WO2020248777A1 - 控制方法、头戴设备和服务器 - Google Patents

控制方法、头戴设备和服务器 Download PDF

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Publication number
WO2020248777A1
WO2020248777A1 PCT/CN2020/090961 CN2020090961W WO2020248777A1 WO 2020248777 A1 WO2020248777 A1 WO 2020248777A1 CN 2020090961 W CN2020090961 W CN 2020090961W WO 2020248777 A1 WO2020248777 A1 WO 2020248777A1
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WO
WIPO (PCT)
Prior art keywords
server
information
processed
head
mounted device
Prior art date
Application number
PCT/CN2020/090961
Other languages
English (en)
French (fr)
Inventor
杨鑫
Original Assignee
Oppo广东移动通信有限公司
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 Oppo广东移动通信有限公司 filed Critical Oppo广东移动通信有限公司
Publication of WO2020248777A1 publication Critical patent/WO2020248777A1/zh

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    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F3/00Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
    • G06F3/01Input arrangements or combined input and output arrangements for interaction between user and computer
    • G06F3/011Arrangements for interaction with the human body, e.g. for user immersion in virtual reality
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F3/00Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
    • G06F3/01Input arrangements or combined input and output arrangements for interaction between user and computer

Definitions

  • This application relates to the field of electronic technology, and in particular to a control method, a headset and a server.
  • wearable devices can be divided into two forms: split type and integrated type.
  • the processor and the wearable part are integrated.
  • the processor is separated from the wearable part.
  • This application provides a control method, headset and server.
  • the embodiment of the present application provides a control method.
  • the control method is used for a head-mounted device, the head-mounted device includes a collection device and a display device, the head-mounted device is connected to a server, and the control method includes:
  • the display device is controlled to display according to the processed information.
  • the embodiment of the present application provides a control method.
  • the control method is used in a server, the server is connected to the head-mounted device, the head-mounted device includes a collection device and a display device, and the control method includes:
  • the processed information is sent to the head-mounted device, so that the head-mounted device controls the display device to display according to the processed information.
  • the embodiment of the present application provides a head-mounted device.
  • the head-mounted device includes a collection device and a display device, and a device processor connected to the display, the device processor is connected to a server, and the device processor is used to obtain information to be processed collected by the head-mounted device; and Sending the to-be-processed information to the server so that the server can process the to-be-processed information to obtain processed information; and for obtaining the processed information sent by the server, the processed information is
  • the server is obtained by processing the to-be-processed information; and used for controlling the display of the display device according to the processed information.
  • the embodiment of the present application provides a server.
  • the server includes a server processor, the server processor is connected to a head-mounted device, the head-mounted device includes a collection device and a display device, and the server processor is configured to obtain data collected by the collection device and used by the head-mounted device Sent to-be-processed information; and used to process the to-be-processed information to obtain processed information; and used to send the processed information to the head-mounted device, so that the head-mounted device is based on the processed information
  • the information controls the display of the display device.
  • Fig. 1 is a three-dimensional schematic diagram of a head-mounted device according to an embodiment of the present application
  • FIG. 2 is a schematic plan view of a head-mounted device of a head-mounted device according to another embodiment of the present application.
  • FIG. 3 is a schematic plan view of a partial structure of a head-mounted device according to an embodiment of the present application.
  • FIG. 4 is a schematic diagram of the adjustment process of the head-mounted device according to the embodiment of the present application.
  • FIG. 5 is another schematic diagram of the adjustment process of the head-mounted device according to the embodiment of the present application.
  • FIG. 6 is a schematic plan view of a partial structure of a head-mounted device according to another embodiment of the present application.
  • FIG. 7 is a schematic plan view of a partial structure of a head-mounted device according to another embodiment of the present application.
  • FIG. 8 is a schematic flowchart of a control method of a computing system according to an embodiment of the present application.
  • FIG. 9 is a schematic structural diagram of a computing system of an embodiment of the present application.
  • FIG. 10 is a schematic diagram of modules of a computing system according to an embodiment of the present application.
  • FIG. 11 is a schematic diagram of a scene of a control method of a computing system according to an embodiment of the present application.
  • FIG. 12 is a schematic diagram of a scene of a control method of a computing system according to an embodiment of the present application.
  • FIG. 13 is a schematic diagram of a scene of a control method of a computing system according to an embodiment of the present application.
  • FIG. 14 is a schematic diagram of modules of a computing system according to an embodiment of the present application.
  • 15 is a schematic flowchart of a control method of a computing system according to another embodiment of the present application.
  • 16 is a schematic flowchart of a control method of a computing system according to another embodiment of the present application.
  • FIG. 17 is a schematic flowchart of a control method of a computing system according to still another embodiment of the present application.
  • FIG. 18 is a schematic flowchart of a control method of a computing system according to another embodiment of the present application.
  • FIG. 19 is a schematic flowchart of a control method of a computing system according to another embodiment of the present application.
  • FIG. 20 is a schematic flowchart of a control method of a computing system according to still another embodiment of the present application.
  • FIG. 21 is a schematic flowchart of a method for controlling a headset according to an embodiment of the present application.
  • FIG. 22 is a schematic flowchart of a method for controlling a head-mounted device according to another embodiment of the present application.
  • FIG. 23 is a schematic flowchart of a method for controlling a head-mounted device according to another embodiment of the present application.
  • FIG. 24 is a schematic flowchart of a method for controlling a head-mounted device according to still another embodiment of the present application.
  • 25 is a schematic flowchart of a method for controlling a head-mounted device according to another embodiment of the present application.
  • FIG. 26 is a schematic flowchart of a server control method according to an embodiment of the present application.
  • FIG. 27 is a schematic flowchart of a server control method according to another embodiment of the present application.
  • FIG. 28 is a schematic flowchart of a server control method according to another embodiment of the present application.
  • FIG. 29 is a schematic flowchart of a server control method according to still another embodiment of the present application.
  • FIG. 30 is a schematic flowchart of a server control method according to another embodiment of the present application.
  • the head-mounted device 100 includes a housing 20, a supporting member 30, a display 40, a refractive member 50, and an adjustment mechanism 60.
  • the housing 20 is an external component of the headset 100 and plays a role of protecting and fixing the internal components of the headset 100. By enclosing the internal components by the housing 20, it is possible to avoid direct damage to these internal components by external factors.
  • the housing 20 can be used to house and fix at least one of the display 40, the diopter 50, and the adjustment mechanism 60.
  • the housing 20 is formed with a receiving groove 22, and the display 40 and the diopter 50 are received in the receiving groove 22.
  • the adjustment mechanism 60 is partially exposed from the housing 20.
  • the housing 20 also includes a housing top wall 24, a housing bottom wall 26 and a housing side wall 28.
  • a gap 262 is formed in the middle of the housing bottom wall 26 facing the housing top wall 24.
  • the housing 20 is roughly shaped like a "B".
  • the housing 20 may be formed by machining aluminum alloy by a computer numerical control (Computerized Numerical Control, CNC) machine tool, or may be formed of polycarbonate (PC) or PC and acrylonitrile-butadiene-styrene (Acrylonitrile Butadiene Styrene plastic). , ABS) injection molding.
  • CNC Computer numerical Control
  • PC polycarbonate
  • PC acrylonitrile-butadiene-styrene
  • ABS acrylonitrile Butadiene Styrene injection molding.
  • the specific manufacturing method and specific materials of the housing 20 are not limited here.
  • the supporting member 30 is used to support the head mounted device 100.
  • the head-mounted device 100 may be fixed on the head of the user through the supporting member 30.
  • the supporting member 30 includes a first bracket 32, a second bracket 34 and an elastic band 36.
  • the first bracket 32 and the second bracket 34 are symmetrically arranged about the gap 262. Specifically, the first bracket 32 and the second bracket 34 are rotatably arranged on the edge of the housing 20. When the user does not need to use the headset 100, the first bracket 32 and the second bracket 34 can be stacked close to the housing 20. To facilitate storage. When the user needs to use the head mounted device 100, the first bracket 32 and the second bracket 34 can be deployed to realize the function of supporting the first bracket 32 and the second bracket 34.
  • a first bending portion 322 is formed at one end of the first bracket 32 away from the housing 20, and the first bending portion 322 is bent toward the bottom wall 26 of the housing. In this way, when the user wears the head-mounted device 100, the first bent portion 322 can be erected on the user's ear, so that the head-mounted device 100 is not easy to slip off.
  • a second bent portion 342 is formed at one end of the second bracket 34 away from the housing 20.
  • the explanation and description of the second bending portion 342 can refer to the first bending portion 322, and to avoid redundancy, it will not be repeated here.
  • the elastic band 36 detachably connects the first bracket 32 and the second bracket 34. In this way, when the user wears the head-mounted device 100 for strenuous activities, the head-mounted device 100 can be further fixed by the elastic band 36 to prevent the head-mounted device 100 from loosening or even falling during the strenuous activity. It can be understood that in other examples, the elastic band 36 may also be omitted.
  • the display 40 includes an OLED display screen.
  • the OLED display screen does not require a backlight, which is beneficial to the lightness and thinness of the head-mounted device 100.
  • the OLED screen has a large viewing angle and low power consumption, which is conducive to saving power consumption.
  • the display 40 may also be an LED display or a Micro LED display. These displays are merely examples and the embodiments of the present application are not limited thereto.
  • the refractive component 50 is arranged on the side of the display 40.
  • the refractive component 50 includes a refractive cavity 52, a light-transmitting liquid 54, a first film layer 56, a second film layer 58 and a side wall 59.
  • the light-transmitting liquid 54 is disposed in the refractive cavity 52.
  • the adjustment mechanism 60 is used to adjust the amount of the light-transmitting liquid 54 to adjust the shape of the refractive member 50.
  • the second film layer 58 is disposed relative to the first film layer 56, the sidewall 59 connects the first film layer 56 and the second film layer 58, and the first film layer 56, the second film layer 58, and the sidewall 59
  • the refractive cavity 52 and the adjusting mechanism 60 are used to adjust the amount of the transparent liquid 54 to change the shape of the first film layer 56 and/or the second film layer 58.
  • "changing the shape of the first film layer 56 and/or the second film layer 58" includes three cases: the first case: changing the shape of the first film layer 56 without changing the shape of the second film layer 58; The second case: the shape of the first film layer 56 is not changed and the shape of the second film layer 58 is changed; the third case: the shape of the first film layer 56 is changed and the shape of the second film layer 58 is changed.
  • the first case is taken as an example for description.
  • the first film layer 56 may have elasticity. It can be understood that when the amount of the light-transmitting liquid 54 in the refractive cavity 52 changes, the pressure in the refractive cavity 52 also changes, so that the shape of the refractive component 50 changes.
  • the adjusting mechanism 60 reduces the amount of the light-transmitting liquid 54 in the refractive cavity 52, the pressure in the refractive cavity 52 is reduced, and the pressure difference between the pressure outside the refractive cavity 52 and the pressure in the refractive cavity 52 As it increases, the refractive cavity 52 becomes more concave.
  • the adjustment mechanism 60 increases the amount of the light-transmitting liquid 54 in the refractive cavity 52, the pressure in the refractive cavity 52 increases, and the pressure outside the refractive cavity 52 is equal to the pressure in the refractive cavity 52. The difference is reduced, and the refractive cavity 52 is more convex.
  • the form of the refractive member 50 can be adjusted by adjusting the amount of the light-transmitting liquid 54.
  • the adjustment mechanism 60 is connected to the diopter 50.
  • the adjustment mechanism 60 is used to adjust the form of the diopter 50 to adjust the refractive power of the diopter 50.
  • the adjustment mechanism 60 includes a cavity 62, a sliding member 64, a driving part 66, an adjustment cavity 68 and a switch 61.
  • the sliding member 64 is slidably arranged in the cavity 62, the driving member 66 is connected to the sliding member 64, the cavity 62 and the sliding member 64 jointly define an adjustment cavity 68, the adjustment cavity 68 is connected to the refractive cavity 52 through the side wall 59, and the driving member 66 is used to drive the sliding member 64 to slide relative to the cavity 62 to adjust the volume of the adjustment cavity 68 to adjust the amount of the light-transmitting liquid 54 in the refractive cavity 52.
