Display control device, head-up display device, and display control method
The display control device adjusts image widths and scales on head-up displays to improve the convenience and depth perception of route guidance images, addressing limitations in existing technologies.
Patent Information
- Application Number
- JP2023556451
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-10-28
- Filing Date
- 2022-10-25
- Publication Date
- 2026-04-16
- Estimated Expiration
- 2042-10-25
AI Technical Summary
Existing head-up display devices limit the display area in distant expression areas, restricting the convenience of route guidance images.
The display control device adjusts the width and scale of route guidance images on a head-up display to emphasize perspective, with longer nearby widths and adjustable scales, and optionally blurs or darkens surrounding areas to enhance depth perception.
Enhances user convenience by providing a wider display area for distant objects and improved depth perception, making it easier to connect positional information with the foreground.
Smart Images

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Abstract
Description
Technical Field
[0001] The present disclosure relates to a display control device, a head-up display device, and a display control method that are used in a vehicle and visually recognize an image superimposed on the foreground of the vehicle.
Background Art
[0002] A head-up display device that displays a route guidance image (which can also be said to be a map image) showing a guidance route drawn using a one-point perspective method (perspective) is known. In particular, the head-up display device disclosed in Patent Document 1 displays two linear images that form a pair with respect to the left and right boundaries of the route guidance image, and the horizontal interval between them (in other words, the horizontal width of the route guidance image sandwiched between the two linear images) is made narrower in the distant expression area and wider in the vicinity expression area, thereby emphasizing the perspective of the route guidance image.
Prior Art Documents
Patent Documents
[0003]
Patent Document 1
Summary of the Invention
Problems to be Solved by the Invention
[0004] In the prior art, although the perspective of the route guidance image can be emphasized, the horizontal width of the distant expression area has been continuously narrowed (the display area is limited), so there is room for improvement from the perspective of the convenience of the route guidance image.
Means for Solving the Problems
[0005] A summary of specific embodiments disclosed in this specification is shown below. It should be understood that these aspects are presented only to provide the reader with an overview of these specific embodiments and are not intended to limit the scope of this disclosure. In fact, this disclosure may include various aspects not described below.
[0006] This disclosure outlines improvements to the usability of route guidance images. More specifically, it concerns presenting information in a highly convenient manner while emphasizing the perspective of route guidance images.
[0007] Therefore, the display control device, head-up display device, and display control method described herein employ the following means to solve the above problem. In this embodiment, a route guidance image is displayed on the head-up display device, and the width in the left-right direction of the vicinity region of the route guidance image (hereinafter referred to as the vicinity width) is longer than the width in the left-right direction of the far region of the route guidance image (hereinafter referred to as the far width). The main point of increasing the scale of a route guidance image is to increase the ratio of the distance width to the near width.
[0008] Therefore, the display control device of the first embodiment of the present invention is a display control device that controls a head-up display device that displays an image as a virtual image in front of the front windshield of a vehicle, wherein one or more processors display a route guidance image on the head-up display device, and the width in the left-right direction of the nearby area of the route guidance image (hereinafter referred to as the nearby width) is longer than the width in the left-right direction of the far area of the route guidance image (hereinafter referred to as the far width), and when the scale of the route guidance image is increased, the ratio of the far width to the nearby width is increased. In the first embodiment of the present invention, before the route guidance image is enlarged, the far width of the route guidance image is short and the nearby width is long to emphasize the sense of distance, and when the scale of the route guidance image is increased, it is also assumed that the distant display area, which becomes more useful when the route guidance image is enlarged, can be made relatively wider. In other words, it is possible to present information that is highly convenient for the user.
[0009] In a particularly preferred second embodiment, the processor generates a route guidance image with a virtual downward angle from a virtual viewpoint, and when the scale of the route guidance image is increased, the downward angle is decreased. By decreasing the downward angle of the route guidance image, which is a bird's-eye view, the downward angle of the virtual viewpoint that overlooks the map image in the displayed route guidance image approaches the downward angle of the viewpoint of the user in the vehicle who overlooks the foreground of the vehicle. In other words, the gap between the route guidance image and the foreground seen by the user is reduced, making it easier to connect the positional information shown in the route guidance image with the foreground. According to the second embodiment, it is also conceivable that, while making it easier to connect the positional information shown in the route guidance image with the foreground, the display area for distant objects, which gradually becomes more useful, can be made relatively wider.
[0010] According to the third embodiment, the processor displays a first guidance image having a first ratio, and when the scale of the first guidance image is increased, it displays a second guidance image having a second ratio greater than the first ratio, and when the scale of the second guidance image is increased, it displays a third guidance image having a third ratio greater than the second ratio, and the third neighborhood width of the third guidance image is made approximately equal to the third far width. As the guidance image is enlarged, the far width of the guidance image, which is useful, can be made relatively wider.
