WO2017197827A1 - Lunettes de réalité virtuelle et procédé de réglage associé - Google Patents

Lunettes de réalité virtuelle et procédé de réglage associé Download PDF

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Publication number
WO2017197827A1
WO2017197827A1 PCT/CN2016/101260 CN2016101260W WO2017197827A1 WO 2017197827 A1 WO2017197827 A1 WO 2017197827A1 CN 2016101260 W CN2016101260 W CN 2016101260W WO 2017197827 A1 WO2017197827 A1 WO 2017197827A1
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WO
WIPO (PCT)
Prior art keywords
user
information
eyes
glasses
adjustment information
Prior art date
Application number
PCT/CN2016/101260
Other languages
English (en)
Chinese (zh)
Inventor
赵磊
张梦晗
张雷
吕培
Original Assignee
华为技术有限公司
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by 华为技术有限公司 filed Critical 华为技术有限公司
Publication of WO2017197827A1 publication Critical patent/WO2017197827A1/fr

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    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B27/00Optical systems or apparatus not provided for by any of the groups G02B1/00 - G02B26/00, G02B30/00
    • G02B27/01Head-up displays
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B27/00Optical systems or apparatus not provided for by any of the groups G02B1/00 - G02B26/00, G02B30/00
    • G02B27/01Head-up displays
    • G02B27/017Head mounted
    • G02B27/0176Head mounted characterised by mechanical features
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B27/00Optical systems or apparatus not provided for by any of the groups G02B1/00 - G02B26/00, G02B30/00
    • G02B27/01Head-up displays
    • G02B27/017Head mounted
    • G02B27/0172Head mounted characterised by optical features
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B27/00Optical systems or apparatus not provided for by any of the groups G02B1/00 - G02B26/00, G02B30/00
    • G02B27/01Head-up displays
    • G02B27/017Head mounted
    • G02B2027/0178Eyeglass type

Definitions

  • the present invention relates to virtual reality technology, and in particular to a method for adjusting virtual reality glasses and virtual reality glasses.
  • VR glasses also known as VR helmets
  • the structure of these VR glasses is generally a "lens + screen" imaging mode, the lens is in front of the user's eyes, the screen is a certain distance from the lens, so that the user can see the virtual objects in the picture imaged by the screen.
  • the position of the screen and lens in the glasses is closely related to the pupil distance and diopter of the user's eyes.
  • the distance and diopter of the eyes of different users are different.
  • VR glasses need to adapt to the distance and diopter of the eyes of different users. Therefore, adjustment devices for adapting the distance and diopter are often installed on the VR glasses.
  • the position of the screen or lens in the glasses to achieve the best VR experience.
  • An object of the present invention is to provide a method for adjusting virtual reality glasses and virtual reality glasses for improving user experience.
  • a virtual reality glasses comprising a screen support, a lens, an identity information acquiring device, and an adjusting device, wherein the screen support is for fixing a screen, and the number of the lenses is two;
  • the identity information acquiring apparatus is configured to acquire identity information of a user
  • the adjusting device is configured to acquire the identity information when the user is a registered user. Adjusting information corresponding to the identity information acquired by the device; adjusting at least one of a position of the lens in the glasses and a position of the screen support in the glasses according to the adjustment information, thereby adapting Match the binocular information of the user.
  • the virtual reality glasses may or may not include a screen.
  • the terminal can be connected to the virtual reality glasses and the screen of the terminal can be used to display the picture.
  • the user is a registered user, and the identity information of the user may be the registered identity information.
  • the identity information of the user may be the unregistered identity information.
  • the adjusting device may match the identity information of the user with the pre-stored identity information.
  • the server matches the identity information of the user with the pre-stored identity information.
  • the adjusting apparatus or the server may acquire the pre-stored adjustment information in the memory corresponding to the matching identity information according to the preset correspondence relationship in the memory, as the Adjust the information.
  • the adjusting device comprises a stepping motor, a processing device and a transmission portion, the transmission portion is connected to the stepping motor, the lens and the At least one of the screen supports is coupled to the transmission portion;
  • the processing device is configured to acquire, according to the identity information acquired by the identity information acquiring device, adjustment information corresponding to the identity information, and send a pulse signal corresponding to the adjustment information to the stepping motor, thereby controlling the The rotation of the stepper motor;
  • the transmission portion is configured to adjust at least one of a position of the lens in the glasses and a position of the screen support in the glasses according to power generated by rotation of the stepping motor.
  • the transmission portion may include a gear, and the transmission portion may further include a rack, and the function of the transmission portion is realized by the gear structure.
  • the processing device includes a processor and a controller, Obtaining the identity information acquired by the information acquiring device, and acquiring adjustment information corresponding to the identity information;
  • the controller is configured to send a pulse signal corresponding to the adjustment information acquired by the processor to the stepping motor, thereby controlling rotation of the stepping motor.
  • the controller is specifically designed to control the stepper motor, thereby reducing the workload of the processor and allowing the processor to do other work while controlling the stepper motor.
  • the processing device may also include only a controller, and the controller is configured to acquire, according to the identity information acquired by the identity information acquiring device, adjustment information corresponding to the identity information, where the controller is configured to The stepping motor sends a pulse signal corresponding to the adjustment information acquired by the processor, thereby controlling the rotation of the stepping motor.
  • the processor may obtain the adjustment information from a memory included in the glasses according to the identity information.
  • the processor is further configured to send the adjustment information to the controller.
  • the adjustment information includes at least a distance between a binocular of the user and a refractive information of the eyes of the user
  • the refractive information includes a diopter of the user's eyes or a focal length of the user's eyes; or
  • the adjustment information includes at least one of lens adjustment information for indicating a target position of the lens in the glasses, and screen support adjustment information for indicating the a target position of the screen support in the glasses; correspondingly,
  • the controller is used to:
  • the processor may be configured to: send the identity information to a server; and receive adjustment information from the server.
  • the glasses may include a transmitter and a receiver, and the glasses may not include a transmitter and a receiver.
  • the processor may control a terminal connected to the glasses, and perform transmission and reception operations using the terminal transmitter and the receiver.
  • the adjustment information includes at least one of a distance between the eyes of the user and the refractive information of the eyes of the user
  • the pupil distance of the eyes of the user and the refractive information of the eyes of the user are not Different from the stepper motor, or the different configuration of the glasses itself, the compatibility of the glasses is strong, and the glasses can obtain the angular displacement corresponding to the glasses according to the adjustment information.
