Vehicle display device

The vehicle display device addresses the challenge of ensuring drivers notice one-eye area designs by projecting directional information from a one-eye to both-eye regions, improving visibility and reducing collision risks.

JP7787127B2Active Publication Date: 2025-12-16YAZAKI CORP
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Patent Information

Application Number
JP2023140088
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2023-08-30
Publication Date
2025-12-16
Estimated Expiration
2043-08-30

AI Technical Summary

Technical Problem

Existing vehicle display devices do not effectively ensure that drivers notice designs displayed in one eye area, particularly when directional information is conveyed.

Method used

A vehicle display device with an image display unit, optical system, and control unit that projects and controls images to ensure directional designs are displayed from a one-eye region to a both-eye region, adjusting brightness and position based on the driver's eye position.

Benefits of technology

Enhances the driver's ability to notice directional designs, especially when the distance to an approaching object is close, reducing the likelihood of collisions by clearly transitioning the design from one-eye to both-eye regions.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide a display device for a vehicle in which a driver is easy to recognize that a design is displayed even when the design is displayed in a one-eye region.SOLUTION: A virtual image visually recognized by a driver 200 includes: a both-eye region CB being a region visually recognized by both eyes of the driver 200; and a one-eye region CRL being a region visually recognized by only one eye of the driver 200. When a direction design D1 notifying a direction is displayed, a control unit 23 causes the direction design D1 to be displayed from the one-eye region CRL over to the both-eye region CB.SELECTED DRAWING: Figure 3
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Description

[Technical Field]

[0001] The present invention relates to a display device for a vehicle. [Background technology]

[0002] Conventionally, there have been known display devices for vehicles, such as head-up displays, that allow a driver to view an image as a virtual image from the driver's eye position (eye point). For example, Patent Document 1 describes a display device that aims to improve visibility by increasing the brightness of a one-eye region of an image that can be viewed only with one eye compared to the brightness of a both-eye region that can be viewed with both eyes. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2016-130771 Summary of the Invention [Problem to be solved by the invention]

[0004] The present invention has been made in consideration of the above-mentioned circumstances, and its purpose is to provide a vehicle display device that makes it easy for the driver to notice that a design is displayed, even when the design is displayed in one eye area. [Means for solving the problem]

[0005] In order to achieve the above object, the vehicle display device according to the present invention has the following features. an image display unit that emits display light for an image; an optical system that projects display light emitted from the image display unit onto a reflective surface in front of a driver; a control unit that controls the image display unit, The control unit The image Abovea binocular region that is a region that is viewed by both eyes of the driver, and a single-eye region that is a region that is viewed by only one eye of the driver; setting death, On the image When displaying a directional design that notifies a direction, but The image is displayed from the one-eye region to the both-eye region. R R The display position of the directional design is controlled so that , It must be a display device for vehicles. [Effects of the Invention]

[0006] According to the present invention, it is possible to provide a vehicle display device that makes it easy for a driver to notice that a design is displayed, even when the design is displayed in one eye area.

[0007] The present invention has been briefly described above. The details of the present invention will become clearer by reading the following detailed description of the invention (hereinafter referred to as "embodiments") with reference to the accompanying drawings. [Brief explanation of the drawings]

[0008] [Figure 1] FIG. 1 is a schematic diagram showing an embodiment of a vehicle display device according to the present invention. [Figure 2] FIG. 2 is a diagram showing the optical positional relationship between the virtual image, the second mirror, and the driver's eyes when the driver's eyes are located at the center of the eye box in the left-right direction. [Figure 3] FIG. 3 is a diagram showing the arrangement of the regions of the virtual image visually recognized by the driver. [Figure 4] FIG. 4 is a flowchart illustrating the operation of the control unit constituting the vehicle display device shown in FIG. [Figure 5] FIG. 5 is a diagram showing an example of a virtual image visually recognized by a driver. [Figure 6] FIG. 6 is a diagram showing an example of a virtual image visually recognized by a driver. DETAILED DESCRIPTION OF THE INVENTION

[0009] Specific embodiments of the present invention will be described below with reference to the accompanying drawings.