[0011] According to the fourth embodiment, the processor displays a first guidance image having a first ratio, and when the scale of the first guidance image is increased, it displays a second guidance image having a second ratio greater than the first ratio, and when the scale of the second guidance image is increased, it displays a third guidance image having a third ratio greater than the second ratio, and the third near-field width of the third guidance image is made shorter than the third far-field width. As the guidance image is enlarged, the far-field width of the guidance image, which is useful, can be made relatively wider.
[0012] According to embodiments 5 to 7, the route guidance image has at least one of a left region between the bounding box surrounding the route guidance image and the left edge of the route guidance image, and a right region between the bounding box and the right edge of the route guidance image. The route guidance image is not displayed in the left region and the right region. This makes the user perceive the route guidance image as having a long near-field width and a short far-field width, thereby emphasizing the sense of distance. However, it is not limited to this, and in a broader sense, images following the route guidance image may be displayed in the left region and the right region.
[0013] In a particularly preferred fifth embodiment, the processor displays a blurred and / or darkened image of the surrounding area of the route guidance in at least one of the left and right regions, which is an image that follows the route guidance image. In this fifth embodiment, the visibility of the image displayed in the left or right region following the route guidance image is reduced by the blurring and / or darkening process. Therefore, the route guidance image has higher visibility than the image displayed in the left or right region, and as an image that lacks the left and right regions of a rectangular bounding box, with a short far width and a long near width, it can give a sense of depth. Furthermore, by blurring and / or darkening the left region (right region), the sense of depth of the route guidance image can be further emphasized.
[0014] In a particularly preferred sixth embodiment, the processor expands the display range of the route guidance image so that the left region becomes smaller if there is a map object on the route guidance image around the left region, and expands the display range of the route guidance image so that the right region becomes smaller if there is a map object around the right region. As a result, if a specific map object on the route guidance image exists in the left region (right region) where the route guidance image is not displayed, a continuation of a blurred route guidance image is displayed, or a continuation of a darkened route guidance image is displayed, the display range of the route guidance image is expanded, thereby preventing the specific map object from being cut off from the route guidance image or displayed at the boundary of the route guidance image.
[0015] In a particularly preferred seventh embodiment, the processor reduces the display range of the route guidance image so that the left region is larger if there are non-map objects different from the map objects on the route guidance image around the left region, and reduces the display range of the route guidance image so that the right region is larger if there are non-map objects around the right region. In the above embodiment, when the scale of the route guidance image is increased, the left region (right region) is made relatively smaller, and the far region of the route guidance image is made relatively larger. However, if non-map objects are displayed in the narrowed left region and / or right region (the far region of the expanded route guidance image), the far region of the expanded route guidance image becomes difficult to see and is not effectively utilized. In this embodiment, when the far region of the expanded route guidance image is difficult to see, the sense of depth can be emphasized by reducing the route guidance image so that the left region (right region) is larger. [Brief explanation of the drawing]
[0016] [Figure 1] This figure shows examples of applications of a vehicle display system to a vehicle according to several embodiments. [Figure 2] This is a block diagram of a vehicle display system according to several embodiments. [Figure 3] Figure 3 shows the area of the map image surrounding the vehicle that is displayed as a route guidance image. [Figure 4] Figure 4 shows a route guidance image for a comparative example. [Figure 5] Figure 5 shows route guidance images in several embodiments. [Figure 6] Figure 6 shows the area of the map image surrounding the vehicle displayed as a route guidance image, illustrating an example where the virtual viewpoint is closer to the vehicle than in Figure 3. [Figure 7] Figure 7 shows a route guidance image observed from the virtual viewpoint shown in Figure 6. [Figure 8] Figure 8 shows route guidance images in several embodiments. [Figure 9]FIG. 9 is a diagram showing a route guidance image in some embodiments. [Figure 10] FIG. 10 is a diagram showing a route guidance image in some embodiments. [Figure 11] FIG. 11 is a diagram showing a route guidance image in some embodiments.
Embodiments for Carrying Out the Invention
[0017] Hereinafter, FIGS. 1 to 3 and FIGS. 5 to 11 provide an explanation of the configuration of an exemplary vehicle display system. FIG. 4 provides an example of image display in a comparative example. Note that the present invention is not limited by the following embodiments (including the content of the drawings). Of course, changes (including deletion of components) can be made to the following embodiments. In addition, in the following description, for the sake of easy understanding of the present invention, the description of well-known technical matters is appropriately omitted.
[0018] Referring to FIG. 1. The vehicle display system 10 includes an image display unit 20, a display control device 30 that controls the image display unit 20, a current position determination device 410, and a map information storage device 420. In the description of this embodiment, when the driver 4 sitting in the driver's seat of the host vehicle 1 faces the front of the host vehicle 1, the left-right direction is the X-axis (the left direction is the positive direction of the X-axis), the up-down direction is the Y-axis (the up direction is the positive direction of the Y-axis), and the front-back direction is the Z-axis (the front direction is the positive direction of the Z-axis).
