WO2022007720A1 - Procédé de détection de port pour un dispositif pouvant être porté, appareil et dispositif électronique - Google Patents

Procédé de détection de port pour un dispositif pouvant être porté, appareil et dispositif électronique Download PDF

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Publication number
WO2022007720A1
WO2022007720A1 PCT/CN2021/104325 CN2021104325W WO2022007720A1 WO 2022007720 A1 WO2022007720 A1 WO 2022007720A1 CN 2021104325 W CN2021104325 W CN 2021104325W WO 2022007720 A1 WO2022007720 A1 WO 2022007720A1
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Prior art keywords
wearing
wearable device
wearing state
electronic device
state
Prior art date
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PCT/CN2021/104325
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English (en)
Chinese (zh)
Inventor
张孝甜
陈勇
聂帅
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华为技术有限公司
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Publication of WO2022007720A1 publication Critical patent/WO2022007720A1/fr

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    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B5/00Measuring for diagnostic purposes; Identification of persons
    • A61B5/02Detecting, measuring or recording pulse, heart rate, blood pressure or blood flow; Combined pulse/heart-rate/blood pressure determination; Evaluating a cardiovascular condition not otherwise provided for, e.g. using combinations of techniques provided for in this group with electrocardiography or electroauscultation; Heart catheters for measuring blood pressure
    • A61B5/0205Simultaneously evaluating both cardiovascular conditions and different types of body conditions, e.g. heart and respiratory condition
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B5/00Measuring for diagnostic purposes; Identification of persons
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B5/00Measuring for diagnostic purposes; Identification of persons
    • A61B5/02Detecting, measuring or recording pulse, heart rate, blood pressure or blood flow; Combined pulse/heart-rate/blood pressure determination; Evaluating a cardiovascular condition not otherwise provided for, e.g. using combinations of techniques provided for in this group with electrocardiography or electroauscultation; Heart catheters for measuring blood pressure
    • A61B5/024Detecting, measuring or recording pulse rate or heart rate
    • A61B5/02438Detecting, measuring or recording pulse rate or heart rate with portable devices, e.g. worn by the patient
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B5/00Measuring for diagnostic purposes; Identification of persons
    • A61B5/145Measuring characteristics of blood in vivo, e.g. gas concentration, pH value; Measuring characteristics of body fluids or tissues, e.g. interstitial fluid, cerebral tissue
    • A61B5/14542Measuring characteristics of blood in vivo, e.g. gas concentration, pH value; Measuring characteristics of body fluids or tissues, e.g. interstitial fluid, cerebral tissue for measuring blood gases
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B5/00Measuring for diagnostic purposes; Identification of persons
    • A61B5/145Measuring characteristics of blood in vivo, e.g. gas concentration, pH value; Measuring characteristics of body fluids or tissues, e.g. interstitial fluid, cerebral tissue
    • A61B5/1455Measuring characteristics of blood in vivo, e.g. gas concentration, pH value; Measuring characteristics of body fluids or tissues, e.g. interstitial fluid, cerebral tissue using optical sensors, e.g. spectral photometrical oximeters
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B5/00Measuring for diagnostic purposes; Identification of persons
    • A61B5/145Measuring characteristics of blood in vivo, e.g. gas concentration, pH value; Measuring characteristics of body fluids or tissues, e.g. interstitial fluid, cerebral tissue
    • A61B5/1455Measuring characteristics of blood in vivo, e.g. gas concentration, pH value; Measuring characteristics of body fluids or tissues, e.g. interstitial fluid, cerebral tissue using optical sensors, e.g. spectral photometrical oximeters
    • A61B5/14551Measuring characteristics of blood in vivo, e.g. gas concentration, pH value; Measuring characteristics of body fluids or tissues, e.g. interstitial fluid, cerebral tissue using optical sensors, e.g. spectral photometrical oximeters for measuring blood gases
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B5/00Measuring for diagnostic purposes; Identification of persons
    • A61B5/68Arrangements of detecting, measuring or recording means, e.g. sensors, in relation to patient
    • A61B5/6801Arrangements of detecting, measuring or recording means, e.g. sensors, in relation to patient specially adapted to be attached to or worn on the body surface
    • A61B5/6802Sensor mounted on worn items
    • A61B5/681Wristwatch-type devices
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01DMEASURING NOT SPECIALLY ADAPTED FOR A SPECIFIC VARIABLE; ARRANGEMENTS FOR MEASURING TWO OR MORE VARIABLES NOT COVERED IN A SINGLE OTHER SUBCLASS; TARIFF METERING APPARATUS; MEASURING OR TESTING NOT OTHERWISE PROVIDED FOR
    • G01D21/00Measuring or testing not otherwise provided for
    • G01D21/02Measuring two or more variables by means not covered by a single other subclass
    • GPHYSICS
    • G16INFORMATION AND COMMUNICATION TECHNOLOGY [ICT] SPECIALLY ADAPTED FOR SPECIFIC APPLICATION FIELDS
    • G16HHEALTHCARE INFORMATICS, i.e. INFORMATION AND COMMUNICATION TECHNOLOGY [ICT] SPECIALLY ADAPTED FOR THE HANDLING OR PROCESSING OF MEDICAL OR HEALTHCARE DATA
    • G16H40/00ICT specially adapted for the management or administration of healthcare resources or facilities; ICT specially adapted for the management or operation of medical equipment or devices
    • G16H40/60ICT specially adapted for the management or administration of healthcare resources or facilities; ICT specially adapted for the management or operation of medical equipment or devices for the operation of medical equipment or devices
    • GPHYSICS
    • G16INFORMATION AND COMMUNICATION TECHNOLOGY [ICT] SPECIALLY ADAPTED FOR SPECIFIC APPLICATION FIELDS
    • G16HHEALTHCARE INFORMATICS, i.e. INFORMATION AND COMMUNICATION TECHNOLOGY [ICT] SPECIALLY ADAPTED FOR THE HANDLING OR PROCESSING OF MEDICAL OR HEALTHCARE DATA
    • G16H50/00ICT specially adapted for medical diagnosis, medical simulation or medical data mining; ICT specially adapted for detecting, monitoring or modelling epidemics or pandemics
    • G16H50/30ICT specially adapted for medical diagnosis, medical simulation or medical data mining; ICT specially adapted for detecting, monitoring or modelling epidemics or pandemics for calculating health indices; for individual health risk assessment
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02JCIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
    • H02J50/00Circuit arrangements or systems for wireless supply or distribution of electric power
    • H02J50/10Circuit arrangements or systems for wireless supply or distribution of electric power using inductive coupling
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02JCIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
    • H02J7/00Circuit arrangements for charging or depolarising batteries or for supplying loads from batteries
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02JCIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
    • H02J7/00Circuit arrangements for charging or depolarising batteries or for supplying loads from batteries
    • H02J7/0013Circuit arrangements for charging or depolarising batteries or for supplying loads from batteries acting upon several batteries simultaneously or sequentially

Definitions

  • the present application relates to the technical field of smart wearable devices, and in particular, to a wearable device detection method, device, and electronic device.
  • Smart wearable devices represented by smart bracelets and watches are a newly emerging technology field. Smart wearable devices can track users' daily activities, sleep and eating habits.
  • User data collected by smart wearable devices can be synchronized with iOS devices, Android (Android) devices, and/or cloud platforms, etc., to help users understand and improve their health status, obtain exercise data, and so on.
  • iOS devices Samsung (Android) devices
  • cloud platforms etc.
  • the smart wearable device judges the user's health, exercise and other conditions by detecting the user's real-time or period of time data.
  • the measurement results will be affected by the way of wearing. For example, in heart health research, more than 15% of the detection failures are caused by wearing errors, and the user is wearing the wearer. When using the device, sometimes you can't tell if you're wearing it correctly.
  • the embodiments of the present application provide a wear detection method for a wearable device, which can solve the problem of insufficient accuracy of wear detection in the related art.
  • an embodiment of the present application provides a method for detecting wearing of a wearable device, which is applied to a wearable device.
  • the method for detecting a wearable device includes: the wearable device acquires one or more physiological parameter data; the wearable device obtains data of one or more physiological parameters; The wearing state of the wearable device is acquired according to the one or more physiological parameter data; the wearable device pushes a wearing suggestion according to the wearing state.
  • the wearing state is obtained according to one or more physiological parameter data obtained by the wearable device, and then the wearing suggestion is pushed to the user according to the wearing state.
  • verifying the wearing state according to one or more physiological parameter data can adapt to more application scenarios.
  • information of multiple dimensions is utilized, which improves the accuracy of the wearing verification result.
  • giving the user wearing advice based on the wearing verification result can guide the user to wear the wearable device correctly and improve the accuracy of subsequent data collection.
  • the method for detecting wearing of a wearable device provided in the first aspect may also be applied to an electronic device that establishes a wireless communication connection with the wearable device.
  • an electronic device such as a mobile phone or a tablet computer or the like.
  • the wearable device pushes a wearing suggestion according to the wearing state, including:
  • the wearable device determines that the wearing state satisfies the first condition, push a wearing suggestion according to the wearing state;
  • the wearing detection method further includes:
  • the wearable device determines that the wearing state satisfies the second condition, no wearing suggestion is pushed.
  • the wearable device determines that the wearing state satisfies a certain condition, that is, the first condition will push the wearing suggestion; the wearable device determines that the wearing state satisfies a certain condition, that is, the second condition does not push the wearing suggestion.
  • Wearable devices do not push wearing suggestions to users every time they obtain the wearing status, which can reduce the number of times of pushing wearing suggestions to users, reduce interaction costs, and improve user experience.
  • the wearing state includes wrong wearing or correct wearing
  • the wearable device determines that the wearing state satisfies the first condition, including:
  • the wearable device determines that the cumulative number of times that the wearing state is a wearing error is equal to or greater than a preset number of times threshold, or determines that the wearing state is a wearing error;
  • the wearable device determines that the wearing state satisfies the second condition, including:
  • the wearable device determines that the cumulative number of times that the wearing state is incorrectly worn is less than the preset number of times threshold, or determines that the wearing state is correctly worn.
  • the wearable device determines that the cumulative number of wearing errors is equal to or greater than the preset number of times threshold before the wearable device pushes the wearing suggestion, otherwise it does not push the wearing suggestion. Wearable devices will not push wearing suggestions to users every time a wearing error is detected, which can reduce the number of times of pushing wearing suggestions to users, reduce interaction costs, and improve user experience.
  • the wearable device pushes a wearing suggestion according to the wearing state, including:
  • the wearable device determines that the wearing state is misplaced, and pushes a wearing suggestion for adjusting the wearing position; or, the wearable device determines that the wearing state is too loose, and pushes a wearing suggestion for a tightening device.
  • the wearable device determines that the wearing state is misplaced or too loose, and pushes a corresponding wearing suggestion, which can guide the user to adjust the wearing state in a more targeted manner and improve the accuracy of subsequent measurements.
  • the wearable device acquires the wearing state of the wearable device according to one physiological parameter data, including:
  • the wearable device determines a first abnormal time period in which the physiological parameter data is abnormal
  • the duration of the first abnormal time period is equal to or greater than the first preset duration, it is determined that the wearing state of the wearable device is a wearing error.
  • the wearable device acquires the wearing state of the wearable device according to multiple physiological parameter data, including:
  • the wearable device determines a second abnormal time period in which multiple physiological parameter data are abnormal at the same time
  • the duration of the second abnormal time period is equal to or greater than the preset time period, it is determined that the wearing state of the wearable device is a wearing error.
  • a quantitative method of how to obtain the wearing state of the wearable device according to a plurality of physiological parameter data is provided, and the computing power cost is low, which makes the solution easy to implement.
  • the time period in which multiple physiological parameter data are abnormal at the same time is considered, and the threshold for the duration is set to ensure the accuracy of the wearing verification result.
