WO2021120328A1 - 一种颈戴式耳机及开机方法、系统、设备、计算机介质 - Google Patents

一种颈戴式耳机及开机方法、系统、设备、计算机介质 Download PDF

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Publication number
WO2021120328A1
WO2021120328A1 PCT/CN2019/130299 CN2019130299W WO2021120328A1 WO 2021120328 A1 WO2021120328 A1 WO 2021120328A1 CN 2019130299 W CN2019130299 W CN 2019130299W WO 2021120328 A1 WO2021120328 A1 WO 2021120328A1
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WO
WIPO (PCT)
Prior art keywords
neck
state
headset
wearing
worn
Prior art date
Application number
PCT/CN2019/130299
Other languages
English (en)
French (fr)
Inventor
柳旭阳
姚增凯
宋坤
张亚雄
Original Assignee
歌尔股份有限公司
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by 歌尔股份有限公司 filed Critical 歌尔股份有限公司
Priority to US17/624,015 priority Critical patent/US11849272B2/en
Publication of WO2021120328A1 publication Critical patent/WO2021120328A1/zh

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    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F1/00Details not covered by groups G06F3/00 - G06F13/00 and G06F21/00
    • G06F1/26Power supply means, e.g. regulation thereof
    • G06F1/32Means for saving power
    • G06F1/3203Power management, i.e. event-based initiation of a power-saving mode
    • G06F1/3206Monitoring of events, devices or parameters that trigger a change in power modality
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04RLOUDSPEAKERS, MICROPHONES, GRAMOPHONE PICK-UPS OR LIKE ACOUSTIC ELECTROMECHANICAL TRANSDUCERS; DEAF-AID SETS; PUBLIC ADDRESS SYSTEMS
    • H04R1/00Details of transducers, loudspeakers or microphones
    • H04R1/10Earpieces; Attachments therefor ; Earphones; Monophonic headphones
    • H04R1/1041Mechanical or electronic switches, or control elements
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F1/00Details not covered by groups G06F3/00 - G06F13/00 and G06F21/00
    • G06F1/26Power supply means, e.g. regulation thereof
    • G06F1/32Means for saving power
    • G06F1/3203Power management, i.e. event-based initiation of a power-saving mode
    • G06F1/3234Power saving characterised by the action undertaken
    • G06F1/325Power saving in peripheral device
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F1/00Details not covered by groups G06F3/00 - G06F13/00 and G06F21/00
    • G06F1/26Power supply means, e.g. regulation thereof
    • G06F1/32Means for saving power
    • G06F1/3203Power management, i.e. event-based initiation of a power-saving mode
    • G06F1/3234Power saving characterised by the action undertaken
    • G06F1/3293Power saving characterised by the action undertaken by switching to a less power-consuming processor, e.g. sub-CPU
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04RLOUDSPEAKERS, MICROPHONES, GRAMOPHONE PICK-UPS OR LIKE ACOUSTIC ELECTROMECHANICAL TRANSDUCERS; DEAF-AID SETS; PUBLIC ADDRESS SYSTEMS
    • H04R1/00Details of transducers, loudspeakers or microphones
    • H04R1/10Earpieces; Attachments therefor ; Earphones; Monophonic headphones
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F1/00Details not covered by groups G06F3/00 - G06F13/00 and G06F21/00
    • G06F1/26Power supply means, e.g. regulation thereof
    • G06F1/32Means for saving power
    • G06F1/3203Power management, i.e. event-based initiation of a power-saving mode
    • G06F1/3234Power saving characterised by the action undertaken
    • G06F1/3287Power saving characterised by the action undertaken by switching off individual functional units in the computer system
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04RLOUDSPEAKERS, MICROPHONES, GRAMOPHONE PICK-UPS OR LIKE ACOUSTIC ELECTROMECHANICAL TRANSDUCERS; DEAF-AID SETS; PUBLIC ADDRESS SYSTEMS
    • H04R1/00Details of transducers, loudspeakers or microphones
    • H04R1/10Earpieces; Attachments therefor ; Earphones; Monophonic headphones
    • H04R1/1016Earpieces of the intra-aural type
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04RLOUDSPEAKERS, MICROPHONES, GRAMOPHONE PICK-UPS OR LIKE ACOUSTIC ELECTROMECHANICAL TRANSDUCERS; DEAF-AID SETS; PUBLIC ADDRESS SYSTEMS
    • H04R1/00Details of transducers, loudspeakers or microphones
    • H04R1/10Earpieces; Attachments therefor ; Earphones; Monophonic headphones
    • H04R1/105Earpiece supports, e.g. ear hooks
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04RLOUDSPEAKERS, MICROPHONES, GRAMOPHONE PICK-UPS OR LIKE ACOUSTIC ELECTROMECHANICAL TRANSDUCERS; DEAF-AID SETS; PUBLIC ADDRESS SYSTEMS
    • H04R2460/00Details of hearing devices, i.e. of ear- or headphones covered by H04R1/10 or H04R5/033 but not provided for in any of their subgroups, or of hearing aids covered by H04R25/00 but not provided for in any of its subgroups
    • H04R2460/03Aspects of the reduction of energy consumption in hearing devices

Definitions

  • This application relates to the field of earphone technology, and more specifically, to a neck-worn earphone and a startup method, system, equipment, and computer medium.
  • the user In the process of using the neck-worn headset, the user needs to switch the neck-worn headset on and off, and it takes time to turn on and off the neck-worn headset, which makes the user need to wait for the neck-worn headset to switch on and off. In addition, the user needs to switch the neck-worn headset after using the neck-worn headset. After the headset, you may forget to turn off the neck-mounted headset, which will consume the power of the neck-mounted headset for nothing, and the neck-mounted headset may occupy the audio channel of the user equipment, causing difficulties in the use of the user equipment.
  • This application is to provide a neck-worn headset, which can solve the technical problem of how to improve the user's experience of turning on and off the neck-worn headset to a certain extent.
  • This application also provides a method, system, device and computer-readable storage medium for turning on and off the neck-mounted headset.
  • a neck-worn earphone comprising a neckband, and a first earphone body and a second earphone body respectively connected to both ends of the neckband, wherein the neck-worn earphone further includes a detector and is connected to the detector Processor
  • the detector is used to collect state information of the neck-mounted headset
  • the processor is configured to determine whether the neck-mounted headset is in a wearing state based on the state information, if so, control the neck-mounted headset to be in an awake state, and if not, control the neck-mounted headset to be in a low-power state Consumption standby state.
  • the detector includes a first wearing detection sensor for detecting whether the first earphone body is separated from the second earphone body;
  • the first wearing detection sensor includes a first magnet installed on the first earphone body, a second magnet installed on the second earphone body, and the first earphone body or the second earphone Hall element on the main body.
  • the detector further includes a second wearing detection sensor for detecting whether the neck-mounted headset is hung on the neck of a person, and the second wearing detection sensor includes an infrared ray mounted on the neck-mounted headset. sensor.
  • the neckband of the neck-wearing headset is equipped with a sensor goggles on the side facing the neck, and the infrared sensor is installed between the neckband and the sensor goggles.
  • the status information includes:
  • the first distance between the first earphone body and the second earphone body detected by the first wearing detection sensor The first distance between the first earphone body and the second earphone body detected by the first wearing detection sensor
  • the second distance between the neckband and the human neck detected by the second wearing detection sensor is the second distance between the neckband and the human neck detected by the second wearing detection sensor.
  • the processor is configured to determine whether the first distance is less than a first distance threshold written in advance by the processor, and if so, determine that the first earphone main body and the second earphone main body are in a suction state If not, it is determined that the first earphone body and the second earphone body are in a separated state.
  • the processor determines whether the second distance is less than a second distance threshold written in advance by the processor, and if it is, it is determined that the neckband is hung on the neck of the person; if not, it is determined that the neck The strap is not hung on the person's neck.
  • the processor judging whether the neck-mounted headset is in a wearing state based on the state information includes:
  • the processor determines whether the second distance is less than the second distance threshold written in advance by the processor, if yes, it is determined that the neck-mounted headset is in the wearing state, and if not, it is determined that the neck-mounted headset is in the wearing state. In a non-wearing state.