  • the volume of the adjusting cavity 68 is adjusted by the sliding member 64 to adjust the amount of the light-transmitting liquid 54 in the refractive cavity 52.
  • the sliding member 64 slides away from the side wall 59, the volume of the adjustment cavity 68 increases, the pressure in the adjustment cavity 68 decreases, and the light-transmitting liquid 54 in the refractive cavity 52 enters Adjusting the cavity 68, the first film layer 56 is more and more recessed inward.
  • the sliding member 64 slides toward the side wall 59, the volume of the adjusting cavity 68 decreases, the pressure in the adjusting cavity 68 increases, and the light-transmitting liquid 54 in the adjusting cavity 68 enters In the refractive cavity 52, the first film layer 56 protrudes more and more outward.
  • the side wall 59 is formed with a flow channel 591, and the flow channel 591 communicates with the adjusting cavity 68 and the refractive cavity 52.
  • the adjustment mechanism 60 includes a switch 61 provided in the flow channel 591, and the switch 61 is used to control the open and close state of the flow channel 591.
  • the number of switches 61 is two. Both switches 61 are one-way switches. One switch 61 is used to control the flow of light-transmitting liquid 54 from the adjusting cavity 68 to the refractive cavity 52, and the other switch 61 It is used to control the light-transmitting liquid 54 to flow from the refractive cavity 52 to the regulating cavity 68.
  • the flow of the light-transmitting liquid 54 between the adjusting cavity 68 and the refractive cavity 52 is realized through the switch 61 to maintain the pressure balance on both sides of the side wall 59.
  • the change in the volume of the adjustment cavity 68 will cause the pressure in the adjustment cavity 68 to change, thereby causing the flow of the transparent liquid 54 between the adjustment cavity 68 and the refractive cavity 52.
  • the switch 61 controls the opening and closing state of the flow channel 591 to control whether the flow of the light-transmitting liquid 54 between the adjusting cavity 68 and the refractive cavity 52 can be realized, thereby controlling the adjustment of the shape of the refractive component 50.
  • the switch 61 that controls the flow of the transparent liquid 54 from the refractive cavity 52 to the adjustment cavity 68 is turned on, the sliding member 64 slides away from the side wall 59, and the volume of the adjustment cavity 68 increases.
  • the pressure in the adjustment cavity 68 decreases, the light-transmitting liquid 54 in the refractive cavity 52 enters the adjustment cavity 68 through the switch 61, and the first film layer 56 is more and more inwardly recessed.
  • the switch 61 that controls the flow of the light-transmitting liquid 54 from the refractive cavity 52 to the adjustment cavity 68 is closed. Even if the slider 64 slides away from the side wall 59, the volume of the adjustment cavity 68 increases and the adjustment cavity 68 The pressure inside decreases, the light-transmitting liquid 54 in the refractive cavity 52 cannot enter the adjustment cavity 68, and the shape of the first film layer 56 does not change.
  • the switch 61 that controls the flow of the light-transmitting liquid 54 from the adjusting cavity 68 to the refractive cavity 52 is opened, the sliding member 64 slides toward the side wall 59, and the volume of the adjusting cavity 68 decreases. , The pressure in the regulating cavity 68 increases, the light-transmitting liquid 54 in the regulating cavity 68 enters the refractive cavity 52 through the switch 61, and the first film layer 56 protrudes more and more outward.
  • the switch 61 that controls the flow of the light-transmitting liquid 54 from the adjusting cavity 68 to the refractive cavity 52 is closed. Even if the slider 64 slides toward the side wall 59, the volume of the adjusting cavity 68 decreases, and the adjusting cavity 68 The internal pressure increases, the transparent liquid 54 in the regulating cavity 68 cannot enter the refractive cavity 52, and the shape of the first film layer 56 does not change.
  • the driving component 66 can realize its function of driving the sliding member 64 to slide based on various structures and principles.
  • the driving part 66 includes a knob 662 and a screw 664, the screw 664 is connected to the knob 662 and the sliding member 64, and the knob 662 is used to drive the screw 664 to rotate The sliding member 64 is driven to slide relative to the cavity 62.
  • the slider 64 can be driven by the knob 662 and the lead screw 664. Since the screw 664 and the knob 662 cooperate to convert the rotary motion of the knob 662 into the linear motion of the screw 664, when the user rotates the knob 662, the screw 664 can drive the slider 64 to slide relative to the cavity 62, thereby causing adjustment
  • the volume change of the cavity 68 further adjusts the amount of the transparent liquid 54 in the refractive cavity 52.
  • the knob 662 can be exposed from the housing 20 to facilitate the user to rotate.
  • a threaded part is formed on the knob 662
  • a threaded part that matches the knob 662 is formed on the screw 664
  • the knob 662 and the screw 664 are threadedly connected.
  • the switch 61 can be opened correspondingly. In this way, the light-transmitting liquid 54 can flow, and the pressure balance on both sides of the side wall 59 is ensured.
  • the knob 662 rotates clockwise and the sliding member 64 slides away from the side wall 59 to turn on the switch 61 that controls the flow of the light-transmitting liquid 54 from the refractive cavity 52 to the adjustment cavity 68.
  • the knob 662 rotates counterclockwise and the sliding member 64 slides toward the side wall 59 to turn on the switch 61 that controls the flow of the light-transmitting liquid 54 from the adjusting cavity 68 to the refractive cavity 52.
  • the rotation angle of the knob 662 is not associated with the diopter power of the diopter 50, and the user only needs to rotate the knob 662 to a position with the best visual experience.
  • the rotation angle of the knob 662 and the diopter power of the diopter 50 may also be correlated.
  • the driving component 66 includes a gear 666 and a rack 668 meshing with the gear 666.
  • the rack 668 connects the gear 666 and the sliding member 64.
  • the gear 666 is used to drive the rack 668 to move to drive the sliding member 64 relative to the cavity. 62 slide.
  • the sliding member 64 is driven by the gear 666 and the rack 668. Since the gear 666 and the rack 668 cooperate to convert the rotary motion of the gear 666 into the linear motion of the rack 668, when the user rotates the gear 666, the rack 668 can drive the slider 64 to slide relative to the cavity 62, thereby causing adjustment
  • the volume change of the cavity 68 further adjusts the amount of the transparent liquid 54 in the refractive cavity 52.
  • the gear 666 can be exposed from the housing 20 to facilitate the rotation of the user.
  • the switch 61 can be opened correspondingly. In this way, the light-transmitting liquid 54 can flow, and the pressure balance on both sides of the side wall 59 is ensured.
  • the gear 666 rotates clockwise so that the rack 668 is meshed with the gear 666, the length of the rack 668 is shortened, and the sliding member 64 is pulled to move away from the side wall 59, and the light-transmitting liquid 54 is controlled from the refractive index.
  • the switch 61 from the cavity 52 to the regulating cavity 68 is opened.
  • the gear 666 rotates counterclockwise so that the rack 668 meshed with the gear 666 is disengaged from the gear 666, the length of the rack 668 increases, and the sliding member 64 is pushed to move toward the side wall 59, which will control the penetration
  • the switch 61 of the optical liquid 54 flowing from the adjusting cavity 68 to the refractive cavity 52 is turned on.
  • the rotation angle of the gear 666 and the diopter power of the diopter 50 are not associated, and the user only needs to rotate the gear 666 to a position with the best visual experience.
  • the rotation angle of the gear 666 and the refractive power of the diopter 50 may also be correlated.
  • the driving component 66 includes a driving motor 669, a motor shaft 6691 of the driving motor 669 is connected to the sliding member 64, and the driving motor 669 is used to drive the sliding member 64 to slide relative to the cavity 62.
  • the sliding member 64 is driven by the driving motor 668.
  • the driving motor 669 may be a linear motor.
  • the linear motor has a simple structure and directly generates linear motion without passing through an intermediate conversion mechanism, which can reduce the motion inertia and improve the dynamic response performance and positioning accuracy.
  • the sliding member 64 is driven by the driving motor 668, so that the driving of the sliding member 64 is editable.
  • the drive motor 668 can be correlated with the power of refraction through prior calibration. The user can directly input the refractive power, and the driving motor 668 automatically operates to drive the sliding member 64 to slide to the corresponding position.
  • the driving component 66 may also include an input 6692, and the input 6692 includes but is not limited to devices such as buttons, knobs, or touch screens.
  • the input 6692 is a button, and two buttons are respectively disposed on opposite sides of the cavity 62. The keys can be exposed from the housing 20 to facilitate the user to press.
  • the button can control the operating time of the driving motor 669 according to the number or duration of external force pressing, thereby controlling the sliding distance of the sliding member 64.
  • the switch 61 can be opened correspondingly. In this way, the light-transmitting liquid 54 can flow, and the pressure balance on both sides of the side wall 59 is ensured.
  • the user presses one of the two buttons to drive the motor shaft 6691 to extend, and the motor shaft 6691 pushes the slider 64 to move toward the side wall 59, which will control the flow of the transparent liquid 54 from the regulating cavity 68.
  • the switch 61 to the refractive cavity 52 is turned on.
  • the motor shaft 6691 when the user presses the other of the two buttons, the motor shaft 6691 is shortened, and the motor shaft 6691 pulls the slider 64 to move away from the side wall 59, which will control the light-transmitting liquid 54 from the refractive cavity.
  • the switch 61 flowing 52 to the adjustment chamber 68 is opened.
  • the structure of the refractive component 50 not only includes the above refractive cavity 52, the light-transmitting liquid 54, the first film layer 56, the second film layer 58 and the side wall 59, as long as the refractive component 50 can achieve diopter
  • the refractive component 50 includes a plurality of lenses and a driving member, and the driving member is used to drive each lens from the storage position to the refractive position.
  • the driving member can also drive each lens moved to the refractive position to move on the refractive axis, thereby changing the refractive power of the refractive component 50.
  • the shape of the refractive component described above includes the shape and state of the refractive component, and the structure of the above refractive cavity 52, light-transmitting liquid 54, first film layer 56, second film layer 58, and sidewall 59
  • the shape of the first film layer 56 and/or the second film layer 58 is changed to achieve the change of diopter; the structure of the above multiple lenses and the driving member can realize the change of diopter by changing the state of the lens.
  • the embodiment of the present application provides a head-mounted device 1000.
  • the head-mounted device 100 includes a display 40, a diopter 50, and an adjustment mechanism 60.
  • the refractive member 50 is provided on the side of the display 40.
  • the adjustment mechanism 60 is connected to the diopter 50, and the adjustment mechanism 60 is used to adjust the form of the diopter 50 to adjust the diopter of the diopter 50.
  • the head-mounted device 1000 of the embodiment of the present application adjusts the shape of the refractive member 50 through the adjustment mechanism 60 to adjust the refractive power of the refractive member 50, so that users with refractive errors can see the images displayed on the display 40 clearly, which is beneficial to improve users. Experience.
  • the refractive component 50 and the adjustment mechanism 60 can linearly correct the refractive power, so that each person with different refractive power can wear it flexibly.
  • the volume of the refractive component 50 and the adjustment mechanism 60 is small, which does not affect the wearing experience of the head-mounted device 100. Users do not need to buy a lot of lenses, which can reduce the price.
  • wearable devices can be divided into two forms: split type and integrated type.
  • the processor and the wearable part are integrated, and the weight and volume of the wearable device are relatively large, which affects the wearing comfort.
  • the processor needs to perform a lot of calculations, but the wearable part is limited in size and heat dissipation is limited, so the processor generates serious heat, which greatly affects the user experience.
  • the processor is separated from the wearable part. Although the weight of the wearable part is reduced, the wearable part and the processor need to be connected by a specific data cable, which is inconvenient to wear, and an external processor is added. inconvenient. Therefore, how to simultaneously ensure performance, portability and wearing experience has become an urgent problem to be solved.
  • the embodiment of the present application provides a control method.
  • the control method is used in the computing system 1000.
