WO2018171416A1 - 刷牙监控装置的工作方法、刷牙监控装置、牙刷及牙刷基座 - Google Patents

刷牙监控装置的工作方法、刷牙监控装置、牙刷及牙刷基座 Download PDF

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Publication number
WO2018171416A1
WO2018171416A1 PCT/CN2018/078075 CN2018078075W WO2018171416A1 WO 2018171416 A1 WO2018171416 A1 WO 2018171416A1 CN 2018078075 W CN2018078075 W CN 2018078075W WO 2018171416 A1 WO2018171416 A1 WO 2018171416A1
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Prior art keywords
brushing
monitoring device
behavior data
behavior
action
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PCT/CN2018/078075
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English (en)
French (fr)
Inventor
郑洪�
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郑洪�
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Publication of WO2018171416A1 publication Critical patent/WO2018171416A1/zh

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    • AHUMAN NECESSITIES
    • A46BRUSHWARE
    • A46BBRUSHES
    • A46B15/00Other brushes; Brushes with additional arrangements
    • A46B15/0002Arrangements for enhancing monitoring or controlling the brushing process
    • A46B15/0004Arrangements for enhancing monitoring or controlling the brushing process with a controlling means
    • AHUMAN NECESSITIES
    • A46BRUSHWARE
    • A46BBRUSHES
    • A46B15/00Other brushes; Brushes with additional arrangements
    • A46B15/0002Arrangements for enhancing monitoring or controlling the brushing process
    • A46B15/0004Arrangements for enhancing monitoring or controlling the brushing process with a controlling means
    • A46B15/0006Arrangements for enhancing monitoring or controlling the brushing process with a controlling means with a controlling brush technique device, e.g. stroke movement measuring device
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W4/00Services specially adapted for wireless communication networks; Facilities therefor
    • H04W4/70Services for machine-to-machine communication [M2M] or machine type communication [MTC]
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W4/00Services specially adapted for wireless communication networks; Facilities therefor
    • H04W4/80Services using short range communication, e.g. near-field communication [NFC], radio-frequency identification [RFID] or low energy communication
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W76/00Connection management
    • H04W76/10Connection setup
    • H04W76/14Direct-mode setup
    • AHUMAN NECESSITIES
    • A46BRUSHWARE
    • A46BBRUSHES
    • A46B2200/00Brushes characterized by their functions, uses or applications
    • A46B2200/10For human or animal care
    • A46B2200/1066Toothbrush for cleaning the teeth or dentures