  • the wearable device includes a sensor, and the sensor is used to collect the plurality of physiological parameter data.
  • the sensor may be an optical sensor.
  • the physiological parameter data used for verifying the wearing state comes from the same hardware, the correlation between different physiological parameter data is very high. Changes in the wearing state of wearable devices will be reflected in different physiological parameter data at the same time. That is to say, wrong wearing state will cause abnormal physiological parameter data at the same time. Therefore, in this implementation manner, the wearing state of the wearable device is verified based on the physiological parameter data collected by the same hardware, which can make the wearing verification result more accurate.
  • the one or more physiological parameter data includes one or more of heart rate data, blood oxygen data and blood pressure data.
  • the wearing detection method further includes:
  • the wearable device pushes a query to confirm the wearing status
  • the wearable device pushes a wearing instruction corresponding to the wearing state in response to the received first operation input by the user.
  • the wearable device verifies the wearing state and pushes wearing suggestions, and on the other hand, it combines user confirmation. After the user confirms whether there is a detected wearing error behavior, the wearable device pushes the wearing instructions corresponding to the wearing state.
  • the wearable device pushing a query for confirming the wearing state includes: the wearable device pushing a query whether the wearable device is worn.
  • the wearable device pushes a query on whether to wear the wearable device to the user, and determines that the wearable device is in the wearing state on the basis of , which can push wearing instructions in a targeted manner to guide users to wear wearable devices efficiently and accurately.
  • the wearing error includes wearing in a wrong position or wearing too loosely.
  • the wearing detection method further includes:
  • the wearable device determines that the wearing state is correct, and does not push a wearing suggestion.
  • the wearable device acquires one or more physiological parameter data, including:
  • the wearable device is determined to be worn by the user, and obtains one or more physiological parameter data.
  • the wearable device may include sensors that can be used to detect whether the wearable device is worn by the user. Based on the detection data from these sensors, it can be determined whether the wearable device is worn by the user.
  • the wearing state is verified, which can save computing power costs.
  • the wearable device includes at least one of a proximity light sensor, a distance sensor, a pressure sensor, a temperature sensor, and a resistance sensor. Based on detection signals derived from them, it can be determined whether the wearable device is worn by the user.
  • the embodiment of the present application provides a wearing detection device of a wearable device, which is configured in the wearable device, and the wearing detection device includes:
  • an acquisition module for acquiring one or more physiological parameter data
  • a verification module configured to obtain the wearing state of the wearable device according to the one or more physiological parameter data
  • the push module is used to push the wearing suggestion according to the wearing state.
  • the push module is specifically used for:
  • the wearing suggestion is not pushed.
  • the wearing state includes wrong wearing or correct wearing
  • Determining that the wearing state satisfies the first condition includes: the wearing state is that the cumulative number of wearing errors is equal to or greater than a preset number of times threshold, or, determining that the wearing state is wearing errors;
  • Determining that the wearing state satisfies the second condition includes: determining that the cumulative number of times the wearing state is incorrectly worn is less than the preset number of times threshold, or determining that the wearing state is correct wearing.
  • the push module is specifically used for:
  • the verification module includes: a first verification sub-module for acquiring the wearing state of the wearable device according to a piece of physiological parameter data, and/or for A second syndrome module for acquiring the wearing state of the wearable device according to a plurality of physiological parameter data;
  • the first syndrome module is specifically used for:
  • the duration of the first abnormal time period is equal to or greater than the first preset duration, determining that the wearing state of the wearable device is a wearing error
  • the second syndrome module is specifically used for:
  • the duration of the second abnormal time period is equal to or greater than the preset time period, it is determined that the wearing state of the wearable device is a wearing error.
  • the wearing detection apparatus further includes an inquiry module, and the inquiry module is configured to push an inquiry about whether to wear the wearable device.
  • the one or more physiological parameter data includes one or more of heart rate data, blood oxygen data and blood pressure data.
  • the obtaining module is specifically used for:
  • the wearable device is worn by the user, and one or more physiological parameter data are acquired.
  • an embodiment of the present application provides a wear detection method for a wearable device, which is applied to an electronic device and a wearable device, where the electronic device is connected to the wearable device through a wireless communication technology, and the wear detection method include:
  • the wearable device acquires one or more physiological parameter data
  • the electronic device receives one or more physiological parameter data sent by the wearable device, and the electronic device acquires the wearing state of the wearable device according to the one or more physiological parameter data;
  • the electronic device pushes a wearing suggestion according to the wearing state.
  • the electronic device acquires the wearing state according to one or more physiological parameter data sent by the wearable device, and then pushes a wearing suggestion to the user according to the wearing state.
  • verifying the wearing state according to one or more physiological parameter data can adapt to more application scenarios.
  • information of multiple dimensions is utilized, which improves the accuracy of the wearing verification result.
  • giving the user wearing advice based on the wearing verification result can guide the user to wear the wearable device correctly and improve the accuracy of subsequent data collection.
  • the electronic device pushes a wearing suggestion according to the wearing state, including:
  • the electronic device determines that the wearing state satisfies the first condition, push a wearing suggestion according to the wearing state;
  • the wearing detection method further includes:
  • the electronic device determines that the wearing state satisfies the second condition, it does not push the wearing suggestion.
  • the electronic device only pushes the wearing suggestion after determining that the wearing state meets certain conditions, and the electronic device does not push the wearing suggestion to the user every time the wearing state is obtained, which can reduce the number of times of pushing the wearing suggestion to the user and reduce the interaction cost and improve user experience.
  • the wearing state includes wrong wearing or correct wearing
  • the electronic device determines that the wearing state satisfies the first condition, including:
  • the electronic device determines that the cumulative number of times that the wearing state is a wearing error is equal to or greater than a preset number of times threshold, or determines that the wearing state is a wearing error;
  • the electronic device determines that the wearing state satisfies the second condition, including:
  • the electronic device determines that the wearing state is that the cumulative number of incorrect wearing times is less than the preset number of times threshold, or the electronic device determines that the wearing state is that the wearing state is correct.
  • the electronic device only pushes the wearing suggestion when the accumulated number of times the electronic device determines that the wearing state is the wearing error is equal to or greater than the preset number of times threshold.
  • the electronic device will not push a wearing suggestion to the user every time a wearing error is detected, which can reduce the number of times of pushing the wearing suggestion to the user, reduce the interaction cost, and improve the user experience.
  • the electronic device pushes a wearing suggestion according to the wearing state, including:
  • the electronic device determines that the wearing state is misplaced, and pushes a wearing suggestion for adjusting the wearing position; or, the electronic device determines that the wearing state is too loose, and pushes a wearing suggestion for a tightening device.
  • acquiring the wearing state of the wearable device according to one physiological parameter data includes:
  • the duration of the first abnormal time period is equal to or greater than the first preset duration, it is determined that the wearing state of the wearable device is a wearing error.
  • acquiring the wearing state of the wearable device according to multiple physiological parameter data includes:
  • the duration of the second abnormal time period is equal to or greater than the preset time period, it is determined that the wearing state of the wearable device is a wearing error.
  • a quantitative method of how to obtain the wearing state of the wearable device according to a plurality of physiological parameter data is provided, and the computing power cost is low, which makes the solution easy to implement.
  • the time period in which multiple physiological parameter data are abnormal at the same time is considered, and the threshold for the duration is set to ensure the accuracy of the wearing verification result.
  • the wearable device includes a sensor, and the sensor is used to collect the plurality of physiological parameter data.
  • the sensor may be an optical sensor.
  • the physiological parameter data used for verifying the wearing state comes from the same hardware, the correlation between different physiological parameter data is very high. Changes in the wearing state of wearable devices will be reflected in different physiological parameter data at the same time. That is to say, wrong wearing state will cause abnormal physiological parameter data at the same time. Therefore, in this implementation manner, the wearing state of the wearable device is verified based on the physiological parameter data collected by the same hardware, which can make the wearing verification result more accurate.
  • the one or more physiological parameter data includes one or more of heart rate data, blood oxygen data and blood pressure data.
  • the wearing detection method further includes:
  • the electronic device pushes an inquiry to confirm the wearing status
  • the electronic device pushes a wearing instruction corresponding to the wearing state in response to the received first operation input by the user.
  • the electronic device verifies the wearing state and pushes wearing suggestions, and on the other hand, in combination with user confirmation, after the user confirms whether there is a detected wrong wearing behavior, it pushes the wearing instructions corresponding to the wearing state.
  • the electronic device pushing a query for confirming the wearing state includes: the electronic device pushing a query whether the wearable device is worn.
  • the electronic device pushes a query on whether to wear a wearable device to the user, and on the basis of determining whether the wearable device is wearing or not,
  • the wearing instructions can be pushed in a targeted manner to guide the user to wear the wearable device efficiently and accurately.
  • the wearing error includes wearing in a wrong position or wearing too loosely.
  • the wearing detection method further includes:
  • the electronic device determines that the wearing state is correct, and does not push a wearing suggestion.
  • the wearable device acquires one or more physiological parameter data, including:
  • the wearable device is determined to be worn by the user, and obtains one or more physiological parameter data.
  • the wearable device may include sensors that can be used to detect whether the wearable device is worn by the user. Based on the detection data from these sensors, it can be determined whether the wearable device is worn by the user.
  • the wearing state is verified, which can save computing power costs.
  • the wearable device includes at least one of a proximity light sensor, a distance sensor, a pressure sensor, a temperature sensor, and a resistance sensor. Based on detection signals derived from them, it can be determined whether the wearable device is worn by the user.
  • an embodiment of the present application provides a wear detection system for a wearable device, including an electronic device and a wearable device, the electronic device is connected to the wearable device through a wireless communication technology, and the wearable device uses a for obtaining data on one or more physiological parameters;
  • the electronic device is used to: receive one or more physiological parameter data sent by the wearable device, acquire the wearing state of the wearable device according to the one or more physiological parameter data; Wearing advice.
  • the electronic device is configured to: if it is determined that the wearing state satisfies the first condition, push a wearing suggestion according to the wearing state;
  • the electronic device is further configured to: if it is determined that the wearing state satisfies the second condition, not to push a wearing suggestion.
  • the wearing state includes wrong wearing or correct wearing
  • Determining that the wearing state satisfies the first condition includes: determining that the cumulative number of times the wearing state is a wearing error is equal to or greater than a preset number of times threshold, or, determining that the wearing state is a wearing error;
  • Determining that the wearing state satisfies the second condition includes:
  • the wearing state is that the cumulative number of incorrect wearing times is less than the preset number of times threshold, or the wearing state is determined that the wearing state is correct wearing.
  • the electronic device is used for:
  • the electronic device is configured to acquire the wearing state of the wearable device according to one physiological parameter data, including:
  • the electronic device is used to determine a first abnormal time period in which the physiological parameter data is abnormal; if the duration of the first abnormal time period is equal to or greater than the first preset time period, the wearing state of the wearable device is determined For wearing wrong.
  • the electronic device is configured to acquire the wearing state of the wearable device according to multiple physiological parameter data, including:
  • the electronic device is used to determine a second abnormal time period in which multiple physiological parameter data are abnormal at the same time; if the duration of the second abnormal time period is equal to or greater than a preset time period, the wearing state of the wearable device is determined For wearing wrong.
  • the wearable device includes a sensor, and the wearable device collects the one or more physiological parameter data through the sensor.
  • the senor may be an optical sensor.
  • the one or more physiological parameter data includes one or more of heart rate data, blood oxygen data, and blood pressure data.
  • the electronic device is further configured to:
  • Pushing a query for confirming the wearing state in response to the received first operation input by the user, pushing the wearing instructions corresponding to the wearing state.