  • the processor judging whether the neck-mounted headset is in a wearing state based on the state information includes:
  • the processor determines whether the first distance is less than the first distance threshold written in advance by the processor; if yes, it is determined that the neck-mounted headset is in a non-wearing state; if not, it is determined that the neck-mounted headset is in a non-wearing state. In the wearing state.
  • the neck-mounted headset only activates the detector and the processor.
  • a method for turning on a neck-worn earphone, applied to the neck-worn earphone includes;
  • neck-mounted headset If the neck-mounted headset is in the wearing state, controlling the neck-mounted headset to be in the awake state;
  • the neck-mounted headset is controlled to be in a low power consumption standby state.
  • the wake-up state includes a work-ready state and a full-function start state
  • the controlling the neck-mounted headset to be in an awakening state includes:
  • the senor of the neck-worn headset in the working preparation state, the sensor of the neck-worn headset is in a standby preparation state; in the full-function activation state, all components of the neck-worn headset are in a working state.
  • the judging whether the activation condition of the full-function activation state is satisfied includes:
  • the first judgment module is used to judge whether the neck-mounted headset is in a wearing state
  • the first control module is used to control the neck-worn headset to be in the wake-up state when the neck-worn headset is in the wearing state;
  • the second control module is used to control the neck-mounted headset to be in a low-power standby state when the neck-mounted headset is in a non-wearing state.
  • a device for turning on neck-worn earphones, applied to the neck-worn earphones includes:
  • Memory used to store computer programs
  • the processor is used to implement the steps of any one of the above-mentioned methods for turning on the neck-mounted headset when the computer program is executed.
  • a computer-readable storage medium applied to a neck-wearing headset stores a computer program.
  • the computer program When executed by a processor, it implements any of the above-mentioned methods for turning on the neck-wearing headset. step.
  • a neck-wearing earphone provided by the present application includes: a neckband, a first earphone body and a second earphone body respectively connected to both ends of the neckband, a detector, and a processor connected to the detector; the detector is used to collect the neck The state information of the headset; the processor is used to determine whether the neck-worn headset is in the wearing state based on the state information, if it is, the neck-worn headset is controlled to be in the awake state, if not, the neck-worn headset is controlled to be in the low-power standby state .
  • the detector can collect the state information of the neck-worn headset; the processor can judge whether the neck-worn headset is in the wearing state according to the state information collected by the detector, and automatically control according to the judgment result
  • the neck-mounted headset is in a low-power standby state or in a wake-up state, so that the working state of the neck-mounted headset is switched without the need for the user to switch the neck-mounted headset, and the automatic switch of the neck-mounted headset is realized.
  • the user experience of turning on and off the neck wearing headset is improved.
  • the method, system, device, and computer-readable storage medium for turning on the neck-wearing headset provided in this application also solve the corresponding technical problems.
  • FIG. 1 is a schematic diagram of a first structure of a neck-worn earphone provided by an embodiment of the application
  • FIG. 2 is a schematic diagram of a second structure of a neck-worn earphone provided by an embodiment of the application;
  • Figure 3 is a gesture definition diagram of the touchpad
  • FIG. 4 is a first flowchart of a method for turning on a neck-worn headset according to an embodiment of the application
  • FIG. 5 is a second flowchart of a method for turning on a neck-worn headset according to an embodiment of the application
  • FIG. 6 is a schematic structural diagram of a neck-mounted headset booting system provided by an embodiment of the application.
  • FIG. 7 is a schematic structural diagram of a device for turning on a neck-worn headset according to an embodiment of the application.
  • FIG. 8 is a schematic diagram of another structure of a device for turning on a neck-worn headset according to an embodiment of the application.
  • FIG. 1 is a first structural diagram of a neck-worn earphone provided by an embodiment of the application.
  • the neck-worn headset provided by the embodiment of the present application may include: a detector 111 and a processor 112 connected to the detector 111;
  • the detector 111 is used to collect the status information of the neck-worn earphone
  • the processor 112 is configured to determine whether the neck-mounted headset is in the wearing state based on the state information, if it is, control the neck-mounted headset to be in an awake state, and if not, control the neck-mounted headset to be in a low-power standby state.
  • the installation position of the detector and the processor in the neck-wearing headset can be flexibly determined according to actual needs, and the type of detector can also be flexibly determined according to actual needs.
  • the low-power standby state is used to replace the off state of the neck-mounted headset
  • the wake-up state is used to replace the power-on state of the neck-mounted headset, so that the neck-mounted headset does not require user operations.
  • the automatic switching of the on-off state can be realized, so that the user can no longer pay attention to the on-off process of the neck-mounted headset, and improve the user's experience of switching on and off the neck-mounted headset.
  • the neck-wearing earphone provided by the present application also includes the same components as the existing earphones, such as a neckband, a first earphone body and a second earphone body connected to both ends of the neckband, and so on.
  • a neck-mounted headset provided by the present application includes: a detector and a processor connected to the detector; the detector is used to collect state information of the neck-worn headset; the processor is used to determine whether the neck-worn headset is being worn based on the state information Status, if yes, control the neck-mounted headset to be in a wake-up state, if not, control the neck-mounted headset to be in a low-power standby state.
  • the detector can collect the state information of the neck-worn headset; the processor can judge whether the neck-worn headset is in the wearing state according to the state information collected by the detector, and automatically control according to the judgment result
  • the neck-mounted headset is in a low-power standby state or in a wake-up state, so that the working state of the neck-mounted headset is switched without the need for the user to switch the neck-mounted headset, and the automatic switch of the neck-mounted headset is realized.
  • the user experience of turning on and off the neck wearing headset is improved.
  • neck-worn earphones when the neck-worn earphone is in the wearing state, the first earphone body of the neck-worn earphone is separated from the second earphone body, and the neckband is hung on the neck of the human body.
  • the detector in the neck-worn earphone provided in this application may include a detector for detecting A first wearing detection sensor for detecting whether the first earphone body is separated from the second earphone body, and a second wearing detecting sensor for detecting whether the neck-mounted earphone is hung on the neck of a person.
  • the first wearing detection sensor and the second wearing detection sensor can perform corresponding state judgments by collecting distance information.
  • FIG. 2 is a schematic diagram of a second structure of a neck-worn earphone provided by an embodiment of the application.
  • the Hall element is mounted on the second earphone body.
  • the first wearing detection sensor may be a newly added device in the neck-worn headset. For example, after the user wears the neck-worn headset, the left and right earphones of the neck-worn headset will be separated.
  • the first wearing detection sensor 111 can be set according to the state information after the neck-worn earphone is worn: A first magnet 13 of the earphone body 3, a second magnet 12 installed on the second earphone body 2, and a Hall element 11 installed on the first earphone body 3 or the second earphone body 2; the second wearing detection sensor may include installation The distance sensor 5 on the neck-wearing headset, such as an infrared sensor, etc.
  • the Hall element 11 is used to generate a first distance that characterizes whether the first earphone body is separated from the second earphone body through the attraction between the first magnet 13 and the second magnet 12;
  • the working principle of the Hall element is as follows: When the headset is in the wearing state, the Hall components are only affected by the magnetic field of a single magnet, and the magnetic field state is A (including intensity and direction) (where the external magnetic field is close to none); when the neck-wearing headset is in the non-wearing state, The magnets of the first earphone body and the second earphone body are attracted by the magnets. At this time, the Hall component receives the action of the magnet's magnetic field after the attraction. At this time, the state of the magnetic field is B (including intensity and direction).
  • the auxiliary definition of the state can generate first distance information that characterizes whether the first earphone body is separated from the second earphone body.
  • the distance sensor 5 is used to generate the second distance between the neck wear of the neck-wearing headset and the human neck; among them, the infrared sensor is based on the emission of infrared light, and determines the wireless headset and the person according to the intensity of the reflected infrared light after encountering obstacles. The distance from the neck.
  • the processor 112 determines whether the first earphone body is separated from the second earphone body, it can determine whether the first distance is less than the first distance threshold written in advance by the processor, and if so, it determines whether the first earphone body and the second earphone body are separated.
  • the second earphone main body is in a sucked-in state; if not, it is determined that the first earphone main body and the second earphone main body are in a separated state.