  • the computing system 1000 includes a head-mounted device and a server 200 connected to the head-mounted device 100.
  • the head-mounted device 100 includes a collection device 102 and a display device 103.
  • Control methods include:
  • Step S12 The head mounted device 100 sends the to-be-processed information collected by the collecting device 102 to the server 200;
  • Step S14 the server 200 processes the information to be processed to obtain processed information
  • Step S16 The server 200 sends the processed information to the head-mounted device 100;
  • Step S17 The head mounted device 100 controls the display device 103 to display according to the processed information.
  • an embodiment of the present application provides a computing system 1000.
  • the computing system 1000 includes a system processor 1001, a head-mounted device 100, and a server 200 connected to the head-mounted device 100.
  • the system processor 1001 connects the head-mounted device 100 and the server 200.
  • the head-mounted device 100 includes a collection device 102 and a display device 103,
  • the system processor 1001 is used to control the headset 100 to send the to-be-processed information collected by the collecting device 102 to the server 200; and to control the server 200 to process the to-be-processed information to obtain the processed information; and to control the server 200 to process the processed information.
  • the information is sent to the head-mounted device 100; and used to control the head-mounted device 100 to control the display device 103 to display according to the processed information.
  • the control method of the computing system 1000 and the computing system 1000 of the embodiment of the present application transfer the processing of the information to be processed by the head-mounted device 100 to the server 200, so that the head-mounted device 100 does not need to integrate a powerful processor, nor does it require an external processing line. Therefore, while ensuring the performance of the head-mounted device 100, the weight of the head-mounted device 100 is reduced, the portability of the head-mounted device 100 is improved, and the user experience is improved.
  • the headset 100 may be an electronic device such as electronic glasses, a headset, and an electronic helmet.
  • the server 200 may be a cloud server, or may be other types of servers besides the cloud server. The specific forms of the headset 100 and the server 200 are not limited here.
  • the embodiment of the present application takes the head mounted device 100 as an electronic glasses as an example, and the server 200 is a cloud server as an example to explain the control method of the computing system 1000 in the embodiment of the present application. This does not mean that the specific forms of the headset 100 and the server 200 are limited.
  • the display 40 is in a binocular form. It can be understood that the display 40 may also be in a monocular form.
  • the headset 100 and the server 200 establish a long connection through the HyperText Transfer Protocol (HTTP), so as to perform real-time communication.
  • HTTP HyperText Transfer Protocol
  • “Long connection” means that multiple data packets can be sent continuously on a connection.
  • the headset 100 and the server 200 may also establish a connection through a private protocol or other protocols.
  • the specific manner of connection between the headset 100 and the server 200 is not limited here.
  • one headset 100 is connected to the server 200, and the server 200 processes the information to be processed for one headset 100; or it may be that multiple headsets 100 are connected to the server 200, and the server 200 is multiple headsets.
  • the device 100 processes the information to be processed.
  • the connections between the multiple headsets 100 and the server 200 are independent and do not interfere with each other.
  • the following takes a head mounted device 100 connected to the server 200 as an example for explanation and description.
  • the collection device 102 of the head-mounted device 100 includes, but is not limited to, a camera module, an acousto-electric component, a gyroscope, an acceleration sensor, an ambient light sensor, and the like.
  • the display device 103 of the head-mounted device 100 includes, but is not limited to, a display 40, an electro-acoustic element 1031, and the like.
  • the camera module may include a depth camera.
  • the acoustoelectric element may include a microphone.
  • the electroacoustic element 1031 may include a speaker.
  • the specific forms of the collection device 102 and the display device 103 are not limited here.
  • the "information to be processed” includes, but is not limited to, image information, sound information, six degrees of freedom (6Degree of Freedom, 6DoF) information, positioning information, and the like.
  • image information includes, but is not limited to, image information, sound information, six degrees of freedom (6Degree of Freedom, 6DoF) information, positioning information, and the like.
  • 6DoF six degrees of freedom
  • the specific form of the information to be processed is not limited here.
  • step S14 the processing of the information to be processed by the server 200 includes, but is not limited to, image rendering, voiceprint analysis, noise removal processing, system decryption authentication, 6DOF calculation, system positioning, etc.
  • step S12 and step S16 the information transfer between the head mounted device 100 and the server 200 can be performed through the first transceiver 104 and the second transceiver 202.
  • the first transceiver 104 is provided in the wearable device 100.
  • the second transceiver 202 is set on the server.
  • the head mounted device 100 controls the display device 103 to display according to the processed information, including but not limited to displaying image information rendering results, voiceprint analysis results, system encryption and decryption results, and location information results.
  • the display 40 is controlled according to the processed information
  • the speaker is controlled to play according to the processed information.
  • the specific manner in which the headset 100 controls the display of the display device 103 according to the processed information is not limited here.
  • the headset 100 is running a Simultaneous Localization and Mapping (Simultaneous Localization And Mapping, SLAM) application.
  • SLAM Simultaneous Localization And Mapping
  • the head-mounted device 100 sends the data collected by the camera module and sensor to the server 200, and the server 200 calculates the movement posture of the head-mounted device 100 itself and information about the surrounding scene according to the data collected by the camera module and the sensor, and then The information is re-rendered to the corresponding screen to obtain the processed information, and then the processed information is sent to the head-mounted device 100, and the head-mounted device 100 controls the display 40 according to the processed information, thereby realizing scene reconstruction.
  • the headset 100 is running a recording application.
  • the head-mounted device 100 sends the data collected by the microphone to the server 200, and the server 200 performs processing such as extraction, analysis, and noise reduction according to the data collected by the microphone to obtain the processed information, and then sends the processed information to the head-mounted device 100.
  • the wearing device 100 controls the electro-acoustic element 1031 to play according to the processed information.
  • the headset 100 is running a voiceprint analysis application.
  • the headset 100 sends the data collected by the microphone to the server 200, and the server 200 performs processing such as extraction, analysis, noise reduction, and comparison according to the data collected by the microphone to obtain processed information, and then sends the processed information to the headset 100.
  • the head mounted device 100 controls the display 40 to display the result of the voiceprint analysis according to the processed information.
  • the head mounted device 100 may include an acquiring module 105, a first sending module 106, a first receiving module 107 and a displaying module 108.
  • the server 200 may include a second receiving module 203, a processing module 204, and a second sending module 205.
  • the obtaining module 105 is used to obtain the information to be processed; the first sending module 106 is used to send the information to be processed to the server 200; the second receiving module 203 is used to obtain the information to be processed sent by the first sending module 106; the processing module 204 is used To process information to be processed to obtain processed information; the second sending module 205 is used to send the processed information to the head-mounted device 100; the first receiving module 107 is used to obtain the processed information sent by the server 200; the display module 108 is used to Display the processed information.
  • the acquisition module 105 may be the collection device 102 and the display module 108 may be the display device 103.
  • the first sending module 106 and the first receiving module 107 may be different functional modules of the first transceiver 104.
  • the second receiving module 203 and the second sending module 205 may be different functional modules of the second transceiver 102.
  • step S12 includes:
  • Step S122 the head mounted device 100 compresses the information to be processed
  • Step S124 the head mounted device 100 sends the compressed information to be processed to the server 200.
  • system processor 1001 is used to control the head-mounted device 100 to compress the information to be processed; and to control the head-mounted device 100 to send the compressed information to be processed to the server 200.
  • the head-mounted device 100 is implemented to send the to-be-processed information collected by the collecting device 102 to the server 200.
  • compression is a mechanism that reduces the size of computer files through a specific algorithm. It can be understood that by compressing the information to be processed, the total number of bytes of the information to be processed can be reduced, so that the information to be processed can be transmitted faster, thereby saving transmission time.
  • the head-mounted device 100 can compress the information to be processed in the following manner: find duplicate content in the information to be processed, and mark the same type of duplicate content with the same mark character, thereby reducing the volume of the information to be processed to achieve The purpose of compression.
  • the headset 100 can also call compression software to compress the information to be processed. For example, Winzip, WinRAR, etc.
  • the compressed information to be processed may be divided into multiple data packets, and the multiple data packets are sent to the server 200.
  • the head-mounted device 100 can divide the compressed information to be processed into multiple data packets, so that each data packet does not exceed the length limit, so that it can be sent smoothly.
  • the head mounted device 100 uses Winzip to compress the information to be processed, divides the information to be processed into 5 data packets, and sends the 5 data packets to the server 200.
  • the headset 100 uses WinRAR to compress the information to be processed, the information to be processed is divided into 10 data packets, and the 10 data packets are sent to the server 200.
  • the specific method of compressing the information to be processed and the specific number of data packets divided by the information to be processed are not limited here.
  • step S14 includes:
  • Step S142 The server 200 decompresses the compressed information to be processed
  • Step S144 The server 200 processes the decompressed information to be processed to obtain processed information.
  • system processor 1001 is used to control the server 200 to decompress the compressed information to be processed; and to control the server 200 to process the decompressed information to be processed to obtain the processed information.
  • the server 200 is implemented to process the information to be processed to obtain the processed information.
  • decompression is the reverse process of compression, which restores compressed documents, files and other data to the state before compression. It can be understood that after receiving the compressed information to be processed, the server 200 needs to decompress the compressed information to be processed and restore it to an uncompressed state before processing the information to be processed.
  • the head-mounted device 100 may decompress the compressed information to be processed in the following manner: find the marked character in the to-be-processed information, and replace the marked character with the repeated content corresponding to the marked character, thereby restoring the compressed information.
  • the headset 100 can also call compression software to decompress the information to be processed. For example, Winzip, WinRAR, etc.
  • step S144 the server 200 processes the decompressed information to be processed, which may be correction, noise reduction, interpolation, and rendering on image data, or dereverberation, noise reduction, and sound modification on audio data.
  • the specific manner in which the server 200 processes the information to be processed is not limited here.
  • step S16 includes:
  • Step S162 the server 200 compresses the processed information
  • Step S164 The server 200 sends the compressed processed information to the head-mounted device 100.
  • system processor 1001 is used to control the server 200 to compress the processed information; and to control the server 200 to send the compressed processed information to the head mounted device 100.
  • the server 200 is implemented to send the processed information to the head-mounted device 100.
  • the explanation and description of this part can refer to the part where the head mounted device 100 compresses the information to be processed and sends the compressed information to be processed to the server 200. To avoid redundancy, I won't repeat them here.
  • step S17 includes:
  • Step S172 the head mounted device 100 decompresses the compressed processed information
  • Step S174 The head mounted device 100 controls the display device 103 to display according to the decompressed processed information.
  • system processor 1001 is used to control the head-mounted device 100 to decompress the compressed processed information; and to control the head-mounted device 100 to control the display device 103 to display according to the decompressed processed information.
  • the head mounted device 100 controls the display device 103 to display according to the processed information.
  • the explanation and description of this part can refer to the part where the head mounted device 100 compresses the information to be processed and sends the compressed information to be processed to the server 200. To avoid redundancy, I won't repeat them here.
  • control method includes:
  • Step S18 Determine the connection state of the headset 100 and the server 200;
  • Step S19 Determine whether to reconnect the headset 100 and the server 200 according to the connection status.
  • the system processor 1001 is used to determine the connection status of the head-mounted device 100 and the server 200; and used to determine whether to reconnect the head-mounted device 100 and the server 200 according to the connection status.
  • the headset 100 and the server 200 establish a persistent connection through HTTP
  • the "persistent connection” refers to a connection that can send multiple data packets continuously. Therefore, if the connection between the headset 100 and the server 200 is disconnected during the transmission process, some data packets may not be transmitted in place, resulting in insufficient information or data damage.
  • determining whether to reconnect the head-mounted device 100 and the server 200 according to the connection status can avoid the disconnection of the head-mounted device 100 and the server 200 during the transmission process, resulting in incomplete information transmission.
  • the connection status may include: connected and disconnected.
  • the headset 100 and the server 200 are disconnected, determine to reconnect the headset 100 and the server 200; when the headset 100 and the server 200 are connected, determine not to reconnect the headset 100 and the server 200.
  • the connection needs to be re-initiated so that the headset 100 and the server 200 are reconnected to continue the data transmission.
