Display device

The display device improves multi-view display quality by alternating display modes and using directional backlighting to minimize crosstalk, ensuring clear separation of images for different viewers.

JP2026031093APending Publication Date: 2026-02-24SHARP KK
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Patent Information

Application Number
JP2024134410
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-08-09
Publication Date
2026-02-24

AI Technical Summary

Technical Problem

Conventional multi-view display devices suffer from degraded display quality due to crosstalk between separate images intended for different viewing positions.

Method used

A display device with a control unit that alternates between two display modes, minimizing light transmittance and illumination in specific pixel groups, and employing a backlight with high directional illumination to reduce crosstalk by displaying images in a time-division manner.

Benefits of technology

Significantly reduces crosstalk, enhancing the display quality by ensuring each viewer sees only their intended image without significant mixing, even at high switching frequencies.

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Abstract

To improve display quality in a multi-view display device more than before.SOLUTION: A controller (1Q) of a display apparatus (2Q) that presents a first image to a first user located at a first position with respect to a display surface and presents a second image different from the first image to a second user located at a second position different from the first position alternately switches between a first display mode and a second display mode. The control unit (2Q) converts a gray scale value of the first image on the basis of light transmissivity of the display panel (31) realized by repetition of the gray scale value of the first image and a gray scale value of black, (i) a light amount of the first illumination light in a case of observation from the first position, and (ii) a light amount of the second illumination light as leakage light with respect to the first position in a case of observation from the first position.SELECTED DRAWING: Figure 19
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Description

[Technical Field]

[0001] The following disclosure relates to display devices. [Background technology]

[0002] A display device that can present multiple individual images corresponding to the viewing direction of a user (viewer) on a single display surface is called a multi-view display device. Patent Document 1 listed below discloses an example of the configuration of a multi-view display device. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] International Publication WO2004 / 088996 Summary of the Invention [Problem to be solved by the invention]

[0004] An object of one aspect of the present disclosure is to improve the display quality of a multi-view display device compared to conventional devices. [Means for solving the problem]

[0005] A display device according to one aspect of the present disclosure is a display device that presents a first image to a first user located at a first position relative to a display surface, and presents a second image different from the first image to a second user located at a second position different from the first position, the display device comprising: a display panel having a first display pixel group that contributes to forming the first image on the display surface and a second display pixel group that contributes to forming the second image on the display surface; a backlight that emits illumination light toward the first display pixel group and the second display pixel group; a barrier that prevents a portion of first light, which is light whose wavelength has been converted by the first display pixel group as the illumination light, and a portion of second light, which is light whose wavelength has been converted by the second display pixel group, from proceeding toward the display surface; and a control unit that controls the display panel and the backlight, wherein the control unit controls the display panel to minimize the light transmittance of the display panel at a position corresponding to the second display pixel group in a first display mode, and controls the backlight to minimize the light transmittance of the display panel at a position corresponding to the second display pixel group as the illumination light, and the control unit controls the display panel in a second display mode different from the first display mode to minimize the light transmittance of the display panel at a position corresponding to the first display pixel group and controls the backlight to stop the emission of at least a portion of the first illumination light, which is the illumination light having directionality toward the first position; the control unit alternately switches between the first display mode and the second display mode, a period in which the first image is displayed in the first display mode is referred to as a first period, and a period in which the second image is displayed in the second display mode is referred to as a second period; and the control unit converts the grayscale value of the first image based on the light transmittance of the display panel realized by alternating grayscale values ​​of the first image and black grayscale values, (i) the amount of light of the first illumination light when observed from the first position, and (ii) the amount of light of the second illumination light as leak light toward the first position when observed from the first position. [Effects of the Invention]

[0006] According to one aspect of the present disclosure, it is possible to improve the display quality of a multi-view display device compared to conventional methods. [Brief explanation of the drawings]

[0007] [Figure 1] FIG. 1 is a block diagram showing a configuration example of a display device according to a reference embodiment. [Figure 2] 1 illustrates a schematic diagram of a dual view display. [Figure 3] FIG. 1 is a schematic plan view illustrating a dual-view structure. [Figure 4] 10A and 10B are diagrams for explaining various lights involved in dual view in an ideal operation example of the reference embodiment. [Figure 5] 10 shows examples of a first image and a second image displayed in an ideal operation example of the reference embodiment. [Figure 6] 10A and 10B are diagrams for explaining various lights involved in dual view in an actual operation example of the reference embodiment. [Figure 7] 10 shows examples of a first image and a second image displayed in an actual operation example of the reference embodiment. [Figure 8] 1 is a block diagram showing an example of the configuration of a display device according to a first embodiment. [Figure 9] 1A and 1B are diagrams for explaining various lights involved in dual view in the first embodiment. [Figure 10] FIG. 10 is a diagram illustrating an example of operation in a first period. [Figure 11] FIG. 10 is a diagram illustrating an example of operation in a second period. [Figure 12] 3A and 3B schematically illustrate a time sequence of display control of a first image and a second image in a first period and a second period. [Figure 13] FIG. 10 is a diagram illustrating an angle θ as an explanatory variable. [Figure 14] 1 shows an example of white luminance in the reference embodiment and the first embodiment. [Figure 15] 15 is a graph showing an enlarged portion of the graph in FIG. 14. [Figure 16] 1 shows an example of black luminance in the reference embodiment and the first embodiment. [Figure 17] 10 shows examples of crosstalk index values ​​in the reference embodiment and the first embodiment. [Figure 18] An example of the light directionality of BL is shown. [Figure 19] FIG. 10 is a block diagram showing an example of the configuration of a display device according to a second embodiment. [Figure 20] 10 is a schematic diagram illustrating an example of driving a display unit by a control unit according to a second embodiment. [Figure 21] 10 shows an example of the relationship between display data of a first image and display luminance in a certain row of the display panel. [Figure 22] An example of the first table is shown below. [Figure 23] 10 shows an example of a graph illustrating the correspondence between the gradation value of the first image after conversion and the display luminance of the first image. [Figure 24] 10 shows an example of display data for a first image and a second image in a certain row of the display panel. [Figure 25] 25 shows an example of a graph indicating the correspondence between the gradation value of the first image after conversion and the display luminance of the first image, corresponding to the example of FIG. 24. DETAILED DESCRIPTION OF THE INVENTION

[0008] [Reference form] Prior to describing the display device 1P of the first embodiment, a display device 1 as a reference embodiment will be described. For convenience of explanation, components having the same functions as those described in the reference embodiment will be denoted by the same reference numerals in the following embodiments, and their descriptions will not be repeated. Also, for brevity, descriptions of matters similar to those in known technologies will be omitted as appropriate. All components and numerical values ​​described in this specification are merely examples unless otherwise stated. Therefore, for example, unless otherwise stated, the positional and connection relationships of each component are not limited to the examples in the figures.

[0009] FIG. 1 is a block diagram showing an example of the configuration of a display device 1. The display device 1 includes a control unit 2 and a display unit 3. The display device 1 may be a mobile information terminal or a stationary display device. In this specification, "backlight" is abbreviated as "BL." In this specification, a case where the display device 1 is a liquid crystal display device is exemplified.

[0010] The control unit 2 comprehensively controls each component of the display device 1. In the reference embodiment, the control unit 2 functions as a display control device that controls the display of the display unit 3. The control unit 2 includes a panel control unit 21 and a BL control unit 22. Therefore, the control unit 2 controls the display panel 31 and the BL 32 described below.

[0011] The panel control unit 21 generates liquid crystal data corresponding to an arbitrary input image. The liquid crystal data is data that indicates the spatial distribution of the liquid crystal transmittance (light transmittance of the liquid crystal) in the display panel 31. The panel control unit 21 supplies the generated liquid crystal data to the panel drive unit 33, which will be described below.