[0019] An image display unit 20 in one embodiment of the vehicle display system 10 is a head-up display (HUD) device provided in the dashboard 5 of the host vehicle 1. The HUD device emits display light 20a toward the front windshield 2 (an example of a projection member), and allows an image to be visually recognized in a display area 100 on the front side (positive Z-axis direction) of the front windshield 2 (an example of a projection member). Thereby, the driver 4 can visually recognize an image overlapping the foreground 300, which is the real space visually recognized through the front windshield 2.
[0020] The display area 100 is a plane, curved surface, or partially curved surface area on which the image generated inside the HUD device forms a virtual image, and is also called the image-forming surface. The display area 100 itself has low visibility to the extent that it is not actually visible to the driver 4, or is difficult to see.
[0021] The image display unit 20 includes a display unit 22 having a display surface for displaying images, and a relay optical system 24. The display unit 22 may be a transmissive display that transmits light from a backlight such as an LCD, or a projection display that projects images onto a screen. In these cases, the display surface is the display surface in a transmissive display, or the screen in a projection display.
[0022] The relay optical system 24 is arranged in the optical path of the image light from the display 22 between the display 22 and the front windshield 2, and consists of one or more optical members that project the image light from the display 22 onto the front windshield 2 outside the image display unit 20. The relay optical system 24 includes at least one concave mirror, but may also include, for example, one or more refractive optical members such as lenses, diffractive optical members such as holograms, reflective optical members, or a combination thereof.
[0023] The image display unit 20 may also be a head-mounted display (HMD) device. The driver 4 wears the HMD device on their head and sits in the seat of their vehicle 1, thereby viewing the displayed image superimposed on the foreground 300 through the front windshield 2 of their vehicle 1. The display area 100 in which the vehicle display system 10 displays a predetermined image is fixed (adjustably positioned) at a specific position relative to the coordinate system of their vehicle 1, and when the driver 4 faces that direction, they can view the image displayed within the display area 100 fixed at that specific position.
[0024] The image display unit 20, based on the control of the display control device 30, can also make the viewer (typically the driver 4 seated in the driver's seat of the vehicle 1) perceive visual augmented reality (AR) by displaying an image near real objects (such as obstacles (pedestrians, bicycles, motorcycles, other vehicles), the road surface 6 of the driving lane, road signs, and features (buildings, bridges, etc.) that exist in the foreground 300, which is the real space (real scenery) visible through the front windshield 2 of the vehicle 1 (an example of a specific positional relationship between the image and the real object), at a position overlapping with a real object (an example of a specific positional relationship between the image and the real object), or at a position set relative to a real object (an example of a specific positional relationship between the image and the real object). The image display unit 20 can display images including AR images whose display position changes according to the position of the real object, and / or non-AR images whose display position does not change according to the position of the real object.
[0025] Figure 2 is a block diagram of a vehicle display system 10 according to several embodiments. The display control device 30 comprises one or more I / O interfaces 31, one or more processors 33, one or more image processing circuits 35, and one or more memories 37. The various functional blocks shown in Figure 2 may consist of hardware, software, or a combination of both. Figure 2 is only one embodiment, and the illustrated components may be combined with fewer components, or additional components may be included. For example, the image processing circuit 35 (e.g., a graphics processing unit) may be included in one or more processors 33.
[0026] As shown in the figure, the processor 33 and the image processing circuit 35 are operably connected to the memory 37. More specifically, the processor 33 and the image processing circuit 35 can operate the vehicle display system 10, for example, by executing a program stored in the memory 37, such as generating and / or transmitting image data. The processor 33 and / or the image processing circuit 35 may include at least one general-purpose microprocessor (e.g., a central processing unit (CPU)), at least one application-specific integrated circuit (ASIC), at least one field-programmable gate array (FPGA), or any combination thereof. The memory 37 includes any type of magnetic medium such as a hard disk, any type of optical medium such as CDs and DVDs, any type of semiconductor memory such as volatile memory, and non-volatile memory. The volatile memory may include DRAM and SRAM, and the non-volatile memory may include ROM and NVROM.
[0027] As shown in the figure, the processor 33 is operablely connected to the I / O interface 31. The I / O interface 31 communicates (also referred to as CAN communication) with the vehicle ECU (described later) and other electronic devices (codes 401 to 420 described later) installed in the vehicle, for example, in accordance with the CAN (Controller Area Network) standard. The communication standard adopted by the I / O interface 31 is not limited to CAN, but includes wired communication interfaces such as CANFD (CAN with Flexible Data Rate), LIN (Local Interconnect Network), Ethernet (registered trademark), MOST (Media Oriented Systems Transport: MOST is a registered trademark), UART, or USB, or in-vehicle communication (internal communication) interfaces, which are short-range wireless communication interfaces within tens of meters, such as personal area networks (PANs) such as Bluetooth (registered trademark) networks and local area networks (LANs) such as 802.11x Wi-Fi (registered trademark) networks. Furthermore, the I / O interface 31 may also include an external communication interface for outside vehicles, such as a wide-area communication network (e.g., an internet communication network) using cellular communication standards such as wireless wide-area network (WWAN0, IEEE802.16-2004 (WiMAX: Worldwide Interoperability for Microwave Access)), IEEE802.16e-based (Mobile WiMAX), 4G, 4G-LTE, LTE Advanced, and 5G.