  • the connection between the headset 100 and the server 200 is sufficient, and the connection does not need to be initiated again.
  • step S18 includes:
  • Step S182 the first party sends detection information to a second party, the first party is one of the headset 100 and the server 200, and the second party is the other of the headset 100 and the server 200;
  • Step S184 In the case that the second party receives the detection information within the first preset time period, the second party sends a reply message to the first party;
  • Step S186 When the first party receives the reply message within the second preset time period, it is determined that the connection status is connected;
  • Step S188 If the first party does not receive the reply message within the second preset time period, it is determined that the connection status is disconnected.
  • the system processor 1001 is used to control the first party to send detection information to the second party, the first party is one of the headset 100 and the server 200, and the second party is the headset 100 and the server 200. And used to control the second party to send a reply message to the first party when the second party receives the detection information within the first preset time period; and used to control the second party to send reply information to the first party within the second preset time period When the reply message is received, the connection status is determined to be connected; and when the first party does not receive the reply message within the second preset time period, the connection status is determined to be disconnected.
  • the detection information is a heartbeat packet.
  • the heartbeat packet is a self-defined command word that regularly informs the other party of their own status between the communication parties, and is sent at a certain interval. Please note that the specific values of the first preset duration and the second duration may be the same or different.
  • the first party sends detection information to the second party, and the second party determines that the first party is online when the second party receives the detection information within the first preset period of time; when the second party receives the detection information, the second party One party sends a reply message, and the first party determines that the second party is online after receiving the reply message within the second preset time period.
  • the connection state between the first party and the second party is connected, thereby ensuring the validity of the connection between the first party and the second party.
  • the detection information is sent at a certain time interval, if the second party does not receive the detection information within the first preset time period, it can be inferred that the first party is offline. Similarly, if the first party does not receive the reply message within the second preset time period, it can be inferred that the second party is offline and the connection state between the first party and the second party is disconnected.
  • the first preset duration is 3s
  • the second preset duration is 6s.
  • the headset 100 sends detection information: "123" to the server 200.
  • the server 200 determines that the headset is worn after receiving "123" in 2s.
  • the device 100 is online and sends a reply message to the head-mounted device 100: "456", and the head-mounted device 100 receives the reply message 5 seconds after sending the detection message. Then, it can be determined that the connection state between the headset 100 and the server 200 is connected.
  • the first preset duration is 3s
  • the second preset duration is 6s.
  • the headset 100 sends detection information: "123" to the server 200.
  • the server 200 determines the header after receiving "123" in 2s.
  • the headset 100 is online and sends a reply message: "456" to the headset 100.
  • the headset 100 does not receive the reply message within 6 seconds after sending the detection message. Then, it can be determined that the connection state between the headset 100 and the server 200 is disconnected.
  • the first preset duration is 3s
  • the second preset duration is 6s.
  • the headset 100 sends detection information to the server 200: "123".
  • the server 200 does not receive "123" within 3s, then No reply message is sent to the head-mounted device 100, and the head-mounted device 100 does not receive the reply message within 6 seconds after sending the detection message. Then, it can be determined that the connection state between the headset 100 and the server 200 is disconnected.
  • the detection information sent by the server 200 to the head-mounted device 100 may refer to the above-mentioned example for the head-mounted device 100 to send detection information to the server 200. To avoid redundancy, details are not repeated here.
  • the computing system and control method of this embodiment have the following effects: the head-mounted device 100 does not need to integrate a powerful processor, which reduces the weight of the head-mounted device 100, reduces heat generation, and improves user experience; the head-mounted device 100 does not need to be used
  • the line is connected to the processor, easy to use, comfortable to wear and easy to carry.
  • the processing module is separated from the head-mounted device 100, and the computing system is not limited by the volume and weight of the head-mounted device 100.
  • the processing module is located in the server 200, which can greatly improve the computing power and perform more complex calculations. More complex functions; there is no need for each headset 100 to be equipped with a processor, and the server 200 can be used by multiple devices, thereby saving costs.
  • the head-mounted device 100 does not need to perform arithmetic processing of complex information, and is only responsible for collecting to-be-processed information and displaying processed information, which reduces the power consumption of the head-mounted device 100 and can greatly extend the battery life of the head-mounted device 100.
  • the embodiment of the present application provides a control method.
  • the control method is used for the headset 100.
  • the head-mounted device 100 includes a collection device 102 and a display device 103, and the head-mounted device 100 is connected to the server 200.
  • Control methods include:
  • Step S22 Obtain the information to be processed collected by the collecting device 102;
  • Step S24 Send the to-be-processed information to the server 200, so that the server 200 can process the to-be-processed information to obtain the processed information;
  • Step S26 Obtain the processed information sent by the server 200, and the processed information is obtained by the server 200 processing the information to be processed;
  • Step S27 Control the display device 103 to display according to the processed information.
  • the embodiment of the present application provides a head-mounted device 100.
  • the head-mounted device 100 includes a collection device 102 and a display device 103, and a device processor 101 connected to a display.
  • the device processor 101 is connected to the server 200, and the device processor 101 is used to obtain the information to be processed collected by the head-mounted device 100; and Send the to-be-processed information to the server 200 so that the server 200 can process the to-be-processed information to obtain the processed information; and is used to obtain the processed information sent by the server, and the processed information is obtained by the server 200 by processing the to-be-processed information;
  • the processed information controls the display device 103 to display.
  • the control method of the head-mounted device 100 and the head-mounted device 100 in the embodiment of the present application transfer the processing of the information to be processed by the head-mounted device 100 to the server 200, so that the head-mounted device 100 does not need to integrate a powerful processor, nor does it require an external connection
  • the processor thus reduces the weight of the head-mounted device 100 while ensuring the performance of the head-mounted device 100, improves the portability of the head-mounted device 100, and helps improve user experience.
  • control method of the head-mounted device 100 and the explanation and description of the head-mounted device 100 may refer to the above-mentioned control method of the computing system 1000 and the explanation and description of the computing system 1000. To avoid redundancy, I won't repeat them here.
  • step S24 includes:
  • Step S242 compress the information to be processed
  • Step S244 Send the compressed information to be processed to the server 200.
  • the device processor 101 is used to compress the information to be processed; and to send the compressed information to be processed to the server 200.
  • step S27 includes:
  • Step S272 Decompress the compressed processed information
  • Step S274 Control the display device 103 to display according to the decompressed processed information.
  • the processed information is in a compressed state
  • the device processor 101 is used to decompress the compressed processed information; and used to control the display device 103 to display according to the decompressed processed information.
  • control method includes:
  • Step S28 Determine the connection state of the headset 100 and the server 200;
  • Step S29 Determine whether to reconnect the headset 100 and the server 200 according to the connection status.
  • the device processor 101 is used to determine the connection status of the head mounted device 100 and the server 200; and used to determine whether to reconnect the head mounted device 100 and the server 200 according to the connection status.
  • step S28 includes:
  • Step S282 Send detection information to the server 200;
  • Step S284 In the case of receiving the reply message sent by the server 200 within the second preset time period, determine that the connection status is connected;
  • Step S286 In the case that no reply message is received within the second preset time period, it is determined that the connection state is disconnected.
  • the device processor 101 is configured to send detection information to the server 200; and configured to determine that the connection status is connected when the reply information sent by the server 200 is received within the second preset time period; and It is used to determine that the connection status is disconnected when the reply message is not received within the second preset time period.
  • an embodiment of the present application provides a control method.
  • the control method is used for the server 200.
  • the server 200 is connected to the headset 100, and the headset 100 includes a collection device 102 and a display device 103.
  • Control methods include:
  • Step S32 Obtain the to-be-processed information collected by the collecting device 102 and sent by the head-mounted device 100;
  • Step S34 Process the information to be processed to obtain processed information
  • Step S36 Send the processed information to the head-mounted device 100, so that the head-mounted device 100 controls the display device 103 to display according to the processed information.
  • the embodiment of the present application provides a server 200.
  • the server 200 includes a server 200 processor 201, and the server 200 processor 201 is connected to the head-mounted device 100.
  • the head-mounted device 100 includes a collection device 102 and a display device 103.
  • the server 200 processor 201 is used to obtain data collected by the collection device 102 and used by the headset Information to be processed sent by the device 100; and used to process the information to be processed to obtain processed information; and used to send the processed information to the head-mounted device 100 so that the head-mounted device 100 controls the display device 103 to display according to the processed information .
  • the control method of the server 200 and the server 200 of the embodiment of the present application transfer the processing of the information to be processed by the head-mounted device 100 to the server 200, so that the head-mounted device 100 does not need to integrate a powerful processor, nor does it need to use a line to connect to the processor. While ensuring the performance of the headset 100, the weight of the headset 100 is reduced, the portability of the headset 100 is improved, and the user experience is improved.
  • control method of the server 200 and the explanation and description of the server 200 may refer to the above-mentioned control method of the computing system 1000 and the explanation and description of the computing system 1000. To avoid redundancy, I won't repeat them here.
  • step S34 includes:
  • Step S342 Decompress the compressed information to be processed
  • Step S344 Process the decompressed information to be processed to obtain processed information.
  • the information to be processed is in a compressed state
  • the server processor 201 is used to decompress the compressed information to be processed
  • the server 200 is used to process the decompressed information to be processed to obtain the processed information.
  • step S36 includes:
  • Step S362 compress the processed information
  • Step S364 Send the compressed processed information to the head-mounted device 100.
  • the server processor 201 is used to compress the processed information; and used to send the compressed processed information to the head mounted device 100.
  • control method includes:
  • Step S38 Determine the connection state of the headset 100 and the server 200;
  • Step S39 Determine whether to reconnect the headset 100 and the server 200 according to the connection status.
  • the server processor 201 is used to determine the connection status of the head mounted device 100 and the server 200; and used to determine whether to reconnect the head mounted device 100 and the server 200 according to the connection status.
  • step S38 includes:
  • Step S382 Send detection information to the head-mounted device 100;
  • Step S384 In the case of receiving the reply message sent by the headset 100 within the second preset time period, determine that the connection status is connected;
  • Step S386 In the case that no reply message is received within the second preset time period, it is determined that the connection status is disconnected.
  • the server processor 201 is configured to send detection information to the head-mounted device 100; and configured to determine that the connection status is when the reply information sent by the head-mounted device 100 is received within the second preset time period. Connected; and used to determine that the connection status is disconnected when no reply message is received within the second preset time period.
  • the program can be stored in a non-volatile computer-readable storage medium.
  • the storage medium may be a magnetic disk, an optical disc, a read-only memory (Read-Only Memory, ROM), etc.