[0012] The BL control unit 22 generates BL data corresponding to the input image. The BL data is data that indicates the spatial distribution of luminance in the BL 32. The BL control unit 22 supplies the generated BL data to a BL driving unit 34, which will be described below.

[0013] The display unit 3 displays the input image in accordance with instructions from the control unit 2. The display unit 3 in the first embodiment is a liquid crystal display. In the example of Fig. 1, the display unit 3 includes a display panel 31, a BL 32, a panel driving unit 33, and a BL driving unit 34.

[0014] The display panel 31 has a display area in which a plurality of display pixels PIX are arranged. In this specification, a liquid crystal display panel is exemplified as the display panel 31. The display panel 31 displays a predetermined image in accordance with instructions from the control unit 2.

[0015] For ease of explanation, this specification uses an XYZ Cartesian coordinate system as shown in FIG. 2 (described later). The X and Y directions correspond to the column and row directions of the display panel 31, respectively. The Z direction is the normal direction to the display surface of the display panel 31. In this specification, it is assumed that the user of the display device 1 is located on the positive side of the Z direction. For this reason, the positive side of the Z direction is also referred to as the viewer side. On the other hand, the negative side of the Z direction is also referred to as the substrate side. In this specification, the Z direction is also the thickness direction of the display device 1.

[0016] As is clear from the above description, the XY plane in this specification is a plane parallel to the display surface of the display panel 31. As shown in Fig. 1, the display panel 31 has a plurality of display pixels PIX regularly arranged in each of the X and Y directions.

[0017] The BL32 has a light-emitting element (not shown) as a light source for the display unit 3. The BL32 may have one or more light-emitting elements. By controlling the light emission of the light-emitting element, the spatial distribution of brightness in the BL32 can be controlled. The BL32 emits illumination light toward the display unit 3. In this specification, a case where the light-emitting element is a white LED (Light Emitting Diode) is exemplified. Therefore, in this specification, a case where the illumination light is white light is exemplified.

[0018] The panel driving unit 33 drives the display panel 31 in accordance with the liquid crystal data acquired from the panel control unit 21. Specifically, the panel driving unit 33 changes the light transmittance at each position on the display panel 31 in accordance with the liquid crystal data.

[0019] The BL driving unit 34 drives the BL 32 in accordance with the BL data acquired from the BL control unit 22. Specifically, the BL driving unit 34 controls the lighting of the BL 32 in accordance with the BL data. More specifically, the BL driving unit 34 controls the brightness of the light-emitting elements in the BL 32 in accordance with the BL data.

[0020] As described above, the control unit 2 (i) drives the display panel 31 through the panel drive unit 33, and (ii) drives the BL 32 through the BL drive unit , thereby causing the display panel 31 to display an input image.

[0021] The display device 1 in the reference embodiment is a multi-view liquid crystal display device. For clarity of explanation, the reference embodiment illustrates a case where the display device 1 is a dual-view liquid crystal display device. Therefore, the display device 1 is configured to present two separate images (dual-view display) depending on the viewing direction of the user.

[0022] In this specification, one of the two separate images in a dual-view display is referred to as a first image, and the other is referred to as a second image. The display device 1 in the reference embodiment is an example of a known dual-view liquid crystal display device. In this specification, the second image is an image different from the first image.

[0023] Fig. 2 schematically illustrates dual view display on the display device 1. In Fig. 2, two users are illustrated as viewers of an image displayed on the display device 1. In this specification, one of the two users is referred to as a first user U1, and the other is referred to as a second user U2.

[0024] In the example of FIG. 2, the side facing the negative X direction is referred to as the first side, and the side facing the positive X direction is referred to as the second side. That is, the second side is the side opposite the first side in the X direction. In the example of FIG. 2, the first side is the left side in the plane of the paper. The first side may also be referred to as side A. Meanwhile, the second side is the right side in the plane of the paper. The second side may also be referred to as side B.

[0025] In this specification, it is assumed that a first user U1 is located at a first position relative to the display surface (not shown in FIG. 2) of the display device 1. Meanwhile, it is assumed that a second user U2 is located at a second position relative to the display surface. In this specification, it is assumed that the second position is a position different from the first position.

[0026] In the example of FIG. 2, the first user U1 is located on a first side of the display surface, and the second user U2 is located on a second side of the display surface. Therefore, in this specification, the second position is exemplified as a position opposite to the first position. In the example of FIG. 2, the first position is a position on the left side of the display surface of the display device 1, and the second position is a position on the right side of the display surface. In the example of FIG. 2, the first image 190A is an image presented to the first user U1. On the other hand, the second image 190B is an image presented to the second user U2.

[0027] 3 is a schematic plan view illustrating a dual-view structure (a hardware configuration for realizing a dual-view display device). In the reference embodiment, the display panel 31 is an RGB (Red, Green, Blue) liquid crystal display panel. In the example of FIG. 3, one display pixel PIX is composed of one red sub-display pixel SUBPX_R, one green sub-display pixel SUBPX_G, and one blue sub-display pixel SUBPX_B.

[0028] In the example of FIG. 3, the red sub-display pixel SUBPX_R has a red color filter, the green sub-display pixel SUBPX_G has a green color filter, and the blue sub-display pixel SUBPX_B has a blue color filter.

[0029] Therefore, of the white light emitted from BL32, the white light that enters the red sub-display pixel SUBPX_R is converted to red light. Of the white light emitted from BL32, the white light that enters the green sub-display pixel SUBPX_G is converted to green light. Of the white light emitted from BL32, the white light that enters the blue sub-display pixel SUBPX_B is converted to blue light. On the display panel 31, an image is displayed on the display surface using the red light, green light, and blue light that are emitted from the display pixels PIX and proceed toward the viewing side.

[0030] As described above, the display device 1 is a dual-view liquid crystal display device. Therefore, the display panel 31 in the example of Fig. 3 has a first display pixel group 313A and a second display pixel group 313B. The first display pixel group 313A is a group of display pixels PIX that contribute to displaying a first image. On the other hand, the second display pixel group 313B is a group of display pixels PIX that contribute to displaying a second image.

[0031] The first display pixel group 313A in the example of Fig. 3 is a group of display pixels PIX with odd column numbers. Therefore, for example, the display pixel PIX located in the first column belongs to the first display pixel group 313A. The display pixel PIX located in the third column also belongs to the first display pixel group 313A. On the other hand, the second display pixel group 313B in the example of Fig. 3 is a group of display pixels PIX with even column numbers. Therefore, for example, the display pixel PIX located in the second column belongs to the second display pixel group 313B. The display pixel PIX located in the fourth column also belongs to the second display pixel group 313B.

[0032] As described above, the first display pixel groups 313A and the second display pixel groups 313B are alternately positioned along the X direction in the display panel 31. In this way, for example, when observed along the direction from the first position to the second position (e.g., the X direction), the first display pixel groups 313A and the second display pixel groups 313B may be alternately positioned in the display panel 31.

[0033] In addition, as shown in FIG. 3, the display panel 31 further includes a barrier 316. The barrier 316 may include any light-absorbing material. The barrier 316 may also be called a parallax barrier. The barrier 316 may also be called a light-blocking portion. When viewed from the display surface, the barrier 316 covers a portion of the first display pixel group 313A and a portion of the second display pixel group 313B (see also FIG. 4 described below). In other words, the barrier 316 is located closer to the viewer than the first display pixel group 313A and the second display pixel group 313B.

