "lines"). The display device 10 repeats this operation for each vertical period.

[0038] Next, the transition of the display state of the display unit 70 will be described with reference to FIG. 9. FIG. 9 is a schematic diagram showing the transition of the display state of the display unit 70 according to the present embodiment. In FIG. 9, the display screen transitions from time T1 to time T2, and from time T2 to time T3. At time T1, which corresponds to the end of the m-th frame shown in FIG. 9, the screen of the m-th frame is displayed. Here, the write shift register 64, which outputs a write signal, which is a control signal for writing a data signal to each pixel, outputs the write signal so as to scan the screen from top to bottom starting from the beginning of the display area of ​​the display unit 70. Therefore, at time T2, which corresponds to the middle of the n-th frame (i.e., the (m+1)th frame), which is the frame following the m-th frame, the upper half of the screen becomes the screen of the n-th frame, and the lower half remains the screen of the m-th frame. At time T3, which corresponds to the end of the n-th frame, the bottom of the display area is scanned, and the entire screen becomes the screen of the n-th frame.

[0039] Next, the operation of the current limiting circuit 40 and the current limiting method according to this embodiment will be described with reference to Fig. 10. Fig. 10 is a flowchart showing the flow of the current limiting method according to this embodiment.

[0040] As shown in FIG. 10, first, the delay circuit 42 of the current limiting circuit 40 delays the video signal by one frame time (delay step S1).

[0041] Subsequently, the gain calculation circuit 57 of the current limiting circuit 40 calculates a gain to be multiplied by the delay signal (gain calculation step S2). The gain calculation step S2 will be described below.

[0042] The configuration of the screen data storage unit 56 that stores power conversion data used by the gain calculation circuit 57 in gain calculation will be described with reference to FIG. 11 . FIG. 11 is a schematic diagram showing the configuration of the screen data storage unit 56 according to this embodiment. As shown in FIG. 11 , the screen data storage unit 56 stores power conversion data output from the comparison circuit 55. In this embodiment, the comparison circuit 55 receives, as first power conversion data, horizontal period power conversion data for the i-th line of the current frame from the horizontal period data calculation circuit 54 (see FIG. 2 ). Here, the video signal of the current frame corresponds to the delayed signal output from the delay circuit 42 shown in FIG. 2 and input to the weighted average circuit 53. Also, the comparison circuit 55 receives, as second power conversion data, horizontal period power conversion data for the i-th line of the frame following the current frame from the horizontal period data calculation circuit 52 (see FIG. 2 ). Here, the video signal of the next frame corresponds to the video signal input to the weighted average circuit 51 shown in FIG. 2 . The comparison circuit 55 outputs the larger of the first power conversion data and the second power conversion data to the screen data storage unit 56 .

[0043] The larger of the first power conversion data and the second power conversion data output from the comparison circuit 55 is stored as the power value of the i-th line in the screen data storage unit 56. When rewriting of the next frame begins, the screen data storage unit 56 rewrites the stored power values ​​in order, starting from the first line.

[0044] Next, the calculation process in the gain calculation circuit 57 will be described with reference to Fig. 12. Fig. 12 is a flowchart showing a gain calculation method in the gain calculation circuit 57 according to this embodiment.

[0045] 12, first, the gain calculation circuit 57 calculates a screen power value based on the horizontal period power conversion data stored in the screen data storage unit 56 (S11). Specifically, the gain calculation circuit 57 calculates the sum of the horizontal period power conversion data for the number of horizontal lines stored in the screen data storage unit 56 as the screen power value.

[0046] Next, the gain calculation circuit 57 determines whether the calculated screen power value exceeds a predetermined control target power value (S12). If the screen power value does not exceed the control target power value, the gain is set to 1 (S13). If the screen power value exceeds the control target power value, the ratio of the control target power value to the screen power value is calculated as a gain less than 1 (S14).

[0047] The gain is calculated in this manner.

[0048] 10 , the gain multiplication circuit 44 of the current limiting circuit 40 multiplies the delay signal by a gain (S3). The gain multiplication circuit 44 multiplies the delay signal input from the delay circuit 42 by the gain input from the gain calculation circuit 57. In the present embodiment, the gain multiplication circuit 44 multiplies each of the R signal, G signal, and B signal included in the video signal by a gain. By multiplying the delay signal by the gain in this way, the gain multiplication circuit 44 limits the current supplied to multiple pixels of the display unit 70 when the screen power value exceeds the control target power value.

[0049] [1-3.Effects] The effects of the display device 10 according to the present embodiment will be described in comparison with a display device according to a comparative example. Here, a display device according to comparative example 1 is used, which differs from the display device 10 according to the present embodiment in that it does not include a current limiting circuit, but is identical in other respects. Furthermore, a display device according to comparative example 2 is used, which differs from the display device 10 according to the present embodiment in that it includes a current limiting circuit of the prior art, but is identical in other respects. The current limiting circuit included in the display device according to comparative example 2 will be described with reference to FIG. 13 . FIG. 13 is a block diagram showing the functional configuration of a current limiting circuit 940 included in the display device according to comparative example 2. As shown in FIG. 13 , the current limiting circuit 940 according to comparative example 2 includes a weighted average circuit 51, a horizontal period data calculation circuit 52, a screen data storage unit 56, a gain calculation circuit 57, and a gain multiplication circuit 44. The weighted average circuit 51, the horizontal period data calculation circuit 52, the screen data storage unit 56, the gain calculation circuit 57, and the gain multiplication circuit 44 of the current limiting circuit 940 of the comparative example 2 have the same configurations as the weighted average circuit 51, the horizontal period data calculation circuit 52, the screen data storage unit 56, the gain calculation circuit 57, and the gain multiplication circuit 44 of the current limiting circuit 40 of this embodiment, respectively.