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Abstract

一种控制方法、头戴设备(100)和服务器(200)。控制方法用于头戴设备(100),头戴设备(100)包括采集装置(102)和展示装置(103),头戴设备(100)连接服务器(200),控制方法包括:获取采集装置(102)采集的待处理信息;将待处理信息发送至服务器(200),以使服务器(200)处理待处理信息以得到处理后信息;获取服务器(200)发送的处理后信息,处理后信息由服务器(200)处理待处理信息得到;根据处理后信息控制展示装置(103)展示。

Description

控制方法、头戴设备和服务器
优先权信息
本申请请求2019年06月10日向中国国家知识产权局提交的、专利申请号为201910498660.X的专利申请的优先权和权益,并且通过参照将其全文并入此处。
技术领域
本申请涉及电子技术领域,特别涉及一种控制方法、头戴设备和服务器。
背景技术
相关技术的穿戴设备可分为分体式和一体式两种形态。一体式的穿戴设备中,处理器与穿戴部合为一体。而分体式的穿戴设备中,处理器与穿戴部分离。
发明内容
本申请提供了一种控制方法、头戴设备和服务器。
本申请实施方式提供了一种控制方法。所述控制方法用于头戴设备,所述头戴设备包括采集装置和展示装置,所述头戴设备连接服务器,所述控制方法包括:
获取所述采集装置采集的待处理信息;
将所述待处理信息发送至所述服务器,以使所述服务器处理所述待处理信息以得到处理后信息;
获取所述服务器发送的处理后信息,所述处理后信息由所述服务器处理所述待处理信息得到;
根据所述处理后信息控制所述展示装置展示。
本申请实施方式提供了一种控制方法。所述控制方法用于服务器,所述服务器连接所述头戴设备,所述头戴设备包括采集装置和展示装置,所述控制方法包括:
获取由所述采集装置采集并由所述头戴设备发送的待处理信息;
处理所述待处理信息以得到处理后信息;
将所述处理后信息发送至所述头戴设备,以使所述头戴设备根据所述处理后信息控制所述展示装置展示。
本申请实施方式提供了一种头戴设备。所述头戴设备包括采集装置和展示装置和与所述显示器连接的设备处理器,所述设备处理器连接服务器,所述设备处理器用于获取所述头戴设备采集的待处理信息;及用于将所述待处理信息发送至所述服务器,以使所述服务器处理所述待处理信息以得到处理后信息;及用于获取所述服务器发送的处理后信息,所述处理后信息由所述服务器处理所述待处理信息得到;以及用于根据所述处理后信息控制所述展示装置展示。
本申请实施方式提供了一种服务器。所述服务器包括服务器处理器,所述服务器处理器连接头戴设备,所述头戴设备包括采集装置和展示装置,所述服务器处理器用于获取由所述采集装置采集并由所述头戴设备发送的待处理信息;及用于处理所述待处理信息以得到处理后信息;以及用于将所述处理后信息发送至所述头戴设备,以使所述头戴设备根据所述处理后信息控制所述展示装置展示。
附图说明
本申请上述的和/或附加的方面和优点从下面结合附图对实施例的描述中将变得明显和容易理解,其中:
图1是本申请实施方式的头戴设备的立体示意图;
图2是本申请另一实施方式的头戴设备的头戴设备的平面示意图;
图3是本申请实施方式的头戴设备部分结构的平面示意图;
图4是本申请实施方式的头戴设备的调节过程的示意图;
图5是本申请实施方式的头戴设备的调节过程的另一示意图;
图6是本申请另一实施方式的头戴设备部分结构的平面示意图;
图7是本申请又一实施方式的头戴设备部分结构的平面示意图;
图8是本申请实施方式的运算系统的控制方法的流程示意图;
图9是本申请实施方式的运算系统的结构示意图;
图10是本申请实施方式的运算系统的模块示意图;
图11是本申请实施方式的运算系统的控制方法的场景示意图;
图12是本申请实施方式的运算系统的控制方法的场景示意图;
图13是本申请实施方式的运算系统的控制方法的场景示意图;
图14是本申请实施方式的运算系统的模块示意图;
图15是本申请另一实施方式的运算系统的控制方法的流程示意图;
图16是本申请又一实施方式的运算系统的控制方法的流程示意图;
图17是本申请再一实施方式的运算系统的控制方法的流程示意图;
图18是本申请另一实施方式的运算系统的控制方法的流程示意图;
图19是本申请又一实施方式的运算系统的控制方法的流程示意图;
图20是本申请再一实施方式的运算系统的控制方法的流程示意图;
图21是本申请实施方式的头戴设备的控制方法的流程示意图;
图22是本申请另一实施方式的头戴设备的控制方法的流程示意图;
图23是本申请又一实施方式的头戴设备的控制方法的流程示意图;
图24是本申请再一实施方式的头戴设备的控制方法的流程示意图;
图25是本申请另一实施方式的头戴设备的控制方法的流程示意图;
图26是本申请实施方式的服务器的控制方法的流程示意图;
图27是本申请另一实施方式的服务器的控制方法的流程示意图;
图28是本申请又一实施方式的服务器的控制方法的流程示意图;
图29是本申请再一实施方式的服务器的控制方法的流程示意图;
图30是本申请另一实施方式的服务器的控制方法的流程示意图。
具体实施方式
下面详细描述本申请的实施例,所述实施例的示例在附图中示出,其中自始至终相同或类似的标号表示相同或类似的元件或具有相同或类似功能的元件。下面通过参考附图描述的实施例是示例性的,旨在用于解释本申请,而不能理解为对本申请的限制。
请参阅图1和图2,本申请实施方式的头戴设备100包括外壳20、支撑部件30、显示器40、屈光部件50、调节机构60。
外壳20为头戴设备100的外部零部件,起到了保护和固定头戴设备100的内部零部件的作用。通过外壳20将内部零部件包围起来,可以避免外界因素对这些内部零部件造成直接的损坏。
具体地,在本实施方式中,外壳20可用于收容和固定显示器40、屈光部件50和调节机构60中的至少一个。在图2的示例中,外壳20形成有收容槽22,显示器40和屈光部件50收容在收容槽22中。调节机构60部分地从外壳20露出。
外壳20还包括外壳顶壁24、外壳底壁26和外壳侧壁28。外壳底壁26的中部朝向外壳顶壁24形成缺口262。或者说,外壳20大致呈“B”字型。在用户佩戴头戴设备100时,头戴设备100可通过缺口262架设在用户的鼻梁上,这样既可以保证头戴设备100的稳定性,又可以保证用户佩戴的舒适性。调节机构60可部分地从外壳侧壁28露出,以便用户对屈光部件50进行调节。
另外,外壳20可以通过计算机数控(Computerized Numerical Control,CNC)机床加工铝合金形成,也可以采用聚碳酸酯(Polycarbonate,PC)或者PC和丙烯腈-丁二烯-苯乙烯塑料(Acrylonitrile Butadiene Styrene plastic,ABS)注塑成型。在此不对外壳20的具体制造方式和具体材料进行限定。
支撑部件30用于支撑头戴设备100。在用户佩戴头戴设备100时,头戴设备100可通过支撑部件30固定在用户的头部。在图2的示例中,支撑部件30包括第一支架32、第二支架34和弹性带36。
第一支架32和第二支架34关于缺口262对称设置。具体地,第一支架32和第二支架34可转动地设置在外壳20的边缘,在用户不需要使用头戴设备100时,可将第一支架32和第二支架34贴近外壳20叠放,以便于收纳。在用户需要使用头戴设备100时,可将第一支架32和第二支架34展开,以实现第一支架32和第二支架34支撑的功能。
第一支架32远离外壳20的一端形成有第一弯折部322,第一弯折部322朝向外壳底壁26弯折。这样,用户在佩戴头戴设备100时,第一弯折部322可架设在用户的耳朵上,从而使头戴设备100不易滑落。
类似地,第二支架34远离外壳20的一端形成有第二弯折部342。第二弯折部342的解释和说明可参照第一弯折部322,为避免冗余,在此不再赘述。
弹性带36可拆卸地连接第一支架32和第二支架34。如此,在用户佩戴头戴设备100进行剧烈活动时,可以通过弹性带36进一步固定头戴设备100,防止头戴设备100在剧烈活动中松动甚至掉落。可以理解,在其他的示例中,弹性带36也可以省略。
在本实施方式中,显示器40包括OLED显示屏。OLED显示屏无需背光灯,有利于头戴设备100的轻薄化。而且,OLED屏幕可视角度大,耗电较低,有利于节省耗电量。
当然,显示器40也可以采用LED显示器或Micro LED显示器。这些显示器仅作为示例而本申请的实施例并不限于此。
请一并参阅图3,屈光部件50设置在显示器40一侧。屈光部件50包括屈光腔52、透光液体54、第一膜层56、第二膜层58和侧壁59。
透光液体54设置在屈光腔52内。调节机构60用于调节透光液体54的量以调节屈光部件50的形态。具体地,第二膜层58相对于第一膜层56设置,侧壁59连接第一膜层56和第二膜层58,第一膜层56、第二膜层58和侧壁59围成屈光腔52,调节机构60用于调节透光液体54的量以改变第一膜层56和/或第二膜层58的形状。
如此,实现屈光部件50屈光功能的实现。具体地,“改变第一膜层56和/或第二膜层58的形状”包括三种情况:第一种情况:改变第一膜层56的形状且不改变第二膜层58的形状;第二种情况:不改变第一膜层56的形状且改变第二膜层58的形状;第三种情况:改变第一膜层56的形状且改变第二膜层58的形状。请注意,为方便解释,在本实施方式中,以第一种情况为例进行说明。
第一膜层56可具有弹性。可以理解,在屈光腔52中的透光液体54的量变化的情况下,屈光腔52内的压强也随之变化,从而使得屈光部件50的形态发生变化。
在一个例子中,调节机构60将屈光腔52中透光液体54的量减少,屈光腔52内的压强减小,屈光腔52外的压强与屈光腔52内的压强的压差增大,屈光腔52更加凹陷。
在另一个例子中,调节机构60将屈光腔52中透光液体54的量增多,屈光腔52内的压强增大,屈光腔52外的压强与屈光腔52内的压强的压差减小,屈光腔52更加凸出。
这样,就实现了通过调节透光液体54的量来调节屈光部件50的形态。
调节机构60连接屈光部件50。调节机构60用于调节屈光部件50的形态以调节屈光部件50的屈光度。具体地,调节机构60包括腔体62、滑动件64、驱动部件66、调节腔68和开关61。
滑动件64滑动地设置在腔体62中,驱动部件66与滑动件64连接,腔体62和滑动件64共同限定出调节腔68,调节腔68通过侧壁59连通屈光腔52,驱动部件66用于驱动滑动件64相对于腔体62滑动以调整调节腔68的容积以调节屈光腔52内的透光液体54的量。
如此,实现通过滑动件64来调整调节腔68的容积,以调节屈光腔52内的透光液体54的量。在一个例子中,请参阅图4,滑动件64往背离侧壁59的方向滑动,调节腔68的容积增大,调节腔68内的压强减小,屈光腔52内的透光液体54进入调节腔68,第一膜层56愈发向内凹陷。
在另一个例子中,请参阅图5,滑动件64往朝向侧壁59的方向滑动,调节腔68的容积减小,调节腔68内的压强增大,调节腔68内的透光液体54进入屈光腔52,第一膜层56愈发向外凸出。
侧壁59形成有流动通道591,流动通道591连通调节腔68和屈光腔52。调节机构60包括设置在流动通道591的开关61,开关61用于控制流动通道591的开闭状态。
在本实施方式中,开关61的数量为两个,两个开关61均为单向开关,其中一个开关61用于控制透光液体54从调节腔68流至屈光腔52,另一个开关61用于控制透光液体54从屈光腔52流至调节腔68。
如此,通过开关61实现透光液体54在调节腔68和屈光腔52之间的流动,以保持侧壁59两侧的压强平衡。如前所述,调节腔68容积的改变,会引起调节腔68中压强的变化,从而引起现透光液体54在调节腔68和屈光腔52之间的流动。而开关61通过控制流动通道591的开闭状态,来控制透光液体54在调节腔68和屈光腔52之间的流动能否实现,从而控制屈光部件50的形态的调节。
在一个例子中,请参阅图4,控制透光液体54从屈光腔52流至调节腔68的开关61打开,滑动件64往背离侧壁59的方向滑动,调节腔68的容积增大,调节腔68内的压强减小,屈光腔52内的透光液体54通过开关61进入调节腔68,第一膜层56愈发向内凹陷。