  • the electronic device is configured to push a query for confirming the wearing state, including: the electronic device is configured to push a query of whether to wear the wearable device.
  • the wearing error includes wearing in a wrong position or wearing too loosely.
  • the electronic device is further configured to: if it is determined that the wearing state is correct wearing, not push a wearing suggestion.
  • the wearable device is configured to acquire one or more physiological parameter data, including:
  • the wearable device is used to determine that the wearable device is worn by the user and obtain one or more physiological parameter data.
  • the wearable device includes at least one of a proximity light sensor, a distance sensor, a pressure sensor, a temperature sensor, and a resistance sensor. Based on detection signals derived from them, it can be determined whether the wearable device is worn by the user.
  • an embodiment of the present application provides an electronic device, including a memory, a processor, and a computer program stored in the memory and executable on the processor, when the processor executes the computer program , so that the electronic device implements the method according to any one of the first aspect and possible implementation manners of the first aspect.
  • an embodiment of the present application provides a computer-readable storage medium, where the computer-readable storage medium stores a computer program, and when the computer program is executed by a processor, the first aspect and the first aspect are possible. Implement the method described in any one of the modes.
  • an embodiment of the present application provides a computer program product that, when the computer program product runs on an electronic device, enables the electronic device to execute the method described in any one of the first aspect and possible implementations of the first aspect. .
  • FIG. 1 is a schematic structural diagram of an electronic device provided by an embodiment of the present application.
  • 2A is an application scenario of a method for detecting wearing of a wearable device provided by an embodiment of the present application
  • FIG. 2B is another application scenario of the wear detection method for a wearable device provided by an embodiment of the present application.
  • FIG. 2C is another application scenario of the wearing detection method for a wearable device provided by an embodiment of the present application.
  • 2D is a schematic flowchart of a method for detecting wearing of a wearable device according to an embodiment of the present application
  • 3A is a schematic diagram of a user interface of a method for detecting wearing of a wearable device provided by an embodiment of the present application
  • 3B is another schematic diagram of a user interface of a method for detecting wearing of a wearable device provided by an embodiment of the present application;
  • FIG. 4A is a schematic diagram of another user interface of a method for detecting wearing of a wearable device provided by an embodiment of the present application;
  • 4B is another schematic diagram of a user interface of a wear detection method for a wearable device provided by an embodiment of the present application.
  • 5A is another schematic diagram of a user interface of a wear detection method for a wearable device provided by an embodiment of the present application
  • 5B is another schematic diagram of a user interface of a method for detecting wearing of a wearable device provided by an embodiment of the present application
  • FIG. 6 is another schematic diagram of a user interface of a method for detecting wearing of a wearable device provided by an embodiment of the present application
  • FIG. 7 is another schematic diagram of a user interface of a method for detecting wearing of a wearable device provided by an embodiment of the present application.
  • 8A and 8B are another application scenario of the wear detection method of the wearable device provided by an embodiment of the present application.
  • FIG. 9 is another application scenario of the wearing detection method of the wearable device provided by an embodiment of the present application.
  • FIG. 10 is a schematic flowchart of a wear detection method for a wearable device provided by an embodiment of the present application.
  • FIG. 11 is a schematic flowchart of a wear detection method for a wearable device provided by another embodiment of the present application.
  • FIG. 12 is a schematic flowchart of a method for detecting wearing of a wearable device provided by another embodiment of the present application.
  • FIG. 13 is a schematic flowchart of a method for detecting wearing of a wearable device provided by another embodiment of the present application.
  • FIG. 14 is a schematic flowchart of a wear detection method for a wearable device provided by another embodiment of the present application.
  • FIG. 15 is a schematic flowchart of a wear detection method for a wearable device provided by another embodiment of the present application.
  • FIG. 16 is a schematic structural diagram of a wear detection device for a wearable device provided by an embodiment of the present application.
  • the term “comprising” indicates the presence of the described feature, integer, step, operation, element and/or component, but does not exclude one or more other features, integers , step, operation, element, component and/or the presence or addition of a collection thereof.
  • the term “if” may be contextually interpreted as “when” or “once” or “in response to determining” or “in response to detecting ".
  • references in this specification to "one embodiment” or “some embodiments” and the like mean that a particular feature, structure or characteristic described in connection with the embodiment is included in one or more embodiments of the present application.
  • appearances of the phrases “in one embodiment,” “in some embodiments,” “in other embodiments,” “in other embodiments,” etc. in various places in this specification are not necessarily All refer to the same embodiment, but mean “one or more but not all embodiments” unless specifically emphasized otherwise.
  • the terms “including”, “including”, “having” and their variants mean “including but not limited to” unless specifically emphasized otherwise.
  • the embodiment of the present application provides a method for detecting wearing of a wearable device.
  • user measurement data such as heart rate and/or blood oxygen
  • Advise the wearer to improve the accuracy of subsequent measurements.
  • the automatic measurement of wearing status is combined with user confirmation: by detecting the data such as blood oxygen and heart rate uploaded by the user, the user's wearing status is initially obtained, and after it is detected that the user is not wearing it correctly, the user will be pushed wearing suggestions; Confirm whether there is any wrong wearing behavior detected, and push the corresponding wearing instructions after the user confirms.
  • the wear detection method of the wearable device provided in the embodiment of the present application can be applied to electronic devices, and the electronic devices include but are not limited to mobile phones, wearable devices, vehicle-mounted devices, augmented reality (AR)/virtual reality (virtual reality, VR) devices, laptops, ultra-mobile personal computers (UMPCs), netbooks, personal digital assistants (PDAs), smart speakers, set top boxes (STBs) or TVs, etc.
  • the electronic devices include but are not limited to mobile phones, wearable devices, vehicle-mounted devices, augmented reality (AR)/virtual reality (virtual reality, VR) devices, laptops, ultra-mobile personal computers (UMPCs), netbooks, personal digital assistants (PDAs), smart speakers, set top boxes (STBs) or TVs, etc.
  • the embodiments of the present application do not limit any specific types of electronic devices.
  • FIG. 1 shows a schematic structural diagram of an electronic device 100 .
  • the electronic device 100 may include a processor 110, an external memory interface 120, an internal memory 121, a universal serial bus (USB) interface 130, a charge management module 140, a power management module 141, a battery 142, an antenna 1, an antenna 2 , mobile communication module 150, wireless communication module 160, audio module 170, speaker 170A, receiver 170B, microphone 170C, headphone jack 170D, sensor module 180, buttons 190, motor 191, indicator 192, camera 193, display screen 194, and Subscriber identification module (subscriber identification module, SIM) card interface 195 and so on.
  • SIM Subscriber identification module
  • the sensor module 180 may include a pressure sensor 180A, a gyroscope sensor 180B, an air pressure sensor 180C, a magnetic sensor 180D, an acceleration sensor 180E, a distance sensor 180F, a proximity light sensor 180G, a fingerprint sensor 180H, a temperature sensor 180J, a touch sensor 180K, and ambient light. Sensor 180L, bone conduction sensor 180M, etc.
  • the structures illustrated in the embodiments of the present invention do not constitute a specific limitation on the electronic device 100 .
  • the electronic device 100 may include more or less components than shown, or combine some components, or separate some components, or arrange different components.
  • the illustrated components may be implemented in hardware, software, or a combination of software and hardware.
  • the processor 110 may include one or more processing units, for example, the processor 110 may include an application processor (application processor, AP), a modem processor, a graphics processor (graphics processing unit, GPU), an image signal processor (image signal processor, ISP), controller, video codec, digital signal processor (digital signal processor, DSP), baseband processor, and/or neural-network processing unit (neural-network processing unit, NPU), etc. Wherein, different processing units may be independent devices, or may be integrated in one or more processors.
  • application processor application processor, AP
  • modem processor graphics processor
  • ISP image signal processor
  • controller video codec
  • digital signal processor digital signal processor
  • baseband processor baseband processor
  • neural-network processing unit neural-network processing unit
  • the controller can generate an operation control signal according to the instruction operation code and timing signal, and complete the control of fetching and executing instructions.
  • a memory may also be provided in the processor 110 for storing instructions and data.
  • the memory in processor 110 is cache memory. This memory may hold instructions or data that have just been used or recycled by the processor 110 . If the processor 110 needs to use the instruction or data again, it can be called directly from the memory. Repeated accesses are avoided and the latency of the processor 110 is reduced, thereby increasing the efficiency of the system.
  • the processor 110 may include one or more interfaces.
  • the interface may include an integrated circuit (inter-integrated circuit, I2C) interface, an integrated circuit built-in audio (inter-integrated circuit sound, I2S) interface, a pulse code modulation (pulse code modulation, PCM) interface, a universal asynchronous transceiver (universal asynchronous transmitter) receiver/transmitter, UART) interface, mobile industry processor interface (MIPI), general-purpose input/output (GPIO) interface, subscriber identity module (SIM) interface, and / or universal serial bus (universal serial bus, USB) interface, etc.
  • I2C integrated circuit
  • I2S integrated circuit built-in audio
  • PCM pulse code modulation
  • PCM pulse code modulation
  • UART universal asynchronous transceiver
  • MIPI mobile industry processor interface
  • GPIO general-purpose input/output
  • SIM subscriber identity module
  • USB universal serial bus
  • the I2C interface is a bidirectional synchronous serial bus that includes a serial data line (SDA) and a serial clock line (SCL).
  • the processor 110 may contain multiple sets of I2C buses.
  • the processor 110 can be respectively coupled to the touch sensor 180K, the charger, the flash, the camera 193 and the like through different I2C bus interfaces.
  • the processor 110 may couple the touch sensor 180K through the I2C interface, so that the processor 110 and the touch sensor 180K communicate with each other through the I2C bus interface, so as to realize the touch function of the electronic device 100 .
  • the I2S interface can be used for audio communication.
  • the processor 110 may contain multiple sets of I2S buses.
  • the processor 110 may be coupled with the audio module 170 through an I2S bus to implement communication between the processor 110 and the audio module 170 .
  • the audio module 170 can transmit audio signals to the wireless communication module 160 through the I2S interface, so as to realize the function of answering calls through a Bluetooth headset.
  • the PCM interface can also be used for audio communications, sampling, quantizing and encoding analog signals.
  • the audio module 170 and the wireless communication module 160 may be coupled through a PCM bus interface.
  • the audio module 170 can also transmit audio signals to the wireless communication module 160 through the PCM interface, so as to realize the function of answering calls through the Bluetooth headset. Both the I2S interface and the PCM interface can be used for audio communication.
  • the UART interface is a universal serial data bus used for asynchronous communication.
  • the bus may be a bidirectional communication bus. It converts the data to be transmitted between serial communication and parallel communication.
  • a UART interface is typically used to connect the processor 110 with the wireless communication module 160 .
  • the processor 110 communicates with the Bluetooth module in the wireless communication module 160 through the UART interface to implement the Bluetooth function.
  • the audio module 170 can transmit audio signals to the wireless communication module 160 through the UART interface, so as to realize the function of playing music through the Bluetooth headset.
  • the MIPI interface can be used to connect the processor 110 with peripheral devices such as the display screen 194 and the camera 193 .
  • MIPI interfaces include camera serial interface (CSI), display serial interface (DSI), etc.
  • the processor 110 communicates with the camera 193 through a CSI interface, so as to realize the photographing function of the electronic device 100 .
  • the processor 110 communicates with the display screen 194 through the DSI interface to implement the display function of the electronic device 100 .
  • the GPIO interface can be configured by software.
  • the GPIO interface can be configured as a control signal or as a data signal.
  • the GPIO interface may be used to connect the processor 110 with the camera 193, the display screen 194, the wireless communication module 160, the audio module 170, the sensor module 180, and the like.
  • the GPIO interface can also be configured as I2C interface, I2S interface, UART interface, MIPI interface, etc.
