WO2020043024A1 - 一种可穿戴设备及其操控方法、操控系统和存储装置 - Google Patents

一种可穿戴设备及其操控方法、操控系统和存储装置 Download PDF

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Publication number
WO2020043024A1
WO2020043024A1 PCT/CN2019/102316 CN2019102316W WO2020043024A1 WO 2020043024 A1 WO2020043024 A1 WO 2020043024A1 CN 2019102316 W CN2019102316 W CN 2019102316W WO 2020043024 A1 WO2020043024 A1 WO 2020043024A1
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WIPO (PCT)
Prior art keywords
wearable device
vibration
mouse
manipulation
vibration signal
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Application number
PCT/CN2019/102316
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English (en)
French (fr)
Inventor
李帅
Original Assignee
奇酷互联网络科技(深圳)有限公司
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Publication of WO2020043024A1 publication Critical patent/WO2020043024A1/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
    • G06F3/03Arrangements for converting the position or the displacement of a member into a coded form
    • G06F3/033Pointing devices displaced or positioned by the user, e.g. mice, trackballs, pens or joysticks; Accessories therefor
    • G06F3/0354Pointing devices displaced or positioned by the user, e.g. mice, trackballs, pens or joysticks; Accessories therefor with detection of 2D relative movements between the device, or an operating part thereof, and a plane or surface, e.g. 2D mice, trackballs, pens or pucks
    • G06F3/03543Mice or pucks
    • 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
    • G06F3/016Input arrangements with force or tactile feedback as computer generated output to the user
    • 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
    • G06F3/03Arrangements for converting the position or the displacement of a member into a coded form
    • G06F3/033Pointing devices displaced or positioned by the user, e.g. mice, trackballs, pens or joysticks; Accessories therefor
    • G06F3/0346Pointing devices displaced or positioned by the user, e.g. mice, trackballs, pens or joysticks; Accessories therefor with detection of the device orientation or free movement in a 3D space, e.g. 3D mice, 6-DOF [six degrees of freedom] pointers using gyroscopes, accelerometers or tilt-sensors

Definitions

  • the present invention relates to the field of wearable devices, and in particular, to a wearable device and a control method thereof, a control system, and a storage device.
  • the technical problem mainly solved by the present invention is how to realize accurate control of the wearable device, which is convenient for the user to use, while avoiding accidental touch, and effectively improving the user experience.
  • a technical solution adopted by the present invention is to provide a method for controlling a wearable device, including: establishing a wireless connection between a first wearable device and a second wearable device; and detecting whether a vibration signal is detected Receiving the electrical signal transmitted by the second wearable device through the human body surface; if the electrical signal is detected, converting the vibration signal or a manipulation message transmitted by the second wearable device through the wireless connection Corresponding control instructions, and respond to the control instructions.
  • the manipulation message includes a moving distance and a moving direction of the second wearable device, and the conversion of the vibration signal or the manipulation message transmitted by the second wearable device through the wireless connection into corresponding manipulation instructions
  • responding to the manipulation instruction includes: converting the vibration signal or the manipulation information into a manipulation instruction of the mouse of the first wearable device according to a preset conversion relationship; and operating the location according to the manipulation instruction Mentioned mouse.
  • converting the vibration signal or the manipulation information into a manipulation instruction of the mouse of the first wearable device according to a preset conversion relationship includes: determining whether a vibration frequency of the vibration signal is at a first Within a preset range; if the vibration frequency is within the first preset range, converting the manipulation message into a movement control instruction of a mouse of the first wearable device according to a preset conversion relationship; if If the vibration frequency is not within the first preset range, determine whether the vibration frequency is within a second preset range, and if the vibration frequency is within the second preset range, convert the vibration signal into A mouse click manipulation instruction of the first wearable device.
  • the steps of determining whether the vibration frequency of the vibration signal is within the first preset range and subsequent steps are performed again.
  • the method further includes: receiving a specified instruction input by a user, wherein the specified instruction is used to instruct the The function keys of the mouse of the first wearable device corresponding to the first wearable device; and the manipulation instruction for converting the vibration signal or the manipulation information into the mouse of the first wearable device includes: And converting the vibration signal into a click manipulation instruction of a function key corresponding to the second wearable device in a mouse of the first wearable device.
  • the converting the vibration signal or the manipulation information into a manipulation instruction of the mouse of the first wearable device includes: determining whether a vibration frequency of the vibration signal is lower than a preset threshold; if the vibration If the frequency is lower than a preset threshold, it is determined that the click manipulation instruction of the mouse of the first wearable device is a click instruction; if the vibration frequency is higher than the preset threshold, it is determined that the mouse of the first wearable device is The click manipulation instruction is a double-click instruction.
  • the method further comprises: receiving an adjustment instruction input by a user to change the preset conversion relationship; and / or determining that the second wearable device is in a state if a vibration signal is not detected within a preset time period. Non-use state, and disconnect the wireless connection from the second wearable device.
  • a wearable device including: a processor, a memory, and a communication circuit, where the memory is coupled to the communication circuit; wherein the memory is used for Program instructions that implement the communication method described above are stored; the processor and the communication circuit are configured to execute the program instructions stored in the memory to implement the communication method described above.
  • the wearable device further includes: a vibration sensor for detecting a vibration signal; a band-pass filter for filtering the vibration signal to remove a vibration signal that does not belong to a preset vibration frequency range; power A detector for removing electrical signals whose power is below a preset threshold.
  • another technical solution adopted by the present invention is to provide a control system for a wearable device, including a first wearable device and a second wearable device, wherein the first wearable device is as described above. Wearable device; the second wearable device is configured to detect its own mobile information, and use the mobile information as control information and send it to the first wearable device.
  • the control system of the wearable device includes a plurality of the second wearable devices, and the plurality of wearable devices are used to detect their own mobile information and send the mobile information to the first wearable device as the control information. Wear the device so that the first wearable device converts the received manipulation information into a movement operation instruction of the mouse of the first wearable device according to a preset conversion relationship.
  • the first wearable device is further configured to convert the detected vibration signal into a click manipulation instruction of a function key corresponding to a plurality of the second wearable devices in a mouse of the first wearable device.
  • another technical solution adopted by the present invention is to provide a device with a storage function, which stores program instructions, and the program instructions can be executed to implement the steps in the method described above.
  • the first wearable device receives a control message sent by the second wearable device through a wireless connection, and detects that the second wearable device passes through the surface of the human body.
  • the control message is converted into a corresponding control command, and in response to the control command, accurate control of the wearable device can be realized, which is convenient for the user to use, while avoiding accidental touch, and effectively improving the user experience.
  • FIG. 1 is a schematic flowchart of a first embodiment of a method for controlling a wearable device provided by the present invention
  • FIG. 2 is a schematic flowchart of a method for determining whether a second wearable device is a mobile operation or a click operation in a method for controlling a wearable device provided by the present invention
  • FIG. 3 is a schematic flowchart of a method for determining whether the second wearable device is a single-click operation or a double-click operation in the method for controlling a wearable device provided by the present invention
  • FIG. 4 is a schematic flowchart of a second embodiment of a method for controlling a wearable device provided by the present invention.
  • FIG. 5 is a schematic structural diagram of a first embodiment of a first wearable device provided by the present invention.
  • FIG. 6 is a schematic structural diagram of a second embodiment of a first wearable device provided by the present invention.
  • FIG. 7 is a schematic structural diagram of a first embodiment of a control system for a wearable device provided by the present invention.
  • FIG. 8 is a schematic structural diagram of a second embodiment of a control system for a wearable device provided by the present invention.
  • FIG. 9 is a schematic structural diagram of an embodiment of a device with a storage function provided by the present invention.
  • FIG. 1 is a schematic flowchart of a first embodiment of a method for controlling a wearable device provided by the present invention.
  • the first wearable device establishes a wireless connection with the second wearable device.
  • the first wearable device is a smart watch worn by a user on one hand
  • the second wearable device is a smart ring worn by the user on the other hand.
  • the first wearable device and the second wearable device are connected through WIFI.
  • the first wearable device can enable the hotspot function
  • the second wearable device joins the wireless local area network formed by the first wearable device and connects with the first wearable device.