  • the lens adjustment information may be at least one distance between the lens and the screen support and the distance between the lenses
  • the screen support adjustment information may be the distance between the screen support and the lens and the distance between the two supports in the screen support. At least one.
  • the adjustment information includes the lens adjustment information and the screen support adjustment information
  • the distance between the lens and the screen support may be replaced by the distance between the lens and the fixed position of the lens
  • the distance between the screen support and the lens may be replaced by the screen support. The distance from the fixed part of the eyeglasses.
  • the target angular displacement amount may be obtained according to at least one of lens adjustment information and screen support adjustment information, and at least one of the lens adjustment information and the screen support adjustment information may be according to a user's pupil distance and a curvature of the user's eyes. At least one of the optical information is obtained.
  • the adjustment information includes a target angular displacement amount of the stepping motor.
  • the controller can directly use the angular displacement amount for the adjustment of the stepping motor, thereby reducing the calculation amount of the controller.
  • the target angular displacement and the identity information of the user may be pre-stored, and the corresponding relationship between the two may be established.
  • the identity information of the user is obtained, the angular displacement corresponding to the identity information of the user may be directly obtained.
  • the processor is used to:
  • the intermediate adjustment information including at least one of a pupil distance of the user's eyes and a diopter of the user's eyes; or the intermediate adjustment information includes lens adjustment information and a screen At least one item of adjustment information for indicating a target position of the lens in the glasses, the screen support adjustment information for indicating a target of the screen support in the glasses position;
  • the controller may be configured to: send a pulse signal corresponding to the target angular displacement amount to the stepping motor, thereby controlling rotation of the stepping motor, wherein a pulse number of the pulse signal is equal to the target angular displacement amount .
  • the processor may be further configured to: send the identity information to a server; and receive a target angular displacement from the server. Thereby reducing the amount of calculation of the glasses.
  • the binocular information includes a lay length of the eyes of the user
  • the stepping motor includes a stepping stepping motor
  • the transmission portion includes a pitch transmission portion.
  • the pitch transmission portion is coupled to the lens, and the pitch transmission portion is configured to:
  • the direction of lens displacement is perpendicular to the optical axis of the lens.
  • the stepping stepping motor is a stepping motor for adapting the user's two-eye distance.
  • the interpupillary transmission portion is a transmission portion for adapting the user's pupil distance of both eyes.
  • the number of the screen supports is two, and the screen support is used to fix two screens,
  • the cymbal transmission is also connected to the screen support, and the cymbal transmission is further configured to:
  • the user's viewing experience is further enhanced by having the screen directly in front of the user's eyes.
  • the direction of displacement of the screen support is perpendicular to the optical axis of the lens.
  • the interpupential transmission portion may include a first interpupential transmission portion and a second interpupential transmission portion, the first interpupential transmission portion is coupled to the lens, and the second interply transmission portion is coupled to the screen support.
  • the binocular information includes the refraction of the eyes of the user Information that the refractive information includes the diopter of the user's eyes or the focal length of the user's eyes, the stepping motor includes a refractive stepper motor, the transmission portion includes a refractive transmission portion, and the refractive power The transmission portion is coupled to the screen mount, and the refractive transmission portion is configured to:
  • the position of the screen mount in the spectacles is adjusted to adapt the refractive information of the user's eyes.
  • the stepping stepping motor is a stepping motor for adapting the refractive information of the eyes of the user.
  • the interpupillary transmission portion is a transmission portion for adapting the refractive information of the eyes of the user.
  • the binocular information includes the refraction of the eyes of the user Information that the refractive information includes the diopter of the user's eyes or the focal length of the user's eyes, the stepping motor includes a refractive stepper motor, the transmission portion includes a refractive transmission portion, and the refractive power A transmission portion is coupled to the lens, and the refractive transmission portion is configured to:
  • the position of the lens in the spectacles is adjusted to adapt the refractive information of the user's eyes.
  • the refractive power transmission portion may include a first refractive power transmitting portion and a second refractive power transmitting portion, the first refractive power transmitting portion is coupled to the lens, and the second refractive power transmitting portion is coupled to the screen support.
  • the glasses further includes a power supply device, where the power supply device is used The power is supplied to the stepping motor and the processing device.
  • the adjusting apparatus is further configured to:
  • the identity information and the adjustment information are sent to the server to cause the server to store the identity information and the adjustment information, thereby completing registration of the user.
  • the adjusting device is further used:
  • the identity information and the adjustment information are sent to the server to cause the server to store the identity information and the adjustment information, thereby completing registration of the user.
  • the glasses can still be automatically adjusted, thereby improving the user experience.
  • the identity information includes the iris information of the user, and the fingerprint of the user At least one of the information and the voiceprint information of the user; correspondingly, the identity information acquiring device comprises at least one of a camera, a fingerprint collector, and a microphone.
  • a virtual reality glasses including an identity information acquiring device and an adjusting device;
  • the identity information acquiring apparatus is configured to acquire identity information of a user
  • the adjusting device is configured to: when the user is a registered user, acquire adjustment information corresponding to the identity information obtained by the identity information acquiring device; and adjust an initial screen according to the adjustment information, for display adjustment After the picture.
  • the lens and the screen position can not be adjusted, by adjusting the screen according to the user's own information, the user's viewing experience can be improved.
  • the adjustment information includes a distance between the eyes of the user, and the adjusting device is configured to:
  • the adjustment information includes refraction information of both eyes of the user, and the refraction information includes The diopter of the user's eyes or the focal length of the eyes, the adjusting device is used to:
  • the initial picture is enlarged or reduced according to the refractive information to adapt the refractive information.
  • a computer device comprising a receiver, an adjustment device, and a transmitter;
  • the receiver is configured to receive identity information of a user from the virtual reality glasses;
  • the adjusting device is configured to: when the user is a registered user, acquire adjustment information corresponding to the identity information received by the receiver, and adjust an initial screen according to the adjustment information;
  • the transmitter is configured to send the adjusted screen to the virtual reality glasses.
  • the adjustment device is used to:
  • the adjustment information includes refraction information of both eyes of the user, and the refraction information includes The diopter of the user's eyes or the focal length of the eyes, the adjusting device is used to:
  • the initial picture is enlarged or reduced according to the refractive information to adapt the refractive information.
