WO2017177439A1 - 一种功能状态控制的方法及相关设备 - Google Patents

一种功能状态控制的方法及相关设备 Download PDF

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Publication number
WO2017177439A1
WO2017177439A1 PCT/CN2016/079422 CN2016079422W WO2017177439A1 WO 2017177439 A1 WO2017177439 A1 WO 2017177439A1 CN 2016079422 W CN2016079422 W CN 2016079422W WO 2017177439 A1 WO2017177439 A1 WO 2017177439A1
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WIPO (PCT)
Prior art keywords
function
state
wearable device
threshold
control instruction
Prior art date
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PCT/CN2016/079422
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English (en)
French (fr)
Inventor
酆怡祖
刘雯
Original Assignee
华为技术有限公司
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
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Publication date
Application filed by 华为技术有限公司 filed Critical 华为技术有限公司
Priority to CN201680009349.9A priority Critical patent/CN107534932B/zh
Priority to PCT/CN2016/079422 priority patent/WO2017177439A1/zh
Publication of WO2017177439A1 publication Critical patent/WO2017177439A1/zh

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W52/00Power management, e.g. TPC [Transmission Power Control], power saving or power classes
    • H04W52/02Power saving arrangements
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01SRADIO DIRECTION-FINDING; RADIO NAVIGATION; DETERMINING DISTANCE OR VELOCITY BY USE OF RADIO WAVES; LOCATING OR PRESENCE-DETECTING BY USE OF THE REFLECTION OR RERADIATION OF RADIO WAVES; ANALOGOUS ARRANGEMENTS USING OTHER WAVES
    • G01S19/00Satellite radio beacon positioning systems; Determining position, velocity or attitude using signals transmitted by such systems
    • G01S19/01Satellite radio beacon positioning systems transmitting time-stamped messages, e.g. GPS [Global Positioning System], GLONASS [Global Orbiting Navigation Satellite System] or GALILEO
    • G01S19/13Receivers
    • G01S19/34Power consumption
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W88/00Devices specially adapted for wireless communication networks, e.g. terminals, base stations or access point devices
    • H04W88/02Terminal devices
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02DCLIMATE CHANGE MITIGATION TECHNOLOGIES IN INFORMATION AND COMMUNICATION TECHNOLOGIES [ICT], I.E. INFORMATION AND COMMUNICATION TECHNOLOGIES AIMING AT THE REDUCTION OF THEIR OWN ENERGY USE
    • Y02D30/00Reducing energy consumption in communication networks
    • Y02D30/70Reducing energy consumption in communication networks in wireless communication networks

Definitions

  • the present invention relates to the field of communications, and in particular, to a method and related device for functional state control.
  • Wearable Device (English: Wearable Device, WD) is a portable electronic device that is worn directly on the body or integrated into the user's clothing or accessories. Wearable devices are more than just a hardware device, but they also implement powerful functions through software support, data interaction, and cloud interaction. For example, smart watches are typical representatives of wearable devices. Because of the frequent loss and abduction of children in the society, the safety of children has become the most concerned issue for every family and society. Therefore, smart watches for child safety should be shipped. Born, because children's smart watches have multiple positioning, two-way calls, SOS for help, remote monitoring and other functions, can protect children's safety, and is loved by the majority of parents.
  • the two core functions of the children's smart watch are positioning and calling.
  • the positioning function enables the parents to know the child's position in real time.
  • the call function enables the parent to talk with the child at any time to know the current situation of the child.
  • the child The functions of the smart watch will waste the power of the children's smart watch, while the child smart watch has limited battery life. Under certain special circumstances, such as the low battery of the child's smart watch, or the child's smart watch can not be used for a period of time.
  • the child's smart watch can't realize its core function because it has no power, so the child's danger will not be compensated. How to extend the use time of the core functions of children's smart watches has become an urgent problem to be solved.
  • the embodiments of the present invention provide a method for controlling the function state and related devices, which are used to extend the usage time of the function, meet different requirements of the user for the wearable device, and improve the user experience.
  • the wearable device in the embodiment of the present invention mainly has two core functions: a positioning function and a call function.
  • the positioning function is mainly based on Global Position System (GPS) positioning, base station positioning and wireless fidelity (Wlreless-Fidelity, abbreviation: WIFI) positioning.
  • GPS Global Position System
  • WIFI wireless fidelity
  • the combination of the three positioning technologies can be used to implement the positioning function of the child smart watch.
  • Call features include recording monitoring and real-time calling.
  • a wearable device can be described by taking a child smart watch as an example.
  • the wearable device can perform one or two items (such as a positioning function and/or a call function) and is related to the safety of the child, without executing or restricting execution of the other.
  • the ability to save power to the wearable device can extend the time spent on functions performed.
  • an embodiment of the present invention provides a method for controlling a functional state, wherein a wearable device acquires a state control instruction of a function currently in an activated state, and multiple functions are currently in an activated state.
  • the first type receives the state control command sent by the mobile terminal.
  • the second type is the state control command generated by the wearable device.
  • the wearable device determines the function (eg, the location function and/or the call function) that should remain in the activated state according to the status control command.
  • the status control instruction may indicate at least one function, or indicate a priority of the function, the priority has a corresponding relationship with the function, or may simply be a trigger instruction that indicates that the wearable device determines the function.
  • the wearable device turns off the currently active startup function in addition to the functionality that should remain in the startup state.
  • the wearable device obtains the state control command of the function that is currently in the startup state, and the specific manner may be: the wearable device receives the state control instruction of the function that is forwarded by the mobile terminal through the cloud server, and determines the state according to the state control instruction.
  • the function indicated by the control instruction remains in the startup state.
  • the wearable device turns off the currently active startup function in addition to the functionality that should remain in the startup state.
  • the wearable device may determine, according to the state control instruction, a function that should remain in the startup state.
  • the specific manner may also be: the wearable device is in a startup state according to the state control priority command according to the priority order of the state item.
  • a function with a priority higher than the first threshold is selected as a function that should currently remain in the startup state.
  • the mobile terminal sends a state control instruction to the wearable device, and the wearable device retains the function that the user wishes to retain according to the received state control instruction, and turns off other functions besides the function that should be reserved, and is effective.
  • Extended use of the function that should be retained, for example, the wearable device's usage time can be extended from full-featured 4 hours to 12 hours using only the positioning function. Effectively meet the different needs of different users, greatly improving the user experience.
  • the wearable device when the wearable device detects that the current power of the power of the wearable device is lower than the first threshold, generating a state control instruction of the function currently in the activated state. Wearable devices are controlled according to status The instruction selects a function with a priority higher than the first threshold from among the currently active functions according to the priority order of the function items as a function that should currently remain in the startup state.
  • the wearable device detects that the current power of the power of the wearable device is lower than the second threshold
  • the function that selects the priority higher than the second threshold from the function that should be retained in the startup state is finally retained in the startup.
  • the function of the state, the second threshold is less than the first threshold, and the first threshold is greater than the second threshold.
  • the wearable device detects the current power of the power source. When it is detected that the current power is less than the threshold, the wearable device automatically retains the high priority function in the startup item, and closes the function except the reserved function.
  • the function of the startup state effectively extends the usage time of the reserved function, and more intelligently meets the different needs of different users, greatly improving the user experience.
  • the functionality that should remain in the active state includes at least one of positioning and talking.
  • an embodiment of the present invention provides a computer storage medium for storing computer software instructions for use in the above wearable device, including a program designed to execute the first aspect described above.
  • an embodiment of the present invention provides a wearable device, which has the functions performed by the wearable device in the foregoing method.
  • This function can be implemented in hardware or in hardware by executing the corresponding software.
  • the hardware or software includes one or more modules corresponding to the functions described above.
  • the structure of the wearable device includes a memory, a transceiver, and a processor.
  • the memory is for storing computer executable program code and is coupled to the transceiver.
  • the program code includes instructions that, when executed by the processor, cause the wearable device to perform the information or instructions referred to in the first aspect above.
  • the embodiment of the present invention provides a method for controlling a function state, wherein the wearable device detects a current power amount; when the current power of the wearable device is not greater than a first threshold, the wearable device generates a state control instruction; The wearable device determines the communication function and the positioning function and/or the call function as functions currently reserved in the startup state according to the state control command. Because, if the positioning function and/or the call function are to be realized, the function supported by the positioning function and/or the call function is a communication function, and the communication function is enabled to ensure the transmission and reception of the positioning function and/or the call function information. Therefore, the communication function can be a necessary function. The wearable device turns off the currently active state function in addition to the communication function and the location function and/or the call function.