  • the first wearable device and the second wearable device may join a wireless network together to establish a connection.
  • the first wearable device may also be a smart bracelet with a touch screen display worn by the user
  • the second wearable device may also be a smart bracelet or a smart fingerband worn by the user.
  • first wearable device and the second wearable device can also be connected through wireless connection methods such as Bluetooth and ZigBee, or the first wearable device and the second wearable device can also be connected through a wired method.
  • the second wearable device slides near the surface of the human body near the wearing area of the first wearable device, for example, the back of the hand or the palm of the hand worn by the first wearable device, because the surface of the human body has a certain Coarse particles and a certain tough skin, so when the second wearable device slides on the surface of the human body, it will cause weak vibration.
  • This vibration is transmitted to the first wearable device along with the surface of the human body.
  • the first wearable device detects the vibration signal through a vibration sensor.
  • the first wearable device is conductive on the side close to the human body surface, for example, it can be made of metal, so that the microcurrent can Passed through the human body to the first wearable device.
  • the first wearable device detects the microcurrent, it can be determined that the vibration is caused by the second wearable device in the use state.
  • a user may wear clothing with a conductive function.
  • the clothing In the case where the clothing is relatively thin, it can still cause the skin of the human body to vibrate, and the first wearable device can still detect the vibration signal.
  • micro-current can be transmitted to the first wearable terminal through the clothing with a conductive function and the human body.
  • the first wearable device detects the microcurrent, it can be determined that the vibration is caused by the second wearable device in a use state.
  • the second wearable device can be controlled by its own switch whether it is in use, or can be set by the first wearable device that has established a connection to control whether it is in use, or it can be moved by the mobile device connected to the second wearable device. Device to make settings to control whether the second wearable device is in use.
  • the second wearable device receives the designation for turning on the use state, it generates or sends a microcurrent that is not easily detectable by the human body continuously or at a high frequency.
  • the vibration signals are filtered, and it is obvious that the frequency is too high or too low.
  • the vibration signal caused by the movement or click of the wearable device is removed, and then the filtered vibration signal is filtered according to its intensity, and the intensity is too small, which may be caused by the user accidentally sliding the second wearable device across the surface of the human body. Vibration signal is removed. This can increase the probability that the processed vibration signal is a vibration signal caused by movement or click of the second user equipment.
  • the connection to the second wearable device is disconnected, and further, it can be turned off The wireless connection function of the first wearable device and / or the second wearable device to further save resources.
  • the first wearable device when the first wearable device detects an electrical signal, it can be determined that the second wearable device is in use and receives control information sent by the second wearable device through the wireless connection established in the previous step. .
  • the manipulation information includes a distance and a direction of movement of the second wearable device.
  • the second wearable device is provided with a positioning device and / or a motion sensor, and can obtain the distance and direction of movement. After the second wearable device obtains its moving distance and moving direction, it sends information including the moving distance and moving direction to the first wearable device.
  • the first wearable device does not detect an electrical signal, it does not respond to a manipulation instruction sent by the second wearable device through a wireless connection, or does not respond to a vibration signal.
  • one first wearable device may be connected to multiple second wearable devices at the same time. Therefore, the control information further includes an identification of the second wearable device corresponding to the moving distance and the moving direction. In other implementation scenarios, it may also be a second wearable device connected to multiple first wearable devices at the same time, and the control information further includes an identifier of the first wearable device specified by the control information.
  • the first wearable device After receiving the manipulation information, the first wearable device converts the vibration signal or the manipulation information into a manipulation instruction of the mouse of the first wearable device according to a preset conversion relationship, and controls the mouse according to the manipulation instruction.
  • FIG. 2 is a schematic flowchart of a method for determining whether the second wearable device is a mobile operation or a click operation in the method for controlling a wearable device provided by the present invention.
  • S201 Determine whether the vibration frequency of the vibration signal is within a first preset range.
  • the first wearable device detects an electrical signal sent by the second wearable device, it is determined that the second wearable device is in use, and it is determined whether the detected vibration signal has a vibration frequency at the first frequency. Within the preset range. Because the vibration frequency of the vibration signal generated by the second wearable device is different in different usage states (for example, sliding, clicking, and double-clicking), the second wearable device can be judged by judging the vibration frequency of the vibration signal. The current specific usage status of the device.
  • a first preset range and a second preset range are preset.
  • the first preset range corresponds to the second wearable device in a mobile use state
  • the second preset range corresponds to the second wearable device in a click use state.
  • the first preset range can be set by the user's manual input, or a suitable frequency range can be selected from the multiple frequency ranges preset by the manufacturer as the first preset range, or it can be fast and slow by the user multiple times in advance.
  • the second wearable device is scratched across the skin, and the first wearable device separately records the vibration frequency of the vibration signal caused each time, and finds the maximum frequency and the minimum frequency in the obtained vibration frequency, and uses the maximum frequency and the minimum frequency to scratch.
  • the out range is used as the first preset range. In other implementation scenarios, the first preset range is preset by a manufacturer.
  • the second preset range can be set by the user's manual input, or a suitable frequency range can be selected from a plurality of frequency ranges preset by the manufacturer as the second preset range, or it can be fast and slow by the user multiple times in advance.
  • the second wearable device is clicked and / or double-clicked.
  • the first wearable device records the vibration frequency of the vibration signal caused by each time, and finds the maximum frequency and the minimum frequency in the obtained vibration frequency.
  • the range defined by the minimum frequency is used as the second preset range.
  • the second preset range is preset by a manufacturer.
  • a zero boundary point between the first preset range and the second preset range can be set, for example, 10 Hz.
  • the critical point may be a user setting or a manufacturer preset, or may be a conclusion drawn from the first wearable device recording the vibration frequency of the vibration signal caused by the second wearable device under different use states multiple times.
  • the vibration frequency is within the first preset range, it can be determined that the second wearable device is in a mobile use state, and the received control information is converted into the first according to a preset conversion relationship.
  • Instructions for mouse movement control of a wearable device Because the display screen of the first wearable device is small, and the area of the second wearable device that can slide on the surface of the human body is large, in order to accurately control the mouse of the first wearable device, it will receive The moving distance in the control information is reduced in proportion to the moving distance of the mobile control instruction of the mouse of the first wearable device, and the angle of the moving direction in the received control information is taken as an approximate integer value, for example, a rounding method is adopted.
  • the movement distance in the control information is 10 cm and the movement direction is 73 °
  • the movement distance of the movement control instruction of the mouse of the first wearable device is 5 mm and the movement direction is 70 °.
  • the preset conversion relationship can be adjusted.
  • the mouse pointer of the first wearable device is very close to the target.
  • the user can change or fine-tune the preset conversion relationship.
  • the ratio of the moving distance in the control information and the mouse moving distance of the first wearable device is adjusted to be larger.
  • the movement distance in the original control information was 10cm
  • the movement distance of the mouse control instruction of the first wearable device was 5mm
  • the movement distance in the original control information was 10cm after adjustment.
  • the movement distance of the mouse control instruction of the first wearable device was 1mm.
  • the original movement information is 73 °
  • the movement control instruction of the mouse of the first wearable device is The movement direction of the camera is 70 °
  • the original movement information in the original control information after adjustment is 73 °
  • the movement direction of the mouse movement control instruction of the first wearable device is 75 °.
  • the vibration frequency of the vibration signal is not within the first preset range, then it is determined whether the vibration frequency is within the second preset range. If it is not within the second preset range, the second wearable device may not be moved or clicked, and then it waits to receive the next control information transmitted by the second wearable device through the wireless connection, and repeats steps S201-S203. It may also be that the second wearable device obtains the manipulation information incorrectly. At this time, the user may be notified through vibration, a prompt sound, or a text display method that the manipulation information obtained is incorrect. It is also possible that the first wearable device reads the control information incorrectly, the first wearable device obtains the control information again, and repeats steps S201-S203.
  • FIG. 3 is a schematic flowchart of a method for determining whether the second wearable device is a single-click operation or a double-click operation in the method for controlling a wearable device provided by the present invention.
  • S301 Determine whether the vibration frequency of the vibration signal is lower than a preset threshold.