[0034] In this specification, the light obtained by wavelength conversion (e.g., color conversion) of the illumination light emitted from BL32 by the first display pixel group 313A is referred to as the first light. On the other hand, the light obtained by wavelength conversion of the illumination light emitted from BL32 by the second display pixel group 313B is referred to as the second light. The barrier 316 prevents a portion of the first light from traveling toward the display surface (not shown in FIG. 3) of the display panel 31. The barrier 316 also prevents a portion of the second light from traveling toward the display surface.

[0035] (Example of dual view in reference format) 4 and 5 show an ideal example of dual-view operation in the display device 1. FIG. 4 is a diagram for explaining various types of light involved in dual-view. As shown in FIG. 4, the display panel 31 is located closer to the viewer than the BL 32. In FIG. 4, in addition to the first display pixel group 313A, the second display pixel group 313B, and the barrier 316 described above, a display surface 319 is also shown as each component of the display panel 31.

[0036] As described above, the BL driving unit 34 drives the BL 32 in accordance with instructions from the BL control unit 22. Therefore, as shown in Fig. 4, illumination light 80 is emitted from the BL 32 toward the first display pixel group 313A and the second display pixel group 313B. As shown in Fig. 4, the BL 32 in the reference embodiment does not have any particular light directivity.

[0037] At the same time, the panel driver 33 drives the display panel 31 in accordance with instructions from the panel controller 21. Specifically, the panel driver 33 drives the first display pixel group 313A and the second display pixel group 313B in accordance with instructions from the panel controller 21. In the example of Fig. 4, the panel controller 21 drives the first display pixel group 313A and the second display pixel group 313B under the control of the panel driver 33 so as to display the first image and the second image on the display panel 31.

[0038] In an ideal operating example, the light absorption rate of the barrier 316 is 100%. Therefore, as shown in Fig. 4, an opening HL that allows a part of the first light and a part of the second light to pass through is formed in the barrier 316. The opening HL is positioned so as to expose a part of each of the first display pixel group 313A and the second display pixel group 313B when viewed from the display surface.

[0039] Therefore, a portion of the first light having directivity toward the first side passes through the opening HL and heads toward the display surface 319A. Light 81A in FIG. 4 is an example of first light having directivity toward the first position that passes through the opening HL and heads toward the display surface 319. The light 81A has directivity toward the first side, for example. The light 81A contributes to the formation of a first image on the display surface 319.

[0040] On the other hand, a portion of the second light having directivity toward the second position passes through the opening HL and proceeds toward the display surface 319. Light 81B in FIG. 4 is an example of the second light having directivity toward the second side that passes through the opening HL and proceeds toward the display surface 319. Light 81A has directivity toward the second side, for example. Light 81B contributes to the formation of a second image on the display surface 319.

[0041] Fig. 5 shows examples of a first image and a second image displayed in an ideal operating example of the display device 1. Fig. 5 corresponds to the example of Fig. 4 described above. The first image 190A in Fig. 5 is an image showing a black background and a white circle located in the center. The second image 190B in Fig. 5 is an image showing a black and white checkered pattern.

[0042] 5 is an ideal example, and therefore no crosstalk occurs between the first image 190A and the second image 190B. In this specification, crosstalk refers to a phenomenon in which one display image is mixed with another display image in a multi-view display. In the following description of the reference embodiment, as an example of crosstalk, a case in which one display image is mixed with the other display image in a dual-view display will be described.

[0043] 6 and 7 show an actual operation example of the dual view in the display device 1. FIGS. 6 and 7 are counterparts of the above-described FIGS. 4 and 5, respectively. First, let us refer to FIG. 6. In this actual operation example, unlike the example of FIG. 4, the first light, which has directionality toward the second position, is not completely blocked by the barrier 316. For example, in this actual operation example, a portion of the first light passes through the opening HL toward the display surface 319. Light 82A in FIG. 6 is an example of the first light, which has directionality toward the second position, passing through the opening HL toward the display surface 319.

[0044] Similarly, in an actual operation example, the light of the second light that has directionality toward the first position is not completely blocked by the barrier 316. For example, in an actual operation example, a portion of the second light passes through the opening HL toward the display surface 319. Light 82B in FIG. 6 is an example of the second light that has directionality toward the first position and passes through the opening HL toward the display surface 319.

[0045] In addition, the light absorption rate of the actual barrier 316 is lower than 100%. Therefore, in an actual operation example, a portion of the first light passes through a portion of the barrier 316 that overlaps with the first display pixel group 313A and the second display pixel group 313B and proceeds toward the display surface 319. Similarly, a portion of the second light passes through this portion and proceeds toward the display surface 319. Light 83A in FIG. 6 is an example of the first light that passes through this portion and proceeds toward the display surface 319, and has directionality toward the second position. Light 83B is an example of the second light that passes through this portion and proceeds toward the display surface 319, and has directionality toward the first position.

[0046] FIG. 7 shows examples of the first and second images displayed in an actual operation example of the display device 1. As described above with reference to FIG. 6, in an actual operation example, a portion of the first light is deflected to the second position. Therefore, the second image 191B in the example of FIG. 7 is an image in which the first image 190A is mixed into the second image 190B in the example of FIG. 5. The mixing of the first image 190A into the second image 190B is caused by the light 82A and light 83A in the example of FIG. 6. Thus, the light 82A and light 83A are undesirable first light in dual-view display.

[0047] Similarly, in an actual operation example, a portion of the second light will find its way around to the first position. Therefore, first image 191A in the example of FIG. 7 is an image in which second image 190B is mixed into first image 190A in the example of FIG. 5. The mixing of second image 190B into first image 190A is caused by light 82B and light 83B in the example of FIG. 6. Thus, light 82B and light 83B are undesirable second light in dual-view display.

[0048] [Embodiment 1] As described above, in the conventional technology (e.g., display device 1), the display quality of the first and second images in dual view display may be degraded. In order to solve this problem in the conventional technology, the inventors of the present application (hereinafter abbreviated as "the inventors") have newly created a display device 1P of embodiment 1 that is different from conventional display devices.

[0049] Fig. 8 is a block diagram showing an example of the configuration of a display device 1P. Fig. 8 is a diagram paired with the above-mentioned Fig. 1. The display device 1P includes a control unit 2P and a display unit 3P. The control unit 2P includes a panel control unit 21P and a BL control unit 22P. The display unit 3P includes a BL32P instead of the BL32.

[0050] (Example of dual view in embodiment 1) 9 is a diagram for explaining various types of light involved in dual view in the display device 1P. In consideration of correspondence with the above-mentioned FIG. 5, FIG. 9 illustrates a virtual display mode in which a first light is emitted from the first display pixel group 313A and a second light is emitted from the second display pixel group 313B during a certain period. Therefore, it should be noted that the display mode in the example of FIG. 9 is different from the first display mode and second display mode described below.

[0051] As shown in FIG. 9, BL32P has higher light directivity in a predetermined direction (e.g., X direction) than BL32. In this specification, illumination light having directivity toward a first position is referred to as first illumination light. On the other hand, illumination light having directivity toward a second position is referred to as second illumination light. FIG. 9 illustrates first illumination light 90A and second illumination light 90B. As an example, the first illumination light 90A has directivity toward the first side, and the second illumination light 90B has directivity toward the second side.

[0052] Light 91A in FIG. 9 is an example of a first light that passes through the opening HL and proceeds toward the display surface 319 and has directivity toward a first position. The light 91A originates from the first illumination light 90A. Therefore, the light 91A has a higher directivity toward the first position than the above-described light 81A. As an example, the light 91A has a higher directivity toward the first side than the above-described light 81A.

[0053] Light 91B in FIG. 9 is an example of second light that passes through the opening HL and travels toward the display surface 319 and has directivity toward a second position. The light 91B originates from the second illumination light 90B. The light 91B has higher directivity toward the second side than the above-described light 81B. As an example, the light 91B has higher directivity toward the second side than the above-described light 81B.