[0050] The power consumption of the pixels of the display unit 70 and the gain calculated by the arithmetic circuit 50 will be described with reference to FIGS. 14 and 15, respectively. FIG. 14 is a graph showing the time waveform of the power consumption of the pixels when changing from an all-black display to an all-white display in each of the display devices according to Comparative Example 1, Comparative Example 2, and the present embodiment. In the example shown in FIG. 14, after the display unit 70 changes from an all-black display to an all-white display (i.e., all-pixel white display at maximum brightness), the all-white display is maintained. FIG. 14 also shows images (a) to (d) displayed on the display unit 70 according to Comparative Example 2 and images (e) to (h) displayed on the display unit 70 according to the present embodiment at various points in time. FIG. 15 is a graph showing the time waveform of the gain when changing from an all-black display to an all-white display in each of the display devices according to Comparative Example 1, Comparative Example 2, and the present embodiment.

[0051] As shown in images (a) and (e) of FIG. 14, at time t=1.0 [frame time] in the graph of FIG. 14, the display units 70 of each display device are all in an all-black display state. In this case, the current supplied to the multiple pixels of the display units 70 is almost zero. Subsequently, when a video signal indicating an all-white display is input to each display device, the display units 70 are switched from black display to white display in sequence, starting from the top line, for each horizontal period of the display unit 70. Here, in the display device of Comparative Example 1, all lines are switched to white display in accordance with the video signal input to the display device. In other words, as shown in FIG. 15, the display device of Comparative Example 1 corresponds to a display device in which the gain multiplied by the video signal is always 1.

[0052] In the display device according to Comparative Example 1, after time t=1.0, the display is switched from black to white at maximum brightness, starting from the top line of the display unit 70. Accordingly, as shown in the graph in FIG. 14, power consumption gradually increases from 0% and reaches 100% at time t=2.0.

[0053] In the display device according to Comparative Example 2, when the display is switched from black to white starting from the top line of the display unit 70 after time t=1.0, the lines near the top are switched to white at maximum brightness in accordance with the video signal. In this case, as shown in the graph of FIG. 14, the power consumption exceeds the control target power value during the switch to white display (see around time t=1.4 in the graph of FIG. 14). In the example shown in FIG. 14, the control target power value is 40% of the power consumption when white display is performed at maximum brightness across the entire screen. When the power consumption of multiple pixels exceeds the control target power value in this way, the current limiting circuit 940 according to Comparative Example 2 multiplies the video signal by a gain of less than 1, as shown in FIG. 15. This limits the current supplied to multiple pixels.

[0054] For example, at time t=1.5 in FIG. 14 , the lines arranged in the upper half of the display unit 70 are switched from black to white. In the display device according to Comparative Example 2, in this state, as shown in image (b) of FIG. 14 , the current limiting circuit reduces the luminance of the video signal, so the luminance of the white display decreases from the top line to the bottom line. Specifically, the top line of the display unit 70 is displayed in white according to the video signal, but the bottommost line of the lines displayed in white in image (b) of FIG. 11 (i.e., the line located in the center in the vertical direction of the display unit 70) is displayed in white (i.e., gray) at a luminance lower than the luminance indicated by the video signal. Thereafter, the pixels arranged in the lines in the lower half of the display unit 70 are also displayed in white at a luminance lower than the luminance indicated by the video signal. As a result, at time t=2.0, as shown in image (c) of FIG. 14 , the display unit 70 displays all white, with the luminance decreasing toward the bottom of the display unit 70. At time t=2.0, the lines near the top edge of the display unit 70 are displayed in white with the luminance consistent with the video signal, so the power consumption of a plurality of pixels greatly exceeds the control target power value.

[0055] The current supplied to the pixels is also limited by the current limiting circuit 40 from time t=2.0 for one frame time. As a result, at time t=3.0, one vertical period after time t=2.0, all lines are displayed in all white at a brightness lower than the brightness indicated by the video signal. As a result, the power consumption of the pixels from time t=3.0 onwards is limited to be equal to or less than the control target power value.

[0056] As described above, in the display device according to Comparative Example 2, the power consumption of a plurality of pixels can temporarily exceed the control target power value by a large amount.