Definitions

  • the invention relates to the technical field of brushing detection, in particular to a working method of a brushing monitoring device, a brushing monitoring device, a toothbrush and a toothbrush base.
  • Brushing is an important self-care method for people to remove plaque, soft dirt and food residues in their lives and keep their mouth clean.
  • a toothbrush base with a brush monitoring device has appeared on the market.
  • the inventors have found that the data transmission of the toothbrush base and the server in the prior art is completed by the mobile phone as an intermediate, and the data transmission scheme must be completed by the mobile phone, and the experience is compared. difference.
  • the technical problem to be solved by the present invention is to provide a brush monitoring device, a working method of a brushing monitoring device, a toothbrush and a toothbrush base, which can directly perform data transmission with a server.
  • the technical solution adopted by the present invention is: a working method of the brushing monitoring device, comprising the following steps: a, the brushing monitoring device detects the user's action behavior; b, if the detected action behavior is the brushing action behavior The cellular-based narrow-band IoT module sends a wireless signal to wait for connection to the external server; c. After establishing the wireless connection, the brushing action is converted into behavior data for external transmission.
  • a working method of a brushing monitoring device comprising the following steps: a, the brushing monitoring device detects the user's action behavior; b, if the detected action behavior is a brushing action Acting, converting the brushing action behavior into behavior data, and further detecting whether the behavior data or the brushing action behavior continues to be generated; c. if the behavior data or the brushing action behavior is not detected within a preset time period
  • the cellular-based narrowband IoT module sends a wireless signal to wait for the connection server; d. after establishing the wireless connection, the behavior data is sent out.
  • a brushing monitoring device which includes a motion sensor, a processor, and a cellular-based narrowband Internet of Things module, wherein the motion sensor is used for detecting User action behavior; the processor is configured to determine whether the action behavior detected by the motion sensor is a brushing action behavior, and if yes, issue a positive electrical signal to convert the brushing action behavior into behavior data; the honeycomb-based narrow band object
  • the networking module is configured to send a wireless signal to the connection server after the positive electrical signal, and after the wireless connection is established, the cellular-based narrowband Internet of Things module sends the behavior data to the outside.
  • a brushing monitoring device includes a motion sensor, a processor, a first detecting unit, and a honeycomb-based narrowband Internet of Things module
  • the motion sensor is configured to detect a user action behavior
  • the processor is configured to determine whether the action behavior detected by the motion sensor is a brushing action behavior, and if yes, issue a positive electrical signal to convert the brushing action behavior into behavior data
  • the first detecting unit detects whether the brushing action behavior or behavior data is continuously generated, and if the brushing action behavior or behavior data is not detected within a preset time period, the user is issued.
  • the end of the brushing process ends the electrical signal;
  • the cellular-based narrowband Internet of Things module is configured to send a wireless signal to the connection server after the end of the electrical signal, the cellular-based narrowband Internet of Things after establishing the wireless connection
  • the module sends the behavior data to the outside.
  • a brushing monitoring device which includes a motion sensor, a processor, and a cellular-based narrowband Internet of Things module, wherein the motion sensor is used for detecting User action behavior; the processor is configured to convert the brushing action behavior into behavior data; the cellular-based narrowband Internet of Things module is configured to send a wireless signal connection server, the cellular-based narrowband after establishing a wireless connection The networking module sends the behavior data to the outside.
  • a toothbrush comprising a bristle portion and a hand-held portion, and further comprising the brush monitoring device according to any one of the above aspects.
  • a toothbrush base comprising a casing, wherein the casing is provided with the brushing monitoring device according to any one of the above technical solutions.
  • the present invention also discloses another technical solution: a working method of the brushing monitoring device, comprising the following steps: a, the brushing monitoring device detects the user's action behavior; b, converts the brushing action behavior into Behavior data; c.
  • the cellular-based narrowband IoT module sends a wireless signal to establish a wireless connection with an external server; d. After establishing the wireless connection, the behavior data is sent out.
  • the main beneficial effect brought by the technical solution provided by the present invention is that since the brushing monitoring device can directly transmit data by transmitting a wireless signal through the cellular-based narrow-band IoT module, the mobile phone is not required when sending a signal to the server.
  • the brushing monitoring device works better when used.
  • the brushing monitoring device since the brushing monitoring device only sends out a wireless signal when confirming that the detected action behavior is a brushing action behavior, the brushing monitoring device saves energy and has the beneficial effects of energy saving and environmental protection.
  • Figure 1 is a schematic view of an implementation environment of the present invention
  • Figure 2 is a perspective view showing the structure of the toothbrush base of Figure 1;
  • Figure 3 is a schematic view showing the structure of the toothbrush base connected to the toothbrush;
  • Figure 4 is a cross-sectional view showing the structure of the toothbrush base of Figure 2;
  • Figure 5 is a schematic structural view of the brush monitoring device of Figure 4.
  • FIG. 6 is a flowchart of a method for transmitting brushing information according to Embodiment 1 of the present invention.
  • Figure 7 is a flow chart showing the optimization of the brushing information transmission method of Figure 6;
  • FIG. 8 is a flow chart of a method for detecting whether a user's brushing process is completed in the first embodiment
  • FIG. 9 is a flow chart of a method for detecting whether behavior data is transmitted in the first embodiment
  • FIG. 10 is a flowchart of a method for transmitting brushing information according to Embodiment 2 of the present invention.
  • FIG. 11 is a flow chart of a method for establishing a wireless connection between a brush monitoring device and a server in Embodiment 2;
  • Figure 13 is a block diagram showing the structure of a brushing monitoring device according to a third embodiment of the present invention.
  • Figure 14 is a schematic view of a second implementation environment of the present invention.
  • FIG. 1 it is a schematic diagram of an implementation environment provided by a preferred embodiment of the present invention.
  • the implementation environment includes a toothbrush base 100 and a server 200 for attachment to a toothbrush handle (as shown in FIG. 3) to detect user brushing behavior to obtain behavioral data.
  • the toothbrush base 100 includes a housing 110 having a connecting end 111 connected to the external toothbrush 400.
  • the housing 110 is further provided with a brush monitoring device 130 for collecting user's brushing behavior data.
  • a power supply assembly 140 for powering the brushing monitoring device 130, wherein the periphery of the brushing monitoring device 130 is provided with a liquid-proof sleeve 120 for preventing entry of external liquid.
  • the liquid-proof sleeve 120 is assembled by the cover sleeve 122 and the sealing cover 121, and the cover sleeve 122 and the sealing cover 121 can be separated from each other to take out or assemble the brush monitoring device 130.
  • the brush monitoring device 130 includes a PCB board 131, a power input terminal 138 disposed on the PCB board 131, a motion sensor 132, a storage unit 135, a processor 136, and a data converter 137.
  • the power input 138 is used to electrically connect the power supply assembly 140 to power the brushing monitoring device 130.
  • the power supply assembly 140 can also be disposed within the brushing monitoring device 130.
  • the motion sensor 132 is configured to monitor a user's brushing process to obtain behavior data including a motion track of the toothbrush during tooth brushing, a number of brushing of the tooth in the same area, a brushing force during brushing, and a brushing time; the storage unit 135 is configured to store the behavior Data; processor 136 is electrically coupled to components and used to control the operation of the various components; data switch 137 is used to communicate with the server to transmit or receive data.
  • the data switch 137 includes a cellular based narrowband Internet of Things module 1371.
  • the cellular-based narrow-band Internet of Things is a low-power WAN technology, including NB-Iot (Narrow Band Internet of Things), and the cellular-based narrow-band IoT module 1371 has, for example, Wisefone 7100 developed by ZTE Microelectronics, and the SOC chip developed by Huawei. .
  • This embodiment is preferably a low-power chip developed by Huawei.
  • the motion sensor 132 includes an acceleration sensor 1321, a geomagnetic sensor 1322, a contact sensor 1323, a timer 1326, a gyroscope 1325, and a counter 1324.
  • the acceleration sensor 1321 is used for detecting the linear acceleration of the toothbrush 400 during the brushing process of the user; the gyroscope 1325 is for detecting the inclination of the toothbrush 400 and the horizontal plane during the brushing process; the geomagnetic sensor 1322 is for detecting the specified direction of the toothbrush 400 during the brushing process of the user;
  • the contact sensor 1323 is configured to detect whether the toothbrush 400 is in contact with the tooth; the timer 1326 is used to calculate the brushing time of the user's brushing and can also synchronize the network time, which can be the time spent in the entire brushing process, or can be a brushing The time spent by the area; the counter 1324 is used to calculate the number of scrubs for each tooth area during the user's brushing process.
  • FIG. 6 shows a flow of a method for transmitting toothbrush information, the method comprising the following steps:
  • step S101 the brushing monitoring device 130 detects the user's brushing action behavior by the motion sensor 132.
  • step S102 the processor 136 determines whether the action behavior detected by the motion sensor 132 is a brushing action behavior. For example, when the motion sensor 132 detects that there is a high frequency back and forth vibration, or/and the motion sensor 132 detects a frequent change in the tilt angle and the indication direction for a long time, it is considered that the brushing action behavior occurs.
  • the high frequency in this embodiment refers to more than 3 times per second, and the long time refers to more than 10 seconds, and frequently refers to changes within 5 seconds.
  • Step S103 if the detected action behavior is a brushing action behavior, the cellular-based narrowband Internet of Things module 1371 sends out a wireless signal to wait for the connection server 200.
  • the cellular-based narrowband Internet of Things module 1371 waits for the connection to the server 200 when the wireless signal is sent out, and the time interval in which the cellular-based narrowband IoT module 1371 emits a wireless signal is 2-5 seconds.
  • the cellular-based narrowband Internet of Things module 1371 waits for the connection to the server 200, and the broadcast interval between 5:00 am and 24:00 (considered to be busy) is 2 seconds, and the morning is 0.
  • the broadcast interval from :00 to 5:00 (which is considered to be idle) is 5 seconds.
  • the action of the cellular-based narrowband Internet of Things module 1371 to send out a wireless signal in this step may also be implemented by means of manual control instead of using an intelligent control.
  • the user gives an instruction through the switch to activate the cellular-based narrowband IoT module 1371 to send a wireless signal.
  • step S104 the brushing monitoring device 130 establishes a wireless connection with the server 200 through the wireless signal sent by the cellular based narrowband Internet of Things module 1371.
  • the cellular-based narrowband Internet of Things module 1371 sends a wireless signal to the network base station, and then establishes a wireless connection with the server 200 through the network base station.
  • the purpose of enhancing the signal transmission can also be achieved by adding a repeater.
  • step S105 after the brushing monitoring device 130 establishes a wireless connection with the server 200, the processor 136 converts the detected brushing action behavior into behavior data (electrical signals), and the data exchanger 137 transmits the behavior data to the outside.
  • step S106 the server 200 receives the behavior data transmitted by the data exchanger 137 and processes the received behavior data.
  • the manner in which the server 200 processes the behavior data includes the server 200 performing a comparison analysis on the received behavior data with the standard data stored therein to obtain a comparison result.
  • the cellular-based narrowband Internet of Things module 1371 establishes a wireless connection with the server 200 in step S104.
  • the server 200 receives the wireless signal sent by the cellular-based narrowband Internet of Things module 1371.
  • the device of the wireless signal performs identification; in step S1042, the server 200 determines whether the device that issued the wireless signal meets the preset condition, and if the device meets the preset condition, automatically establishes a wireless connection with the device to proceed to step S104. Otherwise, step S1041 is repeated.