  • the processor when judging whether the neckband is hung on a person's neck, it can be determined whether the second distance is less than the second distance threshold written in advance by the processor, if yes, then it is determined that the neckband is hung on the person's neck; if not, then it is determined The neckband is not hung on the person's neck.
  • the processor 112 is configured to determine whether the neck-mounted headset is in a wearing state based on the state information, which may specifically be:
  • the processor determines whether the neck-mounted headset is in the wearing state based on the state information, it can also determine whether the second distance is less than the second distance threshold written in advance by the processor, and if not, it is determined that the neck-mounted headset is not in the wearing state. Status; if yes, determine whether the first distance is less than the first distance threshold written in advance by the processor; if yes, determine that the neck-mounted headset is in a non-wearing state; if not, determine that the neck-mounted headset is in a wearing state.
  • the Hall element can detect Corresponding information, the processor determines that the left and right earphones are in the adsorption state according to the information detected by the Hall element, and determines that the neck-worn earphone is in the unworn state. Correspondingly, when the left and right earphones are in the separated state, the Hall element cannot collect corresponding information.
  • the processor can determine that the left and right earphones are in a separated state according to the detection result of the Hall element; in this process, since the distance sensor is used to generate the second distance between the neckband of the neck-worn earphone and the human neck, so , The distance sensor must be installed in a position that can sense the human neck, such as on the inner wall of a neck-worn headset. At this time, the distance sensor detects the distance relative to the user’s neck.
  • the distance sensor collects After the information, the processor can determine that the neck-worn headset is hung on the user; because the neck-worn headset needs to be hung on the user when the neck-worn headset is in the wearing state, and the first headset body and the second headset body are in a separate state, Therefore, when the distance sensor collects information and the Hall element also collects information, the processor can determine that the neck-mounted headset is not in the wearing state, and when the distance sensor collects information but the Hall element does not collect information, it can It is determined that the neck-mounted headset is in the wearing state.
  • the signal transmitted by the Hall element is 1, it means that the first earphone body and the second earphone body are in a separate state, and when the signal transmitted by the Hall element is 0, it means that the first earphone body and the second earphone body are in a separate state.
  • Adsorption state when the signal transmitted by the distance sensor is 1, it means that the neck-mounted headset is hung on the user, and when the signal transmitted by the distance sensor is 0, it means that the neck-mounted headset is not hung on the user.
  • the signal transmitted by the Er element is 1 and the signal transmitted by the distance sensor is 1, it is determined that the neck-mounted headset is in the wearing state, and in other cases, it is determined that the neck-mounted headset is in the unworn state.
  • the processor can determine that the neckband is wearing When the first wearing detection sensor collects the information that the first earphone body is separated from the second earphone body, and the second wearing detection sensor collects the information that the neckband is hung on the person's neck, the processor can determine that the neckband is wearing When the first wearing detection sensor collects the information that the first earphone body is separated from the second earphone body, and the second wearing detection sensor collects that the neckband is not hung on the neck of the person When receiving information, the processor can determine that the neck-worn earphone is in a non-wearing state, and control the neck-worn earphone to be in a low-power standby state.
  • the user may separate the first earphone body from the second earphone body, but does not wear it Neck-wearing earphones; when the first wearing detection sensor collects the information that the first earphone body is not separated from the second earphone body, and the second wearing detection sensor collects the information that the neckband is hung on the person’s neck, the processor can determine When the neck-worn earphone is in the non-wearing state, the neck-worn earphone is controlled to be in a low-power standby state.
  • the user may hang the neckband on his neck, but does not insert the first earphone body and the second earphone body into the ears ;
  • the processor can determine that the neckband is worn
  • the headset is in a non-wearing state
  • the neck-mounted headset is controlled to be in a low-power standby state. At this time, the user does not perform any operation on the neck-mounted headset.
  • the first magnet in order to facilitate fixing of the magnet, can be fixed to the first earphone main body by glue or the earplug main board; the second magnet can be fixed to the second earphone main body by glue or the earplug main board.
  • the infrared sensor can be pasted on the sensor goggles 7 through the motherboard, and the sensor goggles 7 are fixed on the neck-wearing type with instant glue. Wear the earphone on the neck 1; the infrared sensor can be connected to the processor through the IR sensor connection line 10.
  • a touch pad 4 may be installed on the neck-mounted headset.
  • the buttons of the neck-worn headset are the touch buttons on the touch panel. That is to say, in this application, the virtual buttons on the touchpad can be used to replace the physical buttons on the existing neck-worn headset.
  • one touchpad can be installed on the left and right parts of the neck-worn headset of the neck-worn headset, and control The two touchpads realize the functions of the play side and the function side respectively.
  • touch gesture definitions of the two touchpads can be seen in Figure 3; specifically, on the play side, you can set double-click any position to realize the play or pause function, slide up or Sliding down is to realize the function of adding and subtracting volume; on the function side, you can set long press any position to realize the Bluetooth pairing function, and slide up or down to realize the song switching function.
  • the USB interface 6 of the neck-mounted headset can be installed on one touch panel, and the MIC hole 8 of the neck-mounted headset can be installed on another touch panel. It should be pointed out that the description of the common devices of the neck-worn earphone and the existing neck-worn earphone in this application, such as the battery 9, can be referred to the prior art, and will not be repeated here.
  • FIG. 4 is a first flowchart of a method for turning on a neck-worn headset according to an embodiment of the application.
  • the method for turning on a neck-worn headset provided by an embodiment of the present application, which is applied to a neck-worn headset, may include the following steps:
  • Step S101 Determine whether the neck-worn earphone is in the wearing state; if the neck-worn earphone is in the wearing state, perform step S102: control the neck-worn earphone to be in the awake state; if the neck-worn earphone is in the non-worn state, perform step S103 : Control the neck-worn headset to be in a low-power standby state.
  • the neck-worn headset can determine whether it is in the wearing state, and can control whether it is in the wake-up state or in the low-power standby state according to the corresponding judgment result, so as to realize In order to automatically switch to its own state.
  • controlling the neck-worn headset to be in the awake state simulates the power-on process of the existing neck-worn headset, and controlling itself to be in the low-power standby state simulates the shutdown process of the existing neck-worn headset, thereby realizing
  • the automatic switch-on process of the neck-mounted headset is improved, so that the user no longer pays attention to the switch-on process of the neck-mounted headset, and the user experience of turning on and off the neck-mounted headset is improved.
  • the left and right earphones of the neck-mounted headset will be in a separated state, that is, there will be a distance between the left and right earphones, and the neck wear
  • the distance between the headset and the user is relatively short, so when judging whether the neck-worn headset is in the wearing state, it can be judged whether the distance between the neck-worn headset and the user is less than the first preset distance; if the neck-worn headset is between the user and the user If the distance between the left and right earphones of the neck-wearing headset is greater than the second preset distance, it is determined whether the distance between the left and right earphones of the neck-wearing headset is greater than the second preset distance, then it is determined that the neck The headset is in the wearing state; if the distance between the left and right earphones of the neck-worn headset is less than or equal to the second preset distance, the neck-worn headset is
  • the determination of the distance may require the installation of corresponding devices on the neck-mounted headset, such as the Hall element, distance sensor, etc. in the above-mentioned embodiments, that is, the structure of the neck-mounted headset may need to be improved, and the improvement method can be Determined according to actual needs.
  • the method for turning on neck-worn earphones provided by the embodiments of the present application, it is possible to improve only the processing flow of neck-worn earphones under the condition that the structure of the existing neck-worn earphones remains unchanged, so as to realize the maintenance of the wearing state.
  • Automatic determination for example, when judging whether the neck-worn headset is in the wearing state, it can be judged whether the voice instruction that characterizes the wearing is received through the microphone of the neck-worn headset; if it is, it is determined that the neck-worn headset is in the wearing state; it is judged whether through the microphone Receive a voice command indicating that the headset is not worn, and if it is, it is determined that the neck-worn headset is in a non-worn state. That is, the user can change the wearing state of the neck-worn headset through voice. At this time, when the neck-worn headset is in a low-power standby state, the microphone of the neck-worn headset needs to be in a standby working state.