[0057] Next, as shown in image (e) of FIG. 14 , the display unit 70 of the display device 10 according to the present embodiment is in an all-black display state at time t=1.0 on the graph of FIG. 14 . When a one-frame delayed signal input to the display panel 60 indicates an all-black display, the display unit 70 displays an all-black display. When a one-frame video signal following a one-frame delayed signal indicating an all-black display indicates an all-white display, the comparison circuit 55 of the current limiting circuit 40 shown in FIG. 2 receives first power conversion data corresponding to the one-frame delayed signal indicating an all-black display and second power conversion data corresponding to the one-frame video signal indicating an all-white display. In this case, because the second power conversion data is greater than the first power conversion data, the comparison circuit 55 outputs the second power conversion data to the screen data storage unit 56. Therefore, at time t=1.0 when the switch from all-black display to all-white display begins, the power corresponding to the all-white display is input to each line power of the screen data storage unit 56. Accordingly, the gain calculation circuit 57 calculates a power value corresponding to the all-white display as the screen power value and calculates a gain corresponding to the screen power value. In the example shown in FIG. 14, the gain calculation circuit 57 calculates a gain of 40% / 100%=0.4. Therefore, as shown in FIG. 15, after time t=1.0, the gain multiplication circuit 44 multiplies the RGB signals included in the one-frame delayed signal representing the all-white display by a gain of 0.4. As a result, as shown in image (f) of FIG. 14, after time t=1.0, the display unit 70 switches from the top line to a white display at a luminance lower than that corresponding to the all-white display. Note that, as shown in FIG. 15, the gain becomes less than 1 (at about t=0.4) before the time (t=1.0) when the display starts to switch from black to white, starting from the top line of the display unit 70. Thereafter, the gain gradually decreases until time t=1.0.

[0058] After time t=2.0, the entire display unit 70 is switched to displaying white at low brightness, as shown in images (g) and (h) in Figure 14. Therefore, the power consumption of multiple pixels is always limited to be equal to or less than the control target power value.

[0059] As described above, the display device 10 and current limiting method according to the present embodiment calculate a gain to be multiplied by a delay signal based on the power consumption at multiple pixels corresponding to the delay signal and the power consumption at multiple pixels corresponding to the video signal. As a result, the display device 10 and current limiting method according to the present embodiment can suppress the power consumption (i.e., current) of the display panel 60 more effectively than the display devices according to the comparative examples, even when the luminance indicated by the video signal increases suddenly. Furthermore, the display device 10 can suppress the power consumption of multiple pixels of the display panel 60 to a control target power value or less.

[0060] (Embodiment 2) A current limiting circuit according to the second embodiment will be described. The current limiting circuit according to this embodiment differs from the current limiting circuit 40 according to the first embodiment in the configuration relating to the calculation of the second power conversion data. The current limiting circuit according to this embodiment will be described below with reference to FIG. 16, focusing on the differences from the current limiting circuit 40 according to the first embodiment.

[0061] 16 is a block diagram showing the functional configuration and integration mode of a current limiting circuit 140 according to this embodiment. As shown in Fig. 16, the current limiting circuit 140 has a delay circuit 42, a gain multiplication circuit 44, and a calculation circuit 150. The calculation circuit 150 has weighted averaging circuits 151 and 53, horizontal period data calculation circuits 152r, 152g, 152b, and 54, a comparison circuit 55, a screen data storage unit 56, and a gain calculation circuit 57.

[0062] The horizontal period data calculation circuits 152r, 152g, and 152b calculate horizontal period power conversion data corresponding to display data for each horizontal period. The horizontal period data calculation circuits 152r, 152g, and 152b respectively calculate integrated values ​​or average values ​​of the R signal, G signal, and B signal included in the video signal during the horizontal period. In this embodiment, the horizontal period data calculation circuits 152r, 152g, and 152b respectively perform calculations based on the R signal, G signal, and B signal that have not been multiplied by a weighting coefficient.

[0063] The weighted average circuit 151 is a circuit that calculates a weighted average of pixel values ​​included in a video signal. In this embodiment, the weighted average circuit 151 calculates a weighted average of the integrated values ​​of pixel values ​​of each of the R, G, and B signals input from the horizontal period data calculation circuits 152r, 152g, and 152b, and outputs the weighted average to the comparison circuit 55 as second power conversion data.

[0064] As described above, in the current limiting circuit 140 according to the present embodiment, the order of integrating horizontal period data and calculating the weighted average in calculating the second power conversion data is different from that of the current limiting circuit 40 according to embodiment 1. Even in such a current limiting circuit 140, when the weighting coefficients used in the weighted average circuits 151 and 53 are constants (in other words, when the weighting coefficients are not functions that change depending on pixel values, etc.), the same effects as those of the current limiting circuit 40 according to embodiment 1 can be achieved.

[0065] 16, the current limiting circuit 140 has two integrated circuit units: a front-end circuit unit 131 and a control circuit unit 132. The front-end circuit unit 131 has a delay circuit 42 and horizontal period data calculation circuits 152r, 152g, and 152b. The control circuit unit 132 has weighted average circuits 151 and 53, a horizontal period data calculation circuit 54, a comparison circuit 55, a screen data storage unit 56, a gain calculation circuit 57, and a gain multiplication circuit 44.

[0066] In this way, the front-end circuit unit 131 has the delay circuit 42 and the horizontal period data calculation circuits 152r, 152g, and 152b, which simplifies the circuit configuration of the control circuit unit 132. In particular, when the control circuit unit 132 is included in a TCON chip, the configuration of the TCON chip can be simplified.

[0067] Furthermore, since the weighted average circuit 151 and the weighted average circuit 53 are integrated in the control circuit unit 132, the weighting coefficients can be shared between the weighted average circuit 151 and the weighted average circuit 53. Therefore, the storage capacity required for the current limiting circuit 140 can be reduced.

[0068] 16. For example, the weighted average circuits 151 and 53 may be integrated into the front-end circuit unit 131.

[0069] (Embodiment 3) A current limiting circuit according to embodiment 3 will be described. The current limiting circuit according to this embodiment differs from the current limiting circuit 40 according to embodiment 1 in the configuration of the arithmetic circuit. The current limiting circuit according to this embodiment will be described below, focusing on the differences from the current limiting circuit 40 according to embodiment 1.