  • the server 200 identifies the device that sends the wireless signal by acquiring the hardware address (MAC address) of the device that sends the wireless signal.
  • the preset condition is that the programming rule of the hardware address has a specific rule, and the purpose is to conveniently determine that the hardware is brushing monitoring.
  • the device is then connected to establish a communication connection with it.
  • step of the processor 136 converting the detected brushing action behavior into behavior data (electrical signals) in step S105 may also be provided in step S103.
  • step S105 further including step S1061
  • the brushing monitoring device 130 detects whether the behavior data (which may also be a brushing action behavior in other embodiments) continues to be generated.
  • the brushing monitoring device 130 if the brushing monitoring device 130 does not detect the brushing action behavior or behavior data within a preset time (eg, the preset time is set to 10 seconds), the brushing monitoring device 130 considers that the user's brushing process ends. On the other hand, if the brushing monitoring device 130 continuously detects the brushing action behavior or behavior data within a preset time (for example, the preset time is set to 10 seconds), step S1061 is repeated. After step S1062, the process proceeds to step S1063, and the brushing monitoring device 130 adds a termination code to the obtained behavior data.
  • a preset time e.g, the preset time is set to 10 seconds
  • step S1071 and step S1072 are further included.
  • step S1071 the brushing monitoring device 130 detects whether the behavior data is transmitted or not. When the behavior monitoring data is transmitted, if the termination code is detected, the brushing monitoring device 130 considers that the behavior data transmission is completed; or when the server 200 detects the termination code when receiving the behavior data, the server 200 considers that the behavior data transmission is completed.
  • Step S1072 if the brushing monitoring device 130 transmits the behavior data to the server 200 (ie, the behavior data transmission is completed), the cellular-based narrowband Internet of Things module 1371 stops issuing the wireless signal, terminates the wireless connection with the server 200, and the brushing monitoring device 130 Entering the standby state; otherwise, repeating step S105.
  • the server 200 can simultaneously communicate with the plurality of brush monitoring devices 130, and can distinguish the received behavior data according to different codes of the respective brush monitoring devices 130 to obtain a plurality of sets of behavior data, and then set a plurality of sets of behavior data.
  • the results are differentiated by code.
  • the code of the brushing monitoring device 130 refers to a hardware address (MAC address), and processing one by one includes sequentially processing the discrimination results in code order or randomly and not processing them one by one in code order.
  • MAC address hardware address
  • the brushing monitoring device 130 automatically deletes the behavior data of the completion of the transmission in the brushing monitoring device 130.
  • the action of deleting the completion of the transmission behavior data may be a situation in which a set of behavior data is completely transmitted, that is, the group behavior data is deleted after completing a set of behavior data; or a group of behavior data is partially completed, that is, the completion is completed. How much behavior data is deleted by how much of the behavior data is transmitted. In other embodiments, the deletion of behavior data can also be done by manual deletion.
  • the behavior data of the processing completed in the server 200 is automatically deleted, and only the comparison result is retained.
  • the behavioral data and the alignment results can be retained simultaneously.
  • another server 200 can be selected, which can communicate with the plurality of brush monitoring devices 130 one by one in sequence (ie, the server 200 communicates with one of the plurality of brush monitoring devices 130, complete
  • the behavior data is transmitted and then communicated with another brush monitoring device 130 in sequence, and the received behavior data can be distinguished according to different codes of the respective brush monitoring devices 130 to obtain a plurality of sets of behavior data, and then the code is distinguished. Multiple sets of behavioral data are processed one by one.
  • the code of the brushing monitoring device 130 refers to a hardware address (MAC address), and processing one by one includes sequentially processing in the order of codes in the discrimination result or randomly processing one by one in the order of codes.
  • MAC address hardware address
  • another server 200 can be selected, which can communicate with the plurality of brush monitoring devices 130 randomly as needed (ie, the server 200 communicates with any of the plurality of brush monitoring devices 130).
  • the behavior data transmission is completed, communication with any other brush monitoring device 130 is performed, and the received behavior data can be distinguished according to different codes of the respective brush monitoring devices 130 to obtain multiple sets of behavior data, and then multiple sets of behavior data are obtained.
  • the results are processed one by one according to the code.
  • the server 200 can refer to: when the brushing monitoring device 130 sends a wireless signal, it indicates that the brushing monitoring device 130 needs to connect to the server 200 to transmit behavior data.
  • the code of the brushing monitoring device 130 refers to a hardware address (MAC address).
  • the present embodiment explains the working method of the brushing monitoring device in combination with the server to form a complete information transmission system. Since the brushing monitoring device 130 can directly transmit data to the server 200 through the cellular-based narrowband Internet of Things module 1371, the mobile phone is not required to be used when transmitting signals to the server 200, and the effect of the brushing monitoring device 130 during use is used. better. Moreover, since the brushing monitoring device 130 sends out a wireless signal only after confirming that the detected motion behavior is a brushing action behavior, the brushing monitoring device 130 saves energy and has the beneficial effects of energy saving and environmental protection.
  • this embodiment shows another method of transferring toothbrush information.
  • the specific implementation environment of this embodiment can be referred to the description in the specific embodiment 1. In order to save space, we will not repeat them here.
  • the method of transmitting toothbrush information includes the following steps:
  • step S201 the brushing monitoring device 130 detects the user's brushing action behavior by the motion sensor 132.
  • the brushing monitoring device 130 determines whether the action behavior detected by the motion sensor 132 is a brushing action behavior. For example, when the motion sensor 132 detects that there is a high frequency back and forth vibration, or/and the motion sensor 132 detects that the tilt angle and the indication direction change frequently for a long time, it is considered that the brushing action behavior occurs.
  • the high frequency in this embodiment refers to more than 3 times per second, and the long time refers to more than 10 seconds, and frequently refers to changes within 5 seconds.
  • step S203 the processor 136 converts the detected brushing action behavior into behavior data (electrical signals) for storage.
  • step S204 the brushing monitoring device 130 detects whether the brushing behavior data (which may also be a brushing action behavior in other embodiments) continues to be generated. If the brushing monitoring device 130 does not detect the brushing action behavior or behavior data within a preset time (eg, the preset time is set to 10 seconds), the brushing monitoring device 130 considers that the user's brushing process ends, and the obtained behavior data The termination code is appended to the step S205. On the other hand, if the brushing monitoring device 130 continuously detects the brushing action behavior or behavior data within a preset time (for example, the preset time is set to 10 seconds), step S204 is repeated.
  • a preset time e.g, the preset time is set to 10 seconds
  • Step S205 the cellular-based narrowband Internet of Things module 1371 sends out a wireless signal to wait for the connection server 200, and the time interval of the cellular-based narrowband Internet of Things module 1371 to send a wireless signal is 2-5 seconds.
  • the broadcast interval between 5:00 am and 24:00 (which is considered to be busy) is 2 seconds, and broadcast from 0:00 am to 5:00 am (below idle) The interval is 5 seconds.
  • the action of the cellular-based narrowband Internet of Things module 1371 to send out a wireless signal in this step may also be implemented by means of manual control instead of using an intelligent control.
  • the user gives an instruction through the switch to activate the cellular-based narrowband IoT module 1371 to send a wireless signal.
  • step S206 the cellular-based narrowband Internet of Things module 1371 in the brushing monitoring device 130 establishes a wireless connection with the server 200.
  • the cellular-based narrowband Internet of Things module 1371 sends a wireless signal to the network base station, and then establishes a wireless connection with the server 200 through the network base station.
  • the purpose of enhancing the signal transmission can also be achieved by adding a repeater.
  • Step S207 after the brushing monitoring device 130 establishes a wireless connection with the server 200, the cellular-based narrowband Internet of Things module 1371 transmits the behavior data externally.
  • step S208 the server 200 receives the behavior data transmitted by the data exchanger 137 and processes the received behavior data.
  • the manner in which the server 200 processes the behavior data includes the server 200 performing a comparison analysis on the received behavior data with the standard data stored therein to obtain a comparison result.
  • the cellular-based narrowband Internet of Things module 1371 establishes a wireless connection with the server 200 in step S206.
  • the server 200 receives the wireless signal sent by the cellular-based narrowband Internet of Things module 1371.
  • the device of the wireless signal performs identification; in step S2062, the server 200 determines whether the device that issued the wireless signal meets the preset condition, and if the device meets the preset condition, automatically establishes a wireless connection with the device to proceed to step S206. Otherwise, step S2061 is repeated.
  • the server 200 identifies the device that sends the wireless signal by acquiring the hardware address (MAC address) of the wireless signaling device.
  • the preset condition is that the hardware address programming rule meets certain conditions, and the purpose is to determine that the hardware is brushing monitoring.
  • a communication connection is established therewith.
  • step of the processor 136 converting the detected brushing action behavior into behavior data (electrical signals) in step S203 may also be provided in step S207.
  • step S2091 and step S2092 are further included.
  • the brushing monitoring device 130 detects whether the behavior data is transmitted or not. When the behavior monitoring data is transmitted, if the termination code is detected, the brushing monitoring device 130 considers that the behavior data transmission is completed; or when the server 200 detects the termination code when receiving the behavior data, the server 200 considers that the behavior data transmission is completed.
  • Step S2092 if the brushing monitoring device 130 transmits the behavior data to the server 200 (ie, the behavior data transmission is completed), the brushing monitoring device 130 stops emitting the wireless signal, terminates the wireless connection with the server 200, and the brushing monitoring device 130 enters the standby state; Otherwise, step S208 is repeated.
  • the server 200 can simultaneously communicate with the plurality of brush monitoring devices 130, and can distinguish the received behavior data according to different codes of the respective brush monitoring devices 130 to obtain a plurality of sets of behavior data, and then set a plurality of sets of behavior data.
  • the results are differentiated by code.
  • the code of the brushing monitoring device 130 refers to a hardware address (MAC address), and processing one by one includes sequentially processing the discrimination results in code order or randomly and not processing them one by one in code order.
  • MAC address hardware address
  • the brushing monitoring device 130 automatically deletes the behavior data of the completion of the transmission in the brushing monitoring device 130.
  • the action of deleting the completion of the transmission behavior data may be a situation in which a set of behavior data is completely transmitted, that is, the group behavior data is deleted after completing a set of behavior data; or a group of behavior data is partially completed, that is, the completion is completed. How much behavior data is deleted by how much of the behavior data is transmitted. In other embodiments, the deletion of behavior data can also be done by manual deletion.
  • the behavior data of the processing completed in the server 200 is automatically deleted, and only the comparison result is retained.
  • the behavioral data and the alignment results can be retained simultaneously.
  • another server 200 can be selected, which can communicate with the plurality of brush monitoring devices 130 one by one in sequence (ie, the server 200 communicates with one of the plurality of brush monitoring devices 130, complete
  • the behavior data is transmitted and then communicated with another brush monitoring device 130 in sequence, and the received behavior data can be distinguished according to different codes of the respective brush monitoring devices 130 to obtain a plurality of sets of behavior data, and then the code is distinguished.
  • Multiple sets of behavioral data are processed one by one.