在另一个例子中,控制透光液体54从屈光腔52流至调节腔68的开关61关闭,即使滑动件64往背离侧壁59的方向滑动,调节腔68的容积增大,调节腔68内的压强减小,屈光腔52内的透光液体54也无法进入调节腔68,第一膜层56的形态不发生改变。
在又一个例子中,请参阅图5,控制透光液体54从调节腔68流至屈光腔52的开关61打开,滑动件64往朝向侧壁59的方向滑动,调节腔68的容积减小,调节腔68内的压强增大,调节腔68内的透光液体54通过开关61进入屈光腔52,第一膜层56愈发向外凸出。
在又一个例子中,控制透光液体54从调节腔68流至屈光腔52的开关61关闭,即使滑动件64往朝向侧壁59的方向滑动,调节腔68的容积减小,调节腔68内的压强增大,调节腔68内的透光液体54也无法进入屈光腔52,第一膜层56的形态不发生改变。
驱动部件66可基于多种结构和原理实现其驱动滑动件64滑动的功能。
在图1、图2、图3、图4和图5的示例中,驱动部件66包括旋钮662和丝杠664,丝杠664连接旋钮662和滑动件64,旋钮662用于驱动丝杠664转动以带动滑动件64相对于腔体62滑动。
如此,实现通过旋钮662和丝杠664来驱动滑动件64。由于丝杠664和旋钮662的配合可将旋钮662的回转运动转化为丝杠664直线运动,在用户旋转旋钮662时,丝杠664即可带动滑动件64相对于腔体62滑动,从而引起调节腔68容积的变化,进而调节屈光腔52内的透光液体54的量。旋钮662可自外壳20露出,以方便用户旋转。
具体地,旋钮662上形成有螺纹部,丝杠664上形成有与旋钮662配合的螺纹部,旋钮662和丝杠664螺纹连接。
在旋钮662旋转的同时,开关61可对应地打开。如此,使得透光液体54可以流动,保证侧壁59两侧的压强平衡。
在一个例子中,旋钮662顺时针旋转,滑动件64往背离侧壁59的方向滑动,则将控制透光液体54从屈光腔52流至调节腔68的开关61打开。在另一个例子中,旋钮662逆时针旋转,滑动件64往朝向侧壁59的方向滑动,则将控制透光液体54从调节腔68流至屈光腔52的开关61打开。
请注意,本实施方式中,没有关联旋钮662的旋转角度与屈光部件50的屈光度数,用户将旋钮662旋转到视觉体验最佳的位置即可。当然,在其他的实施方式中,也可以关联旋钮662的旋转角度与屈光部件50的屈光度数。在此,不对旋钮662的旋转角度与屈光部件50的屈光度数是否关联进行限定。
请参阅图6,驱动部件66包括齿轮666和与齿轮666啮合的齿条668,齿条668连接齿轮666和滑动件64,齿轮666用于驱动齿条668移动以带动滑动件64相对于腔体62滑动。
如此,实现通过齿轮666和齿条668来驱动滑动件64。由于齿轮666和齿条668的配合可将齿轮666的回转运动转化为齿条668直线运动,在用户旋转齿轮666时,齿条668即可带动滑动件64相对于腔体62滑动,从而引起调节腔68容积的变化,进而调节屈光腔52内的透光液体54的量。齿轮666可自外壳20露出,以方便用户旋转。
类似地,在齿轮666旋转的同时,开关61可对应地打开。如此,使得透光液体54可以流动,保证侧壁59两侧的压强平衡。
在一个例子中,齿轮666顺时针转动使得齿条668啮合在齿轮666上,齿条668的长度缩短,拉动滑动件64往背离侧壁59的方向移动,则将控制透光液体54从屈光腔52流至调节腔68的开关61打开。
在另一个例子中,齿轮666逆时针转动使得啮合在齿轮666上的齿条668从齿轮666脱离,齿条668的长度增长,推动滑动件64往朝向侧壁59的方向移动,则将控制透光液体54从调节腔68流至屈光腔52的开关61打开。
类似地,本实施方式中,没有关联齿轮666的旋转角度与屈光部件50的屈光度数,用户将齿轮666旋转到视觉体验最佳的位置即可。当然,在其他的实施方式中,也可以关联齿轮666的旋转角度与屈光部件50的屈光度数。在此,不对齿轮666的旋转角度与屈光部件50的屈光度数是否关联进行限定
请参阅图7,驱动部件66包括驱动电机669,驱动电机669的电机轴6691连接滑动件64,驱动电机669用于驱动滑动件64相对于腔体62滑动。
如此,实现通过驱动电机668驱动滑动件64。具体地,驱动电机669可为线性电机。线性电机结构简单,不需要经过中间转换机构而直接产生直线运动,可以减小运动惯量并提高动态响应性能和定位精度。通过驱动电机668驱动滑动件64,使得对滑动件64的驱动具有可编辑性。例如,可以通过事先的校准,将驱动电机668与屈光的度数关联起来。用户可以直接输入屈光的度数,驱动电机668自动运转驱动滑动件64滑动到对应的位置。
进一步地,驱动部件66还可以包括输入器6692,输入器6692包括但不限于按键、旋钮或触摸屏等装置。在图7的示例中,输入器6692为按键,两个按键分别设置在腔体62的相对两侧。按键可自外壳20露出,以方便用户按压。按键可根据外力按压的次数或时长控制驱动电机669的工作时长,从而控制滑动件64的滑动距离。
类似地,在驱动电机669工作的同时,开关61可对应地打开。如此,使得透光液体54可以流动,保证侧壁59两侧的压强平衡。
在一个例子中,用户按压两个按键中的一个按键,驱动电机轴6691伸长,电机轴6691推动滑动件64往朝向侧壁59的方向移动,则将控制透光液体54从调节腔68流至屈光腔52的开关61打开。
在另一个例子中,用户按压两个按键中的另一个按键,驱动电机轴6691缩短,电机轴6691拉动滑动件64往背离侧壁59的方向移动,则将控制透光液体54从屈光腔52流至调节腔68的开关61打开。
需要注意的是,屈光部件50的结构不仅包括以上的屈光腔52、透光液体54、第一膜层56、第二膜层58和侧壁59,只要保证屈光部件50可以实现屈光度的改变的效果即可。例如,在其他方式中,屈光部件50包括多个镜片和驱动件,驱动件用于驱动每个镜片从收容位置移动到屈光位置。这样,即可通过多个镜片的组合,来改变屈光部件50的屈光度。当然,驱动件也可驱动移动到屈光位置上的每个镜片在屈光光轴上移动,从而改变屈光部件50的屈光度。
因此,以上所述的屈光部件的形态包括屈光部件的形状和状态,以上屈光腔52、透光液体54、第一膜层56、第二膜层58和侧壁59的结构方式通过改变第一膜层56和/或第二膜层58的形状以实现屈光度的改变;以上多个镜片和驱动件的结构方式,通过改变镜片的状态以实现屈光度的改变。
综合以上,本申请实施方式提供了一种头戴设备1000,头戴设备100包括显示器40、屈光部件50和调节机构60。屈光部件50设置在显示器40一侧。调节机构60连接屈光部件50,调节机构60用于调节屈光部件50的形态以调节屈光部件50的屈光度。
本申请实施方式的头戴设备1000,通过调节机构60调节屈光部件50的形态,以调节屈光部件50的屈光度,使得屈光不正的用户能够看清显示器40显示的图像,有利于提高用户体验。
而且,本申请实施方式的头戴设备1000中,屈光部件50和调节机构60可线性矫正屈光度数,使每个不同屈光度数的人都可以灵活佩戴。同时,屈光部件50和调节机构60的体积较小,不影响头戴设备100的佩戴体验。用户不需要购买很多镜片,可以降低价格。
相关技术的穿戴设备可分为分体式和一体式两种形态。一体式的穿戴设备中,处理器与穿戴部合为一体,穿戴设备重量和体积较大,影响佩戴舒适度。而且,由于处理器需要进行大量的运算,但穿戴部体积有限,散热受限,因此处理器发热严重,极大地影响了用户体验。而分体式的穿戴设备中,处理器与穿戴部分离,虽然减轻穿戴部的重量,但穿戴部与处理器之间需要用特定的数据线连接,佩戴不方便,且增加了外接处理器,携带不便。因此,如何同时保证性能、便携性和穿戴体验成为亟待解决的问题。
请参阅图8和图9,本申请实施方式提供了一种控制方法。控制方法用于运算系统1000。运算系统1000包括头戴设备和与头戴设备100连接的服务器200,头戴设备100包括采集装置102和展示装置103。
控制方法包括:
步骤S12:头戴设备100将采集装置102采集的待处理信息发送至服务器200;
步骤S14:服务器200处理待处理信息以得到处理后信息;
步骤S16:服务器200将处理后信息发送至头戴设备100;
步骤S17:头戴设备100根据处理后信息控制展示装置103展示。
请参阅图10,本申请实施方式提供了一种运算系统1000。运算系统1000包括系统处理器1001、头戴设备100和与头戴设备100连接的服务器200,系统处理器1001连接头戴设备100和服务器200,头戴设备100包括采集装置102和展示装置103,系统处理器1001用于控制头戴设备100将采集装置102采集的待处理信息发送至服务器200;及用于控制服务器200处理待处理信息以得到处理后信息;及用于控制服务器200将处理后信息发送至头戴设备100;以及用于控制头戴设备100根据处理后信息控制展示装置103展示。
本申请实施方式的运算系统1000的控制方法和运算系统1000,将头戴设备100对待处理信息的处理转移给服务器200,使得头戴设备100既无需集成强大的处理器,也无需用线外接处理器,从而在保证头戴设备100的性能的同时,减轻了头戴设备100的重量,提高了头戴设备100的便携性,有利于提高用户体验。具体地,头戴设备100可以为电子眼镜、头戴式耳机、电子头盔等电子装置。服务器200可为云端服务器,也可为除云端服务器外的其他种类的服务器。在此不对头戴设备100和服务器200的具体形式进行限定。
请注意,为方便说明,本申请实施方式以头戴设备100是电子眼镜为例、以服务器200是云端服务器为例,对本申请实施方式的运算系统1000的控制方法进行解释。这并不代表对头戴设备100和服务器200的具体形式进行限定。另外,在图1和图2的示例中,显示器40为双目形式。可以理解,显示器40也可为单目形式。
在本实施方式中,头戴设备100和服务器200通过超文本传输协议(HyperText Transfer Protocol,HTTP)建立长连接,从而进行实时通信。“长连接”指一个连接上可以连续发送多个数据包。
当然,在其他的实施方式中,头戴设备100和服务器200还可通过私有协议或其他协议建立连接。在此不对头戴设备100和服务器200连接的具体方式进行限定。
另外,可以是一台头戴设备100与服务器200连接,服务器200为一台头戴设备100处理待处理信息;也可以是多台头戴设备100与服务器200连接,服务器200为多台头戴设备100处理待处理信息。在多台头戴设备100与服务器200连接的情况下,多台头戴设备100与服务器200的连接是独立的,互不干涉。为方便说明,接下来以一台头戴设备100与服务器200连接为例进行解释和说明。
此外,头戴设备100的采集装置102包括但不限于摄像模组、声电元件、陀螺仪、加速度传感器、环境光传感器等。头戴设备100的展示装置103包括但不限于显示器40、电声元件1031 等。进一步地,摄像模组可包括深度相机。声电元件可包括麦克风。电声元件1031可包括扬声器。在此不对采集装置102和展示装置103的具体形式进行限定。
在步骤S12中,“待处理信息”包括但不限于图像信息、声音信息、六自由度(6Degree of Freedom,6DoF)信息、定位信息等。在此不对待处理信息的具体形式进行限定。
在步骤S14中,服务器200对待处理信息进行的处理包括但不限于像渲染,声纹分析,去杂音处理,系统解密认证,6DOF计算,系统定位等。
在步骤S12和步骤S16中,头戴设备100和服务器200之间的信息传递可通过第一收发装置104和第二收发装置202进行。其中,第一收发装置104设置在穿戴设备100。第二收发装置202设置在服务器。
在步骤S17中,头戴设备100根据处理后信息控制展示装置103展示,包括但不限于展示图像信息渲染结果,声纹分析结果,系统加密解密结果,方位信息结果。例如根据处理后信息控制显示器40显示、根据处理后信息控制扬声器播放。在此不对头戴设备100根据处理后信息控制展示装置103展示的具体方式进行限定。