  • a fourth aspect provides a method for adjusting virtual reality glasses, the glasses including a lens and a screen support, wherein the screen support is used to fix a screen, and the method includes:
  • the binocular information includes a distance between the eyes of the user, and the position of the lens in the glasses according to the adjustment information
  • adjusting at least one of the positions of the screen support in the glasses includes:
  • the number of the screen supports is two, and the screen support is used to fix two screens, Adjusting, according to the adjustment information, at least one of a position of the lens in the glasses and a position of the screen support in the glasses further comprises:
  • the binocular information includes refraction information of the eyes of the user, the refraction The information includes the diopter of the user's eyes or the focal length of the user's eyes, the position of the lens in the glasses and the screen support being in accordance with the adjustment information At least one of the positions in the glasses is adjusted to include:
  • the position of the screen support in the glasses is adjusted to adapt the refractive information of the eyes of the user.
  • the binocular information includes refraction information of the eyes of the user
  • the refractive information includes the diopter of the user's eyes or the focal length of the user's eyes, the position of the lens in the glasses and the screen support in the glasses according to the adjustment information
  • At least one of the adjustments to the location includes:
  • the position of the lens in the glasses is adjusted to adapt the refractive information of the eyes of the user.
  • the adjustment information includes a distance between a binocular of the user and a binocular of the user At least one of the refractive information, the refractive information including the diopter of the user's eyes or the focal length of the user's eyes; or
  • the adjustment information includes at least one of lens adjustment information for indicating a target position of the lens in the glasses, and screen support adjustment information for indicating the The screen mount is at a target location in the glasses.
  • the method further includes:
  • the identity information and the adjustment information are sent to the server to cause the server to store the identity information and the adjustment information, thereby completing registration of the user.
  • the method further includes:
  • the identity information and the adjustment information are sent to the server to cause the server to store the identity information and the adjustment information, thereby completing registration of the user.
  • the acquiring the adjustment information corresponding to the identity information includes:
  • a fifth aspect provides a method for adjusting a virtual reality picture, where the method includes:
  • the initial screen is adjusted according to the adjustment information for displaying the adjusted screen.
  • the adjustment information includes a distance between the eyes of the user, and the adjusting the initial screen according to the adjustment information includes:
  • the adjustment information includes refraction information of both eyes of the user, and the refraction information includes The diopter of the eyes of the user or the focal length of the eyes, the adjusting the initial picture according to the adjustment information includes:
  • the initial picture is enlarged or reduced according to the refractive information to adapt the refractive information.
  • a sixth aspect provides a method for adjusting a virtual reality picture, where the method includes:
  • the adjustment information includes a distance between the eyes of the user, and the adjusting the initial picture according to the adjustment information includes:
  • the adjustment information includes refractive information of both eyes of the user, and the refractive information includes a diopter of the eyes of the user or a focal length of the eyes, where the initial picture is adjusted according to the adjustment information.
  • Making adjustments includes:
  • the initial picture is enlarged or reduced according to the refractive information to adapt the refractive information.
  • a computer apparatus comprising a processor and a memory; the memory for storing code; the processor reading the code stored in the memory for performing the fifth aspect The method provided.
  • a computer storage medium for storing computer software instructions for execution by a processor of the seventh aspect for performing the method provided by the fifth aspect.
  • a computer apparatus comprising a processor and a memory; the memory for storing code; the processor reading the code stored in the memory for performing the sixth aspect The method provided.
  • a computer storage medium for storing computer software instructions for execution by a processor of the ninth aspect for performing the method provided by the sixth aspect.
  • FIG. 1a is a schematic structural diagram of a virtual reality glasses according to an embodiment of the present invention.
  • FIG. 1b is a schematic structural diagram of a portion of a virtual reality glasses according to an embodiment of the present invention.
  • FIG. 2 is a schematic diagram of a logical structure of a virtual reality glasses according to an embodiment of the present invention
  • FIG. 3 is a schematic diagram of a logical structure of a virtual reality glasses according to an embodiment of the present invention.
  • FIG. 4 is a schematic diagram of a logical structure of a computer device according to an embodiment of the present invention.
  • FIG. 5 is a schematic flowchart of a method for adjusting virtual reality glasses according to an embodiment of the present invention
  • FIG. 6 is a schematic flowchart of a method for adjusting virtual reality glasses according to an embodiment of the present invention.
  • FIG. 7 is a schematic flowchart of a method for adjusting virtual reality glasses according to an embodiment of the present invention.
  • FIG. 8 is a schematic structural diagram of hardware of a computer device according to an embodiment of the present invention.
  • FIG. 9 is a schematic structural diagram of hardware of a computer device according to an embodiment of the present invention.
  • FIG. 10 is a schematic structural diagram of hardware of a computer device according to an embodiment of the present invention.
  • FIG. 1a is a schematic structural diagram of a virtual reality glasses 100 according to an embodiment of the present invention
  • FIG. 1b is a partial structural diagram of a virtual reality glasses 100 according to an embodiment of the present invention, as shown in FIG. 1a.
  • the virtual reality glasses 100 can include a screen mount 102, a lens 104, a processor 106, and a stepper motor 108.
  • the screen support 102 is for fixing the screen 110, and the virtual reality glasses 100 may include the screen 110.
  • the virtual reality glasses 100 may also not include the screen 110.
  • the screen 110 may also be a screen of the terminal, the terminal is connected to the virtual reality glasses 100, and the screen of the terminal is fixed to the screen support 102, thereby achieving adjustment by adjusting the screen support 102.
  • the position in the virtual reality glasses 100 adjusts the position of the screen 110 in the virtual reality glasses 100.
  • the lens 104 is located between the screen 110 and the eyes of the user.
  • the virtual reality glasses 100 may further include at least one of a camera, a fingerprint collector, and a microphone.
  • the camera is used to collect iris information of the user
  • the fingerprint collector is used to collect fingerprint information of the user
  • the microphone is used to collect voiceprint information of the user (or For voice messages).
  • the virtual reality glasses 100 may further include a knob 112.
  • the user adjusts the position of the screen support 102 and the lens 104 in the virtual reality glasses 100 by turning the knob 112.
  • the knob 112 is connected to the lens 104 through the first gear structure, and the knob 112 passes
  • the second gear structure is coupled to a lens 104 for adapting the user's pupil distance and the second gear structure for adapting the diopter of the user's eyes.
  • Stepper motor 108 is also coupled to lens 104 via a first gear structure, and stepper motor 108 is also coupled to lens 104 via a second gear structure.
  • the processor 106 can also be coupled to a stepper motor 108 that can be used to send a pulse signal to the stepper motor 108 to control the rotation of the stepper motor 108.
  • the stepping motor 108 is connected to the knob 112 by a gear structure.