[0054] For these reasons, crosstalk can be reduced compared to conventional methods by using BL32P, which has high optical directivity in the X direction. BL32P can be any BL with any light-guiding mechanism. Examples of light-guiding mechanisms include prism-shaped light guides, viewing angle control films, and louvers. These light-guiding mechanisms can generate first illumination light 90A and second illumination light 90B.

[0055] Additionally, the display device 1P employs a display control method different from that of the prior art to further reduce crosstalk. Specifically, the control unit 2P switches the light-emitting state of the display unit 3P during (i) a first period in which the display unit 3P displays a first image and (ii) a second period in which the display unit 3P displays a second image. In the first embodiment, the first period and the second period are separate periods. That is, in the first embodiment, unlike the reference embodiment, the first image and the second image are displayed in a time-division manner.

[0056] 10 and 11 each show an example of dual view operation in display device 1P. Each of Fig. 10 and Fig. 11 is a pair of Fig. 9 described above. First, Fig. 10 will be referred to. Fig. 10 is a diagram for explaining an example of operation in the first period.

[0057] The control unit 2P drives the display unit 3P in a first display mode during the first period. The first display mode is a mode intended to cause the display unit 3P to display only a first image during the first period.

[0058] Specifically, in the first display mode, the BL control unit 22P controls the BL drive unit 34 to cause the BL 32P to emit only the first illumination light 90A. In other words, in the first display mode, the BL control unit 22P controls the BL drive unit 34 to cause the BL 32P to stop emitting the second illumination light 90B. Therefore, in the first display mode, the second illumination light 90B is not emitted from the BL 32P (see reference numeral 95B in FIG. 10).

[0059] Additionally, in the first display mode, the panel control unit 21P controls the panel driving unit 33 to cause the display panel 31 to display the first image only at positions corresponding to the first display pixel group 313A. In other words, in the first display mode, the panel control unit 21P controls the panel driving unit 33 to cause the display panel 31 to display black at positions corresponding to the second display pixel group 313B.

[0060] Specifically, in the first display mode, the panel control unit 21P controls the panel driving unit 33 to minimize the light transmittance of the display panel 31 at a position corresponding to the second display pixel group 313B. In this specification, the minimum value of the light transmittance is ideally 0.

[0061] By driving BL32P and the display panel 31 as described above, in the first display mode, unlike the second display mode described below, light 91B is not emitted from the second display pixel group 313B (see reference numeral 96B in FIG. 10).

[0062] Therefore, in the first display mode, leakage of the second light from the second display pixel group 313B to the first position is significantly reduced compared to the conventional case. Therefore, in the first display mode, the degree of mixing of the second image into the first image is significantly reduced compared to the conventional case. Ideally, in the first display mode of the display device 1P, only the first light having directionality toward the first position passes through the opening HL and heads toward the display surface 319 (see light 91A in FIG. 10 ).

[0063] Next, reference will be made to FIG. 11. FIG. 11 is a diagram for explaining an example of operation in the second period. In the second period, the control unit 2P drives the display unit 3P in the second display mode. The second display mode is a mode intended to cause the display unit 3P to display only the second image in the second period. In this way, the second display mode is a display mode different from the first display mode.

[0064] Specifically, in the second display mode, the BL control unit 22P controls the BL drive unit 34 to cause the BL 32P to emit only the second illumination light 90B. In other words, in the second display mode, the BL control unit 22P controls the BL drive unit 34 to cause the BL 32P to stop emitting the first illumination light 90A. Therefore, in the second display mode, the first illumination light 90A is not emitted from the BL 32P (see reference numeral 95A in FIG. 11).

[0065] Additionally, in the second display mode, the panel control unit 21P controls the panel driving unit 33 to cause the display panel 31 to display the second image only at positions corresponding to the second display pixel group 313B. In other words, in the second display mode, the panel control unit 21P controls the panel driving unit 33 to cause the display panel 31 to display black at positions corresponding to the first display pixel group 313A.

[0066] Specifically, in the second display mode, the panel control unit 21P controls the panel drive unit 33 to minimize the light transmittance of the display panel 31 at the position corresponding to the first display pixel group 313A.

[0067] By driving the BL 32P and the display panel 31 as described above, in the second display mode, unlike the first display mode described above, the light 91A is not emitted from the first display pixel group 313A (see reference numeral 96A in FIG. 11).

[0068] Therefore, in the second display mode, leakage of the first light from the first display pixel group 313A to the second position is significantly reduced compared to the conventional case. Therefore, in the second display mode, the degree of mixing of the first image into the second image is significantly reduced compared to the conventional case. Ideally, in the second display mode of the display device 1P, only the second light having directionality toward the second position passes through the opening HL and heads toward the display surface 319 (see light 91B in FIG. 11 ).

[0069] Fig. 12 schematically shows the time series of display control of the first image and the second image in the first period and the second period. In Fig. 12, reference numeral 1210 indicates the time series of display control of the first image, and reference numeral 1220 indicates the time series of display control of the second image. In Fig. 12, t represents time on the time axis. In this specification, a case where the duration of the first period is equal to the duration of the second period is exemplified.

[0070] 12 illustrates, for convenience of explanation, a case in which the panel driver 33 has two separate drivers. The panel driver 33 in the example of FIG. 12 has a first driver that is a dedicated driver for controlling the display of the first image and a second driver that is a dedicated driver for controlling the display of the second image. In this example, the first driver is not involved in driving the portion of the display panel 31 that corresponds to the second display pixel group 313B. Similarly, the second driver is not involved in driving the portion of the display panel 31 that corresponds to the first display pixel group 313A.

[0071] First, the example of reference numeral 1210 will be described. The example of reference numeral 1210 corresponds to an operation example of the first driver. As described above, during the first period, the BL 32P emits only the first illumination light 90A under the control of the BL control unit 22P. Then, during the first period, the first driver drives only a portion of the display panel 31 corresponding to the first display pixel group 313A so as to display only the first image on the display panel 31. As a result, during the first period, only the first image can be presented to the first user U1 located at a first position relative to the display panel 31 (e.g., the first user U1 located on the first side relative to the display panel 31).

[0072] On the other hand, in the example of reference numeral 1210, during the second period, the first driver causes the portion of the display panel 31 corresponding to the first display pixel group 313A to display black. Therefore, during the second period, the first driver does not drive any portion of the display panel 31.

[0073] Next, an example of the reference numeral 1220 will be described. The example of the reference numeral 1220 corresponds to an example of the operation of the second driver. As described above, during the second period, the BL 32P emits only the second illumination light 90B under the control of the BL control unit 22P. Then, during the second period, the second driver drives only a portion of the display panel 31 corresponding to the second display pixel group 313B so as to display only the second image on the display panel 31. As a result, during the second period, only the second image can be presented to the second user U2 located at a second position relative to the display panel 31 (e.g., the second user U2 located on the second side relative to the display panel 31).

[0074] On the other hand, in the example of reference numeral 1220, during the first period, the second driver causes the portion of the display panel 31 corresponding to the second display pixel group 313B to display black. Therefore, during the first period, the second driver does not drive any portion of the display panel 31.

[0075] 12, in the first embodiment, the first period and the second period are alternately repeated. Therefore, the control unit 2P controls the display unit 3P to alternately switch between the first display mode and the second display mode. As an example, the control unit 2P may switch between the first display mode and the second display mode at a predetermined frequency.

[0076] Preferably, the control unit 2P switches between the first display mode and the second display mode at a frequency of 120 Hz or higher. By switching between the first display mode and the second display mode at a frequency of 120 Hz or higher, flicker that may occur when switching between the first display mode and the second display mode becomes less noticeable to the user. This further improves the display quality of the dual view display in the first embodiment.

