Method for operating virtual reality glasses and system with virtual reality glasses

The method for virtual reality glasses enables users to jump between observation positions using position symbols, addressing nausea issues and improving navigation by aligning visual and physical feedback.

DE102014009299B4Active Publication Date: 2025-10-16AUDI AG
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Patent Information

Application Number
DE102014009299
Authority / Receiving Office
DE · DE
Patent Type
Patents
Current Assignee / Owner
Filing Date
2014-06-26
Publication Date
2025-10-16
Estimated Expiration
2034-06-26

AI Technical Summary

Technical Problem

Existing virtual reality glasses cause nausea due to discrepancies between visual perception and equilibrium feedback during free movements, and users struggle to estimate changes in viewing direction within virtual environments.

Method used

A method for virtual reality glasses that allows users to jump between predefined observation positions by selecting and confirming position symbols, using head and/or eye movements to control the viewing angle, thereby aligning visual perception with equilibrium feedback.

Benefits of technology

Prevents nausea by aligning visual and physical feedback, enabling intuitive and comfortable navigation within virtual environments.

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Abstract

Method for operating virtual reality glasses (12), comprising the steps: - displaying at least one virtual object (24) arranged in a virtual environment (22) by means of the virtual reality glasses (12) from a first observation position (A) predetermined within the virtual environment (22); - displaying at least one position symbol (28) at a position within the virtual environment (22) which corresponds to a second observation position (B) predetermined within the virtual environment (22); - Marking a virtual standard viewing direction from the second observation position (B) to the virtual object (24); - selecting the displayed position symbol (28) as soon as a predetermined selection action has been detected; - displaying the virtual object (24) from the second observation position (B) as soon as a predetermined confirmation action with respect to the selected position symbol (28) has been detected; - wherein the selection of the displayed position symbol (28) takes place as soon as it has been detected as the predetermined selection action that a selection symbol (30) displayed within the virtual environment (22) has been at least partially brought into overlap with the displayed position symbol (28), characterized in that a respective virtual viewing direction from which the virtual object (24) is displayed starting from the respective observation positions (A, B) is changed as a function of a detected pivoting position of a head of a wearer (14) of the virtual reality glasses (12).
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Description

[0001] The invention relates to a method for operating virtual reality glasses and a system with virtual reality glasses.

[0002] Virtual reality glasses are a specific type of head-mounted display, a visual output device worn on the head. They present images on a screen positioned close to the eyes or project them directly onto the retina. Virtual reality glasses also have sensors for detecting head movements. This allows the display of the calculated graphics to be adapted to the wearer's movements. Due to the physical proximity, the image areas displayed by head-mounted displays appear considerably larger than those of free-standing screens and, in extreme cases, can even cover the user's entire field of vision. Since the display follows all head movements based on the wearer's head position, they have the feeling of moving directly through a computer-generated image landscape.

[0003] Using such virtual reality glasses, a virtual reality can be presented, whereby virtual reality is usually referred to as the representation and simultaneous perception of reality in its physical properties in a real-time computer-generated, interactive virtual environment.

[0004] In a virtual reality environment, a particular challenge is providing a suitable interaction option for determining or changing the virtual position of the wearer of such glasses in relation to an object displayed by the virtual reality glasses. In particular, free movements within the displayed virtual reality, for example, induced via a controller or joystick, can quickly lead to nausea in the wearer of virtual reality glasses, as a contradiction arises during the virtual movement between the visual impressions and the lack of movement feedback from the vestibular system in the inner ear.

[0005] Furthermore, it may be difficult for a wearer of virtual reality glasses to estimate how their viewing direction on a displayed virtual object will change if they change their observation position within the virtual environment.

[0006] US 2011 / 0175932 A1 discloses a method for operating a head-mounted display. Depending on a detected line of sight of a user and a detected user input, displayed objects are selected, activated, or functions associated with the objects are triggered. For example, an object viewed by the user is enlarged as soon as a corresponding user input is detected. US 7 928 926 B2 discloses a method for operating a head-mounted display. A selection frame is displayed. A displayed symbol is moved in accordance with a detected head movement of a wearer of the head-mounted display. The position of the selection frame remains unchanged regardless of the detected head movement. As soon as the displayed symbol has been moved within the selection frame, the symbol is selected.