  • the USB interface 130 is an interface that conforms to the USB standard specification, and may specifically be a Mini USB interface, a Micro USB interface, a USB Type C interface, and the like.
  • the USB interface 130 can be used to connect a charger to charge the electronic device 100, and can also be used to transmit data between the electronic device 100 and peripheral devices. It can also be used to connect headphones to play audio through the headphones.
  • the interface can also be used to connect other electronic devices, such as AR devices.
  • the interface connection relationship between the modules illustrated in the embodiment of the present invention is only a schematic illustration, and does not constitute a structural limitation of the electronic device 100 .
  • the electronic device 100 may also adopt different interface connection manners in the foregoing embodiments, or a combination of multiple interface connection manners.
  • the charging management module 140 is used to receive charging input from the charger.
  • the charger may be a wireless charger or a wired charger.
  • the charging management module 140 may receive charging input from the wired charger through the USB interface 130 .
  • the charging management module 140 may receive wireless charging input through a wireless charging coil of the electronic device 100 . While the charging management module 140 charges the battery 142 , it can also supply power to the electronic device through the power management module 141 .
  • the power management module 141 is used for connecting the battery 142 , the charging management module 140 and the processor 110 .
  • the power management module 141 receives input from the battery 142 and/or the charging management module 140, and supplies power to the processor 110, the internal memory 121, the display screen 194, the camera 193, and the wireless communication module 160.
  • the power management module 141 can also be used to monitor parameters such as battery capacity, battery cycle times, battery health status (leakage, impedance).
  • the power management module 141 may also be provided in the processor 110 .
  • the power management module 141 and the charging management module 140 may also be provided in the same device.
  • the wireless communication function of the electronic device 100 may be implemented by the antenna 1, the antenna 2, the mobile communication module 150, the wireless communication module 160, the modulation and demodulation processor, the baseband processor, and the like.
  • Antenna 1 and Antenna 2 are used to transmit and receive electromagnetic wave signals.
  • Each antenna in electronic device 100 may be used to cover a single or multiple communication frequency bands. Different antennas can also be reused to improve antenna utilization.
  • the antenna 1 can be multiplexed as a diversity antenna of the wireless local area network. In other embodiments, the antenna may be used in conjunction with a tuning switch.
  • the mobile communication module 150 may provide wireless communication solutions including 2G/3G/4G/5G etc. applied on the electronic device 100 .
  • the mobile communication module 150 may include at least one filter, switch, power amplifier, low noise amplifier (LNA) and the like.
  • the mobile communication module 150 can receive electromagnetic waves from the antenna 1, filter and amplify the received electromagnetic waves, and transmit them to the modulation and demodulation processor for demodulation.
  • the mobile communication module 150 can also amplify the signal modulated by the modulation and demodulation processor, and then turn it into an electromagnetic wave for radiation through the antenna 1 .
  • at least part of the functional modules of the mobile communication module 150 may be provided in the processor 110 .
  • at least part of the functional modules of the mobile communication module 150 may be provided in the same device as at least part of the modules of the processor 110 .
  • the modem processor may include a modulator and a demodulator.
  • the modulator is used to modulate the low frequency baseband signal to be sent into a medium and high frequency signal.
  • the demodulator is used to demodulate the received electromagnetic wave signal into a low frequency baseband signal. Then the demodulator transmits the demodulated low-frequency baseband signal to the baseband processor for processing.
  • the low frequency baseband signal is processed by the baseband processor and passed to the application processor.
  • the application processor outputs sound signals through the audio module (not limited to the speaker 170A, the receiver 170B, etc.), or displays images or videos through the display screen 194 .
  • the modem processor may be a stand-alone device. In other embodiments, the modem processor may be independent of the processor 110, and be provided in the same device as the mobile communication module 150 or other functional modules.
  • the wireless communication module 160 can provide applications on the electronic device 100 including wireless local area networks (WLAN) (such as wireless fidelity (Wi-Fi) networks), bluetooth (BT), global navigation satellites Wireless communication solutions such as global navigation satellite system (GNSS), frequency modulation (FM), near field communication (NFC), and infrared technology (IR).
  • WLAN wireless local area networks
  • BT Bluetooth
  • GNSS global navigation satellite system
  • FM frequency modulation
  • NFC near field communication
  • IR infrared technology
  • the wireless communication module 160 may be one or more devices integrating at least one communication processing module.
  • the wireless communication module 160 receives electromagnetic waves via the antenna 2 , frequency modulates and filters the electromagnetic wave signals, and sends the processed signals to the processor 110 .
  • the wireless communication module 160 can also receive the signal to be sent from the processor 110 , perform frequency modulation on it, amplify it, and convert it into electromagnetic waves for radiation through the antenna 2 .
  • the antenna 1 of the electronic device 100 is coupled with the mobile communication module 150, and the antenna 2 is coupled with the wireless communication module 160, so that the electronic device 100 can communicate with the network and other devices through wireless communication technology.
  • the wireless communication technology may include global system for mobile communications (GSM), general packet radio service (GPRS), code division multiple access (CDMA), broadband Code Division Multiple Access (WCDMA), Time Division Code Division Multiple Access (TD-SCDMA), Long Term Evolution (LTE), BT, GNSS, WLAN, NFC , FM, and/or IR technology, etc.
  • the GNSS may include a global positioning system (global positioning system, GPS), a global navigation satellite system (GLONASS), a Beidou navigation satellite system (BDS), a quasi-zenith satellite system (quasi -zenith satellite system, QZSS) and/or satellite based augmentation systems (SBAS).
  • GPS global positioning system
  • GLONASS global navigation satellite system
  • BDS Beidou navigation satellite system
  • QZSS quasi-zenith satellite system
  • SBAS satellite based augmentation systems
  • a wireless communication connection may be established between electronic devices through the wireless communication module 160, so as to realize information exchange between electronic devices.
  • a mobile phone and a wristband establish a Bluetooth communication connection. Based on the Bluetooth communication connection, the mobile phone obtains information collected by wearable devices such as wristbands, earphones, rings or glasses, such as the user's physiological parameter data.
  • the electronic device 100 implements a display function through a GPU, a display screen 194, an application processor, and the like.
  • the GPU is a microprocessor for image processing, and is connected to the display screen 194 and the application processor.
  • the GPU is used to perform mathematical and geometric calculations for graphics rendering.
  • Processor 110 may include one or more GPUs that execute program instructions to generate or alter display information.
  • Display screen 194 is used to display images, videos, and the like.
  • Display screen 194 includes a display panel.
  • the display panel can be a liquid crystal display (LCD), an organic light-emitting diode (OLED), an active-matrix organic light-emitting diode or an active-matrix organic light-emitting diode (active-matrix organic light).
  • LED diode AMOLED
  • flexible light-emitting diode flexible light-emitting diode (flex light-emitting diode, FLED), Miniled, MicroLed, Micro-oLed, quantum dot light-emitting diode (quantum dot light emitting diodes, QLED) and so on.
  • the electronic device 100 may include one or N display screens 194 , where N is a positive integer greater than one.
  • the electronic device 100 may implement a shooting function through an ISP, a camera 193, a video codec, a GPU, a display screen 194, an application processor, and the like.
  • the ISP is used to process the data fed back by the camera 193 .
  • the shutter is opened, the light is transmitted to the camera photosensitive element through the lens, the light signal is converted into an electrical signal, and the camera photosensitive element transmits the electrical signal to the ISP for processing, and converts it into an image visible to the naked eye.
  • ISP can also perform algorithm optimization on image noise, brightness, and skin tone.
  • ISP can also optimize the exposure, color temperature and other parameters of the shooting scene.
  • the ISP may be provided in the camera 193 .
  • Camera 193 is used to capture still images or video.
  • the object is projected through the lens to generate an optical image onto the photosensitive element.
  • the photosensitive element may be a charge coupled device (CCD) or a complementary metal-oxide-semiconductor (CMOS) phototransistor.
  • CMOS complementary metal-oxide-semiconductor
  • the photosensitive element converts the optical signal into an electrical signal, and then transmits the electrical signal to the ISP to convert it into a digital image signal.
  • the ISP outputs the digital image signal to the DSP for processing.
  • DSP converts digital image signals into standard RGB, YUV and other formats of image signals.
  • the electronic device 100 may include 1 or N cameras 193 , where N is a positive integer greater than 1.
  • a digital signal processor is used to process digital signals, in addition to processing digital image signals, it can also process other digital signals. For example, when the electronic device 100 selects a frequency point, the digital signal processor is used to perform Fourier transform on the frequency point energy and so on.
  • Video codecs are used to compress or decompress digital video.
  • the electronic device 100 may support one or more video codecs.
  • the electronic device 100 can play or record videos of various encoding formats, such as: Moving Picture Experts Group (moving picture experts group, MPEG) 1, MPEG2, MPEG3, MPEG4 and so on.
  • MPEG Moving Picture Experts Group
  • MPEG2 moving picture experts group
  • MPEG3 MPEG4
  • MPEG4 Moving Picture Experts Group
  • the NPU is a neural-network (NN) computing processor.
  • NN neural-network
  • Applications such as intelligent cognition of the electronic device 100 can be implemented through the NPU, such as image recognition, face recognition, speech recognition, text understanding, and the like.
  • the external memory interface 120 can be used to connect an external memory card, such as a Micro SD card, to expand the storage capacity of the electronic device 100 .
  • the external memory card communicates with the processor 110 through the external memory interface 120 to realize the data storage function. For example to save files like music, video etc in external memory card.
  • Internal memory 121 may be used to store computer executable program code, which includes instructions.
  • the internal memory 121 may include a storage program area and a storage data area.
  • the storage program area can store an operating system, an application program required for at least one function (such as a sound playback function, an image playback function, etc.), and the like.
  • the storage data area may store data (such as audio data, phone book, etc.) created during the use of the electronic device 100 and the like.
  • the internal memory 121 may include high-speed random access memory, and may also include non-volatile memory, such as at least one magnetic disk storage device, flash memory device, universal flash storage (UFS), and the like.
  • the processor 110 executes various functional applications and data processing of the electronic device 100 by executing instructions stored in the internal memory 121 and/or instructions stored in a memory provided in the processor.
  • a computer program that can be run on the processor 110 is stored in the internal memory 121 or an external memory card.
  • the processor 110 executes the computer program, the electronic device implements the wearable wearable provided by the embodiment of the present application. The various steps of the wearing detection method of the device.
  • the electronic device 100 may implement audio functions through an audio module 170, a speaker 170A, a receiver 170B, a microphone 170C, an earphone interface 170D, an application processor, and the like. Such as music playback, recording, etc.
  • the audio module 170 is used for converting digital audio information into analog audio signal output, and also for converting analog audio input into digital audio signal. Audio module 170 may also be used to encode and decode audio signals. In some embodiments, the audio module 170 may be provided in the processor 110, or some functional modules of the audio module 170 may be provided in the processor 110.
  • Speaker 170A also referred to as a "speaker" is used to convert audio electrical signals into sound signals.
  • the electronic device 100 can listen to music through the speaker 170A, or listen to a hands-free call.
  • the receiver 170B also referred to as "earpiece" is used to convert audio electrical signals into sound signals.
  • the voice can be answered by placing the receiver 170B close to the human ear.
  • the electronic device may output sound signals through the audio module 170, not limited to the speaker 170A, the receiver 170B, and the like.
  • sound signals for example, voice broadcasts of wearing suggestions and/or wearing instructions, or voice broadcasts of wearing status confirmation reminders, etc.
  • the microphone 170C also called “microphone” or “microphone” is used to convert sound signals into electrical signals.
  • the user can make a sound by approaching the microphone 170C through a human mouth, and input the sound signal into the microphone 170C.