[0028] As shown in the figure, the processor 33 is interconnected with the I / O interface 31 so as to be able to exchange information with various other electronic devices connected to the vehicle display system 10 (I / O interface 31). For example, a navigation device, a vehicle ECU, and external communication devices installed in the vehicle 1 are interconnected with the I / O interface 31 so as to be able
[0029] The GPS device 411 shown in Figure 2 detects the current position of the vehicle and outputs the detected position data to the current position determination device 410.
[0030] The gyro sensor 412 detects angular velocity in the yaw, pitch, and roll directions and outputs the detected angular velocity data to the current position determination device 410. The current position determination device 410 detects changes in the vehicle's direction of travel by detecting the angular velocity in the yaw, pitch, and roll directions and determines the vehicle's current position. Therefore, even in areas where GPS signals cannot be received, such as inside tunnels, the vehicle's current position can be determined.
[0031] The current position determination device 410 determines the vehicle's current position based on the vehicle's position data detected by the GPS device 411, the vehicle's angular velocity data detected by the gyro sensor 412, and map data of the area around the vehicle stored in the map database 401. It outputs data indicating the current position to the display control device 30.
[0032] The map information storage device 420 is a storage medium that stores map data including the area around the vehicle. Based on the current location of the vehicle determined by the current location determination device 410, it outputs map data of the area around the vehicle's current location to the display control device 30. Figure 1 shows an example where the map information storage device 420 is externally attached to the display control device 30, but the map information storage device 420 may be built into the display control device 30. Alternatively, the map information storage device 420 may be a server that distributes map information to the display control device 30 via communication from outside the vehicle.
[0033] The software components stored in memory 37 include a viewpoint setting module 501, a field of view setting module 503, and a map image generation module 511. The viewpoint setting module 501 sets the position of the virtual viewpoint MM relative to the vehicle position icon PP on the map (described later), and the downward angle (depression angle) θ from this virtual viewpoint MM. The viewpoint setting module 501 also changes the scale of the route guidance image 200. The field of view setting module 503 sets the virtual field of view E, which determines the shape of the map around the vehicle position icon PP to be extracted. The map image generation module 511 reads map data of the area around the vehicle from the map database 401 and generates a route guidance image of the image observed from a predetermined position of the virtual viewpoint MM, at a predetermined depression angle, and at a predetermined virtual field of view.
[0034] Figure 3 shows the area of the map image surrounding the vehicle that is displayed as a route guidance image. Here, the map is assumed to be the αγ plane, and a virtual viewpoint MM for displaying a bird's-eye view is located at a height Mβ on the β axis perpendicular to the αγ plane, that is, above and behind the vehicle position icon PP. In the example in Figure 3, the viewpoint setting module 501 sets the virtual viewpoint MM at a distance of Mγ1 behind (γ negative direction) and Mβ1 above (β positive direction) the vehicle position icon PP, and sets the depression angle θ to θ1. As shown in Figure 3, the area of the map enclosed by the rectangular virtual field of view FGHJ with a downward angle θ from the virtual viewpoint MM is enclosed by the symbols F1'G1'H1'J1', and can be represented as a trapezoid with a wide range in the left-right direction (α direction) on the far side (γ positive direction) and a narrow range in the left-right direction (α direction) on the near side (γ negative direction). In at least some display modes of this embodiment, the virtual field of view E has a narrower width in the left-right direction (α direction) of the area that overlaps with the far side of the map than the rectangular virtual field of view FGHJ. In other words, the area of the map enclosed by the virtual field of view E (FKLJ) observed from the virtual viewpoint MM has a narrower left-right direction (α direction) on the far side (γ positive direction) than the area enclosed by the symbols F1'K1'L1'J1' and F1'G1'H1'J1'.
[0035] Figure 4 shows a route guidance image of the comparative example. Figure 5 shows a route guidance image in this embodiment. The route guidance image 800 of the comparative example is a rectangle enclosed by the rectangular virtual field of view F1, G1, H1, J1. That is, in the route guidance image 800 of the comparative example, the width in the left-right direction (X-axis direction) (F1-J1) of the area overlapping with the vicinity of the map is the same as the width in the left-right direction (X-axis direction) (G1-H1) of the area overlapping with the far side of the map.
[0036] In contrast, in the directional guidance image 200 of this embodiment, as shown in Figure 5, the nearby width Wn1 in the left-right direction (X-axis direction) of the area overlapping with the vicinity of the map is longer than the far-field width Wf1 in the left-right direction (X-axis direction) of the area overlapping with the far-field of the map. That is, the ratio of the far-field width Wf1 to the nearby width Wn1 (Wf1 / Wn1) is less than 1.