[0007] US 2007 / 0146390 A1 discloses a method for operating a head-mounted display. An object displayed by the head-mounted display is displayed in such a way that this displayed object is superimposed on a real object.

[0008] The document “Virtual and Augmented Reality” (ISBN 978-3-642-289903-3) describes a method for detecting the direction of gaze in connection with the use of virtual reality glasses.

[0009] US 2004 / 0 027 394 A1 discloses a virtual reality device comprising a display element projecting a virtual environment and a plurality of waypoint elements, each defined by its own waypoint position. A user can automatically switch to one of the waypoint positions by simply selecting the corresponding waypoint element.

[0010] It is therefore the object of the present invention to provide a method for operating virtual reality glasses and a system with virtual reality glasses, by means of which an improved change of the virtual position of a wearer of the glasses within a virtual environment displayed by means of the virtual reality glasses is made possible.

[0011] This object is achieved by a method for operating virtual reality glasses and by a system comprising virtual reality glasses having the features of the independent patent claims. Advantageous embodiments with expedient and non-trivial refinements of the invention are specified in the dependent claims.

[0012] In the method according to the invention for operating virtual reality glasses, at least one virtual object arranged in a virtual environment is displayed by means of the virtual reality glasses from a first observation position predetermined within the virtual environment. Furthermore, at least one position symbol is displayed at a position within the virtual environment that corresponds to a second observation position predetermined within the virtual environment. In addition, a virtual default viewing direction of the virtual object emanating from the second observation position is identified. The displayed position symbol is selected as soon as a predetermined selection action has been detected. Furthermore, the virtual object is displayed from the second observation position as soon as a predetermined confirmation action with respect to the selected position symbol has been detected.

[0013] In other words, the invention therefore provides that a wearer of virtual reality glasses can move, in particular jump, from a predetermined observation position to another observation position within the virtual environment by selecting a correspondingly displayed position symbol and confirming its selection. In doing so, one or more possible jump positions can be displayed to the wearer in the form of the displayed position symbol or further position symbols in their spatially correct position within the virtual environment. In other words, the predetermined observation positions are virtual viewpoints at which the wearer of the virtual reality glasses is virtually located within the displayed virtual environment, wherein the virtual reality glasses orwhose display device is controlled in such a way that the wearer of the virtual reality glasses has the impression that he is looking at the virtual object from the correspondingly specified observation position.

[0014] The problem mentioned above, which can occur during free movement within a virtual reality environment, is remedied by the inventive solution, since the wearer of the virtual reality glasses no longer moves freely within the displayed virtual environment according to their visual perception. Instead, the wearer of the virtual reality glasses can jump from one virtual observation position to the next using the inventive method, thereby abruptly changing their virtual viewpoint within the displayed virtual environment and thus also abruptly changing the perspective on the currently displayed virtual object. This prevents a contradiction from occurring between the visual impressions and the actual movement feedback from the vestibular system of the wearer of the virtual reality glasses, thus preventing the onset of nausea in the wearer of the virtual reality glasses.

[0015] Due to the inventive solution, the standard viewing direction, which starts from the second observation position, is identified by a user wearing the virtual reality glasses, even before the virtual position change is activated or confirmed, as to the position in which he will be after the position change and how he will view the virtual object from this new virtual observation position.

[0016] Furthermore, the invention provides that the displayed position symbol is selected as soon as the predetermined selection action has been detected, namely that a selection symbol displayed within the virtual environment has been at least partially overlapped with the displayed position symbol. The wearer of the virtual reality glasses can control the movement of the selection symbol accordingly, thus enabling the displayed position symbol to be selected in a particularly simple and convenient manner. The displayed selection symbol, which can also be understood as a selection symbol, can be, for example, a crosshair, a mouse pointer, or the like.

[0017] Furthermore, the invention provides that the respective virtual viewing angle from which the virtual object is displayed based on the respective observation positions is changed depending on a detected pivoting position of the head of the wearer of the virtual reality glasses. The user can thus change their respective virtual viewing angle of the currently displayed virtual object by pivoting their head up or down or left or right. This results in particularly simple control of the virtual reality glasses, which change the viewing angle of the currently displayed virtual object according to the pivoting movement of the wearer's head.