  • the electronic device 100 may be provided with at least one microphone 170C. In other embodiments, the electronic device 100 may be provided with two microphones 170C, which can implement a noise reduction function in addition to collecting sound signals. In other embodiments, the electronic device 100 may further be provided with three, four or more microphones 170C to collect sound signals, reduce noise, identify sound sources, and implement directional recording functions.
  • the earphone jack 170D is used to connect wired earphones.
  • the earphone interface 170D can be the USB interface 130, or can be a 3.5mm open mobile terminal platform (OMTP) standard interface, a cellular telecommunications industry association of the USA (CTIA) standard interface.
  • OMTP open mobile terminal platform
  • CTIA cellular telecommunications industry association of the USA
  • the pressure sensor 180A is used to sense pressure signals, and can convert the pressure signals into electrical signals.
  • the pressure sensor 180A may be provided on the display screen 194 .
  • the capacitive pressure sensor may be comprised of at least two parallel plates of conductive material. When a force is applied to the pressure sensor 180A, the capacitance between the electrodes changes.
  • the electronic device 100 determines the intensity of the pressure according to the change in capacitance. When a touch operation acts on the display screen 194, the electronic device 100 detects the intensity of the touch operation according to the pressure sensor 180A.
  • the electronic device 100 may also calculate the touched position according to the detection signal of the pressure sensor 180A.
  • touch operations acting on the same touch position but with different touch operation intensities may correspond to different operation instructions. For example, when a touch operation whose intensity is less than the first pressure threshold acts on the short message application icon, the instruction for viewing the short message is executed. When a touch operation with a touch operation intensity greater than or equal to the first pressure threshold acts on the short message application icon, the instruction to create a new short message is executed.
  • the wearable device includes a pressure sensor 180A disposed on a side closer to the wearer. The wearable device can use the pressure sensor 180A to detect the intensity of the pressure, so as to detect whether the wearable device is worn by the user, and/or the tightness of the wearing, etc.
  • the gyro sensor 180B may be used to determine the motion attitude of the electronic device 100 .
  • the angular velocity of electronic device 100 about three axes ie, x, y, and z axes
  • the gyro sensor 180B can be used for image stabilization.
  • the gyro sensor 180B detects the shaking angle of the electronic device 100, calculates the distance that the lens module needs to compensate according to the angle, and allows the lens to offset the shaking of the electronic device 100 through reverse motion to achieve anti-shake.
  • the gyro sensor 180B can also be used for navigation and somatosensory game scenarios.
  • the air pressure sensor 180C is used to measure air pressure.
  • the electronic device 100 uses the air pressure value measured by the air pressure sensor 180C to calculate the altitude to aid in positioning and navigation.
  • the magnetic sensor 180D includes a Hall sensor.
  • the electronic device 100 can detect the opening and closing of the flip holster using the magnetic sensor 180D.
  • the electronic device 100 can detect the opening and closing of the flip according to the magnetic sensor 180D. Further, according to the detected opening and closing state of the leather case or the opening and closing state of the flip cover, characteristics such as automatic unlocking of the flip cover are set.
  • the acceleration sensor 180E can detect the magnitude of the acceleration of the electronic device 100 in various directions (generally three axes).
  • the magnitude and direction of gravity can be detected when the electronic device 100 is stationary. It can also be used to identify the posture of electronic devices, and can be used in applications such as horizontal and vertical screen switching, pedometers, etc.
  • the electronic device 100 can measure the distance through infrared or laser.
  • the wearable device includes a distance sensor 180F disposed on a side closer to the wearer. The wearable device may utilize the distance sensor 180F for distance measurement to detect whether the wearable device is worn by the user.
  • Proximity light sensor 180G may include, for example, light emitting diodes (LEDs) and light detectors, such as photodiodes.
  • the light emitting diodes may be infrared light emitting diodes.
  • the electronic device 100 emits infrared light to the outside through the light emitting diode.
  • Electronic device 100 uses photodiodes to detect infrared reflected light from nearby objects. When sufficient reflected light is detected, it can be determined that there is an object near the electronic device 100 . When insufficient reflected light is detected, the electronic device 100 may determine that there is no object near the electronic device 100 .
  • the electronic device 100 can use the proximity light sensor 180G to detect that the user holds the electronic device 100 close to the ear to talk, so as to automatically turn off the screen to save power.
  • Proximity light sensor 180G can also be used in holster mode, pocket mode automatically unlocks and locks the screen.
  • the wearable device includes a distance sensor 180F disposed on a side closer to the wearer. The wearable device may utilize the distance sensor 180F for distance measurement to detect whether the wearable device is worn by the user.
  • the ambient light sensor 180L is used to sense ambient light brightness.
  • the electronic device 100 can adaptively adjust the brightness of the display screen 194 according to the perceived ambient light brightness.
  • the ambient light sensor 180L can also be used to automatically adjust the white balance when taking pictures.
  • the ambient light sensor 180L can also cooperate with the proximity light sensor 180G to detect whether the electronic device 100 is in a pocket, so as to prevent accidental touch.
  • the fingerprint sensor 180H is used to collect fingerprints.
  • the electronic device 100 can use the collected fingerprint characteristics to realize fingerprint unlocking, accessing application locks, taking pictures with fingerprints, answering incoming calls with fingerprints, and the like.
  • the temperature sensor 180J is used to detect the temperature.
  • the electronic device 100 uses the temperature detected by the temperature sensor 180J to execute a temperature processing strategy. For example, when the temperature reported by the temperature sensor 180J exceeds a threshold value, the electronic device 100 reduces the performance of the processor located near the temperature sensor 180J in order to reduce power consumption and implement thermal protection.
  • the electronic device 100 when the temperature is lower than another threshold, the electronic device 100 heats the battery 142 to avoid abnormal shutdown of the electronic device 100 caused by the low temperature.
  • the electronic device 100 boosts the output voltage of the battery 142 to avoid abnormal shutdown caused by low temperature.
  • the wearable device includes a temperature sensor 180J, and the temperature sensor 180J is disposed on a side close to the wearer.
  • the wearable device can use the temperature sensor 180J to measure the user's body temperature, and can also detect whether the wearable device is worn by the user.
  • Touch sensor 180K also called “touch device”.
  • the touch sensor 180K may be disposed on the display screen 194 , and the touch sensor 180K and the display screen 194 form a touch screen, also called a “touch screen”.
  • the touch sensor 180K is used to detect a touch operation on or near it.
  • the touch sensor can pass the detected touch operation to the application processor to determine the type of touch event.
  • Visual output related to touch operations may be provided through display screen 194 .
  • the touch sensor 180K may also be disposed on the surface of the electronic device 100 , which is different from the location where the display screen 194 is located.
  • the bone conduction sensor 180M can acquire vibration signals.
  • the bone conduction sensor 180M can acquire the vibration signal of the vibrating bone mass of the human voice.
  • the bone conduction sensor 180M can also contact the pulse of the human body and receive the blood pressure beating signal.
  • the bone conduction sensor 180M can also be disposed in the earphone, combined with the bone conduction earphone.
  • the audio module 170 can analyze the voice signal based on the vibration signal of the vocal vibration bone block obtained by the bone conduction sensor 180M, so as to realize the voice function.
  • the application processor can analyze the heart rate information based on the blood pressure beat signal obtained by the bone conduction sensor 180M, and realize the function of heart rate detection.
  • the wearable device may be an earphone, and the earphone may include the bone conduction sensor 180M.
  • the headset can analyze the user's heart rate data through the blood pressure beat signal obtained by the bone conduction sensor 180M.
  • the electronic device such as a wearable device, may include an optical sensor, and the optical sensor may measure the user's blood pressure, heart rate, and blood oxygen saturation (or blood oxygen) based on the absorption of light by the blood. More specifically, the optical sensor can determine the user's physiological parameters such as blood pressure, heart rate or blood oxygen saturation based on the absorption of light by hemoglobin contained in the blood.
  • the keys 190 include a power-on key, a volume key, and the like. Keys 190 may be mechanical keys. It can also be a touch key.
  • the electronic device 100 may receive key inputs and generate key signal inputs related to user settings and function control of the electronic device 100 .
  • Motor 191 can generate vibrating cues.
  • the motor 191 can be used for vibrating alerts for incoming calls, and can also be used for touch vibration feedback.
  • touch operations acting on different applications can correspond to different vibration feedback effects.
  • the motor 191 can also correspond to different vibration feedback effects for touch operations on different areas of the display screen 194 .
  • Different application scenarios for example: time reminder, receiving information, alarm clock, games, etc.
  • the touch vibration feedback effect can also support customization.
  • the indicator 192 can be an indicator light, which can be used to indicate the charging state, the change of the power, and can also be used to indicate a message, a missed call, a notification, and the like.
  • the SIM card interface 195 is used to connect a SIM card.
  • the SIM card can be contacted and separated from the electronic device 100 by inserting into the SIM card interface 195 or pulling out from the SIM card interface 195 .
  • the electronic device 100 may support 1 or N SIM card interfaces, where N is a positive integer greater than 1.
  • the SIM card interface 195 can support Nano SIM card, Micro SIM card, SIM card and so on. Multiple cards can be inserted into the same SIM card interface 195 at the same time. The types of the plurality of cards may be the same or different.
  • the SIM card interface 195 can also be compatible with different types of SIM cards.
  • the SIM card interface 195 is also compatible with external memory cards.
  • the electronic device 100 interacts with the network through the SIM card to implement functions such as call and data communication.
  • the electronic device 100 employs an eSIM, ie: an embedded SIM card.
  • the eSIM card can be embedded in the electronic device 100 and cannot be separated from the electronic device 100 .
  • FIG. 2A , FIG. 2B and FIG. 2C are schematic diagrams of application scenarios of the wearing detection method of the wearable device provided by the embodiment of the present application.
  • the wearable device is a bracelet.
  • the wearable device may be a general term for devices that can be intelligently designed for daily wear by applying wearable technology, such as glasses, goggles, finger rings, earphones, gloves, and watches. , clothing and shoes.
  • a wearable device is a portable device that is worn directly on the body or integrated into the user's clothing or accessories.
  • Wearable device is not only a hardware device, but also realizes powerful functions through software support, data interaction, and cloud interaction.
  • wearable smart devices include full-featured, large-scale, complete or partial functions without relying on smart phones, such as smart watches or smart glasses, and only focus on a certain type of application function, which needs to be used in conjunction with other devices such as smart phones. , such as various types of smart bracelets and smart jewelry that monitor physical signs.
  • FIG. 2A , FIG. 2B and FIG. 2C show the pairing process of the wristband 31 and the mobile phone 32 .
  • the user adds the bracelet 31 by entering the application of the mobile phone 32 to complete the pairing of the mobile phone 32 and the bracelet 31 .
  • the user enters the device adding interface 321A of the mobile phone 32 and triggers the adding device control 3211 in the device adding interface 321A.
  • the Bluetooth function of the mobile phone 32 is not enabled, the Bluetooth function of the mobile phone 32 is enabled.
  • the mobile phone 32 searches for the surrounding Bluetooth devices, and displays a list of the surrounding Bluetooth devices. After the user selects the bracelet 31 in the Bluetooth device list, the mobile phone 32 and the bracelet are completed. 31 pairings. It should be noted that, in some other embodiments of the present application, after the user selects the bracelet 31 in the Bluetooth device list, the user needs to input a correct password to complete the pairing of the mobile phone 32 and the bracelet 31 .
  • the bracelet 31 enables the Bluetooth function
  • the mobile phone 32 enables the NFC function and the Bluetooth function
  • the user taps the mobile phone 32 on the bracelet 31, and the mobile phone 32 automatically pops up a connection prompt interface 321B
  • the connection prompt interface 321B After the user selects confirmation on the connection prompt interface 321B, the pairing of the mobile phone 32 and the bracelet 31 is completed.