请参阅图11,在一个例子中,头戴设备100正在运行同步定位与建图应用(Simultaneous Localization And Mapping,SLAM)。由于SLAM应用需要得到头戴设备100本身的运动姿态以及周围场景的信息,以实现场景重建。因此,头戴设备100将摄像模组和传感器采集的数据发送给服务器200,服务器200根据摄像模组和传感器采集的数据来计算得到头戴设备100本身的运动姿态以及周围场景的信息,并根据这些信息重新渲染出相应的画面以得到处理后信息,然后将处理后信息发送给头戴设备100,头戴设备100根据处理后信息控制显示器40显示,从而实现场景重建。
请参阅图12,在另一个例子中,头戴设备100正在运行录音应用。头戴设备100将麦克风采集的数据发送给服务器200,服务器200根据麦克风采集的数据进行提取、分析、降噪等处理,从而得到处理后信息,然后将处理后信息发送给头戴设备100,头戴设备100根据处理后信息控制电声元件1031播放。
请参阅图13,在又一个例子中,头戴设备100正在运行声纹分析应用。头戴设备100将麦克风采集的数据发送给服务器200,服务器200根据麦克风采集的数据进行提取、分析、降噪、比对等处理,从而得到处理后信息,然后将处理后信息发送给头戴设备100,头戴设备100根据处理后信息控制显示器40显示声纹分析的结果。
请参阅图14,头戴设备100可包括获取模块105、第一发送模块106、第一接收模块107和展示模块108。服务器200可包括第二接收模块203、处理模块204、第二发送模块205。获取模块105用于获取待处理信息;第一发送模块106用于将待处理信息发送至服务器200;第二接收模块203用于获取由第一发送模块106发送的待处理信息;处理模块204用于处理待处理信息以得到处理后信息;第二发送模块205用于将处理后信息发送至头戴设备100;第一接收模块107用于获取服务器200发送的处理后信息;展示模块108用于展示处理后信息。
可以理解,上述模块可以是单独的元器件,也可以是同一元器件的不同功能模块。例如,获取模块105可为采集装置102,展示模块108可为展示装置103。第一发送模块106和第一接收模块107可为第一收发装置104的不同功能模块。第二接收模块203和第二发送模块205可为第二收发装置102的不同功能模块。
请参阅图15,在某些实施方式中,步骤S12包括:
步骤S122:头戴设备100压缩待处理信息;
步骤S124:头戴设备100将压缩的待处理信息发送至服务器200。
在某些实施方式中,系统处理器1001用于控制头戴设备100压缩待处理信息;以及用于控制头戴设备100将压缩的待处理信息发送至服务器200。
如此,实现头戴设备100将采集装置102采集的待处理信息发送至服务器200。具体地,压缩是一种通过特定的算法来减小计算机文件大小的机制。可以理解,通过压缩待处理信息,可以减小待处理信息的字节总数,使待处理信息能够更快传输,从而节约传输时间。
在步骤S122中,头戴设备100可通过下列方式压缩待处理信息:查找待处理信息内的重复 内容,并以同一个标记字符来标记同一种重复内容,从而缩小待处理信息的体积,以达到压缩的目的。当然,头戴设备100也可以调用压缩软件对待处理信息进行压缩。例如Winzip、WinRAR等。
在步骤S124中,可将压缩的待处理信息分为多个数据包,并将多个数据包发送至服务器200。可以理解,头戴设备100和服务器200之间的信息传输,对于数据帧有长度限制。因此,头戴设备100可将压缩的待处理信息分为多个数据包,以使每个数据包不超过长度限制,从而顺利发送。
在一个例子中,头戴设备100利用Winzip压缩待处理信息后,将待处理信息分为5个数据包,并将5个数据包发送至服务器200。在另一个例子中,头戴设备100利用WinRAR压缩待处理信息后,将待处理信息分为10个数据包,并将10个数据包发送至服务器200。在此不对压缩待处理信息的具体方式和由待处理信息分成的数据包的具体数量进行限定。
请参阅图16,在某些实施方式中,步骤S14包括:
步骤S142:服务器200将压缩的待处理信息解压缩;
步骤S144:服务器200处理解压缩的待处理信息以得到处理后信息。
在某些实施方式中,系统处理器1001用于控制服务器200将压缩的待处理信息解压缩;以及用于控制服务器200处理解压缩的待处理信息以得到处理后信息。
如此,实现服务器200处理待处理信息以得到处理后信息。具体地,解压缩是压缩的反过程,是将压缩的文档、文件等数据恢复到压缩之前的状态。可以理解,在接收到压缩的待处理信息后,服务器200要对压缩的待处理信息进行解压缩,使其恢复到未压缩的状态,才能对待处理信息进行处理。
在步骤S142中,头戴设备100可通过下列方式对压缩的待处理信息进行解压缩:查找待处理信息内的标记字符,并用与该标记字符对应的重复内容替换该标记字符,从而恢复压缩的待处理信息,以达到解压缩的目的。当然,头戴设备100也可以调用压缩软件对待处理信息进行解压缩。例如Winzip、WinRAR等。
在步骤S144中,服务器200处理解压缩的待处理信息,可以是对图像数据进行校正、降噪、插值、渲染,也可以是对音频数据进行去混响、降噪和修音。在此不对服务器200处理待处理信息的具体方式进行限定。
请参阅图17,在某些实施方式中,步骤S16包括:
步骤S162:服务器200压缩处理后信息;
步骤S164:服务器200将压缩的处理后信息发送至头戴设备100。
在某些实施方式中,系统处理器1001用于控制服务器200压缩处理后信息;以及用于控制服务器200将压缩的处理后信息发送至头戴设备100。
如此,实现服务器200将处理后信息发送至头戴设备100。此部分的解释和说明可参照上述头戴设备100压缩待处理信息并将压缩的待处理信息发送至服务器200的部分。为避免冗余,在此不再赘述。
请参阅图18,在某些实施方式中,步骤S17包括:
步骤S172:头戴设备100将压缩的处理后信息解压缩;
步骤S174:头戴设备100根据解压缩的处理后信息控制展示装置103展示。
在某些实施方式中,系统处理器1001用于控制头戴设备100将压缩的处理后信息解压缩;以及用于控制头戴设备100根据解压缩的处理后信息控制展示装置103展示。
如此,实现头戴设备100根据处理后信息控制展示装置103展示。此部分的解释和说明可参照上述头戴设备100压缩待处理信息并将压缩的待处理信息发送至服务器200的部分。为避免冗余,在此不再赘述。
请参阅图19,在某些实施方式中,控制方法包括:
步骤S18:确定头戴设备100和服务器200的连接状态;
步骤S19:根据连接状态确定是否重新连接头戴设备100和服务器200。
在某些实施方式中,系统处理器1001用于确定头戴设备100和服务器200的连接状态;以及用于根据连接状态确定是否重新连接头戴设备100和服务器200。
如此,保证头戴设备100和服务器200的连接。可以理解,如前所述,在本实施方式中,头戴设备100和服务器200通过HTTP建立长连接,“长连接”指一个连接上可以连续发送多个数据包。因此,如果在传输过程中,头戴设备100和服务器200的连接断开,可能导致部分数据包未能传输到位,从而使得信息不足或数据损坏。在本实施方式中,根据连接状态确定是否重新连接头戴设备100和服务器200,可以避免传输过程中,头戴设备100和服务器200的连接断开,导致信息传递不完整。
具体地,在步骤S19中,连接状态可包括:已连接和已断开。在头戴设备100和服务器200已断开的情况下,确定重新连接头戴设备100和服务器200;在头戴设备100和服务器200已连接的情况下,确定不重新连接头戴设备100和服务器200。
可以理解,在头戴设备100和服务器200已断开的情况下,需要重新发起连接,使得头戴设备100和服务器200重新连接以继续数据的传输。在头戴设备100和服务器200已连接的情况下,保持头戴设备100和服务器200的连接即可,无需重新发起连接。
请参阅图20,在某些实施方式中,步骤S18包括:
步骤S182:第一方向第二方发送检测信息,第一方为头戴设备100和服务器200中的一个,第二方为头戴设备100和服务器200中的另一个;
步骤S184:在第一预设时长内第二方接收到检测信息的情况下,第二方向第一方发送回复信息;
步骤S186:在第二预设时长内第一方接收到回复信息的情况下,确定连接状态为已连接;
步骤S188:在第二预设时长内第一方没有接收到回复信息的情况下,确定连接状态为已断开。
在某些实施方式中,系统处理器1001用于控制第一方向第二方发送检测信息,第一方为头戴设备100和服务器200中的一个,第二方为头戴设备100和服务器200中的另一个;及用于在第一预设时长内第二方接收到检测信息的情况下,控制第二方向第一方发送回复信息;及用于在第二预设时长内第一方接收到回复信息的情况下,确定连接状态为已连接;以及用于在第二预设时长内第一方没有接收到回复信息的情况下,确定连接状态为已断开。
如此,实现确定头戴设备100和服务器200的连接状态。在本实施方式中,检测信息为心跳包。心跳包是在通讯双方间定时通知对方自己状态的一个自定义的命令字,按照一定的时间间隔发送。请注意,第一预设时长与第二时长的具体数值可以相同,也可以不同。
可以理解,第一方向第二方发送检测信息,在第一预设时长内第二方接收到检测信息即确定第一方在线;在第二方接收到检测信息的情况下,第二方向第一方发送回复信息,第一方在第二预设时长内收到回复信息即确定第二方在线。这样可以确定第一方和第二方之间的连接状态是已连接,从而保证第一方和第二方之间连接的有效性。
另外,由于检测信息是按照一定的时间间隔发送,若在第一预设时长内第二方没有接收到检测信息,则可推断第一方不在线。类似地,若第一方在第二预设时长内没有收到回复信息,则可推断第二方不在线,第一方和第二方之间的连接状态是已断开。
在一个例子中,第一预设时长为3s,第二预设时长为6s,头戴设备100向服务器200发送检测信息:“123”,服务器200在2s收到“123”后,确定头戴设备100在线,并向头戴设备100发送回复信息:“456”,头戴设备100在发送检测消息后的第5s收到回复信息。则可确定头戴设备100和服务器200之间的连接状态是已连接。
在另一个例子中,第一预设时长为3s,第二预设时长为6s,头戴设备100向服务器200发送检测信息:“123”,服务器200在2s收到“123”后,确定头戴设备100在线,并向头戴设备100发送回复信息:“456”,头戴设备100在发送检测消息后的6s内没有收到回复信息。则可确定头戴设备100和服务器200之间的连接状态是已断开。
在又一个例子中,第一预设时长为3s,第二预设时长为6s,头戴设备100向服务器200发送检测信息:“123”,服务器200在3s内没有收到“123”,则不向头戴设备100发送回复信息,头戴设备100在发送检测消息后的6s内没有收到回复信息。则可确定头戴设备100和服务器200之间的连接状态是已断开。
服务器200向头戴设备100发送检测信息可参照上述例子中头戴设备100向服务器200发送检测信息,为避免冗余,在此不再赘述。
综合以上,本实施方式的计算系统和控制方法,有以下效果:头戴设备100无需集成强大的处理器,减轻了头戴设备100的重量,减少发热,提高用户体验;头戴设备100无需用线外接处理器,使用方便,佩戴舒服,携带方便。处理模块与头戴设备100分离,运算系统不受限于头戴设备100的体积重量,处理模块位于服务器200,可大大提升运算能力,能进行更多复杂的运算,实现比一体式头戴设备更为复杂的功能;无需每台头戴设备100配备一个处理器,服务器200可供多台设备使用,从而节省成本。头戴设备100不需要进行复杂信息的运算处理,只负责采集待处理信息和展示处理后信息,减少了头戴设备100的功耗,可大大的延长头戴设备100的续航时间。
请参阅图21,本申请实施方式提供了一种控制方法。控制方法用于头戴设备100。头戴设备100包括采集装置102和展示装置103,头戴设备100连接服务器200。
控制方法包括:
步骤S22:获取采集装置102采集的待处理信息;
步骤S24:将待处理信息发送至服务器200,以使服务器200处理待处理信息以得到处理后信息;
步骤S26:获取服务器200发送的处理后信息,处理后信息由服务器200处理待处理信息得到;
步骤S27:根据处理后信息控制展示装置103展示。