  • an embodiment of the present invention provides a computer storage medium for storing the above wearable A computer software instruction for wearing the device, comprising a program designed to perform the fifth aspect described above.
  • the structure of the wearable device includes a memory, a transceiver, and a processor.
  • the memory is for storing computer executable program code and is coupled to the transceiver.
  • the program code includes instructions that, when executed by the processor, cause the wearable device to perform the information or instructions referred to in the fifth aspect above.
  • the structure of the wearable device includes a memory, a transceiver, and a processor.
  • the memory is for storing computer executable program code and is coupled to the transceiver.
  • the program code includes instructions that, when executed by the processor, cause the wearable device to perform the information or instructions involved in the method of the fifth aspect above.
  • the wearable device acquires a state control instruction of the function item currently in the startup state, determines a function item that should be retained in the startup state according to the state control instruction, and closes the function item that should be retained in the startup state.
  • the other currently active feature items The wearable device performs the functions that the user wants to perform (for example, the positioning function), and turns off other functions (such as call function, health check, SOS help, etc.) to save power, and can be kept in the limited amount of power of the wearable device.
  • the function meets the different needs of users for wearable devices and improves the user experience.
  • FIG. 1 is a schematic diagram of a network frame in an embodiment of the present invention.
  • FIG. 2 is a schematic diagram of positioning information in an embodiment of the present invention.
  • FIG. 3 is a schematic diagram of an embodiment of a method for controlling a functional state according to an embodiment of the present invention
  • FIG. 4 is a schematic diagram of another embodiment of a method for controlling functional state according to an embodiment of the present invention.
  • FIG. 5 is a schematic diagram of an embodiment of a wearable device according to an embodiment of the present invention.
  • FIG. 6 is a schematic diagram of another embodiment of a wearable device according to an embodiment of the present invention.
  • FIG. 7 is a schematic diagram of another embodiment of a wearable device according to an embodiment of the present invention.
  • FIG. 8 is a schematic diagram of another embodiment of a wearable device according to an embodiment of the present invention.
  • the wearable device in the embodiment of the present invention is described by taking a children's smart watch as an example.
  • the core function of the child smart watch is around security.
  • the two core functions are the positioning function and the call function.
  • the following two core functions are first performed. Briefly, first of all, the child smart watch needs to be associated with the guardian's mobile terminal. For example, the child smart watch is inserted into a Subscriber Identity Module (SIM), which can scan the QR code of the child smart watch.
  • SIM Subscriber Identity Module
  • the mobile terminal can receive the information input by the user (eg, account number, password, mobile phone number, etc.) to register, and after the mobile terminal passes the verification, the registration is completed, and the mobile terminal can log in by inputting the account and password, or
  • the mobile terminal can send the identifier of the mobile terminal, and the cloud server stores the account in association with the identifier of the mobile terminal.
  • the server receives the login information of the account, the mobile terminal obtains the login information. Identification and verification Identification information matches the identification of the account associated with it, if matched, allowing the mobile terminal login.
  • the identifier of the mobile terminal stored in association with the account may be a preset number.
  • the positioning function the child smart watch 101 is mainly based on the global positioning system (Global Position System, abbreviation: GPS) 104 positioning, base station 105 positioning and wireless fidelity (Wlreless-Fidelity, abbreviation: WIFI) 106 positioning these three types of positioning technology.
  • GPS Global Position System
  • WIFI wireless fidelity
  • Simple positioning can be achieved by using one of the positioning technologies alone, but there are great limitations.
  • the advantage of the WIFI positioning technology is that it is positioned indoors
  • the advantage of the GPS positioning technology is the outdoor positioning.
  • the combination of these three positioning technologies is used to realize the positioning function of the child smart watch, and the child smart watch 101 periodically transmits the positioning information to the cloud.
  • the end server 102, the mobile terminal 103 receives the account information input by the user (the account information may be a mobile phone number, a cloud service account, etc.) to enter the cloud server 102 to query the location information of the child smart watch 101 bound to the mobile terminal 103.
  • the application interface of the mobile terminal displays the location information of the child smart watch 101.
  • the positioning information refers to specific location information implemented in conjunction with the map, for example, 101 specific location 210 information of the child smart watch displayed on the mobile terminal display interface, for example, S Street No. 1088.
  • the positioning information may also be a trajectory 220 of the specific movement of the child smart watch 101 within a preset time period.
  • the recording monitoring is to operate the child smart watch 101 through the mobile terminal application, the child smart watch 101 performs the recording function, the preset time recording is performed, and then the child smart watch 101 is sent to the mobile through the network.
  • the other is a real-time call.
  • the real-time call requires a smart card built into the child's smart watch. It has a call function.
  • the mobile terminal dials the number of the child's smart watch to realize the call function between the mobile terminal and the child's smart watch.
  • the child's smart watch is equivalent to another mobile phone. The principle is the same as that of two mobile phones, and will not be described here.
  • the wearable device also has other functions, such as SOS help, standby mode, health monitoring and the like.
  • the child smart watch has the functions of positioning, calling, SOS, standby mode, and health monitoring as an example.
  • the child smart watch when the child smart watch is not charging, or in the child When the remaining children's smart watch is low on battery power, parents hope that the child's smart watch can perform one or two (such as positioning function and/or call function) related to the safety of the child for the safety of the child. No other functions are performed or restricted to save power to the wearable device, which can extend the time spent on the functions performed.
  • the wearable device can obtain the state control instruction of the function currently in the startup state, and the current startup state can be understood as: the wearable device may have eight functions, but the function item of the current startup state has Six functions, the other two are not currently enabled, for example, the currently active features can be: call, location, SOS, standby mode, health monitoring and communication and other frequently used functions.
  • the wearable device can determine the function that should be kept in the startup state (for example, the positioning function) according to the state control command, and turn off other functions (such as call, SOS help, standby mode, health monitoring), thereby prolonging the use time of the positioning function.
  • the state control command according to the wearable device acquisition function is different, which is specifically described below by the embodiment.
  • an embodiment of the present invention provides an embodiment of a method for controlling a functional state, which specifically includes:
  • Step 301 The mobile terminal sends a state control instruction of a function that is currently in an activated state to the wearable device.
  • the mobile terminal transmits a state control command of a function currently in an activated state to a wearable device (for example, a child smart watch) through a cloud server, and the mobile terminal is a management device of the wearable device.
  • a wearable device for example, a child smart watch
  • the mobile terminal is a management device of the wearable device.
  • the state control instruction may be specific to at least one of the functions, for example, the application of the mobile terminal receives the state control instruction of the positioning function selected by the user or the state control instruction of the call function, for specific Which function is the invention is not limited.
  • the number of functions specifically indicated by the state control command is not limited. For example, it may be a positioning function, or may be a positioning function and a voice function.
  • the state control command of the function may indicate the priority of the function.
  • the application of the mobile terminal receives the state control instruction of the first level of function input by the user.
  • the function has a corresponding relationship with the priority level, for example,
  • the order of the levels of the multiple functions from high to low can be as shown in Table 1 below:
  • the positioning function corresponds to the first level
  • the SOS help function corresponds to the third level
  • the health monitoring function corresponds to the fourth level.
  • the order of priority is: first level to fifth Level
  • the first priority is the highest priority
  • the fifth level is the lowest priority.
  • a priority level may correspond to at least one function, and is not limited to only one function.
  • the level of the function of the wearable device may be preset, and the state control instruction may indicate the level to map the work corresponding to the level. can.
  • the state control command of the function does not specifically indicate which function or functions, but may simply be a trigger instruction that instructs the wearable device to determine the function.
  • Step 302 The wearable device receives a state control instruction of the function, and determines a function that should remain in the startup state according to the state control instruction.
  • the functions that should be retained in the startup state include the target function and the necessary functions.
  • the target function indicated by the state control instruction received by the wearable device is a positioning function and/or a call function
  • the function supported by the positioning function and/or the call function is communication.
  • Function turn on the communication function to ensure the transmission and reception of the positioning function and/or the call function information. Therefore, the communication function can be a necessary function.
  • the function retained in the startup state includes the target function and the necessary function.
  • the function indicated by the state control instruction is the target function, and the function retained in the startup state includes the target function and the necessary function, and is required. It should be noted that the above description of the necessary functions is exemplified, and the necessary functions are not limited to the communication function.