[0018] In a further advantageous embodiment of the invention, it is provided that the selection symbol is moved within the virtual environment depending on a detected head movement of a wearer of the virtual reality glasses. For example, the virtual reality glasses can have a combination of a 3-axis gyrometer and acceleration sensors, by means of which the head movement of the wearer of the virtual reality glasses can be reliably detected. Because the selection symbol is moved within the virtual environment depending on the detected head movement of the wearer, the selection symbol can be moved within the virtual environment by the wearer of the virtual reality glasses in a particularly simple and convenient manner.

[0019] According to a further advantageous embodiment of the invention, it is provided that the selection symbol is moved within the virtual environment as a function of a detected eye movement of the wearer of the virtual reality glasses. For this purpose, the virtual reality glasses can, for example, have a detection device designed to detect the eye movements, in particular the viewing direction of the wearer of the virtual reality glasses. An eye movement-controlled movement of the selection symbol within the virtual environment has the particular advantage that the selection symbol can be moved particularly quickly and easily. The movement of the selection symbol can also occur as a function of both the detected head movement and the detected eye movement of the wearer of the virtual reality glasses.This provides a particularly convenient and intuitive way for the wearer of the virtual reality headset to control the selection symbol. The wearer of the virtual reality headset simply needs to look at the relevant position symbol displayed in the virtual environment to select the position symbol.

[0020] In a further advantageous embodiment of the invention, the virtual standard viewing direction emanating from the second observation position to the virtual object is identified by the selection symbol having a direction sign, which is aligned from the second observation position to the virtual object as soon as the selection symbol has been at least partially aligned with the displayed position symbol. The direction sign can be displayed, for example, in the form of an arrowhead, an arrow, a triangle, or the like, so that the wearer of the virtual reality glasses can easily recognize the viewing direction emanating from the second observation position to view the displayed virtual object after a position jump.

[0021] According to a further alternative advantageous embodiment of the invention, the standard viewing direction from the second observation position to the virtual object is identified by the position symbol having a direction sign that is aligned from the second observation position to the virtual object. This also makes it possible for a wearer of the virtual reality glasses to easily recognize the viewing direction they will use to view the virtual object from the second observation position once they have changed position from the first to the second observation position.

[0022] It can be configured that the direction sign is only displayed once the position symbol has been selected. This provides the wearer of the virtual reality glasses with additional information that they have just selected the position symbol. Alternatively, the direction sign can always be displayed together with the position symbol. In this case, the advantage is that as soon as the position symbol is displayed, the user is always shown how they will view the displayed virtual object after changing position from the first to the second observation position.

[0023] In a further advantageous embodiment of the invention, the virtual standard viewing direction emanating from the second observation position to the virtual object is identified in a plane spanned by the longitudinal and transverse directions of the virtual environment. In other words, a wearer of the virtual reality glasses receives two-dimensional directional information when identifying the standard viewing direction.

[0024] According to a further advantageous embodiment of the invention, the virtual viewing direction and the virtual standard viewing direction coincide when the detected pivot position of the head corresponds to a predetermined standard pivot position. For example, the wearer of the virtual reality glasses can first perform a type of calibration process by moving their head into the head position that corresponds to their standard head position after putting on the virtual reality glasses. This standard head position is then saved as the standard pivot position. If the wearer of the virtual reality glasses therefore resumes this standard orientation of their head after a position jump from the first to the second observation position, the currently displayed virtual viewing direction corresponds to the previously identified virtual standard viewing direction.

[0025] Preferably, a motor vehicle is displayed as the virtual object, with the position symbol being arranged and displayed outside or inside the motor vehicle. The wearer of the virtual reality glasses can thus jump from one virtual observation position to the next and view the virtual motor vehicle from a variety of perspectives. They can also jump to a virtual observation position inside the motor vehicle, for example, to view the interior from the driver's seat or from other seating positions within the motor vehicle. This makes it possible, for example, in sales outlets orIt is no longer necessary for motor vehicle showrooms to maintain a variety of different vehicle variants with a wide range of special equipment, as a potential customer can easily view differently equipped vehicle variants from the inside and outside as well as from a wide range of angles using virtual reality glasses.