  • the knob 112 when the knob 112 is rotated, the position of the lens 104 in the virtual reality glasses is adjusted, and the stepping motor 108 is also rotated together with the knob 112;
  • the stepper motor 108 rotates, the position of the lens 104 in the virtual reality glasses will be adjusted, and the knob 112 will also be stepped.
  • the motor rotates together.
  • the processor 106 can also be used to control the camera, the fingerprint collector, and the microphone to collect the identity information of the user.
  • the virtual reality glasses 100 can also include a transmitter and a receiver, and the processor 106 can also be used to control the transmitter and receiver to send and receive messages. When the screen of the terminal is fixed to the screen support 102, the processor 106 can be used to communicate with the terminal, thereby controlling the transmitter and receiver of the terminal to send and receive messages, or to control the screen display of the terminal.
  • the virtual reality glasses 100 can also include a memory in which the code for execution by the processor 106 and the data required by the processor 106 are stored.
  • the virtual reality glasses 100 may further include a controller, such as but not limited to a single chip microcomputer, the controller is connected to the processor 106, the controller is connected to the stepping motor 108, and the processor 106 is used to the controller.
  • the adjustment information is sent, and the controller is configured to send a pulse signal corresponding to the adjustment information to the stepping motor 108, thereby controlling the rotation of the stepping motor 108.
  • the virtual reality glasses 100 may also include a power supply device such as, but not limited to, a battery for powering the processor 106, the stepper motor 108, the memory, and the controller.
  • a power supply device such as, but not limited to, a battery for powering the processor 106, the stepper motor 108, the memory, and the controller.
  • FIG. 2 is a schematic diagram of a logical structure of a virtual reality glasses 100 according to an embodiment of the present invention.
  • the virtual reality glasses 100 are simplified to be described as glasses 100.
  • the virtual reality glasses 100 are shown in FIG. 2 .
  • the screen support 102, the lens 104, the identity information acquisition device 210, and the adjustment device 220 are included.
  • the number of lenses 104 is two.
  • the identity information obtaining device 210 is configured to acquire identity information of the user.
  • the adjusting device 220 is configured to obtain, after the user is a registered user, the adjustment information corresponding to the identity information of the user acquired by the identity information acquiring device 210; and the position of the lens 104 in the glasses 100 and the screen support 102 according to the adjustment information At least one of the positions in the glasses 100 is adjusted to fit the binocular information of the user.
  • the adjusting device 220 may include a stepping motor 108, a processing device and a transmission portion.
  • the transmission portion is connected to the stepping motor 108, and at least one of the lens 104 and the screen holder 102 is connected to the transmission portion.
  • the processing device is configured to acquire, according to the identity information of the user acquired by the identity information acquiring device 210, the adjustment information corresponding to the identity information of the user, and send the pulse signal corresponding to the adjustment information to the stepping motor 108, thereby controlling the stepping motor 108.
  • the rotation is used to adjust at least one of the position of the lens 104 in the glasses 100 and the position of the screen support 102 in the glasses 100 in accordance with the power generated by the rotation of the stepping motor 108.
  • the binocular information may include a user's pupil distance, corresponding
  • the stepping motor 108 includes a stepping stepping motor, the transmission portion includes a pitch transmission portion, the pitch transmission portion is coupled to the lens 104, and the pitch transmission portion is configured to: the power generated by the stepping motor according to the pitch distance, the lens 104
  • the distance between the two optical centers is adjusted such that the distance between the two optical centers is equal to the pupil distance of the user's eyes, wherein the midpoint between the two optical centers does not change in position in the glasses 100. The purpose of this is to enable the user to be positioned directly in front of the user's eyes while the user is wearing the glasses 100 for viewing.
  • the screen support 102 is in the glasses 100.
  • the position does not need to be adjusted to fit the user's pupil distance.
  • the screen support 102 is used to fix two screens, which means that the glasses 100 include two screens.
  • the cymbal transmission portion is also connected to the screen support 102.
  • the connection may be directly or indirectly connected.
  • the connection between the cymbal transmission portion and the lens 104 may also be a direct connection or an indirect connection.
  • the pitch drive is coupled to one of the lens 104 and the screen mount 102, and the lens 104 is coupled to the screen mount 102.
  • the interpupillary transmission portion is further configured to adjust the distance between the two supports of the screen support 102 according to the power generated by the stepping motor, so that the distance between the centers of the two screens is equal to the eyes of the user.
  • the lay length, in which the midpoint between the two screen centers is the same in the position in the glasses 100.
  • the purpose of this is to enable the user to view the two screens directly in front of the user's eyes when the user wears the glasses 100 for viewing.
  • the stepping motor can be two, and the two-way transmission can also be two, respectively connecting the lens 104 and the screen support 102, thereby respectively adjusting the position of the lens 104 in the glasses 100 and the screen support 102 in the glasses.
  • the pitch distance may not be one.
  • the pitch transmission portion is coupled to the lens 104.
  • the pitch transmission portion may be coupled to the screen support 102, and the screen support 102 may be coupled to the lens 104.
  • the pitch transmission portion is coupled to the screen support 102.
  • the pitch transmission portion may be coupled to the lens 104, and the lens 104 may be coupled to the screen support 102.
  • the binocular information may include refractive information of the eyes of the user, and the refractive information includes the diopter of the eyes of the user or the focal length of the eyes of the user.
  • the stepping motor 108 includes the refractive stepping motor.
  • the transmission portion includes a refractive transmission portion.
  • the refractive power transmission portion may be connected to the screen support 102, and the refractive power transmission portion is configured to: adjust the position of the screen support 102 in the glasses 100 according to the power generated by the refractive stepping motor, thereby adapting Refractive information of the user's eyes.
  • the purpose of this is to enable the user to wear the glasses 100 When viewed, the screen displayed on screen 110 can be clearly imaged on the retina by the lens 104 and the lens of the user's eyes.
  • the refractive transmission portion may also be coupled to the lens 104, and the refractive transmission portion is configured to adjust the position of the lens 104 in the glasses 100 according to the power generated by the refractive stepping motor, thereby adapting the eyes of the user.
  • Refractive information is also, the purpose of this is to enable the screen displayed by the screen 110 to be clearly imaged on the retina by the lens 104 and the lens of the user's eyes when the user is wearing the glasses 100 for viewing.
  • the refractive power transmission portion can be directly or indirectly connected to the lens 104 and the screen support 102, thereby simultaneously adjusting the position of the lens 104 in the glasses 100 and the position of the screen support 102 in the glasses 100, thereby adapting the user. Refractive information of both eyes.