[0010] For the sake of convenience, the following definitions are used for "front," "rear," "left," "right," "upper," and "lower" as shown in Figures 1 and 2. The "front-rear direction," "left-right direction," and "up-down direction" are perpendicular to one another. The left-right direction corresponds to the "horizontal direction" of the present invention.

[0011] As shown in Fig. 1, a vehicle display device 1 according to this embodiment is mounted on a vehicle 100 and constitutes a head-up display. The vehicle display device 1 is disposed, for example, inside an instrument panel 101. The instrument panel 101 has an opening 101a that opens upward. The opening 101a faces a windshield 102 in the vertical direction of the vehicle 100.

[0012] The vehicle display device 1 has a housing 4, a cover 5, an image display unit 20, a control unit 23, and an optical system 25. The image display unit 20, the control unit 23, and the optical system 25 are housed inside the housing 4. The housing 4 has a main body 2 and a lid member 3 that engages with the main body 2. The main body 2 has an opening that opens upward. The lid member 3 closes the opening of the main body 2 from above. The lid member 3 has a wall portion 30 that faces the opening 101a. The wall portion 30 has an opening 31 that opens upward. The housing 4 is arranged so that the opening 31 faces the opening 101a. The cover 5 is a plate-shaped member that closes the opening 31 of the lid member 3. The cover 5 is made of a translucent resin such as polycarbonate (PC) or acrylic.

[0013] The image display unit 20 is a device that emits image display light 70. The illustrated image display unit 20 is a liquid crystal display device, for example, a TFT-LCD (Thin Film Transistor-Liquid Crystal Display). However, the image display unit 20 is not limited to a liquid crystal display device. The image display unit 20 may be, for example, a device that generates an image on a transparent screen by scanning laser light.

[0014] The optical system 25 has a first mirror 21 and a second mirror 22. The first mirror 21 reflects the display light 70 emitted from the image display unit 20 toward the second mirror 22. The first mirror 21 is, for example, a flat mirror. The second mirror 22 reflects the display light 70 toward the windshield 102. The shape of the reflective surface of the second mirror 22 is, for example, a free-form surface. The second mirror 22 is, for example, a concave mirror that magnifies the display light 70.

[0015] The display light 70 reflected by the second mirror 22 passes through the opening 31 and the opening 101a, and is reflected by the reflecting surface 102a of the windshield 102 toward the driver 200. A virtual image is formed by the display light 70 incident on the eye 201 of the driver 200. The instrument panel 101 is provided with a cylindrical wall portion 103. The wall portion 103 surrounds the optical path of the display light 70 traveling from the opening 31 toward the opening 101a.

[0016] 2, the image displayed on the image display unit 20 and displayed as a virtual image to the driver 200 has a both-eye region CB, which is a region visible with both eyes of the driver 200, a right-eye region CR, which is a region not visible with the left eye but visible only with the right eye, and a left-eye region CL, which is a region not visible with the right eye but visible only with the left eye. The right-eye region CR and the left-eye region CL are regions on the left-right end side of the both-eye region CB. Hereinafter, the right-eye region CR and the left-eye region CL will be collectively referred to as the "one-eye region CRL."

[0017] 3 shows the arrangement of each region of the virtual image superimposed on the foreground of driver 200. As shown in Fig. 3, the leftmost region of the virtual image corresponds to the right eye region CR, the central region of the virtual image corresponds to the both eye region CB, and the right region of the virtual image corresponds to the left eye region CL.

[0018] The control unit 23 has a control circuit configured to control the image display unit 20. The control unit 23 is mounted on, for example, a control board arranged inside the housing 4. The control unit 23 controls the image display unit 20 to generate an image, for example, in accordance with a program stored in advance.

[0019] The vehicle 100 has a driver monitor 104. The driver monitor 104 includes a camera disposed in front of the driver 200. The driver monitor 104 captures an image of the driver 200 and generates a driver image. The driver monitor 104 detects the position of the head of the driver 200 and the position of the eyes 201 of the driver 200 (viewpoint position) based on the driver image. The detection result by the driver monitor 104 is sent to the control unit 23.