  • the one-touch interconnection simplifies the user operation. Compared with the complicated user operation in FIG. 2A , FIG. 2B greatly improves the pairing efficiency.
  • the user taps the mobile phone 32 on the bracelet 31, and the mobile phone 32 may not pop up the connection prompt interface 321B, that is, the connection between the mobile phone 32 and the bracelet 31 can be completed without the user selecting confirmation. pair.
  • the user is not required to perform connection confirmation, which further simplifies the user operation and further improves the pairing efficiency.
  • the user taps the mobile phone 32 on the bracelet 31, the mobile phone 32 may not pop up the connection prompt interface 321B, but a password input interface may pop up. Pairing of ring 31. In these embodiments, communication security is improved by setting a password.
  • the communication connection between the bracelet 31 and the mobile phone 32 is realized.
  • the status prompt information 3221 that the bracelet 31 and the mobile phone 32 are connected can be viewed. Functions such as data interaction can be implemented between the bracelet 31 and the mobile phone 32 .
  • FIG. 2A , FIG. 2B , and FIG. 2C are exemplary descriptions of various display interfaces, and cannot be construed as specific limitations on the embodiments of the present application. In an actual application scenario, each display interface may include more or less display content, which is not limited in this embodiment of the present application.
  • the bracelet can actively synchronize the collected detection data to the mobile phone, or the mobile phone can actively request the bracelet to synchronize the collected detection data to the mobile phone.
  • the mobile phone After the mobile phone obtains the detection data collected by the bracelet, on the one hand, the mobile phone automatically detects the wearing status of the bracelet. Specifically, according to the detection data collected by the wristband, such as heart rate and/or blood oxygen, the mobile phone can effectively verify whether the user is wearing the wristband 31 correctly, and give the wearer wearing suggestions according to the results of the wearing verification, such as , if the wear verification result is that the user does not wear the bracelet correctly, push the wearing suggestion to the wearer.
  • mobile phones can intelligently push wear instructions. After the mobile phone obtains the wearing verification result, it pushes a query to confirm the wearing status to the user, so that the user can confirm whether there is any wrong wearing behavior that can be detected by itself.
  • the bracelet itself may perform wearing verification according to the collected detection data, and give wearing suggestions according to the wearing verification results.
  • the bracelet itself can intelligently push wearing instructions. That is to say, in this embodiment of the present application, the electronic device that performs the wearing test may be a device that collects detection data, or may be an electronic device that synchronizes detection data.
  • the electronic device that pushes the wearing guide may be a device that collects detection data, or may be an electronic device that synchronizes detection data.
  • the mobile phone is used to perform the wearing test and push the wearing instruction as an example for description. Those skilled in the art can understand that the exemplary description cannot be interpreted as a specific limitation to the present application.
  • the bracelet can store a certain amount of detection data, and the detection data can be overwritten and updated in a certain period of time.
  • the bracelet will synchronize the unsynchronized detection data of the machine to the mobile phone.
  • the mobile phone can verify the wearing status of the bracelet in the historical time period or the current real-time based on the latest synchronized detection data, and give the user wearing suggestions according to the wearing verification results.
  • the mobile phone can also obtain the user's health monitoring result based on the latest synchronized detection data, so as to prompt the user to perform health management.
  • the bracelet can synchronize the collected detection data to the mobile phone, and the user can view the detection data through the user interface of the mobile phone.
  • the measurement data that can be displayed on the display interface 323 of the wristband detection data may include the following: number of steps, exercise state, sleep, heart rate and blood oxygen.
  • the sleep data display interface 324 can display two types of measurement data in the sleep state: heart rate and blood oxygen.
  • the mobile phone 32 can load the heart rate data display interface 325 in the sleep state, as shown in FIG. 4A .
  • the mobile phone 32 can load the heart rate data display interface 425 in the sleep state, as shown in FIG. 4B .
  • the mobile phone 32 can load the blood oxygen data display interface 326 in the sleep state, as shown in FIG. 5A .
  • the mobile phone 32 can load the blood oxygen data display interface 426 in the sleep state, as shown in FIG. 5B .
  • the heart rate data display interface and the blood oxygen data display interface may include sliding controls.
  • the mobile phone receives the user's drag operation on the sliding control, and can display the heart rate or blood oxygen data at different times, or the data range.
  • the blood oxygen data display interface 426 includes a sliding control 4262 , the user drags the sliding control to the target position shown in FIG. 5B , and the mobile phone displays the blood oxygen data at the target time corresponding to the target position. Since the blood oxygen data at the target time is missing in the example shown in FIG. 5B , the mobile phone displays the blood oxygen data at the target time as "--".
  • FIG. 3A, FIG. 3B, FIG. 4A, FIG. 4B, FIG. 5A and FIG. 5B are exemplary descriptions of each display interface.
  • each display interface may adopt other layout forms and/or classification methods , the display interface may also include more or less types of measurement data, which is not limited in this application.
  • the user can view the heart rate data and blood oxygen data through the heart rate data display interface and blood oxygen data display interface of the mobile phone. According to the measurement data and monitoring results provided by the display interface, the user can intuitively see the measurement data at a certain moment, whether there is missing measurement data, whether there is any abnormal measurement data, etc., which is convenient for users to evaluate the wearing status of the bracelet and understand their own health. state.
  • the wearable device When a user uses a wearable device to collect measurement data such as heart rate and blood oxygen, the wearable device collects a data point of heart rate and blood oxygen at regular intervals, that is, a sampling period. The wrong way to wear it will lead to abnormal values in measurement data such as blood oxygen and heart rate. In the embodiment of the present application, it is determined whether the user wears the wearable device correctly according to the distribution of these abnormal values. If the user does not wear the wearable device correctly, the user is asked to confirm his wearing status, and a wearing suggestion is sent after the user confirms.
  • the mobile phone can detect the wearing state of the bracelet when the user is sleeping, and instruct the user to wear the wearable device correctly, so that the bracelet can collect more accurate measurement data.
  • the detection data of the sleep state includes heart rate and blood oxygen, and the user's wearing state can be verified according to the two measurement data of blood oxygen and heart rate. It can be seen that, in the embodiment of the present application, according to different scene requirements, corresponding indicators can be selected to perform wearing state verification, so as to meet the measurement requirements of the actual scene.
  • the wearable device can collect one or more measurement data specified by the user, in order to monitor the user's health. Then, in some embodiments of the present application, the wearing state of the user can be verified according to one or more specified measurement data, and wearing suggestions can be pushed, so as to more accurately collect the specified one or more measurement data.
  • the wristband is set to need to accurately detect measurement data of the sleep state specified by the user, such as heart rate and blood oxygen.
  • the system defaults that the bracelet needs to detect measurement data in the user's sleep state, such as heart rate and blood oxygen.
  • the bracelet detects that the user has fallen asleep and synchronizes the detected data, including heart rate data and blood oxygen data, to the mobile phone in real time.
  • the mobile phone can record the detection data synchronously, and automatically detect the wearing status of the bracelet in the user's current sleep state based on the heart rate data and blood oxygen data, and guide the user to wear the bracelet correctly, so as to collect heart rate data and blood oxygen more accurately in the subsequent sleep state. data.
  • the bracelet When the bracelet and the mobile phone are paired, the bracelet sends the collected heart rate data and blood oxygen data to the mobile phone in real time, or the mobile phone actively acquires the heart rate data and blood oxygen data collected by the bracelet in real time to realize the heart rate data of the bracelet Sync with blood oxygen data to your phone.
  • the bracelet detects that the user has ended the current sleep state and wakes up, the bracelet can send a notification to the mobile phone.
  • the mobile phone can automatically detect the wearing state of the bracelet in the current sleep state of the user based on the heart rate data and blood oxygen data synchronized with the bracelet in the current sleep state, and guide the user to wear the bracelet correctly, so that the heart rate can be more accurately collected in the subsequent sleep state. data and blood oxygen data.
  • the bracelet and the mobile phone When the bracelet and the mobile phone are not paired, after the bracelet is paired with the mobile phone, the bracelet will synchronize the measurement data of the user's sleep state collected in the historical time period but not synchronized to the mobile phone to the mobile phone.
  • the mobile phone obtains this part of the synchronized measurement data, detects the user's wearing state of the bracelet in the sleep state during the historical period, and instructs the user to wear the bracelet correctly.
  • FIG. 4A and FIG. 5A are the heart rate data and blood oxygen data of the user during the sleep time period from 00:29 to 09:36 collected by the bracelet, respectively.
  • FIG. 4B and FIG. 5B are the heart rate data and blood oxygen data of the user during the sleep period from 23:43 to 07:57 the next day, respectively, collected by the bracelet.
  • the wearable device is not properly worn, that is, the form of wrong wearing may include, but is not limited to, the wrong wearing position (or misplacement), or too loose.
  • Wearables that are not being worn correctly are reflected in two measurements, heart rate data and blood oxygen data. For example, data anomalies suddenly appear for a period of time in a steady state, and data anomalies include but are not limited to abnormal data or data loss.
  • the respective reasonable threshold ranges of the two measurement data may be preset on the mobile phone, and if the measurement data does not meet the corresponding reasonable threshold ranges, the data is considered abnormal.
  • the mobile phone in the event that the measurement data is determined to be abnormal, can also determine what form of wearing error the bracelet belongs to according to the abnormality of the measurement data, for example, it can be determined that the bracelet is worn too loosely or is misplaced.
  • the two measurement data in a certain period of time in the past, there is a certain error between the two measurement data and the reasonable data, and/or, the two measurement data are intermittent, that is, the data is not continuous, then the bracelet can be determined.
  • the wearing state is too loose.
  • both measurement data are lost within a certain period of time in the past, it can be determined that the wearing state of the bracelet is misplaced.
  • the wearing state of the user can be determined according to the distribution of the missing part of the heart rate data and the blood oxygen data. For example, analyze the heart rate and blood oxygen data, and find that there is a missing part in both the heart rate and blood oxygen data, calculate the overlap or intersection of the heart rate data and the missing part of the blood oxygen data, and obtain the overlapping time period. If the overlapping time period exceeds the preset threshold , it is considered that the user does not wear the bracelet correctly or wears it too loosely.
  • the heart rate data and the blood oxygen data are analyzed, and the abnormal time period of the heart rate data and the blood oxygen data overlaps or intersects, and lasts for a period of time, and the user can be identified within the period of time Wearing the wearable device incorrectly or too loosely, etc.
  • the data sampling interval can be set to once per minute, that is, each hour includes 60 data sampling points, and the heart rate data and blood oxygen data overlap or intersect abnormal time periods of more than 20 data points, that is, both At the same time, an abnormal time period that is abnormal and lasts for more than 20 minutes, and the duration of the abnormal time period (or cumulative time) reaches one hour, it can be recognized that the user is not wearing the wearable device correctly.
  • the abnormal data points of the user's heart rate data and blood oxygen data are recorded respectively, and the overlapping or intersecting time periods when abnormal values appear at the same time are determined.
  • the abnormal time period corresponding to abnormal data points in which heart rate data and blood oxygen data are abnormal at the same time and lasts for more than 20 data points is: [trS1,tr(S1+N1)],...,[trSn,tr(Sn +Nn)].
  • S1, N1, ..., Sn, and Nn are all positive integers
  • n is an integer greater than or equal to 1.
  • the duration is determined according to the above one or more abnormal time periods, that is, the union of the above one or more time periods [trS1,tr(S1+N1)],...,[trSn,tr(Sn+Nn)].
  • duration is equal to or more than one hour, it means that the user did not wear the bracelet correctly during the period.
  • Wearing suggestions include but are not limited to: wearing suggestions corresponding to incorrect wearing (ie wearing incorrectly), wrong wearing position (ie wearing misplaced), or wearing too loose and other wearing verification results.