本申请实施方式提供了一种头戴设备100。头戴设备100包括采集装置102和展示装置103和与显示器连接的设备处理器101,设备处理器101连接服务器200,设备处理器101用于获取头戴设备100采集的待处理信息;及用于将待处理信息发送至服务器200,以使服务器200处理待处理信息以得到处理后信息;及用于获取服务器发送的处理后信息,处理后信息由服务器200处理待处理信息得到;以及用于根据处理后信息控制展示装置103展示。
本申请实施方式头戴设备100的控制方法和头戴设备100,将头戴设备100对待处理信息的处理转移给服务器200,使得头戴设备100既无需集成强大的处理器,也无需用线外接处理器,从而在保证头戴设备100的性能的同时,减轻了头戴设备100的重量,提高了头戴设备100的便携性,有利于提高用户体验。
请注意,头戴设备100的控制方法和头戴设备100的解释和说明,可参照上述的运算系统1000的控制方法和运算系统1000的解释和说明。为避免冗余,在此不再赘述。
请参阅图22,在某些实施方式中,步骤S24包括:
步骤S242:压缩待处理信息;
步骤S244:将压缩的待处理信息发送至服务器200。
在某些实施方式中,设备处理器101用于压缩待处理信息;以及用于将压缩的待处理信息发送至服务器200。
请参阅图23,在某些实施方式中,处理后信息呈压缩状态,步骤S27包括:
步骤S272:将压缩的处理后信息解压缩;
步骤S274:根据解压缩的处理后信息控制展示装置103展示。
在某些实施方式中,处理后信息呈压缩状态,设备处理器101用于将压缩的处理后信息解压缩;以及用于根据解压缩的处理后信息控制展示装置103展示。
请参阅图24,在某些实施方式中,控制方法包括:
步骤S28:确定头戴设备100和服务器200的连接状态;
步骤S29:根据连接状态确定是否重新连接头戴设备100和服务器200。
在某些实施方式中,设备处理器101用于确定头戴设备100和服务器200的连接状态;以及用于根据连接状态确定是否重新连接头戴设备100和服务器200。
请参阅图25,在某些实施方式中,步骤S28包括:
步骤S282:向服务器200发送检测信息;
步骤S284:在第二预设时长内接收到服务器200发送的回复信息的情况下,确定连接状态为已连接;
步骤S286:在第二预设时长内没有接收到回复信息的情况下,确定连接状态为已断开。
在某些实施方式中,设备处理器101用于向服务器200发送检测信息;及用于在第二预设时长内接收到服务器200发送的回复信息的情况下,确定连接状态为已连接;以及用于在第二预设时长内没有接收到回复信息的情况下,确定连接状态为已断开。
请参阅图26,本申请实施方式提供了一种控制方法。控制方法用于服务器200。服务器200连接头戴设备100,头戴设备100包括采集装置102和展示装置103。
控制方法包括:
步骤S32:获取由采集装置102采集并由头戴设备100发送的待处理信息;
步骤S34:处理待处理信息以得到处理后信息;
步骤S36:将处理后信息发送至头戴设备100,以使头戴设备100根据处理后信息控制展示装置103展示。
本申请实施方式提供了一种服务器200。服务器200包括服务器200处理器201,服务器200处理器201连接头戴设备100,头戴设备100包括采集装置102和展示装置103,服务器200处理器201用于获取由采集装置102采集并由头戴设备100发送的待处理信息;及用于处理待处理信息以得到处理后信息;以及用于将处理后信息发送至头戴设备100,以使头戴设备100根据处理后信息控制展示装置103展示。
本申请实施方式服务器200的控制方法和服务器200,将头戴设备100对待处理信息的处理转移给服务器200,使得头戴设备100既无需集成强大的处理器,也无需用线外接处理器,从而在保证头戴设备100的性能的同时,减轻了头戴设备100的重量,提高了头戴设备100的便携性,有利于提高用户体验。
请注意,服务器200的控制方法和服务器200的解释和说明,可参照上述的运算系统1000的控制方法和运算系统1000的解释和说明。为避免冗余,在此不再赘述。
请参阅图27,在某些实施方式中,待处理信息呈压缩状态,步骤S34包括:
步骤S342:将压缩的待处理信息解压缩;
步骤S344:处理解压缩的待处理信息以得到处理后信息。
在某些实施方式中,待处理信息呈压缩状态,服务器处理器201用于将压缩的待处理信息解压缩;以及用于服务器200处理解压缩的待处理信息以得到处理后信息。
请参阅图28,在某些实施方式中,步骤S36包括:
步骤S362:压缩处理后信息;
步骤S364:将压缩的处理后信息发送至头戴设备100。
在某些实施方式中,服务器处理器201用于压缩处理后信息;以及用于将压缩的处理后信息发送至头戴设备100。
请参阅图29,在某些实施方式中,控制方法包括:
步骤S38:确定头戴设备100和服务器200的连接状态;
步骤S39:根据连接状态确定是否重新连接头戴设备100和服务器200。
在某些实施方式中,服务器处理器201用于确定头戴设备100和服务器200的连接状态;以及用于根据连接状态确定是否重新连接头戴设备100和服务器200。
请参阅图30,在某些实施方式中,步骤S38包括:
步骤S382:向头戴设备100发送检测信息;
步骤S384:在第二预设时长内接收到头戴设备100发送的回复信息的情况下,确定连接状态为已连接;
步骤S386:在第二预设时长内没有接收到回复信息的情况下,确定连接状态为已断开。
在某些实施方式中,服务器处理器201用于向头戴设备100发送检测信息;及用于在第二预设时长内接收到头戴设备100发送的回复信息的情况下,确定连接状态为已连接;以及用于在第二预设时长内没有接收到回复信息的情况下,确定连接状态为已断开。
本领域普通技术人员可以理解实现上述实施例方法中的全部或部分流程,是可以通过计算机程序来指令相关的硬件来完成,的程序可存储于一非易失性计算机可读存储介质中,该程序在执行时,可包括如上述各方法的实施例的流程。其中,的存储介质可为磁碟、光盘、只读存储记忆体(Read-Only Memory,ROM)等。
以上实施例仅表达了本申请的几种实施方式,其描述较为具体和详细,但并不能因此而理解为对本申请专利范围的限制。应当指出的是,对于本领域的普通技术人员来说,在不脱离本申请构思的前提下,还可以做出若干变形和改进,这些都属于本申请的保护范围。因此,本申请专利的保护范围应以所附权利要求为准。

Claims (20)

  1. 一种控制方法,用于头戴设备,其特征在于,所述头戴设备包括采集装置和展示装置,所述头戴设备连接服务器,所述控制方法包括:
    获取所述采集装置采集的待处理信息;
    将所述待处理信息发送至所述服务器,以使所述服务器处理所述待处理信息以得到处理后信息;
    获取所述服务器发送的处理后信息,所述处理后信息由所述服务器处理所述待处理信息得到;
    根据所述处理后信息控制所述展示装置展示。
  2. 根据权利要求1所述的控制方法,其特征在于,将所述待处理信息发送至所述服务器,包括:
    压缩所述待处理信息;
    将压缩的所述待处理信息发送至所述服务器。
  3. 根据权利要求2所述的控制方法,其特征在于,所述处理后信息呈压缩状态,根据所述处理后信息控制所述展示装置展示,包括:
    将压缩的所述处理后信息解压缩;
    根据解压缩的所述处理后信息控制所述展示装置展示。
  4. 根据权利要求1所述的控制方法,其特征在于,所述控制方法包括:
    确定所述头戴设备和所述服务器的连接状态;
    根据所述连接状态确定是否重新连接所述头戴设备和所述服务器。
  5. 根据权利要求4所述的控制方法,其特征在于,确定所述头戴设备和所述服务器的连接状态,包括:
    向所述服务器发送检测信息;
    在第二预设时长内接收到所述服务器发送的回复信息的情况下,确定所述连接状态为已连接;
    在所述第二预设时长内没有接收到所述回复信息的情况下,确定所述连接状态为已断开。
  6. 一种控制方法,用于服务器,其特征在于,所述服务器连接所述头戴设备,所述头戴设备包括采集装置和展示装置,所述控制方法包括:
    获取由所述采集装置采集并由所述头戴设备发送的待处理信息;
    处理所述待处理信息以得到处理后信息;
    将所述处理后信息发送至所述头戴设备,以使所述头戴设备根据所述处理后信息控制所述展示装置展示。
  7. 根据权利要求6所述的控制方法,其特征在于,所述待处理信息呈压缩状态,处理所述待处理信息以得到处理后信息,包括:
    将压缩的所述待处理信息解压缩;
    处理解压缩的所述待处理信息以得到所述处理后信息。
  8. 根据权利要求7所述的控制方法,其特征在于,将所述处理后信息发送至所述头戴设备,包括:
    压缩所述处理后信息;
    将压缩的所述处理后信息发送至所述头戴设备。
  9. 根据权利要求6所述的控制方法,其特征在于,所述控制方法包括:
    确定所述头戴设备和所述服务器的连接状态;
    根据所述连接状态确定是否重新连接所述头戴设备和所述服务器。
  10. 根据权利要求9所述的控制方法,其特征在于,确定所述头戴设备和所述服务器的连接状态,包括:
    向所述头戴设备发送检测信息;
    在第二预设时长内接收到所述头戴设备发送的回复信息的情况下,确定所述连接状态为已连 接;
    在所述第二预设时长内没有接收到所述回复信息的情况下,确定所述连接状态为已断开。
  11. 一种头戴设备,其特征在于,所述头戴设备包括采集装置和展示装置和与所述显示器连接的设备处理器,所述设备处理器连接服务器,所述设备处理器用于获取所述头戴设备采集的待处理信息;及用于将所述待处理信息发送至所述服务器,以使所述服务器处理所述待处理信息以得到处理后信息;及用于获取所述服务器发送的处理后信息,所述处理后信息由所述服务器处理所述待处理信息得到;以及用于根据所述处理后信息控制所述展示装置展示。
  12. 根据权利要求11所述的头戴设备,其特征在于,所述设备处理器用于压缩所述待处理信息;以及用于将压缩的所述待处理信息发送至所述服务器。
  13. 根据权利要求12所述的头戴设备,其特征在于,所述处理后信息呈压缩状态,所述设备处理器用于将压缩的所述处理后信息解压缩;以及用于根据解压缩的所述处理后信息控制所述展示装置展示。
  14. 根据权利要求11所述的头戴设备,其特征在于,所述设备处理器用于确定所述头戴设备和所述服务器的连接状态;以及用于根据所述连接状态确定是否重新连接所述头戴设备和所述服务器。
  15. 根据权利要求14所述的头戴设备,其特征在于,所述设备处理器用于向所述服务器发送检测信息;及用于在第二预设时长内接收到所述服务器发送的回复信息的情况下,确定所述连接状态为已连接;以及用于在所述第二预设时长内没有接收到所述回复信息的情况下,确定所述连接状态为已断开。
  16. 一种服务器,其特征在于,所述服务器包括服务器处理器,所述服务器处理器连接头戴设备,所述头戴设备包括采集装置和展示装置,所述服务器处理器用于获取由所述采集装置采集并由所述头戴设备发送的待处理信息;及用于处理所述待处理信息以得到处理后信息;以及用于将所述处理后信息发送至所述头戴设备,以使所述头戴设备根据所述处理后信息控制所述展示装置展示。
  17. 根据权利要求16所述的服务器,其特征在于,所述待处理信息呈压缩状态,所述服务器处理器用于将压缩的所述待处理信息解压缩;以及用于所述服务器处理解压缩的所述待处理信息以得到所述处理后信息。
  18. 根据权利要求17所述的服务器,其特征在于,所述服务器处理器用于压缩所述处理后信息;以及用于将压缩的所述处理后信息发送至所述头戴设备。
  19. 根据权利要求16所述的服务器,其特征在于,所述服务器处理器用于确定所述头戴设备和所述服务器的连接状态;以及用于根据所述连接状态确定是否重新连接所述头戴设备和所述服务器。
  20. 根据权利要求19所述的服务器,其特征在于,所述服务器处理器用于向所述头戴设备发送检测信息;及用于在第二预设时长内接收到所述头戴设备发送的回复信息的情况下,确定所述连接状态为已连接;以及用于在所述第二预设时长内没有接收到所述回复信息的情况下,确定所述连接状态为已断开。
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