  • the touch command that characterizes the wearing is received through the touch panel of the neck-worn headset. If so, it is determined that the neck-worn headset is in the wearing state; A touch command indicating that the headset is not worn is received through the touch panel, and if so, it is determined that the neck-mounted headset is in the non-worn state. That is, the user can change the wearing state of the neck-mounted headset by touching. At this time, when the neck-mounted headset is in a low-power standby state, the touch panel of the neck-mounted headset needs to be in a standby working state.
  • the neck-worn headset in order to save the power of the neck-worn headset as much as possible when the neck-worn headset is in working condition, it can also be judged whether the period of time when the neck-worn headset has not acquired Bluetooth data is longer than the preset time.
  • the neck-mounted headset switches to a low-power standby state, etc.
  • FIG. 5 is a second flowchart of a method for turning on a neck-worn headset according to an embodiment of the application.
  • the method for turning on a neck-worn headset provided by an embodiment of the present application, which is applied to a neck-worn headset, may include the following steps:
  • Step S201 Determine whether the neck-worn headset is in the wearing state; if the neck-worn headset is in the wearing state, step S202 is executed; if the neck-worn headset is in the non-worn state, step S205 is executed.
  • Step S202 control the neck-mounted headset to be in a working preparation state, and execute step S203.
  • Step S203 It is judged whether the opening condition of the full-function activation state is met, and if so, step S204 is executed.
  • Step S204 Control the neck-worn headset to be in a full-function start state; wherein, in the work preparation state, the sensor of the neck-worn headset is in a standby state; in the full-function start state, all the devices of the neck-worn headset are in operation status.
  • the working state can be set to the work-ready state and the full-function start state; accordingly, the neck-worn headset is controlled
  • the neck-mounted headset can be controlled to be in the work-ready state; to determine whether the opening conditions for the full-function start state are met; if so, the neck-worn headset is controlled to be in the full-function start state; among them, in the work preparation state, the neck
  • the sensors of the headset are in a standby state, such as a touch panel, a barometer, a gravity sensor, etc.; in the full-function startup state, all the components of the neck headset are in a working state.
  • Step S205 Control the neck-worn earphone to be in a low power consumption standby state.
  • the difference between the working preparation state and the full-function startup state is whether the neck-worn headset needs to perform functions, so when judging whether the full-function startup state is enabled, it can be judged whether a function command is received; if so, then It is determined that the opening condition of the full-function opening state is satisfied; if not, it is determined that the opening condition of the full-function opening state is not satisfied.
  • FIG. 6 is a schematic structural diagram of a neck-mounted headset booting system provided by an embodiment of the application.
  • a neck-mounted headset power-on system provided by an embodiment of the present application, which is applied to a neck-mounted headset may include:
  • the first judgment module 101 is used for judging whether the neck-mounted headset is in a wearing state
  • the first control module 102 is used to control the neck-worn headset to be in the wake-up state when the neck-worn headset is in the wearing state;
  • the second control module 103 is used for controlling the neck-mounted headset to be in a low-power standby state when the neck-mounted headset is in a non-wearing state.