  • the wearable device receives a state control instruction of the function forwarded by the mobile terminal through the cloud server, and determines, according to the state control instruction, that the function indicated by the state control instruction remains in the startup state.
  • step 301 when the state control instruction is the trigger instruction for determining the function, the wearable device is in the startup state according to the priority order of the state item according to the state control instruction.
  • the function with the priority higher than the first threshold is selected as the function that should be kept in the startup state at present.
  • the wearable device selects a function with a higher priority than the third level from the currently activated state according to the received state control command as the current state that should remain in the startup state. Function, then this function is the positioning function and the call function.
  • Step 303 The wearable device turns off the other currently active state function except the function that should remain in the startup state.
  • the mobile terminal sends a status control instruction to the wearable device, and the wearable device retains the function that the user wishes to reserve according to the received status control instruction, and closes the Other functions beyond the function, effectively extending the usage time of the function that should be retained, for example, the wearable device's usage time can be extended from full-featured 4 hours to 12 hours using only the positioning function. Effectively meet the different needs of different users, greatly improving the user experience.
  • another embodiment of a method for providing functional state control according to an embodiment of the present invention includes:
  • Step 401 The wearable device detects the current power.
  • Step 402 When the wearable device detects that the current power of the power of the wearable device is lower than the first threshold, generating a state control instruction.
  • the wearable device detects the current power of its own power source in real time, and the first threshold may be 20%. For example, when the detected current power is lower than 20%, a state control command for generating a function currently in the activated state is generated.
  • the currently active features include multiple (eg, location, call, SOS, etc.). It should be noted that the first threshold value is 20% as an example and is not a limitation.
  • Step 403 The wearable device selects, according to the state control instruction, a function having a priority higher than the first threshold from the currently activated state as a function that should be retained in the startup state according to the priority order of the functions.
  • the priority corresponding to each function can be: the first level of the positioning function, the second level corresponding to the call function, the third level corresponding to the SOS help function, and the fourth corresponding to the health detection function.
  • the level and standby mode functions correspond to the fifth level.
  • the first threshold may be the second level.
  • the wearable device selects a function with a higher priority than the second level from the above five functions in the activated state according to the priority order of the functions, and uses the positioning function as the current function. The feature that remains in the startup state.
  • Step 404 is the same as step 303 in the embodiment corresponding to FIG. 3, and details are not described herein.
  • the wearable device detects the current power, and the threshold may be set in a stepwise manner.
  • the first threshold is 30%
  • the second threshold is 20%
  • the first threshold is The third level
  • the second threshold is the second level.
  • the wearable device When the wearable device detects that the current power of its own power is lower than 30%, selecting a function with a higher priority than the third level from the currently activated function as a function that should currently remain in the activated state, then the function is Positioning and calling features.
  • the status item that has priority higher than the second level is selected from the functions (positioning function and call function) that should be kept in the startup state as the final should be retained.
  • the function that should remain in the startup state is the positioning function.
  • first threshold the second threshold, the first threshold, and the second threshold are only examples, and are not limited to the limitation. In practical applications, the stepwise setting of the threshold may also be multiple steps. Not limited.
  • the wearable device detects the current power of the power source. When it is detected that the current power is less than the threshold, the wearable device automatically retains the high priority function in the startup item, and closes the function except the reserved function.
  • the function of the startup state effectively extends the usage time of the reserved function, and more intelligently meets the different needs of different users, greatly improving the user experience.
  • an embodiment of the present invention provides a wearable device 500 comprising:
  • the obtaining module 501 is configured to acquire a state control instruction of a function that is currently in an activated state, and multiple functions are currently in an activated state.
  • the obtaining module 501 includes a receiving unit 5011.
  • the receiving unit 5011 is configured to receive a state control instruction of a function currently issued by the mobile terminal in a startup state, where the state control instruction is used to indicate a function that should remain in the startup state.
  • the determining module 502 is configured to determine, according to the state control instruction acquired by the obtaining module 501, a function that should remain in the startup state.
  • the determining module 502 is further configured to: according to the state control instruction, select, according to the priority order of the status item, a function with a priority higher than the first threshold from the currently activated function as the current state that should remain in the startup state.
  • the processing module 503 is configured to close other currently active state functions other than the function determined by the determining module 502 to remain in the startup state.
  • FIG. 6 another embodiment of the wearable device 600 is provided by the present invention, including:
  • the obtaining module 601 is configured to obtain a state control instruction of a function currently in an activated state, and multiple functions are currently in an activated state.
  • the obtaining module 601 includes a detecting unit 6011 and a generating unit 6012.
  • the detecting unit 6011 is configured to detect the current power of the power of the wearable device.
  • the generating unit 6012 is configured to generate a state control instruction of a function currently in an activated state when the current power of the power source of the wearable device detected by the detecting unit 6011 is lower than the first threshold.
  • the determining module 602 is further configured to select, according to the state control instruction, a function that has a priority higher than the first threshold from the currently active state as a function that should remain in the startup state according to the priority order of the status item.
  • the determining module 602 is further configured to: when the detecting unit 6011 detects that the current power of the power of the wearable device is lower than the second threshold, select a priority from the function that should be retained in the activated state to be higher than the second threshold.
  • the function is a function that should eventually remain in the startup state, the second threshold is less than the first threshold, and the first threshold is greater than the second threshold.
  • the processing module 603 is configured to close other currently active state functions other than the function determined by the determining module 602 that should remain in the startup state.
  • FIG. 7 another embodiment of the present invention provides a wearable device 700 including:
  • the detecting module 701 is configured to detect a current power quantity
  • the generating module 702 is configured to: when the current power detected by the detecting module 701 is not greater than the first threshold, the wearable device generates a state control instruction;
  • the determining module 703 is configured to determine, according to the state control instruction generated by the generating module 702, the communication function and the positioning function and/or the call function as functions currently reserved in the startup state;
  • the processing module 704 is configured to close other currently active state functions other than the function determined by the determining module 703 to remain in the startup state.
  • a “module” herein may refer to an application-specific integrated circuit (ASIC), circuitry, a processor and memory that executes one or more software or firmware programs, integrated logic circuitry, and/or other functions that provide the functionality described above.
  • ASIC application-specific integrated circuit
  • each module may be implemented by the transceiver, processor and memory of FIG.
  • the wearable device uses a children's smart watch as an example:
  • the smart watch 800 may specifically include a body and a wristband connected to each other, wherein the watch body includes a front case (not shown in FIG. 8), a touch panel 801 (also referred to as a touch screen), a display screen 802, and a bottom.
  • the watch body includes a front case (not shown in FIG. 8), a touch panel 801 (also referred to as a touch screen), a display screen 802, and a bottom.
  • Shell (not shown in FIG.
  • the smart watch also It may include an antenna, a Near Field Communication (NFC) module, a speaker, an accelerometer, a gyroscope, and the like.
  • NFC Near Field Communication
  • the touch screen 801 can collect touch operations on the watch user (such as a user using a finger, a stylus, or the like, any suitable object or accessory on or near the touch panel). And the connected device is driven according to a preset program.
  • the touch panel 801 can include two parts: a touch detection device and a touch controller. Wherein, the touch detection device detects the touch orientation of the user, and detects a signal brought by the touch operation, and transmits the signal to the touch controller; the touch controller receives the touch information from the touch detection device, converts the touch information into contact coordinates, and sends the touch information.
  • the processor 803 is provided and can receive commands sent by the processor 803 and execute them.
  • touch panels can be implemented in various types such as resistive, capacitive, infrared, and surface acoustic waves.
  • touch panels can be implemented in various types such as resistive, capacitive, infrared, and surface acoustic waves.
  • touch In addition to touch
  • the smart watch may also include other input devices, and other input devices may include, but are not limited to, function keys (such as volume control buttons, switch buttons, etc.).
  • Display 802 can be used to display information entered by the user or information provided to the user as well as various menus of the watch.
  • the display screen 802 can be configured in the form of a Liquid Crystal Display (LCD) or an Organic Light-Emitting Diode (OLED).
  • the touch panel 801 can cover the display screen 802. When the touch panel 801 detects a touch operation on or near it, the touch panel 801 transmits to the processor 803 to determine the type of the touch event, and then the processor 803 according to the touch event. The type provides a corresponding visual output on display screen 802.
  • the touch panel 801 and the display screen 802 are used as two separate components to implement the input and output functions of the watch, in some embodiments, the touch panel 801 can be integrated with the display screen 802. Achieve the input and output functions of the watch.