[0020] The control unit 23 sets a both-eye area CB and a one-eye area CRL (see FIG. 2) on the display screen of the image display unit 20, and changes the brightness between the both-eye area CB and the one-eye area CRL. Furthermore, as shown in FIG. 3, when an approaching object 10 is detected, the control unit 23 displays a directional design D1 indicating the approaching direction of the approaching object 10 from the one-eye area CRL to the both-eye area CB. In the example shown in FIG. 3, the approaching object 10, a pedestrian, is approaching the vehicle 100 from left to right. Therefore, the control unit 23 displays a directional design D1 indicating the left-to-right direction from the right-eye area CR located on the left side of the both-eye area CB to the both-eye area CB. Furthermore, when the approaching object 10 is approaching the vehicle 100 from right to left, the control unit 23 displays a directional design D1 indicating the right-to-left direction from the left-eye area CL located on the right side of the both-eye area CB to the both-eye area CB.

[0021] Next, the above-mentioned both-eye area CB and one-eye area CRL will be described in detail with reference to FIG. 2. FIG. 2 is a diagram showing the optical positional relationship between a virtual image, a second mirror, and an eye 201 of the driver 200. The position of the eye 201 shown in FIG. 2 is the center position in the left-right direction in the eye box EB. The eye box EB is a range assumed in advance as a range within which the position of the eye 201 moves. The eye box EB has a predetermined width in the left-right direction. The vehicle display device 1 is configured so that an image can be viewed by the driver 200 when the eye 201 is inside the eye box EB.

[0022] 2, when the light reflected by the entire surface of the second mirror 22 is viewed, the left edge position of the right eye region CR is on an extension of the light ray "L1" that connects the right eye of the driver 200 and the left edge position of the second mirror 22. Also, the right edge position of the left eye region CL is on an extension of the light ray "L2" that connects the left eye of the driver 200 and the right edge position of the second mirror 22. Note that the driver 200 cannot view the left edge position of the right eye region CR with his left eye, and cannot view the right edge position of the left eye region CL with his right eye.

[0023] The left end position of the eye area CB is on an extension of the configuration "L3" that connects the left eye of the driver 200 and the left position of the second mirror 22. The right end position of the eye area CB is on an extension of the configuration "L4" that connects the right eye of the driver 200 and the left position of the second mirror 22.

[0024] As is clear from Figure 2, when the viewpoint position of driver 200 is at the center position in the left-right direction of eye box EB, the eye area CB, right eye area CR and left eye area CL can be set based on the distance between the eyes of driver 200 and the position of optical system 25.

[0025] Next, the operation of the control unit 23 outlined above will be described with reference to the flowchart of Fig. 4. First, the control unit 23 measures the distance between the eyes of the driver 200 based on the driver image from the driver monitor 104 (S1).

[0026] Next, the control unit 23 sets the both-eye area CB and one-eye area CRL on the display screen of the image display unit 20 when the eye 201 of the driver 200 is at the center position in the left-right direction of the eye box EB based on the measured distance between the eyes and the known position of the optical system 25 (S2).

[0027] When an approaching object 10 is detected from the detection results of the vehicle's periphery monitoring device (Y in S3), the control unit 23 displays the direction design D1 only in the one-eye area CRL (S4), as shown in the upper parts of Figures 5 and 6. Thereafter, when the distance to the approaching object 10 becomes equal to or less than a predetermined distance and the possibility of a collision with the approaching object 10 increases (Y in S5), the control unit 23 displays the direction design D1 from the one-eye area CRL to the both-eye area CB (S6), as shown in the lower parts of Figures 5 and 6.

[0028] In S6, the control unit 23 may shift the position of the directional design D1 displayed only in the one-eye region CRL toward the both-eye region CB and display it from the one-eye region CRL to the both-eye region CB, as shown in Fig. 5. Furthermore, the control unit 23 may increase the size of the directional design D1 and display it from the one-eye region CRL to the both-eye region CB, as shown in Fig. 6.