[0037] The viewpoint setting module 501 sets the position Mβ(Mγ) and angle θ of the virtual viewpoint MM relative to the map image. By changing the position Mβ(Mγ) and angle θ of the virtual viewpoint, the viewpoint setting module 501 changes the area of the map image around the vehicle that is displayed as a route guidance image. Typically, the viewpoint setting module 501 sets the position of the "virtual viewpoint" around the vehicle (usually a suitable location behind the vehicle). The angle θ of the "virtual viewpoint" is the angle between the direction passing through the vertical midpoint of the virtual field of view K (described later) from the virtual viewpoint MM and the αγ plane, and will be referred to as the depression angle below.
[0038] The viewpoint setting module 501 sets a virtual viewpoint MM at a position Mγ behind (γ negative direction) and Mβ above (β positive direction) the vehicle position icon PP. Therefore, when the vehicle is traveling straight on a straight road, viewing the vehicle position icon PP from the virtual viewpoint MM will show an overhead view of the vehicle position icon PP facing forward. When the virtual viewpoint MM moves, the map image of the area around the vehicle rotates (the angle changes) and is displayed. For example, if the vehicle position icon PP is steered and rotates 90 degrees counterclockwise when viewed from directly above, the virtual viewpoint MM will also rotate 90 degrees counterclockwise in conjunction with this.
[0039] When the scale of the route guidance image is increased, the viewpoint setting module 501 shortens the distance between the vehicle position icon PP and the virtual viewpoint MM. Specifically, to shorten the distance between the vehicle position icon PP and the virtual viewpoint MM, at least one of the distances Mγ in the longitudinal direction (γ direction) and the vertical direction (β direction) Mβ is shortened. The longitudinal distance (γ direction) Mγ2 and the vertical distance (β direction) Mβ2 in Figure 6 are shorter than the longitudinal distance (γ direction) Mγ1 and the vertical distance (β direction) Mβ1 of the virtual viewpoint MM shown in Figure 3.
[0040] In the example of FIG. 6, the viewpoint setting module 501 sets a virtual viewpoint MM at a position that is Mγ2 (<Mγ1) behind (in the negative γ direction) and Mβ2 (<Mβ1) above (in the positive β direction) the own vehicle position icon PP, and sets the depression angle θ to θ2 (<θ1). The range of the map surrounded by the rectangular virtual visual field F2G2H2J2 at the depression angle θ2 from the virtual viewpoint MM can be represented by a trapezoid surrounded by the reference signs F2‘G2’H2‘J2’, with a wider range in the left-right direction (α direction) on the far side (positive γ direction) and a narrower range in the left-right direction (α direction) on the near side (negative γ direction). The visual field setting module 504 sets a virtual visual field E2 that is different from the virtual visual field E1 shown in FIGS. 3 and 5. The map area surrounded by the virtual visual field E2 (F2K2L2J2) that defines the area to be displayed as the route guidance image 212 is surrounded by the reference signs F2‘K2’L2‘J2’, and the range in the left-right direction (α direction) is narrower on the far side (positive γ direction) than the range surrounded by the reference signs F2‘G2’H2‘J2’.
[0041] Figure 7 shows a route guidance image observed from the virtual viewpoint shown in Figure 6. In route guidance image 212, the neighborhood width Wn2 in the left-right direction (X-axis direction) of the area overlapping with the vicinity of the map is longer than the far-field width Wf2 in the left-right direction (X-axis direction) of the area overlapping with the far-field of the map. That is, the ratio of the far-field width Wf2 to the neighborhood width Wn2 (Wf2 / Wn2) is less than 1. The ratio of the far-field width Wf2 to the neighborhood width Wn2 in route guidance image 212 shown in Figure 7 (Wf2 / Wn2) is greater than the ratio of the far-field width Wf1 to the neighborhood width Wn1 in route guidance image 211 shown in Figure 5 (Wf1 / Wn1). The route guidance image 212 in Figure 7 is formed to have a left region 212P (200P) enclosed by the code F2G2K2 between the bounding box 212B (200B) surrounding the route guidance image 212 and the left edge of the route guidance image 212, and a right region 212Q (200Q) enclosed by the code H2J2L2 between the bounding box 212B (200B) and the right edge of the route guidance image 212. Furthermore, the trajectory guidance image 211 in Figure 5 is formed to have a left region 211P (200P) enclosed by the bounding box 211B (200B) surrounding the trajectory guidance image 211 and the left edge of the trajectory guidance image 211, and a right region 211Q (200Q) enclosed by the bounding box 211B (200B) and the right edge of the trajectory guidance image 211, and the right region 211Q enclosed by the bounding box 211B (200B) and the right edge of the trajectory guidance image 211. The left region 212P and the right region 212Q in Figure 7 are smaller than the left region 211P and the right region 211Q shown in Figure 5, respectively. When the scale of the trajectory guidance image 200 is increased, the field of view setting module 504 changes the virtual field of view E to one with a larger ratio of the far-field width Wf to the near-field width Wn (Wn / Wf) so that the left region 200P and the right region 200Q become smaller (for example, changing from E1 to E2).