  • the refractive stepping motor can be two, and the refractive transmission portion can also be two, respectively connecting the lens 104 and the screen support 102, thereby respectively adjusting the position of the lens 104 in the glasses 100 and the screen support 102 in the glasses. The location in 100.
  • the stepping motor 108 includes a refractive stepping motor and a stepping stepping motor
  • the transmission portion includes a pitch transmission portion and Refractive transmission.
  • the processing device may only include the processor 106, and the processing device may also include only the controller.
  • the processing device may also include a memory for storing code of the method performed by the processing device.
  • the processing device may further include a processor 106 and a controller, where the processor 106 is configured to obtain, according to the identity information of the user acquired by the identity information acquiring device 210, the adjustment information corresponding to the identity information of the user;
  • the motor 108 transmits a pulse signal corresponding to the adjustment information acquired by the processor 106, thereby controlling the rotation of the stepping motor 108.
  • the adjustment information may include at least one of a pupil distance of the user's eyes and a refractive information of the eyes of the user, and the refractive information includes the diopter of the eyes of the user or the focal length of the eyes of the user.
  • the adjustment information may include at least one of lens adjustment information and a screen support 102 adjustment information for indicating a target position of the lens 104 in the glasses 100, and the screen support 102 adjusting information for indicating the screen The support 102 is at a target location in the glasses 100.
  • the controller is configured to acquire a target angular displacement amount of the stepping motor 108 according to the adjustment information; and send a pulse signal corresponding to the target angular displacement amount to the stepping motor 108, thereby controlling the rotation of the stepping motor 108, wherein the pulse signal is The number of pulses is equal to the target angular displacement.
  • the glasses 100 can be automatically restored to an initial state before being adjusted.
  • the initial state at least one of the lens 104 and the screen support 102 is at a preset initial position.
  • the specific implementation manner of obtaining the target angular displacement may be: at least one according to the lens adjustment information and the screen support adjustment information, and according to the preset adjustment according to the lens
  • the correspondence between the information and the angular displacement amount, and the correspondence relationship between the screen support adjustment information and the angular displacement amount are obtained, for example, the target angular displacement amount is obtained by a look-up table method.
  • the specific implementation manner may also be: calculating at least one of the lens adjustment information and the screen support adjustment information, and calculating the target angular displacement according to the pre-stored step angle of the stepping motor 108 and the displacement value corresponding to the step angle.
  • the glasses 100 may not be automatically restored to an initial state, and the controller may obtain at least one item of the target angular displacement according to the lens adjustment information and the screen support adjustment information, which may be: according to the lens adjustment. At least one of information and screen mount adjustment information, and at least one of the position of the current lens 104 in the glasses 100 and the position of the current screen mount 102 in the glasses 100, calculating the displacement difference that the lens 104 needs to move and the screen mount 102 At least one displacement difference that needs to be moved; at least one displacement difference according to the lens 104 to be moved and a displacement difference that the screen support 102 needs to move, and a correspondence according to a preset displacement according to the lens 104 and the angular displacement amount, and The correspondence between the displacement of the screen support 102 and the angular displacement amount is obtained, for example, by the look-up table method to obtain the target angular displacement amount.
  • the specific implementation manner may also be: at least one displacement difference according to the movement of the lens 104 and a displacement difference that the screen support 102 needs to move, and a displacement value according to the pre-stored stepping angle of the stepping motor 108 and a step angle. , calculate the target angular displacement.
  • the number of the stepping motors 108 is at least two, the number of step angles and angular displacements is also at least two, which are in one-to-one correspondence with the stepping motor 108.
  • the controller may obtain the target angular displacement according to at least one of the user's pupil distance and the refractive information of the user's eyes, and may be: according to the user's eyes and the user. At least one of the refractive information of the binoculars acquires at least one of lens adjustment information and screen support adjustment information; and obtains a target angular displacement amount according to at least one of lens adjustment information and screen support adjustment information.
  • the specific implementation manner of acquiring at least one of the lens adjustment information and the screen support adjustment information according to the refractive information of the eyes of the user may be: according to the refractive information of the eyes of the user, and the lens 104 according to the preset refractive information.
  • the correspondence between the positions in the glasses 100 and the correspondence between the preset refractive information and the position of the screen support 102 in the glasses 100 acquire at least one of lens adjustment information and screen support adjustment information.
  • the controller may obtain the target angular displacement according to at least one of a user's pupil distance and a refractive information of the user's eyes, which may be: according to the user's At least one of the pupil distance of the eyes and the refractive information of the eyes of the user, and the corresponding relationship between the preset pupil distance and the angular displacement amount and the correspondence between the preset refractive information and the angular displacement amount, and the target angular displacement is obtained. the amount.
  • the adjustment information may also include a target angular displacement of the stepper motor 108.
  • the processor 106 is configured to send the identity information of the user to a server.
  • the intermediate adjustment information including at least one of a pupil distance of the user's eyes and a diopter of the user's eyes; or the intermediate adjustment information includes lens adjustment information and a screen
  • the lens adjustment information is used to indicate a target position of the lens 104 in the glasses 100
  • the screen support adjustment information is used to indicate that the screen support 102 is in the glasses a target position in 100
  • a target angular displacement amount of the stepping motor 108 is acquired according to the intermediate adjustment information.
  • the processor 106 can also be configured to send the identity information of the user to the server. Receives the angular displacement of the target from the server.
  • the server pre-stores the identity information and adjustment information of the user.
  • the eyewear 100 further includes a power supply device for powering the stepper motor 108 and the processing device.
  • the adjusting device 220 can also be used to determine the position of the user in the glasses 100 and the screen support 102 in the glasses 100 when the user is an unregistered user. After the manual adjustment of at least one of the locations is completed, the adjustment information is obtained; the identity information and the adjustment information of the user are stored, thereby completing the registration of the user; or the identity information and the adjustment information of the user are sent to the server to enable the server to store The user's identity information and adjustment information, thereby completing the user's registration.
  • the specific implementation manner of the adjustment device 220 determining that the user manually completes at least one of the position of the lens 104 in the glasses 100 and the position of the screen support 102 in the glasses 100 may be determining that the user clicked on the glasses 100 or It is a corresponding button on the screen 110, and may be an action that the user does not generate an adjustment from a certain moment to the current moment after the user generates the adjusted motion, wherein the duration from a certain moment to the current moment is greater than the preset duration.
  • the adjusting device 220 obtains the adjustment information by acquiring the target angular displacement.