  • the processor 803 is configured to perform system scheduling, control display screen, touch screen, support processing microphone 806, global positioning system module 807, Bluetooth 808, and the like.
  • the processor 803 can be a Qualcomm APQ8026 chip.
  • the micro control unit 804 is configured to control the sensor, perform operation on the sensor data, and communicate with the processor 803.
  • the memory 805 is for storing software programs and data, and the processor 803 executes various functional applications and data processing of the watch by running software programs and data stored in the memory.
  • the memory 805 mainly includes a storage program area and a storage data area, wherein the storage program area can store an operating system, an application required for at least one function (such as a sound playing function, an image playing function, etc.); the storage data area can be stored according to the use of the watch.
  • the data created (such as audio data, phone book, etc.).
  • the memory may include a high speed random access memory, and may also include a nonvolatile memory such as a magnetic disk storage device, a flash memory device, or other volatile solid state storage device.
  • the microphone 806 can convert the collected sound signal into an electrical signal, which is converted by the audio circuit into audio data; the audio circuit can also convert the audio data into an electrical signal, which is transmitted to a speaker, and converted into a sound signal output by the speaker.
  • the Global Positioning System Module 807 also known as the GPS module, is primarily capable of capturing satellites to be tested selected at a certain satellite cut-off angle and tracking the operation of these satellites.
  • the rate of change of the pseudo-distance and distance from the receiving antenna to the satellite can be measured, and the satellite orbit is demodulated.
  • Data such as channel parameters.
  • the microprocessor computer in the GPS module can perform positioning calculation according to the positioning solution method, and calculate the latitude, longitude, altitude, speed, time and other information of the geographical location of the user.
  • Bluetooth (BT) 808, smart watch can exchange information with other electronic devices (such as mobile phones, tablets, etc.) through Bluetooth, and connect to the network through the above electronic devices, connect with the server, and handle voice recognition and other functions.
  • other electronic devices such as mobile phones, tablets, etc.
  • Sensor 809 can be an air pressure sensor, a heart rate detection sensor, a gravity acceleration sensor, a light sensor, a motion sensor, or other sensor.
  • the light sensor can include an ambient light sensor and a proximity sensor.
  • Other sensors such as a gyroscope, a barometer, a hygrometer, a thermometer, an infrared sensor, and the like which are also configurable in the watch will not be described here.
  • WiFi Wireless-Fidelity
  • WiFi belongs to short-range wireless transmission technology
  • the wearable device can help users to send and receive emails, browse web pages, and access streaming media through the WiFi module 810, which provides users with Wireless broadband internet access.
  • the RF circuit 811 and the RF circuit 811 can be used for receiving and transmitting signals during the transmission and reception of information or during a call. Specifically, after receiving the downlink information of the base station, the processing is performed by the processor 803. In addition, the uplink data is designed to be sent to the base station.
  • the RF circuit 811 includes, but is not limited to, an antenna, at least one amplifier, a transceiver, a coupler, a Low Noise Amplifier (LNA), a duplexer, and the like.
  • the RF circuit 811 can also communicate with the network and other devices through wireless communication.
  • the above wireless communication may use any communication standard or protocol, including but not limited to Global System of Mobile communication (GSM), General Packet Radio Service (GPRS), Code Division Multiple Access (Code Division). Multiple Access, CDMA), etc.
  • GSM Global System of Mobile communication
  • GPRS General Packet Radio Service
  • CDMA Code Division Multiple Access