  • the threshold value is manually set by a user, or may be preset by a manufacturer, or the user may click and / or double-click the second wearable device quickly and slowly multiple times in advance,
  • the first wearable device separately records the vibration frequency of the vibration signal caused each time, and finds the centered frequency (or the maximum or minimum frequency) or the frequency of the most frequent occurrences as the preset threshold value in the obtained vibration frequency.
  • the vibration frequency of the vibration signal is lower than a preset threshold, it is determined that the second wearable device is in a single-click use state, and the click manipulation instruction of the mouse of the first wearable device is a single click instruction.
  • the vibration frequency of the vibration signal is higher than a preset threshold, it is determined that the second wearable device is in a double-click use state, and the mouse click manipulation instruction of the first wearable device is a double-click instruction.
  • the first wearable device detects a vibration signal in this embodiment, if it receives an electrical signal sent by the second wearable device, it is determined that the second wearable device is in a use state, and the vibration signal or the first
  • the control information transmitted by the two wearable devices through the wireless connection is converted into corresponding control instructions, and in response to the control instructions, precise control of the mouse of the first wearable device can be realized, which is convenient for users to use.
  • the wearable device is in a use state, which can avoid the negative impact caused by accidental touch, thereby effectively improving the user experience.
  • FIG. 4 is a schematic flowchart of a second embodiment of a method for controlling a wearable device provided by the present invention.
  • the first wearable device establishes a wireless connection with the second wearable device.
  • Step S401 in this embodiment is basically similar to step S101 in the first embodiment of the method for controlling a wearable device provided by the present invention, and details are not described herein again.
  • S402 Receive a designated instruction input by a user, where the designated instruction is used to instruct a function key of a mouse of the first wearable device corresponding to the second wearable device.
  • a first wearable device is connected to multiple second wearable devices at the same time, and different second wearable devices correspond to different function keys of the mouse of the first wearable device, such as the left button. , Right button, scroll wheel, DPI (Dots, Per Inch), etc.
  • a specified instruction input by the user is received, and the designation instruction is used to specify a function key of a mouse of the first wearable device corresponding to each second wearable device.
  • a user wears two second wearable devices, and after the first wearable device establishes a connection with the two second wearable devices, the user inputs a specified instruction to the first wearable device, and may Function keys of the mouse of the first wearable device corresponding to each second wearable device are directly set on the connection list of the first wearable device.
  • the above steps may also be performed on a mobile device associated with the first wearable device, and a designated instruction may be sent to the first wearable device through the mobile device associated with the first wearable device, where the designated instruction includes the second wearable device And the function key of the mouse of the first wearable device corresponding to the second wearable device.
  • Step S403 in this embodiment is basically similar to step S102 in the first embodiment of the method for controlling a wearable device provided by the present invention, and details are not described herein again.
  • Step S404 in this embodiment is basically similar to step S201 in the embodiment of the method for determining whether the second wearable device is a mobile operation or a click operation in the method for controlling a wearable device provided by the present invention, and details are not described herein again.
  • Step S405 in this embodiment is basically similar to step S203 in the embodiment of the method for determining whether the second wearable device is a mobile operation or a click operation in the method for controlling a wearable device provided by the present invention, and details are not described herein again.
  • S406 Convert the vibration signal into a click manipulation instruction of a function key corresponding to the second wearable device in a mouse of the first wearable device.
  • the vibration frequency of the vibration signal is within a second preset range, it is determined that the second wearable device is in a clicked use state. Then, according to the function key of the mouse of the first wearable device corresponding to the second wearable device, the vibration signal is converted into a click operation instruction of the function key.
  • the second wearable device corresponds to the right mouse button of the first wearable device, and it is detected that the vibration frequency of the vibration signal caused by the second wearable device is a single click, and then the right button of the first wearable device is clicked. .
  • the second wearable device corresponds to the left button of the mouse of the first wearable device.
  • the left button of the first wearable device performs Double-click.
  • the first wearable device since the first wearable device is connected to multiple second wearable devices, in order to avoid the manipulation confusion caused by receiving the manipulation information sent by the multiple second wearable devices, when the vibration frequency is in the first preset range During the time, only the control information sent by a second wearable device is received. It may be control information sent by the second wearable device that only receives the left button (or other designated function key) of the mouse corresponding to the first wearable device.
  • FIG. 5 is a schematic structural diagram of a first embodiment of a first wearable device provided by the present invention.
  • the first wearable device 10 includes a processor 11, a memory 12, a communication circuit 13, and a vibration sensor 14.
  • the processor 11 is coupled to the memory 12, the communication circuit 13 and the vibration sensor 14.
  • the memory 12 is used to store program data.
  • the processor 11 is combined with the communication circuit 13 and the vibration sensor 14 to run the program data in the memory 12 for communication and executes the following methods:
  • the communication circuit 13 of the first wearable device 10 establishes a connection with the second wearable device.
  • the processor 11 detects whether the first wearable device 10 has received the second wearable device through the surface of the human body. If the transmitted electrical signal is detected, the processor 11 converts the vibration signal or the control information sent by the second wearable device received by the communication circuit 13 into a corresponding control command, and responds to the control command.
  • the control information sent by the second wearable device includes the moving distance and direction of the second wearable device.
  • the processor 11 transmits the vibration signal detected by the vibration sensor 14 or the communication circuit 13 according to a preset conversion relationship.
  • the received manipulation information is converted into a response manipulation instruction, and the manipulation instruction is responded to.
  • the processor 11 determines whether the vibration frequency of the vibration signal is within the first preset range. If it is, the processor 11 determines that the second wearable device is in a mobile use state, and then controls the operation according to a preset conversion relationship.
  • the information is converted into a movement control instruction of the mouse of the first wearable device 10. If not, the processor 11 determines that the second wearable device is in the use state of clicking, and then converts the vibration signal into a click manipulation instruction of the mouse of the first wearable device 10.
  • the processor 11 determines whether the vibration frequency of the vibration signal is lower than a preset threshold. If it is lower, the processor 11 determines the first wearable device.
  • the click control instruction of the mouse is a click instruction. If it is higher, the processor 11 determines that the click control instruction of the mouse of the first wearable device is a double click instruction.
  • the communication circuit 13 of the first wearable device 10 establishes a connection with a plurality of second wearable devices. After the communication circuit 13 establishes a connection with the second wearable device, the communication circuit will also receive the designation input by the user.
  • An instruction specifying an instruction for instructing a function key of a mouse of a first wearable device corresponding to each second wearable device.
  • the processor 11 determines that the second wearable device is in a clicked use state, the processor 11 converts a vibration signal caused by a second wearable device into a mouse corresponding to the second wearable device in a mouse of the first wearable device. Click operation instructions for function keys.
  • the communication circuit 13 is further configured to receive an adjustment instruction input by the user, and the processor 11 changes the preset conversion relationship according to the adjustment.
  • the processor 11 determines that the second wearable device is in a non-use state, and the communication circuit 13 disconnects the connection with the second wearable device.
  • FIG. 6, is a schematic structural diagram of a second embodiment of a first wearable device provided by the present invention.
  • the first wearable device 20 includes a processor 21, a memory 22, a communication circuit 23, a vibration sensor 24, a band-pass filter 25, and a power detector 26.
  • the processor 21 is coupled to the memory 22, the communication circuit 23, and the vibration sensor 24.
  • the vibration sensor 24 is coupled to the band-pass filter 25.
  • the band-pass filter 25 is coupled to the power detector 26.
  • the memory 12 is used to store program data.
  • the vibration sensor 24 The band-pass filter 25 is used to detect vibration signals.
  • the band-pass filter 25 is used to remove vibration signals other than the first frequency range and the second frequency range from the vibration signals, so as not to interfere with the judgment of the processor 11.
  • the power detection circuit 26 is used to The vibration signal whose vibration intensity is lower than a preset threshold is removed from the vibration signal filtered by the band-pass filter, and the vibration is prevented only because the second wearable device accidentally scratches the surface of the human body.
  • the processor 21 combines the communication circuit 23, the vibration sensor 24, the band-pass filter 25, and the power detector 26 to run the program data in the memory 22 to communicate and execute the first implementation of the first wearable device provided by the invention The method described in the example.