  • the stepping motor 108 can feed back the angular displacement generated by the user manually. It is also possible to first acquire at least one of the pupil distance of the user's eyes and the diopter of the user's eyes, or obtain at least one of the lens adjustment information and the screen support adjustment information to further obtain the target angular displacement.
  • the adjusting device 220 obtains the adjustment information, which may be at least one of acquiring lens adjustment information and screen support adjustment information. Specifically, at least one of the lens adjustment information and the screen support adjustment information may be associated with the variable resistor. And determining at least one of lens adjustment information and screen support adjustment information by the resistance value of the variable resistor.
  • the target angular displacement amount may be acquired first, or at least one of the user's pupil distance and the user's binocular diopter may be acquired first, thereby further acquiring at least one of lens adjustment information and screen support adjustment information.
  • the adjusting device 220 may obtain at least one of a pupil distance of the eyes of the user and a diopter of the eyes of the user.
  • the target angular displacement may be acquired first, or the lens adjustment information may be acquired first.
  • at least one of the screen support adjustment information to further acquire at least one of a user's pupil distance and a diopter of the user's eyes.
  • the adjusting device 220 may be further configured to: when the user is an unregistered user, receive the adjustment information input by the user; and the lens 104 is located according to the adjustment information. At least one of a position in the glasses 100 and a position of the screen support 102 in the glasses 100 is adjusted to adapt binocular information of the user; storing identity information of the user and the adjustment information And completing the registration of the user; or sending the identity information of the user and the adjustment information to the server, so that the server stores the identity information of the user and the adjustment information, thereby completing the user's registered.
  • the identity information may include at least one of the user's iris information, the user's fingerprint information, and the user's voiceprint information; correspondingly, the identity information acquiring device 210 may include a camera. At least one of a fingerprint collector and a microphone.
  • FIG. 3 is a schematic diagram of a logical structure of a virtual reality glasses 300 according to an embodiment of the present invention.
  • the virtual reality glasses 300 include an identity information acquiring device 310 and an adjusting device 320.
  • the virtual reality glasses 300 may not include a position for adjusting the lens in the glasses as compared with the virtual reality glasses 100. And means for adjusting the position of the screen support in the glasses, ie not including the stepper motor, the knob and the transmission.
  • the virtual reality glasses 300 include a lens, a screen mount, and a screen mount for fixing the screen.
  • the virtual reality glasses 300 (hereinafter simply referred to as glasses 300) further include an identity information acquiring device 310 and an adjusting device 320.
  • the identity information obtaining device 310 is configured to acquire identity information of the user.
  • the adjusting device 320 is configured to obtain, after the user is a registered user, the adjustment information corresponding to the identity information of the user obtained by the identity information acquiring device 310; and adjust the initial screen according to the adjustment information, so as to display the adjusted screen.
  • the initial screen refers to the screen that would otherwise be used for display on the screen.
  • the adjustment information includes the distance between the eyes of the user
  • the adjusting device 320 is configured to: adjust the position of the initial screen (also referred to as an initial screen) displayed on the screen according to the interpupillary distance, thereby adapting Match the distance.
  • the initial screen also referred to as an initial screen
  • the adjustment information includes refractive information of the eyes of the user
  • the refractive information includes the diopter of the eyes of the user or the focal length of the eyes
  • the adjusting device 320 is configured to: initialize according to the refractive information The screen is enlarged or reduced to fit the refractive information.
  • the initial picture is enlarged; the diopter of the user's eyes is greater than the preset
  • the initial screen is enlarged.
  • the adjustment device 320 includes a processor and a memory for reading code in the memory for performing the method performed by the adjustment device 320.
  • the glasses 300 further include a power supply device for powering the adjustment device 320.
  • the adjusting device 320 may be further configured to: when the user is an unregistered user, receive the adjustment information input by the user; adjust the initial screen according to the adjustment information, to For displaying the adjusted picture, thereby adapting the binocular information of the user; storing the identity information of the user and the adjustment information, thereby completing registration of the user; or sending the identity information of the user to the server And adjusting the information to cause the server to store the identity information of the user and the adjustment information, thereby completing registration of the user.
  • the identity information may include at least one of the user's iris information, the user's fingerprint information, and the user's voiceprint information; correspondingly, the identity information acquiring device 310 may include a camera. At least one of a fingerprint collector and a microphone.
  • the adjustment information may further be at least one of lens adjustment information and a screen support adjustment information, where the lens adjustment information is used to indicate a target position of the lens in the glasses 300,
  • the screen mount adjustment information is used to indicate a target position of the screen mount in the glasses 300.
  • the specific implementation manner of adjusting the initial screen according to the adjustment information may be: Obtaining at least one of a pupil distance of the user's eyes and a refractive information of the user's eyes according to at least one of the lens adjustment information and the screen support adjustment information; at least one according to the pupil distance of the user's eyes and the refractive information of the user's eyes Item, adjust the initial screen.
  • the refractive information of the eyes of the user may be calculated according to at least one of the lens adjustment information and the screen support adjustment information. At least one of the lens adjustment information and the screen support adjustment information may be obtained, and the user's eyes are acquired according to the correspondence between the preset lens adjustment information and the refractive information and the correspondence between the screen support adjustment information and the refractive information. Refractive information.
  • FIG. 4 is a schematic diagram showing the logical structure of a computer device 400 according to an embodiment of the present invention.
  • computer device 400 can be a server, and computer device 400 includes a receiver 410, an adjustment device 420, and a transmitter 430.
  • the receiver 410 is configured to receive identity information of a user from the virtual reality glasses.
  • the virtual reality glasses may be virtual reality glasses 100 or virtual reality glasses 300.
  • the adjusting device 420 is configured to acquire, when the user is a registered user, adjustment information corresponding to the identity information of the user received by the receiver 410, and adjust the initial screen according to the adjustment information.
  • the transmitter 430 is configured to send the adjusted screen to the virtual reality glasses.
  • the adjustment information includes the distance between the eyes of the user, and the adjusting device 420 is configured to adjust the position of the initial screen displayed on the screen according to the lay length, thereby adapting Match the distance.
  • the adjustment information includes refractive information of the eyes of the user
  • the refractive information includes the diopter of the eyes of the user or the focal length of the eyes
  • the adjusting device 420 is configured to: according to the refractive information The initial picture is enlarged or reduced to fit the refractive information.
  • FIG. 5 is a schematic flowchart diagram of a method for adjusting virtual reality glasses according to an embodiment of the present invention. The method can be performed by the virtual reality glasses 100, the steps of the method being as follows:
  • the binocular information includes a pupil distance of the eyes of the user, and the position of the lens 104 in the glasses 100 and the screen support 102 are in the glasses according to the adjustment information.