[0070] [3-1. Current limiting circuit configuration] The configuration of a current limiting circuit according to this embodiment will be described with reference to Fig. 17. Fig. 17 is a block diagram showing the functional configuration of a current limiting circuit 240 according to this embodiment. As shown in Fig. 17, the current limiting circuit 240 has a delay circuit 42, a gain multiplication circuit 44, and an arithmetic circuit 250.

[0071] The arithmetic circuit 250 according to this embodiment receives a video signal and calculates a gain to be multiplied by a delay signal based on the power consumption of multiple pixels corresponding to the video signal. More specifically, the arithmetic circuit 250 calculates the gain based on the power consumption of multiple pixels corresponding to two consecutive frames of video signal. The arithmetic circuit 250 calculates multiple power values ​​and calculates the gain based on the maximum power value among the multiple power values, i.e., a screen power value. In other words, in this embodiment, the maximum of the multiple power values ​​is used as the screen power value. Here, each of the multiple power values ​​indicates the power consumption of multiple pixels corresponding to one consecutive frame of video signal included in two consecutive frames of video signal. Note that two consecutive frames of video signal correspond to a combination of one frame of delayed signal and one frame of video signal following the delayed signal. Therefore, it can be said that the arithmetic circuit 250 according to this embodiment calculates the gain based on the power consumption of multiple pixels corresponding to one frame of delayed signal and the power consumption of multiple pixels corresponding to one frame of video signal.

[0072] The gain calculated by the calculation circuit 250 is less than 1 when the screen power value exceeds the control target power value. More specifically, when the screen power value exceeds the control target power value, the gain calculated by the calculation circuit 250 is a value equal to or less than the value obtained by dividing the control target power value by the screen power value. In this embodiment, when the screen power value exceeds the control target power value, the gain is a value obtained by dividing the control target power value by the screen power value. The calculation circuit 250 calculates and outputs the gain for each period shorter than the vertical period of the video signal. In this embodiment, the calculation circuit 250 calculates and outputs the gain for each horizontal period. The calculation circuit 250 has a weighted average circuit 51, a horizontal period data calculation circuit 52, a screen data storage unit 256, and a gain calculation circuit 257.

[0073] The screen data storage unit 256 according to this embodiment stores two frames of power conversion data output by the horizontal period data calculation circuit 52. Specifically, the screen data storage unit 256 stores power conversion data corresponding to one frame of delayed signal and power conversion data corresponding to one frame of video signal following the one frame of delayed signal. The screen data storage unit 256 receives the power conversion data output by the horizontal period data calculation circuit 52. When power conversion data is input to the screen data storage unit 256 from the horizontal period data calculation circuit 52, the screen data storage unit 256 deletes the power conversion data that was input two frames before the power conversion data.

[0074] The gain calculation circuit 257 calculates a gain to be multiplied by the delay signal based on the power conversion data and the control target power value stored in the screen data storage unit 256. In this embodiment, the gain calculation circuit 257 calculates a screen power value, which is the power consumption for one frame in a plurality of pixels, based on the power conversion data for two frames stored in the screen data storage unit 256.

[0075] The operation of current limiting circuit 240 and the current limiting method according to this embodiment will be described with reference to the above-mentioned Fig. 10. The current limiting method according to this embodiment also includes a delay step, a gain calculation step, and a gain multiplication step, similar to the current limiting method according to embodiment 1 shown in Fig. 10. The delay step and gain multiplication step according to this embodiment are similar to the delay step and gain multiplication step according to embodiment 1, respectively.

[0076] In the gain calculation step of the current limiting method according to the present embodiment, a gain to be multiplied by the delay signal is calculated based on the power consumption of a plurality of pixels corresponding to two consecutive frames of video signals. In the gain calculation step, gain calculation circuit 257 calculates a plurality of power values ​​and calculates a gain based on the screen power value, which is the maximum power value among the plurality of power values.

[0077] A method for calculating a screen power value in the gain calculation circuit 257 according to this embodiment will be described with reference to Figs. 18 and 19. Figs. 18 and 19 each show an example of a method for calculating a screen power value according to this embodiment. Fig. 18 shows power conversion data stored in the screen data storage unit 256 at the timing when a delay signal corresponding to the last line of the current frame is output from the delay circuit 42. Fig. 19 shows power conversion data stored in the screen data storage unit 256 at the timing when a delay signal corresponding to the i-th line of the current frame is output from the delay circuit 42. Here, i represents an integer greater than or equal to 1 and less than the number of lines in the display unit 70.

[0078] In this embodiment, the screen data storage unit 256 stores horizontal period power conversion data for each horizontal line on the display screen of the display unit 70, corresponding to two frames of video signals. For example, the horizontal period power conversion data for the ith line of the current frame (the mth frame) is stored in the screen data storage unit 256 as the power value of the ith line of the current frame. The horizontal period power conversion data for the ith line of the frame next to the current frame (the (m+1)th frame) is stored in the screen data storage unit 256 as the power value of the ith line of the next frame. Each time horizontal period power conversion data for a new line is calculated, the power values ​​stored in the screen data storage unit 256 are rewritten. The screen data storage unit 256 stores the power conversion data input from the horizontal period data calculation circuit 52 as a power value corresponding to the delayed signal written on the display screen of the display unit 70 and a power value corresponding to one frame of video signal following the delayed signal.