  • the first wearable device in this embodiment detects a vibration signal, if it receives an electrical signal sent by the second wearable device, it is determined that the second wearable device is in a use state, and the vibration signal or
  • the control information transmitted by the second wearable device through the wireless connection is converted into corresponding control instructions, and in response to the control instruction, precise control of the mouse of the first wearable device can be realized, which is convenient for users to use, and can be determined by receiving electrical signals
  • the second wearable device is in a use state, which can avoid the negative impact caused by accidental touch, thereby effectively improving the user experience.
  • FIG. 7 is a schematic structural diagram of a first embodiment of a control system for a wearable device provided by the present invention.
  • the wearable device control system 30 includes a first wearable device 31 and a second wearable device 32.
  • the first wearable device 31 and the second wearable device 32 are wirelessly connected.
  • the first wearable device 31 is the first wearable device shown in FIGS. 5 to 6.
  • the second wearable device 32 is configured to detect its own mobile information, and use the mobile information as control information and send it to the first wearable device 31.
  • the first wearable device 31 converts the detected vibration signal or the received manipulation information into a manipulation instruction for the mouse of the first wearable device 31 according to a preset conversion relationship.
  • FIG. 8 is a schematic structural diagram of a second embodiment of a control system for a wearable device provided by the present invention.
  • the wearable device control system 40 includes a first wearable device 41 and two second wearable devices 42 and 43. Both the first wearable device 41 and the two second wearable devices 42 are connected wirelessly.
  • the first wearable device 41 is the first wearable device shown in FIGS. 5 to 6.
  • the second wearable devices 42 and 43 are used to detect their own mobile information, and use the mobile information as control information and send it to the first wearable device 41.
  • the received manipulation information is converted into a mouse movement manipulation instruction of the first wearable device 41.
  • the vibration signal is converted into a click manipulation instruction of a function key corresponding to the second wearable device 42 or 43 in the mouse of the first wearable device 41.
  • control system of the wearable device in this embodiment can implement precise control of the mouse of the first wearable device, which is convenient for users to use, and can also avoid the negative impact caused by mis-touch, thereby effectively improving the user Use experience.
  • FIG. 9 is a device provided with a storage function provided by the present invention.
  • At least one program instruction 51 is stored in the device 50 having a storage function, and the program instruction 51 is used to execute the methods shown in FIGS. 1-4.
  • the device having a storage function may be a memory chip, a hard disk or a mobile hard disk or a USB flash drive, an optical disc, or other readable and writable storage tools in the device, or a server or the like.
  • the program stored in the embodiment of the device with a storage function in this embodiment can be used to establish a wireless connection between the first wearable device and the second wearable device.
  • the first wearable device detects the vibration signal and the first wearable device.
  • the second wearable device sends an electrical signal through the surface of the human body, it determines that the second wearable device is in use, receives the control information sent by the second wearable device through a wireless connection, converts the control information into corresponding control instructions, and responds Instructions should be manipulated.