[0029] At this time, the control unit 23 may display the direction design D1 in a flowing or blinking manner, thereby displaying the direction design D1 that changes over time.

[0030] Thereafter, the control unit waits until the approaching object 10 is no longer detected (Y in S7), and then erases the display of the directional design D1 (S8), and returns to S3.

[0031] When notifying a direction, particularly the left or right direction, it is easier for the driver 200 to grasp the direction if the direction is displayed in one eye area CRL corresponding to the desired direction rather than displaying only in both eye areas CB. According to the above-described embodiment, when displaying the direction design D1 for notifying a direction, the control unit 23 displays the direction design D1 from the one eye area CRL to both eye areas CB. This makes it easier for the driver 200 to notice that the direction design D1 has been displayed, even when it is desired to display the direction design D1 in the one eye area CRL.

[0032] According to the above-described embodiment, the control unit 23 displays the direction design D1 only in one eye area when the distance to the approaching object 10 is greater than a predetermined distance, and changes the position and size of the direction design D1 to display it from the one eye area CRL to both eye areas CB when the distance to the approaching object 10 is equal to or less than the predetermined distance. This makes it possible to reliably notify the driver 200 of the approaching direction when the distance to the approaching object 10 is equal to or less than the predetermined distance and the possibility of a collision increases.

[0033] According to the above-described embodiment, the directional design D1 is a design that changes over time by being displayed in a flowing or flashing manner, so that the sense of incongruity can be reduced even if the directional design D1 is displayed across both the eye area CB and the single eye area CRL.

[0034] The present invention is not limited to the above-described embodiments, and can be appropriately modified, improved, etc. Furthermore, the material, shape, size, number, location, etc. of each component in the above-described embodiments are arbitrary and not limited as long as they can achieve the present invention.

[0035] According to the embodiment described above, the control unit 23 sets the both-eye area CB and the one-eye area CRL when the eye is located at the center of the eye box EB in the horizontal direction, but this is not limited to this. The both-eye area CB and the one-eye area CRL shift to the left when the eye 201 is located to the right of the eye box EB, and shift to the right when the eye 201 is located to the left of the eye box EB. Therefore, the control unit 23 may periodically measure the position (gaze position) of the eye 201 and reset the both-eye area CB and the one-eye area CRL that have been set according to the position of the eye 201.

[0036] In the above-described embodiment, the case where light reflected by the entire surface of second mirror 22 is viewed by driver 200 has been described, but the present invention is not limited to this. For example, the image may be cut off by cover member 3. In this case, both-eye region CB and one-eye region CRL are determined by lines connecting eye 201 of driver 200 with the right and left edge positions of opening 31 of cover member 3.

[0037] In the above-described embodiment, the control unit 23 measures the distance between the eyes based on the driver image and sets the both-eyes area CB, the one-eye area CRL, and the non-display area CN based on the measured distance between the eyes, but this is not limited to this. The control unit 23 may set the both-eyes area CB, the one-eye area CRL, and the non-display area CN based on a predetermined average distance between the eyes without measuring the distance between the eyes.

[0038] According to the above-described embodiment, the direction design D1 is a design that notifies the approaching direction of the approaching object 10, but is not limited to this. The direction design D1 may also be a design that notifies the direction of a right turn, left turn, or lane change instruction from the navigation device.

[0039] According to the embodiment described above, the control unit 23 displays the directional design D1 only in the one-eye region CRL when the distance to the approaching object 10 is greater than a predetermined distance, and displays the directional design D1 from the one-eye region CRL to the both-eye region CB when the distance to the approaching object 10 is equal to or less than the predetermined distance, but this is not limited to this. The control unit 23 may also display the directional design D1 from the one-eye region CRL to the both-eye region CB when the approaching object 10 is detected, regardless of the distance to the approaching object 10.