  • the specific implementation manner of adjusting at least one of the positions in 100 may be: adjusting the distance between the two optical centers of the lens 104 according to the adjustment information, so that the distance between the two optical centers is equal to the eyes of the user The lay length, wherein the midpoint between the two optical centers does not change in position in the glasses 100.
  • the number of screen supports 102 is two, and the screen support 102 is used to fix two screens.
  • the position of the lens 104 in the glasses 100 and the screen support 102 are The specific implementation manner of adjusting at least one of the positions in the glasses 100 may further be: adjusting the distance between the two supports of the screen support 102 according to the adjustment information, so that the centers between the two screens are The distance is equal to the pupil distance of the user's eyes, wherein the midpoint between the two screen centers does not change in position in the glasses 100.
  • the binocular information includes refractive information of the eyes of the user, and the refractive information includes the diopter of the eyes of the user or the focal length of the eyes of the user, and the lens 104 is in accordance with the adjustment information.
  • a specific implementation manner of adjusting at least one of a position in the glasses 100 and a position of the screen support 102 in the glasses 100 may be: according to the adjustment information, the screen support 102 is in the The position in the spectacles 100 is adjusted to adapt the refractive information of the user's eyes.
  • the binocular information includes refractive information of both eyes of the user, and the refractive information includes a diopter of the eyes of the user or a focal length of the eyes of the user,
  • the specific implementation manner in which the adjustment information adjusts at least one of the position of the lens 104 in the glasses 100 and the position of the screen support 102 in the glasses 100 may be:
  • the position of the lens 104 in the glasses 100 is adjusted to adapt the refractive information of the eyes of the user.
  • the adjustment information includes at least one of a pupil distance of the eyes of the user and refractive information of both eyes of the user, and the refractive information includes diopter of the eyes of the user. Or the focal length of the eyes of the user; or the adjustment information includes at least one of lens adjustment information and screen support adjustment information, wherein the lens adjustment information is used to indicate that the lens 104 is The target position in the glasses 100, the screen support adjustment information is used to indicate a target position of the screen support 102 in the glasses 100.
  • the method 500 further includes:
  • the method 500 further includes: receiving, when the user is an unregistered user, the adjustment information input by the user; and the lens 104 is in the glasses 100 according to the adjustment information. And a position of the screen support 102 in the glasses 100 is adjusted to adapt the binocular information of the user; storing the identity information of the user and the adjustment information, thereby completing The registration of the user; or sending the identity information of the user and the adjustment information to a server, so that the server stores the identity information of the user and the adjustment information, thereby completing registration of the user.
  • the specific implementation manner of the adjustment information corresponding to the identity information of the user may be: sending identity information of the user to a server; and receiving the adjustment information from the server.
  • FIG. 1a, FIG. 1b and FIG. 2 are based on the same concept.
  • FIG. 1a, FIG. 1b and FIG. 2 are based on the same concept.
  • details refer to the description of the operations performed by the corresponding components in the device embodiment of the present invention, and details are not described herein again. .
  • FIG. 6 is a schematic flowchart diagram of a method for adjusting virtual reality glasses according to an embodiment of the present invention. The method can be performed by the virtual reality glasses 300, the steps of the method being as follows:
  • S601 Acquire user identity information.
  • the adjustment information includes a distance between the eyes of the user
  • the specific implementation manner of adjusting the initial screen according to the adjustment information may be: The pitch is adjusted to adjust the position of the initial screen displayed on the screen to adapt the lay length.
  • the adjustment information includes refractive information of both eyes of the user, and the refractive information includes a diopter of the eyes of the user or a focal length of the eyes, according to the adjustment
  • the specific implementation of adjusting the initial picture may be: enlarging or reducing the initial picture according to the refractive information, thereby adapting the refractive information.
  • FIG. 7 is a schematic flowchart diagram of a method for adjusting virtual reality glasses according to an embodiment of the present invention. The method can be performed by computer device 400, the steps of which are as follows:
  • the adjustment information includes a distance between the eyes of the user
  • the specific implementation of adjusting the initial picture according to the adjustment information may be: performing the initial picture according to the distance The position displayed on the screen is adjusted to adapt the lay length.
  • the adjustment information includes refractive information of both eyes of the user, and the refractive information includes a diopter of the eyes of the user or a focal length of the eyes, where the adjustment information is according to the adjustment information.
  • the specific implementation of adjusting the initial screen may be: enlarging or reducing the initial screen according to the refractive information, thereby adapting the refractive information.
  • FIG. 8 is a schematic diagram showing the hardware structure of a computer device 800 according to an embodiment of the present invention.
  • computer device 800 can be implemented as one implementation of virtual reality glasses 100, which includes processor 106, controller 802, memory 804, input/output interface 806, communication interface 808, bus 810, and steps.
  • the processor 106, the controller 802, the memory 804, the input/output interface 806, the communication interface 808, and the stepping motor 108 implement a communication connection with each other through the bus 810.
  • Controller 802 can employ microcontrollers such as, but not limited to, STM32.
  • the processor 106 can be a general-purpose central processing unit (CPU), a microprocessor, an application specific integrated circuit (ASIC), or one or more integrated circuits for executing related programs.
  • CPU central processing unit
  • ASIC application specific integrated circuit
  • the memory 804 can be a read only memory (ROM), a static storage device, a dynamic storage device, or a random access memory (RAM).
  • the memory 804 can store an operating system and applications.
  • the functions required to be executed by the processing device included in the virtual reality glasses 100 provided by the embodiments of the present invention, or the program codes for implementing the technical solutions provided by the embodiments of the present invention are saved in the memory 804, and The operations or methods required to be performed by the processing device included in the virtual reality glasses 100 are executed by the processor 106 or the controller 802.
  • the input/output interface 806 is for receiving input data and information, and outputting data such as operation results.
  • the input interface can be the receiver above and the output device can be the transmitter above.
  • Communication interface 808 implements communication between computer device 800 and other devices or communication networks using transceivers such as, but not limited to, transceivers, which may serve as the transmitters above, as well as the above. Device.
  • Bus 810 can include a path for communicating information between various components of computer device 800, such as processor 106, memory 804, input/output interface 806, and communication interface 808.
