This application claims the benefit of priority to Japanese Patent Application Number 2020-048347 filed on Mar. 18, 2020. The entire contents of the above-identified application are hereby incorporated by reference.
The disclosure relates to a display device.
Technique of optimizing brightness of all a display device in accordance with brightness in a periphery where the display device is used has been implemented.
JP 2013-122846 A (published on Jun. 20, 2013) describes technique of combining control of an output to an LED element (control of a current value), control of a duty ratio of a pulse width modulation signal (a PWM signal), and control of the number of lighting of LED elements, and performing brightness adjustment more finely.
However, since the method of controlling the number of lighting of LED elements and the method of controlling an output to an LED element (control of a current value) described in the above-described JP 2013-122846 A (published Jun. 20, 2013) is a method where resolution of brightness adjustment is low, the method is not very suitable for finer adjustment of brightness. In addition, since the method of controlling a duty ratio of a pulse width modulation signal (a PWM signal) described in the above-described JP 2013-122846 A (published Jun. 20, 2013) is a method where a period of setting a duty ratio of a pulse width modulation signal (a PWM signal) is long, the method is a method that does not contribute much to finer adjustment of brightness.
In view of the above-described problems, an object of the disclosure is to provide a display device including a backlight that can perform a change in brightness more smoothly.
To solve the above-described problems, a display device according to an aspect of the disclosure includes an input device, a pulse width modulation signal generating part, a drive circuit having M (where M is a natural number of two or more) types of duty ratio resolution, a backlight including a plurality of light-emitting elements, and a display panel overlapping the backlight, wherein the pulse width modulation signal generating part sets the duty ratio for each period of a pulse width modulation signal, and generates an intermediate gray scale signal including a signal including a first pulse width modulation signal continuous to a second pulse width modulation signal corresponding to two duty ratios closest to each other among the M types of duty ratios, based on a signal related to luminance from the input device, and the drive circuit controls a plurality of light-emitting elements of the backlight, based on the intermediate gray scale signal.
According to an aspect of the disclosure, a display device including a backlight that can perform a change in brightness more smoothly can be realized.
The disclosure will be described with reference to the accompanying drawings, wherein like numbers reference like elements.
Embodiments of the disclosure will be described with reference to
As illustrated in
In the input device 1, the illuminance sensor 2 detects brightness in a periphery, and based on a result of the detection, the luminance controller 3 outputs, to the display module 4, a luminance change command (a signal related to luminance) for optimizing brightness of the backlight 7 in accordance with a change in brightness in a periphery. For example, in a case where a detection result indicating that brightness in a periphery is dark is obtained from the illuminance sensor 2, the luminance controller 3 outputs, to the display module 4, a luminance change command (a signal related to luminance) to smoothly decrease luminance of the backlight 7 to predetermined luminance, and in a case where a detection result indicating that brightness in a periphery is bright is obtained from the illuminance sensor 2, the luminance controller 3 outputs, to the display module 4, a luminance change command (a signal related to luminance) to smoothly increase luminance of the backlight 7 to predetermined luminance. Note that the luminance change command (the signal related to luminance) from the luminance controller 3 may be transferred to the display module 4 via I2C communication, for example.
In the present embodiment, the case where the input device 1 includes the illuminance sensor 2 is exemplarily described, but the embodiment is not limited to this case, and the input device 1 may include, for example, a luminance setting unit that enables a user of the display device 10 to set preferred luminance, instead of the illuminance sensor 2.
Note that, for example, a liquid crystal display panel or the like can be used as the display panel 8.
As illustrated in
Note that the PWM signal generating part 5 can include, for example, a microcomputer.
Note that a data transfer controller (DTC) function provided in the DTC unit 5b is a function to transfer data between memories without using a CPU. The DTC unit 5b can use the same data bus as the CPU, and a bus usage right for a DTC is prioritized over the CPU.
Since the PWM signal generating part 5 provided in the display device 10 includes the DTC unit 5b described below, a PWM duty ratio can be set for each period of a PWM signal (a pulse width modulation signal). In addition, the PWM signal generating part 5 generates an intermediate gray scale signal including a signal including a first pulse width modulation signal continuous to a second pulse width modulation signal corresponding to two duty ratios closest to each other among the M types of duty ratios, based on the luminance change command (the signal related to luminance) from the luminance controller 3.
In the present embodiment, the case where the PWM duty ratio can be set for each period of the PWM signal by providing the DTC unit 5b is exemplarily described, but the embodiment is not limited to this case.
In addition, in the present embodiment, the case where the PWM signal of 2600 Hz, that is, a signal having one period of the PWM signal of 0.384 msec is used is exemplarily described, but the embodiment is not limited to this case. To enable a user of the display device 10 to more smoothly recognize a change in luminance of the backlight 7, a frequency of the PWM signal is preferably equal to or greater than 2600 Hz.
In addition, in the present embodiment, an LED driver having 1024 types of duty ratio resolution is used as the LED driver 6 having the M (where M is a natural number of two or more) types of duty ratio resolution, but the embodiment is not limited to this case, and as necessary, an LED driver having predetermined duty ratio resolution can be selected appropriately.
As illustrated in
Note that
To control the plurality of LED elements of the backlight 7 to obtain luminance of a pseudo-intermediate gray scale other than the 1024 types of duty ratio resolution of the LED driver 6, the intermediate gray scale signal in the PWM signal includes N (N is a natural number of two or more) periods of the PWM signal, and each period of the N periods of the PWM signal includes a first pulse width modulation signal and a second pulse width modulation signal corresponding to two duty ratios closest to each other among the 1024 types of duty ratios.