  • the child smart watch also includes a power source 812 (such as a battery) that supplies power to the various components.
  • a power source 812 such as a battery
  • the power source 812 can be logically coupled to the processor 803 via the power management system 813 to manage charging, discharging, and power consumption through the power management system 813. Management and other functions.
  • the processor 803 included in the wearable device further has the following steps performed by the wearable device:
  • the wearable device Detecting the current power; when the current power is not greater than the first threshold, the wearable device generates a state control instruction; according to the state control command, determining the communication function and the positioning function and/or the call function as The function to be in the startup state should be retained before; the other currently active state functions other than those that should remain in the startup state should be turned off.
  • the processor 803 included in the wearable device further has steps 301 to 303 in the embodiment corresponding to FIG. 3 for the wearable device to perform.
  • the processor 803 included in the wearable device further has steps 401 to 404 in the embodiment corresponding to FIG. 4 for the wearable device to perform.
  • the subject matter described herein can be implemented in software incorporating hardware and/or firmware.
  • the subject matter described herein can be implemented in software executed by one or more processors.
  • the subject matter described herein can be implemented using a non-transitory computer readable medium storing computer executable instructions that, when executed by a computer processor, control the computer to perform the steps.
  • Example computer readable media suitable for implementing the subject matter described herein include non-transitory computer readable media, such as disk storage devices, chip memory devices, programmable logic devices, and application specific integrated circuits.
  • a computer readable medium embodying the subject matter described herein can be located on a single device or computing platform or can be distributed across multiple devices or computing platforms.

Abstract

本发明提供了一种功能状态控制的方法及相关设备,用于延长功能的使用时间,满足用户对可穿戴设备的不同需求,提高了用户体验。其中,本发明实施例提供的方法包括:可穿戴设备获取当前处于启动状态的功能的状态控制指令,当前处于启动状态的功能有多个;可穿戴设备根据状态控制指令,确定应保留在启动状态的功能;可穿戴设备关闭除应保留在启动状态的功能之外的其他当前处于启动状态功能。本发明实施例还提供了一种可穿戴设备,用于延长功能的使用时间,满足用户对可穿戴设备的不同需求,提高用户体验。

Description

一种功能状态控制的方法及相关设备 技术领域
本发明涉及通信领域,尤其涉及一种功能状态控制的方法及相关设备。
背景技术
可穿戴设备(英文:Wearable Device,缩写:WD)即直接穿在身上,或是整合到用户的衣服或配件的一种便携式电子设备。可穿戴设备不仅仅是一种硬件设备,更是通过软件支持以及数据交互、云端交互来实现强大的功能。例如,智能手表就是可穿戴设备中的典型代表,由于社会上频繁出现孩子丢失及被拐案件,孩子的安全问题也成为每个家庭和社会最为关心的问题,因此,针对儿童安全的智能手表应运而生,由于儿童智能手表具有多重定位,双向通话,SOS求救,远程监听等多种功能,可以保障孩子安全,而深受广大家长的喜爱。
目前,儿童智能手表的两大核心功能为定位和通话,定位功能可以使家长实时知道孩子的位置,通话功能可以使家长随时与孩子进行通话以得知孩子的当前状况,现有技术中,儿童智能手表的各个功能都会浪费该儿童智能手表的电能,而儿童智能手表的续航能力有限,在某种特殊情况下,如儿童智能手表的低电量的情况下,或者儿童智能手表在一段时间内无法充电时,家长需要使用儿童智能手表的定位功能和/或通话功能时,由于儿童智能手表没电而无法实现其核心功能,导致孩子出现危险将无法弥补。如何延长儿童智能手表的核心功能的使用时间成为亟待解决的问题。
发明内容
本发明实施例提供了一种功能状态控制的方法及相关设备,用于延长功能的使用时间,满足用户对可穿戴设备的不同需求,提高了用户体验。
本发明实施例中的可穿戴设备主要具有两个核心功能:定位功能和通话功能。其中,定位功能主要基于全球定位系统(Global Position System,缩写:GPS)定位、基站定位和无线保真(Wlreless-Fidelity,缩写:WIFI)定位这三类定位技术。本发明实施例中,可以采用这三种定位技术的结合来实现对儿童智能手表的定位功能。通话功能包括录音监听和实时通话。本发明实施例中的 可穿戴设备可以以儿童智能手表为例进行说明,可穿戴设备可以执行某一项或某两项(如定位功能和/或通话功能)与孩子的安全息息相关的功能,而不执行或者限制执行其他的功能以节省可穿戴设备的电能,这样可以延长执行的功能的使用时间。
第一方面,本发明实施例提供了一种功能状态控制的方法,其中,可穿戴设备获取当前处于启动状态的功能的状态控制指令,当前处于启动状态的功能有多个。其中,获取状态控制指令的方式可以有两种,第一种,接收移动终端发送的状态控制指令;第二种,可穿戴设备生成的状态控制指令。可穿戴设备根据状态控制指令,确定应保留在启动状态的功能(例如,定位功能和/或通话功能)。其中,状态控制指令可以指示至少某一个功能,或者指示功能的优先级,该优先级与功能具有对应关系,或者可以只是指示可穿戴设备确定功能的触发指令。可穿戴设备关闭除应保留在启动状态的功能之外的其他当前处于启动状态功能。
可选的,可穿戴设备获取当前处于启动状态的功能的状态控制指令,具体的方式可以为:可穿戴设备接收移动终端通过云端服务器转发的该功能的状态控制指令,并根据状态控制指令确定状态控制指令所指示的功能保留在启动状态。可穿戴设备关闭除应保留在启动状态的功能之外的其他当前处于启动状态功能。
可选的,可穿戴设备可以根据状态控制指令,确定应保留在启动状态的功能,具体的方式还可以为:可穿戴设备根据状态控制指令,按照状态项的优先级顺序,从当前处于启动状态的功能中选择优先级高于第一门限的功能作为当前应保留在启动状态的功能。
本发明实施例中,通过移动终端向可穿戴设备发送状态控制指令,可穿戴设备根据接收的状态控制指令保留用户希望保留的功能,并关闭除了应保留的功能之外的其他的功能,有效的延长的应保留的功能的使用时间,例如,可穿戴设备的使用时间可以由全功能的4个小时延长至仅使用定位功能的12个小时。有效的满足了不同用户的不同需求,极大的提升了用户体验。
可选的,当可穿戴设备检测到可穿戴设备的电源的当前电量低于第一阈值时,生成当前处于启动状态的功能的状态控制指令。可穿戴设备根据状态控制 指令,按照功能项的优先级顺序,从当前处于启动状态的功能中选择优先级高于第一门限的功能作为当前应保留在启动状态的功能。
可选的,可穿戴设备检测到可穿戴设备的电源的当前电量低于第二阈值时,从当前应保留在启动状态的功能中选择优先级高于第二门限的功能作为最终应保留在启动状态的功能,第二阈值小于第一阈值,第一门限大于第二门限。