  • the precise control of the mouse of the first wearable device can be realized, which is convenient for users to use, and can also avoid the negative impact caused by accidental touch, thereby effectively improving the user experience.
  • the present invention wirelessly connects a first wearable device that needs to be controlled with a second wearable device that performs the control.
  • the first wearable device detects the vibration signal, it receives the second wearable device and sends it through the wireless connection.
  • the control information is converted into corresponding control instructions. It can realize precise control of the mouse of the first wearable device, which is convenient for users.
  • After detecting the electrical signal sent by the second wearable device through the surface of the human body it is determined that the second wearable device is in the use state, and then the control information is received to avoid the negative impact caused by accidental touch, thereby effectively improving the user experience.

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Abstract

本发明公开了一种可穿戴设备及其操控方法、操控系统和存储装置。该可穿戴设备的操控方法包括:第一可穿戴设备与第二可穿戴设备建立无线连接;检测到振动信号时,检测是否接收到第二可穿戴设备的通过人体表面传递的电信号;若检测到电信号,则将振动信号或第二可穿戴设备通过无线连接传输的操控消息转换成相应操控指令,并响应操控指令。通过上述方式,本发明能够实现对可穿戴设备的准确操控,方便用户使用,同时避免误触,有效提高用户体验。

Description

一种可穿戴设备及其操控方法、操控系统和存储装置 【技术领域】
本发明涉及可穿戴设备领域,特别是涉及一种可穿戴设备及其操控方法、操控系统和存储装置。
【背景技术】
随着科技的进步和发展,智能手表的普及性越来越高。而相对于人类手指来说,智能手表因为屏幕较小,很难实现有效的触控操作,(若将图标做小,则由于手指过大,容易出现误操作;若图标做大,由于屏幕很小,因此能够展示的图标数目很少,需要频繁的切换屏幕)。人机交互困难;对于习惯于用鼠标等GUI(Graphical User Interface,图形用户接口)方式操控设备的人类来说,智能手表的操控非常困难。
【发明内容】
本发明主要解决的技术问题是如何实现对可穿戴设备的准确操控,方便用户使用,同时避免误触,有效提高用户体验。
为解决上述技术问题,本发明采用的一个技术方案是:提供一种可穿戴设备的操控方法,包括:第一可穿戴设备与第二可穿戴设备建立无线连接;检测到振动信号时,检测是否接收到所述第二可穿戴设备的通过人体表面传递的电信号;若检测到所述电信号,则将所述振动信号或所述第二可穿戴设备通过所述无线连接传输的操控消息转换成相应操控指令,并响应所述操控指令。
其中,所述操控消息包括所述第二可穿戴设备的移动距离和移动方向;所述将所述振动信号或所述第二可穿戴设备通过所述无线连接传输的操控消息转换成相应操控指令,并响应所述操控指令,包括:按照预设的转换关系,将所述振动信号或所述操控信息转化为所述第一可穿戴设备的鼠标的操控指令;根据所述操控指令来操作所述鼠标。
其中,所述按照预设的转换关系,将所述振动信号或所述操控信息转化为所述第一可穿戴设备的鼠标的操控指令,包括:判断所述振动信号的振动频率是否在第一预设范围内;若所述振动频率在所述第一预设范围内,则按照预设 的转换关系,将所述操控消息转化为所述第一可穿戴设备的鼠标的移动操控指令;若所述振动频率不在所述第一预设范围内,则判断所述振动频率是否在第二预设范围内,若所述振动频率在第二预设范围内,则将所述振动信号转化为所述第一可穿戴设备的鼠标的点击操控指令。
其中,若所述振动频率不在第二预设范围内,则重新执行所述判断所述振动信号的振动频率是否在第一预设范围内的步骤以及后续步骤。
其中,在所述将所述振动信号转化为所述第一可穿戴设备的鼠标的点击操控指令之前,所述方法还包括:接收用户输入的指定指令,其中,所述指定指令用于指示所述第一可穿戴设备对应的所述第一可穿戴设备的鼠标的功能键;所述将所述振动信号或所述操控信息转化为所述第一可穿戴设备的鼠标的操控指令,包括:将所述振动信号转化为所述第一可穿戴设备的鼠标中与所述第二可穿戴设备对应的功能键的点击操控指令。
其中,所述将所述振动信号或所述操控信息转化为所述第一可穿戴设备的鼠标的操控指令,包括:判断所述振动信号的振动频率是否低于预设阈值,若所述振动频率低于预设阈值,则判定所述第一可穿戴设备的鼠标的点击操控指令为单击指令;若所述振动频率高于预设阈值,则判定所述第一可穿戴设备的鼠标的点击操控指令为双击指令。
其中,所述方法进一步包括:接收用户输入的调节指令,更改所述预设的转换关系;和/或若在预设时长内,未检测到振动信号,则判定所述第二可穿戴设备处于非使用状态,并与所述第二可穿戴设备断开所述无线连接。
为解决上述技术问题,本发明采用的另一个技术方案是:提供一种可穿戴设备,包括:处理器、存储器和通信电路,所述存储器耦接所述通信电路;其中,所述存储器用于存储实现如上所述的通信方法的程序指令;所述处理器和所述通信电路用于执行所述存储器存储的程序指令以实现如上所述的通信方法。
其中,所述可穿戴设备还包括:振动传感器,用于检测振动信号;带通滤波器,用于将所述振动信号进行滤波,以将不属于预设振动频率范围内的振动信号去除;功率检测器,用于将功率低于预设阈值的电信号去除。
为解决上述技术问题,本发明采用的另一个技术方案是:提供一种可穿戴设备的操控系统,包括第一可穿戴设备和第二可穿戴设备,其中,第一可穿戴设备为如上所述的可穿戴设备;所述第二可穿戴设备用于检测自身的移动信息,将所述移动信息作为操控信息并发送给所述第一可穿戴设备。
其中,可穿戴设备的操控系统包括多个所述第二可穿戴设备,多个所述可穿戴设备用于检测自身的移动信息,并将所述移动信息作为操控信息发送给所述第一可穿戴设备,以使所述第一可穿戴设备按照预设的转换关系,将接收的操控信息转换为所述第一可穿戴设备的鼠标的移动操作指令。
其中,所述第一可穿戴设备还用于将检测到的振动信号转换为所述第一可穿戴设备的鼠标中与多个所述第二可穿戴设备对应的功能键的点击操控指令。
为解决上述技术问题,本发明采用的另一个技术方案是:提供一种具有存储功能的装置,存储有程序指令,所述程序指令能够被执行以实现如上所述方法中的步骤。
本发明的有益效果是:区别于现有技术的情况,本发明中第一可穿戴设备通过无线连接接收第二可穿戴设备发送的操控消息,在检测到第二可穿戴设备通过人体表面传递的电信号时,将操控消息转换为相应的操控指令,并响应该操控指令,可以实现对可穿戴设备的准确操控,方便用户使用,同时避免误触,有效提高用户体验。
【附图说明】
图1是是本发明提供的可穿戴设备的操控方法的第一实施例的流程示意图;
图2是本发明提供的可穿戴设备的操控方法中判断第二可穿戴设备是移动操作还是点击操作的方法的流程示意图;
图3是本发明提供的可穿戴设备的操控方法中判断第二可穿戴设备是单击操作还双击操作的方法的流程示意图;
图4是本发明提供的可穿戴设备的操控方法的第二实施例的流程示意图;
图5是本发明提供的第一可穿戴设备的第一实施例的结构示意图;