  • FIG. 7 is a schematic structural diagram of a device for turning on a neck-mounted headset according to an embodiment of the application.
  • the device for turning on a neck-worn headset provided by an embodiment of the present application includes a memory 201 and a processor 202.
  • the memory 201 stores a computer program.
  • the processor 202 executes the computer program, the neck-worn headset described in any of the above embodiments is implemented. Steps of how to turn on the headset.
  • another neck-mounted headset power-on device may further include: an input port 203 connected to the processor 202 for transmitting commands input from the outside to the processor 202; and the processor
  • the display unit 204 connected to 202 is used to display the processing result of the processor 202 to the outside;
  • the communication module 205 connected to the processor 202 is used to realize the communication between the neck-mounted headset booting device and the outside.
  • the display unit 204 may be a display panel, a laser scanning display, etc.; the communication method adopted by the communication module 205 includes, but is not limited to, mobile high-definition link technology (HML), universal serial bus (USB), high-definition multimedia interface (HDMI), Wireless connection: wireless fidelity technology (WiFi), Bluetooth communication technology, low-power Bluetooth communication technology, communication technology based on IEEE802.11s.
  • HML mobile high-definition link technology
  • USB universal serial bus
  • HDMI high-definition multimedia interface
  • WiFi wireless fidelity technology
  • Bluetooth communication technology Low-power Bluetooth communication technology
  • An embodiment of the present application provides a computer-readable storage medium, in which a computer program is stored, and when the computer program is executed by a processor, the steps of the method for turning on the neck-worn headset as described in any of the above embodiments are implemented.
  • RAM random access memory
  • ROM read-only memory
  • EEPROM electrically programmable ROM
  • EEPly erasable programmable ROM registers
  • hard disks hard disks
  • removable disks or CD-ROMs , Or any other form of storage medium known in the technical field.

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  • Signal Processing (AREA)
  • Acoustics & Sound (AREA)
  • General Engineering & Computer Science (AREA)
  • General Physics & Mathematics (AREA)
  • Health & Medical Sciences (AREA)
  • Otolaryngology (AREA)
  • Computer Hardware Design (AREA)
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  • Telephone Function (AREA)
  • Headphones And Earphones (AREA)

Abstract

本申请公开了一种颈戴式耳机及开机方法、系统、设备、计算机介质,包括:检测器、与检测器连接的处理器;检测器用于采集颈戴式耳机的状态信息;处理器用于基于状态信息判断颈戴式耳机是否处于佩戴状态,若是,则控制颈戴式耳机处于唤醒状态,若否,则控制颈戴式耳机处于低功耗待机状态。本申请提供的颈戴式耳机中,检测器采集颈戴式耳机的状态信息;处理器根据检测器采集的状态信息判断颈戴式耳机是否处于佩戴状态,并根据判断结果自动控制颈戴式耳机处于低功耗待机状态还是唤醒状态,从而在不需要用户开关机颈戴式耳机的前提下,完成颈戴式耳机工作状态的切换,实现了颈戴式耳机的自动开关机,提高了用户应用颈戴式耳机的开关机体验性。

Description

一种颈戴式耳机及开机方法、系统、设备、计算机介质
本申请要求于2019年12月20日提交中国专利局、申请号为201911328440.9、发明名称为“一种颈戴式耳机及开机方法、系统、设备、计算机介质”的中国专利申请的优先权,其全部内容通过引用结合在本申请中。
技术领域
本申请涉及耳机技术领域,更具体地说,涉及一种颈戴式耳机及开机方法、系统、设备、计算机介质。
背景技术
用户在应用颈戴式耳机的过程中,需要对颈戴式耳机进行开关机操作,而开关机均需要消耗时间,使得用户需要等待颈戴式耳机开关机,此外,用户在使用完颈戴式耳机后,可能忘记关机颈戴式耳机,使得颈戴式耳机的电量平白消耗,且颈戴式耳机可能占用用户设备的声道,给用户设备的使用带来困难。
综上所述,如何提高用户应用颈戴式耳机的开关机体验性是目前本领域技术人员亟待解决的问题。
发明内容
本申请的目的是提供一种颈戴式耳机,其能在一定程度上解决如何提高用户应用颈戴式耳机的开关机体验性的技术问题。本申请还提供了一种颈戴式耳机开关机方法、系统、设备及计算机可读存储介质。
为了实现上述目的,本申请提供如下技术方案:
一种颈戴式耳机,包括颈带以及分别与颈带两端连接的第一耳机主体和第二耳机主体,其特征在于,所述颈戴式耳机还包括检测器以及与所述检测器连接的处理器;
所述检测器用于采集所述颈戴式耳机的状态信息;
所述处理器用于基于所述状态信息判断所述颈戴式耳机是否处于佩戴状 态,若是,则控制所述颈戴式耳机处于唤醒状态,若否,则控制所述颈戴式耳机处于低功耗待机状态。
优选的,所述检测器包括用于检测所述第一耳机主体与所述第二耳机主体是否分离的第一佩戴检测传感器;
所述第一佩戴检测传感器包括安装在所述第一耳机主体上的第一磁铁、安装在所述第二耳机主体上的第二磁铁以及安装在所述第一耳机主体或所述第二耳机主体上的霍尔元件。
优选的,所述检测器还包括用于检测所述颈戴式耳机是否挂在人颈部的第二佩戴检测传感器,所述第二佩戴检测传感器包括安装在所述颈戴式耳机上的红外传感器。
优选的,所述颈戴式耳机的所述颈带于朝向颈部的一侧安装有传感器护镜,所述红外传感器安装于所述颈带与所述传感器护镜之间。