[0079] In the example shown in Fig. 18, power conversion data corresponding to two frames of video signals are stored, namely, power conversion data corresponding to (one frame's worth of) video signals of the current frame and power conversion data corresponding to (one frame's worth of) video signals of the next frame. In the example shown in Fig. 19, power conversion data corresponding to two frames of video signals are stored, namely, power conversion data corresponding to (i+1)th line to the last line of the previous frame, power conversion data corresponding to (one frame's worth of) video signals of the current frame, and power conversion data corresponding to (the first line's worth of) video signals of the next frame.

[0080] Based on the power conversion data for two frames stored in the screen data storage unit 256, the gain calculation circuit 257 calculates, as the screen power value, the maximum value from among the power values ​​corresponding to the signals written on the display screen of the display unit 70 and the power values ​​corresponding to the signals continuously written on the display screen of the display unit 70 within one frame time.

[0081] 18 , the gain calculation circuit 257 calculates a power value S(1) obtained by integrating the first to last line power of the current frame, a power value S(2) obtained by integrating the second to last line power of the current frame and the first line power of the next frame, ..., a power value S(i) obtained by integrating the ith to last line power of the current frame and the first to (i-1)th line power of the next frame, ..., a power value S(ne) obtained by integrating the current line of the current frame, i.e., the last line power of the current frame, to the (ne-1)th line power of the next frame, where ne represents the number of lines on the display unit 70.

[0082] In the example shown in FIG. 19, the gain calculation circuit 257 calculates a power value S(1) obtained by integrating the (i+1)th line power of the previous frame to the i-th line power of the current frame, ..., a power value S(ne) obtained by integrating the current line of the current frame, i.e., the i-th line power of the current frame, to the (i-1)th line power of the next frame.

[0083] Next, the gain calculation circuit 257 selects the maximum value from among the power values ​​S(1) to S(ne) as the screen power value.

[0084] Next, similar to the gain calculation circuit 57 according to the first embodiment, when the screen power value exceeds the control target power value, the gain calculation circuit 257 calculates the ratio of the control target power value to the screen power value as the gain. In this case, the gain is less than 1. When the screen power value does not exceed the control target power value, the gain calculation circuit 257 sets the gain to 1.

[0085] [3-2. Effects] The current limiting circuit 240 according to the present embodiment and a display device including the same have the same effects as the current limiting circuit 40 and display device 10 according to embodiment 1. Further effects of the display device including the current limiting circuit 240 according to the present embodiment will be described with reference to Figs. 20 and 21, in comparison with a display device according to comparative example 1 and the display device 10 according to embodiment 1.

[0086] FIG. 20 is a graph showing the time waveform of power consumption at multiple pixels when the display device according to Comparative Example 1, Embodiment 1, and the present embodiment changes from an all-black display to a striped white display and black display, and then inverts the striped white display and black display to black display and white display, respectively. After the display device changes from an all-black display to a striped white display and black display, and then inverts the striped white display and black display to black display and white display, respectively, the display device repeats inversion between the white display and black display every frame. Here, the striped white display is a white display at maximum brightness. FIG. 20 also shows images (a) to (d) displayed on the display unit 70 according to Embodiment 1 and images (e) to (h) displayed on the display unit 70 according to the present embodiment at each point in time. The display device according to Comparative Example 1 has the same configuration as the display device according to Comparative Example 1 used in describing the effects of Embodiment 1. Figure 21 is a graph showing the time waveform of gain when the display devices of Comparative Example 1, Embodiment 1, and this embodiment are changed from an all-black display to a striped white display and a black display, and then the striped white display and the black display are inverted to a black display and a white display, respectively.

[0087] As shown in images (a) and (e) of Figure 20, at time t = 1.0 [frame time] on the graph of Figure 20, the display unit 70 of each display device is in an all-black display state. In this case, the current supplied to the multiple pixels of the display unit 70 is almost zero. Next, when a video signal indicating striped white and black displays is input to each display device, the display unit 70 switches to striped white display starting from the top line for each horizontal period of the display unit 70.

[0088] Here, in the display device 10 according to Comparative Example 1, all lines are switched in a striped pattern in accordance with the video signal input to the display device. In the display device according to Comparative Example 1, after time t=1.0, lines are switched from black to white at maximum brightness, starting from the top line of the display unit 70. Accordingly, as shown in the graph of FIG. 14, power consumption gradually increases from 0% and reaches approximately 50% at time t=2.0. As shown in FIG. 21, the display device according to Comparative Example 1 corresponds to a display device in which the gain multiplied by the video signal is always 1.

[0089] As shown in image (a) of Fig. 20 , the display unit 70 of the display device 10 according to the first embodiment is in an all-black display state at time t=1.0 in the graph of Fig. 20 . When one frame of video signal following one frame of delayed signal showing all-black display shows striped white and black displays, the comparison circuit 55 of the current limiting circuit 40 shown in Fig. 2 receives first power conversion data corresponding to one frame of delayed signal showing all-black display and second power conversion data corresponding to one frame of video signal showing striped white and black displays. In this case, because the second power conversion data is equal to or greater than the first power conversion data, the comparison circuit 55 outputs the second power conversion data to the screen data storage unit 56.