[0026] The system according to the invention comprises virtual reality glasses which are designed to display at least one virtual object arranged in a virtual environment from a first observation position predetermined within the virtual environment. Furthermore, the virtual reality glasses are designed to display at least one position symbol within the virtual environment at a position within the virtual environment which corresponds to a second observation position predetermined within the virtual environment. Furthermore, the virtual reality glasses are designed to identify a standard viewing direction of the virtual object emanating from the second observation position. The system according to the invention further comprises a control device which is designed to select the displayed position symbol as soon as a predetermined selection action has been detected.Furthermore, the control device is designed to control the virtual reality glasses such that the virtual object is displayed from the second observation position as soon as a predetermined confirmation action with respect to the selected position symbol has been detected, wherein the selection of the displayed position symbol occurs as soon as it has been detected, as the predetermined selection action, that a selection symbol displayed within the virtual environment has been at least partially overlapped with the displayed position symbol. Advantageous embodiments of the method according to the invention are to be regarded as advantageous embodiments of the system according to the invention, wherein the system in particular comprises means for carrying out the method steps.

[0027] Further advantages, features, and details of the invention will become apparent from the following description of preferred embodiments and from the drawings. The features and combinations of features mentioned above in the description, as well as the features and combinations of features mentioned below in the description of the figures and / or shown alone in the figures, can be used not only in the respective specified combinations, but also in other combinations or on their own, without departing from the scope of the invention.

[0028] Embodiments of the invention are explained in more detail below with reference to schematic drawings. They show: Fig. 1 a schematic representation of a system for displaying a virtual environment, the system comprising virtual reality glasses worn by a user, a control device for controlling the virtual reality glasses and a remote control for controlling the image content displayed by means of the virtual reality glasses; Fig. 2 a schematic representation of a virtual environment within which a virtual motor vehicle is displayed to the wearer of the virtual reality glasses from a first virtual observation position; Fig. 3 a schematic representation in which the virtual observation position of the wearer of the virtual reality glasses on the virtual motor vehicle, as in Fig. 2 is shown, displayed; Fig. 4 again the virtual motor vehicle within the virtual environment, additionally showing an arrowhead-shaped selection symbol and a position symbol represented as a solid circle; Fig. 5 essentially the same representation as in Fig. 4, where the selection symbol has been brought into overlap with the circular position symbol; Fig. 6 a further representation of the virtual environment, wherein the virtual motor vehicle is now displayed from a second virtual observation position; and Fig. 7 essentially the same representation as in Fig. 1, wherein the position symbol comprises a direction sign directed from the second observation position toward the virtual motor vehicle.

[0029] In the figures, identical or functionally identical elements are provided with the same reference symbols.

[0030] A system for displaying a virtual environment, designated 10 in total, is in Fig. 1. The system 10 comprises virtual reality glasses 12, which are configured to display a virtual environment and one or more virtual objects within the virtual environment. The virtual reality glasses 12 can, for example, have two individual displays arranged in front of the respective eyes of a wearer 14 of the virtual reality glasses 12, so that, with the aid of the two displays, a spatial effect can be induced when displaying the virtual environment for the wearer 14.

[0031] Furthermore, the virtual reality glasses 12 can comprise a combination of a 3-axis gyrometer and acceleration sensors, by means of which, in particular, pivoting movements of the head of the wearer 14 about respective spatial axes x1, y2, and z1 can be detected. As a result, a respective virtual viewing angle of the wearer 14, from which one or more virtual objects within the virtual environment are displayed, can be changed based on respective observation positions within the virtual environment depending on a detected pivoting position of the head of the wearer 14 of the virtual reality glasses 12.

[0032] The system 10 further comprises a control device 16, which is informationally coupled to the virtual reality glasses 12. The control device 16 can, for example, be a computer with appropriate software installed thereon, so that the control device 16 can control the display of the virtual environment using the virtual reality glasses 12.

[0033] Furthermore, the system 10 also has a remote control 18, which is informationally coupled, preferably via a radio link, to both the virtual reality glasses 12 and the control device 16. Using the remote control 18, the wearer 14 can control the virtual reality glasses 12, for example, by pressing a button 20 on the remote control 18, in order to change the displayed virtual content accordingly.