优选的,所述状态信息包括:
所述第一佩戴检测传感器检测的所述第一耳机主体和所述第二耳机主体的第一距离;以及
所述第二佩戴检测传感器检测的所述颈带与人颈部的第二距离。
优选的,所述处理器用于判断所述第一距离是否小于所述处理器预先写入的第一距离阈值,若是,则判定所述第一耳机主体和所述第二耳机主体处于吸合状态;若否,则判定所述第一耳机主体和所述第二耳机主体处于分离状态。
优选的,所述处理器判断所述第二距离是否小于所述处理器预先写入的第二距离阈值,若是,则判定所述颈带挂在人颈部;若否,则判定所述颈带未挂在人颈部。
优选的,所述处理器基于所述状态信息判断所述颈戴式耳机是否处于佩戴状态,包括:
判断所述第一距离是否小于所述处理器预先写入的第一距离阈值,
若是,则判定所述颈戴式耳机处于非佩戴状态;
若否,则判断所述第二距离是否小于所述处理器预先写入的第二距离阈值,若是,则判定所述颈戴式耳机处于佩戴状态,若否,则判定所述颈戴式耳机处于非佩戴状态。
优选的,所述处理器基于所述状态信息判断所述颈戴式耳机是否处于佩戴状态,包括:
判断所述第二距离是否小于所述处理器预先写入的第二距离阈值,若否,则判定所述颈戴式耳机处于非佩戴状态;
若是,则判断所述第一距离是否小于所述处理器预先写入的第一距离阈值,若是,则判定所述颈戴式耳机处于非佩戴状态,若否,则判定所述颈戴式耳机处于佩戴状态。
优选的,所述低功耗待机状态下所述颈戴式耳机仅启用所述检测器和所述处理器。
一种颈戴式耳机开机方法,应用于所述颈戴式耳机,包括;
判断所述颈戴式耳机是否处于佩戴状态;
若所述颈戴式耳机处于佩戴状态,则控制所述颈戴式耳机处于唤醒状态;
若所述颈戴式耳机处于非佩戴状态,则控制所述颈戴式耳机处于低功耗待机状态。
优选的,所述唤醒状态包括工作准备状态、全功能启动状态;
所述控制所述颈戴式耳机处于唤醒状态,包括:
控制所述颈戴式耳机处于所述工作准备状态;
判断是否满足所述全功能启动状态的开启条件;
若是,则控制所述颈戴式耳机处于所述全功能启动状态;
其中,在所述工作准备状态下,所述颈戴式耳机的传感器处于待机准备状态;在所述全功能启动状态下,所述颈戴式耳机的所有器件均处于工作状态。
优选的,所述判断是否满足所述全功能启动状态的开启条件,包括:
判断是否接收到功能指令;
若是,则判定满足所述全功能开启状态的开启条件;
若否,则判定不满足所述全功能开启状态的开启条件。
一种颈戴式耳机开机系统,应用于所述颈戴式耳机,包括;
第一判断模块,用于判断所述颈戴式耳机是否处于佩戴状态;
第一控制模块,用于所述颈戴式耳机处于佩戴状态时,控制所述颈戴式耳机处于唤醒状态;
第二控制模块,用于所述颈戴式耳机处于非佩戴状态时,控制所述颈戴式耳机处于低功耗待机状态。
一种颈戴式耳机开机设备,应用于所述颈戴式耳机,包括:
存储器,用于存储计算机程序;
处理器,用于执行所述计算机程序时实现如上任一所述颈戴式耳机开机方法的步骤。
一种计算机可读存储介质,应用于颈戴式耳机,所述计算机可读存储介质中存储有计算机程序,所述计算机程序被处理器执行时实现如上任一所述颈戴式耳机开机方法的步骤。
本申请提供的一种颈戴式耳机,包括:颈带以及分别与颈带两端连接的第一耳机主体和第二耳机主体、检测器、与检测器连接的处理器;检测器用于采集颈戴式耳机的状态信息;处理器用于基于状态信息判断颈戴式耳机是否处于佩戴状态,若是,则控制颈戴式耳机处于唤醒状态,若否,则控制颈戴式耳机处于低功耗待机状态。本申请提供的一种颈戴式耳机中,检测器可以采集颈戴式耳机的状态信息;处理器可以根据检测器采集的状态信息判断颈戴式耳机是否处于佩戴状态,并根据判断结果自动控制颈戴式耳机处于低功耗待机状态还是唤醒状态,从而在不需要用户开关机颈戴式耳机的前提下,完成颈戴式耳机工作状态的切换,实现了颈戴式耳机的自动开关机,提高了用户应用颈戴式耳机的开关机体验性。本申请提供的一种颈戴式耳机开机方法、系统、设备及计算机可读存储介质也解决了相应技术问题。
附图说明
为了更清楚地说明本申请实施例或现有技术中的技术方案,下面将对实施例或现有技术描述中所需要使用的附图作简单地介绍,显而易见地,下面描述中的附图仅仅是本申请的一部分附图,对于本领域普通技术人员来讲,在不付出创造性劳动的前提下,还可以根据提供的附图获得其他的附图。
图1为本申请实施例提供的一种颈戴式耳机的第一结构示意图;
图2为本申请实施例提供的一种颈戴式耳机的第二结构示意图;
图3为触摸板的手势定义图;
图4为本申请实施例提供的一种颈戴式耳机开机方法的第一流程图;
图5为本申请实施例提供的一种颈戴式耳机开机方法的第二流程图;
图6为本申请实施例提供的一种颈戴式耳机开机系统的结构示意图;
图7为本申请实施例提供的一种颈戴式耳机开机设备的结构示意图;
图8为本申请实施例提供的一种颈戴式耳机开机设备的另一结构示意图。
具体实施方式
下面将结合本申请实施例中的附图,对本申请实施例中的技术方案进行描述,显然,所描述的实施例仅仅是本申请一部分实施例,而不是全部的实施例。基于本申请中的实施例,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,都属于本申请保护的范围。
请参阅图1,图1为本申请实施例提供的一种颈戴式耳机的第一结构示意图。
本申请实施例提供的一种颈戴式耳机,可以包括:检测器111、与检测器111连接的处理器112;
检测器111用于采集颈戴式耳机的状态信息;
处理器112用于基于状态信息判断颈戴式耳机是否处于佩戴状态,若是,则控制颈戴式耳机处于唤醒状态,若否,则控制颈戴式耳机处于低功耗待机状态。
实际应用中,检测器及处理器在颈戴式耳机中的安装位置可以根据实际需要灵活确定,检测器的类型也可以根据实际需要灵活确定。并且在本申请实施例提供的颈戴式耳机中,用低功耗待机状态代替颈戴式耳机的关机状态,用唤醒状态代替颈戴式耳机的开机状态,使得颈戴式耳机在无需用户操作的情况下,即可实现开关机状态的自动切换,使得用户可以不再关注颈戴式耳机的开关机过程,提高了用户对颈戴式耳机的开关机体验性。应当指出,由于检测器需要为处理器提供状态信息,处理器需执行相应判断操作,所以在低功耗待机状态下,检测器及处理器仍处于待机工作状态。此外,本申请提供的颈戴式耳机中还包括与现有耳机相同的部件,比如颈带、与颈带两端连接的第一耳机主体和第二耳机主体等。
本申请提供的一种颈戴式耳机,包括:检测器、与检测器连接的处理器;检测器用于采集颈戴式耳机的状态信息;处理器用于基于状态信息判断颈戴 式耳机是否处于佩戴状态,若是,则控制颈戴式耳机处于唤醒状态,若否,则控制颈戴式耳机处于低功耗待机状态。本申请提供的一种颈戴式耳机中,检测器可以采集颈戴式耳机的状态信息;处理器可以根据检测器采集的状态信息判断颈戴式耳机是否处于佩戴状态,并根据判断结果自动控制颈戴式耳机处于低功耗待机状态还是唤醒状态,从而在不需要用户开关机颈戴式耳机的前提下,完成颈戴式耳机工作状态的切换,实现了颈戴式耳机的自动开关机,提高了用户应用颈戴式耳机的开关机体验性。
在颈戴式耳机的应用过程中,当颈戴式耳机处于佩戴状态时,颈戴式耳机的第一耳机主体与第二耳机主体分离,并且颈带挂在人体颈部,所以可以通过判断第一耳机主体与第二耳机主体是否分离、判断颈带是否挂在人体颈部来判断颈戴式耳机是否处于佩戴状态,也即本申请提供的颈戴式耳机中的检测器可以包括用于检测第一耳机主体与第二耳机主体是否分离的第一佩戴检测传感器,以及用于检测颈戴式耳机是否挂在人颈部的第二佩戴检测传感器。且第一佩戴检测传感器及第二佩戴检测传感器可以通过采集距离信息来进行相应的状态判断。
请参阅图2,图2为本申请实施例提供的一种颈戴式耳机的第二结构示意图。在图2中,霍尔元件安装在第二耳机主体上。
本申请实施例提供的颈戴式耳机中,第一佩戴检测传感器可以为颈戴式耳机中新增加的器件,比如,用户在佩戴颈戴式耳机后,颈戴式耳机的左右耳机会处于分离状态,也即左右耳机间会存在距离,并且颈戴式耳机与用户间的距离较近,所以可以根据颈戴式耳机佩戴后的状态信息,将第一佩戴检测传感器111设置为:安装在第一耳机主体3的第一磁铁13、安装在第二耳机主体2的第二磁铁12、安装在第一耳机主体3或第二耳机主体2的霍尔元件11;第二佩戴检测传感器可以包括安装在颈戴式耳机上的距离传感器5,比如红外传感器等。
霍尔元件11用于通过第一磁铁13、第二磁铁12间的吸力,生成表征第一耳机主体与第二耳机主体是否分离的第一距离;霍尔元器件的工作原理如下:在颈戴式耳机处于佩戴状态时,霍尔元器件仅受到单体磁铁磁场作用,磁场状态为A(包括强度及方向)(其中外部磁场趋近于无);在颈戴式耳 机处于非佩戴状态时,第一耳机主体与第二耳机主体的磁铁对吸,此时霍尔元器件收到对吸后的磁铁磁场作用,此时磁场状态为B(包括强度及方向),根据状态A与B对使用状态进行辅助定义便可以生成表征第一耳机主体与第二耳机主体是否分离的第一距离信息。
距离传感器5用于生成表征颈戴式耳机的颈戴与人颈部的第二距离;其中,红外传感器是基于发射红外光,根据遇到障碍物后反射的红外光的强度确定无线耳机与人颈部的距离。
实际应用中,处理器112在判断第一耳机主体与第二耳机主体是否分离时,可以判断第一距离是否小于处理器预先写入的第一距离阈值,若是,则判定第一耳机主体和第二耳机主体处于吸合状态;若否,则判定第一耳机主体和第二耳机主体处于分离状态。相应的,在判断颈带是否挂在人颈部时,可以判断第二距离是否小于处理器预先写入的第二距离阈值,若是,则判定颈带挂在人颈部;若否,则判定颈带未挂在人颈部。