  • computer device 800 shown in FIG. 8 only shows the processor 106, the controller 802, the memory 804, the input/output interface 806, the communication interface 808, the bus 810, and the stepper motor 108, in a specific implementation process
  • computer device 800 also includes other components necessary to achieve proper operation, such as the components of the device embodiment corresponding to Figures 1a, 1b, and 2.
  • computer device 800 may also only include the components necessary to implement embodiments of the present invention, and does not necessarily include all of the devices shown in FIG.
  • FIG. 9 is a schematic structural diagram of hardware of a computer device 900 according to an embodiment of the present invention.
  • computer device 900 can be implemented as one implementation of virtual reality glasses 300, which includes processor 902, memory 904, input/output interface 906, communication interface 908, and bus 910.
  • the processor 902, the memory 904, the input/output interface 906, and the communication interface 908 implement communication connections with each other through the bus 910.
  • the processor 902 can be a general-purpose central processing unit (CPU), a microprocessor, an application specific integrated circuit (ASIC), or one or more integrated circuits for executing related programs.
  • CPU central processing unit
  • ASIC application specific integrated circuit
  • the memory 904 may be a read only memory (ROM), a static storage device, a dynamic storage device, or a random access memory (RAM).
  • the memory 904 can store an operating system as well as an application.
  • the functions to be performed by the adjusting device 320 included in the virtual reality glasses 300 provided by the embodiments of the present invention, or the program codes for implementing the technical solutions provided by the embodiments of the present invention are saved in the memory 904.
  • the operations or methods that need to be performed by the adjustment device 320 included in the virtual reality glasses 300 are executed by the processor 902.
  • the input/output interface 906 is for receiving input data and information, and outputting data such as operation results.
  • the input interface can be the receiver above and the output device can be the transmitter above.
  • Communication interface 908 implements communication between computer device 900 and other devices or communication networks using, for example, but not limited to, transceivers such as transceivers, which may serve as the transmitters above, as well as the above. Device.
  • Bus 910 can include a path for communicating information between various components of computer device 900, such as processor 602, memory 904, input/output interface 906, and communication interface 908.
  • computer device 900 shown in FIG. 9 only shows the processor 902, the memory 904, the input/output interface 906, the communication interface 908, and the bus 910, those skilled in the art will understand in the specific implementation process.
  • the computer device 900 also includes other components necessary to achieve normal operation, such as the components of the device embodiment corresponding to FIG. Moreover, those skilled in the art will appreciate that computer device 900 may also only include the components necessary to implement embodiments of the present invention, and does not necessarily include all of the devices shown in FIG.
  • FIG. 10 is a schematic diagram showing the hardware structure of a computer device 1000 according to an embodiment of the present invention.
  • computer device 1000 can be implemented as an implementation of computer device 1000, which includes processor 1002, memory 1004, input/output interface 1006, communication interface 1008, and bus 1010.
  • the processor 1002, the memory 1004, the input/output interface 1006, and the communication interface 1008 implement a communication connection with each other through the bus 1010.
  • the processor 1002 can be a general-purpose central processing unit (CPU), a microprocessor, and an application specific integrated circuit (ASIC). Or one or more integrated circuits for performing related procedures to implement the technical solutions provided by the embodiments of the present invention.
  • CPU central processing unit
  • ASIC application specific integrated circuit
  • the memory 1004 may be a read only memory (ROM), a static storage device, a dynamic storage device, or a random access memory (RAM).
  • the memory 1004 can store an operating system and an application.
  • the function required to implement the device included in the computer device 400 provided by the embodiment of the present invention, or the program code for implementing the technical solution provided by the embodiment of the present invention is saved in the memory 1004 and processed by the software or the firmware.
  • the device 1002 performs the functions that are required to be performed, or the operations or methods that are required to be performed to implement the adjustment device 420 of the present invention.
  • the input/output interface 1006 can be an implementation of the receiver 410/transmitter 430 for receiving input data and information, outputting operational results, and the like.
  • the input interface can be the receiver above and the output device can be the transmitter above.
  • the communication interface 1008 implements communication between the computer device 1000 and other devices or communication networks using transceivers such as, but not limited to, transceivers, which may serve as the transmitters above, as well as the above. Device.
  • transceivers such as, but not limited to, transceivers, which may serve as the transmitters above, as well as the above. Device.
  • Bus 1010 can include a path for communicating information between various components of computer device 1000, such as processor 1002, memory 1004, input/output interface 1006, and communication interface 1008.
  • computer device 1000 illustrated in FIG. 10 only shows the processor 1002, the memory 1004, the input/output interface 1006, the communication interface 1008, and the bus 1010, those skilled in the art will understand in the specific implementation process.
  • Computer device 1000 also contains other devices necessary to achieve proper operation.
  • computer device 1000 may also only include the components necessary to implement embodiments of the present invention, and does not necessarily include all of the devices shown in FIG.
  • the content is based on the same concept as the method embodiment of the present invention.
  • the description in the method embodiment of the present invention and details are not described herein again.
  • the storage medium may be a magnetic disk, an optical disk, a read-only memory (ROM), or a random access memory (RAM).

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Abstract

L'invention concerne des lunettes de réalité virtuelle et un procédé de réglage associé. Les lunettes de réalité virtuelle (100) comprennent un support d'écran (102), des lentilles (104), un dispositif d'obtention d'informations d'identité (210), et un dispositif de réglage (220) ; le support d'écran est utilisé pour fixer un écran (110) ; il existe deux lentilles ; le dispositif d'obtention d'informations d'identité est utilisé pour obtenir des informations d'identité d'un utilisateur ; le dispositif de réglage est utilisé pour obtenir, lorsqu'il s'agit d'un utilisateur enregistré, des informations de réglage correspondant aux informations d'identité obtenues par le dispositif d'obtention d'informations d'identité, et pour régler au moins l'une des positions des lentilles dans les lunettes et la position du support d'écran dans les lunettes selon les informations de réglage, de façon à les adapter aux informations binoculaires de l'utilisateur. Lorsque l'utilisateur enregistré utilise les lunettes de réalité virtuelle, ces dernières peuvent effectuer automatiquement un réglage pour l'utilisateur de manière à s'adapter aux informations binoculaires de l'utilisateur sans que l'opérateur ne procède au réglage manuel, d'où l'expérience de l'utilisateur est améliorée.
PCT/CN2016/101260 2016-05-19 2016-09-30 Lunettes de réalité virtuelle et procédé de réglage associé WO2017197827A1 (fr)

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CN201610339852.2A CN105954875A (zh) 2016-05-19 2016-05-19 一种虚拟现实眼镜以及虚拟现实眼镜的调整方法

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