[0077] It is more preferable that the control unit 2P switches between the first display mode and the second display mode at a frequency of 180 Hz or higher, which can further improve the display quality of the dual view display.

[0078] (Example of quantitative evaluation results) The inventors performed various quantitative evaluations of the display device 1 and the display device 1P to verify the effects of the display device 1P. As an example, consider a case where the first image is a white display image (an image showing only a white background) and the second image is a black display image (an image showing only a black background). In this case, the first image is mixed into the second image during dual view display, which can increase the luminance of the second image.

[0079] Therefore, for example, when the display state is changed from a predetermined display state to another display state, an index value indicating the degree of crosstalk (hereinafter referred to as a "crosstalk index value") can be determined based on the increase in luminance of the display panel. In the following description, crosstalk will also be abbreviated as XT.

[0080] In this example, the display state of the liquid crystal panel is represented as W for white display and K for black display. In this example, the state in which white display is made on the first side and black display is made on the second side is represented as "AWBK." This representation is sometimes used to represent the brightness of the display panel in this state.

[0081] On the other hand, the state in which black is displayed on the first side and white is displayed on the second side is expressed as "AKBW." This expression is sometimes used to represent the brightness of the display panel in this state.

[0082] Furthermore, the state in which black is displayed on the first side and black is displayed on the second side is expressed as "AKBK." This expression is sometimes also used to represent the brightness of the display panel in this state.

[0083] On the other hand, the state in which both the first side and the second side are displayed in white is expressed as "AWBW." This expression is sometimes used to represent the brightness of the display panel in this state.

[0084] Additionally, in this example, notations are introduced to represent the light emission states of BL. The notation "_A" indicates that the state of emitting light only to the first display pixel group is maintained. The notation "_B" indicates that the state of emitting light only to the second display pixel group is maintained. On the other hand, the notation "_AB" indicates that the state of emitting light to both the first display pixel group and the second display pixel group is maintained. These states correspond to the operation example in the reference embodiment.

[0085] The notation "_S" indicates that the light-emitting state of the BL is controlled to be switched as described in the first embodiment. The notation "_N" indicates a general BL that does not have any particular light directivity. In this example, in cases other than "_N," the BL is assumed to have the light directivity described in the first embodiment.

[0086] As described above, in the example of the first embodiment, the first display mode and the second display mode are switched at a predetermined frequency. The length of the first period and the length of the second period are set to be equal. Based on this, in this example, the luminance in the case of "_S" is set as follows: AWBK_S=(AWBK_A+AKBW_B) / 2 …(1-1) AKBW_S=(AKBW_B+AKBK_A) / 2 …(1-2) AKBK_S=(AKBK_A+AKBK_B) / 2 …(1-3) AWBW_S=(AWBW_A+AWBW_B) / 2 …(1-4) It is set forth as follows.

[0087] FIG. 13 is a diagram illustrating the angle θ as an explanatory variable in this example. θ represents the tilt angle in the X direction with respect to the Y axis. θ is a parameter corresponding to the line of sight of a user when the user is viewing the display surface. As shown in FIG. 13, in this specification, when the optical axis of interest is parallel to the Y axis, θ=0°. Therefore, when the optical axis of interest is optical axis 1310 in FIG. 13, θ=0°.

[0088] In this specification, when the direction of the optical axis of interest coincides with the negative direction of the X direction, θ=−90°. Therefore, when the optical axis of interest is optical axis 1320 in FIG. 13, θ<0°. In the example of FIG. 13, the first user U1 is located on the side where θ is negative. In FIG. 13, the side where θ is negative is written as “θ=−side.” In FIG. 13, “θ=−side” corresponds to the first side.

[0089] On the other hand, if the direction of the optical axis under consideration coincides with the positive direction of the X direction, then θ=90°. Therefore, if the optical axis under consideration is optical axis 1330 in FIG. 13, then θ>0°. In the example of FIG. 13, second user U2 is located on the side where θ is positive. In FIG. 13, the side where θ is positive is written as "θ=+ side." In FIG. 13, "θ=+ side" corresponds to the second side.

[0090] Fig. 14 shows an example of white luminance (luminance when a white display image is displayed) in the reference embodiment and embodiment 1. In the graph of Fig. 14, the horizontal axis represents θ and the vertical axis represents luminance. The horizontal axis is in degrees and the vertical axis is in arbitrary units.

[0091] 14, the peak waveform of white luminance is sharper in the case of "_S" than in the case of "_N." This indicates that the method of embodiment 1 can effectively reduce light leakage during dual view display compared to conventional methods.

[0092] Fig. 15 is a graph obtained by enlarging a portion of the graph in Fig. 14. Specifically, Fig. 15 is a graph obtained by enlarging the graph in Fig. 14 at a position near the value 0 on the vertical axis.

[0093] Fig. 16 shows examples of black luminance (luminance when a black display image is displayed) in the reference embodiment and embodiment 1. As shown in Fig. 16, the minimum black luminance is smaller in the case of "_S" than in the case of "_N." This also shows that the technique of embodiment 1 can effectively reduce light leakage during dual view display compared to conventional techniques.

[0094] Next, the inventors calculated the crosstalk index value XTA on the first side and the crosstalk index value XTB on the second side in the reference embodiment as follows: XTA = (AKBW-AKBK) / AKBK … (2A) XTB = (AWBK-AKBK) / AKBK … (2B) were respectively defined as follows.

[0095] Furthermore, the inventors have found that the crosstalk index value of the first side in the first embodiment, XTA_ S and the second-side crosstalk index value XTB_S are XTA_S=(AKBW_S-AKBK_S) / AKBK_S …(3A) XTB_S=(AWBK_S-AKBK_S) / AKBK_S …(3B) were respectively defined as follows.

[0096] Fig. 17 shows examples of crosstalk index values ​​in the reference embodiment and embodiment 1. The legend "embodiment 1" in Fig. 17 indicates the crosstalk index value in embodiment 1. The legend "comparison example 1" indicates the crosstalk index value on the first side in the reference embodiment when a BL with "_N" is used. The legend "comparison example 2" indicates the crosstalk index value in the reference embodiment when a BL with optical directionality is used.

[0097] 17, the crosstalk index value at θ<0° represents the crosstalk index value on the first side. Specifically, the crosstalk index value on the first side in Comparative Examples 1 and 2 represents the above-mentioned XTA. On the other hand, the crosstalk index value on the first side in Embodiment 1 represents the above-mentioned XTA_S.

[0098] 17, the crosstalk index value at θ>0° represents the crosstalk index value on the second side. Specifically, the crosstalk index value on the second side in Comparative Examples 1 and 2 represents the above-mentioned XTB. On the other hand, the crosstalk index value on the second side in Embodiment 1 represents the above-mentioned XTB_S.

[0099] 17, the method of embodiment 1 can effectively reduce the crosstalk index value compared to the reference embodiment. This also shows that the method of embodiment 1 can effectively reduce light leakage during dual-view display compared to conventional methods. As described above, the quantitative evaluation results also support the idea that the method of embodiment 1 can improve the display quality of a multi-view display device compared to conventional methods.

[0100] (supplement) FIG. 18 shows an example of the light directivity of the BL in the quantitative evaluation described above. The legend "Embodiment 1: First Side" in FIG. 18 indicates the light directivity of the first side when the technique of Embodiment 1 is adopted. The legend "Embodiment 1: Second Side" indicates the light directivity of the second side when that technique is adopted. The legend "Comparative Example" indicates the light directivity of the "_N" BL. As can be seen from FIG. 18, each of the above-mentioned luminances in the display device is affected by the light directivity of the BL.