具体应用场景中,处理器112用于基于状态信息判断颈戴式耳机是否处于佩戴状态,可以具体为:
判断第一距离是否小于处理器预先写入的第一距离阈值,若是,则判定颈戴式耳机处于非佩戴状态;若否,则判断第二距离是否小于处理器预先写入的第二距离阈值,若是,则判定颈戴式耳机处于佩戴状态,若否,则判定颈戴式耳机处于非佩戴状态。
当然,处理器在基于状态信息判断颈戴式耳机是否处于佩戴状态时,还可以判断第二距离是否小于处理器预先写入的第二距离阈值,若否,则判定颈戴式耳机处于非佩戴状态;若是,则判断第一距离是否小于处理器预先写入的第一距离阈值,若是,则判定颈戴式耳机处于非佩戴状态,若否,则判定颈戴式耳机处于佩戴状态。
应当指出,由于第一耳机主体与第二耳机主体均安装有磁铁,所以用户在不佩颈戴式耳机时,颈戴式耳机的左右耳机会处于吸附状态,此时,霍尔元件可以检测到相应信息,处理器根据霍尔元件检测到的信息判定左右耳机处于吸附状态,并判定颈戴式耳机处于未佩戴状态,相应的,左右耳机处于分离状态时,霍尔元件采集不到相应信息,此时,处理器可以根据霍尔元件的检测结果判定左右耳机处于分离状态;在此过程中,由于距离传感器用于 生成表征颈戴式耳机的颈带与人颈部间的第二距离,所以,距离传感器一定安装在能够感应到人颈部的位置,比如安装在颈戴式耳机的内侧壁上,此时,距离传感器检测到的是相对于用户脖子间的距离,因此,距离传感器采集到信息后,处理器可以判定颈戴式耳机挂在用户身上;由于颈戴式耳机处于佩戴状态时,颈戴式耳机需挂在用户身上,并且第一耳机主体与第二耳机主体处于分离状态,所以在距离传感器采集到信息、霍尔元件也采集到信息的情况下,处理器可以判定颈戴式耳机未处于佩戴状态,而在距离传感器采集到信息,霍尔元件未采集到信息时,可以判定颈戴式耳机处于佩戴状态。为了便于理解,假设霍尔元件传输的信号为1时,表示第一耳机主体、第二耳机主体处于分离状态,霍尔元件传输的信号为0时,表示第一耳机主体、第二耳机主体处于吸附状态;距离传感器传输的信号为1时,表示颈戴式耳机挂在用户身上,距离传感器传输的信号为0时,表示颈戴式耳机未挂在用户身上,则处理器只有在接收到霍尔元件传输的信号为1,且距离传感器传输的信号为1的情况下,才判定颈戴式耳机处于佩戴状态,其余情况下,均判定颈戴式耳机处于未佩戴状态。
为了便于理解,现结合应用场景对本申请提供的颈戴式耳机的工作过程进行描述。当第一佩戴检测传感器采集到第一耳机主体与第二耳机主体分离的信息,且第二佩戴检测传感器采集到颈带挂在人颈部的信息时,处理器可以判定颈戴式耳机处于佩戴状态,便控制颈戴式耳机处于唤醒状态;当第一佩戴检测传感器采集到第一耳机主体与第二耳机主体分离的信息,而第二佩戴检测传感器采集到颈带未挂在人颈部的信息时,处理器可以判定颈戴式耳机处于非佩戴状态,便控制颈戴式耳机处于低功耗待机状态,此时,用户可能将第一耳机主体与第二耳机主体分离,但并未佩戴颈戴式耳机;当第一佩戴检测传感器采集到第一耳机主体与第二耳机主体未分离的信息,而第二佩戴检测传感器采集到颈带挂在人颈部的信息时,处理器可以判定颈戴式耳机处于非佩戴状态,便控制颈戴式耳机处于低功耗待机状态,此时,用户可能将颈带挂在自身颈部,但未将第一耳机主体及第二耳机主体插入耳朵;当第一佩戴检测传感器采集到第一耳机主体与第二耳机主体未分离的信息,且第二佩戴检测传感器采集到颈带未挂在人颈部的信息时,处理器可以判定颈戴式耳机处于非佩戴状态,便控制颈戴式耳机处于低功耗待机状态,此时,用 户未对颈戴式耳机进行任何操作。本申请实施例提供的颈戴式耳机中,为了便于固定磁铁,第一磁铁可以通过胶水或耳塞主板固定在第一耳机主体;第二磁铁可以通过胶水或耳塞主板固定在第二耳机主体。
请参阅图2,本申请实施例提供的颈戴式耳机中,为了便于安装红外传感器,红外传感器可以通过主板黏贴在传感器护镜7上,传感器护镜7通过瞬干胶固定在颈戴式耳机的颈戴1上;红外传感器可以通过IR传感器连接线10与处理器连接。
请参阅图2,本申请实施例提供的颈戴式耳机中,为了减少颈戴式耳机的部分开孔,提高颈戴式耳机的防水防尘性能,颈戴式耳机上可以安装有触摸板4,颈戴式耳机的按键为触摸板上的触摸按键。也即本申请中,可以用触摸板上的虚拟按键代替现有颈戴式耳机上的实体按键,具体的,可以在颈戴式耳机的颈戴的左右两部分各安装一个触摸板,并且控制两个触摸板分别实现播放侧及功能侧的作用,两个触摸板的触摸手势定义可以参阅图3;具体的,在播放侧,可以设置双击任一位置为实现播放或暂停功能,上滑或下滑为实现音量的加减功能等;在功能侧,可以设置长按任一位置为实现蓝牙配对功能,上滑或下滑为实现歌曲切换功能等。
实际应用中,颈戴式耳机的USB接口6可以安装在一个触摸板上,颈戴式耳机的MIC孔8可以安装在另一触摸板上。应当指出,本申请中颈戴式耳机与现有颈戴式耳机通用的器件,比如电池9等的描述,可以参阅现有技术,在此不再赘述。
请参阅图4,图4为本申请实施例提供的一种颈戴式耳机开机方法的第一流程图。
本申请实施例提供的一种颈戴式耳机开机方法,应用于颈戴式耳机,可以包括以下步骤;
步骤S101:判断颈戴式耳机是否处于佩戴状态;若颈戴式耳机处于佩戴状态,则执行步骤S102:控制颈戴式耳机处于唤醒状态;若颈戴式耳机处于非佩戴状态,则执行步骤S103:控制颈戴式耳机处于低功耗待机状态。
本申请实施例提供的一种颈戴式耳机开机方法中,颈戴式耳机可以判断自身是否处于佩戴状态,并可以根据相应的判断结果控制自身是处于唤醒状态还是处于低功耗待机状态,实现了自动对自身状态的切换。应当指出,本申请中,颈戴式耳机控制自身处于唤醒状态模拟了现有颈戴式耳机的开机过程,控制自身处于低功耗待机状态模拟了现有颈戴式耳机的关机过程,从而实现了颈戴式耳机的自动开关机过程,使得用户不再关注颈戴式耳机的开关机过程,提高了用户应用颈戴式耳机的开关机体验性。
本申请实施例提供的一种颈戴式耳机开机方法中,由于用户在佩戴颈戴式耳机后,颈戴式耳机的左右耳机会处于分离状态,也即左右耳机间会存在距离,并且颈戴式耳机与用户间的距离较近,所以在判断颈戴式耳机是否处于佩戴状态时,可以判断颈戴式耳机与用户间的距离是否小于第一预设距离;若颈戴式耳机与用户间的距离小于第一预设距离,则判断颈戴式耳机的左右耳机间的距离是否大于第二预设距离;若颈戴式耳机的左右耳机间的距离大于第二预设距离,则判定颈戴式耳机处于佩戴状态;若颈戴式耳机的左右耳机间的距离小于等于第二预设距离,则判定颈戴式耳机处于非佩戴状态;若颈戴式耳机与用户间的距离大于等于第一预设距离,则判定颈戴式耳机处于非佩戴状态。应当指出,距离的判定可能需要在颈戴式耳机上安装相应的器件,比如上述实施例中的霍尔元件、距离传感器等,也即可能需要对颈戴式耳机的结构进行改进,改进方法可以根据实际需要确定。
本申请实施例提供的一种颈戴式耳机开机方法中,可以在保证现有颈戴式耳机的结构不变的情况下,只对颈戴式耳机的处理流程进行改进,从而实现佩戴状态的自动判定,比如在判断颈戴式耳机是否处于佩戴状态时,可以判断是否通过颈戴式耳机的麦克风接收到表征佩戴的声音指令;若是,则判定颈戴式耳机处于佩戴状态;判断是否通过麦克风接收到表征未佩戴的声音指令,若是,则判定颈戴式耳机处于非佩戴状态。也即用户可以通过语音来更换颈戴式耳机的佩戴状态,此时,颈戴式耳机处于低功耗待机状态时,颈戴式耳机的麦克风需处于待机工作状态。
实际应用中,在判断颈戴式耳机是否处于佩戴状态时,还可以判断是否 通过颈戴式耳机的触摸板接收到表征佩戴的触摸指令,若是,则判定颈戴式耳机处于佩戴状态;判断是否通过触摸板接收到表征未佩戴的触摸指令,若是,则判定颈戴式耳机处于非佩戴状态。也即用户可以通过触摸来更换颈戴式耳机的佩戴状态,此时,颈戴式耳机处于低功耗待机状态时,颈戴式耳机的触摸板需处于待机工作状态。
实际应用中,在颈戴式耳机处于工作状态时,为了尽可能节省颈戴式耳机的电量,还可以判断颈戴式耳机未获取到蓝牙数据的时长是否大于预设时长,若是,则自动将颈戴式耳机切换为低功耗待机状态等。
请参阅图5,图5为本申请实施例提供的一种颈戴式耳机开机方法的第二流程图。
本申请实施例提供的一种颈戴式耳机开机方法,应用于颈戴式耳机,可以包括以下步骤;
步骤S201:判断颈戴式耳机是否处于佩戴状态;若颈戴式耳机处于佩戴状态,则执行步骤S202;若颈戴式耳机处于非佩戴状态,则执行步骤S205。
步骤S202:控制颈戴式耳机处于工作准备状态,执行步骤S203。
步骤S203:判断是否满足全功能启动状态的开启条件,若是,则执行步骤S204。
步骤S204:控制颈戴式耳机处于全功能启动状态;其中,在工作准备状态下,颈戴式耳机的传感器处于待机准备状态;在全功能启动状态下,颈戴式耳机的所有器件均处于工作状态。
本申请实施例提供的一种颈戴式耳机开机方法中,为了进一步节省颈戴式耳机的电量,可以将工作状态设置为工作准备状态、全功能启动状态;相应的,在控制颈戴式耳机处于工作状态时,可以控制颈戴式耳机处于工作准备状态;判断是否满足全功能启动状态的开启条件;若是,则控制颈戴式耳机处于全功能启动状态;其中,在工作准备状态下,颈戴式耳机的传感器处于待机准备状态,比如触摸板、气压计、重力传感器等;在全功能启动状态下,颈戴式耳机的所有器件均处于工作状态。