本发明实施例中,通过可穿戴设备检测自身的电源的当前电量,当检测到当前电量小于阈值时,可穿戴设备自动在启动项中保留优先级高的功能,而关闭除了保留的功能之外的启动状态的功能,有效的延长的应保留的功能的使用时间,更加智能的满足了不同用户的不同需求,极大的提升了用户体验。
可选的,应保留在启动状态的功能包括定位和通话中的至少一个。
第二方面,本发明实施例提供了一种计算机存储介质,用于储存上述可穿戴设备所用的计算机软件指令,其包含用于执行上述第一方面所设计的程序。
第三方面,本发明实施例提供了一种可穿戴设备,具有实现上述方法中实际中可穿戴设备所执行的功能。该功能可以通过硬件实现,也可以通过硬件执行相应的软件实现。该硬件或软件包括一个或多个与上述功能相对应的模块。
第四方面,可穿戴设备的结构中包括存储器,收发器和处理器。其中存储器用于存储计算机可执行程序代码,并与收发器耦合。该程序代码包括指令,当该处理器执行该指令时,该指令使该可穿戴设备执行上述第一方面中所涉及的信息或者指令。
第五方面,本发明实施例提供了一种功能状态控制的方法,其中,可穿戴设备检测当前电量;当可穿戴设备的当前电量不大于第一阈值时,可穿戴设备生成状态控制指令;可穿戴设备根据状态控制指令,确定通信功能及定位功能和/或通话功能作为当前应保留在启动状态的功能。因为,若要实现定位功能和/或通话功能,定位功能和/或通话功能所依托的功能为通信功能,开启通信功能保证定位功能和/或通话功能的信息的收发。因此通信功能可以为必要功能。可穿戴设备关闭除通信功能及定位功能和/或通话功能之外的其他当前处于启动状态功能。
第六方面,本发明实施例提供了一种计算机存储介质,用于储存上述可穿 戴设备所用的计算机软件指令,其包含用于执行上述第五方面所设计的程序。
第七方面,可穿戴设备的结构中包括存储器,收发器和处理器。其中存储器用于存储计算机可执行程序代码,并与收发器耦合。该程序代码包括指令,当该处理器执行该指令时,该指令使该可穿戴设备执行上述第五方面中所涉及的信息或者指令。
第八方面,可穿戴设备的结构中包括存储器,收发器和处理器。其中存储器用于存储计算机可执行程序代码,并与收发器耦合。该程序代码包括指令,当该处理器执行该指令时,该指令使该可穿戴设备执行上述第五方面中的方法所涉及的信息或者指令。
本发明实施例中,可穿戴设备获取当前处于启动状态的功能项的状态控制指令,根据状态控制指令,确定应保留在启动状态的功能项,并关闭除应保留在启动状态的功能项之外的其他当前处于启动状态功能项。可穿戴设备执行用户希望执行的功能(如,定位功能),关闭其他功能(如,通话功能,健康检测、SOS求救等功能)以节省电量,在可穿戴设备有限的电量内可以一直执行应保留的功能,满足用户对可穿戴设备的不同需求,提高了用户体验。
附图说明
图1为本发明实施例中网络框架示意图;
图2为本发明实施例中定位信息的示意图;
图3为本发明实施例中功能状态控制的方法的一个实施例的示意图;
图4为本发明实施例中功能状态控制的方法的另一个实施例的示意图;
图5为本发明实施例中可穿戴设备的一个实施例的示意图;
图6为本发明实施例中可穿戴设备的另一个实施例的示意图;
图7为本发明实施例中可穿戴设备的另一个实施例的示意图;
图8为本发明实施例中可穿戴设备的另一个实施例的示意图。
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,本领域技术人员在没有作出创造性劳动前提下所获得的所有其他实施例,都属于本发明保护的范围。
本发明的说明书和权利要求书及上述附图中的术语“第一”、“第二”、“第三”、“第四”等(如果存在)是用于区别类似的对象,而不必用于描述特定的顺序或先后次序。应该理解这样使用的数据在适当情况下可以互换,以便这里描述的实施例能够以除了在这里图示或描述的内容以外的顺序实施。此外,术语“包括”和“具有”以及他们的任何变形,意图在于覆盖不排他的包含,例如,包含了一系列步骤或单元的过程、方法、系统、产品或设备不必限于清楚地列出的那些步骤或单元,而是可包括没有清楚地列出的或对于这些过程、方法、产品或设备固有的其它步骤或单元。
本发明实施例中的可穿戴设备以儿童智能手表为例进行说明,儿童智能手表的核心功能围绕安全为目的,其两大核心功能为定位功能和通话功能,下面首先对这两大核心功能做简要说明,首先,儿童智能手表需要与监护人的移动终端进行关联,例如,儿童智能手表插入用户身份识别模块(Subscriber identity Module,缩写:SIM),该移动终端可以在扫描儿童智能手表的二维码后,进入应用界面,移动终端可以接收用户输入的信息(如,账号、密码、手机号码等)进行注册,移动终端通过验证后,完成注册,移动终端可以通过输入账号和密码进行登录,或者,为了提高安全性,移动终端首次登陆时,可以发送该移动终端的标识,云端服务器将该账号与移动终端的标识关联存储,当服务器接收到该账号的登陆信息时,获取发送登录信息的移动终端的标识,并验证该标识信息与该账号关联的标识是否匹配,若匹配,允许该移动终端登录。需要说明的是,与该账号关联存储的移动终端的标识可以为预置个数。
请结合图1所示的网络框架示意图100对儿童智能手表的核心功能进行理解,为了方便理解,下面对两个核心功能做简要介绍:定位功能,儿童智能手表101主要基于全球定位系统(Global Position System,缩写:GPS)104定位、基站105定位和无线保真(Wlreless-Fidelity,缩写:WIFI)106定位这三类定位技术。单独使用其中一种定位技术就可以实现简单的定位,不过有很大的局限性,例如WIFI定位技术的优势是在室内定位,而GPS定位技术的优势是室外定位,本发明实施例中,可以采用这三种定位技术的结合来实现对儿童智能手表的定位功能,儿童智能手表101将定位信息周期性的发送至云 端服务器102,移动终端103通过应用接收用户输入的账号信息(该账号信息可以是手机号码,云服务账号等)进入云端服务器102查询与该移动终端103绑定的儿童智能手表101的定位信息,移动终端的应用界面显示儿童智能手表101的定位信息。请结合图2进行理解,该定位信息是指结合地图实现的具体的位置信息,例如,在移动终端显示界面所展示儿童智能手表的101具体位置210信息,比如,S街道1088号。或者该定位信息也可以是预置时间段内的儿童智能手表101具体运动的轨迹220。
通话功能分为两种,一种是录音监听,录音监听是通过移动终端应用操作儿童智能手表101,儿童智能手表101执行录音功能,进行预置时长的录音然后儿童智能手表101通过网络发送到移动终端上。另外一种是实时通话,实时通话需要儿童智能手表内置有SIM卡,具有通话功能,移动终端拨打儿童智能手表的号码实现移动终端与儿童智能手表的通话功能,儿童智能手表相当于另一部手机,原理与两个手机通话相同,此处不赘述。
当然,可穿戴设备还具有其他的多种功能,例如,SOS求救、待机模式、健康监测等功能。本发明实施例中,以该儿童智能手表具有定位、通话、SOS求救、待机模式、健康监测的功能为例进行举例说明,在某些场景下,例如,儿童智能手表没有充电时,或者在孩子佩戴的儿童智能手表剩余电量不足时,家长为了孩子的安全考虑,希望儿童智能手表可以执行其中某一项或某两项(如定位功能和/或通话功能)与孩子的安全息息相关的功能,而不执行或者限制执行其他的功能以节省可穿戴设备的电能,这样可以延长执行的功能的使用时间。
需要说明的是,(1)可穿戴设备可以获取当前处于启动状态的功能的状态控制指令,当前处于启动状态可以理解为:可穿戴设备可能有八项功能,但是,当前启动状态的功能项有六项功能,另外两项当前并没有启用,例如,当前处于启动状态的功能可以为:通话、定位、SOS求救、待机模式、健康监测和通信等这些经常使用的功能。
可穿戴设备能够根据状态控制指令,确定应保留在启动状态的功能(如,定位功能),而关闭其他功能(如,通话、SOS求救、待机模式、健康监测),从而延长定位功能的使用时间,以使家长实时获知孩子的定位信息,以最大限 度的保证孩子的安全,为了方便理解,本发明实施例中,按可穿戴设备获取功能的状态控制指令不同方式,下面通过实施例来具体描述。
请参阅图3所示,本发明实施例提供了功能状态控制的方法的一个实施例,具体包括:
步骤301、移动终端向可穿戴设备发送当前处于启动状态的功能的状态控制指令。
移动终端通过云端服务器向可穿戴设备(例如儿童智能手表)发送当前处于启动状态的功能的状态控制指令,该移动终端为可穿戴设备的管理设备。当前处于启动状态的功能有多个。可以理解的是,(1)状态控制指令可以是具体的指示至少某一项功能,例如,移动终端的应用接收用户选择输入的定位功能的状态控制指令或者通话功能的状态控制指令,对于具体的是哪项功能本发明不限制。并且对于该状态控制指令具体指示的功能的个数不做限定,例如,可以是定位功能,也可以是定位功能和语音功能。(2)功能的状态控制指令可以指示功能的优先级,例如,移动终端的应用接收用户输入的第一级别的功能的状态控制指令,可以理解的是,功能与优先级级别具有对应关系,例如,多项功能对应的级别由高到低的顺序可以如下表1所示:
表1
功能 优先级
定位 1
通话 2
SOS求救 3
健康监测 4
待机模式 5
如上表1所示,定位功能对应第一级别,SOS求救功能对应第三级别,健康监测功能对应第四级别,例如,以表1为例,优先级的高低顺序为:第一级别至第五级别,第一优先级为最高优先级,第五级别为最低优先级,当然,此处只是以五个级别进行举例,并非对优先级的限定说明。需要说明的是,一个优先级别可以对应至少一项功能,并不限定只是一项功能。可穿戴设备的功能的级别可以预先设置,该状态控制指令可以指示级别来映射该级别所对应的功 能。(3)功能的状态控制指令并不具体指示哪项或哪几项功能,而可以只是指示可穿戴设备确定功能的触发指令。
步骤302、可穿戴设备接收该功能的状态控制指令,并根据状态控制指令,确定应保留在启动状态的功能。
需要说明的是,应保留在启动状态的功能包括目标功能和必要功能,下面通过举例子对目标功能和必要功能进行说明,必要功能为实现目标功能所依托的功能。例如,若可穿戴设备接收的状态控制指令指示的目标功能为定位功能和/或通话功能,那么,若要实现定位功能和/或通话功能,定位功能和/或通话功能所依托的功能为通信功能,开启通信功能保证定位功能和/或通话功能的信息的收发。因此通信功能可以为必要功能。本发明实施例中,保留在启动状态的功能包括目标功能和必要功能,本发明实施例中,状态控制指令所指示的功能为目标功能,保留在启动状态的功能包括目标功能和必要功能,需要说明的是,上述对必要功能举例说明,必要功能并不限定于通信功能。