  • a wearing suggestion display interface is displayed, and the wearing suggestion display interface includes a wearing suggestion corresponding to the wearing verification result.
  • the mobile phone 32 displays a wearing suggestion display interface 327, the mobile phone determines that the bracelet is too loosely worn, and the mobile phone 32 displays a wearing suggestion display interface 327, as shown in FIG. , please adjust".
  • the mobile phone detects that the user clicks on any blank area of the display interface, and exits the display interface; or, after the mobile phone displays the display interface for a preset duration, automatically exits the display interface.
  • the mobile phone determines that the bracelet is worn in the wrong position, and the wearing suggestion display interface can display the words "The bracelet is worn in the wrong position, please adjust it to the correct position".
  • the mobile phone determines that the bracelet is worn in the wrong position, and the wearing suggestion display interface may display the words "The bracelet is not properly worn, please adjust the wearing status of the bracelet”.
  • the wearing suggestion display interface 327 shown in FIG. 6 may further include a “detailed explanation” control, and the mobile phone can display the wristband wearing instructions after receiving the user’s click operation on the “detailed explanation” control. Users can learn more detailed wearing knowledge by reading the bracelet wearing instructions.
  • the bracelet wearing instructions may correspond to wearing suggestions, so as to more efficiently guide the user to correctly adjust the wearing state of the bracelet.
  • the bracelet wearing instructions can explain in detail the steps of how to wear the bracelet correctly; if the wearing recommendation is for wearing the bracelet in the wrong position, the bracelet wearing instructions You can introduce where to wear the bracelet; if the wearing recommendation is that the corresponding bracelet is too loose, the bracelet wearing instructions can introduce how to tighten the bracelet. More specifically, in some implementations, the instructions for wearing the bracelet can also be displayed through a combination of pictures and texts, video, or voice; or, the user can be informed about how much to tighten at least to achieve an accurate wearing state.
  • the mobile phone sends a wearing status confirmation reminder to the user, allowing the user to confirm whether there is a detected wearing error behavior. After the user confirms the wearing state, a wearing instruction corresponding to the wearing state can be pushed to the user.
  • the mobile phone 32 displays the wearing state confirmation interface 328, as shown in FIG.
  • a wearing instruction corresponding to the wearing state may be recommended to the user.
  • the wearing instructions may describe how to tighten the bracelet.
  • the mobile phone determines that the wearing status is misplaced
  • the mobile phone displays the wearing status confirmation interface
  • the wearing status confirmation interface displays the words "Please check whether the bracelet is worn in the wrong position?".
  • a wearing instruction corresponding to the wearing state may be recommended to the user.
  • the wearing instructions may describe where to wear the bracelet.
  • the mobile phone determines that the wearing state is incorrect
  • the mobile phone displays an inquiry interface for correct wearing, and the inquiry interface displays the words "Please confirm whether the bracelet is correctly worn?".
  • a wearing instruction corresponding to the wearing state may be recommended to the user.
  • the wearing instructions may introduce various steps on how to properly wear the bracelet; or, it may introduce general instructions for the bracelet, such as user instructions.
  • the abnormal time period in which the heart rate data and the blood oxygen data overlap or intersect is recorded, and the duration of the abnormal time period is recorded.
  • the duration is equal to or exceeds the preset duration, it is determined that the user is not wearing the wearable device correctly.
  • the overlapping or intersecting abnormal time periods are calculated based on the two measurement data. Since the wearing state of the wearable device is verified by considering the information of two dimensions at the same time, the accuracy of the verification result is improved, and misjudgment can be avoided; On the one hand, the duration is set for the abnormal time period, which further avoids misjudgment.
  • sampling time interval may be set to other time intervals, and the duration may also be other durations.
  • duration may also be other durations.
  • the wearing advice and/or wearing instructions may be pushed to the user in other forms, such as voice, video, image, text, or a combination of graphics and text.
  • the foregoing embodiments are merely exemplary descriptions and should not be construed as specific limitations to the present application.
  • the accumulated number of times may not be set, that is, there is no need to send a wearing suggestion to the user when the accumulated number of times exceeds the set threshold, but when it is determined that the user is not wearing the wearable device correctly, Wearing suggestions can be pushed to users.
  • the settings can be selected according to the actual situation.
  • the present embodiment is described by taking a scenario in which a finger ring and a mobile phone establish a communication connection as an example.
  • the finger ring 91 and the mobile phone 92 are paired to establish a communication connection, and the heart rate data and blood oxygen data collected by the finger ring 91 are synchronized to the mobile phone 92 . It should be understood that, for the process of pairing the finger ring 91 with the mobile phone 92, reference may be made to the foregoing process of pairing the bracelet with the mobile phone.
  • the mobile phone 92 performs wearing verification according to the heart rate data and blood oxygen data collected by the ring 91 in the past one hour.
  • the mobile phone 92 determines the heart rate data and blood oxygen data in the past hour. If both of them are abnormal at the same time and the abnormality lasts for more than 30 minutes, it can be determined that the ring 91 is not worn correctly or is too loosely worn.
  • the mobile phone 92 pushes the wearing suggestion to the user, and displays the wearing suggestion display interface. For example, as shown in FIG. 8A , the wearing suggestion display interface 921 of the mobile phone 92 displays the words "the ring is too loose, please change the wearing finger". After detecting that the user clicks on any blank area in the display interface, the mobile phone 92 exits the display interface. The user can accurately adjust the wearing state according to the wearing suggestion.
  • the mobile phone 92 can push the wearing status confirmation reminder at a preset time interval.
  • the reminder interface 922 of the mobile phone 92 displays the words “Please check whether the ring is worn too loosely?”. The user can confirm whether there is a detected wearing error behavior according to the reminder.
  • the mobile phone 92 receives the confirmation wearing state input by the user, for example, the user clicks the "Yes" control 9221 or "No" control 9222 shown in FIG. 8B , the mobile phone 92 can push the wearing instructions corresponding to the wearing state.
  • This embodiment is described by taking a scenario in which smart glasses and a mobile phone communicate and connect as an example.
  • the glasses 101 and the mobile phone 102 are paired to establish a communication connection, and the heart rate data and blood oxygen data collected by the glasses 101 are synchronized to the mobile phone 102 . It should be understood that, for the process of pairing the glasses 101 with the mobile phone 102, reference may be made to the foregoing process of pairing the bracelet with the mobile phone.
  • the mobile phone 102 performs wearing verification according to the heart rate data and blood oxygen data collected by the glasses 101 in the past ten minutes.
  • the mobile phone 102 determines the heart rate data and blood oxygen data of the past ten minutes, and there is a certain error between the two and the reasonable threshold, and there are occasional interruptions, so it can be determined that the glasses 101 are worn too loosely.
  • the mobile phone 102 can push the wearing status confirmation reminder to the user.
  • the reminder interface 1022 of the mobile phone 102 displays the words “Please check whether the glasses are worn too loosely?”.
  • the user can confirm whether there is a detected wearing error behavior according to the reminder.
  • the mobile phone 102 receives the confirmation wearing state input by the user, for example, the user clicks the "Yes" control 10221 or "No" control 10222 shown in FIG. 9 , the mobile phone 102 can push the wearing instructions corresponding to the wearing state.
  • the mobile phone 102 may no longer display the wearing status confirmation reminder, but broadcast the wearing status confirmation reminder in language.
  • the mobile phone 102 may send the wearing state to the glasses 101 .
  • the glasses 101 can voice broadcast the wearing state confirmation reminder, or push the wearing state confirmation reminder to the user. For example, "Please check whether the glasses are too loose?" is voiced through the microphone of the glasses 101 .
  • a reminder interface is displayed on the display screen of the glasses 101, and the reminder interface displays the words "Please check whether the glasses are worn too loosely?”. Therefore, the user can confirm whether there is a detected wearing error behavior according to the reminder.
  • the wearable device includes sensors that can be used to detect whether the wearable device is being worn by a user.
  • the wearable device includes a proximity light sensor, which can detect whether there is an object in the vicinity of the wearable device, and thus can be used to determine whether the wearable device is worn by the user; or, the wearable device includes a distance sensor, which can detect the The distance of the wearable device from the obstacle, so it can be used to determine whether the wearable device is worn by the user; or, the wearable device includes a pressure sensor, and the pressure sensor can be used to sense pressure signals, so it can be used to determine whether the wearable device is worn by the user.
  • the wearable device includes a temperature sensor, which can be used to measure temperature, and thus can be used to determine whether the wearable device is being worn by the user; alternatively, the wearable device includes a resistance sensor, which can be used to measure skin resistance, Thus, it can be used to determine whether the wearable device is worn by the user.
  • the back of glasses, finger rings, wristbands or watches that is, the side close to the user's skin, is provided with sensors such as proximity light sensors, distance sensors, pressure sensors, temperature sensors, and resistance sensors.
  • sensors such as proximity light sensors, distance sensors, pressure sensors, temperature sensors, and resistance sensors.
  • the wearable device In the case that it is determined that the wearable device is worn by the user, the user's wearing state of the wearable device is then verified. After the wearable device is determined to be worn by the user, it can collect heart rate and blood oxygen data. The wearable device itself can verify the wearing status of the wearable device according to the collected heart rate and blood oxygen data. The wearing status of the wearable device can also be verified by electronic devices such as mobile phones that have synchronized heart rate and blood oxygen data, according to the heart rate and blood oxygen data.
  • a wearing suggestion can be pushed to the user.
  • the user can also be allowed to confirm the wearing status by himself.
  • the combination of automatic detection and user confirmation can provide the accuracy of the detection results and give Users push more accurate wearing instructions.
  • the user can be asked to confirm the wearing state by himself.
  • the accuracy of the detection result can be improved, and more accurate wearing guidance can be pushed to the user.
  • the mobile phone can synchronize the heart rate and blood pressure collected by each wearable device. Oxygen data.
  • the mobile phone can verify the wearing status of each wearable device respectively, so as to push corresponding wearing suggestions to the user according to the detected wearing status of the user. It should be understood that for the process of verifying the wearing state of each wearable device respectively, reference may be made to the foregoing embodiments of verifying the wearing state of a wristband, a ring, or glasses, which will not be repeated here.
  • the embodiments of the present application provide a wear detection method for a wearable device, and the wear detection method can be performed by an electronic device.
  • the wearing detection method may be performed by one or more of a mobile phone, a wristband, a finger ring, or glasses in the aforementioned application scenarios.
  • the wearing detection method includes steps S110 to S130.
  • S120 Acquire a wearing state of the wearable device according to the one or more physiological parameter data.
  • the physiological parameter data may be the user's physiological parameter data collected by the wearable device.
  • Wearable devices can collect data on one or more physiological parameters through their own sensors. Multiple physiological parameter data can be collected by the same or different sensors.
  • the wear detection method of a wearable device may be applied to a wearable device, such as a wristband, a finger ring, or glasses.
  • the wearable device can collect one or more physiological parameter data through its own sensors, thereby obtaining one or more physiological parameter data; then, the wearable device obtains the wearing state of the wearable device according to the one or more physiological parameter data; Furthermore, the wearable device pushes wearing suggestions according to the wearing state.
  • the wear detection method of the wearable device may be applied to electronic devices, such as mobile phones or tablet computers.
  • Electronic devices are connected with wearable devices through wireless communication technology.
  • Wearable devices can acquire one or more physiological parameter data through their own sensors.
  • the electronic device obtains one or more physiological parameter data from the wearable device; then, the electronic device obtains the wearing state of the wearable device according to the one or more physiological parameter data; further, the electronic device pushes wearing suggestions according to the wearing state.
  • the wearing detection method of a wearable device can be applied to an electronic device and a wearable device, and the electronic device is connected to the wearable device through a wireless communication technology.