  • the code of the brushing monitoring device 130 refers to a hardware address (MAC address), and processing one by one includes sequentially processing the discrimination results in code order or randomly and one by one in a code order.
  • MAC address hardware address
  • another server 200 can be selected, which can communicate with the plurality of brush monitoring devices 130 randomly as needed (ie, the server 200 communicates with any of the plurality of brush monitoring devices 130).
  • the behavior data transmission is completed, communication with any other brush monitoring device 130 is performed, and the received behavior data can be distinguished according to different codes of the respective brush monitoring devices 130 to obtain multiple sets of behavior data, and then multiple sets of behavior data are obtained.
  • the results are processed one by one according to the code.
  • the server 200 can refer to: when the brushing monitoring device 130 sends a wireless signal, it indicates that the brushing monitoring device 130 needs to connect to the server 200 to transmit behavior data.
  • the code of the brushing monitoring device 130 refers to a hardware address (MAC address).
  • the present embodiment explains the working method of the brushing monitoring device in combination with the server to form a complete information transmission system. Since the brushing monitoring device 130 can directly transmit data to the server 200 through the cellular-based narrowband Internet of Things module 1371, the mobile phone is not required to be used when transmitting signals to the server 200, and the effect of the brushing monitoring device 130 during use is used. better. Moreover, since the brushing monitoring device 130 sends out a wireless signal only after confirming that the detected motion behavior is a brushing action behavior, the brushing monitoring device 130 saves energy and has the beneficial effects of energy saving and environmental protection.
  • FIG. 1 shows a schematic diagram of an implementation environment of a brushing information transmission system.
  • the information delivery system includes a toothbrush base 100 and a server 200.
  • the toothbrush base 100 is used to attach to the handle of the toothbrush (as shown in Figure 3) to detect the user's brushing behavior to obtain behavioral data.
  • the toothbrush pedestal 100 includes a brushing device 130 and a power supply component 140 for powering the brushing device 130.
  • the specific structure of the toothbrush pedestal 100 please refer to the first embodiment, and the details are not described herein.
  • the brushing monitoring device 130 includes a motion sensor 132, a first detecting unit 133, a second detecting unit 134, a storage unit 135, a processor 136, a data exchanger 137, a stopping unit 139, and a clearing module 1311.
  • the data switch 137 includes a cellular based narrowband Internet of Things module 1371.
  • the action sensor 132 is configured to detect a user action behavior; the processor 136 is configured to determine whether the action behavior detected by the action sensor 132 is a brushing action behavior, and if yes, issue a positive electrical signal, and convert the brushing action behavior into behavior data (electricity
  • the storage unit 135 is configured to store the behavior data; the cellular-based narrowband Internet of Things module 1371 is configured to send a wireless signal to the connection server 200 after receiving the positive electrical signal. In this embodiment, the cellular-based narrowband Internet of Things module 1371 sends a wireless signal at a time interval of 2-5 seconds before establishing a wireless connection with the server 200.
  • the cellular-based narrow-band Internet of Things is a low-power WAN technology, including NB-Iot (Narrow Band Internet of Things), and the cellular-based narrow-band IoT module 1371 has, for example, Wisefone 7100 developed by ZTE Microelectronics, and the SOC chip developed by Huawei. .
  • This embodiment is preferably a low-power chip developed by Huawei.
  • the processor 136 determines whether the action behavior detected by the motion sensor 132 is a brushing action behavior.
  • the processor 136 determines whether the brushing action behavior occurs by analyzing the action behavior detected by the motion sensor 132. For example, when the motion sensor 132 detects that there is a high frequency back and forth vibration, or/and the motion sensor 132 detects that the tilt angle and the indication direction change frequently for a long time, it is considered that the brushing action behavior occurs.
  • the high frequency in this embodiment refers to more than 3 times per second, and the long time refers to more than 10 seconds, and frequently refers to changes within 5 seconds.
  • the first detecting unit 133 also detects whether the brushing action behavior or behavior data continues to be generated during each brushing process, if the first detecting unit 133 does not detect the brushing action behavior or within a preset time period.
  • the behavior data indicates that the first detecting unit 133 considers that the user's process of brushing is finished, and issues an end electrical signal of the end of the user's brushing process.
  • the first detecting unit 133 stops detecting the user action behavior, and the processor 136 adds a termination code to the end of the obtained behavior data.
  • the preset time is set to 10 seconds.
  • the server 200 after receiving the wireless signal, the server 200 identifies the device that sends the wireless signal by the recognition program unit (not shown) and determines whether the recognition result meets the preset condition. If the preset condition is met, the server 200 automatically establishes a communication connection with the cellular-based narrowband Internet of Things module 1371. The purpose of setting the preset condition is to determine whether the device that sends the wireless signal is a brushing monitoring device.
  • the second detecting unit 134 is configured to detect whether the behavior data is completed, and the completion signal is obtained when the transmission is completed; when the stop unit 139 receives the completion signal, the cellular-based narrowband Internet of Things module 1371 stops sending the wireless signal, and brushing the teeth.
  • the monitoring device 130 terminates the communication connection with the server 200, and the brushing monitoring device 130 enters a standby state.
  • the second detecting unit 134 may detect whether the behavior data is completed or not.
  • the second detecting unit 134 detects whether the behavior data sent by the cellular-based narrowband Internet of Things module 1371 is the same as the behavior data stored in the storage unit 135, and the same behavior is described. The data is transferred.
  • the server 200 can simultaneously communicate with the plurality of brush monitoring devices 130, and can distinguish the received behavior data according to different codes of the respective brush monitoring devices 130 to obtain a plurality of sets of behavior data, and then set a plurality of sets of behavior data.
  • the results are transmitted to the server 200 one by one according to the code.
  • the code of the brushing monitoring device 130 refers to a hardware address (MAC address).
  • the plurality referred to in the present invention means two or more.
  • the identification program unit (not shown) identifies the code of the brushing monitoring device 130, and then distinguishes the received behavior data according to different codes of the respective brushing monitoring devices 130 to obtain a plurality of sets of behavior data, and the server 200 sets the plurality of sets of behavior data. Process them one by one.
  • the clearing module 1311 is configured to automatically delete the behavior data that is completed in the brushing monitoring device 130 after the brushing monitoring device 130 transmits the behavior data to the server 200.
  • the completion of the transmission may refer to a situation in which a set of behavior data is completely transmitted, or a situation in which a group of behavior data is partially transmitted.
  • the second detecting unit 134 may also be disposed in the server 200, and the second detecting unit 134 is configured to detect whether the cellular-based narrowband Internet of Things module 1371 completes the behavior data transmission, and completes the transmission to give a completion signal; If the unit 139 receives the completion signal, the cellular-based narrowband Internet of Things module 1371 stops issuing the wireless signal, the brushing monitoring device 130 terminates the communication connection with the server 200, and the brushing monitoring device 130 enters the standby state.
  • the implementation of the second detecting unit 134 to detect whether the behavior data is completed may be: after the brushing monitoring device 130 completes the brushing action, the processor 136 adds a termination code after the obtained behavior data, if the server 200 receives the behavior data. When the second detecting unit 134 detects the termination code, it is considered that the behavior data transmission is completed.
  • another server 200 can be selected, which can communicate with the plurality of brush monitoring devices 130 one by one in sequence, and can perform the received behavior data according to different codes of the respective brush monitoring devices 130. Differentiate multiple sets of behavior data, and then process multiple sets of behavior data one by one.
  • the identification program unit (not shown) identifies the code of the brushing monitoring device 130, and then distinguishes the received behavior data according to different codes of the respective brushing monitoring devices 130 to obtain a plurality of sets of behavior data, and the server 200 sets the plurality of sets of behavior data. Process them one by one.
  • another server 200 can be selected, which can communicate with the plurality of brush monitoring devices 130 randomly according to needs, and can receive the received behavior data according to different codes of the respective brush monitoring devices 130. Differentiate and obtain multiple sets of behavior data, and then process the multiple sets of behavior data one by one according to the code differentiation result.
  • the identification program unit (not shown) identifies the code of the brushing monitoring device 130, and then distinguishes the received behavior data according to different codes of the respective brushing monitoring devices 130 to obtain a plurality of sets of behavior data, and the server 200 sets the plurality of sets of behavior data. Process them one by one.
  • the present embodiment explains the working method of the brushing monitoring device in combination with the server to form a complete information transmission system. Since the brushing monitoring device 130 can directly transmit data to the server 200 through the cellular-based narrowband Internet of Things module 1371, the mobile phone is not required to be used when transmitting signals to the server 200, and the effect of the brushing monitoring device 130 during use is used. better. Moreover, since the brushing monitoring device 130 only sends out a wireless signal when confirming that the detected action behavior is a brushing action behavior, the time for the brushing monitoring device 130 to emit a wireless signal is shortened, and the brushing monitoring device 130 saves energy, and is energy-saving and environmentally friendly. Beneficial effect.
  • FIG. 14 a schematic diagram of another implementation environment of the brushing information transmission system described in the above embodiment is shown, which replaces the toothbrush 400' with the toothbrush base 100 to achieve the embodiment.
  • the toothbrush 400' includes a bristle portion 410 and a hand-held portion 420.
  • the hand-held portion 420 is further provided with a brushing monitoring device 130 as described in this embodiment.
  • the brushing information transmission system disclosed in this embodiment corresponds to the method embodiment in the second embodiment.
  • the main difference between this embodiment and the third embodiment is that the timing of triggering the wireless signal by the cellular-based narrowband Internet of Things module 1371 is different.
  • the cellular-based narrowband Internet of Things module 1371 is a server 200 that is connected before the processor 136 sends a positive electrical signal (determining that the user is brushing teeth) and sends a wireless signal to wait for the connection.
  • the processor 136 sends a positive electrical signal (determining that the user is brushing teeth) for the purpose of triggering the data switch 137; and the data switch 137 is receiving the end electrical signal sent by the first detecting unit 133.
  • the wireless signal is sent out to wait for the server 200 that was connected before the connection.
  • the working principle of the third embodiment is to refer to the method flow shown in FIG. 6.
  • the working principle of the embodiment please refer to the method flow shown in FIG.
  • the description of the unit structure in the embodiment is similar to the unit structure description in the third embodiment. To save space, the description of the specific embodiment is not described herein. Let me repeat.
  • the brushing monitoring device 130 can directly transmit data to the server 200 through the cellular-based narrowband Internet of Things module 1371, the mobile phone is not required to be used when transmitting signals to the server 200, and the effect of the brushing monitoring device 130 during use is used. better. Moreover, since the brushing monitoring device 130 only sends out a wireless signal when confirming that the detected action behavior is a brushing action behavior, the time for the brushing monitoring device 130 to emit a wireless signal is shortened, and the brushing monitoring device 130 saves energy, and is energy-saving and environmentally friendly. Beneficial effect.
  • the brushing information transmission system provided by the above embodiments is mostly illustrated by dividing functional units.
  • the above function assignments may be performed by different functional units or modules as needed, that is, the internal structure of the unit is divided into different functional modules to complete all or part of the functions described above.