[0101] As described above, the BL 32P in the first embodiment emits only the first illumination light 90A in the first period and emits only the second illumination light 90B in the second period under the control of the BL control unit 22P. Therefore, the BL 32P in the first embodiment is an example of a scanning BL. On the other hand, the BL 32 in the reference embodiment emits uniform illumination light 80. Therefore, the BL 32 in the reference embodiment is an example of a flushing BL.

[0102] [Embodiment 2] 19 is a block diagram showing an example of the configuration of a display device 1Q of embodiment 2. The display device 1Q includes a control unit 2Q instead of the control unit 2P. The control unit 2Q includes a panel control unit 21Q instead of the panel control unit 21P. The control unit 2Q can perform the same processes as the control unit 2P. Therefore, the display device 1Q can also achieve the same effects as the display device 1P.

[0103] (First example) In the first example, the display of the first image will be mainly described. FIG. 20 schematically shows an example of driving the display unit 3P by the control unit 2Q. FIG. 20 shows an example of driving related to the display of the first image. Therefore, FIG. 20 illustrates an example of display data for the first image. In the first example, for the sake of clarity, it is assumed that the second image is a black display image.

[0104] In the example of FIG. 20, the display data for the first image is generated by inserting black display data into the input data for the first image. In the second embodiment, the display data for the first image is assumed to be prepared in advance. The notation "A" in FIG. 20 represents the portion of the display data for the first image that is derived from the input data for the first image. As described in the first embodiment, the control unit 2Q controls the display unit 3P to display the first image in the first display mode. Therefore, "A" in the example of FIG. 20 corresponds to the first period.

[0105] On the other hand, the notation "Bk" in FIG. 20 represents black display data in the display data of the first image. As described in the first embodiment, the control unit 2Q controls the display unit 3P so as not to display the first image in the second display mode. Therefore, "Bk" in the example of FIG. 20 corresponds to the second period. In the example of FIG. 20, the lengths of the first period and the second period are each equal to a predetermined frame period. In the second embodiment, the display data of the first image is generated by inserting black display data between adjacent frames of the input data of the first image.

[0106] 20, it is assumed that display data for the first image is written from top to bottom in the row direction of the display panel 31. Therefore, in the example of Fig. 20, the timing at which BL32P starts emitting the first illumination light to a certain row of the display panel 31 varies depending on the position of the row on the display panel 31. In the example of Fig. 20, the timing at which emission of the first illumination light starts becomes later toward the bottom in the row direction of the display panel 31.

[0107] As described in the first embodiment, in the second display mode, the second illumination light is emitted from BL32P. Therefore, during the period corresponding to "Bk" in Fig. 20, light leakage, in which part of the second illumination light leaks to the first side, may occur. Fig. 20 also illustrates such light leakage.

[0108] 20, the light-emitting period of BL32P corresponding to each row is set to be slightly shorter than the frame period in order to reduce the influence of light leakage. However, if the influence of light leakage does not need to be taken into consideration, the light-emitting period of BL32P corresponding to each row may be set to be equal to the frame period.

[0109] In the second embodiment, the controller 2Q controls the BL32P in the first display mode to stop emitting at least a portion of the second illumination light. Similarly, the controller 2Q controls the BL32P in the second display mode to stop emitting at least a portion of the first illumination light.

[0110] Fig. 21 shows an example of the relationship between the display data of the first image and the display luminance in a certain row of the display panel 31. Specifically, Fig. 21 shows an example of the relationship between the display data of the first image and the display luminance in the bottom row of the display panel 31 in the example of Fig. 20. However, if there is no need to consider the effect of light leakage, the relationship between the display data of the first image and the display luminance in Fig. 21 applies to any row of the display panel 31.

[0111] In the second embodiment, the grayscale value and display brightness of the image are both given as 8-bit integer values. In the example of Fig. 21, the minimum and maximum values ​​of the grayscale value and display brightness of the image are 0 and 255, respectively.

[0112] 21 illustrates a case where the first image is a white display image. Therefore, in the example of Fig. 21, the gradation value of each pixel of the first image is the maximum value 255. On the other hand, the gradation value of each pixel of the black display data is the minimum value 0.

[0113] 21 schematically shows the transition of display brightness over time corresponding to the display data of the first image. The panel control unit 21Q determines the light transmittance of the bottom row of the display panel 31 in accordance with the display data of the first image, thereby obtaining the display brightness of the example in FIG.

[0114] As is known to those skilled in the art, the change over time in the light transmittance of the display panel 31 depends on a time constant determined by the characteristics of the display panel 31. The display luminance is given as the product of (i) the light transmittance obtained according to the response characteristics of the display panel 31 and (ii) the BL emission luminance. For this reason, the manner in which the display luminance changes over time can differ depending on whether a flashing BL or a scanning BL is used as the BL of the display device.

[0115] When the display panel 31 is driven by alternating the gradation values ​​of the first image (before conversion) and gradation value 0, the waveform showing the time-dependent change in display luminance of the first image is not a square wave. For example, the waveform is as shown in FIG. 21. Therefore, even if the first illumination light is emitted, the display luminance intended to be displayed according to the gradation values ​​of the first image cannot be realized. In addition, the first position is also affected by light leakage of the second illumination light.

[0116] Therefore, the panel control unit 21Q may convert the gradation value of the first image so that the luminance obtained by multiplying (i) the amount of light of the first illumination light when observed from a first position and (ii) the amount of light of the second illumination light as leakage light to the first position when observed from the first position, relative to the light transmittance of the display panel 31, which is achieved by repeating the gradation value of the first image and the black gradation value (e.g., gradation value 0), becomes a predetermined (desired) luminance for the first image.

[0117] As can be understood from the above, the panel control unit 21Q may convert the gradation value of the first image based on the light transmittance of the display panel 31, which is realized by repeating the gradation value of the first image and the gradation value of black, (i) the amount of light of the first illumination light when observed from the first position, and (ii) the amount of light of the second illumination light as leakage light to the first position when observed from the first position.

[0118] For example, the predetermined display luminance for the first image is given as the sum of (i) the product of the light transmittance of the display panel 31, which is realized by repeating the gradation values ​​of the first image and the gradation values ​​of black, and the luminance of the first illumination light when observed from the first position during the first period, and (ii) the product of the light transmittance and the luminance of the second illumination light, which acts as leakage light from the first position during the second period, when observed from the first position. Therefore, the panel control unit 21Q may determine the gradation values ​​of the converted first image based on the sum.

[0119] For example, data indicating the correspondence between the gradation values ​​of the first image before conversion (gradation values ​​of the input data of the first image) and the gradation values ​​of the first image after conversion may be prepared in advance. In the second embodiment, a case where a first table indicating the correspondence is prepared in advance is exemplified. In this case, the panel control unit 21Q can use the first table to determine the gradation values ​​of the first image after conversion according to the gradation values ​​of the first image before conversion. This allows the desired display brightness of the first image in the first display mode to be achieved.

[0120] Fig. 22 shows an example of the first table. The example of Fig. 22 shows the gradation values ​​of the first image before conversion and the gradation values ​​of the first image after conversion corresponding to the gradation values. The first table may be used as a look-up table (LUT) for deriving the gradation values ​​of the first image after conversion from the gradation values ​​of the first image before conversion. The first table may be created based on the results of an experiment in which display was performed in the first mode.

[0121] Fig. 23 shows an example of a graph indicating the correspondence between the gradation value of the converted first image and the display luminance of the first image. As an example, the graph in Fig. 23 is a gamma curve having a predetermined gamma value (e.g., gamma value 2.2).