图6是本发明提供的第一可穿戴设备的第二实施例的结构示意图;
图7是本发明提供的可穿戴设备的操控系统的第一实施例的结构示意图;
图8是本发明提供的可穿戴设备的操控系统的第二实施例的结构示意图;
图9是发明提供的具有存储功能的装置的一实施例的结构示意图。
【具体实施方式】
下面将结合本发明实施例中的附图,对本发明实施例中的技术方案进行清楚、完整地描述,显然,所描述的实施例仅仅是本发明一部分实施例,而不是 全部的实施例。基于本发明中的实施例,本领域普通技术人员在没有做出创造性劳动前提下所获得的所有其他实施例,均属于本发明保护的范围。
请参阅图1,图1是本发明提供的可穿戴设备的操控方法的第一实施例的流程示意图。
S101:第一可穿戴设备与第二可穿戴设备建立无线连接。
在一个具体的实施场景中,第一可穿戴设备为用户佩戴在一只手上的智能手表,第二可穿戴设备是用户佩戴在另一只手上的智能指环。第一可穿戴设备和第二可穿戴设备通过WIFI连接,可以是第一可穿戴设备开启热点功能,第二可穿戴设备加入第一可穿戴设备组建的无线局域网,而与第一可穿戴设备连接,也可以是第一可穿戴设备和第二可穿戴设备共同加入一个无线网络,从而建立连接。
在其他实施场景中,第一可穿戴设备还可以是用户佩戴的带有触控功能的显示屏的智能手环,第二可穿戴设备还可以是用户佩戴的智能手环或智能指套等。
在其他实施场景中,第一可穿戴设备和第二可穿戴设备还可以通过蓝牙、ZigBee等无线连接方法进行连接,或者第一可穿戴设备和第二可穿戴设备也能通过有线方式连接。
S102:检测到振动信号时,检测是否接收到所述第二可穿戴设备通过人体表面传递的电信号。
在一个具体的实施场景中,第二可穿戴设备在接近第一可穿戴设备佩戴区域附近的人体表面,例如,在第一可穿戴设备佩戴的手背或手心,进行滑动,因为人体表面是具有一定粗糙颗粒和一定韧性的皮肤,因此第二可穿戴设备在人体表面进行滑动时,会引起微弱的振动。该振动会随着人体表面传递至第一可穿戴设备。第一可穿戴设备通过振动传感器检测该振动信号。
由于人体表面在与其他物体表面,如桌面,椅子扶手等,进行摩擦时,会产生类似的振动,或者第二可穿戴设备无意间摩擦过人体表面时,也会造成这样的振动,而如果不对这些振动进行排除,很有可能造成误判,从而影响用户实际使用。
因此第二可穿戴设备在处于使用状态时,将会产生人体不易察觉的微小的微电流,第一可穿戴设备在贴近人体表面的一侧为导电状态,例如可以是金属材质,使得微电流可以通过人体传递至第一可穿戴设备。第一可穿戴设备检测 到该微电流则可以判定,该振动是由处在使用状态的第二可穿戴设备引起的。
在另一个实施场景中,用户可穿着带有导电功能的衣物,则在该衣物较为轻薄的情况下,依旧可以引起人体表面皮肤的振动,第一可穿戴设备依旧可以检测到振动信号。此时,第二可穿戴终端在使用时可以通过该带有导电功能的衣物和人体将微电流传输至第一可穿戴终端。第一可穿戴设备检测到该微电流则可以判定,该振动是由处在使用状态的第二可穿戴设备引起的。
第二可穿戴设备可以通过自身的开关控制是否处于使用状态,或者可以通过已建立连接的第一可穿戴设备进行设置,来控制是否处于使用状态,还可以通过与第二可穿戴设备连接的移动设备来进行设置,从而控制第二可穿戴设备是否处于使用状态。当第二可穿戴设备接收到开启使用状态的指定后,将持续或者高频率的产生并发送人体不易察觉的微电流。
在其他实施场景中,由于引起振动信号的可能非常多,为了排除其他振动引起的干扰,在检测到振动信号后,对振动信号进行滤波,将频率过高或过低的明显不是由第二可穿戴设备的移动或点击而引起的振动信号去除,接着将滤波后的振动信号根据其强度进行滤波,将强度过小,可能是由于用户将第二可穿戴设备无意间划过人体表面而造成的振动信号去除。这样可以使得处理之后的振动信号为第二用户设备移动或点击引起的振动信号的概率提高。
在其他实施场景中,如果在预设时长内没有检测到振动信号,则判定第二可穿戴设备处于非使用状态,为了节约资源,断开与第二可穿戴设备的连接,进一步地,可以关闭第一可穿戴设备和/或第二可穿戴设备的无线连接功能,以进一步节约资源。
S103:若检测到所述电信号,则将所述振动信号或所述第二可穿戴设备通过所述无线连接传输的操控信息转换成相应操控指令,并响应所述操控指令。
在一个具体的实施场景中,第一可穿戴设备检测到电信号,则可以判定第二可穿戴设备处于使用状态,接收第二可穿戴设备通过在之前的步骤中建立的无线连接发送的操控信息。操控信息包括第二可穿戴设备移动的距离和移动的方向。在本实施场景中,第二可穿戴设备带有定位装置和/或运动传感器,可以获取移动的距离和移动方向。第二可穿戴设备获取其移动距离和移动方向后,将包括移动距离和移动方向的信息发送给第一可穿戴设备。
在另一个实施场景中,第一可穿戴设备没有检测到电信号,则不响应第二可穿戴设备通过无线连接发送的操控指令,或者不响应振动信号。
在其他实施场景中,一个第一可穿戴设备可以同时连接多个第二可穿戴设备,因此,操控信息还包括有该移动距离和移动方向对应的第二可穿戴设备的标识。在其他实施场景中,还可以是一个第二可穿戴设备,同时与多个第一可穿戴设备连接,则操控信息还包括该操控信息指定操控的第一可穿戴设备的标识。
第一可穿戴设备接收到操控信息后,按照预设的转换关系将振动信号或操控信息转化为第一可穿戴设备的鼠标的操控指令,并根据该操控指令来操控鼠标。
具体地,请结合参阅图2,图2是本发明提供的可穿戴设备的操控方法中判断第二可穿戴设备是移动操作还是点击操作的方法的流程示意图。
S201:判断所述振动信号的振动频率是否在第一预设范围内。
在一个具体的实施场景中,第一可穿戴设备检测到第二可穿戴设备发送的电信号,则判定第二可穿戴设备处于使用状态,于是判断检测到的振动信号的振动频率是否在第一预设范围内。因为第二可穿戴设备在不同的使用状态(例如,滑动、单击、双击)时,所产生的振动信号的振动频率不同,因此可以通过判断振动信号的振动频率的大小来判断第二可穿戴设备当前具体的使用状态。
在本实施场景中,预设第一预设范围、第二预设范围。其中,第一预设范围对应第二可穿戴设备处于移动的使用状态,第二预设范围对应第二可穿戴设备处于点击的使用状态。
可以通过用户手动输入来设定第一预设范围,或者从厂商预先设定的多个频率范围中选择合适的频率范围作为第一预设范围,还可以是用户预先多次快速和慢速的将第二可穿戴设备划过皮肤,第一可穿戴设备分别记录每次引起的振动信号的振动频率,并在得到的振动频率的找到最大频率和最小频率,以该最大频率和该最小频率划出的范围作为第一预设范围。在其他实施场景中,第一预设范围由厂商预先设置。
可以通过用户手动输入来设定第二预设范围,或者从厂商预先设定的多个频率范围中选择合适的频率范围作为第二预设范围,还可以是用户预先多次快速和慢速的将第二可穿戴设备进行单击和/或双击,第一可穿戴设备分别记录每次引起的振动信号的振动频率,并在得到的振动频率的找到最大频率和最小频率,以该最大频率和该最小频率划出的范围作为第二预设范围。在其他实施场景中,第二预设范围由厂商预先设置。
在另一个实施场景中,可以设定第一预设范围和第二预设范围之间的零界点,例如10Hz,当振动频率大于10Hz时,属于第一预设范围,小于等于10Hz时,则属于第二预设范围。该临界点可以是用户设置或厂商预设,还可以是第一可穿戴设备多次记录第二可穿戴设备在不同使用状态下引起的振动信号的振动频率,从中得出的结论。
S202:若所述振动频率在所述第一预设范围内,则按照预设的转换关系,将所述操控信息转化为所述第一可穿戴设备的鼠标的移动操控指令。
在一个具体的实施场景中,振动频率在第一预设范围内,则可判定,第二可穿戴设备处于移动的使用状态,则按照预设的转换关系,将接收的操控信息转化为第一可穿戴设备的鼠标的移动操控指令。由于第一可穿戴设备的显示屏幕较小,而第二可穿戴设备在人体表面所能滑动的区域面积较大,因此,为了精准的实施对第一可穿戴设备的鼠标的操控,将接收到的操控信息中的移动距离按照比例缩小为第一可穿戴设备的鼠标的移动操控指令的移动距离,将接收到的操控信息中的移动方向的角度取近似的整数值,例如采用四舍五入法。例如,操控信息中移动距离为10cm,移动方向为73°,则按照预设的转换关系,则第一可穿戴设备的鼠标的移动操控指令的移动距离为5mm,移动方向为70°。
在另一个具体的实施场景中,预设的转换关系可以进行调节,例如此刻第一可穿戴设备的鼠标指针已经非常接近目标,为了防止用户滑动第二可穿戴设备的距离过远或者角度偏差过大,则用户可更改或微调预设的转换关系。例如将操控信息中的移动距离和第一可穿戴设备的鼠标移动距离的比例调节的更大。原先操控信息中移动距离为10cm,第一可穿戴设备的鼠标的移动操控指令的移动距离为5mm,调节后原先操控信息中移动距离为10cm,第一可穿戴设备的鼠标的移动操控指令的移动距离为1mm。或者将操控信息中的移动角度的和第一可穿戴设备的鼠标的移动操控指令的移动角度的差值调小,原先操控信息中移动角度为73°,第一可穿戴设备的鼠标的移动操控指令的移动方向为70°,调节后原先操控信息中移动角度为73°,第一可穿戴设备的鼠标的移动操控指令的移动方向为75°。