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Abstract

一种能直接与服务器(200)完成数据传输的刷牙监控装置(130)的工作方法、刷牙监控装置(130)、牙刷(400)及牙刷基座(100)。其中,一种刷牙监控装置(130)的工作方法,包括以下步骤:a、刷牙监控装置(130)检测用户动作行为;b、若检测到的动作行为是刷牙动作行为,则基于蜂窝的窄带物联网模块(1371)发出无线信号等待连接外部服务器(200);c、在建立无线连接后,将所述刷牙动作行为转换为行为数据对外发送。

Description

刷牙监控装置的工作方法、刷牙监控装置、牙刷及牙刷基座 技术领域
本发明涉及刷牙检测技术领域,特别涉及一种刷牙监控装置的工作方法、刷牙监控装置、牙刷及牙刷基座。
背景技术
刷牙,是人们在生活中去除牙菌斑、软垢和食物残渣,保持口腔清洁的重要自我口腔保健方法。为指导用户正确刷牙,市场上出现了带刷牙监控装置的牙刷基座。在实现本发明的过程中,发明人发现现有技术中的牙刷基座与服务器的数据传输都是通过手机作为中间物来完成数据传输,这种数据传输的方案必须通过手机来完成,体验较差。
发明内容
根据现有技术中所存在的不足,本发明所解决的技术问题是提供一种能直接与服务器完成数据传输的刷牙监控装置、刷牙监控装置的工作方法、牙刷及牙刷基座。
为解决上述技术问题,本发明所采用的技术方案是:一种刷牙监控装置的工作方法,包括以下步骤:a、刷牙监控装置检测用户动作行为;b、若检测到的动作行为是刷牙动作行为,则基于蜂窝的窄带物联网模块发出无线信号等待连接外部服务器;c、在建立无线连接后,将所述刷牙动作行为转换为行为数据对外发送。
为解决上述技术问题,本发明还公开了另一种技术方案:种刷牙监控装置的工作方法,包括以下步骤:a、刷牙监控装置检测用户动作行为;b、若检测到的动作行为是刷牙动作行为,则将所述刷牙动作行为转换为行为数据,并进一步检测所述行为数据或刷牙动作行为是否持续产生;c、若在一预设时间段内未检测到所述行为数据或刷牙动作行为,则基于蜂窝的窄带物联网模块发出无线信号等待连接服务器;d、在建立无线连接后,将所述行为数据对外发送。
为解决上述技术问题,本发明还公开了另一种技术方案:一种刷牙监控装置,所述刷牙监控装置包括动作传感器、处理器和基于蜂窝的窄带物联网模块,所述动作传感器用于检测用户动作行为;所述处理器用于判断所述动作传感器检测到的动作行为是不是刷牙动作行为,若是则发出肯定电信号,将所述刷牙动作行为转换为行为数据;所述基于蜂窝的窄带物联网模块用于在所述肯定电信号后,发出无线信号等待连接服务器,在建立无线连接后,所述基于蜂窝的窄带物联网模块将所述行为数据对外发送。
为解决上述技术问题,本发明还公开了另一种技术方案:一种刷牙监控装置,所述刷牙监 控装置包括动作传感器、处理器、第一检测单元和基于蜂窝的窄带物联网模块,所述动作传感器用于检测用户动作行为;所述处理器用于判断所述动作传感器检测到的动作行为是不是刷牙动作行为,若是则发出肯定电信号,将所述刷牙动作行为转换为行为数据;所述第一检测单元在接收到所述肯定电信号后,检测所述刷牙动作行为或行为数据是否持续产生,若在一预设时间段内未检测到所述刷牙动作行为或行为数据,则发出用户此次刷牙过程结束的结束电信号;所述基于蜂窝的窄带物联网模块用于在所述结束电信号后,发出无线信号等待连接服务器,在建立无线连接后,所述基于蜂窝的窄带物联网模块将所述行为数据对外发送。
为解决上述技术问题,本发明还公开了另一种技术方案:一种刷牙监控装置,所述刷牙监控装置包括动作传感器、处理器和基于蜂窝的窄带物联网模块,所述动作传感器用于检测用户动作行为;所述处理器用于将所述刷牙动作行为转换为行为数据;所述基于蜂窝的窄带物联网模块用于发出无线信号连接服务器,在建立无线连接后,所述基于蜂窝的窄带物联网模块将所述行为数据对外发送。
为解决上述技术问题,本发明还公开了另一种技术方案:一种牙刷,包括刷毛部和手持部,还包括以上技术方案中任一项所述的刷牙监控装置。
为解决上述技术问题,本发明还公开了另一种技术方案:一种牙刷基座,包括外壳,所述外壳内设有以上技术方案中任一项所述的刷牙监控装置。
为解决上述技术问题,本发明还公开了另一种技术方案:一种刷牙监控装置的工作方法,包括以下步骤:a、刷牙监控装置检测用户动作行为;b、将所述刷牙动作行为转换为行为数据;c、基于蜂窝的窄带物联网模块发出无线信号与外部服务器建立无线连接;d、在建立无线连接后,将所述行为数据对外发送。
本发明提供的技术方案带来的主要有益效果是:由于刷牙监控装置能通过基于蜂窝的窄带物联网模块发出无线信号与服务器直接进行数据传输,从而在向服务器发送信号时不需要用到手机,刷牙监控装置在使用时的体验效果更好。又由于刷牙监控装置只有在确认检测到的动作行为是刷牙动作行为才对外发出无线信号,因此刷牙监控装置更节约能源,具有节能环保的有益效果。
附图说明
为了更清楚地说明本发明实施例中的技术方案,下面将对实施例描述中所需要使用的附图作简单介绍,显而易见,下面描述中的附图仅仅是本发明的一些实施例,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,还可以根据这些附图获取其他的附图。
图1是本发明的一种实施环境示意图;
图2是图1中牙刷基座的结构立体图;
图3是牙刷基座连接于牙刷上的结构示意图;
图4是图2中牙刷基座的结构剖视图;
图5是图4中刷牙监控装置的结构示意图;
图6是本发明实施例一提供的刷牙信息传送方法流程图;
图7是图6中刷牙信息传送方法流程优化图;
图8是实施例一中检测用户刷牙过程是否完成的方法流程图;
图9是实施例一中检测行为数据是否传输完成的方法流程图;
图10是本发明实施例二提供的刷牙信息传送方法流程图;
图11是实施例二中刷牙监控装置与服务器建立无线连接的方法流程图;
图12是实施例二中检测行为数据是否传输完成的方法流程图;
图13是本发明实施例三提供的刷牙监控装置的结构方框图;
图14是本发明第二种实施环境示意图。
具体实施方式
为了使本发明所要解决的技术问题、技术方案及有益效果更加清楚明白,以下结合实施例及附图,对本发明进行进一步详细说明。应当理解,此部分所描述的具体实施例仅可用于解释本发明,并不用于限定本发明。
具体实施例一
如图1所示,其为本发明优选实施方案提供的实施环境示意图。该实施环境包括牙刷基座100和服务器200,牙刷基座100用于连接在牙刷手柄上(如图3所示),从而检测用户刷牙行为得到行为数据。
如图2、图3、图4所示,牙刷基座100包括外壳110,外壳110具有与外部牙刷400连接的连接端111,外壳110内还设有用于采集用户刷牙行为数据的刷牙监控装置130和为该刷牙监控装置130供电的供电组件140,其中刷牙监控装置130的外围设有防止外部液体进入的防液套120。本实施例中,防液套120由包附套122和密封盖121组合成,包附套122和密封盖121可以相互分离以取出或装配刷牙监控装置130。
如图4、图5所示,刷牙监控装置130包括:PCB板131,以及设于PCB板131上的电源输入端138、动作传感器132、存储单元135、处理器136和数据交换器137。电源输入端138用于电连接供电组件140从而给刷牙监控装置130供电。在其他实施例中,供电组件140也可以设置于刷牙监控装置130内。动作传感器132用于监测用户刷牙过程从而得到行为数据,该行为数据包括牙刷刷牙时的运动轨迹、牙齿在同一区域的刷洗次数、刷牙过程中的刷洗力度和刷洗时间;存储单元135用于存储行为数据;处理器136与各元器件进行电连接并用于 控制各元器件的运作;数据交换器137用于与服务器进行通信连接,从而发送或接收数据。
本实施例中,参考图13所示,数据交换器137包括基于蜂窝的窄带物联网模块1371。其中,基于蜂窝的窄带物联网是低功耗的广域网技术,包括NB-Iot(Narrow Band Internet of Things),基于蜂窝的窄带物联网模块1371有例如中兴微电子开发的Wisefone7100,华为开发的SOC芯片。本实施例优选华为研究开发的低能耗芯片。动作传感器132包括加速度传感器1321、地磁传感器1322、接触传感器1323、计时器1326、陀螺仪1325和计数器1324。加速度传感器1321用于检测用户刷牙过程中牙刷400的线性加速度;陀螺仪1325用于检测用户刷牙过程中牙刷400与水平面的倾斜度;地磁传感器1322用于检测用户刷牙过程中牙刷400的指定方向;接触传感器1323用于检测牙刷400是否接触到牙齿;计时器1326用于计算用户刷牙的刷洗时间并且还可以同步网络时间,该刷洗时间可以是整个刷牙过程所花的时间,还可以是刷洗某一区域所花的时间;计数器1324用于计算用户刷牙过程中各牙齿区域的刷洗次数。
如图6所示,其示出了一种刷牙信息传送方法流程,该方法包括以下步骤:
步骤S101,刷牙监控装置130通过动作传感器132检测用户刷牙动作行为。
步骤S102,处理器136判断动作传感器132检测到的动作行为是不是刷牙动作行为。例如:动作传感器132检测到自身有高频率的来回颤动时,或者/和动作传感器132检测到倾角和指示方向长时间的频繁变化时,则认为刷牙动作行为有发生。本实施例中的高频指每秒3次以上,长时间指10秒以上,频繁指5秒以内变动一次。
步骤S103,若检测到的动作行为是刷牙动作行为,则基于蜂窝的窄带物联网模块1371对外发出无线信号等待连接服务器200。基于蜂窝的窄带物联网模块1371在对外发出无线信号等待连接服务器200时,基于蜂窝的窄带物联网模块1371对外发出无线信号的时间间隔为2-5秒。本实施例为优化电池功耗,基于蜂窝的窄带物联网模块1371在等待连接服务器200时,上午5:00至夜晚24:00之间(认为是忙时)的广播间隔为2秒,凌晨0:00至上午5:00(认为是闲时)的广播间隔为5秒。
在其他实施例中,本步骤中基于蜂窝的窄带物联网模块1371对外发出无线信号的动作也可以不采用智能控制的方式,而是用户采用手动控制的方式来实现。例如:用户通过开关给出指令,启动基于蜂窝的窄带物联网模块1371发出无线信号。
步骤S104,刷牙监控装置130通过基于蜂窝的窄带物联网模块1371发出的无线信号与服务器200建立无线连接。本实施例中,基于蜂窝的窄带物联网模块1371发出无线信号到达网络基站后,再通过网络基站与服务器200建立无线连接。当然,在通信领域应该理解的是在网络基站信号比较弱的盲区,也可以通过增加中继器来达到加强信号传输的目的。
步骤S105,刷牙监控装置130与服务器200建立无线连接后,处理器136将检测得到的刷 牙动作行为转换为行为数据(电信号),数据交换器137对外传输行为数据。