  • the wearable device can acquire one or more physiological parameter data through its own sensor, and send the one or more physiological parameter data to the electronic device.
  • the electronic device receives one or more physiological parameter data sent by the wearable device, and obtains the wearing state of the wearable device according to the one or more physiological parameter data; further, the electronic device pushes wearing suggestions according to the wearing state.
  • the wearable device When worn correctly, the wearable device can collect more accurate physiological parameter data. In the case of incorrect wearing, the physiological parameter data collected by the wearable device has certain errors and/or data anomalies such as data loss. Therefore, the embodiments of the present application verify the wearing state of the wearable device according to one or more physiological parameter data. In addition, according to the wear verification results, users are given corresponding wearing suggestions, which can guide users to wear the wearable device correctly and improve the accuracy of subsequent data collection.
  • wearable devices can simultaneously measure one or more physiological parameter data of the user, such as heart rate data, blood oxygen data, and blood pressure data.
  • physiological parameter data is usually affected by the wearing state of the wearable device.
  • the wearing state can be verified according to multiple physiological parameter data, and the wearing state can be verified based on information of multiple dimensions, which can further improve the accuracy of the wearing verification result.
  • the wearing detection method is provided, which is further limited based on the embodiment shown in FIG. 10 .
  • step S130 according to the wearing state, push a wearing suggestion, including:
  • a wearing suggestion is pushed according to the wearing state.
  • the wearing detection method further includes step S140 , if it is determined that the wearing state satisfies the second condition, no wearing suggestion is pushed.
  • the wearable device determines that the wearing state satisfies a certain condition, that is, the first condition will push the wearing suggestion; the wearable device determines that the wearing state satisfies a certain condition, that is, the second condition does not push the wearing suggestion.
  • Wearable devices do not push wearing suggestions to users every time they obtain the wearing status, which can reduce the number of times of pushing wearing suggestions to users, reduce interaction costs, and improve user experience.
  • the wearing state includes wrong wearing or correct wearing
  • Determining that the wearing state satisfies the first condition includes:
  • determining that the wearing state is a wearing error or, determining that the cumulative number of times that the wearing state is a wearing error is equal to or greater than a preset number of times threshold, or determining that the wearing state is a wearing error;
  • Determining that the wearing state satisfies the second condition includes:
  • the wearing state is that the cumulative number of incorrect wearing times is less than the preset number of times threshold, or the wearing state is determined that the wearing state is correct wearing.
  • the wearable device determines that the cumulative number of wearing errors is equal to or greater than the preset number of times threshold before the wearable device pushes the wearing suggestion, otherwise it does not push the wearing suggestion. Wearable devices will not push wearing suggestions to users every time a wearing error is detected, which can reduce the number of times of pushing wearing suggestions to users, reduce interaction costs, and improve user experience.
  • step S130 according to the wearing state, pushes wearing suggestions, including:
  • Step S131A determining that the wearing state is wearing misalignment, and pushing a wearing suggestion for adjusting the wearing position
  • Step S132A it is determined that the wearing state is too loose, and a wearing suggestion of the tightening device is pushed.
  • step S130 if it is determined that the wearing state satisfies the first condition, push a wearing suggestion according to the wearing state, including :
  • Step S131B if it is determined that the wearing state is wearing misalignment, push a wearing suggestion for adjusting the wearing position;
  • Step S132B if it is determined that the wearing state is too loose, push the wearing suggestion of the tightening device.
  • Step S140 includes: if it is determined that the wearing state is correct wearing, not pushing a wearing suggestion.
  • step S131B if it is determined that the wearing state is wearing misalignment, push a wearing suggestion for adjusting the wearing position, including:
  • the wearing state is dislocation, and the accumulated number of times that the wearing state is determined to be dislocation is equal to or greater than the preset number of times threshold, a wearing suggestion for adjusting the wearing position is pushed.
  • Step S132B if it is determined that the wearing state is too loose, push the wearing suggestion of the tightening device, including:
  • Step S140 includes: if it is determined that the wearing state is correctly worn, or, determining that the wearing state is dislocated, and determining that the cumulative number of times that the wearing state is dislocated is less than a preset number of times threshold, or, determining that the wearing If the wearing state is too loose, and it is determined that the cumulative number of times that the wearing state is too loose is less than the preset number of times threshold, the wearing suggestion is not pushed.
  • a corresponding wearing suggestion is pushed, which can guide the user to adjust the wearing state in a more targeted manner and improve the accuracy of subsequent measurements.
  • the corresponding wearing suggestion will be pushed, which can reduce the number of times of pushing the wearing suggestion to the user, reduce the interaction cost, and improve the user experience.
  • acquiring the wearing state of the wearable device according to one physiological parameter data includes:
  • the duration of the first abnormal time period is equal to or greater than the first preset duration, it is determined that the wearing state of the wearable device is a wearing error.
  • the wearing state of the wearable device is acquired according to multiple physiological parameter data, including:
  • the duration of the second abnormal time period is equal to or greater than the preset time period, it is determined that the wearing state of the wearable device is a wearing error.
  • a quantitative method of how to obtain the wearing state of the wearable device according to a plurality of physiological parameter data is provided, and the computing power cost is low, which makes the solution easy to implement.
  • the time period in which multiple physiological parameter data are abnormal at the same time is considered, and the threshold for the duration is set to ensure the accuracy of the wearing verification result.
  • the wearable device includes a sensor, and the sensor is used to collect the plurality of physiological parameter data. Since the correlation of several physiological parameter data from the same hardware is very high, when the wearing state changes, several target data will be affected synchronously. Therefore, this implementation can collect the data used to verify the wearing state based on the same hardware. Physiological parameter information, more accurate verification results can be obtained.
  • the senor may be an optical sensor.
  • the optical sensor can measure the user's heart rate data, blood oxygen data, blood oxygen data, etc. based on the reflection of light by the blood. At least two physiological parameter data from heart rate data, blood oxygen data, blood oxygen data, etc. from the same optical sensor are used as data for verifying the wearing state.
  • the physiological parameter data used for verifying the wearing state comes from the same hardware, the correlation between different physiological parameter data is very high. Changes in the wearing state of wearable devices will be reflected in different physiological parameter data at the same time. That is to say, wrong wearing state will cause abnormal physiological parameter data at the same time. Therefore, in this implementation manner, the wearing state of the wearable device is verified based on the physiological parameter data collected by the same hardware, which can make the wearing verification result more accurate.
  • the one or more physiological parameter data includes one or more of heart rate data, blood oxygen data and blood pressure data.
  • the wearing detection method further includes steps S150 and S160 .
  • steps S150 and S160 As shown in FIG. 15 , the improvement on the basis of FIG. 10 is taken as an example.
  • the wearing status is verified, and wearing suggestions are pushed, and on the other hand, the user confirms whether there is a detected wearing error, and then pushes the wearing instructions corresponding to the wearing status.
  • pushing a query for confirming the wearing state includes: pushing a query about whether to wear a wearable device.
  • the wearable device pushes a query on whether to wear the wearable device to the user, and determines that the wearable device is in the wearing state on the basis of , which can push wearing instructions in a targeted manner to guide users to wear wearable devices efficiently and accurately.
  • the wearing error includes wearing in a wrong position or wearing too loosely.
  • the wearing detection method further includes:
  • the wearing suggestion is not pushed.
  • one or more physiological parameter data are acquired, including:
  • the wearable device is worn by the user, and one or more physiological parameter data are obtained.
  • the wearable device may include a sensor for detecting whether the wearable device is worn by the user. Based on the detection data from these sensors, it can be determined whether the wearable device is worn by the user. In this implementation manner, when it is determined that the wearable device is worn by the user, the wearing state verification is performed, which can save computing power costs.
  • the wearable device includes at least one of a proximity light sensor, a distance sensor, a pressure sensor, a temperature sensor, and a resistance sensor. Based on detection signals derived from them, it can be determined whether the wearable device is worn by the user.
  • each module included in the wearing detection device of the wearable device may correspond to each step of implementing the wearing detection method of the wearable device.
  • the electronic device includes corresponding hardware and/or software modules for executing each function.
  • the present application can be implemented in hardware or a combination of hardware and computer software. Whether a function is performed by hardware or computer software driving hardware depends on the specific application and design constraints of the technical solution. Those skilled in the art may use different methods to implement the described functionality for each particular application in conjunction with the embodiments, but such implementations should not be considered beyond the scope of this application.
  • FIG. 16 a structural block diagram of a wearing detection apparatus for a wearable device provided by an embodiment of the present application is shown. For convenience of description, only parts related to this embodiment are shown.
  • the wear detection device of the wearable device can be configured on electronic devices such as wearable devices, mobile phones or tablet computers. 16, the wearing detection device includes:
  • a verification module 162 configured to acquire the wearing state of the wearable device according to the one or more physiological parameter data
  • the push module 163 is configured to push a wearing suggestion according to the wearing state.
  • Embodiments of the present application further provide an electronic device, including a memory, a processor, and a computer program stored in the memory and executable on the processor, when the processor executes the computer program, the The electronic device implements the steps in each of the foregoing method embodiments.
  • the electronic device may be a wearable device, a mobile phone, a tablet computer, and the like.
  • Embodiments of the present application further provide a computer-readable storage medium, where a computer program is stored in the computer-readable storage medium, and when the computer program is executed by a processor, the steps in the foregoing method embodiments can be implemented.
  • the embodiments of the present application provide a computer program product, when the computer program product runs on an electronic device, the steps in the foregoing method embodiments can be implemented when the electronic device executes.
  • the integrated modules/units if implemented in the form of software functional units and sold or used as independent products, may be stored in a computer-readable storage medium.
  • the present application realizes all or part of the processes in the methods of the above embodiments, which can be completed by instructing the relevant hardware through a computer program, and the computer program can be stored in a computer-readable storage medium.
  • the computer program includes computer program code
  • the computer program code may be in the form of source code, object code, executable file or some intermediate form, and the like.
  • the computer-readable medium may include at least: any entity or device capable of carrying the computer program code to the photographing device/electronic device, recording medium, computer memory, read-only memory (ROM), random access memory (Random Access Memory, RAM), electrical carrier signals, telecommunication signals, and software distribution media.
  • ROM read-only memory
  • RAM random access memory
  • electrical carrier signals telecommunication signals
  • software distribution media For example, U disk, mobile hard disk, disk or CD, etc.
  • computer readable media may not be electrical carrier signals and telecommunications signals.
  • the units described as separate components may or may not be physically separated, and components displayed as units may or may not be physical units, that is, may be located in one place, or may be distributed to multiple network units. Some or all of the units may be selected according to actual needs to achieve the purpose of the solution in this embodiment.

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Abstract

La présente invention se rapporte au domaine de la technologie des dispositifs intelligents pouvant être portés, et concerne un procédé de détection de port pour un dispositif pouvant être porté, un appareil et un dispositif électronique. Le procédé de détection de port pour un dispositif pouvant être porté est appliqué à un dispositif pouvant être porté. Le procédé de détection de port comprend les étapes suivantes : un dispositif pouvant être porté acquiert un ou plusieurs éléments de données de paramètre physiologique; le dispositif pouvant être porté acquiert l'état de port du dispositif pouvant être porté selon le ou les éléments de données de paramètre physiologique; et le dispositif pouvant être porté envoie une suggestion de port selon l'état de port. Selon les modes de réalisation de la présente invention, la suggestion de port est donnée à l'utilisateur selon le résultat de vérification de l'état de port, de telle sorte que l'utilisateur peut être guidé pour porter correctement le dispositif pouvant être porté, améliorant la précision de l'acquisition de données ultérieure.
PCT/CN2021/104325 2020-07-06 2021-07-02 Procédé de détection de port pour un dispositif pouvant être porté, appareil et dispositif électronique WO2022007720A1 (fr)

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