[0122] The above explanations regarding the first image also apply to the second image. Therefore, for example, in the second embodiment, it is assumed that the display data for the second image is also prepared in advance. In the second embodiment, the display data for the second image is generated by inserting black display data between adjacent frames of the input data for the second image.

[0123] When the display panel 31 is driven with the gradation values ​​of the second image (before conversion) and gradation value 0 alternately arranged, the waveform showing the time change in the display luminance of the second image is not a square wave. Therefore, even if the second illumination light is emitted, the display luminance intended to be displayed according to the gradation values ​​of the second image cannot be realized. In addition, the second position is also affected by light leakage of the first illumination light.

[0124] Therefore, the panel control unit 21Q may convert the gradation value of the second image so that the luminance obtained by multiplying (i) the amount of light of the second illumination light when observed from the second position and (ii) the amount of light of the first illumination light as leakage light to the second position when observed from the second position, relative to the light transmittance of the display panel 31, which is achieved by repeating the gradation value of the second image and the black gradation value (e.g., gradation value 0), becomes a predetermined (desired) luminance for the second image.

[0125] As can be understood from the above, the panel control unit 21Q may convert the gradation value of the second image based on the light transmittance of the display panel 31, which is realized by repeating the gradation value of the second image and the gradation value of black, (i) the amount of light of the second illumination light when observed from the second position, and (ii) the amount of light of the first illumination light as leakage light to the second position when observed from the second position.

[0126] For example, the predetermined display luminance for the second image is given as the sum of (i) the product of the light transmittance of the display panel 31, which is realized by repeating the gradation values ​​of the second image and the gradation values ​​of black, and the luminance of the second illumination light when observed from the second position during the second period, and (ii) the product of the light transmittance and the luminance of the first illumination light as leak light to the second position when observed from the second position during the first period. Therefore, the panel control unit 21Q may determine the gradation values ​​of the converted second image based on the sum.

[0127] Data indicating the correspondence between the gradation values ​​of the second image before conversion (gradation values ​​of the input data of the second image) and the gradation values ​​of the second image after conversion may be prepared in advance. In the second embodiment, a case where a second table indicating the correspondence is prepared in advance is exemplified. In this case, the panel control unit 21Q can use the second table to determine the gradation values ​​of the second image after conversion according to the gradation values ​​of the second image before conversion. This makes it possible to achieve the desired display brightness of the second image in the second display mode. The second table may be created based on the results of an experiment in which display was performed in the second mode.

[0128] As described above, according to the second embodiment, the first image can be converted taking into consideration the response characteristics and BL type of the display panel 31. Then, the converted first image can be displayed. In addition, according to the second embodiment, the second image can be converted taking into consideration the response characteristics and BL type of the display panel 31. Then, the converted second image can be displayed. Therefore, it is possible to improve the display quality of the multi-view display device compared to conventional devices.

[0129] For example, according to the second embodiment, it is not necessary to design the hardware of the display device so that the display panel 31 can have a fast response characteristic. As a result, for example, a higher frame rate can be tolerated. The adoption of a higher frame rate is beneficial for reducing flicker.

[0130] (Second example) Fig. 24 shows an example of display data for the first image and the second image in a certain row (e.g., a certain row of the display panel 31) of the display panel 31. The display data for the first image in Fig. 24 is the same as the example in Fig. 21. Unlike Fig. 21, Fig. 24 also shows display data for the second image.

[0131] 24, reference numeral 2410 indicates display data for the second image when the second image is a black display image. On the other hand, reference numeral 2420 indicates display data for the second image when the second image is a white display image. The notation "W" in FIG. 24 represents white display data in the display data for the second image.

[0132] Fig. 25 shows an example of a graph showing the correspondence between the gradation values ​​of the first image after conversion and the display luminance of the first image, corresponding to the example of Fig. 24. Reference numeral 2510 in Fig. 25 corresponds to reference numeral 2410 in Fig. 24. Reference numeral 2510 in Fig. 25 shows an example of a graph showing the correspondence between the gradation values ​​of the first image after conversion and the display luminance of the first image in the case where the second image is a black display image. The graph indicated by reference numeral 2510 is equivalent to the graph in the example of Fig. 23.

[0133] Reference numeral 2520 in FIG. 25 corresponds to reference numeral 2420 in FIG. 24. Reference numeral 2520 in FIG. 25 illustrates an example of a graph showing the correspondence between the gradation value of the converted first image and the display luminance of the first image when the second image is a white display image. As the gradation value of each pixel of the second image increases, the effect of light leakage from the second side to the first side increases. Therefore, it is expected that as the gradation value of each pixel of the second image increases, crosstalk from the second side to the first side becomes more noticeable.

[0134] From the above, the minimum luminance in the example of code 2520 is greater than the minimum luminance in the example of code 2510. Similarly, the maximum luminance in the example of code 2520 is greater than the maximum luminance in the example of code 2510. The maximum luminance in the example of code 2520 is greater than that in the example of code 2510. In FIG. 25, the graph of code 2520 is illustrated as a graph in which the graph of code 2510 is shifted in the positive direction of the vertical axis.

[0135] By taking into consideration the characteristic that the influence of light leakage from the second side to the first side increases as the gradation value of each pixel of the second image increases, it is expected that the display quality can be further improved. Therefore, as an example, a displayable luminance range of the first image may be set ranging from a predetermined minimum display luminance to a predetermined maximum display luminance.

[0136] 25, the minimum display luminance is set as the minimum luminance of the first image in the example of reference numeral 2520. That is, the minimum display luminance is set as the minimum luminance of the first image when the second image is a white display image. On the other hand, the maximum display luminance is set as the maximum luminance of the first image in the example of reference numeral 2510. That is, the maximum display luminance is set as the maximum luminance of the first image when the second image is a black display image.

[0137] In the second example, the first table may also be created based on the results of an experiment in which a display was performed in the first mode, and the second table may also be created based on the results of an experiment in which a display was performed in the second mode.

[0138] [Software implementation example] The functions of the display devices 1 to 1Q (hereinafter referred to as "devices") can be realized by a program that causes a computer to function as the device, and a program that causes a computer to function as each control block of the device (particularly, each part included in the control units 2 to 2Q).

[0139] In this case, the device includes a computer having at least one control device (e.g., a processor) and at least one storage device (e.g., a memory) as hardware for executing the program. The control device and storage device execute the program, thereby realizing the functions described in each of the above embodiments.

[0140] The program may be non-transitory and may be recorded on one or more computer-readable recording media. The recording media may or may not be included in the device. In the latter case, the program may be supplied to the device via any wired or wireless transmission medium.

[0141] Some or all of the functions of the control blocks can be realized by logic circuits. For example, an integrated circuit in which a logic circuit that functions as each of the control blocks is formed is also included in the scope of one aspect of the present disclosure. In addition, the functions of the control blocks can also be realized by, for example, a quantum computer.

[0142] The processes described in the above embodiments may be executed by AI (Artificial Intelligence). In this case, the AI ​​may run on the control device or on another device (for example, an edge computer or a cloud server).