步骤S106,服务器200接收数据交换器137传输的行为数据,并对接收到的行为数据进行处理。服务器200将行为数据进行处理的方式包括服务器200将接收到的行为数据与存储在其内的标准数据进行比对分析,得出比对结果。
如图7所示,步骤S104中基于蜂窝的窄带物联网模块1371与服务器200建立无线连接的实现方式是:步骤S1041,服务器200接收到基于蜂窝的窄带物联网模块1371发出的无线信号后对发出该无线信号的装置进行识别;步骤S1042,服务器200判断发出无线信号的装置是否符合预设条件,若该装置符合预设条件,则与其自动建立无线连接进入到步骤S104。否则重复步骤S1041。
服务器200对发出无线信号的装置进行识别是通过获取该发出无线信号装置的硬件地址(MAC地址),预设条件是指硬件地址的编排规则具有特定的规则,目的在于方便确定该硬件是刷牙监控装置,是则与其建立通信连接。
在其他实施例中,步骤S105中处理器136将检测得到的刷牙动作行为转换为行为数据(电信号)的步骤也可以设于步骤S103中。
本实施例中,如图8所示,在步骤S105之后,还包括步骤S1061,刷牙监控装置130检测行为数据(其他实施例中也可以是检测刷牙动作行为)是否持续产生。S1062,若刷牙监控装置130在一预设时间(如预设时间设为10秒)内未检测到刷牙动作行为或行为数据,则刷牙监控装置130认为用户此次刷牙过程结束。反之,若刷牙监控装置130在一预设时间(如预设时间设为10秒)内持续检测到刷牙动作行为或行为数据,则重复步骤S1061。在步骤S1062之后进入步骤S1063,刷牙监控装置130在得到的行为数据后面加上终止码。
如图9所示,在步骤S105之后(或设在步骤S106之后),还包括步骤S1071和步骤S1072。步骤S1071,刷牙监控装置130检测行为数据是否传输完成。刷牙监控装置130在传输行为数据时,若检测到终止码,则刷牙监控装置130认为行为数据传输完成;或者服务器200在接收行为数据时,检测到终止码,则服务器200认为行为数据传输完成。步骤S1072,若刷牙监控装置130将行为数据都传输至服务器200(即行为数据传输完成),则基于蜂窝的窄带物联网模块1371停止发出无线信号,终止与服务器200的无线连接,刷牙监控装置130进入待机状态;否则重复步骤S105。
本实施例中,服务器200能同时与多个刷牙监控装置130进行通信,并能将接收到的行为数据根据各刷牙监控装置130的不同代码进行区分得到多组行为数据,然后将多组行为数据按代码区分结果逐一进行处理。刷牙监控装置130的代码指硬件地址(MAC地址),逐一进行处理包括对区分结果按代码顺序依次处理或者不按代码顺序随机逐一进行处理。
本实施例中,刷牙监控装置130将行为数据传输至服务器200后,自动删除刷牙监控装置130中完成传输的行为数据。其中,删除完成传输行为数据的动作可以是一组行为数据全部完成传输的情形,即完成一组行为数据后就删除该组行为数据;或者是指一组行为数据部分完成传输的情形,即完成多少行为数据的传输就删除多少行为数据。在其他实施例中,行为数据的删除功能也可以通过手动删除来完成。
本实施例中,服务器200将行为数据进行处理后,自动删除服务器200中完成处理的行为数据,只保留比对结果。在其他实施例中,行为数据和比对结果可以同时保留。
在其他实施例中,还可以选用另一种服务器200,该服务器200能与多个刷牙监控装置130按顺序逐一进行通信(即:服务器200与多个刷牙监控装置130中的一个进行通信,完成行为数据传输后再按顺序与另一个刷牙监控装置130进行通信),并能将接收到的行为数据根据各刷牙监控装置130的不同代码进行区分得到多组行为数据,然后将按代码区分得到的多组行为数据逐一进行处理。刷牙监控装置130的代码指硬件地址(MAC地址),逐一处理包括按区分结果中代码顺序依次处理或者不按代码顺序随机逐一进行处理。
在其他实施例中,还可以选用另一种服务器200,该服务器200能根据需要与多个刷牙监控装置130随机逐一进行通信(即:服务器200与多个刷牙监控装置130中的任意一个进行通信,完成行为数据传输后再与任意另一个刷牙监控装置130进行通信),并能将接收到的行为数据根据各刷牙监控装置130的不同代码进行区分得到多组行为数据,然后将多组行为数据按代码区分结果逐一处理。服务器200能根据需要是指:当刷牙监控装置130发出无线信号,则说明该刷牙监控装置130是需要连接服务器200传输行为数据。刷牙监控装置130的代码指硬件地址(MAC地址)。
综上所述,为更清楚地说明本发明保护所要求保护的内容,本实施例将要求保护的刷牙监控装置的工作方法结合服务器组成一个完整的信息传送系统后,进行解释说明。由于刷牙监控装置130能通过基于蜂窝的窄带物联网模块1371发出无线信号与服务器200直接进行数据传输,从而在向服务器200发送信号时不需要用到手机,刷牙监控装置130在使用时的体验效果更好。又由于刷牙监控装置130只有在确认检测到的动作行为是刷牙动作行为才对外发出无线信号,因此刷牙监控装置130更节约能源,具有节能环保的有益效果。
具体实施例二
如图10所示,本实施例示出了另一种刷牙信息传送方法。其中,本实施例的具体实施环境可参考具体实施例一中的描述。为节约篇幅,在此不再赘述。
如图10所示,该刷牙信息传送方法包括以下步骤:
步骤S201,刷牙监控装置130通过动作传感器132检测用户刷牙动作行为。
步骤S202,刷牙监控装置130判断动作传感器132检测到的动作行为是不是刷牙动作行为。例如:动作传感器132检测到自身有高频率的来回颤动时,或者/和动作传感器132检测到倾角和指示方向长时间频繁变化时,则认为刷牙动作行为有发生。本实施例中的高频指每秒3次以上,长时间指10秒以上,频繁指5秒以内变动一次。
步骤S203,若是则处理器136将检测得到的刷牙动作行为转换为行为数据(电信号)进行存储。
步骤S204,刷牙监控装置130检测刷牙行为数据(其他实施例中也可以是检测刷牙动作行为)是否持续产生。若刷牙监控装置130在一预设时间(如预设时间设为10秒)内未检测到刷牙动作行为或行为数据,则刷牙监控装置130认为用户此次刷牙过程结束,在得到的行为数据的后面加上终止码,进入步骤S205。反之,若刷牙监控装置130在一预设时间(如预设时间设为10秒)内持续检测到刷牙动作行为或行为数据,则重复步骤S204。
步骤S205,基于蜂窝的窄带物联网模块1371对外发出无线信号等待连接服务器200,基于蜂窝的窄带物联网模块1371对外发出无线信号的时间间隔为2-5秒。本实施例为优化电池功耗,上午5:00至夜晚24:00之间(认为是忙时)的广播间隔为2秒,凌晨0:00至上午5:00(认为是闲时)的广播间隔为5秒。
在其他实施例中,本步骤中基于蜂窝的窄带物联网模块1371对外发出无线信号的动作也可以不采用智能控制的方式,而是用户采用手动控制的方式来实现。例如:用户通过开关给出指令,启动基于蜂窝的窄带物联网模块1371发出无线信号。
步骤S206,刷牙监控装置130中的基于蜂窝的窄带物联网模块1371与服务器200建立无线连接。本实施例中,基于蜂窝的窄带物联网模块1371发出无线信号到达网络基站后,再通过网络基站与服务器200建立无线连接。当然,在通信领域应该理解的是在网络基站信号比较弱的盲区,也可以通过增加中继器来达到加强信号传输的目的。
步骤S207,刷牙监控装置130与服务器200建立无线连接后,基于蜂窝的窄带物联网模块1371对外传输行为数据。
步骤S208,服务器200接收数据交换器137传输的行为数据,并对接收到的行为数据进行处理。服务器200将行为数据进行处理的方式包括服务器200将接收到的行为数据与存储在其内的标准数据进行比对分析,得出比对结果。
如图11所示,步骤S206中基于蜂窝的窄带物联网模块1371与服务器200建立无线连接的实现方式是:步骤S2061,服务器200接收到基于蜂窝的窄带物联网模块1371发出的无线信号后对发出该无线信号的装置进行识别;步骤S2062,服务器200判断发出无线信号的装置是否符合预设条件,若该装置符合预设条件,则与其自动建立无线连接进入到步骤S206。否则 重复步骤S2061。
服务器200对发出无线信号的装置进行识别是通过获取该发出无线信号装置的硬件地址(MAC地址),符合预设条件是指硬件地址的编排规则符合一定条件,目的在于当确定该硬件是刷牙监控装置时,则与其建立通信连接。
在其他实施例中,步骤S203中处理器136将检测得到的刷牙动作行为转换为行为数据(电信号)的步骤也可以设于步骤S207中。
如图12所示,在步骤S208之后(或设在步骤S207之后),还包括步骤S2091和步骤S2092。步骤S2091,刷牙监控装置130检测行为数据是否传输完成。刷牙监控装置130在传输行为数据时,若检测到终止码,则刷牙监控装置130认为行为数据传输完成;或者服务器200在接收行为数据时,检测到终止码,则服务器200认为行为数据传输完成。步骤S2092,若刷牙监控装置130将行为数据都传输至服务器200(即行为数据传输完成),则刷牙监控装置130停止发出无线信号,终止与服务器200的无线连接,刷牙监控装置130进入待机状态;否则重复步骤S208。
本实施例中,服务器200能同时与多个刷牙监控装置130进行通信,并能将接收到的行为数据根据各刷牙监控装置130的不同代码进行区分得到多组行为数据,然后将多组行为数据按代码区分结果逐一进行处理。刷牙监控装置130的代码指硬件地址(MAC地址),逐一进行处理包括对区分结果按代码顺序依次处理或者不按代码顺序随机逐一进行处理。
本实施例中,刷牙监控装置130将行为数据传输至服务器200后,自动删除刷牙监控装置130中完成传输的行为数据。其中,删除完成传输行为数据的动作可以是一组行为数据全部完成传输的情形,即完成一组行为数据后就删除该组行为数据;或者是指一组行为数据部分完成传输的情形,即完成多少行为数据的传输就删除多少行为数据。在其他实施例中,行为数据的删除功能也可以通过手动删除来完成。
本实施例中,服务器200将行为数据进行处理后,自动删除服务器200中完成处理的行为数据,只保留比对结果。在其他实施例中,行为数据和比对结果可以同时保留。
在其他实施例中,还可以选用另一种服务器200,该服务器200能与多个刷牙监控装置130按顺序逐一进行通信(即:服务器200与多个刷牙监控装置130中的一个进行通信,完成行为数据传输后再按顺序与另一个刷牙监控装置130进行通信),并能将接收到的行为数据根据各刷牙监控装置130的不同代码进行区分得到多组行为数据,然后将按代码区分得到的多组行为数据逐一进行处理。刷牙监控装置130的代码指硬件地址(MAC地址),逐一处理包括对区分结果按代码顺序依次处理或者不按代码顺序随机逐一进行处理。