[0034] In Fig. 2, a virtual environment 22 is shown, wherein a virtual motor vehicle 24 is displayed within the virtual environment 22 by means of the virtual reality glasses 12. X2 and z2, as well as y2, denote corresponding coordinate axes within the virtual environment 22. The letter A denotes a first observation position, i.e., a type of virtual viewpoint, within the virtual environment 22, from which the wearer 14 is currently looking at the motor vehicle 24.

[0035] The dashed circle 26 is a position symbol located at the first virtual observation position. Preferably, the position symbol 26 is not displayed at all within the virtual environment 22 in the view shown here. The position symbol 26 is shown here only for a better understanding of the following explanations.

[0036] In Fig. 3 shows a schematic representation of the virtual observation position A of the wearer 14 together with the position symbol 26 in a side view. The wearer 14 of the virtual reality glasses 12 is positioned according to the Fig. 2, the wearer 14 is thus virtually next to the motor vehicle 24 and is looking laterally at the motor vehicle 24. By pivoting his head, the wearer 14 can change a respective virtual viewing angle from which the motor vehicle 24 is displayed starting from the observation position 26. The virtual viewpoint of the wearer 14 remains unchanged; the wearer 14 can only change a respective viewing angle of the motor vehicle 24 by pivoting his head to the left and right or up and down.

[0037] If the wearer 14 of the virtual reality glasses 12 wishes to change their observation position A in order to view the motor vehicle 24 from a different virtual position, for example, from the front or from the rear, they simply need to touch the button 20 on the remote control 18. This activates a type of movement or jump mode.

[0038] As in Fig. 4, a position symbol 28 and a selection symbol 30 are then displayed within the virtual environment 22. The position symbol 28, displayed here in the form of a circular marking on the virtual floor of the virtual environment 22, is displayed at a position within the virtual environment 22 which corresponds to a second observation position B predefined within the virtual environment 22, i.e., another virtual viewpoint. The arrowhead-shaped selection symbol 30 is moved within the virtual environment 22 as a function of a detected head movement of the wearer 14 of the virtual reality glasses 12. Alternatively or additionally, it can also be provided that the selection symbol 30 is moved within the virtual environment 22 as a function of a detected eye movement of the wearer 14.

[0039] Should the wearer 14 of the virtual reality glasses 12 now wish to view the motor vehicle 24 from the further observation position B, he or she need only partially or completely overlap the selection symbol 30 with the position symbol 28 by means of a corresponding head and / or eye movement.

[0040] As soon as, as in Fig. 5, the selection symbol 30 has been brought into alignment with the position symbol 28, the control unit 16 registers that the position symbol 28 has been selected. In other words, it is registered that the wearer 14 may wish to change their virtual observation position because they have moved the selection symbol 30 over the position symbol 28. Preferably, appropriate visual feedback can be displayed as soon as the position symbol 28 has been selected. For example, the color of the position symbol 28 and / or also of the selection symbol 30 can be changed, so that the wearer 14 easily receives visual feedback about the selection of the position symbol 28.

[0041] The arrowhead-shaped selection symbol 30 is pivoted counterclockwise as soon as it has been brought into alignment with the position symbol 28. This marks a virtual standard viewing direction of the virtual motor vehicle 24, emanating from the second observation position B. Based on the orientation of the selection symbol 30, the wearer 14 of the virtual reality glasses 12 can therefore recognize the viewing direction in which they will view the virtual motor vehicle 24 as soon as they have changed their position from observation position A to observation position B. The standard viewing direction corresponds to the viewing direction in which the virtual motor vehicle 24 is displayed if the wearer 14 of the virtual reality glasses 12 holds their head straight. In this context, "straight" means that they have not pivoted their head to the left or right, or up or down.The virtual standard viewing direction emanating from the second observation position B onto the virtual motor vehicle 24 is identified in the plane spanned by the longitudinal direction x2 and the transverse direction y2 of the virtual environment 22. The wearer 14 of the virtual reality glasses 12 thus receives two-dimensional directional information, which identifies a standard viewing direction emanating from the second observation position B.

[0042] Should the wearer 14 of the virtual reality glasses 12 now actually wish to change their virtual observation position from observation position A to observation position B, they simply need to press the button 20 on the remote control 18. For example, the button 20 can have a corresponding key travel with a stop, whereby confirmation of the position change from the virtual observation position 26 to the virtual observation position 28 only occurs when the button has been pressed down by the wearer 14, for example, to its stop.