步骤S205:控制颈戴式耳机处于低功耗待机状态。
实际应用中,工作准备状态与全功能启动状态间的区别在于颈戴式耳机 是否需执行功能,所以在判断是否满足全功能启动状态的开启条件时,可以判断是否接收到功能指令;若是,则判定满足全功能开启状态的开启条件;若否,则判定不满足全功能开启状态的开启条件。
请参阅图6,图6为本申请实施例提供的一种颈戴式耳机开机系统的结构示意图。
本申请实施例提供的一种颈戴式耳机开机系统,应用于颈戴式耳机,可以包括;
第一判断模块101,用于判断颈戴式耳机是否处于佩戴状态;
第一控制模块102,用于颈戴式耳机处于佩戴状态时,控制颈戴式耳机处于唤醒状态;
第二控制模块103,用于颈戴式耳机处于非佩戴状态时,控制颈戴式耳机处于低功耗待机状态。
本申请实施例提供的一种颈戴式耳机开机系统中各个模块的描述请参阅上述实施例,在此不再赘述。
本申请还提供了一种颈戴式耳机开机设备及计算机可读存储介质,其均具有本申请实施例提供的一种颈戴式耳机开机方法具有的对应效果。请参阅图7,图7为本申请实施例提供的一种颈戴式耳机开机设备的结构示意图。
本申请实施例提供的一种颈戴式耳机开机设备,包括存储器201和处理器202,存储器201中存储有计算机程序,处理器202执行计算机程序时实现如上任一实施例所描述的颈戴式耳机开机方法的步骤。
请参阅图8,本申请实施例提供的另一种颈戴式耳机开机设备中还可以包括:与处理器202连接的输入端口203,用于传输外界输入的命令至处理器202;与处理器202连接的显示单元204,用于显示处理器202的处理结果至外界;与处理器202连接的通信模块205,用于实现颈戴式耳机开机设备与外界的通信。显示单元204可以为显示面板、激光扫描使显示器等;通信模块205所采用的通信方式包括但不局限于移动高清链接技术(HML)、通用串行总线(USB)、高清多媒体接口(HDMI)、无线连接:无线保真技术(WiFi)、蓝牙通信技术、低功耗蓝牙通信技术、基于IEEE802.11s的通信 技术。
本申请实施例提供的一种计算机可读存储介质,计算机可读存储介质中存储有计算机程序,计算机程序被处理器执行时实现如上任一实施例所描述的颈戴式耳机开机方法的步骤。
本申请所涉及的计算机可读存储介质包括随机存储器(RAM)、内存、只读存储器(ROM)、电可编程ROM、电可擦除可编程ROM、寄存器、硬盘、可移动磁盘、CD-ROM、或技术领域内所公知的任意其它形式的存储介质。
本申请实施例提供的一种颈戴式耳机开机方法、系统、设备及计算机可读存储介质中相关部分的说明请参见本申请实施例提供的颈戴式耳机中对应部分的详细说明,在此不再赘述。另外,本申请实施例提供的上述技术方案中与现有技术中对应技术方案实现原理一致的部分并未详细说明,以免过多赘述。
还需要说明的是,在本文中,诸如第一和第二等之类的关系术语仅仅用来将一个实体或者操作与另一个实体或操作区分开来,而不一定要求或者暗示这些实体或操作之间存在任何这种实际的关系或者顺序。而且,术语“包括”、“包含”或者其任何其他变体意在涵盖非排他性的包含,从而使得包括一系列要素的过程、方法、物品或者设备不仅包括那些要素,而且还包括没有明确列出的其他要素,或者是还包括为这种过程、方法、物品或者设备所固有的要素。在没有更多限制的情况下,由语句“包括一个……”限定的要素,并不排除在包括所述要素的过程、方法、物品或者设备中还存在另外的相同要素。
对所公开的实施例的上述说明,使本领域技术人员能够实现或使用本申请。对这些实施例的多种修改对本领域技术人员来说将是显而易见的,本文中所定义的一般原理可以在不脱离本申请的精神或范围的情况下,在其它实施例中实现。因此,本申请将不会被限制于本文所示的这些实施例,而是要符合与本文所公开的原理和新颖特点相一致的最宽的范围。

Claims (16)

  1. 一种颈戴式耳机,包括颈带以及分别与颈带两端连接的第一耳机主体和第二耳机主体,其特征在于,所述颈戴式耳机还包括检测器以及与所述检测器连接的处理器;
    所述检测器用于采集所述颈戴式耳机的状态信息;
    所述处理器用于基于所述状态信息判断所述颈戴式耳机是否处于佩戴状态,若是,则控制所述颈戴式耳机处于唤醒状态,若否,则控制所述颈戴式耳机处于低功耗待机状态。
  2. 根据权利要求1所述的颈戴式耳机,其特征在于,所述检测器包括用于检测所述第一耳机主体与所述第二耳机主体是否分离的第一佩戴检测传感器;
    所述第一佩戴检测传感器包括安装在所述第一耳机主体上的第一磁铁、安装在所述第二耳机主体上的第二磁铁以及安装在所述第一耳机主体或所述第二耳机主体上的霍尔元件。
  3. 根据权利要求2所述的颈戴式耳机,其特征在于,所述检测器还包括用于检测所述颈戴式耳机是否挂在人颈部的第二佩戴检测传感器,所述第二佩戴检测传感器包括安装在所述颈戴式耳机上的红外传感器。
  4. 根据权利要求3所述的颈戴式耳机,其特征在于,所述颈戴式耳机的所述颈带于朝向颈部的一侧安装有传感器护镜,所述红外传感器安装于所述颈带与所述传感器护镜之间。
  5. 根据权利要求3所述的颈戴式耳机,其特征在于,
    所述状态信息包括:
    所述第一佩戴检测传感器检测的所述第一耳机主体和所述第二耳机主体的第一距离;以及
    所述第二佩戴检测传感器检测的所述颈带与人颈部的第二距离。
  6. 根据权利要求5所述的颈戴式耳机,其特征在于,
    所述处理器用于判断所述第一距离是否小于所述处理器预先写入的第一距离阈值,若是,则判定所述第一耳机主体和所述第二耳机主体处于吸合状态;若否,则判定所述第一耳机主体和所述第二耳机主体处于分离状态。
  7. 根据权利要求5所述的颈戴式耳机,其特征在于,所述处理器判断所 述第二距离是否小于所述处理器预先写入的第二距离阈值,若是,则判定所述颈带挂在人颈部;若否,则判定所述颈带未挂在人颈部。
  8. 根据权利要求5所述的颈戴式耳机,其特征在于,
    所述处理器基于所述状态信息判断所述颈戴式耳机是否处于佩戴状态,包括:
    判断所述第一距离是否小于所述处理器预先写入的第一距离阈值,
    若是,则判定所述颈戴式耳机处于非佩戴状态;
    若否,则判断所述第二距离是否小于所述处理器预先写入的第二距离阈值,若是,则判定所述颈戴式耳机处于佩戴状态,若否,则判定所述颈戴式耳机处于非佩戴状态。
  9. 根据权利要求5所述的颈戴式耳机,其特征在于,
    所述处理器基于所述状态信息判断所述颈戴式耳机是否处于佩戴状态,包括:
    判断所述第二距离是否小于所述处理器预先写入的第二距离阈值,若否,则判定所述颈戴式耳机处于非佩戴状态;
    若是,则判断所述第一距离是否小于所述处理器预先写入的第一距离阈值,若是,则判定所述颈戴式耳机处于非佩戴状态,若否,则判定所述颈戴式耳机处于佩戴状态。
  10. 根据权利要求1-9任一项所述的颈戴式耳机,其特征在于,所述低功耗待机状态下所述颈戴式耳机仅启用所述检测器和所述处理器。
  11. 一种颈戴式耳机开机方法,其特征在于,应用于1-10任一项所述颈戴式耳机,包括;
    判断所述颈戴式耳机是否处于佩戴状态;
    若所述颈戴式耳机处于佩戴状态,则控制所述颈戴式耳机处于唤醒状态;
    若所述颈戴式耳机处于非佩戴状态,则控制所述颈戴式耳机处于低功耗待机状态。
  12. 根据权利要求11所述的方法,其特征在于,所述唤醒状态包括工作准备状态、全功能启动状态;
    所述控制所述颈戴式耳机处于唤醒状态,包括:
    控制所述颈戴式耳机处于所述工作准备状态;
    判断是否满足所述全功能启动状态的开启条件;
    若是,则控制所述颈戴式耳机处于所述全功能启动状态;
    其中,在所述工作准备状态下,所述颈戴式耳机的传感器处于待机准备状态;在所述全功能启动状态下,所述颈戴式耳机的所有器件均处于工作状态。
  13. 根据权利要求12所述的方法,其特征在于,所述判断是否满足所述全功能启动状态的开启条件,包括:
    判断是否接收到功能指令;
    若是,则判定满足所述全功能开启状态的开启条件;
    若否,则判定不满足所述全功能开启状态的开启条件。
  14. 一种颈戴式耳机开机系统,其特征在于,应用于1-10任一项所述颈戴式耳机,包括;
    第一判断模块,用于判断所述颈戴式耳机是否处于佩戴状态;
    第一控制模块,用于所述颈戴式耳机处于佩戴状态时,控制所述颈戴式耳机处于唤醒状态;
    第二控制模块,用于所述颈戴式耳机处于非佩戴状态时,控制所述颈戴式耳机处于低功耗待机状态。
  15. 一种颈戴式耳机开机设备,其特征在于,应用于所述颈戴式耳机,包括:
    存储器,用于存储计算机程序;
    处理器,用于执行所述计算机程序时实现如权利要求11至13任一项所述颈戴式耳机开机方法的步骤。
  16. 一种计算机可读存储介质,其特征在于,应用于颈戴式耳机,所述计算机可读存储介质中存储有计算机程序,所述计算机程序被处理器执行时实现如权利要求11至13任一项所述颈戴式耳机开机方法的步骤。
PCT/CN2019/130299 2019-12-20 2019-12-31 一种颈戴式耳机及开机方法、系统、设备、计算机介质 WO2021120328A1 (zh)

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