S203:若所述振动频率不在所述第一预设范围内,则判断所述振动频率是否在第二预设范围内。
在一个具体的实施场景中,振动信号的振动频率不在第一预设范围内,则接着判断该振动频率是否在第二预设范围内。若不在第二预设范围内,可能第 二可穿戴设备没有发生移动或点击的操作,则继续等待接收下一次第二可穿戴设备通过无线连接传输的操控信息,并重复执行步骤S201-S203。也有可能是第二可穿戴设备获取操控信息有误,这时可以通过振动、提示音或文字显示等方式通知用户获取的操控信息有误。还有可能是第一可穿戴设备读取操控信息有误,则第一可穿戴设备重新获取操控信息,并重复执行步骤S201-S203。
S204:若所述振动频率在所述第二预设范围内,则将所述振动信号转化为所述第一可穿戴设备的鼠标的点击操控指令。
在一个具体的实施场景中,振动信号的振动频率在第二预设范围内,则可以判定第二可穿戴设备处于点击的使用状态,此时可以忽略操控信息中的相关内容,将振动信号转化为第一可穿戴设备的鼠标的点击操控指令。因为第二可穿戴设备处于点击的使用状态,移动距离和方向并不是点击操作中的重要组成部分。具体地,请参阅图3,图3是本发明提供的可穿戴设备的操控方法中判断第二可穿戴设备是单击操作还双击操作的方法的流程示意图。
S301:判断所述振动信号的振动频率是否低于预设阈值。
在一个具体的实施场景中,该阈值为用户手动输入设定,或者可以由厂商预先设置,还可以是用户预先多次快速和慢速的将第二可穿戴设备进行单击和/或双击,第一可穿戴设备分别记录每次引起的振动信号的振动频率,并在得到的振动频率的找到居中的频率(或者是最大、最小频率)或者是出现次数最多的频率为预设阈值。
S302:若所述振动频率低于预设阈值,则判定所述第一可穿戴设备的鼠标的点击操控指令为单击指令。
在一个具体的实施场景中,振动信号的振动频率低于预设阈值,则判定第二可穿戴设备处于单击的使用状态,第一可穿戴设备的鼠标的点击操控指令为单击指令。
S303:若所述振动频率高于预设阈值,则确定所述第一可穿戴设备的鼠标的点击操控指令为双击指令。
在一个具体的实施场景中,振动信号的振动频率高于预设阈值,则判定第二可穿戴设备处于双击的使用状态,第一可穿戴设备的鼠标的点击操控指令为双击指令。
通过上述描述可知,本实施例中第一可穿戴设备在检测到振动信号时,若接收到第二可穿戴设备发送的电信号,则判定第二可穿戴设备处于使用状态, 将振动信号或第二可穿戴设备通过所述无线连接传输的操控信息转换成相应操控指令,并响应该操控指令,可以实现对第一可穿戴设备的鼠标的精准操控,方便用户使用,通过接收电信号来判定第二可穿戴设备处于使用状态,可以避免误触造成的负面影响,从而有效提高了用户的使用体验。
请参阅图4,图4是本发明提供的可穿戴设备的操控方法的第二实施例的流程示意图。
S401:第一可穿戴设备与第二可穿戴设备建立无线连接。
本实施例中的步骤S401与本发明提供的可穿戴设备的操控方法的第一实施例中的步骤S101基本类似,此处不再赘述。
S402:接收用户输入的指定指令,其中,所述指定指令用于指示所述第二可穿戴设备对应的所述第一可穿戴设备的鼠标的功能键。
在一个具体的实施场景中,一个第一可穿戴设备同时连接有多个第二可穿戴设备,则不同的第二可穿戴设备对应第一可穿戴设备的鼠标的不同的功能键,例如左键、右键、滚轮和DPI(Dots Per Inch,每英寸点数)等。在第一可穿戴设备与第二可穿戴设备建立连接后,接收用户输入的指定指令,该指定指令用于指定每个第二可穿戴设备所对应的第一可穿戴设备的鼠标的功能键。
例如,在本实施场景中,用户佩戴有两个第二可穿戴设备,则在第一可穿戴设备与两个第二可穿戴设备建立连接后,用户向第一可穿戴设备输入指定指令,可以直接在第一可穿戴设备的连接列表上设置每个第二可穿戴设备对应的第一可穿戴设备的鼠标的功能键。也可以在与第一可穿戴设备关联的移动设备上操作上述步骤,还可以通过与第一可穿戴设备关联的移动设备发送指定指令给第一可穿戴设备,其中指定指令包括第二可穿戴设备的标识和该第二可穿戴设备对应的第一可穿戴设备的鼠标的功能键。
S403:检测到振动信号时,检测是否接收到所述第二可穿戴设备通过人体表面传递的电信号。
本实施例中的步骤S403与本发明提供的可穿戴设备的操控方法的第一实施例中的步骤S102基本类似,此处不再赘述。
S404:判断所述振动信号的振动频率是否在第一预设范围内。
本实施例中的步骤S404与本发明提供的可穿戴设备的操控方法中判断第二可穿戴设备是移动操作还是点击操作的方法的实施例中的步骤S201基本类似,此处不再赘述。
S405:若所述振动频率不在所述第一预设范围内,则判断所述振动频率是否在第二预设范围内。
本实施例中的步骤S405与本发明提供的可穿戴设备的操控方法中判断第二可穿戴设备是移动操作还是点击操作的方法的实施例中的步骤S203基本类似,此处不再赘述。
S406:将所述振动信号转化为所述第一可穿戴设备的鼠标中与所述第二可穿戴设备对应的功能键的点击操控指令。
在一个具体的实施场景中,振动信号的振动频率在第二预设范围内,则判定第二可穿戴设备处于点击的使用状态。则根据该第二可穿戴设备对应的第一可穿戴设备的鼠标的功能键,执行振动信号转化为该功能键的点击操作指令。
例如,第二可穿戴设备对应的是第一可穿戴设备的鼠标的右键,检测到该第二可穿戴设备引起的振动信号的振动频率为单击,则第一可穿戴设备的右键进行单击。
又例如,第二可穿戴设备对应的是第一可穿戴设备的鼠标的左键,检测到该第二可穿戴设备引起的振动信号的振动频率为双击,则第一可穿戴设备的左键进行双击。
在其他实施场景中,由于第一可穿戴设备连接多个第二可穿戴设备,为了避免接收多个第二可穿戴设备发送的操控信息而造成操控的混乱,当振动频率位于第一预设范围内时,仅接收一个第二可穿戴设备发送的操控信息。可以是仅接收对应第一可穿戴设备的鼠标的左键(或者其他指定的功能键)的第二可穿戴设备发送的操控信息。
通过上述描述可知,当第一可穿戴设备与多个第二可穿戴设备连接时,接收用户输入的用于指示第二可穿戴设备对应的第一可穿戴设备的鼠标的功能键的指定指令,在判定第二可穿戴设备处于点击的使用状态时,将振动信号转化为第一可穿戴设备的鼠标的与第二可穿戴设备对应的功能键的点击操控指令,可以实现对第一可穿戴设备的鼠标的各个功能键的操控,方便用户使用,有效提高用户的使用体验。
请参阅图5,图5是本发明提供的第一可穿戴设备的第一实施例的结构示意图。第一可穿戴设备10包括处理器11、存储器12、通信电路13和振动传感器14。处理器11耦接存储器12、通信电路13和振动传感器14。存储器12用于存储程序数据,处理器11结合通信电路13和振动传感器14用于运行存储器12 中的程序数据以进行通信并执行如下方法:
第一可穿戴设备10的通信电路13与第二可穿戴设备建立连接,当振动传感器14检测到振动信号时,处理器11检测第一可穿戴设备10是否接收到第二可穿戴设备通过人体表面传递的电信号,若检测到电信号,则处理器11将振动信号或通信电路13接收的由第二可穿戴设备发送的操控信息转换成相应的操控指令,并响应该操控指令。
在本实施场景中,第二可穿戴设备发送的操控信息包括第二可穿戴设备移动距离和移动方向,处理器11根据预设的转换关系,将振动传感器14检测到的振动信号或通信电路13接收的操控信息转换成响应的操控指令,响应该操控指令。具体地,处理器11判断振动信号的振动频率是否在第一预设范围内,若在,则处理器11判定第二可穿戴设备处于移动的使用状态,则按照预设的转换关系,将操控信息转化为第一可穿戴设备10的鼠标的移动操控指令。若不在,则处理器11判定第二可穿戴设备处于点击的使用状态,则将振动信号转化为第一可穿戴设备10的鼠标的点击操控指令。
在本实施场景中,处理器11判定第二可穿戴设备处于点击的使用状态后,进一步判断振动信号的振动频率是否低于预设阈值,若低于,则处理器11判定第一可穿戴设备的鼠标的点击操控指令为单击指令,若高于,则处理器11判定第一可穿戴设备的鼠标的点击操控指令为双击指令。
在其他实施场景中,第一可穿戴设备10的通信电路13与多个第二可穿戴设备建立连接,则通信电路13与第二可穿戴设备建立连接后,通信电路还将接收用户输入的指定指令,指定指令用于指示各个第二可穿戴设备对应的第一可穿戴设备的鼠标的功能键。
当处理器11判定第二可穿戴设备处于点击的使用状态时,处理器11将一第二可穿戴设备引起的振动信号转化为第一可穿戴设备的鼠标中与该第二可穿戴设备对应的功能键的点击操控指令。
在其他实施场景中,通信电路13还用于接收用户输入的调节指令,处理器11根据该调节更改所述预设的转换关系。
在其他实施场景中,若振动传感器14在预设时长内未检测到振动信号,则处理器11判定第二可穿戴设备处于非使用状态,通信电路13断开与第二可穿戴设备的连接。
其中,处理器11和通信电路13实现上述功能的具体过程可参阅上述方法 实施例。