[0043] In Fig. 6, the motor vehicle 24 is shown starting from the observation position B that has just been virtually assumed, after a virtual change of position has been carried out from the observation position A to the observation position B. The wearer 14 of the virtual reality glasses 12 therefore does not move continuously around the motor vehicle 24 in order to get from the observation position A to the observation position B. Instead, the wearer 14 virtually jumps from the observation position A to the Fig. 6, as soon as he has confirmed the change of position by pressing the button 20 on the remote control 18, after he has brought the selection symbol 30 into alignment with the position symbol 28.

[0044] Below, the position symbol 28 is shown only in dashed lines; preferably, it is no longer displayed after the position change and is shown here only for clarity. If, for example, the wearer 14 still keeps their thumb on button 20 after the position change, i.e., is still touching it, the selection symbol 30 and the position symbol 26 will continue to be displayed. As soon as the wearer 14 releases the button 20 on the remote control 18, i.e., no longer touches it, the position symbol 26 and the selection symbol 30 will disappear.

[0045] In the present case, the wearer 14 can view the motor vehicle 24 from the side diagonally behind from the observation position B, wherein here too the viewing angle of the motor vehicle 24 is changed depending on detected pivoting movements of the head of the wearer 14, wherein the observation position remains fixed at the observation position B.

[0046] Should the wearer 14 again wish to change position, they can activate the movement or jump mode by touching the button 20 of the remote control 18, whereby the selection symbol 30 and the position symbol 26 are again displayed. As soon as the wearer 14 has brought the selection symbol 30 into alignment with the position symbol 26 through a corresponding head or eye movement, the position symbol 26 is selected. As soon as the wearer 14 then presses the button 20, a virtual position change from the observation position B to the observation position A is again carried out, so that the wearer 14 of the virtual reality glasses 12 can again view the motor vehicle 24 purely from the side, as in the Fig. 2, Fig. 4 and Fig. 5, looks.

[0047] Even when changing position from observation position B to observation position A, the virtual standard viewing direction starting from the first position A onto the virtual motor vehicle 24 is marked analogously to the procedure already explained by pivoting the selection symbol 30 clockwise as soon as it has been brought into overlap with the position symbol 26.

[0048] Within the virtual environment 22, in addition to the observation positions A and B, further position symbols (not shown here) can be displayed, so that the wearer 14 of the virtual reality glasses 12 can change their virtual observation position within the virtual environment 22 analogously to the procedure already described. Such position symbols can be arranged distributed around the motor vehicle 24 and also displayed distributed within the motor vehicle 24. The wearer 14 of the virtual reality glasses 12 can thus not only virtually jump from one observation position to the next, which lies outside the motor vehicle 24, but can also relocate their virtual observation position into the motor vehicle 24, for example, onto the driver's seat of the motor vehicle 24.

[0049] The wearer 14 of the virtual reality glasses 12 thus does not move continuously around the displayed motor vehicle 24; instead, he jumps from one virtual observation position to the next within the virtual environment 22 in order to change his viewing angle or perspective on the displayed motor vehicle 24.

[0050] In Fig. 7 is essentially the same situation as in Fig.1, wherein in this case the position symbol 28 has a direction sign 32. In the present case, the standard viewing direction emanating from the second observation position B onto the virtual motor vehicle 24 is identified by the direction sign 32 of the position symbol 28 being aligned from the second observation position B onto the virtual motor vehicle 24. It can be provided that the direction sign 32 is only displayed when the position symbol 28 has been selected, for example by the selection symbol 30 being brought into overlap with the position symbol 28. Alternatively, it is also possible for the direction sign 32 to always be displayed together with the position symbol 28.The latter has the advantage that the wearer 14 of the virtual reality glasses 12 - especially when a large number of further position symbols are displayed, which also have the direction sign 32 - can immediately recognize what the respective standard viewing direction will be based on the respective position symbols.