[0040] Furthermore, the control unit 23 may not display the directional design D1 in the boundary region between the one-eye region CRL and the both-eye region CB. An image displayed across the one-eye region CRL and the both-eye region CB is likely to give the driver 200 a sense of incongruity. For example, in the case of the directional design D1 in which multiple arrow tip designs are arranged at intervals as in the present embodiment, the sense of incongruity felt by the driver 200 can be reduced by displaying the directional design D1 so that a boundary region is located between the arrow tip designs.

[0041] Here, the features of the above-described embodiments of the vehicle display device according to the present invention will be briefly summarized and listed below in [1] to [4].

[0042] [1] an image display unit (20) that emits image display light (70); an optical system (25) that projects display light (70) emitted from the image display unit (20) toward a reflecting surface in front of a driver (200); a control unit (23) that controls the image display unit (20), The image has a binocular region (CB) that is a region that is viewed by both eyes of the driver (200) and a single-eye region (CRL) that is a region that is viewed by only one eye of the driver (200), When displaying a direction design (D1) that notifies a direction, the control unit (23) displays the direction design (D1) from the one-eye region (CRL) to the both-eye region (CB). Vehicle display device (1).

[0043] According to the configuration [1] above, when the control unit (23) displays the direction design (D1) that notifies the direction, the control unit (23) displays the direction design (D1) from the one eye area (CRL) to the both eye areas (CB). This makes it easier for the driver (200) to notice that the direction design (D1) has been displayed, even when it is desired to display the direction design (D1) in the one eye area (CRL).

[0044] [2] The vehicle display device (1) according to [1], When the control unit (23) detects an object (10) approaching the vehicle, the control unit (23) displays the direction design (D1) notifying the approaching direction of the approaching object (10) from the one-eye region (CRL) to the both-eye region (CB). Vehicle display device (1).

[0045] According to the above configuration [2], the driver (200) can easily notice that the directional design (D1) notifying the approaching direction of the approaching object (10) is displayed.

[0046] [3] The vehicle display device (1) according to [2], The control unit (23) displays the directional design (D1) only in the one-eye region (CRL) when the distance to the approaching object (10) is greater than a predetermined distance, and changes the position and size of the directional design (D1) and displays it from the one-eye region (CRL) to the both-eye region (CB) when the distance to the approaching object (10) is equal to or less than the predetermined distance. Vehicle display device (1).

[0047] According to the above configuration [3], when the distance to the approaching object (10) becomes equal to or less than a predetermined distance and the possibility of a collision increases, the driver (200) can be reliably notified of the approaching direction.

[0048] [4] The vehicle display device (1) according to [1], The directional design (D1) is a design that changes over time. Vehicle display device (1).

[0049] According to the configuration [4] above, the directional design (D1) is a design that changes over time, so that the sense of incongruity can be reduced even if the directional design (D1) is displayed across both the both-eye area (CB) and the one-eye area (CRL). [Explanation of symbols]

[0050] 1. Vehicle display device 10 Approaching object 20 Image display unit 23 Control Unit 25 Optical system 70 display light 200 Drivers CB Eye area CRL single eye area D1 Directional design

Claims

1. an image display unit that emits display light for an image; an optical system that projects display light emitted from the image display unit onto a reflective surface in front of a driver; a control unit that controls the image display unit, the control unit sets, on the image, a both-eye region that is a region that is viewed by both eyes of the driver, and a one-eye region that is a region that is viewed by only one eye of the driver, When displaying a directional design that notifies a direction on the image, the display position of the directional design is controlled so that the directional design is displayed across the one-eye area and the both-eye area. Vehicle display device.

2. The vehicle display device according to claim 1, When the control unit detects an object approaching the vehicle, the control unit displays the direction design notifying the approaching direction of the object from the one eye area to the both eye areas. Vehicle display device.

3. The vehicle display device according to claim 2, The control unit displays the directional design only in the one-eye region when the distance to the approaching object is greater than a predetermined distance, and changes the position and size of the directional design and displays it from the one-eye region to both eye regions when the distance to the approaching object is equal to or less than the predetermined distance. Vehicle display device.

4. The vehicle display device according to claim 1, The directional design is a design that changes over time. Vehicle display device.

Citation Information

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