请结合参阅图6,图6是本发明提供的第一可穿戴设备的第二实施例的结构示意图。第一可穿戴设备20包括处理器21、存储器22、通信电路23、振动传感器24、带通滤波器25和功率检测器26。处理器21耦接存储器22、通信电路23和振动传感器24,振动传感器24耦接带通滤波器25,带通滤波器25耦接功率检测器26,存储器12用于存储程序数据,振动传感器24用于检测振动信号,带通滤波器25用于将振动信号中的非第一频率范围和第二频率范围的振动信号去除,避免其干扰处理器11的判断,功率检测电路26用于将经过带通滤波器滤波后的振动信号中振动强度低于预设阈值的振动信号去除,防止该振动仅是由于第二可穿戴设备不经意划过人体表面引起的。处理器21结合通信电路23、振动传感器24、带通滤波器25和功率检测器26,用于运行存储器22中的程序数据以进行通信并执行如发明提供的第一可穿戴设备的第一实施例的中所述的方法。
其中,处理器21、通信电路23、振动传感器24、带通滤波器25和功率检测器26实现上述功能的具体过程可参阅上述方法实施例。
通过上述描述可知,本实施例中的第一可穿戴设备在检测到振动信号时,若接收到第二可穿戴设备发送的电信号,则判定第二可穿戴设备处于使用状态,将振动信号或第二可穿戴设备通过所述无线连接传输的操控信息转换成相应操控指令,并响应该操控指令,可以实现对第一可穿戴设备的鼠标的精准操控,方便用户使用,通过接收电信号来判定第二可穿戴设备处于使用状态,可以避免误触造成的负面影响,从而有效提高了用户的使用体验。
请参阅图7,图7是本发明提供的可穿戴设备的操控系统的第一实施例的结构示意图。可穿戴设备的操控系统30包括第一可穿戴设备31和第二可穿戴设备32。第一可穿戴设备31和第二可穿戴设备32无线连接。第一可穿戴设备31为图5-图6所示的第一可穿戴设备。第二可穿戴设备32用于检测自身的移动信息,将移动信息作为操控信息并发送给第一可穿戴设备31。第一可穿戴设备31接收到操控信息后,按照预设的转换关系,将检测到的振动信号或接收的操控信息转化为第一可穿戴设备31的鼠标的操控指令。
请结合参阅图8,图8是本发明提供的可穿戴设备的操控系统的第二实施例的结构示意图。可穿戴设备的操控系统40包括第一可穿戴设备41和两个第二可穿戴设备42、43。第一可穿戴设备41和两个第二可穿戴设备42均通过无线 连接。第一可穿戴设备41为图5-图6所示的第一可穿戴设备。第二可穿戴设备42和43用于检测自身的移动信息,将移动信息作为操控信息并发送给第一可穿戴设备41。按照预设的转换关系,将接收的操控信息转化为第一可穿戴设备41的鼠标的移动操控指令。将所振动信号转化为第一可穿戴设备41的鼠标中与第二可穿戴设备42或43对应的功能键的点击操控指令。
通过上述描述可知,本实施例中的可穿戴设备的操控系统可以实现对第一可穿戴设备的鼠标的精准操控,方便用户使用,还可以避免误触造成的负面影响,从而有效提高了用户的使用体验。
请参阅图9,图9是本发明提供的具有存储功能的装置。具有存储功能的装置50中存储有至少一个程序指令51,程序指令51用于执行如图1-图4所示的方法。在一个实施例中,具有存储功能的装置可以是设备中的存储芯片、硬盘或者是移动硬盘或者优盘、光盘等其他可读写存储的工具,还可以是服务器等等。
通过上述描述可知,本实施例中的具有存储功能的装置实施例中存储的程序可以用于第一可穿戴设备与第二可穿戴设备建立无线连接,第一可穿戴设备检测到振动信号和第二可穿戴设备通过人体表面发送的电信号时,判定第二可穿戴设备处于使用状态,通过无线连接接收第二可穿戴设备发送的操控信息,将该操控信息转换成相应的操控指令,并响应该操控指令。可以实现对第一可穿戴设备的鼠标的精准操控,方便用户使用,还可以避免误触造成的负面影响,从而有效提高了用户的使用体验。
区别于现有技术,本发明通过将需要操控的第一可穿戴设备与执行操控的第二可穿戴设备无线连接,第一可穿戴设备检测到振动信号后接收第二可穿戴设备通过无线连接发送的操控信息,将该振动信号或操控信息转化为相应的操控指令。可以实现对第一可穿戴设备的鼠标的精准操控,方便用户使用。在检测到第二可穿戴设备通过人体表面发送的电信号后判定第二可穿戴设备处于使用状态,才接收操控信息,以避免误触造成的负面影响,从而有效提高了用户的使用体验。
以上所述仅为本发明的实施方式,并非因此限制本发明的专利范围,凡是利用本发明说明书及附图内容所作的等效结构或等效流程变换,或直接或间接运用在其他相关的技术领域,均同理包括在本发明的专利保护范围内。

Claims (13)

  1. 一种可穿戴设备的操控方法,其中,包括:
    第一可穿戴设备与第二可穿戴设备建立无线连接;
    检测到振动信号时,检测是否接收到所述第二可穿戴设备的通过人体传递的电信号;
    若检测到所述电信号,则将所述振动信号或所述第二可穿戴设备通过所述无线连接传输的操控消息转换成相应操控指令,并响应所述操控指令。
  2. 根据权利要求1所述的方法,其中,所述操控消息包括所述第二可穿戴设备的移动距离和移动方向;
    所述将所述振动信号或所述第二可穿戴设备通过所述无线连接传输的操控消息转换成相应操控指令,并响应所述操控指令,包括:
    按照预设的转换关系,将所述振动信号或所述操控信息转化为所述第一可穿戴设备的鼠标的操控指令;
    根据所述操控指令来操作所述鼠标。
  3. 根据权利要求2所述的方法,其中,所述按照预设的转换关系,将所述振动信号或所述操控信息转化为所述第一可穿戴设备的鼠标的操控指令,包括:
    判断所述振动信号的振动频率是否在第一预设范围内;
    若所述振动频率在所述第一预设范围内,则按照预设的转换关系,将所述操控消息转化为所述第一可穿戴设备的鼠标的移动操控指令;
    若所述振动频率不在所述第一预设范围内,则判断所述振动信号的振动频率是否在第二预设范围内,若所述振动频率在第二预设范围内,则将所述振动信号转化为所述第一可穿戴设备的鼠标的点击操控指令。
  4. 根据权利要求3所述的方法,其中,若所述振动频率不在第二预设范围内,则重新执行所述判断所述振动信号的振动频率是否在第一预设范围内的步骤以及后续步骤。
  5. 根据权利要求3所述的方法,其中,在所述将所述振动信号转化为所述第一可穿戴设备的鼠标的点击操控指令之前,所述方法还包括:
    接收用户输入的指定指令,其中,所述指定指令用于指示所述第二可穿戴设备对应的所述第一可穿戴设备的鼠标的功能键;
    所述将所述振动信号或所述操控信息转化为所述第一可穿戴设备的鼠标的 操控指令,包括:
    将所述振动信号转化为所述第一可穿戴设备的鼠标中与所述第二可穿戴设备对应的功能键的点击操控指令。
  6. 根据权利要求3所述的方法,其中,所述将所述振动信号或所述操控信息转化为所述第一可穿戴设备的鼠标的操控指令,包括:
    判断所述振动信号的振动频率是否低于预设阈值,若所述振动频率低于预设阈值,则判定所述第一可穿戴设备的鼠标的点击操控指令为单击指令;
    若所述振动频率高于预设阈值,则判定所述第一可穿戴设备的鼠标的点击操控指令为双击指令。
  7. 根据权利要求2所述的方法,其中,所述方法进一步包括:
    接收用户输入的调节指令,更改所述预设的转换关系;和/或
    若在预设时长内,未检测到振动信号,则判定所述第二可穿戴设备处于非使用状态,并与所述第二可穿戴设备断开所述无线连接。
  8. 一种可穿戴设备,其中,包括:处理器、存储器、通信电路和振动传感器,所述存储器耦接所述通信电路和所述振动传感器;
    其中,所述存储器用于存储实现如权利要求1-7任一项所述的通信方法的程序指令;
    所述振动传感器用于检测振动信号;
    所述处理器、所述通信电路用于执行所述存储器存储的程序指令以实现如权利要求1-7任一项所述的通信方法。
  9. 根据权利要求8所述的可穿戴设备,其中,所述可穿戴设备还包括:
    带通滤波器,用于将所述振动信号进行滤波,以将不属于预设振动频率范围内的振动信号去除;
    功率检测器,用于将功率低于预设阈值的电信号去除。
  10. 一种可穿戴设备的操控系统,其中,包括第一可穿戴设备和第二可穿戴设备,其中,第一可穿戴设备为如权利要求8-9任一项所述的可穿戴设备;所述第二可穿戴设备用于检测自身的移动信息,将所述移动信息作为操控信息并发送给所述第一可穿戴设备。
  11. 根据权利要求10所述的可穿戴设备的操控系统,其中,包括多个所述第二可穿戴设备,多个所述可穿戴设备用于检测自身的移动信息,并将所述移动信息作为操控信息发送给所述第一可穿戴设备,以使所述第一可穿戴设备按 照预设的转换关系,将接收的操控信息转换为所述第一可穿戴设备的鼠标的移动操作指令。
  12. 根据权利要求11所述的可穿戴设备的操控系统,其中,所述第一可穿戴设备还用于将检测到的振动信号转换为所述第一可穿戴设备的鼠标中与多个所述第二可穿戴设备对应的功能键的点击操控指令。
  13. 一种具有存储功能的装置,其中,存储有程序指令,所述程序指令能够被执行以实现如权利要求1-7任一项所述方法中的步骤。
PCT/CN2019/102316 2018-08-30 2019-08-23 一种可穿戴设备及其操控方法、操控系统和存储装置 WO2020043024A1 (zh)

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