[0143] 〔summary〕 A display device according to a first aspect of the present disclosure is a display device that presents a first image to a first user located at a first position relative to a display surface, and presents a second image different from the first image to a second user located at a second position different from the first position, the display device comprising: a display panel having a first display pixel group that contributes to forming the first image on the display surface and a second display pixel group that contributes to forming the second image on the display surface; a backlight that emits illumination light toward the first display pixel group and the second display pixel group; a barrier that prevents a portion of first light, which is illumination light whose wavelength has been converted by the first display pixel group, and a portion of second light, which is illumination light whose wavelength has been converted by the second display pixel group, from proceeding toward the display surface; and a control unit that controls the display panel and the backlight, wherein the control unit controls the display panel in a first display mode to minimize the light transmittance of the display panel at a position corresponding to the second display pixel group, and controls the backlight to minimize the light transmittance of the display panel at a position corresponding to the second display pixel group, and the control unit controls the display panel in a second display mode different from the first display mode to minimize the light transmittance of the display panel at a position corresponding to the first display pixel group and controls the backlight to stop the emission of at least a portion of the first illumination light, which is the illumination light having directionality toward the first position; the control unit alternately switches between the first display mode and the second display mode, a period in which the first image is displayed in the first display mode is referred to as a first period, and a period in which the second image is displayed in the second display mode is referred to as a second period; and the control unit converts the grayscale value of the first image based on the light transmittance of the display panel realized by alternating grayscale values ​​of the first image and black grayscale values, (i) the amount of light of the first illumination light when observed from the first position, and (ii) the amount of light of the second illumination light as leak light toward the first position when observed from the first position.

[0144] In a display device according to aspect 2 of the present disclosure, in aspect 1, the control unit may determine the gradation value of the converted first image based on the sum of (i) the product of the light transmittance of the display panel, which is realized by repeating the gradation value of the first image and the gradation value of black, and the luminance of the first illumination light when observed from the first position during the first period, and (ii) the product of the light transmittance and the luminance of the second illumination light as leakage light to the first position when observed from the first position during the second period.

[0145] In a display device according to aspect 3 of the present disclosure, in aspect 1 or 2, the control unit may convert the gradation value of the second image based on the light transmittance of the display panel, which is achieved by repeating the gradation value of the second image and the gradation value of black, (i) the amount of light of the second illumination light when observed from the second position, and (ii) the amount of light of the first illumination light as leakage light to the second position when observed from the second position.

[0146] In a display device according to aspect 4 of the present disclosure, in aspect 3, the control unit may determine the gradation value of the converted second image based on the sum of (i) the product of the light transmittance of the display panel, which is realized by repeating the gradation value of the second image and the gradation value of black, and the luminance of the second illumination light when observed from the second position during the second period, and (ii) the product of the light transmittance and the luminance of the first illumination light as leakage light to the second position when observed from the second position during the first period.

[0147] In a display device according to a fifth aspect of the present disclosure, in any one of the first to fourth aspects, the control unit may alternate between the first display mode and the second display mode at a frequency of 120 Hz or higher.

[0148] In the display device according to a sixth aspect of the present disclosure, in any one of the first to fifth aspects, the backlight may have a light guide mechanism that generates the first illumination light and the second illumination light.

[0149] In a display device according to aspect 7 of the present disclosure, in any one of aspects 1 to 6, an opening may be formed in the barrier, and in the first display mode, a portion of the first light having directionality toward the first position may pass through the opening toward the display surface, and in the second display mode, a portion of the second light having directionality toward the second position may pass through the opening toward the display surface.

[0150] In a display device according to aspect 8 of the present disclosure, in any one of aspects 1 to 7, when observed along a direction from the first position to the second position, the first display pixel group and the second display pixel group may be positioned alternately in the display panel.

[0151] In a display device according to aspect 9 of the present disclosure, in any one of aspects 1 to 8, the first position may be a position on the left side of the display surface, and the second position may be a position on the right side of the display surface.

[0152] In the display device according to a tenth aspect of the present disclosure, in any one of the first to ninth aspects, the display panel may be a liquid crystal display panel.

[0153] [Additional Notes] One aspect of the present disclosure is not limited to the above-described embodiments, and various modifications are possible within the scope of the claims. Embodiments obtained by appropriately combining the technical means disclosed in different embodiments are also included in the technical scope of one aspect of the present disclosure. Furthermore, new technical features can be formed by combining the technical means disclosed in each embodiment. [Explanation of symbols]

[0154] 1P,1Q display device 2P, 2Q control section 3P display 21P Panel control unit 22P BL control unit 31 Display panel 32P BL (backlight) 33 Panel drive unit 34 BL drive unit 90A First illumination light 90B 2nd illumination light 91A 1st Light 91B 2nd light 190A 1st image 190B 2nd image 313A 1st display pixel group 313B Second display pixel group 316 Barrier 319 Display surface HL aperture U1 First User U2 Second user

Claims

1. 1. A display device that presents a first image to a first user located at a first position relative to a display surface, and presents a second image different from the first image to a second user located at a second position different from the first position, a display panel including a first display pixel group that contributes to forming the first image on the display surface and a second display pixel group that contributes to forming the second image on the display surface; a backlight that emits illumination light toward the first display pixel group and the second display pixel group; a barrier that prevents a portion of the first light, which is the illumination light whose wavelength has been converted by the first display pixel group, and a portion of the second light, which is the illumination light whose wavelength has been converted by the second display pixel group, from traveling toward the display surface; a control unit that controls the display panel and the backlight, In the first display mode, the control unit: controlling the display panel to minimize light transmittance of the display panel at a position corresponding to the second display pixel group; controlling the backlight to stop emitting at least a portion of the second illumination light, which is the illumination light having directionality toward the second position; In a second display mode different from the first display mode, the control unit: controlling the display panel to minimize light transmittance of the display panel at a position corresponding to the first display pixel group; controlling the backlight to stop emission of at least a portion of the first illumination light, which is the illumination light having directionality toward the first position; the control unit alternately switches between the first display mode and the second display mode, A period during which the first image is displayed in the first display mode is referred to as a first period, A period during which the second image is displayed in the second display mode is referred to as a second period, the control unit converts the gradation value of the first image based on the light transmittance of the display panel, which is realized by repeating the gradation value of the first image and the gradation value of black, (i) the amount of light of the first illumination light when observed from the first position, and (ii) the amount of light of the second illumination light as leakage light to the first position when observed from the first position.

2. 2. The display device of claim 1, wherein the control unit determines the gradation value of the converted first image based on the sum of (i) the product of the light transmittance of the display panel, which is realized by repeating the gradation value of the first image and the gradation value of black, and the luminance of the first illumination light when observed from the first position during the first period, and (ii) the product of the light transmittance and the luminance of the second illumination light as leakage light to the first position when observed from the first position during the second period.

3. 2. The display device of claim 1, wherein the control unit converts the gradation value of the second image based on the light transmittance of the display panel, which is realized by repeating the gradation value of the second image and the gradation value of black, (i) the amount of light of the second illumination light when observed from the second position, and (ii) the amount of light of the first illumination light as leakage light to the second position when observed from the second position.

4. 4. The display device of claim 3, wherein the control unit determines the gradation value of the converted second image based on the sum of (i) the product of the light transmittance of the display panel, which is realized by repeating the gradation value of the second image and the gradation value of black, and the luminance of the second illumination light when observed from the second position during the second period, and (ii) the product of the light transmittance and the luminance of the first illumination light as leakage light to the second position when observed from the second position during the first period.

5. The display device according to claim 1 , wherein the control unit alternately switches between the first display mode and the second display mode at a frequency of 120 Hz or higher.

6. The display device according to claim 1 , wherein the backlight includes a light guide mechanism that generates the first illumination light and the second illumination light.

7. The barrier has an opening formed therein, In the first display mode, a portion of the first light having directionality toward the first position passes through the opening and travels toward the display surface; The display device according to claim 1 , wherein in the second display mode, a portion of the second light having directionality toward the second position passes through the opening and travels toward the display surface.

8. 2. The display device according to claim 1, wherein the first display pixel group and the second display pixel group are alternately positioned in the display panel when observed along a direction from the first position to the second position.

9. the first position is a position on the left side of the display surface, The display device according to claim 1 , wherein the second position is a position on the right side of the display surface.

10. The display device according to claim 1 , wherein the display panel is a liquid crystal display panel.

Citation Information

Patent Citations

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