[0090] Therefore, at time t=1.0 when the transition from all black to striped white and black begins, the power values ​​corresponding to one frame of the video signal showing the striped white and black displays are input to each line power of the screen data storage unit 56. Accordingly, the gain calculation circuit 57 calculates the power value corresponding to one frame of the video signal showing the striped white and black displays as the screen power value, and calculates the gain corresponding to this screen power value. In the example shown in FIG. 20, the gain calculation circuit 57 calculates a gain of 40% / 50%=0.8. Therefore, as shown in FIG. 21, at time t=1.0, the gain multiplication circuit 44 multiplies the RGB signals included in one frame of the delayed signal showing the striped white and black displays by 0.8 as a gain.

[0091] At time t=1.0, the one-frame video signal following the one-frame delayed signal showing striped white and black displays shows a display in which the striped white and black displays are inverted to black and white, respectively. In this case, the comparison circuit 55 of the current limiting circuit 40 shown in FIG. 2 receives first power conversion data corresponding to the one-frame delayed signal showing striped white and black displays and second power conversion data corresponding to the one-frame video signal showing striped black and white displays. Here, the white and black displays are inverted between the one-frame delayed signal and the one-frame video signal. That is, for lines where the one-frame delayed signal shows white, the one-frame video signal shows black, and for lines where the one-frame delayed signal shows black, the one-frame video signal shows white. Therefore, for lines where the one-frame delayed signal shows white, the first power conversion data is greater than the second power conversion data, and for lines where the one-frame delayed signal shows black, the second power conversion data is greater than the first power conversion data. Therefore, during the period from time t=1.0 to time t=2.0, the comparison circuit 55 always outputs power conversion data corresponding to white display to the screen data storage unit 56. Therefore, at time t=2.0, the screen data storage unit 56 stores power values ​​corresponding to white display for all lines. In this case, the gain calculation circuit 57 calculates a gain of 40% / 100%=0.4. That is, as shown in FIG. 21 , during the period from time t=1.0 to time t=2.0, the gain calculated by the gain calculation circuit 57 gradually decreases from 0.8 to 0.4. As a result, as shown in image (b) of FIG. 20 , at time t=1.5, the upper half of the display unit 70 is switched to a striped white and black display. As shown in image (c) of FIG. 20 , at time t=2.0, the entire display unit 70 is switched to a striped white and black display. In images (b) and (c), the brightness of the white display area is lower than the brightness of the white display indicated by the delayed signal, and the brightness of the white display decreases from the top end to the bottom end.

[0092] After time t=2.0, the screen data storage unit 56 always stores power values ​​corresponding to white display for all lines, just as it did at time t=2.0. Therefore, the gain for the delay signals of lines whose display is switched after time t=2.0 is 0.4, just like it was at time t=2.0. Therefore, as shown in FIG. 21, at time t=3.0, one frame time after time t=2.0, the delay signals corresponding to all lines of the display unit 70 are multiplied by a gain of 0.4. Therefore, as shown in image (d) of FIG. 20, the brightness of the white display area is significantly reduced from the maximum brightness. In the example shown in FIG. 20, the power consumption of multiple pixels at time t=3.0 is suppressed to about half (20%) of the control target power value.

[0093] In this way, in the display device 10 according to the first embodiment, there may be cases where power consumption is suppressed more than necessary.

[0094] In contrast, as shown in image (e) of Fig. 20, a display device including current limiting circuit 240 according to the present embodiment is in an all-black display state at time t=1.0 on the graph of Fig. 20, similar to display device 10 according to embodiment 1. When a video signal following a delayed signal indicating an all-black display indicates striped white and black displays, at time t=1.0, power conversion data corresponding to one frame of the delayed signal indicating an all-black display and power conversion data corresponding to one frame of the video signal indicating striped white and black displays are stored in screen data storage unit 256 of current limiting circuit 40 shown in Fig. 17.

[0095] The gain calculation circuit 257 calculates power values ​​S(1) to S(ne) based on the power conversion data stored in the screen data storage unit 256 and selects the maximum value from among the power values ​​S(1) to S(ne) as the screen power value. In the example shown in FIG. 20, the maximum value of the power values ​​S(1) to S(ne) is the power value S(ne) ≈ 50%, which corresponds to the striped white and black display. Therefore, the gain calculation circuit 257 calculates a gain of 40% / 50% = 0.8. Because the striped display continues after time t=1.0, the maximum value of the power values ​​S(1) to S(ne) remains approximately 50% even after time t=1.0. Therefore, as shown in FIG. 21, after time t=1.0, the gain multiplication circuit 44 multiplies the RGB signals included in the delayed signals representing the striped white and black display by a gain of 0.8. As a result, at time t=1.5, the upper half of the display unit 70 is switched to a striped white and black display, but the brightness of the white display area is lower than the brightness of the white display indicated by the delayed signal, as shown in image (f) of Fig. 20. At times t=2.0 and t=3.0, the display unit 70 displays a striped display as shown in images (g) and (h) of Fig. 20, and the brightness of the white display area is lower than the brightness of the white display indicated by the delayed signal.

[0096] As described above, the current limiting circuit 240 according to this embodiment calculates the gain to be multiplied by the delay signal based on the power consumption of a plurality of pixels corresponding to two frames of video signals. This makes it possible to suppress the power consumption of the display panel even when the luminance indicated by the video signal increases suddenly. Furthermore, the current limiting circuit 240 according to this embodiment calculates a plurality of power values ​​and calculates the gain based on the screen power value, which is the maximum power value among the plurality of power values. This makes it possible to suppress excessive reduction in the power consumption of a plurality of pixels.