在其他实施例中,还可以选用另一种服务器200,该服务器200能根据需要与多个刷牙监控 装置130随机逐一进行通信(即:服务器200与多个刷牙监控装置130中的任意一个进行通信,完成行为数据传输后再与任意另一个刷牙监控装置130进行通信),并能将接收到的行为数据根据各刷牙监控装置130的不同代码进行区分得到多组行为数据,然后将多组行为数据按代码区分结果逐一处理。服务器200能根据需要是指:当刷牙监控装置130发出无线信号,则说明该刷牙监控装置130是需要连接服务器200传输行为数据。刷牙监控装置130的代码指硬件地址(MAC地址)。
综上所述,为更清楚地说明本发明保护所要求保护的内容,本实施例将要求保护的刷牙监控装置的工作方法结合服务器组成一个完整的信息传送系统后,进行解释说明。由于刷牙监控装置130能通过基于蜂窝的窄带物联网模块1371发出无线信号与服务器200直接进行数据传输,从而在向服务器200发送信号时不需要用到手机,刷牙监控装置130在使用时的体验效果更好。又由于刷牙监控装置130只有在确认检测到的动作行为是刷牙动作行为才对外发出无线信号,因此刷牙监控装置130更节约能源,具有节能环保的有益效果。
具体实施例三
如图1所示,其示出了一种刷牙信息传送系统的实施环境示意图。该信息传送系统实施例中未详尽描述的实施细节,可以参考上述具体实施例一对应的方法实施例。该信息传送系统包括牙刷基座100和服务器200。牙刷基座100用于连接在牙刷手柄上(如图3所示),从而检测用户刷牙行为得到行为数据。牙刷基座100包括刷牙监控装置130和为该刷牙监控装置130供电的供电组件140,牙刷基座100的具体结构请参考实施例一,为节约篇幅,在此不再赘述。
如图5、图13所示,刷牙监控装置130包括动作传感器132、第一检测单元133、第二检测单元134、存储单元135、处理器136、数据交换器137、停止单元139和清除模块1311,数据交换器137包括基于蜂窝的窄带物联网模块1371。其中,动作传感器132用于检测用户动作行为;处理器136用于判断动作传感器132检测到的动作行为是不是刷牙动作行为,若是则发出肯定电信号,并将刷牙动作行为转换为行为数据(电信号);存储单元135用于存储该行为数据;基于蜂窝的窄带物联网模块1371用于在接收到肯定电信号后,将对外发出无线信号等待连接服务器200。本实施例中,基于蜂窝的窄带物联网模块1371在与服务器200建立无线连接前,对外发出无线信号的时间间隔为2-5秒。其中,基于蜂窝的窄带物联网是低功耗的广域网技术,包括NB-Iot(Narrow Band Internet of Things),基于蜂窝的窄带物联网模块1371有例如中兴微电子开发的Wisefone7100,华为开发的SOC芯片。本实施例优选华为研究开发的低能耗芯片。基于蜂窝的窄带物联网模块1371与服务器200建立无线连接后,将行为数据传输至服务器200,然后由服务器200对接收到的行为数据进行处理。
本实施例中,处理器136判断动作传感器132检测到的动作行为是不是刷牙动作行为的实 现方式是:处理器136通过对动作传感器132检测到的动作行为进行分析来判断刷牙动作行为是否发生。例如:动作传感器132检测到自身有高频率的来回颤动时,或者/和动作传感器132检测到倾角和指示方向长时间频繁变化时,则认为刷牙动作行为有发生。本实施例中的高频指每秒3次以上,长时间指10秒以上,频繁指5秒以内变动一次。
本实施例中,在每次刷牙过程中,第一检测单元133还会检测刷牙动作行为或行为数据是否持续产生,若第一检测单元133在一预设时间段内未检测到刷牙动作行为或行为数据,则第一检测单元133认为用户此次刷牙的过程结束,发出用户此次刷牙过程结束的结束电信号。此时,第一检测单元133停止检测用户动作行为,处理器136在得到的行为数据的最后加上终止码。其中,预设时间设为10秒。
本实施例中,服务器200在接收到无线信号后,由识别程序单元(图未示)对发出无线信号的装置进行识别并判断识别结果是否符合预设条件。若符合预设条件,则服务器200与基于蜂窝的窄带物联网模块1371自动建立通信连接。设置预设条件的目的在于判断发出无线信号的装置是不是刷牙监控装置。
本实施例中,第二检测单元134用于检测行为数据是否完成传输,完成传输则给出完成信号;停止单元139收到完成信号,则基于蜂窝的窄带物联网模块1371停止发出无线信号,刷牙监控装置130与服务器200终止通信连接,刷牙监控装置130进入待机状态。第二检测单元134检测行为数据是否完成传输的方案可以是:若基于蜂窝的窄带物联网模块1371在传输行为数据时,第二检测单元134检测到终止码,则认为行为数据传输完成;或者在刷牙监控装置130每次完成刷牙动作行为得到行为数据后,第二检测单元134检测基于蜂窝的窄带物联网模块1371发出的行为数据与存储在存储单元135中的行为数据是否相同,相同则说明行为数据完成传输。
本实施例中,服务器200能同时与多个刷牙监控装置130进行通信,并能将接收到的行为数据根据各刷牙监控装置130的不同代码进行区分得到多组行为数据,然后将多组行为数据按代码区分结果逐一传输至服务器200。刷牙监控装置130的代码指硬件地址(MAC地址)。本发明中所指的多个指两个以上。具体地,识别程序单元(图未示)识别刷牙监控装置130的代码,然后对接收到的行为数据根据各刷牙监控装置130的不同代码进行区分得到多组行为数据,服务器200将多组行为数据逐一进行处理。
本实施例中,清除模块1311用于在刷牙监控装置130将行为数据传输至服务器200后,自动删除刷牙监控装置130中完成传输的行为数据。其中,完成传输可以是指一组行为数据全部完成传输的情形,或者是指一组行为数据部分完成传输的情形。
在其他实施例中,第二检测单元134也可以设置于服务器200内,第二检测单元134用于 检测基于蜂窝的窄带物联网模块1371是否完成行为数据传输,完成传输则给出完成信号;停止单元139若接收到完成信号,则基于蜂窝的窄带物联网模块1371停止发出无线信号,刷牙监控装置130与服务器200终止通信连接,刷牙监控装置130进入待机状态。第二检测单元134检测行为数据是否完成传输的实现方案可以是:在刷牙监控装置130完成刷牙动作行为后,处理器136在得到的行为数据后面加设一个终止码,若服务器200在接收行为数据时,第二检测单元134检测到终止码,则认为行为数据传输完成。
在其他实施例中,还可以选用另一种服务器200,该服务器200能与多个刷牙监控装置130按顺序逐一进行通信,并能将接收到的行为数据根据各刷牙监控装置130的不同代码进行区分得到多组行为数据,然后将多组行为数据逐一进行处理。具体地,识别程序单元(图未示)识别刷牙监控装置130的代码,然后对接收到的行为数据根据各刷牙监控装置130的不同代码进行区分得到多组行为数据,服务器200将多组行为数据逐一进行处理。
在其他实施例中,还可以选用另一种服务器200,该服务器200能根据需要与多个刷牙监控装置130随机逐一进行通信,并能将接收到的行为数据根据各刷牙监控装置130的不同代码进行区分得到多组行为数据,然后将多组行为数据按代码区分结果逐一进行处理。具体地,识别程序单元(图未示)识别刷牙监控装置130的代码,然后对接收到的行为数据根据各刷牙监控装置130的不同代码进行区分得到多组行为数据,服务器200将多组行为数据逐一进行处理。
综上所述,为更清楚地说明本发明保护所要求保护的内容,本实施例将要求保护的刷牙监控装置的工作方法结合服务器组成一个完整的信息传送系统后,进行解释说明。由于刷牙监控装置130能通过基于蜂窝的窄带物联网模块1371发出无线信号与服务器200直接进行数据传输,从而在向服务器200发送信号时不需要用到手机,刷牙监控装置130在使用时的体验效果更好。又由于刷牙监控装置130只有在确认检测到的动作行为是刷牙动作行为才对外发出无线信号,因此缩短了刷牙监控装置130对外发出无线信号的时间,刷牙监控装置130更节约能源,具有节能环保的有益效果。
在其他实施环境中,如图14所示,其示出了上述实施例所描述的刷牙信息传送系统的另一种实施环境示意图,其将牙刷400'换为牙刷基座100以达到本实施例相同的功能和效果。其中,牙刷400'包括刷毛部410、和手持部420,手持部420内还设有本实施例所描述的刷牙监控装置130。
具体实施例四
该实施例公开的刷牙信息传送系统是对应具体实施例二中的方法实施例。该实施例与具体实施例三的主要区别在于:基于蜂窝的窄带物联网模块1371对外发出无线信号的触发时机不 同。在具体实施例三中,基于蜂窝的窄带物联网模块1371是在处理器136发出肯定电信号(判断用户是在刷牙)后,对外发出无线信号等待连接之前连接过的服务器200。在本实施例中,处理器136发出肯定电信号(判断用户是在刷牙)的目的是为触发数据交换器137工作;而数据交换器137是在接收到第一检测单元133发出的结束电信号(用户刷牙动作行为已结束)后,才对外发出无线信号等待连接之前连接过的服务器200。具体实施例三的工作原理是参考图6示出的方法流程,本实施例的工作原理请参考图10示出的方法流程。
除上述主要区别外,本实施例具体实施的单元结构说明与具体实施例三的单元结构说明相似,为节约篇幅,在参考具体实施例二中方法描述的前提下,具体实施方案描述在此不再赘述。
由于刷牙监控装置130能通过基于蜂窝的窄带物联网模块1371发出无线信号与服务器200直接进行数据传输,从而在向服务器200发送信号时不需要用到手机,刷牙监控装置130在使用时的体验效果更好。又由于刷牙监控装置130只有在确认检测到的动作行为是刷牙动作行为才对外发出无线信号,因此缩短了刷牙监控装置130对外发出无线信号的时间,刷牙监控装置130更节约能源,具有节能环保的有益效果。
需要说明的是,上述实施例提供的刷牙信息传送系统大多是以功能单元的划分进行举例说明。在实际应用中,可以根据需要而将上述功能分配由不同的功能单元或模块来完成,即将单元的内部结构划分成不同的功能模块,以完成以上描述的全部或者部分功能。
本领域普通技术人员可以理解,实现上述实施例的全部或部分步骤可以通过硬件来完成,也可以通过程序指令相关的硬件完成,所述的程序可以存储于一种计算机可读存储介质中,上述提到的存储介质可以是只读存储器或磁盘或光盘等。
以上应用具体个例对本发明的原理及实施方式进行了阐述,应该理解,以上实施方式只是用于帮助理解本发明,而不应理解为对本发明的限制。对于本领域的一般技术人员,依据本发明的思想,对本发明的结构形式或构造所做出的任何微小改进或等效替代,均应包含在其保护范围之内。