可穿戴设备接收移动终端通过云端服务器转发的该功能的状态控制指令,并根据状态控制指令确定状态控制指令所指示的功能保留在启动状态。
需要说明的是,针对步骤301中的第(3)种情况,当状态控制指令为确定功能的触发指令时,可穿戴设备根据状态控制指令,按照状态项的优先级顺序,从当前处于启动状态的状态项中选择优先级高于第一门限的功能作为当前应保留在启动状态的功能。
例如:当第一门限为第三级别时,可穿戴设备根据接收到的状态控制指令后,从当前处于启动状态的功能中选择优先级高于第三级别的功能作为当前应保留在启动状态的功能,那么该功能为定位功能和通话功能。
步骤303、可穿戴设备关闭除应保留在启动状态的功能之外的其他当前处于启动状态功能。
可以理解的是,例如,当前处于启动状态的功能有五项,当可穿戴设备根据接收的状态控制指令确定应保留的功能是定位功能时,就会关闭除定位功能之外的其他四项功能(例如,通话、SOS求救、健康监测、待机模式)。
本发明实施例中,通过移动终端向可穿戴设备发送状态控制指令,可穿戴设备根据接收的状态控制指令保留用户希望保留的功能,并关闭除了应保留的 功能之外的其他的功能,有效的延长的应保留的功能的使用时间,例如,可穿戴设备的使用时间可以由全功能的4个小时延长至仅使用定位功能的12个小时。有效的满足了不同用户的不同需求,极大的提升了用户体验。
请参阅图4所示,本发明实施例提供了功能状态控制的方法的另一个实施例包括:
步骤401、可穿戴设备检测当前电量。
步骤402、可穿戴设备检测到可穿戴设备的电源的当前电量低于第一阈值时,生成状态控制指令。
可穿戴设备实时检测自身电源的当前电量,第一阈值可以为20%,例如,当检测的当前电量低于20%时,生成当前处于启动状态的功能的状态控制指令。当前处于启动状态的功能包括多个(如、定位、通话、SOS求救等)。需要说明的是,第一阈值为20%为举例说明,并非限制性说明。
步骤403、可穿戴设备根据状态控制指令,按照功能的优先级顺序,从当前处于启动状态的功能中选择优先级高于第一门限的功能作为当前应保留在启动状态的功能。
例如,请参阅表1进行理解,各个功能对应的优先级由高到低可以为:定位功能对应第一级别、通话功能对应第二级别、SOS求救功能对应第三级别、健康检测功能对应第四级别、待机模式功能对应第五级别。
第一门限可以为第二级别,可穿戴设备按照各功能的优先级顺序,从上述五个处于启动状态的功能中选择优先级高于第二级别的功能为定位功能,将定位功能作为当前应保留在启动状态的功能。
步骤404与图3对应的实施例中的步骤303相同,此处不赘述。
可选的,在上述图3对应的实施例的基础上,可穿戴设备检测当前电量,阈值可以阶梯式设置,例如,第一阈值为30%,第二阈值为20%,第一门限为第三级别,第二门限为第二级别,具体的,请结合下表2进行理解:
表2
功能 优先级 优先级门限 当前电量阈值
定位 1    
通话 2 第二门限 第二阈值为20%
SOS求救 3 第一门限 第一阈值为30%
健康监测 4    
待机模式 5    
当可穿戴设备检测到自身的电源的当前电量低于30%时,从当前处于启动状态的功能中选择优先级高于第三级别的功能作为当前应保留在启动状态的功能,那么该功能为定位功能和通话功能。
当可穿戴设备检测到自身的电源的当前电量低于20%时,从当前应保留在启动状态的功能(定位功能和通话功能)中选择优先级高于第二级别的状态项作为最终应保留在启动状态的功能,则应保留在启动状态的功能为定位功能。
需要说明的是,对于上述第一阈值、第二阈值、第一门限和第二门限只是举例说明,并非限制性说明,在实际应用中,对于阈值的阶梯式设置也可以为多个阶梯,此处不限定。
本发明实施例中,通过可穿戴设备检测自身的电源的当前电量,当检测到当前电量小于阈值时,可穿戴设备自动在启动项中保留优先级高的功能,而关闭除了保留的功能之外的启动状态的功能,有效的延长的应保留的功能的使用时间,更加智能的满足了不同用户的不同需求,极大的提升了用户体验。
以上对功能状态控制的方法进行了描述,下面对该方法应用的可穿戴设备进行具体描述。为了方便理解,本发明实施例中,按可穿戴设备获取功能的状态控制指令不同方式,下面通过实施例来具体描述。
请参阅图5,本发明提供了可穿戴设备500的一个实施例包括:
获取模块501,用于获取当前处于启动状态的功能的状态控制指令,当前处于启动状态的功能有多个。
可选的,获取模块501包括接收单元5011。
接收单元5011,用于接收移动终端发出的当前处于启动状态的功能的状态控制指令,状态控制指令用于指示应保留在启动状态的功能。
确定模块502,用于根据获取模块501获取的状态控制指令,确定应保留在启动状态的功能。
可选的,确定模块502,还用于根据状态控制指令,按照状态项的优先级顺序,从当前处于启动状态的功能中选择优先级高于第一门限的功能作为当前应保留在启动状态的功能。
处理模块503,用于关闭除确定模块502确定的应保留在启动状态的功能之外的其他当前处于启动状态功能。
请参阅图6,本发明提供了可穿戴设备600的另一个实施例包括:
获取模块601,用于获取当前处于启动状态的功能的状态控制指令,当前处于启动状态的功能有多个。
可选的,获取模块601包括检测单元6011和生成单元6012。
检测单元6011,用于检测到可穿戴设备的电源的当前电量。
生成单元6012,用于当检测单元6011检测的可穿戴设备的电源的当前电量低于第一阈值时,生成当前处于启动状态的功能的状态控制指令。
确定模块602,还用于根据状态控制指令,按照状态项的优先级顺序,从当前处于启动状态的功能中选择优先级高于第一门限的功能作为当前应保留在启动状态的功能。
可选的,确定模块602,还用于当检测单元6011检测到可穿戴设备的电源的当前电量低于第二阈值时,从当前应保留在启动状态的功能中选择优先级高于第二门限的功能作为最终应保留在启动状态的功能,第二阈值小于第一阈值,第一门限大于第二门限。
处理模块603,用于关闭除确定模块602确定的应保留在启动状态的功能之外的其他当前处于启动状态功能。
请参阅图7,本发明提供了可穿戴设备700的另一个实施例包括:
检测模块701,用于检测当前电量;
生成模块702,用于当检测模块701检测的当前电量不大于第一阈值时,可穿戴设备生成状态控制指令;
确定模块703,用于根据生成模块702所生成的状态控制指令,确定通信功能及定位功能和/或通话功能作为当前应保留在启动状态的功能;
处理模块704,用于关闭除确定模块703确定的应保留在启动状态的功能之外的其他当前处于启动状态功能。
进一步的,图5、图6和图7中的装置是以功能模块的形式来呈现。这里的“模块”可以指特定应用集成电路(application-specific integrated circuit,ASIC),电路,执行一个或多个软件或固件程序的处理器和存储器,集成逻辑电路,和/或其他可以提供上述功能的器件。在一个简单的实施例中,各模块可以通过图8的收发器、处理器和存储器来实现。
如8所示,为了便于说明,仅示出了与本发明实施例相关的部分,具体技术细节未揭示的,请参照本发明实施例方法部分。可穿戴设备以儿童智能手表为例进行说明:
下面结合图8对可儿童智能手表的各个构成部件进行具体的介绍:
如8所示,该智能手表800具体可以包括相互连接的表体和腕带,其中表体包括前壳(图8未示出)、触控面板801(又称触摸屏)、显示屏802、底壳(图8未示出),以及处理器803、微控制单元(Micro Control Unit,简称MCU)804、存储器805、麦克风(Microphone,简称MIC)806、全球定位系统(Global Positioning System,简称GPS)模块807、蓝牙(Bluetooth,简称BT)808、传感器809、无线保真(Wireless-Fidelity,简称WiFi)模块810、RF电路811、电源812、电源管理系统813等,尽管未示出,智能手表还可以包括天线、近距离无线通信技术(Near Field Communication,简称NFC)模块、扬声器、加速计、陀螺仪等。
下面分别对智能手表800的各功能组件进行介绍:
触摸屏801,也称为触控面板,可收集手表用户在其上的触摸操作(比如用户使用手指、触笔等任何适合的物体或附件在触控面板上或在触控面板附近的操作),并根据预先设定的程式驱动响应的连接装置。可选的,触控面板801可包括触摸检测装置和触摸控制器两个部分。其中,触摸检测装置检测用户的触摸方位,并检测触摸操作带来的信号,将信号传送给触摸控制器;触摸控制器从触摸检测装置上接收触摸信息,并将它转换成触点坐标,再送给处理器803,并能接收处理器803发送的命令并加以执行。此外,可以采用电阻式、电容式、红外线以及表面声波等多种类型实现触控面板。除了触摸 屏801之外,智能手表还可以包括其他输入设备,其他输入设备可以包括但不限于功能键(比如音量控制按键、开关按键等)。
显示屏802,可用于显示由用户输入的信息或提供给用户的信息以及手表的各种菜单。可选的,可以采用液晶显示器(Liquid Crystal Display,简称LCD)、有机发光二极管(Organic Light-Emitting Diode,简称OLED)等形式来配置显示屏802。进一步的,触控面板801可覆盖显示屏802,当触控面板801检测到在其上或附近的触摸操作后,传送给处理器803以确定触摸事件的类型,随后处理器803根据触摸事件的类型在显示屏802上提供相应的视觉输出。虽然在图2中,触控面板801与显示屏802是作为两个独立的部件来实现手表的输入和输出功能,但是在某些实施例中,可以将触控面板801与显示屏802集成而实现手表的输入和输出功能。
处理器803用于进行系统调度,控制显示屏、触摸屏,支持处理麦克风806、全球定位系统模块807,蓝牙808等。举例来说,处理器803可以是高通公司的APQ8026芯片。
微控制单元804,用于控制传感器,对传感器数据进行运算,与处理器803通信等功能。