In the present embodiment, the case where the intermediate gray scale signal in the PWM signal includes 2N (N is a natural number of 2 or more) periods of the PWM signal, and each period of the 2N periods of the PWM signal includes the first pulse width modulation signal and the second pulse width modulation signal corresponding to the two duty ratios closest to each other among the 1024 types of duty ratios, and continuous two periods of the PWM signal include one of the first pulse width modulation signal and the second pulse width modulation signal, alone is exemplarily described, but the embodiment is not limited to this case. For example, the intermediate gray scale signal in the PWM signal may include N (N is a natural number of two or more) periods of the PWM signal, and each period of the N periods of the PWM signal may include the first pulse width modulation signal and the second pulse width modulation signal corresponding to the two duty ratios closest to each other among the 1024 types of duty ratios.
As illustrated in
As illustrated in
As described above, in the present embodiment, since the LED driver 6 having the 1024 types of duty ratio resolution is used, a PWM duty (%) indicating duty ratio resolution is approximately 0.1% from 1 χ 1024×100.
For example, as illustrated in
In the present embodiment, the PWM signal for 16 periods illustrated in
As illustrated in
In the present embodiment, the case where seven stages of intermediate gray scales are provided between 0.69 PWM duty (%) and 0.79 PWM duty (%) is described exemplarily, but the embodiment is not limited to this case, and one or more and six or less stages of intermediate gray scales may be provided between 0.69 PWM duty (%) and 0.79 PWM duty (%).
Note that, in the present embodiment, since the PWM signal for 16 periods is divided into eight types of duration by a two-period unit, seven stages of intermediate gray scales maximum can be provided between 0.69 PWM duty (%) and 0.79 PWM duty (%), but the embodiment is not limited to this case, and in a case where the PWM signal for 16 periods is divided into 16 types of duration by one period unit, 15 stages of intermediate gray scales maximum can be provided between 0.69 PWM duty (%) and 0.79 PWM duty (%).
The display device 21 that is a comparative example illustrated in
As illustrated in
Accordingly, as indicated by an arrow in
As illustrated in
Accordingly, the display device 10 including the backlight 7 that can perform a change in brightness more smoothly can be realized.
Note that, in
A display device including an input device, a pulse width modulation signal generating part, a drive circuit having M (where M is a natural number of two or more) types of duty ratio resolution, a backlight including a plurality of light-emitting elements, and a display panel overlapping the backlight, wherein the pulse width modulation signal generating part sets the duty ratio for each period of a pulse width modulation signal, and generates an intermediate gray scale signal including a signal including a first pulse width modulation signal continuous to a second pulse width modulation signal corresponding to two duty ratios closest to each other among the M types of duty ratios, based on an input signal related to luminance from the input device, and the drive circuit controls a plurality of light-emitting elements of the backlight, based on the intermediate gray scale signal.
The display device according to aspect 1, wherein the pulse width modulation signal generating part includes a data transfer controller unit and a pulse width modulation signal duty ratio setting unit,
the data transfer controller unit includes a controller including a register, a first memory where a plurality of pieces of control data for driving the controller are stored, and a second memory where each duty ratio constituting the intermediate gray scale signal is stored, and
the controller reads the control data from the first memory, based on an interrupt signal generated for each period of the pulse width modulation signal, reads the data of a duty ratio from the second memory, based on the control data, writes the data of a duty ratio in the pulse width modulation signal duty ratio setting unit, and sets a duty ratio.
The display device according to aspect 1 or 2, wherein the input device includes an illuminance sensor and a luminance controller,
the illuminance sensor supplies data related to a brightness change to the luminance controller,
the luminance controller supplies a luminance change signal to the pulse width modulation signal generating part, based on the data related to a brightness change, and
the pulse width modulation signal generating part generates an interrupt signal generated for each period of the pulse width modulation signal, based on the luminance change signal.
The display device according to any one of aspects 1 to 3, wherein a frequency of the pulse width modulation signal is equal to or greater than 2600 Hz.
The display device according to any one of aspects 1 to 4, wherein the intermediate gray scale signal includes N (N is a natural number of two or more) periods of the pulse width modulation signal, and
each period of the N periods of the pulse width modulation signal includes the first pulse width modulation signal and the second pulse width modulation signal.
The display device according to any one of aspects 1 to 4, wherein the intermediate gray scale signal includes 2N (N is a natural number of two or more) periods of the pulse width modulation signal,
each period of the 2N periods of the pulse width modulation signal includes the first pulse width modulation signal and the second pulse width modulation signal, and
continuous two periods of the pulse width modulation signal include one of the first pulse width modulation signal and the second pulse width modulation signal alone.
The disclosure is not limited to each of the embodiments described above, and various modifications can be made within the scope of the claims. An embodiment obtained by appropriately combining the technical approaches disclosed in each of the different embodiments also falls within the technical scope of the disclosure. Further, novel technical features can be formed by combining the technical approaches disclosed in each of the embodiments.
The disclosure can be applied to a display device.
While preferred embodiments of the present invention have been described above, it is to be understood that variations and modifications will be apparent to those skilled in the art without departing from the scope and spirit of the present invention. The scope of the present invention, therefore, is to be determined solely by the following claims.
Number | Date | Country | Kind |
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2020-048347 | Mar 2020 | JP | national |