[0097] (Other embodiments) Although the present disclosure has been described above based on the embodiments, the present disclosure is not limited to the above-described embodiments. The present disclosure also includes other embodiments realized by combining any of the components in the embodiments, modifications obtained by applying various modifications to the embodiments that would occur to those skilled in the art without departing from the spirit of the present disclosure, and various devices incorporating processing circuits according to the present embodiments.

[0098] For example, in the above-described embodiment, each current limiting circuit is provided in a display device, but the current limiting circuit does not necessarily have to be provided in a display device. Such a modification will be described with reference to FIG. 22. FIG. 22 is a block diagram showing the relationship between a current limiting circuit 40 and a display device 710 according to this modification. As shown in FIG. 22, the current limiting circuit 40 is provided in a GPU (Graphics Processing Unit) 712. The GPU 712 is an arithmetic unit for image processing. A video signal is input, and the GPU 712 outputs a delayed signal that has been multiplied by a gain by the current limiting circuit 40. The GPU 712 is disposed outside the display device 710. The GPU 712 may be provided in, for example, a PC (Personal Computer) 804 as shown in FIG. 23. The PC 804 is operated by a keyboard 806, a mouse 807, and the like. The display device 710 may be provided in a monitor 805 shown in FIG. 23. The monitor 805 includes the display device 710 and displays a video signal from the PC 804. The GPU 712 may also be provided in a hard disk recorder 808 as shown in FIG.

[0099] As described above, even when the current limiting circuit according to each of the above embodiments is not provided in a display device, the same effects as those of the current limiting circuit according to each of the above embodiments can be achieved.

[0100] Furthermore, the display device according to each of the above embodiments may be built into a thin flat TV 802 as shown in Fig. 25. In this case, the same effects as those of the above embodiments can be achieved.

[0101] In the above embodiment, the pixel of the display panel includes three sub-pixels corresponding to the three colors of RGB. However, the pixel configuration is not limited to this. For example, the pixel may include four sub-pixels corresponding to the four colors of RGBW. In addition, if the display panel is a monochrome display panel, the pixel may include a single circuit as shown in FIG. 7.

[0102] Furthermore, the current limiting circuit 40 according to the first embodiment and the current limiting circuit 140 according to the second embodiment have a configuration in which the first power conversion data is calculated using the weighted average circuit 53 and the horizontal period data calculation circuit 54, but the configuration of the current limiting circuit according to the present disclosure is not limited to this. For example, the current limiting circuit may calculate the first power conversion data using a circuit similar to the horizontal period data calculation circuits 152r, 152g, and 152b and the weighted average circuit 151 according to the second embodiment.

[0103] Furthermore, in the above embodiment, the video signal is an RGB signal, but the video signal may include signals other than the RGB signal. In other words, the video signal may include an RGB signal.

[0104] Furthermore, the video signal is not limited to a signal including an RGB signal, but may be, for example, a color difference signal including a luminance signal.

[0105] Furthermore, in the above embodiment, an example was shown in which organic EL elements were used as the self-luminous elements, but the self-luminous elements are not limited to this. For example, inorganic EL elements or the like may also be used as the self-luminous elements.

[0106] Furthermore, some of the components constituting the current limiting circuit according to each of the above embodiments may be a computer system comprising a microprocessor, ROM, RAM, a hard disk unit, a display unit, a keyboard, a mouse, etc. A computer program is stored in the RAM or the hard disk unit. The microprocessor operates in accordance with the computer program to achieve its function. Here, the computer program is composed of a combination of multiple instruction codes that indicate commands to the computer to achieve a predetermined function.

[0107] Furthermore, some of the components constituting the current limiting circuit according to each of the above embodiments may be configured as a single system LSI (Large Scale Integration). A system LSI is an ultra-multifunctional LSI manufactured by integrating multiple components on a single chip, and specifically, is a computer system configured to include a microprocessor, ROM, RAM, etc. A computer program is stored in the RAM. The system LSI achieves its functions when the microprocessor operates in accordance with the computer program.

[0108] Furthermore, some of the components constituting the current limiting circuit according to each of the above embodiments may be configured as an IC card or a standalone module that can be attached to or detached from each device. The IC card or module is a computer system configured with a microprocessor, ROM, RAM, etc. The IC card or module may include the ultra-multifunctional LSI. The IC card or module achieves its functions when the microprocessor operates according to a computer program. The IC card or module may be tamper-resistant.

[0109] Furthermore, some of the components constituting the current limiting circuit according to each of the above embodiments may be the computer program or the digital signal recorded on a computer-readable recording medium, such as a flexible disk, hard disk, CD-ROM, MO, DVD, DVD-ROM, DVD-RAM, BD (Blu-ray (registered trademark) Disc), semiconductor memory, etc. Alternatively, they may be the digital signal recorded on such a recording medium.

[0110] In addition, some of the components constituting the current limiting circuit according to each of the above embodiments may transmit the computer program or the digital signal via a telecommunications line, a wireless or wired communication line, a network such as the Internet, data broadcasting, etc.

[0111] The present disclosure may also be embodied as the above-described methods. It may also be embodied as a computer program for implementing these methods on a computer, or as a digital signal comprising the computer program. Furthermore, the present disclosure may also be embodied as a non-transitory computer-readable recording medium, such as a CD-ROM, on which the computer program is recorded.

[0112] The present disclosure may also be a computer system having a microprocessor and a memory, the memory storing the computer program, and the microprocessor operating in accordance with the computer program.