[0042] (First Embodiment) Therefore, the display control device 30 of the first embodiment of the present invention is a display control device 30 that controls a head-up display device 20 that displays an image as a virtual image in front of the front windshield of a vehicle, and one or more processors 33 display a route guidance image 200 on the head-up display device 20, and the left-right width of the nearby area of the route guidance image 200 (hereinafter referred to as the nearby width) Wn is longer than the left-right width of the far area of the route guidance image 200 (hereinafter referred to as the far width) Wf, and when the scale of the route guidance image 200 is increased, the ratio of the far width Wf to the nearby width Wn (Wf / Wn) is increased.
[0043] The processor 33 increases the scale of the route guidance image 200. For example, the processor 33 executes the viewpoint setting module 501 and increases the scale of the route guidance image 200 by bringing the virtual viewpoint MM closer to the vehicle position icon PP. However, the method of changing the scale of the route guidance image 200 is not limited to this, and the processor 33 may also read map data with different scales stored in the map database 401.
[0044] The processor 33 increases the ratio of the far width Wf to the near width Wn (Wf / Wn) of the guiding image 200 as the scale of the guiding image 200 increases. For example, the processor 33 executes the field of view setting module 503 and adjusts the near width Wn and / or far width Wf so that the ratio of the far width Wf to the near width Wn (Wf / Wn) increases. Specifically, when the scale of the guiding image 200 increases, the field of view setting module 503 can perform one of the following actions: (1) maintain the near width Wn and lengthen the far width Wf; (2) shorten the near width Wn and maintain the far width Wf; (3) lengthen both the near width Wn and the far width Wf, while making the rate of increase of the far width Wf greater than the rate of increase of the near width Wn; or (4) shorten both the near width Wn and the far width Wf, while making the rate of decrease of the far width Wf less than the rate of decrease of the near width Wn.
[0045] When the processor 33 increases the scale of the trajectory guidance image 211(200) shown in Figure 5, it changes the virtual field of view E from E1 shown in Figure 5 to E2 shown in Figure 7, thereby increasing the ratio of the far-field width Wf to the near-field width Wn (Wf / Wn) from Wf1 / Wn1 to Wf2 / Wn2. Here, the changed far-field width Wf2 is shorter than the near-field width Wn. In the first embodiment, before enlarging the route guidance image, the distance is emphasized by making the far-field width of the route guidance image short and the near-field width long. When the scale of the route guidance image is increased, it is also possible to relatively widen the distant display area, which becomes more useful when the route guidance image is enlarged. In other words, it is possible to present information in a way that is convenient for the user.
[0046] (Second Embodiment) In the third embodiment, the processor 33 generates a route guidance image 200 from a virtual viewpoint MM so as to have a virtual depression angle θ, and when the scale of the route guidance image 200 is increased, the depression angle θ is decreased.
[0047] When the processor 33 increases the scale of the route guidance image 200, it decreases the depression angle θ. For example, the processor 33 executes the viewpoint setting module 501 and decreases the depression angle θ of the virtual viewpoint MM. However, the method of changing the scale of the route guidance image 200 is not limited to this, and the processor 33 may also read map data with different depression angles stored in the map database 401.
[0048] When the scale of the route guidance image 211(200) shown in Figure 5 is increased, the processor 33 changes the depression angle θ from θ1 shown in Figure 3 to θ2 shown in Figure 6. By reducing the depression angle of the route guidance image, which is a bird's-eye view, the depression angle of the virtual viewpoint that overlooks the map image in the displayed route guidance image approaches the depression angle of the viewpoint of the user in the vehicle who overlooks the foreground of the vehicle. In other words, the gap between the route guidance image and the foreground seen by the user is reduced, making it easier to connect the positional information shown in the route guidance image with the foreground. According to the second embodiment, it is also conceivable that the display area for distant objects, which gradually becomes more useful, can be made relatively wider while making it easier to connect the positional information shown in the route guidance image with the foreground.
[0049] (Third embodiment) In the third embodiment, the processor 33 displays a first route guidance image 211 having a first ratio (Wf1 / Wn1) as shown in Figure 5. When the scale of the first route guidance image 211 is increased, a second route guidance image 212 having a second ratio (Wf2 / Wn2) larger than the first ratio (Wf1 / Wn1) is displayed as shown in Figure 7. When the scale of the second route guidance image 212 is increased, a third route guidance image 223 having a third ratio (Wf3 / Wn3) larger than the second ratio (Wf2 / Wn2) is displayed as shown in Figure 8. The third near-field width Wn3 of the third route guidance image 223 (220) is made approximately equal to the third far-field width Wf3. As the route guidance image is enlarged, the far-field width of the route guidance image, which is more useful, can be made relatively wider.