存储器805,用于存储软件程序以及数据,处理器803通过运行存储在存储器的软件程序以及数据,执行手表的各种功能应用以及数据处理。存储器805主要包括存储程序区以及存储数据区,其中,存储程序区可存储操作系统、至少一个功能所需的应用程序(比如声音播放功能、图像播放功能等);存储数据区可以存储根据使用手表所创建的数据(比如音频数据、电话本等)。此外,存储器可以包括高速随机存取存储器,还可以包括非易失存储器,例如磁盘存储器件、闪存器件或其他易失性固态存储器件。
麦克风806,也称为传声器。麦克风806可以将收集的声音信号转换为电信号,由音频电路接收后转换为音频数据;音频电路也可以将音频数据转换为电信号,传输到扬声器,由扬声器转换为声音信号输出。
全球定位系统模块807,也称GPS模块,其主要功能是能够捕获到按一定卫星截止角所选择的待测卫星,并跟踪这些卫星的运行。当捕获到跟踪的卫星信号后,就可测量出接收天线至卫星的伪距离和距离的变化率,解调出卫星轨 道参数等数据。根据这些数据,GPS模块中的微处理计算机就可按定位解算方法进行定位计算,计算出用户所在地理位置的经纬度、高度、速度、时间等信息。
蓝牙(Bluetooth,简称BT)808,智能手表通过蓝牙可以与其他电子设备(如手机、平板电脑等)交互信息,并通过上述电子设备连接网络,与服务器连接,处理语音识别等功能。
传感器809可以是气压传感器、心率检测传感器、重力加速度传感器、光传感器、运动传感器或其他传感器。具体地,光传感器可包括环境光传感器及接近传感器。至于手表还可配置的陀螺仪、气压计、湿度计、温度计、红外线传感器等其他传感器,在此不再赘述。
无线保真(Wireless-Fidelity,简称WiFi)模块810,WiFi属于短距离无线传输技术,可穿戴设备通过WiFi模块810可以帮助用户收发电子邮件、浏览网页和访问流式媒体等,它为用户提供了无线的宽带互联网访问。
RF电路811,RF电路811可用于收发信息或通话过程中,信号的接收和发送,特别地,将基站的下行信息接收后,给处理器803处理;另外,将设计上行的数据发送给基站。通常,RF电路811包括但不限于天线、至少一个放大器、收发信机、耦合器、低噪声放大器(Low Noise Amplifier,LNA)、双工器等。此外,RF电路811还可以通过无线通信与网络和其他设备通信。上述无线通信可以使用任一通信标准或协议,包括但不限于全球移动通讯系统(Global System of Mobile communication,GSM)、通用分组无线服务(General Packet Radio Service,GPRS)、码分多址(Code Division Multiple Access,CDMA)等。
儿童智能手表还包括给各个部件供电的电源812(比如电池),优选的,电源812可以通过电源管理系统813与处理器803逻辑相连,从而通过电源管理系统813实现管理充电、放电、以及功耗管理等功能。
在本发明实施例中,该可穿戴设备所包括的处理器803还具有使可穿戴设备执行如下步骤:
检测当前电量;当该当前电量不大于第一阈值时,可穿戴设备生成状态控制指令;根据状态控制指令,确定通信功能及定位功能和/或通话功能作为当 前应保留在启动状态的功能;关闭除应保留在启动状态的功能之外的其他当前处于启动状态功能。
或者,该可穿戴设备所包括的处理器803还具有使可穿戴设备执行如图3对应的实施例中的步骤301至步骤303。
或者,该可穿戴设备所包括的处理器803还具有使可穿戴设备执行如图4对应的实施例中的步骤401至步骤404。
本领域普通技术人员应该了解本申请的所有或部分标的物可在结合硬件和/或固件的软件中实施。例如,本文描述的标的物可在一个或多个处理器执行的软件中实施。在一项示例性实施方式中,本文描述的标的物可使用存储有计算机可执行指令的非瞬时计算机可读介质实施,当计算机处理器执行该计算机可执行指令时,该指令控制计算机执行步骤。适于实施本文描述的标的物的示例计算机可读介质包括非瞬时计算机可读介质,例如磁盘存储器设备、芯片存储器设备、可编程逻辑设备和专用集成电路。另外,实施本文描述的标的物的计算机可读介质可位于单个设备或计算平台上,或可在多个设备或计算平台上分发。
最后应说明的是:以上实施例仅用以说明本发明的技术方案,而非对其限制;尽管参照前述实施例对本发明进行了详细的说明,本领域的普通技术人员应当理解:其依然可以对前述各实施例所记载的技术方案进行修改,或者对其中部分技术特征进行等同替换;而这些修改或者替换,并不使相应技术方案的本质脱离本发明各实施例技术方案的范围。

Claims (15)

  1. 一种功能状态控制的方法,其特征在于,所述方法包括:
    可穿戴设备获取当前处于启动状态的功能的状态控制指令,所述当前处于启动状态的功能有多个;
    所述可穿戴设备根据所述状态控制指令,确定应保留在启动状态的功能;
    所述可穿戴设备关闭除所述应保留在启动状态的功能之外的其他当前处于启动状态功能。
  2. 根据权利要求1所述的方法,其特征在于,所述可穿戴设备获取当前处于启动状态的功能的状态控制指令包括:
    所述可穿戴设备接收移动终端发出的当前处于启动状态的功能的状态控制指令,所述状态控制指令用于指示应保留在启动状态的功能。
  3. 根据权利要求1所述的方法,其特征在于,所述可穿戴设备根据所述状态控制指令,确定应保留在启动状态的功能包括:
    所述可穿戴设备根据所述状态控制指令,按照状态项的优先级顺序,从所述当前处于启动状态的功能中选择优先级高于第一门限的功能作为当前应保留在启动状态的功能。
  4. 根据权利要求1所述的方法,其特征在于,所述可穿戴设备获取当前处于启动状态的功能的状态控制指令包括:
    所述可穿戴设备检测到所述可穿戴设备的电源的当前电量低于第一阈值时,生成当前处于启动状态的功能的状态控制指令;
    所述可穿戴设备根据所述状态控制指令,确定应保留在启动状态的功能,包括:
    所述可穿戴设备根据所述状态控制指令,按照功能项的优先级顺序,从所述当前处于启动状态的功能中选择优先级高于第一门限的功能作为当前应保留在启动状态的功能。
  5. 根据权利要求4所述的方法,其特征在于,所述方法还包括:
    所述可穿戴设备检测到所述可穿戴设备的电源的当前电量低于第二阈值时,从所述当前应保留在启动状态的功能中选择优先级高于第二门限的功能作为最终应保留在启动状态的功能,所述第二阈值小于所述第一阈值,所述第一 门限大于所述第二门限。
  6. 根据权利要求1至5任一项所述的方法,其特征在于,所述应保留在启动状态的功能包括定位和通话中的至少一个。
  7. 一种功能状态控制的方法,其特征在于,包括:
    可穿戴设备检测当前电量;
    当所述当前电量不大于第一阈值时,所述可穿戴设备生成状态控制指令;
    所述可穿戴设备根据所述状态控制指令,确定通信功能及定位功能和/或通话功能作为当前应保留在启动状态的功能;
    所述可穿戴设备关闭除所述应保留在启动状态的功能之外的其他当前处于启动状态功能。
  8. 一种可穿戴设备,其特征在于,包括:
    获取模块,用于获取当前处于启动状态的功能的状态控制指令,所述当前处于启动状态的功能有多个;
    确定模块,用于根据所述获取模块获取的所述状态控制指令,确定应保留在启动状态的功能;
    处理模块,用于关闭除所述应保留在启动状态的功能之外的其他当前处于启动状态功能。
  9. 根据权利要求8所述的可穿戴设备,其特征在于,所述获取模块包括接收单元;
    所述接收单元,用于接收移动终端发出的当前处于启动状态的功能的状态控制指令,所述状态控制指令用于指示应保留在启动状态的功能。
  10. 根据权利要求8或9所述的可穿戴设备,其特征在于,
    所述确定模块,还用于根据所述状态控制指令,按照状态项的优先级顺序,从所述当前处于启动状态的功能中选择优先级高于第一门限的功能作为当前应保留在启动状态的功能。
  11. 根据权利要求8所述的可穿戴设备,其特征在于,所述获取模块包括检测单元和生成单元;
    所述检测单元,用于检测到所述可穿戴设备的电源的当前电量;
    所述生成单元,用于当所述检测单元检测的所述可穿戴设备的电源的当前 电量低于第一阈值时,生成当前处于启动状态的功能的状态控制指令;
    所述确定模块,还用于根据所述状态控制指令,按照状态项的优先级顺序,从所述当前处于启动状态的功能中选择优先级高于第一门限的功能作为当前应保留在启动状态的功能。
  12. 根据权利要求11所述的可穿戴设备,其特征在于,
    所述确定模块,还用于当所述检测单元检测到所述可穿戴设备的电源的当前电量低于第二阈值时,从所述当前应保留在启动状态的功能中选择优先级高于第二门限的功能作为最终应保留在启动状态的功能,所述第二阈值小于所述第一阈值,所述第一门限大于所述第二门限。
  13. 一种可穿戴设备,其特征在于,包括:
    检测模块,用于检测当前电量;
    生成模块,用于当所述检测模块检测的当前电量不大于第一阈值时,所述可穿戴设备生成状态控制指令;
    确定模块,用于根据生成模块所生成的所述状态控制指令,确定通信功能及定位功能和/或通话功能作为当前应保留在启动状态的功能;
    处理模块,用于关闭除所述确定模块确定的应保留在启动状态的功能之外的其他当前处于启动状态功能。
  14. 一种可穿戴设备,其特征在于,包括:
    输出/输入设备,收发器、处理器、存储器和总线;
    所述输出/输入设备,收发器、处理器和存储器通过所述总线连接;
    所述存储器,用于存储计算机可执行程序代码;
    其中所述程序代码包括指令,当所述处理器执行所述指令时,所述指令使所述可穿戴设备执行如权利要求1至6任一项所述的方法。
  15. 一种可穿戴设备,其特征在于,包括:
    输出/输入设备,收发器、处理器、存储器和总线;
    所述输出/输入设备,收发器、处理器和存储器通过所述总线连接;
    所述存储器,用于存储计算机可执行程序代码;
    其中所述程序代码包括指令,当所述处理器执行所述指令时,所述指令使所述可穿戴设备执行如权利要求7所述的方法。
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