Claims (38)

  1. 一种刷牙监控装置的工作方法,包括以下步骤:a、刷牙监控装置检测用户动作行为;b、若检测到的动作行为是刷牙动作行为,则基于蜂窝的窄带物联网模块发出无线信号等待连接外部服务器;c、在建立无线连接后,将所述刷牙动作行为转换为行为数据对外发送。
  2. 根据权利要求1所述的工作方法,其特征在于:还包括检测用户刷牙过程是否结束的步骤,所述刷牙监控装置检测所述刷牙动作行为或行为数据是否持续产生,若在一预设时间段内未检测到所述刷牙动作行为或行为数据,则认为用户此次刷牙过程结束。
  3. 根据权利要求1所述的工作方法,其特征在于:在所述c步骤之后还包括检测所述行为数据是否传输完成的步骤,若所述刷牙监控装置在传输所述行为数据时检测到终止码,则认为所述行为数据传输完成。
  4. 根据权利要求1所述的工作方法,其特征在于:在所述c步骤之后还包括终止无线连接的步骤,若所述刷牙监控装置将所述行为数据完成对外发送,则所述刷牙监控装置停止发出无线信号。
  5. 根据权利要求1所述的工作方法,其特征在于:在所述b步骤中所述刷牙监控装置发出无线信号的时间间隔为2-5秒。
  6. 根据权利要求1所述的工作方法,其特征在于:还包括删除所述行为数据的步骤,所述刷牙监控装置将所述行为数据完成传输后,自动删除所述刷牙监控装置中完成传输的行为数据。
  7. 根据权利要求1所述的工作方法,其特征在于:所述c步骤中所述刷牙动作行为转换为行为数据的动作更改为在所述b步骤中进行。
  8. 一种刷牙监控装置的工作方法,包括以下步骤:a、刷牙监控装置检测用户动作行为;b、若检测到的动作行为是刷牙动作行为,则将所述刷牙动作行为转换为行为数据,并进一步检测所述行为数据或刷牙动作行为是否持续产生;c、若在一预设时间段内未检测到所述行为数据或刷牙动作行为,则基于蜂窝的窄带物联网模块发出无线信号等待连接服务器;d、在建立无线连接后,将所述行为数据对外发送。
  9. 根据权利要求8所述的工作方法,其特征在于:在所述d步骤之后还包括检测所述行为数据是否传输完成的步骤,若所述刷牙监控装置在传输所述行为数据时检测到终止码,则认为所述行为数据传输完成。
  10. 根据权利要求8所述的工作方法,其特征在于:在所述d步骤之后还包括终止无线连接的步骤,若所述刷牙监控装置将所述行为数据完成对外发送,则所述刷牙监控装置停止发出无线信号。
  11. 根据权利要求8所述的工作方法,其特征在于:在所述c步骤中所述刷牙监控装置发出无 线信号的时间间隔为2-5秒。
  12. 根据权利要求8所述的工作方法,其特征在于:还包括删除所述行为数据的步骤,所述刷牙监控装置将所述行为数据完成传输后,自动删除所述刷牙监控装置中完成传输的行为数据。
  13. 根据权利要求8所述的工作方法,其特征在于:所述b步骤中所述刷牙动作行为转换为行为数据的动作更改为在所述d步骤中进行。
  14. 一种刷牙监控装置,其特征在于:所述刷牙监控装置包括动作传感器、处理器和基于蜂窝的窄带物联网模块,所述动作传感器用于检测用户动作行为;所述处理器用于判断所述动作传感器检测到的动作行为是不是刷牙动作行为,若是则发出肯定电信号,将所述刷牙动作行为转换为行为数据;所述基于蜂窝的窄带物联网模块用于在所述肯定电信号后,发出无线信号等待连接服务器,在建立无线连接后,所述基于蜂窝的窄带物联网模块将所述行为数据对外发送。
  15. 根据权利要求14所述的刷牙监控装置,其特征在于:还包括第一检测单元,所述第一检测单元用于检测所述刷牙动作行为或行为数据是否持续产生,若在一预设时间段内未检测到所述刷牙动作行为或行为数据,则认为用户此次刷牙过程结束。
  16. 根据权利要求14所述的刷牙监控装置,其特征在于:还包括第二检测单元和停止单元,所述第二检测单元用于检测所述行为数据是否完成传输,完成传输则给出完成信号;所述停止单元收到完成信号,则所述基于蜂窝的窄带物联网模块停止发出无线信号。
  17. 根据权利要求14所述的刷牙监控装置,其特征在于:所述基于蜂窝的窄带物联网模块在等待建立无线连接时,发出无线信号的时间间隔为2-5秒。
  18. 根据权利要求14所述的刷牙监控装置,其特征在于:还包括供电组件,所述供电组件用于为所述刷牙监控装置供电。
  19. 根据权利要求14所述的刷牙监控装置,其特征在于:还包括存储单元,所述存储单元用于存储所述行为数据。
  20. 根据权利要求14所述的刷牙监控装置,其特征在于:还包括清除模块,所述清除模块用于在所述行为数据完成传输后,自动删除所述刷牙监控装置中完成传输的行为数据。
  21. 一种刷牙监控装置,其特征在于:所述刷牙监控装置包括动作传感器、处理器、第一检测单元和基于蜂窝的窄带物联网模块,所述动作传感器用于检测用户动作行为;所述处理器用于判断所述动作传感器检测到的动作行为是不是刷牙动作行为,若是则发出肯定电信号,将所述刷牙动作行为转换为行为数据;所述第一检测单元在接收到所述肯定电信号后,检测所述刷牙动作行为或行为数据是否持续产生,若在一预设时间段内未检测到所述刷牙动作行为或行为数据,则发出用户此次刷牙过程结束的结束电信号;所述基于蜂窝的窄带物联网模块 用于在所述结束电信号后,发出无线信号等待连接服务器,在建立无线连接后,所述基于蜂窝的窄带物联网模块将所述行为数据对外发送。
  22. 根据权利要求24所述的刷牙监控装置,其特征在于:还包括第二检测单元和停止单元,所述第二检测单元用于检测所述行为数据是否完成传输,完成传输则给出完成信号;所述停止单元收到完成信号,则所述基于蜂窝的窄带物联网模块停止发出无线信号。
  23. 根据权利要求24所述的刷牙监控装置,其特征在于:所述基于蜂窝的窄带物联网模块在等待建立无线连接时,发出无线信号的时间间隔为2-5秒。
  24. 根据权利要求24所述的刷牙监控装置,其特征在于:还包括供电组件,所述供电组件用于为所述刷牙监控装置供电。
  25. 根据权利要求24所述的刷牙监控装置,其特征在于:还包括存储单元,所述存储单元用于存储所述行为数据。
  26. 根据权利要求24所述的刷牙监控装置,其特征在于:还包括清除模块,所述清除模块用于在所述行为数据完成传输后,自动删除所述刷牙监控装置中完成传输的所述行为数据。
  27. 一种刷牙监控装置,其特征在于:所述刷牙监控装置包括动作传感器、处理器和基于蜂窝的窄带物联网模块,所述动作传感器用于检测用户动作行为;所述处理器用于将所述刷牙动作行为转换为行为数据;所述基于蜂窝的窄带物联网模块用于发出无线信号连接服务器,在建立无线连接后,所述基于蜂窝的窄带物联网模块将所述行为数据对外发送。
  28. 根据权利要求27所述的刷牙监控装置,其特征在于:还包括第一检测单元,所述第一检测单元用于检测所述刷牙动作行为或行为数据是否持续产生,若在一预设时间段内未检测到所述刷牙动作行为或行为数据,则认为用户此次刷牙过程结束。
  29. 根据权利要求27所述的刷牙监控装置,其特征在于:还包括第二检测单元和停止单元,所述第二检测单元用于检测所述行为数据是否完成传输,完成传输则给出完成信号;所述停止单元收到完成信号,则所述基于蜂窝的窄带物联网模块停止发出无线信号。
  30. 根据权利要求27所述的刷牙监控装置,其特征在于:还包括存储单元,所述存储单元用于存储所述行为数据。
  31. 根据权利要求27所述的刷牙监控装置,其特征在于:还包括清除模块,所述清除模块用于在所述行为数据完成传输后,自动删除所述刷牙监控装置中完成传输的行为数据。
  32. 一种牙刷,包括刷毛部和手持部,其特征在于:还包括权利要求14至31中任一项所述的刷牙监控装置。
  33. 一种牙刷基座,包括外壳,其特征在于:所述外壳内设有权利要求14至31中任一项所述的刷牙监控装置。
  34. 一种刷牙监控装置的工作方法,包括以下步骤:a、刷牙监控装置检测用户动作行为;b、将所述刷牙动作行为转换为行为数据;c、基于蜂窝的窄带物联网模块发出无线信号与外部服务器建立无线连接;d、在建立无线连接后,将所述行为数据对外发送。
  35. 根据权利要求34所述的工作方法,其特征在于:还包括检测用户刷牙过程是否结束的步骤,所述刷牙监控装置检测所述刷牙动作行为或行为数据是否持续产生,若在一预设时间段内未检测到所述刷牙动作行为或行为数据,则认为用户此次刷牙过程结束。
  36. 根据权利要求34所述的工作方法,其特征在于:在所述c步骤之后还包括检测所述行为数据是否传输完成的步骤,若所述刷牙监控装置在传输所述行为数据时检测到终止码,则认为所述行为数据传输完成。
  37. 根据权利要求34所述的工作方法,其特征在于:在所述c步骤之后还包括终止无线连接的步骤,若所述刷牙监控装置将所述行为数据完成对外发送,则所述刷牙监控装置停止发出无线信号。
  38. 根据权利要求34所述的工作方法,其特征在于:还包括删除所述行为数据的步骤,所述刷牙监控装置将所述行为数据完成传输后,自动删除所述刷牙监控装置中完成传输的行为数据。
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Families Citing this family (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN106880164A (zh) * 2017-03-21 2017-06-23 郑洪� 刷牙信息传送方法及刷牙信息传送系统
CN106880163A (zh) * 2017-03-21 2017-06-23 郑洪� 刷牙监控装置的工作方法、刷牙监控装置、牙刷及牙刷基座
CN108158688A (zh) * 2017-12-30 2018-06-15 郑洪� 刷牙数据的处理方法、存储设备、刷牙检测装置、牙刷基座、牙刷、刷牙监控系统
CN108158202A (zh) * 2017-12-30 2018-06-15 郑洪� 刷牙数据的处理方法、存储设备、刷牙监控系统、刷牙检测装置、牙刷基座、牙刷
CN108158203A (zh) * 2017-12-30 2018-06-15 郑洪� 刷牙数据的处理方法、存储设备、刷牙检测装置、牙刷基座、牙刷及刷牙监控系统

Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20140033034A1 (en) * 2013-01-22 2014-01-30 Ashtel Studios, Inc. Apparatus for capturing brushing habits
CN104397978A (zh) * 2014-11-25 2015-03-11 珠海派诺科技股份有限公司 一种趣味引导型智能牙刷
CN204562440U (zh) * 2014-01-09 2015-08-19 深圳市生活智能科技有限公司 监测刷牙效果的系统
CN106880163A (zh) * 2017-03-21 2017-06-23 郑洪� 刷牙监控装置的工作方法、刷牙监控装置、牙刷及牙刷基座
CN106880164A (zh) * 2017-03-21 2017-06-23 郑洪� 刷牙信息传送方法及刷牙信息传送系统
CN206630216U (zh) * 2017-03-21 2017-11-14 郑洪� 刷牙监控装置、牙刷及牙刷基座

Family Cites Families (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2016104442A1 (ja) * 2014-12-22 2016-06-30 サンスター株式会社 歯ブラシモジュール、歯ブラシ用アタッチメント、歯磨き補助システム、歯磨き評価システム、歯磨き補助装置、及び歯磨き補助プログラム
CN204861777U (zh) * 2015-08-19 2015-12-16 秦立新 刷牙动作检测校正装置、牙刷、远程控制装置
CN205338084U (zh) * 2015-12-20 2016-06-29 郑洪� 牙刷基座及刷牙监控系统
CN106037973B (zh) * 2016-06-06 2018-03-23 北京希澈科技有限公司 一种电动牙刷的控制方法和装置
CN205994583U (zh) * 2016-06-11 2017-03-08 淮阴工学院 多自由度智能口腔清洁系统

Patent Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20140033034A1 (en) * 2013-01-22 2014-01-30 Ashtel Studios, Inc. Apparatus for capturing brushing habits
CN204562440U (zh) * 2014-01-09 2015-08-19 深圳市生活智能科技有限公司 监测刷牙效果的系统
CN104397978A (zh) * 2014-11-25 2015-03-11 珠海派诺科技股份有限公司 一种趣味引导型智能牙刷
CN106880163A (zh) * 2017-03-21 2017-06-23 郑洪� 刷牙监控装置的工作方法、刷牙监控装置、牙刷及牙刷基座
CN106880164A (zh) * 2017-03-21 2017-06-23 郑洪� 刷牙信息传送方法及刷牙信息传送系统
CN206630216U (zh) * 2017-03-21 2017-11-14 郑洪� 刷牙监控装置、牙刷及牙刷基座

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