[0050] (Fourth embodiment) In the fourth embodiment, the processor 33 displays a first route guidance image 211 having a first ratio (Wf1 / Wn1) as shown in Figure 5. When the scale of the first route guidance image 211 is increased, a second route guidance image 212 having a second ratio (Wf2 / Wn2) larger than the first ratio (Wf1 / Wn1) is displayed as shown in Figure 7. When the scale of the second route guidance image 212 is increased, a fourth route guidance image 234 having a fourth ratio (Wf4 / Wn4) larger than the second ratio (Wf2 / Wn2) is displayed as shown in Figure 9. The fourth far-field width Wf4 of the fourth route guidance image 234 (230) is made longer than the fourth near-field width Wn4. As the route guidance image is enlarged, the far-field width of the route guidance image, which is useful, can be made relatively wider.
[0051] In some embodiments, the route guidance image 200 has at least one of a left region 200P between the bounding box 200B surrounding the route guidance image 200 and the left edge of the route guidance image 200, and a right region 200Q between the bounding box 200B and the right edge of the route guidance image 200. The route guidance image is not displayed in the left region and the right region. This allows the user to perceive the route guidance image as having a long near-field width and a short far-field width, thereby emphasizing the sense of depth. However, it is not limited to this, and in a broader sense, images following the route guidance image may be displayed in the left region and the right region.
[0052] (Fifth embodiment) In the fifth embodiment, the processor 33 displays a route guidance surrounding image in at least one of the left region 200P and the right region 200Q, which is an image following the route guidance image 200 and has been blurred and / or darkened.
[0053] Figure 10 shows the left and right regions after darkening. Following the route guidance image 216(210), the images displayed in the left region 216P(200P) and the right region 216Q(200Q) have reduced visibility due to the darkening process. Therefore, the route guidance image 216(210) has higher visibility than the images displayed in the left region 216P(200P) and the right region 216Q(200Q), and as an image with a short far-field width Wf6(Wf) and a long near-field width Wn6(Wn) within the rectangular bounding box 216B(200B), it can give a sense of depth. Furthermore, by darkening the left region 200P (right region 200Q), the sense of depth in the route guidance image can be further emphasized.
[0054] (Sixth embodiment) In the sixth embodiment, the processor 33 expands the display range of the route guidance image 200 so that the left region 200P becomes smaller if there is a map object 310 on the route guidance image 200 around the left region 200P, and expands the display range of the route guidance image 200 so that the right region 200Q becomes smaller if there is a map object 310 around the right region 200Q. In the example in Figure 11, the processor 33 expands the display range of the route guidance image 215 so that the left region 215P becomes smaller if there is a map object 315(310) on the route guidance image 215(200) around the left region 215P(200P). According to this, if a specific map object exists in the left (right) area where the route guidance image is not displayed, where a blurred continuation of the route guidance image is displayed, or where a darkened continuation of the route guidance image is displayed, the display area of the route guidance image will be expanded, thereby preventing the specific map object from being cut off from the route guidance image or from being displayed at the boundary of the route guidance image.
[0055] (Seventh Embodiment) In the seventh embodiment, the processor 33 reduces the display range of the route guidance image 200 so that the left region 200P becomes larger if there is a non-map object 320 that is different from the map object 310 on the route guidance image 200 around the left region 200P, and reduces the display range of the route guidance image 200 so that the right region 200Q becomes larger if there is a non-map object 320 that is different from the map object 310 on the route guidance image 215 around the right region 215Q. The processor 33 reduces the display range of the route guidance image 200 so that the right region 200Q becomes larger if there is a non-map object 325 that is different from the map object 310 on the route guidance image 215 around the right region 215Q. The non-map object 320 is an image that does not correspond to the position on the map image, for example, a bar graph that shows the distance to a branching road. In the above embodiment, when the scale of the route guidance image is increased, the left region (right region) is made relatively smaller and the far region of the route guidance image is made relatively wider. However, if non-map objects are displayed in the narrowed left and / or right regions (the far regions of the expanded route guidance image), the far regions of the expanded route guidance image become difficult to see and are not effectively utilized. In this embodiment, when the far regions of the expanded route guidance image are difficult to see, the sense of depth can be emphasized by shrinking the route guidance image so that the left region (right region) becomes larger.
[0056] The operation of the processing steps described above can be carried out by having one or more functional modules of an information processing device, such as a general-purpose processor or an application-specific chip, execute. All of these modules, combinations of these modules, and / or combinations with known hardware that can substitute for their functions are all within the scope of protection of the present invention.