Claims

[1] Method for operating a virtual reality headset (12), comprising the steps: - Displaying at least one virtual object (24) arranged in a virtual environment (22) using the virtual reality glasses (12) from a first observation position (A) specified within the virtual environment (22); - Displaying at least one position symbol (28) at a position within the virtual environment (22) which corresponds to a second observation position (B) specified within the virtual environment (22); - Marking a virtual standard viewing direction from the second observation position (B) to the virtual object (24); - Selecting the displayed position symbol (28) once a predetermined selection action has been recorded; - Displaying the virtual object (24) from the second observation position (B) as soon as a predetermined confirmation action regarding the selected position symbol (28) has been recorded; - wherein the selection of the displayed position symbol (28) takes place as soon as the predetermined selection action has been detected that a selection symbol (30) displayed within the virtual environment (22) has been brought at least partially into overlap with the displayed position symbol (28), characterized by , that a respective virtual viewing direction, from which the virtual object (24) is displayed starting from the respective observation positions (A, B), is changed depending on a detected swivel position of a wearer's head (14) of the virtual reality glasses (12). [2] Method according to claim 1, characterized by, that the selection symbol (30) is moved within the virtual environment (22) depending on a detected head movement of the wearer (14) of the virtual reality glasses (12). [3] Method according to claim 1 or 2, characterized by , that the selection symbol (30) is moved within the virtual environment (22) depending on a detected eye movement of the wearer (14) of the virtual reality glasses (12). [4] Method according to any one of the preceding claims, characterized by , that the marking of the virtual standard viewing direction from the second observation position (B) to the virtual object (24) is effected by the selection symbol (30) having a direction sign which is aligned from the second observation position (B) to the virtual object (24) as soon as the selection symbol (30) has been brought at least partially into overlap with the displayed position symbol (28). [5] Method according to any one of claims 1 to 3, characterized by , that the marking of the virtual standard viewing direction from the second observation position (B) to the virtual object (24) is done by the fact that the position symbol (28) has a direction sign (32) which is directed from the second observation position (B) to the virtual object (24). [6] Method according to claim 5, characterized by , that the direction sign (32) is only displayed when the position symbol (28) has been selected. [7] Method according to claim 5, characterized by , that the direction sign (32) is always displayed together with the position symbol (28). [8] Method according to any one of the preceding claims, characterized by, that the marking of the virtual standard viewing direction from the second observation position (B) to the virtual object (24) takes place in a plane spanned by the longitudinal direction (x1) and the transverse direction (y2) of the virtual environment (22). [9] Method according to any one of the preceding claims, characterized by , that the virtual viewing direction and the virtual standard viewing direction coincide when the detected swivel position of the head corresponds to a predefined standard swivel position. [10] Method according to any one of the preceding claims, characterized by , that the virtual object (24) is displayed as a motor vehicle. [11] Method according to claim 10, characterized by , that the position symbol (28) is arranged and displayed outside or inside the motor vehicle (24). [12] System (10) with - a virtual reality headset (12) which is designed to ▪ to display at least one virtual object (24) arranged in a virtual environment (22) from a first observation position (A) specified within the virtual environment (22); ▪ to display at least one position symbol (28) within the virtual environment (22) at a position within the virtual environment (22) which corresponds to a second observation position (B) specified within the virtual environment; ▪ to mark a standard viewing direction from the second observation position (B) towards the virtual object (24); - a control device (16) which is designed to ▪ to select the displayed position symbol (28) as soon as a predetermined selection action has been detected, wherein the selection of the displayed position symbol (28) takes place as soon as the predetermined selection action has been detected that a selection symbol (30) displayed within the virtual environment (22) has been brought at least partially into overlap with the displayed position symbol (28); • to control the virtual reality glasses (12) in such a way that the virtual object (24) is displayed from the second observation position as soon as a predetermined confirmation action regarding the selected position symbol (28) has been detected, and ▪ to change a respective virtual viewing direction from which the virtual object (24) is displayed starting from the respective observation positions (A, B), depending on a detected swivel position of a wearer's head (14) of the virtual reality glasses (12).

Citation Information

Patent Citations

  • Virtual reality method and apparatus with improved navigation

    US20040027394A1

  • Image processing method and image processing apparatus

    US20070146390A1

  • Eye tracker based contextual action

    US20110175932A1

  • Display apparatus and method for hands free operation that selects a function when window is within field of view

    US7928926B2