[0113] Furthermore, the program or the digital signal may be recorded on the recording medium and transferred, or the program or the digital signal may be transferred via the network or the like, so that the program or the digital signal may be implemented by another independent computer system.

[0114] The above-described embodiments and modifications may be combined with each other. [Industrial Applicability]

[0115] The present disclosure is useful for organic EL flat panel displays, and is particularly suitable for use in large-screen displays that consume large amounts of power. [Explanation of symbols]

[0116] 10, 710 display device 31, 131 Front-end circuit section 32, 132 control circuit section 40, 140, 240, 940 Current limiting circuit 42 Delay Circuit 44 Gain multiplication circuit 50, 150, 250 arithmetic circuit 51, 53, 151 Weighted average circuit 52, 54, 152b, 152g, 152r Horizontal period data calculation circuit 55 Comparison circuit 56, 256 screen data storage section 57, 257 Gain calculation circuit 60 Display Panel 62 Write processing section 64 Write shift registers 68 Source Driver 70 Display section 81, 82 TFT 84 capacitors 85r Self-luminous element 712 GPU 802 Thin Flat TV 804 PC 805 Monitor 806 keyboard 807 Mouse 808 Hard Disk Recorder

Claims

1. 1. A current limiting circuit that receives a video signal for a display panel having a plurality of pixels and limits current consumption of the plurality of pixels, a delay circuit to which the video signal is input and which outputs a delayed signal obtained by delaying the video signal by a time corresponding to one frame; an arithmetic circuit to which the video signal is input, the arithmetic circuit calculating a gain to be multiplied by the delay signal based on power consumption at the plurality of pixels corresponding to the delay signal and power consumption at the plurality of pixels corresponding to the video signal; a gain multiplication circuit that multiplies the delay signal by the gain; Current limiting circuit.

2. The calculation circuit calculates a screen power value that is a predicted value of power consumption at the plurality of pixels corresponding to one frame of the delayed signal and one frame of the video signal.

2. The current limiting circuit of claim 1.

3. the arithmetic circuit is a comparison circuit that receives first power conversion data representing power consumption at the plurality of pixels corresponding to a first signal including the delayed signal for at least one horizontal period, and second power conversion data representing power consumption at the plurality of pixels corresponding to a second signal including the video signal for at least one horizontal period one frame after the first signal, and outputs the larger of the first power conversion data and the second power conversion data; a gain calculation circuit that calculates the screen power value by integrating the output of the comparison circuit for one frame, and calculates the gain based on the screen power value; 3. The current limiting circuit of claim 2.

4. 1. A current limiting circuit that receives a video signal for a display panel having a plurality of pixels and limits current consumption of the plurality of pixels, a delay circuit to which the video signal is input and which outputs a delayed signal obtained by delaying the video signal by a time corresponding to one frame; an arithmetic circuit to which the video signal is input, the arithmetic circuit calculating a gain to be multiplied by the delay signal based on power consumption of the plurality of pixels corresponding to the video signal for two consecutive frames; a gain multiplication circuit that multiplies the delay signal by the gain; Current limiting circuit.

5. the calculation circuit calculates a plurality of power values, and calculates the gain based on a screen power value that is a maximum power value among the plurality of power values; Each of the plurality of power values ​​indicates power consumption of the plurality of pixels corresponding to one consecutive frame of the video signal included in two consecutive frames of the video signal.

5. The current limiting circuit of claim 4.

6. The gain is less than 1 when the screen power value exceeds a control target power value that is a control target upper limit value of power consumption of the plurality of pixels.

6. The current limiting circuit according to claim 2, 3 or 5.

7. When the screen power value exceeds the control target power value, the gain is a value equal to or less than a value obtained by dividing the control target power value by the screen power value.

7. The current limiting circuit of claim 6.

8. The calculation circuit calculates and outputs the gain for each period shorter than the vertical period of the video signal. The current limiting circuit according to any one of claims 1 to 7.

9. The video signal includes an RGB signal. The current limiting circuit according to any one of claims 1 to 8.

10. a first weighted average circuit that calculates a weighted average of pixel values ​​of each of the RGB signals included in the delayed signal; a second weighted average circuit that calculates a weighted average of pixel values ​​of each of the RGB signals included in the video signal, The first weighted average circuit and the second weighted average circuit are integrated.

10. The current limiting circuit of claim 9.

11. a current limiting circuit according to any one of claims 1 to 10; The display panel Display device.

12. A current limiting method for limiting current consumption of a plurality of pixels included in a display panel, comprising: a delay step of outputting a delayed signal obtained by delaying the video signal for the display panel having the plurality of pixels by a time corresponding to one frame; a gain calculation step of calculating a gain to be multiplied by the delay signal based on power consumption at the plurality of pixels corresponding to the delay signal and power consumption at the plurality of pixels corresponding to the video signal; a gain multiplication step of multiplying the delayed signal by the gain. Current limiting method.

13. A current limiting method for limiting current consumption of a plurality of pixels included in a display panel, comprising: a delay step of outputting a delayed signal obtained by delaying the video signal for the display panel having the plurality of pixels by a time corresponding to one frame; a gain calculation step of calculating a gain to be multiplied by the delay signal based on power consumption at the plurality of pixels corresponding to the video signal for two consecutive frames; a gain multiplication step of multiplying the delayed signal by the gain. Current limiting method.

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