[0057] The functional blocks of the vehicle display system 10 are optionally implemented by hardware, software, or a combination of hardware and software to carry out the principles of the various embodiments described. Those skilled in the art will understand that the functional blocks described in Figure 2 may be optionally combined, or one functional block may be separated into two or more subblocks, to carry out the principles of the embodiments described. Therefore, the description herein optionally supports any possible combination or division of the functional blocks described herein. [Explanation of symbols]
[0058] 1: Own vehicle 2: Front windshield 4: Driver 5: Dashboard 6: Road surface 10: Vehicle display system 20: Head-up display device (image display unit) 20a:Display light 22:Display unit 24: Relay Optics 30: Display control device 31: I / O Interface 33: Processor 35: Image processing circuit 37: Memory 100:Display area 200: Career guidance image 200B: Bounding Box 200P:Left area 200Q: Right area 310: Map object 315: Map object 320: Non-map object 325: Non-map object 401: Map Database 410:Current position determination device 411 :GPS device 412: Gyroscope sensor 420: Map Information Storage Device 501: Viewpoint Setting Module 503: Field of View Setting Module 504: Field of View Setting Module 511: Map image generation module E: Virtual field of view MM: Virtual Viewpoint Mβ: Height Mγ: distance PP: Vehicle position icon Wf: far width Wn: Neighboring width θ: Angle (angle of depression)
Claims
1. A display control device for controlling an image display device, One or more processors, The image display device displays a route guidance image, The width in the left-right direction of the nearby region of the aforementioned guidance image (hereinafter referred to as the nearby width) (Wn) is longer than the width in the left-right direction of the far region of the aforementioned guidance image (hereinafter referred to as the far width) (Wf). When increasing the scale of the aforementioned route guidance image, the ratio of the distant width (Wf) to the nearby width (Wn) is increased. A display control device characterized by the following:
2. The aforementioned processor, The trajectory guidance image is generated from a virtual viewpoint to have a virtual depression angle (θ), When increasing the scale of the aforementioned route guidance image, the depression angle (θ) is reduced. The display control device according to feature 1.
3. The aforementioned processor, A first route guidance image having a first ratio (Wf1 / Wn1) is displayed. When the scale of the first route guidance image is increased, a second route guidance image having a second ratio (Wf2 / Wn2) that is larger than the first ratio (Wf1 / Wn1) is displayed. When the scale of the second route guidance image is increased, a third route guidance image having a third ratio (Wf3 / Wn3) that is larger than the second ratio (Wf2 / Wn2) is displayed. The third far width (Wf3) of the third trajectory guidance image is approximately equal to the third near width (Wn3). The display control device according to feature 1.
4. The aforementioned processor, A first route guidance image having a first ratio (Wf1 / Wn1) is displayed. When the scale of the first route guidance image is increased, a second route guidance image having a second ratio (Wf2 / Wn2) that is larger than the first ratio (Wf1 / Wn1) is displayed. When the scale of the second route guidance image is increased, a fourth route guidance image having a fourth ratio (Wf4 / Wn4) that is larger than the second ratio (Wf2 / Wn2) is displayed. The fourth far width (Wf4) of the fourth trajectory guidance image is longer than the fourth near width (Wn4). The display control device according to feature 1.
5. The aforementioned route guidance image is formed to have at least one of the following: a left region between the bounding box surrounding the route guidance image and the left edge of the route guidance image, and a right region between the bounding box and the right edge of the route guidance image. The aforementioned processor, In at least one of the left region and the right region, an image following the route guidance image, which is a route guidance surrounding image that has been blurred and / or darkened, is displayed. The display control device according to feature 1.
6. The aforementioned route guidance image is formed to have at least one of the following: a left region between the bounding box surrounding the route guidance image and the left edge of the route guidance image, and a right region between the bounding box and the right edge of the route guidance image. The aforementioned processor, If there is a map object on the route guidance image around the left region, the display range of the route guidance image is expanded so that the left region becomes smaller. If the map object is located around the right region, the display range of the route guidance image is expanded so that the right region becomes smaller. The display control device according to feature 1.
7. The aforementioned route guidance image is formed to have at least one of the following: a left region between the bounding box surrounding the route guidance image and the left edge of the route guidance image, and a right region between the bounding box and the right edge of the route guidance image. The aforementioned processor, If there is a non-map object in the vicinity of the left region that is different from the map object on the route guidance image, the display range of the route guidance image is reduced so that at least the left region is larger than the left region. If there are non-map objects around the right region, the display range of the route guidance image is reduced so that at least the right region becomes larger than the left region. The display control device according to feature 1.
8. A head-up display device that superimposes a virtual image onto the foreground of the vehicle by projecting an image to be drawn on a display unit onto a projection unit, The aforementioned display is controlled to show a virtual image of the route guidance. The width in the left-right direction of the nearby region of the aforementioned guidance image (hereinafter referred to as the nearby width) (Wn) is longer than the width in the left-right direction of the far region of the aforementioned guidance image (hereinafter referred to as the far width) (Wf). When increasing the scale of the aforementioned route guidance image, the ratio of the far-field width (Wf) to the near-field width (Wn) is increased, and the system comprises one or more processors. Head-up display device.
9. A display control method for controlling an image display device, The image display device will display a route guidance image, The width in the left-right direction of the nearby region of the aforementioned guidance image (hereinafter referred to as the nearby width) (Wn) shall be longer than the width in the left-right direction of the far region of the aforementioned guidance image (hereinafter referred to as the far width) (Wf), When increasing the scale of the aforementioned route guidance image, this includes increasing the ratio of the distant width (Wf) to the nearby width (Wn), Display control method.
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